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Subject: [lisp] FYI: LISP Mobility Architecture (draft-meyer-lisp-mn-00.txt)
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	Just posted to the I-D repository. Comments greatly
	appreciated.=20

	Dave

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From jmh@joelhalpern.com  Fri Jul  3 10:59:43 2009
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Subject: [lisp] Mobile LISP
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This is an interesting draft.  There is one case that I am not sure I 
follow.  It may well be that I missed something obvious.

Suppose that we have a site (A) with the EID block
10.1.0.0/16
A remote site (B), talking to servers at A, will have a cache entry for 
this block in its ITR, pointing to the ETRs for the site.

Now suppose that someone in B starts talking to a mobile node (C) from A 
that is using the EID 10.1.1.1/32.  And C has moved out of its home site.

As far as the site B ITR at can tell, 10.1.1.1 is a valid EID within 
site A.  How will B know that it needs to issue a query for the /32, 
since it already has the /16 entry?

Thank you,
Joel

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Subject: Re: [lisp] Mobile LISP
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> This is an interesting draft.  There is one case that I am not sure  
> I follow.  It may well be that I missed something obvious.

Thanks for reading it Joel.

> Suppose that we have a site (A) with the EID block
> 10.1.0.0/16
> A remote site (B), talking to servers at A, will have a cache entry  
> for this block in its ITR, pointing to the ETRs for the site.

Right.

> Now suppose that someone in B starts talking to a mobile node (C)  
> from A that is using the EID 10.1.1.1/32.  And C has moved out of  
> its home site.

Okay.

> As far as the site B ITR at can tell, 10.1.1.1 is a valid EID within  
> site A.  How will B know that it needs to issue a query for the /32,  
> since it already has the /16 entry?

The ITRs at site A will have to update the caches of all the remote  
sites currently talking to site A. This can be done two ways:

o The ITRs can send an SMR-bit in data packets going to the site. That  
causes the remote ITRs
   to send Map-Requests to site A. Site A will need to reply with two  
EID-prefix records in the
   Map-Reply, one which is the /16 prefix and the other which is the / 
32 prefix. The information
   for LISP mobile node C is in the map-server that covers the /16  
prefix so anyone can find
   this out even the ITRs in the home site.

o Keep TTLs low, so a Map-Request will be sent for LISP mobile node C  
with EID 10.1.1.1/32.

o Have the ITRs send a Map-Request to the remote sites for their EID- 
prefix but include mapping
   data for the 10.1.1.1/32 mapping entry. If the remote sites use  
"accept-map-request-data" with
   or without verification, They can put the more specific entry in  
their map-cache.

We have not documented any of this because we have not decided which  
is the best approach. What do you think?

Dino

>
> Thank you,
> Joel
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


From jmh@joelhalpern.com  Fri Jul  3 12:48:03 2009
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Subject: Re: [lisp] Mobile LISP
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If I am reading you right, as described, a site with fixed 
infrastructure and a lot of mobile nodes needs to send its short prefix 
and ALL the long prefixes (that are not home)  to anyone who asks about 
the short prefix?  That does not seem like a good trade.

Unfortunately, the alternative seems to require a way to say
prefix/16 :-> ETR list
prefix/20 :-> Ask for details
so that a site can allocate a block to mobile nodes, and tell anyone who 
inquires that they will need more details for anything in that block. 
Having to tell anyone who asks about a fixed server about all the mobile 
nodes that are away from home seems a bad trade.  Even if the site 
administrator things that is a small number, it is basically irrelevant 
information that they need "just in case."
(I would comment on the use of short TTLs, but that seems to be secondary.)

Yours,
Joel


Dino Farinacci wrote:
>> This is an interesting draft.  There is one case that I am not sure I 
>> follow.  It may well be that I missed something obvious.
> 
> Thanks for reading it Joel.
> 
>> Suppose that we have a site (A) with the EID block
>> 10.1.0.0/16
>> A remote site (B), talking to servers at A, will have a cache entry 
>> for this block in its ITR, pointing to the ETRs for the site.
> 
> Right.
> 
>> Now suppose that someone in B starts talking to a mobile node (C) from 
>> A that is using the EID 10.1.1.1/32.  And C has moved out of its home 
>> site.
> 
> Okay.
> 
>> As far as the site B ITR at can tell, 10.1.1.1 is a valid EID within 
>> site A.  How will B know that it needs to issue a query for the /32, 
>> since it already has the /16 entry?
> 
> The ITRs at site A will have to update the caches of all the remote 
> sites currently talking to site A. This can be done two ways:
> 
> o The ITRs can send an SMR-bit in data packets going to the site. That 
> causes the remote ITRs
>   to send Map-Requests to site A. Site A will need to reply with two 
> EID-prefix records in the
>   Map-Reply, one which is the /16 prefix and the other which is the /32 
> prefix. The information
>   for LISP mobile node C is in the map-server that covers the /16 prefix 
> so anyone can find
>   this out even the ITRs in the home site.
> 
> o Keep TTLs low, so a Map-Request will be sent for LISP mobile node C 
> with EID 10.1.1.1/32.
> 
> o Have the ITRs send a Map-Request to the remote sites for their 
> EID-prefix but include mapping
>   data for the 10.1.1.1/32 mapping entry. If the remote sites use 
> "accept-map-request-data" with
>   or without verification, They can put the more specific entry in their 
> map-cache.
> 
> We have not documented any of this because we have not decided which is 
> the best approach. What do you think?
> 
> Dino
> 
>>
>> Thank you,
>> Joel
>> _______________________________________________
>> lisp mailing list
>> lisp@ietf.org
>> https://www.ietf.org/mailman/listinfo/lisp
> 
> 

From dino@cisco.com  Fri Jul  3 15:25:09 2009
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Subject: Re: [lisp] Mobile LISP
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> If I am reading you right, as described, a site with fixed  
> infrastructure and a lot of mobile nodes needs to send its short  
> prefix and ALL the long prefixes (that are not home)  to anyone who  
> asks about the short prefix?  That does not seem like a good trade.

Well the LISP mobile node can do the Map-Request thing I mentioned as  
well. That would be better because the stationary site only needs the / 
32 state in it's ITRs only for the roaming LISP mobile nodes it is  
talking to.

I think this is a better fix. What I am saying is that the LISP mobile  
node can set the SMR-bit in data packets returning to the stationary  
site that has cached the /16.

We just have to spec in the main LISP spec that a decapsulated packet  
with the SMR-bit set should cause a Map-Request to be sent using the  
source EID of the packet as the target.

> Unfortunately, the alternative seems to require a way to say
> prefix/16 :-> ETR list
> prefix/20 :-> Ask for details
> so that a site can allocate a block to mobile nodes, and tell anyone  
> who inquires that they will need more details for anything in that  
> block. Having to tell anyone who asks about a fixed server about all  
> the mobile nodes that are away from home seems a bad trade.  Even if  
> the site administrator things that is a small number, it is  
> basically irrelevant information that they need "just in case."
> (I would comment on the use of short TTLs, but that seems to be  
> secondary.)

By the way if a stationary sites or a LISP mobile node that is  
*starting* to talk to a roaming LISP mobile node, won't have this  
problem. Reason being is because a Map-Request will be sent for the / 
32 of the mobile node, the reply returned.

It might be obvious but caching a /32 first, and then a /16 later has  
no problem. It's the other way around (/16 exists and a /32 needs to  
be stored later) that you have identified as an issue.

Dino

>
> Yours,
> Joel
>
>
> Dino Farinacci wrote:
>>> This is an interesting draft.  There is one case that I am not  
>>> sure I follow.  It may well be that I missed something obvious.
>> Thanks for reading it Joel.
>>> Suppose that we have a site (A) with the EID block
>>> 10.1.0.0/16
>>> A remote site (B), talking to servers at A, will have a cache  
>>> entry for this block in its ITR, pointing to the ETRs for the site.
>> Right.
>>> Now suppose that someone in B starts talking to a mobile node (C)  
>>> from A that is using the EID 10.1.1.1/32.  And C has moved out of  
>>> its home site.
>> Okay.
>>> As far as the site B ITR at can tell, 10.1.1.1 is a valid EID  
>>> within site A.  How will B know that it needs to issue a query for  
>>> the /32, since it already has the /16 entry?
>> The ITRs at site A will have to update the caches of all the remote  
>> sites currently talking to site A. This can be done two ways:
>> o The ITRs can send an SMR-bit in data packets going to the site.  
>> That causes the remote ITRs
>>  to send Map-Requests to site A. Site A will need to reply with two  
>> EID-prefix records in the
>>  Map-Reply, one which is the /16 prefix and the other which is the / 
>> 32 prefix. The information
>>  for LISP mobile node C is in the map-server that covers the /16  
>> prefix so anyone can find
>>  this out even the ITRs in the home site.
>> o Keep TTLs low, so a Map-Request will be sent for LISP mobile node  
>> C with EID 10.1.1.1/32.
>> o Have the ITRs send a Map-Request to the remote sites for their  
>> EID-prefix but include mapping
>>  data for the 10.1.1.1/32 mapping entry. If the remote sites use  
>> "accept-map-request-data" with
>>  or without verification, They can put the more specific entry in  
>> their map-cache.
>> We have not documented any of this because we have not decided  
>> which is the best approach. What do you think?
>> Dino
>>>
>>> Thank you,
>>> Joel
>>> _______________________________________________
>>> lisp mailing list
>>> lisp@ietf.org
>>> https://www.ietf.org/mailman/listinfo/lisp


From jnc@mercury.lcs.mit.edu  Fri Jul  3 16:24:46 2009
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Date: Fri,  3 Jul 2009 19:24:34 -0400 (EDT)
From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
Cc: jnc@mercury.lcs.mit.edu
Subject: Re: [lisp] Mobile LISP
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    >> From: Dino Farinacci <dino@cisco.com>

    >> The ITRs at site A will have to update the caches of all the remote
    >> sites currently talking to site A. 

    > From: "Joel M. Halpern" <jmh@joelhalpern.com>

    > Unfortunately, the alternative seems to require a way to say
    > prefix/16 :-> ETR list
    > prefix/20 :-> Ask for details
    > so that a site can allocate a block to mobile nodes, and tell anyone who
    > inquires that they will need more details for anything in that block.
    > Having to tell anyone who asks about a fixed server about all the mobile
    > nodes that are away from home seems a bad trade.

I've been turning this problem over in the back of my mind while I was
working on my Shigenobu catalog raisonne, and in reading your message I think
I may have hit on a possible solution. (I say 'possible' because the
implementation overhead might be impractical... but I'm always optimistic
that clever implementation techniques will make things economic! :-)

(BTW, it's a solution to the _simple_ problem you describe, of 'how do you
find that someone has gone mobile'. The harder problem, of 'how do you keep
up with someone who is mobile, when they move from distant location P to
distant location Q' I seem to recall one of the LISPers [Darrell, maybe?] had
already worked on.)


So the distant ITR (at site B) sends traffic to site A, for a mobile node Ac
(you called it C, but I'd rather call it Ac to emphasize that it has an EID
from A's EID block), is sending packets for Ac to A because B's ITRs have a
mapping that says 'all of A is at A'.

What needs to happen is that if the ETRs at A can recognize that that
particular EID Ac has 'gone walkabout', if they see any incoming traffic to
that EID they can use that as a signal that the source ITR for that traffic
has incorrect, cached mapping data for Ac. They can then tell the source ITR
(at B) 'hey, your mapping for Ac is wrong, request a new one'. (I don't know
if it's possible to say 'hey, your mapping for this is wrong, here's the
right one', because without signed mappings, that's a DoS vector.)

They can also forward the traffic to the right place - yes, it causes
triangle routing for a bit, until B is updated, but that's probably better
than simply dropping it.

The inefficiency comes in in two ways.

First, all ETRs have to have a list of EIDs which are no longer at that ETR,
and incoming packets have to be checked against it. (Perhaps this can somehow
be folded into the 'route the packet to the internal destination once the
outer header has been stripped' operation, at little/no increase in overhead
for packets to other hosts within the site - but the original outer header
for such packets will have to be saved so the correct source ITR can be
notified if the lookup barfs on 'host moved'.)

Second, a mobile node has to let not just some entity which holds its current
mapping know that it has moved, but also all the ETRs through which it might
have been reached. That's since packets for it, from ITRs which hold only the
old mapping, might show up at any of them, and they all have to be able to do
the check outlined above. It's not clear how much of a problem this is,
though, and I don't remember enough of how mobile LISP works to comment.

	Noel

From jnc@mercury.lcs.mit.edu  Fri Jul  3 16:27:15 2009
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Date: Fri,  3 Jul 2009 19:27:38 -0400 (EDT)
From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
Cc: jnc@mercury.lcs.mit.edu
Subject: Re: [lisp] Mobile LISP
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    > From: Dino Farinacci <dino@cisco.com>

    > Well the LISP mobile node can do the Map-Request thing I mentioned as
    > well. That would be better because the stationary site only needs the
    > 32 state in it's ITRs only for the roaming LISP mobile nodes it is
    > talking to.
    > ... What I am saying is that the LISP mobile node can set the SMR-bit
    > in data packets returning to the stationary site that has cached the /16.

Perhaps I'm mis-understanding you, but doesn't this only work for cases where
the mobile node tries to send packets to the stationary site first?

Otherwise, if the stationary site goes to send packets to the mobile node, it
will send them to the fixed location the mobile node used to be at, no?

	Noel

From dino@cisco.com  Fri Jul  3 16:33:30 2009
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To: jnc@mercury.lcs.mit.edu (Noel Chiappa)
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Cc: lisp@ietf.org
Subject: Re: [lisp] Mobile LISP
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> What needs to happen is that if the ETRs at A can recognize that that
> particular EID Ac has 'gone walkabout', if they see any incoming  
> traffic to
> that EID they can use that as a signal that the source ITR for that  
> traffic
> has incorrect, cached mapping data for Ac. They can then tell the  
> source ITR
> (at B) 'hey, your mapping for Ac is wrong, request a new one'. (I  
> don't know
> if it's possible to say 'hey, your mapping for this is wrong, here's  
> the
> right one', because without signed mappings, that's a DoS vector.)

Noel, I think practically this can't work. A lot of times radios go  
down and the MN can't signal to anyone. And when the radios come back  
up, the MN could be somewhere else topologically.

Also, the ETRs can't tell the difference between the MN roaming or it  
is just down but stationary in the site. The MN, itself has to solve  
this problem.

> They can also forward the traffic to the right place - yes, it causes
> triangle routing for a bit, until B is updated, but that's probably  
> better
> than simply dropping it.

I have seen cases where even if the packet to the MN is going to the  
home site, the packets can still get dropped because the MN hasn't  
come back up yet or there is latency in signaling that it is up. You  
can't do much about this.

> The inefficiency comes in in two ways.
>
> First, all ETRs have to have a list of EIDs which are no longer at  
> that ETR,
> and incoming packets have to be checked against it. (Perhaps this  
> can somehow
> be folded into the 'route the packet to the internal destination  
> once the
> outer header has been stripped' operation, at little/no increase in  
> overhead
> for packets to other hosts within the site - but the original outer  
> header
> for such packets will have to be saved so the correct source ITR can  
> be
> notified if the lookup barfs on 'host moved'.)
>
> Second, a mobile node has to let not just some entity which holds  
> its current
> mapping know that it has moved, but also all the ETRs through which  
> it might
> have been reached. That's since packets for it, from ITRs which hold  
> only the
> old mapping, might show up at any of them, and they all have to be  
> able to do
> the check outlined above. It's not clear how much of a problem this  
> is,
> though, and I don't remember enough of how mobile LISP works to  
> comment.

In my last email I indicated that the LISP mobile node sends an SMR to  
the sites it is currently talking to. This is the same action that an  
ITR would do when a mapping has changed at a stationary site.

In response to the SMR, the remote sites will send a new Map-Request.  
That Map-Request goes to the map-resolver that puts it on the ALT  
where the map-server gets the request with the newly registered RLOC- 
set from the LISP mobile node.

Dino



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From: Dino Farinacci <dino@cisco.com>
To: jnc@mercury.lcs.mit.edu (Noel Chiappa)
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Subject: Re: [lisp] Mobile LISP
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>> From: Dino Farinacci <dino@cisco.com>
>
>> Well the LISP mobile node can do the Map-Request thing I mentioned as
>> well. That would be better because the stationary site only needs the
>> 32 state in it's ITRs only for the roaming LISP mobile nodes it is
>> talking to.
>> ... What I am saying is that the LISP mobile node can set the SMR-bit
>> in data packets returning to the stationary site that has cached  
>> the /16.
>
> Perhaps I'm mis-understanding you, but doesn't this only work for  
> cases where
> the mobile node tries to send packets to the stationary site first?

If the remote site and the LISP mobile at the home site is chit- 
chatting back and forth, the mobile node will continue to chit-chat so  
packets will be sent from the mobile node.

If no data was moving back and forth and a new TCP connection is being  
sent from the remote site to the LISP mobile node, then we have a  
problem because the SYN will follow the /16 map-cache entry Joel was  
referring to.

This is where the ETR has to get involved. But this is hard to solve  
and harder to implement. So let's chew on that for a while.

> Otherwise, if the stationary site goes to send packets to the mobile  
> node, it
> will send them to the fixed location the mobile node used to be at,  
> no?

Right.

Dino

>
> 	Noel
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
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Subject: Re: [lisp] Mobile LISP
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    > From: Dino Farinacci <dino@cisco.com>

    > A lot of times radios go down and the MN can't signal to anyone. And
    > when the radios come back up, the MN could be somewhere else
    > topologically.

If the MN is down, or off the air completely, there's no way for anyone to
get any traffic to or from it, no matter what anyone does. So that's an
uninteresting case (and one I wouldn't have mentioned, because of that).

What I'm talking about are cases where the MN _is_ on the air, but not at its
home site. It then has to work out where it is, and tell _somebody_ where
that is, before any communication can happen - in any scheme at all. But that
much is intuitively obvious, no?


    > the ETRs can't tell the difference between the MN roaming or it is just
    > down but stationary in the site. The MN, itself has to solve this
    > problem.

Sure. The MN first has to to be on the air _somewhere_, and know that it's
not at its home site. But, again, those conditions hold true for _any_
mobility solution I can think of.

So, given those necessary preconditions for an interesting case, how does the
'ETR notices inbound traffic for a node which has notified (perhaps
indirectly) the ETRs that it has gone walkabout' approach sound? If you like
the general approach, we can then talk about the details (e.g. how does the
info get from the mobile nodes to the ETRs - directly or indirectly; if the
latter, through who; etc).


    > If no data was moving back and forth .. then we have a problem ..
    > This is where the ETR has to get involved.

Well, that's the question I was effectively raising with my initial message
in the thread - can the ETR be part of the solution for cases where someone
new is trying to contact a mobile node.

    > But this is hard to solve and harder to implement. So let's chew on
    > that for a while.

Ditto previous "how does the 'ETR notices inbound traffic for a node which
has .. gone walkabout' approach sound" comment.

	Noel

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Subject: Re: [lisp] Mobile LISP
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>> From: Dino Farinacci <dino@cisco.com>
>
>> A lot of times radios go down and the MN can't signal to anyone. And
>> when the radios come back up, the MN could be somewhere else
>> topologically.
>
> If the MN is down, or off the air completely, there's no way for  
> anyone to
> get any traffic to or from it, no matter what anyone does. So that's  
> an
> uninteresting case (and one I wouldn't have mentioned, because of  
> that).
>
> What I'm talking about are cases where the MN _is_ on the air, but  
> not at its
> home site. It then has to work out where it is, and tell _somebody_  
> where
> that is, before any communication can happen - in any scheme at all.  
> But that
> much is intuitively obvious, no?

Right and the LISP-MN spec says it registers to the map-server for new  
cachers to get the latest RLOC and sends SMRs to the existing cachers  
to update the RLOC-set.

>> the ETRs can't tell the difference between the MN roaming or it is  
>> just
>> down but stationary in the site. The MN, itself has to solve this
>> problem.
>
> Sure. The MN first has to to be on the air _somewhere_, and know  
> that it's
> not at its home site. But, again, those conditions hold true for _any_
> mobility solution I can think of.

Right, my point is that the hand-off is not instantaneous and  
sometimes not graceful.

> So, given those necessary preconditions for an interesting case, how  
> does the
> 'ETR notices inbound traffic for a node which has notified (perhaps
> indirectly) the ETRs that it has gone walkabout' approach sound? If  
> you like
> the general approach, we can then talk about the details (e.g. how  
> does the
> info get from the mobile nodes to the ETRs - directly or indirectly;  
> if the
> latter, through who; etc).

It is a bit challenging because, 1) the ETR has to know which IP  
addresses for the site are mobile nodes, 2) the ETR has to ping or  
poll each one to find out when they are not around anymore.

>> If no data was moving back and forth .. then we have a problem ..
>> This is where the ETR has to get involved.
>
> Well, that's the question I was effectively raising with my initial  
> message
> in the thread - can the ETR be part of the solution for cases where  
> someone
> new is trying to contact a mobile node.

Okay, the verbs weren't precise, so "contact" here means trying to  
establish a connection.

Dino

>> But this is hard to solve and harder to implement. So let's chew on
>> that for a while.
>
> Ditto previous "how does the 'ETR notices inbound traffic for a node  
> which
> has .. gone walkabout' approach sound" comment.
>
> 	Noel
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


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Subject: [lisp] One more point about the /16 and the /32 issue
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Note that if a carrier is allocating /32s to mobile nodes, then there  
really isn't a home site and everything in the EID-prefix is moving.  
Also, that EID-prefix isn't really in anyone's map-cache just the /32s.

The problem that Joel brought up, is if an enterprise that is using  
both stationary nodes and mobile nodes from *the same EID-prefix" is  
when the problem arises. That is, that enterprise could use another  
EID-prefix which is allocated only for LISP mobile nodes. So only /32s  
are cached.

Dino

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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
Cc: jnc@mercury.lcs.mit.edu
Subject: Re: [lisp] One more point about the /16 and the /32 issue
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    > From: Dino Farinacci <dino@cisco.com>

    > The problem that Joel brought up, is if an enterprise that is using
    > both stationary nodes and mobile nodes from *the same EID-prefix" is
    > when the problem arises. That is, that enterprise could use another
    > EID-prefix which is allocated only for LISP mobile nodes.

That's definitely another possible 'solution' - don't support mobility from
within 'static' EID blocks. If an organization wants to support mobility, 
it needs to get a separate block for that.

I say this, not as a snide 'let them eat cake' kind of thing, but in serious
recognition that other solutions will inevitably include complexity, overhead,
etc, etc and one has to seriously consider whether simply saying 'this
particular frill is not supported, just use a separate block' isn't the
appropriate answer from an overall engineering point of view.

	Noel

From pierre.francois@uclouvain.be  Mon Jul  6 01:44:56 2009
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FYI

-------- Original Message --------
Subject: I-D Action:draft-bonaventure-lisp-preserve-00.txt
Date: Mon, 06 Jul 2009 01:30:01 -0700 (PDT)
From: Internet-Drafts@ietf.org
Reply-To: internet-drafts@ietf.org
To: i-d-announce@ietf.org

A New Internet-Draft is available from the on-line Internet-Drafts directories.

	Title           : Preserving the reachability of LISP ETRs in case of failures
	Author(s)       : O. Bonaventure, et al.
	Filename        : draft-bonaventure-lisp-preserve-00.txt
	Pages           : 21
	Date            : 2009-07-06

Maintaining reachability of an EID prefix despite the failures of
ETRs is a key concern in the LISP architecture.  In this document, we
first analyse this problem in comparison with traditional routing
protocols.  Then, we explain how Internet Service Providers could
offer a service that preserves the reachability of the LISP ETRs of
their customers in case of failures.

A URL for this Internet-Draft is:
http://www.ietf.org/internet-drafts/draft-bonaventure-lisp-preserve-00.txt

Internet-Drafts are also available by anonymous FTP at:
ftp://ftp.ietf.org/internet-drafts/

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_______________________________________________
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From phdgang@gmail.com  Mon Jul  6 08:40:02 2009
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From: Chen Gang <phdgang@gmail.com>
To: lisp@ietf.org
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Subject: [lisp]  An Incremental Deployable Mapping Service Draft
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Hello all,

We have posted a new draft which has proposed an incremental deplyable
mapping service based DHT overlay network.
Please kindly review it.
Any comment is welcome.

Thanks

-Gang

A New Internet-Draft is available from the on-line Internet-Drafts
directories.
       Title           : An Incremental Deployable Mapping Service for
Scalable Routing Architecture
       Author(s)       : G. Chen, et al.
       Filename        : draft-chen-lisp-er-mo-00.txt
       Pages           : 20
       Date            : 2009-07-06
This document describes a mechanism of providing mapping service for
LISP-like architecture.  The mapping service comprises of EID Router
(ER) mechanism and supplementary DHT Mapping Overlay (MO), in which
ER mechanism is for non-cached packets tunneling, while the DHT MO
serves as a supplement that provides specific mappings to reduce
tunneling cost.  The mechanism is flexibly deployable for ISPs since
it costs little and is easy to progress.
A URL for this Internet-Draft is:
http://www.ietf.org/internet-drafts/draft-chen-lisp-er-mo-00.txt
Internet-Drafts are also available by anonymous FTP at:
ftp://ftp.ietf.org/internet-drafts/

--001636e9024b476762046e0b4fde
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<div>Hello all,</div>
<div>=A0</div>
<div>We have posted a new draft which has proposed an incremental deplyable=
 mapping service based DHT overlay network.</div>
<div>Please kindly review it.</div>
<div>Any comment is welcome.</div>
<div>=A0</div>
<div>Thanks</div>
<div>=A0</div>
<div>-Gang</div>
<div>=A0</div>
<div>A New Internet-Draft is available from the on-line Internet-Drafts dir=
ectories.</div>
<div>=A0=A0=A0=A0=A0=A0 Title=A0=A0=A0=A0=A0=A0=A0=A0=A0=A0 : An Incrementa=
l Deployable Mapping Service for Scalable Routing Architecture<br>=A0=A0=A0=
=A0=A0=A0 Author(s)=A0=A0=A0=A0=A0=A0 : G. Chen, et al.<br>=A0=A0=A0=A0=A0=
=A0 Filename=A0=A0=A0=A0=A0=A0=A0 : draft-chen-lisp-er-mo-00.txt<br>=A0=A0=
=A0=A0=A0=A0 Pages=A0=A0=A0=A0=A0=A0=A0=A0=A0=A0 : 20<br>
=A0=A0=A0=A0=A0=A0 Date=A0=A0=A0=A0=A0=A0=A0=A0=A0=A0=A0 : 2009-07-06</div>
<div>This document describes a mechanism of providing mapping service for<b=
r>LISP-like architecture.=A0 The mapping service comprises of EID Router<br=
>(ER) mechanism and supplementary DHT Mapping Overlay (MO), in which<br>
ER mechanism is for non-cached packets tunneling, while the DHT MO<br>serve=
s as a supplement that provides specific mappings to reduce<br>tunneling co=
st.=A0 The mechanism is flexibly deployable for ISPs since<br>it costs litt=
le and is easy to progress.</div>

<div>A URL for this Internet-Draft is:<br><a href=3D"http://www.ietf.org/in=
ternet-drafts/draft-chen-lisp-er-mo-00.txt">http://www.ietf.org/internet-dr=
afts/draft-chen-lisp-er-mo-00.txt</a></div>
<div>Internet-Drafts are also available by anonymous FTP at:<br><a href=3D"=
ftp://ftp.ietf.org/internet-drafts/">ftp://ftp.ietf.org/internet-drafts/</a=
></div>

--001636e9024b476762046e0b4fde--

From dmm@1-4-5.net  Mon Jul  6 13:42:19 2009
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Date: Mon, 6 Jul 2009 13:41:12 -0700
From: David Meyer <dmm@1-4-5.net>
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Subject: [lisp] Linux lig source code available
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	See https://lig.svn.sourceforge.net

	A couple of caveats:

	(i).	It probably won't compile/run on FreeBSD. If
		someone has the time to look at that it would be
		great.=20

	(ii).	I just noticed that changed a place where I
		changed an name into an IP address then print the
		IP address (instead of the name); will fix that.

	(iii).	I looked at making one binary understand bot v4
		and v6, which made me understand (at least in
		part) why some people split those (e.g.,
		ping/ping6).=20

	Comments greatly apprecated.

	Thanks,

	Dave

	[BTW, if folks have comments on how I set up the
	sourceforge repository, let me know. Thannks again, Dave]

=09




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From luigi@net.t-labs.tu-berlin.de  Tue Jul  7 07:17:09 2009
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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org
Subject: Re: [lisp] Security work for Stockholm
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Hi All,

concerning security, things advanced a bit slower than expected.

Attached to this mail you can find a (very) first draft on LISP  
security. Since it is not complete we decided not to submit it through  
the IETF submission tool, and we are not asking any time slot during  
the next meeting.

Yet, people that have some spare time can have a look at the document  
and give us  feedback.

Cheers

Luigi

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Network Working Group                                          D. Saucez
Internet-Draft                                                L. Iannone
Intended status: Standards Track                          O. Bonaventure
Expires: January 8, 2010                                    July 7, 2009


            Notes on LISP Security Threats and Requirements
                   draft-saucez-lisp-security-00.txt

Status of this Memo

   This Internet-Draft is submitted to IETF in full conformance with the
   provisions of BCP 78 and BCP 79.  This document may contain material
   from IETF Documents or IETF Contributions published or made publicly
   available before November 10, 2008.  The person(s) controlling the
   copyright in some of this material may not have granted the IETF
   Trust the right to allow modifications of such material outside the
   IETF Standards Process.  Without obtaining an adequate license from
   the person(s) controlling the copyright in such materials, this
   document may not be modified outside the IETF Standards Process, and
   derivative works of it may not be created outside the IETF Standards
   Process, except to format it for publication as an RFC or to
   translate it into languages other than English.

   Internet-Drafts are working documents of the Internet Engineering
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   This Internet-Draft will expire on January 8, 2010.

Copyright Notice

   Copyright (c) 2009 IETF Trust and the persons identified as the
   document authors.  All rights reserved.

   This document is subject to BCP 78 and the IETF Trust's Legal



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   Provisions Relating to IETF Documents in effect on the date of
   publication of this document (http://trustee.ietf.org/license-info).
   Please review these documents carefully, as they describe your rights
   and restrictions with respect to this document.

Abstract

   The present document is just a preliminary collection of notes about
   LISP security threats and requirements.  Its purpose is to start a
   discussion on the subject among people that have shown interest in
   working on the matter.








































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Table of Contents

   1.  Requirements notation  . . . . . . . . . . . . . . . . . . . .  4
   2.  Introduction . . . . . . . . . . . . . . . . . . . . . . . . .  4
   3.  Definition of Terms  . . . . . . . . . . . . . . . . . . . . .  4
   4.  Data-plane threats . . . . . . . . . . . . . . . . . . . . . .  4
     4.1.  Security of the data stream  . . . . . . . . . . . . . . .  5
     4.2.  LISP-encapsulated packet spoofing  . . . . . . . . . . . .  5
     4.3.  Nonce  . . . . . . . . . . . . . . . . . . . . . . . . . .  6
     4.4.  LISP-Cache threats . . . . . . . . . . . . . . . . . . . .  6
       4.4.1.  LISP-Cache poisoning . . . . . . . . . . . . . . . . .  6
       4.4.2.  LISP-Cache overflow  . . . . . . . . . . . . . . . . .  7
     4.5.  LISP-Database threats  . . . . . . . . . . . . . . . . . .  8
     4.6.  DoS threats  . . . . . . . . . . . . . . . . . . . . . . .  8
       4.6.1.  SMR bit  . . . . . . . . . . . . . . . . . . . . . . .  8
       4.6.2.  Reachability Bits  . . . . . . . . . . . . . . . . . .  8
       4.6.3.  Versioning . . . . . . . . . . . . . . . . . . . . . .  9
       4.6.4.  Gleaning . . . . . . . . . . . . . . . . . . . . . . .  9
       4.6.5.  Rate Limitation  . . . . . . . . . . . . . . . . . . . 10
       4.6.6.  Mapping System and Filtering . . . . . . . . . . . . . 10
     4.7.  Other Attacks  . . . . . . . . . . . . . . . . . . . . . . 11
       4.7.1.  Time-shifted attacks . . . . . . . . . . . . . . . . . 11
       4.7.2.  Amplification attacks  . . . . . . . . . . . . . . . . 11
   5.  Control-plane threats  . . . . . . . . . . . . . . . . . . . . 11
     5.1.  Control-plane Requirements . . . . . . . . . . . . . . . . 12
     5.2.  LISP-Database coherence  . . . . . . . . . . . . . . . . . 12
     5.3.  LISP Map Server  . . . . . . . . . . . . . . . . . . . . . 12
   6.  Interaction between Data- and Control-plane  . . . . . . . . . 13
     6.1.  Data-plane side effects on the control-plane . . . . . . . 13
     6.2.  Control-plane side effects on the data-plane . . . . . . . 13
     6.3.  Data-plane threats leveraging on the control-plane . . . . 13
     6.4.  Control-plane threats leveraging on the data-plane . . . . 13
   7.  IANA Considerations  . . . . . . . . . . . . . . . . . . . . . 13
   8.  Security Considerations  . . . . . . . . . . . . . . . . . . . 14
   9.  Acknowledgments  . . . . . . . . . . . . . . . . . . . . . . . 14
   10. Normative References . . . . . . . . . . . . . . . . . . . . . 14
   Authors' Addresses . . . . . . . . . . . . . . . . . . . . . . . . 15














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1.  Requirements notation

   The key words "MUST", "MUST NOT", "REQUIRED", "SHALL", "SHALL NOT",
   "SHOULD", "SHOULD NOT", "RECOMMENDED", "MAY", and "OPTIONAL" in this
   document are to be interpreted as described in [RFC2119].


2.  Introduction

   The Locator/ID Separation Protocol (LISP) is defined in
   draft-ietf-lisp-01.txt [I-D.ietf-lisp].  The present document aims at
   identifying threats in the current LISP specification and possibly
   list a set of requirements or mechanism needed to increase its
   security.  A preliminary security analysis on LISP has been conducted
   by M. Bagnulo in [I-D.bagnulo-lisp-threat].

   This document is split in two main parts; one concerning the Data-
   plane and one concerning the Control-Plane.

   The LISP data-plane consists of LISP packet encapsulation,
   decapsulation, and forwarding and includes the LISP-Cache and LISP-
   Database data structures needed to perform such operations.  The
   present document will try to analyze the possible threats of the
   data-plane.

   The LISP control-plane consists in the mapping distribution system,
   which can be one of the mapping distribution protocols proposed so
   far (e.g., [I-D.ietf-lisp-ms], [I-D.ietf-lisp-alt],
   [I-D.meyer-lisp-cons], and [I-D.lear-lisp-nerd] ), and the set of
   Map-Request and Map-Reply messages.  The present document will not
   analyze all possible threats of each specific mapping distribution
   protocol.  Rather, this document will try to find a common set of
   requirements that every present and future mapping distribution
   protocol should satisfy in order to reduce as much as possible
   threats related to the LISP control-plane.


3.  Definition of Terms

   To be Done.


4.  Data-plane threats

   This section contains some threats and attacks related to the LISP
   data-plane.  By LISP data-plane it is intended the operations of
   encapsulation, decapsulation, and forwarding as well as the content
   of the LISP-Cache and LISP-Database as specified in the original LISP



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   document ([I-D.ietf-lisp]).

4.1.  Security of the data stream

   In some context it could be necessary to secure the data stream that
   is LISP encapsulated.  This can be achieved with two different
   approaches:

   o  Securing messages.  In this approach a field needs to be added to
      the LISP header in order to secure the content.

   o  Securing the transport protocol.  An example of this approach is
      the use of IPSEC to secure the content of the original, non LISP-
      encapsulated, packet.

   What is the approach suitable in the LISP context?

4.2.  LISP-encapsulated packet spoofing

   Like any other type of packet in the Internet, LISP encapsulated
   packets can also be spoofed.  Generally the term "spoofed packet"
   indicates a packet containing a source IP address which is not the
   one of the actual originator of the packet.  Since LISP uses
   encapsulation, this translates in two types of spoofing:

   o  EID Spoofing: The originator of the packet put in it a spoofed
      EID.  The packet will be normally encapsulated by the ITR of the
      site.

   o  RLOC Spoofing: The originator of the packet generates directly a
      LISP-encapsulated packet with a spoofed source RLOC.

   Note that the two types of spoofing are not mutually exclusive,
   rather all combinations are possible and can be used to perform
   several kind of attacks.

   The work done in the SAVI WG ([SAVI]) can be useful in mitigating
   spoofing.

   It is worth to notice that in the context of LISP, there is also the
   possibility to spoof part of the content of the LISP-specific header
   in order to perform some attacks.  The various possibilities are
   listed in the following sections, while describing the possible
   attacks.







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4.3.  Nonce

   The "Nonce" gives some basic security support by acting as a "session
   cookie", similar to what is used in L2TP
   ([I-D.ietf-l2tpext-l2tp-base]).  The use of the Nonce to mitigate
   some of the possible attacks is described in the following sections.

   There should be an explicit discussion on the limits of the Nonce?

4.4.  LISP-Cache threats

   A key component of the overall LISP architecture is the LISP-Cache.
   The LISP-Cache is the data structure that stores the bindings between
   EID and RLOC (namely the "mappings") to be used later on.  Attacks
   against this data structure can happen either when the mappings are
   first installed in the cache (see also Section 5) or by corrupting
   (poisoning) the mappings already present in the cache.

4.4.1.  LISP-Cache poisoning

   The content of the LISP-Cache can be poisoned by spoofing LISP
   encapsulated packets.  Example of LISP-Cache poisoning are:

   Fake mapping:  The cache contains entirely fake mappings that do not
         originate from an authoritative mapping server.  This can be
         achieved either through the gleaning as described in
         Section 4.6.4 or by attacking the control-plane as described in
         Section 5.

   EID Poisoning:  The EID-Prefix in a specific mapping is not owned by
         the originator of the entry.  Similarly to the previous case,
         this can be achieved either through the gleaning as described
         in Section 4.6.4 or by attacking the control-plane as described
         in Section 5.

   EID redirection/RLOC poisoning:  The EID-Prefix in the mapping is not
         binded to (located by) the set of RLOCs present in the mapping.
         This can result in traffic redirected elsewhere, eavesdropped,
         or even blackholed.  Note that not necessarily all RLOCs are
         fake/spoofed.  The attack works also if only part of the RLOCs,
         the highest priority ones, are compromised.  Again, this can be
         achieved either through the gleaning as described in
         Section 4.6.4 or by attacking the control-plane as described in
         Section 5.







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   Reachability poisoning:  The reachability information stored in the
         mapping could be poisoned, redirecting the traffic to a subset
         of the RLOCs (or even stopping it if reachability bits are all
         set to 0).  If reachability information is not verified through
         the control-plane this attack can be simply achieved by sending
         a spoofed packet with swapped or all reachability bits reset.
         The same result can be obtained by attacking the control-plane
         as described in Section 5.

   Traffic Engineering information poisoning:  The LISP protocol defines
         two attributes associated to each RLOC in order to perform
         inbound Traffic Engineering: namely priority and weight.  By
         injecting fake TE attributes, the attacker is able to break
         load balancing policies and concentrate all the traffic on one
         single RLOC or put more load on a RLOC than what is expected,
         creating congestion.  Corrupting the TE attributes can be
         achieved by attacking the control-plane as described in
         Section 5.

   Mapping TTL poisoning:  The LISP protocol associate a Time-To-Live to
         each mapping that, ones expired, allows to delete a mapping
         from the LISP-Cache (or forces a Map-Request/Map-Reply exchange
         to refresh it if still needed).  By injecting fake TTL values,
         an attacker can either shrink the Cache (using very short TTL),
         thus creating an excess of cache miss causing a DoS on the
         mapping system, or it can increase the size of the cache by
         putting very high TTL values, up to a cache overflow (see
         Section 4.4.2).  Corrupting the TTL can be achieved by
         attacking the control-plane as described in Section 5.

   If the above listed attacks succeed, the attacker has the means of
   controlling the traffic.

4.4.2.  LISP-Cache overflow

   Depending on how the LISP-cache is managed (e.g., LRU vs. LFU) and
   depending on its size, an attacker can try to fill the cache with
   fake mappings.  Once the cache is full, some mapping will be replaced
   by new fake ones, causing traffic disruption.

   This can be achieved either through the gleaning as described in
   Section 4.6.4 or by attacking the control-plane as described in
   Section 5.

   Another way to generate a LISP-Cache overflow is by injecting mapping
   with a fake and very large TTL value.  In this case the cache will
   keep a large amount of mappings ending with a completely full cache.
   This type of attack is also performed through the control-plane.



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4.5.  LISP-Database threats

   The LISP-Database data structure is meant to contain the mappings
   that are "owned" locally, i.e., the mappings that are used for
   selecting the source RLOC when encapsulating, and binding the EID-
   Prefix downstream the xTR and the RLOCs present on the xTR.

   The simplest way to fill the LISP-Database is by configuration on
   each single xTR.  This secure the data structure as much as the xTR
   itself is robust to intrusions.

   Nevertheless, part of the information contained in the mappings that
   are in the LISP-Database are subject to change in time, e.g.,
   reachability information, TE attributes, etc.  The way mappings are
   updated can open security breaches allowing attackers to poison or
   corrupt the LISP-Database in a way similar to the LISP-Cache.  These
   attacks are more related to the control-plane and will be discussed
   in Section 5.

4.6.  DoS threats

   This section tries to list all possible DoS attacks and suggests,
   when possible, mechanisms that help in mitigating the threat.

4.6.1.  SMR bit

   This DoS attack is based on sending a burst of packets with the SMR
   bit set.  In turn, this will trigger a burst of Map-Request, thus
   finally the target of the attack is the control-plane.  Several
   counter-measures can be introduced to mitigate its effects:

   o  Ignore SMR bit if nonce does not change.

   o  In the case of versioning, ignore SMR bit if version number has
      not changed.

   o  Rate limitation can be used to reduce the number of issued Map-
      Request packets.

4.6.2.  Reachability Bits

   Reachability bits should be used only as a hint, meaning that upon
   reception of a packet having Reach-Bits different from what stored in
   the mapping present in the LISP-Cache, a Map-Request is issued in
   order to have confirmation of the change.  However, with this
   behavior, an attacker can send a burst of packets with different
   reach-bits in order to trigger a burst of Map-Request packets, thus
   again attacking the control-plane.  Several counter-measures can be



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   introduced to mitigate its effects:

   o  Ignore Reach-Bits if nonce does not change.

   o  In the case of versioning, ignore Reach-bits if version number has
      not changed.

   o  Rate limitation can be used to reduce the number of issued Map-
      Request packets.

4.6.3.  Versioning

   If versioning is used, upon reception of a packet having a different
   version number, compared to the one stored in the mapping present in
   the LISP-Cache, a Map-Request is issued in order to have confirmation
   of the change.  An attacker can send a burst of packets with
   different version numbers in order to trigger a burst of Map-Request
   packets, thus again attacking the control-plane.  Several counter-
   measures can be introduced to mitigate its effects:

   o  Random version numbers can be ignored.  Map-Request is sent only
      if the new version number is the successor of the one stored in
      the LISP-Cache.  Further, since the LISP header transports both
      source version number and destination version number in order to
      trigger a Map-Request an attacker as to correctly set the two
      version numbers, limiting the range of possible attackers only to
      the ones able to eavesdrop the traffic (Man-In-The-Middle attack).
      Further details about how to filter packets with wrong version
      numbers can be found in [I-D.iannone-lisp-mapping-versioning]

   o  For the few packets that unlawfully trigger Map-Requests, Rate
      limitation can be used.

4.6.4.  Gleaning

   Gleaning is used to install in the LISP-Cache a partial mapping
   created by gleaning the source EID and source RLOC from the first
   packet of a flow.  The mapping is considered "partial" because it
   just associate an EID (/32) to one single RLOC, not the EID-Prefix
   the EID belongs to with the complete set of RLOCs.  Gleaning can be
   used to perform several different attacks:

   o  LISP-Cache poisoning: an attacker can use gleaning to install fake
      mappings in the LISP-Cache (by spoofing the EID).  See LISP-Cache
      poisoning in Section 4.4.1.

   o  LISP-Cache overflow: an attacker can use gleaning to install a
      large number of mappings in the LISP-Cache until filling it up.



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      See LISP-Cache overflow in Section 4.4.2.  Since the mapping
      installed in the LISP-Cache is not for a EID-Prefix but for a full
      /32 address, by sending a burst of packet for several different
      spoofed EIDs, an attacker could end up filling the Cache.

   o  Map-Request burst: if for each mapping installed by a gleaning a
      Map-Request is issued to retrieve the full mapping, an attacker
      can send a burst of different packets generating a burst of Map-
      Request.  Note that in this case, if Map-Request rate limitation
      is done on a per-EID basis, the attacker can easily bypass the
      rate limitation by putting different EID in the packets causing
      the gleaning.

   Possible counter-measure to mitigate this issue:

   o  The LISP-Cache poisoning and overflow issues can be solved by
      filtering spoofed EIDs on the ITR (see Section 4.2).

   o  To reduce the Map-Request burst an approach is to send a Map-
      Request only if a certain amount of traffic has been sent using
      the gleaned entry, as suggested in [Saucez09].

4.6.5.  Rate Limitation

   The Rate-Limitation policy, used to reduce the effects of some types
   of DoS attacks can be itself used for a DoS attack.  An attacker can
   send some fake packets in order to generate a burst of Map-Request
   packets that will be rate limited.  When a legitimate packet
   generates a legitimate Map-Request, this will be delayed or dropped
   due to rate limitation, causing an increased latency.

   o  Any solution for this?

4.6.6.  Mapping System and Filtering

   The use of some form of filtering can help in avoid or at least
   mitigate some types of attacks.

   On ITRs, packets should be encapsulated only if the source EID is
   effectively part of the EID-Prefix downstream the ITR.  Further,
   still on ITRs, packets should be encapsulated only if a mapping
   obtained from the mapping system is present in the LIP-Cache.

   On ETRs, packets should be decapsulated only if the destination EID
   is effectively part of the EID-Prefix downstream the ETR.  Further,
   still on ETRs, packets should be decapsulated only if a mapping for
   the source EID is present in the LISP-Cache and has been obtained
   through the mapping system (not gleaned).



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   Note that this filtering, since complete mappings need to be
   installed in both ITRs and ETRs, can introduce a higher connection
   setup latency and hence potentially more packets drops due to the
   lack of mappings in the LISP-Cache.

4.7.  Other Attacks

4.7.1.  Time-shifted attacks

   A time-shifted attack is an attack where the attacker is temporarily
   on the path between two communicating hosts.  While it is on-path,
   the attacker sends specially crafted packets or modifies packets
   exchanged by the communicating hosts in order to disturb the flow of
   packets (e.g. by performing a man in the middle attack).  An
   important issue for time shifted attacks is the duration of the
   attack once the attacker has left the path between the two
   communicating hosts.

4.7.2.  Amplification attacks

   An amplification attack occurs when an attacker sends a small packet
   with a spoofed source to a host or router that replies by sending a
   longer packet to the spoofed source.  To reduce the impact of such
   attacks, protocol designers try to avoid sending a long response
   after having received a small packet from a potentially spoofed
   source.


5.  Control-plane threats

   As pointed out in the previous sections, a good share of attacks can
   be avoided by securing the LISP control plane.

   Here the focus is not to analyze the security threats of any specific
   mapping distribution protocol.  Rather, the focus is to find a common
   set of requirements that existing or future mapping distribution
   protocols have to fulfill in order provide a sufficient level of
   security.

   The LISP Map Server protocol will instead be analyzed since it is not
   related to any specific mapping distribution protocol.

   Work and experience performed in the DNSSEC [RFC4033] and SIDR [SIDR]
   can be useful here.







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5.1.  Control-plane Requirements

   o  Authenticate the origin of a message.

   o  Identify the origin of a message.

   o  Prove that the mapping is generated by the owner of the EID or a
      third party allowed to generate such a mapping.

   o  Inject mappings in the mapping system only if the EID is allowed
      to be in the mapping system.

   o  Prove that the RLOCs associate to a mapping belong to the xTRs
      owning the mapping's EID.

   o  Low message overhead.

   o  Low traffic overhead.

   o  Low time overhead (avoid multiple RTTs).

   o  Other?

5.2.  LISP-Database coherence

   The mappings present on the LISP-Database of the different xTRs of a
   site should always be coherent.  An attacker should not be able to
   install different mappings for different xTRs.

   A simple approach is to have a central authority in the site that
   pushes all the mappings in the xTRs.  When a xTR decides to change
   something it informs the central authority, which will push the
   information to the other xTRs.

   Each xTR is authoritative on the reachability of its locator.  An xTR
   is not allowed to send updates to the central entity only if it is
   one of its RLOC.

   The central authority knows the configuration which RLOC is owned by
   which xTR.

   All of this does not prevent from securing the exchanges between the
   xTRs and the central authority in order to avoid spoofing attacks.

5.3.  LISP Map Server

   The LISP Map Server is a fundamental building block of the whole LISP
   architecture, providing an additional level of indirection allowing



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   to run mapping distribution protocols on machines different from
   xTRs.  =46rom this point of view it can be considered a security
   improvement since xTR are not directly involved in the mapping
   distribution system.

   Things to look closer:

   o  Threats concerning messages.

   o  DoS attacks.

   o  Threats concerning LISP Map Server with caching.

   o  Others?


6.  Interaction between Data- and Control-plane

   It is clear that attacks targeting the data-plane can have side-
   effects on the control-plane and vice-versa.  Furthermore, attacks to
   the control-plane can be performed leveraging on the data-plane and
   vice-versa.

   An analysis of the possible threats has been performed in the
   previous sections.  Here we just characterize them following the
   above mentioned classification.

6.1.  Data-plane side effects on the control-plane

   To be done.

6.2.  Control-plane side effects on the data-plane

   To be done.

6.3.  Data-plane threats leveraging on the control-plane

   To be done.

6.4.  Control-plane threats leveraging on the data-plane

   To be done.


7.  IANA Considerations

   This document makes no request of the IANA.




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8.  Security Considerations

   Security considerations are the core of this document and do not need
   to be further discussed in this section.


9.  Acknowledgments

   This work has been partially supported by the INFSO-ICT-216372
   TRILOGY Project (www.trilogy-project.org).


10.  Normative References

   [I-D.bagnulo-lisp-threat]
              Bagnulo, M., "Preliminary LISP Threat Analysis",
              draft-bagnulo-lisp-threat-01 (work in progress),
              July 2007.

   [I-D.iannone-lisp-mapping-versioning]
              Iannone, L., Saucez, D., and O. Bonaventure, "LISP Mapping
              Versioning", draft-iannone-lisp-mapping-versioning-00
              (work in progress), March 2009.

   [I-D.ietf-l2tpext-l2tp-base]
              Lau, J., "Layer Two Tunneling Protocol (Version 3)",
              draft-ietf-l2tpext-l2tp-base-15 (work in progress),
              December 2004.

   [I-D.ietf-lisp]
              Farinacci, D., Fuller, V., Meyer, D., and D. Lewis,
              "Locator/ID Separation Protocol (LISP)",
              draft-ietf-lisp-01 (work in progress), May 2009.

   [I-D.ietf-lisp-alt]
              Fuller, V., Farinacci, D., Meyer, D., and D. Lewis, "LISP
              Alternative Topology (LISP+ALT)", draft-ietf-lisp-alt-01
              (work in progress), May 2009.

   [I-D.ietf-lisp-ms]
              Fuller, V. and D. Farinacci, "LISP Map Server",
              draft-ietf-lisp-ms-01 (work in progress), May 2009.

   [I-D.lear-lisp-nerd]
              Lear, E., "NERD: A Not-so-novel EID to RLOC Database",
              draft-lear-lisp-nerd-04 (work in progress), April 2008.

   [I-D.meyer-lisp-cons]



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              Brim, S., "LISP-CONS: A Content distribution Overlay
              Network Service for LISP", draft-meyer-lisp-cons-04 (work
              in progress), April 2008.

   [RFC2119]  Bradner, S., "Key words for use in RFCs to Indicate
              Requirement Levels", BCP 14, RFC 2119, March 1997.

   [RFC4033]  Arends, R., Austein, R., Larson, M., Massey, D., and S.
              Rose, "DNS Security Introduction and Requirements",
              RFC 4033, March 2005.

   [SAVI]     IETF, "Source Address Validation Improvements Working
              Group", <http://tools.ietf.org/wg/savi/>.

   [SIDR]     IETF, "Secure Inter-Domain Routing Working Group",
              <http://tools.ietf.org/wg/sidr/>.

   [Saucez09]
              Saucez, D. and L. Iannone, "How to mitigate the effect of
              scans on mapping systems",  Submitted to the Trilogy
              Summer School on Future Internet.


Authors' Addresses

   Damien Saucez


   Luigi Iannone


   Olivier Bonaventure



















Saucez, et al.           Expires January 8, 2010               [Page 15]
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On Jun 22, 2009, at 22:11 , Sam Hartman wrote:

>
> After the SF IETF meeting, a group of people got together to discuss
> security of LISP and to begin work hopefully leading towards progress
> on those deliverables.
>
> How is that going?  Is there any interest in discussion in Stockholm?
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


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From luigi@net.t-labs.tu-berlin.de  Tue Jul  7 07:28:58 2009
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From: Luigi Iannone <luigi@net.t-labs.tu-berlin.de>
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References: <tsleiu3exaj.fsf@mit.edu> <4A2404D0.9080406@joelhalpern.com> <4A240834.7000106@uclouvain.be> <tslws7vdgb2.fsf@mit.edu> <4A87C591-F5C3-4180-8FBB-D71E65F00145@net.t-labs.tu-berlin.de> <tslk53u8zsu.fsf@mit.edu> <4A25846F.4030408@uclouvain.be> <FFE51CDD-F957-4B5D-88EB-210982A64935@cisco.com> <13672A25-0BF0-4FC1-B301-D3B1B91A6BD1@net.t-labs.tu-berlin.de> <7CDAF1C4-35F9-46EC-B035-B870D0A076C6@cisco.com> <4C623B66-475D-453B-A1F4-F9AA508CDD24@net.t-labs.tu-berlin.de> <3CA40DE0-7E64-44FB-865E-B6A595AA4183@cisco.com>
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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>
Subject: Re: [lisp] Map-Versioning
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On Jun 22, 2009, at 21:00 , Dino Farinacci wrote:

>> Yes, but let me push things a bit .. ;-)
>> What about splitting the nonce_version number in two parts as  
>> suggested in our draft? This is very helpful in case of  
>> unidirectional traffic.
>
> Let's focus on this part for now. Which I think is an important  
> issue. Let's frame the situation up as we have site A sending  
> packets to site B. The traffic is unidirectional to home in on your  
> point.
>
> Let's call the ITRs at site A ITR "a" and ITR "a'" and "b" and "b'"  
> are the ETRs at site B. Even if a or a' send to b or b', those LISP  
> routers at site B don't have any map-cache state for site A.
>
> When site B wants to update it's mapping database entries, neither b  
> or b' will SMR because it thinks it's not talking to anyone. Plus,  
> it has no offered data to send them, so it can't send an SMR-bit.
>
> You like the idea of putting two version numbers in so Site A can  
> tell Site B what version of B's mappings it is using.
>
> Tell me if I am ac curatively describing your position?
>
> ... (pause and think before continuing below)

After one week thinking... ;-))

Agreed
(one could argue that B can keep mappings for A just to have some more  
security checks when coupled with the nonce, but this is another story)


>
> If the LISP routers at site B see that anyone is out of date, they  
> would need to send something to the ITRs of site A. Well we don't  
> want the LISP routers of site B to send a Map-Reply because that  
> could be unsolicited. We would want the ITRs to send a Map-Request  
> over the mapping database infrastructure to get updated. But we want  
> them to do it at the rate that site B can handle the Map-Request load.
>
> So one solution is for the site B LISP routers to send a Map-Request  
> to site A with the SMR-bit set. Which in turn has the site A LISP  
> routers send a Map-Request. This would fall into the current design.
This is what we call "Map-Update-Notification" in draft-iannone-lisp- 
versioning.

>
> ... (pause and think before continuing below)

After a second week thinking.... ;-))

This is the whole point, with the current design of LISP design you  
have not mean to make B understand that A is using a stale mapping.

What you can do is to "guess" that that's the case. What if you have  
the case (I already pointed this out previously, but had no answer) A  
will stop send for a while, in the meantime the mapping changes, then  
A starts to send with the same mapping because the original TTL is not  
expired. How you deal with that?

Please Dino, do not reply that when A starts again sending traffic, B  
will send a Map-Request with SMR bit just to be sure that A will  
update the mapping.  If we use Map-Request/Map-reply for everything,  
LISP will consume the whole Internet's bandwidth in signaling.

Putting versioning into the header (meaning 2 version numbers),  
despite what you think,  does the job (and even more) in a very   
simple and elegant way.

It does not need any further space/state in the mapping, since the  
point is to give a different semantic to part of the 8 bytes used for  
the LISP header.




>
> But while we have been experimenting with RLOC reachability  
> liveness, you might think of an option where site A LISP routers  
> might be sending Map-Requests to site B routers to make sure the  
> locators the site A routers are using are up and operational. Well  
> depending on how often this is done, the keepalive replies which are  
> in the form of Map-Replies would have more up to date mapping data.

1. Active probing does not scale (you yourself pointed this out some  
time ago).

2. This approach has limited reactivity.

3. One can argue that RLOC reachability should be ensured by the  
routing infrastructure (think about fast-reroute) and not by LISP.



>
> All I'm trying to say here is that maybe using the basic Map-Request  
> and Map-Reply machinery we can solve liveness and fast mapping  
> updates at the same time.

Careful here. Your statement does not consider the overhead in terms  
of probing that you have to do in order to discover things that  
versioning tells you right away. Think about it....


Luigi


>
> Just thinking out loud,
> Dino
>
>
>


From dmm@1-4-5.net  Tue Jul  7 09:17:19 2009
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Date: Tue, 7 Jul 2009 09:17:18 -0700
From: David Meyer <dmm@1-4-5.net>
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Subject: Re: [lisp] Linux lig source code available
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	A few people have suggested that I put the source up on=20
	github. You can find it here:
=09
	http://github.com/davidmeyer/lig/tree/master

	Thanks,

	Dave

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From hartmans@mit.edu  Tue Jul  7 10:25:35 2009
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From: Sam Hartman <hartmans-ietf@mit.edu>
Date: Tue, 07 Jul 2009 13:25:41 -0400
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Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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>>>>> "Chen" == Chen Gang <phdgang@gmail.com> writes:

    Chen> Hello all,   We have posted a new draft which has
    Chen> proposed an incremental deplyable mapping service based DHT
    Chen> overlay network.  Please kindly review it.  Any comment is
    Chen> welcome.    Thanks   -Gang   A New Internet-Draft


I certainly encourage WG participants to review this draft.
Discussions of this draft are appropriate on this list for the time
being.

However, work on such a system is out of scope for this WG.  We're
only chartered to work on lisp-alt as a mapping system.

We can take ideas (although not a replacement architecture) and build
them into alt.  We can potentially ask to recharter although I suspect
we'd have to show strong justification to get approval from Jari and
the IESG to change what mapping system we're working on.

I'd particularly recommend that folks looking at DHTs in the LISP
context consider the operational aspects.  Whose servers are
responsible for data needed to reach your site?  How do you get
appropriate contracts in place to obligate them to provide you service
and to provide recourse if they do not?  How do you debug problems.  I
think this is an interesting focus for participants here when looking
at DHT-based solutions because it is very hard to get right and is
likely essential for Internet-wide deployment.

--Sam

From dino@cisco.com  Tue Jul  7 10:32:37 2009
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Cc: lisp@ietf.org
Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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Where do you suggest such drafts be presented?

Dino

On Jul 7, 2009, at 10:25 AM, Sam Hartman wrote:

>>>>>> "Chen" == Chen Gang <phdgang@gmail.com> writes:
>
>    Chen> Hello all,   We have posted a new draft which has
>    Chen> proposed an incremental deplyable mapping service based DHT
>    Chen> overlay network.  Please kindly review it.  Any comment is
>    Chen> welcome.    Thanks   -Gang   A New Internet-Draft
>
>
> I certainly encourage WG participants to review this draft.
> Discussions of this draft are appropriate on this list for the time
> being.
>
> However, work on such a system is out of scope for this WG.  We're
> only chartered to work on lisp-alt as a mapping system.
>
> We can take ideas (although not a replacement architecture) and build
> them into alt.  We can potentially ask to recharter although I suspect
> we'd have to show strong justification to get approval from Jari and
> the IESG to change what mapping system we're working on.
>
> I'd particularly recommend that folks looking at DHTs in the LISP
> context consider the operational aspects.  Whose servers are
> responsible for data needed to reach your site?  How do you get
> appropriate contracts in place to obligate them to provide you service
> and to provide recourse if they do not?  How do you debug problems.  I
> think this is an interesting focus for participants here when looking
> at DHT-based solutions because it is very hard to get right and is
> likely essential for Internet-wide deployment.
>
> --Sam
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


From jzwiebel@cisco.com  Tue Jul  7 13:10:54 2009
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Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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--Apple-Mail-12-254781012
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On Jul 6, 2009, at 5:39 AM, Chen Gang wrote:

> Hello all,
>

Your introduction talks of sending the data packet as the query,
this is a lisp data probe.  See 4.2 of draft-fuller-lisp-alt

This line:

    o  to eliminate the forwarding entries, targeted to distant customer
       ASes not behind the border routers, in the border routers;

doesn't make sense.  I don't want to have to read the whole document  
to understand
what it means.  This is the intro and needs to be clear.

There is no explanation of what Kademlia DHT (until you get to  
section 7)
is nor any reference for it. Yes one can find them in wikipedia.  Is  
that the
reference you want us to use?

FWIW: current LISP development is moving forward with ALT, ALT does not
have any forwarding entries in the P routers.  They are in the ALT.
Point being, your EID-router sounds like an ALT router except that  
rather than
storing a way to get the RLOC mapping (as when the ALT gets mapping from
the ETR) you store the complete mapping in the distributed hash.

When sending traffic along the default route to the ER, how do you  
differentiate
between an EID and an RLOC?

It isn't clear which system returns the answer to a mapping query.

Section 5 is about BGP, It isn't clear if the EIDs are carried in the  
same
BGP instance as the RLOCs.  If it is a separate instance, this is  
very similar to the ALT.

Is a MN just a data structure?  How can a data structure initiate a  
mapping query?
It would be clearer (for me at lease) if you explained how control  
packets are sent between the MS
and the ER to create the mapping-node structure.  I'm not sure I  
understand this point.

FWIW: the ALT can also be deployed incrementally.  I do not see how  
deploying
a MO-MS isn't a "imperative third-party infrastructure".

I also have to question this line, which other mechanisms?
     Note that unlike other mechanisms, no new particular devices are
    required to support backward-compatibility.


In para 6.3 The first 3 possible destinations of the LISP packet seem  
to require decap
and re-encap of packets until they finally get to the ETR.  As far as  
I can tell, this happens
with all packets sent between EIDs.  Doesn't this severely limit the  
the usefulness of your
proposal?  Doesn't this require special hardware at each of these  
points to decap/encap?


It would be nice to see the control packet formats you plan on using  
with this proposal.
I would find it very helpful in understanding what you are proposing.

thanks
--Apple-Mail-12-254781012
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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; ">
<br><div><div>On Jul 6, 2009, at 5:39 AM, Chen Gang wrote:</div><br =
class=3D"Apple-interchange-newline"><blockquote type=3D"cite"><span =
class=3D"Apple-style-span" style=3D"border-collapse: separate; color: =
rgb(0, 0, 0); font-family: Helvetica; font-size: medium; font-style: =
normal; font-variant: normal; font-weight: normal; letter-spacing: =
normal; line-height: normal; orphans: 2; text-align: auto; text-indent: =
0px; text-transform: none; white-space: normal; widows: 2; word-spacing: =
0px; -webkit-border-horizontal-spacing: 0px; =
-webkit-border-vertical-spacing: 0px; =
-webkit-text-decorations-in-effect: none; -webkit-text-size-adjust: =
auto; -webkit-text-stroke-width: 0px; "><div>Hello all,</div></span><br =
class=3D"Apple-interchange-newline"></blockquote></div><br><div>Your =
introduction talks of sending the data packet as the =
query,&nbsp;</div><div>this is a lisp data probe. &nbsp;See 4.2 of =
draft-fuller-lisp-alt</div><div><br></div><div>This line:</div><div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; font: normal normal normal 13px/normal Courier; =
min-height: 16px; "><br></div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: 13.0px Courier">&nbsp;&nbsp; =
o&nbsp; to eliminate the forwarding entries, targeted to distant =
customer</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp; &nbsp; &nbsp; ASes not behind the =
border routers, in the border routers;</font></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font class=3D"Apple-style-span" face=3D"Courier" =
size=3D"3"><span class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
class=3D"Apple-style-span" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: 12px;">doesn't make sense. &nbsp;I don't want to =
have to read the whole document to understand</span></font></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">what it means. &nbsp;This is the intro and needs to =
be clear.</div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><br></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">There is no explanation of what&nbsp;<span =
class=3D"Apple-style-span" style=3D"font-family: Courier; font-size: =
13px; ">Kademlia&nbsp;<span class=3D"Apple-style-span" =
style=3D"font-family: Helvetica; font-size: medium; ">DHT (until you get =
to section 7)</span></span></div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><span =
class=3D"Apple-style-span" style=3D"font-family: Courier; font-size: =
13px; "><span class=3D"Apple-style-span" style=3D"font-family: =
Helvetica; font-size: medium; ">is nor any reference for it.&nbsp;<span =
class=3D"Apple-style-span" style=3D"font-size: 12px; ">Yes one can find =
them in wikipedia. &nbsp;Is that =
the&nbsp;</span></span></span></div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><span =
class=3D"Apple-style-span" style=3D"font-family: Courier; font-size: =
13px; "><span class=3D"Apple-style-span" style=3D"font-family: =
Helvetica; font-size: medium; "><span class=3D"Apple-style-span" =
style=3D"font-size: 12px; ">reference you want us to =
use?</span></span></span></div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; =
"><br></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; ">FWIW: current LISP development =
is moving forward with ALT, ALT does not&nbsp;</div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">have any forwarding entries in the P routers. =
&nbsp;They are in the ALT.</div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; ">Point being, =
your EID-router sounds like an ALT router except that rather =
than</div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; ">storing a way to get the RLOC =
mapping (as when the ALT gets mapping from</div><div style=3D"margin-top: =
0px; margin-right: 0px; margin-bottom: 0px; margin-left: 0px; ">the ETR) =
you store the complete mapping in the distributed hash. &nbsp;</div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><br></div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; ">When sending =
traffic along the default route to the ER, how do you =
differentiate</div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; ">between an EID and an RLOC? =
&nbsp;</div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><br></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">It isn't clear which system returns the answer to a =
mapping query.</div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><br></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">Section 5 is about BGP, It isn't clear if the EIDs =
are carried in the same</div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; ">BGP instance =
as the RLOCs. &nbsp;If it is a separate instance, this is very similar =
to the ALT.</div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><br></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">Is a MN just a data structure? &nbsp;How can a data =
structure initiate a mapping query?</div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; ">It would be =
clearer (for me at lease) if you explained how control packets are sent =
between the MS</div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; ">and the ER to create the =
mapping-node structure. &nbsp;I'm not sure I understand this =
point.</div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><br></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">FWIW: the ALT can also be deployed incrementally. =
&nbsp;I do not see how deploying</div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; ">a MO-MS isn't =
a "<span class=3D"Apple-style-span" style=3D"font-family: Courier; =
font-size: 13px; ">imperative third-party infrastructure<span =
class=3D"Apple-style-span" style=3D"font-family: Helvetica; font-size: =
medium; ">". &nbsp;</span></span></div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; =
"><br></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; ">I also have to question this =
line,&nbsp;which&nbsp;other&nbsp;mechanisms?</div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">&nbsp;<span class=3D"Apple-style-span" =
style=3D"font-family: Courier; font-size: 13px; ">&nbsp;&nbsp; Note that =
unlike other mechanisms, no new particular devices are</span></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp; required to support =
backward-compatibility.</font></div><div><font class=3D"Apple-style-span" =
face=3D"Courier" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: 13px;"><br></span></font></div><div><font =
class=3D"Apple-style-span" face=3D"Courier" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div><div><font class=3D"Apple-style-span" =
size=3D"3"><span class=3D"Apple-style-span" style=3D"font-size: =
12px;">In para 6.3 The first 3 possible destinations of the LISP packet =
seem to require decap&nbsp;</span></font></div><div>and re-encap of =
packets until they finally get to the ETR. &nbsp;As far as I can tell, =
this happens</div><div>with all packets sent between EIDs. &nbsp;Doesn't =
this severely limit the the usefulness of your</div><div>proposal? =
&nbsp;Doesn't this require special hardware at each of these points to =
decap/encap?</div><div><br></div><div><br></div><div style=3D"margin-top: =
0px; margin-right: 0px; margin-bottom: 0px; margin-left: 0px; ">It would =
be nice to see the control packet formats you plan on using with this =
proposal.</div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; ">I would find it very helpful in =
understanding what you are proposing.</div><div style=3D"margin-top: =
0px; margin-right: 0px; margin-bottom: 0px; margin-left: 0px; =
"><br></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; ">thanks</div></div></body></html>=

--Apple-Mail-12-254781012--

From hartmans@mit.edu  Wed Jul  8 09:57:49 2009
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Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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>>>>> "Dino" == Dino Farinacci <dino@cisco.com> writes:

    Dino> Where do you suggest such drafts be presented?  Dino

I think bringing it up here is a greate first start.

People can of course approach the RRG chairs and ask for time there.

If work progresses to a point where we want to take it into the IETF, we can:

* propose rechartering this WG 
* propose a new WG
* propose  an individual draft 

The rest is just my guess.

I suspect Jari's assuming that LISP will complete using Alt and that
we'll get an experimental LISP protocol.  If we or somee other
proposal get to a point where the IETF has sufficient confidence to
standardize a solution, then I'd expect a WG to be chartered to do so.
That would seem a reasonable place to bring in input from a different
mapping technology.

From dhuo.thu@gmail.com  Wed Jul  8 18:07:09 2009
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Date: Thu, 9 Jul 2009 09:07:31 +0800
From: "Dong HUO" <dhuo.thu@gmail.com>
To: "John Zwiebel" <jzwiebel@cisco.com>
References: <36ba02b00907060839w1f20e50cre44a0cdae17d6cb7@mail.gmail.com>, <DD54A1C1-0E64-4B42-8885-0005E242CA10@cisco.com>
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Cc: "lisp@ietf.org" <lisp@ietf.org>
Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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Date: Thu, 9 Jul 2009 09:29:50 +0800
From: "Dong HUO" <dhuo.thu@gmail.com>
To: "John Zwiebel" <jzwiebel@cisco.com>
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--=====003_Dragon385054304284_=====--


From jzwiebel@cisco.com  Wed Jul  8 18:51:33 2009
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Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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On Jul 8, 2009, at 3:07 PM, Dong HUO wrote:

>
> In para 6.3 The first 3 possible destinations of the LISP packet  
> seem to require decap
> and re-encap of packets until they finally get to the ETR.  As far  
> as I can tell, this happens
> with all packets sent between EIDs.  Doesn't this severely limit  
> the the usefulness of your
> proposal?  Doesn't this require special hardware at each of these  
> points to decap/encap?
>
> [Dong]: Yes true, so the DHT MO can help reduce them after the ITR  
> gets the cache from the MO.
> But before that, it has this limitation.

FWIW:

doing the decap/reencap thing will give you the same problems that  
PIM has
with PIM registers and having packets delivered down the shared-tree  
at first
and then swapped over to the shortest-path.

Or the same problems that existed with MSDP when trying to ensure the  
fist packet
doesn't get dropped.

In the end, there is a ton of work involved in trying to get an  
implementation that can
do this, it will never work, and once the protocol is deployed, folks  
won't even notice
the dropped packets at the opening of a session.

If packets don't travel the same path, you can't control the order in  
which they are received.
It is a waste of time to try.

> It would be nice to see the control packet formats you plan on  
> using with this proposal.
> I would find it very helpful in understanding what you are proposing.
>
> [Dong]: Really appreciate your comments. I would say that our goal  
> is not to compete with ALT.
> Instead, we want to see how we could help improve the LISP from  
> another angle.
> So let's see whether there will gonna be help. :-)


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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; ">
<br><div><div>On Jul 8, 2009, at 3:07 PM, Dong HUO wrote:</div><br =
class=3D"Apple-interchange-newline"><blockquote type=3D"cite"><span =
class=3D"Apple-style-span" style=3D"border-collapse: separate; color: =
rgb(0, 0, 0); font-family: Helvetica; font-size: medium; font-style: =
normal; font-variant: normal; font-weight: normal; letter-spacing: =
normal; line-height: normal; orphans: 2; text-align: auto; text-indent: =
0px; text-transform: none; white-space: normal; widows: 2; word-spacing: =
0px; -webkit-border-horizontal-spacing: 0px; =
-webkit-border-vertical-spacing: 0px; =
-webkit-text-decorations-in-effect: none; -webkit-text-size-adjust: =
auto; -webkit-text-stroke-width: 0px; "><span class=3D"Apple-style-span" =
style=3D"font-family: Verdana; font-size: small; "><div><font =
class=3D"Apple-style-span" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: 12px; "><br class=3D"Apple-interchange-newline">In =
para 6.3 The first 3 possible destinations of the LISP packet seem to =
require decap&nbsp;</span></font></div><div>and re-encap of packets =
until they finally get to the ETR. &nbsp;As far as I can tell, this =
happens</div><div>with all packets sent between EIDs. &nbsp;Doesn't this =
severely limit the the usefulness of your</div><div>proposal? =
&nbsp;Doesn't this require special hardware at each of these points to =
decap/encap?</div><div>&nbsp;</div><div><div><font =
color=3D"#0000ff">[Dong]: Yes true, so the DHT MO can help reduce them =
after the ITR gets the cache from the MO.</font></div><div =
style=3D"text-indent: 4em; "><font color=3D"#0000ff">But before that, it =
has this =
limitation.</font><br></div></div></span></span></blockquote><div><br></di=
v><div>FWIW:</div><div><br></div><div>doing the decap/reencap thing will =
give you the same problems that PIM has&nbsp;</div><div>with PIM =
registers and having packets delivered down the shared-tree at =
first</div><div>and then swapped over to the =
shortest-path.</div><div><br></div><div>Or the same problems that =
existed with MSDP when trying to ensure the fist =
packet</div><div>doesn't get dropped.</div><div><br></div><div>In the =
end, there is a ton of work involved in trying to get an implementation =
that can&nbsp;</div><div>do this, it will never work, and once the =
protocol is deployed, folks won't even notice</div><div>the dropped =
packets at the opening of a session. &nbsp;</div><div><br></div><div>If =
packets don't travel the same path, you can't control the order in which =
they are received.</div><div>It is a waste of time to =
try.</div><br><blockquote type=3D"cite"><span class=3D"Apple-style-span" =
style=3D"border-collapse: separate; color: rgb(0, 0, 0); font-family: =
Helvetica; font-size: medium; font-style: normal; font-variant: normal; =
font-weight: normal; letter-spacing: normal; line-height: normal; =
orphans: 2; text-align: auto; text-indent: 0px; text-transform: none; =
white-space: normal; widows: 2; word-spacing: 0px; =
-webkit-border-horizontal-spacing: 0px; -webkit-border-vertical-spacing: =
0px; -webkit-text-decorations-in-effect: none; -webkit-text-size-adjust: =
auto; -webkit-text-stroke-width: 0px; "><span class=3D"Apple-style-span" =
style=3D"font-family: Verdana; font-size: small; "><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">It would be nice to see the control packet formats =
you plan on using with this proposal.</div><div style=3D"margin-top: =
0px; margin-right: 0px; margin-bottom: 0px; margin-left: 0px; ">I would =
find it very helpful in understanding what you are proposing.</div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">&nbsp;</div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font color=3D"#0000ff">[Dong]:&nbsp;Really =
appreciate&nbsp;your comments. I would say that our goal is not to =
compete with ALT.</font></div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; text-indent: =
4em; "><font color=3D"#0000ff">Instead, we want to see how we could help =
improve the LISP from another angle.</font></div><div style=3D"margin-top:=
 0px; margin-right: 0px; margin-bottom: 0px; margin-left: 0px; =
text-indent: 4em; "><font color=3D"#0000ff">So let's see whether there =
will gonna be help. =
:-)</font></div></div></span></span></blockquote></div><br></body></html>=

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Cc: "lisp@ietf.org" <lisp@ietf.org>
Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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On Jul 8, 2009, at 3:07 PM, Dong HUO wrote:

>
> It isn't clear which system returns the answer to a mapping query.
>
> [Dong]: The DHT Mapping Overaly returns it to the ITR.
>

That's like telling me the ALT returns mapping information to the ITR.
It isn't fine enough detail to understand what you mean.
The MO is a rather amorphous that consists of a lot of parts.
Which specific part sends exactly what information to the ITR in
exactly what format.

> Section 5 is about BGP, It isn't clear if the EIDs are carried in  
> the same
> BGP instance as the RLOCs.  If it is a separate instance, this is  
> very similar to the ALT.
>
> [Dong]: in the same BGP instance.
>

FWIW: the ER sounds a lot like the LISP PTR.

If you could structure your proposal in such a way that you can  
transform the
LISP-ALT into the MO, or put MO DHT functionality into the ALT (which  
carries
the EID routes in its own BGP instance), then we're talking something  
that
could be very useful.


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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; ">
<br><div><div>On Jul 8, 2009, at 3:07 PM, Dong HUO wrote:</div><br =
class=3D"Apple-interchange-newline"><blockquote type=3D"cite"><span =
class=3D"Apple-style-span" style=3D"border-collapse: separate; color: =
rgb(0, 0, 0); font-family: Helvetica; font-size: medium; font-style: =
normal; font-variant: normal; font-weight: normal; letter-spacing: =
normal; line-height: normal; orphans: 2; text-align: auto; text-indent: =
0px; text-transform: none; white-space: normal; widows: 2; word-spacing: =
0px; -webkit-border-horizontal-spacing: 0px; =
-webkit-border-vertical-spacing: 0px; =
-webkit-text-decorations-in-effect: none; -webkit-text-size-adjust: =
auto; -webkit-text-stroke-width: 0px; "><span class=3D"Apple-style-span" =
style=3D"font-family: Verdana; font-size: small; "><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><br class=3D"Apple-interchange-newline">It isn't =
clear which system returns the answer to a mapping query.</div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">&nbsp;</div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font color=3D"#0000ff">[Dong]: The DHT Mapping =
Overaly returns it to the ITR.</font></div></div><div style=3D"margin-top:=
 0px; margin-right: 0px; margin-bottom: 0px; margin-left: 0px; =
"><br></div></span></span></blockquote><div><br></div><div>That's like =
telling me the ALT returns mapping information to the ITR.</div><div>It =
isn't fine enough detail to understand what you mean.</div><div>The MO =
is a rather amorphous that consists of a lot of parts.</div><div>Which =
specific part sends exactly what information to the ITR =
in</div><div>exactly what format.</div><br><blockquote type=3D"cite"><span=
 class=3D"Apple-style-span" style=3D"border-collapse: separate; color: =
rgb(0, 0, 0); font-family: Helvetica; font-size: medium; font-style: =
normal; font-variant: normal; font-weight: normal; letter-spacing: =
normal; line-height: normal; orphans: 2; text-align: auto; text-indent: =
0px; text-transform: none; white-space: normal; widows: 2; word-spacing: =
0px; -webkit-border-horizontal-spacing: 0px; =
-webkit-border-vertical-spacing: 0px; =
-webkit-text-decorations-in-effect: none; -webkit-text-size-adjust: =
auto; -webkit-text-stroke-width: 0px; "><span class=3D"Apple-style-span" =
style=3D"font-family: Verdana; font-size: small; "><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; ">Section 5 is about BGP, It isn't clear if the EIDs =
are carried in the same</div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; ">BGP instance =
as the RLOCs. &nbsp;If it is a separate instance, this is very similar =
to the ALT.</div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; ">&nbsp;</div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font color=3D"#0000ff">[Dong]: in the same BGP =
instance.</font></div></span></span><br =
class=3D"Apple-interchange-newline"></blockquote><br>FWIW: the ER sounds =
a lot like the LISP PTR.</div><div><br></div><div>If you could structure =
your proposal in such a way that you can transform =
the&nbsp;</div><div>LISP-ALT into the MO, or put MO DHT functionality =
into the ALT (which carries</div><div>the EID routes in its own BGP =
instance), then we're talking something that</div><div>could be very =
useful.</div><br></body></html>=

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Date: Thu, 9 Jul 2009 11:30:03 +0800
From: "Dong HUO" <dhuo.thu@gmail.com>
To: "John Zwiebel" <jzwiebel@cisco.com>
References: <36ba02b00907060839w1f20e50cre44a0cdae17d6cb7@mail.gmail.com>, <DD54A1C1-0E64-4B42-8885-0005E242CA10@cisco.com>, <200907090907292188089@gmail.com>, <B79B48B4-5691-4F77-ADD0-5BDCA91FBBC5@cisco.com>
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Cc: "lisp@ietf.org" <lisp@ietf.org>
Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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On Jul 8, 2009, at 3:07 PM, Dong HUO wrote:



It isn't clear which system returns the answer to a mapping query.

[Dong]: The DHT Mapping Overaly returns it to the ITR.




That's like telling me the ALT returns mapping information to the ITR.
It isn't fine enough detail to understand what you mean.
The MO is a rather amorphous that consists of a lot of parts.
Which specific part sends exactly what information to the ITR in
exactly what format.

[Dong]: Fine, thx for your reminding, and I'm adding details in the new version. 
To be clear here, I explain: 
the initiating MN, which resides in the MS in the same AS with the ITR, would return the mapping to the ITR.
before that, during the mapping lookup process, this initiating MN initialtes the lookup and finally get the mapping.


Section 5 is about BGP, It isn't clear if the EIDs are carried in the same
BGP instance as the RLOCs.  If it is a separate instance, this is very similar to the ALT.

[Dong]: in the same BGP instance.



FWIW: the ER sounds a lot like the LISP PTR.


If you could structure your proposal in such a way that you can transform the 
LISP-ALT into the MO, or put MO DHT functionality into the ALT (which carries
the EID routes in its own BGP instance), then we're talking something that
could be very useful.

[Dong]: Sounds good to me. Good advice! I'll see.  However I think ALT and DHT MO can be seen as two styles of orgnizing
the mappings: the former is tree structure, and the latter is DHT structure. I think both can scale.  Why we choose
DHT in our solution is that DHT is easy for self organizing and redundancy.  And since it's supplementary to improve
the performance, so the latency impact due to DHT can be less stressed.

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Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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On Jul 8, 2009, at 5:30 PM, Dong HUO wrote:

>
> [Dong]: Sounds good to me. Good advice! I'll see.  However I think  
> ALT and DHT MO can be seen as two styles of orgnizing
> the mappings: the former is tree structure, and the latter is DHT  
> structure. I think both can scale.  Why we choose
> DHT in our solution is that DHT is easy for self organizing and  
> redundancy.  And since it's supplementary to improve
> the performance, so the latency impact due to DHT can be less  
> stressed.
>

No doubt.

My point was that there is a lot of description in how the ALT works.

The MO has to have connectivity of some sort between all the
systems that hold the DHT.

It isn't clear to me how that connectivity works exactly but it appears
from what I understand to be very similar to the ALT.

LISP is being developed so that the ALT can be "swapped out" and
replaced easily with something else.

MO/DHT needs to be designed so it can be "swapped in".



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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; ">
<br><div><div>On Jul 8, 2009, at 5:30 PM, Dong HUO wrote:</div><br =
class=3D"Apple-interchange-newline"><blockquote type=3D"cite"><span =
class=3D"Apple-style-span" style=3D"border-collapse: separate; color: =
rgb(0, 0, 0); font-family: Helvetica; font-size: medium; font-style: =
normal; font-variant: normal; font-weight: normal; letter-spacing: =
normal; line-height: normal; orphans: 2; text-align: auto; text-indent: =
0px; text-transform: none; white-space: normal; widows: 2; word-spacing: =
0px; -webkit-border-horizontal-spacing: 0px; =
-webkit-border-vertical-spacing: 0px; =
-webkit-text-decorations-in-effect: none; -webkit-text-size-adjust: =
auto; -webkit-text-stroke-width: 0px; "><span class=3D"Apple-style-span" =
style=3D"font-family: Verdana; font-size: small; "><div><font =
color=3D"#0000ff"><br class=3D"Apple-interchange-newline">[Dong]: Sounds =
good to me. Good advice! I'll see.&nbsp; However I think ALT and DHT MO =
can be seen as two styles of orgnizing</font></div><div =
style=3D"text-indent: 4em; "><font color=3D"#0000ff">the mappings: the =
former is tree structure, and the latter is DHT structure. I think both =
can scale.&nbsp; Why we choose</font></div><div style=3D"text-indent: =
4em; "><font color=3D"#0000ff">DHT in our solution is that DHT is =
easy&nbsp;for self organizing and redundancy.&nbsp; And since it's =
supplementary to improve</font></div><div style=3D"text-indent: 4em; =
"><font color=3D"#0000ff">the performance, so the latency impact due to =
DHT can be less stressed.</font></div></span></span><br =
class=3D"Apple-interchange-newline"></blockquote></div><br><div>No =
doubt.</div><div><br></div><div>My point was that there is a lot of =
description in how the ALT works.</div><div><br></div><div>The MO has to =
have connectivity of some sort between all the&nbsp;</div><div>systems =
that hold the DHT.</div><div><br></div><div>It isn't clear to me how =
that connectivity works exactly but it appears</div><div>from what I =
understand to be very similar to the ALT.</div><div><br></div><div>LISP =
is being developed so that the ALT can be "swapped out" =
and</div><div>replaced easily with something else. =
&nbsp;</div><div><br></div><div>MO/DHT needs to be designed so it can be =
"swapped in".</div><div><br></div><div><br></div></body></html>=

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From jnc@mercury.lcs.mit.edu  Thu Jul  9 05:57:25 2009
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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
Cc: jnc@mercury.lcs.mit.edu
Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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    > From: "Dong HUO" <dhuo.thu@gmail.com>

    >> It isn't clear if the EIDs are carried in the same BGP instance as the
    >> RLOCs. If it is a separate instance, this is very similar to the ALT.

    > [Dong]: in the same BGP instance.

I have not had the time to read your draft yet, but I wanted to ask a
question about this point: If I correctly understand what you both are saying
above, LEIDs are injected into the main BGP plane (i.e. the plane which
carries DFZ routing information).

If so, is that just for backwards compatability - i.e. for 'non-LISP' hosts
(i.e. hosts which are not 'behind' an xTR) to be able to get to 'LISP' hosts?
Or are the additional reasons (e.g. having to do with the operation of your
mapping system)?

Also, how 'granular' are those EID 'injections' - i.e. are they aggregated
into large blocks, with EIDs of machines at different locations in the
networks aggregated into a single block? And what is the 'scope' of the
advertisement - i.e. does it have to go out to the entire Internet, or only
to a reduced area?


I should explain that I have been thinking about how to (eventually) operate
LISP in a way that reduces the routing load on the 'core' BGP (i.e. the BGP
which carries the DFZ routing information), via reducing the granularity and
scope of various advertisements.

There are three kinds of addreses being advertised: 'legacy' addreses (i.e.
non-mapped IPv4 addresses), EIDs (for use by 'legacy' sites and hosts), and
RLOCs. If we have to advertise all three over global scopes, with high
granularity, we will have gained some capabilities (e.g. mobility,
multi-homing) only at the expense of greater routing overhead.

At the same time, the existence of these three classes does offer us the
opportunity, if we can reduce the granularity and scope of some of them, to
actually reduce routing overhead. What will be possible depends on exactly
what the operational scenario is - e.g. if we have entire areas of the
network which are surrounded by LISP-capable devices (which would allow us to
dispense with advertising EIDs in that scope - and potentially drop legacy
addresses as well, if we set up Proxy xTRs at the edge of that area to handle
legacy addresses).

	Noel

From dhuo.thu@gmail.com  Thu Jul  9 08:35:08 2009
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Date: Thu, 9 Jul 2009 23:35:23 +0800
From: "Dong HUO" <dhuo.thu@gmail.com>
To: "Noel Chiappa" <jnc@mercury.lcs.mit.edu>
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    > From: "Dong HUO" <dhuo.thu@gmail.com>
    >> It isn't clear if the EIDs are carried in the same BGP instance as the
    >> RLOCs. If it is a separate instance, this is very similar to the ALT.
    > [Dong]: in the same BGP instance.
I have not had the time to read your draft yet, but I wanted to ask a
question about this point: If I correctly understand what you both are saying
above, LEIDs are injected into the main BGP plane (i.e. the plane which
carries DFZ routing information).

[Dong]: Yes.

If so, is that just for backwards compatability - i.e. for 'non-LISP' hosts
(i.e. hosts which are not 'behind' an xTR) to be able to get to 'LISP' hosts?
Or are the additional reasons (e.g. having to do with the operation of your
mapping system)?

[Dong]: Yes it's for backwards compatability, but not for 'non-LISP' sites going to 'LISP' sites.
We consider the compatability for the first place, so the big difference between our solution 
and the LISP+PTR (draft-lewis-lisp-interworking) is that
in LISP+PTR, PTR is for 'non-LISP' sites going to 'LISP' sites. It's supplementary to support non-LISP sites.
However in our solution, the ER is indispensable, and the DHT MO is supplementary to reduce the tunnels.

So the deploying sequence in LISP+PTR would be: firstly several sites deploy LISP and then PTR for non-LISP sites.
However in our solution, it would be: firstly an ER is deployed in a provider AS, and after serveral ASes are deployed,
they can join the DHT MO individually and optionally for improvement.

Also, how 'granular' are those EID 'injections' - i.e. are they aggregated
into large blocks, with EIDs of machines at different locations in the
networks aggregated into a single block? And what is the 'scope' of the
advertisement - i.e. does it have to go out to the entire Internet, or only
to a reduced area?
I should explain that I have been thinking about how to (eventually) operate
LISP in a way that reduces the routing load on the 'core' BGP (i.e. the BGP
which carries the DFZ routing information), via reducing the granularity and
scope of various advertisements.
There are three kinds of addreses being advertised: 'legacy' addreses (i.e.
non-mapped IPv4 addresses), EIDs (for use by 'legacy' sites and hosts), and
RLOCs. If we have to advertise all three over global scopes, with high
granularity, we will have gained some capabilities (e.g. mobility,
multi-homing) only at the expense of greater routing overhead.

[Dong]: In this draft, the addresses from non-DFZ are all considered as EIDs (including the 'legacy addresses' you mentioned).
And we treat the address as different three kinds: EID aggregated (only have EID components), 
EID+RLOC aggregated (have EID and RLOC components, i.e., some EID blocks and RLOCs are aggregated), 
and RLOC.  The ER only holds the EID aggregated prefixes.

At the same time, the existence of these three classes does offer us the
opportunity, if we can reduce the granularity and scope of some of them, to
actually reduce routing overhead. What will be possible depends on exactly
what the operational scenario is - e.g. if we have entire areas of the
network which are surrounded by LISP-capable devices (which would allow us to
dispense with advertising EIDs in that scope - and potentially drop legacy
addresses as well, if we set up Proxy xTRs at the edge of that area to handle
legacy addresses).

[Dong]: I personally think placing PTR is difficult. As mentioned in *draft-lewis-lisp-interworking*,
"For large transit providers, deploying PTRs may attract more traffic, and therefore more evenue, from their customers",
but what if these providers compete with each other to attract the traffic, 
isn't there another problem similar to the problem caused by multi-homing 
that an aggregated prefix is divided into longer ones for being attracted?

Noel
_______________________________________________
lisp mailing list
lisp@ietf.org
https://www.ietf.org/mailman/listinfo/lisp

Thx for your attention! :-)
Best Regards!

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Date: Thu, 9 Jul 2009 23:44:52 +0800
From: "Dong HUO" <dhuo.thu@gmail.com>
To: "John Zwiebel" <jzwiebel@cisco.com>
References: <36ba02b00907060839w1f20e50cre44a0cdae17d6cb7@mail.gmail.com>, <DD54A1C1-0E64-4B42-8885-0005E242CA10@cisco.com>, <200907090907292188089@gmail.com>, <B79B48B4-5691-4F77-ADD0-5BDCA91FBBC5@cisco.com>, <200907091130018289671@gmail.com>, <173E97C8-13BB-4C93-AE68-67430DB7E18F@cisco.com>
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Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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On Jul 8, 2009, at 5:30 PM, Dong HUO wrote:



[Dong]: Sounds good to me. Good advice! I'll see.  However I think ALT and DHT MO can be seen as two styles of orgnizing
the mappings: the former is tree structure, and the latter is DHT structure. I think both can scale.  Why we choose
DHT in our solution is that DHT is easy for self organizing and redundancy.  And since it's supplementary to improve
the performance, so the latency impact due to DHT can be less stressed.




No doubt.


My point was that there is a lot of description in how the ALT works.


The MO has to have connectivity of some sort between all the 
systems that hold the DHT.


It isn't clear to me how that connectivity works exactly but it appears
from what I understand to be very similar to the ALT.


LISP is being developed so that the ALT can be "swapped out" and
replaced easily with something else.  


MO/DHT needs to be designed so it can be "swapped in".


[Dong]: Yep, we really need to make it more specific in the new version as you suggested. 
It's very helpful to discuss on your unclarities in this draft to help improve it. 
Full of Thanks!  :-)

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From: Dino Farinacci <dino@cisco.com>
To: lisp@ietf.org
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Subject: [lisp] Updates to draft-ietf-lisp-02.txt
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LISPers,

Here are a list of changes I'd like to put into draft-ietf-lisp-02.txt:

(1) Change packet format suggested on list to:

       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   L / |                       Locator Reach Bits                      |
   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   S \ |S|E| rsvd-flags|                  Nonce                        |
   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

(2) Specify how ECN bits in the TOS header are treated during  
encapsulation and decapsulation. I have integrated text contributed by  
David Black from EMC.

(3) Added Probe-bit to the Map-Request and Map-Reply packet formats.  
Will discuss at IETF. Want to make packet format changes in one step  
so it is less painful to upgrade the LISP network.

(4) Add the section "Echo Nonce Algorithm" describing how the E-bit  
(above) is used.

(5) Added a section "LISP Mobile Node Mobility" to the mobility  
section with an overview to refer to the  draft-meyer-lisp-mn-00.txt  
draft.

(6) Updated section "Prototype Plans and Status" with more current  
information.

See enclosed ID and diff file.

I am scheduled to present the 3 locator reachability algorithms I  
refer to in the draft. The only one documented at this time is the  
Echo Nonce Algorithm as promised on the list.

Thanks,
Dino/Dave/Darrel/Vince


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<pre>
Network Working Group                                       D. Farinacci
Internet-Draft                                                 V. Fuller
Intended status: Experimental                                   D. Meyer
Expires: <strike><font color="red">November 29, 2009</font></strike> <strong><font color="green">January 10, 2010</font></strong>                                       D. Lewis
                                                           cisco Systems
                                                            <strike><font color="red">May 28,</font></strike>
                                                            <strong><font color="green">July 9,</font></strong> 2009

                 Locator/ID Separation Protocol (LISP)
                         <strike><font color="red">draft-ietf-lisp-01.txt</font></strike>
                         <strong><font color="green">draft-ietf-lisp-02.txt</font></strong>

Status of this Memo

   This Internet-Draft is submitted to IETF in full conformance with the
   provisions of BCP 78 and BCP 79.

   Internet-Drafts are working documents of the Internet Engineering
   Task Force (IETF), its areas, and its working groups.  Note that
   other groups may also distribute working documents as Internet-
   Drafts.

   Internet-Drafts are draft documents valid for a maximum of six months
   and may be updated, replaced, or obsoleted by other documents at any
   time.  It is inappropriate to use Internet-Drafts as reference
   material or to cite them other than as "work in progress."

   The list of current Internet-Drafts can be accessed at
   http://www.ietf.org/ietf/1id-abstracts.txt.

   The list of Internet-Draft Shadow Directories can be accessed at
   http://www.ietf.org/shadow.html.

   This Internet-Draft will expire on <strike><font color="red">November 29, 2009.</font></strike> <strong><font color="green">January 10, 2010.</font></strong>

Copyright Notice

   Copyright (c) 2009 IETF Trust and the persons identified as the
   document authors.  All rights reserved.

   This document is subject to BCP 78 and the IETF Trust's Legal
   Provisions Relating to IETF Documents in effect on the date of
   publication of this document (http://trustee.ietf.org/license-info).
   Please review these documents carefully, as they describe your rights
   and restrictions with respect to this document.

Abstract

   This draft describes a simple, incremental, network-based protocol to
   implement separation of Internet addresses into Endpoint Identifiers
   (EIDs) and Routing Locators (RLOCs).  This mechanism requires no
   changes to host stacks and no major changes to existing database
   infrastructures.  The proposed protocol can be implemented in a
   relatively small number of routers.

   This proposal was stimulated by the problem statement effort at the
   Amsterdam IAB Routing and Addressing Workshop (RAWS), which took
   place in October 2006.

Table of Contents

   1.  Requirements Notation  . . . . . . . . . . . . . . . . . . . .  4
   2.  Introduction . . . . . . . . . . . . . . . . . . . . . . . . .  5
   3.  Definition of Terms  . . . . . . . . . . . . . . . . . . . . .  8
   4.  Basic Overview . . . . . . . . . . . . . . . . . . . . . . . . 12
     4.1.  Packet Flow Sequence . . . . . . . . . . . . . . . . . . . 14
   5.  Tunneling Details  . . . . . . . . . . . . . . . . . . . . . . 16
     5.1.  LISP IPv4-in-IPv4 Header Format  . . . . . . . . . . . . . 17
     5.2.  LISP IPv6-in-IPv6 Header Format  . . . . . . . . . . . . . 18
     5.3.  Tunnel Header Field Descriptions . . . . . . . . . . . . . 19
     5.4.  Dealing with Large Encapsulated Packets  . . . . . . . . . <strike><font color="red">20</font></strike> <strong><font color="green">21</font></strong>
       5.4.1.  A Stateless Solution to MTU Handling . . . . . . . . . 21
       5.4.2.  A Stateful Solution to MTU Handling  . . . . . . . . . 22
   6.  EID-to-RLOC Mapping  . . . . . . . . . . . . . . . . . . . . . 23
     6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats  . . . . . 23
       6.1.1.  LISP Packet Type Allocations . . . . . . . . . . . . . 25
       6.1.2.  Map-Request Message Format . . . . . . . . . . . . . . 25
       6.1.3.  EID-to-RLOC UDP Map-Request Message  . . . . . . . . . 27
       6.1.4.  Map-Reply Message Format . . . . . . . . . . . . . . . 28
       6.1.5.  EID-to-RLOC UDP Map-Reply Message  . . . . . . . . . . 31
       6.1.6.  Map-Register Message Format  . . . . . . . . . . . . . 32
     6.2.  Routing Locator Selection  . . . . . . . . . . . . . . . . 34
     6.3.  Routing Locator Reachability . . . . . . . . . . . . . . . 35
       <strong><font color="green">6.3.1.  Echo Nonce Algorithm . . . . . . . . . . . . . . . . . 37</font></strong>
     6.4.  Routing Locator Hashing  . . . . . . . . . . . . . . . . . <strike><font color="red">37</font></strike> <strong><font color="green">38</font></strong>
     6.5.  Changing the Contents of EID-to-RLOC Mappings  . . . . . . <strike><font color="red">38</font></strike> <strong><font color="green">39</font></strong>
       6.5.1.  Clock Sweep  . . . . . . . . . . . . . . . . . . . . . 39
       6.5.2.  Solicit-Map-Request (SMR)  . . . . . . . . . . . . . . <strike><font color="red">39</font></strike> <strong><font color="green">40</font></strong>
   7.  Router Performance Considerations  . . . . . . . . . . . . . . <strike><font color="red">41</font></strike> <strong><font color="green">42</font></strong>
   8.  Deployment Scenarios . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">42</font></strike> <strong><font color="green">43</font></strong>
     8.1.  First-hop/Last-hop Tunnel Routers  . . . . . . . . . . . . <strike><font color="red">43</font></strike> <strong><font color="green">44</font></strong>
     8.2.  Border/Edge Tunnel Routers . . . . . . . . . . . . . . . . <strike><font color="red">43</font></strike> <strong><font color="green">44</font></strong>
     8.3.  ISP Provider-Edge (PE) Tunnel Routers  . . . . . . . . . . <strike><font color="red">44</font></strike> <strong><font color="green">45</font></strong>
   9.  Traceroute Considerations  . . . . . . . . . . . . . . . . . . <strike><font color="red">45</font></strike> <strong><font color="green">46</font></strong>
     9.1.  IPv6 Traceroute  . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">46</font></strike> <strong><font color="green">47</font></strong>
     9.2.  IPv4 Traceroute  . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">46</font></strike> <strong><font color="green">47</font></strong>
     9.3.  Traceroute using Mixed Locators  . . . . . . . . . . . . . <strike><font color="red">46</font></strike> <strong><font color="green">47</font></strong>
   10. Mobility Considerations  . . . . . . . . . . . . . . . . . . . <strike><font color="red">48</font></strike> <strong><font color="green">49</font></strong>
     10.1. Site Mobility  . . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">48</font></strike> <strong><font color="green">49</font></strong>
     10.2. Slow Endpoint Mobility . . . . . . . . . . . . . . . . . . <strike><font color="red">48</font></strike> <strong><font color="green">49</font></strong>
     10.3. Fast Endpoint Mobility . . . . . . . . . . . . . . . . . . <strike><font color="red">48</font></strike> <strong><font color="green">49</font></strong>
     10.4. Fast Network Mobility  . . . . . . . . . . . . . . . . . . <strike><font color="red">50</font></strike> <strong><font color="green">51
     10.5. LISP Mobile Node Mobility  . . . . . . . . . . . . . . . . 51</font></strong>
   11. Multicast Considerations . . . . . . . . . . . . . . . . . . . <strike><font color="red">51</font></strike> <strong><font color="green">53</font></strong>
   12. Security Considerations  . . . . . . . . . . . . . . . . . . . <strike><font color="red">52</font></strike> <strong><font color="green">54</font></strong>
   13. Prototype Plans and Status . . . . . . . . . . . . . . . . . . <strike><font color="red">53</font></strike> <strong><font color="green">55</font></strong>
   14. References . . . . . . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">56</font></strike> <strong><font color="green">58</font></strong>
     14.1. Normative References . . . . . . . . . . . . . . . . . . . <strike><font color="red">56</font></strike> <strong><font color="green">58</font></strong>
     14.2. Informative References . . . . . . . . . . . . . . . . . . <strike><font color="red">57</font></strike> <strong><font color="green">59</font></strong>
   Appendix A.  Acknowledgments . . . . . . . . . . . . . . . . . . . <strike><font color="red">60</font></strike> <strong><font color="green">62</font></strong>
   Authors' Addresses . . . . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">61</font></strike> <strong><font color="green">63</font></strong>

1.  Requirements Notation

   The key words "MUST", "MUST NOT", "REQUIRED", "SHALL", "SHALL NOT",
   "SHOULD", "SHOULD NOT", "RECOMMENDED", "MAY", and "OPTIONAL" in this
   document are to be interpreted as described in [RFC2119].

2.  Introduction

   Many years of discussion about the current IP routing and addressing
   architecture have noted that its use of a single numbering space (the
   "IP address") for both host transport session identification and
   network routing creates scaling issues (see [CHIAPPA] and [RFC1498]).
   A number of scaling benefits would be realized by separating the
   current IP address into separate spaces for Endpoint Identifiers
   (EIDs) and Routing Locators (RLOCs); among them are:

   1.  Reduction of routing table size in the "default-free zone" (DFZ).
       Use of a separate numbering space for RLOCs will allow them to be
       assigned topologically (in today's Internet, RLOCs would be
       assigned by providers at client network attachment points),
       greatly improving aggregation and reducing the number of
       globally-visible, routable prefixes.

   2.  More cost-effective multihoming for sites that connect to
       different service providers where they can control their own
       policies for packet flow into the site without using extra
       routing table resources of core routers.

   3.  Easing of renumbering burden when clients change providers.
       Because host EIDs are numbered from a separate, non-provider-
       assigned and non-topologically-bound space, they do not need to
       be renumbered when a client site changes its attachment points to
       the network.

   4.  Traffic engineering capabilities that can be performed by network
       elements and do not depend on injecting additional state into the
       routing system.  This will fall out of the mechanism that is used
       to implement the EID/RLOC split (see Section 4).

   5.  Mobility without address changing.  Existing mobility mechanisms
       will be able to work in a locator/ID separation scenario.  It
       will be possible for a host (or a collection of hosts) to move to
       a different point in the network topology either retaining its
       home-based address or acquiring a new address based on the new
       network location.  A new network location could be a physically
       different point in the network topology or the same physical
       point of the topology with a different provider.

   This draft describes protocol mechanisms to achieve the desired
   functional separation.  For flexibility, the mechanism used for
   forwarding packets is decoupled from that used to determine EID to
   RLOC mappings.  This document covers the former.  For the later, see
   [CONS], [ALT], <strong><font color="green">[EMACS],</font></strong> [RPMD], and [NERD].  This work is in response
   to and intended to address the problem statement that came out of the
   RAWS effort [RFC4984].

   The Routing and Addressing problem statement can be found in [RADIR].

   This draft focuses on a router-based solution.  Building the solution
   into the network will facilitate incremental deployment of the
   technology on the Internet.  Note that while the detailed protocol
   specification and examples in this document assume IP version 4
   (IPv4), there is nothing in the design that precludes use of the same
   techniques and mechanisms for IPv6.  It should be possible for IPv4
   packets to use IPv6 RLOCs and for IPv6 EIDs to be mapped to IPv4
   RLOCs.

   Related work on host-based solutions is described in Shim6 [SHIM6]
   and HIP [RFC4423].  Related work on a router-based solution is
   described in [GSE].  This draft attempts to not compete or overlap
   with such solutions and the proposed protocol changes are expected to
   complement a host-based mechanism when Traffic Engineering
   functionality is desired.

   Some of the design goals of this proposal include:

   1.  Require no hardware or software changes to end-systems (hosts).

   2.  Minimize required changes to Internet infrastructure.

   3.  Be incrementally deployable.

   4.  Require no router hardware changes.

   5.  Minimize the number of routers which have to be modified.  In
       particular, most customer site routers and no core routers
       require changes.

   6.  Minimize router software changes in those routers which are
       affected.

   7.  Avoid or minimize packet loss when EID-to-RLOC mappings need to
       be performed.

   There are 4 variants of LISP, which differ along a spectrum of strong
   to weak dependence on the topological nature and possible need for
   routability of EIDs.  The variants are:

   LISP 1:  uses EIDs that are routable through the RLOC topology for
      bootstrapping EID-to-RLOC mappings.  [LISP1] This was intended as
      a prototyping mechanism for early protocol implementation.  It is
      now deprecated and should not be deployed.

   LISP 1.5:  uses EIDs that are routable for bootstrapping EID-to-RLOC
      mappings; such routing is via a separate topology.

   LISP 2:  uses EIDS that are not routable and EID-to-RLOC mappings are
      implemented within the DNS.  [LISP2]

   LISP 3:  uses non-routable EIDs that are used as lookup keys for a
      new EID-to-RLOC mapping database.  Use of Distributed Hash Tables
      [DHTs] [LISPDHT] to implement such a database would be an area to
      explore.  Other examples of new mapping database services are
      [CONS], [ALT], [RPMD], [NERD], and [APT].

   This document on LISP 1.5, and LISP 3 variants, both of which rely on
   a router-based distributed cache and database for EID-to-RLOC
   mappings.  The LISP 1.0 mechanism works but does not allow reduction
   of routing information in the default-free-zone of the Internet.  The
   LISP 2 mechanisms are put on hold and may never come to fruition
   since it is not architecturally pure to have routing depend on
   directory and directory depend on routing.  The LISP 3 mechanisms
   will be documented elsewhere but may use the control-plane options
   specified in this specification.

3.  Definition of Terms

   Provider Independent (PI) Addresses:   an address block assigned from
      a pool where blocks are not associated with any particular
      location in the network (e.g. from a particular service provider),
      and is therefore not topologically aggregatable in the routing
      system.

   Provider Assigned (PA) Addresses:   a block of IP addresses that are
      assigned to a site by each service provider to which a site
      connects.  Typically, each block is sub-block of a service
      provider CIDR block and is aggregated into the larger block before
      being advertised into the global Internet.  Traditionally, IP
      multihoming has been implemented by each multi-homed site
      acquiring its own, globally-visible prefix.  LISP uses only
      topologically-assigned and aggregatable address blocks for RLOCs,
      eliminating this demonstrably non-scalable practice.

   Routing Locator (RLOC):   the IPv4 or IPv6 address of an egress
      tunnel router (ETR).  It is the output of a EID-to-RLOC mapping
      lookup.  An EID maps to one or more RLOCs.  Typically, RLOCs are
      numbered from topologically-aggregatable blocks that are assigned
      to a site at each point to which it attaches to the global
      Internet; where the topology is defined by the connectivity of
      provider networks, RLOCs can be thought of as PA addresses.
      Multiple RLOCs can be assigned to the same ETR device or to
      multiple ETR devices at a site.

   Endpoint ID (EID):   a 32-bit (for IPv4) or 128-bit (for IPv6) value
      used in the source and destination address fields of the first
      (most inner) LISP header of a packet.  The host obtains a
      destination EID the same way it obtains an destination address
      today, for example through a DNS lookup or SIP exchange.  The
      source EID is obtained via existing mechanisms used to set a
      host's "local" IP address.  An EID is allocated to a host from an
      EID-prefix block associated with the site where the host is
      located.  An EID can be used by a host to refer to other hosts.
      EIDs MUST NOT be used as LISP RLOCs.  Note that EID blocks may be
      assigned in a hierarchical manner, independent of the network
      topology, to facilitate scaling of the mapping database.  In
      addition, an EID block assigned to a site may have site-local
      structure (subnetting) for routing within the site; this structure
      is not visible to the global routing system.  When used in
      discussions with other Locator/ID separation proposals, a LISP EID
      will be called a "LEID".  Throughout this document, any references
      to "EID" refers to an LEID.

   EID-prefix:   A power-of-2 block of EIDs which are allocated to a
      site by an address allocation authority.  EID-prefixes are
      associated with a set of RLOC addresses which make up a "database
      mapping".  EID-prefix allocations can be broken up into smaller
      blocks when an RLOC set is to be associated with the smaller EID-
      prefix.  A globally routed address block (whether PI or PA) is not
      an EID-prefix.  However, a globally routed address block may be
      removed from global routing and reused as an EID-prefix.  A site
      that receives an explicitly allocated EID-prefix may not use that
      EID-prefix as a globally routed prefix assigned to RLOCs.

   End-system:   is an IPv4 or IPv6 device that originates packets with
      a single IPv4 or IPv6 header.  The end-system supplies an EID
      value for the destination address field of the IP header when
      communicating globally (i.e. outside of its routing domain).  An
      end-system can be a host computer, a switch or router device, or
      any network appliance.

   Ingress Tunnel Router (ITR):   a router which accepts an IP packet
      with a single IP header (more precisely, an IP packet that does
      not contain a LISP header).  The router treats this "inner" IP
      destination address as an EID and performs an EID-to-RLOC mapping
      lookup.  The router then prepends an "outer" IP header with one of
      its globally-routable RLOCs in the source address field and the
      result of the mapping lookup in the destination address field.
      Note that this destination RLOC may be an intermediate, proxy
      device that has better knowledge of the EID-to-RLOC mapping closer
      to the destination EID.  In general, an ITR receives IP packets
      from site end-systems on one side and sends LISP-encapsulated IP
      packets toward the Internet on the other side.

      Specifically, when a service provider prepends a LISP header for
      Traffic Engineering purposes, the router that does this is also
      regarded as an ITR.  The outer RLOC the ISP ITR uses can be based
      on the outer destination address (the originating ITR's supplied
      RLOC) or the inner destination address (the originating hosts
      supplied EID).

   TE-ITR:   is an ITR that is deployed in a service provider network
      that prepends an additional LISP header for Traffic Engineering
      purposes.

   Egress Tunnel Router (ETR):   a router that accepts an IP packet
      where the destination address in the "outer" IP header is one of
      its own RLOCs.  The router strips the "outer" header and forwards
      the packet based on the next IP header found.  In general, an ETR
      receives LISP-encapsulated IP packets from the Internet on one
      side and sends decapsulated IP packets to site end-systems on the
      other side.  ETR functionality does not have to be limited to a
      router device.  A server host can be the endpoint of a LISP tunnel
      as well.

   TE-ETR:   is an ETR that is deployed in a service provider network
      that strips an outer LISP header for Traffic Engineering purposes.

   xTR:   is a reference to an ITR or ETR when direction of data flow is
      not part of the context description. xTR refers to the router that
      is the tunnel endpoint.  Used synonymously with the term "Tunnel
      Router".  For example, "An xTR can be located at the Customer Edge
      (CE) router", meaning both ITR and ETR functionality is at the CE
      router.

   EID-to-RLOC Cache:   a short-lived, on-demand table in an ITR that
      stores, tracks, and is responsible for timing-out and otherwise
      validating EID-to-RLOC mappings.  This cache is distinct from the
      full "database" of EID-to-RLOC mappings, it is dynamic, local to
      the ITR(s), and relatively small while the database is
      distributed, relatively static, and much more global in scope.

   EID-to-RLOC Database:   a global distributed database that contains
      all known EID-prefix to RLOC mappings.  Each potential ETR
      typically contains a small piece of the database: the EID-to-RLOC
      mappings for the EID prefixes "behind" the router.  These map to
      one of the router's own, globally-visible, IP addresses.

   Recursive Tunneling:   when a packet has more than one LISP IP
      header.  Additional layers of tunneling may be employed to
      implement traffic engineering or other re-routing as needed.  When
      this is done, an additional "outer" LISP header is added and the
      original RLOCs are preserved in the "inner" header.  Any
      references to tunnels in this specification refers to dynamic
      encapsulating tunnels and never are they staticly configured.

   Reencapsulating Tunnels:   when a packet has no more than one LISP IP
      header (two IP headers total) and when it needs to be diverted to
      new RLOC, an ETR can decapsulate the packet (remove the LISP
      header) and prepend a new tunnel header, with new RLOC, on to the
      packet.  Doing this allows a packet to be re-routed by the re-
      encapsulating router without adding the overhead of additional
      tunnel headers.  Any references to tunnels in this specification
      refers to dynamic encapsulating tunnels and never are they
      staticly configured.

   LISP Header:   a term used in this document to refer to the outer
      IPv4 or IPv6 header, a UDP header, and a LISP header, an ITR
      prepends or an ETR strips.

   Address Family Indicator (AFI):   a term used to describe an address
      encoding in a packet.  An address family currently pertains to an
      IPv4 or IPv6 address.  See [AFI] for details.

   Negative Mapping Entry:   also known as a negative cache entry, is an
      EID-to-RLOC entry where an EID-prefix is advertised or stored with
      no RLOCs.  That is, the locator-set for the EID-to-RLOC entry is
      empty or has an encoded locator count of 0.  This type of entry
      could be used to describe a prefix from a non-LISP site, which is
      explicitly not in the mapping database.  There are a set of well
      defined actions that are encoded in a Negative Map-Reply.

   Data Probe:   a LISP-encapsulated data packet where the inner header
      destination address equals the outer header destination address
      used to trigger a Map-Reply by a decapsulating ETR.  In addition,
      the original packet is decapsulated and delivered to the
      destination host.  A Data Probe is used in some of the mapping
      database designs to "probe" or request a Map-Reply from an ETR; in
      other cases, Map-Requests are used.  See each mapping database
      design for details.

4.  Basic Overview

   One key concept of LISP is that end-systems (hosts) operate the same
   way they do today.  The IP addresses that hosts use for tracking
   sockets, connections, and for sending and receiving packets do not
   change.  In LISP terminology, these IP addresses are called Endpoint
   Identifiers (EIDs).

   Routers continue to forward packets based on IP destination
   addresses.  When a packet is LISP encapsulated, these addresses are
   referred to as Routing Locators (RLOCs).  Most routers along a path
   between two hosts will not change; they continue to perform routing/
   forwarding lookups on the destination addresses.  For routers between
   the source host and the ITR as well as routers from the ETR to the
   destination host, the destination address is an EID.  For the routers
   between the ITR and the ETR, the destination address is an RLOC.

   This design introduces "Tunnel Routers", which prepend LISP headers
   on host-originated packets and strip them prior to final delivery to
   their destination.  The IP addresses in this "outer header" are
   RLOCs.  During end-to-end packet exchange between two Internet hosts,
   an ITR prepends a new LISP header to each packet and an egress tunnel
   router strips the new header.  The ITR performs EID-to-RLOC lookups
   to determine the routing path to the the ETR, which has the RLOC as
   one of its IP addresses.

   Some basic rules governing LISP are:

   o  End-systems (hosts) only send to addresses which are EIDs.  They
      don't know addresses are EIDs versus RLOCs but assume packets get
      to LISP routers, which in turn, deliver packets to the destination
      the end-system has specified.

   o  EIDs are always IP addresses assigned to hosts.

   o  LISP routers mostly deal with Routing Locator addresses.  See
      details later in Section 4.1 to clarify what is meant by "mostly".

   o  RLOCs are always IP addresses assigned to routers; preferably,
      topologically-oriented addresses from provider CIDR blocks.

   o  When a router originates packets it may use as a source address
      either an EID or RLOC.  When acting as a host (e.g. when
      terminating a transport session such as SSH, TELNET, or SNMP), it
      may use an EID that is explicitly assigned for that purpose.  An
      EID that identifies the router as a host MUST NOT be used as an
      RLOC; an EID is only routable within the scope of a site.  A
      typical BGP configuration might demonstrate this "hybrid" EID/RLOC
      usage where a router could use its "host-like" EID to terminate
      iBGP sessions to other routers in a site while at the same time
      using RLOCs to terminate eBGP sessions to routers outside the
      site.

   o  EIDs are not expected to be usable for global end-to-end
      communication in the absence of an EID-to-RLOC mapping operation.
      They are expected to be used locally for intra-site communication.

   o  EID prefixes are likely to be hierarchically assigned in a manner
      which is optimized for administrative convenience and to
      facilitate scaling of the EID-to-RLOC mapping database.  The
      hierarchy is based on a address allocation hierarchy which is not
      dependent on the network topology.

   o  EIDs may also be structured (subnetted) in a manner suitable for
      local routing within an autonomous system.

   An additional LISP header may be prepended to packets by a transit
   router (i.e.  TE-ITR) when re-routing of the path for a packet is
   desired.  An obvious instance of this would be an ISP router that
   needs to perform traffic engineering for packets in flow through its
   network.  In such a situation, termed Recursive Tunneling, an ISP
   transit acts as an additional ingress tunnel router and the RLOC it
   uses for the new prepended header would be either an TE-ETR within
   the ISP (along intra-ISP traffic engineered path) or in an TE-ETR
   within another ISP (an inter-ISP traffic engineered path, where an
   agreement to build such a path exists).

   This specification mandates that no more than two LISP headers get
   prepended to a packet.  This avoids excessive packet overhead as well
   as possible encapsulation loops.  It is believed two headers is
   sufficient, where the first prepended header is used at a site for
   Location/Identity separation and second prepended header is used
   inside a service provider for Traffic Engineering purposes.

   Tunnel Routers can be placed fairly flexibly in a multi-AS topology.
   For example, the ITR for a particular end-to-end packet exchange
   might be the first-hop or default router within a site for the source
   host.  Similarly, the egress tunnel router might be the last-hop
   router directly-connected to the destination host.  Another example,
   perhaps for a VPN service out-sourced to an ISP by a site, the ITR
   could be the site's border router at the service provider attachment
   point.  Mixing and matching of site-operated, ISP-operated, and other
   tunnel routers is allowed for maximum flexibility.  See Section 8 for
   more details.

4.1.  Packet Flow Sequence

   This section provides an example of the unicast packet flow with the
   following conditions:

   o  Source host "host1.abc.com" is sending a packet to
      "host2.xyz.com", exactly what host1 would do if the site was not
      using LISP.

   o  Each site is multi-homed, so each tunnel router has an address
      (RLOC) assigned from the service provider address block for each
      provider to which that particular tunnel router is attached.

   o  The ITR(s) and ETR(s) are directly connected to the source and
      destination, respectively.

   o  Data Probes are used to solicit Map-Replies versus using Map-
      Requests.  And the Data Probes are sent on the underlying topology
      (the LISP 1.0 variant) but could also be sent over an alternative
      topology (the LISP 1.5 variant) as it would in [ALT].

   Client host1.abc.com wants to communicate with server host2.xyz.com:

   1.  host1.abc.com wants to open a TCP connection to host2.xyz.com.
       It does a DNS lookup on host2.xyz.com.  An A/AAAA record is
       returned.  This address is used as the destination EID and the
       locally-assigned address of host1.abc.com is used as the source
       EID.  An IPv4 or IPv6 packet is built using the EIDs in the IPv4
       or IPv6 header and sent to the default router.

   2.  The default router is configured as an ITR.  The ITR must be able
       to map the EID destination to an RLOC of the ETR at the
       destination site.  The ITR prepends a LISP header to the packet,
       with one of its RLOCs as the source IPv4 or IPv6 address.  The
       destination EID from the original packet header is used as the
       destination IPv4 or IPv6 in the prepended LISP header.
       Subsequent packets, where the outer destination address is the
       destination EID will be sent until EID-to-RLOC mapping is
       learned.

   3.  In LISP 1, the packet is routed through the Internet as it is
       today.  In LISP 1.5, the packet is routed on a different topology
       which may have EID prefixes distributed and advertised in an
       aggregatable fashion.  In either case, the packet arrives at the
       ETR.  The router is configured to "punt" the packet to the
       router's processor.  See Section 7 for more details.  For LISP
       2.0 and 3.0, the behavior is not fully defined yet.

   4.  The LISP header is stripped so that the packet can be forwarded
       by the router control plane.  The router looks up the destination
       EID in the router's EID-to-RLOC database (not the cache, but the
       configured data structure of RLOCs).  An EID-to-RLOC Map-Reply
       message is originated by the ETR and is addressed to the source
       RLOC in the LISP header of the original packet (this is the ITR).
       The source RLOC of the Map-Reply is one of the ETR's RLOCs.

   5.  The ITR receives the Map-Reply message, parses the message (to
       check for format validity) and stores the mapping information
       from the packet.  This information is put in the ITR's EID-to-
       RLOC mapping cache (this is the on-demand cache, the cache where
       entries time out due to inactivity).

   6.  Subsequent packets from host1.abc.com to host2.xyz.com will have
       a LISP header prepended by the ITR using the appropriate RLOC as
       the LISP header destination address learned from the ETR.  Note,
       the packet may be sent to a different ETR than the one which
       returned the Map-Reply due to the source site's hashing policy or
       the destination site's locator-set policy.

   7.  The ETR receives these packets directly (since the destination
       address is one of its assigned IP addresses), strips the LISP
       header and forwards the packets to the attached destination host.

   In order to eliminate the need for a mapping lookup in the reverse
   direction, an ETR MAY create a cache entry that maps the source EID
   (inner header source IP address) to the source RLOC (outer header
   source IP address) in a received LISP packet.  Such a cache entry is
   termed a "gleaned" mapping and only contains a single RLOC for the
   EID in question.  More complete information about additional RLOCs
   SHOULD be verified by sending a LISP Map-Request for that EID.  Both
   ITR and the ETR may also influence the decision the other makes in
   selecting an RLOC.  See Section 6 for more details.

5.  Tunneling Details

   This section describes the LISP Data Message which defines the
   tunneling header used to encapsulate IPv4 and IPv6 packets which
   contain EID addresses.  Even though the following formats illustrate
   IPv4-in-IPv4 and IPv6-in-IPv6 encapsulations, the other 2
   combinations are supported as well.

   Since additional tunnel headers are prepended, the packet becomes
   larger and in theory can exceed the MTU of any link traversed from
   the ITR to the ETR.  It is recommended, in IPv4 that packets do not
   get fragmented as they are encapsulated by the ITR.  Instead, the
   packet is dropped and an ICMP Too Big message is returned to the
   source.

   Based on informal surveys of large ISP traffic patterns, it appears
   that most transit paths can accommodate a path MTU of at least 4470
   bytes.  The exceptions, in terms of data rate, number of hosts
   affected, or any other metric are expected to be vanishingly small.

   To address MTU concerns, mainly raised on the RRG mailing list, the
   LISP deployment process will include collecting data during its pilot
   phase to either verify or refute the assumption about minimum
   available MTU.  If the assumption proves true and transit networks
   with links limited to 1500 byte MTUs are corner cases, it would seem
   more cost-effective to either upgrade or modify the equipment in
   those transit networks to support larger MTUs or to use existing
   mechanisms for accommodating packets that are too large.

   For this reason, there is currently no plan for LISP to add any new
   additional, complex mechanism for implementing fragmentation and
   reassembly in the face of limited-MTU transit links.  If analysis
   during LISP pilot deployment reveals that the assumption of
   essentially ubiquitous, 4470+ byte transit path MTUs, is incorrect,
   then LISP can be modified prior to protocol standardization to add
   support for one of the proposed fragmentation and reassembly schemes.
   Note that two simple existing schemes are detailed in Section 5.4.

5.1.  LISP IPv4-in-IPv4 Header Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version|  IHL  |Type of Service|          Total Length         |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Identification        |Flags|      Fragment Offset    |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   OH  |  Time to Live | Protocol = 17 |         Header Checksum       |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                    Source Routing Locator                     |
    \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                 Destination Routing Locator                   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |       Source Port = xxxx      |       Dest Port = 4341        |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   L / <strike><font color="red">|S|</font></strike> <strong><font color="green">|</font></strong>                       Locator Reach Bits                      |
   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   S \ <strike><font color="red">|</font></strike> <strong><font color="green">|S|E| rsvd-flags|</font></strong>                  Nonce                        |
   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version|  IHL  |Type of Service|          Total Length         |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Identification        |Flags|      Fragment Offset    |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   IH  |  Time to Live |    Protocol   |         Header Checksum       |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                           Source EID                          |
    \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                         Destination EID                       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

5.2.  LISP IPv6-in-IPv6 Header Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version| Traffic Class |           Flow Label                  |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Payload Length        | Next Header=17|   Hop Limit   |
   v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
   O   +                                                               +
   u   |                                                               |
   t   +                     Source Routing Locator                    +
   e   |                                                               |
   r   +                                                               +
       |                                                               |
   H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   d   |                                                               |
   r   +                                                               +
       |                                                               |
   ^   +                  Destination Routing Locator                  +
   |   |                                                               |
    \  +                                                               +
     \ |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |       Source Port = xxxx      |       Dest Port = 4341        |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   L / <strike><font color="red">|S|</font></strike> <strong><font color="green">|</font></strong>                       Locator Reach Bits                      |
   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   S \ <strike><font color="red">|</font></strike> <strong><font color="green">|S|E| rsvd-flags|</font></strong>                  Nonce                        |
   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version| Traffic Class |           Flow Label                  |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   /   |         Payload Length        |  Next Header  |   Hop Limit   |
   v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
   I   +                                                               +
   n   |                                                               |
   n   +                          Source EID                           +
   e   |                                                               |
   r   +                                                               +
       |                                                               |
   H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   d   |                                                               |
   r   +                                                               +
       |                                                               |
   ^   +                        Destination EID                        +
   \   |                                                               |
    \  +                                                               +
     \ |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

5.3.  Tunnel Header Field Descriptions

   IH Header:  is the inner header, preserved from the datagram received
      from the originating host.  The source and destination IP
      addresses are EIDs.

   OH Header:  is the outer header prepended by an ITR.  The address
      fields contain RLOCs obtained from the ingress router's EID-to-
      RLOC cache.  The IP protocol number is "UDP (17)" from [RFC0768].
      The DF bit of the Flags field is set to 0.

   UDP Header:  contains a ITR selected source port when encapsulating a
      packet.  See Section 6.4 for details on the hash algorithm used
      select a source port based on the 5-tuple of the inner header.
      The destination port MUST be set to the well-known IANA assigned
      port value 4341.

   UDP Checksum:  this field field MUST be transmitted as 0 and ignored
      on receipt by the ETR.  Note, even when the UDP checksum is
      transmitted as 0 an intervening NAT device can recalculate the
      checksum and rewrite the UDP checksum field to non-zero.  For
      performance reasons, the ETR MUST ignore the checksum and MUST not
      do a checksum computation.

   UDP Length:  for an IPv4 encapsulated packet, the inner header Total
      Length plus the UDP and LISP header lengths are used.  For an IPv6
      encapsulated packet, the inner header Payload Length plus the size
      of the IPv6 header (40 bytes) plus the size of the UDP and LISP
      headers are used.  The UDP header length is 8 bytes.  The LISP
      header length is 8 bytes when no loc-reach-bit header extensions
      are used.

   <strike><font color="red">S: this is the Solicit-Map-Request (SMR) bit.  See section
      Section 6.5.2 for details.</font></strike>

   LISP Locator Reach Bits:  in the LISP header are set by an ITR to
      indicate to an ETR the reachability of the Locators in the source
      site.  Each RLOC in a Map-Reply is assigned an ordinal value from
      0 to n-1 (when there are n RLOCs in a mapping entry).  The Locator
      Reach Bits are numbered from 0 to n-1 from the right significant
      bit of the <strike><font color="red">31-bit</font></strike> <strong><font color="green">32-bit</font></strong> field.  When a bit is set to 1, the ITR is
      indicating to the ETR the RLOC associated with the bit ordinal is
      reachable.  See Section 6.3 for details on how an ITR can
      determine other ITRs at the site are reachable.  When a site has
      multiple EID-prefixes which result in multiple mappings (where
      each could have a different locator-set), the Locator Reach Bits
      setting in an encapsulated packet MUST reflect the mapping for the
      EID-prefix that the inner-header source EID address matches.

   <strong><font color="green">S: this is the Solicit-Map-Request (SMR) bit.  See section
      Section 6.5.2 for details.

   E: this is the echo-nonce-request bit.  See section Section 6.3.1 for
      details.

   rsvd-flags:  this 6-bit field is reserved for future flag use.  It is
      set to 0 on transmit and ignored on receipt.</font></strong>

   LISP Nonce:  is a <strike><font color="red">32-bit</font></strike> <strong><font color="green">24-bit</font></strong> value that is randomly generated by an ITR.
      It is used to test route-returnability when xTRs exchange
      encapsulated data packets with the SMR bit set, Data-Probe, Map-
      Request, or Map-Reply messages.

   When doing Recursive <strike><font color="red">Tunneling:</font></strike> <strong><font color="green">Tunneling or ITR/PTR encapsulation:</font></strong>

   o  The OH header Time to Live field (or Hop Limit field, in case of
      IPv6) MUST be copied from the IH header Time to Live field.

   o  The OH header Type of Service field (or the Traffic Class field,
      in the case of IPv6) SHOULD be copied from the IH header Type of
      Service field (with one caveat, see below).

   When doing Re-encapsulated Tunneling:

   o  The new OH header Time to Live field SHOULD be copied from the
      stripped OH header Time to Live field.

   o  The new OH header Type of Service field SHOULD be copied from the
      stripped OH header Type of Service field (with one caveat, see
      below)..

   Copying the TTL serves two purposes: first, it preserves the distance
   the host intended the packet to travel; second, and more importantly,
   it provides for suppression of looping packets in the event there is
   a loop of concatenated tunnels due to misconfiguration.

   <strike><font color="red">When</font></strike>

   <strong><font color="green">The ECN field occupies bits 6 and 7 of both</font></strong> the <strong><font color="green">IPv4</font></strong> Type of Service <strike><font color="red">code-points indicate</font></strike>
   <strong><font color="green">field and</font></strong> the <strike><font color="red">use</font></strike> <strong><font color="green">IPv6 Traffic Class field [RFC3168].  The ECN field
   requires special treatment in order to avoid discarding indications</font></strong>
   of <strong><font color="green">congestion [RFC3168].  ITR encapsulation MUST copy the 2-bit</font></strong> ECN
   <strike><font color="red">according</font></strike>
   <strong><font color="green">field from the inner header</font></strong> to <strike><font color="red">[RFC3168],</font></strike> the <strike><font color="red">full-functionality option for simple
   tunnels will be used when ITR encapsulating and</font></strike> <strong><font color="green">outer header.  Re-encapsulation
   MUST copy the 2-bit ECN field from the stripped outer header to the
   new outer header.  If the ECN field contains a congestion indication
   codepoint (the value is '11', the Congestion Experienced (CE)
   codepoint), then</font></strong> ETR <strike><font color="red">decapsulating.
   Therefore,</font></strike> <strong><font color="green">decapsulation MUST copy the 2-bit ECN field from
   the stripped outer header to the surviving inner header that is used
   to forward the packet beyond</font></strong> the <strong><font color="green">ETR.  These requirements preserve</font></strong>
   Congestion <strike><font color="red">Experience</font></strike> <strong><font color="green">Experienced</font></strong> (CE) <strike><font color="red">bit will be preserved</font></strike> <strong><font color="green">indications</font></strong> when a packet <strike><font color="red">traveres</font></strike> <strong><font color="green">that uses ECN
   traverses</font></strong> a LISP <strike><font color="red">tunnel.

5.4.  Dealing</font></strike> <strong><font color="green">tunnel and becomes marked</font></strong> with <strike><font color="red">Large Encapsulated Packets

   In the</font></strike> <strong><font color="green">a CE indication due
   to congestion between the tunnel endpoints.

5.4.  Dealing with Large Encapsulated Packets

   In the</font></strong> event that the MTU issues mentioned above prove to be more
   serious than expected, this section proposes 2 simple mechanisms to
   deal with large packets.  One is stateless using IP fragmentation and
   the other is stateful using Path MTU Discovery [RFC1191].

   It is left to the implementor to decide if the stateless or stateful
   mechanism should be implemented.  Both or neither can be decided as
   well since it is a local decision in the ITR regarding how to deal
   with MTU issues.  Sites can interoperate with differing mechanisms.

5.4.1.  A Stateless Solution to MTU Handling

   An ITR stateless solution to handle MTU issues is described as
   follows:

   1.  Define an architectural constant S for the maximum size of a
       packet, in bytes, an ITR would receive from a source inside of
       its site.

   2.  Define L to be the maximum size, in bytes, a packet of size S
       would be after the ITR prepends the LISP header, UDP header, and
       outer network layer header of size H.

   3.  Calculate: S + H = L.

   When an ITR receives a packet from a site-facing interface and adds H
   bytes worth of encapsulation to yield a packet size of L bytes, it
   resolves the MTU issue by first splitting the original packet into 2
   equal-sized fragments.  A LISP header is then prepended to each
   fragment.  This will ensure that the new, encapsulated packets are of
   size (S/2 + H), which is always below the effective tunnel MTU.

   When an ETR receives encapsulated fragments, it treats them as two
   individually encapsulated packets.  It strips the LISP headers then
   forwards each fragment to the destination host of the destination
   site.  The two fragments are reassembled at the destination host into
   the single IP datagram that was originated by the source host.

   This behavior is performed by the ITR when the source host originates
   a packet with the DF field of the IP header is set to 0.  When the DF
   field of the IP header is set to 1, or the packet is an IPv6 packet
   originated by the source host, the ITR will drop the packet when the
   size is greater than L, and sends an ICMP Too Big message to the
   source with a value of S, where S is (L - H).

   When the outer header encapsulation uses an IPv4 header the DF bit is
   always set to 0.

   This specification recommends that L be defined as 1500.

5.4.2.  A Stateful Solution to MTU Handling

   An ITR stateful solution to handle MTU issues is describe as follows
   and was first introduced in [OPENLISP]:

   1.  The ITR will keep state of the effective MTU for each locator per
       mapping cache entry.  The effective MTU is what the core network
       can deliver along the path between ITR and ETR.

   2.  When an encapsulated packet, with DF bit always set to 0, exceeds
       what the core network can deliver, one of the intermediate
       routers on the path will send an ICMP Too Big message to the ITR.
       The ITR will parse the ICMP message to determine which locator is
       affected by the effective MTU change and then record the new
       effective MTU value in the mapping cache entry.

   3.  When a packet is received by the ITR from a source inside of the
       site and the size of the packet is greater than the effective MTU
       stored with the mapping cache entry associated with the
       destination EID the packet is for, the ITR will send an ICMP Too
       Big message back to the source.  The packet size advertised by
       the ITR in the ICMP Too Big message is the effective MTU minus
       the LISP encapsulation length.

   Even though this mechanism is stateful, it has advantages over the
   stateless IP fragmentation mechanism, by not involving the
   destination host with reassembly of ITR fragmented packets.

6.  EID-to-RLOC Mapping

6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats

   The following new UDP packet types are used to retrieve EID-to-RLOC
   mappings:

       0                   1                   2                   3
       0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Version|  IHL  |Type of Service|          Total Length         |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Identification        |Flags|      Fragment Offset    |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |  Time to Live | Protocol = 17 |         Header Checksum       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                    Source Routing Locator                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                 Destination Routing Locator                   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |           Source Port         |         Dest Port             |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       |                         LISP Message                          |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Version| Traffic Class |           Flow Label                  |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Payload Length        | Next Header=17|   Hop Limit   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                                                               +
       |                                                               |
       +                     Source Routing Locator                    +
       |                                                               |
       +                                                               +
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                                                               +
       |                                                               |
       +                  Destination Routing Locator                  +
       |                                                               |
       +                                                               +
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |           Source Port         |         Dest Port             |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       |                         LISP Message                          |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   The LISP UDP-based messages are the Map-Request and Map-Reply
   messages.  When a UDP Map-Request is sent, the UDP source port is
   chosen by the sender and the destination UDP port number is set to
   4342.  When a UDP Map-Reply is sent, the source UDP port number is
   set to 4342 and the destination UDP port number is copied from the
   source port of either the Map-Request or the invoking data packet.

   The UDP Length field will reflect the length of the UDP header and
   the LISP Message payload.

   The UDP Checksum is computed and set to non-zero for Map-Request and
   Map-Reply messages.  It MUST be checked on receipt and if the
   checksum fails, the packet MUST be dropped.

   LISP-CONS [CONS] use TCP to send LISP control messages.  The format
   of control messages includes the UDP header so the checksum and
   length fields can be used to protect and delimit message boundaries.

   This main LISP specification is the authoritative source for message
   format definitions for the Map-Request and Map-Reply messages.

6.1.1.  LISP Packet Type Allocations

   This section will be the authoritative source for allocating LISP
   Type values.  Current allocations are:

       Reserved:                        0    b'0000'
       LISP Map-Request:                1    b'0001'
       LISP Map-Reply:                  2    b'0010'
       LISP Map-Register:               3    b'0011'
       LISP-CONS Open Message:          8    b'1000'
       LISP-CONS Push-Add Message:      9    b'1001'
       LISP-CONS Push-Delete Message:   10   b'1010'
       LISP-CONS Unreachable Message    11   b'1011'

6.1.2.  Map-Request Message Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       <strike><font color="red">|S|</font></strike>
       <strong><font color="green">|</font></strong>                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Type=1 <strike><font color="red">|A|R|</font></strike> <strong><font color="green">|A|R|P|S|</font></strong>         Reserved              | Record Count  |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Source-EID-AFI        |            ITR-AFI            |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                   Source EID Address  ...                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                Originating ITR RLOC Address ...               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |   Reserved    | EID mask-len  |        EID-prefix-AFI         |
   Rec +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                       EID-prefix  ...                         |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                   Map-Reply Record  ...                       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                     Mapping Protocol Data                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Packet field descriptions:

   <strike><font color="red">S: This is the SMR bit.  See Section 6.5.2 for details.</font></strike>

   Locator Reach Bits:  These bits MUST be set to 0 on transmission and
      ignored on receipt.  They cannot be used for indicating
      reachability because the Map-Request does not have the EID-prefix
      for the sending site so the receiver of the Map-Request cannot
      know what mapping entry to associate the reachability with.
      However, when Mapping Data is provided in the Map-Reply Record
      field, and the receiver of the Map-Request is configured to accept
      the mapping data, the R-bit per locator entry in the EID-prefix
      record is used to denote reachability.

   Nonce:  A 4-byte random value created by the sender of the Map-
      Request.

   Type:   1 (Map-Request)

   A: This is an authoritative bit, which is set to 0 for UDP-based Map-
      Requests sent by an ITR.  See other control-specific documents
      [CONS] for TCP-based Map-Requests.

   R: When set, it indicates a Map-Reply Record segment is included in
      the Map-Request.

   <strong><font color="green">P: Indicates that a Map-Request should be treated as a "piggyback"
      locator reachability probe.  The receiver should respond with a
      Map-Reply with the P bit set and the nonce copied from the Map-
      Request.  Details on this usage will be provided in a future
      version of this draft.

   S: This is the SMR bit.  See Section 6.5.2 for details.</font></strong>

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this request message.  A
      record is comprised of the portion of the packet is labeled 'Rec'
      above and occurs the number of times equal to Record count.

   Source-EID-AFI:  Address family of the "Source EID Address" field.

   ITR-AFI:  Address family of the "Originating ITR RLOC Address" field.

   Source EID Address:  This is the EID of the source host which
      originated the packet which is invoking this Map-Request.

   Originating ITR RLOC Address:  Used to give the ETR the option of
      returning a Map-Reply in the address-family of this locator.

   EID mask-len:  Mask length for EID prefix.

   EID-AFI:  Address family of EID-prefix according to [RFC2434]

   EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
      address-family.  When a Map-Request is sent by an ITR because a
      data packet is received for a destination where there is no
      mapping entry, the EID-prefix is set to the destination IP address
      of the data packet.  And the 'EID mask-len' is set to 32 or 128
      for IPv4 or IPv6, respectively.  When an xTR wants to query a site
      about the status of a mapping it already has cached, the EID-
      prefix used in the Map-Request has the same mask-length as the
      EID-prefix returned from the site when it sent a Map-Reply
      message.

   Map-Reply Record:  When the R bit is set, this field is the size of
      the "Record" field in the Map-Reply format.  This Map-Reply record
      contains the EID-to-RLOC mapping entry associated with the Source
      EID.  This allows the ETR which will receive this Map-Request to
      cache the data if it chooses to do so.

   Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
      is optional and present when the UDP length indicates there is
      enough space in the packet to include it.

6.1.3.  EID-to-RLOC UDP Map-Request Message

   A Map-Request is sent from an ITR when it needs a mapping for an EID,
   wants to test an RLOC for reachability, or wants to refresh a mapping
   before TTL expiration.  For the initial case, the destination IP
   address used for the Map-Request is the destination-EID from the
   packet which had a mapping cache lookup failure.  For the later 2
   cases, the destination IP address used for the Map-Request is one of
   the RLOC addresses from the locator-set of the map cache entry.  In
   all cases, the UDP source port number for the Map-Request message is
   a randomly allocated 16-bit value and the UDP destination port number
   is set to the well-known destination port number 4342.  A successful
   Map-Reply updates the cached set of RLOCs associated with the EID
   prefix range.

   Map-Requests can also be LISP encapsulated using UDP destination port
   4341 when sent from an ITR to a Map-Resolver.  Likewise, Map-Requests
   are LISP encapsulated the same way from a Map-Server to an ETR.
   Details on encapsulated Map-Requests and Map-Resolvers can be found
   in [LISP-MS].

   Map-Requests MUST be rate-limited.  It is recommended that a Map-
   Request for the same EID-prefix be sent no more than once per second.

6.1.4.  Map-Reply Message Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       <strike><font color="red">|x|</font></strike>
       <strong><font color="green">|</font></strong>                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Type=2 <strike><font color="red">|</font></strike> <strong><font color="green">|P|</font></strong>            Reserved                 | Record Count  |
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                          Record  TTL                          |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
   e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   c   |           Reserved            |            EID-AFI            |
   o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   r   |                          EID-prefix                           |
   d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
   | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   | o |           Unused Flags      |R|           Loc-AFI             |
   | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  \|                             Locator                           |
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                     Mapping Protocol Data                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Packet field descriptions:

   <strike><font color="red">x: Set to 0 on transmission and ignored on receipt.</font></strike>

   Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
      0 on transmission and ignored on receipt.  The locator
      reachability is encoded as the R-bit in each locator entry of each
      EID-prefix record.

   Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
      that is echoed here in the Map-Reply.

   Type:   2 (Map-Reply)

   <strong><font color="green">P: Indicates that the Map-Reply is in response to a "piggyback"
      locator reachability Map-Request.  The nonce field should contain
      a copy of the nonce value from the original Map-Request.  Details
      on this usage will be provided in a future version of this draft.</font></strong>

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this reply message.  A record
      is comprised of that portion of the packet labeled 'Record' above
      and occurs the number of times equal to Record count.

   Record TTL:  The time in minutes the recipient of the Map-Reply will
      store the mapping.  If the TTL is 0, the entry should be removed
      from the cache immediately.  If the value is 0xffffffff, the
      recipient can decide locally how long to store the mapping.

   Locator Count:  The number of Locator entries.  A locator entry
      comprises what is labeled above as 'Loc'.  The locator count can
      be 0 indicating there are no locators for the EID-prefix.

   EID mask-len:  Mask length for EID prefix.

   A: The Authoritative bit, when sent by a UDP-based message is always
      set by the ETR.  See [CONS] for TCP-based Map-Replies.

   ACT:  This 3-bit field describes negative Map-Reply actions.  These
      bits are used only when the 'Locator Count' field is set to 0.
      The action bits are encoded only in Map-Reply messages.  The
      actions defined are used by an ITR or PTR when a destination EID
      matches a negative mapping cache entry.  The current assigned
      values are:

      (0) No action:  No action is being conveyed by the sender of the
         Map-Reply message.

      (1) Natively-Forward:  The packet is not encapsulated or dropped
         but natively forwarded.

      (2) Drop:  The packet is dropped silently.

      (3) Send-Map-Request:  The packet invokes sending a Map-Request.

   EID-AFI:  Address family of EID-prefix according to [RFC2434].

   EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
      address-family.

   Priority:  each RLOC is assigned a unicast priority.  Lower values
      are more preferable.  When multiple RLOCs have the same priority,
      they may be used in a load-split fashion.  A value of 255 means
      the RLOC MUST NOT be used for unicast forwarding.

   Weight:  when priorities are the same for multiple RLOCs, the weight
      indicates how to balance unicast traffic between them.  Weight is
      encoded as a percentage of total unicast packets that match the
      mapping entry.  If a non-zero weight value is used for any RLOC,
      then all RLOCs must use a non-zero weight value and then the sum
      of all weight values MUST equal 100.  If a zero value is used for
      any RLOC weight, then all weights MUST be zero and the receiver of
      the Map-Reply will decide how to load-split traffic.  See
      Section 6.4 for a suggested hash algorithm to distribute load
      across locators with same priority and equal weight values.  When
      a single RLOC exists in a mapping entry, the weight value MUST be
      set to 100 and ignored on receipt.

   M Priority:  each RLOC is assigned a multicast priority used by an
      ETR in a receiver multicast site to select an ITR in a source
      multicast site for building multicast distribution trees.  A value
      of 255 means the RLOC MUST NOT be used for joining a multicast
      distribution tree.

   M Weight:  when priorities are the same for multiple RLOCs, the
      weight indicates how to balance building multicast distribution
      trees across multiple ITRs.  The weight is encoded as a percentage
      of total number of trees build to the source site identified by
      the EID-prefix.  If a non-zero weight value is used for any RLOC,
      then all RLOCs must use a non-zero weight value and then the sum
      of all weight values MUST equal 100.  If a zero value is used for
      any RLOC weight, then all weights MUST be zero and the receiver of
      the Map-Reply will decide how to distribute multicast state across
      ITRs.

   Unused Flags:  set to 0 when sending and ignored on receipt.

   R: when this bit is set, the locator is known to be reachable from
      the Map-Reply sender's perspective.  When there is a single
      mapping record in the message, the R-bit for each locator must
      have a consistent setting with the bitfield setting of the 'Loc
      Reach Bits' field in the early part of the header.  When there are
      multiple mapping records in the message, the 'Loc Reach Bits'
      field is set to 0.

   Locator:  an IPv4 or IPv6 address (as encoded by the 'Loc-AFI' field)
      assigned to an ETR or router acting as a proxy replier for the
      EID-prefix.  Note that the destination RLOC address MAY be an
      anycast address.  A source RLOC can be an anycast address as well.
      The source or destination RLOC MUST NOT be the broadcast address
      (255.255.255.255 or any subnet broadcast address known to the
      router), and MUST NOT be a link-local multicast address.  The
      source RLOC MUST NOT be a multicast address.  The destination RLOC
      SHOULD be a multicast address if it is being mapped from a
      multicast destination EID.

   Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
      is optional and present when the UDP length indicates there is
      enough space in the packet to include it.

6.1.5.  EID-to-RLOC UDP Map-Reply Message

   When a Data Probe packet or a Map-Request triggers a Map-Reply to be
   sent, the RLOCs associated with the EID-prefix matched by the EID in
   the original packet destination IP address field will be returned.
   The RLOCs in the Map-Reply are the globally-routable IP addresses of
   the ETR but are not necessarily reachable; separate testing of
   reachability is required.

   Note that a Map-Reply may contain different EID-prefix granularity
   (prefix + length) than the Map-Request which triggers it.  This might
   occur if a Map-Request were for a prefix that had been returned by an
   earlier Map-Reply.  In such a case, the requester updates its cache
   with the new prefix information and granularity.  For example, a
   requester with two cached EID-prefixes that are covered by a Map-
   Reply containing one, less-specific prefix, replaces the entry with
   the less-specific EID-prefix.  Note that the reverse, replacement of
   one less-specific prefix with multiple more-specific prefixes, can
   also occur but not by removing the less-specific prefix rather by
   adding the more-specific prefixes which during a lookup will override
   the less-specific prefix.

   Replies SHOULD be sent for an EID-prefix no more often than once per
   second to the same requesting router.  For scalability, it is
   expected that aggregation of EID addresses into EID-prefixes will
   allow one Map-Reply to satisfy a mapping for the EID addresses in the
   prefix range thereby reducing the number of Map-Request messages.

   The addresses for a encapsulated data packets or Map-Request message
   are swapped and used for sending the Map-Reply.  The UDP source and
   destination ports are swapped as well.  That is, the source port in
   the UDP header for the Map-Reply is set to the well-known UDP port
   number 4342.

   Map-Reply records can have an empty locator-set.  This type of a Map-
   Reply is called a Negative Map-Reply.  Negative Map-Replies convey
   special actions by the sender to the ITR or PTR which have solicited
   the Map-Reply.  There are two primary applications for Negative Map-
   Replies.  The first is for a Map-Resolver to instruct an ITR or PTR
   when a destination is for a LISP site versus a non-LISP site.  And
   the other is to source quench Map-Requests which are sent for non-
   allocated EIDs.

6.1.6.  Map-Register Message Format

   The usage details of the Map-Register message can be found in
   specification [LISP-MS].  This section solely defines the message
   format.

   The message is sent in a UDP with a destination UDP port 4342 and a
   randomly selected UDP port number.  Before an IPv4 or IPv6 network
   layer header is prepended, an AH header is prepended to carry
   authentication information.  The format conforms to the IPsec
   specification [RFC2402].  The Map-Register message will use transport
   mode by setting the IP protocol number field or the IPv6 next-header
   field to 51.

   The AH header from [RFC2402] is:

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       | Next Header   |  Payload Len  |          RESERVED             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                 Security Parameters Index (SPI)               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                    Sequence Number Field                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                Authentication Data (variable)                 |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   The Next Header field is set to UDP.  The SPI field is set to 0
   (since no Security Association or Key Exchange protocol is being
   used).  The Sequence Number is a randomly chosen value by the sender.
   The Authentication Data is 16 bytes and holds a MD5 HMAC.

   The Map-Register message format is:

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       <strike><font color="red">|x|</font></strike>
       <strong><font color="green">|</font></strong>                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Type=3 |P|            Reserved                 | Record Count  |
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                          Record  TTL                          |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
   e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   c   |           Reserved            |            EID-AFI            |
   o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   r   |                          EID-prefix                           |
   d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
   | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   | o |           Unused Flags      |R|           Loc-AFI             |
   | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  \|                             Locator                           |
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Packet field descriptions:

   <strike><font color="red">x: Set to 0 on transmission and ignored on receipt.</font></strike>

   Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
      0 on transmission and ignored on receipt.  The locator
      reachability is encoded as the R-bit in each locator entry of each
      EID-prefix record.

   Nonce:  The Nonce field is set to 0 in Map-Register messages.

   Type:   3 (Map-Register)

   P: <strike><font color="red">This is the Proxy-Map-Reply bit.  When set</font></strike> <strong><font color="green">Set</font></strong> to <strike><font color="red">1, the</font></strike> <strong><font color="green">1 by an</font></strong> ETR <strike><font color="red">sending</font></strike> <strong><font color="green">which sends</font></strong> a Map-Register <strike><font color="red">is asking</font></strike> <strong><font color="green">message requesting
      for</font></strong> the Map-Server to <strong><font color="green">proxy Map-Reply.  The Map-Server will</font></strong> send
      non-authoritative Map-Replies on behalf of the ETR.  <strong><font color="green">Details on
      this usage will be provided in a future version of this draft.</font></strong>

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this Map-Register message.  A
      record is comprised of that portion of the packet labeled 'Record'
      above and occurs the number of times equal to Record count.

   The definition of the rest of the Map-Register can be found in the
   Map-Reply section.

6.2.  Routing Locator Selection

   Both client-side and server-side may need control over the selection
   of RLOCs for conversations between them.  This control is achieved by
   manipulating the Priority and Weight fields in EID-to-RLOC Map-Reply
   messages.  Alternatively, RLOC information may be gleaned from
   received tunneled packets or EID-to-RLOC Map-Request messages.

   The following enumerates different scenarios for choosing RLOCs and
   the controls that are available:

   o  Server-side returns one RLOC.  Client-side can only use one RLOC.
      Server-side has complete control of the selection.

   o  Server-side returns a list of RLOC where a subset of the list has
      the same best priority.  Client can only use the subset list
      according to the weighting assigned by the server-side.  In this
      case, the server-side controls both the subset list and load-
      splitting across its members.  The client-side can use RLOCs
      outside of the subset list if it determines that the subset list
      is unreachable (unless RLOCs are set to a Priority of 255).  Some
      sharing of control exists: the server-side determines the
      destination RLOC list and load distribution while the client-side
      has the option of using alternatives to this list if RLOCs in the
      list are unreachable.

   o  Server-side sets weight of 0 for the RLOC subset list.  In this
      case, the client-side can choose how the traffic load is spread
      across the subset list.  Control is shared by the server-side
      determining the list and the client determining load distribution.
      Again, the client can use alternative RLOCs if the server-provided
      list of RLOCs are unreachable.

   o  Either side (more likely on the server-side ETR) decides not to
      send a Map-Request.  For example, if the server-side ETR does not
      send Map-Requests, it gleans RLOCs from the client-side ITR,
      giving the client-side ITR responsibility for bidirectional RLOC
      reachability and preferability.  Server-side ETR gleaning of the
      client-side ITR RLOC is done by caching the inner header source
      EID and the outer header source RLOC of received packets.  The
      client-side ITR controls how traffic is returned and can alternate
      using an outer header source RLOC, which then can be added to the
      list the server-side ETR uses to return traffic.  Since no
      Priority or Weights are provided using this method, the server-
      side ETR must assume each client-side ITR RLOC uses the same best
      Priority with a Weight of zero.  In addition, since EID-prefix
      encoding cannot be conveyed in data packets, the EID-to-RLOC cache
      on tunnel routers can grow to be very large.

   RLOCs that appear in EID-to-RLOC Map-Reply messages are considered
   reachable.  The Map-Reply and the database mapping service does not
   provide any reachability status for Locators.  This is done outside
   of the mapping service.  See next section for details.

6.3.  Routing Locator Reachability

   There are 4 methods for determining when a Locator is either
   reachable or has become unreachable:

   1.  Locator reachability is determined by an ETR by examining the
       Loc-Reach-Bits from a LISP header of a encapsulated data packet
       which is provided by an ITR when an ITR encapsulates data.

   2.  Locator unreachability is determined by an ITR by receiving ICMP
       Network or Host Unreachable messages.

   3.  Locator unreachability can also be determined by an BGP-enabled
       ITR when there is no prefix matching a Locator address from the
       BGP RIB.

   4.  Locator unreachability is determined when a host sends an ICMP
       Port Unreachable message.  This occurs when an ITR may not use
       any methods of interworking. one which is describe in [INTERWORK]
       and the encapsulated data packet is received by a host at the
       destination non-LISP site.

   5.  Locator reachability is determined by receiving a Map-Reply
       message from a ETR's Locator address in response to a previously
       sent Map-Request.

   6.  Locator reachability can also be determined by receiving packets
       encapsulated by the ITR assigned to the locator address.

   When determining Locator reachability by examining the Loc-Reach-Bits
   from the LISP encapsulate data packet, an ETR will receive up to date
   status from the ITR closest to the Locators at the source site.  The
   ITRs at the source site can determine reachability when running their
   IGP at the site.  When the ITRs are deployed on CE routers, typically
   a default route is injected into the site's IGP from each of the
   ITRs.  If an ITR goes down, the CE-PE link goes down, or the PE
   router goes down, the CE router withdraws the default route.  This
   allows the other ITRs at the site to determine one of the Locators
   has gone unreachable.

   The Locators listed in a Map-Reply are numbered with ordinals 0 to
   n-1.  The Loc-Reach-Bits in a LISP Data Message are numbered from 0
   to n-1 starting with the least significant bit numbered as 0.  So,
   for example, if the ITR with locator listed as the 3rd Locator
   position in the Map-Reply goes down, all other ITRs at the site will
   have the 3rd bit from the right cleared (the bit that corresponds to
   ordinal 2).

   When an ETR decapsulates a packet, it will look for a change in the
   Loc-Reach-Bits value.  When a bit goes from 1 to 0, the ETR will
   refrain from encapsulating packets to the Locator that has just gone
   unreachable.  It can start using the Locator again when the bit that
   corresponds to the Locator goes from 0 to 1.  Loc-Reach-Bits are
   associated with a locator-set per EID-prefix.  Therefore, when a
   locator becomes unreachable, the loc-reach-bit that corresponds to
   that locator's position in the list returned by the last Map-Reply
   will be set to zero for that particular EID-prefix.

   When ITRs at the site are not deployed in CE routers, the IGP can
   still be used to determine the reachability of Locators provided they
   are injected a stub links into the IGP.  This is typically done when
   a /32 address is configured on a loopback interface.

   When ITRs receive ICMP Network or Host Unreachable messages as a
   method to determine unreachability, they will refrain from using
   Locators which are described in Locator lists of Map-Replies.
   However, using this approach is unreliable because many network
   operators turn off generation of ICMP Unreachable messages.

   If an ITR does receive an ICMP Network or Host Unreachable message,
   it MAY originate its own ICMP Unreachable message destined for the
   host that originated the data packet the ITR encapsulated.

   Also, BGP-enabled ITRs can unilaterally examine the BGP RIB to see if
   a locator address from a locator-set in a mapping entry matches a
   prefix.  If it does not find one and BGP is running in the Default
   Free Zone (DFZ), it can decide to not use the locator even though the
   Loc-Reach-Bits indicate the locator is up.  In this case, the path
   from the ITR to the ETR that is assigned the locator is not
   available.  More details are in [LOC-ID-ARCH].

   Optionally, an ITR can send a Map-Request to a Locator and if a Map-
   Reply is returned, reachability of the Locator has been determined.
   Obviously, sending such probes increases the number of control
   messages originated by tunnel routers for active flows, so Locators
   are assumed to be reachable when they are advertised.

   This assumption does create a dependency: Locator unreachability is
   detected by the receipt of ICMP Host Unreachable messages.  When an
   Locator has been determined to be unreachable, it is not used for
   active traffic; this is the same as if it were listed in a Map-Reply
   with priority 255.

   The ITR can test the reachability of the unreachable Locator by
   sending periodic Requests.  Both Requests and Replies MUST be rate-
   limited.  Locator reachability testing is never done with data
   packets since that increases the risk of packet loss for end-to-end
   sessions.

   When an ETR <strike><font color="red">is decapsulating packets,</font></strike> <strong><font color="green">decapsulates a packet,</font></strong> it <strike><font color="red">can be sure</font></strike> <strong><font color="green">knows</font></strong> that <strike><font color="red">the path</font></strike> <strong><font color="green">it is reachable</font></strong> from
   the encapsulating ITR <strong><font color="green">because that</font></strong> is <strike><font color="red">available.  The</font></strike> <strong><font color="green">how the packet arrived.  In
   most cases, the</font></strong> ETR can <strong><font color="green">also reach the ITR but cannot</font></strong> assume <strong><font color="green">this to
   be true due to</font></strong> the <strong><font color="green">possibility of</font></strong> path
   <strike><font color="red">from</font></strike> <strong><font color="green">assymetry.  In</font></strong> the <strike><font color="red">ETR</font></strike> <strong><font color="green">presence of
   unidirectional traffic flow from an ITR</font></strong> to <strong><font color="green">an ETR,</font></strong> the ITR <strong><font color="green">should not
   use the lack of return traffic as an indication that the ETR</font></strong> is <strike><font color="red">also reachable.  Even if</font></strike>
   <strong><font color="green">unreachable.  Instead, it must use an alternate mechanisms to
   determine reachability.

6.3.1.  Echo Nonce Algorithm

   When</font></strong> there is
   <strike><font color="red">asymmetric routing</font></strike> <strong><font color="green">bidirectional data flow between a pair of locators, a
   simple mechanism called "nonce echoing" can be used to determine
   reachability between an ITR and ETR.  When an ITR wants to solicit a
   nonce echo, it sets the E-bit and places a 24-bit nonce</font></strong> in the <strike><font color="red">core,</font></strike> <strong><font color="green">LISP
   header of</font></strong> the <strike><font color="red">first-hop</font></strike> <strong><font color="green">next encapsulated data packet.

   When this packet is received by the ETR, the encapsulated packet is
   forwarded as normal.  When the ETR next sends a data packet to the
   ITR, it includes the nonce received earlier.  The ITR sees this "echo
   nonce reply"</font></strong> and <strike><font color="red">last-hop ASes will
   be</font></strike> <strong><font color="green">knows</font></strong> the <strike><font color="red">same</font></strike> <strong><font color="green">path to and from the ETR is up.

   The time the ITR waits</font></strong> for <strike><font color="red">both directions of traffic since</font></strike> the <strong><font color="green">echoed nonce before it determines the
   path is down is variable and a choice left for the implementation.

   If the ITR is receiving packets from the ETR but does not see the
   nonce echoed, then the path to the ETR is down.  This decision may be
   overridden by other</font></strong> locator
   <strike><font color="red">addresses</font></strike> <strong><font color="green">reachability algorithms.  Once the ITR
   determines the path to the ETR is down it can switch to another
   locator for that EID-prefix.

   Note that "ITR" and "ETR"</font></strong> are <strike><font color="red">out of</font></strike> <strong><font color="green">relative terms here.  Both devices must
   be implementing both ITR and ETR functionality for</font></strong> the <strike><font color="red">PA blocks</font></strike> <strong><font color="green">echo nonce
   mechanism to operate.

   The ITR and ETR may both go into echo-nonce-request state at the same
   time.  The number</font></strong> of <strike><font color="red">each.</font></strike> <strong><font color="green">packets sent or the time during which echo nonce
   requests are sent is an implementation specific setting.</font></strong>  However,
   <strong><font color="green">when an ITR is in echo-nonce-request state, it can echo the ETR's
   nonce in the next packet that it encapsulates and then subsequently,
   continue sending echo-nonce-request packets.

   This mechanism does not completely solve the forward path
   reachability problem as traffic may be unidirectional.  That is,</font></strong> the <strike><font color="red">assumption</font></strike>
   <strong><font color="green">ETR receiving traffic at a site may not</font></strong> may not <strike><font color="red">always be valid, so this mechanism should</font></strike> be <strike><font color="red">used as a best-
   effort indication that a working path exists between the sites.  In</font></strike> the <strike><font color="red">event of unidirectional traffic from</font></strike> <strong><font color="green">same device as</font></strong>
   an ITR <strong><font color="green">which transmits traffic from that site or the site</font></strong> to <strike><font color="red">an ETR, an</font></strike> <strong><font color="green">site
   traffic is unidirectional so there is no</font></strong> ITR
   <strike><font color="red">should not conclude</font></strike> <strong><font color="green">returning traffic.

   Note</font></strong> that <strike><font color="red">a</font></strike> <strong><font color="green">other</font></strong> locator <strike><font color="red">is unreachable since it is not
   receiving packets, but use alternate</font></strike> <strong><font color="green">reachability</font></strong> mechanisms <strike><font color="red">described above to
   determine reachability.</font></strike> <strong><font color="green">are being researched.</font></strong>

6.4.  Routing Locator Hashing

   When an ETR provides an EID-to-RLOC mapping in a Map-Reply message to
   a requesting ITR, the locator-set for the EID-prefix may contain
   different priority values for each locator address.  When more than
   one best priority locator exists, the ITR can decide how to load
   share traffic against the corresponding locators.

   The following hash algorithm may be used by an ITR to select a
   locator for a packet destined to an EID for the EID-to-RLOC mapping:

   1.  Either a source and destination address hash can be used or the
       traditional 5-tuple hash which includes the source and
       destination addresses, source and destination TCP, UDP, or SCTP
       port numbers and the IP protocol number field or IPv6 next-
       protocol fields of a packet a host originates from within a LISP
       site.  When a packet is not a TCP, UDP, or SCTP packet, the
       source and destination addresses only from the header are used to
       compute the hash.

   2.  Take the hash value and divide it by the number of locators
       stored in the locator-set for the EID-to-RLOC mapping.

   3.  The remainder will be yield a value of 0 to "number of locators
       minus 1".  Use the remainder to select the locator in the
       locator-set.

   Note that when a packet is LISP encapsulated, the source port number
   in the outer UDP header needs to be set.  Selecting a random value
   allows core routers which are attached to Link Aggregation Groups
   (LAGs) to load-split the encapsulated packets across member links of
   such LAGs.  Otherwise, core routers would see a single flow, since
   packets have a source address of the ITR, for packets which are
   originated by different EIDs at the source site.  A suggested setting
   for the source port number computed by an ITR is a 5-tuple hash
   function on the inner header, as described above.

6.5.  Changing the Contents of EID-to-RLOC Mappings

   Since the LISP architecture uses a caching scheme to retrieve and
   store EID-to-RLOC mappings, the only way an ITR can get a more up-to-
   date mapping is to re-request the mapping.  However, the ITRs do not
   know when the mappings change and the ETRs do not keep track of who
   requested its mappings.  For scalability reasons, we want to maintain
   this approach but need to provide a way for ETRs change their
   mappings and inform the sites that are currently communicating with
   the ETR site using such mappings.

   When a locator record is added to the end of a locator-set, it is
   easy to update mappings.  We assume new mappings will maintain the
   same locator ordering as the old mapping but just have new locators
   appended to the end of the list.  So some ITRs can have a new mapping
   while other ITRs have only an old mapping that is used until they
   time out.  When an ITR has only an old mapping but detects bits set
   in the loc-reach-bits that correspond to locators beyond the list it
   has cached, it simply ignores them.

   When a locator record is removed from a locator-set, ITRs that have
   the mapping cached will not use the removed locator because the xTRs
   will set the loc-reach-bit to 0.  So even if the locator is in the
   list, it will not be used.  For new mapping requests, the xTRs can
   set the locator address to 0 as well as setting the corresponding
   loc-reach-bit to 0.  This forces ITRs with old or new mappings to
   avoid using the removed locator.

   If many changes occur to a mapping over a long period of time, one
   will find empty record slots in the middle of the locator-set and new
   records appended to the locator-set.  At some point, it would be
   useful to compact the locator-set so the loc-reach-bit settings can
   be efficiently packed.

   We propose here two approaches for locator-set compaction, one
   operational and the other a protocol mechanism.  The operational
   approach uses a clock sweep method.  The protocol approach uses the
   concept of Solicit-Map-Requests.

6.5.1.  Clock Sweep

   The clock sweep approach uses planning in advance and the use of
   count-down TTLs to time out mappings that have already been cached.
   The default setting for an EID-to-RLOC mapping TTL is 24 hours.  So
   there is a 24 hour window to time out old mappings.  The following
   clock sweep procedure is used:

   1.  24 hours before a mapping change is to take effect, a network
       administrator configures the ETRs at a site to start the clock
       sweep window.

   2.  During the clock sweep window, ETRs continue to send Map-Reply
       messages with the current (unchanged) mapping records.  The TTL
       for these mappings is set to 1 hour.

   3.  24 hours later, all previous cache entries will have timed out,
       and any active cache entries will time out within 1 hour.  During
       this 1 hour window the ETRs continue to send Map-Reply messages
       with the current (unchanged) mapping records with the TTL set to
       1 minute.

   4.  At the end of the 1 hour window, the ETRs will send Map-Reply
       messages with the new (changed) mapping records.  So any active
       caches can get the new mapping contents right away if not cached,
       or in 1 minute if they had the mapping cached.

6.5.2.  Solicit-Map-Request (SMR)

   Soliciting a Map-Request is a selective way for xTRs, at the site
   where mappings change, to control the rate they receive requests for
   Map-Reply messages.  SMRs are also used to tell remote ITRs to update
   the mappings they have cached.

   Since the xTRs don't keep track of remote ITRs that have cached their
   mappings, they can not tell exactly who needs the new mapping
   entries.  So an xTR will solicit Map-Requests from sites it is
   currently sending encapsulated data to, and only from those sites.
   The xTRs can locally decide the algorithm for how often and to how
   many sites it sends SMR messages.

   An SMR message is simply a bit set in an encapsulated data packet
   (and a Map-Request message).  When an ETR at a remote site
   decapsulates a data packet that has the SMR bit set, it can tell that
   a new Map-Request message is being solicited.  Both the xTR that
   sends the SMR message and the site that acts on the SMR message MUST
   be rate-limited.

   The following procedure shows how a SMR exchange occurs when a site
   is doing locator-set compaction for an EID-to-RLOC mapping:

   1.  When the database mappings in an ETR change, the ITRs at the site
       begin to set the SMR bit in packets they encapsulate to the sites
       they communicate with.

   2.  A remote xTR which decapsulates a packet with the SMR bit set
       will schedule sending a Map-Request message to the source locator
       address of the encapsulated packet.  The nonce in the Map-Request
       is copied from the nonce in the encapsulated data packet that has
       the SMR bit set.

   3.  The remote xTR retransmits the Map-Request slowly until it gets a
       Map-Reply while continuing to use the cached mapping.

   4.  The ETRs at the site with the changed mapping will reply to the
       Map-Request with a Map-Reply message provided the Map-Request
       nonce matches the nonce from the SMR.  The Map-Reply messages
       SHOULD be rate limited.  This is important to avoid Map-Reply
       implosion.

   5.  The ETRs, at the site with the changed mapping, records the fact
       that the site that sent the Map-Request has received the new
       mapping data in the mapping cache entry for the remote site so
       the loc-reach-bits are reflective of the new mapping for packets
       going to the remote site.  The ETR then stops sending packets
       with the SMR-bit set.

   For security reasons an ITR MUST NOT process unsolicited Map-Replies.
   The nonce MUST be carried from SMR packet, into the resultant Map-
   Request, and then into Map-Reply to reduce spoofing attacks.

7.  Router Performance Considerations

   LISP is designed to be very hardware-based forwarding friendly.  By
   doing tunnel header prepending [RFC1955] and stripping instead of re-
   writing addresses, existing hardware can support the forwarding model
   with little or no modification.  Where modifications are required,
   they should be limited to re-programming existing hardware rather
   than requiring expensive design changes to hard-coded algorithms in
   silicon.

   A few implementation techniques can be used to incrementally
   implement LISP:

   o  When a tunnel encapsulated packet is received by an ETR, the outer
      destination address may not be the address of the router.  This
      makes it challenging for the control plane to get packets from the
      hardware.  This may be mitigated by creating special FIB entries
      for the EID-prefixes of EIDs served by the ETR (those for which
      the router provides an RLOC translation).  These FIB entries are
      marked with a flag indicating that control plane processing should
      be performed.  The forwarding logic of testing for particular IP
      protocol number value is not necessary.  No changes to existing,
      deployed hardware should be needed to support this.

   o  On an ITR, prepending a new IP header is as simple as adding more
      bytes to a MAC rewrite string and prepending the string as part of
      the outgoing encapsulation procedure.  Many routers that support
      GRE tunneling [RFC2784] or 6to4 tunneling [RFC3056] can already
      support this action.

   o  When a received packet's outer destination address contains an EID
      which is not intended to be forwarded on the routable topology
      (i.e.  LISP 1.5), the source address of a data packet or the
      router interface with which the source is associated (the
      interface from which it was received) can be associated with a VRF
      (Virtual Routing/Forwarding), in which a different (i.e. non-
      congruent) topology can be used to find EID-to-RLOC mappings.

8.  Deployment Scenarios

   This section will explore how and where ITRs and ETRs can be deployed
   and will discuss the pros and cons of each deployment scenario.
   There are two basic deployment trade-offs to consider: centralized
   versus distributed caches and flat, recursive, or re-encapsulating
   tunneling.

   When deciding on centralized versus distributed caching, the
   following issues should be considered:

   o  Are the tunnel routers spread out so that the caches are spread
      across all the memories of each router?

   o  Should management "touch points" be minimized by choosing few
      tunnel routers, just enough for redundancy?

   o  In general, using more ITRs doesn't increase management load,
      since caches are built and stored dynamically.  On the other hand,
      more ETRs does require more management since EID-prefix-to-RLOC
      mappings need to be explicitly configured.

   When deciding on flat, recursive, or re-encapsulation tunneling, the
   following issues should be considered:

   o  Flat tunneling implements a single tunnel between source site and
      destination site.  This generally offers better paths between
      sources and destinations with a single tunnel path.

   o  Recursive tunneling is when tunneled traffic is again further
      encapsulated in another tunnel, either to implement VPNs or to
      perform Traffic Engineering.  When doing VPN-based tunneling, the
      site has some control since the site is prepending a new tunnel
      header.  In the case of TE-based tunneling, the site may have
      control if it is prepending a new tunnel header, but if the site's
      ISP is doing the TE, then the site has no control.  Recursive
      tunneling generally will result in suboptimal paths but at the
      benefit of steering traffic to resource available parts of the
      network.

   o  The technique of re-encapsulation ensures that packets only
      require one tunnel header.  So if a packet needs to be rerouted,
      it is first decapsulated by the ETR and then re-encapsulated with
      a new tunnel header using a new RLOC.

   The next sub-sections will describe where tunnel routers can reside
   in the network.

8.1.  First-hop/Last-hop Tunnel Routers

   By locating tunnel routers close to hosts, the EID-prefix set is at
   the granularity of an IP subnet.  So at the expense of more EID-
   prefix-to-RLOC sets for the site, the caches in each tunnel router
   can remain relatively small.  But caches always depend on the number
   of non-aggregated EID destination flows active through these tunnel
   routers.

   With more tunnel routers doing encapsulation, the increase in control
   traffic grows as well: since the EID-granularity is greater, more
   Map-Requests and Map-Replies are traveling between more routers.

   The advantage of placing the caches and databases at these stub
   routers is that the products deployed in this part of the network
   have better price-memory ratios then their core router counterparts.
   Memory is typically less expensive in these devices and fewer routes
   are stored (only IGP routes).  These devices tend to have excess
   capacity, both for forwarding and routing state.

   LISP functionality can also be deployed in edge switches.  These
   devices generally have layer-2 ports facing hosts and layer-3 ports
   facing the Internet.  Spare capacity is also often available in these
   devices as well.

8.2.  Border/Edge Tunnel Routers

   Using customer-edge (CE) routers for tunnel endpoints allows the EID
   space associated with a site to be reachable via a small set of RLOCs
   assigned to the CE routers for that site.

   This offers the opposite benefit of the first-hop/last-hop tunnel
   router scenario: the number of mapping entries and network management
   touch points are reduced, allowing better scaling.

   One disadvantage is that less of the network's resources are used to
   reach host endpoints thereby centralizing the point-of-failure domain
   and creating network choke points at the CE router.

   Note that more than one CE router at a site can be configured with
   the same IP address.  In this case an RLOC is an anycast address.
   This allows resilience between the CE routers.  That is, if a CE
   router fails, traffic is automatically routed to the other routers
   using the same anycast address.  However, this comes with the
   disadvantage where the site cannot control the entrance point when
   the anycast route is advertised out from all border routers.

8.3.  ISP Provider-Edge (PE) Tunnel Routers

   Use of ISP PE routers as tunnel endpoint routers gives an ISP control
   over the location of the egress tunnel endpoints.  That is, the ISP
   can decide if the tunnel endpoints are in the destination site (in
   either CE routers or last-hop routers within a site) or at other PE
   edges.  The advantage of this case is that two or more tunnel headers
   can be avoided.  By having the PE be the first router on the path to
   encapsulate, it can choose a TE path first, and the ETR can
   decapsulate and re-encapsulate for a tunnel to the destination end
   site.

   An obvious disadvantage is that the end site has no control over
   where its packets flow or the RLOCs used.

   As mentioned in earlier sections a combination of these scenarios is
   possible at the expense of extra packet header overhead, if both site
   and provider want control, then recursive or re-encapsulating tunnels
   are used.

9.  Traceroute Considerations

   When a source host in a LISP site initiates a traceroute to a
   destination host in another LISP site, it is highly desirable for it
   to see the entire path.  Since packets are encapsulated from ITR to
   ETR, the hop across the tunnel could be viewed as a single hop.
   However, LISP traceroute will provide the entire path so the user can
   see 3 distinct segments of the path from a source LISP host to a
   destination LISP host:

      Segment 1 (in source LISP site based on EIDs):

          source-host ---&gt; first-hop ... next-hop ---&gt; ITR

      Segment 2 (in the core network based on RLOCs):

          ITR ---&gt; next-hop ... next-hop ---&gt; ETR

      Segment 3 (in the destination LISP site based on EIDs):

          ETR ---&gt; next-hop ... last-hop ---&gt; destination-host

   For segment 1 of the path, ICMP Time Exceeded messages are returned
   in the normal matter as they are today.  The ITR performs a TTL
   decrement and test for 0 before encapsulating.  So the ITR hop is
   seen by the traceroute source has an EID address (the address of
   site-facing interface).

   For segment 2 of the path, ICMP Time Exceeded messages are returned
   to the ITR because the TTL decrement to 0 is done on the outer
   header, so the destination of the ICMP messages are to the ITR RLOC
   address, the source source RLOC address of the encapsulated
   traceroute packet.  The ITR looks inside of the ICMP payload to
   inspect the traceroute source so it can return the ICMP message to
   the address of the traceroute client as well as retaining the core
   router IP address in the ICMP message.  This is so the traceroute
   client can display the core router address (the RLOC address) in the
   traceroute output.  The ETR returns its RLOC address and responds to
   the TTL decrement to 0 like the previous core routers did.

   For segment 3, the next-hop router downstream from the ETR will be
   decrementing the TTL for the packet that was encapsulated, sent into
   the core, decapsulated by the ETR, and forwarded because it isn't the
   final destination.  If the TTL is decremented to 0, any router on the
   path to the destination of the traceroute, including the next-hop
   router or destination, will send an ICMP Time Exceeded message to the
   source EID of the traceroute client.  The ICMP message will be
   encapsulated by the local ITR and sent back to the ETR in the
   originated traceroute source site, where the packet will be delivered
   to the host.

9.1.  IPv6 Traceroute

   IPv6 traceroute follows the procedure described above since the
   entire traceroute data packet is included in ICMP Time Exceeded
   message payload.  Therefore, only the ITR needs to pay special
   attention for forwarding ICMP messages back to the traceroute source.

9.2.  IPv4 Traceroute

   For IPv4 traceroute, we cannot follow the above procedure since IPv4
   ICMP Time Exceeded messages only include the invoking IP header and 8
   bytes that follow the IP header.  Therefore, when a core router sends
   an IPv4 Time Exceeded message to an ITR, all the ITR has in the ICMP
   payload is the encapsulated header it prepended followed by a UDP
   header.  The original invoking IP header, and therefore the identity
   of the traceroute source is lost.

   The solution we propose to solve this problem is to cache traceroute
   IPv4 headers in the ITR and to match them up with corresponding IPv4
   Time Exceeded messages received from core routers and the ETR.  The
   ITR will use a circular buffer for caching the IPv4 and UDP headers
   of traceroute packets.  It will select a 16-bit number as a key to
   find them later when the IPv4 Time Exceeded messages are received.
   When an ITR encapsulates an IPv4 traceroute packet, it will use the
   16-bit number as the UDP source port in the encapsulating header.
   When the ICMP Time Exceeded message is returned to the ITR, the UDP
   header of the encapsulating header is present in the ICMP payload
   thereby allowing the ITR to find the cached headers for the
   traceroute source.  The ITR puts the cached headers in the payload
   and sends the ICMP Time Exceeded message to the traceroute source
   retaining the source address of the original ICMP Time Exceeded
   message (a core router or the ETR of the site of the traceroute
   destination).

9.3.  Traceroute using Mixed Locators

   When either an IPv4 traceroute or IPv6 traceroute is originated and
   the ITR encapsulates it in the other address family header, you
   cannot get all 3 segments of the traceroute.  Segment 2 of the
   traceroute can not be conveyed to the traceroute source since it is
   expecting addresses from intermediate hops in the same address format
   for the type of traceroute it originated.  Therefore, in this case,
   segment 2 will make the tunnel look like one hop.  All the ITR has to
   do to make this work is to not copy the inner TTL to the outer,
   encapsulating header's TTL when a traceroute packet is encapsulated
   using an RLOC from a different address family.  This will cause no
   TTL decrement to 0 to occur in core routers between the ITR and ETR.

10.  Mobility Considerations

   There are several kinds of mobility of which only some might be of
   concern to LISP.  Essentially they are as follows.

10.1.  Site Mobility

   A site wishes to change its attachment points to the Internet, and
   its LISP Tunnel Routers will have new RLOCs when it changes upstream
   providers.  Changes in EID-RLOC mappings for sites are expected to be
   handled by configuration, outside of the LISP protocol.

10.2.  Slow Endpoint Mobility

   An individual endpoint wishes to move, but is not concerned about
   maintaining session continuity.  Renumbering is involved.  LISP can
   help with the issues surrounding renumbering [RFC4192] [LISA96] by
   decoupling the address space used by a site from the address spaces
   used by its ISPs.  [RFC4984]

10.3.  Fast Endpoint Mobility

   Fast endpoint mobility occurs when an endpoint moves relatively
   rapidly, changing its IP layer network attachment point.  Maintenance
   of session continuity is a goal.  This is where the Mobile IPv4
   [RFC3344bis] and Mobile IPv6 [RFC3775] [RFC4866] mechanisms are used,
   and primarily where interactions with LISP need to be explored.

   The problem is that as an endpoint moves, it may require changes to
   the mapping between its EID and a set of RLOCs for its new network
   location.  When this is added to the overhead of mobile IP binding
   updates, some packets might be delayed or dropped.

   In IPv4 mobility, when an endpoint is away from home, packets to it
   are encapsulated and forwarded via a home agent which resides in the
   home area the endpoint's address belongs to.  The home agent will
   encapsulate and forward packets either directly to the endpoint or to
   a foreign agent which resides where the endpoint has moved to.
   Packets from the endpoint may be sent directly to the correspondent
   node, may be sent via the foreign agent, or may be reverse-tunneled
   back to the home agent for delivery to the mobile node.  As the
   mobile node's EID or available RLOC changes, LISP EID-to-RLOC
   mappings are required for communication between the mobile node and
   the home agent, whether via foreign agent or not.  As a mobile
   endpoint changes networks, up to three LISP mapping changes may be
   required:

   o  The mobile node moves from an old location to a new visited
      network location and notifies its home agent that it has done so.
      The Mobile IPv4 control packets the mobile node sends pass through
      one of the new visited network's ITRs, which needs a EID-RLOC
      mapping for the home agent.

   o  The home agent might not have the EID-RLOC mappings for the mobile
      node's "care-of" address or its foreign agent in the new visited
      network, in which case it will need to acquire them.

   o  When packets are sent directly to the correspondent node, it may
      be that no traffic has been sent from the new visited network to
      the correspondent node's network, and the new visited network's
      ITR will need to obtain an EID-RLOC mapping for the correspondent
      node's site.

   In addition, if the IPv4 endpoint is sending packets from the new
   visited network using its original EID, then LISP will need to
   perform a route-returnability check on the new EID-RLOC mapping for
   that EID.

   In IPv6 mobility, packets can flow directly between the mobile node
   and the correspondent node in either direction.  The mobile node uses
   its "care-of" address (EID).  In this case, the route-returnability
   check would not be needed but one more LISP mapping lookup may be
   required instead:

   o  As above, three mapping changes may be needed for the mobile node
      to communicate with its home agent and to send packets to the
      correspondent node.

   o  In addition, another mapping will be needed in the correspondent
      node's ITR, in order for the correspondent node to send packets to
      the mobile node's "care-of" address (EID) at the new network
      location.

   When both endpoints are mobile the number of potential mapping
   lookups increases accordingly.

   As a mobile node moves there are not only mobility state changes in
   the mobile node, correspondent node, and home agent, but also state
   changes in the ITRs and ETRs for at least some EID-prefixes.

   The goal is to support rapid adaptation, with little delay or packet
   loss for the entire system.  Heuristics can be added to LISP to
   reduce the number of mapping changes required and to reduce the delay
   per mapping change.  Also IP mobility can be modified to require
   fewer mapping changes.  In order to increase overall system
   performance, there may be a need to reduce the optimization of one
   area in order to place fewer demands on another.

   In LISP, one possibility is to "glean" information.  When a packet
   arrives, the ETR could examine the EID-RLOC mapping and use that
   mapping for all outgoing traffic to that EID.  It can do this after
   performing a route-returnability check, to ensure that the new
   network location does have a internal route to that endpoint.
   However, this does not cover the case where an ITR (the node assigned
   the RLOC) at the mobile-node location has been compromised.

   Mobile IP packet exchange is designed for an environment in which all
   routing information is disseminated before packets can be forwarded.
   In order to allow the Internet to grow to support expected future
   use, we are moving to an environment where some information may have
   to be obtained after packets are in flight.  Modifications to IP
   mobility should be considered in order to optimize the behavior of
   the overall system.  Anything which decreases the number of new EID-
   RLOC mappings needed when a node moves, or maintains the validity of
   an EID-RLOC mapping for a longer time, is useful.

10.4.  Fast Network Mobility

   In addition to endpoints, a network can be mobile, possibly changing
   xTRs.  A "network" can be as small as a single router and as large as
   a whole site.  This is different from site mobility in that it is
   fast and possibly short-lived, but different from endpoint mobility
   in that a whole prefix is changing RLOCs.  However, the mechanisms
   are the same and there is no new overhead in LISP.  A map request for
   any endpoint will return a binding for the entire mobile prefix.

   If mobile networks become a more common occurrence, it may be useful
   to revisit the design of the mapping service and allow for dynamic
   updates of the database.

   The issue of interactions between mobility and LISP needs to be
   explored further.  Specific improvements to the entire system will
   depend on the details of mapping mechanisms.  Mapping mechanisms
   should be evaluated on how well they support session continuity for
   mobile nodes.

<strong><font color="green">10.5.  LISP Mobile Node Mobility

   An mobile device can use the LISP infrastructure to achieve mobility
   by implementing the LISP encapsulation and decapsulation functions
   and acting as a simple ITR/ETR.  By doing this, such a "LISP mobile
   node" can use topologically-independent EID IP addresses that are not
   advertised into and do not impose a cost on the global routing
   system.  These EIDs are maintained at the edges of the mapping system
   (in LISP Map-Servers and Map-Resolvers) and are provided on demand to
   only the correspondents of the LISP mobile node.

   Refer to the LISP Mobility Architecture specification [LISP-MN] for
   more details.</font></strong>

11.  Multicast Considerations

   A multicast group address, as defined in the original Internet
   architecture is an identifier of a grouping of topologically
   independent receiver host locations.  The address encoding itself
   does not determine the location of the receiver(s).  The multicast
   routing protocol, and the network-based state the protocol creates,
   determines where the receivers are located.

   In the context of LISP, a multicast group address is both an EID and
   a Routing Locator.  Therefore, no specific semantic or action needs
   to be taken for a destination address, as it would appear in an IP
   header.  Therefore, a group address that appears in an inner IP
   header built by a source host will be used as the destination EID.
   The outer IP header (the destination Routing Locator address),
   prepended by a LISP router, will use the same group address as the
   destination Routing Locator.

   Having said that, only the source EID and source Routing Locator
   needs to be dealt with.  Therefore, an ITR merely needs to put its
   own IP address in the source Routing Locator field when prepending
   the outer IP header.  This source Routing Locator address, like any
   other Routing Locator address MUST be globally routable.

   Therefore, an EID-to-RLOC mapping does not need to be performed by an
   ITR when a received data packet is a multicast data packet or when
   processing a source-specific Join (either by IGMPv3 or PIM).  But the
   source Routing Locator is decided by the multicast routing protocol
   in a receiver site.  That is, an EID to Routing Locator translation
   is done at control-time.

   Another approach is to have the ITR not encapsulate a multicast
   packet and allow the the host built packet to flow into the core even
   if the source address is allocated out of the EID namespace.  If the
   RPF-Vector TLV [RPFV] is used by PIM in the core, then core routers
   can RPF to the ITR (the Locator address which is injected into core
   routing) rather than the host source address (the EID address which
   is not injected into core routing).

   To avoid any EID-based multicast state in the network core, the first
   approach is chosen for LISP-Multicast.  Details for LISP-Multicast
   and Interworking with non-LISP sites is described in specification
   [MLISP].

12.  Security Considerations

   It is believed that most of the security mechanisms will be part of
   the mapping database service when using control plane procedures for
   obtaining EID-to-RLOC mappings.  For data plane triggered mappings,
   as described in this specification, protection is provided against
   ETR spoofing by using Return- Routability mechanisms evidenced by the
   use of a 4-byte Nonce field in the LISP encapsulation header.  The
   nonce, coupled with the ITR accepting only solicited Map-Replies goes
   a long way toward providing decent authentication.

   LISP does not rely on a PKI infrastructure or a more heavy weight
   authentication system.  These systems challenge the scalability of
   LISP which was a primary design goal.

   DoS attack prevention will depend on implementations rate-limiting
   Map-Requests and Map-Replies to the control plane as well as rate-
   limiting the number of data-triggered Map-Replies.

   To deal with map-cache exhaustion attempts in an ITR/PTR, the
   implementation should consider putting a maximum cap on the number of
   entries stored with a reserve list for special or frequently accessed
   sites.  This should be a configuration policy control set by the
   network administrator who manages ITRs and PTRs.

13.  Prototype Plans and Status

   The operator community has requested that the IETF take a practical
   approach to solving the scaling problems associated with global
   routing state growth.  This document offers a simple solution which
   is intended for use in a pilot program to gain experience in working
   on this problem.

   The authors hope that publishing this specification will allow the
   rapid implementation of multiple vendor prototypes and deployment on
   a small scale.  Doing this will help the community:

   o  Decide whether a new EID-to-RLOC mapping database infrastructure
      is needed or if a simple, UDP-based, data-triggered approach is
      flexible and robust enough.

   o  Experiment with provider-independent assignment of EIDs while at
      the same time decreasing the size of DFZ routing tables through
      the use of topologically-aligned, provider-based RLOCs.

   o  Determine whether multiple levels of tunneling can be used by ISPs
      to achieve their Traffic Engineering goals while simultaneously
      removing the more specific routes currently injected into the
      global routing system for this purpose.

   o  Experiment with mobility to determine if both acceptable
      convergence and session continuity properties can be scalably
      implemented to support both individual device roaming and site
      service provider changes.

   Here is a rough set of milestones:

   1.  This draft will be the draft for interoperable implementations to
       code against.  Interoperable implementations will be ready
       beginning of 2009.

   2.  Continue pilot deployment using LISP-ALT as the database mapping
       mechanism.

   3.  Continue prototyping and studying other database lookup schemes,
       be it DNS, DHTs, CONS, ALT, NERD, or other mechanisms.

   4.  Implement the LISP Multicast draft [MLISP].

   5.  <strong><font color="green">Implement the LISP Mobile Node draft [LISP-MN].

   6.</font></strong>  Research more on how policy affects what gets returned in a Map-
       Reply from an ETR.

   <strike><font color="red">6.</font></strike>

   <strong><font color="green">7.</font></strong>  Continue to experiment with mixed locator-sets to understand how
       LISP can help the IPv4 to IPv6 transition.

   <strike><font color="red">7.</font></strike>

   <strong><font color="green">8.</font></strong>  Add more robustness to locator reachability between LISP sites.

   As of this writing the following accomplishments have been achieved:

   1.   A unit- and system-tested software switching implementation has
        been completed on cisco NX-OS for this draft for both IPv4 and
        IPv6 EIDs using a mixed locator-set of IPv4 and IPv6 locators.

   2.   A unit- and system-tested software switching implementation on
        cisco NX-OS has been completed for draft [ALT].

   3.   A unit- and system-tested software switching implementation on
        cisco NX-OS has been completed for draft [INTERWORK].  Support
        for IPv4 translation is provided and PTR support for IPv4 and
        IPv6 is provided.

   4.   The cisco NX-OS implementation supports an experimental
        mechanism for slow mobility.

   5.   Dave Meyer, Vince Fuller, Darrel Lewis, Greg Shepherd, and
        Andrew Partan continue to test all the features described above
        on a dual-stack infrastructure.

   6.   Darrel Lewis and Dave Meyer have deployed both LISP translation
        and LISP PTR support in the pilot network.  Point your browser
        to http://www.lisp4.net to see translation happening in action
        so your non-LISP site can access a web server in a LISP site.

   7.   Soon http://www.lisp6.net will work where your IPv6 LISP site
        can talk to a IPv6 web server in a LISP site by using mixed
        address-family based locators.

   8.   An public domain implementation of LISP is underway.  See
        [OPENLISP] for details.

   9.   We have deployed Map-Resolvers and Map-Servers on the LISP pilot
        network to gather experience with [LISP-MS].  The first layer of
        the architecture are the xTRs which use Map-Servers for EID-
        prefix registration and Map-Resolvers for EID-to-RLOC mapping
        resolution.  The second layer are the Map-Resolvers and Map-
        Servers which connect to the ALT BGP peering infrastructure.
        And the third layer are ALT-routers which aggregate EID-prefixes
        and forward Map-Requests.

   10.  A cisco IOS implementation is underway which currently supports
        IPv4 encapsulation and decapsulation features.

   11.  A LISP router based LIG implementation is supported, deployed,
        and used daily to debug and test the LISP pilot network.  See
        [LIG] for details.

   12.  A Linux implementation of LIG has been made available and
        supported by Dave Meyer.  It can be run on any Linux system
        which resides in either a LISP site or non-LISP site.  See [LIG]
        for details.  <strong><font color="green">Public domain code can be downloaded from
        http://github.com/davidmeyer/lig/tree/master.

   13.  An experimental implementation has been written for three
        locator reachability algorithms.  One is called echo-noncing,
        which is documented in this specification.  The other two are
        called TCP-counts and RLOC-probing, which will be documented in
        future drafts.</font></strong>

   If interested in writing a LISP implementation, testing any of the
   LISP implementations, or want to be part of the LISP pilot program,
   please contact lisp@ietf.org.

14.  References

14.1.  Normative References

   [RFC0768]  Postel, J., "User Datagram Protocol", STD 6, RFC 768,
              August 1980.

   [RFC1191]  Mogul, J. and S. Deering, "Path MTU discovery", RFC 1191,
              November 1990.

   [RFC1498]  Saltzer, J., "On the Naming and Binding of Network
              Destinations", RFC 1498, August 1993.

   [RFC1955]  Hinden, R., "New Scheme for Internet Routing and
              Addressing (ENCAPS) for IPNG", RFC 1955, June 1996.

   [RFC2119]  Bradner, S., "Key words for use in RFCs to Indicate
              Requirement Levels", BCP 14, RFC 2119, March 1997.

   [RFC2402]  Kent, S. and R. Atkinson, "IP Authentication Header",
              RFC 2402, November 1998.

   [RFC2434]  Narten, T. and H. Alvestrand, "Guidelines for Writing an
              IANA Considerations Section in RFCs", BCP 26, RFC 2434,
              October 1998.

   [RFC2784]  Farinacci, D., Li, T., Hanks, S., Meyer, D., and P.
              Traina, "Generic Routing Encapsulation (GRE)", RFC 2784,
              March 2000.

   [RFC3056]  Carpenter, B. and K. Moore, "Connection of IPv6 Domains
              via IPv4 Clouds", RFC 3056, February 2001.

   [RFC3168]  Ramakrishnan, K., Floyd, S., and D. Black, "The Addition
              of Explicit Congestion Notification (ECN) to IP",
              RFC 3168, September 2001.

   [RFC3775]  Johnson, D., Perkins, C., and J. Arkko, "Mobility Support
              in IPv6", RFC 3775, June 2004.

   [RFC4423]  Moskowitz, R. and P. Nikander, "Host Identity Protocol
              (HIP) Architecture", RFC 4423, May 2006.

   [RFC4866]  Arkko, J., Vogt, C., and W. Haddad, "Enhanced Route
              Optimization for Mobile IPv6", RFC 4866, May 2007.

   [RFC4984]  Meyer, D., Zhang, L., and K. Fall, "Report from the IAB
              Workshop on Routing and Addressing", RFC 4984,
              September 2007.

14.2.  Informative References

   [AFI]      IANA, "Address Family Indicators (AFIs)", ADDRESS FAMILY
              NUMBERS http://www.iana.org/numbers.html, Febuary 2007.

   [ALT]      Farinacci, D., Fuller, V., Meyer, D., and D. Lewis, "LISP
              Alternative Topology (LISP-ALT)",
              draft-ietf-lisp-alt-01.txt (work in progress), May 2009.

   [APT]      Jen, D., Meisel, M., Massey, D., Wang, L., Zhang, B., and
              L. Zhang, "APT: A Practical Transit Mapping Service",
              draft-jen-apt-01.txt (work in progress), November 2007.

   [CHIAPPA]  Chiappa, J., "Endpoints and Endpoint names: A Proposed
              Enhancement to the Internet Architecture", Internet-
              Draft http://www.chiappa.net/~jnc/tech/endpoints.txt,
              1999.

   [CONS]     Farinacci, D., Fuller, V., and D. Meyer, "LISP-CONS: A
              Content distribution Overlay Network  Service for LISP",
              draft-meyer-lisp-cons-03.txt (work in progress),
              November 2007.

   [DHTs]     Ratnasamy, S., Shenker, S., and I. Stoica, "Routing
              Algorithms for DHTs: Some Open Questions", PDF
              file http://www.cs.rice.edu/Conferences/IPTPS02/174.pdf.

   <strong><font color="green">[EMACS]    Brim, S., Farinacci, D., Meyer, D., and J. Curran, "EID
              Mappings Multicast Across Cooperating Systems for LISP",
              draft-curran-lisp-emacs-00.txt (work in progress),
              November 2007.</font></strong>

   [GSE]      "GSE - An Alternate Addressing Architecture for  IPv6",
              draft-ietf-ipngwg-gseaddr-00.txt (work in progress), 1997.

   [INTERWORK]
              Lewis, D., Meyer, D., Farinacci, D., and V. Fuller,
              "Interworking LISP with IPv4 and IPv6",
              draft-ietf-lisp-interworking-00.txt (work in progress),
              January 2009.

   [LIG]      Farinacci, D. and D. Meyer, "LISP Internet Groper (LIG)",
              draft-farinacci-lisp-lig-01.txt (work in progress),
              May 2009.

   [LISA96]   Lear, E., Katinsky, J., Coffin, J., and D. Tharp,
              "Renumbering: Threat or Menace?", Usenix , September 1996.

   [LISP-MAIN]
              Farinacci, D., Fuller, V., Meyer, D., and D. Lewis,
              "Locator/ID Separation Protocol (LISP)",
              draft-farinacci-lisp-12.txt (work in progress),
              March 2009.

   <strong><font color="green">[LISP-MN]  Farinacci, D., Fuller, V., Lewis, D., and D. Meyer, "LISP
              Mobility Architecture", draft-meyer-lisp-mn-00.txt (work
              in progress), July 2009.</font></strong>

   [LISP-MS]  Farinacci, D. and V. Fuller, "LISP Map Server",
              draft-ietf-lisp-ms-01.txt (work in progress), May 2009.

   [LISP1]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
              "Locator/ID Separation Protocol (LISP1) [Routable  ID
              Version]",
              Slide-set http://www.dinof.net/~dino/ietf/lisp1.ppt,
              October 2006.

   [LISP2]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
              "Locator/ID Separation Protocol (LISP2) [DNS-based
              Version]",
              Slide-set http://www.dinof.net/~dino/ietf/lisp2.ppt,
              November 2006.

   [LISPDHT]  Mathy, L., Iannone, L., and O. Bonaventure, "LISP-DHT:
              Towards a DHT to map identifiers onto locators",
              draft-mathy-lisp-dht-00.txt (work in progress),
              February 2008.

   [LOC-ID-ARCH]
              Meyer, D. and D. Lewis, "Architectural Implications of
              Locator/ID  Separation",
              draft-meyer-loc-id-implications-01.txt (work in progress),
              Januaryr 2009.

   [MLISP]    Farinacci, D., Meyer, D., Zwiebel, J., and S. Venaas,
              "LISP for Multicast Environments",
              draft-ietf-lisp-multicast-01.txt (work in progress),
              May 2009.

   [NERD]     Lear, E., "NERD: A Not-so-novel EID to RLOC Database",
              draft-lear-lisp-nerd-04.txt (work in progress),
              April 2008.

   [OPENLISP]
              Iannone, L. and O. Bonaventure, "OpenLISP Implementation
              Report", draft-iannone-openlisp-implementation-01.txt
              (work in progress), July 2008.

   [RADIR]    Narten, T., "Routing and Addressing Problem Statement",
              draft-narten-radir-problem-statement-00.txt (work in
              progress), July 2007.

   [RFC3344bis]
              Perkins, C., "IP Mobility Support for IPv4, revised",
              draft-ietf-mip4-rfc3344bis-05 (work in progress),
              July 2007.

   [RFC4192]  Baker, F., Lear, E., and R. Droms, "Procedures for
              Renumbering an IPv6 Network without a Flag Day", RFC 4192,
              September 2005.

   [RPFV]     Wijnands, IJ., Boers, A., and E. Rosen, "The RPF Vector
              TLV", draft-ietf-pim-rpf-vector-08.txt (work in progress),
              January 2009.

   [RPMD]     Handley, M., Huici, F., and A. Greenhalgh, "RPMD: Protocol
              for Routing Protocol Meta-data  Dissemination",
              draft-handley-p2ppush-unpublished-2007726.txt (work in
              progress), July 2007.

   [SHIM6]    Nordmark, E. and M. Bagnulo, "Level 3 multihoming shim
              protocol", draft-ietf-shim6-proto-06.txt (work in
              progress), October 2006.

Appendix A.  Acknowledgments

   An initial thank you goes to Dave Oran for planting the seeds for the
   initial ideas for LISP.  His consultation continues to provide value
   to the LISP authors.

   A special and appreciative thank you goes to Noel Chiappa for
   providing architectural impetus over the past decades on separation
   of location and identity, as well as detailed review of the LISP
   architecture and documents, coupled with enthusiasm for making LISP a
   practical and incremental transition for the Internet.

   The authors would like to gratefully acknowledge many people who have
   contributed discussion and ideas to the making of this proposal.
   They include Scott Brim, Andrew Partan, John Zwiebel, Jason Schiller,
   Lixia Zhang, Dorian Kim, Peter Schoenmaker, Vijay Gill, Geoff Huston,
   David Conrad, Mark Handley, Ron Bonica, Ted Seely, Mark Townsley,
   Chris Morrow, Brian Weis, Dave McGrew, Peter Lothberg, Dave Thaler,
   Eliot Lear, Shane Amante, Ved Kafle, Olivier Bonaventure, Luigi
   Iannone, Robin Whittle, Brian Carpenter, Joel Halpern, Roger
   Jorgensen, Ran Atkinson, Stig Venaas, Iljitsch van Beijnum, Roland
   Bless, Dana Blair, Bill Lynch, Marc Woolward, Damien Saucez, Damian
   Lezama, Attilla De Groot, Parantap Lahiri, and David Black.

   In particular, we would like to thank Dave Meyer for his clever
   suggestion for the name "LISP". ;-)

   This work originated in the Routing Research Group (RRG) of the IRTF.
   The individual submission [LISP-MAIN] was converted into this IETF
   LISP working group draft.

Authors' Addresses

   Dino Farinacci
   cisco Systems
   Tasman Drive
   San Jose, CA  95134
   USA

   Email: dino@cisco.com

   Vince Fuller
   cisco Systems
   Tasman Drive
   San Jose, CA  95134
   USA

   Email: vaf@cisco.com

   Dave Meyer
   cisco Systems
   170 Tasman Drive
   San Jose, CA
   USA

   Email: dmm@cisco.com

   Darrel Lewis
   cisco Systems
   170 Tasman Drive
   San Jose, CA
   USA

   Email: darlewis@cisco.com
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Network Working Group                                       D. Farinacci
Internet-Draft                                                 V. Fuller
Intended status: Experimental                                   D. Meyer
Expires: January 10, 2010                                       D. Lewis
                                                           cisco Systems
                                                            July 9, 2009


                 Locator/ID Separation Protocol (LISP)
                         draft-ietf-lisp-02.txt

Status of this Memo

   This Internet-Draft is submitted to IETF in full conformance with the
   provisions of BCP 78 and BCP 79.

   Internet-Drafts are working documents of the Internet Engineering
   Task Force (IETF), its areas, and its working groups.  Note that
   other groups may also distribute working documents as Internet-
   Drafts.

   Internet-Drafts are draft documents valid for a maximum of six months
   and may be updated, replaced, or obsoleted by other documents at any
   time.  It is inappropriate to use Internet-Drafts as reference
   material or to cite them other than as "work in progress."

   The list of current Internet-Drafts can be accessed at
   http://www.ietf.org/ietf/1id-abstracts.txt.

   The list of Internet-Draft Shadow Directories can be accessed at
   http://www.ietf.org/shadow.html.

   This Internet-Draft will expire on January 10, 2010.

Copyright Notice

   Copyright (c) 2009 IETF Trust and the persons identified as the
   document authors.  All rights reserved.

   This document is subject to BCP 78 and the IETF Trust's Legal
   Provisions Relating to IETF Documents in effect on the date of
   publication of this document (http://trustee.ietf.org/license-info).
   Please review these documents carefully, as they describe your rights
   and restrictions with respect to this document.







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Abstract

   This draft describes a simple, incremental, network-based protocol to
   implement separation of Internet addresses into Endpoint Identifiers
   (EIDs) and Routing Locators (RLOCs).  This mechanism requires no
   changes to host stacks and no major changes to existing database
   infrastructures.  The proposed protocol can be implemented in a
   relatively small number of routers.

   This proposal was stimulated by the problem statement effort at the
   Amsterdam IAB Routing and Addressing Workshop (RAWS), which took
   place in October 2006.


Table of Contents

   1.  Requirements Notation  . . . . . . . . . . . . . . . . . . . .  4
   2.  Introduction . . . . . . . . . . . . . . . . . . . . . . . . .  5
   3.  Definition of Terms  . . . . . . . . . . . . . . . . . . . . .  8
   4.  Basic Overview . . . . . . . . . . . . . . . . . . . . . . . . 12
     4.1.  Packet Flow Sequence . . . . . . . . . . . . . . . . . . . 14
   5.  Tunneling Details  . . . . . . . . . . . . . . . . . . . . . . 16
     5.1.  LISP IPv4-in-IPv4 Header Format  . . . . . . . . . . . . . 17
     5.2.  LISP IPv6-in-IPv6 Header Format  . . . . . . . . . . . . . 18
     5.3.  Tunnel Header Field Descriptions . . . . . . . . . . . . . 19
     5.4.  Dealing with Large Encapsulated Packets  . . . . . . . . . 21
       5.4.1.  A Stateless Solution to MTU Handling . . . . . . . . . 21
       5.4.2.  A Stateful Solution to MTU Handling  . . . . . . . . . 22
   6.  EID-to-RLOC Mapping  . . . . . . . . . . . . . . . . . . . . . 23
     6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats  . . . . . 23
       6.1.1.  LISP Packet Type Allocations . . . . . . . . . . . . . 25
       6.1.2.  Map-Request Message Format . . . . . . . . . . . . . . 25
       6.1.3.  EID-to-RLOC UDP Map-Request Message  . . . . . . . . . 27
       6.1.4.  Map-Reply Message Format . . . . . . . . . . . . . . . 28
       6.1.5.  EID-to-RLOC UDP Map-Reply Message  . . . . . . . . . . 31
       6.1.6.  Map-Register Message Format  . . . . . . . . . . . . . 32
     6.2.  Routing Locator Selection  . . . . . . . . . . . . . . . . 34
     6.3.  Routing Locator Reachability . . . . . . . . . . . . . . . 35
       6.3.1.  Echo Nonce Algorithm . . . . . . . . . . . . . . . . . 37
     6.4.  Routing Locator Hashing  . . . . . . . . . . . . . . . . . 38
     6.5.  Changing the Contents of EID-to-RLOC Mappings  . . . . . . 39
       6.5.1.  Clock Sweep  . . . . . . . . . . . . . . . . . . . . . 39
       6.5.2.  Solicit-Map-Request (SMR)  . . . . . . . . . . . . . . 40
   7.  Router Performance Considerations  . . . . . . . . . . . . . . 42
   8.  Deployment Scenarios . . . . . . . . . . . . . . . . . . . . . 43
     8.1.  First-hop/Last-hop Tunnel Routers  . . . . . . . . . . . . 44
     8.2.  Border/Edge Tunnel Routers . . . . . . . . . . . . . . . . 44
     8.3.  ISP Provider-Edge (PE) Tunnel Routers  . . . . . . . . . . 45



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   9.  Traceroute Considerations  . . . . . . . . . . . . . . . . . . 46
     9.1.  IPv6 Traceroute  . . . . . . . . . . . . . . . . . . . . . 47
     9.2.  IPv4 Traceroute  . . . . . . . . . . . . . . . . . . . . . 47
     9.3.  Traceroute using Mixed Locators  . . . . . . . . . . . . . 47
   10. Mobility Considerations  . . . . . . . . . . . . . . . . . . . 49
     10.1. Site Mobility  . . . . . . . . . . . . . . . . . . . . . . 49
     10.2. Slow Endpoint Mobility . . . . . . . . . . . . . . . . . . 49
     10.3. Fast Endpoint Mobility . . . . . . . . . . . . . . . . . . 49
     10.4. Fast Network Mobility  . . . . . . . . . . . . . . . . . . 51
     10.5. LISP Mobile Node Mobility  . . . . . . . . . . . . . . . . 51
   11. Multicast Considerations . . . . . . . . . . . . . . . . . . . 53
   12. Security Considerations  . . . . . . . . . . . . . . . . . . . 54
   13. Prototype Plans and Status . . . . . . . . . . . . . . . . . . 55
   14. References . . . . . . . . . . . . . . . . . . . . . . . . . . 58
     14.1. Normative References . . . . . . . . . . . . . . . . . . . 58
     14.2. Informative References . . . . . . . . . . . . . . . . . . 59
   Appendix A.  Acknowledgments . . . . . . . . . . . . . . . . . . . 62
   Authors' Addresses . . . . . . . . . . . . . . . . . . . . . . . . 63

































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1.  Requirements Notation

   The key words "MUST", "MUST NOT", "REQUIRED", "SHALL", "SHALL NOT",
   "SHOULD", "SHOULD NOT", "RECOMMENDED", "MAY", and "OPTIONAL" in this
   document are to be interpreted as described in [RFC2119].














































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2.  Introduction

   Many years of discussion about the current IP routing and addressing
   architecture have noted that its use of a single numbering space (the
   "IP address") for both host transport session identification and
   network routing creates scaling issues (see [CHIAPPA] and [RFC1498]).
   A number of scaling benefits would be realized by separating the
   current IP address into separate spaces for Endpoint Identifiers
   (EIDs) and Routing Locators (RLOCs); among them are:

   1.  Reduction of routing table size in the "default-free zone" (DFZ).
       Use of a separate numbering space for RLOCs will allow them to be
       assigned topologically (in today's Internet, RLOCs would be
       assigned by providers at client network attachment points),
       greatly improving aggregation and reducing the number of
       globally-visible, routable prefixes.

   2.  More cost-effective multihoming for sites that connect to
       different service providers where they can control their own
       policies for packet flow into the site without using extra
       routing table resources of core routers.

   3.  Easing of renumbering burden when clients change providers.
       Because host EIDs are numbered from a separate, non-provider-
       assigned and non-topologically-bound space, they do not need to
       be renumbered when a client site changes its attachment points to
       the network.

   4.  Traffic engineering capabilities that can be performed by network
       elements and do not depend on injecting additional state into the
       routing system.  This will fall out of the mechanism that is used
       to implement the EID/RLOC split (see Section 4).

   5.  Mobility without address changing.  Existing mobility mechanisms
       will be able to work in a locator/ID separation scenario.  It
       will be possible for a host (or a collection of hosts) to move to
       a different point in the network topology either retaining its
       home-based address or acquiring a new address based on the new
       network location.  A new network location could be a physically
       different point in the network topology or the same physical
       point of the topology with a different provider.

   This draft describes protocol mechanisms to achieve the desired
   functional separation.  For flexibility, the mechanism used for
   forwarding packets is decoupled from that used to determine EID to
   RLOC mappings.  This document covers the former.  For the later, see
   [CONS], [ALT], [EMACS], [RPMD], and [NERD].  This work is in response
   to and intended to address the problem statement that came out of the



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   RAWS effort [RFC4984].

   The Routing and Addressing problem statement can be found in [RADIR].

   This draft focuses on a router-based solution.  Building the solution
   into the network will facilitate incremental deployment of the
   technology on the Internet.  Note that while the detailed protocol
   specification and examples in this document assume IP version 4
   (IPv4), there is nothing in the design that precludes use of the same
   techniques and mechanisms for IPv6.  It should be possible for IPv4
   packets to use IPv6 RLOCs and for IPv6 EIDs to be mapped to IPv4
   RLOCs.

   Related work on host-based solutions is described in Shim6 [SHIM6]
   and HIP [RFC4423].  Related work on a router-based solution is
   described in [GSE].  This draft attempts to not compete or overlap
   with such solutions and the proposed protocol changes are expected to
   complement a host-based mechanism when Traffic Engineering
   functionality is desired.

   Some of the design goals of this proposal include:

   1.  Require no hardware or software changes to end-systems (hosts).

   2.  Minimize required changes to Internet infrastructure.

   3.  Be incrementally deployable.

   4.  Require no router hardware changes.

   5.  Minimize the number of routers which have to be modified.  In
       particular, most customer site routers and no core routers
       require changes.

   6.  Minimize router software changes in those routers which are
       affected.

   7.  Avoid or minimize packet loss when EID-to-RLOC mappings need to
       be performed.

   There are 4 variants of LISP, which differ along a spectrum of strong
   to weak dependence on the topological nature and possible need for
   routability of EIDs.  The variants are:








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   LISP 1:  uses EIDs that are routable through the RLOC topology for
      bootstrapping EID-to-RLOC mappings.  [LISP1] This was intended as
      a prototyping mechanism for early protocol implementation.  It is
      now deprecated and should not be deployed.

   LISP 1.5:  uses EIDs that are routable for bootstrapping EID-to-RLOC
      mappings; such routing is via a separate topology.

   LISP 2:  uses EIDS that are not routable and EID-to-RLOC mappings are
      implemented within the DNS.  [LISP2]

   LISP 3:  uses non-routable EIDs that are used as lookup keys for a
      new EID-to-RLOC mapping database.  Use of Distributed Hash Tables
      [DHTs] [LISPDHT] to implement such a database would be an area to
      explore.  Other examples of new mapping database services are
      [CONS], [ALT], [RPMD], [NERD], and [APT].

   This document on LISP 1.5, and LISP 3 variants, both of which rely on
   a router-based distributed cache and database for EID-to-RLOC
   mappings.  The LISP 1.0 mechanism works but does not allow reduction
   of routing information in the default-free-zone of the Internet.  The
   LISP 2 mechanisms are put on hold and may never come to fruition
   since it is not architecturally pure to have routing depend on
   directory and directory depend on routing.  The LISP 3 mechanisms
   will be documented elsewhere but may use the control-plane options
   specified in this specification.

























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3.  Definition of Terms

   Provider Independent (PI) Addresses:   an address block assigned from
      a pool where blocks are not associated with any particular
      location in the network (e.g. from a particular service provider),
      and is therefore not topologically aggregatable in the routing
      system.

   Provider Assigned (PA) Addresses:   a block of IP addresses that are
      assigned to a site by each service provider to which a site
      connects.  Typically, each block is sub-block of a service
      provider CIDR block and is aggregated into the larger block before
      being advertised into the global Internet.  Traditionally, IP
      multihoming has been implemented by each multi-homed site
      acquiring its own, globally-visible prefix.  LISP uses only
      topologically-assigned and aggregatable address blocks for RLOCs,
      eliminating this demonstrably non-scalable practice.

   Routing Locator (RLOC):   the IPv4 or IPv6 address of an egress
      tunnel router (ETR).  It is the output of a EID-to-RLOC mapping
      lookup.  An EID maps to one or more RLOCs.  Typically, RLOCs are
      numbered from topologically-aggregatable blocks that are assigned
      to a site at each point to which it attaches to the global
      Internet; where the topology is defined by the connectivity of
      provider networks, RLOCs can be thought of as PA addresses.
      Multiple RLOCs can be assigned to the same ETR device or to
      multiple ETR devices at a site.

   Endpoint ID (EID):   a 32-bit (for IPv4) or 128-bit (for IPv6) value
      used in the source and destination address fields of the first
      (most inner) LISP header of a packet.  The host obtains a
      destination EID the same way it obtains an destination address
      today, for example through a DNS lookup or SIP exchange.  The
      source EID is obtained via existing mechanisms used to set a
      host's "local" IP address.  An EID is allocated to a host from an
      EID-prefix block associated with the site where the host is
      located.  An EID can be used by a host to refer to other hosts.
      EIDs MUST NOT be used as LISP RLOCs.  Note that EID blocks may be
      assigned in a hierarchical manner, independent of the network
      topology, to facilitate scaling of the mapping database.  In
      addition, an EID block assigned to a site may have site-local
      structure (subnetting) for routing within the site; this structure
      is not visible to the global routing system.  When used in
      discussions with other Locator/ID separation proposals, a LISP EID
      will be called a "LEID".  Throughout this document, any references
      to "EID" refers to an LEID.





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   EID-prefix:   A power-of-2 block of EIDs which are allocated to a
      site by an address allocation authority.  EID-prefixes are
      associated with a set of RLOC addresses which make up a "database
      mapping".  EID-prefix allocations can be broken up into smaller
      blocks when an RLOC set is to be associated with the smaller EID-
      prefix.  A globally routed address block (whether PI or PA) is not
      an EID-prefix.  However, a globally routed address block may be
      removed from global routing and reused as an EID-prefix.  A site
      that receives an explicitly allocated EID-prefix may not use that
      EID-prefix as a globally routed prefix assigned to RLOCs.

   End-system:   is an IPv4 or IPv6 device that originates packets with
      a single IPv4 or IPv6 header.  The end-system supplies an EID
      value for the destination address field of the IP header when
      communicating globally (i.e. outside of its routing domain).  An
      end-system can be a host computer, a switch or router device, or
      any network appliance.

   Ingress Tunnel Router (ITR):   a router which accepts an IP packet
      with a single IP header (more precisely, an IP packet that does
      not contain a LISP header).  The router treats this "inner" IP
      destination address as an EID and performs an EID-to-RLOC mapping
      lookup.  The router then prepends an "outer" IP header with one of
      its globally-routable RLOCs in the source address field and the
      result of the mapping lookup in the destination address field.
      Note that this destination RLOC may be an intermediate, proxy
      device that has better knowledge of the EID-to-RLOC mapping closer
      to the destination EID.  In general, an ITR receives IP packets
      from site end-systems on one side and sends LISP-encapsulated IP
      packets toward the Internet on the other side.

      Specifically, when a service provider prepends a LISP header for
      Traffic Engineering purposes, the router that does this is also
      regarded as an ITR.  The outer RLOC the ISP ITR uses can be based
      on the outer destination address (the originating ITR's supplied
      RLOC) or the inner destination address (the originating hosts
      supplied EID).

   TE-ITR:   is an ITR that is deployed in a service provider network
      that prepends an additional LISP header for Traffic Engineering
      purposes.

   Egress Tunnel Router (ETR):   a router that accepts an IP packet
      where the destination address in the "outer" IP header is one of
      its own RLOCs.  The router strips the "outer" header and forwards
      the packet based on the next IP header found.  In general, an ETR
      receives LISP-encapsulated IP packets from the Internet on one
      side and sends decapsulated IP packets to site end-systems on the



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      other side.  ETR functionality does not have to be limited to a
      router device.  A server host can be the endpoint of a LISP tunnel
      as well.

   TE-ETR:   is an ETR that is deployed in a service provider network
      that strips an outer LISP header for Traffic Engineering purposes.

   xTR:   is a reference to an ITR or ETR when direction of data flow is
      not part of the context description. xTR refers to the router that
      is the tunnel endpoint.  Used synonymously with the term "Tunnel
      Router".  For example, "An xTR can be located at the Customer Edge
      (CE) router", meaning both ITR and ETR functionality is at the CE
      router.

   EID-to-RLOC Cache:   a short-lived, on-demand table in an ITR that
      stores, tracks, and is responsible for timing-out and otherwise
      validating EID-to-RLOC mappings.  This cache is distinct from the
      full "database" of EID-to-RLOC mappings, it is dynamic, local to
      the ITR(s), and relatively small while the database is
      distributed, relatively static, and much more global in scope.

   EID-to-RLOC Database:   a global distributed database that contains
      all known EID-prefix to RLOC mappings.  Each potential ETR
      typically contains a small piece of the database: the EID-to-RLOC
      mappings for the EID prefixes "behind" the router.  These map to
      one of the router's own, globally-visible, IP addresses.

   Recursive Tunneling:   when a packet has more than one LISP IP
      header.  Additional layers of tunneling may be employed to
      implement traffic engineering or other re-routing as needed.  When
      this is done, an additional "outer" LISP header is added and the
      original RLOCs are preserved in the "inner" header.  Any
      references to tunnels in this specification refers to dynamic
      encapsulating tunnels and never are they staticly configured.

   Reencapsulating Tunnels:   when a packet has no more than one LISP IP
      header (two IP headers total) and when it needs to be diverted to
      new RLOC, an ETR can decapsulate the packet (remove the LISP
      header) and prepend a new tunnel header, with new RLOC, on to the
      packet.  Doing this allows a packet to be re-routed by the re-
      encapsulating router without adding the overhead of additional
      tunnel headers.  Any references to tunnels in this specification
      refers to dynamic encapsulating tunnels and never are they
      staticly configured.







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   LISP Header:   a term used in this document to refer to the outer
      IPv4 or IPv6 header, a UDP header, and a LISP header, an ITR
      prepends or an ETR strips.

   Address Family Indicator (AFI):   a term used to describe an address
      encoding in a packet.  An address family currently pertains to an
      IPv4 or IPv6 address.  See [AFI] for details.

   Negative Mapping Entry:   also known as a negative cache entry, is an
      EID-to-RLOC entry where an EID-prefix is advertised or stored with
      no RLOCs.  That is, the locator-set for the EID-to-RLOC entry is
      empty or has an encoded locator count of 0.  This type of entry
      could be used to describe a prefix from a non-LISP site, which is
      explicitly not in the mapping database.  There are a set of well
      defined actions that are encoded in a Negative Map-Reply.

   Data Probe:   a LISP-encapsulated data packet where the inner header
      destination address equals the outer header destination address
      used to trigger a Map-Reply by a decapsulating ETR.  In addition,
      the original packet is decapsulated and delivered to the
      destination host.  A Data Probe is used in some of the mapping
      database designs to "probe" or request a Map-Reply from an ETR; in
      other cases, Map-Requests are used.  See each mapping database
      design for details.



























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4.  Basic Overview

   One key concept of LISP is that end-systems (hosts) operate the same
   way they do today.  The IP addresses that hosts use for tracking
   sockets, connections, and for sending and receiving packets do not
   change.  In LISP terminology, these IP addresses are called Endpoint
   Identifiers (EIDs).

   Routers continue to forward packets based on IP destination
   addresses.  When a packet is LISP encapsulated, these addresses are
   referred to as Routing Locators (RLOCs).  Most routers along a path
   between two hosts will not change; they continue to perform routing/
   forwarding lookups on the destination addresses.  For routers between
   the source host and the ITR as well as routers from the ETR to the
   destination host, the destination address is an EID.  For the routers
   between the ITR and the ETR, the destination address is an RLOC.

   This design introduces "Tunnel Routers", which prepend LISP headers
   on host-originated packets and strip them prior to final delivery to
   their destination.  The IP addresses in this "outer header" are
   RLOCs.  During end-to-end packet exchange between two Internet hosts,
   an ITR prepends a new LISP header to each packet and an egress tunnel
   router strips the new header.  The ITR performs EID-to-RLOC lookups
   to determine the routing path to the the ETR, which has the RLOC as
   one of its IP addresses.

   Some basic rules governing LISP are:

   o  End-systems (hosts) only send to addresses which are EIDs.  They
      don't know addresses are EIDs versus RLOCs but assume packets get
      to LISP routers, which in turn, deliver packets to the destination
      the end-system has specified.

   o  EIDs are always IP addresses assigned to hosts.

   o  LISP routers mostly deal with Routing Locator addresses.  See
      details later in Section 4.1 to clarify what is meant by "mostly".

   o  RLOCs are always IP addresses assigned to routers; preferably,
      topologically-oriented addresses from provider CIDR blocks.

   o  When a router originates packets it may use as a source address
      either an EID or RLOC.  When acting as a host (e.g. when
      terminating a transport session such as SSH, TELNET, or SNMP), it
      may use an EID that is explicitly assigned for that purpose.  An
      EID that identifies the router as a host MUST NOT be used as an
      RLOC; an EID is only routable within the scope of a site.  A
      typical BGP configuration might demonstrate this "hybrid" EID/RLOC



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      usage where a router could use its "host-like" EID to terminate
      iBGP sessions to other routers in a site while at the same time
      using RLOCs to terminate eBGP sessions to routers outside the
      site.

   o  EIDs are not expected to be usable for global end-to-end
      communication in the absence of an EID-to-RLOC mapping operation.
      They are expected to be used locally for intra-site communication.

   o  EID prefixes are likely to be hierarchically assigned in a manner
      which is optimized for administrative convenience and to
      facilitate scaling of the EID-to-RLOC mapping database.  The
      hierarchy is based on a address allocation hierarchy which is not
      dependent on the network topology.

   o  EIDs may also be structured (subnetted) in a manner suitable for
      local routing within an autonomous system.

   An additional LISP header may be prepended to packets by a transit
   router (i.e.  TE-ITR) when re-routing of the path for a packet is
   desired.  An obvious instance of this would be an ISP router that
   needs to perform traffic engineering for packets in flow through its
   network.  In such a situation, termed Recursive Tunneling, an ISP
   transit acts as an additional ingress tunnel router and the RLOC it
   uses for the new prepended header would be either an TE-ETR within
   the ISP (along intra-ISP traffic engineered path) or in an TE-ETR
   within another ISP (an inter-ISP traffic engineered path, where an
   agreement to build such a path exists).

   This specification mandates that no more than two LISP headers get
   prepended to a packet.  This avoids excessive packet overhead as well
   as possible encapsulation loops.  It is believed two headers is
   sufficient, where the first prepended header is used at a site for
   Location/Identity separation and second prepended header is used
   inside a service provider for Traffic Engineering purposes.

   Tunnel Routers can be placed fairly flexibly in a multi-AS topology.
   For example, the ITR for a particular end-to-end packet exchange
   might be the first-hop or default router within a site for the source
   host.  Similarly, the egress tunnel router might be the last-hop
   router directly-connected to the destination host.  Another example,
   perhaps for a VPN service out-sourced to an ISP by a site, the ITR
   could be the site's border router at the service provider attachment
   point.  Mixing and matching of site-operated, ISP-operated, and other
   tunnel routers is allowed for maximum flexibility.  See Section 8 for
   more details.





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4.1.  Packet Flow Sequence

   This section provides an example of the unicast packet flow with the
   following conditions:

   o  Source host "host1.abc.com" is sending a packet to
      "host2.xyz.com", exactly what host1 would do if the site was not
      using LISP.

   o  Each site is multi-homed, so each tunnel router has an address
      (RLOC) assigned from the service provider address block for each
      provider to which that particular tunnel router is attached.

   o  The ITR(s) and ETR(s) are directly connected to the source and
      destination, respectively.

   o  Data Probes are used to solicit Map-Replies versus using Map-
      Requests.  And the Data Probes are sent on the underlying topology
      (the LISP 1.0 variant) but could also be sent over an alternative
      topology (the LISP 1.5 variant) as it would in [ALT].

   Client host1.abc.com wants to communicate with server host2.xyz.com:

   1.  host1.abc.com wants to open a TCP connection to host2.xyz.com.
       It does a DNS lookup on host2.xyz.com.  An A/AAAA record is
       returned.  This address is used as the destination EID and the
       locally-assigned address of host1.abc.com is used as the source
       EID.  An IPv4 or IPv6 packet is built using the EIDs in the IPv4
       or IPv6 header and sent to the default router.

   2.  The default router is configured as an ITR.  The ITR must be able
       to map the EID destination to an RLOC of the ETR at the
       destination site.  The ITR prepends a LISP header to the packet,
       with one of its RLOCs as the source IPv4 or IPv6 address.  The
       destination EID from the original packet header is used as the
       destination IPv4 or IPv6 in the prepended LISP header.
       Subsequent packets, where the outer destination address is the
       destination EID will be sent until EID-to-RLOC mapping is
       learned.

   3.  In LISP 1, the packet is routed through the Internet as it is
       today.  In LISP 1.5, the packet is routed on a different topology
       which may have EID prefixes distributed and advertised in an
       aggregatable fashion.  In either case, the packet arrives at the
       ETR.  The router is configured to "punt" the packet to the
       router's processor.  See Section 7 for more details.  For LISP
       2.0 and 3.0, the behavior is not fully defined yet.




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   4.  The LISP header is stripped so that the packet can be forwarded
       by the router control plane.  The router looks up the destination
       EID in the router's EID-to-RLOC database (not the cache, but the
       configured data structure of RLOCs).  An EID-to-RLOC Map-Reply
       message is originated by the ETR and is addressed to the source
       RLOC in the LISP header of the original packet (this is the ITR).
       The source RLOC of the Map-Reply is one of the ETR's RLOCs.

   5.  The ITR receives the Map-Reply message, parses the message (to
       check for format validity) and stores the mapping information
       from the packet.  This information is put in the ITR's EID-to-
       RLOC mapping cache (this is the on-demand cache, the cache where
       entries time out due to inactivity).

   6.  Subsequent packets from host1.abc.com to host2.xyz.com will have
       a LISP header prepended by the ITR using the appropriate RLOC as
       the LISP header destination address learned from the ETR.  Note,
       the packet may be sent to a different ETR than the one which
       returned the Map-Reply due to the source site's hashing policy or
       the destination site's locator-set policy.

   7.  The ETR receives these packets directly (since the destination
       address is one of its assigned IP addresses), strips the LISP
       header and forwards the packets to the attached destination host.

   In order to eliminate the need for a mapping lookup in the reverse
   direction, an ETR MAY create a cache entry that maps the source EID
   (inner header source IP address) to the source RLOC (outer header
   source IP address) in a received LISP packet.  Such a cache entry is
   termed a "gleaned" mapping and only contains a single RLOC for the
   EID in question.  More complete information about additional RLOCs
   SHOULD be verified by sending a LISP Map-Request for that EID.  Both
   ITR and the ETR may also influence the decision the other makes in
   selecting an RLOC.  See Section 6 for more details.

















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5.  Tunneling Details

   This section describes the LISP Data Message which defines the
   tunneling header used to encapsulate IPv4 and IPv6 packets which
   contain EID addresses.  Even though the following formats illustrate
   IPv4-in-IPv4 and IPv6-in-IPv6 encapsulations, the other 2
   combinations are supported as well.

   Since additional tunnel headers are prepended, the packet becomes
   larger and in theory can exceed the MTU of any link traversed from
   the ITR to the ETR.  It is recommended, in IPv4 that packets do not
   get fragmented as they are encapsulated by the ITR.  Instead, the
   packet is dropped and an ICMP Too Big message is returned to the
   source.

   Based on informal surveys of large ISP traffic patterns, it appears
   that most transit paths can accommodate a path MTU of at least 4470
   bytes.  The exceptions, in terms of data rate, number of hosts
   affected, or any other metric are expected to be vanishingly small.

   To address MTU concerns, mainly raised on the RRG mailing list, the
   LISP deployment process will include collecting data during its pilot
   phase to either verify or refute the assumption about minimum
   available MTU.  If the assumption proves true and transit networks
   with links limited to 1500 byte MTUs are corner cases, it would seem
   more cost-effective to either upgrade or modify the equipment in
   those transit networks to support larger MTUs or to use existing
   mechanisms for accommodating packets that are too large.

   For this reason, there is currently no plan for LISP to add any new
   additional, complex mechanism for implementing fragmentation and
   reassembly in the face of limited-MTU transit links.  If analysis
   during LISP pilot deployment reveals that the assumption of
   essentially ubiquitous, 4470+ byte transit path MTUs, is incorrect,
   then LISP can be modified prior to protocol standardization to add
   support for one of the proposed fragmentation and reassembly schemes.
   Note that two simple existing schemes are detailed in Section 5.4.














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5.1.  LISP IPv4-in-IPv4 Header Format



        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version|  IHL  |Type of Service|          Total Length         |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Identification        |Flags|      Fragment Offset    |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   OH  |  Time to Live | Protocol =3D 17 |         Header Checksum       =
|
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                    Source Routing Locator                     |
    \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                 Destination Routing Locator                   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |       Source Port =3D xxxx      |       Dest Port =3D 4341      =
  |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   L / |                       Locator Reach Bits                      |
   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   S \ |S|E| rsvd-flags|                  Nonce                        |
   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version|  IHL  |Type of Service|          Total Length         |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Identification        |Flags|      Fragment Offset    |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   IH  |  Time to Live |    Protocol   |         Header Checksum       |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                           Source EID                          |
    \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                         Destination EID                       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
















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5.2.  LISP IPv6-in-IPv6 Header Format



        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version| Traffic Class |           Flow Label                  |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Payload Length        | Next Header=3D17|   Hop Limit   =
|
   v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
   O   +                                                               +
   u   |                                                               |
   t   +                     Source Routing Locator                    +
   e   |                                                               |
   r   +                                                               +
       |                                                               |
   H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   d   |                                                               |
   r   +                                                               +
       |                                                               |
   ^   +                  Destination Routing Locator                  +
   |   |                                                               |
    \  +                                                               +
     \ |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |       Source Port =3D xxxx      |       Dest Port =3D 4341      =
  |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   L / |                       Locator Reach Bits                      |
   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   S \ |S|E| rsvd-flags|                  Nonce                        |
   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version| Traffic Class |           Flow Label                  |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   /   |         Payload Length        |  Next Header  |   Hop Limit   |
   v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
   I   +                                                               +
   n   |                                                               |
   n   +                          Source EID                           +
   e   |                                                               |
   r   +                                                               +
       |                                                               |
   H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   d   |                                                               |



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   r   +                                                               +
       |                                                               |
   ^   +                        Destination EID                        +
   \   |                                                               |
    \  +                                                               +
     \ |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


5.3.  Tunnel Header Field Descriptions

   IH Header:  is the inner header, preserved from the datagram received
      from the originating host.  The source and destination IP
      addresses are EIDs.

   OH Header:  is the outer header prepended by an ITR.  The address
      fields contain RLOCs obtained from the ingress router's EID-to-
      RLOC cache.  The IP protocol number is "UDP (17)" from [RFC0768].
      The DF bit of the Flags field is set to 0.

   UDP Header:  contains a ITR selected source port when encapsulating a
      packet.  See Section 6.4 for details on the hash algorithm used
      select a source port based on the 5-tuple of the inner header.
      The destination port MUST be set to the well-known IANA assigned
      port value 4341.

   UDP Checksum:  this field field MUST be transmitted as 0 and ignored
      on receipt by the ETR.  Note, even when the UDP checksum is
      transmitted as 0 an intervening NAT device can recalculate the
      checksum and rewrite the UDP checksum field to non-zero.  For
      performance reasons, the ETR MUST ignore the checksum and MUST not
      do a checksum computation.

   UDP Length:  for an IPv4 encapsulated packet, the inner header Total
      Length plus the UDP and LISP header lengths are used.  For an IPv6
      encapsulated packet, the inner header Payload Length plus the size
      of the IPv6 header (40 bytes) plus the size of the UDP and LISP
      headers are used.  The UDP header length is 8 bytes.  The LISP
      header length is 8 bytes when no loc-reach-bit header extensions
      are used.

   LISP Locator Reach Bits:  in the LISP header are set by an ITR to
      indicate to an ETR the reachability of the Locators in the source
      site.  Each RLOC in a Map-Reply is assigned an ordinal value from
      0 to n-1 (when there are n RLOCs in a mapping entry).  The Locator
      Reach Bits are numbered from 0 to n-1 from the right significant
      bit of the 32-bit field.  When a bit is set to 1, the ITR is
      indicating to the ETR the RLOC associated with the bit ordinal is



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      reachable.  See Section 6.3 for details on how an ITR can
      determine other ITRs at the site are reachable.  When a site has
      multiple EID-prefixes which result in multiple mappings (where
      each could have a different locator-set), the Locator Reach Bits
      setting in an encapsulated packet MUST reflect the mapping for the
      EID-prefix that the inner-header source EID address matches.

   S: this is the Solicit-Map-Request (SMR) bit.  See section
      Section 6.5.2 for details.

   E: this is the echo-nonce-request bit.  See section Section 6.3.1 for
      details.

   rsvd-flags:  this 6-bit field is reserved for future flag use.  It is
      set to 0 on transmit and ignored on receipt.

   LISP Nonce:  is a 24-bit value that is randomly generated by an ITR.
      It is used to test route-returnability when xTRs exchange
      encapsulated data packets with the SMR bit set, Data-Probe, Map-
      Request, or Map-Reply messages.

   When doing Recursive Tunneling or ITR/PTR encapsulation:

   o  The OH header Time to Live field (or Hop Limit field, in case of
      IPv6) MUST be copied from the IH header Time to Live field.

   o  The OH header Type of Service field (or the Traffic Class field,
      in the case of IPv6) SHOULD be copied from the IH header Type of
      Service field (with one caveat, see below).

   When doing Re-encapsulated Tunneling:

   o  The new OH header Time to Live field SHOULD be copied from the
      stripped OH header Time to Live field.

   o  The new OH header Type of Service field SHOULD be copied from the
      stripped OH header Type of Service field (with one caveat, see
      below)..

   Copying the TTL serves two purposes: first, it preserves the distance
   the host intended the packet to travel; second, and more importantly,
   it provides for suppression of looping packets in the event there is
   a loop of concatenated tunnels due to misconfiguration.

   The ECN field occupies bits 6 and 7 of both the IPv4 Type of Service
   field and the IPv6 Traffic Class field [RFC3168].  The ECN field
   requires special treatment in order to avoid discarding indications
   of congestion [RFC3168].  ITR encapsulation MUST copy the 2-bit ECN



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   field from the inner header to the outer header.  Re-encapsulation
   MUST copy the 2-bit ECN field from the stripped outer header to the
   new outer header.  If the ECN field contains a congestion indication
   codepoint (the value is '11', the Congestion Experienced (CE)
   codepoint), then ETR decapsulation MUST copy the 2-bit ECN field from
   the stripped outer header to the surviving inner header that is used
   to forward the packet beyond the ETR.  These requirements preserve
   Congestion Experienced (CE) indications when a packet that uses ECN
   traverses a LISP tunnel and becomes marked with a CE indication due
   to congestion between the tunnel endpoints.

5.4.  Dealing with Large Encapsulated Packets

   In the event that the MTU issues mentioned above prove to be more
   serious than expected, this section proposes 2 simple mechanisms to
   deal with large packets.  One is stateless using IP fragmentation and
   the other is stateful using Path MTU Discovery [RFC1191].

   It is left to the implementor to decide if the stateless or stateful
   mechanism should be implemented.  Both or neither can be decided as
   well since it is a local decision in the ITR regarding how to deal
   with MTU issues.  Sites can interoperate with differing mechanisms.

5.4.1.  A Stateless Solution to MTU Handling

   An ITR stateless solution to handle MTU issues is described as
   follows:

   1.  Define an architectural constant S for the maximum size of a
       packet, in bytes, an ITR would receive from a source inside of
       its site.

   2.  Define L to be the maximum size, in bytes, a packet of size S
       would be after the ITR prepends the LISP header, UDP header, and
       outer network layer header of size H.

   3.  Calculate: S + H =3D L.

   When an ITR receives a packet from a site-facing interface and adds H
   bytes worth of encapsulation to yield a packet size of L bytes, it
   resolves the MTU issue by first splitting the original packet into 2
   equal-sized fragments.  A LISP header is then prepended to each
   fragment.  This will ensure that the new, encapsulated packets are of
   size (S/2 + H), which is always below the effective tunnel MTU.

   When an ETR receives encapsulated fragments, it treats them as two
   individually encapsulated packets.  It strips the LISP headers then
   forwards each fragment to the destination host of the destination



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   site.  The two fragments are reassembled at the destination host into
   the single IP datagram that was originated by the source host.

   This behavior is performed by the ITR when the source host originates
   a packet with the DF field of the IP header is set to 0.  When the DF
   field of the IP header is set to 1, or the packet is an IPv6 packet
   originated by the source host, the ITR will drop the packet when the
   size is greater than L, and sends an ICMP Too Big message to the
   source with a value of S, where S is (L - H).

   When the outer header encapsulation uses an IPv4 header the DF bit is
   always set to 0.

   This specification recommends that L be defined as 1500.

5.4.2.  A Stateful Solution to MTU Handling

   An ITR stateful solution to handle MTU issues is describe as follows
   and was first introduced in [OPENLISP]:

   1.  The ITR will keep state of the effective MTU for each locator per
       mapping cache entry.  The effective MTU is what the core network
       can deliver along the path between ITR and ETR.

   2.  When an encapsulated packet, with DF bit always set to 0, exceeds
       what the core network can deliver, one of the intermediate
       routers on the path will send an ICMP Too Big message to the ITR.
       The ITR will parse the ICMP message to determine which locator is
       affected by the effective MTU change and then record the new
       effective MTU value in the mapping cache entry.

   3.  When a packet is received by the ITR from a source inside of the
       site and the size of the packet is greater than the effective MTU
       stored with the mapping cache entry associated with the
       destination EID the packet is for, the ITR will send an ICMP Too
       Big message back to the source.  The packet size advertised by
       the ITR in the ICMP Too Big message is the effective MTU minus
       the LISP encapsulation length.

   Even though this mechanism is stateful, it has advantages over the
   stateless IP fragmentation mechanism, by not involving the
   destination host with reassembly of ITR fragmented packets.









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6.  EID-to-RLOC Mapping

6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats

   The following new UDP packet types are used to retrieve EID-to-RLOC
   mappings:


       0                   1                   2                   3
       0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Version|  IHL  |Type of Service|          Total Length         |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Identification        |Flags|      Fragment Offset    |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |  Time to Live | Protocol =3D 17 |         Header Checksum       =
|
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                    Source Routing Locator                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                 Destination Routing Locator                   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |           Source Port         |         Dest Port             |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       |                         LISP Message                          |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Version| Traffic Class |           Flow Label                  |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Payload Length        | Next Header=3D17|   Hop Limit   =
|
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                                                               +
       |                                                               |
       +                     Source Routing Locator                    +
       |                                                               |
       +                                                               +
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                                                               +



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       |                                                               |
       +                  Destination Routing Locator                  +
       |                                                               |
       +                                                               +
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |           Source Port         |         Dest Port             |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       |                         LISP Message                          |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


   The LISP UDP-based messages are the Map-Request and Map-Reply
   messages.  When a UDP Map-Request is sent, the UDP source port is
   chosen by the sender and the destination UDP port number is set to
   4342.  When a UDP Map-Reply is sent, the source UDP port number is
   set to 4342 and the destination UDP port number is copied from the
   source port of either the Map-Request or the invoking data packet.

   The UDP Length field will reflect the length of the UDP header and
   the LISP Message payload.

   The UDP Checksum is computed and set to non-zero for Map-Request and
   Map-Reply messages.  It MUST be checked on receipt and if the
   checksum fails, the packet MUST be dropped.

   LISP-CONS [CONS] use TCP to send LISP control messages.  The format
   of control messages includes the UDP header so the checksum and
   length fields can be used to protect and delimit message boundaries.

   This main LISP specification is the authoritative source for message
   format definitions for the Map-Request and Map-Reply messages.















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6.1.1.  LISP Packet Type Allocations

   This section will be the authoritative source for allocating LISP
   Type values.  Current allocations are:


       Reserved:                        0    b'0000'
       LISP Map-Request:                1    b'0001'
       LISP Map-Reply:                  2    b'0010'
       LISP Map-Register:               3    b'0011'
       LISP-CONS Open Message:          8    b'1000'
       LISP-CONS Push-Add Message:      9    b'1001'
       LISP-CONS Push-Delete Message:   10   b'1010'
       LISP-CONS Unreachable Message    11   b'1011'


6.1.2.  Map-Request Message Format



        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Type=3D1 |A|R|P|S|         Reserved              | Record Count  =
|
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Source-EID-AFI        |            ITR-AFI            |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                   Source EID Address  ...                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                Originating ITR RLOC Address ...               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |   Reserved    | EID mask-len  |        EID-prefix-AFI         |
   Rec +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                       EID-prefix  ...                         |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                   Map-Reply Record  ...                       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                     Mapping Protocol Data                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


   Packet field descriptions:





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   Locator Reach Bits:  These bits MUST be set to 0 on transmission and
      ignored on receipt.  They cannot be used for indicating
      reachability because the Map-Request does not have the EID-prefix
      for the sending site so the receiver of the Map-Request cannot
      know what mapping entry to associate the reachability with.
      However, when Mapping Data is provided in the Map-Reply Record
      field, and the receiver of the Map-Request is configured to accept
      the mapping data, the R-bit per locator entry in the EID-prefix
      record is used to denote reachability.

   Nonce:  A 4-byte random value created by the sender of the Map-
      Request.

   Type:   1 (Map-Request)

   A: This is an authoritative bit, which is set to 0 for UDP-based Map-
      Requests sent by an ITR.  See other control-specific documents
      [CONS] for TCP-based Map-Requests.

   R: When set, it indicates a Map-Reply Record segment is included in
      the Map-Request.

   P: Indicates that a Map-Request should be treated as a "piggyback"
      locator reachability probe.  The receiver should respond with a
      Map-Reply with the P bit set and the nonce copied from the Map-
      Request.  Details on this usage will be provided in a future
      version of this draft.

   S: This is the SMR bit.  See Section 6.5.2 for details.

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this request message.  A
      record is comprised of the portion of the packet is labeled 'Rec'
      above and occurs the number of times equal to Record count.

   Source-EID-AFI:  Address family of the "Source EID Address" field.

   ITR-AFI:  Address family of the "Originating ITR RLOC Address" field.

   Source EID Address:  This is the EID of the source host which
      originated the packet which is invoking this Map-Request.

   Originating ITR RLOC Address:  Used to give the ETR the option of
      returning a Map-Reply in the address-family of this locator.






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   EID mask-len:  Mask length for EID prefix.

   EID-AFI:  Address family of EID-prefix according to [RFC2434]

   EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
      address-family.  When a Map-Request is sent by an ITR because a
      data packet is received for a destination where there is no
      mapping entry, the EID-prefix is set to the destination IP address
      of the data packet.  And the 'EID mask-len' is set to 32 or 128
      for IPv4 or IPv6, respectively.  When an xTR wants to query a site
      about the status of a mapping it already has cached, the EID-
      prefix used in the Map-Request has the same mask-length as the
      EID-prefix returned from the site when it sent a Map-Reply
      message.

   Map-Reply Record:  When the R bit is set, this field is the size of
      the "Record" field in the Map-Reply format.  This Map-Reply record
      contains the EID-to-RLOC mapping entry associated with the Source
      EID.  This allows the ETR which will receive this Map-Request to
      cache the data if it chooses to do so.

   Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
      is optional and present when the UDP length indicates there is
      enough space in the packet to include it.

6.1.3.  EID-to-RLOC UDP Map-Request Message

   A Map-Request is sent from an ITR when it needs a mapping for an EID,
   wants to test an RLOC for reachability, or wants to refresh a mapping
   before TTL expiration.  For the initial case, the destination IP
   address used for the Map-Request is the destination-EID from the
   packet which had a mapping cache lookup failure.  For the later 2
   cases, the destination IP address used for the Map-Request is one of
   the RLOC addresses from the locator-set of the map cache entry.  In
   all cases, the UDP source port number for the Map-Request message is
   a randomly allocated 16-bit value and the UDP destination port number
   is set to the well-known destination port number 4342.  A successful
   Map-Reply updates the cached set of RLOCs associated with the EID
   prefix range.

   Map-Requests can also be LISP encapsulated using UDP destination port
   4341 when sent from an ITR to a Map-Resolver.  Likewise, Map-Requests
   are LISP encapsulated the same way from a Map-Server to an ETR.
   Details on encapsulated Map-Requests and Map-Resolvers can be found
   in [LISP-MS].

   Map-Requests MUST be rate-limited.  It is recommended that a Map-
   Request for the same EID-prefix be sent no more than once per second.



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6.1.4.  Map-Reply Message Format



        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Type=3D2 |P|            Reserved                 | Record Count  =
|
   +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                          Record  TTL                          |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
   e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   c   |           Reserved            |            EID-AFI            |
   o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   r   |                          EID-prefix                           |
   d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
   | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   | o |           Unused Flags      |R|           Loc-AFI             |
   | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  \|                             Locator                           |
   +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                     Mapping Protocol Data                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


   Packet field descriptions:

   Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
      0 on transmission and ignored on receipt.  The locator
      reachability is encoded as the R-bit in each locator entry of each
      EID-prefix record.

   Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
      that is echoed here in the Map-Reply.

   Type:   2 (Map-Reply)

   P: Indicates that the Map-Reply is in response to a "piggyback"
      locator reachability Map-Request.  The nonce field should contain
      a copy of the nonce value from the original Map-Request.  Details
      on this usage will be provided in a future version of this draft.




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   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this reply message.  A record
      is comprised of that portion of the packet labeled 'Record' above
      and occurs the number of times equal to Record count.

   Record TTL:  The time in minutes the recipient of the Map-Reply will
      store the mapping.  If the TTL is 0, the entry should be removed
      from the cache immediately.  If the value is 0xffffffff, the
      recipient can decide locally how long to store the mapping.

   Locator Count:  The number of Locator entries.  A locator entry
      comprises what is labeled above as 'Loc'.  The locator count can
      be 0 indicating there are no locators for the EID-prefix.

   EID mask-len:  Mask length for EID prefix.

   A: The Authoritative bit, when sent by a UDP-based message is always
      set by the ETR.  See [CONS] for TCP-based Map-Replies.

   ACT:  This 3-bit field describes negative Map-Reply actions.  These
      bits are used only when the 'Locator Count' field is set to 0.
      The action bits are encoded only in Map-Reply messages.  The
      actions defined are used by an ITR or PTR when a destination EID
      matches a negative mapping cache entry.  The current assigned
      values are:



      (0) No action:  No action is being conveyed by the sender of the
         Map-Reply message.

      (1) Natively-Forward:  The packet is not encapsulated or dropped
         but natively forwarded.

      (2) Drop:  The packet is dropped silently.

      (3) Send-Map-Request:  The packet invokes sending a Map-Request.

   EID-AFI:  Address family of EID-prefix according to [RFC2434].

   EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
      address-family.

   Priority:  each RLOC is assigned a unicast priority.  Lower values
      are more preferable.  When multiple RLOCs have the same priority,
      they may be used in a load-split fashion.  A value of 255 means
      the RLOC MUST NOT be used for unicast forwarding.



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   Weight:  when priorities are the same for multiple RLOCs, the weight
      indicates how to balance unicast traffic between them.  Weight is
      encoded as a percentage of total unicast packets that match the
      mapping entry.  If a non-zero weight value is used for any RLOC,
      then all RLOCs must use a non-zero weight value and then the sum
      of all weight values MUST equal 100.  If a zero value is used for
      any RLOC weight, then all weights MUST be zero and the receiver of
      the Map-Reply will decide how to load-split traffic.  See
      Section 6.4 for a suggested hash algorithm to distribute load
      across locators with same priority and equal weight values.  When
      a single RLOC exists in a mapping entry, the weight value MUST be
      set to 100 and ignored on receipt.

   M Priority:  each RLOC is assigned a multicast priority used by an
      ETR in a receiver multicast site to select an ITR in a source
      multicast site for building multicast distribution trees.  A value
      of 255 means the RLOC MUST NOT be used for joining a multicast
      distribution tree.

   M Weight:  when priorities are the same for multiple RLOCs, the
      weight indicates how to balance building multicast distribution
      trees across multiple ITRs.  The weight is encoded as a percentage
      of total number of trees build to the source site identified by
      the EID-prefix.  If a non-zero weight value is used for any RLOC,
      then all RLOCs must use a non-zero weight value and then the sum
      of all weight values MUST equal 100.  If a zero value is used for
      any RLOC weight, then all weights MUST be zero and the receiver of
      the Map-Reply will decide how to distribute multicast state across
      ITRs.

   Unused Flags:  set to 0 when sending and ignored on receipt.

   R: when this bit is set, the locator is known to be reachable from
      the Map-Reply sender's perspective.  When there is a single
      mapping record in the message, the R-bit for each locator must
      have a consistent setting with the bitfield setting of the 'Loc
      Reach Bits' field in the early part of the header.  When there are
      multiple mapping records in the message, the 'Loc Reach Bits'
      field is set to 0.

   Locator:  an IPv4 or IPv6 address (as encoded by the 'Loc-AFI' field)
      assigned to an ETR or router acting as a proxy replier for the
      EID-prefix.  Note that the destination RLOC address MAY be an
      anycast address.  A source RLOC can be an anycast address as well.
      The source or destination RLOC MUST NOT be the broadcast address
      (255.255.255.255 or any subnet broadcast address known to the
      router), and MUST NOT be a link-local multicast address.  The
      source RLOC MUST NOT be a multicast address.  The destination RLOC



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      SHOULD be a multicast address if it is being mapped from a
      multicast destination EID.

   Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
      is optional and present when the UDP length indicates there is
      enough space in the packet to include it.

6.1.5.  EID-to-RLOC UDP Map-Reply Message

   When a Data Probe packet or a Map-Request triggers a Map-Reply to be
   sent, the RLOCs associated with the EID-prefix matched by the EID in
   the original packet destination IP address field will be returned.
   The RLOCs in the Map-Reply are the globally-routable IP addresses of
   the ETR but are not necessarily reachable; separate testing of
   reachability is required.

   Note that a Map-Reply may contain different EID-prefix granularity
   (prefix + length) than the Map-Request which triggers it.  This might
   occur if a Map-Request were for a prefix that had been returned by an
   earlier Map-Reply.  In such a case, the requester updates its cache
   with the new prefix information and granularity.  For example, a
   requester with two cached EID-prefixes that are covered by a Map-
   Reply containing one, less-specific prefix, replaces the entry with
   the less-specific EID-prefix.  Note that the reverse, replacement of
   one less-specific prefix with multiple more-specific prefixes, can
   also occur but not by removing the less-specific prefix rather by
   adding the more-specific prefixes which during a lookup will override
   the less-specific prefix.

   Replies SHOULD be sent for an EID-prefix no more often than once per
   second to the same requesting router.  For scalability, it is
   expected that aggregation of EID addresses into EID-prefixes will
   allow one Map-Reply to satisfy a mapping for the EID addresses in the
   prefix range thereby reducing the number of Map-Request messages.

   The addresses for a encapsulated data packets or Map-Request message
   are swapped and used for sending the Map-Reply.  The UDP source and
   destination ports are swapped as well.  That is, the source port in
   the UDP header for the Map-Reply is set to the well-known UDP port
   number 4342.

   Map-Reply records can have an empty locator-set.  This type of a Map-
   Reply is called a Negative Map-Reply.  Negative Map-Replies convey
   special actions by the sender to the ITR or PTR which have solicited
   the Map-Reply.  There are two primary applications for Negative Map-
   Replies.  The first is for a Map-Resolver to instruct an ITR or PTR
   when a destination is for a LISP site versus a non-LISP site.  And
   the other is to source quench Map-Requests which are sent for non-



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   allocated EIDs.

6.1.6.  Map-Register Message Format

   The usage details of the Map-Register message can be found in
   specification [LISP-MS].  This section solely defines the message
   format.

   The message is sent in a UDP with a destination UDP port 4342 and a
   randomly selected UDP port number.  Before an IPv4 or IPv6 network
   layer header is prepended, an AH header is prepended to carry
   authentication information.  The format conforms to the IPsec
   specification [RFC2402].  The Map-Register message will use transport
   mode by setting the IP protocol number field or the IPv6 next-header
   field to 51.

   The AH header from [RFC2402] is:



        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       | Next Header   |  Payload Len  |          RESERVED             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                 Security Parameters Index (SPI)               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                    Sequence Number Field                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                Authentication Data (variable)                 |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


   The Next Header field is set to UDP.  The SPI field is set to 0
   (since no Security Association or Key Exchange protocol is being
   used).  The Sequence Number is a randomly chosen value by the sender.
   The Authentication Data is 16 bytes and holds a MD5 HMAC.

   The Map-Register message format is:










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        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Type=3D3 |P|            Reserved                 | Record Count  =
|
   +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                          Record  TTL                          |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
   e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   c   |           Reserved            |            EID-AFI            |
   o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   r   |                          EID-prefix                           |
   d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
   | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   | o |           Unused Flags      |R|           Loc-AFI             |
   | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  \|                             Locator                           |
   +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


   Packet field descriptions:

   Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
      0 on transmission and ignored on receipt.  The locator
      reachability is encoded as the R-bit in each locator entry of each
      EID-prefix record.

   Nonce:  The Nonce field is set to 0 in Map-Register messages.

   Type:   3 (Map-Register)

   P: Set to 1 by an ETR which sends a Map-Register message requesting
      for the Map-Server to proxy Map-Reply.  The Map-Server will send
      non-authoritative Map-Replies on behalf of the ETR.  Details on
      this usage will be provided in a future version of this draft.

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this Map-Register message.  A
      record is comprised of that portion of the packet labeled 'Record'
      above and occurs the number of times equal to Record count.

   The definition of the rest of the Map-Register can be found in the



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   Map-Reply section.

6.2.  Routing Locator Selection

   Both client-side and server-side may need control over the selection
   of RLOCs for conversations between them.  This control is achieved by
   manipulating the Priority and Weight fields in EID-to-RLOC Map-Reply
   messages.  Alternatively, RLOC information may be gleaned from
   received tunneled packets or EID-to-RLOC Map-Request messages.

   The following enumerates different scenarios for choosing RLOCs and
   the controls that are available:

   o  Server-side returns one RLOC.  Client-side can only use one RLOC.
      Server-side has complete control of the selection.

   o  Server-side returns a list of RLOC where a subset of the list has
      the same best priority.  Client can only use the subset list
      according to the weighting assigned by the server-side.  In this
      case, the server-side controls both the subset list and load-
      splitting across its members.  The client-side can use RLOCs
      outside of the subset list if it determines that the subset list
      is unreachable (unless RLOCs are set to a Priority of 255).  Some
      sharing of control exists: the server-side determines the
      destination RLOC list and load distribution while the client-side
      has the option of using alternatives to this list if RLOCs in the
      list are unreachable.

   o  Server-side sets weight of 0 for the RLOC subset list.  In this
      case, the client-side can choose how the traffic load is spread
      across the subset list.  Control is shared by the server-side
      determining the list and the client determining load distribution.
      Again, the client can use alternative RLOCs if the server-provided
      list of RLOCs are unreachable.

   o  Either side (more likely on the server-side ETR) decides not to
      send a Map-Request.  For example, if the server-side ETR does not
      send Map-Requests, it gleans RLOCs from the client-side ITR,
      giving the client-side ITR responsibility for bidirectional RLOC
      reachability and preferability.  Server-side ETR gleaning of the
      client-side ITR RLOC is done by caching the inner header source
      EID and the outer header source RLOC of received packets.  The
      client-side ITR controls how traffic is returned and can alternate
      using an outer header source RLOC, which then can be added to the
      list the server-side ETR uses to return traffic.  Since no
      Priority or Weights are provided using this method, the server-
      side ETR must assume each client-side ITR RLOC uses the same best
      Priority with a Weight of zero.  In addition, since EID-prefix



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      encoding cannot be conveyed in data packets, the EID-to-RLOC cache
      on tunnel routers can grow to be very large.

   RLOCs that appear in EID-to-RLOC Map-Reply messages are considered
   reachable.  The Map-Reply and the database mapping service does not
   provide any reachability status for Locators.  This is done outside
   of the mapping service.  See next section for details.

6.3.  Routing Locator Reachability

   There are 4 methods for determining when a Locator is either
   reachable or has become unreachable:

   1.  Locator reachability is determined by an ETR by examining the
       Loc-Reach-Bits from a LISP header of a encapsulated data packet
       which is provided by an ITR when an ITR encapsulates data.

   2.  Locator unreachability is determined by an ITR by receiving ICMP
       Network or Host Unreachable messages.

   3.  Locator unreachability can also be determined by an BGP-enabled
       ITR when there is no prefix matching a Locator address from the
       BGP RIB.

   4.  Locator unreachability is determined when a host sends an ICMP
       Port Unreachable message.  This occurs when an ITR may not use
       any methods of interworking. one which is describe in [INTERWORK]
       and the encapsulated data packet is received by a host at the
       destination non-LISP site.

   5.  Locator reachability is determined by receiving a Map-Reply
       message from a ETR's Locator address in response to a previously
       sent Map-Request.

   6.  Locator reachability can also be determined by receiving packets
       encapsulated by the ITR assigned to the locator address.

   When determining Locator reachability by examining the Loc-Reach-Bits
   from the LISP encapsulate data packet, an ETR will receive up to date
   status from the ITR closest to the Locators at the source site.  The
   ITRs at the source site can determine reachability when running their
   IGP at the site.  When the ITRs are deployed on CE routers, typically
   a default route is injected into the site's IGP from each of the
   ITRs.  If an ITR goes down, the CE-PE link goes down, or the PE
   router goes down, the CE router withdraws the default route.  This
   allows the other ITRs at the site to determine one of the Locators
   has gone unreachable.




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   The Locators listed in a Map-Reply are numbered with ordinals 0 to
   n-1.  The Loc-Reach-Bits in a LISP Data Message are numbered from 0
   to n-1 starting with the least significant bit numbered as 0.  So,
   for example, if the ITR with locator listed as the 3rd Locator
   position in the Map-Reply goes down, all other ITRs at the site will
   have the 3rd bit from the right cleared (the bit that corresponds to
   ordinal 2).

   When an ETR decapsulates a packet, it will look for a change in the
   Loc-Reach-Bits value.  When a bit goes from 1 to 0, the ETR will
   refrain from encapsulating packets to the Locator that has just gone
   unreachable.  It can start using the Locator again when the bit that
   corresponds to the Locator goes from 0 to 1.  Loc-Reach-Bits are
   associated with a locator-set per EID-prefix.  Therefore, when a
   locator becomes unreachable, the loc-reach-bit that corresponds to
   that locator's position in the list returned by the last Map-Reply
   will be set to zero for that particular EID-prefix.

   When ITRs at the site are not deployed in CE routers, the IGP can
   still be used to determine the reachability of Locators provided they
   are injected a stub links into the IGP.  This is typically done when
   a /32 address is configured on a loopback interface.

   When ITRs receive ICMP Network or Host Unreachable messages as a
   method to determine unreachability, they will refrain from using
   Locators which are described in Locator lists of Map-Replies.
   However, using this approach is unreliable because many network
   operators turn off generation of ICMP Unreachable messages.

   If an ITR does receive an ICMP Network or Host Unreachable message,
   it MAY originate its own ICMP Unreachable message destined for the
   host that originated the data packet the ITR encapsulated.

   Also, BGP-enabled ITRs can unilaterally examine the BGP RIB to see if
   a locator address from a locator-set in a mapping entry matches a
   prefix.  If it does not find one and BGP is running in the Default
   Free Zone (DFZ), it can decide to not use the locator even though the
   Loc-Reach-Bits indicate the locator is up.  In this case, the path
   from the ITR to the ETR that is assigned the locator is not
   available.  More details are in [LOC-ID-ARCH].

   Optionally, an ITR can send a Map-Request to a Locator and if a Map-
   Reply is returned, reachability of the Locator has been determined.
   Obviously, sending such probes increases the number of control
   messages originated by tunnel routers for active flows, so Locators
   are assumed to be reachable when they are advertised.

   This assumption does create a dependency: Locator unreachability is



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   detected by the receipt of ICMP Host Unreachable messages.  When an
   Locator has been determined to be unreachable, it is not used for
   active traffic; this is the same as if it were listed in a Map-Reply
   with priority 255.

   The ITR can test the reachability of the unreachable Locator by
   sending periodic Requests.  Both Requests and Replies MUST be rate-
   limited.  Locator reachability testing is never done with data
   packets since that increases the risk of packet loss for end-to-end
   sessions.

   When an ETR decapsulates a packet, it knows that it is reachable from
   the encapsulating ITR because that is how the packet arrived.  In
   most cases, the ETR can also reach the ITR but cannot assume this to
   be true due to the possibility of path assymetry.  In the presence of
   unidirectional traffic flow from an ITR to an ETR, the ITR should not
   use the lack of return traffic as an indication that the ETR is
   unreachable.  Instead, it must use an alternate mechanisms to
   determine reachability.

6.3.1.  Echo Nonce Algorithm

   When there is bidirectional data flow between a pair of locators, a
   simple mechanism called "nonce echoing" can be used to determine
   reachability between an ITR and ETR.  When an ITR wants to solicit a
   nonce echo, it sets the E-bit and places a 24-bit nonce in the LISP
   header of the next encapsulated data packet.

   When this packet is received by the ETR, the encapsulated packet is
   forwarded as normal.  When the ETR next sends a data packet to the
   ITR, it includes the nonce received earlier.  The ITR sees this "echo
   nonce reply" and knows the path to and from the ETR is up.

   The time the ITR waits for the echoed nonce before it determines the
   path is down is variable and a choice left for the implementation.

   If the ITR is receiving packets from the ETR but does not see the
   nonce echoed, then the path to the ETR is down.  This decision may be
   overridden by other locator reachability algorithms.  Once the ITR
   determines the path to the ETR is down it can switch to another
   locator for that EID-prefix.

   Note that "ITR" and "ETR" are relative terms here.  Both devices must
   be implementing both ITR and ETR functionality for the echo nonce
   mechanism to operate.

   The ITR and ETR may both go into echo-nonce-request state at the same
   time.  The number of packets sent or the time during which echo nonce



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   requests are sent is an implementation specific setting.  However,
   when an ITR is in echo-nonce-request state, it can echo the ETR's
   nonce in the next packet that it encapsulates and then subsequently,
   continue sending echo-nonce-request packets.

   This mechanism does not completely solve the forward path
   reachability problem as traffic may be unidirectional.  That is, the
   ETR receiving traffic at a site may not may not be the same device as
   an ITR which transmits traffic from that site or the site to site
   traffic is unidirectional so there is no ITR returning traffic.

   Note that other locator reachability mechanisms are being researched.

6.4.  Routing Locator Hashing

   When an ETR provides an EID-to-RLOC mapping in a Map-Reply message to
   a requesting ITR, the locator-set for the EID-prefix may contain
   different priority values for each locator address.  When more than
   one best priority locator exists, the ITR can decide how to load
   share traffic against the corresponding locators.

   The following hash algorithm may be used by an ITR to select a
   locator for a packet destined to an EID for the EID-to-RLOC mapping:

   1.  Either a source and destination address hash can be used or the
       traditional 5-tuple hash which includes the source and
       destination addresses, source and destination TCP, UDP, or SCTP
       port numbers and the IP protocol number field or IPv6 next-
       protocol fields of a packet a host originates from within a LISP
       site.  When a packet is not a TCP, UDP, or SCTP packet, the
       source and destination addresses only from the header are used to
       compute the hash.

   2.  Take the hash value and divide it by the number of locators
       stored in the locator-set for the EID-to-RLOC mapping.

   3.  The remainder will be yield a value of 0 to "number of locators
       minus 1".  Use the remainder to select the locator in the
       locator-set.

   Note that when a packet is LISP encapsulated, the source port number
   in the outer UDP header needs to be set.  Selecting a random value
   allows core routers which are attached to Link Aggregation Groups
   (LAGs) to load-split the encapsulated packets across member links of
   such LAGs.  Otherwise, core routers would see a single flow, since
   packets have a source address of the ITR, for packets which are
   originated by different EIDs at the source site.  A suggested setting
   for the source port number computed by an ITR is a 5-tuple hash



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   function on the inner header, as described above.

6.5.  Changing the Contents of EID-to-RLOC Mappings

   Since the LISP architecture uses a caching scheme to retrieve and
   store EID-to-RLOC mappings, the only way an ITR can get a more up-to-
   date mapping is to re-request the mapping.  However, the ITRs do not
   know when the mappings change and the ETRs do not keep track of who
   requested its mappings.  For scalability reasons, we want to maintain
   this approach but need to provide a way for ETRs change their
   mappings and inform the sites that are currently communicating with
   the ETR site using such mappings.

   When a locator record is added to the end of a locator-set, it is
   easy to update mappings.  We assume new mappings will maintain the
   same locator ordering as the old mapping but just have new locators
   appended to the end of the list.  So some ITRs can have a new mapping
   while other ITRs have only an old mapping that is used until they
   time out.  When an ITR has only an old mapping but detects bits set
   in the loc-reach-bits that correspond to locators beyond the list it
   has cached, it simply ignores them.

   When a locator record is removed from a locator-set, ITRs that have
   the mapping cached will not use the removed locator because the xTRs
   will set the loc-reach-bit to 0.  So even if the locator is in the
   list, it will not be used.  For new mapping requests, the xTRs can
   set the locator address to 0 as well as setting the corresponding
   loc-reach-bit to 0.  This forces ITRs with old or new mappings to
   avoid using the removed locator.

   If many changes occur to a mapping over a long period of time, one
   will find empty record slots in the middle of the locator-set and new
   records appended to the locator-set.  At some point, it would be
   useful to compact the locator-set so the loc-reach-bit settings can
   be efficiently packed.

   We propose here two approaches for locator-set compaction, one
   operational and the other a protocol mechanism.  The operational
   approach uses a clock sweep method.  The protocol approach uses the
   concept of Solicit-Map-Requests.

6.5.1.  Clock Sweep

   The clock sweep approach uses planning in advance and the use of
   count-down TTLs to time out mappings that have already been cached.
   The default setting for an EID-to-RLOC mapping TTL is 24 hours.  So
   there is a 24 hour window to time out old mappings.  The following
   clock sweep procedure is used:



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   1.  24 hours before a mapping change is to take effect, a network
       administrator configures the ETRs at a site to start the clock
       sweep window.

   2.  During the clock sweep window, ETRs continue to send Map-Reply
       messages with the current (unchanged) mapping records.  The TTL
       for these mappings is set to 1 hour.

   3.  24 hours later, all previous cache entries will have timed out,
       and any active cache entries will time out within 1 hour.  During
       this 1 hour window the ETRs continue to send Map-Reply messages
       with the current (unchanged) mapping records with the TTL set to
       1 minute.

   4.  At the end of the 1 hour window, the ETRs will send Map-Reply
       messages with the new (changed) mapping records.  So any active
       caches can get the new mapping contents right away if not cached,
       or in 1 minute if they had the mapping cached.

6.5.2.  Solicit-Map-Request (SMR)

   Soliciting a Map-Request is a selective way for xTRs, at the site
   where mappings change, to control the rate they receive requests for
   Map-Reply messages.  SMRs are also used to tell remote ITRs to update
   the mappings they have cached.

   Since the xTRs don't keep track of remote ITRs that have cached their
   mappings, they can not tell exactly who needs the new mapping
   entries.  So an xTR will solicit Map-Requests from sites it is
   currently sending encapsulated data to, and only from those sites.
   The xTRs can locally decide the algorithm for how often and to how
   many sites it sends SMR messages.

   An SMR message is simply a bit set in an encapsulated data packet
   (and a Map-Request message).  When an ETR at a remote site
   decapsulates a data packet that has the SMR bit set, it can tell that
   a new Map-Request message is being solicited.  Both the xTR that
   sends the SMR message and the site that acts on the SMR message MUST
   be rate-limited.

   The following procedure shows how a SMR exchange occurs when a site
   is doing locator-set compaction for an EID-to-RLOC mapping:

   1.  When the database mappings in an ETR change, the ITRs at the site
       begin to set the SMR bit in packets they encapsulate to the sites
       they communicate with.





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   2.  A remote xTR which decapsulates a packet with the SMR bit set
       will schedule sending a Map-Request message to the source locator
       address of the encapsulated packet.  The nonce in the Map-Request
       is copied from the nonce in the encapsulated data packet that has
       the SMR bit set.

   3.  The remote xTR retransmits the Map-Request slowly until it gets a
       Map-Reply while continuing to use the cached mapping.

   4.  The ETRs at the site with the changed mapping will reply to the
       Map-Request with a Map-Reply message provided the Map-Request
       nonce matches the nonce from the SMR.  The Map-Reply messages
       SHOULD be rate limited.  This is important to avoid Map-Reply
       implosion.

   5.  The ETRs, at the site with the changed mapping, records the fact
       that the site that sent the Map-Request has received the new
       mapping data in the mapping cache entry for the remote site so
       the loc-reach-bits are reflective of the new mapping for packets
       going to the remote site.  The ETR then stops sending packets
       with the SMR-bit set.

   For security reasons an ITR MUST NOT process unsolicited Map-Replies.
   The nonce MUST be carried from SMR packet, into the resultant Map-
   Request, and then into Map-Reply to reduce spoofing attacks.


























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7.  Router Performance Considerations

   LISP is designed to be very hardware-based forwarding friendly.  By
   doing tunnel header prepending [RFC1955] and stripping instead of re-
   writing addresses, existing hardware can support the forwarding model
   with little or no modification.  Where modifications are required,
   they should be limited to re-programming existing hardware rather
   than requiring expensive design changes to hard-coded algorithms in
   silicon.

   A few implementation techniques can be used to incrementally
   implement LISP:

   o  When a tunnel encapsulated packet is received by an ETR, the outer
      destination address may not be the address of the router.  This
      makes it challenging for the control plane to get packets from the
      hardware.  This may be mitigated by creating special FIB entries
      for the EID-prefixes of EIDs served by the ETR (those for which
      the router provides an RLOC translation).  These FIB entries are
      marked with a flag indicating that control plane processing should
      be performed.  The forwarding logic of testing for particular IP
      protocol number value is not necessary.  No changes to existing,
      deployed hardware should be needed to support this.

   o  On an ITR, prepending a new IP header is as simple as adding more
      bytes to a MAC rewrite string and prepending the string as part of
      the outgoing encapsulation procedure.  Many routers that support
      GRE tunneling [RFC2784] or 6to4 tunneling [RFC3056] can already
      support this action.

   o  When a received packet's outer destination address contains an EID
      which is not intended to be forwarded on the routable topology
      (i.e.  LISP 1.5), the source address of a data packet or the
      router interface with which the source is associated (the
      interface from which it was received) can be associated with a VRF
      (Virtual Routing/Forwarding), in which a different (i.e. non-
      congruent) topology can be used to find EID-to-RLOC mappings.














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8.  Deployment Scenarios

   This section will explore how and where ITRs and ETRs can be deployed
   and will discuss the pros and cons of each deployment scenario.
   There are two basic deployment trade-offs to consider: centralized
   versus distributed caches and flat, recursive, or re-encapsulating
   tunneling.

   When deciding on centralized versus distributed caching, the
   following issues should be considered:

   o  Are the tunnel routers spread out so that the caches are spread
      across all the memories of each router?

   o  Should management "touch points" be minimized by choosing few
      tunnel routers, just enough for redundancy?

   o  In general, using more ITRs doesn't increase management load,
      since caches are built and stored dynamically.  On the other hand,
      more ETRs does require more management since EID-prefix-to-RLOC
      mappings need to be explicitly configured.

   When deciding on flat, recursive, or re-encapsulation tunneling, the
   following issues should be considered:

   o  Flat tunneling implements a single tunnel between source site and
      destination site.  This generally offers better paths between
      sources and destinations with a single tunnel path.

   o  Recursive tunneling is when tunneled traffic is again further
      encapsulated in another tunnel, either to implement VPNs or to
      perform Traffic Engineering.  When doing VPN-based tunneling, the
      site has some control since the site is prepending a new tunnel
      header.  In the case of TE-based tunneling, the site may have
      control if it is prepending a new tunnel header, but if the site's
      ISP is doing the TE, then the site has no control.  Recursive
      tunneling generally will result in suboptimal paths but at the
      benefit of steering traffic to resource available parts of the
      network.

   o  The technique of re-encapsulation ensures that packets only
      require one tunnel header.  So if a packet needs to be rerouted,
      it is first decapsulated by the ETR and then re-encapsulated with
      a new tunnel header using a new RLOC.

   The next sub-sections will describe where tunnel routers can reside
   in the network.




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8.1.  First-hop/Last-hop Tunnel Routers

   By locating tunnel routers close to hosts, the EID-prefix set is at
   the granularity of an IP subnet.  So at the expense of more EID-
   prefix-to-RLOC sets for the site, the caches in each tunnel router
   can remain relatively small.  But caches always depend on the number
   of non-aggregated EID destination flows active through these tunnel
   routers.

   With more tunnel routers doing encapsulation, the increase in control
   traffic grows as well: since the EID-granularity is greater, more
   Map-Requests and Map-Replies are traveling between more routers.

   The advantage of placing the caches and databases at these stub
   routers is that the products deployed in this part of the network
   have better price-memory ratios then their core router counterparts.
   Memory is typically less expensive in these devices and fewer routes
   are stored (only IGP routes).  These devices tend to have excess
   capacity, both for forwarding and routing state.

   LISP functionality can also be deployed in edge switches.  These
   devices generally have layer-2 ports facing hosts and layer-3 ports
   facing the Internet.  Spare capacity is also often available in these
   devices as well.

8.2.  Border/Edge Tunnel Routers

   Using customer-edge (CE) routers for tunnel endpoints allows the EID
   space associated with a site to be reachable via a small set of RLOCs
   assigned to the CE routers for that site.

   This offers the opposite benefit of the first-hop/last-hop tunnel
   router scenario: the number of mapping entries and network management
   touch points are reduced, allowing better scaling.

   One disadvantage is that less of the network's resources are used to
   reach host endpoints thereby centralizing the point-of-failure domain
   and creating network choke points at the CE router.

   Note that more than one CE router at a site can be configured with
   the same IP address.  In this case an RLOC is an anycast address.
   This allows resilience between the CE routers.  That is, if a CE
   router fails, traffic is automatically routed to the other routers
   using the same anycast address.  However, this comes with the
   disadvantage where the site cannot control the entrance point when
   the anycast route is advertised out from all border routers.





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8.3.  ISP Provider-Edge (PE) Tunnel Routers

   Use of ISP PE routers as tunnel endpoint routers gives an ISP control
   over the location of the egress tunnel endpoints.  That is, the ISP
   can decide if the tunnel endpoints are in the destination site (in
   either CE routers or last-hop routers within a site) or at other PE
   edges.  The advantage of this case is that two or more tunnel headers
   can be avoided.  By having the PE be the first router on the path to
   encapsulate, it can choose a TE path first, and the ETR can
   decapsulate and re-encapsulate for a tunnel to the destination end
   site.

   An obvious disadvantage is that the end site has no control over
   where its packets flow or the RLOCs used.

   As mentioned in earlier sections a combination of these scenarios is
   possible at the expense of extra packet header overhead, if both site
   and provider want control, then recursive or re-encapsulating tunnels
   are used.
































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9.  Traceroute Considerations

   When a source host in a LISP site initiates a traceroute to a
   destination host in another LISP site, it is highly desirable for it
   to see the entire path.  Since packets are encapsulated from ITR to
   ETR, the hop across the tunnel could be viewed as a single hop.
   However, LISP traceroute will provide the entire path so the user can
   see 3 distinct segments of the path from a source LISP host to a
   destination LISP host:


      Segment 1 (in source LISP site based on EIDs):

          source-host ---> first-hop ... next-hop ---> ITR

      Segment 2 (in the core network based on RLOCs):

          ITR ---> next-hop ... next-hop ---> ETR

      Segment 3 (in the destination LISP site based on EIDs):

          ETR ---> next-hop ... last-hop ---> destination-host

   For segment 1 of the path, ICMP Time Exceeded messages are returned
   in the normal matter as they are today.  The ITR performs a TTL
   decrement and test for 0 before encapsulating.  So the ITR hop is
   seen by the traceroute source has an EID address (the address of
   site-facing interface).

   For segment 2 of the path, ICMP Time Exceeded messages are returned
   to the ITR because the TTL decrement to 0 is done on the outer
   header, so the destination of the ICMP messages are to the ITR RLOC
   address, the source source RLOC address of the encapsulated
   traceroute packet.  The ITR looks inside of the ICMP payload to
   inspect the traceroute source so it can return the ICMP message to
   the address of the traceroute client as well as retaining the core
   router IP address in the ICMP message.  This is so the traceroute
   client can display the core router address (the RLOC address) in the
   traceroute output.  The ETR returns its RLOC address and responds to
   the TTL decrement to 0 like the previous core routers did.

   For segment 3, the next-hop router downstream from the ETR will be
   decrementing the TTL for the packet that was encapsulated, sent into
   the core, decapsulated by the ETR, and forwarded because it isn't the
   final destination.  If the TTL is decremented to 0, any router on the
   path to the destination of the traceroute, including the next-hop
   router or destination, will send an ICMP Time Exceeded message to the
   source EID of the traceroute client.  The ICMP message will be



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   encapsulated by the local ITR and sent back to the ETR in the
   originated traceroute source site, where the packet will be delivered
   to the host.

9.1.  IPv6 Traceroute

   IPv6 traceroute follows the procedure described above since the
   entire traceroute data packet is included in ICMP Time Exceeded
   message payload.  Therefore, only the ITR needs to pay special
   attention for forwarding ICMP messages back to the traceroute source.

9.2.  IPv4 Traceroute

   For IPv4 traceroute, we cannot follow the above procedure since IPv4
   ICMP Time Exceeded messages only include the invoking IP header and 8
   bytes that follow the IP header.  Therefore, when a core router sends
   an IPv4 Time Exceeded message to an ITR, all the ITR has in the ICMP
   payload is the encapsulated header it prepended followed by a UDP
   header.  The original invoking IP header, and therefore the identity
   of the traceroute source is lost.

   The solution we propose to solve this problem is to cache traceroute
   IPv4 headers in the ITR and to match them up with corresponding IPv4
   Time Exceeded messages received from core routers and the ETR.  The
   ITR will use a circular buffer for caching the IPv4 and UDP headers
   of traceroute packets.  It will select a 16-bit number as a key to
   find them later when the IPv4 Time Exceeded messages are received.
   When an ITR encapsulates an IPv4 traceroute packet, it will use the
   16-bit number as the UDP source port in the encapsulating header.
   When the ICMP Time Exceeded message is returned to the ITR, the UDP
   header of the encapsulating header is present in the ICMP payload
   thereby allowing the ITR to find the cached headers for the
   traceroute source.  The ITR puts the cached headers in the payload
   and sends the ICMP Time Exceeded message to the traceroute source
   retaining the source address of the original ICMP Time Exceeded
   message (a core router or the ETR of the site of the traceroute
   destination).

9.3.  Traceroute using Mixed Locators

   When either an IPv4 traceroute or IPv6 traceroute is originated and
   the ITR encapsulates it in the other address family header, you
   cannot get all 3 segments of the traceroute.  Segment 2 of the
   traceroute can not be conveyed to the traceroute source since it is
   expecting addresses from intermediate hops in the same address format
   for the type of traceroute it originated.  Therefore, in this case,
   segment 2 will make the tunnel look like one hop.  All the ITR has to
   do to make this work is to not copy the inner TTL to the outer,



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   encapsulating header's TTL when a traceroute packet is encapsulated
   using an RLOC from a different address family.  This will cause no
   TTL decrement to 0 to occur in core routers between the ITR and ETR.
















































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10.  Mobility Considerations

   There are several kinds of mobility of which only some might be of
   concern to LISP.  Essentially they are as follows.

10.1.  Site Mobility

   A site wishes to change its attachment points to the Internet, and
   its LISP Tunnel Routers will have new RLOCs when it changes upstream
   providers.  Changes in EID-RLOC mappings for sites are expected to be
   handled by configuration, outside of the LISP protocol.

10.2.  Slow Endpoint Mobility

   An individual endpoint wishes to move, but is not concerned about
   maintaining session continuity.  Renumbering is involved.  LISP can
   help with the issues surrounding renumbering [RFC4192] [LISA96] by
   decoupling the address space used by a site from the address spaces
   used by its ISPs.  [RFC4984]

10.3.  Fast Endpoint Mobility

   Fast endpoint mobility occurs when an endpoint moves relatively
   rapidly, changing its IP layer network attachment point.  Maintenance
   of session continuity is a goal.  This is where the Mobile IPv4
   [RFC3344bis] and Mobile IPv6 [RFC3775] [RFC4866] mechanisms are used,
   and primarily where interactions with LISP need to be explored.

   The problem is that as an endpoint moves, it may require changes to
   the mapping between its EID and a set of RLOCs for its new network
   location.  When this is added to the overhead of mobile IP binding
   updates, some packets might be delayed or dropped.

   In IPv4 mobility, when an endpoint is away from home, packets to it
   are encapsulated and forwarded via a home agent which resides in the
   home area the endpoint's address belongs to.  The home agent will
   encapsulate and forward packets either directly to the endpoint or to
   a foreign agent which resides where the endpoint has moved to.
   Packets from the endpoint may be sent directly to the correspondent
   node, may be sent via the foreign agent, or may be reverse-tunneled
   back to the home agent for delivery to the mobile node.  As the
   mobile node's EID or available RLOC changes, LISP EID-to-RLOC
   mappings are required for communication between the mobile node and
   the home agent, whether via foreign agent or not.  As a mobile
   endpoint changes networks, up to three LISP mapping changes may be
   required:





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   o  The mobile node moves from an old location to a new visited
      network location and notifies its home agent that it has done so.
      The Mobile IPv4 control packets the mobile node sends pass through
      one of the new visited network's ITRs, which needs a EID-RLOC
      mapping for the home agent.

   o  The home agent might not have the EID-RLOC mappings for the mobile
      node's "care-of" address or its foreign agent in the new visited
      network, in which case it will need to acquire them.

   o  When packets are sent directly to the correspondent node, it may
      be that no traffic has been sent from the new visited network to
      the correspondent node's network, and the new visited network's
      ITR will need to obtain an EID-RLOC mapping for the correspondent
      node's site.

   In addition, if the IPv4 endpoint is sending packets from the new
   visited network using its original EID, then LISP will need to
   perform a route-returnability check on the new EID-RLOC mapping for
   that EID.

   In IPv6 mobility, packets can flow directly between the mobile node
   and the correspondent node in either direction.  The mobile node uses
   its "care-of" address (EID).  In this case, the route-returnability
   check would not be needed but one more LISP mapping lookup may be
   required instead:

   o  As above, three mapping changes may be needed for the mobile node
      to communicate with its home agent and to send packets to the
      correspondent node.

   o  In addition, another mapping will be needed in the correspondent
      node's ITR, in order for the correspondent node to send packets to
      the mobile node's "care-of" address (EID) at the new network
      location.

   When both endpoints are mobile the number of potential mapping
   lookups increases accordingly.

   As a mobile node moves there are not only mobility state changes in
   the mobile node, correspondent node, and home agent, but also state
   changes in the ITRs and ETRs for at least some EID-prefixes.

   The goal is to support rapid adaptation, with little delay or packet
   loss for the entire system.  Heuristics can be added to LISP to
   reduce the number of mapping changes required and to reduce the delay
   per mapping change.  Also IP mobility can be modified to require
   fewer mapping changes.  In order to increase overall system



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   performance, there may be a need to reduce the optimization of one
   area in order to place fewer demands on another.

   In LISP, one possibility is to "glean" information.  When a packet
   arrives, the ETR could examine the EID-RLOC mapping and use that
   mapping for all outgoing traffic to that EID.  It can do this after
   performing a route-returnability check, to ensure that the new
   network location does have a internal route to that endpoint.
   However, this does not cover the case where an ITR (the node assigned
   the RLOC) at the mobile-node location has been compromised.

   Mobile IP packet exchange is designed for an environment in which all
   routing information is disseminated before packets can be forwarded.
   In order to allow the Internet to grow to support expected future
   use, we are moving to an environment where some information may have
   to be obtained after packets are in flight.  Modifications to IP
   mobility should be considered in order to optimize the behavior of
   the overall system.  Anything which decreases the number of new EID-
   RLOC mappings needed when a node moves, or maintains the validity of
   an EID-RLOC mapping for a longer time, is useful.

10.4.  Fast Network Mobility

   In addition to endpoints, a network can be mobile, possibly changing
   xTRs.  A "network" can be as small as a single router and as large as
   a whole site.  This is different from site mobility in that it is
   fast and possibly short-lived, but different from endpoint mobility
   in that a whole prefix is changing RLOCs.  However, the mechanisms
   are the same and there is no new overhead in LISP.  A map request for
   any endpoint will return a binding for the entire mobile prefix.

   If mobile networks become a more common occurrence, it may be useful
   to revisit the design of the mapping service and allow for dynamic
   updates of the database.

   The issue of interactions between mobility and LISP needs to be
   explored further.  Specific improvements to the entire system will
   depend on the details of mapping mechanisms.  Mapping mechanisms
   should be evaluated on how well they support session continuity for
   mobile nodes.

10.5.  LISP Mobile Node Mobility

   An mobile device can use the LISP infrastructure to achieve mobility
   by implementing the LISP encapsulation and decapsulation functions
   and acting as a simple ITR/ETR.  By doing this, such a "LISP mobile
   node" can use topologically-independent EID IP addresses that are not
   advertised into and do not impose a cost on the global routing



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   system.  These EIDs are maintained at the edges of the mapping system
   (in LISP Map-Servers and Map-Resolvers) and are provided on demand to
   only the correspondents of the LISP mobile node.

   Refer to the LISP Mobility Architecture specification [LISP-MN] for
   more details.













































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11.  Multicast Considerations

   A multicast group address, as defined in the original Internet
   architecture is an identifier of a grouping of topologically
   independent receiver host locations.  The address encoding itself
   does not determine the location of the receiver(s).  The multicast
   routing protocol, and the network-based state the protocol creates,
   determines where the receivers are located.

   In the context of LISP, a multicast group address is both an EID and
   a Routing Locator.  Therefore, no specific semantic or action needs
   to be taken for a destination address, as it would appear in an IP
   header.  Therefore, a group address that appears in an inner IP
   header built by a source host will be used as the destination EID.
   The outer IP header (the destination Routing Locator address),
   prepended by a LISP router, will use the same group address as the
   destination Routing Locator.

   Having said that, only the source EID and source Routing Locator
   needs to be dealt with.  Therefore, an ITR merely needs to put its
   own IP address in the source Routing Locator field when prepending
   the outer IP header.  This source Routing Locator address, like any
   other Routing Locator address MUST be globally routable.

   Therefore, an EID-to-RLOC mapping does not need to be performed by an
   ITR when a received data packet is a multicast data packet or when
   processing a source-specific Join (either by IGMPv3 or PIM).  But the
   source Routing Locator is decided by the multicast routing protocol
   in a receiver site.  That is, an EID to Routing Locator translation
   is done at control-time.

   Another approach is to have the ITR not encapsulate a multicast
   packet and allow the the host built packet to flow into the core even
   if the source address is allocated out of the EID namespace.  If the
   RPF-Vector TLV [RPFV] is used by PIM in the core, then core routers
   can RPF to the ITR (the Locator address which is injected into core
   routing) rather than the host source address (the EID address which
   is not injected into core routing).

   To avoid any EID-based multicast state in the network core, the first
   approach is chosen for LISP-Multicast.  Details for LISP-Multicast
   and Interworking with non-LISP sites is described in specification
   [MLISP].








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12.  Security Considerations

   It is believed that most of the security mechanisms will be part of
   the mapping database service when using control plane procedures for
   obtaining EID-to-RLOC mappings.  For data plane triggered mappings,
   as described in this specification, protection is provided against
   ETR spoofing by using Return- Routability mechanisms evidenced by the
   use of a 4-byte Nonce field in the LISP encapsulation header.  The
   nonce, coupled with the ITR accepting only solicited Map-Replies goes
   a long way toward providing decent authentication.

   LISP does not rely on a PKI infrastructure or a more heavy weight
   authentication system.  These systems challenge the scalability of
   LISP which was a primary design goal.

   DoS attack prevention will depend on implementations rate-limiting
   Map-Requests and Map-Replies to the control plane as well as rate-
   limiting the number of data-triggered Map-Replies.

   To deal with map-cache exhaustion attempts in an ITR/PTR, the
   implementation should consider putting a maximum cap on the number of
   entries stored with a reserve list for special or frequently accessed
   sites.  This should be a configuration policy control set by the
   network administrator who manages ITRs and PTRs.



























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13.  Prototype Plans and Status

   The operator community has requested that the IETF take a practical
   approach to solving the scaling problems associated with global
   routing state growth.  This document offers a simple solution which
   is intended for use in a pilot program to gain experience in working
   on this problem.

   The authors hope that publishing this specification will allow the
   rapid implementation of multiple vendor prototypes and deployment on
   a small scale.  Doing this will help the community:

   o  Decide whether a new EID-to-RLOC mapping database infrastructure
      is needed or if a simple, UDP-based, data-triggered approach is
      flexible and robust enough.

   o  Experiment with provider-independent assignment of EIDs while at
      the same time decreasing the size of DFZ routing tables through
      the use of topologically-aligned, provider-based RLOCs.

   o  Determine whether multiple levels of tunneling can be used by ISPs
      to achieve their Traffic Engineering goals while simultaneously
      removing the more specific routes currently injected into the
      global routing system for this purpose.

   o  Experiment with mobility to determine if both acceptable
      convergence and session continuity properties can be scalably
      implemented to support both individual device roaming and site
      service provider changes.

   Here is a rough set of milestones:

   1.  This draft will be the draft for interoperable implementations to
       code against.  Interoperable implementations will be ready
       beginning of 2009.

   2.  Continue pilot deployment using LISP-ALT as the database mapping
       mechanism.

   3.  Continue prototyping and studying other database lookup schemes,
       be it DNS, DHTs, CONS, ALT, NERD, or other mechanisms.

   4.  Implement the LISP Multicast draft [MLISP].

   5.  Implement the LISP Mobile Node draft [LISP-MN].

   6.  Research more on how policy affects what gets returned in a Map-
       Reply from an ETR.



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   7.  Continue to experiment with mixed locator-sets to understand how
       LISP can help the IPv4 to IPv6 transition.

   8.  Add more robustness to locator reachability between LISP sites.

   As of this writing the following accomplishments have been achieved:

   1.   A unit- and system-tested software switching implementation has
        been completed on cisco NX-OS for this draft for both IPv4 and
        IPv6 EIDs using a mixed locator-set of IPv4 and IPv6 locators.

   2.   A unit- and system-tested software switching implementation on
        cisco NX-OS has been completed for draft [ALT].

   3.   A unit- and system-tested software switching implementation on
        cisco NX-OS has been completed for draft [INTERWORK].  Support
        for IPv4 translation is provided and PTR support for IPv4 and
        IPv6 is provided.

   4.   The cisco NX-OS implementation supports an experimental
        mechanism for slow mobility.

   5.   Dave Meyer, Vince Fuller, Darrel Lewis, Greg Shepherd, and
        Andrew Partan continue to test all the features described above
        on a dual-stack infrastructure.

   6.   Darrel Lewis and Dave Meyer have deployed both LISP translation
        and LISP PTR support in the pilot network.  Point your browser
        to http://www.lisp4.net to see translation happening in action
        so your non-LISP site can access a web server in a LISP site.

   7.   Soon http://www.lisp6.net will work where your IPv6 LISP site
        can talk to a IPv6 web server in a LISP site by using mixed
        address-family based locators.

   8.   An public domain implementation of LISP is underway.  See
        [OPENLISP] for details.

   9.   We have deployed Map-Resolvers and Map-Servers on the LISP pilot
        network to gather experience with [LISP-MS].  The first layer of
        the architecture are the xTRs which use Map-Servers for EID-
        prefix registration and Map-Resolvers for EID-to-RLOC mapping
        resolution.  The second layer are the Map-Resolvers and Map-
        Servers which connect to the ALT BGP peering infrastructure.
        And the third layer are ALT-routers which aggregate EID-prefixes
        and forward Map-Requests.





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   10.  A cisco IOS implementation is underway which currently supports
        IPv4 encapsulation and decapsulation features.

   11.  A LISP router based LIG implementation is supported, deployed,
        and used daily to debug and test the LISP pilot network.  See
        [LIG] for details.

   12.  A Linux implementation of LIG has been made available and
        supported by Dave Meyer.  It can be run on any Linux system
        which resides in either a LISP site or non-LISP site.  See [LIG]
        for details.  Public domain code can be downloaded from
        http://github.com/davidmeyer/lig/tree/master.

   13.  An experimental implementation has been written for three
        locator reachability algorithms.  One is called echo-noncing,
        which is documented in this specification.  The other two are
        called TCP-counts and RLOC-probing, which will be documented in
        future drafts.

   If interested in writing a LISP implementation, testing any of the
   LISP implementations, or want to be part of the LISP pilot program,
   please contact lisp@ietf.org.





























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14.  References

14.1.  Normative References

   [RFC0768]  Postel, J., "User Datagram Protocol", STD 6, RFC 768,
              August 1980.

   [RFC1191]  Mogul, J. and S. Deering, "Path MTU discovery", RFC 1191,
              November 1990.

   [RFC1498]  Saltzer, J., "On the Naming and Binding of Network
              Destinations", RFC 1498, August 1993.

   [RFC1955]  Hinden, R., "New Scheme for Internet Routing and
              Addressing (ENCAPS) for IPNG", RFC 1955, June 1996.

   [RFC2119]  Bradner, S., "Key words for use in RFCs to Indicate
              Requirement Levels", BCP 14, RFC 2119, March 1997.

   [RFC2402]  Kent, S. and R. Atkinson, "IP Authentication Header",
              RFC 2402, November 1998.

   [RFC2434]  Narten, T. and H. Alvestrand, "Guidelines for Writing an
              IANA Considerations Section in RFCs", BCP 26, RFC 2434,
              October 1998.

   [RFC2784]  Farinacci, D., Li, T., Hanks, S., Meyer, D., and P.
              Traina, "Generic Routing Encapsulation (GRE)", RFC 2784,
              March 2000.

   [RFC3056]  Carpenter, B. and K. Moore, "Connection of IPv6 Domains
              via IPv4 Clouds", RFC 3056, February 2001.

   [RFC3168]  Ramakrishnan, K., Floyd, S., and D. Black, "The Addition
              of Explicit Congestion Notification (ECN) to IP",
              RFC 3168, September 2001.

   [RFC3775]  Johnson, D., Perkins, C., and J. Arkko, "Mobility Support
              in IPv6", RFC 3775, June 2004.

   [RFC4423]  Moskowitz, R. and P. Nikander, "Host Identity Protocol
              (HIP) Architecture", RFC 4423, May 2006.

   [RFC4866]  Arkko, J., Vogt, C., and W. Haddad, "Enhanced Route
              Optimization for Mobile IPv6", RFC 4866, May 2007.

   [RFC4984]  Meyer, D., Zhang, L., and K. Fall, "Report from the IAB
              Workshop on Routing and Addressing", RFC 4984,



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              September 2007.

14.2.  Informative References

   [AFI]      IANA, "Address Family Indicators (AFIs)", ADDRESS FAMILY
              NUMBERS http://www.iana.org/numbers.html, Febuary 2007.

   [ALT]      Farinacci, D., Fuller, V., Meyer, D., and D. Lewis, "LISP
              Alternative Topology (LISP-ALT)",
              draft-ietf-lisp-alt-01.txt (work in progress), May 2009.

   [APT]      Jen, D., Meisel, M., Massey, D., Wang, L., Zhang, B., and
              L. Zhang, "APT: A Practical Transit Mapping Service",
              draft-jen-apt-01.txt (work in progress), November 2007.

   [CHIAPPA]  Chiappa, J., "Endpoints and Endpoint names: A Proposed
              Enhancement to the Internet Architecture", Internet-
              Draft http://www.chiappa.net/~jnc/tech/endpoints.txt,
              1999.

   [CONS]     Farinacci, D., Fuller, V., and D. Meyer, "LISP-CONS: A
              Content distribution Overlay Network  Service for LISP",
              draft-meyer-lisp-cons-03.txt (work in progress),
              November 2007.

   [DHTs]     Ratnasamy, S., Shenker, S., and I. Stoica, "Routing
              Algorithms for DHTs: Some Open Questions", PDF
              file http://www.cs.rice.edu/Conferences/IPTPS02/174.pdf.

   [EMACS]    Brim, S., Farinacci, D., Meyer, D., and J. Curran, "EID
              Mappings Multicast Across Cooperating Systems for LISP",
              draft-curran-lisp-emacs-00.txt (work in progress),
              November 2007.

   [GSE]      "GSE - An Alternate Addressing Architecture for  IPv6",
              draft-ietf-ipngwg-gseaddr-00.txt (work in progress), 1997.

   [INTERWORK]
              Lewis, D., Meyer, D., Farinacci, D., and V. Fuller,
              "Interworking LISP with IPv4 and IPv6",
              draft-ietf-lisp-interworking-00.txt (work in progress),
              January 2009.

   [LIG]      Farinacci, D. and D. Meyer, "LISP Internet Groper (LIG)",
              draft-farinacci-lisp-lig-01.txt (work in progress),
              May 2009.

   [LISA96]   Lear, E., Katinsky, J., Coffin, J., and D. Tharp,



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              "Renumbering: Threat or Menace?", Usenix , September 1996.

   [LISP-MAIN]
              Farinacci, D., Fuller, V., Meyer, D., and D. Lewis,
              "Locator/ID Separation Protocol (LISP)",
              draft-farinacci-lisp-12.txt (work in progress),
              March 2009.

   [LISP-MN]  Farinacci, D., Fuller, V., Lewis, D., and D. Meyer, "LISP
              Mobility Architecture", draft-meyer-lisp-mn-00.txt (work
              in progress), July 2009.

   [LISP-MS]  Farinacci, D. and V. Fuller, "LISP Map Server",
              draft-ietf-lisp-ms-01.txt (work in progress), May 2009.

   [LISP1]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
              "Locator/ID Separation Protocol (LISP1) [Routable  ID
              Version]",
              Slide-set http://www.dinof.net/~dino/ietf/lisp1.ppt,
              October 2006.

   [LISP2]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
              "Locator/ID Separation Protocol (LISP2) [DNS-based
              Version]",
              Slide-set http://www.dinof.net/~dino/ietf/lisp2.ppt,
              November 2006.

   [LISPDHT]  Mathy, L., Iannone, L., and O. Bonaventure, "LISP-DHT:
              Towards a DHT to map identifiers onto locators",
              draft-mathy-lisp-dht-00.txt (work in progress),
              February 2008.

   [LOC-ID-ARCH]
              Meyer, D. and D. Lewis, "Architectural Implications of
              Locator/ID  Separation",
              draft-meyer-loc-id-implications-01.txt (work in progress),
              Januaryr 2009.

   [MLISP]    Farinacci, D., Meyer, D., Zwiebel, J., and S. Venaas,
              "LISP for Multicast Environments",
              draft-ietf-lisp-multicast-01.txt (work in progress),
              May 2009.

   [NERD]     Lear, E., "NERD: A Not-so-novel EID to RLOC Database",
              draft-lear-lisp-nerd-04.txt (work in progress),
              April 2008.

   [OPENLISP]



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              Iannone, L. and O. Bonaventure, "OpenLISP Implementation
              Report", draft-iannone-openlisp-implementation-01.txt
              (work in progress), July 2008.

   [RADIR]    Narten, T., "Routing and Addressing Problem Statement",
              draft-narten-radir-problem-statement-00.txt (work in
              progress), July 2007.

   [RFC3344bis]
              Perkins, C., "IP Mobility Support for IPv4, revised",
              draft-ietf-mip4-rfc3344bis-05 (work in progress),
              July 2007.

   [RFC4192]  Baker, F., Lear, E., and R. Droms, "Procedures for
              Renumbering an IPv6 Network without a Flag Day", RFC 4192,
              September 2005.

   [RPFV]     Wijnands, IJ., Boers, A., and E. Rosen, "The RPF Vector
              TLV", draft-ietf-pim-rpf-vector-08.txt (work in progress),
              January 2009.

   [RPMD]     Handley, M., Huici, F., and A. Greenhalgh, "RPMD: Protocol
              for Routing Protocol Meta-data  Dissemination",
              draft-handley-p2ppush-unpublished-2007726.txt (work in
              progress), July 2007.

   [SHIM6]    Nordmark, E. and M. Bagnulo, "Level 3 multihoming shim
              protocol", draft-ietf-shim6-proto-06.txt (work in
              progress), October 2006.






















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Appendix A.  Acknowledgments

   An initial thank you goes to Dave Oran for planting the seeds for the
   initial ideas for LISP.  His consultation continues to provide value
   to the LISP authors.

   A special and appreciative thank you goes to Noel Chiappa for
   providing architectural impetus over the past decades on separation
   of location and identity, as well as detailed review of the LISP
   architecture and documents, coupled with enthusiasm for making LISP a
   practical and incremental transition for the Internet.

   The authors would like to gratefully acknowledge many people who have
   contributed discussion and ideas to the making of this proposal.
   They include Scott Brim, Andrew Partan, John Zwiebel, Jason Schiller,
   Lixia Zhang, Dorian Kim, Peter Schoenmaker, Vijay Gill, Geoff Huston,
   David Conrad, Mark Handley, Ron Bonica, Ted Seely, Mark Townsley,
   Chris Morrow, Brian Weis, Dave McGrew, Peter Lothberg, Dave Thaler,
   Eliot Lear, Shane Amante, Ved Kafle, Olivier Bonaventure, Luigi
   Iannone, Robin Whittle, Brian Carpenter, Joel Halpern, Roger
   Jorgensen, Ran Atkinson, Stig Venaas, Iljitsch van Beijnum, Roland
   Bless, Dana Blair, Bill Lynch, Marc Woolward, Damien Saucez, Damian
   Lezama, Attilla De Groot, Parantap Lahiri, and David Black.

   In particular, we would like to thank Dave Meyer for his clever
   suggestion for the name "LISP". ;-)

   This work originated in the Routing Research Group (RRG) of the IRTF.
   The individual submission [LISP-MAIN] was converted into this IETF
   LISP working group draft.





















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Authors' Addresses

   Dino Farinacci
   cisco Systems
   Tasman Drive
   San Jose, CA  95134
   USA

   Email: dino@cisco.com


   Vince Fuller
   cisco Systems
   Tasman Drive
   San Jose, CA  95134
   USA

   Email: vaf@cisco.com


   Dave Meyer
   cisco Systems
   170 Tasman Drive
   San Jose, CA
   USA

   Email: dmm@cisco.com


   Darrel Lewis
   cisco Systems
   170 Tasman Drive
   San Jose, CA
   USA

   Email: darlewis@cisco.com















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A New Internet-Draft is available from the on-line Internet-Drafts directories.
This draft is a work item of the Locator/ID Separation Protocol Working Group of the IETF.


	Title           : Locator/ID Separation Protocol (LISP)
	Author(s)       : D. Farinacci, et al.
	Filename        : draft-ietf-lisp-02.txt
	Pages           : 63
	Date            : 2009-07-10

This draft describes a simple, incremental, network-based protocol to
implement separation of Internet addresses into Endpoint Identifiers
(EIDs) and Routing Locators (RLOCs).  This mechanism requires no
changes to host stacks and no major changes to existing database
infrastructures.  The proposed protocol can be implemented in a
relatively small number of routers.

This proposal was stimulated by the problem statement effort at the
Amsterdam IAB Routing and Addressing Workshop (RAWS), which took
place in October 2006.

A URL for this Internet-Draft is:
http://www.ietf.org/internet-drafts/draft-ietf-lisp-02.txt

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From phdgang@gmail.com  Mon Jul 13 06:49:45 2009
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Date: Mon, 13 Jul 2009 21:49:15 +0800
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From: Chen Gang <phdgang@gmail.com>
To: lisp@ietf.org
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Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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Dear all,

According to the mail-list discussion, we have uploaded new version of the
draft.

Please find following information.

All comments are welcome.

-Gang

A New Internet-Draft is available from the on-line Internet-Drafts
directories.
       Title           : An Incremental Deployable Mapping Service for
Scalable Routing Architecture
       Author(s)       : G. Chen, et al.
       Filename        : draft-chen-lisp-er-mo-01.txt
       Pages           : 20
       Date            : 2009-07-12
This document describes a mechanism of providing mapping service for
LISP-like architecture.  The mapping service comprises of EID Router
(ER) mechanism and supplementary DHT Mapping Overlay (MO), in which
ER mechanism is for reducing forwarding entries in routers while
driving the packets to the destination through tunnels, and the DHT
MO serves as a supplement that provides specific mappings to reduce
the number of tunnels.  The mechanism is flexibly deployable for ISPs
since it costs little and is easy to progress.
A URL for this Internet-Draft is:
http://www.ietf.org/internet-drafts/draft-chen-lisp-er-mo-01.txt
Internet-Drafts are also available by anonymous FTP at:
ftp://ftp.ietf.org/internet-drafts/




2009/7/9 Dong HUO <dhuo.thu@gmail.com>

>
>   On Jul 8, 2009, at 5:30 PM, Dong HUO wrote:
>
>
> [Dong]: Sounds good to me. Good advice! I'll see.  However I think ALT an=
d
> DHT MO can be seen as two styles of orgnizing
> the mappings: the former is tree structure, and the latter is DHT
> structure. I think both can scale.  Why we choose
> DHT in our solution is that DHT is easy for self organizing and
> redundancy.  And since it's supplementary to improve
> the performance, so the latency impact due to DHT can be less stressed.
>
>
> No doubt.
>
> My point was that there is a lot of description in how the ALT works.
>
> The MO has to have connectivity of some sort between all the
> systems that hold the DHT.
>
> It isn't clear to me how that connectivity works exactly but it appears
> from what I understand to be very similar to the ALT.
>
> LISP is being developed so that the ALT can be "swapped out" and
> replaced easily with something else.
>
> MO/DHT needs to be designed so it can be "swapped in".
>
> [Dong]: Yep, we really need to make it more specific in the new version a=
s
> you suggested.
> It's very helpful to discuss on your unclarities in this draft to help
> improve it.
> Full of Thanks!  :-)
>
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp
>
>


--=20
=B3=C2=B8=D5
phdgang@gmail.com

--0016368e25cc7ae7cf046e969635
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<div>Dear all,</div>
<div>&nbsp;</div>
<div>According to the mail-list discussion, we have uploaded new version of=
 the draft. </div>
<div>&nbsp;</div>
<div>Please find following information. </div>
<div>&nbsp;</div>
<div>All comments are welcome.</div>
<div>&nbsp;</div>
<div>-Gang</div>
<div>&nbsp;</div>
<div>A New Internet-Draft is available from the on-line Internet-Drafts dir=
ectories.</div>
<div>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; Title&nbsp;&nbsp;&nbsp;&nbsp;&nbs=
p;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; : An Incremental Deployable Mapping Servic=
e for Scalable Routing Architecture<br>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;=
 Author(s)&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; : G. Chen, et al.<br>&nbsp;&=
nbsp;&nbsp;&nbsp;&nbsp;&nbsp; Filename&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&=
nbsp; : draft-chen-lisp-er-mo-01.txt<br>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp=
; Pages&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; : 20<br=
>
&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; Date&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbs=
p;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; : 2009-07-12</div>
<div>This document describes a mechanism of providing mapping service for<b=
r>LISP-like architecture.&nbsp; The mapping service comprises of EID Router=
<br>(ER) mechanism and supplementary DHT Mapping Overlay (MO), in which<br>
ER mechanism is for reducing forwarding entries in routers while<br>driving=
 the packets to the destination through tunnels, and the DHT<br>MO serves a=
s a supplement that provides specific mappings to reduce<br>the number of t=
unnels.&nbsp; The mechanism is flexibly deployable for ISPs<br>
since it costs little and is easy to progress.</div>
<div>A URL for this Internet-Draft is:<br><a href=3D"http://www.ietf.org/in=
ternet-drafts/draft-chen-lisp-er-mo-01.txt">http://www.ietf.org/internet-dr=
afts/draft-chen-lisp-er-mo-01.txt</a></div>
<div>Internet-Drafts are also available by anonymous FTP at:<br><a href=3D"=
ftp://ftp.ietf.org/internet-drafts/">ftp://ftp.ietf.org/internet-drafts/</a=
></div>
<div>&nbsp;</div>
<div><br><br>&nbsp;</div>
<div class=3D"gmail_quote">2009/7/9 Dong HUO <span dir=3D"ltr">&lt;<a href=
=3D"mailto:dhuo.thu@gmail.com">dhuo.thu@gmail.com</a>&gt;</span><br>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div>
<div></div>
<div class=3D"h5">
<div style=3D"FONT-SIZE: 10pt; MARGIN: 10px; FONT-FAMILY: verdana">
<div><font face=3D"Verdana" color=3D"#000080" size=3D"2"></font>&nbsp;</div=
>
<div>
<div><font face=3D"Verdana" color=3D"#c0c0c0" size=3D"2"><span>
<div>
<div></div></div></span></font><font face=3D"Verdana" size=3D"2">On Jul 8, =
2009, at 5:30 PM, Dong HUO wrote:</font></div></div></div></div></div>
<div>
<div>
<div></div>
<div class=3D"h5">
<div><br>
<blockquote type=3D"cite"><span style=3D"WORD-SPACING: 0px; FONT: medium He=
lvetica; TEXT-TRANSFORM: none; COLOR: rgb(0,0,0); TEXT-INDENT: 0px; WHITE-S=
PACE: normal; LETTER-SPACING: normal; BORDER-COLLAPSE: separate"><span styl=
e=3D"FONT-SIZE: small; FONT-FAMILY: Verdana">
<div><font color=3D"#0000ff"><br>[Dong]: Sounds good to me. Good advice! I&=
#39;ll see.&nbsp; However I think ALT and DHT MO can be seen as two styles =
of orgnizing</font></div>
<div style=3D"TEXT-INDENT: 4em"><font color=3D"#0000ff">the mappings: the f=
ormer is tree structure, and the latter is DHT structure. I think both can =
scale.&nbsp; Why we choose</font></div>
<div style=3D"TEXT-INDENT: 4em"><font color=3D"#0000ff">DHT in our solution=
 is that DHT is easy&nbsp;for self organizing and redundancy.&nbsp; And sin=
ce it&#39;s supplementary to improve</font></div>
<div style=3D"TEXT-INDENT: 4em"><font color=3D"#0000ff">the performance, so=
 the latency impact due to DHT can be less stressed.</font></div></span></s=
pan><br></blockquote></div><br>
<div>No doubt.</div>
<div><br></div>
<div>My point was that there is a lot of description in how the ALT works.<=
/div>
<div><br></div>
<div>The MO has to have connectivity of some sort between all the&nbsp;</di=
v>
<div>systems that hold the DHT.</div>
<div><br></div>
<div>It isn&#39;t clear to me how that connectivity works exactly but it ap=
pears</div>
<div>from what I understand to be very similar to the ALT.</div>
<div><br></div>
<div>LISP is being developed so that the ALT can be &quot;swapped out&quot;=
 and</div>
<div>replaced easily with something else. &nbsp;</div>
<div><br></div>
<div>MO/DHT needs to be designed so it can be &quot;swapped in&quot;.</div>
<div><br></div></div></div>
<div><font color=3D"#0000ff">[Dong]: Yep,&nbsp;we really need to make it mo=
re specific in the new version as you suggested. </font></div>
<div style=3D"TEXT-INDENT: 4em"><font color=3D"#0000ff">It&#39;s very helpf=
ul to discuss on your unclarities in this draft to help improve it. </font>=
</div>
<div style=3D"TEXT-INDENT: 4em"><font color=3D"#0000ff">Full of Thanks!&nbs=
p; :-)</font><br></div></div><br>__________________________________________=
_____<br>lisp mailing list<br><a href=3D"mailto:lisp@ietf.org">lisp@ietf.or=
g</a><br>
<a href=3D"https://www.ietf.org/mailman/listinfo/lisp" target=3D"_blank">ht=
tps://www.ietf.org/mailman/listinfo/lisp</a><br><br></blockquote></div><br>=
<br clear=3D"all">
<div></div><br>-- <br>=B3=C2=B8=D5<br><a href=3D"mailto:phdgang@gmail.com">=
phdgang@gmail.com</a><br>

--0016368e25cc7ae7cf046e969635--

From damien.saucez@uclouvain.be  Mon Jul 13 07:06:38 2009
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Date: Mon, 13 Jul 2009 16:06:33 +0200
From: Damien Saucez <damien.saucez@uclouvain.be>
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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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Dino,

Technical comments inline.


The next two paragraphs are my personal opinion and may not be shared by 
Luigi or Olivier.

Once again, why don't you consider versioning at all? Do you have a good 
reason to ignore it? We propose a solution that makes both specification 
and implementation simpler and increase security but you ignore it.

As I already said dozens of time, the control and data-plane format 
could be completely separated. Why do we have the R bits in the Map 
req/rep while it is written, in the respective sections, something like 
"ignore this field, it has no use". IMO, LISP should propose a clean 
protocol with a nice separation between data and control plane. LISP 
proposes to separate the ID and the LOC, so why not go one steps further 
and separate control and data plane?

Back to the specs now ;-)

Dino Farinacci wrote:
> LISPers,
>
> Here are a list of changes I'd like to put into draft-ietf-lisp-02.txt:
>
> (1) Change packet format suggested on list to:
>
>       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>   L / |                       Locator Reach Bits                      |
>   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>   S \ |S|E| rsvd-flags|                  Nonce                        |
>   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
> (2) Specify how ECN bits in the TOS header are treated during 
> encapsulation and decapsulation. I have integrated text contributed by 
> David Black from EMC.
>
> (3) Added Probe-bit to the Map-Request and Map-Reply packet formats. 
> Will discuss at IETF. Want to make packet format changes in one step 
> so it is less painful to upgrade the LISP network.
>
> (4) Add the section "Echo Nonce Algorithm" describing how the E-bit 
> (above) is used.
>
> (5) Added a section "LISP Mobile Node Mobility" to the mobility 
> section with an overview to refer to the  draft-meyer-lisp-mn-00.txt 
> draft.
>
> (6) Updated section "Prototype Plans and Status" with more current 
> information.
>
> See enclosed ID and diff file.
>
> I am scheduled to present the 3 locator reachability algorithms I 
> refer to in the draft. The only one documented at this time is the 
> Echo Nonce Algorithm as promised on the list.
>
> Thanks,
> Dino/Dave/Darrel/Vince
>
>
> ------------------------------------------------------------------------
>
> Network Working Group                                       D. Farinacci
> Internet-Draft                                                 V. Fuller
> Intended status: Experimental                                   D. Meyer
> Expires: November 29, 2009 *January 10, 2010*                                       D. Lewis
>                                                            cisco Systems
>                                                             May 28,
>                                                             *July 9,* 2009
>
>                  Locator/ID Separation Protocol (LISP)
>                          draft-ietf-lisp-01.txt
>                          *draft-ietf-lisp-02.txt*
>
> Status of this Memo
>
>    This Internet-Draft is submitted to IETF in full conformance with the
>    provisions of BCP 78 and BCP 79.
>
>    Internet-Drafts are working documents of the Internet Engineering
>    Task Force (IETF), its areas, and its working groups.  Note that
>    other groups may also distribute working documents as Internet-
>    Drafts.
>
>    Internet-Drafts are draft documents valid for a maximum of six months
>    and may be updated, replaced, or obsoleted by other documents at any
>    time.  It is inappropriate to use Internet-Drafts as reference
>    material or to cite them other than as "work in progress."
>
>    The list of current Internet-Drafts can be accessed at
>    http://www.ietf.org/ietf/1id-abstracts.txt.
>
>    The list of Internet-Draft Shadow Directories can be accessed at
>    http://www.ietf.org/shadow.html.
>
>    This Internet-Draft will expire on November 29, 2009. *January 10, 2010.*
>
> Copyright Notice
>
>    Copyright (c) 2009 IETF Trust and the persons identified as the
>    document authors.  All rights reserved.
>
>    This document is subject to BCP 78 and the IETF Trust's Legal
>    Provisions Relating to IETF Documents in effect on the date of
>    publication of this document (http://trustee.ietf.org/license-info).
>    Please review these documents carefully, as they describe your rights
>    and restrictions with respect to this document.
>
> Abstract
>
>    This draft describes a simple, incremental, network-based protocol to
>    implement separation of Internet addresses into Endpoint Identifiers
>    (EIDs) and Routing Locators (RLOCs).  This mechanism requires no
>    changes to host stacks and no major changes to existing database
>    infrastructures.  The proposed protocol can be implemented in a
>    relatively small number of routers.
>
>    This proposal was stimulated by the problem statement effort at the
>    Amsterdam IAB Routing and Addressing Workshop (RAWS), which took
>    place in October 2006.
>
> Table of Contents
>
>    1.  Requirements Notation  . . . . . . . . . . . . . . . . . . . .  4
>    2.  Introduction . . . . . . . . . . . . . . . . . . . . . . . . .  5
>    3.  Definition of Terms  . . . . . . . . . . . . . . . . . . . . .  8
>    4.  Basic Overview . . . . . . . . . . . . . . . . . . . . . . . . 12
>      4.1.  Packet Flow Sequence . . . . . . . . . . . . . . . . . . . 14
>    5.  Tunneling Details  . . . . . . . . . . . . . . . . . . . . . . 16
>      5.1.  LISP IPv4-in-IPv4 Header Format  . . . . . . . . . . . . . 17
>      5.2.  LISP IPv6-in-IPv6 Header Format  . . . . . . . . . . . . . 18
>      5.3.  Tunnel Header Field Descriptions . . . . . . . . . . . . . 19
>      5.4.  Dealing with Large Encapsulated Packets  . . . . . . . . . 20 *21*
>        5.4.1.  A Stateless Solution to MTU Handling . . . . . . . . . 21
>        5.4.2.  A Stateful Solution to MTU Handling  . . . . . . . . . 22
>    6.  EID-to-RLOC Mapping  . . . . . . . . . . . . . . . . . . . . . 23
>      6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats  . . . . . 23
>        6.1.1.  LISP Packet Type Allocations . . . . . . . . . . . . . 25
>        6.1.2.  Map-Request Message Format . . . . . . . . . . . . . . 25
>        6.1.3.  EID-to-RLOC UDP Map-Request Message  . . . . . . . . . 27
>        6.1.4.  Map-Reply Message Format . . . . . . . . . . . . . . . 28
>        6.1.5.  EID-to-RLOC UDP Map-Reply Message  . . . . . . . . . . 31
>        6.1.6.  Map-Register Message Format  . . . . . . . . . . . . . 32
>      6.2.  Routing Locator Selection  . . . . . . . . . . . . . . . . 34
>      6.3.  Routing Locator Reachability . . . . . . . . . . . . . . . 35
>        *6.3.1.  Echo Nonce Algorithm . . . . . . . . . . . . . . . . . 37*
>      6.4.  Routing Locator Hashing  . . . . . . . . . . . . . . . . . 37 *38*
>      6.5.  Changing the Contents of EID-to-RLOC Mappings  . . . . . . 38 *39*
>        6.5.1.  Clock Sweep  . . . . . . . . . . . . . . . . . . . . . 39
>        6.5.2.  Solicit-Map-Request (SMR)  . . . . . . . . . . . . . . 39 *40*
>    7.  Router Performance Considerations  . . . . . . . . . . . . . . 41 *42*
>    8.  Deployment Scenarios . . . . . . . . . . . . . . . . . . . . . 42 *43*
>      8.1.  First-hop/Last-hop Tunnel Routers  . . . . . . . . . . . . 43 *44*
>      8.2.  Border/Edge Tunnel Routers . . . . . . . . . . . . . . . . 43 *44*
>      8.3.  ISP Provider-Edge (PE) Tunnel Routers  . . . . . . . . . . 44 *45*
>    9.  Traceroute Considerations  . . . . . . . . . . . . . . . . . . 45 *46*
>      9.1.  IPv6 Traceroute  . . . . . . . . . . . . . . . . . . . . . 46 *47*
>      9.2.  IPv4 Traceroute  . . . . . . . . . . . . . . . . . . . . . 46 *47*
>      9.3.  Traceroute using Mixed Locators  . . . . . . . . . . . . . 46 *47*
>    10. Mobility Considerations  . . . . . . . . . . . . . . . . . . . 48 *49*
>      10.1. Site Mobility  . . . . . . . . . . . . . . . . . . . . . . 48 *49*
>      10.2. Slow Endpoint Mobility . . . . . . . . . . . . . . . . . . 48 *49*
>      10.3. Fast Endpoint Mobility . . . . . . . . . . . . . . . . . . 48 *49*
>      10.4. Fast Network Mobility  . . . . . . . . . . . . . . . . . . 50 *51
>      10.5. LISP Mobile Node Mobility  . . . . . . . . . . . . . . . . 51*
>    11. Multicast Considerations . . . . . . . . . . . . . . . . . . . 51 *53*
>    12. Security Considerations  . . . . . . . . . . . . . . . . . . . 52 *54*
>    13. Prototype Plans and Status . . . . . . . . . . . . . . . . . . 53 *55*
>    14. References . . . . . . . . . . . . . . . . . . . . . . . . . . 56 *58*
>      14.1. Normative References . . . . . . . . . . . . . . . . . . . 56 *58*
>      14.2. Informative References . . . . . . . . . . . . . . . . . . 57 *59*
>    Appendix A.  Acknowledgments . . . . . . . . . . . . . . . . . . . 60 *62*
>    Authors' Addresses . . . . . . . . . . . . . . . . . . . . . . . . 61 *63*
>
> 1.  Requirements Notation
>
>    The key words "MUST", "MUST NOT", "REQUIRED", "SHALL", "SHALL NOT",
>    "SHOULD", "SHOULD NOT", "RECOMMENDED", "MAY", and "OPTIONAL" in this
>    document are to be interpreted as described in [RFC2119].
>
> 2.  Introduction
>
>    Many years of discussion about the current IP routing and addressing
>    architecture have noted that its use of a single numbering space (the
>    "IP address") for both host transport session identification and
>    network routing creates scaling issues (see [CHIAPPA] and [RFC1498]).
>    A number of scaling benefits would be realized by separating the
>    current IP address into separate spaces for Endpoint Identifiers
>    (EIDs) and Routing Locators (RLOCs); among them are:
>
>    1.  Reduction of routing table size in the "default-free zone" (DFZ).
>        Use of a separate numbering space for RLOCs will allow them to be
>        assigned topologically (in today's Internet, RLOCs would be
>        assigned by providers at client network attachment points),
>        greatly improving aggregation and reducing the number of
>        globally-visible, routable prefixes.
>
>    2.  More cost-effective multihoming for sites that connect to
>        different service providers where they can control their own
>        policies for packet flow into the site without using extra
>        routing table resources of core routers.
>
>    3.  Easing of renumbering burden when clients change providers.
>        Because host EIDs are numbered from a separate, non-provider-
>        assigned and non-topologically-bound space, they do not need to
>        be renumbered when a client site changes its attachment points to
>        the network.
>
>    4.  Traffic engineering capabilities that can be performed by network
>        elements and do not depend on injecting additional state into the
>        routing system.  This will fall out of the mechanism that is used
>        to implement the EID/RLOC split (see Section 4).
>
>    5.  Mobility without address changing.  Existing mobility mechanisms
>        will be able to work in a locator/ID separation scenario.  It
>        will be possible for a host (or a collection of hosts) to move to
>        a different point in the network topology either retaining its
>        home-based address or acquiring a new address based on the new
>        network location.  A new network location could be a physically
>        different point in the network topology or the same physical
>        point of the topology with a different provider.
>
>    This draft describes protocol mechanisms to achieve the desired
>    functional separation.  For flexibility, the mechanism used for
>    forwarding packets is decoupled from that used to determine EID to
>    RLOC mappings.  This document covers the former.  For the later, see
>    [CONS], [ALT], *[EMACS],* [RPMD], and [NERD].  This work is in response
>    to and intended to address the problem statement that came out of the
>    RAWS effort [RFC4984].
>
>    The Routing and Addressing problem statement can be found in [RADIR].
>
>    This draft focuses on a router-based solution.  Building the solution
>    into the network will facilitate incremental deployment of the
>    technology on the Internet.  Note that while the detailed protocol
>    specification and examples in this document assume IP version 4
>    (IPv4), there is nothing in the design that precludes use of the same
>    techniques and mechanisms for IPv6.  It should be possible for IPv4
>    packets to use IPv6 RLOCs and for IPv6 EIDs to be mapped to IPv4
>    RLOCs.
>
>    Related work on host-based solutions is described in Shim6 [SHIM6]
>    and HIP [RFC4423].  Related work on a router-based solution is
>    described in [GSE].  This draft attempts to not compete or overlap
>    with such solutions and the proposed protocol changes are expected to
>    complement a host-based mechanism when Traffic Engineering
>    functionality is desired.
>
>    Some of the design goals of this proposal include:
>
>    1.  Require no hardware or software changes to end-systems (hosts).
>
>    2.  Minimize required changes to Internet infrastructure.
>
>    3.  Be incrementally deployable.
>
>    4.  Require no router hardware changes.
>
>    5.  Minimize the number of routers which have to be modified.  In
>        particular, most customer site routers and no core routers
>        require changes.
>
>    6.  Minimize router software changes in those routers which are
>        affected.
>
>    7.  Avoid or minimize packet loss when EID-to-RLOC mappings need to
>        be performed.
>
>    There are 4 variants of LISP, which differ along a spectrum of strong
>    to weak dependence on the topological nature and possible need for
>    routability of EIDs.  The variants are:
>
>    LISP 1:  uses EIDs that are routable through the RLOC topology for
>       bootstrapping EID-to-RLOC mappings.  [LISP1] This was intended as
>       a prototyping mechanism for early protocol implementation.  It is
>       now deprecated and should not be deployed.
>
>    LISP 1.5:  uses EIDs that are routable for bootstrapping EID-to-RLOC
>       mappings; such routing is via a separate topology.
>
>    LISP 2:  uses EIDS that are not routable and EID-to-RLOC mappings are
>       implemented within the DNS.  [LISP2]
>
>    LISP 3:  uses non-routable EIDs that are used as lookup keys for a
>       new EID-to-RLOC mapping database.  Use of Distributed Hash Tables
>       [DHTs] [LISPDHT] to implement such a database would be an area to
>       explore.  Other examples of new mapping database services are
>       [CONS], [ALT], [RPMD], [NERD], and [APT].
>
>    This document on LISP 1.5, and LISP 3 variants, both of which rely on
>    a router-based distributed cache and database for EID-to-RLOC
>    mappings.  The LISP 1.0 mechanism works but does not allow reduction
>    of routing information in the default-free-zone of the Internet.  The
>    LISP 2 mechanisms are put on hold and may never come to fruition
>    since it is not architecturally pure to have routing depend on
>    directory and directory depend on routing.  The LISP 3 mechanisms
>    will be documented elsewhere but may use the control-plane options
>    specified in this specification.
>
> 3.  Definition of Terms
>
>    Provider Independent (PI) Addresses:   an address block assigned from
>       a pool where blocks are not associated with any particular
>       location in the network (e.g. from a particular service provider),
>       and is therefore not topologically aggregatable in the routing
>       system.
>
>    Provider Assigned (PA) Addresses:   a block of IP addresses that are
>       assigned to a site by each service provider to which a site
>       connects.  Typically, each block is sub-block of a service
>       provider CIDR block and is aggregated into the larger block before
>       being advertised into the global Internet.  Traditionally, IP
>       multihoming has been implemented by each multi-homed site
>       acquiring its own, globally-visible prefix.  LISP uses only
>       topologically-assigned and aggregatable address blocks for RLOCs,
>       eliminating this demonstrably non-scalable practice.
>
>    Routing Locator (RLOC):   the IPv4 or IPv6 address of an egress
>       tunnel router (ETR).  It is the output of a EID-to-RLOC mapping
>       lookup.  An EID maps to one or more RLOCs.  Typically, RLOCs are
>       numbered from topologically-aggregatable blocks that are assigned
>       to a site at each point to which it attaches to the global
>       Internet; where the topology is defined by the connectivity of
>       provider networks, RLOCs can be thought of as PA addresses.
>       Multiple RLOCs can be assigned to the same ETR device or to
>       multiple ETR devices at a site.
>
>    Endpoint ID (EID):   a 32-bit (for IPv4) or 128-bit (for IPv6) value
>       used in the source and destination address fields of the first
>       (most inner) LISP header of a packet.  The host obtains a
>       destination EID the same way it obtains an destination address
>       today, for example through a DNS lookup or SIP exchange.  The
>       source EID is obtained via existing mechanisms used to set a
>       host's "local" IP address.  An EID is allocated to a host from an
>       EID-prefix block associated with the site where the host is
>       located.  An EID can be used by a host to refer to other hosts.
>       EIDs MUST NOT be used as LISP RLOCs.  Note that EID blocks may be
>       assigned in a hierarchical manner, independent of the network
>       topology, to facilitate scaling of the mapping database.  In
>       addition, an EID block assigned to a site may have site-local
>       structure (subnetting) for routing within the site; this structure
>       is not visible to the global routing system.  When used in
>       discussions with other Locator/ID separation proposals, a LISP EID
>       will be called a "LEID".  Throughout this document, any references
>       to "EID" refers to an LEID.
>
>    EID-prefix:   A power-of-2 block of EIDs which are allocated to a
>       site by an address allocation authority.  EID-prefixes are
>       associated with a set of RLOC addresses which make up a "database
>       mapping".  EID-prefix allocations can be broken up into smaller
>       blocks when an RLOC set is to be associated with the smaller EID-
>       prefix.  A globally routed address block (whether PI or PA) is not
>       an EID-prefix.  However, a globally routed address block may be
>       removed from global routing and reused as an EID-prefix.  A site
>       that receives an explicitly allocated EID-prefix may not use that
>       EID-prefix as a globally routed prefix assigned to RLOCs.
>
>    End-system:   is an IPv4 or IPv6 device that originates packets with
>       a single IPv4 or IPv6 header.  The end-system supplies an EID
>       value for the destination address field of the IP header when
>       communicating globally (i.e. outside of its routing domain).  An
>       end-system can be a host computer, a switch or router device, or
>       any network appliance.
>
>    Ingress Tunnel Router (ITR):   a router which accepts an IP packet
>       with a single IP header (more precisely, an IP packet that does
>       not contain a LISP header).  The router treats this "inner" IP
>       destination address as an EID and performs an EID-to-RLOC mapping
>       lookup.  The router then prepends an "outer" IP header with one of
>       its globally-routable RLOCs in the source address field and the
>       result of the mapping lookup in the destination address field.
>       Note that this destination RLOC may be an intermediate, proxy
>       device that has better knowledge of the EID-to-RLOC mapping closer
>       to the destination EID.  In general, an ITR receives IP packets
>       from site end-systems on one side and sends LISP-encapsulated IP
>       packets toward the Internet on the other side.
>
>       Specifically, when a service provider prepends a LISP header for
>       Traffic Engineering purposes, the router that does this is also
>       regarded as an ITR.  The outer RLOC the ISP ITR uses can be based
>       on the outer destination address (the originating ITR's supplied
>       RLOC) or the inner destination address (the originating hosts
>       supplied EID).
>
>    TE-ITR:   is an ITR that is deployed in a service provider network
>       that prepends an additional LISP header for Traffic Engineering
>       purposes.
>
>    Egress Tunnel Router (ETR):   a router that accepts an IP packet
>       where the destination address in the "outer" IP header is one of
>       its own RLOCs.  The router strips the "outer" header and forwards
>       the packet based on the next IP header found.  In general, an ETR
>       receives LISP-encapsulated IP packets from the Internet on one
>       side and sends decapsulated IP packets to site end-systems on the
>       other side.  ETR functionality does not have to be limited to a
>       router device.  A server host can be the endpoint of a LISP tunnel
>       as well.
>
>    TE-ETR:   is an ETR that is deployed in a service provider network
>       that strips an outer LISP header for Traffic Engineering purposes.
>
>    xTR:   is a reference to an ITR or ETR when direction of data flow is
>       not part of the context description. xTR refers to the router that
>       is the tunnel endpoint.  Used synonymously with the term "Tunnel
>       Router".  For example, "An xTR can be located at the Customer Edge
>       (CE) router", meaning both ITR and ETR functionality is at the CE
>       router.
>
>    EID-to-RLOC Cache:   a short-lived, on-demand table in an ITR that
>       stores, tracks, and is responsible for timing-out and otherwise
>       validating EID-to-RLOC mappings.  This cache is distinct from the
>       full "database" of EID-to-RLOC mappings, it is dynamic, local to
>       the ITR(s), and relatively small while the database is
>       distributed, relatively static, and much more global in scope.
>
>    EID-to-RLOC Database:   a global distributed database that contains
>       all known EID-prefix to RLOC mappings.  Each potential ETR
>       typically contains a small piece of the database: the EID-to-RLOC
>       mappings for the EID prefixes "behind" the router.  These map to
>       one of the router's own, globally-visible, IP addresses.
>
>    Recursive Tunneling:   when a packet has more than one LISP IP
>       header.  Additional layers of tunneling may be employed to
>       implement traffic engineering or other re-routing as needed.  When
>       this is done, an additional "outer" LISP header is added and the
>       original RLOCs are preserved in the "inner" header.  Any
>       references to tunnels in this specification refers to dynamic
>       encapsulating tunnels and never are they staticly configured.
>
>    Reencapsulating Tunnels:   when a packet has no more than one LISP IP
>       header (two IP headers total) and when it needs to be diverted to
>       new RLOC, an ETR can decapsulate the packet (remove the LISP
>       header) and prepend a new tunnel header, with new RLOC, on to the
>       packet.  Doing this allows a packet to be re-routed by the re-
>       encapsulating router without adding the overhead of additional
>       tunnel headers.  Any references to tunnels in this specification
>       refers to dynamic encapsulating tunnels and never are they
>       staticly configured.
>
>    LISP Header:   a term used in this document to refer to the outer
>       IPv4 or IPv6 header, a UDP header, and a LISP header, an ITR
>       prepends or an ETR strips.
>
>    Address Family Indicator (AFI):   a term used to describe an address
>       encoding in a packet.  An address family currently pertains to an
>       IPv4 or IPv6 address.  See [AFI] for details.
>
>    Negative Mapping Entry:   also known as a negative cache entry, is an
>       EID-to-RLOC entry where an EID-prefix is advertised or stored with
>       no RLOCs.  That is, the locator-set for the EID-to-RLOC entry is
>       empty or has an encoded locator count of 0.  This type of entry
>       could be used to describe a prefix from a non-LISP site, which is
>       explicitly not in the mapping database.  There are a set of well
>       defined actions that are encoded in a Negative Map-Reply.
>
>    Data Probe:   a LISP-encapsulated data packet where the inner header
>       destination address equals the outer header destination address
>       used to trigger a Map-Reply by a decapsulating ETR.  In addition,
>       the original packet is decapsulated and delivered to the
>       destination host.  A Data Probe is used in some of the mapping
>       database designs to "probe" or request a Map-Reply from an ETR; in
>       other cases, Map-Requests are used.  See each mapping database
>       design for details.
>
> 4.  Basic Overview
>
>    One key concept of LISP is that end-systems (hosts) operate the same
>    way they do today.  The IP addresses that hosts use for tracking
>    sockets, connections, and for sending and receiving packets do not
>    change.  In LISP terminology, these IP addresses are called Endpoint
>    Identifiers (EIDs).
>
>    Routers continue to forward packets based on IP destination
>    addresses.  When a packet is LISP encapsulated, these addresses are
>    referred to as Routing Locators (RLOCs).  Most routers along a path
>    between two hosts will not change; they continue to perform routing/
>    forwarding lookups on the destination addresses.  For routers between
>    the source host and the ITR as well as routers from the ETR to the
>    destination host, the destination address is an EID.  For the routers
>    between the ITR and the ETR, the destination address is an RLOC.
>
>    This design introduces "Tunnel Routers", which prepend LISP headers
>    on host-originated packets and strip them prior to final delivery to
>    their destination.  The IP addresses in this "outer header" are
>    RLOCs.  During end-to-end packet exchange between two Internet hosts,
>    an ITR prepends a new LISP header to each packet and an egress tunnel
>    router strips the new header.  The ITR performs EID-to-RLOC lookups
>    to determine the routing path to the the ETR, which has the RLOC as
>    one of its IP addresses.
>
>    Some basic rules governing LISP are:
>
>    o  End-systems (hosts) only send to addresses which are EIDs.  They
>       don't know addresses are EIDs versus RLOCs but assume packets get
>       to LISP routers, which in turn, deliver packets to the destination
>       the end-system has specified.
>
>    o  EIDs are always IP addresses assigned to hosts.
>
>    o  LISP routers mostly deal with Routing Locator addresses.  See
>       details later in Section 4.1 to clarify what is meant by "mostly".
>
>    o  RLOCs are always IP addresses assigned to routers; preferably,
>       topologically-oriented addresses from provider CIDR blocks.
>
>    o  When a router originates packets it may use as a source address
>       either an EID or RLOC.  When acting as a host (e.g. when
>       terminating a transport session such as SSH, TELNET, or SNMP), it
>       may use an EID that is explicitly assigned for that purpose.  An
>       EID that identifies the router as a host MUST NOT be used as an
>       RLOC; an EID is only routable within the scope of a site.  A
>       typical BGP configuration might demonstrate this "hybrid" EID/RLOC
>       usage where a router could use its "host-like" EID to terminate
>       iBGP sessions to other routers in a site while at the same time
>       using RLOCs to terminate eBGP sessions to routers outside the
>       site.
>
>    o  EIDs are not expected to be usable for global end-to-end
>       communication in the absence of an EID-to-RLOC mapping operation.
>       They are expected to be used locally for intra-site communication.
>
>    o  EID prefixes are likely to be hierarchically assigned in a manner
>       which is optimized for administrative convenience and to
>       facilitate scaling of the EID-to-RLOC mapping database.  The
>       hierarchy is based on a address allocation hierarchy which is not
>       dependent on the network topology.
>
>    o  EIDs may also be structured (subnetted) in a manner suitable for
>       local routing within an autonomous system.
>
>    An additional LISP header may be prepended to packets by a transit
>    router (i.e.  TE-ITR) when re-routing of the path for a packet is
>    desired.  An obvious instance of this would be an ISP router that
>    needs to perform traffic engineering for packets in flow through its
>    network.  In such a situation, termed Recursive Tunneling, an ISP
>    transit acts as an additional ingress tunnel router and the RLOC it
>    uses for the new prepended header would be either an TE-ETR within
>    the ISP (along intra-ISP traffic engineered path) or in an TE-ETR
>    within another ISP (an inter-ISP traffic engineered path, where an
>    agreement to build such a path exists).
>
>    This specification mandates that no more than two LISP headers get
>    prepended to a packet.  This avoids excessive packet overhead as well
>    as possible encapsulation loops.  It is believed two headers is
>    sufficient, where the first prepended header is used at a site for
>    Location/Identity separation and second prepended header is used
>    inside a service provider for Traffic Engineering purposes.
>
>    Tunnel Routers can be placed fairly flexibly in a multi-AS topology.
>    For example, the ITR for a particular end-to-end packet exchange
>    might be the first-hop or default router within a site for the source
>    host.  Similarly, the egress tunnel router might be the last-hop
>    router directly-connected to the destination host.  Another example,
>    perhaps for a VPN service out-sourced to an ISP by a site, the ITR
>    could be the site's border router at the service provider attachment
>    point.  Mixing and matching of site-operated, ISP-operated, and other
>    tunnel routers is allowed for maximum flexibility.  See Section 8 for
>    more details.
>
> 4.1.  Packet Flow Sequence
>
>    This section provides an example of the unicast packet flow with the
>    following conditions:
>
>    o  Source host "host1.abc.com" is sending a packet to
>       "host2.xyz.com", exactly what host1 would do if the site was not
>       using LISP.
>
>    o  Each site is multi-homed, so each tunnel router has an address
>       (RLOC) assigned from the service provider address block for each
>       provider to which that particular tunnel router is attached.
>
>    o  The ITR(s) and ETR(s) are directly connected to the source and
>       destination, respectively.
>
>    o  Data Probes are used to solicit Map-Replies versus using Map-
>       Requests.  And the Data Probes are sent on the underlying topology
>       (the LISP 1.0 variant) but could also be sent over an alternative
>       topology (the LISP 1.5 variant) as it would in [ALT].
>
>    Client host1.abc.com wants to communicate with server host2.xyz.com:
>
>    1.  host1.abc.com wants to open a TCP connection to host2.xyz.com.
>        It does a DNS lookup on host2.xyz.com.  An A/AAAA record is
>        returned.  This address is used as the destination EID and the
>        locally-assigned address of host1.abc.com is used as the source
>        EID.  An IPv4 or IPv6 packet is built using the EIDs in the IPv4
>        or IPv6 header and sent to the default router.
>
>    2.  The default router is configured as an ITR.  The ITR must be able
>        to map the EID destination to an RLOC of the ETR at the
>        destination site.  The ITR prepends a LISP header to the packet,
>        with one of its RLOCs as the source IPv4 or IPv6 address.  The
>        destination EID from the original packet header is used as the
>        destination IPv4 or IPv6 in the prepended LISP header.
>        Subsequent packets, where the outer destination address is the
>        destination EID will be sent until EID-to-RLOC mapping is
>        learned.
>
>    3.  In LISP 1, the packet is routed through the Internet as it is
>        today.  In LISP 1.5, the packet is routed on a different topology
>        which may have EID prefixes distributed and advertised in an
>        aggregatable fashion.  In either case, the packet arrives at the
>        ETR.  The router is configured to "punt" the packet to the
>        router's processor.  See Section 7 for more details.  For LISP
>        2.0 and 3.0, the behavior is not fully defined yet.
>
>    4.  The LISP header is stripped so that the packet can be forwarded
>        by the router control plane.  The router looks up the destination
>        EID in the router's EID-to-RLOC database (not the cache, but the
>        configured data structure of RLOCs).  An EID-to-RLOC Map-Reply
>        message is originated by the ETR and is addressed to the source
>        RLOC in the LISP header of the original packet (this is the ITR).
>        The source RLOC of the Map-Reply is one of the ETR's RLOCs.
>
>    5.  The ITR receives the Map-Reply message, parses the message (to
>        check for format validity) and stores the mapping information
>        from the packet.  This information is put in the ITR's EID-to-
>        RLOC mapping cache (this is the on-demand cache, the cache where
>        entries time out due to inactivity).
>
>    6.  Subsequent packets from host1.abc.com to host2.xyz.com will have
>        a LISP header prepended by the ITR using the appropriate RLOC as
>        the LISP header destination address learned from the ETR.  Note,
>        the packet may be sent to a different ETR than the one which
>        returned the Map-Reply due to the source site's hashing policy or
>        the destination site's locator-set policy.
>
>    7.  The ETR receives these packets directly (since the destination
>        address is one of its assigned IP addresses), strips the LISP
>        header and forwards the packets to the attached destination host.
>
>    In order to eliminate the need for a mapping lookup in the reverse
>    direction, an ETR MAY create a cache entry that maps the source EID
>    (inner header source IP address) to the source RLOC (outer header
>    source IP address) in a received LISP packet.  Such a cache entry is
>    termed a "gleaned" mapping and only contains a single RLOC for the
>    EID in question.  More complete information about additional RLOCs
>    SHOULD be verified by sending a LISP Map-Request for that EID.  Both
>    ITR and the ETR may also influence the decision the other makes in
>    selecting an RLOC.  See Section 6 for more details.
>
> 5.  Tunneling Details
>
>    This section describes the LISP Data Message which defines the
>    tunneling header used to encapsulate IPv4 and IPv6 packets which
>    contain EID addresses.  Even though the following formats illustrate
>    IPv4-in-IPv4 and IPv6-in-IPv6 encapsulations, the other 2
>    combinations are supported as well.
>
>    Since additional tunnel headers are prepended, the packet becomes
>    larger and in theory can exceed the MTU of any link traversed from
>    the ITR to the ETR.  It is recommended, in IPv4 that packets do not
>    get fragmented as they are encapsulated by the ITR.  Instead, the
>    packet is dropped and an ICMP Too Big message is returned to the
>    source.
>
>    Based on informal surveys of large ISP traffic patterns, it appears
>    that most transit paths can accommodate a path MTU of at least 4470
>    bytes.  The exceptions, in terms of data rate, number of hosts
>    affected, or any other metric are expected to be vanishingly small.
>
>    To address MTU concerns, mainly raised on the RRG mailing list, the
>    LISP deployment process will include collecting data during its pilot
>    phase to either verify or refute the assumption about minimum
>    available MTU.  If the assumption proves true and transit networks
>    with links limited to 1500 byte MTUs are corner cases, it would seem
>    more cost-effective to either upgrade or modify the equipment in
>    those transit networks to support larger MTUs or to use existing
>    mechanisms for accommodating packets that are too large.
>
>    For this reason, there is currently no plan for LISP to add any new
>    additional, complex mechanism for implementing fragmentation and
>    reassembly in the face of limited-MTU transit links.  If analysis
>    during LISP pilot deployment reveals that the assumption of
>    essentially ubiquitous, 4470+ byte transit path MTUs, is incorrect,
>    then LISP can be modified prior to protocol standardization to add
>    support for one of the proposed fragmentation and reassembly schemes.
>    Note that two simple existing schemes are detailed in Section 5.4.
>
>   

> 5.1.  LISP IPv4-in-IPv4 Header Format
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |Version|  IHL  |Type of Service|          Total Length         |
>     /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |         Identification        |Flags|      Fragment Offset    |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    OH  |  Time to Live | Protocol = 17 |         Header Checksum       |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |                    Source Routing Locator                     |
>     \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |                 Destination Routing Locator                   |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |       Source Port = xxxx      |       Dest Port = 4341        |
>    UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |           UDP Length          |        UDP Checksum           |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    L / |S| *|*                       Locator Reach Bits                      |
>    I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    S \ | *|S|E| rsvd-flags|*                  Nonce                        |
>    P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |Version|  IHL  |Type of Service|          Total Length         |
>     /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |         Identification        |Flags|      Fragment Offset    |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    IH  |  Time to Live |    Protocol   |         Header Checksum       |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |                           Source EID                          |
>     \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |                         Destination EID                       |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
> 5.2.  LISP IPv6-in-IPv6 Header Format
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |Version| Traffic Class |           Flow Label                  |
>     /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |         Payload Length        | Next Header=17|   Hop Limit   |
>    v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>    O   +                                                               +
>    u   |                                                               |
>    t   +                     Source Routing Locator                    +
>    e   |                                                               |
>    r   +                                                               +
>        |                                                               |
>    H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    d   |                                                               |
>    r   +                                                               +
>        |                                                               |
>    ^   +                  Destination Routing Locator                  +
>    |   |                                                               |
>     \  +                                                               +
>      \ |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |       Source Port = xxxx      |       Dest Port = 4341        |
>    UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |           UDP Length          |        UDP Checksum           |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    L / |S| *|*                       Locator Reach Bits                      |
>    I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    S \ | *|S|E| rsvd-flags|*                  Nonce                        |
>    P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |Version| Traffic Class |           Flow Label                  |
>     /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    /   |         Payload Length        |  Next Header  |   Hop Limit   |
>    v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>    I   +                                                               +
>    n   |                                                               |
>    n   +                          Source EID                           +
>    e   |                                                               |
>    r   +                                                               +
>        |                                                               |
>    H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    d   |                                                               |
>    r   +                                                               +
>        |                                                               |
>    ^   +                        Destination EID                        +
>    \   |                                                               |
>     \  +                                                               +
>      \ |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
> 5.3.  Tunnel Header Field Descriptions
>
>    IH Header:  is the inner header, preserved from the datagram received
>       from the originating host.  The source and destination IP
>       addresses are EIDs.
>
>    OH Header:  is the outer header prepended by an ITR.  The address
>       fields contain RLOCs obtained from the ingress router's EID-to-
>       RLOC cache.  The IP protocol number is "UDP (17)" from [RFC0768].
>       The DF bit of the Flags field is set to 0.
>
>    UDP Header:  contains a ITR selected source port when encapsulating a
>       packet.  See Section 6.4 for details on the hash algorithm used
>       select a source port based on the 5-tuple of the inner header.
>       The destination port MUST be set to the well-known IANA assigned
>       port value 4341.
>
>    UDP Checksum:  this field 
typo
> field 

> MUST
SHOULD
>  be transmitted as 0 and ignored
>       on receipt by the ETR.  Note, even when the UDP checksum is
>       transmitted as 0 an intervening NAT device can recalculate the
>       checksum and rewrite the UDP checksum field to non-zero.  For
>       performance reasons, the ETR MUST ignore the checksum and 

> MUST 
SHOULD
> not
>       do a checksum computation.
>   
it would be better to have: if checksum is not computed, checksum MUST 
be set to 0. Otherwise, the value MUST be the result of the checksum 
computation. Then, if someone desires to check UDP, it can iif it is 
non-zero.
>    UDP Length:  for an IPv4 encapsulated packet, the inner header Total
>       Length plus the UDP and LISP header lengths are used.  For an IPv6
>       encapsulated packet, the inner header Payload Length plus the size
>       of the IPv6 header (40 bytes) plus the size of the UDP and LISP
>       headers are used.  The UDP header length is 8 bytes.  The LISP
>       header length is 8 bytes when no loc-reach-bit header extensions
>       are used.
>
>    S: this is the Solicit-Map-Request (SMR) bit.  See section
>       Section 6.5.2 for details.
>
>    LISP Locator Reach Bits:  in the LISP header are set by an ITR to
>       indicate to an ETR the reachability of the Locators in the source
>       site.  Each RLOC in a Map-Reply is assigned an ordinal value from
>       0 to n-1 (when there are n RLOCs in a mapping entry).  The Locator
>       Reach Bits are numbered from 0 to n-1 from the right significant
>       bit of the 31-bit *32-bit* field.  When a bit is set to 1, the ITR is
>       indicating to the ETR the RLOC associated with the bit ordinal is
>       reachable.  See Section 6.3 for details on how an ITR can
>       determine other ITRs at the site are reachable.  When a site has
>       multiple EID-prefixes which result in multiple mappings (where
>       each could have a different locator-set), the Locator Reach Bits
>       setting in an encapsulated packet MUST reflect the mapping for the
>       EID-prefix that the inner-header source EID address matches.
>
>    *S: this is the Solicit-Map-Request (SMR) bit.  See section
>       Section 6.5.2 for details.
>
>    E: this is the echo-nonce-request bit.  See section Section 6.3.1 for
>       details.
>
>    rsvd-flags:  this 6-bit field is reserved for future flag use.  It is
>       set to 0 on transmit and ignored on receipt.*
>
>    LISP Nonce:  is a 32-bit *24-bit* value that is randomly generated by an ITR.
>       It is used to test route-returnability when xTRs exchange
>       encapsulated data packets with the SMR bit set, Data-Probe, Map-
>       Request, or Map-Reply messages.
>
>    When doing Recursive Tunneling: *Tunneling or ITR/PTR encapsulation:*
>
>    o  The OH header Time to Live field (or Hop Limit field, in case of
>       IPv6) MUST be copied from the IH header Time to Live field.
>
>   
Why not with a -1? Do you consider that -1 has been done before being 
processed by the LISP code? If yes, should be explicitly written. If no 
-1, a loop can happen.
>    o  The OH header Type of Service field (or the Traffic Class field,
>       in the case of IPv6) SHOULD be copied from the IH header Type of
>       Service field (with one caveat, see below).
>
>    When doing Re-encapsulated Tunneling:
>
>    o  The new OH header Time to Live field 

> SHOULD
MUST
>  be copied from the
>       stripped OH header Time to Live field.
>
>    o  The new OH header Type of Service field SHOULD be copied from the
>       stripped OH header Type of Service field (with one caveat, see
>       below)..
>
>    Copying the TTL serves two purposes: first, it preserves the distance
>    the host intended the packet to travel; second, and more importantly,
>    it provides for suppression of looping packets in the event there is
>    a loop of concatenated tunnels due to misconfiguration.
>
>    When
>
>    *The ECN field occupies bits 6 and 7 of both* the *IPv4* Type of Service code-points indicate
>    *field and* the use *IPv6 Traffic Class field [RFC3168].  The ECN field
>    requires special treatment in order to avoid discarding indications*
>    of *congestion [RFC3168].  ITR encapsulation MUST copy the 2-bit* ECN
>    according
>    *field from the inner header* to [RFC3168], the full-functionality option for simple
>    tunnels will be used when ITR encapsulating and *outer header.  Re-encapsulation
>    MUST copy the 2-bit ECN field from the stripped outer header to the
>    new outer header.  If the ECN field contains a congestion indication
>    codepoint (the value is '11', the Congestion Experienced (CE)
>    codepoint), then* ETR decapsulating.
>    Therefore, *decapsulation MUST copy the 2-bit ECN field from
>    the stripped outer header to the surviving inner header that is used
>    to forward the packet beyond* the *ETR.  These requirements preserve*
>    Congestion Experience *Experienced* (CE) bit will be preserved *indications* when a packet traveres *that uses ECN
>    traverses* a LISP tunnel.
>
> 5.4.  Dealing *tunnel and becomes marked* with Large Encapsulated Packets
>
>    In the *a CE indication due
>    to congestion between the tunnel endpoints.
>
> 5.4.  Dealing with Large Encapsulated Packets
>
>    In the* event that the MTU issues mentioned above prove to be more
>    serious than expected, this section proposes 2 simple mechanisms to
>    deal with large packets.  One is stateless using IP fragmentation and
>    the other is stateful using Path MTU Discovery [RFC1191].
>
>    It is left to the implementor to decide if the stateless or stateful
>    mechanism should be implemented.  Both or neither can be decided as
>    well since it is a local decision in the ITR regarding how to deal
>    with MTU issues.  Sites can interoperate with differing mechanisms.
>
> 5.4.1.  A Stateless Solution to MTU Handling
>
>    An ITR stateless solution to handle MTU issues is described as
>    follows:
>
>    1.  Define an architectural constant S for the maximum size of a
>        packet, in bytes, an ITR would receive from a source inside of
>        its site.
>
>    2.  Define L to be the maximum size, in bytes, a packet of size S
>        would be after the ITR prepends the LISP header, UDP header, and
>        outer network layer header of size H.
>
>    3.  Calculate: S + H = L.
>
>    When an ITR receives a packet from a site-facing interface and adds H
>    bytes worth of encapsulation to yield a packet size of L bytes, it
>    resolves the MTU issue by first splitting the original packet into 2
>    equal-sized fragments.  A LISP header is then prepended to each
>    fragment.  This will ensure that the new, encapsulated packets are of
>    size (S/2 + H), which is always below the effective tunnel MTU.
>
>    When an ETR receives encapsulated fragments, it treats them as two
>    individually encapsulated packets.  It strips the LISP headers then
>    forwards each fragment to the destination host of the destination
>    site.  The two fragments are reassembled at the destination host into
>    the single IP datagram that was originated by the source host.
>
>    This behavior is performed by the ITR when the source host originates
>    a packet with the DF field of the IP header is set to 0.  When the DF
>    field of the IP header is set to 1, or the packet is an IPv6 packet
>    originated by the source host, the ITR will drop the packet when the
>    size is greater than L, and sends an ICMP Too Big message to the
>    source with a value of S, where S is (L - H).
>
>    When the outer header encapsulation uses an IPv4 header the DF bit is
>    always set to 0.
>
>    This specification recommends that L be defined as 1500.
>
> 5.4.2.  A Stateful Solution to MTU Handling
>
>    An ITR stateful solution to handle MTU issues is describe as follows
>    and was first introduced in [OPENLISP]:
>
>    1.  The ITR will keep state of the effective MTU for each locator per
>        mapping cache entry.  The effective MTU is what the core network
>        can deliver along the path between ITR and ETR.
>
>    2.  When an encapsulated packet, with DF bit always set to 0, exceeds
>        what the core network can deliver, one of the intermediate
>        routers on the path will send an ICMP Too Big message to the ITR.
>   
Too Big is v6 only, in v4, it is a type 3, code 4 (Frag needed). It 
makes no sense to send ICMPv6 if in v4. It is a mistake we did in the 
OpenLISP implem report.
>        The ITR will parse the ICMP message to determine which locator is
>        affected by the effective MTU change and then record the new
>        effective MTU value in the mapping cache entry.
>
>    3.  When a packet is received by the ITR from a source inside of the
>        site and the size of the packet is greater than the effective MTU
>        stored with the mapping cache entry associated with the
>        destination EID the packet is for, the ITR will send an ICMP Too
>        Big message back to the source.  The packet size advertised by
>        the ITR in the ICMP Too Big message is the effective MTU minus
>        the LISP encapsulation length.
>
>    Even though this mechanism is stateful, it has advantages over the
>    stateless IP fragmentation mechanism, by not involving the
>    destination host with reassembly of ITR fragmented packets.
>
> 6.  EID-to-RLOC Mapping
>
> 6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats
>
>    The following new UDP packet types are used to retrieve EID-to-RLOC
>    mappings:
>
>        0                   1                   2                   3
>        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |Version|  IHL  |Type of Service|          Total Length         |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |         Identification        |Flags|      Fragment Offset    |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |  Time to Live | Protocol = 17 |         Header Checksum       |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                    Source Routing Locator                     |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                 Destination Routing Locator                   |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |           Source Port         |         Dest Port             |
>    UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |           UDP Length          |        UDP Checksum           |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>        |                         LISP Message                          |
>        |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |Version| Traffic Class |           Flow Label                  |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |         Payload Length        | Next Header=17|   Hop Limit   |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>        +                                                               +
>        |                                                               |
>        +                     Source Routing Locator                    +
>        |                                                               |
>        +                                                               +
>        |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>        +                                                               +
>        |                                                               |
>        +                  Destination Routing Locator                  +
>        |                                                               |
>        +                                                               +
>        |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |           Source Port         |         Dest Port             |
>    UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |           UDP Length          |        UDP Checksum           |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>        |                         LISP Message                          |
>        |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>    The LISP UDP-based messages are the Map-Request and Map-Reply
>    messages.  When a UDP Map-Request is sent, the UDP source port is
>    chosen by the sender and the destination UDP port number is set to
>    4342.  When a UDP Map-Reply is sent, the source UDP port number is
>    set to 4342 and the destination UDP port number is copied from the
>    source port of either the Map-Request or the invoking data packet.
>
>   
Could we simplify by:

   The LISP UDP-based messages are the Map-Request and Map-Reply
   messages.  When a UDP Map-Request is sent, the UDP source port
   SHOULD be 4342 and the destination UDP port number is set to
   4342.  When a UDP Map-Reply is sent, the source UDP port number is
   set to 4342 and the destination UDP port number is copied from the
   source port of either the Map-Request or the invoking data packet.


It makes the source able to chose the port be, in practice, a default 
value of 4342 is used. I think that only few site require a non-4342 
source and, because dest cannot be chosen, all the site are forced to 
listen 4342...
>    The UDP Length field will reflect the length of the UDP header and
>    the LISP Message payload.
>
>    The UDP Checksum is computed and set to non-zero for Map-Request and
>    Map-Reply messages.  It MUST be checked on receipt and if the
>    checksum fails, the packet MUST be dropped.
>
>    LISP-CONS [CONS] use TCP to send LISP control messages.  The format
>    of control messages includes the UDP header so the checksum and
>    length fields can be used to protect and delimit message boundaries.
>
>    This main LISP specification is the authoritative source for message
>    format definitions for the Map-Request and Map-Reply messages.
>
> 6.1.1.  LISP Packet Type Allocations
>
>    This section will be the authoritative source for allocating LISP
>    Type values.  Current allocations are:
>
>        Reserved:                        0    b'0000'
>        LISP Map-Request:                1    b'0001'
>        LISP Map-Reply:                  2    b'0010'
>        LISP Map-Register:               3    b'0011'
>   

>        LISP-CONS Open Message:          8    b'1000'
>        LISP-CONS Push-Add Message:      9    b'1001'
>        LISP-CONS Push-Delete Message:   10   b'1010'
>        LISP-CONS Unreachable Message    11   b'1011'
>
>   
Remove, cons is not consider in the WG.
> 6.1.2.  Map-Request Message Format
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |S|
>        *|*                       Locator Reach Bits                      |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                             Nonce                             |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |Type=1 |A|R| *|A|R|P|S|*         Reserved              | Record Count  |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |         Source-EID-AFI        |            ITR-AFI            |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                   Source EID Address  ...                     |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                Originating ITR RLOC Address ...               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |   Reserved    | EID mask-len  |        EID-prefix-AFI         |
>    Rec +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |                       EID-prefix  ...                         |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                   Map-Reply Record  ...                       |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                     Mapping Protocol Data                     |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>    Packet field descriptions:
>
>    S: This is the SMR bit.  See Section 6.5.2 for details.
>
>   

>    Locator Reach Bits:  These bits MUST be set to 0 on transmission and
>       ignored on receipt.  They cannot be used for indicating
>       reachability because the Map-Request does not have the EID-prefix
>       for the sending site so the receiver of the Map-Request cannot
>       know what mapping entry to associate the reachability with.
>       However, when Mapping Data is provided in the Map-Reply Record
>       field, and the receiver of the Map-Request is configured to accept
>       the mapping data, the R-bit per locator entry in the EID-prefix
>       record is used to denote reachability.
>
>   
if no use, remove them!
>    Nonce:  A 4-byte random value created by the sender of the Map-
>       Request.
>   
3-bytes to be consistent with the data-plane. Or give another name.
>    Type:   1 (Map-Request)
>
>    A: This is an authoritative bit, which is set to 0 for UDP-based Map-
>       Requests sent by an ITR.  See other control-specific documents
>       [CONS] for TCP-based Map-Requests.
>
>    R: When set, it indicates a Map-Reply Record segment is included in
>       the Map-Request.
>
>   

>    *P: Indicates that a Map-Request should be treated as a "piggyback"
>       locator reachability probe.  The receiver should respond with a
>       Map-Reply with the P bit set and the nonce copied from the Map-
>       Request.  Details on this usage will be provided in a future
>       version of this draft.
>
> *
If you do not explain what it is, do not put it in the draft yet. 
Please, specify before implementing, otherwise, it is very difficult to 
make OpenLISP compatible with what you do. This is the role of "reserved 
flags"...
> *   S: This is the SMR bit.  See Section 6.5.2 for details.*
>
>    Reserved:  Set to 0 on transmission and ignored on receipt.
>
>    Record Count:  The number of records in this request message.  A
>       record is comprised of the portion of the packet is labeled 'Rec'
>       above and occurs the number of times equal to Record count.
>
>    Source-EID-AFI:  Address family of the "Source EID Address" field.
>
>    ITR-AFI:  Address family of the "Originating ITR RLOC Address" field.
>
>    Source EID Address:  This is the EID of the source host which
>       originated the packet which is invoking this Map-Request.
>
>    Originating ITR RLOC Address:  Used to give the ETR the option of
>       returning a Map-Reply in the address-family of this locator.
>
>    EID mask-len:  Mask length for EID prefix.
>
>    EID-AFI:  Address family of EID-prefix according to [RFC2434]
>
>    EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
>       address-family.  When a Map-Request is sent by an ITR because a
>       data packet is received for a destination where there is no
>       mapping entry, the EID-prefix is set to the destination IP address
>       of the data packet.  And the 'EID mask-len' is set to 32 or 128
>       for IPv4 or IPv6, respectively.  When an xTR wants to query a site
>       about the status of a mapping it already has cached, the EID-
>       prefix used in the Map-Request has the same mask-length as the
>       EID-prefix returned from the site when it sent a Map-Reply
>       message.
>
>    Map-Reply Record:  When the R bit is set, this field is the size of
>       the "Record" field in the Map-Reply format.  This Map-Reply record
>       contains the EID-to-RLOC mapping entry associated with the Source
>       EID.  This allows the ETR which will receive this Map-Request to
>       cache the data if it chooses to do so.
>
>    Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
>       is optional and present when the UDP length indicates there is
>       enough space in the packet to include it.
>
> 6.1.3.  EID-to-RLOC UDP Map-Request Message
>
>    A Map-Request is sent from an ITR when it needs a mapping for an EID,
>    wants to test an RLOC for reachability,
you thus consider control and data plane paths being the same?
>  or wants to refresh a mapping
>    before TTL expiration.  For the initial case, the destination IP
>    address used for the Map-Request is the destination-EID from the
>    packet which had a mapping cache lookup failure.  For the later 2
>    cases, the destination IP address used for the Map-Request is one of
>    the RLOC addresses from the locator-set of the map cache entry.  In
>    all cases, the UDP source port number for the Map-Request message is
>    a randomly allocated 16-bit value and the UDP destination port number
>    is set to the well-known destination port number 4342.  A successful
>    Map-Reply updates the cached set of RLOCs associated with the EID
>    prefix range.
>
>    Map-Requests can also be LISP encapsulated using UDP destination port
>    4341 when sent from an ITR to a Map-Resolver.  Likewise, Map-Requests
>    are LISP encapsulated the same way from a Map-Server to an ETR.
>    Details on encapsulated Map-Requests and Map-Resolvers can be found
>    in [LISP-MS].
>
>    Map-Requests MUST be rate-limited.  It is recommended that a Map-
>    Request for the same EID-prefix be sent no more than once per second.
>   
Why 1 second? As the TTL is with a one minute granularity, why 1 
second?  for when TTL is set to 0? If it is for the SMR bit, this bit 
should not be seen too frequently, otherwise, the 1minute granularity 
TTL has to be revised.
> 6.1.4.  Map-Reply Message Format
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |x|
>        *|*                       Locator Reach Bits                      |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                             Nonce                             |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |Type=2 | *|P|*            Reserved                 | Record Count  |
>    +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |                          Record  TTL                          |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
>    e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    c   |           Reserved            |            EID-AFI            |
>    o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    r   |                          EID-prefix                           |
>    d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
>    | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    | o |           Unused Flags      |R|           Loc-AFI             |
>    | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |  \|                             Locator                           |
>    +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                     Mapping Protocol Data                     |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>    Packet field descriptions:
>
>    x: Set to 0 on transmission and ignored on receipt.
>
>   

>    Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
>       0 on transmission and ignored on receipt.  The locator
>       reachability is encoded as the R-bit in each locator entry of each
>       EID-prefix record.
>
>   
Not used, then remove it.
>    Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
>       that is echoed here in the Map-Reply.
>
>   
3-bytes or change the name.
>    Type:   2 (Map-Reply)
>
>    *P: Indicates that the Map-Reply is in response to a "piggyback"
>       locator reachability Map-Request.  The nonce field should contain
>       a copy of the nonce value from the original Map-Request.  Details
>       on this usage will be provided in a future version of this draft.*
>
>   
cf supra (remove this part or explain it)
>    Reserved:  Set to 0 on transmission and ignored on receipt.
>
>    Record Count:  The number of records in this reply message.  A record
>       is comprised of that portion of the packet labeled 'Record' above
>       and occurs the number of times equal to Record count.
>
>    Record TTL:  The time in minutes the recipient of the Map-Reply will
>       store the mapping.  If the TTL is 0, the entry should be removed
>       from the cache immediately.  If the value is 0xffffffff, the
>       recipient can decide locally how long to store the mapping.
>
>   
32-bit for one minute granularity TTL means that a mapping can live 8171 
years, reduce the side to win space or switch to a one second 
granularity (136 years should be enough ;-) ) (but you can recommend to 
use > 1minute TTL).
>    Locator Count:  The number of Locator entries.  A locator entry
>       comprises what is labeled above as 'Loc'.  The locator count can
>       be 0 indicating there are no locators for the EID-prefix.
>
>    EID mask-len:  Mask length for EID prefix.
>
>    A: The Authoritative bit, when sent by a UDP-based message is always
>       set by the ETR.

> See [CONS] for TCP-based Map-Replies.
>
>   
remove as CONS is not considered.
>    ACT:  This 3-bit field describes negative Map-Reply actions.  These
>       bits are used only when the 'Locator Count' field is set to 0.
>       The action bits are encoded only in Map-Reply messages.  The
>       actions defined are used by an ITR or PTR when a destination EID
>       matches a negative mapping cache entry.  The current assigned
>       values are:
>
>       (0) No action:  No action is being conveyed by the sender of the
>          Map-Reply message.
>
>       (1) Natively-Forward:  The packet is not encapsulated or dropped
>          but natively forwarded.
>
>       (2) Drop:  The packet is dropped silently.
>
>       (3) Send-Map-Request:  The packet invokes sending a Map-Request.
>
>    EID-AFI:  Address family of EID-prefix according to [RFC2434].
>
>    EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
>       address-family.
>
>    Priority:  each RLOC is assigned a unicast priority.  Lower values
>       are more preferable.  When multiple RLOCs have the same priority,
>       they may be used in a load-split fashion.  A value of 255 means
>       the RLOC MUST NOT be used for unicast forwarding.
>
>    Weight:  when priorities are the same for multiple RLOCs, the weight
>       indicates how to balance unicast traffic between them.  Weight is
>       encoded as a percentage of total unicast packets that match the
>       mapping entry.  If a non-zero weight value is used for any RLOC,
>       then all RLOCs must use a non-zero weight value and then the sum
>       of all weight values MUST equal 100.  If a zero value is used for
>       any RLOC weight, then all weights MUST be zero and the receiver of
>       the Map-Reply will decide how to load-split traffic.  See
>       Section 6.4 for a suggested hash algorithm to distribute load
>       across locators with same priority and equal weight values.  When
>       a single RLOC exists in a mapping entry, the weight value MUST be
>       set to 100 and ignored on receipt.
>
>    M Priority:  each RLOC is assigned a multicast priority used by an
>       ETR in a receiver multicast site to select an ITR in a source
>       multicast site for building multicast distribution trees.  A value
>       of 255 means the RLOC MUST NOT be used for joining a multicast
>       distribution tree.
>
>    M Weight:  when priorities are the same for multiple RLOCs, the
>       weight indicates how to balance building multicast distribution
>       trees across multiple ITRs.  The weight is encoded as a percentage
>       of total number of trees build to the source site identified by
>       the EID-prefix.  If a non-zero weight value is used for any RLOC,
>       then all RLOCs must use a non-zero weight value and then the sum
>       of all weight values MUST equal 100.  If a zero value is used for
>       any RLOC weight, then all weights MUST be zero and the receiver of
>       the Map-Reply will decide how to distribute multicast state across
>       ITRs.
>
>    Unused Flags:  set to 0 when sending and ignored on receipt.
>
>    R: when this bit is set, the locator is known to be reachable from
>       the Map-Reply sender's perspective.  When there is a single
>       mapping record in the message, the R-bit for each locator must
>       have a consistent setting with the bitfield setting of the 'Loc
>       Reach Bits' field in the early part of the header.  When there are
>       multiple mapping records in the message, the 'Loc Reach Bits'
>       field is set to 0.
>
>    Locator:  an IPv4 or IPv6 address (as encoded by the 'Loc-AFI' field)
>       assigned to an ETR or router acting as a proxy replier for the
>       EID-prefix.  Note that the destination RLOC address MAY be an
>       anycast address.  A source RLOC can be an anycast address as well.
>       The source or destination RLOC MUST NOT be the broadcast address
>       (255.255.255.255 or any subnet broadcast address known to the
>       router), and MUST NOT be a link-local multicast address.  The
>       source RLOC MUST NOT be a multicast address.  The destination RLOC
>       SHOULD be a multicast address if it is being mapped from a
>       multicast destination EID.
>
>    Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
>       is optional and present when the UDP length indicates there is
>       enough space in the packet to include it.
>
> 6.1.5.  EID-to-RLOC UDP Map-Reply Message
>
>    When a Data Probe packet or a Map-Request triggers a Map-Reply to be
>    sent, the RLOCs associated with the EID-prefix matched by the EID in
>    the original packet destination IP address field will be returned.
>    The RLOCs in the Map-Reply are the globally-routable IP addresses of
>    the ETR but are not necessarily reachable; separate testing of
>    reachability is required.
>
>    Note that a Map-Reply may contain different EID-prefix granularity
>    (prefix + length) than the Map-Request which triggers it.  This might
>    occur if a Map-Request were for a prefix that had been returned by an
>    earlier Map-Reply.  In such a case, the requester updates its cache
>    with the new prefix information and granularity.  For example, a
>    requester with two cached EID-prefixes that are covered by a Map-
>    Reply containing one, less-specific prefix, replaces the entry with
>    the less-specific EID-prefix.  Note that the reverse, replacement of
>    one less-specific prefix with multiple more-specific prefixes, can
>    also occur but not by removing the less-specific prefix rather by
>    adding the more-specific prefixes which during a lookup will override
>    the less-specific prefix.
>
>    Replies SHOULD be sent for an EID-prefix no more often than once per
>    second to the same requesting router.  For scalability, it is
>    expected that aggregation of EID addresses into EID-prefixes will
>    allow one Map-Reply to satisfy a mapping for the EID addresses in the
>    prefix range thereby reducing the number of Map-Request messages.
>
>    The addresses for a encapsulated data packets or Map-Request message
>    are swapped and used for sending the Map-Reply.  The UDP source and
>    destination ports are swapped as well.  That is, the source port in
>    the UDP header for the Map-Reply is set to the well-known UDP port
>    number 4342.
>
>    Map-Reply records can have an empty locator-set.  This type of a Map-
>    Reply is called a Negative Map-Reply.  Negative Map-Replies convey
>    special actions by the sender to the ITR or PTR which have solicited
>    the Map-Reply.  There are two primary applications for Negative Map-
>    Replies.  The first is for a Map-Resolver to instruct an ITR or PTR
>    when a destination is for a LISP site versus a non-LISP site.  And
>    the other is to source quench Map-Requests which are sent for non-
>    allocated EIDs.
>
> 6.1.6.  Map-Register Message Format
>
>    The usage details of the Map-Register message can be found in
>    specification [LISP-MS].  This section solely defines the message
>    format.
>
>    The message is sent in a UDP with a destination UDP port 4342 and a
>    randomly selected UDP port number.  Before an IPv4 or IPv6 network
>    layer header is prepended, an AH header is prepended to carry
>    authentication information.  The format conforms to the IPsec
>    specification [RFC2402].  The Map-Register message will use transport
>    mode by setting the IP protocol number field or the IPv6 next-header
>    field to 51.
>
>    The AH header from [RFC2402] is:
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        | Next Header   |  Payload Len  |          RESERVED             |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                 Security Parameters Index (SPI)               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                    Sequence Number Field                      |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>        +                Authentication Data (variable)                 |
>        |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>    The Next Header field is set to UDP.  The SPI field is set to 0
>    (since no Security Association or Key Exchange protocol is being
>    used).  The Sequence Number is a randomly chosen value by the sender.
>    The Authentication Data is 16 bytes and holds a MD5 HMAC.
>
>    The Map-Register message format is:
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |x|
>        *|*                       Locator Reach Bits                      |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                             Nonce                             |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |Type=3 |P|            Reserved                 | Record Count  |
>    +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |                          Record  TTL                          |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
>    e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    c   |           Reserved            |            EID-AFI            |
>    o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    r   |                          EID-prefix                           |
>    d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
>    | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    | o |           Unused Flags      |R|           Loc-AFI             |
>    | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |  \|                             Locator                           |
>    +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>    Packet field descriptions:
>
>    x: Set to 0 on transmission and ignored on receipt.
>
>    Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
>       0 on transmission and ignored on receipt.  The locator
>       reachability is encoded as the R-bit in each locator entry of each
>       EID-prefix record.
>
>    Nonce:  The Nonce field is set to 0 in Map-Register messages.
>
>    Type:   3 (Map-Register)
>
>    P: This is the Proxy-Map-Reply bit.  When set *Set* to 1, the *1 by an* ETR sending *which sends* a Map-Register is asking *message requesting
>       for* the Map-Server to *proxy Map-Reply.  The Map-Server will* send
>       non-authoritative Map-Replies on behalf of the ETR.  *Details on
>       this usage will be provided in a future version of this draft.*
>
>    Reserved:  Set to 0 on transmission and ignored on receipt.
>
>    Record Count:  The number of records in this Map-Register message.  A
>       record is comprised of that portion of the packet labeled 'Record'
>       above and occurs the number of times equal to Record count.
>
>    The definition of the rest of the Map-Register can be found in the
>    Map-Reply section.
>
> 6.2.  Routing Locator Selection
>
>    Both client-side and server-side may need control over the selection
>    of RLOCs for conversations between them.  This control is achieved by
>    manipulating the Priority and Weight fields in EID-to-RLOC Map-Reply
>    messages.  Alternatively, RLOC information may be gleaned from
>    received tunneled packets or EID-to-RLOC Map-Request messages.
>
>    The following enumerates different scenarios for choosing RLOCs and
>    the controls that are available:
>
>    o  Server-side returns one RLOC.  Client-side can only use one RLOC.
>       Server-side has complete control of the selection.
>
>    o  Server-side returns a list of RLOC where a subset of the list has
>       the same best priority.  Client can only use the subset list
>       according to the weighting assigned by the server-side.  In this
>       case, the server-side controls both the subset list and load-
>       splitting across its members.  The client-side can use RLOCs
>       outside of the subset list if it determines that the subset list
>       is unreachable (unless RLOCs are set to a Priority of 255).  Some
>       sharing of control exists: the server-side determines the
>       destination RLOC list and load distribution while the client-side
>       has the option of using alternatives to this list if RLOCs in the
>       list are unreachable.
>
>    o  Server-side sets weight of 0 for the RLOC subset list.  In this
>       case, the client-side can choose how the traffic load is spread
>       across the subset list.  Control is shared by the server-side
>       determining the list and the client determining load distribution.
>       Again, the client can use alternative RLOCs if the server-provided
>       list of RLOCs are unreachable.
>
>    o  Either side (more likely on the server-side ETR) decides not to
>       send a Map-Request.  For example, if the server-side ETR does not
>       send Map-Requests, it gleans RLOCs from the client-side ITR,
>       giving the client-side ITR responsibility for bidirectional RLOC
>       reachability and preferability.  Server-side ETR gleaning of the
>       client-side ITR RLOC is done by caching the inner header source
>       EID and the outer header source RLOC of received packets.  The
>       client-side ITR controls how traffic is returned and can alternate
>       using an outer header source RLOC, which then can be added to the
>       list the server-side ETR uses to return traffic.  Since no
>       Priority or Weights are provided using this method, the server-
>       side ETR must assume each client-side ITR RLOC uses the same best
>       Priority with a Weight of zero.  In addition, since EID-prefix
>       encoding cannot be conveyed in data packets, the EID-to-RLOC cache
>       on tunnel routers can grow to be very large.
>
>    RLOCs that appear in EID-to-RLOC Map-Reply messages are considered
>    reachable.  The Map-Reply and the database mapping service does not
>    provide any reachability status for Locators.  This is done outside
>    of the mapping service.  See next section for details.
>
> 6.3.  Routing Locator Reachability
>
>    There are 4 methods for determining when a Locator is either
>    reachable or has become unreachable:
>
>    1.  Locator reachability is determined by an ETR by examining the
>        Loc-Reach-Bits from a LISP header of a encapsulated data packet
>        which is provided by an ITR when an ITR encapsulates data.
>
>    2.  Locator unreachability is determined by an ITR by receiving ICMP
>        Network or Host Unreachable messages.
>
>    3.  Locator unreachability can also be determined by an BGP-enabled
>        ITR when there is no prefix matching a Locator address from the
>        BGP RIB.
>
>    4.  Locator unreachability is determined when a host sends an ICMP
>        Port Unreachable message.  This occurs when an ITR may not use
>        any methods of interworking. one which is describe in [INTERWORK]
>        and the encapsulated data packet is received by a host at the
>        destination non-LISP site.
>
>    5.  Locator reachability is determined by receiving a Map-Reply
>        message from a ETR's Locator address in response to a previously
>        sent Map-Request.
>
>    6.  Locator reachability can also be determined by receiving packets
>        encapsulated by the ITR assigned to the locator address.
>
>    When determining Locator reachability by examining the Loc-Reach-Bits
>    from the LISP encapsulate data packet, an ETR will receive up to date
>    status from the ITR closest to the Locators at the source site.  The
>    ITRs at the source site can determine reachability when running their
>    IGP at the site.  When the ITRs are deployed on CE routers, typically
>    a default route is injected into the site's IGP from each of the
>    ITRs.  If an ITR goes down, the CE-PE link goes down, or the PE
>    router goes down, the CE router withdraws the default route.  This
>    allows the other ITRs at the site to determine one of the Locators
>    has gone unreachable.
>
>    The Locators listed in a Map-Reply are numbered with ordinals 0 to
>    n-1.  The Loc-Reach-Bits in a LISP Data Message are numbered from 0
>    to n-1 starting with the least significant bit numbered as 0.  So,
>    for example, if the ITR with locator listed as the 3rd Locator
>    position in the Map-Reply goes down, all other ITRs at the site will
>    have the 3rd bit from the right cleared (the bit that corresponds to
>    ordinal 2).
>
>    When an ETR decapsulates a packet, it will look for a change in the
>    Loc-Reach-Bits value.  When a bit goes from 1 to 0, the ETR will
>    refrain from encapsulating packets to the Locator that has just gone
>    unreachable.  It can start using the Locator again when the bit that
>    corresponds to the Locator goes from 0 to 1.  Loc-Reach-Bits are
>    associated with a locator-set per EID-prefix.  Therefore, when a
>    locator becomes unreachable, the loc-reach-bit that corresponds to
>    that locator's position in the list returned by the last Map-Reply
>    will be set to zero for that particular EID-prefix.
>
>    When ITRs at the site are not deployed in CE routers, the IGP can
>    still be used to determine the reachability of Locators provided they
>    are injected a stub links into the IGP.  This is typically done when
>    a /32 address is configured on a loopback interface.
>
>    When ITRs receive ICMP Network or Host Unreachable messages as a
>    method to determine unreachability, they will refrain from using
>    Locators which are described in Locator lists of Map-Replies.
>    However, using this approach is unreliable because many network
>    operators turn off generation of ICMP Unreachable messages.
>
>    If an ITR does receive an ICMP Network or Host Unreachable message,
>    it MAY originate its own ICMP Unreachable message destined for the
>    host that originated the data packet the ITR encapsulated.
>
>    Also, BGP-enabled ITRs can unilaterally examine the BGP RIB to see if
>    a locator address from a locator-set in a mapping entry matches a
>    prefix.  If it does not find one and BGP is running in the Default
>    Free Zone (DFZ), it can decide to not use the locator even though the
>    Loc-Reach-Bits indicate the locator is up.  In this case, the path
>    from the ITR to the ETR that is assigned the locator is not
>    available.  More details are in [LOC-ID-ARCH].
>
>    Optionally, an ITR can send a Map-Request to a Locator and if a Map-
>    Reply is returned, reachability of the Locator has been determined.
>    Obviously, sending such probes increases the number of control
>    messages originated by tunnel routers for active flows, so Locators
>    are assumed to be reachable when they are advertised.
>
>    This assumption does create a dependency: Locator unreachability is
>    detected by the receipt of ICMP Host Unreachable messages.  When an
>    Locator has been determined to be unreachable, it is not used for
>    active traffic; this is the same as if it were listed in a Map-Reply
>    with priority 255.
>
>    The ITR can test the reachability of the unreachable Locator by
>    sending periodic Requests.  Both Requests and Replies MUST be rate-
>    limited.  Locator reachability testing is never done with data
>    packets since that increases the risk of packet loss for end-to-end
>    sessions.
>
>    When an ETR is decapsulating packets, *decapsulates a packet,* it can be sure *knows* that the path *it is reachable* from
>    the encapsulating ITR *because that* is available.  The *how the packet arrived.  In
>    most cases, the* ETR can *also reach the ITR but cannot* assume *this to
>    be true due to* the *possibility of* path
>    from *assymetry.  In* the ETR *presence of
>    unidirectional traffic flow from an ITR* to *an ETR,* the ITR *should not
>    use the lack of return traffic as an indication that the ETR* is also reachable.  Even if
>    *unreachable.  Instead, it must use an alternate mechanisms to
>    determine reachability.
>
> 6.3.1.  Echo Nonce Algorithm
>
> *
To clarify this section, it should be rewritten with the idea that this 
is a hint for the "non-reachability". If the reply comes, perfect, we 
have reachability. Otherwise, it is a hint that there is maybe a 
reachability issue and then another technique has to be used.

Regards

Damien Saucez

> *   When* there is
>    asymmetric routing *bidirectional data flow between a pair of locators, a
>    simple mechanism called "nonce echoing" can be used to determine
>    reachability between an ITR and ETR.  When an ITR wants to solicit a
>    nonce echo, it sets the E-bit and places a 24-bit nonce* in the core, *LISP
>    header of* the first-hop *next encapsulated data packet.
>
>    When this packet is received by the ETR, the encapsulated packet is
>    forwarded as normal.  When the ETR next sends a data packet to the
>    ITR, it includes the nonce received earlier.  The ITR sees this "echo
>    nonce reply"* and last-hop ASes will
>    be *knows* the same *path to and from the ETR is up.
>
>    The time the ITR waits* for both directions of traffic since the *echoed nonce before it determines the
>    path is down is variable and a choice left for the implementation.
>
>    If the ITR is receiving packets from the ETR but does not see the
>    nonce echoed, then the path to the ETR is down.  This decision may be
>    overridden by other* locator
>    addresses *reachability algorithms.  Once the ITR
>    determines the path to the ETR is down it can switch to another
>    locator for that EID-prefix.
>
>    Note that "ITR" and "ETR"* are out of *relative terms here.  Both devices must
>    be implementing both ITR and ETR functionality for* the PA blocks *echo nonce
>    mechanism to operate.
>
>    The ITR and ETR may both go into echo-nonce-request state at the same
>    time.  The number* of each. *packets sent or the time during which echo nonce
>    requests are sent is an implementation specific setting.*  However,
>    *when an ITR is in echo-nonce-request state, it can echo the ETR's
>    nonce in the next packet that it encapsulates and then subsequently,
>    continue sending echo-nonce-request packets.
>
>    This mechanism does not completely solve the forward path
>    reachability problem as traffic may be unidirectional.  That is,* the assumption
>    *ETR receiving traffic at a site may not* may not always be valid, so this mechanism should be used as a best-
>    effort indication that a working path exists between the sites.  In the event of unidirectional traffic from *same device as*
>    an ITR *which transmits traffic from that site or the site* to an ETR, an *site
>    traffic is unidirectional so there is no* ITR
>    should not conclude *returning traffic.
>
>    Note* that a *other* locator is unreachable since it is not
>    receiving packets, but use alternate *reachability* mechanisms described above to
>    determine reachability. *are being researched.*
>
> 6.4.  Routing Locator Hashing
>
>    When an ETR provides an EID-to-RLOC mapping in a Map-Reply message to
>    a requesting ITR, the locator-set for the EID-prefix may contain
>    different priority values for each locator address.  When more than
>    one best priority locator exists, the ITR can decide how to load
>    share traffic against the corresponding locators.
>
>    The following hash algorithm may be used by an ITR to select a
>    locator for a packet destined to an EID for the EID-to-RLOC mapping:
>
>    1.  Either a source and destination address hash can be used or the
>        traditional 5-tuple hash which includes the source and
>        destination addresses, source and destination TCP, UDP, or SCTP
>        port numbers and the IP protocol number field or IPv6 next-
>        protocol fields of a packet a host originates from within a LISP
>        site.  When a packet is not a TCP, UDP, or SCTP packet, the
>        source and destination addresses only from the header are used to
>        compute the hash.
>
>    2.  Take the hash value and divide it by the number of locators
>        stored in the locator-set for the EID-to-RLOC mapping.
>
>    3.  The remainder will be yield a value of 0 to "number of locators
>        minus 1".  Use the remainder to select the locator in the
>        locator-set.
>
>    Note that when a packet is LISP encapsulated, the source port number
>    in the outer UDP header needs to be set.  Selecting a random value
>    allows core routers which are attached to Link Aggregation Groups
>    (LAGs) to load-split the encapsulated packets across member links of
>    such LAGs.  Otherwise, core routers would see a single flow, since
>    packets have a source address of the ITR, for packets which are
>    originated by different EIDs at the source site.  A suggested setting
>    for the source port number computed by an ITR is a 5-tuple hash
>    function on the inner header, as described above.
>
> 6.5.  Changing the Contents of EID-to-RLOC Mappings
>
>    Since the LISP architecture uses a caching scheme to retrieve and
>    store EID-to-RLOC mappings, the only way an ITR can get a more up-to-
>    date mapping is to re-request the mapping.  However, the ITRs do not
>    know when the mappings change and the ETRs do not keep track of who
>    requested its mappings.  For scalability reasons, we want to maintain
>    this approach but need to provide a way for ETRs change their
>    mappings and inform the sites that are currently communicating with
>    the ETR site using such mappings.
>
>    When a locator record is added to the end of a locator-set, it is
>    easy to update mappings.  We assume new mappings will maintain the
>    same locator ordering as the old mapping but just have new locators
>    appended to the end of the list.  So some ITRs can have a new mapping
>    while other ITRs have only an old mapping that is used until they
>    time out.  When an ITR has only an old mapping but detects bits set
>    in the loc-reach-bits that correspond to locators beyond the list it
>    has cached, it simply ignores them.
>
>    When a locator record is removed from a locator-set, ITRs that have
>    the mapping cached will not use the removed locator because the xTRs
>    will set the loc-reach-bit to 0.  So even if the locator is in the
>    list, it will not be used.  For new mapping requests, the xTRs can
>    set the locator address to 0 as well as setting the corresponding
>    loc-reach-bit to 0.  This forces ITRs with old or new mappings to
>    avoid using the removed locator.
>
>    If many changes occur to a mapping over a long period of time, one
>    will find empty record slots in the middle of the locator-set and new
>    records appended to the locator-set.  At some point, it would be
>    useful to compact the locator-set so the loc-reach-bit settings can
>    be efficiently packed.
>
>    We propose here two approaches for locator-set compaction, one
>    operational and the other a protocol mechanism.  The operational
>    approach uses a clock sweep method.  The protocol approach uses the
>    concept of Solicit-Map-Requests.
>
> 6.5.1.  Clock Sweep
>
>    The clock sweep approach uses planning in advance and the use of
>    count-down TTLs to time out mappings that have already been cached.
>    The default setting for an EID-to-RLOC mapping TTL is 24 hours.  So
>    there is a 24 hour window to time out old mappings.  The following
>    clock sweep procedure is used:
>
>    1.  24 hours before a mapping change is to take effect, a network
>        administrator configures the ETRs at a site to start the clock
>        sweep window.
>
>    2.  During the clock sweep window, ETRs continue to send Map-Reply
>        messages with the current (unchanged) mapping records.  The TTL
>        for these mappings is set to 1 hour.
>
>    3.  24 hours later, all previous cache entries will have timed out,
>        and any active cache entries will time out within 1 hour.  During
>        this 1 hour window the ETRs continue to send Map-Reply messages
>        with the current (unchanged) mapping records with the TTL set to
>        1 minute.
>
>    4.  At the end of the 1 hour window, the ETRs will send Map-Reply
>        messages with the new (changed) mapping records.  So any active
>        caches can get the new mapping contents right away if not cached,
>        or in 1 minute if they had the mapping cached.
>
> 6.5.2.  Solicit-Map-Request (SMR)
>
>    Soliciting a Map-Request is a selective way for xTRs, at the site
>    where mappings change, to control the rate they receive requests for
>    Map-Reply messages.  SMRs are also used to tell remote ITRs to update
>    the mappings they have cached.
>
>    Since the xTRs don't keep track of remote ITRs that have cached their
>    mappings, they can not tell exactly who needs the new mapping
>    entries.  So an xTR will solicit Map-Requests from sites it is
>    currently sending encapsulated data to, and only from those sites.
>    The xTRs can locally decide the algorithm for how often and to how
>    many sites it sends SMR messages.
>
>    An SMR message is simply a bit set in an encapsulated data packet
>    (and a Map-Request message).  When an ETR at a remote site
>    decapsulates a data packet that has the SMR bit set, it can tell that
>    a new Map-Request message is being solicited.  Both the xTR that
>    sends the SMR message and the site that acts on the SMR message MUST
>    be rate-limited.
>
>    The following procedure shows how a SMR exchange occurs when a site
>    is doing locator-set compaction for an EID-to-RLOC mapping:
>
>    1.  When the database mappings in an ETR change, the ITRs at the site
>        begin to set the SMR bit in packets they encapsulate to the sites
>        they communicate with.
>
>    2.  A remote xTR which decapsulates a packet with the SMR bit set
>        will schedule sending a Map-Request message to the source locator
>        address of the encapsulated packet.  The nonce in the Map-Request
>        is copied from the nonce in the encapsulated data packet that has
>        the SMR bit set.
>
>    3.  The remote xTR retransmits the Map-Request slowly until it gets a
>        Map-Reply while continuing to use the cached mapping.
>
>    4.  The ETRs at the site with the changed mapping will reply to the
>        Map-Request with a Map-Reply message provided the Map-Request
>        nonce matches the nonce from the SMR.  The Map-Reply messages
>        SHOULD be rate limited.  This is important to avoid Map-Reply
>        implosion.
>
>    5.  The ETRs, at the site with the changed mapping, records the fact
>        that the site that sent the Map-Request has received the new
>        mapping data in the mapping cache entry for the remote site so
>        the loc-reach-bits are reflective of the new mapping for packets
>        going to the remote site.  The ETR then stops sending packets
>        with the SMR-bit set.
>
>    For security reasons an ITR MUST NOT process unsolicited Map-Replies.
>    The nonce MUST be carried from SMR packet, into the resultant Map-
>    Request, and then into Map-Reply to reduce spoofing attacks.
>
> 7.  Router Performance Considerations
>
>    LISP is designed to be very hardware-based forwarding friendly.  By
>    doing tunnel header prepending [RFC1955] and stripping instead of re-
>    writing addresses, existing hardware can support the forwarding model
>    with little or no modification.  Where modifications are required,
>    they should be limited to re-programming existing hardware rather
>    than requiring expensive design changes to hard-coded algorithms in
>    silicon.
>
>    A few implementation techniques can be used to incrementally
>    implement LISP:
>
>    o  When a tunnel encapsulated packet is received by an ETR, the outer
>       destination address may not be the address of the router.  This
>       makes it challenging for the control plane to get packets from the
>       hardware.  This may be mitigated by creating special FIB entries
>       for the EID-prefixes of EIDs served by the ETR (those for which
>       the router provides an RLOC translation).  These FIB entries are
>       marked with a flag indicating that control plane processing should
>       be performed.  The forwarding logic of testing for particular IP
>       protocol number value is not necessary.  No changes to existing,
>       deployed hardware should be needed to support this.
>
>    o  On an ITR, prepending a new IP header is as simple as adding more
>       bytes to a MAC rewrite string and prepending the string as part of
>       the outgoing encapsulation procedure.  Many routers that support
>       GRE tunneling [RFC2784] or 6to4 tunneling [RFC3056] can already
>       support this action.
>
>    o  When a received packet's outer destination address contains an EID
>       which is not intended to be forwarded on the routable topology
>       (i.e.  LISP 1.5), the source address of a data packet or the
>       router interface with which the source is associated (the
>       interface from which it was received) can be associated with a VRF
>       (Virtual Routing/Forwarding), in which a different (i.e. non-
>       congruent) topology can be used to find EID-to-RLOC mappings.
>
> 8.  Deployment Scenarios
>
>    This section will explore how and where ITRs and ETRs can be deployed
>    and will discuss the pros and cons of each deployment scenario.
>    There are two basic deployment trade-offs to consider: centralized
>    versus distributed caches and flat, recursive, or re-encapsulating
>    tunneling.
>
>    When deciding on centralized versus distributed caching, the
>    following issues should be considered:
>
>    o  Are the tunnel routers spread out so that the caches are spread
>       across all the memories of each router?
>
>    o  Should management "touch points" be minimized by choosing few
>       tunnel routers, just enough for redundancy?
>
>    o  In general, using more ITRs doesn't increase management load,
>       since caches are built and stored dynamically.  On the other hand,
>       more ETRs does require more management since EID-prefix-to-RLOC
>       mappings need to be explicitly configured.
>
>    When deciding on flat, recursive, or re-encapsulation tunneling, the
>    following issues should be considered:
>
>    o  Flat tunneling implements a single tunnel between source site and
>       destination site.  This generally offers better paths between
>       sources and destinations with a single tunnel path.
>
>    o  Recursive tunneling is when tunneled traffic is again further
>       encapsulated in another tunnel, either to implement VPNs or to
>       perform Traffic Engineering.  When doing VPN-based tunneling, the
>       site has some control since the site is prepending a new tunnel
>       header.  In the case of TE-based tunneling, the site may have
>       control if it is prepending a new tunnel header, but if the site's
>       ISP is doing the TE, then the site has no control.  Recursive
>       tunneling generally will result in suboptimal paths but at the
>       benefit of steering traffic to resource available parts of the
>       network.
>
>    o  The technique of re-encapsulation ensures that packets only
>       require one tunnel header.  So if a packet needs to be rerouted,
>       it is first decapsulated by the ETR and then re-encapsulated with
>       a new tunnel header using a new RLOC.
>
>    The next sub-sections will describe where tunnel routers can reside
>    in the network.
>
> 8.1.  First-hop/Last-hop Tunnel Routers
>
>    By locating tunnel routers close to hosts, the EID-prefix set is at
>    the granularity of an IP subnet.  So at the expense of more EID-
>    prefix-to-RLOC sets for the site, the caches in each tunnel router
>    can remain relatively small.  But caches always depend on the number
>    of non-aggregated EID destination flows active through these tunnel
>    routers.
>
>    With more tunnel routers doing encapsulation, the increase in control
>    traffic grows as well: since the EID-granularity is greater, more
>    Map-Requests and Map-Replies are traveling between more routers.
>
>    The advantage of placing the caches and databases at these stub
>    routers is that the products deployed in this part of the network
>    have better price-memory ratios then their core router counterparts.
>    Memory is typically less expensive in these devices and fewer routes
>    are stored (only IGP routes).  These devices tend to have excess
>    capacity, both for forwarding and routing state.
>
>    LISP functionality can also be deployed in edge switches.  These
>    devices generally have layer-2 ports facing hosts and layer-3 ports
>    facing the Internet.  Spare capacity is also often available in these
>    devices as well.
>
> 8.2.  Border/Edge Tunnel Routers
>
>    Using customer-edge (CE) routers for tunnel endpoints allows the EID
>    space associated with a site to be reachable via a small set of RLOCs
>    assigned to the CE routers for that site.
>
>    This offers the opposite benefit of the first-hop/last-hop tunnel
>    router scenario: the number of mapping entries and network management
>    touch points are reduced, allowing better scaling.
>
>    One disadvantage is that less of the network's resources are used to
>    reach host endpoints thereby centralizing the point-of-failure domain
>    and creating network choke points at the CE router.
>
>    Note that more than one CE router at a site can be configured with
>    the same IP address.  In this case an RLOC is an anycast address.
>    This allows resilience between the CE routers.  That is, if a CE
>    router fails, traffic is automatically routed to the other routers
>    using the same anycast address.  However, this comes with the
>    disadvantage where the site cannot control the entrance point when
>    the anycast route is advertised out from all border routers.
>
> 8.3.  ISP Provider-Edge (PE) Tunnel Routers
>
>    Use of ISP PE routers as tunnel endpoint routers gives an ISP control
>    over the location of the egress tunnel endpoints.  That is, the ISP
>    can decide if the tunnel endpoints are in the destination site (in
>    either CE routers or last-hop routers within a site) or at other PE
>    edges.  The advantage of this case is that two or more tunnel headers
>    can be avoided.  By having the PE be the first router on the path to
>    encapsulate, it can choose a TE path first, and the ETR can
>    decapsulate and re-encapsulate for a tunnel to the destination end
>    site.
>
>    An obvious disadvantage is that the end site has no control over
>    where its packets flow or the RLOCs used.
>
>    As mentioned in earlier sections a combination of these scenarios is
>    possible at the expense of extra packet header overhead, if both site
>    and provider want control, then recursive or re-encapsulating tunnels
>    are used.
>
> 9.  Traceroute Considerations
>
>    When a source host in a LISP site initiates a traceroute to a
>    destination host in another LISP site, it is highly desirable for it
>    to see the entire path.  Since packets are encapsulated from ITR to
>    ETR, the hop across the tunnel could be viewed as a single hop.
>    However, LISP traceroute will provide the entire path so the user can
>    see 3 distinct segments of the path from a source LISP host to a
>    destination LISP host:
>
>       Segment 1 (in source LISP site based on EIDs):
>
>           source-host ---> first-hop ... next-hop ---> ITR
>
>       Segment 2 (in the core network based on RLOCs):
>
>           ITR ---> next-hop ... next-hop ---> ETR
>
>       Segment 3 (in the destination LISP site based on EIDs):
>
>           ETR ---> next-hop ... last-hop ---> destination-host
>
>    For segment 1 of the path, ICMP Time Exceeded messages are returned
>    in the normal matter as they are today.  The ITR performs a TTL
>    decrement and test for 0 before encapsulating.  So the ITR hop is
>    seen by the traceroute source has an EID address (the address of
>    site-facing interface).
>
>    For segment 2 of the path, ICMP Time Exceeded messages are returned
>    to the ITR because the TTL decrement to 0 is done on the outer
>    header, so the destination of the ICMP messages are to the ITR RLOC
>    address, the source source RLOC address of the encapsulated
>    traceroute packet.  The ITR looks inside of the ICMP payload to
>    inspect the traceroute source so it can return the ICMP message to
>    the address of the traceroute client as well as retaining the core
>    router IP address in the ICMP message.  This is so the traceroute
>    client can display the core router address (the RLOC address) in the
>    traceroute output.  The ETR returns its RLOC address and responds to
>    the TTL decrement to 0 like the previous core routers did.
>
>    For segment 3, the next-hop router downstream from the ETR will be
>    decrementing the TTL for the packet that was encapsulated, sent into
>    the core, decapsulated by the ETR, and forwarded because it isn't the
>    final destination.  If the TTL is decremented to 0, any router on the
>    path to the destination of the traceroute, including the next-hop
>    router or destination, will send an ICMP Time Exceeded message to the
>    source EID of the traceroute client.  The ICMP message will be
>    encapsulated by the local ITR and sent back to the ETR in the
>    originated traceroute source site, where the packet will be delivered
>    to the host.
>
> 9.1.  IPv6 Traceroute
>
>    IPv6 traceroute follows the procedure described above since the
>    entire traceroute data packet is included in ICMP Time Exceeded
>    message payload.  Therefore, only the ITR needs to pay special
>    attention for forwarding ICMP messages back to the traceroute source.
>
> 9.2.  IPv4 Traceroute
>
>    For IPv4 traceroute, we cannot follow the above procedure since IPv4
>    ICMP Time Exceeded messages only include the invoking IP header and 8
>    bytes that follow the IP header.  Therefore, when a core router sends
>    an IPv4 Time Exceeded message to an ITR, all the ITR has in the ICMP
>    payload is the encapsulated header it prepended followed by a UDP
>    header.  The original invoking IP header, and therefore the identity
>    of the traceroute source is lost.
>
>    The solution we propose to solve this problem is to cache traceroute
>    IPv4 headers in the ITR and to match them up with corresponding IPv4
>    Time Exceeded messages received from core routers and the ETR.  The
>    ITR will use a circular buffer for caching the IPv4 and UDP headers
>    of traceroute packets.  It will select a 16-bit number as a key to
>    find them later when the IPv4 Time Exceeded messages are received.
>    When an ITR encapsulates an IPv4 traceroute packet, it will use the
>    16-bit number as the UDP source port in the encapsulating header.
>    When the ICMP Time Exceeded message is returned to the ITR, the UDP
>    header of the encapsulating header is present in the ICMP payload
>    thereby allowing the ITR to find the cached headers for the
>    traceroute source.  The ITR puts the cached headers in the payload
>    and sends the ICMP Time Exceeded message to the traceroute source
>    retaining the source address of the original ICMP Time Exceeded
>    message (a core router or the ETR of the site of the traceroute
>    destination).
>
> 9.3.  Traceroute using Mixed Locators
>
>    When either an IPv4 traceroute or IPv6 traceroute is originated and
>    the ITR encapsulates it in the other address family header, you
>    cannot get all 3 segments of the traceroute.  Segment 2 of the
>    traceroute can not be conveyed to the traceroute source since it is
>    expecting addresses from intermediate hops in the same address format
>    for the type of traceroute it originated.  Therefore, in this case,
>    segment 2 will make the tunnel look like one hop.  All the ITR has to
>    do to make this work is to not copy the inner TTL to the outer,
>    encapsulating header's TTL when a traceroute packet is encapsulated
>    using an RLOC from a different address family.  This will cause no
>    TTL decrement to 0 to occur in core routers between the ITR and ETR.
>
> 10.  Mobility Considerations
>
>    There are several kinds of mobility of which only some might be of
>    concern to LISP.  Essentially they are as follows.
>
> 10.1.  Site Mobility
>
>    A site wishes to change its attachment points to the Internet, and
>    its LISP Tunnel Routers will have new RLOCs when it changes upstream
>    providers.  Changes in EID-RLOC mappings for sites are expected to be
>    handled by configuration, outside of the LISP protocol.
>
> 10.2.  Slow Endpoint Mobility
>
>    An individual endpoint wishes to move, but is not concerned about
>    maintaining session continuity.  Renumbering is involved.  LISP can
>    help with the issues surrounding renumbering [RFC4192] [LISA96] by
>    decoupling the address space used by a site from the address spaces
>    used by its ISPs.  [RFC4984]
>
> 10.3.  Fast Endpoint Mobility
>
>    Fast endpoint mobility occurs when an endpoint moves relatively
>    rapidly, changing its IP layer network attachment point.  Maintenance
>    of session continuity is a goal.  This is where the Mobile IPv4
>    [RFC3344bis] and Mobile IPv6 [RFC3775] [RFC4866] mechanisms are used,
>    and primarily where interactions with LISP need to be explored.
>
>    The problem is that as an endpoint moves, it may require changes to
>    the mapping between its EID and a set of RLOCs for its new network
>    location.  When this is added to the overhead of mobile IP binding
>    updates, some packets might be delayed or dropped.
>
>    In IPv4 mobility, when an endpoint is away from home, packets to it
>    are encapsulated and forwarded via a home agent which resides in the
>    home area the endpoint's address belongs to.  The home agent will
>    encapsulate and forward packets either directly to the endpoint or to
>    a foreign agent which resides where the endpoint has moved to.
>    Packets from the endpoint may be sent directly to the correspondent
>    node, may be sent via the foreign agent, or may be reverse-tunneled
>    back to the home agent for delivery to the mobile node.  As the
>    mobile node's EID or available RLOC changes, LISP EID-to-RLOC
>    mappings are required for communication between the mobile node and
>    the home agent, whether via foreign agent or not.  As a mobile
>    endpoint changes networks, up to three LISP mapping changes may be
>    required:
>
>    o  The mobile node moves from an old location to a new visited
>       network location and notifies its home agent that it has done so.
>       The Mobile IPv4 control packets the mobile node sends pass through
>       one of the new visited network's ITRs, which needs a EID-RLOC
>       mapping for the home agent.
>
>    o  The home agent might not have the EID-RLOC mappings for the mobile
>       node's "care-of" address or its foreign agent in the new visited
>       network, in which case it will need to acquire them.
>
>    o  When packets are sent directly to the correspondent node, it may
>       be that no traffic has been sent from the new visited network to
>       the correspondent node's network, and the new visited network's
>       ITR will need to obtain an EID-RLOC mapping for the correspondent
>       node's site.
>
>    In addition, if the IPv4 endpoint is sending packets from the new
>    visited network using its original EID, then LISP will need to
>    perform a route-returnability check on the new EID-RLOC mapping for
>    that EID.
>
>    In IPv6 mobility, packets can flow directly between the mobile node
>    and the correspondent node in either direction.  The mobile node uses
>    its "care-of" address (EID).  In this case, the route-returnability
>    check would not be needed but one more LISP mapping lookup may be
>    required instead:
>
>    o  As above, three mapping changes may be needed for the mobile node
>       to communicate with its home agent and to send packets to the
>       correspondent node.
>
>    o  In addition, another mapping will be needed in the correspondent
>       node's ITR, in order for the correspondent node to send packets to
>       the mobile node's "care-of" address (EID) at the new network
>       location.
>
>    When both endpoints are mobile the number of potential mapping
>    lookups increases accordingly.
>
>    As a mobile node moves there are not only mobility state changes in
>    the mobile node, correspondent node, and home agent, but also state
>    changes in the ITRs and ETRs for at least some EID-prefixes.
>
>    The goal is to support rapid adaptation, with little delay or packet
>    loss for the entire system.  Heuristics can be added to LISP to
>    reduce the number of mapping changes required and to reduce the delay
>    per mapping change.  Also IP mobility can be modified to require
>    fewer mapping changes.  In order to increase overall system
>    performance, there may be a need to reduce the optimization of one
>    area in order to place fewer demands on another.
>
>    In LISP, one possibility is to "glean" information.  When a packet
>    arrives, the ETR could examine the EID-RLOC mapping and use that
>    mapping for all outgoing traffic to that EID.  It can do this after
>    performing a route-returnability check, to ensure that the new
>    network location does have a internal route to that endpoint.
>    However, this does not cover the case where an ITR (the node assigned
>    the RLOC) at the mobile-node location has been compromised.
>
>    Mobile IP packet exchange is designed for an environment in which all
>    routing information is disseminated before packets can be forwarded.
>    In order to allow the Internet to grow to support expected future
>    use, we are moving to an environment where some information may have
>    to be obtained after packets are in flight.  Modifications to IP
>    mobility should be considered in order to optimize the behavior of
>    the overall system.  Anything which decreases the number of new EID-
>    RLOC mappings needed when a node moves, or maintains the validity of
>    an EID-RLOC mapping for a longer time, is useful.
>
> 10.4.  Fast Network Mobility
>
>    In addition to endpoints, a network can be mobile, possibly changing
>    xTRs.  A "network" can be as small as a single router and as large as
>    a whole site.  This is different from site mobility in that it is
>    fast and possibly short-lived, but different from endpoint mobility
>    in that a whole prefix is changing RLOCs.  However, the mechanisms
>    are the same and there is no new overhead in LISP.  A map request for
>    any endpoint will return a binding for the entire mobile prefix.
>
>    If mobile networks become a more common occurrence, it may be useful
>    to revisit the design of the mapping service and allow for dynamic
>    updates of the database.
>
>    The issue of interactions between mobility and LISP needs to be
>    explored further.  Specific improvements to the entire system will
>    depend on the details of mapping mechanisms.  Mapping mechanisms
>    should be evaluated on how well they support session continuity for
>    mobile nodes.
>
> *10.5.  LISP Mobile Node Mobility
>
>    An mobile device can use the LISP infrastructure to achieve mobility
>    by implementing the LISP encapsulation and decapsulation functions
>    and acting as a simple ITR/ETR.  By doing this, such a "LISP mobile
>    node" can use topologically-independent EID IP addresses that are not
>    advertised into and do not impose a cost on the global routing
>    system.  These EIDs are maintained at the edges of the mapping system
>    (in LISP Map-Servers and Map-Resolvers) and are provided on demand to
>    only the correspondents of the LISP mobile node.
>
>    Refer to the LISP Mobility Architecture specification [LISP-MN] for
>    more details.*
>
> 11.  Multicast Considerations
>
>    A multicast group address, as defined in the original Internet
>    architecture is an identifier of a grouping of topologically
>    independent receiver host locations.  The address encoding itself
>    does not determine the location of the receiver(s).  The multicast
>    routing protocol, and the network-based state the protocol creates,
>    determines where the receivers are located.
>
>    In the context of LISP, a multicast group address is both an EID and
>    a Routing Locator.  Therefore, no specific semantic or action needs
>    to be taken for a destination address, as it would appear in an IP
>    header.  Therefore, a group address that appears in an inner IP
>    header built by a source host will be used as the destination EID.
>    The outer IP header (the destination Routing Locator address),
>    prepended by a LISP router, will use the same group address as the
>    destination Routing Locator.
>
>    Having said that, only the source EID and source Routing Locator
>    needs to be dealt with.  Therefore, an ITR merely needs to put its
>    own IP address in the source Routing Locator field when prepending
>    the outer IP header.  This source Routing Locator address, like any
>    other Routing Locator address MUST be globally routable.
>
>    Therefore, an EID-to-RLOC mapping does not need to be performed by an
>    ITR when a received data packet is a multicast data packet or when
>    processing a source-specific Join (either by IGMPv3 or PIM).  But the
>    source Routing Locator is decided by the multicast routing protocol
>    in a receiver site.  That is, an EID to Routing Locator translation
>    is done at control-time.
>
>    Another approach is to have the ITR not encapsulate a multicast
>    packet and allow the the host built packet to flow into the core even
>    if the source address is allocated out of the EID namespace.  If the
>    RPF-Vector TLV [RPFV] is used by PIM in the core, then core routers
>    can RPF to the ITR (the Locator address which is injected into core
>    routing) rather than the host source address (the EID address which
>    is not injected into core routing).
>
>    To avoid any EID-based multicast state in the network core, the first
>    approach is chosen for LISP-Multicast.  Details for LISP-Multicast
>    and Interworking with non-LISP sites is described in specification
>    [MLISP].
>
> 12.  Security Considerations
>
>    It is believed that most of the security mechanisms will be part of
>    the mapping database service when using control plane procedures for
>    obtaining EID-to-RLOC mappings.  For data plane triggered mappings,
>    as described in this specification, protection is provided against
>    ETR spoofing by using Return- Routability mechanisms evidenced by the
>    use of a 4-byte Nonce field in the LISP encapsulation header.  The
>    nonce, coupled with the ITR accepting only solicited Map-Replies goes
>    a long way toward providing decent authentication.
>
>    LISP does not rely on a PKI infrastructure or a more heavy weight
>    authentication system.  These systems challenge the scalability of
>    LISP which was a primary design goal.
>
>    DoS attack prevention will depend on implementations rate-limiting
>    Map-Requests and Map-Replies to the control plane as well as rate-
>    limiting the number of data-triggered Map-Replies.
>
>    To deal with map-cache exhaustion attempts in an ITR/PTR, the
>    implementation should consider putting a maximum cap on the number of
>    entries stored with a reserve list for special or frequently accessed
>    sites.  This should be a configuration policy control set by the
>    network administrator who manages ITRs and PTRs.
>
> 13.  Prototype Plans and Status
>
>    The operator community has requested that the IETF take a practical
>    approach to solving the scaling problems associated with global
>    routing state growth.  This document offers a simple solution which
>    is intended for use in a pilot program to gain experience in working
>    on this problem.
>
>    The authors hope that publishing this specification will allow the
>    rapid implementation of multiple vendor prototypes and deployment on
>    a small scale.  Doing this will help the community:
>
>    o  Decide whether a new EID-to-RLOC mapping database infrastructure
>       is needed or if a simple, UDP-based, data-triggered approach is
>       flexible and robust enough.
>
>    o  Experiment with provider-independent assignment of EIDs while at
>       the same time decreasing the size of DFZ routing tables through
>       the use of topologically-aligned, provider-based RLOCs.
>
>    o  Determine whether multiple levels of tunneling can be used by ISPs
>       to achieve their Traffic Engineering goals while simultaneously
>       removing the more specific routes currently injected into the
>       global routing system for this purpose.
>
>    o  Experiment with mobility to determine if both acceptable
>       convergence and session continuity properties can be scalably
>       implemented to support both individual device roaming and site
>       service provider changes.
>
>    Here is a rough set of milestones:
>
>    1.  This draft will be the draft for interoperable implementations to
>        code against.  Interoperable implementations will be ready
>        beginning of 2009.
>
>    2.  Continue pilot deployment using LISP-ALT as the database mapping
>        mechanism.
>
>    3.  Continue prototyping and studying other database lookup schemes,
>        be it DNS, DHTs, CONS, ALT, NERD, or other mechanisms.
>
>    4.  Implement the LISP Multicast draft [MLISP].
>
>    5.  *Implement the LISP Mobile Node draft [LISP-MN].
>
>    6.*  Research more on how policy affects what gets returned in a Map-
>        Reply from an ETR.
>
>    6.
>
>    *7.*  Continue to experiment with mixed locator-sets to understand how
>        LISP can help the IPv4 to IPv6 transition.
>
>    7.
>
>    *8.*  Add more robustness to locator reachability between LISP sites.
>
>    As of this writing the following accomplishments have been achieved:
>
>    1.   A unit- and system-tested software switching implementation has
>         been completed on cisco NX-OS for this draft for both IPv4 and
>         IPv6 EIDs using a mixed locator-set of IPv4 and IPv6 locators.
>
>    2.   A unit- and system-tested software switching implementation on
>         cisco NX-OS has been completed for draft [ALT].
>
>    3.   A unit- and system-tested software switching implementation on
>         cisco NX-OS has been completed for draft [INTERWORK].  Support
>         for IPv4 translation is provided and PTR support for IPv4 and
>         IPv6 is provided.
>
>    4.   The cisco NX-OS implementation supports an experimental
>         mechanism for slow mobility.
>
>    5.   Dave Meyer, Vince Fuller, Darrel Lewis, Greg Shepherd, and
>         Andrew Partan continue to test all the features described above
>         on a dual-stack infrastructure.
>
>    6.   Darrel Lewis and Dave Meyer have deployed both LISP translation
>         and LISP PTR support in the pilot network.  Point your browser
>         to http://www.lisp4.net to see translation happening in action
>         so your non-LISP site can access a web server in a LISP site.
>
>    7.   Soon http://www.lisp6.net will work where your IPv6 LISP site
>         can talk to a IPv6 web server in a LISP site by using mixed
>         address-family based locators.
>
>    8.   An public domain implementation of LISP is underway.  See
>         [OPENLISP] for details.
>
>    9.   We have deployed Map-Resolvers and Map-Servers on the LISP pilot
>         network to gather experience with [LISP-MS].  The first layer of
>         the architecture are the xTRs which use Map-Servers for EID-
>         prefix registration and Map-Resolvers for EID-to-RLOC mapping
>         resolution.  The second layer are the Map-Resolvers and Map-
>         Servers which connect to the ALT BGP peering infrastructure.
>         And the third layer are ALT-routers which aggregate EID-prefixes
>         and forward Map-Requests.
>
>    10.  A cisco IOS implementation is underway which currently supports
>         IPv4 encapsulation and decapsulation features.
>
>    11.  A LISP router based LIG implementation is supported, deployed,
>         and used daily to debug and test the LISP pilot network.  See
>         [LIG] for details.
>
>    12.  A Linux implementation of LIG has been made available and
>         supported by Dave Meyer.  It can be run on any Linux system
>         which resides in either a LISP site or non-LISP site.  See [LIG]
>         for details.  *Public domain code can be downloaded from
>         http://github.com/davidmeyer/lig/tree/master.
>
>    13.  An experimental implementation has been written for three
>         locator reachability algorithms.  One is called echo-noncing,
>         which is documented in this specification.  The other two are
>         called TCP-counts and RLOC-probing, which will be documented in
>         future drafts.*
>
>    If interested in writing a LISP implementation, testing any of the
>    LISP implementations, or want to be part of the LISP pilot program,
>    please contact lisp@ietf.org.
>
> 14.  References
>
> 14.1.  Normative References
>
>    [RFC0768]  Postel, J., "User Datagram Protocol", STD 6, RFC 768,
>               August 1980.
>
>    [RFC1191]  Mogul, J. and S. Deering, "Path MTU discovery", RFC 1191,
>               November 1990.
>
>    [RFC1498]  Saltzer, J., "On the Naming and Binding of Network
>               Destinations", RFC 1498, August 1993.
>
>    [RFC1955]  Hinden, R., "New Scheme for Internet Routing and
>               Addressing (ENCAPS) for IPNG", RFC 1955, June 1996.
>
>    [RFC2119]  Bradner, S., "Key words for use in RFCs to Indicate
>               Requirement Levels", BCP 14, RFC 2119, March 1997.
>
>    [RFC2402]  Kent, S. and R. Atkinson, "IP Authentication Header",
>               RFC 2402, November 1998.
>
>    [RFC2434]  Narten, T. and H. Alvestrand, "Guidelines for Writing an
>               IANA Considerations Section in RFCs", BCP 26, RFC 2434,
>               October 1998.
>
>    [RFC2784]  Farinacci, D., Li, T., Hanks, S., Meyer, D., and P.
>               Traina, "Generic Routing Encapsulation (GRE)", RFC 2784,
>               March 2000.
>
>    [RFC3056]  Carpenter, B. and K. Moore, "Connection of IPv6 Domains
>               via IPv4 Clouds", RFC 3056, February 2001.
>
>    [RFC3168]  Ramakrishnan, K., Floyd, S., and D. Black, "The Addition
>               of Explicit Congestion Notification (ECN) to IP",
>               RFC 3168, September 2001.
>
>    [RFC3775]  Johnson, D., Perkins, C., and J. Arkko, "Mobility Support
>               in IPv6", RFC 3775, June 2004.
>
>    [RFC4423]  Moskowitz, R. and P. Nikander, "Host Identity Protocol
>               (HIP) Architecture", RFC 4423, May 2006.
>
>    [RFC4866]  Arkko, J., Vogt, C., and W. Haddad, "Enhanced Route
>               Optimization for Mobile IPv6", RFC 4866, May 2007.
>
>    [RFC4984]  Meyer, D., Zhang, L., and K. Fall, "Report from the IAB
>               Workshop on Routing and Addressing", RFC 4984,
>               September 2007.
>
> 14.2.  Informative References
>
>    [AFI]      IANA, "Address Family Indicators (AFIs)", ADDRESS FAMILY
>               NUMBERS http://www.iana.org/numbers.html, Febuary 2007.
>
>    [ALT]      Farinacci, D., Fuller, V., Meyer, D., and D. Lewis, "LISP
>               Alternative Topology (LISP-ALT)",
>               draft-ietf-lisp-alt-01.txt (work in progress), May 2009.
>
>    [APT]      Jen, D., Meisel, M., Massey, D., Wang, L., Zhang, B., and
>               L. Zhang, "APT: A Practical Transit Mapping Service",
>               draft-jen-apt-01.txt (work in progress), November 2007.
>
>    [CHIAPPA]  Chiappa, J., "Endpoints and Endpoint names: A Proposed
>               Enhancement to the Internet Architecture", Internet-
>               Draft http://www.chiappa.net/~jnc/tech/endpoints.txt,
>               1999.
>
>    [CONS]     Farinacci, D., Fuller, V., and D. Meyer, "LISP-CONS: A
>               Content distribution Overlay Network  Service for LISP",
>               draft-meyer-lisp-cons-03.txt (work in progress),
>               November 2007.
>
>    [DHTs]     Ratnasamy, S., Shenker, S., and I. Stoica, "Routing
>               Algorithms for DHTs: Some Open Questions", PDF
>               file http://www.cs.rice.edu/Conferences/IPTPS02/174.pdf.
>
>    *[EMACS]    Brim, S., Farinacci, D., Meyer, D., and J. Curran, "EID
>               Mappings Multicast Across Cooperating Systems for LISP",
>               draft-curran-lisp-emacs-00.txt (work in progress),
>               November 2007.*
>
>    [GSE]      "GSE - An Alternate Addressing Architecture for  IPv6",
>               draft-ietf-ipngwg-gseaddr-00.txt (work in progress), 1997.
>
>    [INTERWORK]
>               Lewis, D., Meyer, D., Farinacci, D., and V. Fuller,
>               "Interworking LISP with IPv4 and IPv6",
>               draft-ietf-lisp-interworking-00.txt (work in progress),
>               January 2009.
>
>    [LIG]      Farinacci, D. and D. Meyer, "LISP Internet Groper (LIG)",
>               draft-farinacci-lisp-lig-01.txt (work in progress),
>               May 2009.
>
>    [LISA96]   Lear, E., Katinsky, J., Coffin, J., and D. Tharp,
>               "Renumbering: Threat or Menace?", Usenix , September 1996.
>
>    [LISP-MAIN]
>               Farinacci, D., Fuller, V., Meyer, D., and D. Lewis,
>               "Locator/ID Separation Protocol (LISP)",
>               draft-farinacci-lisp-12.txt (work in progress),
>               March 2009.
>
>    *[LISP-MN]  Farinacci, D., Fuller, V., Lewis, D., and D. Meyer, "LISP
>               Mobility Architecture", draft-meyer-lisp-mn-00.txt (work
>               in progress), July 2009.*
>
>    [LISP-MS]  Farinacci, D. and V. Fuller, "LISP Map Server",
>               draft-ietf-lisp-ms-01.txt (work in progress), May 2009.
>
>    [LISP1]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
>               "Locator/ID Separation Protocol (LISP1) [Routable  ID
>               Version]",
>               Slide-set http://www.dinof.net/~dino/ietf/lisp1.ppt,
>               October 2006.
>
>    [LISP2]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
>               "Locator/ID Separation Protocol (LISP2) [DNS-based
>               Version]",
>               Slide-set http://www.dinof.net/~dino/ietf/lisp2.ppt,
>               November 2006.
>
>    [LISPDHT]  Mathy, L., Iannone, L., and O. Bonaventure, "LISP-DHT:
>               Towards a DHT to map identifiers onto locators",
>               draft-mathy-lisp-dht-00.txt (work in progress),
>               February 2008.
>
>    [LOC-ID-ARCH]
>               Meyer, D. and D. Lewis, "Architectural Implications of
>               Locator/ID  Separation",
>               draft-meyer-loc-id-implications-01.txt (work in progress),
>               Januaryr 2009.
>
>    [MLISP]    Farinacci, D., Meyer, D., Zwiebel, J., and S. Venaas,
>               "LISP for Multicast Environments",
>               draft-ietf-lisp-multicast-01.txt (work in progress),
>               May 2009.
>
>    [NERD]     Lear, E., "NERD: A Not-so-novel EID to RLOC Database",
>               draft-lear-lisp-nerd-04.txt (work in progress),
>               April 2008.
>
>    [OPENLISP]
>               Iannone, L. and O. Bonaventure, "OpenLISP Implementation
>               Report", draft-iannone-openlisp-implementation-01.txt
>               (work in progress), July 2008.
>
>    [RADIR]    Narten, T., "Routing and Addressing Problem Statement",
>               draft-narten-radir-problem-statement-00.txt (work in
>               progress), July 2007.
>
>    [RFC3344bis]
>               Perkins, C., "IP Mobility Support for IPv4, revised",
>               draft-ietf-mip4-rfc3344bis-05 (work in progress),
>               July 2007.
>
>    [RFC4192]  Baker, F., Lear, E., and R. Droms, "Procedures for
>               Renumbering an IPv6 Network without a Flag Day", RFC 4192,
>               September 2005.
>
>    [RPFV]     Wijnands, IJ., Boers, A., and E. Rosen, "The RPF Vector
>               TLV", draft-ietf-pim-rpf-vector-08.txt (work in progress),
>               January 2009.
>
>    [RPMD]     Handley, M., Huici, F., and A. Greenhalgh, "RPMD: Protocol
>               for Routing Protocol Meta-data  Dissemination",
>               draft-handley-p2ppush-unpublished-2007726.txt (work in
>               progress), July 2007.
>
>    [SHIM6]    Nordmark, E. and M. Bagnulo, "Level 3 multihoming shim
>               protocol", draft-ietf-shim6-proto-06.txt (work in
>               progress), October 2006.
>
> Appendix A.  Acknowledgments
>
>    An initial thank you goes to Dave Oran for planting the seeds for the
>    initial ideas for LISP.  His consultation continues to provide value
>    to the LISP authors.
>
>    A special and appreciative thank you goes to Noel Chiappa for
>    providing architectural impetus over the past decades on separation
>    of location and identity, as well as detailed review of the LISP
>    architecture and documents, coupled with enthusiasm for making LISP a
>    practical and incremental transition for the Internet.
>
>    The authors would like to gratefully acknowledge many people who have
>    contributed discussion and ideas to the making of this proposal.
>    They include Scott Brim, Andrew Partan, John Zwiebel, Jason Schiller,
>    Lixia Zhang, Dorian Kim, Peter Schoenmaker, Vijay Gill, Geoff Huston,
>    David Conrad, Mark Handley, Ron Bonica, Ted Seely, Mark Townsley,
>    Chris Morrow, Brian Weis, Dave McGrew, Peter Lothberg, Dave Thaler,
>    Eliot Lear, Shane Amante, Ved Kafle, Olivier Bonaventure, Luigi
>    Iannone, Robin Whittle, Brian Carpenter, Joel Halpern, Roger
>    Jorgensen, Ran Atkinson, Stig Venaas, Iljitsch van Beijnum, Roland
>    Bless, Dana Blair, Bill Lynch, Marc Woolward, Damien Saucez, Damian
>    Lezama, Attilla De Groot, Parantap Lahiri, and David Black.
>
>    In particular, we would like to thank Dave Meyer for his clever
>    suggestion for the name "LISP". ;-)
>
>    This work originated in the Routing Research Group (RRG) of the IRTF.
>    The individual submission [LISP-MAIN] was converted into this IETF
>    LISP working group draft.
>
> Authors' Addresses
>
>    Dino Farinacci
>    cisco Systems
>    Tasman Drive
>    San Jose, CA  95134
>    USA
>
>    Email: dino@cisco.com
>
>    Vince Fuller
>    cisco Systems
>    Tasman Drive
>    San Jose, CA  95134
>    USA
>
>    Email: vaf@cisco.com
>
>    Dave Meyer
>    cisco Systems
>    170 Tasman Drive
>    San Jose, CA
>    USA
>
>    Email: dmm@cisco.com
>
>    Darrel Lewis
>    cisco Systems
>    170 Tasman Drive
>    San Jose, CA
>    USA
>
>    Email: darlewis@cisco.com
>   
>
>
>
> ------------------------------------------------------------------------
>
>
>
>
>
>
>
> ------------------------------------------------------------------------
>
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


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>>>>> "Damien" == Damien Saucez <damien.saucez@uclouvain.be> writes:

    Damien> Dino, Technical comments inline.


    Damien> The next two paragraphs are my personal opinion and may
    Damien> not be shared by Luigi or Olivier.

    Damien> Once again, why don't you consider versioning at all? Do
    Damien> you have a good reason to ignore it? We propose a solution
    Damien> that makes both specification and implementation simpler
    Damien> and increase security but you ignore it.

    Damien> As I already said dozens of time, the control and
    Damien> data-plane format could be completely separated. Why do we
    Damien> have the R bits in the Map req/rep while it is written, in
    Damien> the respective sections, something like "ignore this
    Damien> field, it has no use". IMO, LISP should propose a clean
    Damien> protocol with a nice separation between data and control
    Damien> plane. LISP proposes to separate the ID and the LOC, so
    Damien> why not go one steps further and separate control and data
    Damien> plane?

I think it is reasonable for the editors to wait for this issue to
resolve before reflecting any changes that the WG may reach consensus
on in the text.  We asked about whether we should block packet format
changes on reaching consensus on map versioning; there didn't seem to
be a lot of support for that.

I do think map versioning is opening and I do hope we can come to closure in Stockholm.

From dino@cisco.com  Mon Jul 13 22:00:34 2009
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From: Dino Farinacci <dino@cisco.com>
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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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> Dino,
>
> Technical comments inline.

Thanks for the comments. What I will do is reflect comments I receive  
from you and some I have received from others and send a diff file  
from -02 to -03. Then when I get an ack, I'll post a -03.

I'll send the diff file in another email.

> The next two paragraphs are my personal opinion and may not be  
> shared by Luigi or Olivier.

Sure, we want to receive your opinion.

> Once again, why don't you consider versioning at all? Do you have a  
> good reason to ignore it? We propose a solution that makes both  
> specification and implementation simpler and increase security but  
> you ignore it.

We are considering versioning. We are wondering if changing to version  
adds any value. We don't want to change more than we need to unless  
there is apparent value. As Sam said, there has been no apparent  
consensus about this.

And as I have mentioned we can use a versioning scheme with a single  
value. The nonce value we already have. I don't see any different  
functionality using the SMR-bit and the "nonce as a version number".

Also, which I will explain clearly at my working group presentation,  
and will poll the group about RLOC-probing. If we can reach consensus  
about this, maybe SMRs won't be needed.

> As I already said dozens of time, the control and data-plane format  
> could be completely separated. Why do we have the R bits in the Map  
> req/rep while it is written, in the respective sections, something  
> like "ignore this field, it has no use". IMO, LISP should propose a  
> clean protocol with a nice separation between data and control  
> plane. LISP proposes to separate the ID and the LOC, so why not go  
> one steps further and separate control and data plane?

Well, you haven't said it dozens of times, but I remember at least  
once. I have talked it over with the other authors and believe this is  
a low-cost change. We just have to rev the LISP network in a turnkey  
fashion.

Having said that, it is very important that the spec tracks what we  
are implementing. We really desire to have "rough consensus and  
running code" for this working group. So please have some sensitivity  
to the deployment aspects of this (which you are part of, of course).

> Back to the specs now ;-)

I snipped the sections you didn't comment on.

>>
>>   UDP Checksum:  this field
> typo
>> field

Fixed. Thanks.

>> MUST
> SHOULD
>> be transmitted as 0 and ignored
>>      on receipt by the ETR.  Note, even when the UDP checksum is
>>      transmitted as 0 an intervening NAT device can recalculate the
>>      checksum and rewrite the UDP checksum field to non-zero.  For
>>      performance reasons, the ETR MUST ignore the checksum and
>
>> MUST
> SHOULD
>> not
>>      do a checksum computation.
>>
> it would be better to have: if checksum is not computed, checksum  
> MUST be set to 0. Otherwise, the value MUST be the result of the  
> checksum computation. Then, if someone desires to check UDP, it can  
> iif it is non-zero.

We have made this clear before. We want hardware forwarders to not  
compute the UDP checksum. MUST is a really important to be spec'ed.

>>
>>   When doing Recursive Tunneling: *Tunneling or ITR/PTR  
>> encapsulation:*
>>
>>   o  The OH header Time to Live field (or Hop Limit field, in case of
>>      IPv6) MUST be copied from the IH header Time to Live field.
>>
>>
> Why not with a -1? Do you consider that -1 has been done before  
> being processed by the LISP code? If yes, should be explicitly  
> written. If no -1, a loop can happen.

Well, when the non-encapsulated arrives at the router, it is  
decremented by 1, then encapsulated. So the copy of the inner TTL to  
the outer TTL is -1.

>>   o  The OH header Type of Service field (or the Traffic Class field,
>>      in the case of IPv6) SHOULD be copied from the IH header Type of
>>      Service field (with one caveat, see below).
>>
>>   When doing Re-encapsulated Tunneling:
>>
>>   o  The new OH header Time to Live field
>
>> SHOULD
> MUST

We say should because there are cases when operators want fixed TTLs  
for the tunnels.

>>   1.  The ITR will keep state of the effective MTU for each locator  
>> per
>>       mapping cache entry.  The effective MTU is what the core  
>> network
>>       can deliver along the path between ITR and ETR.
>>
>>   2.  When an encapsulated packet, with DF bit always set to 0,  
>> exceeds
>>       what the core network can deliver, one of the intermediate
>>       routers on the path will send an ICMP Too Big message to the  
>> ITR.
>>
> Too Big is v6 only, in v4, it is a type 3, code 4 (Frag needed). It  
> makes no sense to send ICMPv6 if in v4. It is a mistake we did in  
> the OpenLISP implem report.

That is not what we are saying here. "Too Big" is a general term for  
both protocol families. Type 3/code 4 is a "Too Big" message. RFC 1191  
calls it a "Too Big" message.

>>   The LISP UDP-based messages are the Map-Request and Map-Reply
>>   messages.  When a UDP Map-Request is sent, the UDP source port is
>>   chosen by the sender and the destination UDP port number is set to
>>   4342.  When a UDP Map-Reply is sent, the source UDP port number is
>>   set to 4342 and the destination UDP port number is copied from the
>>   source port of either the Map-Request or the invoking data packet.
>>
>>
> Could we simplify by:
>
>  The LISP UDP-based messages are the Map-Request and Map-Reply
>  messages.  When a UDP Map-Request is sent, the UDP source port
>  SHOULD be 4342 and the destination UDP port number is set to
>  4342.  When a UDP Map-Reply is sent, the source UDP port number is
>  set to 4342 and the destination UDP port number is copied from the
>  source port of either the Map-Request or the invoking data packet.

It definitely should not be a SHOULD. What else would the implementor  
put in the field. How else would you detect a control packet? It is  
simpler from a forwarding perspective to early on in data-plane  
processing to determine a control packet with a single port number  
check and later if you decide to process the packet, you demux on the  
Type field.

You want the data-plane to detect a control packet, kick the packet to  
the control-plane, and then the control-plane does the type demux.

> It makes the source able to chose the port be, in practice, a  
> default value of 4342 is used. I think that only few site require a  
> non-4342 source and, because dest cannot be chosen, all the site are  
> forced to listen 4342...

Just like other protocols we want the query to have the destination  
port well-known and the reply to be the opposite. See DNS, see RIP.  
There are others.

>>       LISP-CONS Open Message:          8    b'1000'
>>       LISP-CONS Push-Add Message:      9    b'1001'
>>       LISP-CONS Push-Delete Message:   10   b'1010'
>>       LISP-CONS Unreachable Message    11   b'1011'
>>
>>
> Remove, cons is not consider in the WG.

Well, we don't want to lose the code-points and the CONS spec doesn't  
have them and I think we don't want to update the CONS spec. I'll let  
Dave Meyer decide.

>>   Locator Reach Bits:  These bits MUST be set to 0 on transmission  
>> and
>>      ignored on receipt.  They cannot be used for indicating
>>      reachability because the Map-Request does not have the EID- 
>> prefix
>>      for the sending site so the receiver of the Map-Request cannot
>>      know what mapping entry to associate the reachability with.
>>      However, when Mapping Data is provided in the Map-Reply Record
>>      field, and the receiver of the Map-Request is configured to  
>> accept
>>      the mapping data, the R-bit per locator entry in the EID-prefix
>>      record is used to denote reachability.
>>
>>
> if no use, remove them!

We have decided to remove them. Thanks.

>>   Nonce:  A 4-byte random value created by the sender of the Map-
>>      Request.
>>
> 3-bytes to be consistent with the data-plane. Or give another name.

There is no reason why it can't be longer. It is relative to the  
packet type so it can be different.

>>   Type:   1 (Map-Request)
>>
>>   A: This is an authoritative bit, which is set to 0 for UDP-based  
>> Map-
>>      Requests sent by an ITR.  See other control-specific documents
>>      [CONS] for TCP-based Map-Requests.
>>
>>   R: When set, it indicates a Map-Reply Record segment is included in
>>      the Map-Request.
>>
>>
>
>>   *P: Indicates that a Map-Request should be treated as a "piggyback"
>>      locator reachability probe.  The receiver should respond with a
>>      Map-Reply with the P bit set and the nonce copied from the Map-
>>      Request.  Details on this usage will be provided in a future
>>      version of this draft.
>>
>> *
> If you do not explain what it is, do not put it in the draft yet.  
> Please, specify before implementing, otherwise, it is very difficult  
> to make OpenLISP compatible with what you do. This is the role of  
> "reserved flags"...

You can ignore this flag for now. We are not ready to add to the  
draft. But we want to define the bit so it's not so hard to upgrade  
the network for every packet format change.

>>
>> 6.1.3.  EID-to-RLOC UDP Map-Request Message
>>
>>   A Map-Request is sent from an ITR when it needs a mapping for an  
>> EID,
>>   wants to test an RLOC for reachability,
> you thus consider control and data plane paths being the same?

When you test for reachability, you must test the underlying network  
yes.

>> or wants to refresh a mapping
>>   before TTL expiration.  For the initial case, the destination IP
>>   address used for the Map-Request is the destination-EID from the
>>   packet which had a mapping cache lookup failure.  For the later 2
>>   cases, the destination IP address used for the Map-Request is one  
>> of
>>   the RLOC addresses from the locator-set of the map cache entry.  In
>>   all cases, the UDP source port number for the Map-Request message  
>> is
>>   a randomly allocated 16-bit value and the UDP destination port  
>> number
>>   is set to the well-known destination port number 4342.  A  
>> successful
>>   Map-Reply updates the cached set of RLOCs associated with the EID
>>   prefix range.
>>
>>   Map-Requests can also be LISP encapsulated using UDP destination  
>> port
>>   4341 when sent from an ITR to a Map-Resolver.  Likewise, Map- 
>> Requests
>>   are LISP encapsulated the same way from a Map-Server to an ETR.
>>   Details on encapsulated Map-Requests and Map-Resolvers can be found
>>   in [LISP-MS].
>>
>>   Map-Requests MUST be rate-limited.  It is recommended that a Map-
>>   Request for the same EID-prefix be sent no more than once per  
>> second.
>>
> Why 1 second? As the TTL is with a one minute granularity, why 1  
> second?  for when TTL is set to 0? If it is for the SMR bit, this  
> bit should not be seen too frequently, otherwise, the 1minute  
> granularity TTL has to be revised.

Because if a Map-Request gets lost the next invoking packet 1 second  
later can cause a Map-Request to be  sent. There really isn't any good  
number and it should be configurable.

You want to send a Map-Request before the TTL goes to 0 so your timer  
process doesn't remove the entry. So you have some time to retransmit.  
But the rate-limiting should be done in both cases when you have a map- 
cache entry and when you are trying to get one.

I might not be understanding your comment. If I missed it, please  
restate. Thanks.

>
>>   Locator Reach Bits:  Refer to Section 5.3.  This field MUST be  
>> set to
>>      0 on transmission and ignored on receipt.  The locator
>>      reachability is encoded as the R-bit in each locator entry of  
>> each
>>      EID-prefix record.
>>
>>
> Not used, then remove it.

Will remove.

>>   Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
>>      that is echoed here in the Map-Reply.
>>
>>
> 3-bytes or change the name.

Will remove the Locator Reach Bits and same comment as above.

>>   Type:   2 (Map-Reply)
>>
>>   *P: Indicates that the Map-Reply is in response to a "piggyback"
>>      locator reachability Map-Request.  The nonce field should  
>> contain
>>      a copy of the nonce value from the original Map-Request.   
>> Details
>>      on this usage will be provided in a future version of this  
>> draft.*
>>
>>
> cf supra (remove this part or explain it)

Same comment as above.

>>   Reserved:  Set to 0 on transmission and ignored on receipt.
>>
>>   Record Count:  The number of records in this reply message.  A  
>> record
>>      is comprised of that portion of the packet labeled 'Record'  
>> above
>>      and occurs the number of times equal to Record count.
>>
>>   Record TTL:  The time in minutes the recipient of the Map-Reply  
>> will
>>      store the mapping.  If the TTL is 0, the entry should be removed
>>      from the cache immediately.  If the value is 0xffffffff, the
>>      recipient can decide locally how long to store the mapping.
>>
>>
> 32-bit for one minute granularity TTL means that a mapping can live  
> 8171 years, reduce the side to win space or switch to a one second  
> granularity (136 years should be enough ;-) ) (but you can recommend  
> to use > 1minute TTL).

We deliberately didn't want second granularity. Can we please not  
change this. There is no compelling reason to do so.

>>   Locator Count:  The number of Locator entries.  A locator entry
>>      comprises what is labeled above as 'Loc'.  The locator count can
>>      be 0 indicating there are no locators for the EID-prefix.
>>
>>   EID mask-len:  Mask length for EID prefix.
>>
>>   A: The Authoritative bit, when sent by a UDP-based message is  
>> always
>>      set by the ETR.
>
>> See [CONS] for TCP-based Map-Replies.
>>
>>
> remove as CONS is not considered.

Will remove.

>> 6.3.1.  Echo Nonce Algorithm
>>
>> *
> To clarify this section, it should be rewritten with the idea that  
> this is a hint for the "non-reachability". If the reply comes,  
> perfect, we have reachability. Otherwise, it is a hint that there is  
> maybe a reachability issue and then another technique has to be used.

I will add some text to reflect that. Good comment.

> Regards
>
> Damien Saucez

Thanks again Damien!

Dino


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Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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Dino,

Thanks for the answer, comments are inline.

Dino Farinacci wrote:
>> Dino,
>>
>> Technical comments inline.
>
> Thanks for the comments. What I will do is reflect comments I receive 
> from you and some I have received from others and send a diff file 
> from -02 to -03. Then when I get an ack, I'll post a -03.
>
> I'll send the diff file in another email.
>
>> The next two paragraphs are my personal opinion and may not be shared 
>> by Luigi or Olivier.
>
> Sure, we want to receive your opinion.
>
>> Once again, why don't you consider versioning at all? Do you have a 
>> good reason to ignore it? We propose a solution that makes both 
>> specification and implementation simpler and increase security but 
>> you ignore it.
>
> We are considering versioning. We are wondering if changing to version 
> adds any value. We don't want to change more than we need to unless 
> there is apparent value. As Sam said, there has been no apparent 
> consensus about this.
>
> And as I have mentioned we can use a versioning scheme with a single 
> value. The nonce value we already have. I don't see any different 
> functionality using the SMR-bit and the "nonce as a version number".
>
> Also, which I will explain clearly at my working group presentation, 
> and will poll the group about RLOC-probing. If we can reach consensus 
> about this, maybe SMRs won't be needed.
>
ok, we'll discuss this in detail during the meeting.
>> As I already said dozens of time, the control and data-plane format 
>> could be completely separated. Why do we have the R bits in the Map 
>> req/rep while it is written, in the respective sections, something 
>> like "ignore this field, it has no use". IMO, LISP should propose a 
>> clean protocol with a nice separation between data and control plane. 
>> LISP proposes to separate the ID and the LOC, so why not go one steps 
>> further and separate control and data plane?
>
> Well, you haven't said it dozens of times, but I remember at least once. 
Sorry, it was a bad translation from French ;-)
> I have talked it over with the other authors and believe this is a 
> low-cost change. We just have to rev the LISP network in a turnkey 
> fashion.
>
> Having said that, it is very important that the spec tracks what we 
> are implementing. We really desire to have "rough consensus and 
> running code" for this working group.
Sure, but what I said is that we can first discuss the features and then 
implement them. Of course, you did it internally but maybe you could 
send the next features on the mailing list to get some comments. The 
problem, IMHO, if we directly go to implementation is that we reduce our 
vision to purely technical problems. It is very important, but technical 
problems are easier to solve than a misconception, don't you think?
> So please have some sensitivity to the deployment aspects of this 
> (which you are part of, of course).
>
of course, and about that we'll have a "surprise" for you in Stockholm ;-)
>> Back to the specs now ;-)
>
> I snipped the sections you didn't comment on.
>
>>>
>>>   UDP Checksum:  this field
>> typo
>>> field
>
> Fixed. Thanks.
>
>>> MUST
>> SHOULD
>>> be transmitted as 0 and ignored
>>>      on receipt by the ETR.  Note, even when the UDP checksum is
>>>      transmitted as 0 an intervening NAT device can recalculate the
>>>      checksum and rewrite the UDP checksum field to non-zero.  For
>>>      performance reasons, the ETR MUST ignore the checksum and
>>
>>> MUST
>> SHOULD
>>> not
>>>      do a checksum computation.
>>>
>> it would be better to have: if checksum is not computed, checksum 
>> MUST be set to 0. Otherwise, the value MUST be the result of the 
>> checksum computation. Then, if someone desires to check UDP, it can 
>> iif it is non-zero.
>
> We have made this clear before. We want hardware forwarders to not 
> compute the UDP checksum. MUST is a really important to be spec'ed.
>
ok.
>>>
>>>   When doing Recursive Tunneling: *Tunneling or ITR/PTR encapsulation:*
>>>
>>>   o  The OH header Time to Live field (or Hop Limit field, in case of
>>>      IPv6) MUST be copied from the IH header Time to Live field.
>>>
>>>
>> Why not with a -1? Do you consider that -1 has been done before being 
>> processed by the LISP code? If yes, should be explicitly written. If 
>> no -1, a loop can happen.
>
> Well, when the non-encapsulated arrives at the router, it is 
> decremented by 1, then encapsulated. So the copy of the inner TTL to 
> the outer TTL is -1.
>
ok, sorry for this stupid question.
>>>   o  The OH header Type of Service field (or the Traffic Class field,
>>>      in the case of IPv6) SHOULD be copied from the IH header Type of
>>>      Service field (with one caveat, see below).
>>>
>>>   When doing Re-encapsulated Tunneling:
>>>
>>>   o  The new OH header Time to Live field
>>
>>> SHOULD
>> MUST
>
> We say should because there are cases when operators want fixed TTLs 
> for the tunnels.
>
Then you have a risk of loop.
>>>   1.  The ITR will keep state of the effective MTU for each locator per
>>>       mapping cache entry.  The effective MTU is what the core network
>>>       can deliver along the path between ITR and ETR.
>>>
>>>   2.  When an encapsulated packet, with DF bit always set to 0, exceeds
>>>       what the core network can deliver, one of the intermediate
>>>       routers on the path will send an ICMP Too Big message to the ITR.
>>>
>> Too Big is v6 only, in v4, it is a type 3, code 4 (Frag needed). It 
>> makes no sense to send ICMPv6 if in v4. It is a mistake we did in the 
>> OpenLISP implem report.
>
> That is not what we are saying here. "Too Big" is a general term for 
> both protocol families. Type 3/code 4 is a "Too Big" message. RFC 1191 
> calls it a "Too Big" message.
>
ok
>>>   The LISP UDP-based messages are the Map-Request and Map-Reply
>>>   messages.  When a UDP Map-Request is sent, the UDP source port is
>>>   chosen by the sender and the destination UDP port number is set to
>>>   4342.  When a UDP Map-Reply is sent, the source UDP port number is
>>>   set to 4342 and the destination UDP port number is copied from the
>>>   source port of either the Map-Request or the invoking data packet.
>>>
>>>
>> Could we simplify by:
>>
>>  The LISP UDP-based messages are the Map-Request and Map-Reply
>>  messages.  When a UDP Map-Request is sent, the UDP source port
>>  SHOULD be 4342 and the destination UDP port number is set to
>>  4342.  When a UDP Map-Reply is sent, the source UDP port number is
>>  set to 4342 and the destination UDP port number is copied from the
>>  source port of either the Map-Request or the invoking data packet.
>
> It definitely should not be a SHOULD. What else would the implementor 
> put in the field. How else would you detect a control packet? It is 
> simpler from a forwarding perspective to early on in data-plane 
> processing to determine a control packet with a single port number 
> check and later if you decide to process the packet, you demux on the 
> Type field.
>
Probably that the comment was not clear. It didn't say to change the 
destination port for the request, but only consider that, by default, 
the source port for the request is 4342. This is almost the same as what 
you have in the draft, except that I propose to have a default value for 
this source port while you don't.

With a picture:

     <x?, 4342>
|------------Req ---->|
|                          |
|    <4342, x>     |
|<----------Rep-------|
> You want the data-plane to detect a control packet, kick the packet to 
> the control-plane, and then the control-plane does the type demux.
>
>> It makes the source able to chose the port be, in practice, a default 
>> value of 4342 is used. I think that only few site require a non-4342 
>> source and, because dest cannot be chosen, all the site are forced to 
>> listen 4342...
>
> Just like other protocols we want the query to have the destination 
> port well-known and the reply to be the opposite. See DNS, see RIP. 
> There are others.
>
Of course, cf supra.
>>>       LISP-CONS Open Message:          8    b'1000'
>>>       LISP-CONS Push-Add Message:      9    b'1001'
>>>       LISP-CONS Push-Delete Message:   10   b'1010'
>>>       LISP-CONS Unreachable Message    11   b'1011'
>>>
>>>
>> Remove, cons is not consider in the WG.
>
> Well, we don't want to lose the code-points and the CONS spec doesn't 
> have them and I think we don't want to update the CONS spec. I'll let 
> Dave Meyer decide.
>
>>>   Locator Reach Bits:  These bits MUST be set to 0 on transmission and
>>>      ignored on receipt.  They cannot be used for indicating
>>>      reachability because the Map-Request does not have the EID-prefix
>>>      for the sending site so the receiver of the Map-Request cannot
>>>      know what mapping entry to associate the reachability with.
>>>      However, when Mapping Data is provided in the Map-Reply Record
>>>      field, and the receiver of the Map-Request is configured to accept
>>>      the mapping data, the R-bit per locator entry in the EID-prefix
>>>      record is used to denote reachability.
>>>
>>>
>> if no use, remove them!
>
> We have decided to remove them. Thanks.
>
>>>   Nonce:  A 4-byte random value created by the sender of the Map-
>>>      Request.
>>>
>> 3-bytes to be consistent with the data-plane. Or give another name.
>
> There is no reason why it can't be longer. It is relative to the 
> packet type so it can be different.
>
>>>   Type:   1 (Map-Request)
>>>
>>>   A: This is an authoritative bit, which is set to 0 for UDP-based Map-
>>>      Requests sent by an ITR.  See other control-specific documents
>>>      [CONS] for TCP-based Map-Requests.
>>>
>>>   R: When set, it indicates a Map-Reply Record segment is included in
>>>      the Map-Request.
>>>
>>>
>>
>>>   *P: Indicates that a Map-Request should be treated as a "piggyback"
>>>      locator reachability probe.  The receiver should respond with a
>>>      Map-Reply with the P bit set and the nonce copied from the Map-
>>>      Request.  Details on this usage will be provided in a future
>>>      version of this draft.
>>>
>>> *
>> If you do not explain what it is, do not put it in the draft yet. 
>> Please, specify before implementing, otherwise, it is very difficult 
>> to make OpenLISP compatible with what you do. This is the role of 
>> "reserved flags"...
>
> You can ignore this flag for now. We are not ready to add to the 
> draft. But we want to define the bit so it's not so hard to upgrade 
> the network for every packet format change.
>
>>>
>>> 6.1.3.  EID-to-RLOC UDP Map-Request Message
>>>
>>>   A Map-Request is sent from an ITR when it needs a mapping for an EID,
>>>   wants to test an RLOC for reachability,
>> you thus consider control and data plane paths being the same?
>
> When you test for reachability, you must test the underlying network yes.
>
>>> or wants to refresh a mapping
>>>   before TTL expiration.  For the initial case, the destination IP
>>>   address used for the Map-Request is the destination-EID from the
>>>   packet which had a mapping cache lookup failure.  For the later 2
>>>   cases, the destination IP address used for the Map-Request is one of
>>>   the RLOC addresses from the locator-set of the map cache entry.  In
>>>   all cases, the UDP source port number for the Map-Request message is
>>>   a randomly allocated 16-bit value and the UDP destination port number
>>>   is set to the well-known destination port number 4342.  A successful
>>>   Map-Reply updates the cached set of RLOCs associated with the EID
>>>   prefix range.
>>>
>>>   Map-Requests can also be LISP encapsulated using UDP destination port
>>>   4341 when sent from an ITR to a Map-Resolver.  Likewise, Map-Requests
>>>   are LISP encapsulated the same way from a Map-Server to an ETR.
>>>   Details on encapsulated Map-Requests and Map-Resolvers can be found
>>>   in [LISP-MS].
>>>
>>>   Map-Requests MUST be rate-limited.  It is recommended that a Map-
>>>   Request for the same EID-prefix be sent no more than once per second.
>>>
>> Why 1 second? As the TTL is with a one minute granularity, why 1 
>> second?  for when TTL is set to 0? If it is for the SMR bit, this bit 
>> should not be seen too frequently, otherwise, the 1minute granularity 
>> TTL has to be revised.
>
> Because if a Map-Request gets lost the next invoking packet 1 second 
> later can cause a Map-Request to be  sent. There really isn't any good 
> number and it should be configurable.
>
> You want to send a Map-Request before the TTL goes to 0 so your timer 
> process doesn't remove the entry. So you have some time to retransmit. 
> But the rate-limiting should be done in both cases when you have a 
> map-cache entry and when you are trying to get one.
>
> I might not be understanding your comment. If I missed it, please 
> restate. Thanks.
>
>>
>>>   Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
>>>      0 on transmission and ignored on receipt.  The locator
>>>      reachability is encoded as the R-bit in each locator entry of each
>>>      EID-prefix record.
>>>
>>>
>> Not used, then remove it.
>
> Will remove.
>
>>>   Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
>>>      that is echoed here in the Map-Reply.
>>>
>>>
>> 3-bytes or change the name.
>
> Will remove the Locator Reach Bits and same comment as above.
>
>>>   Type:   2 (Map-Reply)
>>>
>>>   *P: Indicates that the Map-Reply is in response to a "piggyback"
>>>      locator reachability Map-Request.  The nonce field should contain
>>>      a copy of the nonce value from the original Map-Request.  Details
>>>      on this usage will be provided in a future version of this draft.*
>>>
>>>
>> cf supra (remove this part or explain it)
>
> Same comment as above.
>
>>>   Reserved:  Set to 0 on transmission and ignored on receipt.
>>>
>>>   Record Count:  The number of records in this reply message.  A record
>>>      is comprised of that portion of the packet labeled 'Record' above
>>>      and occurs the number of times equal to Record count.
>>>
>>>   Record TTL:  The time in minutes the recipient of the Map-Reply will
>>>      store the mapping.  If the TTL is 0, the entry should be removed
>>>      from the cache immediately.  If the value is 0xffffffff, the
>>>      recipient can decide locally how long to store the mapping.
>>>
>>>
>> 32-bit for one minute granularity TTL means that a mapping can live 
>> 8171 years, reduce the side to win space or switch to a one second 
>> granularity (136 years should be enough ;-) ) (but you can recommend 
>> to use > 1minute TTL).
>
> We deliberately didn't want second granularity. Can we please not 
> change this. There is no compelling reason to do so.
>
Then, we can win some bits (8?) and use them for something else? (24bits 
gives 30 years of TTL)
>>>   Locator Count:  The number of Locator entries.  A locator entry
>>>      comprises what is labeled above as 'Loc'.  The locator count can
>>>      be 0 indicating there are no locators for the EID-prefix.
>>>
>>>   EID mask-len:  Mask length for EID prefix.
>>>
>>>   A: The Authoritative bit, when sent by a UDP-based message is always
>>>      set by the ETR.
>>
>>> See [CONS] for TCP-based Map-Replies.
>>>
>>>
>> remove as CONS is not considered.
>
> Will remove.
>
>>> 6.3.1.  Echo Nonce Algorithm
>>>
>>> *
>> To clarify this section, it should be rewritten with the idea that 
>> this is a hint for the "non-reachability". If the reply comes, 
>> perfect, we have reachability. Otherwise, it is a hint that there is 
>> maybe a reachability issue and then another technique has to be used.
>
> I will add some text to reflect that. Good comment.
>
>> Regards
>>
>> Damien Saucez
>
> Thanks again Damien!
>
> Dino
>

Thank you.

Damien Saucez

From luigi@net.t-labs.tu-berlin.de  Tue Jul 14 03:18:23 2009
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On Jul 14, 2009, at 6:57 , Dino Farinacci wrote:

>> Dino,
>>
>> Technical comments inline.
>
> Thanks for the comments. What I will do is reflect comments I  
> receive from you and some I have received from others and send a  
> diff file from -02 to -03. Then when I get an ack, I'll post a -03.
>
> I'll send the diff file in another email.
>
>> The next two paragraphs are my personal opinion and may not be  
>> shared by Luigi or Olivier.
>
> Sure, we want to receive your opinion.
>
>> Once again, why don't you consider versioning at all? Do you have a  
>> good reason to ignore it? We propose a solution that makes both  
>> specification and implementation simpler and increase security but  
>> you ignore it.
>
> We are considering versioning. We are wondering if changing to  
> version adds any value. We don't want to change more than we need to  
> unless there is apparent value. As Sam said, there has been no  
> apparent consensus about this.

On this topic, what about my last mail of 7th July? There is value in  
versioning the way we propose it.

And yes, there has been no consensus on accepting versioning, but  
neither consensus on rejecting it.

There has been some discussion on the number of bits used for  
versioning, which I personally think is not the main point.
What is important is the feedback that versioning provides without the  
need of extra signaling, nor extra bytes, just re-using part of the  
actual LISP header.

I guess people are still pondering, but, since there are clear  
advantages with versioning, they will finally accept it ;-)))

Luigi


>
> And as I have mentioned we can use a versioning scheme with a single  
> value. The nonce value we already have. I don't see any different  
> functionality using the SMR-bit and the "nonce as a version number".
>
> Also, which I will explain clearly at my working group presentation,  
> and will poll the group about RLOC-probing. If we can reach  
> consensus about this, maybe SMRs won't be needed.
>
>> As I already said dozens of time, the control and data-plane format  
>> could be completely separated. Why do we have the R bits in the Map  
>> req/rep while it is written, in the respective sections, something  
>> like "ignore this field, it has no use". IMO, LISP should propose a  
>> clean protocol with a nice separation between data and control  
>> plane. LISP proposes to separate the ID and the LOC, so why not go  
>> one steps further and separate control and data plane?
>
> Well, you haven't said it dozens of times, but I remember at least  
> once. I have talked it over with the other authors and believe this  
> is a low-cost change. We just have to rev the LISP network in a  
> turnkey fashion.
>
> Having said that, it is very important that the spec tracks what we  
> are implementing. We really desire to have "rough consensus and  
> running code" for this working group. So please have some  
> sensitivity to the deployment aspects of this (which you are part  
> of, of course).
>
>> Back to the specs now ;-)
>
> I snipped the sections you didn't comment on.
>
>>>
>>>  UDP Checksum:  this field
>> typo
>>> field
>
> Fixed. Thanks.
>
>>> MUST
>> SHOULD
>>> be transmitted as 0 and ignored
>>>     on receipt by the ETR.  Note, even when the UDP checksum is
>>>     transmitted as 0 an intervening NAT device can recalculate the
>>>     checksum and rewrite the UDP checksum field to non-zero.  For
>>>     performance reasons, the ETR MUST ignore the checksum and
>>
>>> MUST
>> SHOULD
>>> not
>>>     do a checksum computation.
>>>
>> it would be better to have: if checksum is not computed, checksum  
>> MUST be set to 0. Otherwise, the value MUST be the result of the  
>> checksum computation. Then, if someone desires to check UDP, it can  
>> iif it is non-zero.
>
> We have made this clear before. We want hardware forwarders to not  
> compute the UDP checksum. MUST is a really important to be spec'ed.
>
>>>
>>>  When doing Recursive Tunneling: *Tunneling or ITR/PTR  
>>> encapsulation:*
>>>
>>>  o  The OH header Time to Live field (or Hop Limit field, in case of
>>>     IPv6) MUST be copied from the IH header Time to Live field.
>>>
>>>
>> Why not with a -1? Do you consider that -1 has been done before  
>> being processed by the LISP code? If yes, should be explicitly  
>> written. If no -1, a loop can happen.
>
> Well, when the non-encapsulated arrives at the router, it is  
> decremented by 1, then encapsulated. So the copy of the inner TTL to  
> the outer TTL is -1.
>
>>>  o  The OH header Type of Service field (or the Traffic Class field,
>>>     in the case of IPv6) SHOULD be copied from the IH header Type of
>>>     Service field (with one caveat, see below).
>>>
>>>  When doing Re-encapsulated Tunneling:
>>>
>>>  o  The new OH header Time to Live field
>>
>>> SHOULD
>> MUST
>
> We say should because there are cases when operators want fixed TTLs  
> for the tunnels.
>
>>>  1.  The ITR will keep state of the effective MTU for each locator  
>>> per
>>>      mapping cache entry.  The effective MTU is what the core  
>>> network
>>>      can deliver along the path between ITR and ETR.
>>>
>>>  2.  When an encapsulated packet, with DF bit always set to 0,  
>>> exceeds
>>>      what the core network can deliver, one of the intermediate
>>>      routers on the path will send an ICMP Too Big message to the  
>>> ITR.
>>>
>> Too Big is v6 only, in v4, it is a type 3, code 4 (Frag needed). It  
>> makes no sense to send ICMPv6 if in v4. It is a mistake we did in  
>> the OpenLISP implem report.
>
> That is not what we are saying here. "Too Big" is a general term for  
> both protocol families. Type 3/code 4 is a "Too Big" message. RFC  
> 1191 calls it a "Too Big" message.
>
>>>  The LISP UDP-based messages are the Map-Request and Map-Reply
>>>  messages.  When a UDP Map-Request is sent, the UDP source port is
>>>  chosen by the sender and the destination UDP port number is set to
>>>  4342.  When a UDP Map-Reply is sent, the source UDP port number is
>>>  set to 4342 and the destination UDP port number is copied from the
>>>  source port of either the Map-Request or the invoking data packet.
>>>
>>>
>> Could we simplify by:
>>
>> The LISP UDP-based messages are the Map-Request and Map-Reply
>> messages.  When a UDP Map-Request is sent, the UDP source port
>> SHOULD be 4342 and the destination UDP port number is set to
>> 4342.  When a UDP Map-Reply is sent, the source UDP port number is
>> set to 4342 and the destination UDP port number is copied from the
>> source port of either the Map-Request or the invoking data packet.
>
> It definitely should not be a SHOULD. What else would the  
> implementor put in the field. How else would you detect a control  
> packet? It is simpler from a forwarding perspective to early on in  
> data-plane processing to determine a control packet with a single  
> port number check and later if you decide to process the packet, you  
> demux on the Type field.
>
> You want the data-plane to detect a control packet, kick the packet  
> to the control-plane, and then the control-plane does the type demux.
>
>> It makes the source able to chose the port be, in practice, a  
>> default value of 4342 is used. I think that only few site require a  
>> non-4342 source and, because dest cannot be chosen, all the site  
>> are forced to listen 4342...
>
> Just like other protocols we want the query to have the destination  
> port well-known and the reply to be the opposite. See DNS, see RIP.  
> There are others.
>
>>>      LISP-CONS Open Message:          8    b'1000'
>>>      LISP-CONS Push-Add Message:      9    b'1001'
>>>      LISP-CONS Push-Delete Message:   10   b'1010'
>>>      LISP-CONS Unreachable Message    11   b'1011'
>>>
>>>
>> Remove, cons is not consider in the WG.
>
> Well, we don't want to lose the code-points and the CONS spec  
> doesn't have them and I think we don't want to update the CONS spec.  
> I'll let Dave Meyer decide.
>
>>>  Locator Reach Bits:  These bits MUST be set to 0 on transmission  
>>> and
>>>     ignored on receipt.  They cannot be used for indicating
>>>     reachability because the Map-Request does not have the EID- 
>>> prefix
>>>     for the sending site so the receiver of the Map-Request cannot
>>>     know what mapping entry to associate the reachability with.
>>>     However, when Mapping Data is provided in the Map-Reply Record
>>>     field, and the receiver of the Map-Request is configured to  
>>> accept
>>>     the mapping data, the R-bit per locator entry in the EID-prefix
>>>     record is used to denote reachability.
>>>
>>>
>> if no use, remove them!
>
> We have decided to remove them. Thanks.
>
>>>  Nonce:  A 4-byte random value created by the sender of the Map-
>>>     Request.
>>>
>> 3-bytes to be consistent with the data-plane. Or give another name.
>
> There is no reason why it can't be longer. It is relative to the  
> packet type so it can be different.
>
>>>  Type:   1 (Map-Request)
>>>
>>>  A: This is an authoritative bit, which is set to 0 for UDP-based  
>>> Map-
>>>     Requests sent by an ITR.  See other control-specific documents
>>>     [CONS] for TCP-based Map-Requests.
>>>
>>>  R: When set, it indicates a Map-Reply Record segment is included in
>>>     the Map-Request.
>>>
>>>
>>
>>>  *P: Indicates that a Map-Request should be treated as a "piggyback"
>>>     locator reachability probe.  The receiver should respond with a
>>>     Map-Reply with the P bit set and the nonce copied from the Map-
>>>     Request.  Details on this usage will be provided in a future
>>>     version of this draft.
>>>
>>> *
>> If you do not explain what it is, do not put it in the draft yet.  
>> Please, specify before implementing, otherwise, it is very  
>> difficult to make OpenLISP compatible with what you do. This is the  
>> role of "reserved flags"...
>
> You can ignore this flag for now. We are not ready to add to the  
> draft. But we want to define the bit so it's not so hard to upgrade  
> the network for every packet format change.
>
>>>
>>> 6.1.3.  EID-to-RLOC UDP Map-Request Message
>>>
>>>  A Map-Request is sent from an ITR when it needs a mapping for an  
>>> EID,
>>>  wants to test an RLOC for reachability,
>> you thus consider control and data plane paths being the same?
>
> When you test for reachability, you must test the underlying network  
> yes.
>
>>> or wants to refresh a mapping
>>>  before TTL expiration.  For the initial case, the destination IP
>>>  address used for the Map-Request is the destination-EID from the
>>>  packet which had a mapping cache lookup failure.  For the later 2
>>>  cases, the destination IP address used for the Map-Request is one  
>>> of
>>>  the RLOC addresses from the locator-set of the map cache entry.  In
>>>  all cases, the UDP source port number for the Map-Request message  
>>> is
>>>  a randomly allocated 16-bit value and the UDP destination port  
>>> number
>>>  is set to the well-known destination port number 4342.  A  
>>> successful
>>>  Map-Reply updates the cached set of RLOCs associated with the EID
>>>  prefix range.
>>>
>>>  Map-Requests can also be LISP encapsulated using UDP destination  
>>> port
>>>  4341 when sent from an ITR to a Map-Resolver.  Likewise, Map- 
>>> Requests
>>>  are LISP encapsulated the same way from a Map-Server to an ETR.
>>>  Details on encapsulated Map-Requests and Map-Resolvers can be found
>>>  in [LISP-MS].
>>>
>>>  Map-Requests MUST be rate-limited.  It is recommended that a Map-
>>>  Request for the same EID-prefix be sent no more than once per  
>>> second.
>>>
>> Why 1 second? As the TTL is with a one minute granularity, why 1  
>> second?  for when TTL is set to 0? If it is for the SMR bit, this  
>> bit should not be seen too frequently, otherwise, the 1minute  
>> granularity TTL has to be revised.
>
> Because if a Map-Request gets lost the next invoking packet 1 second  
> later can cause a Map-Request to be  sent. There really isn't any  
> good number and it should be configurable.
>
> You want to send a Map-Request before the TTL goes to 0 so your  
> timer process doesn't remove the entry. So you have some time to  
> retransmit. But the rate-limiting should be done in both cases when  
> you have a map-cache entry and when you are trying to get one.
>
> I might not be understanding your comment. If I missed it, please  
> restate. Thanks.
>
>>
>>>  Locator Reach Bits:  Refer to Section 5.3.  This field MUST be  
>>> set to
>>>     0 on transmission and ignored on receipt.  The locator
>>>     reachability is encoded as the R-bit in each locator entry of  
>>> each
>>>     EID-prefix record.
>>>
>>>
>> Not used, then remove it.
>
> Will remove.
>
>>>  Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
>>>     that is echoed here in the Map-Reply.
>>>
>>>
>> 3-bytes or change the name.
>
> Will remove the Locator Reach Bits and same comment as above.
>
>>>  Type:   2 (Map-Reply)
>>>
>>>  *P: Indicates that the Map-Reply is in response to a "piggyback"
>>>     locator reachability Map-Request.  The nonce field should  
>>> contain
>>>     a copy of the nonce value from the original Map-Request.   
>>> Details
>>>     on this usage will be provided in a future version of this  
>>> draft.*
>>>
>>>
>> cf supra (remove this part or explain it)
>
> Same comment as above.
>
>>>  Reserved:  Set to 0 on transmission and ignored on receipt.
>>>
>>>  Record Count:  The number of records in this reply message.  A  
>>> record
>>>     is comprised of that portion of the packet labeled 'Record'  
>>> above
>>>     and occurs the number of times equal to Record count.
>>>
>>>  Record TTL:  The time in minutes the recipient of the Map-Reply  
>>> will
>>>     store the mapping.  If the TTL is 0, the entry should be removed
>>>     from the cache immediately.  If the value is 0xffffffff, the
>>>     recipient can decide locally how long to store the mapping.
>>>
>>>
>> 32-bit for one minute granularity TTL means that a mapping can live  
>> 8171 years, reduce the side to win space or switch to a one second  
>> granularity (136 years should be enough ;-) ) (but you can  
>> recommend to use > 1minute TTL).
>
> We deliberately didn't want second granularity. Can we please not  
> change this. There is no compelling reason to do so.
>
>>>  Locator Count:  The number of Locator entries.  A locator entry
>>>     comprises what is labeled above as 'Loc'.  The locator count can
>>>     be 0 indicating there are no locators for the EID-prefix.
>>>
>>>  EID mask-len:  Mask length for EID prefix.
>>>
>>>  A: The Authoritative bit, when sent by a UDP-based message is  
>>> always
>>>     set by the ETR.
>>
>>> See [CONS] for TCP-based Map-Replies.
>>>
>>>
>> remove as CONS is not considered.
>
> Will remove.
>
>>> 6.3.1.  Echo Nonce Algorithm
>>>
>>> *
>> To clarify this section, it should be rewritten with the idea that  
>> this is a hint for the "non-reachability". If the reply comes,  
>> perfect, we have reachability. Otherwise, it is a hint that there  
>> is maybe a reachability issue and then another technique has to be  
>> used.
>
> I will add some text to reflect that. Good comment.
>
>> Regards
>>
>> Damien Saucez
>
> Thanks again Damien!
>
> Dino
>


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Dino Farinacci allegedly wrote on 07/03/2009 6:24 PM:
>> If I am reading you right, as described, a site with fixed
>> infrastructure and a lot of mobile nodes needs to send its short
>> prefix and ALL the long prefixes (that are not home)  to anyone who
>> asks about the short prefix?  That does not seem like a good trade.
> 
> Well the LISP mobile node can do the Map-Request thing I mentioned as
> well. That would be better because the stationary site only needs the
> /32 state in it's ITRs only for the roaming LISP mobile nodes it is
> talking to.
> 
> I think this is a better fix. What I am saying is that the LISP mobile
> node can set the SMR-bit in data packets returning to the stationary
> site that has cached the /16.

That delays the final result by one step, but the result is still that
the correspondent site (maybe stationary) has entries for the /16 and
/32s for all of the mobile nodes it is talking to.

> We just have to spec in the main LISP spec that a decapsulated packet
> with the SMR-bit set should cause a Map-Request to be sent using the
> source EID of the packet as the target.

How do you avoid hijacking?

> By the way if a stationary sites or a LISP mobile node that is
> *starting* to talk to a roaming LISP mobile node, won't have this
> problem. Reason being is because a Map-Request will be sent for the /32
> of the mobile node, the reply returned.

... which will get SMRed as the node moves, and will have a low TTL
whether the node moves or not.

There will be many more mobile nodes than there are sites.  I'm just
trying to total up the various modes of interaction and think about how
it all scales.  It might work but I'm concerned.


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Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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> On this topic, what about my last mail of 7th July? There is value  
> in versioning the way we propose it.

Rather than claiming there is value, let's articulate what the value  
is that the nonce, as a single version cannot do.

I believe you there is value, but let's be very specific. That's the  
best way to evaluate and make a decision.

> And yes, there has been no consensus on accepting versioning, but  
> neither consensus on rejecting it.
>
> There has been some discussion on the number of bits used for  
> versioning, which I personally think is not the main point.

Okay, noted.

> What is important is the feedback that versioning provides without  
> the need of extra signaling, nor extra bytes, just re-using part of  
> the actual LISP header.

Okay, so you are saying it can remain efficient. Well that is good.  
But tell me why a 24-bit nonce cannot be used as a version number and  
use the same ideas you have for map-versioning.

Please be descriptive so we can converge.

> I guess people are still pondering, but, since there are clear  
> advantages with versioning, they will finally accept it ;-)))

Dino

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Noel Chiappa allegedly wrote on 07/03/2009 7:24 PM:
 So the distant ITR (at site B) sends traffic to site A, for a mobile
node Ac
> (you called it C, but I'd rather call it Ac to emphasize that it has an EID
> from A's EID block), is sending packets for Ac to A because B's ITRs have a
> mapping that says 'all of A is at A'.
> 
> What needs to happen is that if the ETRs at A can recognize that that
> particular EID Ac has 'gone walkabout', if they see any incoming traffic to
> that EID they can use that as a signal that the source ITR for that traffic
> has incorrect, cached mapping data for Ac. They can then tell the source ITR
> (at B) 'hey, your mapping for Ac is wrong, request a new one'. (I don't know
> if it's possible to say 'hey, your mapping for this is wrong, here's the
> right one', because without signed mappings, that's a DoS vector.)

Noel: B sends a map-request for Ac and gets a reply from A's ETR.  It
then sends a packet to A and gets an SMR telling it to ask again.  When
it asks again, how does the request look different to A's ETR?  If A's
ETR is going to say something special the second time, why didn't it
just say it the first time?

> Second, a mobile node has to let not just some entity which holds its current
> mapping know that it has moved, but also all the ETRs through which it might
> have been reached. 

This is a problem with all mobility solutions.  They all need
make-before-break to behave well.  In some cases those that have home
agents or other relay points might know that they are about to lose
their care-of address, even though they don't have a new one yet, and
they can tell their correspondent nodes to revert to using the home agent.


Dino Farinacci allegedly wrote on 07/03/2009 7:33 PM:
> Also, the ETRs can't tell the difference between the MN roaming or it is
> just down but stationary in the site. The MN, itself has to solve this
> problem.

How is this supposed to work?  I don't get it.  If the MN is responsible
for solving its own problem ... The ETR answers a map-request with a
full /16 including the possibly mobile node.  When a packet comes in,
does the ETR assume the node is on-site and use internal forwarding?  If
the MN is elsewhere, is there a home agent to tunnel packets to it?  If
there is not, do packets get dropped?  If they do, the MN never sees
them and never gets to send an SMR.

I think there has to be mapping information for the MN in the system
somewhere -- either injected as a /32 by some map-server (hm, security)
or resident on the home network's ETRs so that they can respond with a
/32 map-reply even if they only advertise a /16.


Dino Farinacci allegedly wrote on 07/03/2009 8:56 PM:
> It is a bit challenging because, 1) the ETR has to know which IP
> addresses for the site are mobile nodes, 2) the ETR has to ping or poll
> each one to find out when they are not around anymore.

That's where the MN has to be responsible.  It has to notify the ETR, or
someone, of its location.  MIP has all sorts of tweaks on this.

swb

From luigi@net.t-labs.tu-berlin.de  Tue Jul 14 08:45:06 2009
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From: Luigi Iannone <luigi@net.t-labs.tu-berlin.de>
To: Dino Farinacci <dino@cisco.com>
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Hi Dino,

On Jul 14, 2009, at 16:42 , Dino Farinacci wrote:

>> On this topic, what about my last mail of 7th July? There is value  
>> in versioning the way we propose it.
>
> Rather than claiming there is value, let's articulate what the value  
> is that the nonce, as a single version cannot do.
>
> I believe you there is value, but let's be very specific. That's the  
> best way to evaluate and make a decision.

Totally agree on that.

But I really do not know at this point how to better articulate the  
versioning approach.

I am a bit surprised about this reply. There are several mails, even  
some slides that I sent.
  But at some point you always did not reply, and now you claim I  
should better articulate?
Give me a hint on how I should do that.
I am a bit puzzled here.

At the bottom of this mail there is a copy of the one I sent the 7th  
of July. What is missing or not clear?


>
>> And yes, there has been no consensus on accepting versioning, but  
>> neither consensus on rejecting it.
>>
>> There has been some discussion on the number of bits used for  
>> versioning, which I personally think is not the main point.
>
> Okay, noted.
>
>> What is important is the feedback that versioning provides without  
>> the need of extra signaling, nor extra bytes, just re-using part of  
>> the actual LISP header.
>
> Okay, so you are saying it can remain efficient. Well that is good.  
> But tell me why a 24-bit nonce cannot be used as a version number  
> and use the same ideas you have for map-versioning.

As I said several times is the fact that we use two version numbers in  
the header.


>
> Please be descriptive so we can converge.

seems that draft + emails + slides are not sufficient....  we should  
sit down together and discuss more.

In the meantime, let's try a different approach.
Can you tell me why the current nonce use is superior to versioning?  
Or what do we lose by using versioning?

Can you articulate on these two points.

Luigi


>
>> I guess people are still pondering, but, since there are clear  
>> advantages with versioning, they will finally accept it ;-)))
>
> Dino



On Jul 7, 2009, at 16:28 , Luigi Iannone wrote:

>
> On Jun 22, 2009, at 21:00 , Dino Farinacci wrote:
>
>>> Yes, but let me push things a bit .. ;-)
>>> What about splitting the nonce_version number in two parts as  
>>> suggested in our draft? This is very helpful in case of  
>>> unidirectional traffic.
>>
>> Let's focus on this part for now. Which I think is an important  
>> issue. Let's frame the situation up as we have site A sending  
>> packets to site B. The traffic is unidirectional to home in on your  
>> point.
>>
>> Let's call the ITRs at site A ITR "a" and ITR "a'" and "b" and "b'"  
>> are the ETRs at site B. Even if a or a' send to b or b', those LISP  
>> routers at site B don't have any map-cache state for site A.
>>
>> When site B wants to update it's mapping database entries, neither  
>> b or b' will SMR because it thinks it's not talking to anyone.  
>> Plus, it has no offered data to send them, so it can't send an SMR- 
>> bit.
>>
>> You like the idea of putting two version numbers in so Site A can  
>> tell Site B what version of B's mappings it is using.
>>
>> Tell me if I am ac curatively describing your position?
>>
>> ... (pause and think before continuing below)
>
> After one week thinking... ;-))
>
> Agreed
> (one could argue that B can keep mappings for A just to have some  
> more security checks when coupled with the nonce, but this is  
> another story)
>
>
>>
>> If the LISP routers at site B see that anyone is out of date, they  
>> would need to send something to the ITRs of site A. Well we don't  
>> want the LISP routers of site B to send a Map-Reply because that  
>> could be unsolicited. We would want the ITRs to send a Map-Request  
>> over the mapping database infrastructure to get updated. But we  
>> want them to do it at the rate that site B can handle the Map- 
>> Request load.
>>
>> So one solution is for the site B LISP routers to send a Map- 
>> Request to site A with the SMR-bit set. Which in turn has the site  
>> A LISP routers send a Map-Request. This would fall into the current  
>> design.
> This is what we call "Map-Update-Notification" in draft-iannone-lisp- 
> versioning.
>
>>
>> ... (pause and think before continuing below)
>
> After a second week thinking.... ;-))
>
> This is the whole point, with the current design of LISP design you  
> have not mean to make B understand that A is using a stale mapping.
>
> What you can do is to "guess" that that's the case. What if you have  
> the case (I already pointed this out previously, but had no answer)  
> A will stop send for a while, in the meantime the mapping changes,  
> then A starts to send with the same mapping because the original TTL  
> is not expired. How you deal with that?
>
> Please Dino, do not reply that when A starts again sending traffic,  
> B will send a Map-Request with SMR bit just to be sure that A will  
> update the mapping.  If we use Map-Request/Map-reply for everything,  
> LISP will consume the whole Internet's bandwidth in signaling.
>
> Putting versioning into the header (meaning 2 version numbers),  
> despite what you think,  does the job (and even more) in a very   
> simple and elegant way.
>
> It does not need any further space/state in the mapping, since the  
> point is to give a different semantic to part of the 8 bytes used  
> for the LISP header.
>
>
>
>
>>
>> But while we have been experimenting with RLOC reachability  
>> liveness, you might think of an option where site A LISP routers  
>> might be sending Map-Requests to site B routers to make sure the  
>> locators the site A routers are using are up and operational. Well  
>> depending on how often this is done, the keepalive replies which  
>> are in the form of Map-Replies would have more up to date mapping  
>> data.
>
> 1. Active probing does not scale (you yourself pointed this out some  
> time ago).
>
> 2. This approach has limited reactivity.
>
> 3. One can argue that RLOC reachability should be ensured by the  
> routing infrastructure (think about fast-reroute) and not by LISP.
>
>
>
>>
>> All I'm trying to say here is that maybe using the basic Map- 
>> Request and Map-Reply machinery we can solve liveness and fast  
>> mapping updates at the same time.
>
> Careful here. Your statement does not consider the overhead in terms  
> of probing that you have to do in order to discover things that  
> versioning tells you right away. Think about it....
>
>
> Luigi
>
>
>>
>> Just thinking out loud,
>> Dino
>>
>>
>>
>
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


--Apple-Mail-24-841874277
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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; ">Hi Dino,<div><br><div><div>On =
Jul 14, 2009, at 16:42 , Dino Farinacci wrote:</div><br =
class=3D"Apple-interchange-newline"><blockquote =
type=3D"cite"><div><blockquote type=3D"cite">On this topic, what about =
my last mail of 7th July? There is value in versioning the way we =
propose it.<br></blockquote><br>Rather than claiming there is value, =
let's articulate what the value is that the nonce, as a single version =
cannot do.<br><br>I believe you there is value, but let's be very =
specific. That's the best way to evaluate and make a =
decision.<br></div></blockquote><div><br></div><div>Totally agree on =
that.</div><div><br></div><div>But I really do not know at this point =
how to better articulate the versioning =
approach.&nbsp;</div><div><br></div><div>I am a bit surprised about this =
reply. There are several mails, even some slides that I =
sent.</div><div>&nbsp;But at some point you always did not reply, and =
now you claim I should better articulate?&nbsp;</div><div>Give me a hint =
on how I should do that.</div><div>I am a bit puzzled =
here.&nbsp;</div><div><br></div><div>At the bottom of this mail there is =
a copy of the one I sent the 7th of July. What is missing or not =
clear?</div><div><br></div><br><blockquote =
type=3D"cite"><div><br><blockquote type=3D"cite">And yes, there has been =
no consensus on accepting versioning, but neither consensus on rejecting =
it.<br></blockquote><blockquote type=3D"cite"><br></blockquote><blockquote=
 type=3D"cite">There has been some discussion on the number of bits used =
for versioning, which I personally think is not the main =
point.<br></blockquote><br>Okay, noted.<br><br><blockquote =
type=3D"cite">What is important is the feedback that versioning provides =
without the need of extra signaling, nor extra bytes, just re-using part =
of the actual LISP header.<br></blockquote><br>Okay, so you are saying =
it can remain efficient. Well that is good. But tell me why a 24-bit =
nonce cannot be used as a version number and use the same ideas you have =
for map-versioning.<br></div></blockquote><div><br></div><div>As I said =
several times is the fact that we use two version numbers in the =
header.</div><div><br></div><br><blockquote type=3D"cite"><div><br>Please =
be descriptive so we can =
converge.<br></div></blockquote><div><br></div><div>seems that draft + =
emails + slides are not sufficient.... &nbsp;we should sit down together =
and discuss more.</div><div><br></div><div>In the meantime, let's try a =
different approach.&nbsp;</div><div>Can you tell me why the current =
nonce use is superior to versioning? Or what do we lose by using =
versioning?&nbsp;</div><div><br></div><div>Can you articulate on these =
two =
points.</div><div><br></div><div>Luigi</div><div><br></div><br><blockquote=
 type=3D"cite"><div><br><blockquote type=3D"cite">I guess people are =
still pondering, but, since there are clear advantages with versioning, =
they will finally accept it =
;-)))<br></blockquote><br>Dino<br></div></blockquote></div><br></div><div>=
<br></div><div><br></div><div><div>On Jul 7, 2009, at 16:28 , Luigi =
Iannone wrote:</div><br class=3D"Apple-interchange-newline"><blockquote =
type=3D"cite"><div><br>On Jun 22, 2009, at 21:00 , Dino Farinacci =
wrote:<br><br><blockquote type=3D"cite"><blockquote type=3D"cite">Yes, =
but let me push things a bit .. =
;-)<br></blockquote></blockquote><blockquote type=3D"cite"><blockquote =
type=3D"cite">What about splitting the nonce_version number in two parts =
as suggested in our draft? This is very helpful in case of =
unidirectional traffic.<br></blockquote></blockquote><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">Let's focus on =
this part for now. Which I think is an important issue. Let's frame the =
situation up as we have site A sending packets to site B. The traffic is =
unidirectional to home in on your point.<br></blockquote><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">Let's call the =
ITRs at site A ITR "a" and ITR "a'" and "b" and "b'" are the ETRs at =
site B. Even if a or a' send to b or b', those LISP routers at site B =
don't have any map-cache state for site A.<br></blockquote><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">When site B =
wants to update it's mapping database entries, neither b or b' will SMR =
because it thinks it's not talking to anyone. Plus, it has no offered =
data to send them, so it can't send an =
SMR-bit.<br></blockquote><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">You like the =
idea of putting two version numbers in so Site A can tell Site B what =
version of B's mappings it is using.<br></blockquote><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">Tell me if I am =
ac curatively describing your position?<br></blockquote><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">... (pause and =
think before continuing below)<br></blockquote><br>After one week =
thinking... ;-))<br><br>Agreed<br>(one could argue that B can keep =
mappings for A just to have some more security checks when coupled with =
the nonce, but this is another story)<br><br><br><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">If the LISP =
routers at site B see that anyone is out of date, they would need to =
send something to the ITRs of site A. Well we don't want the LISP =
routers of site B to send a Map-Reply because that could be unsolicited. =
We would want the ITRs to send a Map-Request over the mapping database =
infrastructure to get updated. But we want them to do it at the rate =
that site B can handle the Map-Request load.<br></blockquote><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">So one solution =
is for the site B LISP routers to send a Map-Request to site A with the =
SMR-bit set. Which in turn has the site A LISP routers send a =
Map-Request. This would fall into the current =
design.<br></blockquote>This is what we call "Map-Update-Notification" =
in draft-iannone-lisp-versioning.<br><br><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">... (pause and =
think before continuing below)<br></blockquote><br>After a second week =
thinking.... ;-))<br><br>This is the whole point, with the current =
design of LISP design you have not mean to make B understand that A is =
using a stale mapping.<br><br>What you can do is to "guess" that that's =
the case. What if you have the case (I already pointed this out =
previously, but had no answer) A will stop send for a while, in the =
meantime the mapping changes, then A starts to send with the same =
mapping because the original TTL is not expired. How you deal with =
that?<br><br>Please Dino, do not reply that when A starts again sending =
traffic, B will send a Map-Request with SMR bit just to be sure that A =
will update the mapping. &nbsp;If we use Map-Request/Map-reply for =
everything, LISP will consume the whole Internet's bandwidth in =
signaling.<br><br>Putting versioning into the header (meaning 2 version =
numbers), despite what you think, &nbsp;does the job (and even more) in =
a very &nbsp;simple and elegant way.<br><br>It does not need any further =
space/state in the mapping, since the point is to give a different =
semantic to part of the 8 bytes used for the LISP =
header.<br><br><br><br><br><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">But while we =
have been experimenting with RLOC reachability liveness, you might think =
of an option where site A LISP routers might be sending Map-Requests to =
site B routers to make sure the locators the site A routers are using =
are up and operational. Well depending on how often this is done, the =
keepalive replies which are in the form of Map-Replies would have more =
up to date mapping data.<br></blockquote><br>1. Active probing does not =
scale (you yourself pointed this out some time ago).<br><br>2. This =
approach has limited reactivity.<br><br>3. One can argue that RLOC =
reachability should be ensured by the routing infrastructure (think =
about fast-reroute) and not by LISP.<br><br><br><br><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">All I'm trying =
to say here is that maybe using the basic Map-Request and Map-Reply =
machinery we can solve liveness and fast mapping updates at the same =
time.<br></blockquote><br>Careful here. Your statement does not consider =
the overhead in terms of probing that you have to do in order to =
discover things that versioning tells you right away. Think about =
it....<br><br><br>Luigi<br><br><br><blockquote =
type=3D"cite"><br></blockquote><blockquote type=3D"cite">Just thinking =
out loud,<br></blockquote><blockquote =
type=3D"cite">Dino<br></blockquote><blockquote =
type=3D"cite"><br></blockquote><blockquote =
type=3D"cite"><br></blockquote><blockquote =
type=3D"cite"><br></blockquote><br>_______________________________________=
________<br>lisp mailing list<br><a =
href=3D"mailto:lisp@ietf.org">lisp@ietf.org</a><br>https://www.ietf.org/ma=
ilman/listinfo/lisp<br></div></blockquote><div><font =
class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div></div></body></html>=

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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org, Pierre Francois <Pierre.Francois@uclouvain.be>
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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Dino,

Dino Farinacci wrote:
>> On this topic, what about my last mail of 7th July? There is value in 
>> versioning the way we propose it.
>
> Rather than claiming there is value, let's articulate what the value 
> is that the nonce, as a single version cannot do.
>
What is the single version? I do not find mail with "single version" 
pattern in my archives. If by single version you consider a 1bit 
version, we (Noel if I remember well) have already seen that you can 
have some issues if there is packet drop.
> I believe you there is value, but let's be very specific. That's the 
> best way to evaluate and make a decision.
>
I think that the best value of versioning is that you can put a lot of 
different functionalities in a single and elegant concept that is 
nothing else than a version number. With the current approach, you have 
the reachability bits that give you hints about whether a Rloc is 
reachable or not. The SMR bit will give you the information that you 
need to send a map request. The E bit helps you to detect rapidly path 
failure. With the versioning, you have the version number. If it 
changes, it means that their is a problem and you should ask for a new 
mapping. You have at the same time SMR, R bit and E bits. In addition, 
you don't need clock sweep anymore.

 From a TE point of view, it is very simple to simply change the 
mapping, everything is automatic and we do not have to take care of what 
is the traffic (the SMR bit is implicit so we do not need to keep track 
of who already received to SMR bit).

 From an implementation point of view, it is very simple to support 
versioning. The code is very easy to write and can be very efficient (fast?)

So, as you said in a previous mail, we'll discuss this in a F2F meeting 
in Stockholm and I am pretty sure that we'll converge to something good ;-)
>> And yes, there has been no consensus on accepting versioning, but 
>> neither consensus on rejecting it.
>>
>> There has been some discussion on the number of bits used for 
>> versioning, which I personally think is not the main point.
>
> Okay, noted.
>
>> What is important is the feedback that versioning provides without 
>> the need of extra signaling, nor extra bytes, just re-using part of 
>> the actual LISP header.
>
> Okay, so you are saying it can remain efficient. Well that is good. 
> But tell me why a 24-bit nonce cannot be used as a version number and 
> use the same ideas you have for map-versioning.
>
Of course, we can. The format is not frozen so we can redefine the nonce 
and move it to the general concept of versioning.

Could you tell us more about your vision of this "new" nonce?

Damien Saucez
> Please be descriptive so we can converge.
>
>> I guess people are still pondering, but, since there are clear 
>> advantages with versioning, they will finally accept it ;-)))
>
> Dino


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Thread-Topic: Agenda for LISP WG in Stockholm
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From: "Darrel Lewis (darlewis)" <darlewis@cisco.com>
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Subject: [lisp] Agenda for LISP WG in Stockholm
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The agenda for the LISP WG session at the Stockholm IETF is now
available =20
at:

http://www.ietf.org/proceedings/09jul/agenda/lisp.txt

Please send any comments/corrections to the chairs, thanks!

-Darrel and Sam

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Cc: Noel Chiappa <jnc@mercury.lcs.mit.edu>, lisp@ietf.org
Subject: Re: [lisp] Mobile LISP
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> Dino Farinacci allegedly wrote on 07/03/2009 7:33 PM:
>> Also, the ETRs can't tell the difference between the MN roaming or  
>> it is
>> just down but stationary in the site. The MN, itself has to solve  
>> this
>> problem.
>
> How is this supposed to work?  I don't get it.  If the MN is  
> responsible
> for solving its own problem ... The ETR answers a map-request with a
> full /16 including the possibly mobile node.  When a packet comes in,
> does the ETR assume the node is on-site and use internal  
> forwarding?  If
> the MN is elsewhere, is there a home agent to tunnel packets to it?   
> If
> there is not, do packets get dropped?  If they do, the MN never sees
> them and never gets to send an SMR.

The LISP mobile-node knows who it is talking to. It SMR's those ETRs,  
then then return Map-Requests to get the latest EID-to-RLOC binding.  
The Map-Request goes on the ALT and the Map-Server can proxy-reply for  
the LISP mobile-node.

> I think there has to be mapping information for the MN in the system
> somewhere -- either injected as a /32 by some map-server (hm,  
> security)
> or resident on the home network's ETRs so that they can respond with a
> /32 map-reply even if they only advertise a /16.

Please read the draft, it is all explained in there. WHen the LISP  
mobile-node moves, it registers its new RLOC with the map-server that  
has an EID-prefix that covers the LISP mobile-node's EID.

Dino


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Cc: lisp@ietf.org
Subject: Re: [lisp] Mobile LISP
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> Dino Farinacci allegedly wrote on 07/03/2009 6:24 PM:
>>> If I am reading you right, as described, a site with fixed
>>> infrastructure and a lot of mobile nodes needs to send its short
>>> prefix and ALL the long prefixes (that are not home)  to anyone who
>>> asks about the short prefix?  That does not seem like a good trade.
>>
>> Well the LISP mobile node can do the Map-Request thing I mentioned as
>> well. That would be better because the stationary site only needs the
>> /32 state in it's ITRs only for the roaming LISP mobile nodes it is
>> talking to.
>>
>> I think this is a better fix. What I am saying is that the LISP  
>> mobile
>> node can set the SMR-bit in data packets returning to the stationary
>> site that has cached the /16.
>
> That delays the final result by one step, but the result is still that
> the correspondent site (maybe stationary) has entries for the /16 and
> /32s for all of the mobile nodes it is talking to.
>
>> We just have to spec in the main LISP spec that a decapsulated packet
>> with the SMR-bit set should cause a Map-Request to be sent using the
>> source EID of the packet as the target.
>
> How do you avoid hijacking?

You send a verifying Map-Request as described in the spec.

>> By the way if a stationary sites or a LISP mobile node that is
>> *starting* to talk to a roaming LISP mobile node, won't have this
>> problem. Reason being is because a Map-Request will be sent for  
>> the /32
>> of the mobile node, the reply returned.
>
> ... which will get SMRed as the node moves, and will have a low TTL
> whether the node moves or not.
>
> There will be many more mobile nodes than there are sites.  I'm just
> trying to total up the various modes of interaction and think about  
> how
> it all scales.  It might work but I'm concerned.

Well, as you know we want to design the mapping database to support  
10^10 entries. At the time we stated this, that was the number of  
sites. So the number of LISP mobile nodes can be included in that  
number.

Dino



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From: Dino Farinacci <dino@cisco.com>
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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org, Pierre Francois <Pierre.Francois@uclouvain.be>
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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>> I have talked it over with the other authors and believe this is a  
>> low-cost change. We just have to rev the LISP network in a turnkey  
>> fashion.
>>
>> Having said that, it is very important that the spec tracks what we  
>> are implementing. We really desire to have "rough consensus and  
>> running code" for this working group.
> Sure, but what I said is that we can first discuss the features and  
> then implement them. Of course, you did it internally but maybe you  
> could send the next features on the mailing list to get some  
> comments. The problem, IMHO, if we directly go to implementation is  
> that we reduce our vision to purely technical problems. It is very  
> important, but technical problems are easier to solve than a  
> misconception, don't you think?

That is what we are doing and why I sent the diff first before posting  
-03 and changing the implementation. Let me make it clear the order.  
We first suggest changes on the list, if there is no disagreement, we  
can post the new version of the ID, then we can go implement it.

Above is not suppose to document the fine details of the working group  
process. It is suppose to be a general rough process. I am not trying  
to make up rules, but to have some practical sanity in all of this.

It is really important to the LISP authors that we learn through  
experimentation of implementation and would hope that OpenLISP can  
keep the same pace as our prototype implementation.

>> So please have some sensitivity to the deployment aspects of this  
>> (which you are part of, of course).
>>
> of course, and about that we'll have a "surprise" for you in  
> Stockholm ;-)

I love surprises.  :-)

>>>>  o  The OH header Type of Service field (or the Traffic Class  
>>>> field,
>>>>     in the case of IPv6) SHOULD be copied from the IH header Type  
>>>> of
>>>>     Service field (with one caveat, see below).
>>>>
>>>>  When doing Re-encapsulated Tunneling:
>>>>
>>>>  o  The new OH header Time to Live field
>>>
>>>> SHOULD
>>> MUST
>>
>> We say should because there are cases when operators want fixed  
>> TTLs for the tunnels.
>>
> Then you have a risk of loop.

The loop is not in the TTL setting, it would if you traverse the same  
encapsulator.

>>> Could we simplify by:
>>>
>>> The LISP UDP-based messages are the Map-Request and Map-Reply
>>> messages.  When a UDP Map-Request is sent, the UDP source port
>>> SHOULD be 4342 and the destination UDP port number is set to
>>> 4342.  When a UDP Map-Reply is sent, the source UDP port number is
>>> set to 4342 and the destination UDP port number is copied from the
>>> source port of either the Map-Request or the invoking data packet.
>>
>> It definitely should not be a SHOULD. What else would the  
>> implementor put in the field. How else would you detect a control  
>> packet? It is simpler from a forwarding perspective to early on in  
>> data-plane processing to determine a control packet with a single  
>> port number check and later if you decide to process the packet,  
>> you demux on the Type field.
>>
> Probably that the comment was not clear. It didn't say to change the  
> destination port for the request, but only consider that, by  
> default, the source port for the request is 4342. This is almost the  
> same as what you have in the draft, except that I propose to have a  
> default value for this source port while you don't.
>
> With a picture:
>
>    <x?, 4342>
> |------------Req ---->|
> |                          |
> |    <4342, x>     |
> |<----------Rep-------|

I realized what you asked for, but why?

>>>>
>>>> Reserved:  Set to 0 on transmission and ignored on receipt.
>>>>
>>>>  Record Count:  The number of records in this reply message.  A  
>>>> record
>>>>     is comprised of that portion of the packet labeled 'Record'  
>>>> above
>>>>     and occurs the number of times equal to Record count.
>>>>
>>>>  Record TTL:  The time in minutes the recipient of the Map-Reply  
>>>> will
>>>>     store the mapping.  If the TTL is 0, the entry should be  
>>>> removed
>>>>     from the cache immediately.  If the value is 0xffffffff, the
>>>>     recipient can decide locally how long to store the mapping.
>>>>
>>>>
>>> 32-bit for one minute granularity TTL means that a mapping can  
>>> live 8171 years, reduce the side to win space or switch to a one  
>>> second granularity (136 years should be enough ;-) ) (but you can  
>>> recommend to use > 1minute TTL).
>>
>> We deliberately didn't want second granularity. Can we please not  
>> change this. There is no compelling reason to do so.
>>
> Then, we can win some bits (8?) and use them for something else?  
> (24bits gives 30 years of TTL)

Why do we need to micro-optimize this? Saving 8-bits while still  
keeping the format long-word aligned means you don't save. And to be  
frank, who cares. It's a control packet.

Thanks again for the feedback, the discussion is useful.

Dino

From damien.saucez@uclouvain.be  Tue Jul 14 11:35:21 2009
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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org, Pierre Francois <Pierre.Francois@uclouvain.be>
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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Dino Farinacci wrote:
>>> I have talked it over with the other authors and believe this is a 
>>> low-cost change. We just have to rev the LISP network in a turnkey 
>>> fashion.
>>>
>>> Having said that, it is very important that the spec tracks what we 
>>> are implementing. We really desire to have "rough consensus and 
>>> running code" for this working group.
>> Sure, but what I said is that we can first discuss the features and 
>> then implement them. Of course, you did it internally but maybe you 
>> could send the next features on the mailing list to get some 
>> comments. The problem, IMHO, if we directly go to implementation is 
>> that we reduce our vision to purely technical problems. It is very 
>> important, but technical problems are easier to solve than a 
>> misconception, don't you think?
>
> That is what we are doing and why I sent the diff first before posting 
> -03 and changing the implementation. Let me make it clear the order. 
> We first suggest changes on the list, if there is no disagreement, we 
> can post the new version of the ID, then we can go implement it.
>
> Above is not suppose to document the fine details of the working group 
> process. It is suppose to be a general rough process. I am not trying 
> to make up rules, but to have some practical sanity in all of this.
>
> It is really important to the LISP authors that we learn through 
> experimentation of implementation and would hope that OpenLISP can 
> keep the same pace as our prototype implementation.
>
>>> So please have some sensitivity to the deployment aspects of this 
>>> (which you are part of, of course).
>>>
>> of course, and about that we'll have a "surprise" for you in 
>> Stockholm ;-)
>
> I love surprises.  :-)
>
>>>>>  o  The OH header Type of Service field (or the Traffic Class field,
>>>>>     in the case of IPv6) SHOULD be copied from the IH header Type of
>>>>>     Service field (with one caveat, see below).
>>>>>
>>>>>  When doing Re-encapsulated Tunneling:
>>>>>
>>>>>  o  The new OH header Time to Live field
>>>>
>>>>> SHOULD
>>>> MUST
>>>
>>> We say should because there are cases when operators want fixed TTLs 
>>> for the tunnels.
>>>
>> Then you have a risk of loop.
>
> The loop is not in the TTL setting, it would if you traverse the same 
> encapsulator.
>
Of course, but TTL is a way to detect it.
>>>> Could we simplify by:
>>>>
>>>> The LISP UDP-based messages are the Map-Request and Map-Reply
>>>> messages.  When a UDP Map-Request is sent, the UDP source port
>>>> SHOULD be 4342 and the destination UDP port number is set to
>>>> 4342.  When a UDP Map-Reply is sent, the source UDP port number is
>>>> set to 4342 and the destination UDP port number is copied from the
>>>> source port of either the Map-Request or the invoking data packet.
>>>
>>> It definitely should not be a SHOULD. What else would the 
>>> implementor put in the field. How else would you detect a control 
>>> packet? It is simpler from a forwarding perspective to early on in 
>>> data-plane processing to determine a control packet with a single 
>>> port number check and later if you decide to process the packet, you 
>>> demux on the Type field.
>>>
>> Probably that the comment was not clear. It didn't say to change the 
>> destination port for the request, but only consider that, by default, 
>> the source port for the request is 4342. This is almost the same as 
>> what you have in the draft, except that I propose to have a default 
>> value for this source port while you don't.
>>
>> With a picture:
>>
>>    <x?, 4342>
>> |------------Req ---->|
>> |                          |
>> |    <4342, x>     |
>> |<----------Rep-------|
>
> I realized what you asked for, but why?
>
I have to admit that I have no good reason. What I propose is to use a 
default source port.
>>>>>
>>>>> Reserved:  Set to 0 on transmission and ignored on receipt.
>>>>>
>>>>>  Record Count:  The number of records in this reply message.  A 
>>>>> record
>>>>>     is comprised of that portion of the packet labeled 'Record' above
>>>>>     and occurs the number of times equal to Record count.
>>>>>
>>>>>  Record TTL:  The time in minutes the recipient of the Map-Reply will
>>>>>     store the mapping.  If the TTL is 0, the entry should be removed
>>>>>     from the cache immediately.  If the value is 0xffffffff, the
>>>>>     recipient can decide locally how long to store the mapping.
>>>>>
>>>>>
>>>> 32-bit for one minute granularity TTL means that a mapping can live 
>>>> 8171 years, reduce the side to win space or switch to a one second 
>>>> granularity (136 years should be enough ;-) ) (but you can 
>>>> recommend to use > 1minute TTL).
>>>
>>> We deliberately didn't want second granularity. Can we please not 
>>> change this. There is no compelling reason to do so.
>>>
>> Then, we can win some bits (8?) and use them for something else? 
>> (24bits gives 30 years of TTL)
>
> Why do we need to micro-optimize this? Saving 8-bits while still 
> keeping the format long-word aligned means you don't save. And to be 
> frank, who cares. It's a control packet.
>
Save 8 bits for every Record means that you can put more records in a 
reply. Do we have an use case where the reply could  contain a lot of 
records with only one RLOC? In that case, if becomes interesting, but 
maybe there is no use for that.
> Thanks again for the feedback, the discussion is useful.
>
A completely different subject, but there is the possibility to send 
several EID in a map-request. However, these EIDs can be under the 
responsibility of different sites. How do we deal with that in the reply 
to keep the nonce semantic correct? Can we have different  answers with 
the same nonce? If we call the EIDs in a map-request "sub-requests", how 
can we dispatch the sub-requests on the mapping system to have the 
correct mappings?

A first solution is to have an entry point in the mapping system. This 
entry point receives the request and sends the different sub-requests by 
its own and receives all the replies, then concatenates them and sends 
the big reply to the request originator.

Another solution, is to consider the request as a double stack. The 
first stack contains the sub-request and the second stack contains the 
sub-replies. The request first has only the sub-request. The map-request 
is sent to the responsible of the first EID in the stack. The 
responsible server  - no particular meaning behind the server word here 
- generates the mapping and push the mapping in the mapping stack that 
is piggybacked by the request. Then, this server forwards the request 
(poped and pushed) to the server responsible of the eid at the top of 
the stack and so on until the sub-requests is empty. The last server 
then sends the reply to the ITR.

> Dino

Damien Saucez

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Cc: Noel Chiappa <jnc@mercury.lcs.mit.edu>, lisp@ietf.org
Subject: Re: [lisp] Mobile LISP
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Dino Farinacci allegedly wrote on 07/14/2009 11:59 AM:
>> Dino Farinacci allegedly wrote on 07/03/2009 7:33 PM:
>>> Also, the ETRs can't tell the difference between the MN roaming or it is
>>> just down but stationary in the site. The MN, itself has to solve this
>>> problem.
>>
>> How is this supposed to work?  I don't get it.  If the MN is responsible
>> for solving its own problem ... The ETR answers a map-request with a
>> full /16 including the possibly mobile node.  When a packet comes in,
>> does the ETR assume the node is on-site and use internal forwarding?  If
>> the MN is elsewhere, is there a home agent to tunnel packets to it?  If
>> there is not, do packets get dropped?  If they do, the MN never sees
>> them and never gets to send an SMR.
> 
> The LISP mobile-node knows who it is talking to. It SMR's those ETRs,
> then then return Map-Requests to get the latest EID-to-RLOC binding. The
> Map-Request goes on the ALT and the Map-Server can proxy-reply for the
> LISP mobile-node.
> 
>> I think there has to be mapping information for the MN in the system
>> somewhere -- either injected as a /32 by some map-server (hm, security)
>> or resident on the home network's ETRs so that they can respond with a
>> /32 map-reply even if they only advertise a /16.
> 
> Please read the draft, it is all explained in there. WHen the LISP
> mobile-node moves, it registers its new RLOC with the map-server that
> has an EID-prefix that covers the LISP mobile-node's EID.
> 
> Dino

Dino, the first half of your answer missed my point; the second
disagrees with what you said previously and may agree with my conclusion
-- the one where you said "please read the draft".  Consider that I
might actually have read the draft, and there might be a problem with
what you said in the mail I originally replied to.

To start with you said:

  ... the ETRs can't tell the difference between the MN roaming or it
  is just down but stationary in the site. The MN, itself has to solve
  this problem.

If that's true, that means the ETR, responsible for mapping info for the
whole /16, does not have mapping info for the MN.  My question is: What
happens in a situation where the MN is out of the home site before a
correspondent node tries to talk to it?  How do initial packets from the
CN get to the MN, if the ETR doesn't know where it is?  If it doesn't
know the MN is roaming, what does put in the map-reply to the CN?  Does
it give it the /16 mapping, i.e. route packets to the MN to the home
site?  If so, what happens when a packet arrives at the ETR for the MN?

You say the MN can send an SMR because it "knows who it is talking to".
 No it can't, because no packets have reached it so it doesn't actually
know someone is trying to talk to it and thus doesn't know an SMR is
necessary.

Obviously it has to register its RLOC(s) with a map-server, but since
you said the ETR can't tell if it is roaming or down, the ETR isn't told
the MN's mapping.  Who is told?  Some special map-server associated with
the home site (since it is responsible for the EID prefix the MN is part
of)?  If it's some special map-server and not the ETR -- responsible for
the /16 -- then the ETR at least needs to know which EIDs it does _not_
have valid information for.  That's the same level of scale as having
the detailed information itself, and it hardly seems useful not to tell
it in the first place.

Can you put these two statements together and explain what you had in
mind?  Does an ETR responsible for the whole /16 find out mappings for
mobile nodes or not?  Speculating ... do you want to sequester all
mobile nodes into a particular EID sub-prefix and take that away from
the ETRs?  And if you think there is something specific I have missed in
the draft, please tell me.


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Date: Tue, 14 Jul 2009 09:39:58 -1000
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Subject: Re: [lisp] Map-Versioning
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On Jul 7, 2009, at 4:28 AM, Luigi Iannone wrote:

> After one week thinking... ;-))

A few observations....


In para 3:
   --  if you are allocating only 15 bits for the map version why  
does your example use 24 bits?
   -- There appears to be some formatting problems here, is it just  
that the brackets are facing the wrong way?

    As an example, using 24 bits, if the Mapping Version Number is 0,
    versions in ]1; (2**14)-1[ are greater and versions in [2**14;
    (2**15)-1[ are smaller.

   -- FWIW:  s/half the versions is/ half the versions are


5.0: "carrying"
    The purpose of carring these version numbers is two-fold, allowing

    FWIW  change "does not hold" to "is not true" and I get it.  I  
first read
    it to mean the first condition was 'holding' the Map-Update- 
Notification.

     If the first condition does not hold the
    Map-Update-Notification (see Section 8) is used to make the ITR  
aware
    that a newer mapping is available.

     "detailed"
    header format is detailled in Section 6 (Figure 2).

5.1
   -- The ETR receives a packet from where?  What is a "domain"?  (I  
think you mean EID-space)
	I had to read this entire section and start the next before I  
figured it out.

   -- what is a LEID?

   -- rather than "can" shouldn't this be MUST|SHOULD|MAY?  (or is  
this a decision to be made later?)

       packets coming from that ITR with smaller mapping version number
       can be silently dropped, since most likely there is a spoof or  
the

5.2
   -- likewise, starting this section with "when an ETR receives a  
packet", misled me into what you were
	trying to describe.

  -- sent
       been send and a Map-Reply has been received.  The latter sent by

-- s/anyhow/somehow
       corrupted anyhow, the mapping version in the EID-to-RLOC Cache is


6.0
-- FWIW, IMHO minutes should be used and therefore the number of bits  
allocated should be fewer so
	I'd rather see.  (or perhaps we could use 1/10 of a minute?  11 days  
to run through the version
	number circle seems awfully long, especially for something that  
shouldn't change that much.)

        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+- 
+-+
      / |Res|    Source Mapping V.N.      |  Destination Mapping V.  
N.  |
    LISP+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+- 
+-+

        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+- 
+-+
      / |Res|    Source Mapping V.N.    |res|  Destination Mapping V.  
N.|
    LISP+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+- 
+-+


9.3
   -- I cannot see how this would work.  If it were up to me at this  
early stage I'd just have everyone update
	on a flag day to a OS image that supports map-versioning.  Yes,  
there will be a lot of headaches making
	this happen, but far, far fewer than trying to debug why things  
aren't interoperating.  (2cents)

10.1
   -- Huh?  ;-)

10.2
   -- s/loses/looses

    DDoS attacks, where an xTR looses processing power doing version


10.4
   -- s/scenario/scenarii

    The scenarii presented in the previous sections are correct if ETR





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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; ">
<br><div><div>On Jul 7, 2009, at 4:28 AM, Luigi Iannone wrote:</div><br =
class=3D"Apple-interchange-newline"><blockquote type=3D"cite"><p =
style=3D"margin: 0.0px 0.0px 0.0px 0.0px"><font face=3D"Monaco" size=3D"2"=
 style=3D"font: 10.0px Monaco">After one week thinking... =
;-))</font></p> </blockquote><br></div><div>A few =
observations....</div><br><div><br></div><div>In para =
3:</div><div>&nbsp;&nbsp;-- &nbsp;if you are allocating only 15 bits for =
the map version why does your example use 24 =
bits?</div><div>&nbsp;&nbsp;-- There appears to be some formatting =
problems here, is it just that the brackets are facing the wrong =
way?</div><div>&nbsp;</div><div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: 13.0px =
Courier">&nbsp;&nbsp;&nbsp;As an example, using 24 bits, if the Mapping =
Version Number is 0,</font></div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: 13.0px Courier">&nbsp;&nbsp; =
versions in ]1; (2**14)-1[ are greater and versions in =
[2**14;</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp;&nbsp; (2**15)-1[ are =
smaller.</font></div><div><font class=3D"Apple-style-span" =
face=3D"Courier" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: 13px;"><br></span></font></div><div><font =
class=3D"Apple-style-span" color=3D"#000000" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: 12px;">&nbsp;&nbsp;-- =
FWIW: &nbsp;s/half the versions is/ half the versions =
are</span></font></div><div><br></div><div><br></div><div>5.0: =
"carrying"</div><div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp;&nbsp;&nbsp;The purpose of carring =
these version numbers is two-fold, allowing</font></div><div><font =
class=3D"Apple-style-span" face=3D"Courier" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div><div><font class=3D"Apple-style-span" =
size=3D"3"><span class=3D"Apple-style-span" style=3D"font-size: =
12px;">&nbsp;&nbsp; FWIW &nbsp;change "does not hold" to "is not true" =
and I get it. &nbsp;I first read</span></font></div><div>&nbsp;&nbsp; it =
to mean the first condition was 'holding' the =
Map-Update-Notification.</div><div><font class=3D"Apple-style-span" =
face=3D"Courier" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: 13px;"><br></span></font></div><div><font =
class=3D"Apple-style-span" face=3D"Courier" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: 13px;"><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp; &nbsp;If the first condition does not hold =
the</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp;&nbsp; Map-Update-Notification (see =
Section 8) is used to make the ITR aware</font></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp; that a newer mapping is available. =
&nbsp;</font></div></span></font></div></div><div><br></div></div><div><di=
v style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font style=3D"font: 13.0px Courier"><font =
class=3D"Apple-style-span" face=3D"Helvetica" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: 12px;">&nbsp;&nbsp; =
&nbsp;"detailed"</span></font></font></div><div style=3D"margin-top: =
0px; margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: 13.0px =
Courier">&nbsp;&nbsp;&nbsp;header format is detailled in Section 6 =
(Figure 2).</font></div><div><font class=3D"Apple-style-span" =
face=3D"Courier" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: 13px;"><br></span></font></div></div><div>5.1 =
&nbsp;</div><div>&nbsp;&nbsp;-- The ETR receives a packet from where? =
&nbsp;What is a "domain"? &nbsp;(I think you mean =
EID-space)&nbsp;</div><div><span class=3D"Apple-tab-span" =
style=3D"white-space:pre">	=
</span>I&nbsp;had&nbsp;to&nbsp;read&nbsp;this&nbsp;entire&nbsp;section&nbs=
p;and&nbsp;start&nbsp;the&nbsp;next&nbsp;before&nbsp;I&nbsp;figured&nbsp;i=
t&nbsp;out.</div><div><br></div><div>&nbsp;&nbsp;-- what is a =
LEID?</div><div><br></div><div>&nbsp;&nbsp;-- rather than "can" =
shouldn't this be MUST|SHOULD|MAY? &nbsp;(or is this a decision to be =
made later?)</div><div><br></div><div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: 13.0px Courier">&nbsp;&nbsp; =
&nbsp; &nbsp;packets coming from that ITR with smaller mapping version =
number</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp; &nbsp; &nbsp; can be silently =
dropped, since most likely there is a spoof or =
the</font></div><div><font class=3D"Apple-style-span" face=3D"Courier" =
size=3D"3"><span class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div></div><div>5.2</div><div>&nbsp;&nbsp;-- =
likewise, starting this section with "when an ETR receives a packet", =
misled me into what you were</div><div><span class=3D"Apple-tab-span" =
style=3D"white-space:pre">	</span>trying to describe. =
&nbsp;</div><div><br></div><div>&nbsp;-- sent</div><div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp; &nbsp; &nbsp;been send and a Map-Reply has =
been received.&nbsp; The latter sent by</font></div><div><font =
class=3D"Apple-style-span" face=3D"Courier" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div></div><div>-- =
s/anyhow/somehow</div><div><div style=3D"margin-top: 0px; margin-right: =
0px; margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" =
size=3D"4" style=3D"font: 13.0px Courier">&nbsp;&nbsp; &nbsp; =
&nbsp;corrupted anyhow, the mapping version in the EID-to-RLOC Cache =
is</font></div><div><font class=3D"Apple-style-span" face=3D"Courier" =
size=3D"3"><span class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div></div><div><br></div><div>6.0</div><div>-- =
FWIW, IMHO minutes should be used and therefore the number of bits =
allocated should be fewer so</div><div><span class=3D"Apple-tab-span" =
style=3D"white-space:pre">	</span>I'd rather see. &nbsp;(or perhaps =
we could use 1/10 of a minute? &nbsp;11 days to run through the =
version&nbsp;</div><div><span class=3D"Apple-tab-span" =
style=3D"white-space:pre">	</span>number circle seems =
awfully&nbsp;long,&nbsp;especially&nbsp;for&nbsp;something&nbsp;that&nbsp;=
shouldn't&nbsp;change&nbsp;that&nbsp;much.)</div><div><br></div><div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp; &nbsp; =
&nbsp;&nbsp;+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-=
+-+</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp;&nbsp; &nbsp; / |Res|&nbsp; &nbsp; =
Source Mapping V.N.&nbsp; &nbsp; &nbsp; |&nbsp; Destination Mapping V. =
N.&nbsp; |</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp;&nbsp; =
LISP+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+</fon=
t></div><div><font class=3D"Apple-style-span" face=3D"Courier" =
size=3D"3"><span class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div></div><div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: normal normal normal =
13px/normal Courier; ">&nbsp;&nbsp; &nbsp; &nbsp; =
+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+</font></=
div><div style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: =
0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
normal normal normal 13px/normal Courier; ">&nbsp;&nbsp; &nbsp;&nbsp;/ =
|Res|&nbsp; &nbsp;&nbsp;Source Mapping V.N. &nbsp; =
&nbsp;|res|&nbsp;&nbsp;Destination Mapping V. N.|</font></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
normal normal normal 13px/normal Courier; =
">&nbsp;&nbsp;&nbsp;LISP+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-=
+-+-+-+-+-+-+-+</font></div><div><font class=3D"Apple-style-span" =
face=3D"Courier" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: =
13px;"><br></span></font></div></div><div><br></div><div>9.3</div><div>&nb=
sp;&nbsp;-- I cannot see how this would work. &nbsp;If it were up to me =
at this early stage I'd just have everyone update</div><div><span =
class=3D"Apple-tab-span" style=3D"white-space:pre">	</span>on a flag =
day to a OS image that supports map-versioning. &nbsp;Yes, there will be =
a lot of headaches making</div><div><span class=3D"Apple-tab-span" =
style=3D"white-space:pre">	</span>this happen, but far, far fewer =
than trying to debug why things aren't interoperating. =
&nbsp;(2cents)</div><div><br></div><div>10.1</div><div>&nbsp;&nbsp;-- =
Huh? &nbsp;;-)</div><div><br></div><div>10.2</div><div>&nbsp;&nbsp;-- =
s/loses/looses</div><div><br></div><div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: 13.0px =
Courier">&nbsp;&nbsp;&nbsp;DDoS attacks, where an xTR looses processing =
power doing version</font></div><div><font class=3D"Apple-style-span" =
face=3D"Courier" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: =
13px;"><br></span></font></div></div><div><br></div><div>10.4</div><div>&n=
bsp;&nbsp;-- s/scenario/scenarii</div><div><br></div><div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp;&nbsp;The scenarii presented in the previous =
sections are correct if ETR</font></div><div><font =
class=3D"Apple-style-span" face=3D"Courier" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div></div><div><br></div><div><br></div><div><b=
r></div></body></html>=

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Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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On Jul 14, 2009, at 5:15 AM, Luigi Iannone wrote:

> At the bottom of this mail there is a copy of the one I sent the  
> 7th of July. What is missing or not clear?
>

AFAIK, I have all the emails you sent.  I don't have any with  
attachments.
There wasn't one on this email.

I've just made comments on your draft-iannone-lisp-mapping- 
versioning-00.txt


Could you re-send the diagram if it provides additional insight?

Thanks
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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; ">
<br><div><div>On Jul 14, 2009, at 5:15 AM, Luigi Iannone wrote:</div><br =
class=3D"Apple-interchange-newline"><blockquote type=3D"cite"><span =
class=3D"Apple-style-span" style=3D"border-collapse: separate; color: =
rgb(0, 0, 0); font-family: Helvetica; font-size: medium; font-style: =
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0px; -webkit-border-horizontal-spacing: 0px; =
-webkit-border-vertical-spacing: 0px; =
-webkit-text-decorations-in-effect: none; -webkit-text-size-adjust: =
auto; -webkit-text-stroke-width: 0px; "><div>At the bottom of this mail =
there is a copy of the one I sent the 7th of July. What is missing or =
not clear?</div></span><br =
class=3D"Apple-interchange-newline"></blockquote></div><br><div>AFAIK, I =
have all the emails you sent. &nbsp;I don't have any with =
attachments.</div><div>There wasn't one on this =
email.</div><div><br></div><div>I've just made comments on =
your&nbsp;draft-iannone-lisp-mapping-versioning-00.txt</div><div><br></div=
><div><br></div><div>Could you re-send the diagram if it provides =
additional insight?</div><div><br></div><div>Thanks</div></body></html>=

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From jmh@joelhalpern.com  Tue Jul 14 13:20:07 2009
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Cc: Noel Chiappa <jnc@mercury.lcs.mit.edu>, lisp@ietf.org
Subject: Re: [lisp] Mobile LISP
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It seems to me that the whole LISP mapping (and most mapping) approaches 
works better if we do not allow overlapping prefixes.   Since prefixes 
do not correspond to toplogy, this is not unreasoanble.
In that case, the mobile nodes should simp0ly come out of a block 
reserved for mobile nodes.  This can either be a sizeable portion of the 
site block (since the site block will need to be broken down to avoid 
overlap), or simply another suitably sized block.
If this is done, then one avoids any problem with misleading caches, or 
wtrying to determine who knows the status of what.  the price is that 
the mobile node behaves like a mobile node even if it is home.  This 
seems like a small price.

Yours,
Joel


Scott Brim wrote:
> Dino Farinacci allegedly wrote on 07/14/2009 11:59 AM:
>>> Dino Farinacci allegedly wrote on 07/03/2009 7:33 PM:
>>>> Also, the ETRs can't tell the difference between the MN roaming or it is
>>>> just down but stationary in the site. The MN, itself has to solve this
>>>> problem.
>>> How is this supposed to work?  I don't get it.  If the MN is responsible
>>> for solving its own problem ... The ETR answers a map-request with a
>>> full /16 including the possibly mobile node.  When a packet comes in,
>>> does the ETR assume the node is on-site and use internal forwarding?  If
>>> the MN is elsewhere, is there a home agent to tunnel packets to it?  If
>>> there is not, do packets get dropped?  If they do, the MN never sees
>>> them and never gets to send an SMR.
>> The LISP mobile-node knows who it is talking to. It SMR's those ETRs,
>> then then return Map-Requests to get the latest EID-to-RLOC binding. The
>> Map-Request goes on the ALT and the Map-Server can proxy-reply for the
>> LISP mobile-node.
>>
>>> I think there has to be mapping information for the MN in the system
>>> somewhere -- either injected as a /32 by some map-server (hm, security)
>>> or resident on the home network's ETRs so that they can respond with a
>>> /32 map-reply even if they only advertise a /16.
>> Please read the draft, it is all explained in there. WHen the LISP
>> mobile-node moves, it registers its new RLOC with the map-server that
>> has an EID-prefix that covers the LISP mobile-node's EID.
>>
>> Dino
> 
> Dino, the first half of your answer missed my point; the second
> disagrees with what you said previously and may agree with my conclusion
> -- the one where you said "please read the draft".  Consider that I
> might actually have read the draft, and there might be a problem with
> what you said in the mail I originally replied to.
> 
> To start with you said:
> 
>   ... the ETRs can't tell the difference between the MN roaming or it
>   is just down but stationary in the site. The MN, itself has to solve
>   this problem.
> 
> If that's true, that means the ETR, responsible for mapping info for the
> whole /16, does not have mapping info for the MN.  My question is: What
> happens in a situation where the MN is out of the home site before a
> correspondent node tries to talk to it?  How do initial packets from the
> CN get to the MN, if the ETR doesn't know where it is?  If it doesn't
> know the MN is roaming, what does put in the map-reply to the CN?  Does
> it give it the /16 mapping, i.e. route packets to the MN to the home
> site?  If so, what happens when a packet arrives at the ETR for the MN?
> 
> You say the MN can send an SMR because it "knows who it is talking to".
>  No it can't, because no packets have reached it so it doesn't actually
> know someone is trying to talk to it and thus doesn't know an SMR is
> necessary.
> 
> Obviously it has to register its RLOC(s) with a map-server, but since
> you said the ETR can't tell if it is roaming or down, the ETR isn't told
> the MN's mapping.  Who is told?  Some special map-server associated with
> the home site (since it is responsible for the EID prefix the MN is part
> of)?  If it's some special map-server and not the ETR -- responsible for
> the /16 -- then the ETR at least needs to know which EIDs it does _not_
> have valid information for.  That's the same level of scale as having
> the detailed information itself, and it hardly seems useful not to tell
> it in the first place.
> 
> Can you put these two statements together and explain what you had in
> mind?  Does an ETR responsible for the whole /16 find out mappings for
> mobile nodes or not?  Speculating ... do you want to sequester all
> mobile nodes into a particular EID sub-prefix and take that away from
> the ETRs?  And if you think there is something specific I have missed in
> the draft, please tell me.
> 
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp
> 

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Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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On Jul 14, 2009, at 10:11 AM, Luigi Iannone wrote:

> May be you refer to my use of the word "slides"?
>
> In that case the slides I am referring to are the presentation at  
> the last IETF and the ones I sent in an email to the list the 2nd  
> June.

OK, I don't seem to have them.  I would appreciate it.

thanks
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<html><body style="word-wrap: break-word; -webkit-nbsp-mode: space; -webkit-line-break: after-white-space; ">
<br><div><div>On Jul 14, 2009, at 10:11 AM, Luigi Iannone wrote:</div><br class="Apple-interchange-newline"><blockquote type="cite"><p style="margin: 0.0px 0.0px 0.0px 0.0px"><font face="Monaco" size="2" style="font: 10.0px Monaco">May be you refer to my use of the word "slides"?</font></p> <p style="margin: 0.0px 0.0px 0.0px 0.0px; font: 10.0px Monaco; min-height: 14.0px"><br></p> <p style="margin: 0.0px 0.0px 0.0px 0.0px"><font face="Monaco" size="2" style="font: 10.0px Monaco">In that case the slides I am referring to are the presentation at the last IETF and the ones I sent in an email to the list the 2nd June.</font></p> </blockquote></div><br><div>OK, I don't seem to have them. &nbsp;I would appreciate it.</div><div><br></div><div>thanks</div></body></html>
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From luigi@net.t-labs.tu-berlin.de  Tue Jul 14 14:05:30 2009
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From: Luigi Iannone <luigi@net.t-labs.tu-berlin.de>
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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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Attached to this mail.

Cheers

Luigi


On Jul 14, 2009, at 22:31 , John Zwiebel wrote:

>
> On Jul 14, 2009, at 10:11 AM, Luigi Iannone wrote:
>
>> May be you refer to my use of the word "slides"?
>>
>> In that case the slides I am referring to are the presentation at  
>> the last IETF and the ones I sent in an email to the list the 2nd  
>> June.
>
> OK, I don't seem to have them.  I would appreciate it.
>
> thanks

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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; ">Attached to this =
mail.<div><br></div><div>Cheers</div><div><br></div><div>Luigi</div><div><=
br></div><div><br><div><div>On Jul 14, 2009, at 22:31 , John Zwiebel =
wrote:</div><br class=3D"Apple-interchange-newline"><blockquote =
type=3D"cite"><div style=3D"word-wrap: break-word; -webkit-nbsp-mode: =
space; -webkit-line-break: after-white-space; "> <br><div><div>On Jul =
14, 2009, at 10:11 AM, Luigi Iannone wrote:</div><br =
class=3D"Apple-interchange-newline"><blockquote type=3D"cite"><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Monaco" size=3D"2" style=3D"font: =
10.0px Monaco">May be you refer to my use of the word =
"slides"?</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; font: normal normal normal =
10px/normal Monaco; min-height: 14px; "><br></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Monaco" size=3D"2" style=3D"font: =
10.0px Monaco">In that case the slides I am referring to are the =
presentation at the last IETF and the ones I sent in an email to the =
list the 2nd June.</font></div> </blockquote></div><br><div>OK, I don't =
seem to have them. &nbsp;I would appreciate =
it.</div><div><br></div><div>thanks</div></div></blockquote></div></div></=
body></html>=

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From: Luigi Iannone <luigi@net.t-labs.tu-berlin.de>
To: John Zwiebel <jzwiebel@cisco.com>
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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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Hi John,

There are no attachments to the email of 7th July, neither in the mail  
your are replying to.

May be you refer to my use of the word "slides"?

In that case the slides I am referring to are the presentation at the  
last IETF and the ones I sent in an email to the list the 2nd June.

I can send you both if you wish.

Cheers

Luigi

On Jul 14, 2009, at 21:41 , John Zwiebel wrote:

>
> On Jul 14, 2009, at 5:15 AM, Luigi Iannone wrote:
>
>> At the bottom of this mail there is a copy of the one I sent the  
>> 7th of July. What is missing or not clear?
>>
>
> AFAIK, I have all the emails you sent.  I don't have any with  
> attachments.
> There wasn't one on this email.
>
> I've just made comments on your draft-iannone-lisp-mapping- 
> versioning-00.txt
>
>
> Could you re-send the diagram if it provides additional insight?
>
> Thanks


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Subject: [lisp] Proposed changes for draft-ietf-lisp-03.txt
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Thanks to everyone for comments. I have received both public and  
private comments.

If I hear no objections within 24 hours, I will post -03.

Find attached the changes from draft -02 being proposed.

Thanks again,
Dino


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<title>wdiff draft-ietf-lisp-02.txt draft-ietf-lisp-03.txt</title></head><body>
<pre>
Network Working Group                                       D. Farinacci
Internet-Draft                                                 V. Fuller
Intended status: Experimental                                   D. Meyer
Expires: January <strike><font color="red">10,</font></strike> <strong><font color="green">15,</font></strong> 2010                                       D. Lewis
                                                           cisco Systems
                                                           July <strike><font color="red">9,</font></strike> <strong><font color="green">14,</font></strong> 2009

                 Locator/ID Separation Protocol (LISP)
                         <strike><font color="red">draft-ietf-lisp-02.txt</font></strike>
                         <strong><font color="green">draft-ietf-lisp-03.txt</font></strong>

Status of this Memo

   This Internet-Draft is submitted to IETF in full conformance with the
   provisions of BCP 78 and BCP 79.

   Internet-Drafts are working documents of the Internet Engineering
   Task Force (IETF), its areas, and its working groups.  Note that
   other groups may also distribute working documents as Internet-
   Drafts.

   Internet-Drafts are draft documents valid for a maximum of six months
   and may be updated, replaced, or obsoleted by other documents at any
   time.  It is inappropriate to use Internet-Drafts as reference
   material or to cite them other than as "work in progress."

   The list of current Internet-Drafts can be accessed at
   http://www.ietf.org/ietf/1id-abstracts.txt.

   The list of Internet-Draft Shadow Directories can be accessed at
   http://www.ietf.org/shadow.html.

   This Internet-Draft will expire on January <strike><font color="red">10,</font></strike> <strong><font color="green">15,</font></strong> 2010.

Copyright Notice

   Copyright (c) 2009 IETF Trust and the persons identified as the
   document authors.  All rights reserved.

   This document is subject to BCP 78 and the IETF Trust's Legal
   Provisions Relating to IETF Documents in effect on the date of
   publication of this document (http://trustee.ietf.org/license-info).
   Please review these documents carefully, as they describe your rights
   and restrictions with respect to this document.

Abstract

   This draft describes a simple, incremental, network-based protocol to
   implement separation of Internet addresses into Endpoint Identifiers
   (EIDs) and Routing Locators (RLOCs).  This mechanism requires no
   changes to host stacks and no major changes to existing database
   infrastructures.  The proposed protocol can be implemented in a
   relatively small number of routers.

   This proposal was stimulated by the problem statement effort at the
   Amsterdam IAB Routing and Addressing Workshop (RAWS), which took
   place in October 2006.

Table of Contents

   1.  Requirements Notation  . . . . . . . . . . . . . . . . . . . .  4
   2.  Introduction . . . . . . . . . . . . . . . . . . . . . . . . .  5
   3.  Definition of Terms  . . . . . . . . . . . . . . . . . . . . .  8
   4.  Basic Overview . . . . . . . . . . . . . . . . . . . . . . . . 12
     4.1.  Packet Flow Sequence . . . . . . . . . . . . . . . . . . . 14
   5.  Tunneling Details  . . . . . . . . . . . . . . . . . . . . . . 16
     5.1.  LISP IPv4-in-IPv4 Header Format  . . . . . . . . . . . . . 17
     5.2.  LISP IPv6-in-IPv6 Header Format  . . . . . . . . . . . . . 18
     5.3.  Tunnel Header Field Descriptions . . . . . . . . . . . . . 19
     5.4.  Dealing with Large Encapsulated Packets  . . . . . . . . . 21
       5.4.1.  A Stateless Solution to MTU Handling . . . . . . . . . 21
       5.4.2.  A Stateful Solution to MTU Handling  . . . . . . . . . 22
   6.  EID-to-RLOC Mapping  . . . . . . . . . . . . . . . . . . . . . 23
     6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats  . . . . . 23
       6.1.1.  LISP Packet Type Allocations . . . . . . . . . . . . . 25
       6.1.2.  Map-Request Message Format . . . . . . . . . . . . . . 25
       6.1.3.  EID-to-RLOC UDP Map-Request Message  . . . . . . . . . 27
       6.1.4.  Map-Reply Message Format . . . . . . . . . . . . . . . 28
       6.1.5.  EID-to-RLOC UDP Map-Reply Message  . . . . . . . . . . 31
       6.1.6.  Map-Register Message Format  . . . . . . . . . . . . . <strike><font color="red">32</font></strike> <strong><font color="green">31</font></strong>
     6.2.  Routing Locator Selection  . . . . . . . . . . . . . . . . <strike><font color="red">34</font></strike> <strong><font color="green">33</font></strong>
     6.3.  Routing Locator Reachability . . . . . . . . . . . . . . . 35
       6.3.1.  Echo Nonce Algorithm . . . . . . . . . . . . . . . . . 37
     6.4.  Routing Locator Hashing  . . . . . . . . . . . . . . . . . 38
     6.5.  Changing the Contents of EID-to-RLOC Mappings  . . . . . . 39
       6.5.1.  Clock Sweep  . . . . . . . . . . . . . . . . . . . . . 39
       6.5.2.  Solicit-Map-Request (SMR)  . . . . . . . . . . . . . . 40
   7.  Router Performance Considerations  . . . . . . . . . . . . . . 42
   8.  Deployment Scenarios . . . . . . . . . . . . . . . . . . . . . 43
     8.1.  First-hop/Last-hop Tunnel Routers  . . . . . . . . . . . . 44
     8.2.  Border/Edge Tunnel Routers . . . . . . . . . . . . . . . . 44
     8.3.  ISP Provider-Edge (PE) Tunnel Routers  . . . . . . . . . . 45
   9.  Traceroute Considerations  . . . . . . . . . . . . . . . . . . 46
     9.1.  IPv6 Traceroute  . . . . . . . . . . . . . . . . . . . . . 47
     9.2.  IPv4 Traceroute  . . . . . . . . . . . . . . . . . . . . . 47
     9.3.  Traceroute using Mixed Locators  . . . . . . . . . . . . . 47
   10. Mobility Considerations  . . . . . . . . . . . . . . . . . . . 49
     10.1. Site Mobility  . . . . . . . . . . . . . . . . . . . . . . 49
     10.2. Slow Endpoint Mobility . . . . . . . . . . . . . . . . . . 49
     10.3. Fast Endpoint Mobility . . . . . . . . . . . . . . . . . . 49
     10.4. Fast Network Mobility  . . . . . . . . . . . . . . . . . . 51
     10.5. LISP Mobile Node Mobility  . . . . . . . . . . . . . . . . 51
   11. Multicast Considerations . . . . . . . . . . . . . . . . . . . 53
   12. Security Considerations  . . . . . . . . . . . . . . . . . . . 54
   13. Prototype Plans and Status . . . . . . . . . . . . . . . . . . 55
   14. References . . . . . . . . . . . . . . . . . . . . . . . . . . 58
     14.1. Normative References . . . . . . . . . . . . . . . . . . . 58
     14.2. Informative References . . . . . . . . . . . . . . . . . . 59
   Appendix A.  Acknowledgments . . . . . . . . . . . . . . . . . . . 62
   Authors' Addresses . . . . . . . . . . . . . . . . . . . . . . . . 63

1.  Requirements Notation

   The key words "MUST", "MUST NOT", "REQUIRED", "SHALL", "SHALL NOT",
   "SHOULD", "SHOULD NOT", "RECOMMENDED", "MAY", and "OPTIONAL" in this
   document are to be interpreted as described in [RFC2119].

2.  Introduction

   Many years of discussion about the current IP routing and addressing
   architecture have noted that its use of a single numbering space (the
   "IP address") for both host transport session identification and
   network routing creates scaling issues (see [CHIAPPA] and [RFC1498]).
   A number of scaling benefits would be realized by separating the
   current IP address into separate spaces for Endpoint Identifiers
   (EIDs) and Routing Locators (RLOCs); among them are:

   1.  Reduction of routing table size in the "default-free zone" (DFZ).
       Use of a separate numbering space for RLOCs will allow them to be
       assigned topologically (in today's Internet, RLOCs would be
       assigned by providers at client network attachment points),
       greatly improving aggregation and reducing the number of
       globally-visible, routable prefixes.

   2.  More cost-effective multihoming for sites that connect to
       different service providers where they can control their own
       policies for packet flow into the site without using extra
       routing table resources of core routers.

   3.  Easing of renumbering burden when clients change providers.
       Because host EIDs are numbered from a separate, non-provider-
       assigned and non-topologically-bound space, they do not need to
       be renumbered when a client site changes its attachment points to
       the network.

   4.  Traffic engineering capabilities that can be performed by network
       elements and do not depend on injecting additional state into the
       routing system.  This will fall out of the mechanism that is used
       to implement the EID/RLOC split (see Section 4).

   5.  Mobility without address changing.  Existing mobility mechanisms
       will be able to work in a locator/ID separation scenario.  It
       will be possible for a host (or a collection of hosts) to move to
       a different point in the network topology either retaining its
       home-based address or acquiring a new address based on the new
       network location.  A new network location could be a physically
       different point in the network topology or the same physical
       point of the topology with a different provider.

   This draft describes protocol mechanisms to achieve the desired
   functional separation.  For flexibility, the mechanism used for
   forwarding packets is decoupled from that used to determine EID to
   RLOC mappings.  This document covers the former.  For the later, see
   [CONS], [ALT], [EMACS], [RPMD], and [NERD].  This work is in response
   to and intended to address the problem statement that came out of the
   RAWS effort [RFC4984].

   The Routing and Addressing problem statement can be found in [RADIR].

   This draft focuses on a router-based solution.  Building the solution
   into the network will facilitate incremental deployment of the
   technology on the Internet.  Note that while the detailed protocol
   specification and examples in this document assume IP version 4
   (IPv4), there is nothing in the design that precludes use of the same
   techniques and mechanisms for IPv6.  It should be possible for IPv4
   packets to use IPv6 RLOCs and for IPv6 EIDs to be mapped to IPv4
   RLOCs.

   Related work on host-based solutions is described in Shim6 [SHIM6]
   and HIP [RFC4423].  Related work on a router-based solution is
   described in [GSE].  This draft attempts to not compete or overlap
   with such solutions and the proposed protocol changes are expected to
   complement a host-based mechanism when Traffic Engineering
   functionality is desired.

   Some of the design goals of this proposal include:

   1.  Require no hardware or software changes to end-systems (hosts).

   2.  Minimize required changes to Internet infrastructure.

   3.  Be incrementally deployable.

   4.  Require no router hardware changes.

   5.  Minimize the number of routers which have to be modified.  In
       particular, most customer site routers and no core routers
       require changes.

   6.  Minimize router software changes in those routers which are
       affected.

   7.  Avoid or minimize packet loss when EID-to-RLOC mappings need to
       be performed.

   There are 4 variants of LISP, which differ along a spectrum of strong
   to weak dependence on the topological nature and possible need for
   routability of EIDs.  The variants are:

   LISP 1:  uses EIDs that are routable through the RLOC topology for
      bootstrapping EID-to-RLOC mappings.  [LISP1] This was intended as
      a prototyping mechanism for early protocol implementation.  It is
      now deprecated and should not be deployed.

   LISP 1.5:  uses EIDs that are routable for bootstrapping EID-to-RLOC
      mappings; such routing is via a separate topology.

   LISP 2:  uses EIDS that are not routable and EID-to-RLOC mappings are
      implemented within the DNS.  [LISP2]

   LISP 3:  uses non-routable EIDs that are used as lookup keys for a
      new EID-to-RLOC mapping database.  Use of Distributed Hash Tables
      [DHTs] [LISPDHT] to implement such a database would be an area to
      explore.  Other examples of new mapping database services are
      [CONS], [ALT], [RPMD], [NERD], and [APT].

   This document on LISP 1.5, and LISP 3 variants, both of which rely on
   a router-based distributed cache and database for EID-to-RLOC
   mappings.  The LISP 1.0 mechanism works but does not allow reduction
   of routing information in the default-free-zone of the Internet.  The
   LISP 2 mechanisms are put on hold and may never come to fruition
   since it is not architecturally pure to have routing depend on
   directory and directory depend on routing.  The LISP 3 mechanisms
   will be documented elsewhere but may use the control-plane options
   specified in this specification.

3.  Definition of Terms

   Provider Independent (PI) Addresses:   an address block assigned from
      a pool where blocks are not associated with any particular
      location in the network (e.g. from a particular service provider),
      and is therefore not topologically aggregatable in the routing
      system.

   Provider Assigned (PA) Addresses:   a block of IP addresses that are
      assigned to a site by each service provider to which a site
      connects.  Typically, each block is sub-block of a service
      provider CIDR block and is aggregated into the larger block before
      being advertised into the global Internet.  Traditionally, IP
      multihoming has been implemented by each multi-homed site
      acquiring its own, globally-visible prefix.  LISP uses only
      topologically-assigned and aggregatable address blocks for RLOCs,
      eliminating this demonstrably non-scalable practice.

   Routing Locator (RLOC):   the IPv4 or IPv6 address of an egress
      tunnel router (ETR).  It is the output of a EID-to-RLOC mapping
      lookup.  An EID maps to one or more RLOCs.  Typically, RLOCs are
      numbered from topologically-aggregatable blocks that are assigned
      to a site at each point to which it attaches to the global
      Internet; where the topology is defined by the connectivity of
      provider networks, RLOCs can be thought of as PA addresses.
      Multiple RLOCs can be assigned to the same ETR device or to
      multiple ETR devices at a site.

   Endpoint ID (EID):   a 32-bit (for IPv4) or 128-bit (for IPv6) value
      used in the source and destination address fields of the first
      (most inner) LISP header of a packet.  The host obtains a
      destination EID the same way it obtains an destination address
      today, for example through a DNS lookup or SIP exchange.  The
      source EID is obtained via existing mechanisms used to set a
      host's "local" IP address.  An EID is allocated to a host from an
      EID-prefix block associated with the site where the host is
      located.  An EID can be used by a host to refer to other hosts.
      EIDs MUST NOT be used as LISP RLOCs.  Note that EID blocks may be
      assigned in a hierarchical manner, independent of the network
      topology, to facilitate scaling of the mapping database.  In
      addition, an EID block assigned to a site may have site-local
      structure (subnetting) for routing within the site; this structure
      is not visible to the global routing system.  When used in
      discussions with other Locator/ID separation proposals, a LISP EID
      will be called a "LEID".  Throughout this document, any references
      to "EID" refers to an LEID.

   EID-prefix:   A power-of-2 block of EIDs which are allocated to a
      site by an address allocation authority.  EID-prefixes are
      associated with a set of RLOC addresses which make up a "database
      mapping".  EID-prefix allocations can be broken up into smaller
      blocks when an RLOC set is to be associated with the smaller EID-
      prefix.  A globally routed address block (whether PI or PA) is not
      an EID-prefix.  However, a globally routed address block may be
      removed from global routing and reused as an EID-prefix.  A site
      that receives an explicitly allocated EID-prefix may not use that
      EID-prefix as a globally routed prefix assigned to RLOCs.

   End-system:   is an IPv4 or IPv6 device that originates packets with
      a single IPv4 or IPv6 header.  The end-system supplies an EID
      value for the destination address field of the IP header when
      communicating globally (i.e. outside of its routing domain).  An
      end-system can be a host computer, a switch or router device, or
      any network appliance.

   Ingress Tunnel Router (ITR):   a router which accepts an IP packet
      with a single IP header (more precisely, an IP packet that does
      not contain a LISP header).  The router treats this "inner" IP
      destination address as an EID and performs an EID-to-RLOC mapping
      lookup.  The router then prepends an "outer" IP header with one of
      its globally-routable RLOCs in the source address field and the
      result of the mapping lookup in the destination address field.
      Note that this destination RLOC may be an intermediate, proxy
      device that has better knowledge of the EID-to-RLOC mapping closer
      to the destination EID.  In general, an ITR receives IP packets
      from site end-systems on one side and sends LISP-encapsulated IP
      packets toward the Internet on the other side.

      Specifically, when a service provider prepends a LISP header for
      Traffic Engineering purposes, the router that does this is also
      regarded as an ITR.  The outer RLOC the ISP ITR uses can be based
      on the outer destination address (the originating ITR's supplied
      RLOC) or the inner destination address (the originating hosts
      supplied EID).

   TE-ITR:   is an ITR that is deployed in a service provider network
      that prepends an additional LISP header for Traffic Engineering
      purposes.

   Egress Tunnel Router (ETR):   a router that accepts an IP packet
      where the destination address in the "outer" IP header is one of
      its own RLOCs.  The router strips the "outer" header and forwards
      the packet based on the next IP header found.  In general, an ETR
      receives LISP-encapsulated IP packets from the Internet on one
      side and sends decapsulated IP packets to site end-systems on the
      other side.  ETR functionality does not have to be limited to a
      router device.  A server host can be the endpoint of a LISP tunnel
      as well.

   TE-ETR:   is an ETR that is deployed in a service provider network
      that strips an outer LISP header for Traffic Engineering purposes.

   xTR:   is a reference to an ITR or ETR when direction of data flow is
      not part of the context description. xTR refers to the router that
      is the tunnel endpoint.  Used synonymously with the term "Tunnel
      Router".  For example, "An xTR can be located at the Customer Edge
      (CE) router", meaning both ITR and ETR functionality is at the CE
      router.

   EID-to-RLOC Cache:   a short-lived, on-demand table in an ITR that
      stores, tracks, and is responsible for timing-out and otherwise
      validating EID-to-RLOC mappings.  This cache is distinct from the
      full "database" of EID-to-RLOC mappings, it is dynamic, local to
      the ITR(s), and relatively small while the database is
      distributed, relatively static, and much more global in scope.

   EID-to-RLOC Database:   a global distributed database that contains
      all known EID-prefix to RLOC mappings.  Each potential ETR
      typically contains a small piece of the database: the EID-to-RLOC
      mappings for the EID prefixes "behind" the router.  These map to
      one of the router's own, globally-visible, IP addresses.

   Recursive Tunneling:   when a packet has more than one LISP IP
      header.  Additional layers of tunneling may be employed to
      implement traffic engineering or other re-routing as needed.  When
      this is done, an additional "outer" LISP header is added and the
      original RLOCs are preserved in the "inner" header.  Any
      references to tunnels in this specification refers to dynamic
      encapsulating tunnels and never are they staticly configured.

   Reencapsulating Tunnels:   when a packet has no more than one LISP IP
      header (two IP headers total) and when it needs to be diverted to
      new RLOC, an ETR can decapsulate the packet (remove the LISP
      header) and prepend a new tunnel header, with new RLOC, on to the
      packet.  Doing this allows a packet to be re-routed by the re-
      encapsulating router without adding the overhead of additional
      tunnel headers.  Any references to tunnels in this specification
      refers to dynamic encapsulating tunnels and never are they
      staticly configured.

   LISP Header:   a term used in this document to refer to the outer
      IPv4 or IPv6 header, a UDP header, and a LISP header, an ITR
      prepends or an ETR strips.

   Address Family Indicator (AFI):   a term used to describe an address
      encoding in a packet.  An address family currently pertains to an
      IPv4 or IPv6 address.  See [AFI] for details.

   Negative Mapping Entry:   also known as a negative cache entry, is an
      EID-to-RLOC entry where an EID-prefix is advertised or stored with
      no RLOCs.  That is, the locator-set for the EID-to-RLOC entry is
      empty or has an encoded locator count of 0.  This type of entry
      could be used to describe a prefix from a non-LISP site, which is
      explicitly not in the mapping database.  There are a set of well
      defined actions that are encoded in a Negative Map-Reply.

   Data Probe:   a LISP-encapsulated data packet where the inner header
      destination address equals the outer header destination address
      used to trigger a Map-Reply by a decapsulating ETR.  In addition,
      the original packet is decapsulated and delivered to the
      destination host.  A Data Probe is used in some of the mapping
      database designs to "probe" or request a Map-Reply from an ETR; in
      other cases, Map-Requests are used.  See each mapping database
      design for details.

4.  Basic Overview

   One key concept of LISP is that end-systems (hosts) operate the same
   way they do today.  The IP addresses that hosts use for tracking
   sockets, connections, and for sending and receiving packets do not
   change.  In LISP terminology, these IP addresses are called Endpoint
   Identifiers (EIDs).

   Routers continue to forward packets based on IP destination
   addresses.  When a packet is LISP encapsulated, these addresses are
   referred to as Routing Locators (RLOCs).  Most routers along a path
   between two hosts will not change; they continue to perform routing/
   forwarding lookups on the destination addresses.  For routers between
   the source host and the ITR as well as routers from the ETR to the
   destination host, the destination address is an EID.  For the routers
   between the ITR and the ETR, the destination address is an RLOC.

   This design introduces "Tunnel Routers", which prepend LISP headers
   on host-originated packets and strip them prior to final delivery to
   their destination.  The IP addresses in this "outer header" are
   RLOCs.  During end-to-end packet exchange between two Internet hosts,
   an ITR prepends a new LISP header to each packet and an egress tunnel
   router strips the new header.  The ITR performs EID-to-RLOC lookups
   to determine the routing path to the the ETR, which has the RLOC as
   one of its IP addresses.

   Some basic rules governing LISP are:

   o  End-systems (hosts) only send to addresses which are EIDs.  They
      don't know addresses are EIDs versus RLOCs but assume packets get
      to LISP routers, which in turn, deliver packets to the destination
      the end-system has specified.

   o  EIDs are always IP addresses assigned to hosts.

   o  LISP routers mostly deal with Routing Locator addresses.  See
      details later in Section 4.1 to clarify what is meant by "mostly".

   o  RLOCs are always IP addresses assigned to routers; preferably,
      topologically-oriented addresses from provider CIDR blocks.

   o  When a router originates packets it may use as a source address
      either an EID or RLOC.  When acting as a host (e.g. when
      terminating a transport session such as SSH, TELNET, or SNMP), it
      may use an EID that is explicitly assigned for that purpose.  An
      EID that identifies the router as a host MUST NOT be used as an
      RLOC; an EID is only routable within the scope of a site.  A
      typical BGP configuration might demonstrate this "hybrid" EID/RLOC
      usage where a router could use its "host-like" EID to terminate
      iBGP sessions to other routers in a site while at the same time
      using RLOCs to terminate eBGP sessions to routers outside the
      site.

   o  EIDs are not expected to be usable for global end-to-end
      communication in the absence of an EID-to-RLOC mapping operation.
      They are expected to be used locally for intra-site communication.

   o  EID prefixes are likely to be hierarchically assigned in a manner
      which is optimized for administrative convenience and to
      facilitate scaling of the EID-to-RLOC mapping database.  The
      hierarchy is based on a address allocation hierarchy which is not
      dependent on the network topology.

   o  EIDs may also be structured (subnetted) in a manner suitable for
      local routing within an autonomous system.

   An additional LISP header may be prepended to packets by a transit
   router (i.e.  TE-ITR) when re-routing of the path for a packet is
   desired.  An obvious instance of this would be an ISP router that
   needs to perform traffic engineering for packets in flow through its
   network.  In such a situation, termed Recursive Tunneling, an ISP
   transit acts as an additional ingress tunnel router and the RLOC it
   uses for the new prepended header would be either an TE-ETR within
   the ISP (along intra-ISP traffic engineered path) or in an TE-ETR
   within another ISP (an inter-ISP traffic engineered path, where an
   agreement to build such a path exists).

   This specification mandates that no more than two LISP headers get
   prepended to a packet.  This avoids excessive packet overhead as well
   as possible encapsulation loops.  It is believed two headers is
   sufficient, where the first prepended header is used at a site for
   Location/Identity separation and second prepended header is used
   inside a service provider for Traffic Engineering purposes.

   Tunnel Routers can be placed fairly flexibly in a multi-AS topology.
   For example, the ITR for a particular end-to-end packet exchange
   might be the first-hop or default router within a site for the source
   host.  Similarly, the egress tunnel router might be the last-hop
   router directly-connected to the destination host.  Another example,
   perhaps for a VPN service out-sourced to an ISP by a site, the ITR
   could be the site's border router at the service provider attachment
   point.  Mixing and matching of site-operated, ISP-operated, and other
   tunnel routers is allowed for maximum flexibility.  See Section 8 for
   more details.

4.1.  Packet Flow Sequence

   This section provides an example of the unicast packet flow with the
   following conditions:

   o  Source host "host1.abc.com" is sending a packet to
      "host2.xyz.com", exactly what host1 would do if the site was not
      using LISP.

   o  Each site is multi-homed, so each tunnel router has an address
      (RLOC) assigned from the service provider address block for each
      provider to which that particular tunnel router is attached.

   o  The ITR(s) and ETR(s) are directly connected to the source and
      destination, respectively.

   o  Data Probes are used to solicit Map-Replies versus using Map-
      Requests.  And the Data Probes are sent on the underlying topology
      (the LISP 1.0 variant) but could also be sent over an alternative
      topology (the LISP 1.5 variant) as it would in [ALT].

   Client host1.abc.com wants to communicate with server host2.xyz.com:

   1.  host1.abc.com wants to open a TCP connection to host2.xyz.com.
       It does a DNS lookup on host2.xyz.com.  An A/AAAA record is
       returned.  This address is used as the destination EID and the
       locally-assigned address of host1.abc.com is used as the source
       EID.  An IPv4 or IPv6 packet is built using the EIDs in the IPv4
       or IPv6 header and sent to the default router.

   2.  The default router is configured as an ITR.  The ITR must be able
       to map the EID destination to an RLOC of the ETR at the
       destination site.  The ITR prepends a LISP header to the packet,
       with one of its RLOCs as the source IPv4 or IPv6 address.  The
       destination EID from the original packet header is used as the
       destination IPv4 or IPv6 in the prepended LISP header.
       Subsequent packets, where the outer destination address is the
       destination EID will be sent until EID-to-RLOC mapping is
       learned.

   3.  In LISP 1, the packet is routed through the Internet as it is
       today.  In LISP 1.5, the packet is routed on a different topology
       which may have EID prefixes distributed and advertised in an
       aggregatable fashion.  In either case, the packet arrives at the
       ETR.  The router is configured to "punt" the packet to the
       router's processor.  See Section 7 for more details.  For LISP
       2.0 and 3.0, the behavior is not fully defined yet.

   4.  The LISP header is stripped so that the packet can be forwarded
       by the router control plane.  The router looks up the destination
       EID in the router's EID-to-RLOC database (not the cache, but the
       configured data structure of RLOCs).  An EID-to-RLOC Map-Reply
       message is originated by the ETR and is addressed to the source
       RLOC in the LISP header of the original packet (this is the ITR).
       The source RLOC of the Map-Reply is one of the ETR's RLOCs.

   5.  The ITR receives the Map-Reply message, parses the message (to
       check for format validity) and stores the mapping information
       from the packet.  This information is put in the ITR's EID-to-
       RLOC mapping cache (this is the on-demand cache, the cache where
       entries time out due to inactivity).

   6.  Subsequent packets from host1.abc.com to host2.xyz.com will have
       a LISP header prepended by the ITR using the appropriate RLOC as
       the LISP header destination address learned from the ETR.  Note,
       the packet may be sent to a different ETR than the one which
       returned the Map-Reply due to the source site's hashing policy or
       the destination site's locator-set policy.

   7.  The ETR receives these packets directly (since the destination
       address is one of its assigned IP addresses), strips the LISP
       header and forwards the packets to the attached destination host.

   In order to eliminate the need for a mapping lookup in the reverse
   direction, an ETR MAY create a cache entry that maps the source EID
   (inner header source IP address) to the source RLOC (outer header
   source IP address) in a received LISP packet.  Such a cache entry is
   termed a "gleaned" mapping and only contains a single RLOC for the
   EID in question.  More complete information about additional RLOCs
   SHOULD be verified by sending a LISP Map-Request for that EID.  Both
   ITR and the ETR may also influence the decision the other makes in
   selecting an RLOC.  See Section 6 for more details.

5.  Tunneling Details

   This section describes the LISP Data Message which defines the
   tunneling header used to encapsulate IPv4 and IPv6 packets which
   contain EID addresses.  Even though the following formats illustrate
   IPv4-in-IPv4 and IPv6-in-IPv6 encapsulations, the other 2
   combinations are supported as well.

   Since additional tunnel headers are prepended, the packet becomes
   larger and in theory can exceed the MTU of any link traversed from
   the ITR to the ETR.  It is recommended, in IPv4 that packets do not
   get fragmented as they are encapsulated by the ITR.  Instead, the
   packet is dropped and an ICMP Too Big message is returned to the
   source.

   Based on informal surveys of large ISP traffic patterns, it appears
   that most transit paths can accommodate a path MTU of at least 4470
   bytes.  The exceptions, in terms of data rate, number of hosts
   affected, or any other metric are expected to be vanishingly small.

   To address MTU concerns, mainly raised on the RRG mailing list, the
   LISP deployment process will include collecting data during its pilot
   phase to either verify or refute the assumption about minimum
   available MTU.  If the assumption proves true and transit networks
   with links limited to 1500 byte MTUs are corner cases, it would seem
   more cost-effective to either upgrade or modify the equipment in
   those transit networks to support larger MTUs or to use existing
   mechanisms for accommodating packets that are too large.

   For this reason, there is currently no plan for LISP to add any new
   additional, complex mechanism for implementing fragmentation and
   reassembly in the face of limited-MTU transit links.  If analysis
   during LISP pilot deployment reveals that the assumption of
   essentially ubiquitous, 4470+ byte transit path MTUs, is incorrect,
   then LISP can be modified prior to protocol standardization to add
   support for one of the proposed fragmentation and reassembly schemes.
   Note that two simple existing schemes are detailed in Section 5.4.

5.1.  LISP IPv4-in-IPv4 Header Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version|  IHL  |Type of Service|          Total Length         |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Identification        |Flags|      Fragment Offset    |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   OH  |  Time to Live | Protocol = 17 |         Header Checksum       |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                    Source Routing Locator                     |
    \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                 Destination Routing Locator                   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |       Source Port = xxxx      |       Dest Port = 4341        |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   L / |                       Locator Reach Bits                      |
   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   S \ |S|E| rsvd-flags|                  Nonce                        |
   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version|  IHL  |Type of Service|          Total Length         |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Identification        |Flags|      Fragment Offset    |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   IH  |  Time to Live |    Protocol   |         Header Checksum       |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                           Source EID                          |
    \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                         Destination EID                       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

5.2.  LISP IPv6-in-IPv6 Header Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version| Traffic Class |           Flow Label                  |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Payload Length        | Next Header=17|   Hop Limit   |
   v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
   O   +                                                               +
   u   |                                                               |
   t   +                     Source Routing Locator                    +
   e   |                                                               |
   r   +                                                               +
       |                                                               |
   H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   d   |                                                               |
   r   +                                                               +
       |                                                               |
   ^   +                  Destination Routing Locator                  +
   |   |                                                               |
    \  +                                                               +
     \ |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |       Source Port = xxxx      |       Dest Port = 4341        |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   L / |                       Locator Reach Bits                      |
   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   S \ |S|E| rsvd-flags|                  Nonce                        |
   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version| Traffic Class |           Flow Label                  |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   /   |         Payload Length        |  Next Header  |   Hop Limit   |
   v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
   I   +                                                               +
   n   |                                                               |
   n   +                          Source EID                           +
   e   |                                                               |
   r   +                                                               +
       |                                                               |
   H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   d   |                                                               |
   r   +                                                               +
       |                                                               |
   ^   +                        Destination EID                        +
   \   |                                                               |
    \  +                                                               +
     \ |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

5.3.  Tunnel Header Field Descriptions

   IH Header:  is the inner header, preserved from the datagram received
      from the originating host.  The source and destination IP
      addresses are EIDs.

   OH Header:  is the outer header prepended by an ITR.  The address
      fields contain RLOCs obtained from the ingress router's EID-to-
      RLOC cache.  The IP protocol number is "UDP (17)" from [RFC0768].
      The DF bit of the Flags field is set to 0.

   UDP Header:  contains a ITR selected source port when encapsulating a
      packet.  See Section 6.4 for details on the hash algorithm used
      select a source port based on the 5-tuple of the inner header.
      The destination port MUST be set to the well-known IANA assigned
      port value 4341.

   UDP Checksum:  this field <strike><font color="red">field</font></strike> MUST be transmitted as 0 and ignored on
      receipt by the ETR.  Note, even when the UDP checksum is
      transmitted as 0 an intervening NAT device can recalculate the
      checksum and rewrite the UDP checksum field to non-zero.  For
      performance reasons, the ETR MUST ignore the checksum and MUST not
      do a checksum computation.

   UDP Length:  for an IPv4 encapsulated packet, the inner header Total
      Length plus the UDP and LISP header lengths are used.  For an IPv6
      encapsulated packet, the inner header Payload Length plus the size
      of the IPv6 header (40 bytes) plus the size of the UDP and LISP
      headers are used.  The UDP header length is 8 bytes.  The LISP
      header length is 8 bytes when no loc-reach-bit header extensions
      are used.

   LISP Locator Reach Bits:  in the LISP header are set by an ITR to
      indicate to an ETR the reachability of the Locators in the source
      site.  Each RLOC in a Map-Reply is assigned an ordinal value from
      0 to n-1 (when there are n RLOCs in a mapping entry).  The Locator
      Reach Bits are numbered from 0 to n-1 from the right significant
      bit of the 32-bit field.  When a bit is set to 1, the ITR is
      indicating to the ETR the RLOC associated with the bit ordinal is
      reachable.  See Section 6.3 for details on how an ITR can
      determine other ITRs at the site are reachable.  When a site has
      multiple EID-prefixes which result in multiple mappings (where
      each could have a different locator-set), the Locator Reach Bits
      setting in an encapsulated packet MUST reflect the mapping for the
      EID-prefix that the inner-header source EID address matches.

   S: this is the Solicit-Map-Request (SMR) bit.  See section
      Section 6.5.2 for details.

   E: this is the echo-nonce-request bit.  See section Section 6.3.1 for
      details.

   rsvd-flags:  this 6-bit field is reserved for future flag use.  It is
      set to 0 on transmit and ignored on receipt.

   LISP Nonce:  is a 24-bit value that is randomly generated by an ITR.
      <strike><font color="red">It</font></strike>
      <strong><font color="green">The nonce</font></strong> is <strong><font color="green">also</font></strong> used <strong><font color="green">when the E-bit is set</font></strong> to <strike><font color="red">test route-returnability</font></strike> <strong><font color="green">request the nonce
      value to be echoed by the other side</font></strong> when <strike><font color="red">xTRs exchange
      encapsulated data</font></strike> packets <strike><font color="red">with</font></strike> <strong><font color="green">are returned.
      See section Section 6.3.1 for more details.  The nonce is also
      used when SMR-bit is set to solicit</font></strong> the <strike><font color="red">SMR bit set, Data-Probe,</font></strike> <strong><font color="green">other side to send a</font></strong> Map-
      <strike><font color="red">Request, or Map-Reply messages.</font></strike>
      <strong><font color="green">Request containing this nonce.  See section Section 6.5.2 for
      details.</font></strong>

   When doing Recursive Tunneling or ITR/PTR encapsulation:

   o  The OH header Time to Live field (or Hop Limit field, in case of
      IPv6) MUST be copied from the IH header Time to Live field.

   o  The OH header Type of Service field (or the Traffic Class field,
      in the case of IPv6) SHOULD be copied from the IH header Type of
      Service field (with one caveat, see below).

   When doing Re-encapsulated Tunneling:

   o  The new OH header Time to Live field SHOULD be copied from the
      stripped OH header Time to Live field.

   o  The new OH header Type of Service field SHOULD be copied from the
      stripped OH header Type of Service field (with one caveat, see
      below)..

   Copying the TTL serves two purposes: first, it preserves the distance
   the host intended the packet to travel; second, and more importantly,
   it provides for suppression of looping packets in the event there is
   a loop of concatenated tunnels due to misconfiguration.

   The ECN field occupies bits 6 and 7 of both the IPv4 Type of Service
   field and the IPv6 Traffic Class field [RFC3168].  The ECN field
   requires special treatment in order to avoid discarding indications
   of congestion [RFC3168].  ITR encapsulation MUST copy the 2-bit ECN
   field from the inner header to the outer header.  Re-encapsulation
   MUST copy the 2-bit ECN field from the stripped outer header to the
   new outer header.  If the ECN field contains a congestion indication
   codepoint (the value is '11', the Congestion Experienced (CE)
   codepoint), then ETR decapsulation MUST copy the 2-bit ECN field from
   the stripped outer header to the surviving inner header that is used
   to forward the packet beyond the ETR.  These requirements preserve
   Congestion Experienced (CE) indications when a packet that uses ECN
   traverses a LISP tunnel and becomes marked with a CE indication due
   to congestion between the tunnel endpoints.

5.4.  Dealing with Large Encapsulated Packets

   In the event that the MTU issues mentioned above prove to be more
   serious than expected, this section proposes 2 simple mechanisms to
   deal with large packets.  One is stateless using IP fragmentation and
   the other is stateful using Path MTU Discovery [RFC1191].

   It is left to the implementor to decide if the stateless or stateful
   mechanism should be implemented.  Both or neither can be decided as
   well since it is a local decision in the ITR regarding how to deal
   with MTU issues.  Sites can interoperate with differing mechanisms.

5.4.1.  A Stateless Solution to MTU Handling

   An ITR stateless solution to handle MTU issues is described as
   follows:

   1.  Define an architectural constant S for the maximum size of a
       packet, in bytes, an ITR would receive from a source inside of
       its site.

   2.  Define L to be the maximum size, in bytes, a packet of size S
       would be after the ITR prepends the LISP header, UDP header, and
       outer network layer header of size H.

   3.  Calculate: S + H = L.

   When an ITR receives a packet from a site-facing interface and adds H
   bytes worth of encapsulation to yield a packet size of L bytes, it
   resolves the MTU issue by first splitting the original packet into 2
   equal-sized fragments.  A LISP header is then prepended to each
   fragment.  This will ensure that the new, encapsulated packets are of
   size (S/2 + H), which is always below the effective tunnel MTU.

   When an ETR receives encapsulated fragments, it treats them as two
   individually encapsulated packets.  It strips the LISP headers then
   forwards each fragment to the destination host of the destination
   site.  The two fragments are reassembled at the destination host into
   the single IP datagram that was originated by the source host.

   This behavior is performed by the ITR when the source host originates
   a packet with the DF field of the IP header is set to 0.  When the DF
   field of the IP header is set to 1, or the packet is an IPv6 packet
   originated by the source host, the ITR will drop the packet when the
   size is greater than L, and sends an ICMP Too Big message to the
   source with a value of S, where S is (L - H).

   When the outer header encapsulation uses an IPv4 header the DF bit is
   always set to 0.

   This specification recommends that L be defined as 1500.

5.4.2.  A Stateful Solution to MTU Handling

   An ITR stateful solution to handle MTU issues is describe as follows
   and was first introduced in [OPENLISP]:

   1.  The ITR will keep state of the effective MTU for each locator per
       mapping cache entry.  The effective MTU is what the core network
       can deliver along the path between ITR and ETR.

   2.  When an encapsulated packet, with DF bit always set to 0, exceeds
       what the core network can deliver, one of the intermediate
       routers on the path will send an ICMP Too Big message to the ITR.
       The ITR will parse the ICMP message to determine which locator is
       affected by the effective MTU change and then record the new
       effective MTU value in the mapping cache entry.

   3.  When a packet is received by the ITR from a source inside of the
       site and the size of the packet is greater than the effective MTU
       stored with the mapping cache entry associated with the
       destination EID the packet is for, the ITR will send an ICMP Too
       Big message back to the source.  The packet size advertised by
       the ITR in the ICMP Too Big message is the effective MTU minus
       the LISP encapsulation length.

   Even though this mechanism is stateful, it has advantages over the
   stateless IP fragmentation mechanism, by not involving the
   destination host with reassembly of ITR fragmented packets.

6.  EID-to-RLOC Mapping

6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats

   The following new UDP packet types are used to retrieve EID-to-RLOC
   mappings:

       0                   1                   2                   3
       0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Version|  IHL  |Type of Service|          Total Length         |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Identification        |Flags|      Fragment Offset    |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |  Time to Live | Protocol = 17 |         Header Checksum       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                    Source Routing Locator                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                 Destination Routing Locator                   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |           Source Port         |         Dest Port             |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       |                         LISP Message                          |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Version| Traffic Class |           Flow Label                  |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Payload Length        | Next Header=17|   Hop Limit   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                                                               +
       |                                                               |
       +                     Source Routing Locator                    +
       |                                                               |
       +                                                               +
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                                                               +
       |                                                               |
       +                  Destination Routing Locator                  +
       |                                                               |
       +                                                               +
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |           Source Port         |         Dest Port             |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       |                         LISP Message                          |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   The LISP UDP-based messages are the Map-Request and Map-Reply
   messages.  When a UDP Map-Request is sent, the UDP source port is
   chosen by the sender and the destination UDP port number is set to
   4342.  When a UDP Map-Reply is sent, the source UDP port number is
   set to 4342 and the destination UDP port number is copied from the
   source port of either the Map-Request or the invoking data packet.

   The UDP Length field will reflect the length of the UDP header and
   the LISP Message payload.

   The UDP Checksum is computed and set to non-zero for Map-Request and
   Map-Reply messages.  It MUST be checked on receipt and if the
   checksum fails, the packet MUST be dropped.

   LISP-CONS [CONS] use TCP to send LISP control messages.  The format
   of control messages includes the UDP header so the checksum and
   length fields can be used to protect and delimit message boundaries.

   This main LISP specification is the authoritative source for message
   format definitions for the Map-Request and Map-Reply messages.

6.1.1.  LISP Packet Type Allocations

   This section will be the authoritative source for allocating LISP
   Type values.  Current allocations are:

       Reserved:                        0    b'0000'
       LISP Map-Request:                1    b'0001'
       LISP Map-Reply:                  2    b'0010'
       LISP Map-Register:               3    b'0011'
       LISP-CONS Open Message:          8    b'1000'
       LISP-CONS Push-Add Message:      9    b'1001'
       LISP-CONS Push-Delete Message:   10   b'1010'
       LISP-CONS Unreachable Message    11   b'1011'

6.1.2.  Map-Request Message Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       <strike><font color="red">|                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+</font></strike>
       |Type=1 <strike><font color="red">|A|R|P|S|</font></strike> <strong><font color="green">|A|M|P|S|</font></strong>           Reserved            | Record Count  |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             <strong><font color="green">Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |</font></strong>         Source-EID-AFI        |            ITR-AFI            |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                   Source EID Address  ...                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                Originating ITR RLOC Address ...               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |   Reserved    | EID mask-len  |        EID-prefix-AFI         |
   Rec +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                       EID-prefix  ...                         |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                   Map-Reply Record  ...                       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                     Mapping Protocol Data                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Packet field descriptions:

   <strike><font color="red">Locator Reach Bits:  These bits MUST be set to 0 on transmission and
      ignored on receipt.  They cannot be used for indicating
      reachability because the Map-Request does not have the EID-prefix
      for the sending site so the receiver of the Map-Request cannot
      know what mapping entry to associate the reachability with.
      However, when Mapping Data is provided in the Map-Reply Record
      field, and the receiver of the Map-Request is configured to accept
      the mapping data, the R-bit per locator entry in the EID-prefix
      record is used to denote reachability.

   Nonce:  A 4-byte random value created by the sender of the Map-
      Request.</font></strike>

   Type:   1 (Map-Request)

   A: This is an authoritative bit, which is set to 0 for UDP-based Map-
      Requests sent by an ITR.  <strike><font color="red">See other control-specific documents
      [CONS] for TCP-based Map-Requests.

   R:</font></strike>

   <strong><font color="green">M:</font></strong> When set, it indicates a Map-Reply Record segment is included in
      the Map-Request.

   P: Indicates that a Map-Request should be treated as a "piggyback"
      locator reachability probe.  The receiver should respond with a
      Map-Reply with the P bit set and the nonce copied from the Map-
      Request.  Details on this usage will be provided in a future
      version of this draft.

   S: This is the SMR bit.  See Section 6.5.2 for details.

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this request message.  A
      record is comprised of the portion of the packet is labeled 'Rec'
      above and occurs the number of times equal to Record count.

   <strong><font color="green">Nonce:  A 4-byte random value created by the sender of the Map-
      Request.  This nonce will be returned in the Map-Reply.</font></strong>

   Source-EID-AFI:  Address family of the "Source EID Address" field.

   ITR-AFI:  Address family of the "Originating ITR RLOC Address" field.

   Source EID Address:  This is the EID of the source host which
      originated the packet which is invoking this Map-Request.

   Originating ITR RLOC Address:  Used to give the ETR the option of
      returning a Map-Reply in the address-family of this locator.

   EID mask-len:  Mask length for EID prefix.

   EID-AFI:  Address family of EID-prefix according to [RFC2434]

   EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
      address-family.  When a Map-Request is sent by an ITR because a
      data packet is received for a destination where there is no
      mapping entry, the EID-prefix is set to the destination IP address
      of the data packet.  And the 'EID mask-len' is set to 32 or 128
      for IPv4 or IPv6, respectively.  When an xTR wants to query a site
      about the status of a mapping it already has cached, the EID-
      prefix used in the Map-Request has the same mask-length as the
      EID-prefix returned from the site when it sent a Map-Reply
      message.

   Map-Reply Record:  When the R bit is set, this field is the size of
      the "Record" field in the Map-Reply format.  This Map-Reply record
      contains the EID-to-RLOC mapping entry associated with the Source
      EID.  This allows the ETR which will receive this Map-Request to
      cache the data if it chooses to do so.

   Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
      is optional and present when the UDP length indicates there is
      enough space in the packet to include it.

6.1.3.  EID-to-RLOC UDP Map-Request Message

   A Map-Request is sent from an ITR when it needs a mapping for an EID,
   wants to test an RLOC for reachability, or wants to refresh a mapping
   before TTL expiration.  For the initial case, the destination IP
   address used for the Map-Request is the destination-EID from the
   packet which had a mapping cache lookup failure.  For the later 2
   cases, the destination IP address used for the Map-Request is one of
   the RLOC addresses from the locator-set of the map cache entry.  In
   all cases, the UDP source port number for the Map-Request message is
   a randomly allocated 16-bit value and the UDP destination port number
   is set to the well-known destination port number 4342.  A successful
   Map-Reply updates the cached set of RLOCs associated with the EID
   prefix range.

   Map-Requests can also be LISP encapsulated using UDP destination port
   4341 when sent from an ITR to a Map-Resolver.  Likewise, Map-Requests
   are LISP encapsulated the same way from a Map-Server to an ETR.
   Details on encapsulated Map-Requests and Map-Resolvers can be found
   in [LISP-MS].

   Map-Requests MUST be rate-limited.  It is recommended that a Map-
   Request for the same EID-prefix be sent no more than once per second.

6.1.4.  Map-Reply Message Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       <strike><font color="red">|                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+</font></strike>
       |Type=2 |P|            Reserved                 | Record Count  |
       <strong><font color="green">+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |</font></strong>
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                          Record  TTL                          |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
   e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   c   |           Reserved            |            EID-AFI            |
   o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   r   |                          EID-prefix                           |
   d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
   | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   | o |           Unused Flags      |R|           Loc-AFI             |
   | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  \|                             Locator                           |
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                     Mapping Protocol Data                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Packet field descriptions:

   <strike><font color="red">Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
      0 on transmission and ignored on receipt.  The locator
      reachability is encoded as the R-bit in each locator entry of each
      EID-prefix record.

   Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
      that is echoed here in the Map-Reply.</font></strike>

   Type:   2 (Map-Reply)

   P: Indicates that the Map-Reply is in response to a "piggyback"
      locator reachability Map-Request.  The nonce field should contain
      a copy of the nonce value from the original Map-Request.  Details
      on this usage will be provided in a future version of this draft.

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this reply message.  A record
      is comprised of that portion of the packet labeled 'Record' above
      and occurs the number of times equal to Record count.

   <strong><font color="green">Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
      that is echoed here in the Map-Reply.</font></strong>

   Record TTL:  The time in minutes the recipient of the Map-Reply will
      store the mapping.  If the TTL is 0, the entry should be removed
      from the cache immediately.  If the value is 0xffffffff, the
      recipient can decide locally how long to store the mapping.

   Locator Count:  The number of Locator entries.  A locator entry
      comprises what is labeled above as 'Loc'.  The locator count can
      be 0 indicating there are no locators for the EID-prefix.

   EID mask-len:  Mask length for EID prefix.

   A: The Authoritative bit, when sent by a UDP-based message is always
      set by the ETR.  See [CONS] for TCP-based Map-Replies.

   ACT:  This 3-bit field describes negative Map-Reply actions.  These
      bits are used only when the 'Locator Count' field is set to 0.
      The action bits are encoded only in Map-Reply messages.  The
      actions defined are used by an ITR or PTR when a destination EID
      matches a negative mapping cache entry.  The current assigned
      values are:

      (0) No action:  No action is being conveyed by the sender of the
         Map-Reply message.

      (1) Natively-Forward:  The packet is not encapsulated or dropped
         but natively forwarded.

      (2) Drop:  The packet is dropped silently.

      (3) Send-Map-Request:  The packet invokes sending a Map-Request.

   EID-AFI:  Address family of EID-prefix according to [RFC2434].

   EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
      address-family.

   Priority:  each RLOC is assigned a unicast priority.  Lower values
      are more preferable.  When multiple RLOCs have the same priority,
      they may be used in a load-split fashion.  A value of 255 means
      the RLOC MUST NOT be used for unicast forwarding.

   Weight:  when priorities are the same for multiple RLOCs, the weight
      indicates how to balance unicast traffic between them.  Weight is
      encoded as a percentage of total unicast packets that match the
      mapping entry.  If a non-zero weight value is used for any RLOC,
      then all RLOCs must use a non-zero weight value and then the sum
      of all weight values MUST equal 100.  If a zero value is used for
      any RLOC weight, then all weights MUST be zero and the receiver of
      the Map-Reply will decide how to load-split traffic.  See
      Section 6.4 for a suggested hash algorithm to distribute load
      across locators with same priority and equal weight values.  When
      a single RLOC exists in a mapping entry, the weight value MUST be
      set to 100 and ignored on receipt.

   M Priority:  each RLOC is assigned a multicast priority used by an
      ETR in a receiver multicast site to select an ITR in a source
      multicast site for building multicast distribution trees.  A value
      of 255 means the RLOC MUST NOT be used for joining a multicast
      distribution tree.

   M Weight:  when priorities are the same for multiple RLOCs, the
      weight indicates how to balance building multicast distribution
      trees across multiple ITRs.  The weight is encoded as a percentage
      of total number of trees build to the source site identified by
      the EID-prefix.  If a non-zero weight value is used for any RLOC,
      then all RLOCs must use a non-zero weight value and then the sum
      of all weight values MUST equal 100.  If a zero value is used for
      any RLOC weight, then all weights MUST be zero and the receiver of
      the Map-Reply will decide how to distribute multicast state across
      ITRs.

   Unused Flags:  set to 0 when sending and ignored on receipt.

   R: when this bit is set, the locator is known to be reachable from
      the Map-Reply sender's perspective.  <strike><font color="red">When there is a single
      mapping record in the message, the R-bit for each locator must
      have a consistent setting with the bitfield setting of the 'Loc
      Reach Bits' field in the early part of the header.  When there are
      multiple mapping records in the message, the 'Loc Reach Bits'
      field is set to 0.</font></strike>

   Locator:  an IPv4 or IPv6 address (as encoded by the 'Loc-AFI' field)
      assigned to an ETR or router acting as a proxy replier for the
      EID-prefix.  Note that the destination RLOC address MAY be an
      anycast address.  A source RLOC can be an anycast address as well.
      The source or destination RLOC MUST NOT be the broadcast address
      (255.255.255.255 or any subnet broadcast address known to the
      router), and MUST NOT be a link-local multicast address.  The
      source RLOC MUST NOT be a multicast address.  The destination RLOC
      SHOULD be a multicast address if it is being mapped from a
      multicast destination EID.

   Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
      is optional and present when the UDP length indicates there is
      enough space in the packet to include it.

6.1.5.  EID-to-RLOC UDP Map-Reply Message

   When a Data Probe packet or a Map-Request triggers a Map-Reply to be
   sent, the RLOCs associated with the EID-prefix matched by the EID in
   the original packet destination IP address field will be returned.
   The RLOCs in the Map-Reply are the globally-routable IP addresses of
   the ETR but are not necessarily reachable; separate testing of
   reachability is required.

   Note that a Map-Reply may contain different EID-prefix granularity
   (prefix + length) than the Map-Request which triggers it.  This might
   occur if a Map-Request were for a prefix that had been returned by an
   earlier Map-Reply.  In such a case, the requester updates its cache
   with the new prefix information and granularity.  For example, a
   requester with two cached EID-prefixes that are covered by a Map-
   Reply containing one, less-specific prefix, replaces the entry with
   the less-specific EID-prefix.  Note that the reverse, replacement of
   one less-specific prefix with multiple more-specific prefixes, can
   also occur but not by removing the less-specific prefix rather by
   adding the more-specific prefixes which during a lookup will override
   the less-specific prefix.

   Replies SHOULD be sent for an EID-prefix no more often than once per
   second to the same requesting router.  For scalability, it is
   expected that aggregation of EID addresses into EID-prefixes will
   allow one Map-Reply to satisfy a mapping for the EID addresses in the
   prefix range thereby reducing the number of Map-Request messages.

   The addresses for a encapsulated data packets or Map-Request message
   are swapped and used for sending the Map-Reply.  The UDP source and
   destination ports are swapped as well.  That is, the source port in
   the UDP header for the Map-Reply is set to the well-known UDP port
   number 4342.

   Map-Reply records can have an empty locator-set.  This type of a Map-
   Reply is called a Negative Map-Reply.  Negative Map-Replies convey
   special actions by the sender to the ITR or PTR which have solicited
   the Map-Reply.  There are two primary applications for Negative Map-
   Replies.  The first is for a Map-Resolver to instruct an ITR or PTR
   when a destination is for a LISP site versus a non-LISP site.  And
   the other is to source quench Map-Requests which are sent for non-
   allocated EIDs.

6.1.6.  Map-Register Message Format

   The usage details of the Map-Register message can be found in
   specification [LISP-MS].  This section solely defines the message
   format.

   The message is sent in a UDP with a destination UDP port 4342 and a
   randomly selected UDP port number.  Before an IPv4 or IPv6 network
   layer header is prepended, an AH header is prepended to carry
   authentication information.  The format conforms to the IPsec
   specification [RFC2402].  The Map-Register message will use transport
   mode by setting the IP protocol number field or the IPv6 next-header
   field to 51.

   The AH header from [RFC2402] is:

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       | Next Header   |  Payload Len  |          RESERVED             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                 Security Parameters Index (SPI)               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                    Sequence Number Field                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                Authentication Data (variable)                 |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   The Next Header field is set to UDP.  The SPI field is set to 0
   (since no Security Association or Key Exchange protocol is being
   used).  The Sequence Number is a randomly chosen value by the sender.
   The Authentication Data is 16 bytes and holds a MD5 HMAC.

   The Map-Register message format is:

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       <strike><font color="red">|                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+</font></strike>
       |Type=3 |P|            Reserved                 | Record Count  |
       <strong><font color="green">+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |</font></strong>
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                          Record  TTL                          |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
   e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   c   |           Reserved            |            EID-AFI            |
   o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   r   |                          EID-prefix                           |
   d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
   | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   | o |           Unused Flags      |R|           Loc-AFI             |
   | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  \|                             Locator                           |
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Packet field descriptions:

   <strike><font color="red">Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
      0 on transmission and ignored on receipt.  The locator
      reachability is encoded as the R-bit in each locator entry of each
      EID-prefix record.

   Nonce:  The Nonce field is set to 0 in Map-Register messages.</font></strike>

   Type:   3 (Map-Register)

   P: Set to 1 by an ETR which sends a Map-Register message requesting
      for the Map-Server to proxy Map-Reply.  The Map-Server will send
      non-authoritative Map-Replies on behalf of the ETR.  Details on
      this usage will be provided in a future version of this draft.

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this Map-Register message.  A
      record is comprised of that portion of the packet labeled 'Record'
      above and occurs the number of times equal to Record count.

   <strong><font color="green">Nonce:  The Nonce field is set to 0 in Map-Register messages.</font></strong>

   The definition of the rest of the Map-Register can be found in the
   Map-Reply section.

6.2.  Routing Locator Selection

   Both client-side and server-side may need control over the selection
   of RLOCs for conversations between them.  This control is achieved by
   manipulating the Priority and Weight fields in EID-to-RLOC Map-Reply
   messages.  Alternatively, RLOC information may be gleaned from
   received tunneled packets or EID-to-RLOC Map-Request messages.

   The following enumerates different scenarios for choosing RLOCs and
   the controls that are available:

   o  Server-side returns one RLOC.  Client-side can only use one RLOC.
      Server-side has complete control of the selection.

   o  Server-side returns a list of RLOC where a subset of the list has
      the same best priority.  Client can only use the subset list
      according to the weighting assigned by the server-side.  In this
      case, the server-side controls both the subset list and load-
      splitting across its members.  The client-side can use RLOCs
      outside of the subset list if it determines that the subset list
      is unreachable (unless RLOCs are set to a Priority of 255).  Some
      sharing of control exists: the server-side determines the
      destination RLOC list and load distribution while the client-side
      has the option of using alternatives to this list if RLOCs in the
      list are unreachable.

   o  Server-side sets weight of 0 for the RLOC subset list.  In this
      case, the client-side can choose how the traffic load is spread
      across the subset list.  Control is shared by the server-side
      determining the list and the client determining load distribution.
      Again, the client can use alternative RLOCs if the server-provided
      list of RLOCs are unreachable.

   o  Either side (more likely on the server-side ETR) decides not to
      send a Map-Request.  For example, if the server-side ETR does not
      send Map-Requests, it gleans RLOCs from the client-side ITR,
      giving the client-side ITR responsibility for bidirectional RLOC
      reachability and preferability.  Server-side ETR gleaning of the
      client-side ITR RLOC is done by caching the inner header source
      EID and the outer header source RLOC of received packets.  The
      client-side ITR controls how traffic is returned and can alternate
      using an outer header source RLOC, which then can be added to the
      list the server-side ETR uses to return traffic.  Since no
      Priority or Weights are provided using this method, the server-
      side ETR must assume each client-side ITR RLOC uses the same best
      Priority with a Weight of zero.  In addition, since EID-prefix
      encoding cannot be conveyed in data packets, the EID-to-RLOC cache
      on tunnel routers can grow to be very large.

   RLOCs that appear in EID-to-RLOC Map-Reply messages are considered
   reachable.  The Map-Reply and the database mapping service does not
   provide any reachability status for Locators.  This is done outside
   of the mapping service.  See next section for details.

6.3.  Routing Locator Reachability

   There are 4 methods for determining when a Locator is either
   reachable or has become unreachable:

   1.  Locator reachability is determined by an ETR by examining the
       Loc-Reach-Bits from a LISP header of a encapsulated data packet
       which is provided by an ITR when an ITR encapsulates data.

   2.  Locator unreachability is determined by an ITR by receiving ICMP
       Network or Host Unreachable messages.

   3.  Locator unreachability can also be determined by an BGP-enabled
       ITR when there is no prefix matching a Locator address from the
       BGP RIB.

   4.  Locator unreachability is determined when a host sends an ICMP
       Port Unreachable message.  This occurs when an ITR may not use
       any methods of interworking. one which is describe in [INTERWORK]
       and the encapsulated data packet is received by a host at the
       destination non-LISP site.

   5.  Locator reachability is determined by receiving a Map-Reply
       message from a ETR's Locator address in response to a previously
       sent Map-Request.

   6.  Locator reachability can also be determined by receiving packets
       encapsulated by the ITR assigned to the locator address.

   When determining Locator reachability by examining the Loc-Reach-Bits
   from the LISP encapsulate data packet, an ETR will receive up to date
   status from the ITR closest to the Locators at the source site.  The
   ITRs at the source site can determine reachability when running their
   IGP at the site.  When the ITRs are deployed on CE routers, typically
   a default route is injected into the site's IGP from each of the
   ITRs.  If an ITR goes down, the CE-PE link goes down, or the PE
   router goes down, the CE router withdraws the default route.  This
   allows the other ITRs at the site to determine one of the Locators
   has gone unreachable.

   The Locators listed in a Map-Reply are numbered with ordinals 0 to
   n-1.  The Loc-Reach-Bits in a LISP Data Message are numbered from 0
   to n-1 starting with the least significant bit numbered as 0.  So,
   for example, if the ITR with locator listed as the 3rd Locator
   position in the Map-Reply goes down, all other ITRs at the site will
   have the 3rd bit from the right cleared (the bit that corresponds to
   ordinal 2).

   When an ETR decapsulates a packet, it will look for a change in the
   Loc-Reach-Bits value.  When a bit goes from 1 to 0, the ETR will
   refrain from encapsulating packets to the Locator that has just gone
   unreachable.  It can start using the Locator again when the bit that
   corresponds to the Locator goes from 0 to 1.  Loc-Reach-Bits are
   associated with a locator-set per EID-prefix.  Therefore, when a
   locator becomes unreachable, the loc-reach-bit that corresponds to
   that locator's position in the list returned by the last Map-Reply
   will be set to zero for that particular EID-prefix.

   When ITRs at the site are not deployed in CE routers, the IGP can
   still be used to determine the reachability of Locators provided they
   are injected a stub links into the IGP.  This is typically done when
   a /32 address is configured on a loopback interface.

   When ITRs receive ICMP Network or Host Unreachable messages as a
   method to determine unreachability, they will refrain from using
   Locators which are described in Locator lists of Map-Replies.
   However, using this approach is unreliable because many network
   operators turn off generation of ICMP Unreachable messages.

   If an ITR does receive an ICMP Network or Host Unreachable message,
   it MAY originate its own ICMP Unreachable message destined for the
   host that originated the data packet the ITR encapsulated.

   Also, BGP-enabled ITRs can unilaterally examine the BGP RIB to see if
   a locator address from a locator-set in a mapping entry matches a
   prefix.  If it does not find one and BGP is running in the Default
   Free Zone (DFZ), it can decide to not use the locator even though the
   Loc-Reach-Bits indicate the locator is up.  In this case, the path
   from the ITR to the ETR that is assigned the locator is not
   available.  More details are in [LOC-ID-ARCH].

   Optionally, an ITR can send a Map-Request to a Locator and if a Map-
   Reply is returned, reachability of the Locator has been determined.
   Obviously, sending such probes increases the number of control
   messages originated by tunnel routers for active flows, so Locators
   are assumed to be reachable when they are advertised.

   This assumption does create a dependency: Locator unreachability is
   detected by the receipt of ICMP Host Unreachable messages.  When an
   Locator has been determined to be unreachable, it is not used for
   active traffic; this is the same as if it were listed in a Map-Reply
   with priority 255.

   The ITR can test the reachability of the unreachable Locator by
   sending periodic Requests.  Both Requests and Replies MUST be rate-
   limited.  Locator reachability testing is never done with data
   packets since that increases the risk of packet loss for end-to-end
   sessions.

   When an ETR decapsulates a packet, it knows that it is reachable from
   the encapsulating ITR because that is how the packet arrived.  In
   most cases, the ETR can also reach the ITR but cannot assume this to
   be true due to the possibility of path assymetry.  In the presence of
   unidirectional traffic flow from an ITR to an ETR, the ITR should not
   use the lack of return traffic as an indication that the ETR is
   unreachable.  Instead, it must use an alternate mechanisms to
   determine reachability.

6.3.1.  Echo Nonce Algorithm

   When there is bidirectional data flow between a pair of locators, a
   simple mechanism called "nonce echoing" can be used to determine
   reachability between an ITR and ETR.  When an ITR wants to solicit a
   nonce echo, it sets the E-bit and places a 24-bit nonce in the LISP
   header of the next encapsulated data packet.

   When this packet is received by the ETR, the encapsulated packet is
   forwarded as normal.  When the ETR next sends a data packet to the
   ITR, it includes the nonce received <strike><font color="red">earlier.</font></strike> <strong><font color="green">earlier with the E-bit cleared.</font></strong>
   The ITR sees this <strike><font color="red">"echo
   nonce reply"</font></strike> <strong><font color="green">"echoed nonce"</font></strong> and knows the path to and from the
   ETR is up.

   The <strong><font color="green">ITR will set the E-bit for every packet it sends while in echo-
   nonce-request state.  The</font></strong> time the ITR waits <strike><font color="red">for</font></strike> <strong><font color="green">to process</font></strong> the echoed
   nonce before it determines the path is <strike><font color="red">down</font></strike> <strong><font color="green">unreachable</font></strong> is variable and a
   choice left for the implementation.

   If the ITR is receiving packets from the ETR but does not see the
   nonce <strike><font color="red">echoed,</font></strike> <strong><font color="green">echoed while being in echo-nonce-request state,</font></strong> then the path
   to the ETR is <strike><font color="red">down.</font></strike> <strong><font color="green">unreachable.</font></strong>  This decision may be overridden by other
   locator reachability algorithms.  Once the ITR determines the path to
   the ETR is down it can switch to another locator for that EID-prefix.

   Note that "ITR" and "ETR" are relative terms here.  Both devices must
   be implementing both ITR and ETR functionality for the echo nonce
   mechanism to operate.

   The ITR and ETR may both go into echo-nonce-request state at the same
   time.  The number of packets sent or the time during which echo nonce
   requests are sent is an implementation specific setting.  However,
   when an ITR is in echo-nonce-request state, it can echo the ETR's
   nonce in the next <strike><font color="red">packet</font></strike> <strong><font color="green">set of packets</font></strong> that it encapsulates and then
   subsequently, continue sending echo-nonce-request packets.

   This mechanism does not completely solve the forward path
   reachability problem as traffic may be unidirectional.  That is, the
   ETR receiving traffic at a site may not may not be the same device as
   an ITR which transmits traffic from that site or the site to site
   traffic is unidirectional so there is no ITR returning traffic.

   Note that other locator reachability mechanisms are being <strike><font color="red">researched.</font></strike> <strong><font color="green">researched
   and can be used to compliment or even override the Echo Nonce
   Algorithm.</font></strong>

6.4.  Routing Locator Hashing

   When an ETR provides an EID-to-RLOC mapping in a Map-Reply message to
   a requesting ITR, the locator-set for the EID-prefix may contain
   different priority values for each locator address.  When more than
   one best priority locator exists, the ITR can decide how to load
   share traffic against the corresponding locators.

   The following hash algorithm may be used by an ITR to select a
   locator for a packet destined to an EID for the EID-to-RLOC mapping:

   1.  Either a source and destination address hash can be used or the
       traditional 5-tuple hash which includes the source and
       destination addresses, source and destination TCP, UDP, or SCTP
       port numbers and the IP protocol number field or IPv6 next-
       protocol fields of a packet a host originates from within a LISP
       site.  When a packet is not a TCP, UDP, or SCTP packet, the
       source and destination addresses only from the header are used to
       compute the hash.

   2.  Take the hash value and divide it by the number of locators
       stored in the locator-set for the EID-to-RLOC mapping.

   3.  The remainder will be yield a value of 0 to "number of locators
       minus 1".  Use the remainder to select the locator in the
       locator-set.

   Note that when a packet is LISP encapsulated, the source port number
   in the outer UDP header needs to be set.  Selecting a random value
   allows core routers which are attached to Link Aggregation Groups
   (LAGs) to load-split the encapsulated packets across member links of
   such LAGs.  Otherwise, core routers would see a single flow, since
   packets have a source address of the ITR, for packets which are
   originated by different EIDs at the source site.  A suggested setting
   for the source port number computed by an ITR is a 5-tuple hash
   function on the inner header, as described above.

6.5.  Changing the Contents of EID-to-RLOC Mappings

   Since the LISP architecture uses a caching scheme to retrieve and
   store EID-to-RLOC mappings, the only way an ITR can get a more up-to-
   date mapping is to re-request the mapping.  However, the ITRs do not
   know when the mappings change and the ETRs do not keep track of who
   requested its mappings.  For scalability reasons, we want to maintain
   this approach but need to provide a way for ETRs change their
   mappings and inform the sites that are currently communicating with
   the ETR site using such mappings.

   When a locator record is added to the end of a locator-set, it is
   easy to update mappings.  We assume new mappings will maintain the
   same locator ordering as the old mapping but just have new locators
   appended to the end of the list.  So some ITRs can have a new mapping
   while other ITRs have only an old mapping that is used until they
   time out.  When an ITR has only an old mapping but detects bits set
   in the loc-reach-bits that correspond to locators beyond the list it
   has cached, it simply ignores them.

   When a locator record is removed from a locator-set, ITRs that have
   the mapping cached will not use the removed locator because the xTRs
   will set the loc-reach-bit to 0.  So even if the locator is in the
   list, it will not be used.  For new mapping requests, the xTRs can
   set the locator address to 0 as well as setting the corresponding
   loc-reach-bit to 0.  This forces ITRs with old or new mappings to
   avoid using the removed locator.

   If many changes occur to a mapping over a long period of time, one
   will find empty record slots in the middle of the locator-set and new
   records appended to the locator-set.  At some point, it would be
   useful to compact the locator-set so the loc-reach-bit settings can
   be efficiently packed.

   We propose here two approaches for locator-set compaction, one
   operational and the other a protocol mechanism.  The operational
   approach uses a clock sweep method.  The protocol approach uses the
   concept of Solicit-Map-Requests.

6.5.1.  Clock Sweep

   The clock sweep approach uses planning in advance and the use of
   count-down TTLs to time out mappings that have already been cached.
   The default setting for an EID-to-RLOC mapping TTL is 24 hours.  So
   there is a 24 hour window to time out old mappings.  The following
   clock sweep procedure is used:

   1.  24 hours before a mapping change is to take effect, a network
       administrator configures the ETRs at a site to start the clock
       sweep window.

   2.  During the clock sweep window, ETRs continue to send Map-Reply
       messages with the current (unchanged) mapping records.  The TTL
       for these mappings is set to 1 hour.

   3.  24 hours later, all previous cache entries will have timed out,
       and any active cache entries will time out within 1 hour.  During
       this 1 hour window the ETRs continue to send Map-Reply messages
       with the current (unchanged) mapping records with the TTL set to
       1 minute.

   4.  At the end of the 1 hour window, the ETRs will send Map-Reply
       messages with the new (changed) mapping records.  So any active
       caches can get the new mapping contents right away if not cached,
       or in 1 minute if they had the mapping cached.

6.5.2.  Solicit-Map-Request (SMR)

   Soliciting a Map-Request is a selective way for xTRs, at the site
   where mappings change, to control the rate they receive requests for
   Map-Reply messages.  SMRs are also used to tell remote ITRs to update
   the mappings they have cached.

   Since the xTRs don't keep track of remote ITRs that have cached their
   mappings, they can not tell exactly who needs the new mapping
   entries.  So an xTR will solicit Map-Requests from sites it is
   currently sending encapsulated data to, and only from those sites.
   The xTRs can locally decide the algorithm for how often and to how
   many sites it sends SMR messages.

   An SMR message is simply a bit set in an encapsulated data packet
   (and a Map-Request message).  When an ETR at a remote site
   decapsulates a data packet that has the SMR bit set, it can tell that
   a new Map-Request message is being solicited.  Both the xTR that
   sends the SMR message and the site that acts on the SMR message MUST
   be rate-limited.

   The following procedure shows how a SMR exchange occurs when a site
   is doing locator-set compaction for an EID-to-RLOC mapping:

   1.  When the database mappings in an ETR change, the ITRs at the site
       begin to set the SMR bit in packets they encapsulate to the sites
       they communicate with.

   2.  A remote xTR which decapsulates a packet with the SMR bit set
       will schedule sending a Map-Request message to the source locator
       address of the encapsulated packet.  The nonce in the Map-Request
       is copied from the nonce in the encapsulated data packet that has
       the SMR bit set.

   3.  The remote xTR retransmits the Map-Request slowly until it gets a
       Map-Reply while continuing to use the cached mapping.

   4.  The ETRs at the site with the changed mapping will reply to the
       Map-Request with a Map-Reply message provided the Map-Request
       nonce matches the nonce from the SMR.  The Map-Reply messages
       SHOULD be rate limited.  This is important to avoid Map-Reply
       implosion.

   5.  The ETRs, at the site with the changed mapping, records the fact
       that the site that sent the Map-Request has received the new
       mapping data in the mapping cache entry for the remote site so
       the loc-reach-bits are reflective of the new mapping for packets
       going to the remote site.  The ETR then stops sending packets
       with the SMR-bit set.

   For security reasons an ITR MUST NOT process unsolicited Map-Replies.
   The nonce MUST be carried from SMR packet, into the resultant Map-
   Request, and then into Map-Reply to reduce spoofing attacks.

7.  Router Performance Considerations

   LISP is designed to be very hardware-based forwarding friendly.  By
   doing tunnel header prepending [RFC1955] and stripping instead of re-
   writing addresses, existing hardware can support the forwarding model
   with little or no modification.  Where modifications are required,
   they should be limited to re-programming existing hardware rather
   than requiring expensive design changes to hard-coded algorithms in
   silicon.

   A few implementation techniques can be used to incrementally
   implement LISP:

   o  When a tunnel encapsulated packet is received by an ETR, the outer
      destination address may not be the address of the router.  This
      makes it challenging for the control plane to get packets from the
      hardware.  This may be mitigated by creating special FIB entries
      for the EID-prefixes of EIDs served by the ETR (those for which
      the router provides an RLOC translation).  These FIB entries are
      marked with a flag indicating that control plane processing should
      be performed.  The forwarding logic of testing for particular IP
      protocol number value is not necessary.  No changes to existing,
      deployed hardware should be needed to support this.

   o  On an ITR, prepending a new IP header is as simple as adding more
      bytes to a MAC rewrite string and prepending the string as part of
      the outgoing encapsulation procedure.  Many routers that support
      GRE tunneling [RFC2784] or 6to4 tunneling [RFC3056] can already
      support this action.

   o  When a received packet's outer destination address contains an EID
      which is not intended to be forwarded on the routable topology
      (i.e.  LISP 1.5), the source address of a data packet or the
      router interface with which the source is associated (the
      interface from which it was received) can be associated with a VRF
      (Virtual Routing/Forwarding), in which a different (i.e. non-
      congruent) topology can be used to find EID-to-RLOC mappings.

8.  Deployment Scenarios

   This section will explore how and where ITRs and ETRs can be deployed
   and will discuss the pros and cons of each deployment scenario.
   There are two basic deployment trade-offs to consider: centralized
   versus distributed caches and flat, recursive, or re-encapsulating
   tunneling.

   When deciding on centralized versus distributed caching, the
   following issues should be considered:

   o  Are the tunnel routers spread out so that the caches are spread
      across all the memories of each router?

   o  Should management "touch points" be minimized by choosing few
      tunnel routers, just enough for redundancy?

   o  In general, using more ITRs doesn't increase management load,
      since caches are built and stored dynamically.  On the other hand,
      more ETRs does require more management since EID-prefix-to-RLOC
      mappings need to be explicitly configured.

   When deciding on flat, recursive, or re-encapsulation tunneling, the
   following issues should be considered:

   o  Flat tunneling implements a single tunnel between source site and
      destination site.  This generally offers better paths between
      sources and destinations with a single tunnel path.

   o  Recursive tunneling is when tunneled traffic is again further
      encapsulated in another tunnel, either to implement VPNs or to
      perform Traffic Engineering.  When doing VPN-based tunneling, the
      site has some control since the site is prepending a new tunnel
      header.  In the case of TE-based tunneling, the site may have
      control if it is prepending a new tunnel header, but if the site's
      ISP is doing the TE, then the site has no control.  Recursive
      tunneling generally will result in suboptimal paths but at the
      benefit of steering traffic to resource available parts of the
      network.

   o  The technique of re-encapsulation ensures that packets only
      require one tunnel header.  So if a packet needs to be rerouted,
      it is first decapsulated by the ETR and then re-encapsulated with
      a new tunnel header using a new RLOC.

   The next sub-sections will describe where tunnel routers can reside
   in the network.

8.1.  First-hop/Last-hop Tunnel Routers

   By locating tunnel routers close to hosts, the EID-prefix set is at
   the granularity of an IP subnet.  So at the expense of more EID-
   prefix-to-RLOC sets for the site, the caches in each tunnel router
   can remain relatively small.  But caches always depend on the number
   of non-aggregated EID destination flows active through these tunnel
   routers.

   With more tunnel routers doing encapsulation, the increase in control
   traffic grows as well: since the EID-granularity is greater, more
   Map-Requests and Map-Replies are traveling between more routers.

   The advantage of placing the caches and databases at these stub
   routers is that the products deployed in this part of the network
   have better price-memory ratios then their core router counterparts.
   Memory is typically less expensive in these devices and fewer routes
   are stored (only IGP routes).  These devices tend to have excess
   capacity, both for forwarding and routing state.

   LISP functionality can also be deployed in edge switches.  These
   devices generally have layer-2 ports facing hosts and layer-3 ports
   facing the Internet.  Spare capacity is also often available in these
   devices as well.

8.2.  Border/Edge Tunnel Routers

   Using customer-edge (CE) routers for tunnel endpoints allows the EID
   space associated with a site to be reachable via a small set of RLOCs
   assigned to the CE routers for that site.

   This offers the opposite benefit of the first-hop/last-hop tunnel
   router scenario: the number of mapping entries and network management
   touch points are reduced, allowing better scaling.

   One disadvantage is that less of the network's resources are used to
   reach host endpoints thereby centralizing the point-of-failure domain
   and creating network choke points at the CE router.

   Note that more than one CE router at a site can be configured with
   the same IP address.  In this case an RLOC is an anycast address.
   This allows resilience between the CE routers.  That is, if a CE
   router fails, traffic is automatically routed to the other routers
   using the same anycast address.  However, this comes with the
   disadvantage where the site cannot control the entrance point when
   the anycast route is advertised out from all border routers.

8.3.  ISP Provider-Edge (PE) Tunnel Routers

   Use of ISP PE routers as tunnel endpoint routers gives an ISP control
   over the location of the egress tunnel endpoints.  That is, the ISP
   can decide if the tunnel endpoints are in the destination site (in
   either CE routers or last-hop routers within a site) or at other PE
   edges.  The advantage of this case is that two or more tunnel headers
   can be avoided.  By having the PE be the first router on the path to
   encapsulate, it can choose a TE path first, and the ETR can
   decapsulate and re-encapsulate for a tunnel to the destination end
   site.

   An obvious disadvantage is that the end site has no control over
   where its packets flow or the RLOCs used.

   As mentioned in earlier sections a combination of these scenarios is
   possible at the expense of extra packet header overhead, if both site
   and provider want control, then recursive or re-encapsulating tunnels
   are used.

9.  Traceroute Considerations

   When a source host in a LISP site initiates a traceroute to a
   destination host in another LISP site, it is highly desirable for it
   to see the entire path.  Since packets are encapsulated from ITR to
   ETR, the hop across the tunnel could be viewed as a single hop.
   However, LISP traceroute will provide the entire path so the user can
   see 3 distinct segments of the path from a source LISP host to a
   destination LISP host:

      Segment 1 (in source LISP site based on EIDs):

          source-host ---&gt; first-hop ... next-hop ---&gt; ITR

      Segment 2 (in the core network based on RLOCs):

          ITR ---&gt; next-hop ... next-hop ---&gt; ETR

      Segment 3 (in the destination LISP site based on EIDs):

          ETR ---&gt; next-hop ... last-hop ---&gt; destination-host

   For segment 1 of the path, ICMP Time Exceeded messages are returned
   in the normal matter as they are today.  The ITR performs a TTL
   decrement and test for 0 before encapsulating.  So the ITR hop is
   seen by the traceroute source has an EID address (the address of
   site-facing interface).

   For segment 2 of the path, ICMP Time Exceeded messages are returned
   to the ITR because the TTL decrement to 0 is done on the outer
   header, so the destination of the ICMP messages are to the ITR RLOC
   address, the source source RLOC address of the encapsulated
   traceroute packet.  The ITR looks inside of the ICMP payload to
   inspect the traceroute source so it can return the ICMP message to
   the address of the traceroute client as well as retaining the core
   router IP address in the ICMP message.  This is so the traceroute
   client can display the core router address (the RLOC address) in the
   traceroute output.  The ETR returns its RLOC address and responds to
   the TTL decrement to 0 like the previous core routers did.

   For segment 3, the next-hop router downstream from the ETR will be
   decrementing the TTL for the packet that was encapsulated, sent into
   the core, decapsulated by the ETR, and forwarded because it isn't the
   final destination.  If the TTL is decremented to 0, any router on the
   path to the destination of the traceroute, including the next-hop
   router or destination, will send an ICMP Time Exceeded message to the
   source EID of the traceroute client.  The ICMP message will be
   encapsulated by the local ITR and sent back to the ETR in the
   originated traceroute source site, where the packet will be delivered
   to the host.

9.1.  IPv6 Traceroute

   IPv6 traceroute follows the procedure described above since the
   entire traceroute data packet is included in ICMP Time Exceeded
   message payload.  Therefore, only the ITR needs to pay special
   attention for forwarding ICMP messages back to the traceroute source.

9.2.  IPv4 Traceroute

   For IPv4 traceroute, we cannot follow the above procedure since IPv4
   ICMP Time Exceeded messages only include the invoking IP header and 8
   bytes that follow the IP header.  Therefore, when a core router sends
   an IPv4 Time Exceeded message to an ITR, all the ITR has in the ICMP
   payload is the encapsulated header it prepended followed by a UDP
   header.  The original invoking IP header, and therefore the identity
   of the traceroute source is lost.

   The solution we propose to solve this problem is to cache traceroute
   IPv4 headers in the ITR and to match them up with corresponding IPv4
   Time Exceeded messages received from core routers and the ETR.  The
   ITR will use a circular buffer for caching the IPv4 and UDP headers
   of traceroute packets.  It will select a 16-bit number as a key to
   find them later when the IPv4 Time Exceeded messages are received.
   When an ITR encapsulates an IPv4 traceroute packet, it will use the
   16-bit number as the UDP source port in the encapsulating header.
   When the ICMP Time Exceeded message is returned to the ITR, the UDP
   header of the encapsulating header is present in the ICMP payload
   thereby allowing the ITR to find the cached headers for the
   traceroute source.  The ITR puts the cached headers in the payload
   and sends the ICMP Time Exceeded message to the traceroute source
   retaining the source address of the original ICMP Time Exceeded
   message (a core router or the ETR of the site of the traceroute
   destination).

9.3.  Traceroute using Mixed Locators

   When either an IPv4 traceroute or IPv6 traceroute is originated and
   the ITR encapsulates it in the other address family header, you
   cannot get all 3 segments of the traceroute.  Segment 2 of the
   traceroute can not be conveyed to the traceroute source since it is
   expecting addresses from intermediate hops in the same address format
   for the type of traceroute it originated.  Therefore, in this case,
   segment 2 will make the tunnel look like one hop.  All the ITR has to
   do to make this work is to not copy the inner TTL to the outer,
   encapsulating header's TTL when a traceroute packet is encapsulated
   using an RLOC from a different address family.  This will cause no
   TTL decrement to 0 to occur in core routers between the ITR and ETR.

10.  Mobility Considerations

   There are several kinds of mobility of which only some might be of
   concern to LISP.  Essentially they are as follows.

10.1.  Site Mobility

   A site wishes to change its attachment points to the Internet, and
   its LISP Tunnel Routers will have new RLOCs when it changes upstream
   providers.  Changes in EID-RLOC mappings for sites are expected to be
   handled by configuration, outside of the LISP protocol.

10.2.  Slow Endpoint Mobility

   An individual endpoint wishes to move, but is not concerned about
   maintaining session continuity.  Renumbering is involved.  LISP can
   help with the issues surrounding renumbering [RFC4192] [LISA96] by
   decoupling the address space used by a site from the address spaces
   used by its ISPs.  [RFC4984]

10.3.  Fast Endpoint Mobility

   Fast endpoint mobility occurs when an endpoint moves relatively
   rapidly, changing its IP layer network attachment point.  Maintenance
   of session continuity is a goal.  This is where the Mobile IPv4
   [RFC3344bis] and Mobile IPv6 [RFC3775] [RFC4866] mechanisms are used,
   and primarily where interactions with LISP need to be explored.

   The problem is that as an endpoint moves, it may require changes to
   the mapping between its EID and a set of RLOCs for its new network
   location.  When this is added to the overhead of mobile IP binding
   updates, some packets might be delayed or dropped.

   In IPv4 mobility, when an endpoint is away from home, packets to it
   are encapsulated and forwarded via a home agent which resides in the
   home area the endpoint's address belongs to.  The home agent will
   encapsulate and forward packets either directly to the endpoint or to
   a foreign agent which resides where the endpoint has moved to.
   Packets from the endpoint may be sent directly to the correspondent
   node, may be sent via the foreign agent, or may be reverse-tunneled
   back to the home agent for delivery to the mobile node.  As the
   mobile node's EID or available RLOC changes, LISP EID-to-RLOC
   mappings are required for communication between the mobile node and
   the home agent, whether via foreign agent or not.  As a mobile
   endpoint changes networks, up to three LISP mapping changes may be
   required:

   o  The mobile node moves from an old location to a new visited
      network location and notifies its home agent that it has done so.
      The Mobile IPv4 control packets the mobile node sends pass through
      one of the new visited network's ITRs, which needs a EID-RLOC
      mapping for the home agent.

   o  The home agent might not have the EID-RLOC mappings for the mobile
      node's "care-of" address or its foreign agent in the new visited
      network, in which case it will need to acquire them.

   o  When packets are sent directly to the correspondent node, it may
      be that no traffic has been sent from the new visited network to
      the correspondent node's network, and the new visited network's
      ITR will need to obtain an EID-RLOC mapping for the correspondent
      node's site.

   In addition, if the IPv4 endpoint is sending packets from the new
   visited network using its original EID, then LISP will need to
   perform a route-returnability check on the new EID-RLOC mapping for
   that EID.

   In IPv6 mobility, packets can flow directly between the mobile node
   and the correspondent node in either direction.  The mobile node uses
   its "care-of" address (EID).  In this case, the route-returnability
   check would not be needed but one more LISP mapping lookup may be
   required instead:

   o  As above, three mapping changes may be needed for the mobile node
      to communicate with its home agent and to send packets to the
      correspondent node.

   o  In addition, another mapping will be needed in the correspondent
      node's ITR, in order for the correspondent node to send packets to
      the mobile node's "care-of" address (EID) at the new network
      location.

   When both endpoints are mobile the number of potential mapping
   lookups increases accordingly.

   As a mobile node moves there are not only mobility state changes in
   the mobile node, correspondent node, and home agent, but also state
   changes in the ITRs and ETRs for at least some EID-prefixes.

   The goal is to support rapid adaptation, with little delay or packet
   loss for the entire system.  Heuristics can be added to LISP to
   reduce the number of mapping changes required and to reduce the delay
   per mapping change.  Also IP mobility can be modified to require
   fewer mapping changes.  In order to increase overall system
   performance, there may be a need to reduce the optimization of one
   area in order to place fewer demands on another.

   In LISP, one possibility is to "glean" information.  When a packet
   arrives, the ETR could examine the EID-RLOC mapping and use that
   mapping for all outgoing traffic to that EID.  It can do this after
   performing a route-returnability check, to ensure that the new
   network location does have a internal route to that endpoint.
   However, this does not cover the case where an ITR (the node assigned
   the RLOC) at the mobile-node location has been compromised.

   Mobile IP packet exchange is designed for an environment in which all
   routing information is disseminated before packets can be forwarded.
   In order to allow the Internet to grow to support expected future
   use, we are moving to an environment where some information may have
   to be obtained after packets are in flight.  Modifications to IP
   mobility should be considered in order to optimize the behavior of
   the overall system.  Anything which decreases the number of new EID-
   RLOC mappings needed when a node moves, or maintains the validity of
   an EID-RLOC mapping for a longer time, is useful.

10.4.  Fast Network Mobility

   In addition to endpoints, a network can be mobile, possibly changing
   xTRs.  A "network" can be as small as a single router and as large as
   a whole site.  This is different from site mobility in that it is
   fast and possibly short-lived, but different from endpoint mobility
   in that a whole prefix is changing RLOCs.  However, the mechanisms
   are the same and there is no new overhead in LISP.  A map request for
   any endpoint will return a binding for the entire mobile prefix.

   If mobile networks become a more common occurrence, it may be useful
   to revisit the design of the mapping service and allow for dynamic
   updates of the database.

   The issue of interactions between mobility and LISP needs to be
   explored further.  Specific improvements to the entire system will
   depend on the details of mapping mechanisms.  Mapping mechanisms
   should be evaluated on how well they support session continuity for
   mobile nodes.

10.5.  LISP Mobile Node Mobility

   An mobile device can use the LISP infrastructure to achieve mobility
   by implementing the LISP encapsulation and decapsulation functions
   and acting as a simple ITR/ETR.  By doing this, such a "LISP mobile
   node" can use topologically-independent EID IP addresses that are not
   advertised into and do not impose a cost on the global routing
   system.  These EIDs are maintained at the edges of the mapping system
   (in LISP Map-Servers and Map-Resolvers) and are provided on demand to
   only the correspondents of the LISP mobile node.

   Refer to the LISP Mobility Architecture specification [LISP-MN] for
   more details.

11.  Multicast Considerations

   A multicast group address, as defined in the original Internet
   architecture is an identifier of a grouping of topologically
   independent receiver host locations.  The address encoding itself
   does not determine the location of the receiver(s).  The multicast
   routing protocol, and the network-based state the protocol creates,
   determines where the receivers are located.

   In the context of LISP, a multicast group address is both an EID and
   a Routing Locator.  Therefore, no specific semantic or action needs
   to be taken for a destination address, as it would appear in an IP
   header.  Therefore, a group address that appears in an inner IP
   header built by a source host will be used as the destination EID.
   The outer IP header (the destination Routing Locator address),
   prepended by a LISP router, will use the same group address as the
   destination Routing Locator.

   Having said that, only the source EID and source Routing Locator
   needs to be dealt with.  Therefore, an ITR merely needs to put its
   own IP address in the source Routing Locator field when prepending
   the outer IP header.  This source Routing Locator address, like any
   other Routing Locator address MUST be globally routable.

   Therefore, an EID-to-RLOC mapping does not need to be performed by an
   ITR when a received data packet is a multicast data packet or when
   processing a source-specific Join (either by IGMPv3 or PIM).  But the
   source Routing Locator is decided by the multicast routing protocol
   in a receiver site.  That is, an EID to Routing Locator translation
   is done at control-time.

   Another approach is to have the ITR not encapsulate a multicast
   packet and allow the the host built packet to flow into the core even
   if the source address is allocated out of the EID namespace.  If the
   RPF-Vector TLV [RPFV] is used by PIM in the core, then core routers
   can RPF to the ITR (the Locator address which is injected into core
   routing) rather than the host source address (the EID address which
   is not injected into core routing).

   To avoid any EID-based multicast state in the network core, the first
   approach is chosen for LISP-Multicast.  Details for LISP-Multicast
   and Interworking with non-LISP sites is described in specification
   [MLISP].

12.  Security Considerations

   It is believed that most of the security mechanisms will be part of
   the mapping database service when using control plane procedures for
   obtaining EID-to-RLOC mappings.  For data plane triggered mappings,
   as described in this specification, protection is provided against
   ETR spoofing by using Return- Routability mechanisms evidenced by the
   use of a 4-byte Nonce field in the LISP encapsulation header.  The
   nonce, coupled with the ITR accepting only solicited Map-Replies goes
   a long way toward providing decent authentication.

   LISP does not rely on a PKI infrastructure or a more heavy weight
   authentication system.  These systems challenge the scalability of
   LISP which was a primary design goal.

   DoS attack prevention will depend on implementations rate-limiting
   Map-Requests and Map-Replies to the control plane as well as rate-
   limiting the number of data-triggered Map-Replies.

   To deal with map-cache exhaustion attempts in an ITR/PTR, the
   implementation should consider putting a maximum cap on the number of
   entries stored with a reserve list for special or frequently accessed
   sites.  This should be a configuration policy control set by the
   network administrator who manages ITRs and PTRs.

13.  Prototype Plans and Status

   The operator community has requested that the IETF take a practical
   approach to solving the scaling problems associated with global
   routing state growth.  This document offers a simple solution which
   is intended for use in a pilot program to gain experience in working
   on this problem.

   The authors hope that publishing this specification will allow the
   rapid implementation of multiple vendor prototypes and deployment on
   a small scale.  Doing this will help the community:

   o  Decide whether a new EID-to-RLOC mapping database infrastructure
      is needed or if a simple, UDP-based, data-triggered approach is
      flexible and robust enough.

   o  Experiment with provider-independent assignment of EIDs while at
      the same time decreasing the size of DFZ routing tables through
      the use of topologically-aligned, provider-based RLOCs.

   o  Determine whether multiple levels of tunneling can be used by ISPs
      to achieve their Traffic Engineering goals while simultaneously
      removing the more specific routes currently injected into the
      global routing system for this purpose.

   o  Experiment with mobility to determine if both acceptable
      convergence and session continuity properties can be scalably
      implemented to support both individual device roaming and site
      service provider changes.

   Here is a rough set of milestones:

   1.  This draft will be the draft for interoperable implementations to
       code against.  Interoperable implementations will be ready
       beginning of 2009.

   2.  Continue pilot deployment using LISP-ALT as the database mapping
       mechanism.

   3.  Continue prototyping and studying other database lookup schemes,
       be it DNS, DHTs, CONS, ALT, NERD, or other mechanisms.

   4.  Implement the LISP Multicast draft [MLISP].

   5.  Implement the LISP Mobile Node draft [LISP-MN].

   6.  Research more on how policy affects what gets returned in a Map-
       Reply from an ETR.

   7.  Continue to experiment with mixed locator-sets to understand how
       LISP can help the IPv4 to IPv6 transition.

   8.  Add more robustness to locator reachability between LISP sites.

   As of this writing the following accomplishments have been achieved:

   1.   A unit- and system-tested software switching implementation has
        been completed on cisco NX-OS for this draft for both IPv4 and
        IPv6 EIDs using a mixed locator-set of IPv4 and IPv6 locators.

   2.   A unit- and system-tested software switching implementation on
        cisco NX-OS has been completed for draft [ALT].

   3.   A unit- and system-tested software switching implementation on
        cisco NX-OS has been completed for draft [INTERWORK].  Support
        for IPv4 translation is provided and PTR support for IPv4 and
        IPv6 is provided.

   4.   The cisco NX-OS implementation supports an experimental
        mechanism for slow mobility.

   5.   Dave Meyer, Vince Fuller, Darrel Lewis, Greg Shepherd, and
        Andrew Partan continue to test all the features described above
        on a dual-stack infrastructure.

   6.   Darrel Lewis and Dave Meyer have deployed both LISP translation
        and LISP PTR support in the pilot network.  Point your browser
        to http://www.lisp4.net to see translation happening in action
        so your non-LISP site can access a web server in a LISP site.

   7.   Soon http://www.lisp6.net will work where your IPv6 LISP site
        can talk to a IPv6 web server in a LISP site by using mixed
        address-family based locators.

   8.   An public domain implementation of LISP is underway.  See
        [OPENLISP] for details.

   9.   We have deployed Map-Resolvers and Map-Servers on the LISP pilot
        network to gather experience with [LISP-MS].  The first layer of
        the architecture are the xTRs which use Map-Servers for EID-
        prefix registration and Map-Resolvers for EID-to-RLOC mapping
        resolution.  The second layer are the Map-Resolvers and Map-
        Servers which connect to the ALT BGP peering infrastructure.
        And the third layer are ALT-routers which aggregate EID-prefixes
        and forward Map-Requests.

   10.  A cisco IOS implementation is underway which currently supports
        IPv4 encapsulation and decapsulation features.

   11.  A LISP router based LIG implementation is supported, deployed,
        and used daily to debug and test the LISP pilot network.  See
        [LIG] for details.

   12.  A Linux implementation of LIG has been made available and
        supported by Dave Meyer.  It can be run on any Linux system
        which resides in either a LISP site or non-LISP site.  See [LIG]
        for details.  Public domain code can be downloaded from
        http://github.com/davidmeyer/lig/tree/master.

   13.  An experimental implementation has been written for three
        locator reachability algorithms.  One is called echo-noncing,
        which is documented in this specification.  The other two are
        called TCP-counts and RLOC-probing, which will be documented in
        future drafts.

   If interested in writing a LISP implementation, testing any of the
   LISP implementations, or want to be part of the LISP pilot program,
   please contact lisp@ietf.org.

14.  References

14.1.  Normative References

   [RFC0768]  Postel, J., "User Datagram Protocol", STD 6, RFC 768,
              August 1980.

   [RFC1191]  Mogul, J. and S. Deering, "Path MTU discovery", RFC 1191,
              November 1990.

   [RFC1498]  Saltzer, J., "On the Naming and Binding of Network
              Destinations", RFC 1498, August 1993.

   [RFC1955]  Hinden, R., "New Scheme for Internet Routing and
              Addressing (ENCAPS) for IPNG", RFC 1955, June 1996.

   [RFC2119]  Bradner, S., "Key words for use in RFCs to Indicate
              Requirement Levels", BCP 14, RFC 2119, March 1997.

   [RFC2402]  Kent, S. and R. Atkinson, "IP Authentication Header",
              RFC 2402, November 1998.

   [RFC2434]  Narten, T. and H. Alvestrand, "Guidelines for Writing an
              IANA Considerations Section in RFCs", BCP 26, RFC 2434,
              October 1998.

   [RFC2784]  Farinacci, D., Li, T., Hanks, S., Meyer, D., and P.
              Traina, "Generic Routing Encapsulation (GRE)", RFC 2784,
              March 2000.

   [RFC3056]  Carpenter, B. and K. Moore, "Connection of IPv6 Domains
              via IPv4 Clouds", RFC 3056, February 2001.

   [RFC3168]  Ramakrishnan, K., Floyd, S., and D. Black, "The Addition
              of Explicit Congestion Notification (ECN) to IP",
              RFC 3168, September 2001.

   [RFC3775]  Johnson, D., Perkins, C., and J. Arkko, "Mobility Support
              in IPv6", RFC 3775, June 2004.

   [RFC4423]  Moskowitz, R. and P. Nikander, "Host Identity Protocol
              (HIP) Architecture", RFC 4423, May 2006.

   [RFC4866]  Arkko, J., Vogt, C., and W. Haddad, "Enhanced Route
              Optimization for Mobile IPv6", RFC 4866, May 2007.

   [RFC4984]  Meyer, D., Zhang, L., and K. Fall, "Report from the IAB
              Workshop on Routing and Addressing", RFC 4984,
              September 2007.

14.2.  Informative References

   [AFI]      IANA, "Address Family Indicators (AFIs)", ADDRESS FAMILY
              NUMBERS http://www.iana.org/numbers.html, Febuary 2007.

   [ALT]      Farinacci, D., Fuller, V., Meyer, D., and D. Lewis, "LISP
              Alternative Topology (LISP-ALT)",
              draft-ietf-lisp-alt-01.txt (work in progress), May 2009.

   [APT]      Jen, D., Meisel, M., Massey, D., Wang, L., Zhang, B., and
              L. Zhang, "APT: A Practical Transit Mapping Service",
              draft-jen-apt-01.txt (work in progress), November 2007.

   [CHIAPPA]  Chiappa, J., "Endpoints and Endpoint names: A Proposed
              Enhancement to the Internet Architecture", Internet-
              Draft http://www.chiappa.net/~jnc/tech/endpoints.txt,
              1999.

   [CONS]     Farinacci, D., Fuller, V., and D. Meyer, "LISP-CONS: A
              Content distribution Overlay Network  Service for LISP",
              draft-meyer-lisp-cons-03.txt (work in progress),
              November 2007.

   [DHTs]     Ratnasamy, S., Shenker, S., and I. Stoica, "Routing
              Algorithms for DHTs: Some Open Questions", PDF
              file http://www.cs.rice.edu/Conferences/IPTPS02/174.pdf.

   [EMACS]    Brim, S., Farinacci, D., Meyer, D., and J. Curran, "EID
              Mappings Multicast Across Cooperating Systems for LISP",
              draft-curran-lisp-emacs-00.txt (work in progress),
              November 2007.

   [GSE]      "GSE - An Alternate Addressing Architecture for  IPv6",
              draft-ietf-ipngwg-gseaddr-00.txt (work in progress), 1997.

   [INTERWORK]
              Lewis, D., Meyer, D., Farinacci, D., and V. Fuller,
              "Interworking LISP with IPv4 and IPv6",
              draft-ietf-lisp-interworking-00.txt (work in progress),
              January 2009.

   [LIG]      Farinacci, D. and D. Meyer, "LISP Internet Groper (LIG)",
              draft-farinacci-lisp-lig-01.txt (work in progress),
              May 2009.

   [LISA96]   Lear, E., Katinsky, J., Coffin, J., and D. Tharp,
              "Renumbering: Threat or Menace?", Usenix , September 1996.

   [LISP-MAIN]
              Farinacci, D., Fuller, V., Meyer, D., and D. Lewis,
              "Locator/ID Separation Protocol (LISP)",
              draft-farinacci-lisp-12.txt (work in progress),
              March 2009.

   [LISP-MN]  Farinacci, D., Fuller, V., Lewis, D., and D. Meyer, "LISP
              Mobility Architecture", draft-meyer-lisp-mn-00.txt (work
              in progress), July 2009.

   [LISP-MS]  Farinacci, D. and V. Fuller, "LISP Map Server",
              draft-ietf-lisp-ms-01.txt (work in progress), May 2009.

   [LISP1]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
              "Locator/ID Separation Protocol (LISP1) [Routable  ID
              Version]",
              Slide-set http://www.dinof.net/~dino/ietf/lisp1.ppt,
              October 2006.

   [LISP2]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
              "Locator/ID Separation Protocol (LISP2) [DNS-based
              Version]",
              Slide-set http://www.dinof.net/~dino/ietf/lisp2.ppt,
              November 2006.

   [LISPDHT]  Mathy, L., Iannone, L., and O. Bonaventure, "LISP-DHT:
              Towards a DHT to map identifiers onto locators",
              draft-mathy-lisp-dht-00.txt (work in progress),
              February 2008.

   [LOC-ID-ARCH]
              Meyer, D. and D. Lewis, "Architectural Implications of
              Locator/ID  Separation",
              draft-meyer-loc-id-implications-01.txt (work in progress),
              Januaryr 2009.

   [MLISP]    Farinacci, D., Meyer, D., Zwiebel, J., and S. Venaas,
              "LISP for Multicast Environments",
              draft-ietf-lisp-multicast-01.txt (work in progress),
              May 2009.

   [NERD]     Lear, E., "NERD: A Not-so-novel EID to RLOC Database",
              draft-lear-lisp-nerd-04.txt (work in progress),
              April 2008.

   [OPENLISP]
              Iannone, L. and O. Bonaventure, "OpenLISP Implementation
              Report", draft-iannone-openlisp-implementation-01.txt
              (work in progress), July 2008.

   [RADIR]    Narten, T., "Routing and Addressing Problem Statement",
              draft-narten-radir-problem-statement-00.txt (work in
              progress), July 2007.

   [RFC3344bis]
              Perkins, C., "IP Mobility Support for IPv4, revised",
              draft-ietf-mip4-rfc3344bis-05 (work in progress),
              July 2007.

   [RFC4192]  Baker, F., Lear, E., and R. Droms, "Procedures for
              Renumbering an IPv6 Network without a Flag Day", RFC 4192,
              September 2005.

   [RPFV]     Wijnands, IJ., Boers, A., and E. Rosen, "The RPF Vector
              TLV", draft-ietf-pim-rpf-vector-08.txt (work in progress),
              January 2009.

   [RPMD]     Handley, M., Huici, F., and A. Greenhalgh, "RPMD: Protocol
              for Routing Protocol Meta-data  Dissemination",
              draft-handley-p2ppush-unpublished-2007726.txt (work in
              progress), July 2007.

   [SHIM6]    Nordmark, E. and M. Bagnulo, "Level 3 multihoming shim
              protocol", draft-ietf-shim6-proto-06.txt (work in
              progress), October 2006.

Appendix A.  Acknowledgments

   An initial thank you goes to Dave Oran for planting the seeds for the
   initial ideas for LISP.  His consultation continues to provide value
   to the LISP authors.

   A special and appreciative thank you goes to Noel Chiappa for
   providing architectural impetus over the past decades on separation
   of location and identity, as well as detailed review of the LISP
   architecture and documents, coupled with enthusiasm for making LISP a
   practical and incremental transition for the Internet.

   The authors would like to gratefully acknowledge many people who have
   contributed discussion and ideas to the making of this proposal.
   They include Scott Brim, Andrew Partan, John Zwiebel, Jason Schiller,
   Lixia Zhang, Dorian Kim, Peter Schoenmaker, Vijay Gill, Geoff Huston,
   David Conrad, Mark Handley, Ron Bonica, Ted Seely, Mark Townsley,
   Chris Morrow, Brian Weis, Dave McGrew, Peter Lothberg, Dave Thaler,
   Eliot Lear, Shane Amante, Ved Kafle, Olivier Bonaventure, Luigi
   Iannone, Robin Whittle, Brian Carpenter, Joel Halpern, Roger
   Jorgensen, Ran Atkinson, Stig Venaas, Iljitsch van Beijnum, Roland
   Bless, Dana Blair, Bill Lynch, Marc Woolward, Damien Saucez, Damian
   Lezama, Attilla De Groot, Parantap Lahiri, and David Black.

   In particular, we would like to thank Dave Meyer for his clever
   suggestion for the name "LISP". ;-)

   This work originated in the Routing Research Group (RRG) of the IRTF.
   The individual submission [LISP-MAIN] was converted into this IETF
   LISP working group draft.

Authors' Addresses

   Dino Farinacci
   cisco Systems
   Tasman Drive
   San Jose, CA  95134
   USA

   Email: dino@cisco.com

   Vince Fuller
   cisco Systems
   Tasman Drive
   San Jose, CA  95134
   USA

   Email: vaf@cisco.com

   Dave Meyer
   cisco Systems
   170 Tasman Drive
   San Jose, CA
   USA

   Email: dmm@cisco.com

   Darrel Lewis
   cisco Systems
   170 Tasman Drive
   San Jose, CA
   USA

   Email: darlewis@cisco.com
</pre>
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From luigi@net.t-labs.tu-berlin.de  Tue Jul 14 16:47:31 2009
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From: Luigi Iannone <luigi@net.t-labs.tu-berlin.de>
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Subject: Re: [lisp] Map-Versioning
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John,

thanks a lot for the comments, they will be included.

very few answer inline.

Cheers

Luigi



On Jul 14, 2009, at 21:39 , John Zwiebel wrote:

>
> On Jul 7, 2009, at 4:28 AM, Luigi Iannone wrote:
>
>> After one week thinking... ;-))
>
> A few observations....
>
>
> In para 3:
>   --  if you are allocating only 15 bits for the map version why  
> does your example use 24 bits?

Agree.
In the draft we do not propose exactly how many bits to use. How  
intent was to discuss this in the WG.

>   -- There appears to be some formatting problems here, is it just  
> that the brackets are facing the wrong way?
>
>    As an example, using 24 bits, if the Mapping Version Number is 0,
>    versions in ]1; (2**14)-1[ are greater and versions in [2**14;
>    (2**15)-1[ are smaller.
>

Mathematical notation. The part with brackets "facing the wrong way"  
means that the last value is not included.


>   -- FWIW:  s/half the versions is/ half the versions are
>
>
> 5.0: "carrying"
>    The purpose of carring these version numbers is two-fold, allowing
>
>    FWIW  change "does not hold" to "is not true" and I get it.  I  
> first read
>    it to mean the first condition was 'holding' the Map-Update- 
> Notification.
>
>     If the first condition does not hold the
>    Map-Update-Notification (see Section 8) is used to make the ITR  
> aware
>    that a newer mapping is available.
>
>     "detailed"
>    header format is detailled in Section 6 (Figure 2).
>
> 5.1
>   -- The ETR receives a packet from where?  What is a "domain"?  (I  
> think you mean EID-space)
> 	I had to read this entire section and start the next before I  
> figured it out.
>
>   -- what is a LEID?
>
>   -- rather than "can" shouldn't this be MUST|SHOULD|MAY?  (or is  
> this a decision to be made later?)
>
>       packets coming from that ITR with smaller mapping version number
>       can be silently dropped, since most likely there is a spoof or  
> the
>
> 5.2
>   -- likewise, starting this section with "when an ETR receives a  
> packet", misled me into what you were
> 	trying to describe.
>
>  -- sent
>       been send and a Map-Reply has been received.  The latter sent by
>
> -- s/anyhow/somehow
>       corrupted anyhow, the mapping version in the EID-to-RLOC Cache  
> is
>
>
> 6.0
> -- FWIW, IMHO minutes should be used and therefore the number of  
> bits allocated should be fewer so
> 	I'd rather see.  (or perhaps we could use 1/10 of a minute?  11  
> days to run through the version
> 	number circle seems awfully long, especially for something that  
> shouldn't change that much.)
>
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+- 
> +-+
>      / |Res|    Source Mapping V.N.      |  Destination Mapping V.  
> N.  |
>    LISP+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+- 
> +-+
>
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+- 
> +-+
>      / |Res|    Source Mapping V.N.    |res|  Destination Mapping V.  
> N.|
>    LISP+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+- 
> +-+
>
>
> 9.3
>   -- I cannot see how this would work.  If it were up to me at this  
> early stage I'd just have everyone update
> 	on a flag day to a OS image that supports map-versioning.  Yes,  
> there will be a lot of headaches making
> 	this happen, but far, far fewer than trying to debug why things  
> aren't interoperating.  (2cents)

Agreed. Upgrading should be concerted with all people participating in  
the LISP testbed  and the main developers of LISP.


>
> 10.1
>   -- Huh?  ;-)
>
> 10.2
>   -- s/loses/looses
>
>    DDoS attacks, where an xTR looses processing power doing version
>
>
> 10.4
>   -- s/scenario/scenarii
>
>    The scenarii presented in the previous sections are correct if ETR
>
>
>
>


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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; ">John,<div><br></div><div>thanks =
a lot for the comments, they will be =
included.</div><div><br></div><div>very few answer =
inline.</div><div><br></div><div>Cheers</div><div><br></div><div>Luigi</di=
v><div><br></div><div><br></div><div><br><div><div>On Jul 14, 2009, at =
21:39 , John Zwiebel wrote:</div><br =
class=3D"Apple-interchange-newline"><blockquote type=3D"cite"><div =
style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; "> <br><div><div>On Jul 7, 2009, =
at 4:28 AM, Luigi Iannone wrote:</div><br =
class=3D"Apple-interchange-newline"><blockquote type=3D"cite"><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Monaco" size=3D"2" style=3D"font: =
10.0px Monaco">After one week thinking... ;-))</font></div> =
</blockquote><br></div><div>A few =
observations....</div><br><div><br></div><div>In para =
3:</div><div>&nbsp;&nbsp;-- &nbsp;if you are allocating only 15 bits for =
the map version why does your example use 24 =
bits?</div></div></blockquote><div><br></div><div>Agree.</div><div>In =
the draft we do not propose exactly how many bits to use. How intent was =
to discuss this in the WG.</div><br><blockquote type=3D"cite"><div =
style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; "><div>&nbsp;&nbsp;-- There =
appears to be some formatting problems here, is it just that the =
brackets are facing the wrong way?</div><div>&nbsp;</div><div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp;&nbsp;As an example, using 24 bits, if the =
Mapping Version Number is 0,</font></div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: 13.0px Courier">&nbsp;&nbsp; =
versions in ]1; (2**14)-1[ are greater and versions in =
[2**14;</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp;&nbsp; (2**15)-1[ are =
smaller.</font></div><div><font class=3D"Apple-style-span" =
face=3D"Courier" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: =
13px;"><br></span></font></div></div></div></blockquote><div><br></div><di=
v>Mathematical notation. The part with brackets "facing the wrong way" =
means that the last value is not =
included.</div><div><br></div><br><blockquote type=3D"cite"><div =
style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; "><div><div><font =
class=3D"Apple-style-span" color=3D"#000000" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: 12px;">&nbsp;&nbsp;-- =
FWIW: &nbsp;s/half the versions is/ half the versions =
are</span></font></div><div><br></div><div><br></div><div>5.0: =
"carrying"</div><div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp;&nbsp;&nbsp;The purpose of carring =
these version numbers is two-fold, allowing</font></div><div><font =
class=3D"Apple-style-span" face=3D"Courier" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div><div><font class=3D"Apple-style-span" =
size=3D"3"><span class=3D"Apple-style-span" style=3D"font-size: =
12px;">&nbsp;&nbsp; FWIW &nbsp;change "does not hold" to "is not true" =
and I get it. &nbsp;I first read</span></font></div><div>&nbsp;&nbsp; it =
to mean the first condition was 'holding' the =
Map-Update-Notification.</div><div><font class=3D"Apple-style-span" =
face=3D"Courier" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: 13px;"><br></span></font></div><div><font =
class=3D"Apple-style-span" face=3D"Courier" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: 13px;"><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp; &nbsp;If the first condition does not hold =
the</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp;&nbsp; Map-Update-Notification (see =
Section 8) is used to make the ITR aware</font></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp; that a newer mapping is available. =
&nbsp;</font></div></span></font></div></div><div><br></div></div><div><di=
v style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font style=3D"font: 13.0px Courier"><font =
class=3D"Apple-style-span" face=3D"Helvetica" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: 12px;">&nbsp;&nbsp; =
&nbsp;"detailed"</span></font></font></div><div style=3D"margin-top: =
0px; margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: 13.0px =
Courier">&nbsp;&nbsp;&nbsp;header format is detailled in Section 6 =
(Figure 2).</font></div><div><font class=3D"Apple-style-span" =
face=3D"Courier" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: 13px;"><br></span></font></div></div><div>5.1 =
&nbsp;</div><div>&nbsp;&nbsp;-- The ETR receives a packet from where? =
&nbsp;What is a "domain"? &nbsp;(I think you mean =
EID-space)&nbsp;</div><div><span class=3D"Apple-tab-span" =
style=3D"white-space:pre">	=
</span>I&nbsp;had&nbsp;to&nbsp;read&nbsp;this&nbsp;entire&nbsp;section&nbs=
p;and&nbsp;start&nbsp;the&nbsp;next&nbsp;before&nbsp;I&nbsp;figured&nbsp;i=
t&nbsp;out.</div><div><br></div><div>&nbsp;&nbsp;-- what is a =
LEID?</div><div><br></div><div>&nbsp;&nbsp;-- rather than "can" =
shouldn't this be MUST|SHOULD|MAY? &nbsp;(or is this a decision to be =
made later?)</div><div><br></div><div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: 13.0px Courier">&nbsp;&nbsp; =
&nbsp; &nbsp;packets coming from that ITR with smaller mapping version =
number</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp; &nbsp; &nbsp; can be silently =
dropped, since most likely there is a spoof or =
the</font></div><div><font class=3D"Apple-style-span" face=3D"Courier" =
size=3D"3"><span class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div></div><div>5.2</div><div>&nbsp;&nbsp;-- =
likewise, starting this section with "when an ETR receives a packet", =
misled me into what you were</div><div><span class=3D"Apple-tab-span" =
style=3D"white-space:pre">	</span>trying to describe. =
&nbsp;</div><div><br></div><div>&nbsp;-- sent</div><div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp; &nbsp; &nbsp;been send and a Map-Reply has =
been received.&nbsp; The latter sent by</font></div><div><font =
class=3D"Apple-style-span" face=3D"Courier" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div></div><div>-- =
s/anyhow/somehow</div><div><div style=3D"margin-top: 0px; margin-right: =
0px; margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" =
size=3D"4" style=3D"font: 13.0px Courier">&nbsp;&nbsp; &nbsp; =
&nbsp;corrupted anyhow, the mapping version in the EID-to-RLOC Cache =
is</font></div><div><font class=3D"Apple-style-span" face=3D"Courier" =
size=3D"3"><span class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div></div><div><br></div><div>6.0</div><div>-- =
FWIW, IMHO minutes should be used and therefore the number of bits =
allocated should be fewer so</div><div><span class=3D"Apple-tab-span" =
style=3D"white-space:pre">	</span>I'd rather see. &nbsp;(or perhaps =
we could use 1/10 of a minute? &nbsp;11 days to run through the =
version&nbsp;</div><div><span class=3D"Apple-tab-span" =
style=3D"white-space:pre">	</span>number circle seems =
awfully&nbsp;long,&nbsp;especially&nbsp;for&nbsp;something&nbsp;that&nbsp;=
shouldn't&nbsp;change&nbsp;that&nbsp;much.)</div><div><br></div><div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp; &nbsp; =
&nbsp;&nbsp;+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-=
+-+</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp;&nbsp; &nbsp; / |Res|&nbsp; &nbsp; =
Source Mapping V.N.&nbsp; &nbsp; &nbsp; |&nbsp; Destination Mapping V. =
N.&nbsp; |</font></div><div style=3D"margin-top: 0px; margin-right: 0px; =
margin-bottom: 0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" =
style=3D"font: 13.0px Courier">&nbsp;&nbsp; =
LISP+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+</fon=
t></div><div><font class=3D"Apple-style-span" face=3D"Courier" =
size=3D"3"><span class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div></div><div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: normal normal normal =
13px/normal Courier; ">&nbsp;&nbsp; &nbsp; &nbsp; =
+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+</font></=
div><div style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: =
0px; margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
normal normal normal 13px/normal Courier; ">&nbsp;&nbsp; &nbsp;&nbsp;/ =
|Res|&nbsp; &nbsp;&nbsp;Source Mapping V.N. &nbsp; =
&nbsp;|res|&nbsp;&nbsp;Destination Mapping V. N.|</font></div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
normal normal normal 13px/normal Courier; =
">&nbsp;&nbsp;&nbsp;LISP+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-=
+-+-+-+-+-+-+-+</font></div><div><font class=3D"Apple-style-span" =
face=3D"Courier" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: =
13px;"><br></span></font></div></div><div><br></div><div>9.3</div><div>&nb=
sp;&nbsp;-- I cannot see how this would work. &nbsp;If it were up to me =
at this early stage I'd just have everyone update</div><div><span =
class=3D"Apple-tab-span" style=3D"white-space:pre">	</span>on a flag =
day to a OS image that supports map-versioning. &nbsp;Yes, there will be =
a lot of headaches making</div><div><span class=3D"Apple-tab-span" =
style=3D"white-space:pre">	</span>this happen, but far, far fewer =
than trying to debug why things aren't interoperating. =
&nbsp;(2cents)</div></div></blockquote><div><br></div><div>Agreed. =
Upgrading should be concerted with all people participating in the LISP =
testbed &nbsp;and the main developers of =
LISP.</div><div><br></div><br><blockquote type=3D"cite"><div =
style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; =
"><div><br></div><div>10.1</div><div>&nbsp;&nbsp;-- Huh? =
&nbsp;;-)</div><div><br></div><div>10.2</div><div>&nbsp;&nbsp;-- =
s/loses/looses</div><div><br></div><div><div style=3D"margin-top: 0px; =
margin-right: 0px; margin-bottom: 0px; margin-left: 0px; "><font =
face=3D"Courier" size=3D"4" style=3D"font: 13.0px =
Courier">&nbsp;&nbsp;&nbsp;DDoS attacks, where an xTR looses processing =
power doing version</font></div><div><font class=3D"Apple-style-span" =
face=3D"Courier" size=3D"3"><span class=3D"Apple-style-span" =
style=3D"font-size: =
13px;"><br></span></font></div></div><div><br></div><div>10.4</div><div>&n=
bsp;&nbsp;-- s/scenario/scenarii</div><div><br></div><div><div =
style=3D"margin-top: 0px; margin-right: 0px; margin-bottom: 0px; =
margin-left: 0px; "><font face=3D"Courier" size=3D"4" style=3D"font: =
13.0px Courier">&nbsp;&nbsp;&nbsp;The scenarii presented in the previous =
sections are correct if ETR</font></div><div><font =
class=3D"Apple-style-span" face=3D"Courier" size=3D"3"><span =
class=3D"Apple-style-span" style=3D"font-size: =
13px;"><br></span></font></div></div><div><br></div><div><br></div><div><b=
r></div></div></blockquote></div><br></div></body></html>=

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Subject: Re: [lisp] Proposed changes for draft-ietf-lisp-03.txt
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Nevermind.  It was the map-reply field I was looking at.

From damien.saucez@uclouvain.be  Wed Jul 15 03:26:43 2009
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Dino,

ok for me.

Damien Saucez

Dino Farinacci wrote:
> Thanks to everyone for comments. I have received both public and 
> private comments.
>
> If I hear no objections within 24 hours, I will post -03.
>
> Find attached the changes from draft -02 being proposed.
>
> Thanks again,
> Dino
>
>
> ------------------------------------------------------------------------
>
> Network Working Group                                       D. Farinacci
> Internet-Draft                                                 V. Fuller
> Intended status: Experimental                                   D. Meyer
> Expires: January 10, *15,* 2010                                       D. Lewis
>                                                            cisco Systems
>                                                            July 9, *14,* 2009
>
>                  Locator/ID Separation Protocol (LISP)
>                          draft-ietf-lisp-02.txt
>                          *draft-ietf-lisp-03.txt*
>
> Status of this Memo
>
>    This Internet-Draft is submitted to IETF in full conformance with the
>    provisions of BCP 78 and BCP 79.
>
>    Internet-Drafts are working documents of the Internet Engineering
>    Task Force (IETF), its areas, and its working groups.  Note that
>    other groups may also distribute working documents as Internet-
>    Drafts.
>
>    Internet-Drafts are draft documents valid for a maximum of six months
>    and may be updated, replaced, or obsoleted by other documents at any
>    time.  It is inappropriate to use Internet-Drafts as reference
>    material or to cite them other than as "work in progress."
>
>    The list of current Internet-Drafts can be accessed at
>    http://www.ietf.org/ietf/1id-abstracts.txt.
>
>    The list of Internet-Draft Shadow Directories can be accessed at
>    http://www.ietf.org/shadow.html.
>
>    This Internet-Draft will expire on January 10, *15,* 2010.
>
> Copyright Notice
>
>    Copyright (c) 2009 IETF Trust and the persons identified as the
>    document authors.  All rights reserved.
>
>    This document is subject to BCP 78 and the IETF Trust's Legal
>    Provisions Relating to IETF Documents in effect on the date of
>    publication of this document (http://trustee.ietf.org/license-info).
>    Please review these documents carefully, as they describe your rights
>    and restrictions with respect to this document.
>
> Abstract
>
>    This draft describes a simple, incremental, network-based protocol to
>    implement separation of Internet addresses into Endpoint Identifiers
>    (EIDs) and Routing Locators (RLOCs).  This mechanism requires no
>    changes to host stacks and no major changes to existing database
>    infrastructures.  The proposed protocol can be implemented in a
>    relatively small number of routers.
>
>    This proposal was stimulated by the problem statement effort at the
>    Amsterdam IAB Routing and Addressing Workshop (RAWS), which took
>    place in October 2006.
>
> Table of Contents
>
>    1.  Requirements Notation  . . . . . . . . . . . . . . . . . . . .  4
>    2.  Introduction . . . . . . . . . . . . . . . . . . . . . . . . .  5
>    3.  Definition of Terms  . . . . . . . . . . . . . . . . . . . . .  8
>    4.  Basic Overview . . . . . . . . . . . . . . . . . . . . . . . . 12
>      4.1.  Packet Flow Sequence . . . . . . . . . . . . . . . . . . . 14
>    5.  Tunneling Details  . . . . . . . . . . . . . . . . . . . . . . 16
>      5.1.  LISP IPv4-in-IPv4 Header Format  . . . . . . . . . . . . . 17
>      5.2.  LISP IPv6-in-IPv6 Header Format  . . . . . . . . . . . . . 18
>      5.3.  Tunnel Header Field Descriptions . . . . . . . . . . . . . 19
>      5.4.  Dealing with Large Encapsulated Packets  . . . . . . . . . 21
>        5.4.1.  A Stateless Solution to MTU Handling . . . . . . . . . 21
>        5.4.2.  A Stateful Solution to MTU Handling  . . . . . . . . . 22
>    6.  EID-to-RLOC Mapping  . . . . . . . . . . . . . . . . . . . . . 23
>      6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats  . . . . . 23
>        6.1.1.  LISP Packet Type Allocations . . . . . . . . . . . . . 25
>        6.1.2.  Map-Request Message Format . . . . . . . . . . . . . . 25
>        6.1.3.  EID-to-RLOC UDP Map-Request Message  . . . . . . . . . 27
>        6.1.4.  Map-Reply Message Format . . . . . . . . . . . . . . . 28
>        6.1.5.  EID-to-RLOC UDP Map-Reply Message  . . . . . . . . . . 31
>        6.1.6.  Map-Register Message Format  . . . . . . . . . . . . . 32 *31*
>      6.2.  Routing Locator Selection  . . . . . . . . . . . . . . . . 34 *33*
>      6.3.  Routing Locator Reachability . . . . . . . . . . . . . . . 35
>        6.3.1.  Echo Nonce Algorithm . . . . . . . . . . . . . . . . . 37
>      6.4.  Routing Locator Hashing  . . . . . . . . . . . . . . . . . 38
>      6.5.  Changing the Contents of EID-to-RLOC Mappings  . . . . . . 39
>        6.5.1.  Clock Sweep  . . . . . . . . . . . . . . . . . . . . . 39
>        6.5.2.  Solicit-Map-Request (SMR)  . . . . . . . . . . . . . . 40
>    7.  Router Performance Considerations  . . . . . . . . . . . . . . 42
>    8.  Deployment Scenarios . . . . . . . . . . . . . . . . . . . . . 43
>      8.1.  First-hop/Last-hop Tunnel Routers  . . . . . . . . . . . . 44
>      8.2.  Border/Edge Tunnel Routers . . . . . . . . . . . . . . . . 44
>      8.3.  ISP Provider-Edge (PE) Tunnel Routers  . . . . . . . . . . 45
>    9.  Traceroute Considerations  . . . . . . . . . . . . . . . . . . 46
>      9.1.  IPv6 Traceroute  . . . . . . . . . . . . . . . . . . . . . 47
>      9.2.  IPv4 Traceroute  . . . . . . . . . . . . . . . . . . . . . 47
>      9.3.  Traceroute using Mixed Locators  . . . . . . . . . . . . . 47
>    10. Mobility Considerations  . . . . . . . . . . . . . . . . . . . 49
>      10.1. Site Mobility  . . . . . . . . . . . . . . . . . . . . . . 49
>      10.2. Slow Endpoint Mobility . . . . . . . . . . . . . . . . . . 49
>      10.3. Fast Endpoint Mobility . . . . . . . . . . . . . . . . . . 49
>      10.4. Fast Network Mobility  . . . . . . . . . . . . . . . . . . 51
>      10.5. LISP Mobile Node Mobility  . . . . . . . . . . . . . . . . 51
>    11. Multicast Considerations . . . . . . . . . . . . . . . . . . . 53
>    12. Security Considerations  . . . . . . . . . . . . . . . . . . . 54
>    13. Prototype Plans and Status . . . . . . . . . . . . . . . . . . 55
>    14. References . . . . . . . . . . . . . . . . . . . . . . . . . . 58
>      14.1. Normative References . . . . . . . . . . . . . . . . . . . 58
>      14.2. Informative References . . . . . . . . . . . . . . . . . . 59
>    Appendix A.  Acknowledgments . . . . . . . . . . . . . . . . . . . 62
>    Authors' Addresses . . . . . . . . . . . . . . . . . . . . . . . . 63
>
> 1.  Requirements Notation
>
>    The key words "MUST", "MUST NOT", "REQUIRED", "SHALL", "SHALL NOT",
>    "SHOULD", "SHOULD NOT", "RECOMMENDED", "MAY", and "OPTIONAL" in this
>    document are to be interpreted as described in [RFC2119].
>
> 2.  Introduction
>
>    Many years of discussion about the current IP routing and addressing
>    architecture have noted that its use of a single numbering space (the
>    "IP address") for both host transport session identification and
>    network routing creates scaling issues (see [CHIAPPA] and [RFC1498]).
>    A number of scaling benefits would be realized by separating the
>    current IP address into separate spaces for Endpoint Identifiers
>    (EIDs) and Routing Locators (RLOCs); among them are:
>
>    1.  Reduction of routing table size in the "default-free zone" (DFZ).
>        Use of a separate numbering space for RLOCs will allow them to be
>        assigned topologically (in today's Internet, RLOCs would be
>        assigned by providers at client network attachment points),
>        greatly improving aggregation and reducing the number of
>        globally-visible, routable prefixes.
>
>    2.  More cost-effective multihoming for sites that connect to
>        different service providers where they can control their own
>        policies for packet flow into the site without using extra
>        routing table resources of core routers.
>
>    3.  Easing of renumbering burden when clients change providers.
>        Because host EIDs are numbered from a separate, non-provider-
>        assigned and non-topologically-bound space, they do not need to
>        be renumbered when a client site changes its attachment points to
>        the network.
>
>    4.  Traffic engineering capabilities that can be performed by network
>        elements and do not depend on injecting additional state into the
>        routing system.  This will fall out of the mechanism that is used
>        to implement the EID/RLOC split (see Section 4).
>
>    5.  Mobility without address changing.  Existing mobility mechanisms
>        will be able to work in a locator/ID separation scenario.  It
>        will be possible for a host (or a collection of hosts) to move to
>        a different point in the network topology either retaining its
>        home-based address or acquiring a new address based on the new
>        network location.  A new network location could be a physically
>        different point in the network topology or the same physical
>        point of the topology with a different provider.
>
>    This draft describes protocol mechanisms to achieve the desired
>    functional separation.  For flexibility, the mechanism used for
>    forwarding packets is decoupled from that used to determine EID to
>    RLOC mappings.  This document covers the former.  For the later, see
>    [CONS], [ALT], [EMACS], [RPMD], and [NERD].  This work is in response
>    to and intended to address the problem statement that came out of the
>    RAWS effort [RFC4984].
>
>    The Routing and Addressing problem statement can be found in [RADIR].
>
>    This draft focuses on a router-based solution.  Building the solution
>    into the network will facilitate incremental deployment of the
>    technology on the Internet.  Note that while the detailed protocol
>    specification and examples in this document assume IP version 4
>    (IPv4), there is nothing in the design that precludes use of the same
>    techniques and mechanisms for IPv6.  It should be possible for IPv4
>    packets to use IPv6 RLOCs and for IPv6 EIDs to be mapped to IPv4
>    RLOCs.
>
>    Related work on host-based solutions is described in Shim6 [SHIM6]
>    and HIP [RFC4423].  Related work on a router-based solution is
>    described in [GSE].  This draft attempts to not compete or overlap
>    with such solutions and the proposed protocol changes are expected to
>    complement a host-based mechanism when Traffic Engineering
>    functionality is desired.
>
>    Some of the design goals of this proposal include:
>
>    1.  Require no hardware or software changes to end-systems (hosts).
>
>    2.  Minimize required changes to Internet infrastructure.
>
>    3.  Be incrementally deployable.
>
>    4.  Require no router hardware changes.
>
>    5.  Minimize the number of routers which have to be modified.  In
>        particular, most customer site routers and no core routers
>        require changes.
>
>    6.  Minimize router software changes in those routers which are
>        affected.
>
>    7.  Avoid or minimize packet loss when EID-to-RLOC mappings need to
>        be performed.
>
>    There are 4 variants of LISP, which differ along a spectrum of strong
>    to weak dependence on the topological nature and possible need for
>    routability of EIDs.  The variants are:
>
>    LISP 1:  uses EIDs that are routable through the RLOC topology for
>       bootstrapping EID-to-RLOC mappings.  [LISP1] This was intended as
>       a prototyping mechanism for early protocol implementation.  It is
>       now deprecated and should not be deployed.
>
>    LISP 1.5:  uses EIDs that are routable for bootstrapping EID-to-RLOC
>       mappings; such routing is via a separate topology.
>
>    LISP 2:  uses EIDS that are not routable and EID-to-RLOC mappings are
>       implemented within the DNS.  [LISP2]
>
>    LISP 3:  uses non-routable EIDs that are used as lookup keys for a
>       new EID-to-RLOC mapping database.  Use of Distributed Hash Tables
>       [DHTs] [LISPDHT] to implement such a database would be an area to
>       explore.  Other examples of new mapping database services are
>       [CONS], [ALT], [RPMD], [NERD], and [APT].
>
>    This document on LISP 1.5, and LISP 3 variants, both of which rely on
>    a router-based distributed cache and database for EID-to-RLOC
>    mappings.  The LISP 1.0 mechanism works but does not allow reduction
>    of routing information in the default-free-zone of the Internet.  The
>    LISP 2 mechanisms are put on hold and may never come to fruition
>    since it is not architecturally pure to have routing depend on
>    directory and directory depend on routing.  The LISP 3 mechanisms
>    will be documented elsewhere but may use the control-plane options
>    specified in this specification.
>
> 3.  Definition of Terms
>
>    Provider Independent (PI) Addresses:   an address block assigned from
>       a pool where blocks are not associated with any particular
>       location in the network (e.g. from a particular service provider),
>       and is therefore not topologically aggregatable in the routing
>       system.
>
>    Provider Assigned (PA) Addresses:   a block of IP addresses that are
>       assigned to a site by each service provider to which a site
>       connects.  Typically, each block is sub-block of a service
>       provider CIDR block and is aggregated into the larger block before
>       being advertised into the global Internet.  Traditionally, IP
>       multihoming has been implemented by each multi-homed site
>       acquiring its own, globally-visible prefix.  LISP uses only
>       topologically-assigned and aggregatable address blocks for RLOCs,
>       eliminating this demonstrably non-scalable practice.
>
>    Routing Locator (RLOC):   the IPv4 or IPv6 address of an egress
>       tunnel router (ETR).  It is the output of a EID-to-RLOC mapping
>       lookup.  An EID maps to one or more RLOCs.  Typically, RLOCs are
>       numbered from topologically-aggregatable blocks that are assigned
>       to a site at each point to which it attaches to the global
>       Internet; where the topology is defined by the connectivity of
>       provider networks, RLOCs can be thought of as PA addresses.
>       Multiple RLOCs can be assigned to the same ETR device or to
>       multiple ETR devices at a site.
>
>    Endpoint ID (EID):   a 32-bit (for IPv4) or 128-bit (for IPv6) value
>       used in the source and destination address fields of the first
>       (most inner) LISP header of a packet.  The host obtains a
>       destination EID the same way it obtains an destination address
>       today, for example through a DNS lookup or SIP exchange.  The
>       source EID is obtained via existing mechanisms used to set a
>       host's "local" IP address.  An EID is allocated to a host from an
>       EID-prefix block associated with the site where the host is
>       located.  An EID can be used by a host to refer to other hosts.
>       EIDs MUST NOT be used as LISP RLOCs.  Note that EID blocks may be
>       assigned in a hierarchical manner, independent of the network
>       topology, to facilitate scaling of the mapping database.  In
>       addition, an EID block assigned to a site may have site-local
>       structure (subnetting) for routing within the site; this structure
>       is not visible to the global routing system.  When used in
>       discussions with other Locator/ID separation proposals, a LISP EID
>       will be called a "LEID".  Throughout this document, any references
>       to "EID" refers to an LEID.
>
>    EID-prefix:   A power-of-2 block of EIDs which are allocated to a
>       site by an address allocation authority.  EID-prefixes are
>       associated with a set of RLOC addresses which make up a "database
>       mapping".  EID-prefix allocations can be broken up into smaller
>       blocks when an RLOC set is to be associated with the smaller EID-
>       prefix.  A globally routed address block (whether PI or PA) is not
>       an EID-prefix.  However, a globally routed address block may be
>       removed from global routing and reused as an EID-prefix.  A site
>       that receives an explicitly allocated EID-prefix may not use that
>       EID-prefix as a globally routed prefix assigned to RLOCs.
>
>    End-system:   is an IPv4 or IPv6 device that originates packets with
>       a single IPv4 or IPv6 header.  The end-system supplies an EID
>       value for the destination address field of the IP header when
>       communicating globally (i.e. outside of its routing domain).  An
>       end-system can be a host computer, a switch or router device, or
>       any network appliance.
>
>    Ingress Tunnel Router (ITR):   a router which accepts an IP packet
>       with a single IP header (more precisely, an IP packet that does
>       not contain a LISP header).  The router treats this "inner" IP
>       destination address as an EID and performs an EID-to-RLOC mapping
>       lookup.  The router then prepends an "outer" IP header with one of
>       its globally-routable RLOCs in the source address field and the
>       result of the mapping lookup in the destination address field.
>       Note that this destination RLOC may be an intermediate, proxy
>       device that has better knowledge of the EID-to-RLOC mapping closer
>       to the destination EID.  In general, an ITR receives IP packets
>       from site end-systems on one side and sends LISP-encapsulated IP
>       packets toward the Internet on the other side.
>
>       Specifically, when a service provider prepends a LISP header for
>       Traffic Engineering purposes, the router that does this is also
>       regarded as an ITR.  The outer RLOC the ISP ITR uses can be based
>       on the outer destination address (the originating ITR's supplied
>       RLOC) or the inner destination address (the originating hosts
>       supplied EID).
>
>    TE-ITR:   is an ITR that is deployed in a service provider network
>       that prepends an additional LISP header for Traffic Engineering
>       purposes.
>
>    Egress Tunnel Router (ETR):   a router that accepts an IP packet
>       where the destination address in the "outer" IP header is one of
>       its own RLOCs.  The router strips the "outer" header and forwards
>       the packet based on the next IP header found.  In general, an ETR
>       receives LISP-encapsulated IP packets from the Internet on one
>       side and sends decapsulated IP packets to site end-systems on the
>       other side.  ETR functionality does not have to be limited to a
>       router device.  A server host can be the endpoint of a LISP tunnel
>       as well.
>
>    TE-ETR:   is an ETR that is deployed in a service provider network
>       that strips an outer LISP header for Traffic Engineering purposes.
>
>    xTR:   is a reference to an ITR or ETR when direction of data flow is
>       not part of the context description. xTR refers to the router that
>       is the tunnel endpoint.  Used synonymously with the term "Tunnel
>       Router".  For example, "An xTR can be located at the Customer Edge
>       (CE) router", meaning both ITR and ETR functionality is at the CE
>       router.
>
>    EID-to-RLOC Cache:   a short-lived, on-demand table in an ITR that
>       stores, tracks, and is responsible for timing-out and otherwise
>       validating EID-to-RLOC mappings.  This cache is distinct from the
>       full "database" of EID-to-RLOC mappings, it is dynamic, local to
>       the ITR(s), and relatively small while the database is
>       distributed, relatively static, and much more global in scope.
>
>    EID-to-RLOC Database:   a global distributed database that contains
>       all known EID-prefix to RLOC mappings.  Each potential ETR
>       typically contains a small piece of the database: the EID-to-RLOC
>       mappings for the EID prefixes "behind" the router.  These map to
>       one of the router's own, globally-visible, IP addresses.
>
>    Recursive Tunneling:   when a packet has more than one LISP IP
>       header.  Additional layers of tunneling may be employed to
>       implement traffic engineering or other re-routing as needed.  When
>       this is done, an additional "outer" LISP header is added and the
>       original RLOCs are preserved in the "inner" header.  Any
>       references to tunnels in this specification refers to dynamic
>       encapsulating tunnels and never are they staticly configured.
>
>    Reencapsulating Tunnels:   when a packet has no more than one LISP IP
>       header (two IP headers total) and when it needs to be diverted to
>       new RLOC, an ETR can decapsulate the packet (remove the LISP
>       header) and prepend a new tunnel header, with new RLOC, on to the
>       packet.  Doing this allows a packet to be re-routed by the re-
>       encapsulating router without adding the overhead of additional
>       tunnel headers.  Any references to tunnels in this specification
>       refers to dynamic encapsulating tunnels and never are they
>       staticly configured.
>
>    LISP Header:   a term used in this document to refer to the outer
>       IPv4 or IPv6 header, a UDP header, and a LISP header, an ITR
>       prepends or an ETR strips.
>
>    Address Family Indicator (AFI):   a term used to describe an address
>       encoding in a packet.  An address family currently pertains to an
>       IPv4 or IPv6 address.  See [AFI] for details.
>
>    Negative Mapping Entry:   also known as a negative cache entry, is an
>       EID-to-RLOC entry where an EID-prefix is advertised or stored with
>       no RLOCs.  That is, the locator-set for the EID-to-RLOC entry is
>       empty or has an encoded locator count of 0.  This type of entry
>       could be used to describe a prefix from a non-LISP site, which is
>       explicitly not in the mapping database.  There are a set of well
>       defined actions that are encoded in a Negative Map-Reply.
>
>    Data Probe:   a LISP-encapsulated data packet where the inner header
>       destination address equals the outer header destination address
>       used to trigger a Map-Reply by a decapsulating ETR.  In addition,
>       the original packet is decapsulated and delivered to the
>       destination host.  A Data Probe is used in some of the mapping
>       database designs to "probe" or request a Map-Reply from an ETR; in
>       other cases, Map-Requests are used.  See each mapping database
>       design for details.
>
> 4.  Basic Overview
>
>    One key concept of LISP is that end-systems (hosts) operate the same
>    way they do today.  The IP addresses that hosts use for tracking
>    sockets, connections, and for sending and receiving packets do not
>    change.  In LISP terminology, these IP addresses are called Endpoint
>    Identifiers (EIDs).
>
>    Routers continue to forward packets based on IP destination
>    addresses.  When a packet is LISP encapsulated, these addresses are
>    referred to as Routing Locators (RLOCs).  Most routers along a path
>    between two hosts will not change; they continue to perform routing/
>    forwarding lookups on the destination addresses.  For routers between
>    the source host and the ITR as well as routers from the ETR to the
>    destination host, the destination address is an EID.  For the routers
>    between the ITR and the ETR, the destination address is an RLOC.
>
>    This design introduces "Tunnel Routers", which prepend LISP headers
>    on host-originated packets and strip them prior to final delivery to
>    their destination.  The IP addresses in this "outer header" are
>    RLOCs.  During end-to-end packet exchange between two Internet hosts,
>    an ITR prepends a new LISP header to each packet and an egress tunnel
>    router strips the new header.  The ITR performs EID-to-RLOC lookups
>    to determine the routing path to the the ETR, which has the RLOC as
>    one of its IP addresses.
>
>    Some basic rules governing LISP are:
>
>    o  End-systems (hosts) only send to addresses which are EIDs.  They
>       don't know addresses are EIDs versus RLOCs but assume packets get
>       to LISP routers, which in turn, deliver packets to the destination
>       the end-system has specified.
>
>    o  EIDs are always IP addresses assigned to hosts.
>
>    o  LISP routers mostly deal with Routing Locator addresses.  See
>       details later in Section 4.1 to clarify what is meant by "mostly".
>
>    o  RLOCs are always IP addresses assigned to routers; preferably,
>       topologically-oriented addresses from provider CIDR blocks.
>
>    o  When a router originates packets it may use as a source address
>       either an EID or RLOC.  When acting as a host (e.g. when
>       terminating a transport session such as SSH, TELNET, or SNMP), it
>       may use an EID that is explicitly assigned for that purpose.  An
>       EID that identifies the router as a host MUST NOT be used as an
>       RLOC; an EID is only routable within the scope of a site.  A
>       typical BGP configuration might demonstrate this "hybrid" EID/RLOC
>       usage where a router could use its "host-like" EID to terminate
>       iBGP sessions to other routers in a site while at the same time
>       using RLOCs to terminate eBGP sessions to routers outside the
>       site.
>
>    o  EIDs are not expected to be usable for global end-to-end
>       communication in the absence of an EID-to-RLOC mapping operation.
>       They are expected to be used locally for intra-site communication.
>
>    o  EID prefixes are likely to be hierarchically assigned in a manner
>       which is optimized for administrative convenience and to
>       facilitate scaling of the EID-to-RLOC mapping database.  The
>       hierarchy is based on a address allocation hierarchy which is not
>       dependent on the network topology.
>
>    o  EIDs may also be structured (subnetted) in a manner suitable for
>       local routing within an autonomous system.
>
>    An additional LISP header may be prepended to packets by a transit
>    router (i.e.  TE-ITR) when re-routing of the path for a packet is
>    desired.  An obvious instance of this would be an ISP router that
>    needs to perform traffic engineering for packets in flow through its
>    network.  In such a situation, termed Recursive Tunneling, an ISP
>    transit acts as an additional ingress tunnel router and the RLOC it
>    uses for the new prepended header would be either an TE-ETR within
>    the ISP (along intra-ISP traffic engineered path) or in an TE-ETR
>    within another ISP (an inter-ISP traffic engineered path, where an
>    agreement to build such a path exists).
>
>    This specification mandates that no more than two LISP headers get
>    prepended to a packet.  This avoids excessive packet overhead as well
>    as possible encapsulation loops.  It is believed two headers is
>    sufficient, where the first prepended header is used at a site for
>    Location/Identity separation and second prepended header is used
>    inside a service provider for Traffic Engineering purposes.
>
>    Tunnel Routers can be placed fairly flexibly in a multi-AS topology.
>    For example, the ITR for a particular end-to-end packet exchange
>    might be the first-hop or default router within a site for the source
>    host.  Similarly, the egress tunnel router might be the last-hop
>    router directly-connected to the destination host.  Another example,
>    perhaps for a VPN service out-sourced to an ISP by a site, the ITR
>    could be the site's border router at the service provider attachment
>    point.  Mixing and matching of site-operated, ISP-operated, and other
>    tunnel routers is allowed for maximum flexibility.  See Section 8 for
>    more details.
>
> 4.1.  Packet Flow Sequence
>
>    This section provides an example of the unicast packet flow with the
>    following conditions:
>
>    o  Source host "host1.abc.com" is sending a packet to
>       "host2.xyz.com", exactly what host1 would do if the site was not
>       using LISP.
>
>    o  Each site is multi-homed, so each tunnel router has an address
>       (RLOC) assigned from the service provider address block for each
>       provider to which that particular tunnel router is attached.
>
>    o  The ITR(s) and ETR(s) are directly connected to the source and
>       destination, respectively.
>
>    o  Data Probes are used to solicit Map-Replies versus using Map-
>       Requests.  And the Data Probes are sent on the underlying topology
>       (the LISP 1.0 variant) but could also be sent over an alternative
>       topology (the LISP 1.5 variant) as it would in [ALT].
>
>    Client host1.abc.com wants to communicate with server host2.xyz.com:
>
>    1.  host1.abc.com wants to open a TCP connection to host2.xyz.com.
>        It does a DNS lookup on host2.xyz.com.  An A/AAAA record is
>        returned.  This address is used as the destination EID and the
>        locally-assigned address of host1.abc.com is used as the source
>        EID.  An IPv4 or IPv6 packet is built using the EIDs in the IPv4
>        or IPv6 header and sent to the default router.
>
>    2.  The default router is configured as an ITR.  The ITR must be able
>        to map the EID destination to an RLOC of the ETR at the
>        destination site.  The ITR prepends a LISP header to the packet,
>        with one of its RLOCs as the source IPv4 or IPv6 address.  The
>        destination EID from the original packet header is used as the
>        destination IPv4 or IPv6 in the prepended LISP header.
>        Subsequent packets, where the outer destination address is the
>        destination EID will be sent until EID-to-RLOC mapping is
>        learned.
>
>    3.  In LISP 1, the packet is routed through the Internet as it is
>        today.  In LISP 1.5, the packet is routed on a different topology
>        which may have EID prefixes distributed and advertised in an
>        aggregatable fashion.  In either case, the packet arrives at the
>        ETR.  The router is configured to "punt" the packet to the
>        router's processor.  See Section 7 for more details.  For LISP
>        2.0 and 3.0, the behavior is not fully defined yet.
>
>    4.  The LISP header is stripped so that the packet can be forwarded
>        by the router control plane.  The router looks up the destination
>        EID in the router's EID-to-RLOC database (not the cache, but the
>        configured data structure of RLOCs).  An EID-to-RLOC Map-Reply
>        message is originated by the ETR and is addressed to the source
>        RLOC in the LISP header of the original packet (this is the ITR).
>        The source RLOC of the Map-Reply is one of the ETR's RLOCs.
>
>    5.  The ITR receives the Map-Reply message, parses the message (to
>        check for format validity) and stores the mapping information
>        from the packet.  This information is put in the ITR's EID-to-
>        RLOC mapping cache (this is the on-demand cache, the cache where
>        entries time out due to inactivity).
>
>    6.  Subsequent packets from host1.abc.com to host2.xyz.com will have
>        a LISP header prepended by the ITR using the appropriate RLOC as
>        the LISP header destination address learned from the ETR.  Note,
>        the packet may be sent to a different ETR than the one which
>        returned the Map-Reply due to the source site's hashing policy or
>        the destination site's locator-set policy.
>
>    7.  The ETR receives these packets directly (since the destination
>        address is one of its assigned IP addresses), strips the LISP
>        header and forwards the packets to the attached destination host.
>
>    In order to eliminate the need for a mapping lookup in the reverse
>    direction, an ETR MAY create a cache entry that maps the source EID
>    (inner header source IP address) to the source RLOC (outer header
>    source IP address) in a received LISP packet.  Such a cache entry is
>    termed a "gleaned" mapping and only contains a single RLOC for the
>    EID in question.  More complete information about additional RLOCs
>    SHOULD be verified by sending a LISP Map-Request for that EID.  Both
>    ITR and the ETR may also influence the decision the other makes in
>    selecting an RLOC.  See Section 6 for more details.
>
> 5.  Tunneling Details
>
>    This section describes the LISP Data Message which defines the
>    tunneling header used to encapsulate IPv4 and IPv6 packets which
>    contain EID addresses.  Even though the following formats illustrate
>    IPv4-in-IPv4 and IPv6-in-IPv6 encapsulations, the other 2
>    combinations are supported as well.
>
>    Since additional tunnel headers are prepended, the packet becomes
>    larger and in theory can exceed the MTU of any link traversed from
>    the ITR to the ETR.  It is recommended, in IPv4 that packets do not
>    get fragmented as they are encapsulated by the ITR.  Instead, the
>    packet is dropped and an ICMP Too Big message is returned to the
>    source.
>
>    Based on informal surveys of large ISP traffic patterns, it appears
>    that most transit paths can accommodate a path MTU of at least 4470
>    bytes.  The exceptions, in terms of data rate, number of hosts
>    affected, or any other metric are expected to be vanishingly small.
>
>    To address MTU concerns, mainly raised on the RRG mailing list, the
>    LISP deployment process will include collecting data during its pilot
>    phase to either verify or refute the assumption about minimum
>    available MTU.  If the assumption proves true and transit networks
>    with links limited to 1500 byte MTUs are corner cases, it would seem
>    more cost-effective to either upgrade or modify the equipment in
>    those transit networks to support larger MTUs or to use existing
>    mechanisms for accommodating packets that are too large.
>
>    For this reason, there is currently no plan for LISP to add any new
>    additional, complex mechanism for implementing fragmentation and
>    reassembly in the face of limited-MTU transit links.  If analysis
>    during LISP pilot deployment reveals that the assumption of
>    essentially ubiquitous, 4470+ byte transit path MTUs, is incorrect,
>    then LISP can be modified prior to protocol standardization to add
>    support for one of the proposed fragmentation and reassembly schemes.
>    Note that two simple existing schemes are detailed in Section 5.4.
>
> 5.1.  LISP IPv4-in-IPv4 Header Format
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |Version|  IHL  |Type of Service|          Total Length         |
>     /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |         Identification        |Flags|      Fragment Offset    |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    OH  |  Time to Live | Protocol = 17 |         Header Checksum       |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |                    Source Routing Locator                     |
>     \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |                 Destination Routing Locator                   |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |       Source Port = xxxx      |       Dest Port = 4341        |
>    UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |           UDP Length          |        UDP Checksum           |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    L / |                       Locator Reach Bits                      |
>    I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    S \ |S|E| rsvd-flags|                  Nonce                        |
>    P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |Version|  IHL  |Type of Service|          Total Length         |
>     /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |         Identification        |Flags|      Fragment Offset    |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    IH  |  Time to Live |    Protocol   |         Header Checksum       |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |                           Source EID                          |
>     \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |                         Destination EID                       |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
> 5.2.  LISP IPv6-in-IPv6 Header Format
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |Version| Traffic Class |           Flow Label                  |
>     /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |         Payload Length        | Next Header=17|   Hop Limit   |
>    v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>    O   +                                                               +
>    u   |                                                               |
>    t   +                     Source Routing Locator                    +
>    e   |                                                               |
>    r   +                                                               +
>        |                                                               |
>    H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    d   |                                                               |
>    r   +                                                               +
>        |                                                               |
>    ^   +                  Destination Routing Locator                  +
>    |   |                                                               |
>     \  +                                                               +
>      \ |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |       Source Port = xxxx      |       Dest Port = 4341        |
>    UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |           UDP Length          |        UDP Checksum           |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    L / |                       Locator Reach Bits                      |
>    I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    S \ |S|E| rsvd-flags|                  Nonce                        |
>    P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |Version| Traffic Class |           Flow Label                  |
>     /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    /   |         Payload Length        |  Next Header  |   Hop Limit   |
>    v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>    I   +                                                               +
>    n   |                                                               |
>    n   +                          Source EID                           +
>    e   |                                                               |
>    r   +                                                               +
>        |                                                               |
>    H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    d   |                                                               |
>    r   +                                                               +
>        |                                                               |
>    ^   +                        Destination EID                        +
>    \   |                                                               |
>     \  +                                                               +
>      \ |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
> 5.3.  Tunnel Header Field Descriptions
>
>    IH Header:  is the inner header, preserved from the datagram received
>       from the originating host.  The source and destination IP
>       addresses are EIDs.
>
>    OH Header:  is the outer header prepended by an ITR.  The address
>       fields contain RLOCs obtained from the ingress router's EID-to-
>       RLOC cache.  The IP protocol number is "UDP (17)" from [RFC0768].
>       The DF bit of the Flags field is set to 0.
>
>    UDP Header:  contains a ITR selected source port when encapsulating a
>       packet.  See Section 6.4 for details on the hash algorithm used
>       select a source port based on the 5-tuple of the inner header.
>       The destination port MUST be set to the well-known IANA assigned
>       port value 4341.
>
>    UDP Checksum:  this field field MUST be transmitted as 0 and ignored on
>       receipt by the ETR.  Note, even when the UDP checksum is
>       transmitted as 0 an intervening NAT device can recalculate the
>       checksum and rewrite the UDP checksum field to non-zero.  For
>       performance reasons, the ETR MUST ignore the checksum and MUST not
>       do a checksum computation.
>
>    UDP Length:  for an IPv4 encapsulated packet, the inner header Total
>       Length plus the UDP and LISP header lengths are used.  For an IPv6
>       encapsulated packet, the inner header Payload Length plus the size
>       of the IPv6 header (40 bytes) plus the size of the UDP and LISP
>       headers are used.  The UDP header length is 8 bytes.  The LISP
>       header length is 8 bytes when no loc-reach-bit header extensions
>       are used.
>
>    LISP Locator Reach Bits:  in the LISP header are set by an ITR to
>       indicate to an ETR the reachability of the Locators in the source
>       site.  Each RLOC in a Map-Reply is assigned an ordinal value from
>       0 to n-1 (when there are n RLOCs in a mapping entry).  The Locator
>       Reach Bits are numbered from 0 to n-1 from the right significant
>       bit of the 32-bit field.  When a bit is set to 1, the ITR is
>       indicating to the ETR the RLOC associated with the bit ordinal is
>       reachable.  See Section 6.3 for details on how an ITR can
>       determine other ITRs at the site are reachable.  When a site has
>       multiple EID-prefixes which result in multiple mappings (where
>       each could have a different locator-set), the Locator Reach Bits
>       setting in an encapsulated packet MUST reflect the mapping for the
>       EID-prefix that the inner-header source EID address matches.
>
>    S: this is the Solicit-Map-Request (SMR) bit.  See section
>       Section 6.5.2 for details.
>
>    E: this is the echo-nonce-request bit.  See section Section 6.3.1 for
>       details.
>
>    rsvd-flags:  this 6-bit field is reserved for future flag use.  It is
>       set to 0 on transmit and ignored on receipt.
>
>    LISP Nonce:  is a 24-bit value that is randomly generated by an ITR.
>       It
>       *The nonce* is *also* used *when the E-bit is set* to test route-returnability *request the nonce
>       value to be echoed by the other side* when xTRs exchange
>       encapsulated data packets with *are returned.
>       See section Section 6.3.1 for more details.  The nonce is also
>       used when SMR-bit is set to solicit* the SMR bit set, Data-Probe, *other side to send a* Map-
>       Request, or Map-Reply messages.
>       *Request containing this nonce.  See section Section 6.5.2 for
>       details.*
>
>    When doing Recursive Tunneling or ITR/PTR encapsulation:
>
>    o  The OH header Time to Live field (or Hop Limit field, in case of
>       IPv6) MUST be copied from the IH header Time to Live field.
>
>    o  The OH header Type of Service field (or the Traffic Class field,
>       in the case of IPv6) SHOULD be copied from the IH header Type of
>       Service field (with one caveat, see below).
>
>    When doing Re-encapsulated Tunneling:
>
>    o  The new OH header Time to Live field SHOULD be copied from the
>       stripped OH header Time to Live field.
>
>    o  The new OH header Type of Service field SHOULD be copied from the
>       stripped OH header Type of Service field (with one caveat, see
>       below)..
>
>    Copying the TTL serves two purposes: first, it preserves the distance
>    the host intended the packet to travel; second, and more importantly,
>    it provides for suppression of looping packets in the event there is
>    a loop of concatenated tunnels due to misconfiguration.
>
>    The ECN field occupies bits 6 and 7 of both the IPv4 Type of Service
>    field and the IPv6 Traffic Class field [RFC3168].  The ECN field
>    requires special treatment in order to avoid discarding indications
>    of congestion [RFC3168].  ITR encapsulation MUST copy the 2-bit ECN
>    field from the inner header to the outer header.  Re-encapsulation
>    MUST copy the 2-bit ECN field from the stripped outer header to the
>    new outer header.  If the ECN field contains a congestion indication
>    codepoint (the value is '11', the Congestion Experienced (CE)
>    codepoint), then ETR decapsulation MUST copy the 2-bit ECN field from
>    the stripped outer header to the surviving inner header that is used
>    to forward the packet beyond the ETR.  These requirements preserve
>    Congestion Experienced (CE) indications when a packet that uses ECN
>    traverses a LISP tunnel and becomes marked with a CE indication due
>    to congestion between the tunnel endpoints.
>
> 5.4.  Dealing with Large Encapsulated Packets
>
>    In the event that the MTU issues mentioned above prove to be more
>    serious than expected, this section proposes 2 simple mechanisms to
>    deal with large packets.  One is stateless using IP fragmentation and
>    the other is stateful using Path MTU Discovery [RFC1191].
>
>    It is left to the implementor to decide if the stateless or stateful
>    mechanism should be implemented.  Both or neither can be decided as
>    well since it is a local decision in the ITR regarding how to deal
>    with MTU issues.  Sites can interoperate with differing mechanisms.
>
> 5.4.1.  A Stateless Solution to MTU Handling
>
>    An ITR stateless solution to handle MTU issues is described as
>    follows:
>
>    1.  Define an architectural constant S for the maximum size of a
>        packet, in bytes, an ITR would receive from a source inside of
>        its site.
>
>    2.  Define L to be the maximum size, in bytes, a packet of size S
>        would be after the ITR prepends the LISP header, UDP header, and
>        outer network layer header of size H.
>
>    3.  Calculate: S + H = L.
>
>    When an ITR receives a packet from a site-facing interface and adds H
>    bytes worth of encapsulation to yield a packet size of L bytes, it
>    resolves the MTU issue by first splitting the original packet into 2
>    equal-sized fragments.  A LISP header is then prepended to each
>    fragment.  This will ensure that the new, encapsulated packets are of
>    size (S/2 + H), which is always below the effective tunnel MTU.
>
>    When an ETR receives encapsulated fragments, it treats them as two
>    individually encapsulated packets.  It strips the LISP headers then
>    forwards each fragment to the destination host of the destination
>    site.  The two fragments are reassembled at the destination host into
>    the single IP datagram that was originated by the source host.
>
>    This behavior is performed by the ITR when the source host originates
>    a packet with the DF field of the IP header is set to 0.  When the DF
>    field of the IP header is set to 1, or the packet is an IPv6 packet
>    originated by the source host, the ITR will drop the packet when the
>    size is greater than L, and sends an ICMP Too Big message to the
>    source with a value of S, where S is (L - H).
>
>    When the outer header encapsulation uses an IPv4 header the DF bit is
>    always set to 0.
>
>    This specification recommends that L be defined as 1500.
>
> 5.4.2.  A Stateful Solution to MTU Handling
>
>    An ITR stateful solution to handle MTU issues is describe as follows
>    and was first introduced in [OPENLISP]:
>
>    1.  The ITR will keep state of the effective MTU for each locator per
>        mapping cache entry.  The effective MTU is what the core network
>        can deliver along the path between ITR and ETR.
>
>    2.  When an encapsulated packet, with DF bit always set to 0, exceeds
>        what the core network can deliver, one of the intermediate
>        routers on the path will send an ICMP Too Big message to the ITR.
>        The ITR will parse the ICMP message to determine which locator is
>        affected by the effective MTU change and then record the new
>        effective MTU value in the mapping cache entry.
>
>    3.  When a packet is received by the ITR from a source inside of the
>        site and the size of the packet is greater than the effective MTU
>        stored with the mapping cache entry associated with the
>        destination EID the packet is for, the ITR will send an ICMP Too
>        Big message back to the source.  The packet size advertised by
>        the ITR in the ICMP Too Big message is the effective MTU minus
>        the LISP encapsulation length.
>
>    Even though this mechanism is stateful, it has advantages over the
>    stateless IP fragmentation mechanism, by not involving the
>    destination host with reassembly of ITR fragmented packets.
>
> 6.  EID-to-RLOC Mapping
>
> 6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats
>
>    The following new UDP packet types are used to retrieve EID-to-RLOC
>    mappings:
>
>        0                   1                   2                   3
>        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |Version|  IHL  |Type of Service|          Total Length         |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |         Identification        |Flags|      Fragment Offset    |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |  Time to Live | Protocol = 17 |         Header Checksum       |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                    Source Routing Locator                     |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                 Destination Routing Locator                   |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |           Source Port         |         Dest Port             |
>    UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |           UDP Length          |        UDP Checksum           |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>        |                         LISP Message                          |
>        |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |Version| Traffic Class |           Flow Label                  |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |         Payload Length        | Next Header=17|   Hop Limit   |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>        +                                                               +
>        |                                                               |
>        +                     Source Routing Locator                    +
>        |                                                               |
>        +                                                               +
>        |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>        +                                                               +
>        |                                                               |
>        +                  Destination Routing Locator                  +
>        |                                                               |
>        +                                                               +
>        |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |           Source Port         |         Dest Port             |
>    UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |           UDP Length          |        UDP Checksum           |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>        |                         LISP Message                          |
>        |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>    The LISP UDP-based messages are the Map-Request and Map-Reply
>    messages.  When a UDP Map-Request is sent, the UDP source port is
>    chosen by the sender and the destination UDP port number is set to
>    4342.  When a UDP Map-Reply is sent, the source UDP port number is
>    set to 4342 and the destination UDP port number is copied from the
>    source port of either the Map-Request or the invoking data packet.
>
>    The UDP Length field will reflect the length of the UDP header and
>    the LISP Message payload.
>
>    The UDP Checksum is computed and set to non-zero for Map-Request and
>    Map-Reply messages.  It MUST be checked on receipt and if the
>    checksum fails, the packet MUST be dropped.
>
>    LISP-CONS [CONS] use TCP to send LISP control messages.  The format
>    of control messages includes the UDP header so the checksum and
>    length fields can be used to protect and delimit message boundaries.
>
>    This main LISP specification is the authoritative source for message
>    format definitions for the Map-Request and Map-Reply messages.
>
> 6.1.1.  LISP Packet Type Allocations
>
>    This section will be the authoritative source for allocating LISP
>    Type values.  Current allocations are:
>
>        Reserved:                        0    b'0000'
>        LISP Map-Request:                1    b'0001'
>        LISP Map-Reply:                  2    b'0010'
>        LISP Map-Register:               3    b'0011'
>        LISP-CONS Open Message:          8    b'1000'
>        LISP-CONS Push-Add Message:      9    b'1001'
>        LISP-CONS Push-Delete Message:   10   b'1010'
>        LISP-CONS Unreachable Message    11   b'1011'
>
> 6.1.2.  Map-Request Message Format
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                       Locator Reach Bits                      |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                             Nonce                             |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |Type=1 |A|R|P|S| *|A|M|P|S|*           Reserved            | Record Count  |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                             *Nonce                             |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |*         Source-EID-AFI        |            ITR-AFI            |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                   Source EID Address  ...                     |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                Originating ITR RLOC Address ...               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      / |   Reserved    | EID mask-len  |        EID-prefix-AFI         |
>    Rec +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>      \ |                       EID-prefix  ...                         |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                   Map-Reply Record  ...                       |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                     Mapping Protocol Data                     |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>    Packet field descriptions:
>
>    Locator Reach Bits:  These bits MUST be set to 0 on transmission and
>       ignored on receipt.  They cannot be used for indicating
>       reachability because the Map-Request does not have the EID-prefix
>       for the sending site so the receiver of the Map-Request cannot
>       know what mapping entry to associate the reachability with.
>       However, when Mapping Data is provided in the Map-Reply Record
>       field, and the receiver of the Map-Request is configured to accept
>       the mapping data, the R-bit per locator entry in the EID-prefix
>       record is used to denote reachability.
>
>    Nonce:  A 4-byte random value created by the sender of the Map-
>       Request.
>
>    Type:   1 (Map-Request)
>
>    A: This is an authoritative bit, which is set to 0 for UDP-based Map-
>       Requests sent by an ITR.  See other control-specific documents
>       [CONS] for TCP-based Map-Requests.
>
>    R:
>
>    *M:* When set, it indicates a Map-Reply Record segment is included in
>       the Map-Request.
>
>    P: Indicates that a Map-Request should be treated as a "piggyback"
>       locator reachability probe.  The receiver should respond with a
>       Map-Reply with the P bit set and the nonce copied from the Map-
>       Request.  Details on this usage will be provided in a future
>       version of this draft.
>
>    S: This is the SMR bit.  See Section 6.5.2 for details.
>
>    Reserved:  Set to 0 on transmission and ignored on receipt.
>
>    Record Count:  The number of records in this request message.  A
>       record is comprised of the portion of the packet is labeled 'Rec'
>       above and occurs the number of times equal to Record count.
>
>    *Nonce:  A 4-byte random value created by the sender of the Map-
>       Request.  This nonce will be returned in the Map-Reply.*
>
>    Source-EID-AFI:  Address family of the "Source EID Address" field.
>
>    ITR-AFI:  Address family of the "Originating ITR RLOC Address" field.
>
>    Source EID Address:  This is the EID of the source host which
>       originated the packet which is invoking this Map-Request.
>
>    Originating ITR RLOC Address:  Used to give the ETR the option of
>       returning a Map-Reply in the address-family of this locator.
>
>    EID mask-len:  Mask length for EID prefix.
>
>    EID-AFI:  Address family of EID-prefix according to [RFC2434]
>
>    EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
>       address-family.  When a Map-Request is sent by an ITR because a
>       data packet is received for a destination where there is no
>       mapping entry, the EID-prefix is set to the destination IP address
>       of the data packet.  And the 'EID mask-len' is set to 32 or 128
>       for IPv4 or IPv6, respectively.  When an xTR wants to query a site
>       about the status of a mapping it already has cached, the EID-
>       prefix used in the Map-Request has the same mask-length as the
>       EID-prefix returned from the site when it sent a Map-Reply
>       message.
>
>    Map-Reply Record:  When the R bit is set, this field is the size of
>       the "Record" field in the Map-Reply format.  This Map-Reply record
>       contains the EID-to-RLOC mapping entry associated with the Source
>       EID.  This allows the ETR which will receive this Map-Request to
>       cache the data if it chooses to do so.
>
>    Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
>       is optional and present when the UDP length indicates there is
>       enough space in the packet to include it.
>
> 6.1.3.  EID-to-RLOC UDP Map-Request Message
>
>    A Map-Request is sent from an ITR when it needs a mapping for an EID,
>    wants to test an RLOC for reachability, or wants to refresh a mapping
>    before TTL expiration.  For the initial case, the destination IP
>    address used for the Map-Request is the destination-EID from the
>    packet which had a mapping cache lookup failure.  For the later 2
>    cases, the destination IP address used for the Map-Request is one of
>    the RLOC addresses from the locator-set of the map cache entry.  In
>    all cases, the UDP source port number for the Map-Request message is
>    a randomly allocated 16-bit value and the UDP destination port number
>    is set to the well-known destination port number 4342.  A successful
>    Map-Reply updates the cached set of RLOCs associated with the EID
>    prefix range.
>
>    Map-Requests can also be LISP encapsulated using UDP destination port
>    4341 when sent from an ITR to a Map-Resolver.  Likewise, Map-Requests
>    are LISP encapsulated the same way from a Map-Server to an ETR.
>    Details on encapsulated Map-Requests and Map-Resolvers can be found
>    in [LISP-MS].
>
>    Map-Requests MUST be rate-limited.  It is recommended that a Map-
>    Request for the same EID-prefix be sent no more than once per second.
>
> 6.1.4.  Map-Reply Message Format
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                       Locator Reach Bits                      |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                             Nonce                             |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |Type=2 |P|            Reserved                 | Record Count  |
>        *+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                             Nonce                             |*
>    +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |                          Record  TTL                          |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
>    e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    c   |           Reserved            |            EID-AFI            |
>    o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    r   |                          EID-prefix                           |
>    d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
>    | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    | o |           Unused Flags      |R|           Loc-AFI             |
>    | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |  \|                             Locator                           |
>    +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                     Mapping Protocol Data                     |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>    Packet field descriptions:
>
>    Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
>       0 on transmission and ignored on receipt.  The locator
>       reachability is encoded as the R-bit in each locator entry of each
>       EID-prefix record.
>
>    Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
>       that is echoed here in the Map-Reply.
>
>    Type:   2 (Map-Reply)
>
>    P: Indicates that the Map-Reply is in response to a "piggyback"
>       locator reachability Map-Request.  The nonce field should contain
>       a copy of the nonce value from the original Map-Request.  Details
>       on this usage will be provided in a future version of this draft.
>
>    Reserved:  Set to 0 on transmission and ignored on receipt.
>
>    Record Count:  The number of records in this reply message.  A record
>       is comprised of that portion of the packet labeled 'Record' above
>       and occurs the number of times equal to Record count.
>
>    *Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
>       that is echoed here in the Map-Reply.*
>
>    Record TTL:  The time in minutes the recipient of the Map-Reply will
>       store the mapping.  If the TTL is 0, the entry should be removed
>       from the cache immediately.  If the value is 0xffffffff, the
>       recipient can decide locally how long to store the mapping.
>
>    Locator Count:  The number of Locator entries.  A locator entry
>       comprises what is labeled above as 'Loc'.  The locator count can
>       be 0 indicating there are no locators for the EID-prefix.
>
>    EID mask-len:  Mask length for EID prefix.
>
>    A: The Authoritative bit, when sent by a UDP-based message is always
>       set by the ETR.  See [CONS] for TCP-based Map-Replies.
>
>    ACT:  This 3-bit field describes negative Map-Reply actions.  These
>       bits are used only when the 'Locator Count' field is set to 0.
>       The action bits are encoded only in Map-Reply messages.  The
>       actions defined are used by an ITR or PTR when a destination EID
>       matches a negative mapping cache entry.  The current assigned
>       values are:
>
>       (0) No action:  No action is being conveyed by the sender of the
>          Map-Reply message.
>
>       (1) Natively-Forward:  The packet is not encapsulated or dropped
>          but natively forwarded.
>
>       (2) Drop:  The packet is dropped silently.
>
>       (3) Send-Map-Request:  The packet invokes sending a Map-Request.
>
>    EID-AFI:  Address family of EID-prefix according to [RFC2434].
>
>    EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
>       address-family.
>
>    Priority:  each RLOC is assigned a unicast priority.  Lower values
>       are more preferable.  When multiple RLOCs have the same priority,
>       they may be used in a load-split fashion.  A value of 255 means
>       the RLOC MUST NOT be used for unicast forwarding.
>
>    Weight:  when priorities are the same for multiple RLOCs, the weight
>       indicates how to balance unicast traffic between them.  Weight is
>       encoded as a percentage of total unicast packets that match the
>       mapping entry.  If a non-zero weight value is used for any RLOC,
>       then all RLOCs must use a non-zero weight value and then the sum
>       of all weight values MUST equal 100.  If a zero value is used for
>       any RLOC weight, then all weights MUST be zero and the receiver of
>       the Map-Reply will decide how to load-split traffic.  See
>       Section 6.4 for a suggested hash algorithm to distribute load
>       across locators with same priority and equal weight values.  When
>       a single RLOC exists in a mapping entry, the weight value MUST be
>       set to 100 and ignored on receipt.
>
>    M Priority:  each RLOC is assigned a multicast priority used by an
>       ETR in a receiver multicast site to select an ITR in a source
>       multicast site for building multicast distribution trees.  A value
>       of 255 means the RLOC MUST NOT be used for joining a multicast
>       distribution tree.
>
>    M Weight:  when priorities are the same for multiple RLOCs, the
>       weight indicates how to balance building multicast distribution
>       trees across multiple ITRs.  The weight is encoded as a percentage
>       of total number of trees build to the source site identified by
>       the EID-prefix.  If a non-zero weight value is used for any RLOC,
>       then all RLOCs must use a non-zero weight value and then the sum
>       of all weight values MUST equal 100.  If a zero value is used for
>       any RLOC weight, then all weights MUST be zero and the receiver of
>       the Map-Reply will decide how to distribute multicast state across
>       ITRs.
>
>    Unused Flags:  set to 0 when sending and ignored on receipt.
>
>    R: when this bit is set, the locator is known to be reachable from
>       the Map-Reply sender's perspective.  When there is a single
>       mapping record in the message, the R-bit for each locator must
>       have a consistent setting with the bitfield setting of the 'Loc
>       Reach Bits' field in the early part of the header.  When there are
>       multiple mapping records in the message, the 'Loc Reach Bits'
>       field is set to 0.
>
>    Locator:  an IPv4 or IPv6 address (as encoded by the 'Loc-AFI' field)
>       assigned to an ETR or router acting as a proxy replier for the
>       EID-prefix.  Note that the destination RLOC address MAY be an
>       anycast address.  A source RLOC can be an anycast address as well.
>       The source or destination RLOC MUST NOT be the broadcast address
>       (255.255.255.255 or any subnet broadcast address known to the
>       router), and MUST NOT be a link-local multicast address.  The
>       source RLOC MUST NOT be a multicast address.  The destination RLOC
>       SHOULD be a multicast address if it is being mapped from a
>       multicast destination EID.
>
>    Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
>       is optional and present when the UDP length indicates there is
>       enough space in the packet to include it.
>
> 6.1.5.  EID-to-RLOC UDP Map-Reply Message
>
>    When a Data Probe packet or a Map-Request triggers a Map-Reply to be
>    sent, the RLOCs associated with the EID-prefix matched by the EID in
>    the original packet destination IP address field will be returned.
>    The RLOCs in the Map-Reply are the globally-routable IP addresses of
>    the ETR but are not necessarily reachable; separate testing of
>    reachability is required.
>
>    Note that a Map-Reply may contain different EID-prefix granularity
>    (prefix + length) than the Map-Request which triggers it.  This might
>    occur if a Map-Request were for a prefix that had been returned by an
>    earlier Map-Reply.  In such a case, the requester updates its cache
>    with the new prefix information and granularity.  For example, a
>    requester with two cached EID-prefixes that are covered by a Map-
>    Reply containing one, less-specific prefix, replaces the entry with
>    the less-specific EID-prefix.  Note that the reverse, replacement of
>    one less-specific prefix with multiple more-specific prefixes, can
>    also occur but not by removing the less-specific prefix rather by
>    adding the more-specific prefixes which during a lookup will override
>    the less-specific prefix.
>
>    Replies SHOULD be sent for an EID-prefix no more often than once per
>    second to the same requesting router.  For scalability, it is
>    expected that aggregation of EID addresses into EID-prefixes will
>    allow one Map-Reply to satisfy a mapping for the EID addresses in the
>    prefix range thereby reducing the number of Map-Request messages.
>
>    The addresses for a encapsulated data packets or Map-Request message
>    are swapped and used for sending the Map-Reply.  The UDP source and
>    destination ports are swapped as well.  That is, the source port in
>    the UDP header for the Map-Reply is set to the well-known UDP port
>    number 4342.
>
>    Map-Reply records can have an empty locator-set.  This type of a Map-
>    Reply is called a Negative Map-Reply.  Negative Map-Replies convey
>    special actions by the sender to the ITR or PTR which have solicited
>    the Map-Reply.  There are two primary applications for Negative Map-
>    Replies.  The first is for a Map-Resolver to instruct an ITR or PTR
>    when a destination is for a LISP site versus a non-LISP site.  And
>    the other is to source quench Map-Requests which are sent for non-
>    allocated EIDs.
>
> 6.1.6.  Map-Register Message Format
>
>    The usage details of the Map-Register message can be found in
>    specification [LISP-MS].  This section solely defines the message
>    format.
>
>    The message is sent in a UDP with a destination UDP port 4342 and a
>    randomly selected UDP port number.  Before an IPv4 or IPv6 network
>    layer header is prepended, an AH header is prepended to carry
>    authentication information.  The format conforms to the IPsec
>    specification [RFC2402].  The Map-Register message will use transport
>    mode by setting the IP protocol number field or the IPv6 next-header
>    field to 51.
>
>    The AH header from [RFC2402] is:
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        | Next Header   |  Payload Len  |          RESERVED             |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                 Security Parameters Index (SPI)               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                    Sequence Number Field                      |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                                                               |
>        +                Authentication Data (variable)                 |
>        |                                                               |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>    The Next Header field is set to UDP.  The SPI field is set to 0
>    (since no Security Association or Key Exchange protocol is being
>    used).  The Sequence Number is a randomly chosen value by the sender.
>    The Authentication Data is 16 bytes and holds a MD5 HMAC.
>
>    The Map-Register message format is:
>
>         0                   1                   2                   3
>         0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                       Locator Reach Bits                      |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                             Nonce                             |
>        +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |Type=3 |P|            Reserved                 | Record Count  |
>        *+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>        |                             Nonce                             |*
>    +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |   |                          Record  TTL                          |
>    |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
>    e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    c   |           Reserved            |            EID-AFI            |
>    o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    r   |                          EID-prefix                           |
>    d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
>    | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    | o |           Unused Flags      |R|           Loc-AFI             |
>    | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>    |  \|                             Locator                           |
>    +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
>
>    Packet field descriptions:
>
>    Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
>       0 on transmission and ignored on receipt.  The locator
>       reachability is encoded as the R-bit in each locator entry of each
>       EID-prefix record.
>
>    Nonce:  The Nonce field is set to 0 in Map-Register messages.
>
>    Type:   3 (Map-Register)
>
>    P: Set to 1 by an ETR which sends a Map-Register message requesting
>       for the Map-Server to proxy Map-Reply.  The Map-Server will send
>       non-authoritative Map-Replies on behalf of the ETR.  Details on
>       this usage will be provided in a future version of this draft.
>
>    Reserved:  Set to 0 on transmission and ignored on receipt.
>
>    Record Count:  The number of records in this Map-Register message.  A
>       record is comprised of that portion of the packet labeled 'Record'
>       above and occurs the number of times equal to Record count.
>
>    *Nonce:  The Nonce field is set to 0 in Map-Register messages.*
>
>    The definition of the rest of the Map-Register can be found in the
>    Map-Reply section.
>
> 6.2.  Routing Locator Selection
>
>    Both client-side and server-side may need control over the selection
>    of RLOCs for conversations between them.  This control is achieved by
>    manipulating the Priority and Weight fields in EID-to-RLOC Map-Reply
>    messages.  Alternatively, RLOC information may be gleaned from
>    received tunneled packets or EID-to-RLOC Map-Request messages.
>
>    The following enumerates different scenarios for choosing RLOCs and
>    the controls that are available:
>
>    o  Server-side returns one RLOC.  Client-side can only use one RLOC.
>       Server-side has complete control of the selection.
>
>    o  Server-side returns a list of RLOC where a subset of the list has
>       the same best priority.  Client can only use the subset list
>       according to the weighting assigned by the server-side.  In this
>       case, the server-side controls both the subset list and load-
>       splitting across its members.  The client-side can use RLOCs
>       outside of the subset list if it determines that the subset list
>       is unreachable (unless RLOCs are set to a Priority of 255).  Some
>       sharing of control exists: the server-side determines the
>       destination RLOC list and load distribution while the client-side
>       has the option of using alternatives to this list if RLOCs in the
>       list are unreachable.
>
>    o  Server-side sets weight of 0 for the RLOC subset list.  In this
>       case, the client-side can choose how the traffic load is spread
>       across the subset list.  Control is shared by the server-side
>       determining the list and the client determining load distribution.
>       Again, the client can use alternative RLOCs if the server-provided
>       list of RLOCs are unreachable.
>
>    o  Either side (more likely on the server-side ETR) decides not to
>       send a Map-Request.  For example, if the server-side ETR does not
>       send Map-Requests, it gleans RLOCs from the client-side ITR,
>       giving the client-side ITR responsibility for bidirectional RLOC
>       reachability and preferability.  Server-side ETR gleaning of the
>       client-side ITR RLOC is done by caching the inner header source
>       EID and the outer header source RLOC of received packets.  The
>       client-side ITR controls how traffic is returned and can alternate
>       using an outer header source RLOC, which then can be added to the
>       list the server-side ETR uses to return traffic.  Since no
>       Priority or Weights are provided using this method, the server-
>       side ETR must assume each client-side ITR RLOC uses the same best
>       Priority with a Weight of zero.  In addition, since EID-prefix
>       encoding cannot be conveyed in data packets, the EID-to-RLOC cache
>       on tunnel routers can grow to be very large.
>
>    RLOCs that appear in EID-to-RLOC Map-Reply messages are considered
>    reachable.  The Map-Reply and the database mapping service does not
>    provide any reachability status for Locators.  This is done outside
>    of the mapping service.  See next section for details.
>
> 6.3.  Routing Locator Reachability
>
>    There are 4 methods for determining when a Locator is either
>    reachable or has become unreachable:
>
>    1.  Locator reachability is determined by an ETR by examining the
>        Loc-Reach-Bits from a LISP header of a encapsulated data packet
>        which is provided by an ITR when an ITR encapsulates data.
>
>    2.  Locator unreachability is determined by an ITR by receiving ICMP
>        Network or Host Unreachable messages.
>
>    3.  Locator unreachability can also be determined by an BGP-enabled
>        ITR when there is no prefix matching a Locator address from the
>        BGP RIB.
>
>    4.  Locator unreachability is determined when a host sends an ICMP
>        Port Unreachable message.  This occurs when an ITR may not use
>        any methods of interworking. one which is describe in [INTERWORK]
>        and the encapsulated data packet is received by a host at the
>        destination non-LISP site.
>
>    5.  Locator reachability is determined by receiving a Map-Reply
>        message from a ETR's Locator address in response to a previously
>        sent Map-Request.
>
>    6.  Locator reachability can also be determined by receiving packets
>        encapsulated by the ITR assigned to the locator address.
>
>    When determining Locator reachability by examining the Loc-Reach-Bits
>    from the LISP encapsulate data packet, an ETR will receive up to date
>    status from the ITR closest to the Locators at the source site.  The
>    ITRs at the source site can determine reachability when running their
>    IGP at the site.  When the ITRs are deployed on CE routers, typically
>    a default route is injected into the site's IGP from each of the
>    ITRs.  If an ITR goes down, the CE-PE link goes down, or the PE
>    router goes down, the CE router withdraws the default route.  This
>    allows the other ITRs at the site to determine one of the Locators
>    has gone unreachable.
>
>    The Locators listed in a Map-Reply are numbered with ordinals 0 to
>    n-1.  The Loc-Reach-Bits in a LISP Data Message are numbered from 0
>    to n-1 starting with the least significant bit numbered as 0.  So,
>    for example, if the ITR with locator listed as the 3rd Locator
>    position in the Map-Reply goes down, all other ITRs at the site will
>    have the 3rd bit from the right cleared (the bit that corresponds to
>    ordinal 2).
>
>    When an ETR decapsulates a packet, it will look for a change in the
>    Loc-Reach-Bits value.  When a bit goes from 1 to 0, the ETR will
>    refrain from encapsulating packets to the Locator that has just gone
>    unreachable.  It can start using the Locator again when the bit that
>    corresponds to the Locator goes from 0 to 1.  Loc-Reach-Bits are
>    associated with a locator-set per EID-prefix.  Therefore, when a
>    locator becomes unreachable, the loc-reach-bit that corresponds to
>    that locator's position in the list returned by the last Map-Reply
>    will be set to zero for that particular EID-prefix.
>
>    When ITRs at the site are not deployed in CE routers, the IGP can
>    still be used to determine the reachability of Locators provided they
>    are injected a stub links into the IGP.  This is typically done when
>    a /32 address is configured on a loopback interface.
>
>    When ITRs receive ICMP Network or Host Unreachable messages as a
>    method to determine unreachability, they will refrain from using
>    Locators which are described in Locator lists of Map-Replies.
>    However, using this approach is unreliable because many network
>    operators turn off generation of ICMP Unreachable messages.
>
>    If an ITR does receive an ICMP Network or Host Unreachable message,
>    it MAY originate its own ICMP Unreachable message destined for the
>    host that originated the data packet the ITR encapsulated.
>
>    Also, BGP-enabled ITRs can unilaterally examine the BGP RIB to see if
>    a locator address from a locator-set in a mapping entry matches a
>    prefix.  If it does not find one and BGP is running in the Default
>    Free Zone (DFZ), it can decide to not use the locator even though the
>    Loc-Reach-Bits indicate the locator is up.  In this case, the path
>    from the ITR to the ETR that is assigned the locator is not
>    available.  More details are in [LOC-ID-ARCH].
>
>    Optionally, an ITR can send a Map-Request to a Locator and if a Map-
>    Reply is returned, reachability of the Locator has been determined.
>    Obviously, sending such probes increases the number of control
>    messages originated by tunnel routers for active flows, so Locators
>    are assumed to be reachable when they are advertised.
>
>    This assumption does create a dependency: Locator unreachability is
>    detected by the receipt of ICMP Host Unreachable messages.  When an
>    Locator has been determined to be unreachable, it is not used for
>    active traffic; this is the same as if it were listed in a Map-Reply
>    with priority 255.
>
>    The ITR can test the reachability of the unreachable Locator by
>    sending periodic Requests.  Both Requests and Replies MUST be rate-
>    limited.  Locator reachability testing is never done with data
>    packets since that increases the risk of packet loss for end-to-end
>    sessions.
>
>    When an ETR decapsulates a packet, it knows that it is reachable from
>    the encapsulating ITR because that is how the packet arrived.  In
>    most cases, the ETR can also reach the ITR but cannot assume this to
>    be true due to the possibility of path assymetry.  In the presence of
>    unidirectional traffic flow from an ITR to an ETR, the ITR should not
>    use the lack of return traffic as an indication that the ETR is
>    unreachable.  Instead, it must use an alternate mechanisms to
>    determine reachability.
>
> 6.3.1.  Echo Nonce Algorithm
>
>    When there is bidirectional data flow between a pair of locators, a
>    simple mechanism called "nonce echoing" can be used to determine
>    reachability between an ITR and ETR.  When an ITR wants to solicit a
>    nonce echo, it sets the E-bit and places a 24-bit nonce in the LISP
>    header of the next encapsulated data packet.
>
>    When this packet is received by the ETR, the encapsulated packet is
>    forwarded as normal.  When the ETR next sends a data packet to the
>    ITR, it includes the nonce received earlier. *earlier with the E-bit cleared.*
>    The ITR sees this "echo
>    nonce reply" *"echoed nonce"* and knows the path to and from the
>    ETR is up.
>
>    The *ITR will set the E-bit for every packet it sends while in echo-
>    nonce-request state.  The* time the ITR waits for *to process* the echoed
>    nonce before it determines the path is down *unreachable* is variable and a
>    choice left for the implementation.
>
>    If the ITR is receiving packets from the ETR but does not see the
>    nonce echoed, *echoed while being in echo-nonce-request state,* then the path
>    to the ETR is down. *unreachable.*  This decision may be overridden by other
>    locator reachability algorithms.  Once the ITR determines the path to
>    the ETR is down it can switch to another locator for that EID-prefix.
>
>    Note that "ITR" and "ETR" are relative terms here.  Both devices must
>    be implementing both ITR and ETR functionality for the echo nonce
>    mechanism to operate.
>
>    The ITR and ETR may both go into echo-nonce-request state at the same
>    time.  The number of packets sent or the time during which echo nonce
>    requests are sent is an implementation specific setting.  However,
>    when an ITR is in echo-nonce-request state, it can echo the ETR's
>    nonce in the next packet *set of packets* that it encapsulates and then
>    subsequently, continue sending echo-nonce-request packets.
>
>    This mechanism does not completely solve the forward path
>    reachability problem as traffic may be unidirectional.  That is, the
>    ETR receiving traffic at a site may not may not be the same device as
>    an ITR which transmits traffic from that site or the site to site
>    traffic is unidirectional so there is no ITR returning traffic.
>
>    Note that other locator reachability mechanisms are being researched. *researched
>    and can be used to compliment or even override the Echo Nonce
>    Algorithm.*
>
> 6.4.  Routing Locator Hashing
>
>    When an ETR provides an EID-to-RLOC mapping in a Map-Reply message to
>    a requesting ITR, the locator-set for the EID-prefix may contain
>    different priority values for each locator address.  When more than
>    one best priority locator exists, the ITR can decide how to load
>    share traffic against the corresponding locators.
>
>    The following hash algorithm may be used by an ITR to select a
>    locator for a packet destined to an EID for the EID-to-RLOC mapping:
>
>    1.  Either a source and destination address hash can be used or the
>        traditional 5-tuple hash which includes the source and
>        destination addresses, source and destination TCP, UDP, or SCTP
>        port numbers and the IP protocol number field or IPv6 next-
>        protocol fields of a packet a host originates from within a LISP
>        site.  When a packet is not a TCP, UDP, or SCTP packet, the
>        source and destination addresses only from the header are used to
>        compute the hash.
>
>    2.  Take the hash value and divide it by the number of locators
>        stored in the locator-set for the EID-to-RLOC mapping.
>
>    3.  The remainder will be yield a value of 0 to "number of locators
>        minus 1".  Use the remainder to select the locator in the
>        locator-set.
>
>    Note that when a packet is LISP encapsulated, the source port number
>    in the outer UDP header needs to be set.  Selecting a random value
>    allows core routers which are attached to Link Aggregation Groups
>    (LAGs) to load-split the encapsulated packets across member links of
>    such LAGs.  Otherwise, core routers would see a single flow, since
>    packets have a source address of the ITR, for packets which are
>    originated by different EIDs at the source site.  A suggested setting
>    for the source port number computed by an ITR is a 5-tuple hash
>    function on the inner header, as described above.
>
> 6.5.  Changing the Contents of EID-to-RLOC Mappings
>
>    Since the LISP architecture uses a caching scheme to retrieve and
>    store EID-to-RLOC mappings, the only way an ITR can get a more up-to-
>    date mapping is to re-request the mapping.  However, the ITRs do not
>    know when the mappings change and the ETRs do not keep track of who
>    requested its mappings.  For scalability reasons, we want to maintain
>    this approach but need to provide a way for ETRs change their
>    mappings and inform the sites that are currently communicating with
>    the ETR site using such mappings.
>
>    When a locator record is added to the end of a locator-set, it is
>    easy to update mappings.  We assume new mappings will maintain the
>    same locator ordering as the old mapping but just have new locators
>    appended to the end of the list.  So some ITRs can have a new mapping
>    while other ITRs have only an old mapping that is used until they
>    time out.  When an ITR has only an old mapping but detects bits set
>    in the loc-reach-bits that correspond to locators beyond the list it
>    has cached, it simply ignores them.
>
>    When a locator record is removed from a locator-set, ITRs that have
>    the mapping cached will not use the removed locator because the xTRs
>    will set the loc-reach-bit to 0.  So even if the locator is in the
>    list, it will not be used.  For new mapping requests, the xTRs can
>    set the locator address to 0 as well as setting the corresponding
>    loc-reach-bit to 0.  This forces ITRs with old or new mappings to
>    avoid using the removed locator.
>
>    If many changes occur to a mapping over a long period of time, one
>    will find empty record slots in the middle of the locator-set and new
>    records appended to the locator-set.  At some point, it would be
>    useful to compact the locator-set so the loc-reach-bit settings can
>    be efficiently packed.
>
>    We propose here two approaches for locator-set compaction, one
>    operational and the other a protocol mechanism.  The operational
>    approach uses a clock sweep method.  The protocol approach uses the
>    concept of Solicit-Map-Requests.
>
> 6.5.1.  Clock Sweep
>
>    The clock sweep approach uses planning in advance and the use of
>    count-down TTLs to time out mappings that have already been cached.
>    The default setting for an EID-to-RLOC mapping TTL is 24 hours.  So
>    there is a 24 hour window to time out old mappings.  The following
>    clock sweep procedure is used:
>
>    1.  24 hours before a mapping change is to take effect, a network
>        administrator configures the ETRs at a site to start the clock
>        sweep window.
>
>    2.  During the clock sweep window, ETRs continue to send Map-Reply
>        messages with the current (unchanged) mapping records.  The TTL
>        for these mappings is set to 1 hour.
>
>    3.  24 hours later, all previous cache entries will have timed out,
>        and any active cache entries will time out within 1 hour.  During
>        this 1 hour window the ETRs continue to send Map-Reply messages
>        with the current (unchanged) mapping records with the TTL set to
>        1 minute.
>
>    4.  At the end of the 1 hour window, the ETRs will send Map-Reply
>        messages with the new (changed) mapping records.  So any active
>        caches can get the new mapping contents right away if not cached,
>        or in 1 minute if they had the mapping cached.
>
> 6.5.2.  Solicit-Map-Request (SMR)
>
>    Soliciting a Map-Request is a selective way for xTRs, at the site
>    where mappings change, to control the rate they receive requests for
>    Map-Reply messages.  SMRs are also used to tell remote ITRs to update
>    the mappings they have cached.
>
>    Since the xTRs don't keep track of remote ITRs that have cached their
>    mappings, they can not tell exactly who needs the new mapping
>    entries.  So an xTR will solicit Map-Requests from sites it is
>    currently sending encapsulated data to, and only from those sites.
>    The xTRs can locally decide the algorithm for how often and to how
>    many sites it sends SMR messages.
>
>    An SMR message is simply a bit set in an encapsulated data packet
>    (and a Map-Request message).  When an ETR at a remote site
>    decapsulates a data packet that has the SMR bit set, it can tell that
>    a new Map-Request message is being solicited.  Both the xTR that
>    sends the SMR message and the site that acts on the SMR message MUST
>    be rate-limited.
>
>    The following procedure shows how a SMR exchange occurs when a site
>    is doing locator-set compaction for an EID-to-RLOC mapping:
>
>    1.  When the database mappings in an ETR change, the ITRs at the site
>        begin to set the SMR bit in packets they encapsulate to the sites
>        they communicate with.
>
>    2.  A remote xTR which decapsulates a packet with the SMR bit set
>        will schedule sending a Map-Request message to the source locator
>        address of the encapsulated packet.  The nonce in the Map-Request
>        is copied from the nonce in the encapsulated data packet that has
>        the SMR bit set.
>
>    3.  The remote xTR retransmits the Map-Request slowly until it gets a
>        Map-Reply while continuing to use the cached mapping.
>
>    4.  The ETRs at the site with the changed mapping will reply to the
>        Map-Request with a Map-Reply message provided the Map-Request
>        nonce matches the nonce from the SMR.  The Map-Reply messages
>        SHOULD be rate limited.  This is important to avoid Map-Reply
>        implosion.
>
>    5.  The ETRs, at the site with the changed mapping, records the fact
>        that the site that sent the Map-Request has received the new
>        mapping data in the mapping cache entry for the remote site so
>        the loc-reach-bits are reflective of the new mapping for packets
>        going to the remote site.  The ETR then stops sending packets
>        with the SMR-bit set.
>
>    For security reasons an ITR MUST NOT process unsolicited Map-Replies.
>    The nonce MUST be carried from SMR packet, into the resultant Map-
>    Request, and then into Map-Reply to reduce spoofing attacks.
>
> 7.  Router Performance Considerations
>
>    LISP is designed to be very hardware-based forwarding friendly.  By
>    doing tunnel header prepending [RFC1955] and stripping instead of re-
>    writing addresses, existing hardware can support the forwarding model
>    with little or no modification.  Where modifications are required,
>    they should be limited to re-programming existing hardware rather
>    than requiring expensive design changes to hard-coded algorithms in
>    silicon.
>
>    A few implementation techniques can be used to incrementally
>    implement LISP:
>
>    o  When a tunnel encapsulated packet is received by an ETR, the outer
>       destination address may not be the address of the router.  This
>       makes it challenging for the control plane to get packets from the
>       hardware.  This may be mitigated by creating special FIB entries
>       for the EID-prefixes of EIDs served by the ETR (those for which
>       the router provides an RLOC translation).  These FIB entries are
>       marked with a flag indicating that control plane processing should
>       be performed.  The forwarding logic of testing for particular IP
>       protocol number value is not necessary.  No changes to existing,
>       deployed hardware should be needed to support this.
>
>    o  On an ITR, prepending a new IP header is as simple as adding more
>       bytes to a MAC rewrite string and prepending the string as part of
>       the outgoing encapsulation procedure.  Many routers that support
>       GRE tunneling [RFC2784] or 6to4 tunneling [RFC3056] can already
>       support this action.
>
>    o  When a received packet's outer destination address contains an EID
>       which is not intended to be forwarded on the routable topology
>       (i.e.  LISP 1.5), the source address of a data packet or the
>       router interface with which the source is associated (the
>       interface from which it was received) can be associated with a VRF
>       (Virtual Routing/Forwarding), in which a different (i.e. non-
>       congruent) topology can be used to find EID-to-RLOC mappings.
>
> 8.  Deployment Scenarios
>
>    This section will explore how and where ITRs and ETRs can be deployed
>    and will discuss the pros and cons of each deployment scenario.
>    There are two basic deployment trade-offs to consider: centralized
>    versus distributed caches and flat, recursive, or re-encapsulating
>    tunneling.
>
>    When deciding on centralized versus distributed caching, the
>    following issues should be considered:
>
>    o  Are the tunnel routers spread out so that the caches are spread
>       across all the memories of each router?
>
>    o  Should management "touch points" be minimized by choosing few
>       tunnel routers, just enough for redundancy?
>
>    o  In general, using more ITRs doesn't increase management load,
>       since caches are built and stored dynamically.  On the other hand,
>       more ETRs does require more management since EID-prefix-to-RLOC
>       mappings need to be explicitly configured.
>
>    When deciding on flat, recursive, or re-encapsulation tunneling, the
>    following issues should be considered:
>
>    o  Flat tunneling implements a single tunnel between source site and
>       destination site.  This generally offers better paths between
>       sources and destinations with a single tunnel path.
>
>    o  Recursive tunneling is when tunneled traffic is again further
>       encapsulated in another tunnel, either to implement VPNs or to
>       perform Traffic Engineering.  When doing VPN-based tunneling, the
>       site has some control since the site is prepending a new tunnel
>       header.  In the case of TE-based tunneling, the site may have
>       control if it is prepending a new tunnel header, but if the site's
>       ISP is doing the TE, then the site has no control.  Recursive
>       tunneling generally will result in suboptimal paths but at the
>       benefit of steering traffic to resource available parts of the
>       network.
>
>    o  The technique of re-encapsulation ensures that packets only
>       require one tunnel header.  So if a packet needs to be rerouted,
>       it is first decapsulated by the ETR and then re-encapsulated with
>       a new tunnel header using a new RLOC.
>
>    The next sub-sections will describe where tunnel routers can reside
>    in the network.
>
> 8.1.  First-hop/Last-hop Tunnel Routers
>
>    By locating tunnel routers close to hosts, the EID-prefix set is at
>    the granularity of an IP subnet.  So at the expense of more EID-
>    prefix-to-RLOC sets for the site, the caches in each tunnel router
>    can remain relatively small.  But caches always depend on the number
>    of non-aggregated EID destination flows active through these tunnel
>    routers.
>
>    With more tunnel routers doing encapsulation, the increase in control
>    traffic grows as well: since the EID-granularity is greater, more
>    Map-Requests and Map-Replies are traveling between more routers.
>
>    The advantage of placing the caches and databases at these stub
>    routers is that the products deployed in this part of the network
>    have better price-memory ratios then their core router counterparts.
>    Memory is typically less expensive in these devices and fewer routes
>    are stored (only IGP routes).  These devices tend to have excess
>    capacity, both for forwarding and routing state.
>
>    LISP functionality can also be deployed in edge switches.  These
>    devices generally have layer-2 ports facing hosts and layer-3 ports
>    facing the Internet.  Spare capacity is also often available in these
>    devices as well.
>
> 8.2.  Border/Edge Tunnel Routers
>
>    Using customer-edge (CE) routers for tunnel endpoints allows the EID
>    space associated with a site to be reachable via a small set of RLOCs
>    assigned to the CE routers for that site.
>
>    This offers the opposite benefit of the first-hop/last-hop tunnel
>    router scenario: the number of mapping entries and network management
>    touch points are reduced, allowing better scaling.
>
>    One disadvantage is that less of the network's resources are used to
>    reach host endpoints thereby centralizing the point-of-failure domain
>    and creating network choke points at the CE router.
>
>    Note that more than one CE router at a site can be configured with
>    the same IP address.  In this case an RLOC is an anycast address.
>    This allows resilience between the CE routers.  That is, if a CE
>    router fails, traffic is automatically routed to the other routers
>    using the same anycast address.  However, this comes with the
>    disadvantage where the site cannot control the entrance point when
>    the anycast route is advertised out from all border routers.
>
> 8.3.  ISP Provider-Edge (PE) Tunnel Routers
>
>    Use of ISP PE routers as tunnel endpoint routers gives an ISP control
>    over the location of the egress tunnel endpoints.  That is, the ISP
>    can decide if the tunnel endpoints are in the destination site (in
>    either CE routers or last-hop routers within a site) or at other PE
>    edges.  The advantage of this case is that two or more tunnel headers
>    can be avoided.  By having the PE be the first router on the path to
>    encapsulate, it can choose a TE path first, and the ETR can
>    decapsulate and re-encapsulate for a tunnel to the destination end
>    site.
>
>    An obvious disadvantage is that the end site has no control over
>    where its packets flow or the RLOCs used.
>
>    As mentioned in earlier sections a combination of these scenarios is
>    possible at the expense of extra packet header overhead, if both site
>    and provider want control, then recursive or re-encapsulating tunnels
>    are used.
>
> 9.  Traceroute Considerations
>
>    When a source host in a LISP site initiates a traceroute to a
>    destination host in another LISP site, it is highly desirable for it
>    to see the entire path.  Since packets are encapsulated from ITR to
>    ETR, the hop across the tunnel could be viewed as a single hop.
>    However, LISP traceroute will provide the entire path so the user can
>    see 3 distinct segments of the path from a source LISP host to a
>    destination LISP host:
>
>       Segment 1 (in source LISP site based on EIDs):
>
>           source-host ---> first-hop ... next-hop ---> ITR
>
>       Segment 2 (in the core network based on RLOCs):
>
>           ITR ---> next-hop ... next-hop ---> ETR
>
>       Segment 3 (in the destination LISP site based on EIDs):
>
>           ETR ---> next-hop ... last-hop ---> destination-host
>
>    For segment 1 of the path, ICMP Time Exceeded messages are returned
>    in the normal matter as they are today.  The ITR performs a TTL
>    decrement and test for 0 before encapsulating.  So the ITR hop is
>    seen by the traceroute source has an EID address (the address of
>    site-facing interface).
>
>    For segment 2 of the path, ICMP Time Exceeded messages are returned
>    to the ITR because the TTL decrement to 0 is done on the outer
>    header, so the destination of the ICMP messages are to the ITR RLOC
>    address, the source source RLOC address of the encapsulated
>    traceroute packet.  The ITR looks inside of the ICMP payload to
>    inspect the traceroute source so it can return the ICMP message to
>    the address of the traceroute client as well as retaining the core
>    router IP address in the ICMP message.  This is so the traceroute
>    client can display the core router address (the RLOC address) in the
>    traceroute output.  The ETR returns its RLOC address and responds to
>    the TTL decrement to 0 like the previous core routers did.
>
>    For segment 3, the next-hop router downstream from the ETR will be
>    decrementing the TTL for the packet that was encapsulated, sent into
>    the core, decapsulated by the ETR, and forwarded because it isn't the
>    final destination.  If the TTL is decremented to 0, any router on the
>    path to the destination of the traceroute, including the next-hop
>    router or destination, will send an ICMP Time Exceeded message to the
>    source EID of the traceroute client.  The ICMP message will be
>    encapsulated by the local ITR and sent back to the ETR in the
>    originated traceroute source site, where the packet will be delivered
>    to the host.
>
> 9.1.  IPv6 Traceroute
>
>    IPv6 traceroute follows the procedure described above since the
>    entire traceroute data packet is included in ICMP Time Exceeded
>    message payload.  Therefore, only the ITR needs to pay special
>    attention for forwarding ICMP messages back to the traceroute source.
>
> 9.2.  IPv4 Traceroute
>
>    For IPv4 traceroute, we cannot follow the above procedure since IPv4
>    ICMP Time Exceeded messages only include the invoking IP header and 8
>    bytes that follow the IP header.  Therefore, when a core router sends
>    an IPv4 Time Exceeded message to an ITR, all the ITR has in the ICMP
>    payload is the encapsulated header it prepended followed by a UDP
>    header.  The original invoking IP header, and therefore the identity
>    of the traceroute source is lost.
>
>    The solution we propose to solve this problem is to cache traceroute
>    IPv4 headers in the ITR and to match them up with corresponding IPv4
>    Time Exceeded messages received from core routers and the ETR.  The
>    ITR will use a circular buffer for caching the IPv4 and UDP headers
>    of traceroute packets.  It will select a 16-bit number as a key to
>    find them later when the IPv4 Time Exceeded messages are received.
>    When an ITR encapsulates an IPv4 traceroute packet, it will use the
>    16-bit number as the UDP source port in the encapsulating header.
>    When the ICMP Time Exceeded message is returned to the ITR, the UDP
>    header of the encapsulating header is present in the ICMP payload
>    thereby allowing the ITR to find the cached headers for the
>    traceroute source.  The ITR puts the cached headers in the payload
>    and sends the ICMP Time Exceeded message to the traceroute source
>    retaining the source address of the original ICMP Time Exceeded
>    message (a core router or the ETR of the site of the traceroute
>    destination).
>
> 9.3.  Traceroute using Mixed Locators
>
>    When either an IPv4 traceroute or IPv6 traceroute is originated and
>    the ITR encapsulates it in the other address family header, you
>    cannot get all 3 segments of the traceroute.  Segment 2 of the
>    traceroute can not be conveyed to the traceroute source since it is
>    expecting addresses from intermediate hops in the same address format
>    for the type of traceroute it originated.  Therefore, in this case,
>    segment 2 will make the tunnel look like one hop.  All the ITR has to
>    do to make this work is to not copy the inner TTL to the outer,
>    encapsulating header's TTL when a traceroute packet is encapsulated
>    using an RLOC from a different address family.  This will cause no
>    TTL decrement to 0 to occur in core routers between the ITR and ETR.
>
> 10.  Mobility Considerations
>
>    There are several kinds of mobility of which only some might be of
>    concern to LISP.  Essentially they are as follows.
>
> 10.1.  Site Mobility
>
>    A site wishes to change its attachment points to the Internet, and
>    its LISP Tunnel Routers will have new RLOCs when it changes upstream
>    providers.  Changes in EID-RLOC mappings for sites are expected to be
>    handled by configuration, outside of the LISP protocol.
>
> 10.2.  Slow Endpoint Mobility
>
>    An individual endpoint wishes to move, but is not concerned about
>    maintaining session continuity.  Renumbering is involved.  LISP can
>    help with the issues surrounding renumbering [RFC4192] [LISA96] by
>    decoupling the address space used by a site from the address spaces
>    used by its ISPs.  [RFC4984]
>
> 10.3.  Fast Endpoint Mobility
>
>    Fast endpoint mobility occurs when an endpoint moves relatively
>    rapidly, changing its IP layer network attachment point.  Maintenance
>    of session continuity is a goal.  This is where the Mobile IPv4
>    [RFC3344bis] and Mobile IPv6 [RFC3775] [RFC4866] mechanisms are used,
>    and primarily where interactions with LISP need to be explored.
>
>    The problem is that as an endpoint moves, it may require changes to
>    the mapping between its EID and a set of RLOCs for its new network
>    location.  When this is added to the overhead of mobile IP binding
>    updates, some packets might be delayed or dropped.
>
>    In IPv4 mobility, when an endpoint is away from home, packets to it
>    are encapsulated and forwarded via a home agent which resides in the
>    home area the endpoint's address belongs to.  The home agent will
>    encapsulate and forward packets either directly to the endpoint or to
>    a foreign agent which resides where the endpoint has moved to.
>    Packets from the endpoint may be sent directly to the correspondent
>    node, may be sent via the foreign agent, or may be reverse-tunneled
>    back to the home agent for delivery to the mobile node.  As the
>    mobile node's EID or available RLOC changes, LISP EID-to-RLOC
>    mappings are required for communication between the mobile node and
>    the home agent, whether via foreign agent or not.  As a mobile
>    endpoint changes networks, up to three LISP mapping changes may be
>    required:
>
>    o  The mobile node moves from an old location to a new visited
>       network location and notifies its home agent that it has done so.
>       The Mobile IPv4 control packets the mobile node sends pass through
>       one of the new visited network's ITRs, which needs a EID-RLOC
>       mapping for the home agent.
>
>    o  The home agent might not have the EID-RLOC mappings for the mobile
>       node's "care-of" address or its foreign agent in the new visited
>       network, in which case it will need to acquire them.
>
>    o  When packets are sent directly to the correspondent node, it may
>       be that no traffic has been sent from the new visited network to
>       the correspondent node's network, and the new visited network's
>       ITR will need to obtain an EID-RLOC mapping for the correspondent
>       node's site.
>
>    In addition, if the IPv4 endpoint is sending packets from the new
>    visited network using its original EID, then LISP will need to
>    perform a route-returnability check on the new EID-RLOC mapping for
>    that EID.
>
>    In IPv6 mobility, packets can flow directly between the mobile node
>    and the correspondent node in either direction.  The mobile node uses
>    its "care-of" address (EID).  In this case, the route-returnability
>    check would not be needed but one more LISP mapping lookup may be
>    required instead:
>
>    o  As above, three mapping changes may be needed for the mobile node
>       to communicate with its home agent and to send packets to the
>       correspondent node.
>
>    o  In addition, another mapping will be needed in the correspondent
>       node's ITR, in order for the correspondent node to send packets to
>       the mobile node's "care-of" address (EID) at the new network
>       location.
>
>    When both endpoints are mobile the number of potential mapping
>    lookups increases accordingly.
>
>    As a mobile node moves there are not only mobility state changes in
>    the mobile node, correspondent node, and home agent, but also state
>    changes in the ITRs and ETRs for at least some EID-prefixes.
>
>    The goal is to support rapid adaptation, with little delay or packet
>    loss for the entire system.  Heuristics can be added to LISP to
>    reduce the number of mapping changes required and to reduce the delay
>    per mapping change.  Also IP mobility can be modified to require
>    fewer mapping changes.  In order to increase overall system
>    performance, there may be a need to reduce the optimization of one
>    area in order to place fewer demands on another.
>
>    In LISP, one possibility is to "glean" information.  When a packet
>    arrives, the ETR could examine the EID-RLOC mapping and use that
>    mapping for all outgoing traffic to that EID.  It can do this after
>    performing a route-returnability check, to ensure that the new
>    network location does have a internal route to that endpoint.
>    However, this does not cover the case where an ITR (the node assigned
>    the RLOC) at the mobile-node location has been compromised.
>
>    Mobile IP packet exchange is designed for an environment in which all
>    routing information is disseminated before packets can be forwarded.
>    In order to allow the Internet to grow to support expected future
>    use, we are moving to an environment where some information may have
>    to be obtained after packets are in flight.  Modifications to IP
>    mobility should be considered in order to optimize the behavior of
>    the overall system.  Anything which decreases the number of new EID-
>    RLOC mappings needed when a node moves, or maintains the validity of
>    an EID-RLOC mapping for a longer time, is useful.
>
> 10.4.  Fast Network Mobility
>
>    In addition to endpoints, a network can be mobile, possibly changing
>    xTRs.  A "network" can be as small as a single router and as large as
>    a whole site.  This is different from site mobility in that it is
>    fast and possibly short-lived, but different from endpoint mobility
>    in that a whole prefix is changing RLOCs.  However, the mechanisms
>    are the same and there is no new overhead in LISP.  A map request for
>    any endpoint will return a binding for the entire mobile prefix.
>
>    If mobile networks become a more common occurrence, it may be useful
>    to revisit the design of the mapping service and allow for dynamic
>    updates of the database.
>
>    The issue of interactions between mobility and LISP needs to be
>    explored further.  Specific improvements to the entire system will
>    depend on the details of mapping mechanisms.  Mapping mechanisms
>    should be evaluated on how well they support session continuity for
>    mobile nodes.
>
> 10.5.  LISP Mobile Node Mobility
>
>    An mobile device can use the LISP infrastructure to achieve mobility
>    by implementing the LISP encapsulation and decapsulation functions
>    and acting as a simple ITR/ETR.  By doing this, such a "LISP mobile
>    node" can use topologically-independent EID IP addresses that are not
>    advertised into and do not impose a cost on the global routing
>    system.  These EIDs are maintained at the edges of the mapping system
>    (in LISP Map-Servers and Map-Resolvers) and are provided on demand to
>    only the correspondents of the LISP mobile node.
>
>    Refer to the LISP Mobility Architecture specification [LISP-MN] for
>    more details.
>
> 11.  Multicast Considerations
>
>    A multicast group address, as defined in the original Internet
>    architecture is an identifier of a grouping of topologically
>    independent receiver host locations.  The address encoding itself
>    does not determine the location of the receiver(s).  The multicast
>    routing protocol, and the network-based state the protocol creates,
>    determines where the receivers are located.
>
>    In the context of LISP, a multicast group address is both an EID and
>    a Routing Locator.  Therefore, no specific semantic or action needs
>    to be taken for a destination address, as it would appear in an IP
>    header.  Therefore, a group address that appears in an inner IP
>    header built by a source host will be used as the destination EID.
>    The outer IP header (the destination Routing Locator address),
>    prepended by a LISP router, will use the same group address as the
>    destination Routing Locator.
>
>    Having said that, only the source EID and source Routing Locator
>    needs to be dealt with.  Therefore, an ITR merely needs to put its
>    own IP address in the source Routing Locator field when prepending
>    the outer IP header.  This source Routing Locator address, like any
>    other Routing Locator address MUST be globally routable.
>
>    Therefore, an EID-to-RLOC mapping does not need to be performed by an
>    ITR when a received data packet is a multicast data packet or when
>    processing a source-specific Join (either by IGMPv3 or PIM).  But the
>    source Routing Locator is decided by the multicast routing protocol
>    in a receiver site.  That is, an EID to Routing Locator translation
>    is done at control-time.
>
>    Another approach is to have the ITR not encapsulate a multicast
>    packet and allow the the host built packet to flow into the core even
>    if the source address is allocated out of the EID namespace.  If the
>    RPF-Vector TLV [RPFV] is used by PIM in the core, then core routers
>    can RPF to the ITR (the Locator address which is injected into core
>    routing) rather than the host source address (the EID address which
>    is not injected into core routing).
>
>    To avoid any EID-based multicast state in the network core, the first
>    approach is chosen for LISP-Multicast.  Details for LISP-Multicast
>    and Interworking with non-LISP sites is described in specification
>    [MLISP].
>
> 12.  Security Considerations
>
>    It is believed that most of the security mechanisms will be part of
>    the mapping database service when using control plane procedures for
>    obtaining EID-to-RLOC mappings.  For data plane triggered mappings,
>    as described in this specification, protection is provided against
>    ETR spoofing by using Return- Routability mechanisms evidenced by the
>    use of a 4-byte Nonce field in the LISP encapsulation header.  The
>    nonce, coupled with the ITR accepting only solicited Map-Replies goes
>    a long way toward providing decent authentication.
>
>    LISP does not rely on a PKI infrastructure or a more heavy weight
>    authentication system.  These systems challenge the scalability of
>    LISP which was a primary design goal.
>
>    DoS attack prevention will depend on implementations rate-limiting
>    Map-Requests and Map-Replies to the control plane as well as rate-
>    limiting the number of data-triggered Map-Replies.
>
>    To deal with map-cache exhaustion attempts in an ITR/PTR, the
>    implementation should consider putting a maximum cap on the number of
>    entries stored with a reserve list for special or frequently accessed
>    sites.  This should be a configuration policy control set by the
>    network administrator who manages ITRs and PTRs.
>
> 13.  Prototype Plans and Status
>
>    The operator community has requested that the IETF take a practical
>    approach to solving the scaling problems associated with global
>    routing state growth.  This document offers a simple solution which
>    is intended for use in a pilot program to gain experience in working
>    on this problem.
>
>    The authors hope that publishing this specification will allow the
>    rapid implementation of multiple vendor prototypes and deployment on
>    a small scale.  Doing this will help the community:
>
>    o  Decide whether a new EID-to-RLOC mapping database infrastructure
>       is needed or if a simple, UDP-based, data-triggered approach is
>       flexible and robust enough.
>
>    o  Experiment with provider-independent assignment of EIDs while at
>       the same time decreasing the size of DFZ routing tables through
>       the use of topologically-aligned, provider-based RLOCs.
>
>    o  Determine whether multiple levels of tunneling can be used by ISPs
>       to achieve their Traffic Engineering goals while simultaneously
>       removing the more specific routes currently injected into the
>       global routing system for this purpose.
>
>    o  Experiment with mobility to determine if both acceptable
>       convergence and session continuity properties can be scalably
>       implemented to support both individual device roaming and site
>       service provider changes.
>
>    Here is a rough set of milestones:
>
>    1.  This draft will be the draft for interoperable implementations to
>        code against.  Interoperable implementations will be ready
>        beginning of 2009.
>
>    2.  Continue pilot deployment using LISP-ALT as the database mapping
>        mechanism.
>
>    3.  Continue prototyping and studying other database lookup schemes,
>        be it DNS, DHTs, CONS, ALT, NERD, or other mechanisms.
>
>    4.  Implement the LISP Multicast draft [MLISP].
>
>    5.  Implement the LISP Mobile Node draft [LISP-MN].
>
>    6.  Research more on how policy affects what gets returned in a Map-
>        Reply from an ETR.
>
>    7.  Continue to experiment with mixed locator-sets to understand how
>        LISP can help the IPv4 to IPv6 transition.
>
>    8.  Add more robustness to locator reachability between LISP sites.
>
>    As of this writing the following accomplishments have been achieved:
>
>    1.   A unit- and system-tested software switching implementation has
>         been completed on cisco NX-OS for this draft for both IPv4 and
>         IPv6 EIDs using a mixed locator-set of IPv4 and IPv6 locators.
>
>    2.   A unit- and system-tested software switching implementation on
>         cisco NX-OS has been completed for draft [ALT].
>
>    3.   A unit- and system-tested software switching implementation on
>         cisco NX-OS has been completed for draft [INTERWORK].  Support
>         for IPv4 translation is provided and PTR support for IPv4 and
>         IPv6 is provided.
>
>    4.   The cisco NX-OS implementation supports an experimental
>         mechanism for slow mobility.
>
>    5.   Dave Meyer, Vince Fuller, Darrel Lewis, Greg Shepherd, and
>         Andrew Partan continue to test all the features described above
>         on a dual-stack infrastructure.
>
>    6.   Darrel Lewis and Dave Meyer have deployed both LISP translation
>         and LISP PTR support in the pilot network.  Point your browser
>         to http://www.lisp4.net to see translation happening in action
>         so your non-LISP site can access a web server in a LISP site.
>
>    7.   Soon http://www.lisp6.net will work where your IPv6 LISP site
>         can talk to a IPv6 web server in a LISP site by using mixed
>         address-family based locators.
>
>    8.   An public domain implementation of LISP is underway.  See
>         [OPENLISP] for details.
>
>    9.   We have deployed Map-Resolvers and Map-Servers on the LISP pilot
>         network to gather experience with [LISP-MS].  The first layer of
>         the architecture are the xTRs which use Map-Servers for EID-
>         prefix registration and Map-Resolvers for EID-to-RLOC mapping
>         resolution.  The second layer are the Map-Resolvers and Map-
>         Servers which connect to the ALT BGP peering infrastructure.
>         And the third layer are ALT-routers which aggregate EID-prefixes
>         and forward Map-Requests.
>
>    10.  A cisco IOS implementation is underway which currently supports
>         IPv4 encapsulation and decapsulation features.
>
>    11.  A LISP router based LIG implementation is supported, deployed,
>         and used daily to debug and test the LISP pilot network.  See
>         [LIG] for details.
>
>    12.  A Linux implementation of LIG has been made available and
>         supported by Dave Meyer.  It can be run on any Linux system
>         which resides in either a LISP site or non-LISP site.  See [LIG]
>         for details.  Public domain code can be downloaded from
>         http://github.com/davidmeyer/lig/tree/master.
>
>    13.  An experimental implementation has been written for three
>         locator reachability algorithms.  One is called echo-noncing,
>         which is documented in this specification.  The other two are
>         called TCP-counts and RLOC-probing, which will be documented in
>         future drafts.
>
>    If interested in writing a LISP implementation, testing any of the
>    LISP implementations, or want to be part of the LISP pilot program,
>    please contact lisp@ietf.org.
>
> 14.  References
>
> 14.1.  Normative References
>
>    [RFC0768]  Postel, J., "User Datagram Protocol", STD 6, RFC 768,
>               August 1980.
>
>    [RFC1191]  Mogul, J. and S. Deering, "Path MTU discovery", RFC 1191,
>               November 1990.
>
>    [RFC1498]  Saltzer, J., "On the Naming and Binding of Network
>               Destinations", RFC 1498, August 1993.
>
>    [RFC1955]  Hinden, R., "New Scheme for Internet Routing and
>               Addressing (ENCAPS) for IPNG", RFC 1955, June 1996.
>
>    [RFC2119]  Bradner, S., "Key words for use in RFCs to Indicate
>               Requirement Levels", BCP 14, RFC 2119, March 1997.
>
>    [RFC2402]  Kent, S. and R. Atkinson, "IP Authentication Header",
>               RFC 2402, November 1998.
>
>    [RFC2434]  Narten, T. and H. Alvestrand, "Guidelines for Writing an
>               IANA Considerations Section in RFCs", BCP 26, RFC 2434,
>               October 1998.
>
>    [RFC2784]  Farinacci, D., Li, T., Hanks, S., Meyer, D., and P.
>               Traina, "Generic Routing Encapsulation (GRE)", RFC 2784,
>               March 2000.
>
>    [RFC3056]  Carpenter, B. and K. Moore, "Connection of IPv6 Domains
>               via IPv4 Clouds", RFC 3056, February 2001.
>
>    [RFC3168]  Ramakrishnan, K., Floyd, S., and D. Black, "The Addition
>               of Explicit Congestion Notification (ECN) to IP",
>               RFC 3168, September 2001.
>
>    [RFC3775]  Johnson, D., Perkins, C., and J. Arkko, "Mobility Support
>               in IPv6", RFC 3775, June 2004.
>
>    [RFC4423]  Moskowitz, R. and P. Nikander, "Host Identity Protocol
>               (HIP) Architecture", RFC 4423, May 2006.
>
>    [RFC4866]  Arkko, J., Vogt, C., and W. Haddad, "Enhanced Route
>               Optimization for Mobile IPv6", RFC 4866, May 2007.
>
>    [RFC4984]  Meyer, D., Zhang, L., and K. Fall, "Report from the IAB
>               Workshop on Routing and Addressing", RFC 4984,
>               September 2007.
>
> 14.2.  Informative References
>
>    [AFI]      IANA, "Address Family Indicators (AFIs)", ADDRESS FAMILY
>               NUMBERS http://www.iana.org/numbers.html, Febuary 2007.
>
>    [ALT]      Farinacci, D., Fuller, V., Meyer, D., and D. Lewis, "LISP
>               Alternative Topology (LISP-ALT)",
>               draft-ietf-lisp-alt-01.txt (work in progress), May 2009.
>
>    [APT]      Jen, D., Meisel, M., Massey, D., Wang, L., Zhang, B., and
>               L. Zhang, "APT: A Practical Transit Mapping Service",
>               draft-jen-apt-01.txt (work in progress), November 2007.
>
>    [CHIAPPA]  Chiappa, J., "Endpoints and Endpoint names: A Proposed
>               Enhancement to the Internet Architecture", Internet-
>               Draft http://www.chiappa.net/~jnc/tech/endpoints.txt,
>               1999.
>
>    [CONS]     Farinacci, D., Fuller, V., and D. Meyer, "LISP-CONS: A
>               Content distribution Overlay Network  Service for LISP",
>               draft-meyer-lisp-cons-03.txt (work in progress),
>               November 2007.
>
>    [DHTs]     Ratnasamy, S., Shenker, S., and I. Stoica, "Routing
>               Algorithms for DHTs: Some Open Questions", PDF
>               file http://www.cs.rice.edu/Conferences/IPTPS02/174.pdf.
>
>    [EMACS]    Brim, S., Farinacci, D., Meyer, D., and J. Curran, "EID
>               Mappings Multicast Across Cooperating Systems for LISP",
>               draft-curran-lisp-emacs-00.txt (work in progress),
>               November 2007.
>
>    [GSE]      "GSE - An Alternate Addressing Architecture for  IPv6",
>               draft-ietf-ipngwg-gseaddr-00.txt (work in progress), 1997.
>
>    [INTERWORK]
>               Lewis, D., Meyer, D., Farinacci, D., and V. Fuller,
>               "Interworking LISP with IPv4 and IPv6",
>               draft-ietf-lisp-interworking-00.txt (work in progress),
>               January 2009.
>
>    [LIG]      Farinacci, D. and D. Meyer, "LISP Internet Groper (LIG)",
>               draft-farinacci-lisp-lig-01.txt (work in progress),
>               May 2009.
>
>    [LISA96]   Lear, E., Katinsky, J., Coffin, J., and D. Tharp,
>               "Renumbering: Threat or Menace?", Usenix , September 1996.
>
>    [LISP-MAIN]
>               Farinacci, D., Fuller, V., Meyer, D., and D. Lewis,
>               "Locator/ID Separation Protocol (LISP)",
>               draft-farinacci-lisp-12.txt (work in progress),
>               March 2009.
>
>    [LISP-MN]  Farinacci, D., Fuller, V., Lewis, D., and D. Meyer, "LISP
>               Mobility Architecture", draft-meyer-lisp-mn-00.txt (work
>               in progress), July 2009.
>
>    [LISP-MS]  Farinacci, D. and V. Fuller, "LISP Map Server",
>               draft-ietf-lisp-ms-01.txt (work in progress), May 2009.
>
>    [LISP1]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
>               "Locator/ID Separation Protocol (LISP1) [Routable  ID
>               Version]",
>               Slide-set http://www.dinof.net/~dino/ietf/lisp1.ppt,
>               October 2006.
>
>    [LISP2]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
>               "Locator/ID Separation Protocol (LISP2) [DNS-based
>               Version]",
>               Slide-set http://www.dinof.net/~dino/ietf/lisp2.ppt,
>               November 2006.
>
>    [LISPDHT]  Mathy, L., Iannone, L., and O. Bonaventure, "LISP-DHT:
>               Towards a DHT to map identifiers onto locators",
>               draft-mathy-lisp-dht-00.txt (work in progress),
>               February 2008.
>
>    [LOC-ID-ARCH]
>               Meyer, D. and D. Lewis, "Architectural Implications of
>               Locator/ID  Separation",
>               draft-meyer-loc-id-implications-01.txt (work in progress),
>               Januaryr 2009.
>
>    [MLISP]    Farinacci, D., Meyer, D., Zwiebel, J., and S. Venaas,
>               "LISP for Multicast Environments",
>               draft-ietf-lisp-multicast-01.txt (work in progress),
>               May 2009.
>
>    [NERD]     Lear, E., "NERD: A Not-so-novel EID to RLOC Database",
>               draft-lear-lisp-nerd-04.txt (work in progress),
>               April 2008.
>
>    [OPENLISP]
>               Iannone, L. and O. Bonaventure, "OpenLISP Implementation
>               Report", draft-iannone-openlisp-implementation-01.txt
>               (work in progress), July 2008.
>
>    [RADIR]    Narten, T., "Routing and Addressing Problem Statement",
>               draft-narten-radir-problem-statement-00.txt (work in
>               progress), July 2007.
>
>    [RFC3344bis]
>               Perkins, C., "IP Mobility Support for IPv4, revised",
>               draft-ietf-mip4-rfc3344bis-05 (work in progress),
>               July 2007.
>
>    [RFC4192]  Baker, F., Lear, E., and R. Droms, "Procedures for
>               Renumbering an IPv6 Network without a Flag Day", RFC 4192,
>               September 2005.
>
>    [RPFV]     Wijnands, IJ., Boers, A., and E. Rosen, "The RPF Vector
>               TLV", draft-ietf-pim-rpf-vector-08.txt (work in progress),
>               January 2009.
>
>    [RPMD]     Handley, M., Huici, F., and A. Greenhalgh, "RPMD: Protocol
>               for Routing Protocol Meta-data  Dissemination",
>               draft-handley-p2ppush-unpublished-2007726.txt (work in
>               progress), July 2007.
>
>    [SHIM6]    Nordmark, E. and M. Bagnulo, "Level 3 multihoming shim
>               protocol", draft-ietf-shim6-proto-06.txt (work in
>               progress), October 2006.
>
> Appendix A.  Acknowledgments
>
>    An initial thank you goes to Dave Oran for planting the seeds for the
>    initial ideas for LISP.  His consultation continues to provide value
>    to the LISP authors.
>
>    A special and appreciative thank you goes to Noel Chiappa for
>    providing architectural impetus over the past decades on separation
>    of location and identity, as well as detailed review of the LISP
>    architecture and documents, coupled with enthusiasm for making LISP a
>    practical and incremental transition for the Internet.
>
>    The authors would like to gratefully acknowledge many people who have
>    contributed discussion and ideas to the making of this proposal.
>    They include Scott Brim, Andrew Partan, John Zwiebel, Jason Schiller,
>    Lixia Zhang, Dorian Kim, Peter Schoenmaker, Vijay Gill, Geoff Huston,
>    David Conrad, Mark Handley, Ron Bonica, Ted Seely, Mark Townsley,
>    Chris Morrow, Brian Weis, Dave McGrew, Peter Lothberg, Dave Thaler,
>    Eliot Lear, Shane Amante, Ved Kafle, Olivier Bonaventure, Luigi
>    Iannone, Robin Whittle, Brian Carpenter, Joel Halpern, Roger
>    Jorgensen, Ran Atkinson, Stig Venaas, Iljitsch van Beijnum, Roland
>    Bless, Dana Blair, Bill Lynch, Marc Woolward, Damien Saucez, Damian
>    Lezama, Attilla De Groot, Parantap Lahiri, and David Black.
>
>    In particular, we would like to thank Dave Meyer for his clever
>    suggestion for the name "LISP". ;-)
>
>    This work originated in the Routing Research Group (RRG) of the IRTF.
>    The individual submission [LISP-MAIN] was converted into this IETF
>    LISP working group draft.
>
> Authors' Addresses
>
>    Dino Farinacci
>    cisco Systems
>    Tasman Drive
>    San Jose, CA  95134
>    USA
>
>    Email: dino@cisco.com
>
>    Vince Fuller
>    cisco Systems
>    Tasman Drive
>    San Jose, CA  95134
>    USA
>
>    Email: vaf@cisco.com
>
>    Dave Meyer
>    cisco Systems
>    170 Tasman Drive
>    San Jose, CA
>    USA
>
>    Email: dmm@cisco.com
>
>    Darrel Lewis
>    cisco Systems
>    170 Tasman Drive
>    San Jose, CA
>    USA
>
>    Email: darlewis@cisco.com
>   
>
>
>
>
>
> ------------------------------------------------------------------------
>
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp
>   


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Enclosed with diffs. Can't post until IETF Monday.

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Network Working Group                                       D. Farinacci
Internet-Draft                                                 V. Fuller
Intended status: Experimental                                   D. Meyer
Expires: January 16, 2010                                       D. Lewis
                                                           cisco Systems
                                                           July 15, 2009


                 Locator/ID Separation Protocol (LISP)
                         draft-ietf-lisp-03.txt

Status of this Memo

   This Internet-Draft is submitted to IETF in full conformance with the
   provisions of BCP 78 and BCP 79.

   Internet-Drafts are working documents of the Internet Engineering
   Task Force (IETF), its areas, and its working groups.  Note that
   other groups may also distribute working documents as Internet-
   Drafts.

   Internet-Drafts are draft documents valid for a maximum of six months
   and may be updated, replaced, or obsoleted by other documents at any
   time.  It is inappropriate to use Internet-Drafts as reference
   material or to cite them other than as "work in progress."

   The list of current Internet-Drafts can be accessed at
   http://www.ietf.org/ietf/1id-abstracts.txt.

   The list of Internet-Draft Shadow Directories can be accessed at
   http://www.ietf.org/shadow.html.

   This Internet-Draft will expire on January 16, 2010.

Copyright Notice

   Copyright (c) 2009 IETF Trust and the persons identified as the
   document authors.  All rights reserved.

   This document is subject to BCP 78 and the IETF Trust's Legal
   Provisions Relating to IETF Documents in effect on the date of
   publication of this document (http://trustee.ietf.org/license-info).
   Please review these documents carefully, as they describe your rights
   and restrictions with respect to this document.







Farinacci, et al.       Expires January 16, 2010                [Page 1]
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Abstract

   This draft describes a simple, incremental, network-based protocol to
   implement separation of Internet addresses into Endpoint Identifiers
   (EIDs) and Routing Locators (RLOCs).  This mechanism requires no
   changes to host stacks and no major changes to existing database
   infrastructures.  The proposed protocol can be implemented in a
   relatively small number of routers.

   This proposal was stimulated by the problem statement effort at the
   Amsterdam IAB Routing and Addressing Workshop (RAWS), which took
   place in October 2006.


Table of Contents

   1.  Requirements Notation  . . . . . . . . . . . . . . . . . . . .  4
   2.  Introduction . . . . . . . . . . . . . . . . . . . . . . . . .  5
   3.  Definition of Terms  . . . . . . . . . . . . . . . . . . . . .  8
   4.  Basic Overview . . . . . . . . . . . . . . . . . . . . . . . . 12
     4.1.  Packet Flow Sequence . . . . . . . . . . . . . . . . . . . 14
   5.  Tunneling Details  . . . . . . . . . . . . . . . . . . . . . . 16
     5.1.  LISP IPv4-in-IPv4 Header Format  . . . . . . . . . . . . . 17
     5.2.  LISP IPv6-in-IPv6 Header Format  . . . . . . . . . . . . . 18
     5.3.  Tunnel Header Field Descriptions . . . . . . . . . . . . . 19
     5.4.  Dealing with Large Encapsulated Packets  . . . . . . . . . 21
       5.4.1.  A Stateless Solution to MTU Handling . . . . . . . . . 21
       5.4.2.  A Stateful Solution to MTU Handling  . . . . . . . . . 22
   6.  EID-to-RLOC Mapping  . . . . . . . . . . . . . . . . . . . . . 24
     6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats  . . . . . 24
       6.1.1.  LISP Packet Type Allocations . . . . . . . . . . . . . 26
       6.1.2.  Map-Request Message Format . . . . . . . . . . . . . . 26
       6.1.3.  EID-to-RLOC UDP Map-Request Message  . . . . . . . . . 28
       6.1.4.  Map-Reply Message Format . . . . . . . . . . . . . . . 29
       6.1.5.  EID-to-RLOC UDP Map-Reply Message  . . . . . . . . . . 32
       6.1.6.  Map-Register Message Format  . . . . . . . . . . . . . 32
     6.2.  Routing Locator Selection  . . . . . . . . . . . . . . . . 34
     6.3.  Routing Locator Reachability . . . . . . . . . . . . . . . 36
       6.3.1.  Echo Nonce Algorithm . . . . . . . . . . . . . . . . . 38
     6.4.  Routing Locator Hashing  . . . . . . . . . . . . . . . . . 39
     6.5.  Changing the Contents of EID-to-RLOC Mappings  . . . . . . 40
       6.5.1.  Clock Sweep  . . . . . . . . . . . . . . . . . . . . . 40
       6.5.2.  Solicit-Map-Request (SMR)  . . . . . . . . . . . . . . 41
   7.  Router Performance Considerations  . . . . . . . . . . . . . . 43
   8.  Deployment Scenarios . . . . . . . . . . . . . . . . . . . . . 44
     8.1.  First-hop/Last-hop Tunnel Routers  . . . . . . . . . . . . 45
     8.2.  Border/Edge Tunnel Routers . . . . . . . . . . . . . . . . 45
     8.3.  ISP Provider-Edge (PE) Tunnel Routers  . . . . . . . . . . 46



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   9.  Traceroute Considerations  . . . . . . . . . . . . . . . . . . 47
     9.1.  IPv6 Traceroute  . . . . . . . . . . . . . . . . . . . . . 48
     9.2.  IPv4 Traceroute  . . . . . . . . . . . . . . . . . . . . . 48
     9.3.  Traceroute using Mixed Locators  . . . . . . . . . . . . . 48
   10. Mobility Considerations  . . . . . . . . . . . . . . . . . . . 50
     10.1. Site Mobility  . . . . . . . . . . . . . . . . . . . . . . 50
     10.2. Slow Endpoint Mobility . . . . . . . . . . . . . . . . . . 50
     10.3. Fast Endpoint Mobility . . . . . . . . . . . . . . . . . . 50
     10.4. Fast Network Mobility  . . . . . . . . . . . . . . . . . . 52
     10.5. LISP Mobile Node Mobility  . . . . . . . . . . . . . . . . 52
   11. Multicast Considerations . . . . . . . . . . . . . . . . . . . 54
   12. Security Considerations  . . . . . . . . . . . . . . . . . . . 55
   13. Prototype Plans and Status . . . . . . . . . . . . . . . . . . 56
   14. References . . . . . . . . . . . . . . . . . . . . . . . . . . 59
     14.1. Normative References . . . . . . . . . . . . . . . . . . . 59
     14.2. Informative References . . . . . . . . . . . . . . . . . . 60
   Appendix A.  Acknowledgments . . . . . . . . . . . . . . . . . . . 63
   Authors' Addresses . . . . . . . . . . . . . . . . . . . . . . . . 64

































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1.  Requirements Notation

   The key words "MUST", "MUST NOT", "REQUIRED", "SHALL", "SHALL NOT",
   "SHOULD", "SHOULD NOT", "RECOMMENDED", "MAY", and "OPTIONAL" in this
   document are to be interpreted as described in [RFC2119].














































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2.  Introduction

   Many years of discussion about the current IP routing and addressing
   architecture have noted that its use of a single numbering space (the
   "IP address") for both host transport session identification and
   network routing creates scaling issues (see [CHIAPPA] and [RFC1498]).
   A number of scaling benefits would be realized by separating the
   current IP address into separate spaces for Endpoint Identifiers
   (EIDs) and Routing Locators (RLOCs); among them are:

   1.  Reduction of routing table size in the "default-free zone" (DFZ).
       Use of a separate numbering space for RLOCs will allow them to be
       assigned topologically (in today's Internet, RLOCs would be
       assigned by providers at client network attachment points),
       greatly improving aggregation and reducing the number of
       globally-visible, routable prefixes.

   2.  More cost-effective multihoming for sites that connect to
       different service providers where they can control their own
       policies for packet flow into the site without using extra
       routing table resources of core routers.

   3.  Easing of renumbering burden when clients change providers.
       Because host EIDs are numbered from a separate, non-provider-
       assigned and non-topologically-bound space, they do not need to
       be renumbered when a client site changes its attachment points to
       the network.

   4.  Traffic engineering capabilities that can be performed by network
       elements and do not depend on injecting additional state into the
       routing system.  This will fall out of the mechanism that is used
       to implement the EID/RLOC split (see Section 4).

   5.  Mobility without address changing.  Existing mobility mechanisms
       will be able to work in a locator/ID separation scenario.  It
       will be possible for a host (or a collection of hosts) to move to
       a different point in the network topology either retaining its
       home-based address or acquiring a new address based on the new
       network location.  A new network location could be a physically
       different point in the network topology or the same physical
       point of the topology with a different provider.

   This draft describes protocol mechanisms to achieve the desired
   functional separation.  For flexibility, the mechanism used for
   forwarding packets is decoupled from that used to determine EID to
   RLOC mappings.  This document covers the former.  For the later, see
   [CONS], [ALT], [EMACS], [RPMD], and [NERD].  This work is in response
   to and intended to address the problem statement that came out of the



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   RAWS effort [RFC4984].

   The Routing and Addressing problem statement can be found in [RADIR].

   This draft focuses on a router-based solution.  Building the solution
   into the network will facilitate incremental deployment of the
   technology on the Internet.  Note that while the detailed protocol
   specification and examples in this document assume IP version 4
   (IPv4), there is nothing in the design that precludes use of the same
   techniques and mechanisms for IPv6.  It should be possible for IPv4
   packets to use IPv6 RLOCs and for IPv6 EIDs to be mapped to IPv4
   RLOCs.

   Related work on host-based solutions is described in Shim6 [SHIM6]
   and HIP [RFC4423].  Related work on a router-based solution is
   described in [GSE].  This draft attempts to not compete or overlap
   with such solutions and the proposed protocol changes are expected to
   complement a host-based mechanism when Traffic Engineering
   functionality is desired.

   Some of the design goals of this proposal include:

   1.  Require no hardware or software changes to end-systems (hosts).

   2.  Minimize required changes to Internet infrastructure.

   3.  Be incrementally deployable.

   4.  Require no router hardware changes.

   5.  Minimize the number of routers which have to be modified.  In
       particular, most customer site routers and no core routers
       require changes.

   6.  Minimize router software changes in those routers which are
       affected.

   7.  Avoid or minimize packet loss when EID-to-RLOC mappings need to
       be performed.

   There are 4 variants of LISP, which differ along a spectrum of strong
   to weak dependence on the topological nature and possible need for
   routability of EIDs.  The variants are:








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   LISP 1:  uses EIDs that are routable through the RLOC topology for
      bootstrapping EID-to-RLOC mappings.  [LISP1] This was intended as
      a prototyping mechanism for early protocol implementation.  It is
      now deprecated and should not be deployed.

   LISP 1.5:  uses EIDs that are routable for bootstrapping EID-to-RLOC
      mappings; such routing is via a separate topology.

   LISP 2:  uses EIDS that are not routable and EID-to-RLOC mappings are
      implemented within the DNS.  [LISP2]

   LISP 3:  uses non-routable EIDs that are used as lookup keys for a
      new EID-to-RLOC mapping database.  Use of Distributed Hash Tables
      [DHTs] [LISPDHT] to implement such a database would be an area to
      explore.  Other examples of new mapping database services are
      [CONS], [ALT], [RPMD], [NERD], and [APT].

   This document on LISP 1.5, and LISP 3 variants, both of which rely on
   a router-based distributed cache and database for EID-to-RLOC
   mappings.  The LISP 1.0 mechanism works but does not allow reduction
   of routing information in the default-free-zone of the Internet.  The
   LISP 2 mechanisms are put on hold and may never come to fruition
   since it is not architecturally pure to have routing depend on
   directory and directory depend on routing.  The LISP 3 mechanisms
   will be documented elsewhere but may use the control-plane options
   specified in this specification.

























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3.  Definition of Terms

   Provider Independent (PI) Addresses:   an address block assigned from
      a pool where blocks are not associated with any particular
      location in the network (e.g. from a particular service provider),
      and is therefore not topologically aggregatable in the routing
      system.

   Provider Assigned (PA) Addresses:   a block of IP addresses that are
      assigned to a site by each service provider to which a site
      connects.  Typically, each block is sub-block of a service
      provider CIDR block and is aggregated into the larger block before
      being advertised into the global Internet.  Traditionally, IP
      multihoming has been implemented by each multi-homed site
      acquiring its own, globally-visible prefix.  LISP uses only
      topologically-assigned and aggregatable address blocks for RLOCs,
      eliminating this demonstrably non-scalable practice.

   Routing Locator (RLOC):   the IPv4 or IPv6 address of an egress
      tunnel router (ETR).  It is the output of a EID-to-RLOC mapping
      lookup.  An EID maps to one or more RLOCs.  Typically, RLOCs are
      numbered from topologically-aggregatable blocks that are assigned
      to a site at each point to which it attaches to the global
      Internet; where the topology is defined by the connectivity of
      provider networks, RLOCs can be thought of as PA addresses.
      Multiple RLOCs can be assigned to the same ETR device or to
      multiple ETR devices at a site.

   Endpoint ID (EID):   a 32-bit (for IPv4) or 128-bit (for IPv6) value
      used in the source and destination address fields of the first
      (most inner) LISP header of a packet.  The host obtains a
      destination EID the same way it obtains an destination address
      today, for example through a DNS lookup or SIP exchange.  The
      source EID is obtained via existing mechanisms used to set a
      host's "local" IP address.  An EID is allocated to a host from an
      EID-prefix block associated with the site where the host is
      located.  An EID can be used by a host to refer to other hosts.
      EIDs MUST NOT be used as LISP RLOCs.  Note that EID blocks may be
      assigned in a hierarchical manner, independent of the network
      topology, to facilitate scaling of the mapping database.  In
      addition, an EID block assigned to a site may have site-local
      structure (subnetting) for routing within the site; this structure
      is not visible to the global routing system.  When used in
      discussions with other Locator/ID separation proposals, a LISP EID
      will be called a "LEID".  Throughout this document, any references
      to "EID" refers to an LEID.





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   EID-prefix:   A power-of-2 block of EIDs which are allocated to a
      site by an address allocation authority.  EID-prefixes are
      associated with a set of RLOC addresses which make up a "database
      mapping".  EID-prefix allocations can be broken up into smaller
      blocks when an RLOC set is to be associated with the smaller EID-
      prefix.  A globally routed address block (whether PI or PA) is not
      an EID-prefix.  However, a globally routed address block may be
      removed from global routing and reused as an EID-prefix.  A site
      that receives an explicitly allocated EID-prefix may not use that
      EID-prefix as a globally routed prefix assigned to RLOCs.

   End-system:   is an IPv4 or IPv6 device that originates packets with
      a single IPv4 or IPv6 header.  The end-system supplies an EID
      value for the destination address field of the IP header when
      communicating globally (i.e. outside of its routing domain).  An
      end-system can be a host computer, a switch or router device, or
      any network appliance.

   Ingress Tunnel Router (ITR):   a router which accepts an IP packet
      with a single IP header (more precisely, an IP packet that does
      not contain a LISP header).  The router treats this "inner" IP
      destination address as an EID and performs an EID-to-RLOC mapping
      lookup.  The router then prepends an "outer" IP header with one of
      its globally-routable RLOCs in the source address field and the
      result of the mapping lookup in the destination address field.
      Note that this destination RLOC may be an intermediate, proxy
      device that has better knowledge of the EID-to-RLOC mapping closer
      to the destination EID.  In general, an ITR receives IP packets
      from site end-systems on one side and sends LISP-encapsulated IP
      packets toward the Internet on the other side.

      Specifically, when a service provider prepends a LISP header for
      Traffic Engineering purposes, the router that does this is also
      regarded as an ITR.  The outer RLOC the ISP ITR uses can be based
      on the outer destination address (the originating ITR's supplied
      RLOC) or the inner destination address (the originating hosts
      supplied EID).

   TE-ITR:   is an ITR that is deployed in a service provider network
      that prepends an additional LISP header for Traffic Engineering
      purposes.

   Egress Tunnel Router (ETR):   a router that accepts an IP packet
      where the destination address in the "outer" IP header is one of
      its own RLOCs.  The router strips the "outer" header and forwards
      the packet based on the next IP header found.  In general, an ETR
      receives LISP-encapsulated IP packets from the Internet on one
      side and sends decapsulated IP packets to site end-systems on the



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      other side.  ETR functionality does not have to be limited to a
      router device.  A server host can be the endpoint of a LISP tunnel
      as well.

   TE-ETR:   is an ETR that is deployed in a service provider network
      that strips an outer LISP header for Traffic Engineering purposes.

   xTR:   is a reference to an ITR or ETR when direction of data flow is
      not part of the context description. xTR refers to the router that
      is the tunnel endpoint.  Used synonymously with the term "Tunnel
      Router".  For example, "An xTR can be located at the Customer Edge
      (CE) router", meaning both ITR and ETR functionality is at the CE
      router.

   EID-to-RLOC Cache:   a short-lived, on-demand table in an ITR that
      stores, tracks, and is responsible for timing-out and otherwise
      validating EID-to-RLOC mappings.  This cache is distinct from the
      full "database" of EID-to-RLOC mappings, it is dynamic, local to
      the ITR(s), and relatively small while the database is
      distributed, relatively static, and much more global in scope.

   EID-to-RLOC Database:   a global distributed database that contains
      all known EID-prefix to RLOC mappings.  Each potential ETR
      typically contains a small piece of the database: the EID-to-RLOC
      mappings for the EID prefixes "behind" the router.  These map to
      one of the router's own, globally-visible, IP addresses.

   Recursive Tunneling:   when a packet has more than one LISP IP
      header.  Additional layers of tunneling may be employed to
      implement traffic engineering or other re-routing as needed.  When
      this is done, an additional "outer" LISP header is added and the
      original RLOCs are preserved in the "inner" header.  Any
      references to tunnels in this specification refers to dynamic
      encapsulating tunnels and never are they staticly configured.

   Reencapsulating Tunnels:   when a packet has no more than one LISP IP
      header (two IP headers total) and when it needs to be diverted to
      new RLOC, an ETR can decapsulate the packet (remove the LISP
      header) and prepend a new tunnel header, with new RLOC, on to the
      packet.  Doing this allows a packet to be re-routed by the re-
      encapsulating router without adding the overhead of additional
      tunnel headers.  Any references to tunnels in this specification
      refers to dynamic encapsulating tunnels and never are they
      staticly configured.







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   LISP Header:   a term used in this document to refer to the outer
      IPv4 or IPv6 header, a UDP header, and a LISP header, an ITR
      prepends or an ETR strips.

   Address Family Indicator (AFI):   a term used to describe an address
      encoding in a packet.  An address family currently pertains to an
      IPv4 or IPv6 address.  See [AFI] for details.

   Negative Mapping Entry:   also known as a negative cache entry, is an
      EID-to-RLOC entry where an EID-prefix is advertised or stored with
      no RLOCs.  That is, the locator-set for the EID-to-RLOC entry is
      empty or has an encoded locator count of 0.  This type of entry
      could be used to describe a prefix from a non-LISP site, which is
      explicitly not in the mapping database.  There are a set of well
      defined actions that are encoded in a Negative Map-Reply.

   Data Probe:   a LISP-encapsulated data packet where the inner header
      destination address equals the outer header destination address
      used to trigger a Map-Reply by a decapsulating ETR.  In addition,
      the original packet is decapsulated and delivered to the
      destination host.  A Data Probe is used in some of the mapping
      database designs to "probe" or request a Map-Reply from an ETR; in
      other cases, Map-Requests are used.  See each mapping database
      design for details.



























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4.  Basic Overview

   One key concept of LISP is that end-systems (hosts) operate the same
   way they do today.  The IP addresses that hosts use for tracking
   sockets, connections, and for sending and receiving packets do not
   change.  In LISP terminology, these IP addresses are called Endpoint
   Identifiers (EIDs).

   Routers continue to forward packets based on IP destination
   addresses.  When a packet is LISP encapsulated, these addresses are
   referred to as Routing Locators (RLOCs).  Most routers along a path
   between two hosts will not change; they continue to perform routing/
   forwarding lookups on the destination addresses.  For routers between
   the source host and the ITR as well as routers from the ETR to the
   destination host, the destination address is an EID.  For the routers
   between the ITR and the ETR, the destination address is an RLOC.

   This design introduces "Tunnel Routers", which prepend LISP headers
   on host-originated packets and strip them prior to final delivery to
   their destination.  The IP addresses in this "outer header" are
   RLOCs.  During end-to-end packet exchange between two Internet hosts,
   an ITR prepends a new LISP header to each packet and an egress tunnel
   router strips the new header.  The ITR performs EID-to-RLOC lookups
   to determine the routing path to the the ETR, which has the RLOC as
   one of its IP addresses.

   Some basic rules governing LISP are:

   o  End-systems (hosts) only send to addresses which are EIDs.  They
      don't know addresses are EIDs versus RLOCs but assume packets get
      to LISP routers, which in turn, deliver packets to the destination
      the end-system has specified.

   o  EIDs are always IP addresses assigned to hosts.

   o  LISP routers mostly deal with Routing Locator addresses.  See
      details later in Section 4.1 to clarify what is meant by "mostly".

   o  RLOCs are always IP addresses assigned to routers; preferably,
      topologically-oriented addresses from provider CIDR blocks.

   o  When a router originates packets it may use as a source address
      either an EID or RLOC.  When acting as a host (e.g. when
      terminating a transport session such as SSH, TELNET, or SNMP), it
      may use an EID that is explicitly assigned for that purpose.  An
      EID that identifies the router as a host MUST NOT be used as an
      RLOC; an EID is only routable within the scope of a site.  A
      typical BGP configuration might demonstrate this "hybrid" EID/RLOC



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      usage where a router could use its "host-like" EID to terminate
      iBGP sessions to other routers in a site while at the same time
      using RLOCs to terminate eBGP sessions to routers outside the
      site.

   o  EIDs are not expected to be usable for global end-to-end
      communication in the absence of an EID-to-RLOC mapping operation.
      They are expected to be used locally for intra-site communication.

   o  EID prefixes are likely to be hierarchically assigned in a manner
      which is optimized for administrative convenience and to
      facilitate scaling of the EID-to-RLOC mapping database.  The
      hierarchy is based on a address allocation hierarchy which is not
      dependent on the network topology.

   o  EIDs may also be structured (subnetted) in a manner suitable for
      local routing within an autonomous system.

   An additional LISP header may be prepended to packets by a transit
   router (i.e.  TE-ITR) when re-routing of the path for a packet is
   desired.  An obvious instance of this would be an ISP router that
   needs to perform traffic engineering for packets in flow through its
   network.  In such a situation, termed Recursive Tunneling, an ISP
   transit acts as an additional ingress tunnel router and the RLOC it
   uses for the new prepended header would be either an TE-ETR within
   the ISP (along intra-ISP traffic engineered path) or in an TE-ETR
   within another ISP (an inter-ISP traffic engineered path, where an
   agreement to build such a path exists).

   This specification mandates that no more than two LISP headers get
   prepended to a packet.  This avoids excessive packet overhead as well
   as possible encapsulation loops.  It is believed two headers is
   sufficient, where the first prepended header is used at a site for
   Location/Identity separation and second prepended header is used
   inside a service provider for Traffic Engineering purposes.

   Tunnel Routers can be placed fairly flexibly in a multi-AS topology.
   For example, the ITR for a particular end-to-end packet exchange
   might be the first-hop or default router within a site for the source
   host.  Similarly, the egress tunnel router might be the last-hop
   router directly-connected to the destination host.  Another example,
   perhaps for a VPN service out-sourced to an ISP by a site, the ITR
   could be the site's border router at the service provider attachment
   point.  Mixing and matching of site-operated, ISP-operated, and other
   tunnel routers is allowed for maximum flexibility.  See Section 8 for
   more details.





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4.1.  Packet Flow Sequence

   This section provides an example of the unicast packet flow with the
   following conditions:

   o  Source host "host1.abc.com" is sending a packet to
      "host2.xyz.com", exactly what host1 would do if the site was not
      using LISP.

   o  Each site is multi-homed, so each tunnel router has an address
      (RLOC) assigned from the service provider address block for each
      provider to which that particular tunnel router is attached.

   o  The ITR(s) and ETR(s) are directly connected to the source and
      destination, respectively.

   o  Data Probes are used to solicit Map-Replies versus using Map-
      Requests.  And the Data Probes are sent on the underlying topology
      (the LISP 1.0 variant) but could also be sent over an alternative
      topology (the LISP 1.5 variant) as it would in [ALT].

   Client host1.abc.com wants to communicate with server host2.xyz.com:

   1.  host1.abc.com wants to open a TCP connection to host2.xyz.com.
       It does a DNS lookup on host2.xyz.com.  An A/AAAA record is
       returned.  This address is used as the destination EID and the
       locally-assigned address of host1.abc.com is used as the source
       EID.  An IPv4 or IPv6 packet is built using the EIDs in the IPv4
       or IPv6 header and sent to the default router.

   2.  The default router is configured as an ITR.  The ITR must be able
       to map the EID destination to an RLOC of the ETR at the
       destination site.  The ITR prepends a LISP header to the packet,
       with one of its RLOCs as the source IPv4 or IPv6 address.  The
       destination EID from the original packet header is used as the
       destination IPv4 or IPv6 in the prepended LISP header.
       Subsequent packets, where the outer destination address is the
       destination EID will be sent until EID-to-RLOC mapping is
       learned.

   3.  In LISP 1, the packet is routed through the Internet as it is
       today.  In LISP 1.5, the packet is routed on a different topology
       which may have EID prefixes distributed and advertised in an
       aggregatable fashion.  In either case, the packet arrives at the
       ETR.  The router is configured to "punt" the packet to the
       router's processor.  See Section 7 for more details.  For LISP
       2.0 and 3.0, the behavior is not fully defined yet.




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   4.  The LISP header is stripped so that the packet can be forwarded
       by the router control plane.  The router looks up the destination
       EID in the router's EID-to-RLOC database (not the cache, but the
       configured data structure of RLOCs).  An EID-to-RLOC Map-Reply
       message is originated by the ETR and is addressed to the source
       RLOC in the LISP header of the original packet (this is the ITR).
       The source RLOC of the Map-Reply is one of the ETR's RLOCs.

   5.  The ITR receives the Map-Reply message, parses the message (to
       check for format validity) and stores the mapping information
       from the packet.  This information is put in the ITR's EID-to-
       RLOC mapping cache (this is the on-demand cache, the cache where
       entries time out due to inactivity).

   6.  Subsequent packets from host1.abc.com to host2.xyz.com will have
       a LISP header prepended by the ITR using the appropriate RLOC as
       the LISP header destination address learned from the ETR.  Note,
       the packet may be sent to a different ETR than the one which
       returned the Map-Reply due to the source site's hashing policy or
       the destination site's locator-set policy.

   7.  The ETR receives these packets directly (since the destination
       address is one of its assigned IP addresses), strips the LISP
       header and forwards the packets to the attached destination host.

   In order to eliminate the need for a mapping lookup in the reverse
   direction, an ETR MAY create a cache entry that maps the source EID
   (inner header source IP address) to the source RLOC (outer header
   source IP address) in a received LISP packet.  Such a cache entry is
   termed a "gleaned" mapping and only contains a single RLOC for the
   EID in question.  More complete information about additional RLOCs
   SHOULD be verified by sending a LISP Map-Request for that EID.  Both
   ITR and the ETR may also influence the decision the other makes in
   selecting an RLOC.  See Section 6 for more details.

















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5.  Tunneling Details

   This section describes the LISP Data Message which defines the
   tunneling header used to encapsulate IPv4 and IPv6 packets which
   contain EID addresses.  Even though the following formats illustrate
   IPv4-in-IPv4 and IPv6-in-IPv6 encapsulations, the other 2
   combinations are supported as well.

   Since additional tunnel headers are prepended, the packet becomes
   larger and in theory can exceed the MTU of any link traversed from
   the ITR to the ETR.  It is recommended, in IPv4 that packets do not
   get fragmented as they are encapsulated by the ITR.  Instead, the
   packet is dropped and an ICMP Too Big message is returned to the
   source.

   Based on informal surveys of large ISP traffic patterns, it appears
   that most transit paths can accommodate a path MTU of at least 4470
   bytes.  The exceptions, in terms of data rate, number of hosts
   affected, or any other metric are expected to be vanishingly small.

   To address MTU concerns, mainly raised on the RRG mailing list, the
   LISP deployment process will include collecting data during its pilot
   phase to either verify or refute the assumption about minimum
   available MTU.  If the assumption proves true and transit networks
   with links limited to 1500 byte MTUs are corner cases, it would seem
   more cost-effective to either upgrade or modify the equipment in
   those transit networks to support larger MTUs or to use existing
   mechanisms for accommodating packets that are too large.

   For this reason, there is currently no plan for LISP to add any new
   additional, complex mechanism for implementing fragmentation and
   reassembly in the face of limited-MTU transit links.  If analysis
   during LISP pilot deployment reveals that the assumption of
   essentially ubiquitous, 4470+ byte transit path MTUs, is incorrect,
   then LISP can be modified prior to protocol standardization to add
   support for one of the proposed fragmentation and reassembly schemes.
   Note that two simple existing schemes are detailed in Section 5.4.














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5.1.  LISP IPv4-in-IPv4 Header Format



        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version|  IHL  |Type of Service|          Total Length         |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Identification        |Flags|      Fragment Offset    |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   OH  |  Time to Live | Protocol =3D 17 |         Header Checksum       =
|
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                    Source Routing Locator                     |
    \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                 Destination Routing Locator                   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |       Source Port =3D xxxx      |       Dest Port =3D 4341      =
  |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   L / |                       Locator Reach Bits                      |
   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   S \ |S|E| rsvd-flags|                  Nonce                        |
   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version|  IHL  |Type of Service|          Total Length         |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Identification        |Flags|      Fragment Offset    |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   IH  |  Time to Live |    Protocol   |         Header Checksum       |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                           Source EID                          |
    \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                         Destination EID                       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
















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5.2.  LISP IPv6-in-IPv6 Header Format



        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version| Traffic Class |           Flow Label                  |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Payload Length        | Next Header=3D17|   Hop Limit   =
|
   v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
   O   +                                                               +
   u   |                                                               |
   t   +                     Source Routing Locator                    +
   e   |                                                               |
   r   +                                                               +
       |                                                               |
   H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   d   |                                                               |
   r   +                                                               +
       |                                                               |
   ^   +                  Destination Routing Locator                  +
   |   |                                                               |
    \  +                                                               +
     \ |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |       Source Port =3D xxxx      |       Dest Port =3D 4341      =
  |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   L / |                       Locator Reach Bits                      |
   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   S \ |S|E| rsvd-flags|                  Nonce                        |
   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version| Traffic Class |           Flow Label                  |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   /   |         Payload Length        |  Next Header  |   Hop Limit   |
   v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
   I   +                                                               +
   n   |                                                               |
   n   +                          Source EID                           +
   e   |                                                               |
   r   +                                                               +
       |                                                               |
   H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   d   |                                                               |



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   r   +                                                               +
       |                                                               |
   ^   +                        Destination EID                        +
   \   |                                                               |
    \  +                                                               +
     \ |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


5.3.  Tunnel Header Field Descriptions

   IH Header:  is the inner header, preserved from the datagram received
      from the originating host.  The source and destination IP
      addresses are EIDs.

   OH Header:  is the outer header prepended by an ITR.  The address
      fields contain RLOCs obtained from the ingress router's EID-to-
      RLOC cache.  The IP protocol number is "UDP (17)" from [RFC0768].
      The DF bit of the Flags field is set to 0.

   UDP Header:  contains a ITR selected source port when encapsulating a
      packet.  See Section 6.4 for details on the hash algorithm used
      select a source port based on the 5-tuple of the inner header.
      The destination port MUST be set to the well-known IANA assigned
      port value 4341.

   UDP Checksum:  this field MUST be transmitted as 0 and ignored on
      receipt by the ETR.  Note, even when the UDP checksum is
      transmitted as 0 an intervening NAT device can recalculate the
      checksum and rewrite the UDP checksum field to non-zero.  For
      performance reasons, the ETR MUST ignore the checksum and MUST not
      do a checksum computation.

   UDP Length:  for an IPv4 encapsulated packet, the inner header Total
      Length plus the UDP and LISP header lengths are used.  For an IPv6
      encapsulated packet, the inner header Payload Length plus the size
      of the IPv6 header (40 bytes) plus the size of the UDP and LISP
      headers are used.  The UDP header length is 8 bytes.  The LISP
      header length is 8 bytes when no loc-reach-bit header extensions
      are used.

   LISP Locator Reach Bits:  in the LISP header are set by an ITR to
      indicate to an ETR the reachability of the Locators in the source
      site.  Each RLOC in a Map-Reply is assigned an ordinal value from
      0 to n-1 (when there are n RLOCs in a mapping entry).  The Locator
      Reach Bits are numbered from 0 to n-1 from the right significant
      bit of the 32-bit field.  When a bit is set to 1, the ITR is
      indicating to the ETR the RLOC associated with the bit ordinal is



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      reachable.  See Section 6.3 for details on how an ITR can
      determine other ITRs at the site are reachable.  When a site has
      multiple EID-prefixes which result in multiple mappings (where
      each could have a different locator-set), the Locator Reach Bits
      setting in an encapsulated packet MUST reflect the mapping for the
      EID-prefix that the inner-header source EID address matches.

   S: this is the Solicit-Map-Request (SMR) bit.  See section
      Section 6.5.2 for details.

   E: this is the echo-nonce-request bit.  See section Section 6.3.1 for
      details.

   rsvd-flags:  this 6-bit field is reserved for future flag use.  It is
      set to 0 on transmit and ignored on receipt.

   LISP Nonce:  is a 24-bit value that is randomly generated by an ITR.
      The nonce is also used when the E-bit is set to request the nonce
      value to be echoed by the other side when packets are returned.
      See section Section 6.3.1 for more details.  The nonce is also
      used when SMR-bit is set to solicit the other side to send a Map-
      Request containing this nonce.  See section Section 6.5.2 for
      details.

   When doing Recursive Tunneling or ITR/PTR encapsulation:

   o  The OH header Time to Live field (or Hop Limit field, in case of
      IPv6) MUST be copied from the IH header Time to Live field.

   o  The OH header Type of Service field (or the Traffic Class field,
      in the case of IPv6) SHOULD be copied from the IH header Type of
      Service field (with one caveat, see below).

   When doing Re-encapsulated Tunneling:

   o  The new OH header Time to Live field SHOULD be copied from the
      stripped OH header Time to Live field.

   o  The new OH header Type of Service field SHOULD be copied from the
      stripped OH header Type of Service field (with one caveat, see
      below)..

   Copying the TTL serves two purposes: first, it preserves the distance
   the host intended the packet to travel; second, and more importantly,
   it provides for suppression of looping packets in the event there is
   a loop of concatenated tunnels due to misconfiguration.

   The ECN field occupies bits 6 and 7 of both the IPv4 Type of Service



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   field and the IPv6 Traffic Class field [RFC3168].  The ECN field
   requires special treatment in order to avoid discarding indications
   of congestion [RFC3168].  ITR encapsulation MUST copy the 2-bit ECN
   field from the inner header to the outer header.  Re-encapsulation
   MUST copy the 2-bit ECN field from the stripped outer header to the
   new outer header.  If the ECN field contains a congestion indication
   codepoint (the value is '11', the Congestion Experienced (CE)
   codepoint), then ETR decapsulation MUST copy the 2-bit ECN field from
   the stripped outer header to the surviving inner header that is used
   to forward the packet beyond the ETR.  These requirements preserve
   Congestion Experienced (CE) indications when a packet that uses ECN
   traverses a LISP tunnel and becomes marked with a CE indication due
   to congestion between the tunnel endpoints.

5.4.  Dealing with Large Encapsulated Packets

   In the event that the MTU issues mentioned above prove to be more
   serious than expected, this section proposes 2 simple mechanisms to
   deal with large packets.  One is stateless using IP fragmentation and
   the other is stateful using Path MTU Discovery [RFC1191].

   It is left to the implementor to decide if the stateless or stateful
   mechanism should be implemented.  Both or neither can be decided as
   well since it is a local decision in the ITR regarding how to deal
   with MTU issues.  Sites can interoperate with differing mechanisms.

   Both stateless and stateful mechanisms also apply to Reencapsulating
   and Recursive Tunneling.  So any actions reference below to an ITR
   also apply to an TE-ITR.

5.4.1.  A Stateless Solution to MTU Handling

   An ITR stateless solution to handle MTU issues is described as
   follows:

   1.  Define an architectural constant S for the maximum size of a
       packet, in bytes, an ITR would receive from a source inside of
       its site.

   2.  Define L to be the maximum size, in bytes, a packet of size S
       would be after the ITR prepends the LISP header, UDP header, and
       outer network layer header of size H.

   3.  Calculate: S + H =3D L.

   When an ITR receives a packet from a site-facing interface and adds H
   bytes worth of encapsulation to yield a packet size of L bytes, it
   resolves the MTU issue by first splitting the original packet into 2



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   equal-sized fragments.  A LISP header is then prepended to each
   fragment.  This will ensure that the new, encapsulated packets are of
   size (S/2 + H), which is always below the effective tunnel MTU.

   When an ETR receives encapsulated fragments, it treats them as two
   individually encapsulated packets.  It strips the LISP headers then
   forwards each fragment to the destination host of the destination
   site.  The two fragments are reassembled at the destination host into
   the single IP datagram that was originated by the source host.

   This behavior is performed by the ITR when the source host originates
   a packet with the DF field of the IP header is set to 0.  When the DF
   field of the IP header is set to 1, or the packet is an IPv6 packet
   originated by the source host, the ITR will drop the packet when the
   size is greater than L, and sends an ICMP Too Big message to the
   source with a value of S, where S is (L - H).

   When the outer header encapsulation uses an IPv4 header the DF bit is
   always set to 0.

   This specification recommends that L be defined as 1500.

5.4.2.  A Stateful Solution to MTU Handling

   An ITR stateful solution to handle MTU issues is describe as follows
   and was first introduced in [OPENLISP]:

   1.  The ITR will keep state of the effective MTU for each locator per
       mapping cache entry.  The effective MTU is what the core network
       can deliver along the path between ITR and ETR.

   2.  When an IPv4 encapsulated packet, with DF bit set to 0, exceeds
       what the core network can deliver, one of the intermediate
       routers on the path will send an ICMP Too Big message to the ITR.
       The ITR will parse the ICMP message to determine which locator is
       affected by the effective MTU change and then record the new
       effective MTU value in the mapping cache entry.

   3.  When a packet is received by the ITR from a source inside of the
       site and the size of the packet is greater than the effective MTU
       stored with the mapping cache entry associated with the
       destination EID the packet is for, the ITR will send an ICMP Too
       Big message back to the source.  The packet size advertised by
       the ITR in the ICMP Too Big message is the effective MTU minus
       the LISP encapsulation length.

   Even though this mechanism is stateful, it has advantages over the
   stateless IP fragmentation mechanism, by not involving the



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   destination host with reassembly of ITR fragmented packets.


















































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6.  EID-to-RLOC Mapping

6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats

   The following new UDP packet types are used to retrieve EID-to-RLOC
   mappings:


       0                   1                   2                   3
       0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Version|  IHL  |Type of Service|          Total Length         |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Identification        |Flags|      Fragment Offset    |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |  Time to Live | Protocol =3D 17 |         Header Checksum       =
|
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                    Source Routing Locator                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                 Destination Routing Locator                   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |           Source Port         |         Dest Port             |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       |                         LISP Message                          |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Version| Traffic Class |           Flow Label                  |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Payload Length        | Next Header=3D17|   Hop Limit   =
|
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                                                               +
       |                                                               |
       +                     Source Routing Locator                    +
       |                                                               |
       +                                                               +
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                                                               +



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       |                                                               |
       +                  Destination Routing Locator                  +
       |                                                               |
       +                                                               +
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |           Source Port         |         Dest Port             |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       |                         LISP Message                          |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


   The LISP UDP-based messages are the Map-Request and Map-Reply
   messages.  When a UDP Map-Request is sent, the UDP source port is
   chosen by the sender and the destination UDP port number is set to
   4342.  When a UDP Map-Reply is sent, the source UDP port number is
   set to 4342 and the destination UDP port number is copied from the
   source port of either the Map-Request or the invoking data packet.

   The UDP Length field will reflect the length of the UDP header and
   the LISP Message payload.

   The UDP Checksum is computed and set to non-zero for Map-Request and
   Map-Reply messages.  It MUST be checked on receipt and if the
   checksum fails, the packet MUST be dropped.

   LISP-CONS [CONS] use TCP to send LISP control messages.  The format
   of control messages includes the UDP header so the checksum and
   length fields can be used to protect and delimit message boundaries.

   This main LISP specification is the authoritative source for message
   format definitions for the Map-Request and Map-Reply messages.















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6.1.1.  LISP Packet Type Allocations

   This section will be the authoritative source for allocating LISP
   Type values.  Current allocations are:


       Reserved:                        0    b'0000'
       LISP Map-Request:                1    b'0001'
       LISP Map-Reply:                  2    b'0010'
       LISP Map-Register:               3    b'0011'
       LISP-CONS Open Message:          8    b'1000'
       LISP-CONS Push-Add Message:      9    b'1001'
       LISP-CONS Push-Delete Message:   10   b'1010'
       LISP-CONS Unreachable Message    11   b'1011'


6.1.2.  Map-Request Message Format



        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Type=3D1 |A|M|P|S|           Reserved            | Record Count  =
|
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Source-EID-AFI        |            ITR-AFI            |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                   Source EID Address  ...                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                Originating ITR RLOC Address ...               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |   Reserved    | EID mask-len  |        EID-prefix-AFI         |
   Rec +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                       EID-prefix  ...                         |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                   Map-Reply Record  ...                       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                     Mapping Protocol Data                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


   Packet field descriptions:







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   Type:   1 (Map-Request)

   A: This is an authoritative bit, which is set to 0 for UDP-based Map-
      Requests sent by an ITR.

   M: When set, it indicates a Map-Reply Record segment is included in
      the Map-Request.

   P: Indicates that a Map-Request should be treated as a "piggyback"
      locator reachability probe.  The receiver should respond with a
      Map-Reply with the P bit set and the nonce copied from the Map-
      Request.  Details on this usage will be provided in a future
      version of this draft.

   S: This is the SMR bit.  See Section 6.5.2 for details.

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this request message.  A
      record is comprised of the portion of the packet is labeled 'Rec'
      above and occurs the number of times equal to Record count.

   Nonce:  A 4-byte random value created by the sender of the Map-
      Request.  This nonce will be returned in the Map-Reply.

   Source-EID-AFI:  Address family of the "Source EID Address" field.

   ITR-AFI:  Address family of the "Originating ITR RLOC Address" field.

   Source EID Address:  This is the EID of the source host which
      originated the packet which is invoking this Map-Request.

   Originating ITR RLOC Address:  Used to give the ETR the option of
      returning a Map-Reply in the address-family of this locator.

   EID mask-len:  Mask length for EID prefix.

   EID-AFI:  Address family of EID-prefix according to [RFC2434]

   EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
      address-family.  When a Map-Request is sent by an ITR because a
      data packet is received for a destination where there is no
      mapping entry, the EID-prefix is set to the destination IP address
      of the data packet.  And the 'EID mask-len' is set to 32 or 128
      for IPv4 or IPv6, respectively.  When an xTR wants to query a site
      about the status of a mapping it already has cached, the EID-
      prefix used in the Map-Request has the same mask-length as the
      EID-prefix returned from the site when it sent a Map-Reply



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      message.

   Map-Reply Record:  When the R bit is set, this field is the size of
      the "Record" field in the Map-Reply format.  This Map-Reply record
      contains the EID-to-RLOC mapping entry associated with the Source
      EID.  This allows the ETR which will receive this Map-Request to
      cache the data if it chooses to do so.

   Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
      is optional and present when the UDP length indicates there is
      enough space in the packet to include it.

6.1.3.  EID-to-RLOC UDP Map-Request Message

   A Map-Request is sent from an ITR when it needs a mapping for an EID,
   wants to test an RLOC for reachability, or wants to refresh a mapping
   before TTL expiration.  For the initial case, the destination IP
   address used for the Map-Request is the destination-EID from the
   packet which had a mapping cache lookup failure.  For the later 2
   cases, the destination IP address used for the Map-Request is one of
   the RLOC addresses from the locator-set of the map cache entry.  In
   all cases, the UDP source port number for the Map-Request message is
   a randomly allocated 16-bit value and the UDP destination port number
   is set to the well-known destination port number 4342.  A successful
   Map-Reply updates the cached set of RLOCs associated with the EID
   prefix range.

   Map-Requests can also be LISP encapsulated using UDP destination port
   4341 when sent from an ITR to a Map-Resolver.  Likewise, Map-Requests
   are LISP encapsulated the same way from a Map-Server to an ETR.
   Details on encapsulated Map-Requests and Map-Resolvers can be found
   in [LISP-MS].

   Map-Requests MUST be rate-limited.  It is recommended that a Map-
   Request for the same EID-prefix be sent no more than once per second.
















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6.1.4.  Map-Reply Message Format



        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Type=3D2 |P|            Reserved                 | Record Count  =
|
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
   +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                          Record  TTL                          |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
   e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   c   |           Reserved            |            EID-AFI            |
   o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   r   |                          EID-prefix                           |
   d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
   | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   | o |           Unused Flags      |R|           Loc-AFI             |
   | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  \|                             Locator                           |
   +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                     Mapping Protocol Data                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


   Packet field descriptions:

   Type:   2 (Map-Reply)

   P: Indicates that the Map-Reply is in response to a "piggyback"
      locator reachability Map-Request.  The nonce field should contain
      a copy of the nonce value from the original Map-Request.  Details
      on this usage will be provided in a future version of this draft.

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this reply message.  A record
      is comprised of that portion of the packet labeled 'Record' above
      and occurs the number of times equal to Record count.

   Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
      that is echoed here in the Map-Reply.





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   Record TTL:  The time in minutes the recipient of the Map-Reply will
      store the mapping.  If the TTL is 0, the entry should be removed
      from the cache immediately.  If the value is 0xffffffff, the
      recipient can decide locally how long to store the mapping.

   Locator Count:  The number of Locator entries.  A locator entry
      comprises what is labeled above as 'Loc'.  The locator count can
      be 0 indicating there are no locators for the EID-prefix.

   EID mask-len:  Mask length for EID prefix.

   A: The Authoritative bit, when sent by a UDP-based message is always
      set by the ETR.  See [CONS] for TCP-based Map-Replies.

   ACT:  This 3-bit field describes negative Map-Reply actions.  These
      bits are used only when the 'Locator Count' field is set to 0.
      The action bits are encoded only in Map-Reply messages.  The
      actions defined are used by an ITR or PTR when a destination EID
      matches a negative mapping cache entry.  The current assigned
      values are:



      (0) No action:  No action is being conveyed by the sender of the
         Map-Reply message.

      (1) Natively-Forward:  The packet is not encapsulated or dropped
         but natively forwarded.

      (2) Drop:  The packet is dropped silently.

      (3) Send-Map-Request:  The packet invokes sending a Map-Request.

   EID-AFI:  Address family of EID-prefix according to [RFC2434].

   EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
      address-family.

   Priority:  each RLOC is assigned a unicast priority.  Lower values
      are more preferable.  When multiple RLOCs have the same priority,
      they may be used in a load-split fashion.  A value of 255 means
      the RLOC MUST NOT be used for unicast forwarding.

   Weight:  when priorities are the same for multiple RLOCs, the weight
      indicates how to balance unicast traffic between them.  Weight is
      encoded as a percentage of total unicast packets that match the
      mapping entry.  If a non-zero weight value is used for any RLOC,
      then all RLOCs must use a non-zero weight value and then the sum



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      of all weight values MUST equal 100.  If a zero value is used for
      any RLOC weight, then all weights MUST be zero and the receiver of
      the Map-Reply will decide how to load-split traffic.  See
      Section 6.4 for a suggested hash algorithm to distribute load
      across locators with same priority and equal weight values.  When
      a single RLOC exists in a mapping entry, the weight value MUST be
      set to 100 and ignored on receipt.

   M Priority:  each RLOC is assigned a multicast priority used by an
      ETR in a receiver multicast site to select an ITR in a source
      multicast site for building multicast distribution trees.  A value
      of 255 means the RLOC MUST NOT be used for joining a multicast
      distribution tree.

   M Weight:  when priorities are the same for multiple RLOCs, the
      weight indicates how to balance building multicast distribution
      trees across multiple ITRs.  The weight is encoded as a percentage
      of total number of trees build to the source site identified by
      the EID-prefix.  If a non-zero weight value is used for any RLOC,
      then all RLOCs must use a non-zero weight value and then the sum
      of all weight values MUST equal 100.  If a zero value is used for
      any RLOC weight, then all weights MUST be zero and the receiver of
      the Map-Reply will decide how to distribute multicast state across
      ITRs.

   Unused Flags:  set to 0 when sending and ignored on receipt.

   R: when this bit is set, the locator is known to be reachable from
      the Map-Reply sender's perspective.

   Locator:  an IPv4 or IPv6 address (as encoded by the 'Loc-AFI' field)
      assigned to an ETR or router acting as a proxy replier for the
      EID-prefix.  Note that the destination RLOC address MAY be an
      anycast address.  A source RLOC can be an anycast address as well.
      The source or destination RLOC MUST NOT be the broadcast address
      (255.255.255.255 or any subnet broadcast address known to the
      router), and MUST NOT be a link-local multicast address.  The
      source RLOC MUST NOT be a multicast address.  The destination RLOC
      SHOULD be a multicast address if it is being mapped from a
      multicast destination EID.

   Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
      is optional and present when the UDP length indicates there is
      enough space in the packet to include it.







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6.1.5.  EID-to-RLOC UDP Map-Reply Message

   When a Data Probe packet or a Map-Request triggers a Map-Reply to be
   sent, the RLOCs associated with the EID-prefix matched by the EID in
   the original packet destination IP address field will be returned.
   The RLOCs in the Map-Reply are the globally-routable IP addresses of
   the ETR but are not necessarily reachable; separate testing of
   reachability is required.

   Note that a Map-Reply may contain different EID-prefix granularity
   (prefix + length) than the Map-Request which triggers it.  This might
   occur if a Map-Request were for a prefix that had been returned by an
   earlier Map-Reply.  In such a case, the requester updates its cache
   with the new prefix information and granularity.  For example, a
   requester with two cached EID-prefixes that are covered by a Map-
   Reply containing one, less-specific prefix, replaces the entry with
   the less-specific EID-prefix.  Note that the reverse, replacement of
   one less-specific prefix with multiple more-specific prefixes, can
   also occur but not by removing the less-specific prefix rather by
   adding the more-specific prefixes which during a lookup will override
   the less-specific prefix.

   Replies SHOULD be sent for an EID-prefix no more often than once per
   second to the same requesting router.  For scalability, it is
   expected that aggregation of EID addresses into EID-prefixes will
   allow one Map-Reply to satisfy a mapping for the EID addresses in the
   prefix range thereby reducing the number of Map-Request messages.

   The addresses for a encapsulated data packets or Map-Request message
   are swapped and used for sending the Map-Reply.  The UDP source and
   destination ports are swapped as well.  That is, the source port in
   the UDP header for the Map-Reply is set to the well-known UDP port
   number 4342.

   Map-Reply records can have an empty locator-set.  This type of a Map-
   Reply is called a Negative Map-Reply.  Negative Map-Replies convey
   special actions by the sender to the ITR or PTR which have solicited
   the Map-Reply.  There are two primary applications for Negative Map-
   Replies.  The first is for a Map-Resolver to instruct an ITR or PTR
   when a destination is for a LISP site versus a non-LISP site.  And
   the other is to source quench Map-Requests which are sent for non-
   allocated EIDs.

6.1.6.  Map-Register Message Format

   The usage details of the Map-Register message can be found in
   specification [LISP-MS].  This section solely defines the message
   format.



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   The message is sent in a UDP with a destination UDP port 4342 and a
   randomly selected UDP port number.  Before an IPv4 or IPv6 network
   layer header is prepended, an AH header is prepended to carry
   authentication information.  The format conforms to the IPsec
   specification [RFC2402].  The Map-Register message will use transport
   mode by setting the IP protocol number field or the IPv6 next-header
   field to 51.

   The AH header from [RFC2402] is:



        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       | Next Header   |  Payload Len  |          RESERVED             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                 Security Parameters Index (SPI)               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                    Sequence Number Field                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                Authentication Data (variable)                 |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


   The Next Header field is set to UDP.  The SPI field is set to 0
   (since no Security Association or Key Exchange protocol is being
   used).  The Sequence Number is a randomly chosen value by the sender.
   The Authentication Data is 16 bytes and holds a MD5 HMAC.

   The Map-Register message format is:


















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        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Type=3D3 |P|            Reserved                 | Record Count  =
|
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
   +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                          Record  TTL                          |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
   e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   c   |           Reserved            |            EID-AFI            |
   o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   r   |                          EID-prefix                           |
   d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
   | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   | o |           Unused Flags      |R|           Loc-AFI             |
   | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  \|                             Locator                           |
   +-> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+


   Packet field descriptions:

   Type:   3 (Map-Register)

   P: Set to 1 by an ETR which sends a Map-Register message requesting
      for the Map-Server to proxy Map-Reply.  The Map-Server will send
      non-authoritative Map-Replies on behalf of the ETR.  Details on
      this usage will be provided in a future version of this draft.

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this Map-Register message.  A
      record is comprised of that portion of the packet labeled 'Record'
      above and occurs the number of times equal to Record count.

   Nonce:  The Nonce field is set to 0 in Map-Register messages.

   The definition of the rest of the Map-Register can be found in the
   Map-Reply section.

6.2.  Routing Locator Selection

   Both client-side and server-side may need control over the selection
   of RLOCs for conversations between them.  This control is achieved by
   manipulating the Priority and Weight fields in EID-to-RLOC Map-Reply



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   messages.  Alternatively, RLOC information may be gleaned from
   received tunneled packets or EID-to-RLOC Map-Request messages.

   The following enumerates different scenarios for choosing RLOCs and
   the controls that are available:

   o  Server-side returns one RLOC.  Client-side can only use one RLOC.
      Server-side has complete control of the selection.

   o  Server-side returns a list of RLOC where a subset of the list has
      the same best priority.  Client can only use the subset list
      according to the weighting assigned by the server-side.  In this
      case, the server-side controls both the subset list and load-
      splitting across its members.  The client-side can use RLOCs
      outside of the subset list if it determines that the subset list
      is unreachable (unless RLOCs are set to a Priority of 255).  Some
      sharing of control exists: the server-side determines the
      destination RLOC list and load distribution while the client-side
      has the option of using alternatives to this list if RLOCs in the
      list are unreachable.

   o  Server-side sets weight of 0 for the RLOC subset list.  In this
      case, the client-side can choose how the traffic load is spread
      across the subset list.  Control is shared by the server-side
      determining the list and the client determining load distribution.
      Again, the client can use alternative RLOCs if the server-provided
      list of RLOCs are unreachable.

   o  Either side (more likely on the server-side ETR) decides not to
      send a Map-Request.  For example, if the server-side ETR does not
      send Map-Requests, it gleans RLOCs from the client-side ITR,
      giving the client-side ITR responsibility for bidirectional RLOC
      reachability and preferability.  Server-side ETR gleaning of the
      client-side ITR RLOC is done by caching the inner header source
      EID and the outer header source RLOC of received packets.  The
      client-side ITR controls how traffic is returned and can alternate
      using an outer header source RLOC, which then can be added to the
      list the server-side ETR uses to return traffic.  Since no
      Priority or Weights are provided using this method, the server-
      side ETR must assume each client-side ITR RLOC uses the same best
      Priority with a Weight of zero.  In addition, since EID-prefix
      encoding cannot be conveyed in data packets, the EID-to-RLOC cache
      on tunnel routers can grow to be very large.

   RLOCs that appear in EID-to-RLOC Map-Reply messages are considered
   reachable.  The Map-Reply and the database mapping service does not
   provide any reachability status for Locators.  This is done outside
   of the mapping service.  See next section for details.



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6.3.  Routing Locator Reachability

   There are 4 methods for determining when a Locator is either
   reachable or has become unreachable:

   1.  Locator reachability is determined by an ETR by examining the
       Loc-Reach-Bits from a LISP header of a encapsulated data packet
       which is provided by an ITR when an ITR encapsulates data.

   2.  Locator unreachability is determined by an ITR by receiving ICMP
       Network or Host Unreachable messages.

   3.  Locator unreachability can also be determined by an BGP-enabled
       ITR when there is no prefix matching a Locator address from the
       BGP RIB.

   4.  Locator unreachability is determined when a host sends an ICMP
       Port Unreachable message.  This occurs when an ITR may not use
       any methods of interworking. one which is describe in [INTERWORK]
       and the encapsulated data packet is received by a host at the
       destination non-LISP site.

   5.  Locator reachability is determined by receiving a Map-Reply
       message from a ETR's Locator address in response to a previously
       sent Map-Request.

   6.  Locator reachability can also be determined by receiving packets
       encapsulated by the ITR assigned to the locator address.

   When determining Locator reachability by examining the Loc-Reach-Bits
   from the LISP encapsulate data packet, an ETR will receive up to date
   status from the ITR closest to the Locators at the source site.  The
   ITRs at the source site can determine reachability when running their
   IGP at the site.  When the ITRs are deployed on CE routers, typically
   a default route is injected into the site's IGP from each of the
   ITRs.  If an ITR goes down, the CE-PE link goes down, or the PE
   router goes down, the CE router withdraws the default route.  This
   allows the other ITRs at the site to determine one of the Locators
   has gone unreachable.

   The Locators listed in a Map-Reply are numbered with ordinals 0 to
   n-1.  The Loc-Reach-Bits in a LISP Data Message are numbered from 0
   to n-1 starting with the least significant bit numbered as 0.  So,
   for example, if the ITR with locator listed as the 3rd Locator
   position in the Map-Reply goes down, all other ITRs at the site will
   have the 3rd bit from the right cleared (the bit that corresponds to
   ordinal 2).




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   When an ETR decapsulates a packet, it will look for a change in the
   Loc-Reach-Bits value.  When a bit goes from 1 to 0, the ETR will
   refrain from encapsulating packets to the Locator that has just gone
   unreachable.  It can start using the Locator again when the bit that
   corresponds to the Locator goes from 0 to 1.  Loc-Reach-Bits are
   associated with a locator-set per EID-prefix.  Therefore, when a
   locator becomes unreachable, the loc-reach-bit that corresponds to
   that locator's position in the list returned by the last Map-Reply
   will be set to zero for that particular EID-prefix.

   When ITRs at the site are not deployed in CE routers, the IGP can
   still be used to determine the reachability of Locators provided they
   are injected a stub links into the IGP.  This is typically done when
   a /32 address is configured on a loopback interface.

   When ITRs receive ICMP Network or Host Unreachable messages as a
   method to determine unreachability, they will refrain from using
   Locators which are described in Locator lists of Map-Replies.
   However, using this approach is unreliable because many network
   operators turn off generation of ICMP Unreachable messages.

   If an ITR does receive an ICMP Network or Host Unreachable message,
   it MAY originate its own ICMP Unreachable message destined for the
   host that originated the data packet the ITR encapsulated.

   Also, BGP-enabled ITRs can unilaterally examine the BGP RIB to see if
   a locator address from a locator-set in a mapping entry matches a
   prefix.  If it does not find one and BGP is running in the Default
   Free Zone (DFZ), it can decide to not use the locator even though the
   Loc-Reach-Bits indicate the locator is up.  In this case, the path
   from the ITR to the ETR that is assigned the locator is not
   available.  More details are in [LOC-ID-ARCH].

   Optionally, an ITR can send a Map-Request to a Locator and if a Map-
   Reply is returned, reachability of the Locator has been determined.
   Obviously, sending such probes increases the number of control
   messages originated by tunnel routers for active flows, so Locators
   are assumed to be reachable when they are advertised.

   This assumption does create a dependency: Locator unreachability is
   detected by the receipt of ICMP Host Unreachable messages.  When an
   Locator has been determined to be unreachable, it is not used for
   active traffic; this is the same as if it were listed in a Map-Reply
   with priority 255.

   The ITR can test the reachability of the unreachable Locator by
   sending periodic Requests.  Both Requests and Replies MUST be rate-
   limited.  Locator reachability testing is never done with data



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   packets since that increases the risk of packet loss for end-to-end
   sessions.

   When an ETR decapsulates a packet, it knows that it is reachable from
   the encapsulating ITR because that is how the packet arrived.  In
   most cases, the ETR can also reach the ITR but cannot assume this to
   be true due to the possibility of path assymetry.  In the presence of
   unidirectional traffic flow from an ITR to an ETR, the ITR should not
   use the lack of return traffic as an indication that the ETR is
   unreachable.  Instead, it must use an alternate mechanisms to
   determine reachability.

6.3.1.  Echo Nonce Algorithm

   When there is bidirectional data flow between a pair of locators, a
   simple mechanism called "nonce echoing" can be used to determine
   reachability between an ITR and ETR.  When an ITR wants to solicit a
   nonce echo, it sets the E-bit and places a 24-bit nonce in the LISP
   header of the next encapsulated data packet.

   When this packet is received by the ETR, the encapsulated packet is
   forwarded as normal.  When the ETR next sends a data packet to the
   ITR, it includes the nonce received earlier with the E-bit cleared.
   The ITR sees this "echoed nonce" and knows the path to and from the
   ETR is up.

   The ITR will set the E-bit for every packet it sends while in echo-
   nonce-request state.  The time the ITR waits to process the echoed
   nonce before it determines the path is unreachable is variable and a
   choice left for the implementation.

   If the ITR is receiving packets from the ETR but does not see the
   nonce echoed while being in echo-nonce-request state, then the path
   to the ETR is unreachable.  This decision may be overridden by other
   locator reachability algorithms.  Once the ITR determines the path to
   the ETR is down it can switch to another locator for that EID-prefix.

   Note that "ITR" and "ETR" are relative terms here.  Both devices must
   be implementing both ITR and ETR functionality for the echo nonce
   mechanism to operate.

   The ITR and ETR may both go into echo-nonce-request state at the same
   time.  The number of packets sent or the time during which echo nonce
   requests are sent is an implementation specific setting.  However,
   when an ITR is in echo-nonce-request state, it can echo the ETR's
   nonce in the next set of packets that it encapsulates and then
   subsequently, continue sending echo-nonce-request packets.




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   This mechanism does not completely solve the forward path
   reachability problem as traffic may be unidirectional.  That is, the
   ETR receiving traffic at a site may not may not be the same device as
   an ITR which transmits traffic from that site or the site to site
   traffic is unidirectional so there is no ITR returning traffic.

   Note that other locator reachability mechanisms are being researched
   and can be used to compliment or even override the Echo Nonce
   Algorithm.

6.4.  Routing Locator Hashing

   When an ETR provides an EID-to-RLOC mapping in a Map-Reply message to
   a requesting ITR, the locator-set for the EID-prefix may contain
   different priority values for each locator address.  When more than
   one best priority locator exists, the ITR can decide how to load
   share traffic against the corresponding locators.

   The following hash algorithm may be used by an ITR to select a
   locator for a packet destined to an EID for the EID-to-RLOC mapping:

   1.  Either a source and destination address hash can be used or the
       traditional 5-tuple hash which includes the source and
       destination addresses, source and destination TCP, UDP, or SCTP
       port numbers and the IP protocol number field or IPv6 next-
       protocol fields of a packet a host originates from within a LISP
       site.  When a packet is not a TCP, UDP, or SCTP packet, the
       source and destination addresses only from the header are used to
       compute the hash.

   2.  Take the hash value and divide it by the number of locators
       stored in the locator-set for the EID-to-RLOC mapping.

   3.  The remainder will be yield a value of 0 to "number of locators
       minus 1".  Use the remainder to select the locator in the
       locator-set.

   Note that when a packet is LISP encapsulated, the source port number
   in the outer UDP header needs to be set.  Selecting a random value
   allows core routers which are attached to Link Aggregation Groups
   (LAGs) to load-split the encapsulated packets across member links of
   such LAGs.  Otherwise, core routers would see a single flow, since
   packets have a source address of the ITR, for packets which are
   originated by different EIDs at the source site.  A suggested setting
   for the source port number computed by an ITR is a 5-tuple hash
   function on the inner header, as described above.





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6.5.  Changing the Contents of EID-to-RLOC Mappings

   Since the LISP architecture uses a caching scheme to retrieve and
   store EID-to-RLOC mappings, the only way an ITR can get a more up-to-
   date mapping is to re-request the mapping.  However, the ITRs do not
   know when the mappings change and the ETRs do not keep track of who
   requested its mappings.  For scalability reasons, we want to maintain
   this approach but need to provide a way for ETRs change their
   mappings and inform the sites that are currently communicating with
   the ETR site using such mappings.

   When a locator record is added to the end of a locator-set, it is
   easy to update mappings.  We assume new mappings will maintain the
   same locator ordering as the old mapping but just have new locators
   appended to the end of the list.  So some ITRs can have a new mapping
   while other ITRs have only an old mapping that is used until they
   time out.  When an ITR has only an old mapping but detects bits set
   in the loc-reach-bits that correspond to locators beyond the list it
   has cached, it simply ignores them.

   When a locator record is removed from a locator-set, ITRs that have
   the mapping cached will not use the removed locator because the xTRs
   will set the loc-reach-bit to 0.  So even if the locator is in the
   list, it will not be used.  For new mapping requests, the xTRs can
   set the locator address to 0 as well as setting the corresponding
   loc-reach-bit to 0.  This forces ITRs with old or new mappings to
   avoid using the removed locator.

   If many changes occur to a mapping over a long period of time, one
   will find empty record slots in the middle of the locator-set and new
   records appended to the locator-set.  At some point, it would be
   useful to compact the locator-set so the loc-reach-bit settings can
   be efficiently packed.

   We propose here two approaches for locator-set compaction, one
   operational and the other a protocol mechanism.  The operational
   approach uses a clock sweep method.  The protocol approach uses the
   concept of Solicit-Map-Requests.

6.5.1.  Clock Sweep

   The clock sweep approach uses planning in advance and the use of
   count-down TTLs to time out mappings that have already been cached.
   The default setting for an EID-to-RLOC mapping TTL is 24 hours.  So
   there is a 24 hour window to time out old mappings.  The following
   clock sweep procedure is used:





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   1.  24 hours before a mapping change is to take effect, a network
       administrator configures the ETRs at a site to start the clock
       sweep window.

   2.  During the clock sweep window, ETRs continue to send Map-Reply
       messages with the current (unchanged) mapping records.  The TTL
       for these mappings is set to 1 hour.

   3.  24 hours later, all previous cache entries will have timed out,
       and any active cache entries will time out within 1 hour.  During
       this 1 hour window the ETRs continue to send Map-Reply messages
       with the current (unchanged) mapping records with the TTL set to
       1 minute.

   4.  At the end of the 1 hour window, the ETRs will send Map-Reply
       messages with the new (changed) mapping records.  So any active
       caches can get the new mapping contents right away if not cached,
       or in 1 minute if they had the mapping cached.

6.5.2.  Solicit-Map-Request (SMR)

   Soliciting a Map-Request is a selective way for xTRs, at the site
   where mappings change, to control the rate they receive requests for
   Map-Reply messages.  SMRs are also used to tell remote ITRs to update
   the mappings they have cached.

   Since the xTRs don't keep track of remote ITRs that have cached their
   mappings, they can not tell exactly who needs the new mapping
   entries.  So an xTR will solicit Map-Requests from sites it is
   currently sending encapsulated data to, and only from those sites.
   The xTRs can locally decide the algorithm for how often and to how
   many sites it sends SMR messages.

   An SMR message is simply a bit set in an encapsulated data packet
   (and a Map-Request message).  When an ETR at a remote site
   decapsulates a data packet that has the SMR bit set, it can tell that
   a new Map-Request message is being solicited.  Both the xTR that
   sends the SMR message and the site that acts on the SMR message MUST
   be rate-limited.

   The following procedure shows how a SMR exchange occurs when a site
   is doing locator-set compaction for an EID-to-RLOC mapping:

   1.  When the database mappings in an ETR change, the ITRs at the site
       begin to set the SMR bit in packets they encapsulate to the sites
       they communicate with.





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   2.  A remote xTR which decapsulates a packet with the SMR bit set
       will schedule sending a Map-Request message to the source locator
       address of the encapsulated packet.  The nonce in the Map-Request
       is copied from the nonce in the encapsulated data packet that has
       the SMR bit set.

   3.  The remote xTR retransmits the Map-Request slowly until it gets a
       Map-Reply while continuing to use the cached mapping.

   4.  The ETRs at the site with the changed mapping will reply to the
       Map-Request with a Map-Reply message provided the Map-Request
       nonce matches the nonce from the SMR.  The Map-Reply messages
       SHOULD be rate limited.  This is important to avoid Map-Reply
       implosion.

   5.  The ETRs, at the site with the changed mapping, records the fact
       that the site that sent the Map-Request has received the new
       mapping data in the mapping cache entry for the remote site so
       the loc-reach-bits are reflective of the new mapping for packets
       going to the remote site.  The ETR then stops sending packets
       with the SMR-bit set.

   For security reasons an ITR MUST NOT process unsolicited Map-Replies.
   The nonce MUST be carried from SMR packet, into the resultant Map-
   Request, and then into Map-Reply to reduce spoofing attacks.


























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7.  Router Performance Considerations

   LISP is designed to be very hardware-based forwarding friendly.  By
   doing tunnel header prepending [RFC1955] and stripping instead of re-
   writing addresses, existing hardware can support the forwarding model
   with little or no modification.  Where modifications are required,
   they should be limited to re-programming existing hardware rather
   than requiring expensive design changes to hard-coded algorithms in
   silicon.

   A few implementation techniques can be used to incrementally
   implement LISP:

   o  When a tunnel encapsulated packet is received by an ETR, the outer
      destination address may not be the address of the router.  This
      makes it challenging for the control plane to get packets from the
      hardware.  This may be mitigated by creating special FIB entries
      for the EID-prefixes of EIDs served by the ETR (those for which
      the router provides an RLOC translation).  These FIB entries are
      marked with a flag indicating that control plane processing should
      be performed.  The forwarding logic of testing for particular IP
      protocol number value is not necessary.  No changes to existing,
      deployed hardware should be needed to support this.

   o  On an ITR, prepending a new IP header is as simple as adding more
      bytes to a MAC rewrite string and prepending the string as part of
      the outgoing encapsulation procedure.  Many routers that support
      GRE tunneling [RFC2784] or 6to4 tunneling [RFC3056] can already
      support this action.

   o  When a received packet's outer destination address contains an EID
      which is not intended to be forwarded on the routable topology
      (i.e.  LISP 1.5), the source address of a data packet or the
      router interface with which the source is associated (the
      interface from which it was received) can be associated with a VRF
      (Virtual Routing/Forwarding), in which a different (i.e. non-
      congruent) topology can be used to find EID-to-RLOC mappings.














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8.  Deployment Scenarios

   This section will explore how and where ITRs and ETRs can be deployed
   and will discuss the pros and cons of each deployment scenario.
   There are two basic deployment trade-offs to consider: centralized
   versus distributed caches and flat, recursive, or re-encapsulating
   tunneling.

   When deciding on centralized versus distributed caching, the
   following issues should be considered:

   o  Are the tunnel routers spread out so that the caches are spread
      across all the memories of each router?

   o  Should management "touch points" be minimized by choosing few
      tunnel routers, just enough for redundancy?

   o  In general, using more ITRs doesn't increase management load,
      since caches are built and stored dynamically.  On the other hand,
      more ETRs does require more management since EID-prefix-to-RLOC
      mappings need to be explicitly configured.

   When deciding on flat, recursive, or re-encapsulation tunneling, the
   following issues should be considered:

   o  Flat tunneling implements a single tunnel between source site and
      destination site.  This generally offers better paths between
      sources and destinations with a single tunnel path.

   o  Recursive tunneling is when tunneled traffic is again further
      encapsulated in another tunnel, either to implement VPNs or to
      perform Traffic Engineering.  When doing VPN-based tunneling, the
      site has some control since the site is prepending a new tunnel
      header.  In the case of TE-based tunneling, the site may have
      control if it is prepending a new tunnel header, but if the site's
      ISP is doing the TE, then the site has no control.  Recursive
      tunneling generally will result in suboptimal paths but at the
      benefit of steering traffic to resource available parts of the
      network.

   o  The technique of re-encapsulation ensures that packets only
      require one tunnel header.  So if a packet needs to be rerouted,
      it is first decapsulated by the ETR and then re-encapsulated with
      a new tunnel header using a new RLOC.

   The next sub-sections will describe where tunnel routers can reside
   in the network.




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8.1.  First-hop/Last-hop Tunnel Routers

   By locating tunnel routers close to hosts, the EID-prefix set is at
   the granularity of an IP subnet.  So at the expense of more EID-
   prefix-to-RLOC sets for the site, the caches in each tunnel router
   can remain relatively small.  But caches always depend on the number
   of non-aggregated EID destination flows active through these tunnel
   routers.

   With more tunnel routers doing encapsulation, the increase in control
   traffic grows as well: since the EID-granularity is greater, more
   Map-Requests and Map-Replies are traveling between more routers.

   The advantage of placing the caches and databases at these stub
   routers is that the products deployed in this part of the network
   have better price-memory ratios then their core router counterparts.
   Memory is typically less expensive in these devices and fewer routes
   are stored (only IGP routes).  These devices tend to have excess
   capacity, both for forwarding and routing state.

   LISP functionality can also be deployed in edge switches.  These
   devices generally have layer-2 ports facing hosts and layer-3 ports
   facing the Internet.  Spare capacity is also often available in these
   devices as well.

8.2.  Border/Edge Tunnel Routers

   Using customer-edge (CE) routers for tunnel endpoints allows the EID
   space associated with a site to be reachable via a small set of RLOCs
   assigned to the CE routers for that site.

   This offers the opposite benefit of the first-hop/last-hop tunnel
   router scenario: the number of mapping entries and network management
   touch points are reduced, allowing better scaling.

   One disadvantage is that less of the network's resources are used to
   reach host endpoints thereby centralizing the point-of-failure domain
   and creating network choke points at the CE router.

   Note that more than one CE router at a site can be configured with
   the same IP address.  In this case an RLOC is an anycast address.
   This allows resilience between the CE routers.  That is, if a CE
   router fails, traffic is automatically routed to the other routers
   using the same anycast address.  However, this comes with the
   disadvantage where the site cannot control the entrance point when
   the anycast route is advertised out from all border routers.





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8.3.  ISP Provider-Edge (PE) Tunnel Routers

   Use of ISP PE routers as tunnel endpoint routers gives an ISP control
   over the location of the egress tunnel endpoints.  That is, the ISP
   can decide if the tunnel endpoints are in the destination site (in
   either CE routers or last-hop routers within a site) or at other PE
   edges.  The advantage of this case is that two or more tunnel headers
   can be avoided.  By having the PE be the first router on the path to
   encapsulate, it can choose a TE path first, and the ETR can
   decapsulate and re-encapsulate for a tunnel to the destination end
   site.

   An obvious disadvantage is that the end site has no control over
   where its packets flow or the RLOCs used.

   As mentioned in earlier sections a combination of these scenarios is
   possible at the expense of extra packet header overhead, if both site
   and provider want control, then recursive or re-encapsulating tunnels
   are used.
































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9.  Traceroute Considerations

   When a source host in a LISP site initiates a traceroute to a
   destination host in another LISP site, it is highly desirable for it
   to see the entire path.  Since packets are encapsulated from ITR to
   ETR, the hop across the tunnel could be viewed as a single hop.
   However, LISP traceroute will provide the entire path so the user can
   see 3 distinct segments of the path from a source LISP host to a
   destination LISP host:


      Segment 1 (in source LISP site based on EIDs):

          source-host ---> first-hop ... next-hop ---> ITR

      Segment 2 (in the core network based on RLOCs):

          ITR ---> next-hop ... next-hop ---> ETR

      Segment 3 (in the destination LISP site based on EIDs):

          ETR ---> next-hop ... last-hop ---> destination-host

   For segment 1 of the path, ICMP Time Exceeded messages are returned
   in the normal matter as they are today.  The ITR performs a TTL
   decrement and test for 0 before encapsulating.  So the ITR hop is
   seen by the traceroute source has an EID address (the address of
   site-facing interface).

   For segment 2 of the path, ICMP Time Exceeded messages are returned
   to the ITR because the TTL decrement to 0 is done on the outer
   header, so the destination of the ICMP messages are to the ITR RLOC
   address, the source source RLOC address of the encapsulated
   traceroute packet.  The ITR looks inside of the ICMP payload to
   inspect the traceroute source so it can return the ICMP message to
   the address of the traceroute client as well as retaining the core
   router IP address in the ICMP message.  This is so the traceroute
   client can display the core router address (the RLOC address) in the
   traceroute output.  The ETR returns its RLOC address and responds to
   the TTL decrement to 0 like the previous core routers did.

   For segment 3, the next-hop router downstream from the ETR will be
   decrementing the TTL for the packet that was encapsulated, sent into
   the core, decapsulated by the ETR, and forwarded because it isn't the
   final destination.  If the TTL is decremented to 0, any router on the
   path to the destination of the traceroute, including the next-hop
   router or destination, will send an ICMP Time Exceeded message to the
   source EID of the traceroute client.  The ICMP message will be



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   encapsulated by the local ITR and sent back to the ETR in the
   originated traceroute source site, where the packet will be delivered
   to the host.

9.1.  IPv6 Traceroute

   IPv6 traceroute follows the procedure described above since the
   entire traceroute data packet is included in ICMP Time Exceeded
   message payload.  Therefore, only the ITR needs to pay special
   attention for forwarding ICMP messages back to the traceroute source.

9.2.  IPv4 Traceroute

   For IPv4 traceroute, we cannot follow the above procedure since IPv4
   ICMP Time Exceeded messages only include the invoking IP header and 8
   bytes that follow the IP header.  Therefore, when a core router sends
   an IPv4 Time Exceeded message to an ITR, all the ITR has in the ICMP
   payload is the encapsulated header it prepended followed by a UDP
   header.  The original invoking IP header, and therefore the identity
   of the traceroute source is lost.

   The solution we propose to solve this problem is to cache traceroute
   IPv4 headers in the ITR and to match them up with corresponding IPv4
   Time Exceeded messages received from core routers and the ETR.  The
   ITR will use a circular buffer for caching the IPv4 and UDP headers
   of traceroute packets.  It will select a 16-bit number as a key to
   find them later when the IPv4 Time Exceeded messages are received.
   When an ITR encapsulates an IPv4 traceroute packet, it will use the
   16-bit number as the UDP source port in the encapsulating header.
   When the ICMP Time Exceeded message is returned to the ITR, the UDP
   header of the encapsulating header is present in the ICMP payload
   thereby allowing the ITR to find the cached headers for the
   traceroute source.  The ITR puts the cached headers in the payload
   and sends the ICMP Time Exceeded message to the traceroute source
   retaining the source address of the original ICMP Time Exceeded
   message (a core router or the ETR of the site of the traceroute
   destination).

9.3.  Traceroute using Mixed Locators

   When either an IPv4 traceroute or IPv6 traceroute is originated and
   the ITR encapsulates it in the other address family header, you
   cannot get all 3 segments of the traceroute.  Segment 2 of the
   traceroute can not be conveyed to the traceroute source since it is
   expecting addresses from intermediate hops in the same address format
   for the type of traceroute it originated.  Therefore, in this case,
   segment 2 will make the tunnel look like one hop.  All the ITR has to
   do to make this work is to not copy the inner TTL to the outer,



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   encapsulating header's TTL when a traceroute packet is encapsulated
   using an RLOC from a different address family.  This will cause no
   TTL decrement to 0 to occur in core routers between the ITR and ETR.
















































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10.  Mobility Considerations

   There are several kinds of mobility of which only some might be of
   concern to LISP.  Essentially they are as follows.

10.1.  Site Mobility

   A site wishes to change its attachment points to the Internet, and
   its LISP Tunnel Routers will have new RLOCs when it changes upstream
   providers.  Changes in EID-RLOC mappings for sites are expected to be
   handled by configuration, outside of the LISP protocol.

10.2.  Slow Endpoint Mobility

   An individual endpoint wishes to move, but is not concerned about
   maintaining session continuity.  Renumbering is involved.  LISP can
   help with the issues surrounding renumbering [RFC4192] [LISA96] by
   decoupling the address space used by a site from the address spaces
   used by its ISPs.  [RFC4984]

10.3.  Fast Endpoint Mobility

   Fast endpoint mobility occurs when an endpoint moves relatively
   rapidly, changing its IP layer network attachment point.  Maintenance
   of session continuity is a goal.  This is where the Mobile IPv4
   [RFC3344bis] and Mobile IPv6 [RFC3775] [RFC4866] mechanisms are used,
   and primarily where interactions with LISP need to be explored.

   The problem is that as an endpoint moves, it may require changes to
   the mapping between its EID and a set of RLOCs for its new network
   location.  When this is added to the overhead of mobile IP binding
   updates, some packets might be delayed or dropped.

   In IPv4 mobility, when an endpoint is away from home, packets to it
   are encapsulated and forwarded via a home agent which resides in the
   home area the endpoint's address belongs to.  The home agent will
   encapsulate and forward packets either directly to the endpoint or to
   a foreign agent which resides where the endpoint has moved to.
   Packets from the endpoint may be sent directly to the correspondent
   node, may be sent via the foreign agent, or may be reverse-tunneled
   back to the home agent for delivery to the mobile node.  As the
   mobile node's EID or available RLOC changes, LISP EID-to-RLOC
   mappings are required for communication between the mobile node and
   the home agent, whether via foreign agent or not.  As a mobile
   endpoint changes networks, up to three LISP mapping changes may be
   required:





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   o  The mobile node moves from an old location to a new visited
      network location and notifies its home agent that it has done so.
      The Mobile IPv4 control packets the mobile node sends pass through
      one of the new visited network's ITRs, which needs a EID-RLOC
      mapping for the home agent.

   o  The home agent might not have the EID-RLOC mappings for the mobile
      node's "care-of" address or its foreign agent in the new visited
      network, in which case it will need to acquire them.

   o  When packets are sent directly to the correspondent node, it may
      be that no traffic has been sent from the new visited network to
      the correspondent node's network, and the new visited network's
      ITR will need to obtain an EID-RLOC mapping for the correspondent
      node's site.

   In addition, if the IPv4 endpoint is sending packets from the new
   visited network using its original EID, then LISP will need to
   perform a route-returnability check on the new EID-RLOC mapping for
   that EID.

   In IPv6 mobility, packets can flow directly between the mobile node
   and the correspondent node in either direction.  The mobile node uses
   its "care-of" address (EID).  In this case, the route-returnability
   check would not be needed but one more LISP mapping lookup may be
   required instead:

   o  As above, three mapping changes may be needed for the mobile node
      to communicate with its home agent and to send packets to the
      correspondent node.

   o  In addition, another mapping will be needed in the correspondent
      node's ITR, in order for the correspondent node to send packets to
      the mobile node's "care-of" address (EID) at the new network
      location.

   When both endpoints are mobile the number of potential mapping
   lookups increases accordingly.

   As a mobile node moves there are not only mobility state changes in
   the mobile node, correspondent node, and home agent, but also state
   changes in the ITRs and ETRs for at least some EID-prefixes.

   The goal is to support rapid adaptation, with little delay or packet
   loss for the entire system.  Heuristics can be added to LISP to
   reduce the number of mapping changes required and to reduce the delay
   per mapping change.  Also IP mobility can be modified to require
   fewer mapping changes.  In order to increase overall system



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   performance, there may be a need to reduce the optimization of one
   area in order to place fewer demands on another.

   In LISP, one possibility is to "glean" information.  When a packet
   arrives, the ETR could examine the EID-RLOC mapping and use that
   mapping for all outgoing traffic to that EID.  It can do this after
   performing a route-returnability check, to ensure that the new
   network location does have a internal route to that endpoint.
   However, this does not cover the case where an ITR (the node assigned
   the RLOC) at the mobile-node location has been compromised.

   Mobile IP packet exchange is designed for an environment in which all
   routing information is disseminated before packets can be forwarded.
   In order to allow the Internet to grow to support expected future
   use, we are moving to an environment where some information may have
   to be obtained after packets are in flight.  Modifications to IP
   mobility should be considered in order to optimize the behavior of
   the overall system.  Anything which decreases the number of new EID-
   RLOC mappings needed when a node moves, or maintains the validity of
   an EID-RLOC mapping for a longer time, is useful.

10.4.  Fast Network Mobility

   In addition to endpoints, a network can be mobile, possibly changing
   xTRs.  A "network" can be as small as a single router and as large as
   a whole site.  This is different from site mobility in that it is
   fast and possibly short-lived, but different from endpoint mobility
   in that a whole prefix is changing RLOCs.  However, the mechanisms
   are the same and there is no new overhead in LISP.  A map request for
   any endpoint will return a binding for the entire mobile prefix.

   If mobile networks become a more common occurrence, it may be useful
   to revisit the design of the mapping service and allow for dynamic
   updates of the database.

   The issue of interactions between mobility and LISP needs to be
   explored further.  Specific improvements to the entire system will
   depend on the details of mapping mechanisms.  Mapping mechanisms
   should be evaluated on how well they support session continuity for
   mobile nodes.

10.5.  LISP Mobile Node Mobility

   An mobile device can use the LISP infrastructure to achieve mobility
   by implementing the LISP encapsulation and decapsulation functions
   and acting as a simple ITR/ETR.  By doing this, such a "LISP mobile
   node" can use topologically-independent EID IP addresses that are not
   advertised into and do not impose a cost on the global routing



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   system.  These EIDs are maintained at the edges of the mapping system
   (in LISP Map-Servers and Map-Resolvers) and are provided on demand to
   only the correspondents of the LISP mobile node.

   Refer to the LISP Mobility Architecture specification [LISP-MN] for
   more details.













































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11.  Multicast Considerations

   A multicast group address, as defined in the original Internet
   architecture is an identifier of a grouping of topologically
   independent receiver host locations.  The address encoding itself
   does not determine the location of the receiver(s).  The multicast
   routing protocol, and the network-based state the protocol creates,
   determines where the receivers are located.

   In the context of LISP, a multicast group address is both an EID and
   a Routing Locator.  Therefore, no specific semantic or action needs
   to be taken for a destination address, as it would appear in an IP
   header.  Therefore, a group address that appears in an inner IP
   header built by a source host will be used as the destination EID.
   The outer IP header (the destination Routing Locator address),
   prepended by a LISP router, will use the same group address as the
   destination Routing Locator.

   Having said that, only the source EID and source Routing Locator
   needs to be dealt with.  Therefore, an ITR merely needs to put its
   own IP address in the source Routing Locator field when prepending
   the outer IP header.  This source Routing Locator address, like any
   other Routing Locator address MUST be globally routable.

   Therefore, an EID-to-RLOC mapping does not need to be performed by an
   ITR when a received data packet is a multicast data packet or when
   processing a source-specific Join (either by IGMPv3 or PIM).  But the
   source Routing Locator is decided by the multicast routing protocol
   in a receiver site.  That is, an EID to Routing Locator translation
   is done at control-time.

   Another approach is to have the ITR not encapsulate a multicast
   packet and allow the the host built packet to flow into the core even
   if the source address is allocated out of the EID namespace.  If the
   RPF-Vector TLV [RPFV] is used by PIM in the core, then core routers
   can RPF to the ITR (the Locator address which is injected into core
   routing) rather than the host source address (the EID address which
   is not injected into core routing).

   To avoid any EID-based multicast state in the network core, the first
   approach is chosen for LISP-Multicast.  Details for LISP-Multicast
   and Interworking with non-LISP sites is described in specification
   [MLISP].








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12.  Security Considerations

   It is believed that most of the security mechanisms will be part of
   the mapping database service when using control plane procedures for
   obtaining EID-to-RLOC mappings.  For data plane triggered mappings,
   as described in this specification, protection is provided against
   ETR spoofing by using Return- Routability mechanisms evidenced by the
   use of a 4-byte Nonce field in the LISP encapsulation header.  The
   nonce, coupled with the ITR accepting only solicited Map-Replies goes
   a long way toward providing decent authentication.

   LISP does not rely on a PKI infrastructure or a more heavy weight
   authentication system.  These systems challenge the scalability of
   LISP which was a primary design goal.

   DoS attack prevention will depend on implementations rate-limiting
   Map-Requests and Map-Replies to the control plane as well as rate-
   limiting the number of data-triggered Map-Replies.

   To deal with map-cache exhaustion attempts in an ITR/PTR, the
   implementation should consider putting a maximum cap on the number of
   entries stored with a reserve list for special or frequently accessed
   sites.  This should be a configuration policy control set by the
   network administrator who manages ITRs and PTRs.



























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13.  Prototype Plans and Status

   The operator community has requested that the IETF take a practical
   approach to solving the scaling problems associated with global
   routing state growth.  This document offers a simple solution which
   is intended for use in a pilot program to gain experience in working
   on this problem.

   The authors hope that publishing this specification will allow the
   rapid implementation of multiple vendor prototypes and deployment on
   a small scale.  Doing this will help the community:

   o  Decide whether a new EID-to-RLOC mapping database infrastructure
      is needed or if a simple, UDP-based, data-triggered approach is
      flexible and robust enough.

   o  Experiment with provider-independent assignment of EIDs while at
      the same time decreasing the size of DFZ routing tables through
      the use of topologically-aligned, provider-based RLOCs.

   o  Determine whether multiple levels of tunneling can be used by ISPs
      to achieve their Traffic Engineering goals while simultaneously
      removing the more specific routes currently injected into the
      global routing system for this purpose.

   o  Experiment with mobility to determine if both acceptable
      convergence and session continuity properties can be scalably
      implemented to support both individual device roaming and site
      service provider changes.

   Here is a rough set of milestones:

   1.  This draft will be the draft for interoperable implementations to
       code against.  Interoperable implementations will be ready
       beginning of 2009.

   2.  Continue pilot deployment using LISP-ALT as the database mapping
       mechanism.

   3.  Continue prototyping and studying other database lookup schemes,
       be it DNS, DHTs, CONS, ALT, NERD, or other mechanisms.

   4.  Implement the LISP Multicast draft [MLISP].

   5.  Implement the LISP Mobile Node draft [LISP-MN].

   6.  Research more on how policy affects what gets returned in a Map-
       Reply from an ETR.



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   7.  Continue to experiment with mixed locator-sets to understand how
       LISP can help the IPv4 to IPv6 transition.

   8.  Add more robustness to locator reachability between LISP sites.

   As of this writing the following accomplishments have been achieved:

   1.   A unit- and system-tested software switching implementation has
        been completed on cisco NX-OS for this draft for both IPv4 and
        IPv6 EIDs using a mixed locator-set of IPv4 and IPv6 locators.

   2.   A unit- and system-tested software switching implementation on
        cisco NX-OS has been completed for draft [ALT].

   3.   A unit- and system-tested software switching implementation on
        cisco NX-OS has been completed for draft [INTERWORK].  Support
        for IPv4 translation is provided and PTR support for IPv4 and
        IPv6 is provided.

   4.   The cisco NX-OS implementation supports an experimental
        mechanism for slow mobility.

   5.   Dave Meyer, Vince Fuller, Darrel Lewis, Greg Shepherd, and
        Andrew Partan continue to test all the features described above
        on a dual-stack infrastructure.

   6.   Darrel Lewis and Dave Meyer have deployed both LISP translation
        and LISP PTR support in the pilot network.  Point your browser
        to http://www.lisp4.net to see translation happening in action
        so your non-LISP site can access a web server in a LISP site.

   7.   Soon http://www.lisp6.net will work where your IPv6 LISP site
        can talk to a IPv6 web server in a LISP site by using mixed
        address-family based locators.

   8.   An public domain implementation of LISP is underway.  See
        [OPENLISP] for details.

   9.   We have deployed Map-Resolvers and Map-Servers on the LISP pilot
        network to gather experience with [LISP-MS].  The first layer of
        the architecture are the xTRs which use Map-Servers for EID-
        prefix registration and Map-Resolvers for EID-to-RLOC mapping
        resolution.  The second layer are the Map-Resolvers and Map-
        Servers which connect to the ALT BGP peering infrastructure.
        And the third layer are ALT-routers which aggregate EID-prefixes
        and forward Map-Requests.





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   10.  A cisco IOS implementation is underway which currently supports
        IPv4 encapsulation and decapsulation features.

   11.  A LISP router based LIG implementation is supported, deployed,
        and used daily to debug and test the LISP pilot network.  See
        [LIG] for details.

   12.  A Linux implementation of LIG has been made available and
        supported by Dave Meyer.  It can be run on any Linux system
        which resides in either a LISP site or non-LISP site.  See [LIG]
        for details.  Public domain code can be downloaded from
        http://github.com/davidmeyer/lig/tree/master.

   13.  An experimental implementation has been written for three
        locator reachability algorithms.  One is called echo-noncing,
        which is documented in this specification.  The other two are
        called TCP-counts and RLOC-probing, which will be documented in
        future drafts.

   If interested in writing a LISP implementation, testing any of the
   LISP implementations, or want to be part of the LISP pilot program,
   please contact lisp@ietf.org.





























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14.  References

14.1.  Normative References

   [RFC0768]  Postel, J., "User Datagram Protocol", STD 6, RFC 768,
              August 1980.

   [RFC1191]  Mogul, J. and S. Deering, "Path MTU discovery", RFC 1191,
              November 1990.

   [RFC1498]  Saltzer, J., "On the Naming and Binding of Network
              Destinations", RFC 1498, August 1993.

   [RFC1955]  Hinden, R., "New Scheme for Internet Routing and
              Addressing (ENCAPS) for IPNG", RFC 1955, June 1996.

   [RFC2119]  Bradner, S., "Key words for use in RFCs to Indicate
              Requirement Levels", BCP 14, RFC 2119, March 1997.

   [RFC2402]  Kent, S. and R. Atkinson, "IP Authentication Header",
              RFC 2402, November 1998.

   [RFC2434]  Narten, T. and H. Alvestrand, "Guidelines for Writing an
              IANA Considerations Section in RFCs", BCP 26, RFC 2434,
              October 1998.

   [RFC2784]  Farinacci, D., Li, T., Hanks, S., Meyer, D., and P.
              Traina, "Generic Routing Encapsulation (GRE)", RFC 2784,
              March 2000.

   [RFC3056]  Carpenter, B. and K. Moore, "Connection of IPv6 Domains
              via IPv4 Clouds", RFC 3056, February 2001.

   [RFC3168]  Ramakrishnan, K., Floyd, S., and D. Black, "The Addition
              of Explicit Congestion Notification (ECN) to IP",
              RFC 3168, September 2001.

   [RFC3775]  Johnson, D., Perkins, C., and J. Arkko, "Mobility Support
              in IPv6", RFC 3775, June 2004.

   [RFC4423]  Moskowitz, R. and P. Nikander, "Host Identity Protocol
              (HIP) Architecture", RFC 4423, May 2006.

   [RFC4866]  Arkko, J., Vogt, C., and W. Haddad, "Enhanced Route
              Optimization for Mobile IPv6", RFC 4866, May 2007.

   [RFC4984]  Meyer, D., Zhang, L., and K. Fall, "Report from the IAB
              Workshop on Routing and Addressing", RFC 4984,



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              September 2007.

14.2.  Informative References

   [AFI]      IANA, "Address Family Indicators (AFIs)", ADDRESS FAMILY
              NUMBERS http://www.iana.org/numbers.html, Febuary 2007.

   [ALT]      Farinacci, D., Fuller, V., Meyer, D., and D. Lewis, "LISP
              Alternative Topology (LISP-ALT)",
              draft-ietf-lisp-alt-01.txt (work in progress), May 2009.

   [APT]      Jen, D., Meisel, M., Massey, D., Wang, L., Zhang, B., and
              L. Zhang, "APT: A Practical Transit Mapping Service",
              draft-jen-apt-01.txt (work in progress), November 2007.

   [CHIAPPA]  Chiappa, J., "Endpoints and Endpoint names: A Proposed
              Enhancement to the Internet Architecture", Internet-
              Draft http://www.chiappa.net/~jnc/tech/endpoints.txt,
              1999.

   [CONS]     Farinacci, D., Fuller, V., and D. Meyer, "LISP-CONS: A
              Content distribution Overlay Network  Service for LISP",
              draft-meyer-lisp-cons-03.txt (work in progress),
              November 2007.

   [DHTs]     Ratnasamy, S., Shenker, S., and I. Stoica, "Routing
              Algorithms for DHTs: Some Open Questions", PDF
              file http://www.cs.rice.edu/Conferences/IPTPS02/174.pdf.

   [EMACS]    Brim, S., Farinacci, D., Meyer, D., and J. Curran, "EID
              Mappings Multicast Across Cooperating Systems for LISP",
              draft-curran-lisp-emacs-00.txt (work in progress),
              November 2007.

   [GSE]      "GSE - An Alternate Addressing Architecture for  IPv6",
              draft-ietf-ipngwg-gseaddr-00.txt (work in progress), 1997.

   [INTERWORK]
              Lewis, D., Meyer, D., Farinacci, D., and V. Fuller,
              "Interworking LISP with IPv4 and IPv6",
              draft-ietf-lisp-interworking-00.txt (work in progress),
              January 2009.

   [LIG]      Farinacci, D. and D. Meyer, "LISP Internet Groper (LIG)",
              draft-farinacci-lisp-lig-01.txt (work in progress),
              May 2009.

   [LISA96]   Lear, E., Katinsky, J., Coffin, J., and D. Tharp,



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              "Renumbering: Threat or Menace?", Usenix , September 1996.

   [LISP-MAIN]
              Farinacci, D., Fuller, V., Meyer, D., and D. Lewis,
              "Locator/ID Separation Protocol (LISP)",
              draft-farinacci-lisp-12.txt (work in progress),
              March 2009.

   [LISP-MN]  Farinacci, D., Fuller, V., Lewis, D., and D. Meyer, "LISP
              Mobility Architecture", draft-meyer-lisp-mn-00.txt (work
              in progress), July 2009.

   [LISP-MS]  Farinacci, D. and V. Fuller, "LISP Map Server",
              draft-ietf-lisp-ms-01.txt (work in progress), May 2009.

   [LISP1]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
              "Locator/ID Separation Protocol (LISP1) [Routable  ID
              Version]",
              Slide-set http://www.dinof.net/~dino/ietf/lisp1.ppt,
              October 2006.

   [LISP2]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
              "Locator/ID Separation Protocol (LISP2) [DNS-based
              Version]",
              Slide-set http://www.dinof.net/~dino/ietf/lisp2.ppt,
              November 2006.

   [LISPDHT]  Mathy, L., Iannone, L., and O. Bonaventure, "LISP-DHT:
              Towards a DHT to map identifiers onto locators",
              draft-mathy-lisp-dht-00.txt (work in progress),
              February 2008.

   [LOC-ID-ARCH]
              Meyer, D. and D. Lewis, "Architectural Implications of
              Locator/ID  Separation",
              draft-meyer-loc-id-implications-01.txt (work in progress),
              Januaryr 2009.

   [MLISP]    Farinacci, D., Meyer, D., Zwiebel, J., and S. Venaas,
              "LISP for Multicast Environments",
              draft-ietf-lisp-multicast-01.txt (work in progress),
              May 2009.

   [NERD]     Lear, E., "NERD: A Not-so-novel EID to RLOC Database",
              draft-lear-lisp-nerd-04.txt (work in progress),
              April 2008.

   [OPENLISP]



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              Iannone, L. and O. Bonaventure, "OpenLISP Implementation
              Report", draft-iannone-openlisp-implementation-01.txt
              (work in progress), July 2008.

   [RADIR]    Narten, T., "Routing and Addressing Problem Statement",
              draft-narten-radir-problem-statement-00.txt (work in
              progress), July 2007.

   [RFC3344bis]
              Perkins, C., "IP Mobility Support for IPv4, revised",
              draft-ietf-mip4-rfc3344bis-05 (work in progress),
              July 2007.

   [RFC4192]  Baker, F., Lear, E., and R. Droms, "Procedures for
              Renumbering an IPv6 Network without a Flag Day", RFC 4192,
              September 2005.

   [RPFV]     Wijnands, IJ., Boers, A., and E. Rosen, "The RPF Vector
              TLV", draft-ietf-pim-rpf-vector-08.txt (work in progress),
              January 2009.

   [RPMD]     Handley, M., Huici, F., and A. Greenhalgh, "RPMD: Protocol
              for Routing Protocol Meta-data  Dissemination",
              draft-handley-p2ppush-unpublished-2007726.txt (work in
              progress), July 2007.

   [SHIM6]    Nordmark, E. and M. Bagnulo, "Level 3 multihoming shim
              protocol", draft-ietf-shim6-proto-06.txt (work in
              progress), October 2006.






















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Appendix A.  Acknowledgments

   An initial thank you goes to Dave Oran for planting the seeds for the
   initial ideas for LISP.  His consultation continues to provide value
   to the LISP authors.

   A special and appreciative thank you goes to Noel Chiappa for
   providing architectural impetus over the past decades on separation
   of location and identity, as well as detailed review of the LISP
   architecture and documents, coupled with enthusiasm for making LISP a
   practical and incremental transition for the Internet.

   The authors would like to gratefully acknowledge many people who have
   contributed discussion and ideas to the making of this proposal.
   They include Scott Brim, Andrew Partan, John Zwiebel, Jason Schiller,
   Lixia Zhang, Dorian Kim, Peter Schoenmaker, Vijay Gill, Geoff Huston,
   David Conrad, Mark Handley, Ron Bonica, Ted Seely, Mark Townsley,
   Chris Morrow, Brian Weis, Dave McGrew, Peter Lothberg, Dave Thaler,
   Eliot Lear, Shane Amante, Ved Kafle, Olivier Bonaventure, Luigi
   Iannone, Robin Whittle, Brian Carpenter, Joel Halpern, Roger
   Jorgensen, Ran Atkinson, Stig Venaas, Iljitsch van Beijnum, Roland
   Bless, Dana Blair, Bill Lynch, Marc Woolward, Damien Saucez, Damian
   Lezama, Attilla De Groot, Parantap Lahiri, David Black, Roque
   Gagliano, and Isidor Kouvelas.

   In particular, we would like to thank Dave Meyer for his clever
   suggestion for the name "LISP". ;-)

   This work originated in the Routing Research Group (RRG) of the IRTF.
   The individual submission [LISP-MAIN] was converted into this IETF
   LISP working group draft.




















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Authors' Addresses

   Dino Farinacci
   cisco Systems
   Tasman Drive
   San Jose, CA  95134
   USA

   Email: dino@cisco.com


   Vince Fuller
   cisco Systems
   Tasman Drive
   San Jose, CA  95134
   USA

   Email: vaf@cisco.com


   Dave Meyer
   cisco Systems
   170 Tasman Drive
   San Jose, CA
   USA

   Email: dmm@cisco.com


   Darrel Lewis
   cisco Systems
   170 Tasman Drive
   San Jose, CA
   USA

   Email: darlewis@cisco.com















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Network Working Group                                       D. Farinacci
Internet-Draft                                                 V. Fuller
Intended status: Experimental                                   D. Meyer
Expires: January <strike><font color="red">10,</font></strike> <strong><font color="green">16,</font></strong> 2010                                       D. Lewis
                                                           cisco Systems
                                                           July <strike><font color="red">9,</font></strike> <strong><font color="green">15,</font></strong> 2009

                 Locator/ID Separation Protocol (LISP)
                         <strike><font color="red">draft-ietf-lisp-02.txt</font></strike>
                         <strong><font color="green">draft-ietf-lisp-03.txt</font></strong>

Status of this Memo

   This Internet-Draft is submitted to IETF in full conformance with the
   provisions of BCP 78 and BCP 79.

   Internet-Drafts are working documents of the Internet Engineering
   Task Force (IETF), its areas, and its working groups.  Note that
   other groups may also distribute working documents as Internet-
   Drafts.

   Internet-Drafts are draft documents valid for a maximum of six months
   and may be updated, replaced, or obsoleted by other documents at any
   time.  It is inappropriate to use Internet-Drafts as reference
   material or to cite them other than as "work in progress."

   The list of current Internet-Drafts can be accessed at
   http://www.ietf.org/ietf/1id-abstracts.txt.

   The list of Internet-Draft Shadow Directories can be accessed at
   http://www.ietf.org/shadow.html.

   This Internet-Draft will expire on January <strike><font color="red">10,</font></strike> <strong><font color="green">16,</font></strong> 2010.

Copyright Notice

   Copyright (c) 2009 IETF Trust and the persons identified as the
   document authors.  All rights reserved.

   This document is subject to BCP 78 and the IETF Trust's Legal
   Provisions Relating to IETF Documents in effect on the date of
   publication of this document (http://trustee.ietf.org/license-info).
   Please review these documents carefully, as they describe your rights
   and restrictions with respect to this document.

Abstract

   This draft describes a simple, incremental, network-based protocol to
   implement separation of Internet addresses into Endpoint Identifiers
   (EIDs) and Routing Locators (RLOCs).  This mechanism requires no
   changes to host stacks and no major changes to existing database
   infrastructures.  The proposed protocol can be implemented in a
   relatively small number of routers.

   This proposal was stimulated by the problem statement effort at the
   Amsterdam IAB Routing and Addressing Workshop (RAWS), which took
   place in October 2006.

Table of Contents

   1.  Requirements Notation  . . . . . . . . . . . . . . . . . . . .  4
   2.  Introduction . . . . . . . . . . . . . . . . . . . . . . . . .  5
   3.  Definition of Terms  . . . . . . . . . . . . . . . . . . . . .  8
   4.  Basic Overview . . . . . . . . . . . . . . . . . . . . . . . . 12
     4.1.  Packet Flow Sequence . . . . . . . . . . . . . . . . . . . 14
   5.  Tunneling Details  . . . . . . . . . . . . . . . . . . . . . . 16
     5.1.  LISP IPv4-in-IPv4 Header Format  . . . . . . . . . . . . . 17
     5.2.  LISP IPv6-in-IPv6 Header Format  . . . . . . . . . . . . . 18
     5.3.  Tunnel Header Field Descriptions . . . . . . . . . . . . . 19
     5.4.  Dealing with Large Encapsulated Packets  . . . . . . . . . 21
       5.4.1.  A Stateless Solution to MTU Handling . . . . . . . . . 21
       5.4.2.  A Stateful Solution to MTU Handling  . . . . . . . . . 22
   6.  EID-to-RLOC Mapping  . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">23</font></strike> <strong><font color="green">24</font></strong>
     6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats  . . . . . <strike><font color="red">23</font></strike> <strong><font color="green">24</font></strong>
       6.1.1.  LISP Packet Type Allocations . . . . . . . . . . . . . <strike><font color="red">25</font></strike> <strong><font color="green">26</font></strong>
       6.1.2.  Map-Request Message Format . . . . . . . . . . . . . . <strike><font color="red">25</font></strike> <strong><font color="green">26</font></strong>
       6.1.3.  EID-to-RLOC UDP Map-Request Message  . . . . . . . . . <strike><font color="red">27</font></strike> <strong><font color="green">28</font></strong>
       6.1.4.  Map-Reply Message Format . . . . . . . . . . . . . . . <strike><font color="red">28</font></strike> <strong><font color="green">29</font></strong>
       6.1.5.  EID-to-RLOC UDP Map-Reply Message  . . . . . . . . . . <strike><font color="red">31</font></strike> <strong><font color="green">32</font></strong>
       6.1.6.  Map-Register Message Format  . . . . . . . . . . . . . 32
     6.2.  Routing Locator Selection  . . . . . . . . . . . . . . . . 34
     6.3.  Routing Locator Reachability . . . . . . . . . . . . . . . <strike><font color="red">35</font></strike> <strong><font color="green">36</font></strong>
       6.3.1.  Echo Nonce Algorithm . . . . . . . . . . . . . . . . . <strike><font color="red">37</font></strike> <strong><font color="green">38</font></strong>
     6.4.  Routing Locator Hashing  . . . . . . . . . . . . . . . . . <strike><font color="red">38</font></strike> <strong><font color="green">39</font></strong>
     6.5.  Changing the Contents of EID-to-RLOC Mappings  . . . . . . <strike><font color="red">39</font></strike> <strong><font color="green">40</font></strong>
       6.5.1.  Clock Sweep  . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">39</font></strike> <strong><font color="green">40</font></strong>
       6.5.2.  Solicit-Map-Request (SMR)  . . . . . . . . . . . . . . <strike><font color="red">40</font></strike> <strong><font color="green">41</font></strong>
   7.  Router Performance Considerations  . . . . . . . . . . . . . . <strike><font color="red">42</font></strike> <strong><font color="green">43</font></strong>
   8.  Deployment Scenarios . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">43</font></strike> <strong><font color="green">44</font></strong>
     8.1.  First-hop/Last-hop Tunnel Routers  . . . . . . . . . . . . <strike><font color="red">44</font></strike> <strong><font color="green">45</font></strong>
     8.2.  Border/Edge Tunnel Routers . . . . . . . . . . . . . . . . <strike><font color="red">44</font></strike> <strong><font color="green">45</font></strong>
     8.3.  ISP Provider-Edge (PE) Tunnel Routers  . . . . . . . . . . <strike><font color="red">45</font></strike> <strong><font color="green">46</font></strong>
   9.  Traceroute Considerations  . . . . . . . . . . . . . . . . . . <strike><font color="red">46</font></strike> <strong><font color="green">47</font></strong>
     9.1.  IPv6 Traceroute  . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">47</font></strike> <strong><font color="green">48</font></strong>
     9.2.  IPv4 Traceroute  . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">47</font></strike> <strong><font color="green">48</font></strong>
     9.3.  Traceroute using Mixed Locators  . . . . . . . . . . . . . <strike><font color="red">47</font></strike> <strong><font color="green">48</font></strong>
   10. Mobility Considerations  . . . . . . . . . . . . . . . . . . . <strike><font color="red">49</font></strike> <strong><font color="green">50</font></strong>
     10.1. Site Mobility  . . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">49</font></strike> <strong><font color="green">50</font></strong>
     10.2. Slow Endpoint Mobility . . . . . . . . . . . . . . . . . . <strike><font color="red">49</font></strike> <strong><font color="green">50</font></strong>
     10.3. Fast Endpoint Mobility . . . . . . . . . . . . . . . . . . <strike><font color="red">49</font></strike> <strong><font color="green">50</font></strong>
     10.4. Fast Network Mobility  . . . . . . . . . . . . . . . . . . <strike><font color="red">51</font></strike> <strong><font color="green">52</font></strong>
     10.5. LISP Mobile Node Mobility  . . . . . . . . . . . . . . . . <strike><font color="red">51</font></strike> <strong><font color="green">52</font></strong>
   11. Multicast Considerations . . . . . . . . . . . . . . . . . . . <strike><font color="red">53</font></strike> <strong><font color="green">54</font></strong>
   12. Security Considerations  . . . . . . . . . . . . . . . . . . . <strike><font color="red">54</font></strike> <strong><font color="green">55</font></strong>
   13. Prototype Plans and Status . . . . . . . . . . . . . . . . . . <strike><font color="red">55</font></strike> <strong><font color="green">56</font></strong>
   14. References . . . . . . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">58</font></strike> <strong><font color="green">59</font></strong>
     14.1. Normative References . . . . . . . . . . . . . . . . . . . <strike><font color="red">58</font></strike> <strong><font color="green">59</font></strong>
     14.2. Informative References . . . . . . . . . . . . . . . . . . <strike><font color="red">59</font></strike> <strong><font color="green">60</font></strong>
   Appendix A.  Acknowledgments . . . . . . . . . . . . . . . . . . . <strike><font color="red">62</font></strike> <strong><font color="green">63</font></strong>
   Authors' Addresses . . . . . . . . . . . . . . . . . . . . . . . . <strike><font color="red">63</font></strike> <strong><font color="green">64</font></strong>

1.  Requirements Notation

   The key words "MUST", "MUST NOT", "REQUIRED", "SHALL", "SHALL NOT",
   "SHOULD", "SHOULD NOT", "RECOMMENDED", "MAY", and "OPTIONAL" in this
   document are to be interpreted as described in [RFC2119].

2.  Introduction

   Many years of discussion about the current IP routing and addressing
   architecture have noted that its use of a single numbering space (the
   "IP address") for both host transport session identification and
   network routing creates scaling issues (see [CHIAPPA] and [RFC1498]).
   A number of scaling benefits would be realized by separating the
   current IP address into separate spaces for Endpoint Identifiers
   (EIDs) and Routing Locators (RLOCs); among them are:

   1.  Reduction of routing table size in the "default-free zone" (DFZ).
       Use of a separate numbering space for RLOCs will allow them to be
       assigned topologically (in today's Internet, RLOCs would be
       assigned by providers at client network attachment points),
       greatly improving aggregation and reducing the number of
       globally-visible, routable prefixes.

   2.  More cost-effective multihoming for sites that connect to
       different service providers where they can control their own
       policies for packet flow into the site without using extra
       routing table resources of core routers.

   3.  Easing of renumbering burden when clients change providers.
       Because host EIDs are numbered from a separate, non-provider-
       assigned and non-topologically-bound space, they do not need to
       be renumbered when a client site changes its attachment points to
       the network.

   4.  Traffic engineering capabilities that can be performed by network
       elements and do not depend on injecting additional state into the
       routing system.  This will fall out of the mechanism that is used
       to implement the EID/RLOC split (see Section 4).

   5.  Mobility without address changing.  Existing mobility mechanisms
       will be able to work in a locator/ID separation scenario.  It
       will be possible for a host (or a collection of hosts) to move to
       a different point in the network topology either retaining its
       home-based address or acquiring a new address based on the new
       network location.  A new network location could be a physically
       different point in the network topology or the same physical
       point of the topology with a different provider.

   This draft describes protocol mechanisms to achieve the desired
   functional separation.  For flexibility, the mechanism used for
   forwarding packets is decoupled from that used to determine EID to
   RLOC mappings.  This document covers the former.  For the later, see
   [CONS], [ALT], [EMACS], [RPMD], and [NERD].  This work is in response
   to and intended to address the problem statement that came out of the
   RAWS effort [RFC4984].

   The Routing and Addressing problem statement can be found in [RADIR].

   This draft focuses on a router-based solution.  Building the solution
   into the network will facilitate incremental deployment of the
   technology on the Internet.  Note that while the detailed protocol
   specification and examples in this document assume IP version 4
   (IPv4), there is nothing in the design that precludes use of the same
   techniques and mechanisms for IPv6.  It should be possible for IPv4
   packets to use IPv6 RLOCs and for IPv6 EIDs to be mapped to IPv4
   RLOCs.

   Related work on host-based solutions is described in Shim6 [SHIM6]
   and HIP [RFC4423].  Related work on a router-based solution is
   described in [GSE].  This draft attempts to not compete or overlap
   with such solutions and the proposed protocol changes are expected to
   complement a host-based mechanism when Traffic Engineering
   functionality is desired.

   Some of the design goals of this proposal include:

   1.  Require no hardware or software changes to end-systems (hosts).

   2.  Minimize required changes to Internet infrastructure.

   3.  Be incrementally deployable.

   4.  Require no router hardware changes.

   5.  Minimize the number of routers which have to be modified.  In
       particular, most customer site routers and no core routers
       require changes.

   6.  Minimize router software changes in those routers which are
       affected.

   7.  Avoid or minimize packet loss when EID-to-RLOC mappings need to
       be performed.

   There are 4 variants of LISP, which differ along a spectrum of strong
   to weak dependence on the topological nature and possible need for
   routability of EIDs.  The variants are:

   LISP 1:  uses EIDs that are routable through the RLOC topology for
      bootstrapping EID-to-RLOC mappings.  [LISP1] This was intended as
      a prototyping mechanism for early protocol implementation.  It is
      now deprecated and should not be deployed.

   LISP 1.5:  uses EIDs that are routable for bootstrapping EID-to-RLOC
      mappings; such routing is via a separate topology.

   LISP 2:  uses EIDS that are not routable and EID-to-RLOC mappings are
      implemented within the DNS.  [LISP2]

   LISP 3:  uses non-routable EIDs that are used as lookup keys for a
      new EID-to-RLOC mapping database.  Use of Distributed Hash Tables
      [DHTs] [LISPDHT] to implement such a database would be an area to
      explore.  Other examples of new mapping database services are
      [CONS], [ALT], [RPMD], [NERD], and [APT].

   This document on LISP 1.5, and LISP 3 variants, both of which rely on
   a router-based distributed cache and database for EID-to-RLOC
   mappings.  The LISP 1.0 mechanism works but does not allow reduction
   of routing information in the default-free-zone of the Internet.  The
   LISP 2 mechanisms are put on hold and may never come to fruition
   since it is not architecturally pure to have routing depend on
   directory and directory depend on routing.  The LISP 3 mechanisms
   will be documented elsewhere but may use the control-plane options
   specified in this specification.

3.  Definition of Terms

   Provider Independent (PI) Addresses:   an address block assigned from
      a pool where blocks are not associated with any particular
      location in the network (e.g. from a particular service provider),
      and is therefore not topologically aggregatable in the routing
      system.

   Provider Assigned (PA) Addresses:   a block of IP addresses that are
      assigned to a site by each service provider to which a site
      connects.  Typically, each block is sub-block of a service
      provider CIDR block and is aggregated into the larger block before
      being advertised into the global Internet.  Traditionally, IP
      multihoming has been implemented by each multi-homed site
      acquiring its own, globally-visible prefix.  LISP uses only
      topologically-assigned and aggregatable address blocks for RLOCs,
      eliminating this demonstrably non-scalable practice.

   Routing Locator (RLOC):   the IPv4 or IPv6 address of an egress
      tunnel router (ETR).  It is the output of a EID-to-RLOC mapping
      lookup.  An EID maps to one or more RLOCs.  Typically, RLOCs are
      numbered from topologically-aggregatable blocks that are assigned
      to a site at each point to which it attaches to the global
      Internet; where the topology is defined by the connectivity of
      provider networks, RLOCs can be thought of as PA addresses.
      Multiple RLOCs can be assigned to the same ETR device or to
      multiple ETR devices at a site.

   Endpoint ID (EID):   a 32-bit (for IPv4) or 128-bit (for IPv6) value
      used in the source and destination address fields of the first
      (most inner) LISP header of a packet.  The host obtains a
      destination EID the same way it obtains an destination address
      today, for example through a DNS lookup or SIP exchange.  The
      source EID is obtained via existing mechanisms used to set a
      host's "local" IP address.  An EID is allocated to a host from an
      EID-prefix block associated with the site where the host is
      located.  An EID can be used by a host to refer to other hosts.
      EIDs MUST NOT be used as LISP RLOCs.  Note that EID blocks may be
      assigned in a hierarchical manner, independent of the network
      topology, to facilitate scaling of the mapping database.  In
      addition, an EID block assigned to a site may have site-local
      structure (subnetting) for routing within the site; this structure
      is not visible to the global routing system.  When used in
      discussions with other Locator/ID separation proposals, a LISP EID
      will be called a "LEID".  Throughout this document, any references
      to "EID" refers to an LEID.

   EID-prefix:   A power-of-2 block of EIDs which are allocated to a
      site by an address allocation authority.  EID-prefixes are
      associated with a set of RLOC addresses which make up a "database
      mapping".  EID-prefix allocations can be broken up into smaller
      blocks when an RLOC set is to be associated with the smaller EID-
      prefix.  A globally routed address block (whether PI or PA) is not
      an EID-prefix.  However, a globally routed address block may be
      removed from global routing and reused as an EID-prefix.  A site
      that receives an explicitly allocated EID-prefix may not use that
      EID-prefix as a globally routed prefix assigned to RLOCs.

   End-system:   is an IPv4 or IPv6 device that originates packets with
      a single IPv4 or IPv6 header.  The end-system supplies an EID
      value for the destination address field of the IP header when
      communicating globally (i.e. outside of its routing domain).  An
      end-system can be a host computer, a switch or router device, or
      any network appliance.

   Ingress Tunnel Router (ITR):   a router which accepts an IP packet
      with a single IP header (more precisely, an IP packet that does
      not contain a LISP header).  The router treats this "inner" IP
      destination address as an EID and performs an EID-to-RLOC mapping
      lookup.  The router then prepends an "outer" IP header with one of
      its globally-routable RLOCs in the source address field and the
      result of the mapping lookup in the destination address field.
      Note that this destination RLOC may be an intermediate, proxy
      device that has better knowledge of the EID-to-RLOC mapping closer
      to the destination EID.  In general, an ITR receives IP packets
      from site end-systems on one side and sends LISP-encapsulated IP
      packets toward the Internet on the other side.

      Specifically, when a service provider prepends a LISP header for
      Traffic Engineering purposes, the router that does this is also
      regarded as an ITR.  The outer RLOC the ISP ITR uses can be based
      on the outer destination address (the originating ITR's supplied
      RLOC) or the inner destination address (the originating hosts
      supplied EID).

   TE-ITR:   is an ITR that is deployed in a service provider network
      that prepends an additional LISP header for Traffic Engineering
      purposes.

   Egress Tunnel Router (ETR):   a router that accepts an IP packet
      where the destination address in the "outer" IP header is one of
      its own RLOCs.  The router strips the "outer" header and forwards
      the packet based on the next IP header found.  In general, an ETR
      receives LISP-encapsulated IP packets from the Internet on one
      side and sends decapsulated IP packets to site end-systems on the
      other side.  ETR functionality does not have to be limited to a
      router device.  A server host can be the endpoint of a LISP tunnel
      as well.

   TE-ETR:   is an ETR that is deployed in a service provider network
      that strips an outer LISP header for Traffic Engineering purposes.

   xTR:   is a reference to an ITR or ETR when direction of data flow is
      not part of the context description. xTR refers to the router that
      is the tunnel endpoint.  Used synonymously with the term "Tunnel
      Router".  For example, "An xTR can be located at the Customer Edge
      (CE) router", meaning both ITR and ETR functionality is at the CE
      router.

   EID-to-RLOC Cache:   a short-lived, on-demand table in an ITR that
      stores, tracks, and is responsible for timing-out and otherwise
      validating EID-to-RLOC mappings.  This cache is distinct from the
      full "database" of EID-to-RLOC mappings, it is dynamic, local to
      the ITR(s), and relatively small while the database is
      distributed, relatively static, and much more global in scope.

   EID-to-RLOC Database:   a global distributed database that contains
      all known EID-prefix to RLOC mappings.  Each potential ETR
      typically contains a small piece of the database: the EID-to-RLOC
      mappings for the EID prefixes "behind" the router.  These map to
      one of the router's own, globally-visible, IP addresses.

   Recursive Tunneling:   when a packet has more than one LISP IP
      header.  Additional layers of tunneling may be employed to
      implement traffic engineering or other re-routing as needed.  When
      this is done, an additional "outer" LISP header is added and the
      original RLOCs are preserved in the "inner" header.  Any
      references to tunnels in this specification refers to dynamic
      encapsulating tunnels and never are they staticly configured.

   Reencapsulating Tunnels:   when a packet has no more than one LISP IP
      header (two IP headers total) and when it needs to be diverted to
      new RLOC, an ETR can decapsulate the packet (remove the LISP
      header) and prepend a new tunnel header, with new RLOC, on to the
      packet.  Doing this allows a packet to be re-routed by the re-
      encapsulating router without adding the overhead of additional
      tunnel headers.  Any references to tunnels in this specification
      refers to dynamic encapsulating tunnels and never are they
      staticly configured.

   LISP Header:   a term used in this document to refer to the outer
      IPv4 or IPv6 header, a UDP header, and a LISP header, an ITR
      prepends or an ETR strips.

   Address Family Indicator (AFI):   a term used to describe an address
      encoding in a packet.  An address family currently pertains to an
      IPv4 or IPv6 address.  See [AFI] for details.

   Negative Mapping Entry:   also known as a negative cache entry, is an
      EID-to-RLOC entry where an EID-prefix is advertised or stored with
      no RLOCs.  That is, the locator-set for the EID-to-RLOC entry is
      empty or has an encoded locator count of 0.  This type of entry
      could be used to describe a prefix from a non-LISP site, which is
      explicitly not in the mapping database.  There are a set of well
      defined actions that are encoded in a Negative Map-Reply.

   Data Probe:   a LISP-encapsulated data packet where the inner header
      destination address equals the outer header destination address
      used to trigger a Map-Reply by a decapsulating ETR.  In addition,
      the original packet is decapsulated and delivered to the
      destination host.  A Data Probe is used in some of the mapping
      database designs to "probe" or request a Map-Reply from an ETR; in
      other cases, Map-Requests are used.  See each mapping database
      design for details.

4.  Basic Overview

   One key concept of LISP is that end-systems (hosts) operate the same
   way they do today.  The IP addresses that hosts use for tracking
   sockets, connections, and for sending and receiving packets do not
   change.  In LISP terminology, these IP addresses are called Endpoint
   Identifiers (EIDs).

   Routers continue to forward packets based on IP destination
   addresses.  When a packet is LISP encapsulated, these addresses are
   referred to as Routing Locators (RLOCs).  Most routers along a path
   between two hosts will not change; they continue to perform routing/
   forwarding lookups on the destination addresses.  For routers between
   the source host and the ITR as well as routers from the ETR to the
   destination host, the destination address is an EID.  For the routers
   between the ITR and the ETR, the destination address is an RLOC.

   This design introduces "Tunnel Routers", which prepend LISP headers
   on host-originated packets and strip them prior to final delivery to
   their destination.  The IP addresses in this "outer header" are
   RLOCs.  During end-to-end packet exchange between two Internet hosts,
   an ITR prepends a new LISP header to each packet and an egress tunnel
   router strips the new header.  The ITR performs EID-to-RLOC lookups
   to determine the routing path to the the ETR, which has the RLOC as
   one of its IP addresses.

   Some basic rules governing LISP are:

   o  End-systems (hosts) only send to addresses which are EIDs.  They
      don't know addresses are EIDs versus RLOCs but assume packets get
      to LISP routers, which in turn, deliver packets to the destination
      the end-system has specified.

   o  EIDs are always IP addresses assigned to hosts.

   o  LISP routers mostly deal with Routing Locator addresses.  See
      details later in Section 4.1 to clarify what is meant by "mostly".

   o  RLOCs are always IP addresses assigned to routers; preferably,
      topologically-oriented addresses from provider CIDR blocks.

   o  When a router originates packets it may use as a source address
      either an EID or RLOC.  When acting as a host (e.g. when
      terminating a transport session such as SSH, TELNET, or SNMP), it
      may use an EID that is explicitly assigned for that purpose.  An
      EID that identifies the router as a host MUST NOT be used as an
      RLOC; an EID is only routable within the scope of a site.  A
      typical BGP configuration might demonstrate this "hybrid" EID/RLOC
      usage where a router could use its "host-like" EID to terminate
      iBGP sessions to other routers in a site while at the same time
      using RLOCs to terminate eBGP sessions to routers outside the
      site.

   o  EIDs are not expected to be usable for global end-to-end
      communication in the absence of an EID-to-RLOC mapping operation.
      They are expected to be used locally for intra-site communication.

   o  EID prefixes are likely to be hierarchically assigned in a manner
      which is optimized for administrative convenience and to
      facilitate scaling of the EID-to-RLOC mapping database.  The
      hierarchy is based on a address allocation hierarchy which is not
      dependent on the network topology.

   o  EIDs may also be structured (subnetted) in a manner suitable for
      local routing within an autonomous system.

   An additional LISP header may be prepended to packets by a transit
   router (i.e.  TE-ITR) when re-routing of the path for a packet is
   desired.  An obvious instance of this would be an ISP router that
   needs to perform traffic engineering for packets in flow through its
   network.  In such a situation, termed Recursive Tunneling, an ISP
   transit acts as an additional ingress tunnel router and the RLOC it
   uses for the new prepended header would be either an TE-ETR within
   the ISP (along intra-ISP traffic engineered path) or in an TE-ETR
   within another ISP (an inter-ISP traffic engineered path, where an
   agreement to build such a path exists).

   This specification mandates that no more than two LISP headers get
   prepended to a packet.  This avoids excessive packet overhead as well
   as possible encapsulation loops.  It is believed two headers is
   sufficient, where the first prepended header is used at a site for
   Location/Identity separation and second prepended header is used
   inside a service provider for Traffic Engineering purposes.

   Tunnel Routers can be placed fairly flexibly in a multi-AS topology.
   For example, the ITR for a particular end-to-end packet exchange
   might be the first-hop or default router within a site for the source
   host.  Similarly, the egress tunnel router might be the last-hop
   router directly-connected to the destination host.  Another example,
   perhaps for a VPN service out-sourced to an ISP by a site, the ITR
   could be the site's border router at the service provider attachment
   point.  Mixing and matching of site-operated, ISP-operated, and other
   tunnel routers is allowed for maximum flexibility.  See Section 8 for
   more details.

4.1.  Packet Flow Sequence

   This section provides an example of the unicast packet flow with the
   following conditions:

   o  Source host "host1.abc.com" is sending a packet to
      "host2.xyz.com", exactly what host1 would do if the site was not
      using LISP.

   o  Each site is multi-homed, so each tunnel router has an address
      (RLOC) assigned from the service provider address block for each
      provider to which that particular tunnel router is attached.

   o  The ITR(s) and ETR(s) are directly connected to the source and
      destination, respectively.

   o  Data Probes are used to solicit Map-Replies versus using Map-
      Requests.  And the Data Probes are sent on the underlying topology
      (the LISP 1.0 variant) but could also be sent over an alternative
      topology (the LISP 1.5 variant) as it would in [ALT].

   Client host1.abc.com wants to communicate with server host2.xyz.com:

   1.  host1.abc.com wants to open a TCP connection to host2.xyz.com.
       It does a DNS lookup on host2.xyz.com.  An A/AAAA record is
       returned.  This address is used as the destination EID and the
       locally-assigned address of host1.abc.com is used as the source
       EID.  An IPv4 or IPv6 packet is built using the EIDs in the IPv4
       or IPv6 header and sent to the default router.

   2.  The default router is configured as an ITR.  The ITR must be able
       to map the EID destination to an RLOC of the ETR at the
       destination site.  The ITR prepends a LISP header to the packet,
       with one of its RLOCs as the source IPv4 or IPv6 address.  The
       destination EID from the original packet header is used as the
       destination IPv4 or IPv6 in the prepended LISP header.
       Subsequent packets, where the outer destination address is the
       destination EID will be sent until EID-to-RLOC mapping is
       learned.

   3.  In LISP 1, the packet is routed through the Internet as it is
       today.  In LISP 1.5, the packet is routed on a different topology
       which may have EID prefixes distributed and advertised in an
       aggregatable fashion.  In either case, the packet arrives at the
       ETR.  The router is configured to "punt" the packet to the
       router's processor.  See Section 7 for more details.  For LISP
       2.0 and 3.0, the behavior is not fully defined yet.

   4.  The LISP header is stripped so that the packet can be forwarded
       by the router control plane.  The router looks up the destination
       EID in the router's EID-to-RLOC database (not the cache, but the
       configured data structure of RLOCs).  An EID-to-RLOC Map-Reply
       message is originated by the ETR and is addressed to the source
       RLOC in the LISP header of the original packet (this is the ITR).
       The source RLOC of the Map-Reply is one of the ETR's RLOCs.

   5.  The ITR receives the Map-Reply message, parses the message (to
       check for format validity) and stores the mapping information
       from the packet.  This information is put in the ITR's EID-to-
       RLOC mapping cache (this is the on-demand cache, the cache where
       entries time out due to inactivity).

   6.  Subsequent packets from host1.abc.com to host2.xyz.com will have
       a LISP header prepended by the ITR using the appropriate RLOC as
       the LISP header destination address learned from the ETR.  Note,
       the packet may be sent to a different ETR than the one which
       returned the Map-Reply due to the source site's hashing policy or
       the destination site's locator-set policy.

   7.  The ETR receives these packets directly (since the destination
       address is one of its assigned IP addresses), strips the LISP
       header and forwards the packets to the attached destination host.

   In order to eliminate the need for a mapping lookup in the reverse
   direction, an ETR MAY create a cache entry that maps the source EID
   (inner header source IP address) to the source RLOC (outer header
   source IP address) in a received LISP packet.  Such a cache entry is
   termed a "gleaned" mapping and only contains a single RLOC for the
   EID in question.  More complete information about additional RLOCs
   SHOULD be verified by sending a LISP Map-Request for that EID.  Both
   ITR and the ETR may also influence the decision the other makes in
   selecting an RLOC.  See Section 6 for more details.

5.  Tunneling Details

   This section describes the LISP Data Message which defines the
   tunneling header used to encapsulate IPv4 and IPv6 packets which
   contain EID addresses.  Even though the following formats illustrate
   IPv4-in-IPv4 and IPv6-in-IPv6 encapsulations, the other 2
   combinations are supported as well.

   Since additional tunnel headers are prepended, the packet becomes
   larger and in theory can exceed the MTU of any link traversed from
   the ITR to the ETR.  It is recommended, in IPv4 that packets do not
   get fragmented as they are encapsulated by the ITR.  Instead, the
   packet is dropped and an ICMP Too Big message is returned to the
   source.

   Based on informal surveys of large ISP traffic patterns, it appears
   that most transit paths can accommodate a path MTU of at least 4470
   bytes.  The exceptions, in terms of data rate, number of hosts
   affected, or any other metric are expected to be vanishingly small.

   To address MTU concerns, mainly raised on the RRG mailing list, the
   LISP deployment process will include collecting data during its pilot
   phase to either verify or refute the assumption about minimum
   available MTU.  If the assumption proves true and transit networks
   with links limited to 1500 byte MTUs are corner cases, it would seem
   more cost-effective to either upgrade or modify the equipment in
   those transit networks to support larger MTUs or to use existing
   mechanisms for accommodating packets that are too large.

   For this reason, there is currently no plan for LISP to add any new
   additional, complex mechanism for implementing fragmentation and
   reassembly in the face of limited-MTU transit links.  If analysis
   during LISP pilot deployment reveals that the assumption of
   essentially ubiquitous, 4470+ byte transit path MTUs, is incorrect,
   then LISP can be modified prior to protocol standardization to add
   support for one of the proposed fragmentation and reassembly schemes.
   Note that two simple existing schemes are detailed in Section 5.4.

5.1.  LISP IPv4-in-IPv4 Header Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version|  IHL  |Type of Service|          Total Length         |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Identification        |Flags|      Fragment Offset    |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   OH  |  Time to Live | Protocol = 17 |         Header Checksum       |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                    Source Routing Locator                     |
    \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                 Destination Routing Locator                   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |       Source Port = xxxx      |       Dest Port = 4341        |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   L / |                       Locator Reach Bits                      |
   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   S \ |S|E| rsvd-flags|                  Nonce                        |
   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version|  IHL  |Type of Service|          Total Length         |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Identification        |Flags|      Fragment Offset    |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   IH  |  Time to Live |    Protocol   |         Header Checksum       |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                           Source EID                          |
    \  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                         Destination EID                       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

5.2.  LISP IPv6-in-IPv6 Header Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version| Traffic Class |           Flow Label                  |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |         Payload Length        | Next Header=17|   Hop Limit   |
   v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
   O   +                                                               +
   u   |                                                               |
   t   +                     Source Routing Locator                    +
   e   |                                                               |
   r   +                                                               +
       |                                                               |
   H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   d   |                                                               |
   r   +                                                               +
       |                                                               |
   ^   +                  Destination Routing Locator                  +
   |   |                                                               |
    \  +                                                               +
     \ |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |       Source Port = xxxx      |       Dest Port = 4341        |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   L / |                       Locator Reach Bits                      |
   I   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   S \ |S|E| rsvd-flags|                  Nonce                        |
   P   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |Version| Traffic Class |           Flow Label                  |
    /  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   /   |         Payload Length        |  Next Header  |   Hop Limit   |
   v   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
   I   +                                                               +
   n   |                                                               |
   n   +                          Source EID                           +
   e   |                                                               |
   r   +                                                               +
       |                                                               |
   H   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   d   |                                                               |
   r   +                                                               +
       |                                                               |
   ^   +                        Destination EID                        +
   \   |                                                               |
    \  +                                                               +
     \ |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

5.3.  Tunnel Header Field Descriptions

   IH Header:  is the inner header, preserved from the datagram received
      from the originating host.  The source and destination IP
      addresses are EIDs.

   OH Header:  is the outer header prepended by an ITR.  The address
      fields contain RLOCs obtained from the ingress router's EID-to-
      RLOC cache.  The IP protocol number is "UDP (17)" from [RFC0768].
      The DF bit of the Flags field is set to 0.

   UDP Header:  contains a ITR selected source port when encapsulating a
      packet.  See Section 6.4 for details on the hash algorithm used
      select a source port based on the 5-tuple of the inner header.
      The destination port MUST be set to the well-known IANA assigned
      port value 4341.

   UDP Checksum:  this field <strike><font color="red">field</font></strike> MUST be transmitted as 0 and ignored on
      receipt by the ETR.  Note, even when the UDP checksum is
      transmitted as 0 an intervening NAT device can recalculate the
      checksum and rewrite the UDP checksum field to non-zero.  For
      performance reasons, the ETR MUST ignore the checksum and MUST not
      do a checksum computation.

   UDP Length:  for an IPv4 encapsulated packet, the inner header Total
      Length plus the UDP and LISP header lengths are used.  For an IPv6
      encapsulated packet, the inner header Payload Length plus the size
      of the IPv6 header (40 bytes) plus the size of the UDP and LISP
      headers are used.  The UDP header length is 8 bytes.  The LISP
      header length is 8 bytes when no loc-reach-bit header extensions
      are used.

   LISP Locator Reach Bits:  in the LISP header are set by an ITR to
      indicate to an ETR the reachability of the Locators in the source
      site.  Each RLOC in a Map-Reply is assigned an ordinal value from
      0 to n-1 (when there are n RLOCs in a mapping entry).  The Locator
      Reach Bits are numbered from 0 to n-1 from the right significant
      bit of the 32-bit field.  When a bit is set to 1, the ITR is
      indicating to the ETR the RLOC associated with the bit ordinal is
      reachable.  See Section 6.3 for details on how an ITR can
      determine other ITRs at the site are reachable.  When a site has
      multiple EID-prefixes which result in multiple mappings (where
      each could have a different locator-set), the Locator Reach Bits
      setting in an encapsulated packet MUST reflect the mapping for the
      EID-prefix that the inner-header source EID address matches.

   S: this is the Solicit-Map-Request (SMR) bit.  See section
      Section 6.5.2 for details.

   E: this is the echo-nonce-request bit.  See section Section 6.3.1 for
      details.

   rsvd-flags:  this 6-bit field is reserved for future flag use.  It is
      set to 0 on transmit and ignored on receipt.

   LISP Nonce:  is a 24-bit value that is randomly generated by an ITR.
      <strike><font color="red">It</font></strike>
      <strong><font color="green">The nonce</font></strong> is <strong><font color="green">also</font></strong> used <strong><font color="green">when the E-bit is set</font></strong> to <strike><font color="red">test route-returnability</font></strike> <strong><font color="green">request the nonce
      value to be echoed by the other side</font></strong> when <strike><font color="red">xTRs exchange
      encapsulated data</font></strike> packets <strike><font color="red">with</font></strike> <strong><font color="green">are returned.
      See section Section 6.3.1 for more details.  The nonce is also
      used when SMR-bit is set to solicit</font></strong> the <strike><font color="red">SMR bit set, Data-Probe,</font></strike> <strong><font color="green">other side to send a</font></strong> Map-
      <strike><font color="red">Request, or Map-Reply messages.</font></strike>
      <strong><font color="green">Request containing this nonce.  See section Section 6.5.2 for
      details.</font></strong>

   When doing Recursive Tunneling or ITR/PTR encapsulation:

   o  The OH header Time to Live field (or Hop Limit field, in case of
      IPv6) MUST be copied from the IH header Time to Live field.

   o  The OH header Type of Service field (or the Traffic Class field,
      in the case of IPv6) SHOULD be copied from the IH header Type of
      Service field (with one caveat, see below).

   When doing Re-encapsulated Tunneling:

   o  The new OH header Time to Live field SHOULD be copied from the
      stripped OH header Time to Live field.

   o  The new OH header Type of Service field SHOULD be copied from the
      stripped OH header Type of Service field (with one caveat, see
      below)..

   Copying the TTL serves two purposes: first, it preserves the distance
   the host intended the packet to travel; second, and more importantly,
   it provides for suppression of looping packets in the event there is
   a loop of concatenated tunnels due to misconfiguration.

   The ECN field occupies bits 6 and 7 of both the IPv4 Type of Service
   field and the IPv6 Traffic Class field [RFC3168].  The ECN field
   requires special treatment in order to avoid discarding indications
   of congestion [RFC3168].  ITR encapsulation MUST copy the 2-bit ECN
   field from the inner header to the outer header.  Re-encapsulation
   MUST copy the 2-bit ECN field from the stripped outer header to the
   new outer header.  If the ECN field contains a congestion indication
   codepoint (the value is '11', the Congestion Experienced (CE)
   codepoint), then ETR decapsulation MUST copy the 2-bit ECN field from
   the stripped outer header to the surviving inner header that is used
   to forward the packet beyond the ETR.  These requirements preserve
   Congestion Experienced (CE) indications when a packet that uses ECN
   traverses a LISP tunnel and becomes marked with a CE indication due
   to congestion between the tunnel endpoints.

5.4.  Dealing with Large Encapsulated Packets

   In the event that the MTU issues mentioned above prove to be more
   serious than expected, this section proposes 2 simple mechanisms to
   deal with large packets.  One is stateless using IP fragmentation and
   the other is stateful using Path MTU Discovery [RFC1191].

   It is left to the implementor to decide if the stateless or stateful
   mechanism should be implemented.  Both or neither can be decided as
   well since it is a local decision in the ITR regarding how to deal
   with MTU issues.  Sites can interoperate with differing mechanisms.

   <strong><font color="green">Both stateless and stateful mechanisms also apply to Reencapsulating
   and Recursive Tunneling.  So any actions reference below to an ITR
   also apply to an TE-ITR.</font></strong>

5.4.1.  A Stateless Solution to MTU Handling

   An ITR stateless solution to handle MTU issues is described as
   follows:

   1.  Define an architectural constant S for the maximum size of a
       packet, in bytes, an ITR would receive from a source inside of
       its site.

   2.  Define L to be the maximum size, in bytes, a packet of size S
       would be after the ITR prepends the LISP header, UDP header, and
       outer network layer header of size H.

   3.  Calculate: S + H = L.

   When an ITR receives a packet from a site-facing interface and adds H
   bytes worth of encapsulation to yield a packet size of L bytes, it
   resolves the MTU issue by first splitting the original packet into 2
   equal-sized fragments.  A LISP header is then prepended to each
   fragment.  This will ensure that the new, encapsulated packets are of
   size (S/2 + H), which is always below the effective tunnel MTU.

   When an ETR receives encapsulated fragments, it treats them as two
   individually encapsulated packets.  It strips the LISP headers then
   forwards each fragment to the destination host of the destination
   site.  The two fragments are reassembled at the destination host into
   the single IP datagram that was originated by the source host.

   This behavior is performed by the ITR when the source host originates
   a packet with the DF field of the IP header is set to 0.  When the DF
   field of the IP header is set to 1, or the packet is an IPv6 packet
   originated by the source host, the ITR will drop the packet when the
   size is greater than L, and sends an ICMP Too Big message to the
   source with a value of S, where S is (L - H).

   When the outer header encapsulation uses an IPv4 header the DF bit is
   always set to 0.

   This specification recommends that L be defined as 1500.

5.4.2.  A Stateful Solution to MTU Handling

   An ITR stateful solution to handle MTU issues is describe as follows
   and was first introduced in [OPENLISP]:

   1.  The ITR will keep state of the effective MTU for each locator per
       mapping cache entry.  The effective MTU is what the core network
       can deliver along the path between ITR and ETR.

   2.  When an <strong><font color="green">IPv4</font></strong> encapsulated packet, with DF bit <strike><font color="red">always</font></strike> set to 0, exceeds
       what the core network can deliver, one of the intermediate
       routers on the path will send an ICMP Too Big message to the ITR.
       The ITR will parse the ICMP message to determine which locator is
       affected by the effective MTU change and then record the new
       effective MTU value in the mapping cache entry.

   3.  When a packet is received by the ITR from a source inside of the
       site and the size of the packet is greater than the effective MTU
       stored with the mapping cache entry associated with the
       destination EID the packet is for, the ITR will send an ICMP Too
       Big message back to the source.  The packet size advertised by
       the ITR in the ICMP Too Big message is the effective MTU minus
       the LISP encapsulation length.

   Even though this mechanism is stateful, it has advantages over the
   stateless IP fragmentation mechanism, by not involving the
   destination host with reassembly of ITR fragmented packets.

6.  EID-to-RLOC Mapping

6.1.  LISP IPv4 and IPv6 Control Plane Packet Formats

   The following new UDP packet types are used to retrieve EID-to-RLOC
   mappings:

       0                   1                   2                   3
       0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Version|  IHL  |Type of Service|          Total Length         |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Identification        |Flags|      Fragment Offset    |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |  Time to Live | Protocol = 17 |         Header Checksum       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                    Source Routing Locator                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                 Destination Routing Locator                   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |           Source Port         |         Dest Port             |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       |                         LISP Message                          |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |Version| Traffic Class |           Flow Label                  |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |         Payload Length        | Next Header=17|   Hop Limit   |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                                                               +
       |                                                               |
       +                     Source Routing Locator                    +
       |                                                               |
       +                                                               +
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                                                               +
       |                                                               |
       +                  Destination Routing Locator                  +
       |                                                               |
       +                                                               +
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |           Source Port         |         Dest Port             |
   UDP +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |           UDP Length          |        UDP Checksum           |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       |                         LISP Message                          |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   The LISP UDP-based messages are the Map-Request and Map-Reply
   messages.  When a UDP Map-Request is sent, the UDP source port is
   chosen by the sender and the destination UDP port number is set to
   4342.  When a UDP Map-Reply is sent, the source UDP port number is
   set to 4342 and the destination UDP port number is copied from the
   source port of either the Map-Request or the invoking data packet.

   The UDP Length field will reflect the length of the UDP header and
   the LISP Message payload.

   The UDP Checksum is computed and set to non-zero for Map-Request and
   Map-Reply messages.  It MUST be checked on receipt and if the
   checksum fails, the packet MUST be dropped.

   LISP-CONS [CONS] use TCP to send LISP control messages.  The format
   of control messages includes the UDP header so the checksum and
   length fields can be used to protect and delimit message boundaries.

   This main LISP specification is the authoritative source for message
   format definitions for the Map-Request and Map-Reply messages.

6.1.1.  LISP Packet Type Allocations

   This section will be the authoritative source for allocating LISP
   Type values.  Current allocations are:

       Reserved:                        0    b'0000'
       LISP Map-Request:                1    b'0001'
       LISP Map-Reply:                  2    b'0010'
       LISP Map-Register:               3    b'0011'
       LISP-CONS Open Message:          8    b'1000'
       LISP-CONS Push-Add Message:      9    b'1001'
       LISP-CONS Push-Delete Message:   10   b'1010'
       LISP-CONS Unreachable Message    11   b'1011'

6.1.2.  Map-Request Message Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       <strike><font color="red">|                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+</font></strike>
       |Type=1 <strike><font color="red">|A|R|P|S|</font></strike> <strong><font color="green">|A|M|P|S|</font></strong>           Reserved            | Record Count  |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             <strong><font color="green">Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |</font></strong>         Source-EID-AFI        |            ITR-AFI            |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                   Source EID Address  ...                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                Originating ITR RLOC Address ...               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     / |   Reserved    | EID mask-len  |        EID-prefix-AFI         |
   Rec +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
     \ |                       EID-prefix  ...                         |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                   Map-Reply Record  ...                       |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                     Mapping Protocol Data                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Packet field descriptions:

   <strike><font color="red">Locator Reach Bits:  These bits MUST be set to 0 on transmission and
      ignored on receipt.  They cannot be used for indicating
      reachability because the Map-Request does not have the EID-prefix
      for the sending site so the receiver of the Map-Request cannot
      know what mapping entry to associate the reachability with.
      However, when Mapping Data is provided in the Map-Reply Record
      field, and the receiver of the Map-Request is configured to accept
      the mapping data, the R-bit per locator entry in the EID-prefix
      record is used to denote reachability.

   Nonce:  A 4-byte random value created by the sender of the Map-
      Request.</font></strike>

   Type:   1 (Map-Request)

   A: This is an authoritative bit, which is set to 0 for UDP-based Map-
      Requests sent by an ITR.  <strike><font color="red">See other control-specific documents
      [CONS] for TCP-based Map-Requests.

   R:</font></strike>

   <strong><font color="green">M:</font></strong> When set, it indicates a Map-Reply Record segment is included in
      the Map-Request.

   P: Indicates that a Map-Request should be treated as a "piggyback"
      locator reachability probe.  The receiver should respond with a
      Map-Reply with the P bit set and the nonce copied from the Map-
      Request.  Details on this usage will be provided in a future
      version of this draft.

   S: This is the SMR bit.  See Section 6.5.2 for details.

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this request message.  A
      record is comprised of the portion of the packet is labeled 'Rec'
      above and occurs the number of times equal to Record count.

   <strong><font color="green">Nonce:  A 4-byte random value created by the sender of the Map-
      Request.  This nonce will be returned in the Map-Reply.</font></strong>

   Source-EID-AFI:  Address family of the "Source EID Address" field.

   ITR-AFI:  Address family of the "Originating ITR RLOC Address" field.

   Source EID Address:  This is the EID of the source host which
      originated the packet which is invoking this Map-Request.

   Originating ITR RLOC Address:  Used to give the ETR the option of
      returning a Map-Reply in the address-family of this locator.

   EID mask-len:  Mask length for EID prefix.

   EID-AFI:  Address family of EID-prefix according to [RFC2434]

   EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
      address-family.  When a Map-Request is sent by an ITR because a
      data packet is received for a destination where there is no
      mapping entry, the EID-prefix is set to the destination IP address
      of the data packet.  And the 'EID mask-len' is set to 32 or 128
      for IPv4 or IPv6, respectively.  When an xTR wants to query a site
      about the status of a mapping it already has cached, the EID-
      prefix used in the Map-Request has the same mask-length as the
      EID-prefix returned from the site when it sent a Map-Reply
      message.

   Map-Reply Record:  When the R bit is set, this field is the size of
      the "Record" field in the Map-Reply format.  This Map-Reply record
      contains the EID-to-RLOC mapping entry associated with the Source
      EID.  This allows the ETR which will receive this Map-Request to
      cache the data if it chooses to do so.

   Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
      is optional and present when the UDP length indicates there is
      enough space in the packet to include it.

6.1.3.  EID-to-RLOC UDP Map-Request Message

   A Map-Request is sent from an ITR when it needs a mapping for an EID,
   wants to test an RLOC for reachability, or wants to refresh a mapping
   before TTL expiration.  For the initial case, the destination IP
   address used for the Map-Request is the destination-EID from the
   packet which had a mapping cache lookup failure.  For the later 2
   cases, the destination IP address used for the Map-Request is one of
   the RLOC addresses from the locator-set of the map cache entry.  In
   all cases, the UDP source port number for the Map-Request message is
   a randomly allocated 16-bit value and the UDP destination port number
   is set to the well-known destination port number 4342.  A successful
   Map-Reply updates the cached set of RLOCs associated with the EID
   prefix range.

   Map-Requests can also be LISP encapsulated using UDP destination port
   4341 when sent from an ITR to a Map-Resolver.  Likewise, Map-Requests
   are LISP encapsulated the same way from a Map-Server to an ETR.
   Details on encapsulated Map-Requests and Map-Resolvers can be found
   in [LISP-MS].

   Map-Requests MUST be rate-limited.  It is recommended that a Map-
   Request for the same EID-prefix be sent no more than once per second.

6.1.4.  Map-Reply Message Format

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       <strike><font color="red">|                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+</font></strike>
       |Type=2 |P|            Reserved                 | Record Count  |
       <strong><font color="green">+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |</font></strong>
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                          Record  TTL                          |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
   e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   c   |           Reserved            |            EID-AFI            |
   o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   r   |                          EID-prefix                           |
   d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
   | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   | o |           Unused Flags      |R|           Loc-AFI             |
   | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  \|                             Locator                           |
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                     Mapping Protocol Data                     |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Packet field descriptions:

   <strike><font color="red">Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
      0 on transmission and ignored on receipt.  The locator
      reachability is encoded as the R-bit in each locator entry of each
      EID-prefix record.

   Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
      that is echoed here in the Map-Reply.</font></strike>

   Type:   2 (Map-Reply)

   P: Indicates that the Map-Reply is in response to a "piggyback"
      locator reachability Map-Request.  The nonce field should contain
      a copy of the nonce value from the original Map-Request.  Details
      on this usage will be provided in a future version of this draft.

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this reply message.  A record
      is comprised of that portion of the packet labeled 'Record' above
      and occurs the number of times equal to Record count.

   <strong><font color="green">Nonce:  A 4-byte value set in a Data-Probe packet or a Map-Request
      that is echoed here in the Map-Reply.</font></strong>

   Record TTL:  The time in minutes the recipient of the Map-Reply will
      store the mapping.  If the TTL is 0, the entry should be removed
      from the cache immediately.  If the value is 0xffffffff, the
      recipient can decide locally how long to store the mapping.

   Locator Count:  The number of Locator entries.  A locator entry
      comprises what is labeled above as 'Loc'.  The locator count can
      be 0 indicating there are no locators for the EID-prefix.

   EID mask-len:  Mask length for EID prefix.

   A: The Authoritative bit, when sent by a UDP-based message is always
      set by the ETR.  See [CONS] for TCP-based Map-Replies.

   ACT:  This 3-bit field describes negative Map-Reply actions.  These
      bits are used only when the 'Locator Count' field is set to 0.
      The action bits are encoded only in Map-Reply messages.  The
      actions defined are used by an ITR or PTR when a destination EID
      matches a negative mapping cache entry.  The current assigned
      values are:

      (0) No action:  No action is being conveyed by the sender of the
         Map-Reply message.

      (1) Natively-Forward:  The packet is not encapsulated or dropped
         but natively forwarded.

      (2) Drop:  The packet is dropped silently.

      (3) Send-Map-Request:  The packet invokes sending a Map-Request.

   EID-AFI:  Address family of EID-prefix according to [RFC2434].

   EID-prefix:  4 bytes if an IPv4 address-family, 16 bytes if an IPv6
      address-family.

   Priority:  each RLOC is assigned a unicast priority.  Lower values
      are more preferable.  When multiple RLOCs have the same priority,
      they may be used in a load-split fashion.  A value of 255 means
      the RLOC MUST NOT be used for unicast forwarding.

   Weight:  when priorities are the same for multiple RLOCs, the weight
      indicates how to balance unicast traffic between them.  Weight is
      encoded as a percentage of total unicast packets that match the
      mapping entry.  If a non-zero weight value is used for any RLOC,
      then all RLOCs must use a non-zero weight value and then the sum
      of all weight values MUST equal 100.  If a zero value is used for
      any RLOC weight, then all weights MUST be zero and the receiver of
      the Map-Reply will decide how to load-split traffic.  See
      Section 6.4 for a suggested hash algorithm to distribute load
      across locators with same priority and equal weight values.  When
      a single RLOC exists in a mapping entry, the weight value MUST be
      set to 100 and ignored on receipt.

   M Priority:  each RLOC is assigned a multicast priority used by an
      ETR in a receiver multicast site to select an ITR in a source
      multicast site for building multicast distribution trees.  A value
      of 255 means the RLOC MUST NOT be used for joining a multicast
      distribution tree.

   M Weight:  when priorities are the same for multiple RLOCs, the
      weight indicates how to balance building multicast distribution
      trees across multiple ITRs.  The weight is encoded as a percentage
      of total number of trees build to the source site identified by
      the EID-prefix.  If a non-zero weight value is used for any RLOC,
      then all RLOCs must use a non-zero weight value and then the sum
      of all weight values MUST equal 100.  If a zero value is used for
      any RLOC weight, then all weights MUST be zero and the receiver of
      the Map-Reply will decide how to distribute multicast state across
      ITRs.

   Unused Flags:  set to 0 when sending and ignored on receipt.

   R: when this bit is set, the locator is known to be reachable from
      the Map-Reply sender's perspective.  <strike><font color="red">When there is a single
      mapping record in the message, the R-bit for each locator must
      have a consistent setting with the bitfield setting of the 'Loc
      Reach Bits' field in the early part of the header.  When there are
      multiple mapping records in the message, the 'Loc Reach Bits'
      field is set to 0.</font></strike>

   Locator:  an IPv4 or IPv6 address (as encoded by the 'Loc-AFI' field)
      assigned to an ETR or router acting as a proxy replier for the
      EID-prefix.  Note that the destination RLOC address MAY be an
      anycast address.  A source RLOC can be an anycast address as well.
      The source or destination RLOC MUST NOT be the broadcast address
      (255.255.255.255 or any subnet broadcast address known to the
      router), and MUST NOT be a link-local multicast address.  The
      source RLOC MUST NOT be a multicast address.  The destination RLOC
      SHOULD be a multicast address if it is being mapped from a
      multicast destination EID.

   Mapping Protocol Data:  See [CONS] or [ALT] for details.  This field
      is optional and present when the UDP length indicates there is
      enough space in the packet to include it.

6.1.5.  EID-to-RLOC UDP Map-Reply Message

   When a Data Probe packet or a Map-Request triggers a Map-Reply to be
   sent, the RLOCs associated with the EID-prefix matched by the EID in
   the original packet destination IP address field will be returned.
   The RLOCs in the Map-Reply are the globally-routable IP addresses of
   the ETR but are not necessarily reachable; separate testing of
   reachability is required.

   Note that a Map-Reply may contain different EID-prefix granularity
   (prefix + length) than the Map-Request which triggers it.  This might
   occur if a Map-Request were for a prefix that had been returned by an
   earlier Map-Reply.  In such a case, the requester updates its cache
   with the new prefix information and granularity.  For example, a
   requester with two cached EID-prefixes that are covered by a Map-
   Reply containing one, less-specific prefix, replaces the entry with
   the less-specific EID-prefix.  Note that the reverse, replacement of
   one less-specific prefix with multiple more-specific prefixes, can
   also occur but not by removing the less-specific prefix rather by
   adding the more-specific prefixes which during a lookup will override
   the less-specific prefix.

   Replies SHOULD be sent for an EID-prefix no more often than once per
   second to the same requesting router.  For scalability, it is
   expected that aggregation of EID addresses into EID-prefixes will
   allow one Map-Reply to satisfy a mapping for the EID addresses in the
   prefix range thereby reducing the number of Map-Request messages.

   The addresses for a encapsulated data packets or Map-Request message
   are swapped and used for sending the Map-Reply.  The UDP source and
   destination ports are swapped as well.  That is, the source port in
   the UDP header for the Map-Reply is set to the well-known UDP port
   number 4342.

   Map-Reply records can have an empty locator-set.  This type of a Map-
   Reply is called a Negative Map-Reply.  Negative Map-Replies convey
   special actions by the sender to the ITR or PTR which have solicited
   the Map-Reply.  There are two primary applications for Negative Map-
   Replies.  The first is for a Map-Resolver to instruct an ITR or PTR
   when a destination is for a LISP site versus a non-LISP site.  And
   the other is to source quench Map-Requests which are sent for non-
   allocated EIDs.

6.1.6.  Map-Register Message Format

   The usage details of the Map-Register message can be found in
   specification [LISP-MS].  This section solely defines the message
   format.

   The message is sent in a UDP with a destination UDP port 4342 and a
   randomly selected UDP port number.  Before an IPv4 or IPv6 network
   layer header is prepended, an AH header is prepended to carry
   authentication information.  The format conforms to the IPsec
   specification [RFC2402].  The Map-Register message will use transport
   mode by setting the IP protocol number field or the IPv6 next-header
   field to 51.

   The AH header from [RFC2402] is:

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       | Next Header   |  Payload Len  |          RESERVED             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                 Security Parameters Index (SPI)               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                    Sequence Number Field                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                                                               |
       +                Authentication Data (variable)                 |
       |                                                               |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   The Next Header field is set to UDP.  The SPI field is set to 0
   (since no Security Association or Key Exchange protocol is being
   used).  The Sequence Number is a randomly chosen value by the sender.
   The Authentication Data is 16 bytes and holds a MD5 HMAC.

   The Map-Register message format is:

        0                   1                   2                   3
        0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       <strike><font color="red">|                       Locator Reach Bits                      |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |
       +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+</font></strike>
       |Type=3 |P|            Reserved                 | Record Count  |
       <strong><font color="green">+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
       |                             Nonce                             |</font></strong>
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |   |                          Record  TTL                          |
   |   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   R   | Locator Count | EID mask-len  |A| ACT |  Reserved             |
   e   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   c   |           Reserved            |            EID-AFI            |
   o   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   r   |                          EID-prefix                           |
   d   +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  /|    Priority   |    Weight     |  M Priority   |   M Weight    |
   | L +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   | o |           Unused Flags      |R|           Loc-AFI             |
   | c +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
   |  \|                             Locator                           |
   +-&gt; +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Packet field descriptions:

   <strike><font color="red">Locator Reach Bits:  Refer to Section 5.3.  This field MUST be set to
      0 on transmission and ignored on receipt.  The locator
      reachability is encoded as the R-bit in each locator entry of each
      EID-prefix record.

   Nonce:  The Nonce field is set to 0 in Map-Register messages.</font></strike>

   Type:   3 (Map-Register)

   P: Set to 1 by an ETR which sends a Map-Register message requesting
      for the Map-Server to proxy Map-Reply.  The Map-Server will send
      non-authoritative Map-Replies on behalf of the ETR.  Details on
      this usage will be provided in a future version of this draft.

   Reserved:  Set to 0 on transmission and ignored on receipt.

   Record Count:  The number of records in this Map-Register message.  A
      record is comprised of that portion of the packet labeled 'Record'
      above and occurs the number of times equal to Record count.

   <strong><font color="green">Nonce:  The Nonce field is set to 0 in Map-Register messages.</font></strong>

   The definition of the rest of the Map-Register can be found in the
   Map-Reply section.

6.2.  Routing Locator Selection

   Both client-side and server-side may need control over the selection
   of RLOCs for conversations between them.  This control is achieved by
   manipulating the Priority and Weight fields in EID-to-RLOC Map-Reply
   messages.  Alternatively, RLOC information may be gleaned from
   received tunneled packets or EID-to-RLOC Map-Request messages.

   The following enumerates different scenarios for choosing RLOCs and
   the controls that are available:

   o  Server-side returns one RLOC.  Client-side can only use one RLOC.
      Server-side has complete control of the selection.

   o  Server-side returns a list of RLOC where a subset of the list has
      the same best priority.  Client can only use the subset list
      according to the weighting assigned by the server-side.  In this
      case, the server-side controls both the subset list and load-
      splitting across its members.  The client-side can use RLOCs
      outside of the subset list if it determines that the subset list
      is unreachable (unless RLOCs are set to a Priority of 255).  Some
      sharing of control exists: the server-side determines the
      destination RLOC list and load distribution while the client-side
      has the option of using alternatives to this list if RLOCs in the
      list are unreachable.

   o  Server-side sets weight of 0 for the RLOC subset list.  In this
      case, the client-side can choose how the traffic load is spread
      across the subset list.  Control is shared by the server-side
      determining the list and the client determining load distribution.
      Again, the client can use alternative RLOCs if the server-provided
      list of RLOCs are unreachable.

   o  Either side (more likely on the server-side ETR) decides not to
      send a Map-Request.  For example, if the server-side ETR does not
      send Map-Requests, it gleans RLOCs from the client-side ITR,
      giving the client-side ITR responsibility for bidirectional RLOC
      reachability and preferability.  Server-side ETR gleaning of the
      client-side ITR RLOC is done by caching the inner header source
      EID and the outer header source RLOC of received packets.  The
      client-side ITR controls how traffic is returned and can alternate
      using an outer header source RLOC, which then can be added to the
      list the server-side ETR uses to return traffic.  Since no
      Priority or Weights are provided using this method, the server-
      side ETR must assume each client-side ITR RLOC uses the same best
      Priority with a Weight of zero.  In addition, since EID-prefix
      encoding cannot be conveyed in data packets, the EID-to-RLOC cache
      on tunnel routers can grow to be very large.

   RLOCs that appear in EID-to-RLOC Map-Reply messages are considered
   reachable.  The Map-Reply and the database mapping service does not
   provide any reachability status for Locators.  This is done outside
   of the mapping service.  See next section for details.

6.3.  Routing Locator Reachability

   There are 4 methods for determining when a Locator is either
   reachable or has become unreachable:

   1.  Locator reachability is determined by an ETR by examining the
       Loc-Reach-Bits from a LISP header of a encapsulated data packet
       which is provided by an ITR when an ITR encapsulates data.

   2.  Locator unreachability is determined by an ITR by receiving ICMP
       Network or Host Unreachable messages.

   3.  Locator unreachability can also be determined by an BGP-enabled
       ITR when there is no prefix matching a Locator address from the
       BGP RIB.

   4.  Locator unreachability is determined when a host sends an ICMP
       Port Unreachable message.  This occurs when an ITR may not use
       any methods of interworking. one which is describe in [INTERWORK]
       and the encapsulated data packet is received by a host at the
       destination non-LISP site.

   5.  Locator reachability is determined by receiving a Map-Reply
       message from a ETR's Locator address in response to a previously
       sent Map-Request.

   6.  Locator reachability can also be determined by receiving packets
       encapsulated by the ITR assigned to the locator address.

   When determining Locator reachability by examining the Loc-Reach-Bits
   from the LISP encapsulate data packet, an ETR will receive up to date
   status from the ITR closest to the Locators at the source site.  The
   ITRs at the source site can determine reachability when running their
   IGP at the site.  When the ITRs are deployed on CE routers, typically
   a default route is injected into the site's IGP from each of the
   ITRs.  If an ITR goes down, the CE-PE link goes down, or the PE
   router goes down, the CE router withdraws the default route.  This
   allows the other ITRs at the site to determine one of the Locators
   has gone unreachable.

   The Locators listed in a Map-Reply are numbered with ordinals 0 to
   n-1.  The Loc-Reach-Bits in a LISP Data Message are numbered from 0
   to n-1 starting with the least significant bit numbered as 0.  So,
   for example, if the ITR with locator listed as the 3rd Locator
   position in the Map-Reply goes down, all other ITRs at the site will
   have the 3rd bit from the right cleared (the bit that corresponds to
   ordinal 2).

   When an ETR decapsulates a packet, it will look for a change in the
   Loc-Reach-Bits value.  When a bit goes from 1 to 0, the ETR will
   refrain from encapsulating packets to the Locator that has just gone
   unreachable.  It can start using the Locator again when the bit that
   corresponds to the Locator goes from 0 to 1.  Loc-Reach-Bits are
   associated with a locator-set per EID-prefix.  Therefore, when a
   locator becomes unreachable, the loc-reach-bit that corresponds to
   that locator's position in the list returned by the last Map-Reply
   will be set to zero for that particular EID-prefix.

   When ITRs at the site are not deployed in CE routers, the IGP can
   still be used to determine the reachability of Locators provided they
   are injected a stub links into the IGP.  This is typically done when
   a /32 address is configured on a loopback interface.

   When ITRs receive ICMP Network or Host Unreachable messages as a
   method to determine unreachability, they will refrain from using
   Locators which are described in Locator lists of Map-Replies.
   However, using this approach is unreliable because many network
   operators turn off generation of ICMP Unreachable messages.

   If an ITR does receive an ICMP Network or Host Unreachable message,
   it MAY originate its own ICMP Unreachable message destined for the
   host that originated the data packet the ITR encapsulated.

   Also, BGP-enabled ITRs can unilaterally examine the BGP RIB to see if
   a locator address from a locator-set in a mapping entry matches a
   prefix.  If it does not find one and BGP is running in the Default
   Free Zone (DFZ), it can decide to not use the locator even though the
   Loc-Reach-Bits indicate the locator is up.  In this case, the path
   from the ITR to the ETR that is assigned the locator is not
   available.  More details are in [LOC-ID-ARCH].

   Optionally, an ITR can send a Map-Request to a Locator and if a Map-
   Reply is returned, reachability of the Locator has been determined.
   Obviously, sending such probes increases the number of control
   messages originated by tunnel routers for active flows, so Locators
   are assumed to be reachable when they are advertised.

   This assumption does create a dependency: Locator unreachability is
   detected by the receipt of ICMP Host Unreachable messages.  When an
   Locator has been determined to be unreachable, it is not used for
   active traffic; this is the same as if it were listed in a Map-Reply
   with priority 255.

   The ITR can test the reachability of the unreachable Locator by
   sending periodic Requests.  Both Requests and Replies MUST be rate-
   limited.  Locator reachability testing is never done with data
   packets since that increases the risk of packet loss for end-to-end
   sessions.

   When an ETR decapsulates a packet, it knows that it is reachable from
   the encapsulating ITR because that is how the packet arrived.  In
   most cases, the ETR can also reach the ITR but cannot assume this to
   be true due to the possibility of path assymetry.  In the presence of
   unidirectional traffic flow from an ITR to an ETR, the ITR should not
   use the lack of return traffic as an indication that the ETR is
   unreachable.  Instead, it must use an alternate mechanisms to
   determine reachability.

6.3.1.  Echo Nonce Algorithm

   When there is bidirectional data flow between a pair of locators, a
   simple mechanism called "nonce echoing" can be used to determine
   reachability between an ITR and ETR.  When an ITR wants to solicit a
   nonce echo, it sets the E-bit and places a 24-bit nonce in the LISP
   header of the next encapsulated data packet.

   When this packet is received by the ETR, the encapsulated packet is
   forwarded as normal.  When the ETR next sends a data packet to the
   ITR, it includes the nonce received <strike><font color="red">earlier.</font></strike> <strong><font color="green">earlier with the E-bit cleared.</font></strong>
   The ITR sees this <strike><font color="red">"echo
   nonce reply"</font></strike> <strong><font color="green">"echoed nonce"</font></strong> and knows the path to and from the
   ETR is up.

   The <strong><font color="green">ITR will set the E-bit for every packet it sends while in echo-
   nonce-request state.  The</font></strong> time the ITR waits <strike><font color="red">for</font></strike> <strong><font color="green">to process</font></strong> the echoed
   nonce before it determines the path is <strike><font color="red">down</font></strike> <strong><font color="green">unreachable</font></strong> is variable and a
   choice left for the implementation.

   If the ITR is receiving packets from the ETR but does not see the
   nonce <strike><font color="red">echoed,</font></strike> <strong><font color="green">echoed while being in echo-nonce-request state,</font></strong> then the path
   to the ETR is <strike><font color="red">down.</font></strike> <strong><font color="green">unreachable.</font></strong>  This decision may be overridden by other
   locator reachability algorithms.  Once the ITR determines the path to
   the ETR is down it can switch to another locator for that EID-prefix.

   Note that "ITR" and "ETR" are relative terms here.  Both devices must
   be implementing both ITR and ETR functionality for the echo nonce
   mechanism to operate.

   The ITR and ETR may both go into echo-nonce-request state at the same
   time.  The number of packets sent or the time during which echo nonce
   requests are sent is an implementation specific setting.  However,
   when an ITR is in echo-nonce-request state, it can echo the ETR's
   nonce in the next <strike><font color="red">packet</font></strike> <strong><font color="green">set of packets</font></strong> that it encapsulates and then
   subsequently, continue sending echo-nonce-request packets.

   This mechanism does not completely solve the forward path
   reachability problem as traffic may be unidirectional.  That is, the
   ETR receiving traffic at a site may not may not be the same device as
   an ITR which transmits traffic from that site or the site to site
   traffic is unidirectional so there is no ITR returning traffic.

   Note that other locator reachability mechanisms are being <strike><font color="red">researched.</font></strike> <strong><font color="green">researched
   and can be used to compliment or even override the Echo Nonce
   Algorithm.</font></strong>

6.4.  Routing Locator Hashing

   When an ETR provides an EID-to-RLOC mapping in a Map-Reply message to
   a requesting ITR, the locator-set for the EID-prefix may contain
   different priority values for each locator address.  When more than
   one best priority locator exists, the ITR can decide how to load
   share traffic against the corresponding locators.

   The following hash algorithm may be used by an ITR to select a
   locator for a packet destined to an EID for the EID-to-RLOC mapping:

   1.  Either a source and destination address hash can be used or the
       traditional 5-tuple hash which includes the source and
       destination addresses, source and destination TCP, UDP, or SCTP
       port numbers and the IP protocol number field or IPv6 next-
       protocol fields of a packet a host originates from within a LISP
       site.  When a packet is not a TCP, UDP, or SCTP packet, the
       source and destination addresses only from the header are used to
       compute the hash.

   2.  Take the hash value and divide it by the number of locators
       stored in the locator-set for the EID-to-RLOC mapping.

   3.  The remainder will be yield a value of 0 to "number of locators
       minus 1".  Use the remainder to select the locator in the
       locator-set.

   Note that when a packet is LISP encapsulated, the source port number
   in the outer UDP header needs to be set.  Selecting a random value
   allows core routers which are attached to Link Aggregation Groups
   (LAGs) to load-split the encapsulated packets across member links of
   such LAGs.  Otherwise, core routers would see a single flow, since
   packets have a source address of the ITR, for packets which are
   originated by different EIDs at the source site.  A suggested setting
   for the source port number computed by an ITR is a 5-tuple hash
   function on the inner header, as described above.

6.5.  Changing the Contents of EID-to-RLOC Mappings

   Since the LISP architecture uses a caching scheme to retrieve and
   store EID-to-RLOC mappings, the only way an ITR can get a more up-to-
   date mapping is to re-request the mapping.  However, the ITRs do not
   know when the mappings change and the ETRs do not keep track of who
   requested its mappings.  For scalability reasons, we want to maintain
   this approach but need to provide a way for ETRs change their
   mappings and inform the sites that are currently communicating with
   the ETR site using such mappings.

   When a locator record is added to the end of a locator-set, it is
   easy to update mappings.  We assume new mappings will maintain the
   same locator ordering as the old mapping but just have new locators
   appended to the end of the list.  So some ITRs can have a new mapping
   while other ITRs have only an old mapping that is used until they
   time out.  When an ITR has only an old mapping but detects bits set
   in the loc-reach-bits that correspond to locators beyond the list it
   has cached, it simply ignores them.

   When a locator record is removed from a locator-set, ITRs that have
   the mapping cached will not use the removed locator because the xTRs
   will set the loc-reach-bit to 0.  So even if the locator is in the
   list, it will not be used.  For new mapping requests, the xTRs can
   set the locator address to 0 as well as setting the corresponding
   loc-reach-bit to 0.  This forces ITRs with old or new mappings to
   avoid using the removed locator.

   If many changes occur to a mapping over a long period of time, one
   will find empty record slots in the middle of the locator-set and new
   records appended to the locator-set.  At some point, it would be
   useful to compact the locator-set so the loc-reach-bit settings can
   be efficiently packed.

   We propose here two approaches for locator-set compaction, one
   operational and the other a protocol mechanism.  The operational
   approach uses a clock sweep method.  The protocol approach uses the
   concept of Solicit-Map-Requests.

6.5.1.  Clock Sweep

   The clock sweep approach uses planning in advance and the use of
   count-down TTLs to time out mappings that have already been cached.
   The default setting for an EID-to-RLOC mapping TTL is 24 hours.  So
   there is a 24 hour window to time out old mappings.  The following
   clock sweep procedure is used:

   1.  24 hours before a mapping change is to take effect, a network
       administrator configures the ETRs at a site to start the clock
       sweep window.

   2.  During the clock sweep window, ETRs continue to send Map-Reply
       messages with the current (unchanged) mapping records.  The TTL
       for these mappings is set to 1 hour.

   3.  24 hours later, all previous cache entries will have timed out,
       and any active cache entries will time out within 1 hour.  During
       this 1 hour window the ETRs continue to send Map-Reply messages
       with the current (unchanged) mapping records with the TTL set to
       1 minute.

   4.  At the end of the 1 hour window, the ETRs will send Map-Reply
       messages with the new (changed) mapping records.  So any active
       caches can get the new mapping contents right away if not cached,
       or in 1 minute if they had the mapping cached.

6.5.2.  Solicit-Map-Request (SMR)

   Soliciting a Map-Request is a selective way for xTRs, at the site
   where mappings change, to control the rate they receive requests for
   Map-Reply messages.  SMRs are also used to tell remote ITRs to update
   the mappings they have cached.

   Since the xTRs don't keep track of remote ITRs that have cached their
   mappings, they can not tell exactly who needs the new mapping
   entries.  So an xTR will solicit Map-Requests from sites it is
   currently sending encapsulated data to, and only from those sites.
   The xTRs can locally decide the algorithm for how often and to how
   many sites it sends SMR messages.

   An SMR message is simply a bit set in an encapsulated data packet
   (and a Map-Request message).  When an ETR at a remote site
   decapsulates a data packet that has the SMR bit set, it can tell that
   a new Map-Request message is being solicited.  Both the xTR that
   sends the SMR message and the site that acts on the SMR message MUST
   be rate-limited.

   The following procedure shows how a SMR exchange occurs when a site
   is doing locator-set compaction for an EID-to-RLOC mapping:

   1.  When the database mappings in an ETR change, the ITRs at the site
       begin to set the SMR bit in packets they encapsulate to the sites
       they communicate with.

   2.  A remote xTR which decapsulates a packet with the SMR bit set
       will schedule sending a Map-Request message to the source locator
       address of the encapsulated packet.  The nonce in the Map-Request
       is copied from the nonce in the encapsulated data packet that has
       the SMR bit set.

   3.  The remote xTR retransmits the Map-Request slowly until it gets a
       Map-Reply while continuing to use the cached mapping.

   4.  The ETRs at the site with the changed mapping will reply to the
       Map-Request with a Map-Reply message provided the Map-Request
       nonce matches the nonce from the SMR.  The Map-Reply messages
       SHOULD be rate limited.  This is important to avoid Map-Reply
       implosion.

   5.  The ETRs, at the site with the changed mapping, records the fact
       that the site that sent the Map-Request has received the new
       mapping data in the mapping cache entry for the remote site so
       the loc-reach-bits are reflective of the new mapping for packets
       going to the remote site.  The ETR then stops sending packets
       with the SMR-bit set.

   For security reasons an ITR MUST NOT process unsolicited Map-Replies.
   The nonce MUST be carried from SMR packet, into the resultant Map-
   Request, and then into Map-Reply to reduce spoofing attacks.

7.  Router Performance Considerations

   LISP is designed to be very hardware-based forwarding friendly.  By
   doing tunnel header prepending [RFC1955] and stripping instead of re-
   writing addresses, existing hardware can support the forwarding model
   with little or no modification.  Where modifications are required,
   they should be limited to re-programming existing hardware rather
   than requiring expensive design changes to hard-coded algorithms in
   silicon.

   A few implementation techniques can be used to incrementally
   implement LISP:

   o  When a tunnel encapsulated packet is received by an ETR, the outer
      destination address may not be the address of the router.  This
      makes it challenging for the control plane to get packets from the
      hardware.  This may be mitigated by creating special FIB entries
      for the EID-prefixes of EIDs served by the ETR (those for which
      the router provides an RLOC translation).  These FIB entries are
      marked with a flag indicating that control plane processing should
      be performed.  The forwarding logic of testing for particular IP
      protocol number value is not necessary.  No changes to existing,
      deployed hardware should be needed to support this.

   o  On an ITR, prepending a new IP header is as simple as adding more
      bytes to a MAC rewrite string and prepending the string as part of
      the outgoing encapsulation procedure.  Many routers that support
      GRE tunneling [RFC2784] or 6to4 tunneling [RFC3056] can already
      support this action.

   o  When a received packet's outer destination address contains an EID
      which is not intended to be forwarded on the routable topology
      (i.e.  LISP 1.5), the source address of a data packet or the
      router interface with which the source is associated (the
      interface from which it was received) can be associated with a VRF
      (Virtual Routing/Forwarding), in which a different (i.e. non-
      congruent) topology can be used to find EID-to-RLOC mappings.

8.  Deployment Scenarios

   This section will explore how and where ITRs and ETRs can be deployed
   and will discuss the pros and cons of each deployment scenario.
   There are two basic deployment trade-offs to consider: centralized
   versus distributed caches and flat, recursive, or re-encapsulating
   tunneling.

   When deciding on centralized versus distributed caching, the
   following issues should be considered:

   o  Are the tunnel routers spread out so that the caches are spread
      across all the memories of each router?

   o  Should management "touch points" be minimized by choosing few
      tunnel routers, just enough for redundancy?

   o  In general, using more ITRs doesn't increase management load,
      since caches are built and stored dynamically.  On the other hand,
      more ETRs does require more management since EID-prefix-to-RLOC
      mappings need to be explicitly configured.

   When deciding on flat, recursive, or re-encapsulation tunneling, the
   following issues should be considered:

   o  Flat tunneling implements a single tunnel between source site and
      destination site.  This generally offers better paths between
      sources and destinations with a single tunnel path.

   o  Recursive tunneling is when tunneled traffic is again further
      encapsulated in another tunnel, either to implement VPNs or to
      perform Traffic Engineering.  When doing VPN-based tunneling, the
      site has some control since the site is prepending a new tunnel
      header.  In the case of TE-based tunneling, the site may have
      control if it is prepending a new tunnel header, but if the site's
      ISP is doing the TE, then the site has no control.  Recursive
      tunneling generally will result in suboptimal paths but at the
      benefit of steering traffic to resource available parts of the
      network.

   o  The technique of re-encapsulation ensures that packets only
      require one tunnel header.  So if a packet needs to be rerouted,
      it is first decapsulated by the ETR and then re-encapsulated with
      a new tunnel header using a new RLOC.

   The next sub-sections will describe where tunnel routers can reside
   in the network.

8.1.  First-hop/Last-hop Tunnel Routers

   By locating tunnel routers close to hosts, the EID-prefix set is at
   the granularity of an IP subnet.  So at the expense of more EID-
   prefix-to-RLOC sets for the site, the caches in each tunnel router
   can remain relatively small.  But caches always depend on the number
   of non-aggregated EID destination flows active through these tunnel
   routers.

   With more tunnel routers doing encapsulation, the increase in control
   traffic grows as well: since the EID-granularity is greater, more
   Map-Requests and Map-Replies are traveling between more routers.

   The advantage of placing the caches and databases at these stub
   routers is that the products deployed in this part of the network
   have better price-memory ratios then their core router counterparts.
   Memory is typically less expensive in these devices and fewer routes
   are stored (only IGP routes).  These devices tend to have excess
   capacity, both for forwarding and routing state.

   LISP functionality can also be deployed in edge switches.  These
   devices generally have layer-2 ports facing hosts and layer-3 ports
   facing the Internet.  Spare capacity is also often available in these
   devices as well.

8.2.  Border/Edge Tunnel Routers

   Using customer-edge (CE) routers for tunnel endpoints allows the EID
   space associated with a site to be reachable via a small set of RLOCs
   assigned to the CE routers for that site.

   This offers the opposite benefit of the first-hop/last-hop tunnel
   router scenario: the number of mapping entries and network management
   touch points are reduced, allowing better scaling.

   One disadvantage is that less of the network's resources are used to
   reach host endpoints thereby centralizing the point-of-failure domain
   and creating network choke points at the CE router.

   Note that more than one CE router at a site can be configured with
   the same IP address.  In this case an RLOC is an anycast address.
   This allows resilience between the CE routers.  That is, if a CE
   router fails, traffic is automatically routed to the other routers
   using the same anycast address.  However, this comes with the
   disadvantage where the site cannot control the entrance point when
   the anycast route is advertised out from all border routers.

8.3.  ISP Provider-Edge (PE) Tunnel Routers

   Use of ISP PE routers as tunnel endpoint routers gives an ISP control
   over the location of the egress tunnel endpoints.  That is, the ISP
   can decide if the tunnel endpoints are in the destination site (in
   either CE routers or last-hop routers within a site) or at other PE
   edges.  The advantage of this case is that two or more tunnel headers
   can be avoided.  By having the PE be the first router on the path to
   encapsulate, it can choose a TE path first, and the ETR can
   decapsulate and re-encapsulate for a tunnel to the destination end
   site.

   An obvious disadvantage is that the end site has no control over
   where its packets flow or the RLOCs used.

   As mentioned in earlier sections a combination of these scenarios is
   possible at the expense of extra packet header overhead, if both site
   and provider want control, then recursive or re-encapsulating tunnels
   are used.

9.  Traceroute Considerations

   When a source host in a LISP site initiates a traceroute to a
   destination host in another LISP site, it is highly desirable for it
   to see the entire path.  Since packets are encapsulated from ITR to
   ETR, the hop across the tunnel could be viewed as a single hop.
   However, LISP traceroute will provide the entire path so the user can
   see 3 distinct segments of the path from a source LISP host to a
   destination LISP host:

      Segment 1 (in source LISP site based on EIDs):

          source-host ---&gt; first-hop ... next-hop ---&gt; ITR

      Segment 2 (in the core network based on RLOCs):

          ITR ---&gt; next-hop ... next-hop ---&gt; ETR

      Segment 3 (in the destination LISP site based on EIDs):

          ETR ---&gt; next-hop ... last-hop ---&gt; destination-host

   For segment 1 of the path, ICMP Time Exceeded messages are returned
   in the normal matter as they are today.  The ITR performs a TTL
   decrement and test for 0 before encapsulating.  So the ITR hop is
   seen by the traceroute source has an EID address (the address of
   site-facing interface).

   For segment 2 of the path, ICMP Time Exceeded messages are returned
   to the ITR because the TTL decrement to 0 is done on the outer
   header, so the destination of the ICMP messages are to the ITR RLOC
   address, the source source RLOC address of the encapsulated
   traceroute packet.  The ITR looks inside of the ICMP payload to
   inspect the traceroute source so it can return the ICMP message to
   the address of the traceroute client as well as retaining the core
   router IP address in the ICMP message.  This is so the traceroute
   client can display the core router address (the RLOC address) in the
   traceroute output.  The ETR returns its RLOC address and responds to
   the TTL decrement to 0 like the previous core routers did.

   For segment 3, the next-hop router downstream from the ETR will be
   decrementing the TTL for the packet that was encapsulated, sent into
   the core, decapsulated by the ETR, and forwarded because it isn't the
   final destination.  If the TTL is decremented to 0, any router on the
   path to the destination of the traceroute, including the next-hop
   router or destination, will send an ICMP Time Exceeded message to the
   source EID of the traceroute client.  The ICMP message will be
   encapsulated by the local ITR and sent back to the ETR in the
   originated traceroute source site, where the packet will be delivered
   to the host.

9.1.  IPv6 Traceroute

   IPv6 traceroute follows the procedure described above since the
   entire traceroute data packet is included in ICMP Time Exceeded
   message payload.  Therefore, only the ITR needs to pay special
   attention for forwarding ICMP messages back to the traceroute source.

9.2.  IPv4 Traceroute

   For IPv4 traceroute, we cannot follow the above procedure since IPv4
   ICMP Time Exceeded messages only include the invoking IP header and 8
   bytes that follow the IP header.  Therefore, when a core router sends
   an IPv4 Time Exceeded message to an ITR, all the ITR has in the ICMP
   payload is the encapsulated header it prepended followed by a UDP
   header.  The original invoking IP header, and therefore the identity
   of the traceroute source is lost.

   The solution we propose to solve this problem is to cache traceroute
   IPv4 headers in the ITR and to match them up with corresponding IPv4
   Time Exceeded messages received from core routers and the ETR.  The
   ITR will use a circular buffer for caching the IPv4 and UDP headers
   of traceroute packets.  It will select a 16-bit number as a key to
   find them later when the IPv4 Time Exceeded messages are received.
   When an ITR encapsulates an IPv4 traceroute packet, it will use the
   16-bit number as the UDP source port in the encapsulating header.
   When the ICMP Time Exceeded message is returned to the ITR, the UDP
   header of the encapsulating header is present in the ICMP payload
   thereby allowing the ITR to find the cached headers for the
   traceroute source.  The ITR puts the cached headers in the payload
   and sends the ICMP Time Exceeded message to the traceroute source
   retaining the source address of the original ICMP Time Exceeded
   message (a core router or the ETR of the site of the traceroute
   destination).

9.3.  Traceroute using Mixed Locators

   When either an IPv4 traceroute or IPv6 traceroute is originated and
   the ITR encapsulates it in the other address family header, you
   cannot get all 3 segments of the traceroute.  Segment 2 of the
   traceroute can not be conveyed to the traceroute source since it is
   expecting addresses from intermediate hops in the same address format
   for the type of traceroute it originated.  Therefore, in this case,
   segment 2 will make the tunnel look like one hop.  All the ITR has to
   do to make this work is to not copy the inner TTL to the outer,
   encapsulating header's TTL when a traceroute packet is encapsulated
   using an RLOC from a different address family.  This will cause no
   TTL decrement to 0 to occur in core routers between the ITR and ETR.

10.  Mobility Considerations

   There are several kinds of mobility of which only some might be of
   concern to LISP.  Essentially they are as follows.

10.1.  Site Mobility

   A site wishes to change its attachment points to the Internet, and
   its LISP Tunnel Routers will have new RLOCs when it changes upstream
   providers.  Changes in EID-RLOC mappings for sites are expected to be
   handled by configuration, outside of the LISP protocol.

10.2.  Slow Endpoint Mobility

   An individual endpoint wishes to move, but is not concerned about
   maintaining session continuity.  Renumbering is involved.  LISP can
   help with the issues surrounding renumbering [RFC4192] [LISA96] by
   decoupling the address space used by a site from the address spaces
   used by its ISPs.  [RFC4984]

10.3.  Fast Endpoint Mobility

   Fast endpoint mobility occurs when an endpoint moves relatively
   rapidly, changing its IP layer network attachment point.  Maintenance
   of session continuity is a goal.  This is where the Mobile IPv4
   [RFC3344bis] and Mobile IPv6 [RFC3775] [RFC4866] mechanisms are used,
   and primarily where interactions with LISP need to be explored.

   The problem is that as an endpoint moves, it may require changes to
   the mapping between its EID and a set of RLOCs for its new network
   location.  When this is added to the overhead of mobile IP binding
   updates, some packets might be delayed or dropped.

   In IPv4 mobility, when an endpoint is away from home, packets to it
   are encapsulated and forwarded via a home agent which resides in the
   home area the endpoint's address belongs to.  The home agent will
   encapsulate and forward packets either directly to the endpoint or to
   a foreign agent which resides where the endpoint has moved to.
   Packets from the endpoint may be sent directly to the correspondent
   node, may be sent via the foreign agent, or may be reverse-tunneled
   back to the home agent for delivery to the mobile node.  As the
   mobile node's EID or available RLOC changes, LISP EID-to-RLOC
   mappings are required for communication between the mobile node and
   the home agent, whether via foreign agent or not.  As a mobile
   endpoint changes networks, up to three LISP mapping changes may be
   required:

   o  The mobile node moves from an old location to a new visited
      network location and notifies its home agent that it has done so.
      The Mobile IPv4 control packets the mobile node sends pass through
      one of the new visited network's ITRs, which needs a EID-RLOC
      mapping for the home agent.

   o  The home agent might not have the EID-RLOC mappings for the mobile
      node's "care-of" address or its foreign agent in the new visited
      network, in which case it will need to acquire them.

   o  When packets are sent directly to the correspondent node, it may
      be that no traffic has been sent from the new visited network to
      the correspondent node's network, and the new visited network's
      ITR will need to obtain an EID-RLOC mapping for the correspondent
      node's site.

   In addition, if the IPv4 endpoint is sending packets from the new
   visited network using its original EID, then LISP will need to
   perform a route-returnability check on the new EID-RLOC mapping for
   that EID.

   In IPv6 mobility, packets can flow directly between the mobile node
   and the correspondent node in either direction.  The mobile node uses
   its "care-of" address (EID).  In this case, the route-returnability
   check would not be needed but one more LISP mapping lookup may be
   required instead:

   o  As above, three mapping changes may be needed for the mobile node
      to communicate with its home agent and to send packets to the
      correspondent node.

   o  In addition, another mapping will be needed in the correspondent
      node's ITR, in order for the correspondent node to send packets to
      the mobile node's "care-of" address (EID) at the new network
      location.

   When both endpoints are mobile the number of potential mapping
   lookups increases accordingly.

   As a mobile node moves there are not only mobility state changes in
   the mobile node, correspondent node, and home agent, but also state
   changes in the ITRs and ETRs for at least some EID-prefixes.

   The goal is to support rapid adaptation, with little delay or packet
   loss for the entire system.  Heuristics can be added to LISP to
   reduce the number of mapping changes required and to reduce the delay
   per mapping change.  Also IP mobility can be modified to require
   fewer mapping changes.  In order to increase overall system
   performance, there may be a need to reduce the optimization of one
   area in order to place fewer demands on another.

   In LISP, one possibility is to "glean" information.  When a packet
   arrives, the ETR could examine the EID-RLOC mapping and use that
   mapping for all outgoing traffic to that EID.  It can do this after
   performing a route-returnability check, to ensure that the new
   network location does have a internal route to that endpoint.
   However, this does not cover the case where an ITR (the node assigned
   the RLOC) at the mobile-node location has been compromised.

   Mobile IP packet exchange is designed for an environment in which all
   routing information is disseminated before packets can be forwarded.
   In order to allow the Internet to grow to support expected future
   use, we are moving to an environment where some information may have
   to be obtained after packets are in flight.  Modifications to IP
   mobility should be considered in order to optimize the behavior of
   the overall system.  Anything which decreases the number of new EID-
   RLOC mappings needed when a node moves, or maintains the validity of
   an EID-RLOC mapping for a longer time, is useful.

10.4.  Fast Network Mobility

   In addition to endpoints, a network can be mobile, possibly changing
   xTRs.  A "network" can be as small as a single router and as large as
   a whole site.  This is different from site mobility in that it is
   fast and possibly short-lived, but different from endpoint mobility
   in that a whole prefix is changing RLOCs.  However, the mechanisms
   are the same and there is no new overhead in LISP.  A map request for
   any endpoint will return a binding for the entire mobile prefix.

   If mobile networks become a more common occurrence, it may be useful
   to revisit the design of the mapping service and allow for dynamic
   updates of the database.

   The issue of interactions between mobility and LISP needs to be
   explored further.  Specific improvements to the entire system will
   depend on the details of mapping mechanisms.  Mapping mechanisms
   should be evaluated on how well they support session continuity for
   mobile nodes.

10.5.  LISP Mobile Node Mobility

   An mobile device can use the LISP infrastructure to achieve mobility
   by implementing the LISP encapsulation and decapsulation functions
   and acting as a simple ITR/ETR.  By doing this, such a "LISP mobile
   node" can use topologically-independent EID IP addresses that are not
   advertised into and do not impose a cost on the global routing
   system.  These EIDs are maintained at the edges of the mapping system
   (in LISP Map-Servers and Map-Resolvers) and are provided on demand to
   only the correspondents of the LISP mobile node.

   Refer to the LISP Mobility Architecture specification [LISP-MN] for
   more details.

11.  Multicast Considerations

   A multicast group address, as defined in the original Internet
   architecture is an identifier of a grouping of topologically
   independent receiver host locations.  The address encoding itself
   does not determine the location of the receiver(s).  The multicast
   routing protocol, and the network-based state the protocol creates,
   determines where the receivers are located.

   In the context of LISP, a multicast group address is both an EID and
   a Routing Locator.  Therefore, no specific semantic or action needs
   to be taken for a destination address, as it would appear in an IP
   header.  Therefore, a group address that appears in an inner IP
   header built by a source host will be used as the destination EID.
   The outer IP header (the destination Routing Locator address),
   prepended by a LISP router, will use the same group address as the
   destination Routing Locator.

   Having said that, only the source EID and source Routing Locator
   needs to be dealt with.  Therefore, an ITR merely needs to put its
   own IP address in the source Routing Locator field when prepending
   the outer IP header.  This source Routing Locator address, like any
   other Routing Locator address MUST be globally routable.

   Therefore, an EID-to-RLOC mapping does not need to be performed by an
   ITR when a received data packet is a multicast data packet or when
   processing a source-specific Join (either by IGMPv3 or PIM).  But the
   source Routing Locator is decided by the multicast routing protocol
   in a receiver site.  That is, an EID to Routing Locator translation
   is done at control-time.

   Another approach is to have the ITR not encapsulate a multicast
   packet and allow the the host built packet to flow into the core even
   if the source address is allocated out of the EID namespace.  If the
   RPF-Vector TLV [RPFV] is used by PIM in the core, then core routers
   can RPF to the ITR (the Locator address which is injected into core
   routing) rather than the host source address (the EID address which
   is not injected into core routing).

   To avoid any EID-based multicast state in the network core, the first
   approach is chosen for LISP-Multicast.  Details for LISP-Multicast
   and Interworking with non-LISP sites is described in specification
   [MLISP].

12.  Security Considerations

   It is believed that most of the security mechanisms will be part of
   the mapping database service when using control plane procedures for
   obtaining EID-to-RLOC mappings.  For data plane triggered mappings,
   as described in this specification, protection is provided against
   ETR spoofing by using Return- Routability mechanisms evidenced by the
   use of a 4-byte Nonce field in the LISP encapsulation header.  The
   nonce, coupled with the ITR accepting only solicited Map-Replies goes
   a long way toward providing decent authentication.

   LISP does not rely on a PKI infrastructure or a more heavy weight
   authentication system.  These systems challenge the scalability of
   LISP which was a primary design goal.

   DoS attack prevention will depend on implementations rate-limiting
   Map-Requests and Map-Replies to the control plane as well as rate-
   limiting the number of data-triggered Map-Replies.

   To deal with map-cache exhaustion attempts in an ITR/PTR, the
   implementation should consider putting a maximum cap on the number of
   entries stored with a reserve list for special or frequently accessed
   sites.  This should be a configuration policy control set by the
   network administrator who manages ITRs and PTRs.

13.  Prototype Plans and Status

   The operator community has requested that the IETF take a practical
   approach to solving the scaling problems associated with global
   routing state growth.  This document offers a simple solution which
   is intended for use in a pilot program to gain experience in working
   on this problem.

   The authors hope that publishing this specification will allow the
   rapid implementation of multiple vendor prototypes and deployment on
   a small scale.  Doing this will help the community:

   o  Decide whether a new EID-to-RLOC mapping database infrastructure
      is needed or if a simple, UDP-based, data-triggered approach is
      flexible and robust enough.

   o  Experiment with provider-independent assignment of EIDs while at
      the same time decreasing the size of DFZ routing tables through
      the use of topologically-aligned, provider-based RLOCs.

   o  Determine whether multiple levels of tunneling can be used by ISPs
      to achieve their Traffic Engineering goals while simultaneously
      removing the more specific routes currently injected into the
      global routing system for this purpose.

   o  Experiment with mobility to determine if both acceptable
      convergence and session continuity properties can be scalably
      implemented to support both individual device roaming and site
      service provider changes.

   Here is a rough set of milestones:

   1.  This draft will be the draft for interoperable implementations to
       code against.  Interoperable implementations will be ready
       beginning of 2009.

   2.  Continue pilot deployment using LISP-ALT as the database mapping
       mechanism.

   3.  Continue prototyping and studying other database lookup schemes,
       be it DNS, DHTs, CONS, ALT, NERD, or other mechanisms.

   4.  Implement the LISP Multicast draft [MLISP].

   5.  Implement the LISP Mobile Node draft [LISP-MN].

   6.  Research more on how policy affects what gets returned in a Map-
       Reply from an ETR.

   7.  Continue to experiment with mixed locator-sets to understand how
       LISP can help the IPv4 to IPv6 transition.

   8.  Add more robustness to locator reachability between LISP sites.

   As of this writing the following accomplishments have been achieved:

   1.   A unit- and system-tested software switching implementation has
        been completed on cisco NX-OS for this draft for both IPv4 and
        IPv6 EIDs using a mixed locator-set of IPv4 and IPv6 locators.

   2.   A unit- and system-tested software switching implementation on
        cisco NX-OS has been completed for draft [ALT].

   3.   A unit- and system-tested software switching implementation on
        cisco NX-OS has been completed for draft [INTERWORK].  Support
        for IPv4 translation is provided and PTR support for IPv4 and
        IPv6 is provided.

   4.   The cisco NX-OS implementation supports an experimental
        mechanism for slow mobility.

   5.   Dave Meyer, Vince Fuller, Darrel Lewis, Greg Shepherd, and
        Andrew Partan continue to test all the features described above
        on a dual-stack infrastructure.

   6.   Darrel Lewis and Dave Meyer have deployed both LISP translation
        and LISP PTR support in the pilot network.  Point your browser
        to http://www.lisp4.net to see translation happening in action
        so your non-LISP site can access a web server in a LISP site.

   7.   Soon http://www.lisp6.net will work where your IPv6 LISP site
        can talk to a IPv6 web server in a LISP site by using mixed
        address-family based locators.

   8.   An public domain implementation of LISP is underway.  See
        [OPENLISP] for details.

   9.   We have deployed Map-Resolvers and Map-Servers on the LISP pilot
        network to gather experience with [LISP-MS].  The first layer of
        the architecture are the xTRs which use Map-Servers for EID-
        prefix registration and Map-Resolvers for EID-to-RLOC mapping
        resolution.  The second layer are the Map-Resolvers and Map-
        Servers which connect to the ALT BGP peering infrastructure.
        And the third layer are ALT-routers which aggregate EID-prefixes
        and forward Map-Requests.

   10.  A cisco IOS implementation is underway which currently supports
        IPv4 encapsulation and decapsulation features.

   11.  A LISP router based LIG implementation is supported, deployed,
        and used daily to debug and test the LISP pilot network.  See
        [LIG] for details.

   12.  A Linux implementation of LIG has been made available and
        supported by Dave Meyer.  It can be run on any Linux system
        which resides in either a LISP site or non-LISP site.  See [LIG]
        for details.  Public domain code can be downloaded from
        http://github.com/davidmeyer/lig/tree/master.

   13.  An experimental implementation has been written for three
        locator reachability algorithms.  One is called echo-noncing,
        which is documented in this specification.  The other two are
        called TCP-counts and RLOC-probing, which will be documented in
        future drafts.

   If interested in writing a LISP implementation, testing any of the
   LISP implementations, or want to be part of the LISP pilot program,
   please contact lisp@ietf.org.

14.  References

14.1.  Normative References

   [RFC0768]  Postel, J., "User Datagram Protocol", STD 6, RFC 768,
              August 1980.

   [RFC1191]  Mogul, J. and S. Deering, "Path MTU discovery", RFC 1191,
              November 1990.

   [RFC1498]  Saltzer, J., "On the Naming and Binding of Network
              Destinations", RFC 1498, August 1993.

   [RFC1955]  Hinden, R., "New Scheme for Internet Routing and
              Addressing (ENCAPS) for IPNG", RFC 1955, June 1996.

   [RFC2119]  Bradner, S., "Key words for use in RFCs to Indicate
              Requirement Levels", BCP 14, RFC 2119, March 1997.

   [RFC2402]  Kent, S. and R. Atkinson, "IP Authentication Header",
              RFC 2402, November 1998.

   [RFC2434]  Narten, T. and H. Alvestrand, "Guidelines for Writing an
              IANA Considerations Section in RFCs", BCP 26, RFC 2434,
              October 1998.

   [RFC2784]  Farinacci, D., Li, T., Hanks, S., Meyer, D., and P.
              Traina, "Generic Routing Encapsulation (GRE)", RFC 2784,
              March 2000.

   [RFC3056]  Carpenter, B. and K. Moore, "Connection of IPv6 Domains
              via IPv4 Clouds", RFC 3056, February 2001.

   [RFC3168]  Ramakrishnan, K., Floyd, S., and D. Black, "The Addition
              of Explicit Congestion Notification (ECN) to IP",
              RFC 3168, September 2001.

   [RFC3775]  Johnson, D., Perkins, C., and J. Arkko, "Mobility Support
              in IPv6", RFC 3775, June 2004.

   [RFC4423]  Moskowitz, R. and P. Nikander, "Host Identity Protocol
              (HIP) Architecture", RFC 4423, May 2006.

   [RFC4866]  Arkko, J., Vogt, C., and W. Haddad, "Enhanced Route
              Optimization for Mobile IPv6", RFC 4866, May 2007.

   [RFC4984]  Meyer, D., Zhang, L., and K. Fall, "Report from the IAB
              Workshop on Routing and Addressing", RFC 4984,
              September 2007.

14.2.  Informative References

   [AFI]      IANA, "Address Family Indicators (AFIs)", ADDRESS FAMILY
              NUMBERS http://www.iana.org/numbers.html, Febuary 2007.

   [ALT]      Farinacci, D., Fuller, V., Meyer, D., and D. Lewis, "LISP
              Alternative Topology (LISP-ALT)",
              draft-ietf-lisp-alt-01.txt (work in progress), May 2009.

   [APT]      Jen, D., Meisel, M., Massey, D., Wang, L., Zhang, B., and
              L. Zhang, "APT: A Practical Transit Mapping Service",
              draft-jen-apt-01.txt (work in progress), November 2007.

   [CHIAPPA]  Chiappa, J., "Endpoints and Endpoint names: A Proposed
              Enhancement to the Internet Architecture", Internet-
              Draft http://www.chiappa.net/~jnc/tech/endpoints.txt,
              1999.

   [CONS]     Farinacci, D., Fuller, V., and D. Meyer, "LISP-CONS: A
              Content distribution Overlay Network  Service for LISP",
              draft-meyer-lisp-cons-03.txt (work in progress),
              November 2007.

   [DHTs]     Ratnasamy, S., Shenker, S., and I. Stoica, "Routing
              Algorithms for DHTs: Some Open Questions", PDF
              file http://www.cs.rice.edu/Conferences/IPTPS02/174.pdf.

   [EMACS]    Brim, S., Farinacci, D., Meyer, D., and J. Curran, "EID
              Mappings Multicast Across Cooperating Systems for LISP",
              draft-curran-lisp-emacs-00.txt (work in progress),
              November 2007.

   [GSE]      "GSE - An Alternate Addressing Architecture for  IPv6",
              draft-ietf-ipngwg-gseaddr-00.txt (work in progress), 1997.

   [INTERWORK]
              Lewis, D., Meyer, D., Farinacci, D., and V. Fuller,
              "Interworking LISP with IPv4 and IPv6",
              draft-ietf-lisp-interworking-00.txt (work in progress),
              January 2009.

   [LIG]      Farinacci, D. and D. Meyer, "LISP Internet Groper (LIG)",
              draft-farinacci-lisp-lig-01.txt (work in progress),
              May 2009.

   [LISA96]   Lear, E., Katinsky, J., Coffin, J., and D. Tharp,
              "Renumbering: Threat or Menace?", Usenix , September 1996.

   [LISP-MAIN]
              Farinacci, D., Fuller, V., Meyer, D., and D. Lewis,
              "Locator/ID Separation Protocol (LISP)",
              draft-farinacci-lisp-12.txt (work in progress),
              March 2009.

   [LISP-MN]  Farinacci, D., Fuller, V., Lewis, D., and D. Meyer, "LISP
              Mobility Architecture", draft-meyer-lisp-mn-00.txt (work
              in progress), July 2009.

   [LISP-MS]  Farinacci, D. and V. Fuller, "LISP Map Server",
              draft-ietf-lisp-ms-01.txt (work in progress), May 2009.

   [LISP1]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
              "Locator/ID Separation Protocol (LISP1) [Routable  ID
              Version]",
              Slide-set http://www.dinof.net/~dino/ietf/lisp1.ppt,
              October 2006.

   [LISP2]    Farinacci, D., Oran, D., Fuller, V., and J. Schiller,
              "Locator/ID Separation Protocol (LISP2) [DNS-based
              Version]",
              Slide-set http://www.dinof.net/~dino/ietf/lisp2.ppt,
              November 2006.

   [LISPDHT]  Mathy, L., Iannone, L., and O. Bonaventure, "LISP-DHT:
              Towards a DHT to map identifiers onto locators",
              draft-mathy-lisp-dht-00.txt (work in progress),
              February 2008.

   [LOC-ID-ARCH]
              Meyer, D. and D. Lewis, "Architectural Implications of
              Locator/ID  Separation",
              draft-meyer-loc-id-implications-01.txt (work in progress),
              Januaryr 2009.

   [MLISP]    Farinacci, D., Meyer, D., Zwiebel, J., and S. Venaas,
              "LISP for Multicast Environments",
              draft-ietf-lisp-multicast-01.txt (work in progress),
              May 2009.

   [NERD]     Lear, E., "NERD: A Not-so-novel EID to RLOC Database",
              draft-lear-lisp-nerd-04.txt (work in progress),
              April 2008.

   [OPENLISP]
              Iannone, L. and O. Bonaventure, "OpenLISP Implementation
              Report", draft-iannone-openlisp-implementation-01.txt
              (work in progress), July 2008.

   [RADIR]    Narten, T., "Routing and Addressing Problem Statement",
              draft-narten-radir-problem-statement-00.txt (work in
              progress), July 2007.

   [RFC3344bis]
              Perkins, C., "IP Mobility Support for IPv4, revised",
              draft-ietf-mip4-rfc3344bis-05 (work in progress),
              July 2007.

   [RFC4192]  Baker, F., Lear, E., and R. Droms, "Procedures for
              Renumbering an IPv6 Network without a Flag Day", RFC 4192,
              September 2005.

   [RPFV]     Wijnands, IJ., Boers, A., and E. Rosen, "The RPF Vector
              TLV", draft-ietf-pim-rpf-vector-08.txt (work in progress),
              January 2009.

   [RPMD]     Handley, M., Huici, F., and A. Greenhalgh, "RPMD: Protocol
              for Routing Protocol Meta-data  Dissemination",
              draft-handley-p2ppush-unpublished-2007726.txt (work in
              progress), July 2007.

   [SHIM6]    Nordmark, E. and M. Bagnulo, "Level 3 multihoming shim
              protocol", draft-ietf-shim6-proto-06.txt (work in
              progress), October 2006.

Appendix A.  Acknowledgments

   An initial thank you goes to Dave Oran for planting the seeds for the
   initial ideas for LISP.  His consultation continues to provide value
   to the LISP authors.

   A special and appreciative thank you goes to Noel Chiappa for
   providing architectural impetus over the past decades on separation
   of location and identity, as well as detailed review of the LISP
   architecture and documents, coupled with enthusiasm for making LISP a
   practical and incremental transition for the Internet.

   The authors would like to gratefully acknowledge many people who have
   contributed discussion and ideas to the making of this proposal.
   They include Scott Brim, Andrew Partan, John Zwiebel, Jason Schiller,
   Lixia Zhang, Dorian Kim, Peter Schoenmaker, Vijay Gill, Geoff Huston,
   David Conrad, Mark Handley, Ron Bonica, Ted Seely, Mark Townsley,
   Chris Morrow, Brian Weis, Dave McGrew, Peter Lothberg, Dave Thaler,
   Eliot Lear, Shane Amante, Ved Kafle, Olivier Bonaventure, Luigi
   Iannone, Robin Whittle, Brian Carpenter, Joel Halpern, Roger
   Jorgensen, Ran Atkinson, Stig Venaas, Iljitsch van Beijnum, Roland
   Bless, Dana Blair, Bill Lynch, Marc Woolward, Damien Saucez, Damian
   Lezama, Attilla De Groot, Parantap Lahiri, <strike><font color="red">and</font></strike> David <strike><font color="red">Black.</font></strike> <strong><font color="green">Black, Roque
   Gagliano, and Isidor Kouvelas.</font></strong>

   In particular, we would like to thank Dave Meyer for his clever
   suggestion for the name "LISP". ;-)

   This work originated in the Routing Research Group (RRG) of the IRTF.
   The individual submission [LISP-MAIN] was converted into this IETF
   LISP working group draft.

Authors' Addresses

   Dino Farinacci
   cisco Systems
   Tasman Drive
   San Jose, CA  95134
   USA

   Email: dino@cisco.com

   Vince Fuller
   cisco Systems
   Tasman Drive
   San Jose, CA  95134
   USA

   Email: vaf@cisco.com

   Dave Meyer
   cisco Systems
   170 Tasman Drive
   San Jose, CA
   USA

   Email: dmm@cisco.com

   Darrel Lewis
   cisco Systems
   170 Tasman Drive
   San Jose, CA
   USA

   Email: darlewis@cisco.com
</pre>
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Dino,
In Section 5.4.2 I believe you still need to document what to do in  
the statefull case and IPv6.
When an ITR receives an ICMPv6 "Packet too Big" message with path  
size=L, the ITR should parse the original message inside the ICMPv6  
packet and send an ICMPv6 "Packet Too Big" back to the source with  
size L-H. The ITR should also add the value L-H in the mapping cache  
entry. In this sense the ITR will not affect the PMTUD mechanism.
Roque


On Jul 16, 2009, at 12:31 AM, Dino Farinacci wrote:

> Enclosed with diffs. Can't post until IETF Monday.
>
> Dino
>
> <draft-ietf-lisp-03.txt>
>
>
> <lisp-02-to-03-rfcdiff.html>
>
>
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp

-------------------------------------------------------------
Roque Gagliano
LACNIC
roque@lacnic.net
GPG Fingerprint: E929 06F4 D8CD 2AD8 9365  DB72 9E4F 964A 01E9 6CEE


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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; ">Dino,<div><span =
class=3D"Apple-style-span" style=3D"font-family: Times; "><pre>In =
Section 5.4.2 I believe you still need to document what to do in the =
statefull case and IPv6.</pre><pre>When an ITR receives an ICMPv6 =
"Packet too Big" message with path size=3DL, the ITR should parse the =
original message inside the ICMPv6 packet and send an ICMPv6 "Packet Too =
Big" back to the source with size L-H. The ITR should also add the value =
L-H in the mapping cache entry.&nbsp;In this sense the ITR will not =
affect the PMTUD =
mechanism.</pre><pre>Roque</pre><pre><br></pre></span></div><div><br><div>=
<div>On Jul 16, 2009, at 12:31 AM, Dino Farinacci wrote:</div><br =
class=3D"Apple-interchange-newline"><blockquote =
type=3D"cite"><div>Enclosed with diffs. Can't post until IETF =
Monday.<br><br>Dino<br><br><span>&lt;draft-ietf-lisp-03.txt&gt;</span><br>=
<br><br><span>&lt;lisp-02-to-03-rfcdiff.html&gt;</span><br><br><br>_______=
________________________________________<br>lisp mailing list<br><a =
href=3D"mailto:lisp@ietf.org">lisp@ietf.org</a><br>https://www.ietf.org/ma=
ilman/listinfo/lisp<br></div></blockquote></div><br><div =
apple-content-edited=3D"true"> <span class=3D"Apple-style-span" =
style=3D"border-collapse: separate; color: rgb(0, 0, 0); font-family: =
Helvetica; font-size: 12px; font-style: normal; font-variant: normal; =
font-weight: normal; letter-spacing: normal; line-height: normal; =
orphans: 2; text-align: auto; text-indent: 0px; text-transform: none; =
white-space: normal; widows: 2; word-spacing: 0px; =
-webkit-border-horizontal-spacing: 0px; -webkit-border-vertical-spacing: =
0px; -webkit-text-decorations-in-effect: none; -webkit-text-size-adjust: =
auto; -webkit-text-stroke-width: 0; "><div style=3D"word-wrap: =
break-word; -webkit-nbsp-mode: space; -webkit-line-break: =
after-white-space; "><span class=3D"Apple-style-span" =
style=3D"border-collapse: separate; color: rgb(0, 0, 0); font-family: =
Helvetica; font-size: 12px; font-style: normal; font-variant: normal; =
font-weight: normal; letter-spacing: normal; line-height: normal; =
orphans: 2; text-indent: 0px; text-transform: none; white-space: normal; =
widows: 2; word-spacing: 0px; -webkit-border-horizontal-spacing: 0px; =
-webkit-border-vertical-spacing: 0px; =
-webkit-text-decorations-in-effect: none; -webkit-text-size-adjust: =
auto; -webkit-text-stroke-width: 0px; "><div style=3D"word-wrap: =
break-word; -webkit-nbsp-mode: space; -webkit-line-break: =
after-white-space; "><span class=3D"Apple-style-span" =
style=3D"border-collapse: separate; color: rgb(0, 0, 0); font-family: =
Helvetica; font-size: 12px; font-style: normal; font-variant: normal; =
font-weight: normal; letter-spacing: normal; line-height: normal; =
orphans: 2; text-indent: 0px; text-transform: none; white-space: normal; =
widows: 2; word-spacing: 0px; -webkit-border-horizontal-spacing: 0px; =
-webkit-border-vertical-spacing: 0px; =
-webkit-text-decorations-in-effect: none; -webkit-text-size-adjust: =
auto; -webkit-text-stroke-width: 0px; "><div style=3D"word-wrap: =
break-word; -webkit-nbsp-mode: space; -webkit-line-break: =
after-white-space; =
"><div><div>-------------------------------------------------------------<=
/div><div>Roque Gagliano</div><div>LACNIC</div><div><a =
href=3D"mailto:roque@lacnic.net">roque@lacnic.net</a></div><div>GPG =
Fingerprint: E929 06F4 D8CD 2AD8 9365 &nbsp;DB72 9E4F 964A 01E9 =
6CEE</div></div></div></span></div></span></div></span> =
</div><br></div></body></html>=

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> A completely different subject, but there is the possibility to send  
> several EID in a map-request. However, these EIDs can be under the  
> responsibility of different sites. How do we deal with that in the  
> reply to keep the nonce semantic correct? Can we have different   
> answers with the same nonce? If we call the EIDs in a map-request  
> "sub-requests", how can we dispatch the sub-requests on the mapping  
> system to have the correct mappings?

Why would you send a Map-Request for EIDs of different sites? There is  
no practical reason for this.

Dino

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On 7/17/09 4:33 AM, Dino Farinacci wrote:
> Why would you send a Map-Request for EIDs of different sites? There is 
> no practical reason for this.

Are there circumstances such as a cold startup situation for a large ITR 
where you might want to aggregate queries?  This would depend on the 
idea that there would be ETRs out there that actually handled large 
numbers of sites, and that there were some significant performance 
benefit to not separating out the queries.

Eliot


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Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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> On 7/17/09 4:33 AM, Dino Farinacci wrote:
>> Why would you send a Map-Request for EIDs of different sites? There  
>> is no practical reason for this.
>
> Are there circumstances such as a cold startup situation for a large  
> ITR where you might want to aggregate queries?  This would depend on  
> the idea that there would be ETRs out there that actually handled  
> large numbers of sites, and that there were some significant  
> performance benefit to not separating out the queries.

Right not Map-Requests go to a specific site, over the ALT. If EID- 
prefixes to different locations were inserted in one control packet,  
then there would have to be a Map-Resolver that would have to break  
them up.

Having multiple records in a Map-Reply makes more sense because a  
restarting ITR might want to capture map-cache state that the other  
ITRs in its site have cached.

Dino


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Subject: Re: [lisp] draft-ietf-lisp-03.txt
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The stateful section applies to IPv6 as well. I'll make that more clear.

Dino

On Jul 16, 2009, at 6:17 AM, Roque Gagliano wrote:

> Dino,
> In Section 5.4.2 I believe you still need to document what to do in  
> the statefull case and IPv6.
> When an ITR receives an ICMPv6 "Packet too Big" message with path  
> size=L, the ITR should parse the original message inside the ICMPv6  
> packet and send an ICMPv6 "Packet Too Big" back to the source with  
> size L-H. The ITR should also add the value L-H in the mapping cache  
> entry. In this sense the ITR will not affect the PMTUD mechanism.
> Roque
>
>
> On Jul 16, 2009, at 12:31 AM, Dino Farinacci wrote:
>
>> Enclosed with diffs. Can't post until IETF Monday.
>>
>> Dino
>>
>> <draft-ietf-lisp-03.txt>
>>
>>
>> <lisp-02-to-03-rfcdiff.html>
>>
>>
>> _______________________________________________
>> lisp mailing list
>> lisp@ietf.org
>> https://www.ietf.org/mailman/listinfo/lisp
>
> -------------------------------------------------------------
> Roque Gagliano
> LACNIC
> roque@lacnic.net
> GPG Fingerprint: E929 06F4 D8CD 2AD8 9365  DB72 9E4F 964A 01E9 6CEE
>


From damien.saucez@uclouvain.be  Thu Jul 16 23:09:37 2009
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Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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Dino,

The draft allows to have several EID in one request and it is impossible 
to know the EID's site in advance. So, if I understand your answer, 
should we remove the record count flag from map-request?

Damien Saucez

Dino Farinacci wrote:
>> A completely different subject, but there is the possibility to send 
>> several EID in a map-request. However, these EIDs can be under the 
>> responsibility of different sites. How do we deal with that in the 
>> reply to keep the nonce semantic correct? Can we have different  
>> answers with the same nonce? If we call the EIDs in a map-request 
>> "sub-requests", how can we dispatch the sub-requests on the mapping 
>> system to have the correct mappings?
>
> Why would you send a Map-Request for EIDs of different sites? There is 
> no practical reason for this.
>
> Dino


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Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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> The draft allows to have several EID in one request and it is  
> impossible to know the EID's site in advance. So, if I understand  
> your answer, should we remove the record count flag from map-request?

Today, since we only have LISP-ALT, you use a record count of 1. In  
the future, if the Map-Request is "not routed", then you can have  
multiple records.

Dino

>
> Damien Saucez
>
> Dino Farinacci wrote:
>>> A completely different subject, but there is the possibility to  
>>> send several EID in a map-request. However, these EIDs can be  
>>> under the responsibility of different sites. How do we deal with  
>>> that in the reply to keep the nonce semantic correct? Can we have  
>>> different  answers with the same nonce? If we call the EIDs in a  
>>> map-request "sub-requests", how can we dispatch the sub-requests  
>>> on the mapping system to have the correct mappings?
>>
>> Why would you send a Map-Request for EIDs of different sites? There  
>> is no practical reason for this.
>>
>> Dino
>


From damien.saucez@uclouvain.be  Fri Jul 17 00:17:55 2009
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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org, Pierre Francois <Pierre.Francois@uclouvain.be>
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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Dino Farinacci wrote:
>> The draft allows to have several EID in one request and it is 
>> impossible to know the EID's site in advance. So, if I understand 
>> your answer, should we remove the record count flag from map-request?
>
> Today, since we only have LISP-ALT, you use a record count of 1. In 
> the future, if the Map-Request is "not routed", then you can have 
> multiple records.
>
Ok, could you mention it in the draft -04?

In the case of multiple records, my question is still open, how to deal 
with multiple servers, how to use the nonce?

Damien Saucez
> Dino
>
>>
>> Damien Saucez
>>
>> Dino Farinacci wrote:
>>>> A completely different subject, but there is the possibility to 
>>>> send several EID in a map-request. However, these EIDs can be under 
>>>> the responsibility of different sites. How do we deal with that in 
>>>> the reply to keep the nonce semantic correct? Can we have 
>>>> different  answers with the same nonce? If we call the EIDs in a 
>>>> map-request "sub-requests", how can we dispatch the sub-requests on 
>>>> the mapping system to have the correct mappings?
>>>
>>> Why would you send a Map-Request for EIDs of different sites? There 
>>> is no practical reason for this.
>>>
>>> Dino
>>
>


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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org, Pierre Francois <Pierre.Francois@uclouvain.be>
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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> Dino Farinacci wrote:
>>> The draft allows to have several EID in one request and it is  
>>> impossible to know the EID's site in advance. So, if I understand  
>>> your answer, should we remove the record count flag from map- 
>>> request?
>>
>> Today, since we only have LISP-ALT, you use a record count of 1. In  
>> the future, if the Map-Request is "not routed", then you can have  
>> multiple records.
>>
> Ok, could you mention it in the draft -04?

Please be specific about what you want me to cover.

> In the case of multiple records, my question is still open, how to  
> deal with multiple servers, how to use the nonce?

I don't understand your question.

Dino

>
> Damien Saucez
>> Dino
>>
>>>
>>> Damien Saucez
>>>
>>> Dino Farinacci wrote:
>>>>> A completely different subject, but there is the possibility to  
>>>>> send several EID in a map-request. However, these EIDs can be  
>>>>> under the responsibility of different sites. How do we deal with  
>>>>> that in the reply to keep the nonce semantic correct? Can we  
>>>>> have different  answers with the same nonce? If we call the EIDs  
>>>>> in a map-request "sub-requests", how can we dispatch the sub- 
>>>>> requests on the mapping system to have the correct mappings?
>>>>
>>>> Why would you send a Map-Request for EIDs of different sites?  
>>>> There is no practical reason for this.
>>>>
>>>> Dino
>>>
>>
>


From damien.saucez@uclouvain.be  Fri Jul 17 01:27:28 2009
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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org, Pierre Francois <Pierre.Francois@uclouvain.be>
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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Dino Farinacci wrote:
>> Dino Farinacci wrote:
>>>> The draft allows to have several EID in one request and it is 
>>>> impossible to know the EID's site in advance. So, if I understand 
>>>> your answer, should we remove the record count flag from map-request?
>>>
>>> Today, since we only have LISP-ALT, you use a record count of 1. In 
>>> the future, if the Map-Request is "not routed", then you can have 
>>> multiple records.
>>>
>> Ok, could you mention it in the draft -04?
>
> Please be specific about what you want me to cover.
>
When the record count has to be 1 and when it can be 1+.
>> In the case of multiple records, my question is still open, how to 
>> deal with multiple servers, how to use the nonce?
>
> I don't understand your question.
>
If you take the first mail that triggered this discussion, I asked how 
to deal with several EIDs in a request. When a node receives a request 
with two EIDs and that only one belongs to its site, how to process the 
other EID?

Damien Saucez
> Dino
>
>>
>> Damien Saucez
>>> Dino
>>>
>>>>
>>>> Damien Saucez
>>>>
>>>> Dino Farinacci wrote:
>>>>>> A completely different subject, but there is the possibility to 
>>>>>> send several EID in a map-request. However, these EIDs can be 
>>>>>> under the responsibility of different sites. How do we deal with 
>>>>>> that in the reply to keep the nonce semantic correct? Can we have 
>>>>>> different  answers with the same nonce? If we call the EIDs in a 
>>>>>> map-request "sub-requests", how can we dispatch the sub-requests 
>>>>>> on the mapping system to have the correct mappings?
>>>>>
>>>>> Why would you send a Map-Request for EIDs of different sites? 
>>>>> There is no practical reason for this.
>>>>>
>>>>> Dino
>>>>
>>>
>>
>


From jmh@joelhalpern.com  Fri Jul 17 07:52:34 2009
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Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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Allow me to suggest a slightly different modification to the text:

1) Specify that senders compliant with the current document will always 
set the count to 1, and note that the count is included for future 
extensibility.

2) Specify what a receiver compliant with the draft should do if it 
receives a request with a count greater than 1.  Presumably, it should 
send some error back?

Yours,
Joel


Damien Saucez wrote:
> Dino Farinacci wrote:
>>> Dino Farinacci wrote:
>>>>> The draft allows to have several EID in one request and it is 
>>>>> impossible to know the EID's site in advance. So, if I understand 
>>>>> your answer, should we remove the record count flag from map-request?
>>>>
>>>> Today, since we only have LISP-ALT, you use a record count of 1. In 
>>>> the future, if the Map-Request is "not routed", then you can have 
>>>> multiple records.
>>>>
>>> Ok, could you mention it in the draft -04?
>>
>> Please be specific about what you want me to cover.
>>
> When the record count has to be 1 and when it can be 1+.
>>> In the case of multiple records, my question is still open, how to 
>>> deal with multiple servers, how to use the nonce?
>>
>> I don't understand your question.
>>
> If you take the first mail that triggered this discussion, I asked how 
> to deal with several EIDs in a request. When a node receives a request 
> with two EIDs and that only one belongs to its site, how to process the 
> other EID?
> 
> Damien Saucez
>> Dino
>>
>>>
>>> Damien Saucez
>>>> Dino
>>>>
>>>>>
>>>>> Damien Saucez
>>>>>
>>>>> Dino Farinacci wrote:
>>>>>>> A completely different subject, but there is the possibility to 
>>>>>>> send several EID in a map-request. However, these EIDs can be 
>>>>>>> under the responsibility of different sites. How do we deal with 
>>>>>>> that in the reply to keep the nonce semantic correct? Can we have 
>>>>>>> different  answers with the same nonce? If we call the EIDs in a 
>>>>>>> map-request "sub-requests", how can we dispatch the sub-requests 
>>>>>>> on the mapping system to have the correct mappings?
>>>>>>
>>>>>> Why would you send a Map-Request for EIDs of different sites? 
>>>>>> There is no practical reason for this.
>>>>>>
>>>>>> Dino
>>>>>
>>>>
>>>
>>
> 
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp
> 

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Cc: Olivier Bonaventure <Olivier.Bonaventure@uclouvain.be>, lisp@ietf.org
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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Let's do this at the meeting. I think face-to-face will be better. We  
have been oscillating and I think it's because email isn't working for  
this.

Luigi/Damien, can you think about these issues so we can discuss them:

(1) Your map-versioning has 2 versions numbers (sender's and  
receiver's). This is so when a packet
     comes from an ITR to an ETR, the ETR knows if the ITR is out of  
date with respect to an ETR's
     version number and updates the ITR. At the same time the ETR can  
tell if it is out of date with
     respect to the ITR's version number so then it can ask for an  
update.

(2) With what we have in the spec right now, the nonce is also a  
version number but it works in one-
     direction. And an SMR allows the side that needs the update to  
have it send a Map-Request.

What I want you guys to think about and articulate is what the pros  
and cons of "comparing" the two approaches. Rather the pros and cons  
of each. The later has been articulated as you said.

What I want to understand is if we can get your pros without having to  
make more changes. Because the map-versioning ID makes a lot of  
changes (data packet change, new message type in a Map-Update, and  
removing loc-reach-bits) so I am judging the benefit given this cost.

Now, one other thing. Since we are currently all thinking about  
locator reachability algorithms, and if we do an RLOC-probing  
algorithm, and if we use Map-Requests and Map-Replies as the probes,  
you have a built-in update mechanism with no other cost. That is, if  
you have to probe for liveness, you can also get the latest and  
greatest mapping data from the site. So something to think about.

Dino

On Jul 14, 2009, at 8:15 AM, Luigi Iannone wrote:

> Hi Dino,
>
> On Jul 14, 2009, at 16:42 , Dino Farinacci wrote:
>
>>> On this topic, what about my last mail of 7th July? There is value  
>>> in versioning the way we propose it.
>>
>> Rather than claiming there is value, let's articulate what the  
>> value is that the nonce, as a single version cannot do.
>>
>> I believe you there is value, but let's be very specific. That's  
>> the best way to evaluate and make a decision.
>
> Totally agree on that.
>
> But I really do not know at this point how to better articulate the  
> versioning approach.
>
> I am a bit surprised about this reply. There are several mails, even  
> some slides that I sent.
>  But at some point you always did not reply, and now you claim I  
> should better articulate?
> Give me a hint on how I should do that.
> I am a bit puzzled here.
>
> At the bottom of this mail there is a copy of the one I sent the 7th  
> of July. What is missing or not clear?
>
>
>>
>>> And yes, there has been no consensus on accepting versioning, but  
>>> neither consensus on rejecting it.
>>>
>>> There has been some discussion on the number of bits used for  
>>> versioning, which I personally think is not the main point.
>>
>> Okay, noted.
>>
>>> What is important is the feedback that versioning provides without  
>>> the need of extra signaling, nor extra bytes, just re-using part  
>>> of the actual LISP header.
>>
>> Okay, so you are saying it can remain efficient. Well that is good.  
>> But tell me why a 24-bit nonce cannot be used as a version number  
>> and use the same ideas you have for map-versioning.
>
> As I said several times is the fact that we use two version numbers  
> in the header.
>
>
>>
>> Please be descriptive so we can converge.
>
> seems that draft + emails + slides are not sufficient....  we should  
> sit down together and discuss more.
>
> In the meantime, let's try a different approach.
> Can you tell me why the current nonce use is superior to versioning?  
> Or what do we lose by using versioning?
>
> Can you articulate on these two points.
>
> Luigi
>
>
>>
>>> I guess people are still pondering, but, since there are clear  
>>> advantages with versioning, they will finally accept it ;-)))
>>
>> Dino
>
>
>
> On Jul 7, 2009, at 16:28 , Luigi Iannone wrote:
>
>>
>> On Jun 22, 2009, at 21:00 , Dino Farinacci wrote:
>>
>>>> Yes, but let me push things a bit .. ;-)
>>>> What about splitting the nonce_version number in two parts as  
>>>> suggested in our draft? This is very helpful in case of  
>>>> unidirectional traffic.
>>>
>>> Let's focus on this part for now. Which I think is an important  
>>> issue. Let's frame the situation up as we have site A sending  
>>> packets to site B. The traffic is unidirectional to home in on  
>>> your point.
>>>
>>> Let's call the ITRs at site A ITR "a" and ITR "a'" and "b" and  
>>> "b'" are the ETRs at site B. Even if a or a' send to b or b',  
>>> those LISP routers at site B don't have any map-cache state for  
>>> site A.
>>>
>>> When site B wants to update it's mapping database entries, neither  
>>> b or b' will SMR because it thinks it's not talking to anyone.  
>>> Plus, it has no offered data to send them, so it can't send an SMR- 
>>> bit.
>>>
>>> You like the idea of putting two version numbers in so Site A can  
>>> tell Site B what version of B's mappings it is using.
>>>
>>> Tell me if I am ac curatively describing your position?
>>>
>>> ... (pause and think before continuing below)
>>
>> After one week thinking... ;-))
>>
>> Agreed
>> (one could argue that B can keep mappings for A just to have some  
>> more security checks when coupled with the nonce, but this is  
>> another story)
>>
>>
>>>
>>> If the LISP routers at site B see that anyone is out of date, they  
>>> would need to send something to the ITRs of site A. Well we don't  
>>> want the LISP routers of site B to send a Map-Reply because that  
>>> could be unsolicited. We would want the ITRs to send a Map-Request  
>>> over the mapping database infrastructure to get updated. But we  
>>> want them to do it at the rate that site B can handle the Map- 
>>> Request load.
>>>
>>> So one solution is for the site B LISP routers to send a Map- 
>>> Request to site A with the SMR-bit set. Which in turn has the site  
>>> A LISP routers send a Map-Request. This would fall into the  
>>> current design.
>> This is what we call "Map-Update-Notification" in draft-iannone- 
>> lisp-versioning.
>>
>>>
>>> ... (pause and think before continuing below)
>>
>> After a second week thinking.... ;-))
>>
>> This is the whole point, with the current design of LISP design you  
>> have not mean to make B understand that A is using a stale mapping.
>>
>> What you can do is to "guess" that that's the case. What if you  
>> have the case (I already pointed this out previously, but had no  
>> answer) A will stop send for a while, in the meantime the mapping  
>> changes, then A starts to send with the same mapping because the  
>> original TTL is not expired. How you deal with that?
>>
>> Please Dino, do not reply that when A starts again sending traffic,  
>> B will send a Map-Request with SMR bit just to be sure that A will  
>> update the mapping.  If we use Map-Request/Map-reply for  
>> everything, LISP will consume the whole Internet's bandwidth in  
>> signaling.
>>
>> Putting versioning into the header (meaning 2 version numbers),  
>> despite what you think,  does the job (and even more) in a very   
>> simple and elegant way.
>>
>> It does not need any further space/state in the mapping, since the  
>> point is to give a different semantic to part of the 8 bytes used  
>> for the LISP header.
>>
>>
>>
>>
>>>
>>> But while we have been experimenting with RLOC reachability  
>>> liveness, you might think of an option where site A LISP routers  
>>> might be sending Map-Requests to site B routers to make sure the  
>>> locators the site A routers are using are up and operational. Well  
>>> depending on how often this is done, the keepalive replies which  
>>> are in the form of Map-Replies would have more up to date mapping  
>>> data.
>>
>> 1. Active probing does not scale (you yourself pointed this out  
>> some time ago).
>>
>> 2. This approach has limited reactivity.
>>
>> 3. One can argue that RLOC reachability should be ensured by the  
>> routing infrastructure (think about fast-reroute) and not by LISP.
>>
>>
>>
>>>
>>> All I'm trying to say here is that maybe using the basic Map- 
>>> Request and Map-Reply machinery we can solve liveness and fast  
>>> mapping updates at the same time.
>>
>> Careful here. Your statement does not consider the overhead in  
>> terms of probing that you have to do in order to discover things  
>> that versioning tells you right away. Think about it....
>>
>>
>> Luigi
>>
>>
>>>
>>> Just thinking out loud,
>>> Dino
>>>
>>>
>>>
>>
>> _______________________________________________
>> lisp mailing list
>> lisp@ietf.org
>> https://www.ietf.org/mailman/listinfo/lisp
>


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Cc: lisp@ietf.org
Subject: Re: [lisp] Updates to draft-ietf-lisp-02.txt
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I will put this in -04. Scheduled for release some time in the fall.  
Thanks all.

Dino

On Jul 17, 2009, at 7:53 AM, Joel M. Halpern wrote:

> Allow me to suggest a slightly different modification to the text:
>
> 1) Specify that senders compliant with the current document will  
> always set the count to 1, and note that the count is included for  
> future extensibility.
>
> 2) Specify what a receiver compliant with the draft should do if it  
> receives a request with a count greater than 1.  Presumably, it  
> should send some error back?
>
> Yours,
> Joel
>
>
> Damien Saucez wrote:
>> Dino Farinacci wrote:
>>>> Dino Farinacci wrote:
>>>>>> The draft allows to have several EID in one request and it is  
>>>>>> impossible to know the EID's site in advance. So, if I  
>>>>>> understand your answer, should we remove the record count flag  
>>>>>> from map-request?
>>>>>
>>>>> Today, since we only have LISP-ALT, you use a record count of 1.  
>>>>> In the future, if the Map-Request is "not routed", then you can  
>>>>> have multiple records.
>>>>>
>>>> Ok, could you mention it in the draft -04?
>>>
>>> Please be specific about what you want me to cover.
>>>
>> When the record count has to be 1 and when it can be 1+.
>>>> In the case of multiple records, my question is still open, how  
>>>> to deal with multiple servers, how to use the nonce?
>>>
>>> I don't understand your question.
>>>
>> If you take the first mail that triggered this discussion, I asked  
>> how to deal with several EIDs in a request. When a node receives a  
>> request with two EIDs and that only one belongs to its site, how to  
>> process the other EID?
>> Damien Saucez
>>> Dino
>>>
>>>>
>>>> Damien Saucez
>>>>> Dino
>>>>>
>>>>>>
>>>>>> Damien Saucez
>>>>>>
>>>>>> Dino Farinacci wrote:
>>>>>>>> A completely different subject, but there is the possibility  
>>>>>>>> to send several EID in a map-request. However, these EIDs can  
>>>>>>>> be under the responsibility of different sites. How do we  
>>>>>>>> deal with that in the reply to keep the nonce semantic  
>>>>>>>> correct? Can we have different  answers with the same nonce?  
>>>>>>>> If we call the EIDs in a map-request "sub-requests", how can  
>>>>>>>> we dispatch the sub-requests on the mapping system to have  
>>>>>>>> the correct mappings?
>>>>>>>
>>>>>>> Why would you send a Map-Request for EIDs of different sites?  
>>>>>>> There is no practical reason for this.
>>>>>>>
>>>>>>> Dino
>>>>>>
>>>>>
>>>>
>>>
>> _______________________________________________
>> lisp mailing list
>> lisp@ietf.org
>> https://www.ietf.org/mailman/listinfo/lisp
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


From dmm@1-4-5.net  Fri Jul 17 12:45:08 2009
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Subject: [lisp] lig source updated to reflect changes in draft-ietf-lisp-03.txt
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	Please see

	http://github.com/davidmeyer/lig/tree/master

	Dave

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From luigi@net.t-labs.tu-berlin.de  Sun Jul 19 08:24:52 2009
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Hi,

my specific comments are inline.

Luigi


>
>
> On Jul 13, 2009, at 15:49 , Chen Gang wrote:
>
>> Dear all,
>>
>> According to the mail-list discussion, we have uploaded new version  
>> of the draft.
>>
>> Please find following information.
>>
>> All comments are welcome.
>>
>> -Gang
>>
>> A New Internet-Draft is available from the on-line Internet-Drafts  
>> directories.
>>        Title           : An Incremental Deployable Mapping Service  
>> for Scalable Routing Architecture
>>        Author(s)       : G. Chen, et al.
>>        Filename        : draft-chen-lisp-er-mo-01.txt
>>        Pages           : 20
>>        Date            : 2009-07-12
>> This document describes a mechanism of providing mapping service for
>> LISP-like architecture.  The mapping service comprises of EID Router
>> (ER) mechanism and supplementary DHT Mapping Overlay (MO), in which
>> ER mechanism is for reducing forwarding entries in routers while
>> driving the packets to the destination through tunnels, and the DHT
>> MO serves as a supplement that provides specific mappings to reduce
>> the number of tunnels.  The mechanism is flexibly deployable for ISPs
>> since it costs little and is easy to progress.
>> A URL for this Internet-Draft is:
>> http://www.ietf.org/internet-drafts/draft-chen-lisp-er-mo-01.txt
>> Internet-Drafts are also available by anonymous FTP at:
>> ftp://ftp.ietf.org/internet-drafts/
>>
>>
>>
>
>
>
> Network Working Group                                            G.  
> Chen
> Internet-Draft                                                   H.  
> Deng
> Intended status: Informational                                   B.  
> Zhou
> Expires: January 12, 2010                                     CMCC,  
> Inc.
>                                                                     
> M. Xu
>                                                                   D.  
> Huo
>                                                                   Y.  
> Cao
>                                                      Tsinghua  
> University
>                                                            July 11,  
> 2009
>
>
>      An Incremental Deployable Mapping Service for Scalable Routing
>                               Architecture
>                         draft-chen-lisp-er-mo-01
>
> Status of this Memo
>
>    This Internet-Draft is submitted to IETF in full conformance with  
> the
>    provisions of BCP 78 and BCP 79.
>
>    Internet-Drafts are working documents of the Internet Engineering
>    Task Force (IETF), its areas, and its working groups.  Note that
>    other groups may also distribute working documents as Internet-
>    Drafts.
>
>    Internet-Drafts are draft documents valid for a maximum of six  
> months
>    and may be updated, replaced, or obsoleted by other documents at  
> any
>    time.  It is inappropriate to use Internet-Drafts as reference
>    material or to cite them other than as "work in progress."
>
>    The list of current Internet-Drafts can be accessed at
>    http://www.ietf.org/ietf/1id-abstracts.txt.
>
>    The list of Internet-Draft Shadow Directories can be accessed at
>    http://www.ietf.org/shadow.html.
>
>    This Internet-Draft will expire on January 12, 2010.
>
> Copyright Notice
>
>    Copyright (c) 2009 IETF Trust and the persons identified as the
>    document authors.  All rights reserved.
>
>    This document is subject to BCP 78 and the IETF Trust's Legal
>    Provisions Relating to IETF Documents in effect on the date of
>    publication of this document (http://trustee.ietf.org/license- 
> info).
>    Please review these documents carefully, as they describe your  
> rights
>    and restrictions with respect to this document.
>
>
>
> Chen, et al.            Expires January 12, 2010                 
> [Page 1]
> Internet-Draft                    ER+MO                        July  
> 2009
>
>
> Abstract
>
>    This document describes a mechanism of providing mapping service  
> for
>    LISP-like architecture.  The mapping service comprises of EID  
> Router
>    (ER) mechanism and supplementary DHT Mapping Overlay (MO), in which
>    ER mechanism is for reducing forwarding entries in routers while
>    driving the packets to the destination through tunnels, and the DHT
>    MO serves as a supplement that provides specific mappings to reduce
>    the number of tunnels.  The mechanism is flexibly deployable for  
> ISPs
>    since it costs little and is easy to progress.
>
>
> Table of Contents
>
>    1.   
> Introduction . . . . . . . . . . . . . . . . . . . . . . . . .  3
>    2.  Definition of  
> Terms  . . . . . . . . . . . . . . . . . . . . .  4
>    3.   
> Overview . . . . . . . . . . . . . . . . . . . . . . . . . . .  5
>    4.  When an ITR meets  
> packets  . . . . . . . . . . . . . . . . . .  6
>    5.  Utilization of current BGP  
> system  . . . . . . . . . . . . . .  7
>      5.1.  Automatic Mapping obtainment and  
> storage . . . . . . . . .  7
>      5.2.  Mapping propagation by  
> BGP . . . . . . . . . . . . . . . .  7
>    6.  EID Router  
> mechanism . . . . . . . . . . . . . . . . . . . . .  9
>      6.1.  Address aggregation  
> policy . . . . . . . . . . . . . . . .  9
>      6.2.  EID  
> Router . . . . . . . . . . . . . . . . . . . . . . . .  9
>      6.3.  When an ER meets  
> packets . . . . . . . . . . . . . . . . .  9
>    7.  Supplementary DHT Mapping Overlay  
> (MO) . . . . . . . . . . . . 11
>      7.1.  Mapping Node (MN) and Mapping Server  
> (MS)  . . . . . . . . 11
>      7.2.  MNID Assignment and K-bucket  
> Table . . . . . . . . . . . . 11
>      7.3.  LOOKUP  
> Process . . . . . . . . . . . . . . . . . . . . . . 12
>      7.4.  Security Consideration of Mapping  
> Storage  . . . . . . . . 12
>      7.5.  Self-adaptive  
> Capability . . . . . . . . . . . . . . . . . 13
>      7.6.  Dynamic Adjustment of K value and m  
> value  . . . . . . . . 13
>      7.7.  Mapping Storing and Exchanging in Multi-homing  
> Scenario  . 13
>    8.  Incremental  
> Deployment . . . . . . . . . . . . . . . . . . . . 14
>    9.   
> Acknowledgements . . . . . . . . . . . . . . . . . . . . . . . 15
>    10. Security  
> Considerations  . . . . . . . . . . . . . . . . . . . 16
>    11. IANA  
> Considerations  . . . . . . . . . . . . . . . . . . . . . 17
>    12.  
> References . . . . . . . . . . . . . . . . . . . . . . . . . . 18
>      12.1. Normative  
> References . . . . . . . . . . . . . . . . . . . 18
>      12.2. Informative  
> References . . . . . . . . . . . . . . . . . . 18
>    Authors'  
> Addresses . . . . . . . . . . . . . . . . . . . . . . . . 19
>
>
>
>
>
>
>
>
>
>
> Chen, et al.            Expires January 12, 2010                 
> [Page 2]
> Internet-Draft                    ER+MO                        July  
> 2009
>
>
> 1.  Introduction
>
>    LISP [I-D.farinacci-lisp] is an architecture for scalable routing.
>    It defines two address spaces: Routing Locators (RLOC) and Endpoint
>    Identifiers (EID).  LISP uses EIDs as lookup keys for a new EID-to-
>    RLOC mapping database, in which way several mapping services are
>    built such as [I-D.fuller-lisp-alt] and [I-D.meyer-lisp-cons].  In
>    these mapping service solutions, different kinds of overlays are
>    designed and built as database for storing mapping information, as
>    well as providing mapping lookup results for mapping queries.
>
>    The problem they commonly share is that packets without any  
> caches on
>    current ITR have to be waiting for the reply of mapping lookup  
> query,
>    or simply be dropped by this ITR as long as no relevant cache  
> exists
>    on this ITR.
>
>    One solution to this problem could be that, instead of sending  
> lookup
>    queries to the Mapping Overlay (MO), data packet itself is sent to
>    the MO as a query (e.g., "Data Probe" in [I-D.fuller-lisp-alt]>)  
> and
>    get forwarded in the MO to the final ETR linked to the site in  
> which
>    the destination EID resides.  But usually when a packet is going
>    through the MO, long latency becomes a remarkable problem then.
>
>    In this draft we describe an incremental deployable mapping service
>    for LISP.  This mapping service comprises of EID Router (ER)
>    mechanism and supplementary DHT Mapping Overlay (MO).  The ER
>    mechanism is designed for reducing forwarding entries in routers,
>    while driving the packets to the destination through tunnels.  The
>    DHT MO serves as a supplement that provides specific mappings to
>    reduce the number of tunnels along the path to the destination.   
> Note
>    that an ER can be deployed unilaterally in an AS for it's own
>    benefits and the DHT MO is unitedly built among ASes however  
> whether
>    to join the MO is not compulsory to an AS (it can still benefit  
> from
>    deploying the ER).
>
>    The remainder of this document is organized as follows: Section 2
>    provides the definitions of terms in this document.  Section 3
>    sketches an overview of the mapping service.  Section 4 describes  
> how
>    an ITR handles the packets.  Section 5 describes how to utilize
>    current BGP system in the mapping service.  Section 6 describes how
>    the EID Router mechanism works, and Section 7 describes how to  
> build
>    the DHT Mapping Overlay and how to retrieve mappings in it.  And
>    Section 8 shows the steps for deploying the mapping service
>    incrementally.
>
>
>
>
>
>
>
> Chen, et al.            Expires January 12, 2010                 
> [Page 3]
> Internet-Draft                    ER+MO                        July  
> 2009
>
>
> 2.  Definition of Terms
>
>    Mapping:  an EID-to-ELOC mapping.
>
>    EID aggregated prefix:  an aggregated prefix which covers some EID
>       blocks.
>
>    EID+RLOC aggregated prefix:  an aggregated prefix which covers some
>       EID block(s) and RLOC(s).
>
>    EID Router (ER):  a new introduced router which keeps entries to  
> all
>       EID aggregated prefixes.
>
>    Mapping Node (MN):  an entity used for storing a mapping.  Each MN
>       holds and can only hold one mapping, and each mapping is related
>       to only one MN.  It can be implemented as a process in a MS,  
> which
>       has a data structure to store the mapping as well as the ability
>       to manage and retrieve the mappings.
>
>    Master Mapping Node (MMN):  a chosen Mapping Node used to be the
>       representative among redundant MNs.  It is in charge of  
> initiating
>       mapping query and exchanging mappings.
>
>    Mapping Server (MS):  a server specified to physically store
>       mappings.  Each MS can hold more than one Mapping Nodes.
>
>    Mapping Overlay (MO):  a DHT overlay, which is designed for storing
>       the distributed mapping information.  Only one MO exists among
>       ISPs in the Internet.
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
> Chen, et al.            Expires January 12, 2010                 
> [Page 4]
> Internet-Draft                    ER+MO                        July  
> 2009
>
>
> 3.  Overview
>
>    The mechanism described in this draft aims:
>
>    o  to eliminate all forwarding entries to distant customer ASes  
> in P
>       routers;
>

What's a "P router"? It is nto defined in section 2.

>
>
>    o  to eliminate the forwarding entries, targeted to distant  
> customer
>       ASes not behind the border routers, in the border routers;
>

This is still unclear to me.


>    o  to be deployed incrementally;
>
>    o  to help reduce the number of tunnels.
>

Which tunnels? LISP tunnels? MO tunnels?


>    To achieve the four aims above, the mechanism described in this  
> draft
>    mainly comprises of the following two parts:
>
>    o  EID Router (ER) mechanism for non-cached packets tunneling, and
>
>    o  DHT Mapping Overlay (MO) as a supplement, which provides  
> specific
>       mappings to reduce tunneling cost.
>
>    The EID Router mechanism is designed for the first three aims, and
>    the DHT MO is designed for the last aim.
>
>    In EID Router mechanism, by manually or automatically setting the
>    default route to an ER (each AS at least has one ER), all  
> forwarding
>    entries to distant customer ASes in P routers, and a part of
>    forwarding entries (targeted to distant customer ASes not behind  
> the
>    border routers) in the border routers can be eliminated.
>
>    The current running Border Gateway Protocol [RFC4271] is mainly
>    utilized to propagate mappings through the current running BGP
>    speaking system.  The most important reason to use the current
>    running BGP speaking system is to make the deployment backward
>    compatible, so that incremental deployment can be achieved.
>
>    The DHT Mapping Overlay can help reduce the number of tunnels which
>    result from deploying the ER mechanism.  It is optional for ISPs  
> and
>    only needs a little investment on it.
>
>
>
>
>
>
>
>
>
>
>
> Chen, et al.            Expires January 12, 2010                 
> [Page 5]
> Internet-Draft                    ER+MO                        July  
> 2009
>
>
> 4.  When an ITR meets packets
>
>    When an ITR receives a packet originated from a customer site, it
>    checks whether a copy of mapping exists in its cache first.
>
>    If the mapping exists, the ITR encapsulates the packet in a LISP
>    header, putting the RLOC extracted from the mapping onto the outer
>    destination address, meanwhile selecting one of the ITR's RLOC as  
> the
>    outer source address.
>
>    Else if cache misses (i.e., no relevant copy of mapping exists in  
> the
>    ITR), two concurrent events occur:
>
>    o  Data Plane Traffic: the packet simply follows a default route
>       preset manually or automatically to an ER in current AS.   
> Since ER
>       knows whole global mapping information, it can forward every
>       packet to the right ETR by encapsulating the packet in LISP  
> header
>       with the ITR's RLOC in the outer source address and the ETR's  
> RLOC
>       in the outer destination address.

 From this I understand that the ER is very similar to the Default  
Mapper defined in APT. Is it correct?



>
>    o  Control Plane Traffic: the ITR sends a Mapping Query to its
>       default Mapping Server (MS) in the AS.  And then a mapping  
> LOOKUP
>       process (details of mapping lookup process are shown in  
> Section 7)
>       is launched in the Mapping Overlay (MO) by the Master Mapping  
> Node
>       (MMN) of the ITR.  After the MMN receives a copy of queried
>       mapping from the MO, it returns the copy to the ITR which
>       initiated the Mapping Query, and is cached for a period of time.
>
>
If the AS has at least one ER containing all the mappings, why not  
querying the ER and retrieve the mapping from there?




>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
> Chen, et al.            Expires January 12, 2010                 
> [Page 6]
> Internet-Draft                    ER+MO                        July  
> 2009
>
>
> 5.  Utilization of current BGP system
>

This part about BGP is very difficult for me to understand. You are  
not using another instance of BGP (like ALT) you are using same  
instance of BGP used to propagate routing information to propagate   
mappings, right?

BGP follows a push model, does it mean that all mappings are  
propagated to all BGP speakers? In this case why the MO is needed?


>    The BGP is an inter-Autonomous System routing protocol.  The  
> primary
>    function of a BGP speaking system is to exchange network  
> reachability
>    information with other BGP systems.  This network reachability
>    information includes information on the list of ASes that
>    reachability information traverses.  This information is sufficient
>    for constructing a graph of AS connectivity for this  
> reachability, as
>    well as inevitable for constructing the mappings from EIDs onto  
> RLOCs
>    automatically.  Moreover, especially for incremental deployment
>    requirement, which means ASes deployed new mechanism must work  
> along
>    with those not deployed ones, it is necessary to design mapping
>    service inherently adaptable for the current running BGP system
>    (i.e., the BGP system we use for basic routing and forwarding  
> today).
>
>    The BGP in the mapping service has two functions: to obtain the
>    mappings automatically, and to propagate mappings to ERs in other
>    ASes.  They're both based on current running BGP system.
>
> 5.1.  Automatic Mapping obtainment and storage
>
>    When an customer AS advertise an BGP UPDATE message to homed (no
>    matter single-homed or multi-homed) provider AS which is deployed  
> the
>    DHT mapping server described in Section 7, the provider AS would  
> set
>    or update the relevant mapping information according to the
>    advertised route to the customer AS.  The announced prefix is treat
>    as the EID in the mapping <EID, RLOC> and the address of the ETR
>    which directly receives BGP announcement from the customer AS is
>    chosen as the RLOC.
>
>    This mapping could be stored both in MN (Mapping Node) and ER (EID
>    Router) concurrently.  In the former case, one mapping refers to  
> one
>    MN and vice versa as described in Section 7.  However in the latter
>    case, the mapping is not only stored in the ER in current provider
>    AS, but also propagated to distant provider ASes by BGP
>    advertisements and stored in ERs at those ASes.
>
>    Note that the mappings obtained so far are original specific
>    mappings.  In DHT MO, these original specific mappings are stored  
> on
>    MNs and no changes on mapping granularity.  However in ER  
> mechanism,
>    during the mapping propagation by BGP, mapping granularity is  
> changed
>    once a prefix aggregation occurs in an AS (details are shown in
>    Section 5.2).
>
> 5.2.  Mapping propagation by BGP
>
>    BGP speakers work as what they act today, in addition that mapping
>    information is affiliated in BGP UPDATE message.  Each BGP  
> speaker on
>
>
>
> Chen, et al.            Expires January 12, 2010                 
> [Page 7]
> Internet-Draft                    ER+MO                        July  
> 2009
>
>
>    the route SHALL keep the originality of the mappings (i.e., the
>    mappings stay untouched during propagation), except that it
>    aggregates some prefixes into one.  New mapping SHOULD be formed  
> when
>    such aggregation occurs, in which case both EID and RLOC in mapping
>    <EID, RLOC> are updated, that EID is set to the new aggregated EID
>    block which covers more prefixes while RLOC is set to the address  
> of
>    either ER (if ER is deployed) or border router (if no ER is  
> deployed)
>    in current AS.
>

How you can do this aggregation? Different EID can have different  
RLOCs, how you deal with that?

Further, multihoming is introducing a lot of de-aggregation in BGP,  
how you can avoid the same situation in your case?


>    Note that since aggregation is permitted during the mapping
>    propagation, the number of mappings stored on the ERs would be far
>    more less than the number of mappings stored in the MO.
>
>
>
>
>
>
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> Chen, et al.            Expires January 12, 2010                 
> [Page 8]
> Internet-Draft                    ER+MO                        July  
> 2009
>
>
> 6.  EID Router mechanism
>
> 6.1.  Address aggregation policy
>
>    All addresses from edge customer ASes can be seen as the EIDs.  EID
>    prefixes can be aggregated to EID aggregated prefix.  Moreover we
>    allow EIDs to be aggregated with RLOCs to EID+RLOC aggregated  
> prefix.
>    For example, suppose two EID blocks 166.111.8/24 and 166.111.9/24
>    belong to two customer ASes homed to a provider AS which has some
>    RLOCs range from 166.111.10/24 to 166.111.11/24, the provider AS  
> can
>    aggregate either to an EID aggregated prefix 166.111.8/23 or to an
>    EID+RLOC aggregated prefix 166.111.8/22.
>

Here you are merging what LISP tries to split: EID and RLOCs. Isn't  
this dangerous?

Also, you lose information. How to distinguish in 166.111.8/22 which  
part is EID and which is RLOC?




> 6.2.  EID Router
>
>    An EID Router is no particular than a legacy router, except that
>    special configuration is applied.  It is configured to act as an  
> eBGP
>    speaker, and only loads the forwarding entries to all EID  
> aggregated
>    prefixes.  Note that the EID+RLOC aggregated prefixes don't have to
>    be loaded in EID Routers, since the RLOCs in the EID+RLOC  
> aggregated
>    prefixes are supposed be reachable (i.e., forwarding entries to  
> these
>    prefixes should be preserved in the P routers).
>
>    So the ideal situation becomes:
>
>    o  the EID Routers load the forwarding entries to all EID  
> aggregated
>       prefixes,
>
>    o  the P routers load the forwarding entries to all RLOCs and all
>       EID+RLOC aggregated prefixes, and
>
>    o  the border routers load the forwarding entries to all RLOCs and
>       the prefixes (i.e., EID aggregated prefixes and EID+RLOC
>       aggregated prefixes) of the distant ASes behind the border
>       routers.
>
>    So due to deploying the EID Router mechanism, P routers and border
>    routers can get their FIB (Forwarding Information Base) size  
> reduced.
>
> 6.3.  When an ER meets packets
>
>    When an ER receives a packet, it matches the destination address  
> with
>    entries in its forwarding table (that can be seen as the mapping
>    table).  Since the ER holds whole mapping table (from its angle of
>    view), this packet can be encapsulated in a LISP header and sent  
> out.
>    The tunnel end point may be one of the following four kinds of
>    routers:
>
>
>
>
> Chen, et al.            Expires January 12, 2010                 
> [Page 9]
> Internet-Draft                    ER+MO                        July  
> 2009
>
>
>    o  the border router of the peering AS on the path to the
>       destination, in which case aggregation occurs in this peering AS
>       or this peering AS didn't pass the mapping information to the
>       current AS.
>
>    o  the border router of the non-peering AS on the path to the
>       destination, in which case aggregation occurs in this non- 
> peering
>       AS.
>
>    o  the EID Router of a distant AS (either peering or non-peering)  
> on
>       the path to the destination, in which case the downstream AS
>       didn't pass the mapping information to this distant AS so that  
> the
>       ER in this distant AS created a new mapping (the ER's RLOC is  
> set
>       in the mapping).
>
>    o  the destination ETR, in which case the originality of the  
> mapping
>       is maintained.
>
>
>
>
>
>
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> 10]
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> 2009
>
>
> 7.  Supplementary DHT Mapping Overlay (MO)

This section is again unclear to me. Probably I lack of background on  
Kademlia, but still....

>
>    The DHT Mapping Overlay (MO) is based on [Kademlia], a highly
>    efficient protocol of Distributed Hash Table (DHT) overlay for  
> Peer-
>    to-Peer network, which applies XOR as metric to measure distance.
>    Here in the MO, it is adapted to meet several requirements below:
>
>    o  MO should be scalable;
>
>    o  MO should have a good ability of redundancy;
>
>    o  MO should be self-adaptive for mapping adding or failure;
>
>    o  MO should be flexible for balancing performance and overhead;
>
>    o  MO should support multi-homing scenario.
>
>    The benefit of deploying the MO is that, it provides specific
>    mappings since it doesn't aggregate prefixes (i.e., mappings stored
>    in MO are finest-granulated that each mapping refers to one  
> relation
>    between a customer AS and one of its provider site).  Due to the
>    large number of such fines-granulated mappings, the MO should be
>    scalable and capable for redundancy.  So DHT is chosen as the means
>    of distributing the mappings.
>
> 7.1.  Mapping Node (MN) and Mapping Server (MS)
>
>    As described in Section 5.1, a mapping is automatically obtained  
> from
>    the BGP advertisement through the ETR.  Afer that it is sent to a  
> MS
>    in current provider AS and then stored in a new created MN (or
>    manually set on the MN).  Note that each mapping can only be
>    initially stored on one MN in the MO, and each MS can accommodate
>    more than one MNs.  For example, an ISP is accessed by 5 customer
>    ASes labeled as a, b, c, d, e, whose corresponding EIDs are v, w,  
> x,
>    y, z respectively.  These five EID prefixes of customer ASes are  
> one-
>    to-one mapped, forming five MNs physically existed on one or  
> multiple
>    MSes administrated by the ISP.
>
> 7.2.  MNID Assignment and K-bucket Table
>
>    In the MO, each MN is assigned a 160 bit ID.  The DHT MO utilizes  
> the
>    highest numerical IP address reserved in customer ASes as a MNID.
>    For example, assume a customer AS with a prefix 162.137.2/24 is
>    mapped to the RLOC 134.121.3.56.  The lower 32 bits of the MNID of
>    the corresponding Master Mapping Node (MMN) is 0xA28902FE (i.e.,
>    162.137.2.254), and the rest 128 bits are all 0.  The mapping  
> will be
>    stored on this MMN and several (at least one) other MNs whose MNIDs
>    are closest to the MNID 0xA28902FE.
>
>
>
> Chen, et al.            Expires January 12, 2010               [Page  
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> Internet-Draft                    ER+MO                        July  
> 2009
>
>
>    Each MN manages a K-bucket table of its own that keeps the
>    information how it can reach other MNs (i.e., the RLOCs of the
>    resident MSes of these MNs).  Each MN's reachability imformation is
>    stored on a node in K-bucket.  The table of a MN N consists of 160
>    rows in which the i-th row (0 <= i < 160) preserves the  
> reachability
>    information of some MNs (i.e., the RLOCs of the resident MSes of
>    these MNs) which are at a distance range 2^I ~ 2^(i+1) from N. If i
>    becomes quite large, the number of nodes that the i-th row  
> preserves
>    is limited to K at most.
>
> 7.3.  LOOKUP Process
>
>    LOOKUP process needs to call FIND_MAP with MNID of destination MN  
> as
>    parameter.  Here describes the FIND_MAP procedure (MN B is the
>    destination MN):
>
>    1.  MN A calculate the distance D from A to B (D = A XOR B);
>
>    2.  Fetch m MNs from the right row of K-bucket table of MN A and  
> then
>        query them (call FIND_MAP for every one of these m MNs);
>
>    3.  MN A set a timer waiting reply for each MN that a called
>        FIND_MAP.  If it expires, then delete information of
>        corresponding MN in K-bucket table.
>
>    4.  Each MN who received FIND_MAP call will check if it is one of  
> the
>        closest MNs destined to B. If so then return mapping to MN A;
>        else like in step 1 and 2, calculates distance D and fetches m
>        closer MNs, then return them to MN A.
>
>    5.  MN A continues to send FIND_MAP calls to those returned MNs  
> until
>        mapping returned or find K closest MNs (which means no such
>        mapping existed).
>
> 7.4.  Security Consideration of Mapping Storage
>
>    In native Kademlia, any MN can initiate a STORE call to put the  
> <key,
>    value> pair on other K closest nodes.  But for the reason that it
>    could probably cause security problem, for instance a malicious MN
>    store a wrong mapping in other MNs, a mapping can only initially
>    stored on one or more MNs (a MMN is chosen) which are under
>    supervision of the ISP who in fact controls this mapping.  And only
>    the MMN is authorized to call STORE.  After running for hours,  
> MNs in
>    some other autonomous systems could keep cache of the mapping.
>
>
>
>
>
>
>
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> 2009
>
>
> 7.5.  Self-adaptive Capability
>
>    Comparing to other non-DHT mapping system, the DHT MO is more
>    adaptive for MN failure and dynamic MN joining.
>
>    Assume an ISP deploys multiple MSes for the address block of a
>    customer AS in one or multiple provider ASes it administrates.   
> When
>    some of MNs go down, as long as at least one MN is healthy,  
> mappings
>    service can be normally provided without manually configuration.
>    Even if they're all out of health temporarily, mapping information
>    cached on other MNs could also be available in a period of time
>    (cache updating period).
>
>    When a new customer site accesses to some ISP, a new mapping is
>    required to be added in the MO.  It needs to add a new MN u into  
> the
>    MO and put this mapping in MN u.  At first, an existing MN w in MO
>    should be known and w is put into u's K-bucket table.  Then do a
>    LOOKUP process with u's MNID as parameter.  Finally information in
>    K-bucket table of MN u can be built up and meanwhile other MNs  
> update
>    their K-bucket table as well during the LOOUP process.
>
> 7.6.  Dynamic Adjustment of K value and m value
>
>    After one LOOKUP, if the time of this LOOKUP is greater than
>    threshold t (manually configured by ISP), which implies that this
>    LOOKUP spent too long time, then increase K by 1.  At the same  
> time,
>    if 2m < K then m = 2m, otherwise increase m by 1.  Consequently,  
> more
>    queries will be sent to MNs during this LOOKUP process.  However if
>    the time of this LOOKUP is no greater than t, K value and m value
>    stay not changed.
>
>    When congestion occurs in some AS, K value and m value both  
> decrease
>    by 1 to suppress number of updates that used to keep in touch with
>    other MNs.
>
> 7.7.  Mapping Storing and Exchanging in Multi-homing Scenario
>
>    Suppose a scenario that a customer site accesses to more than one
>    ISP, which is called multi-homing.  When a new MMN x puts the new
>    mapping in the mapping system, another MMN y with the same MNID  
> will
>    be probed in the MO.  Different to native Kademlia protocol, no "ID
>    Collision Error" occurs.  Instead x tells y this new mapping and
>    meanwhile obtains mapping information existed already.  Finally x  
> and
>    y both know all mapping information about how to destine for the
>    customer AS.  Of course x and y will probe each other to ensure
>    availability every period of time.
>
>
>
>
>
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> 13]
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> 2009
>
>
> 8.  Incremental Deployment
>
>    This mechanism is practical for incremental deployment, since no  
> big
>    changes introduced on existing routers.  Instead of deploying an
>    imperative third-party infrastructure over current Internet, an ISP
>    only puts one or more MSes in its domain and configures it to join
>    the MO if it wants to benefit from deploying the DHT MO.
>
>    An ISP could start from deploying an ER in its domain, through  
> which
>    way the number of entries in other routers in this domain could be
>    reduced however the length of the intra-domain route grows.  It's  
> up
>    to ISPs to decide whether to tolerate such length-stretch to obtain
>    decrease of FIB (Forwarding Information Base) size.
>
>    As time goes by, suppose more and more ISPs have deployed ERs.   
> Some
>    of them may then deploy the DHT MO to benefit from specific  
> mappings
>    (that can decrease number of tunnels needed in each data
>    transmission) by simply putting MSes in their ASes and let them  
> join
>    the MO automatically as described in Section 7.
>
>    There're no new particular devices or functions required to support
>    backward-compatibility.
>
>
>
>
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> 2009
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>
> 9.  Acknowledgements
>
>
>
>
>
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> 2009
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>
> 10.  Security Considerations
>
>    The ERs can apply any existing security mechanisms for BGP to  
> enhance
>    the security.  And for DHT MO, existing authentication methods for
>    DHT (especially for Kademlia) can be adapted to enhance its  
> security.
>    Other new security enhancements are expected to design to support  
> the
>    mechanism in this draft in future.
>
>
>
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> 2009
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>
> 11.  IANA Considerations
>
>
>
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> 2009
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>
> 12.  References
>
> 12.1.  Normative References
>
>    [RFC2119]  Bradner, S., "Key words for use in RFCs to Indicate
>               Requirement Levels", BCP 14, RFC 2119, March 1997.
>
>    [RFC4271]  Rekhter, Y., Li, T., and S. Hares, "A Border Gateway
>               Protocol 4 (BGP-4)", RFC 4271, January 2006.
>
> 12.2.  Informative References
>
>    [I-D.farinacci-lisp]
>               Farinacci, D., Fuller, V., Meyer, D., and D. Lewis,
>               "Locator/ID Separation Protocol (LISP)",
>               draft-farinacci-lisp-12 (work in progress), March 2009.
>
>    [I-D.fuller-lisp-alt]
>               Farinacci, D., Fuller, V., Meyer, D., and D. Lewis,  
> "LISP
>               Alternative Topology (LISP+ALT)", draft-fuller-lisp- 
> alt-05
>               (work in progress), February 2009.
>
>    [I-D.meyer-lisp-cons]
>               Brim, S., "LISP-CONS: A Content distribution Overlay
>               Network Service for LISP", draft-meyer-lisp-cons-04  
> (work
>               in progress), April 2008.
>
>    [Kademlia]
>               Maymounkov, P. and D. Mazieres, "Kademlia: A Peer-to- 
> peer
>               Information System Based on the XOR Metric", IPTPS'02,
>               Boston, 2002.
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
>
> Chen, et al.            Expires January 12, 2010               [Page  
> 18]
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> 2009
>
>
> Authors' Addresses
>
>    Gang Chen
>    CMCC, Inc.
>    53A, Xibianmennei Ave.,
>    Xuanwu District
>    Beijing  100053
>    P.R.China
>
>    Phone: +86-10-1391-071-0674
>    Email: phdgang@gmail.com
>
>
>    Hui Deng
>    CMCC, Inc.
>    53A, Xibianmennei Ave.,
>    Xuanwu District
>    Beijing  100053
>    P.R.China
>
>    Phone: +86-10-1391-075-0201
>    Email: denghui02@gmail.com
>
>
>    Bo Zhou
>    CMCC, Inc.
>    53A, Xibianmennei Ave.,
>    Xuanwu District
>    Beijing  100053
>    P.R.China
>
>    Phone: +86-10-1381-194-8723
>    Email: zhouboyj@chinamobile.com
>
>
>    Mingwei Xu
>    Tsinghua University
>    Department of Computer Science, Tsinghua University
>    Beijing  100084
>    P.R.China
>
>    Phone: +86-10-6278-5822
>    Email: xmw@csnet1.cs.tsinghua.edu.cn
>
>
>
>
>
>
>
>
> Chen, et al.            Expires January 12, 2010               [Page  
> 19]
> Internet-Draft                    ER+MO                        July  
> 2009
>
>
>    Dong Huo
>    Tsinghua University
>    Department of Computer Science, Tsinghua University
>    Beijing  100084
>    P.R.China
>
>    Phone: +86-10-6278-5822
>    Email: dhuo.thu@gmail.com
>
>
>    Yu Cao
>    Tsinghua University
>    Department of Computer Science, Tsinghua University
>    Beijing  100084
>    P.R.China
>
>    Phone: +86-10-6278-5822
>    Email: cyanalyst@126.com
>
>
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>

--Apple-Mail-26--873062476
Content-Type: text/html;
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Content-Transfer-Encoding: quoted-printable

<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; =
"><div>Hi,</div><div><br></div><div>my specific comments are =
inline.</div><div><br></div><div>Luigi</div><div><br></div><br><blockquote=
 type=3D"cite"><div><br></div><br><div><div>On Jul 13, 2009, at 15:49 , =
Chen Gang wrote:</div><br class=3D"Apple-interchange-newline"><blockquote =
type=3D"cite"><div>Dear all,</div> <div>&nbsp;</div> <div>According to =
the mail-list discussion, we have uploaded new version of the draft. =
</div> <div>&nbsp;</div> <div>Please find following information. </div> =
<div>&nbsp;</div> <div>All comments are welcome.</div> <div>&nbsp;</div> =
<div>-Gang</div> <div>&nbsp;</div> <div>A New Internet-Draft is =
available from the on-line Internet-Drafts directories.</div> =
<div>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; =
Title&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; : An =
Incremental Deployable Mapping Service for Scalable Routing =
Architecture<br>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; =
Author(s)&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; : G. Chen, et =
al.<br>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; =
Filename&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; : =
draft-chen-lisp-er-mo-01.txt<br>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; =
Pages&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; : =
20<br> &nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; =
Date&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; : =
2009-07-12</div> <div>This document describes a mechanism of providing =
mapping service for<br>LISP-like architecture.&nbsp; The mapping service =
comprises of EID Router<br>(ER) mechanism and supplementary DHT Mapping =
Overlay (MO), in which<br> ER mechanism is for reducing forwarding =
entries in routers while<br>driving the packets to the destination =
through tunnels, and the DHT<br>MO serves as a supplement that provides =
specific mappings to reduce<br>the number of tunnels.&nbsp; The =
mechanism is flexibly deployable for ISPs<br> since it costs little and =
is easy to progress.</div> <div>A URL for this Internet-Draft is:<br><a =
href=3D"http://www.ietf.org/internet-drafts/draft-chen-lisp-er-mo-01.txt">=
http://www.ietf.org/internet-drafts/draft-chen-lisp-er-mo-01.txt</a></div>=
 <div>Internet-Drafts are also available by anonymous FTP at:<br><a =
href=3D"ftp://ftp.ietf.org/internet-drafts/">ftp://ftp.ietf.org/internet-d=
rafts/</a></div> <div>&nbsp;</div> =
<div><br><br></div></blockquote><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Network Working Group &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;G. =
Chen</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Internet-Draft &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; H. =
Deng</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Intended status: Informational &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; B. Zhou</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Expires: January 12, 2010 =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; CMCC, =
Inc.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; M. Xu</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;D. =
Huo</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;Y. Cao</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; Tsinghua University</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; July 11, =
2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; An Incremental Deployable Mapping =
Service for Scalable Routing</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;Architecture</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;draft-chen-lisp-er-mo-01</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Status of this =
Memo</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; This Internet-Draft is submitted to IETF =
in full conformance with the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; provisions of =
BCP 78 and BCP 79.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Internet-Drafts are working documents of =
the Internet Engineering</font></div><div><font class=3D"Apple-style-span"=
 color=3D"#144FAE">&nbsp;&nbsp; Task Force (IETF), its areas, and its =
working groups. &nbsp;Note that</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; other groups =
may also distribute working documents as =
Internet-</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Drafts.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; =
Internet-Drafts are draft documents valid for a maximum of six =
months</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; and may be updated, replaced, or =
obsoleted by other documents at any</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; time. &nbsp;It =
is inappropriate to use Internet-Drafts as =
reference</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; material or to cite them other than as =
"work in progress."</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; The list of current Internet-Drafts can =
be accessed at</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; <a =
href=3D"http://www.ietf.org/ietf/1id-abstracts.txt">http://www.ietf.org/ie=
tf/1id-abstracts.txt</a>.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; The list of =
Internet-Draft Shadow Directories can be accessed =
at</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; <a =
href=3D"http://www.ietf.org/shadow.html">http://www.ietf.org/shadow.html</=
a>.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; This Internet-Draft will expire on =
January 12, 2010.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Copyright Notice</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Copyright (c) =
2009 IETF Trust and the persons identified as the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; document =
authors. &nbsp;All rights reserved.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; This document =
is subject to BCP 78 and the IETF Trust's Legal</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Provisions =
Relating to IETF Documents in effect on the date =
of</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; publication of this document (<a =
href=3D"http://trustee.ietf.org/license-info">http://trustee.ietf.org/lice=
nse-info</a>).</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Please review these documents carefully, =
as they describe your rights</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; and =
restrictions with respect to this document.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp;[Page 1]</font></div><div>=0C=
</div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Internet-Draft &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;July =
2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Abstract</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; This document =
describes a mechanism of providing mapping service =
for</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; LISP-like architecture. &nbsp;The mapping =
service comprises of EID Router</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; (ER) mechanism =
and supplementary DHT Mapping Overlay (MO), in =
which</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; ER mechanism is for reducing forwarding =
entries in routers while</font></div><div><font class=3D"Apple-style-span"=
 color=3D"#144FAE">&nbsp;&nbsp; driving the packets to the destination =
through tunnels, and the DHT</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; MO serves as a =
supplement that provides specific mappings to =
reduce</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; the number of tunnels. &nbsp;The =
mechanism is flexibly deployable for ISPs</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; since it costs =
little and is easy to progress.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Table of =
Contents</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; 1. &nbsp;Introduction . . . . . . . . . . =
. . . . . . . . . . . . . . . &nbsp;3</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; 2. =
&nbsp;Definition of Terms &nbsp;. . . . . . . . . . . . . . . . . . . . =
. &nbsp;4</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; 3. &nbsp;Overview . . . . . . . . . . . . =
. . . . . . . . . . . . . . . &nbsp;5</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; 4. &nbsp;When =
an ITR meets packets &nbsp;. . . . . . . . . . . . . . . . . . =
&nbsp;6</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; 5. &nbsp;Utilization of current BGP =
system &nbsp;. . . . . . . . . . . . . . &nbsp;7</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 5.1. =
&nbsp;Automatic Mapping obtainment and storage . . . . . . . . . =
&nbsp;7</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 5.2. &nbsp;Mapping propagation by =
BGP . . . . . . . . . . . . . . . . &nbsp;7</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; 6. &nbsp;EID =
Router mechanism . . . . . . . . . . . . . . . . . . . . . =
&nbsp;9</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 6.1. &nbsp;Address aggregation =
policy . . . . . . . . . . . . . . . . &nbsp;9</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 6.2. =
&nbsp;EID Router . . . . . . . . . . . . . . . . . . . . . . . . =
&nbsp;9</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 6.3. &nbsp;When an ER meets =
packets . . . . . . . . . . . . . . . . . &nbsp;9</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; 7. =
&nbsp;Supplementary DHT Mapping Overlay (MO) . . . . . . . . . . . . =
11</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 7.1. &nbsp;Mapping Node (MN) and =
Mapping Server (MS) &nbsp;. . . . . . . . 11</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 7.2. =
&nbsp;MNID Assignment and K-bucket Table . . . . . . . . . . . . =
11</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 7.3. &nbsp;LOOKUP Process . . . . =
. . . . . . . . . . . . . . . . . . 12</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 7.4. =
&nbsp;Security Consideration of Mapping Storage &nbsp;. . . . . . . . =
12</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 7.5. &nbsp;Self-adaptive =
Capability . . . . . . . . . . . . . . . . . 13</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 7.6. =
&nbsp;Dynamic Adjustment of K value and m value &nbsp;. . . . . . . . =
13</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 7.7. &nbsp;Mapping Storing and =
Exchanging in Multi-homing Scenario &nbsp;. 13</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; 8. =
&nbsp;Incremental Deployment . . . . . . . . . . . . . . . . . . . . =
14</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; 9. &nbsp;Acknowledgements . . . . . . . . =
. . . . . . . . . . . . . . . 15</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; 10. Security =
Considerations &nbsp;. . . . . . . . . . . . . . . . . . . =
16</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; 11. IANA Considerations &nbsp;. . . . . . =
. . . . . . . . . . . . . . . 17</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; 12. References =
. . . . . . . . . . . . . . . . . . . . . . . . . . =
18</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 12.1. Normative References . . . . =
. . . . . . . . . . . . . . . 18</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; 12.2. =
Informative References . . . . . . . . . . . . . . . . . . =
18</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Authors' Addresses . . . . . . . . . . . =
. . . . . . . . . . . . . 19</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp;[Page 2]</font></div><div>=0C=
</div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Internet-Draft &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;July =
2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">1. &nbsp;Introduction</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; LISP =
[I-D.farinacci-lisp] is an architecture for scalable =
routing.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; It defines two address spaces: Routing =
Locators (RLOC) and Endpoint</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Identifiers =
(EID). &nbsp;LISP uses EIDs as lookup keys for a new =
EID-to-</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; RLOC mapping database, in which way =
several mapping services are</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; built such as =
[I-D.fuller-lisp-alt] and [I-D.meyer-lisp-cons]. =
&nbsp;In</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; these mapping service solutions, =
different kinds of overlays are</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; designed and =
built as database for storing mapping information, =
as</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; well as providing mapping lookup results =
for mapping queries.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; The problem they commonly share is that =
packets without any caches on</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; current ITR =
have to be waiting for the reply of mapping lookup =
query,</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; or simply be dropped by this ITR as long =
as no relevant cache exists</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; on this =
ITR.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; One solution to this problem could be =
that, instead of sending lookup</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; queries to the =
Mapping Overlay (MO), data packet itself is sent =
to</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; the MO as a query (e.g., "Data Probe" in =
[I-D.fuller-lisp-alt]&gt;) and</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; get forwarded =
in the MO to the final ETR linked to the site in =
which</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; the destination EID resides. &nbsp;But =
usually when a packet is going</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; through the =
MO, long latency becomes a remarkable problem =
then.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; In this draft we describe an incremental =
deployable mapping service</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; for LISP. =
&nbsp;This mapping service comprises of EID Router =
(ER)</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; mechanism and supplementary DHT Mapping =
Overlay (MO). &nbsp;The ER</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; mechanism is =
designed for reducing forwarding entries in =
routers,</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; while driving the packets to the =
destination through tunnels. &nbsp;The</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; DHT MO serves =
as a supplement that provides specific mappings =
to</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; reduce the number of tunnels along the =
path to the destination. &nbsp;Note</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; that an ER can =
be deployed unilaterally in an AS for it's own</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; benefits and =
the DHT MO is unitedly built among ASes however =
whether</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; to join the MO is not compulsory to an AS =
(it can still benefit from</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; deploying the =
ER).</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; The remainder of this document is =
organized as follows: Section 2</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; provides the =
definitions of terms in this document. &nbsp;Section =
3</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; sketches an overview of the mapping =
service. &nbsp;Section 4 describes how</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; an ITR handles =
the packets. &nbsp;Section 5 describes how to =
utilize</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; current BGP system in the mapping =
service. &nbsp;Section 6 describes how</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; the EID Router =
mechanism works, and Section 7 describes how to =
build</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; the DHT Mapping Overlay and how to =
retrieve mappings in it. &nbsp;And</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Section 8 =
shows the steps for deploying the mapping service</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; =
incrementally.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;[Page 3]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">2. &nbsp;Definition of Terms</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Mapping: =
&nbsp;an EID-to-ELOC mapping.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; EID aggregated =
prefix: &nbsp;an aggregated prefix which covers some =
EID</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;blocks.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; EID+RLOC aggregated prefix: &nbsp;an =
aggregated prefix which covers some</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;EID block(s) and RLOC(s).</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; EID Router =
(ER): &nbsp;a new introduced router which keeps entries to =
all</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;EID aggregated =
prefixes.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Mapping Node (MN): &nbsp;an entity used =
for storing a mapping. &nbsp;Each MN</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;holds and can only hold one mapping, and each mapping is =
related</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;to only one MN. &nbsp;It can =
be implemented as a process in a MS, which</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;has a data structure to store the mapping as well as the =
ability</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;to manage and retrieve the =
mappings.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Master Mapping Node (MMN): &nbsp;a chosen =
Mapping Node used to be the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;representative among redundant MNs. &nbsp;It is in charge of =
initiating</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;mapping query and exchanging =
mappings.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Mapping Server (MS): &nbsp;a server =
specified to physically store</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;mappings. &nbsp;Each MS can hold more than one Mapping =
Nodes.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Mapping Overlay (MO): &nbsp;a DHT =
overlay, which is designed for storing</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;the distributed mapping information. &nbsp;Only one MO exists =
among</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;ISPs in the =
Internet.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;[Page 4]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">3. &nbsp;Overview</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; The mechanism =
described in this draft aims:</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;to =
eliminate all forwarding entries to distant customer ASes in =
P</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;routers;</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div></div></blockquote><div><br></div><div>=
What's a "P router"? It is nto defined in section =
2.</div><div><br></div><blockquote =
type=3D"cite"><div><div><br></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;to eliminate the forwarding =
entries, targeted to distant customer</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;ASes not behind the border routers, in the border =
routers;</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div></div></blockquote><div><br></div><div>=
This is still unclear to me.</div><div><br></div><br><blockquote =
type=3D"cite"><div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;to be deployed =
incrementally;</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;to help reduce the number of =
tunnels.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div></div></blockquote><div><br></div><div>=
Which tunnels? LISP tunnels? MO =
tunnels?</div><div><br></div><br><blockquote type=3D"cite"><div><div><font=
 class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; To achieve =
the four aims above, the mechanism described in this =
draft</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; mainly comprises of the following two =
parts:</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;EID Router (ER) mechanism for =
non-cached packets tunneling, and</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;DHT =
Mapping Overlay (MO) as a supplement, which provides =
specific</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;mappings to reduce tunneling =
cost.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; The EID Router mechanism is designed for =
the first three aims, and</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; the DHT MO is =
designed for the last aim.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; In EID Router =
mechanism, by manually or automatically setting =
the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; default route to an ER (each AS at least =
has one ER), all forwarding</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; entries to =
distant customer ASes in P routers, and a part of</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; forwarding =
entries (targeted to distant customer ASes not behind =
the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; border routers) in the border routers can =
be eliminated.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; The current running Border Gateway =
Protocol [RFC4271] is mainly</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; utilized to =
propagate mappings through the current running =
BGP</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; speaking system. &nbsp;The most important =
reason to use the current</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; running BGP =
speaking system is to make the deployment =
backward</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; compatible, so that incremental =
deployment can be achieved.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; The DHT =
Mapping Overlay can help reduce the number of tunnels =
which</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; result from deploying the ER mechanism. =
&nbsp;It is optional for ISPs and</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; only needs a =
little investment on it.</font></div><div><font class=3D"Apple-style-span"=
 color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;[Page 5]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">4. &nbsp;When an ITR meets =
packets</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; When an ITR receives a packet originated =
from a customer site, it</font></div><div><font class=3D"Apple-style-span"=
 color=3D"#144FAE">&nbsp;&nbsp; checks whether a copy of mapping exists =
in its cache first.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; If the mapping exists, the ITR =
encapsulates the packet in a LISP</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; header, =
putting the RLOC extracted from the mapping onto the =
outer</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; destination address, meanwhile selecting =
one of the ITR's RLOC as the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; outer source =
address.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Else if cache misses (i.e., no relevant =
copy of mapping exists in the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; ITR), two =
concurrent events occur:</font></div><div><font class=3D"Apple-style-span"=
 color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;Data Plane Traffic: the packet =
simply follows a default route</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;preset manually or automatically to an ER in current AS. =
&nbsp;Since ER</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;knows whole global mapping =
information, it can forward every</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;packet to the right ETR by encapsulating the packet in LISP =
header</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;with the ITR's RLOC in the =
outer source address and the ETR's RLOC</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;in the outer destination =
address.</font></div></div></blockquote><div><br></div><div>=46rom this =
I understand that the ER is very similar to the Default Mapper defined =
in APT. Is it =
correct?</div><div><br></div><div><br></div><br><blockquote =
type=3D"cite"><div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;Control Plane Traffic: the ITR =
sends a Mapping Query to its</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;default Mapping Server (MS) in the AS. &nbsp;And then a mapping =
LOOKUP</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;process (details of mapping =
lookup process are shown in Section 7)</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;is launched in the Mapping Overlay (MO) by the Master Mapping =
Node</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;(MMN) of the ITR. =
&nbsp;After the MMN receives a copy of queried</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;mapping from the MO, it returns the copy to the ITR =
which</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;initiated the Mapping Query, =
and is cached for a period of time.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div></div></blockquote><div>If the AS has =
at least one ER containing all the mappings, why not querying the ER and =
retrieve the mapping from =
there?</div><div><br></div><div><br></div><div><br></div><br><blockquote =
type=3D"cite"><div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;[Page 6]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">5. &nbsp;Utilization of current BGP =
system</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div></div></blockquote><div><br></div><div>=
This part about BGP is very difficult for me to understand. You are not =
using another instance of BGP (like ALT) you are using same instance of =
BGP used to propagate routing information to propagate &nbsp;mappings, =
right?</div><div><br></div><div>BGP follows a push model, does it mean =
that all mappings are propagated to all BGP speakers? In this case why =
the MO is needed?</div><div><br></div><br><blockquote =
type=3D"cite"><div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; The BGP is an inter-Autonomous System =
routing protocol. &nbsp;The primary</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; function of a =
BGP speaking system is to exchange network =
reachability</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; information with other BGP systems. =
&nbsp;This network reachability</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; information =
includes information on the list of ASes that</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; reachability =
information traverses. &nbsp;This information is =
sufficient</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; for constructing a graph of AS =
connectivity for this reachability, as</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; well as =
inevitable for constructing the mappings from EIDs onto =
RLOCs</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; automatically. &nbsp;Moreover, especially =
for incremental deployment</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; requirement, =
which means ASes deployed new mechanism must work =
along</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; with those not deployed ones, it is =
necessary to design mapping</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; service =
inherently adaptable for the current running BGP =
system</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; (i.e., the BGP system we use for basic =
routing and forwarding today).</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; The BGP in the =
mapping service has two functions: to obtain the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; mappings =
automatically, and to propagate mappings to ERs in =
other</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; ASes. &nbsp;They're both based on current =
running BGP system.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">5.1. &nbsp;Automatic Mapping obtainment and =
storage</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; When an customer AS advertise an BGP =
UPDATE message to homed (no</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; matter =
single-homed or multi-homed) provider AS which is deployed =
the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; DHT mapping server described in Section =
7, the provider AS would set</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; or update the =
relevant mapping information according to the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; advertised =
route to the customer AS. &nbsp;The announced prefix is =
treat</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; as the EID in the mapping &lt;EID, =
RLOC&gt; and the address of the ETR</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; which directly =
receives BGP announcement from the customer AS is</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; chosen as the =
RLOC.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; This mapping could be stored both in MN =
(Mapping Node) and ER (EID</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Router) =
concurrently. &nbsp;In the former case, one mapping refers to =
one</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; MN and vice versa as described in Section =
7. &nbsp;However in the latter</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; case, the =
mapping is not only stored in the ER in current =
provider</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; AS, but also propagated to distant =
provider ASes by BGP</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; advertisements and stored in ERs at those =
ASes.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Note that the mappings obtained so far =
are original specific</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; mappings. &nbsp;In DHT MO, these original =
specific mappings are stored on</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; MNs and no =
changes on mapping granularity. &nbsp;However in ER =
mechanism,</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; during the mapping propagation by BGP, =
mapping granularity is changed</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; once a prefix =
aggregation occurs in an AS (details are shown in</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Section =
5.2).</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">5.2. &nbsp;Mapping propagation by =
BGP</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; BGP speakers work as what they act today, =
in addition that mapping</font></div><div><font class=3D"Apple-style-span"=
 color=3D"#144FAE">&nbsp;&nbsp; information is affiliated in BGP UPDATE =
message. &nbsp;Each BGP speaker on</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp;[Page 7]</font></div><div>=0C=
</div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Internet-Draft &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;July =
2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; the route SHALL keep the originality of =
the mappings (i.e., the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; mappings stay untouched during =
propagation), except that it</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; aggregates =
some prefixes into one. &nbsp;New mapping SHOULD be formed =
when</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; such aggregation occurs, in which case =
both EID and RLOC in mapping</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &lt;EID, =
RLOC&gt; are updated, that EID is set to the new aggregated =
EID</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; block which covers more prefixes while =
RLOC is set to the address of</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; either ER (if =
ER is deployed) or border router (if no ER is =
deployed)</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; in current AS.</font></div><div><font =
class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div></div></blockquote><div><br></div><div>=
How you can do this aggregation? Different EID can have different RLOCs, =
how you deal with that?</div><div><br></div><div>Further, multihoming is =
introducing a lot of de-aggregation in BGP, how you can avoid the same =
situation in your case?&nbsp;</div><div><br></div><br><blockquote =
type=3D"cite"><div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Note that since aggregation is permitted =
during the mapping</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; propagation, the number of mappings =
stored on the ERs would be far</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; more less than =
the number of mappings stored in the MO.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp;[Page 8]</font></div><div>=0C=
</div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Internet-Draft &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;July =
2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">6. &nbsp;EID Router mechanism</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">6.1. &nbsp;Address =
aggregation policy</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; All addresses from edge customer ASes can =
be seen as the EIDs. &nbsp;EID</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; prefixes can =
be aggregated to EID aggregated prefix. &nbsp;Moreover =
we</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; allow EIDs to be aggregated with RLOCs to =
EID+RLOC aggregated prefix.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; For example, =
suppose two EID blocks 166.111.8/24 and =
166.111.9/24</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; belong to two customer ASes homed to a =
provider AS which has some</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; RLOCs range =
from 166.111.10/24 to 166.111.11/24, the provider AS =
can</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; aggregate either to an EID aggregated =
prefix 166.111.8/23 or to an</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; EID+RLOC =
aggregated prefix 166.111.8/22.</font></div><div><font =
class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div></div></blockquote><div><br></div><div>=
Here you are merging what LISP tries to split: EID and RLOCs. Isn't this =
dangerous?</div><div><br></div><div>Also, you lose information. How to =
distinguish in 166.111.8/22 which part is EID and which is =
RLOC?</div><div><br></div><div><br></div><div><br></div><br><blockquote =
type=3D"cite"><div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">6.2. &nbsp;EID Router</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; An EID Router =
is no particular than a legacy router, except =
that</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; special configuration is applied. =
&nbsp;It is configured to act as an eBGP</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; speaker, and =
only loads the forwarding entries to all EID =
aggregated</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; prefixes. &nbsp;Note that the EID+RLOC =
aggregated prefixes don't have to</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; be loaded in =
EID Routers, since the RLOCs in the EID+RLOC =
aggregated</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; prefixes are supposed be reachable (i.e., =
forwarding entries to these</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; prefixes =
should be preserved in the P routers).</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; So the ideal =
situation becomes:</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;the EID Routers load the =
forwarding entries to all EID aggregated</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;prefixes,</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;the P routers load the forwarding =
entries to all RLOCs and all</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;EID+RLOC aggregated prefixes, and</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;the =
border routers load the forwarding entries to all RLOCs =
and</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;the prefixes (i.e., EID =
aggregated prefixes and EID+RLOC</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;aggregated prefixes) of the distant ASes behind the =
border</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;routers.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; So due to deploying the EID Router =
mechanism, P routers and border</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; routers can =
get their FIB (Forwarding Information Base) size =
reduced.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">6.3. &nbsp;When an ER meets =
packets</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; When an ER receives a packet, it matches =
the destination address with</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; entries in its =
forwarding table (that can be seen as the mapping</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; table). =
&nbsp;Since the ER holds whole mapping table (from its angle =
of</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; view), this packet can be encapsulated in =
a LISP header and sent out.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; The tunnel end =
point may be one of the following four kinds of</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; =
routers:</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;[Page 9]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;the border router of the peering =
AS on the path to the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;destination, in which case =
aggregation occurs in this peering AS</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;or this peering AS didn't pass the mapping information to =
the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;current =
AS.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;the border router of the =
non-peering AS on the path to the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;destination, in which case aggregation occurs in this =
non-peering</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;AS.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;the =
EID Router of a distant AS (either peering or non-peering) =
on</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;the path to the destination, =
in which case the downstream AS</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;didn't pass the mapping information to this distant AS so that =
the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp;ER in this distant AS =
created a new mapping (the ER's RLOC is set</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;in the mapping).</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;the destination ETR, in which =
case the originality of the mapping</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; =
&nbsp;is maintained.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; [Page 10]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">7. &nbsp;Supplementary DHT Mapping Overlay =
(MO)</font></div></div></blockquote><div><br></div><div>This section is =
again unclear to me. Probably I lack of background on Kademlia, but =
still....</div><br><blockquote type=3D"cite"><div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; The DHT =
Mapping Overlay (MO) is based on [Kademlia], a =
highly</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; efficient protocol of Distributed Hash =
Table (DHT) overlay for Peer-</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; to-Peer =
network, which applies XOR as metric to measure =
distance.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Here in the MO, it is adapted to meet =
several requirements below:</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;MO =
should be scalable;</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;MO should have a good ability of =
redundancy;</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;MO should be self-adaptive for =
mapping adding or failure;</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;MO =
should be flexible for balancing performance and =
overhead;</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; o &nbsp;MO should support multi-homing =
scenario.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; The benefit of deploying the MO is that, =
it provides specific</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; mappings since it doesn't aggregate =
prefixes (i.e., mappings stored</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; in MO are =
finest-granulated that each mapping refers to one =
relation</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; between a customer AS and one of its =
provider site). &nbsp;Due to the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; large number =
of such fines-granulated mappings, the MO should =
be</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; scalable and capable for redundancy. =
&nbsp;So DHT is chosen as the means</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; of =
distributing the mappings.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">7.1. &nbsp;Mapping Node =
(MN) and Mapping Server (MS)</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; As described =
in Section 5.1, a mapping is automatically obtained =
from</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; the BGP advertisement through the ETR. =
&nbsp;Afer that it is sent to a MS</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; in current =
provider AS and then stored in a new created MN =
(or</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; manually set on the MN). &nbsp;Note that =
each mapping can only be</font></div><div><font class=3D"Apple-style-span"=
 color=3D"#144FAE">&nbsp;&nbsp; initially stored on one MN in the MO, =
and each MS can accommodate</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; more than one =
MNs. &nbsp;For example, an ISP is accessed by 5 =
customer</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; ASes labeled as a, b, c, d, e, whose =
corresponding EIDs are v, w, x,</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; y, z =
respectively. &nbsp;These five EID prefixes of customer ASes are =
one-</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; to-one mapped, forming five MNs =
physically existed on one or multiple</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; MSes =
administrated by the ISP.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">7.2. &nbsp;MNID Assignment =
and K-bucket Table</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; In the MO, each MN is assigned a 160 bit =
ID. &nbsp;The DHT MO utilizes the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; highest =
numerical IP address reserved in customer ASes as a =
MNID.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; For example, assume a customer AS with a =
prefix 162.137.2/24 is</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; mapped to the RLOC 134.121.3.56. =
&nbsp;The lower 32 bits of the MNID of</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; the =
corresponding Master Mapping Node (MMN) is 0xA28902FE =
(i.e.,</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; 162.137.2.254), and the rest 128 bits are =
all 0. &nbsp;The mapping will be</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; stored on this =
MMN and several (at least one) other MNs whose =
MNIDs</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; are closest to the MNID =
0xA28902FE.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; [Page 11]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Each MN manages a K-bucket table of its =
own that keeps the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; information how it can reach other MNs =
(i.e., the RLOCs of the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; resident MSes of these MNs). &nbsp;Each =
MN's reachability imformation is</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; stored on a =
node in K-bucket. &nbsp;The table of a MN N consists of =
160</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; rows in which the i-th row (0 &lt;=3D i =
&lt; 160) preserves the reachability</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; information of =
some MNs (i.e., the RLOCs of the resident MSes of</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; these MNs) =
which are at a distance range 2^I ~ 2^(i+1) from N. If =
i</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; becomes quite large, the number of nodes =
that the i-th row preserves</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; is limited to =
K at most.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">7.3. &nbsp;LOOKUP Process</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; LOOKUP process =
needs to call FIND_MAP with MNID of destination MN =
as</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; parameter. &nbsp;Here describes the =
FIND_MAP procedure (MN B is the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; destination =
MN):</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; 1. &nbsp;MN A calculate the distance D =
from A to B (D =3D A XOR B);</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; 2. &nbsp;Fetch =
m MNs from the right row of K-bucket table of MN A and =
then</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; query them (call FIND_MAP =
for every one of these m MNs);</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; 3. &nbsp;MN A =
set a timer waiting reply for each MN that a =
called</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; FIND_MAP. &nbsp;If it =
expires, then delete information of</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; =
corresponding MN in K-bucket table.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; 4. &nbsp;Each =
MN who received FIND_MAP call will check if it is one of =
the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; closest MNs destined to B. =
If so then return mapping to MN A;</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; =
else like in step 1 and 2, calculates distance D and fetches =
m</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; closer MNs, then return =
them to MN A.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; 5. &nbsp;MN A continues to send FIND_MAP =
calls to those returned MNs until</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; =
mapping returned or find K closest MNs (which means no =
such</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; mapping =
existed).</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">7.4. &nbsp;Security Consideration of Mapping =
Storage</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; In native Kademlia, any MN can initiate a =
STORE call to put the &lt;key,</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; value&gt; pair =
on other K closest nodes. &nbsp;But for the reason that =
it</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; could probably cause security problem, =
for instance a malicious MN</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; store a wrong =
mapping in other MNs, a mapping can only =
initially</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; stored on one or more MNs (a MMN is =
chosen) which are under</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; supervision of the ISP who in fact =
controls this mapping. &nbsp;And only</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; the MMN is =
authorized to call STORE. &nbsp;After running for hours, MNs =
in</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; some other autonomous systems could keep =
cache of the mapping.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; [Page 12]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">7.5. &nbsp;Self-adaptive =
Capability</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Comparing to other non-DHT mapping =
system, the DHT MO is more</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; adaptive for =
MN failure and dynamic MN joining.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Assume an ISP =
deploys multiple MSes for the address block of a</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; customer AS in =
one or multiple provider ASes it administrates. =
&nbsp;When</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; some of MNs go down, as long as at least =
one MN is healthy, mappings</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; service can be =
normally provided without manually configuration.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Even if =
they're all out of health temporarily, mapping =
information</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; cached on other MNs could also be =
available in a period of time</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; (cache =
updating period).</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; When a new customer site accesses to some =
ISP, a new mapping is</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; required to be added in the MO. &nbsp;It =
needs to add a new MN u into the</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; MO and put =
this mapping in MN u. &nbsp;At first, an existing MN w in =
MO</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; should be known and w is put into u's =
K-bucket table. &nbsp;Then do a</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; LOOKUP process =
with u's MNID as parameter. &nbsp;Finally information =
in</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; K-bucket table of MN u can be built up =
and meanwhile other MNs update</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; their K-bucket =
table as well during the LOOUP process.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">7.6. &nbsp;Dynamic =
Adjustment of K value and m value</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; After one =
LOOKUP, if the time of this LOOKUP is greater =
than</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; threshold t (manually configured by ISP), =
which implies that this</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; LOOKUP spent too long time, then increase =
K by 1. &nbsp;At the same time,</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; if 2m &lt; K =
then m =3D 2m, otherwise increase m by 1. &nbsp;Consequently, =
more</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; queries will be sent to MNs during this =
LOOKUP process. &nbsp;However if</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; the time of =
this LOOKUP is no greater than t, K value and m =
value</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; stay not changed.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; When =
congestion occurs in some AS, K value and m value both =
decrease</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; by 1 to suppress number of updates that =
used to keep in touch with</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; other =
MNs.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">7.7. &nbsp;Mapping Storing and Exchanging in =
Multi-homing Scenario</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Suppose a scenario that a customer site =
accesses to more than one</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; ISP, which is =
called multi-homing. &nbsp;When a new MMN x puts the =
new</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; mapping in the mapping system, another =
MMN y with the same MNID will</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; be probed in =
the MO. &nbsp;Different to native Kademlia protocol, no =
"ID</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Collision Error" occurs. &nbsp;Instead x =
tells y this new mapping and</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; meanwhile =
obtains mapping information existed already. &nbsp;Finally x =
and</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; y both know all mapping information about =
how to destine for the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; customer AS. &nbsp;Of course x and y will =
probe each other to ensure</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; availability =
every period of time.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; [Page 13]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">8. &nbsp;Incremental Deployment</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; This mechanism =
is practical for incremental deployment, since no =
big</font></div></div></blockquote><blockquote =
type=3D"cite"><div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; changes introduced on existing routers. =
&nbsp;Instead of deploying an</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; imperative =
third-party infrastructure over current Internet, an =
ISP</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; only puts one or more MSes in its domain =
and configures it to join</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; the MO if it =
wants to benefit from deploying the DHT MO.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; An ISP could =
start from deploying an ER in its domain, through =
which</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; way the number of entries in other =
routers in this domain could be</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; reduced =
however the length of the intra-domain route grows. &nbsp;It's =
up</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; to ISPs to decide whether to tolerate =
such length-stretch to obtain</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; decrease of =
FIB (Forwarding Information Base) size.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; As time goes =
by, suppose more and more ISPs have deployed ERs. =
&nbsp;Some</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; of them may then deploy the DHT MO to =
benefit from specific mappings</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; (that can =
decrease number of tunnels needed in each data</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; transmission) =
by simply putting MSes in their ASes and let them =
join</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; the MO automatically as described in =
Section 7.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; There're no new particular devices or =
functions required to support</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; =
backward-compatibility.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; [Page 14]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">9. &nbsp;Acknowledgements</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; [Page 15]</font></div><div>=0C=
</div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Internet-Draft &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;July =
2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">10. &nbsp;Security =
Considerations</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; The ERs can apply any existing security =
mechanisms for BGP to enhance</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; the security. =
&nbsp;And for DHT MO, existing authentication methods =
for</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; DHT (especially for Kademlia) can be =
adapted to enhance its security.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Other new =
security enhancements are expected to design to support =
the</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; mechanism in this draft in =
future.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; [Page 16]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">11. &nbsp;IANA Considerations</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; [Page 17]</font></div><div>=0C=
</div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Internet-Draft &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;July =
2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">12. &nbsp;References</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">12.1. &nbsp;Normative =
References</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; [RFC2119] &nbsp;Bradner, S., "Key words =
for use in RFCs to Indicate</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp;Requirement Levels", BCP 14, RFC 2119, March =
1997.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; [RFC4271] &nbsp;Rekhter, Y., Li, T., and =
S. Hares, "A Border Gateway</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp;Protocol 4 (BGP-4)", RFC 4271, January =
2006.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">12.2. &nbsp;Informative =
References</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; =
[I-D.farinacci-lisp]</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Farinacci, D., Fuller, V., Meyer, D., and D. =
Lewis,</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;"Locator/ID Separation Protocol (LISP)",</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp;draft-farinacci-lisp-12 (work in progress), =
March 2009.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; =
[I-D.fuller-lisp-alt]</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Farinacci, D., Fuller, V., Meyer, D., and D. Lewis, =
"LISP</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Alternative Topology (LISP+ALT)", =
draft-fuller-lisp-alt-05</font></div><div><font class=3D"Apple-style-span"=
 color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;(work in progress), February 2009.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; =
[I-D.meyer-lisp-cons]</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Brim, S., "LISP-CONS: A Content distribution =
Overlay</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Network Service for LISP", draft-meyer-lisp-cons-04 =
(work</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;in progress), April 2008.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; =
[Kademlia]</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Maymounkov, P. and D. Mazieres, "Kademlia: A =
Peer-to-peer</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Information System Based on the XOR Metric", =
IPTPS'02,</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Boston, 2002.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; [Page 18]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Authors' Addresses</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Gang =
Chen</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; CMCC, Inc.</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; 53A, =
Xibianmennei Ave.,</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Xuanwu District</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Beijing =
&nbsp;100053</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; P.R.China</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Phone: =
+86-10-1391-071-0674</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Email: <a =
href=3D"mailto:phdgang@gmail.com">phdgang@gmail.com</a></font></div><div><=
font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Hui Deng</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; CMCC, =
Inc.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; 53A, Xibianmennei =
Ave.,</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Xuanwu District</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Beijing =
&nbsp;100053</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; P.R.China</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Phone: =
+86-10-1391-075-0201</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Email: <a =
href=3D"mailto:denghui02@gmail.com">denghui02@gmail.com</a></font></div><d=
iv><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Bo Zhou</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; CMCC, =
Inc.</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; 53A, Xibianmennei =
Ave.,</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Xuanwu District</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Beijing =
&nbsp;100053</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; P.R.China</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Phone: =
+86-10-1381-194-8723</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Email: <a =
href=3D"mailto:zhouboyj@chinamobile.com">zhouboyj@chinamobile.com</a></fon=
t></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Mingwei Xu</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Tsinghua =
University</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Department of Computer Science, Tsinghua =
University</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Beijing =
&nbsp;100084</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; P.R.China</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Phone: =
+86-10-6278-5822</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Email: <a =
href=3D"mailto:xmw@csnet1.cs.tsinghua.edu.cn">xmw@csnet1.cs.tsinghua.edu.c=
n</a></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; [Page 19]</font></div><div>=0C</div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">Internet-Draft &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;July 2009</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Dong Huo</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Tsinghua =
University</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Department of Computer Science, Tsinghua =
University</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Beijing =
&nbsp;100084</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; P.R.China</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Phone: =
+86-10-6278-5822</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Email: <a =
href=3D"mailto:dhuo.thu@gmail.com">dhuo.thu@gmail.com</a></font></div><div=
><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Yu Cao</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Tsinghua =
University</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Department of Computer Science, Tsinghua =
University</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Beijing =
&nbsp;100084</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; P.R.China</font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE"><br></font></div><div><font =
class=3D"Apple-style-span" color=3D"#144FAE">&nbsp;&nbsp; Phone: =
+86-10-6278-5822</font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">&nbsp;&nbsp; Email: <a =
href=3D"mailto:cyanalyst@126.com">cyanalyst@126.com</a></font></div><div><=
font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE"><br></font></div><div><font class=3D"Apple-style-span" =
color=3D"#144FAE">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; [Page 20]</font></div><div>=0C=
</div><div><br></div></div><br></blockquote></body></html>=

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From bortzmeyer@nic.fr  Mon Jul 20 08:13:11 2009
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Date: Mon, 20 Jul 2009 17:09:26 +0200
From: Stephane Bortzmeyer <bortzmeyer@nic.fr>
To: David Meyer <dmm@1-4-5.net>
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Subject: Re: [lisp] Linux lig source code available
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On Mon, Jul 06, 2009 at 01:41:12PM -0700,
 David Meyer <dmm@1-4-5.net> wrote 
 a message of 70 lines which said:

> 	See https://lig.svn.sourceforge.net

Are there public map servers on the Internet today, or must I install
one?

% ./lig 192.0.2.254 -m 192.0.2.1
Send map-request to 192.0.2.1 for 192.0.2.254 ...
Send map-request to 192.0.2.1 for 192.0.2.254 ...
Send map-request to 192.0.2.1 for 192.0.2.254 ...
*** No map-reply received ***

From phdgang@gmail.com  Mon Jul 20 08:34:04 2009
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References: <36ba02b00907060839w1f20e50cre44a0cdae17d6cb7@mail.gmail.com> <DD54A1C1-0E64-4B42-8885-0005E242CA10@cisco.com> <200907090907292188089@gmail.com> <B79B48B4-5691-4F77-ADD0-5BDCA91FBBC5@cisco.com> <200907091130018289671@gmail.com> <173E97C8-13BB-4C93-AE68-67430DB7E18F@cisco.com> <200907092344507503907@gmail.com> <36ba02b00907130649s1de4bf2cq3f2ea6162a493a4c@mail.gmail.com> <6B63332D-C220-435F-BD1F-D90F3B9181C8@net.t-labs.tu-berlin.de>
Date: Mon, 20 Jul 2009 23:34:02 +0800
Message-ID: <36ba02b00907200834y43c3ab2bs4a97e8265557d312@mail.gmail.com>
From: Chen Gang <phdgang@gmail.com>
To: Luigi Iannone <luigi@net.t-labs.tu-berlin.de>
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Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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Hello, Luigi

Please see my reply inline.


> 3.  Overview
>
>    The mechanism described in this draft aims:
>
>    o  to eliminate all forwarding entries to distant customer ASes in P
>       routers;
>
>
> What's a "P router"? It is nto defined in section 2.
>

=>The P router has functions as a transit router of the core network. The P
Router typically connected to one or more PE Routers. P router is well-know
concept, so it is unnecessary to be defined in the draft.

>
>
>
>    o  to eliminate the forwarding entries, targeted to distant customer
>       ASes not behind the border routers, in the border routers;
>
>
> This is still unclear to me.
>

=>That's means that a border router(e.g. PE router) can only retain a
routing information towards to the ER and a reachability information of
adjacency network.

>
>
>     o  to be deployed incrementally;
>
>    o  to help reduce the number of tunnels.
>
>
> Which tunnels? LISP tunnels? MO tunnels?
>

=> In the draft, the tunnels is built between the ERs(When some aggregations
have been performed in another ER in AS2, a ER in AS1 will construct a
tunnel towards to the ER in AS2) or between the ER and ETR(ER could
construct a tunnel directly go to ETR, if there is no aggreation on AS-path
or ER's network is closed to the ETR's network). In the draft, both tunnel
will be encapsulated with LISP header.


>            4.  When an ITR meets packets
>
>
>    When an ITR receives a packet originated from a customer site, it
>    checks whether a copy of mapping exists in its cache first.
>
>    If the mapping exists, the ITR encapsulates the packet in a LISP
>    header, putting the RLOC extracted from the mapping onto the outer
>    destination address, meanwhile selecting one of the ITR's RLOC as the
>    outer source address.
>
>    Else if cache misses (i.e., no relevant copy of mapping exists in the
>    ITR), two concurrent events occur:
>
>    o  Data Plane Traffic: the packet simply follows a default route
>       preset manually or automatically to an ER in current AS.  Since ER
>       knows whole global mapping information, it can forward every
>       packet to the right ETR by encapsulating the packet in LISP header
>       with the ITR's RLOC in the outer source address and the ETR's RLOC
>       in the outer destination address.
>
>
> From this I understand that the ER is very similar to the Default Mapper
> defined in APT. Is it correct?
>

=> Not really. APT will maintain all of fines-granulated mapping
information. But, ER will retain mapping information leaned from ordinary
BGP protocol. You can even take a ER as a normal BGP speaker.



>
>
>
>    o  Control Plane Traffic: the ITR sends a Mapping Query to its
>       default Mapping Server (MS) in the AS.  And then a mapping LOOKUP
>       process (details of mapping lookup process are shown in Section 7)
>       is launched in the Mapping Overlay (MO) by the Master Mapping Node
>       (MMN) of the ITR.  After the MMN receives a copy of queried
>       mapping from the MO, it returns the copy to the ITR which
>       initiated the Mapping Query, and is cached for a period of time.
>
>
> If the AS has at least one ER containing all the mappings, why not querying
> the ER and retrieve the mapping from there?
>

=> Application might suffer from the delay which caused by waiting mapping
download. Besides, although ER can contain a global mapping information, but
the mapping infromation is not fines-granulated. In other words, the
termination of the tunnel may not be ETR, but another ER. Of course, ITR can
query ER and retrieve mapping. But ITR may not construct a end-to-end tunnel
between ITR and ETR. So, we recommend ITR to query mapping information from
DHT-based overlay network.


>
>
>  5.  Utilization of current BGP system
>
>
> This part about BGP is very difficult for me to understand. You are not
> using another instance of BGP (like ALT) you are using same instance of BGP
> used to propagate routing information to propagate  mappings, right?
>

=> Right. In order to achieve the goals of incremental deployment, there is
no modification on the BGP protocol.


>
> BGP follows a push model, does it mean that all mappings are propagated to
> all BGP speakers? In this case why the MO is needed?
>

=> The mapping information learned from BGP is not fines-granulated. the
fines-granulated mapping informaiton stored by MO can help to reduce
tunneling number.


>
>
>
> 6.  EID Router mechanism
>
> 6.1.  Address aggregation policy
>
>    All addresses from edge customer ASes can be seen as the EIDs.  EID
>    prefixes can be aggregated to EID aggregated prefix.  Moreover we
>    allow EIDs to be aggregated with RLOCs to EID+RLOC aggregated prefix.
>    For example, suppose two EID blocks 166.111.8/24 and 166.111.9/24
>    belong to two customer ASes homed to a provider AS which has some
>    RLOCs range from 166.111.10/24 to 166.111.11/24, the provider AS can
>    aggregate either to an EID aggregated prefix 166.111.8/23 or to an
>    EID+RLOC aggregated prefix 166.111.8/22.
>
>
> Here you are merging what LISP tries to split: EID and RLOCs. Isn't this
> dangerous?
>

=> In the draft, the EID routing will be injected into the ER. From ER point
of view, it's a normal thing to merge both EID and RLOCs into ER routing
table.



>
> Also, you lose information. How to distinguish in 166.111.8/22 which part
> is EID and which is RLOC?
>

=>In the draft, RLOC is a relative concept. RLOC might not be ETR address.
It could be arbitrary ER address in AS-path, on which aggregation will be
performed. Therefore, EID+RLOC aggregated prefix come about, there should be
another ER address server as the RLOC.

>  Chen, et al.            Expires January 12, 2010               [Page 10]
>
>  Internet-Draft                    ER+MO                        July 2009
>
>
> 7.  Supplementary DHT Mapping Overlay (MO)
>
>
> This section is again unclear to me. Probably I lack of background on
> Kademlia, but still....
>

=>The DHT-mapping signalling will reuse the kademlia p2p protocol, since it
is the most commonly used protocol.  We would like to use DHT MO as
supplementary meachnism to accomodate with data-plane flow.

Thanks for the discussion.

-Gang



>
>
>

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<div>Hello, Luigi</div>
<div>=A0</div>
<div>Please see my reply inline.<br><br></div>
<div class=3D"gmail_quote">
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae"></font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">3. =A0Overview</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">=A0=A0 The mechanism described in this draft a=
ims:</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">=A0=A0 o =A0to eliminate all forwarding entrie=
s to distant customer ASes in P</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0routers;</font></div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div><br></div>
<div>What&#39;s a &quot;P router&quot;? It is nto defined in section 2.</di=
v></div></blockquote>
<div>=A0</div>
<div>=3D&gt;The P router has functions as a transit router of the core netw=
ork. The P Router typically connected to one or more PE Routers. P router i=
s well-know concept, so it is unnecessary to be defined in the draft.</div>

<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span id=3D""></span></div>
<div><br></div>
<blockquote type=3D"cite">
<div>
<div><br></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">=A0=A0 o =A0to eliminate the forwarding entrie=
s, targeted to distant customer</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0ASes not behind the border route=
rs, in the border routers;</font></div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div><br></div>
<div>This is still unclear to me.</div></div></blockquote>
<div>=A0</div>
<div>=3D&gt;That&#39;s means that a border router(e.g. PE router) can only =
retain a routing information towards to the ER and a reachability informati=
on=A0of adjacency network. </div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span id=3D""></span></div>
<div><br></div><br>
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae">=A0=A0 o =A0to be deployed incrementally;</fon=
t></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">=A0=A0 o =A0to help reduce the number of tunne=
ls.</font></div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div><br></div>
<div>Which tunnels? LISP tunnels? MO tunnels?</div></div></blockquote>
<div>=A0</div>
<div>=3D&gt; In the draft, the=A0tunnels is built between the ERs(When=A0so=
me aggregations have been performed in another ER in AS2, a ER in AS1=A0wil=
l construct a tunnel towards to the ER in AS2) or between the ER and ETR(ER=
 could construct=A0a tunnel=A0directly=A0go to ETR, if there is no aggreati=
on on AS-path or ER&#39;s network=A0is closed=A0to the ETR&#39;s network). =
In the draft, both tunnel will be encapsulated with LISP header.</div>

<div>=A0</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span id=3D""></span></div>
<div><font color=3D"#144fae">=A0=A0=A0=A0=A0=A0=A0=A0=A0 4. =A0When an ITR =
meets packets</font></div>
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">=A0=A0 When an ITR receives a packet originate=
d from a customer site, it</font></div>
<div><font color=3D"#144fae">=A0=A0 checks whether a copy of mapping exists=
 in its cache first.</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">=A0=A0 If the mapping exists, the ITR encapsul=
ates the packet in a LISP</font></div>
<div><font color=3D"#144fae">=A0=A0 header, putting the RLOC extracted from=
 the mapping onto the outer</font></div>
<div><font color=3D"#144fae">=A0=A0 destination address, meanwhile selectin=
g one of the ITR&#39;s RLOC as the</font></div>
<div><font color=3D"#144fae">=A0=A0 outer source address.</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">=A0=A0 Else if cache misses (i.e., no relevant=
 copy of mapping exists in the</font></div>
<div><font color=3D"#144fae">=A0=A0 ITR), two concurrent events occur:</fon=
t></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">=A0=A0 o =A0Data Plane Traffic: the packet sim=
ply follows a default route</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0preset manually or automatically=
 to an ER in current AS. =A0Since ER</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0knows whole global mapping infor=
mation, it can forward every</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0packet to the right ETR by encap=
sulating the packet in LISP header</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0with the ITR&#39;s RLOC in the o=
uter source address and the ETR&#39;s RLOC</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0in the outer destination address=
.</font></div></div></blockquote>
<div><br></div>
<div>From this I understand that the ER is very similar to the Default Mapp=
er defined in APT. Is it correct?</div></div></blockquote>
<div>=A0</div>
<div>=3D&gt; Not really. APT will maintain all of fines-granulated mapping =
information. But, ER will retain mapping information leaned from ordinary B=
GP protocol. You can even take a ER as a normal BGP speaker.=A0</div>
<div>=A0</div>
<p class=3D"MsoNormal" style=3D"MARGIN: 0cm 0cm 0pt"><span lang=3D"EN-US"><=
font face=3D"Times New Roman" size=3D"3"></font></span></p>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span id=3D""></span></div>
<div><br></div>
<div><br></div><br>
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">=A0=A0 o =A0Control Plane Traffic: the ITR sen=
ds a Mapping Query to its</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0default Mapping Server (MS) in t=
he AS. =A0And then a mapping LOOKUP</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0process (details of mapping look=
up process are shown in Section 7)</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0is launched in the Mapping Overl=
ay (MO) by the Master Mapping Node</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0(MMN) of the ITR. =A0After the M=
MN receives a copy of queried</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0mapping from the MO, it returns =
the copy to the ITR which</font></div>
<div><font color=3D"#144fae">=A0=A0 =A0 =A0initiated the Mapping Query, and=
 is cached for a period of time.</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div>If the AS has at least one ER containing all the mappings, why not que=
rying the ER and retrieve the mapping from there?</div></div></blockquote>
<div>=A0</div>
<div>=3D&gt;=A0Application might suffer from the delay which caused by wait=
ing mapping download. Besides, although ER can contain a global mapping inf=
ormation, but the mapping infromation is not fines-granulated. In other wor=
ds, the termination of the tunnel may not be ETR, but another ER.=A0Of cour=
se, ITR can query ER and retrieve mapping. But ITR may not construct a end-=
to-end tunnel between ITR and ETR. So, we recommend ITR to query mapping in=
formation from DHT-based overlay network.</div>

<div>=A0</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span id=3D""></span></div>
<div><br></div>
<div>
<div><font color=3D"#144fae"></font></div><font color=3D"#144fae"><br></fon=
t></div>
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae">5. =A0Utilization of current BGP system</font>=
</div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div><br></div>
<div>This part about BGP is very difficult for me to understand. You are no=
t using another instance of BGP (like ALT) you are using same instance of B=
GP used to propagate routing information to propagate =A0mappings, right?</=
div>
</div></blockquote>
<div>=A0</div>
<div>=3D&gt; Right. In order to achieve the goals of incremental deployment=
, there is no modification on the BGP protocol.</div>
<div>=A0</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span id=3D""></span></div>
<div><br></div>
<div>BGP follows a push model, does it mean that all mappings are propagate=
d to all BGP speakers? In this case why the MO is needed?</div></div></bloc=
kquote>
<div>=A0</div>
<div>=3D&gt; The mapping information learned from BGP is not fines-granulat=
ed. the fines-granulated mapping informaiton stored by MO can help to reduc=
e tunneling number.</div>
<div>=A0</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span id=3D""></span></div>
<div><br></div><br>
<blockquote type=3D"cite">
<div>
<div>
<div><font color=3D"#144fae"></font></div></div></div></blockquote></div></=
blockquote>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae"></font>=A0</div>
<div><font color=3D"#144fae">6. =A0EID Router mechanism</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">6.1. =A0Address aggregation policy</font></div=
>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">=A0=A0 All addresses from edge customer ASes c=
an be seen as the EIDs. =A0EID</font></div>
<div><font color=3D"#144fae">=A0=A0 prefixes can be aggregated to EID aggre=
gated prefix. =A0Moreover we</font></div>
<div><font color=3D"#144fae">=A0=A0 allow EIDs to be aggregated with RLOCs =
to EID+RLOC aggregated prefix.</font></div>
<div><font color=3D"#144fae">=A0=A0 For example, suppose two EID blocks 166=
.111.8/24 and 166.111.9/24</font></div>
<div><font color=3D"#144fae">=A0=A0 belong to two customer ASes homed to a =
provider AS which has some</font></div>
<div><font color=3D"#144fae">=A0=A0 RLOCs range from 166.111.10/24 to 166.1=
11.11/24, the provider AS can</font></div>
<div><font color=3D"#144fae">=A0=A0 aggregate either to an EID aggregated p=
refix 166.111.8/23 or to an</font></div>
<div><font color=3D"#144fae">=A0=A0 EID+RLOC aggregated prefix 166.111.8/22=
.</font></div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div><br></div>
<div>Here you are merging what LISP tries to split: EID and RLOCs. Isn&#39;=
t this dangerous?</div></div></blockquote>
<div>=A0</div>
<div>=3D&gt; In the draft, the EID routing will be injected into the ER. Fr=
om ER point of view, it&#39;s a normal=A0thing to merge both EID and RLOCs =
into ER routing table.</div>
<div>=A0</div>
<div>=A0</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span id=3D""></span></div>
<div><br></div>
<div>Also, you lose information. How to distinguish in 166.111.8/22 which p=
art is EID and which is RLOC?</div></div></blockquote>
<div>=A0</div>
<div>=3D&gt;In the draft, RLOC is a relative concept. RLOC might not be ETR=
 address. It could be arbitrary ER address in AS-path, on which aggregation=
 will be performed. Therefore, EID+RLOC aggregated prefix come about, there=
 should be another ER address server as the RLOC.=A0</div>

<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span id=3D""></span></div>
<div><font color=3D"#144fae">Chen, et al. =A0 =A0 =A0 =A0 =A0 =A0Expires Ja=
nuary 12, 2010 =A0 =A0 =A0 =A0 =A0 =A0 =A0 [Page 10]</font></div>
<blockquote type=3D"cite">
<div>
<div></div>
<div><font color=3D"#144fae">Internet-Draft =A0 =A0 =A0 =A0 =A0 =A0 =A0 =A0=
 =A0 =A0ER+MO =A0 =A0 =A0 =A0 =A0 =A0 =A0 =A0 =A0 =A0 =A0 =A0July 2009</fon=
t></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">7. =A0Supplementary DHT Mapping Overlay (MO)</=
font></div></div></blockquote>
<div><br></div>
<div>This section is again unclear to me. Probably I lack of background on =
Kademlia, but still....</div></div></blockquote>
<div>=A0</div>
<div>=3D&gt;The DHT-mapping signalling will reuse the kademlia p2p protocol=
, since it is the most commonly used protocol.=A0 We would like to use DHT =
MO as supplementary meachnism to accomodate with data-plane flow.</div>
<div>=A0</div>
<div>Thanks for the discussion.</div>
<div>=A0</div>
<div>-Gang</div>
<div>=A0</div>
<div>=A0</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span id=3D""></span></div><br>
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote></div></bl=
ockquote></div>

--001636e0b96d1acc1b046f24de46--

From dmm@1-4-5.net  Mon Jul 20 08:36:59 2009
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Date: Mon, 20 Jul 2009 08:36:52 -0700
From: David Meyer <dmm@1-4-5.net>
To: Stephane Bortzmeyer <bortzmeyer@nic.fr>
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Subject: Re: [lisp] Linux lig source code available
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	Stephane,

	First, please pick up the updated code on
=09
          http://github.com/davidmeyer/lig/tree/master=20

	(thanks Tom P; I like this way better). In any event,
	that code reflects draft-ietf-lisp-03.txt. Second, there
	are a few map-resolvers you can point at:

	titanium-dmm-alt.rloc.lisp4.net:	128.223.156.35
	titanium-ripe.rloc.lisp4.net:		193.0.0.170
	titanium-dmm-ms.rloc.lisp4.net:		128.223.156.139
	titanium-vaf-alt.rloc.lisp4.net:	204.69.200.7

	So something like:

[dmm@m106:]86% lig -d titanium-dmm.lisp4.net -m titanium-ripe.rloc.lisp4.net
Send map-request to titanium-ripe.rloc.lisp4.net (193.0.0.170)
for titanium-dmm.lisp4.net (153.16.10.254) ...
Using source address: 205.167.76.9
Received map-reply from 128.223.156.134 with rtt 0.21400 sec

Mapping entry for EID 153.16.10.254:
153.16.10.0/24, via map-reply, record ttl: 1440, auth, nonce: 0x50fba595
  Locator           State     Priority/Weight
  128.223.156.134   up        1/50     =20
  207.98.65.94      up        1/50     =20
[dmm@m106:]87%=20

	Thanks, and please let me know if you find bugs or have
	ideas for impovements.

	Writing a man page and a README for the source directory
	is on my queue for today.

	Thanks,

	Dave
----


>=20
> Are there public map servers on the Internet today, or must I install
> one?
>=20
> % ./lig 192.0.2.254 -m 192.0.2.1
> Send map-request to 192.0.2.1 for 192.0.2.254 ...
> Send map-request to 192.0.2.1 for 192.0.2.254 ...
> Send map-request to 192.0.2.1 for 192.0.2.254 ...
> *** No map-reply received ***

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From: Luigi Iannone <luigi@net.t-labs.tu-berlin.de>
To: Chen Gang <phdgang@gmail.com>
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Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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Hi,

just to have full understanding, can you give me an example of "fines- 
granulated mapping information" and "not fines-granulated mapping  
information"?

Thanks

L.

On Jul 20, 2009, at 17:34 , Chen Gang wrote:

> Hello, Luigi
>
> Please see my reply inline.
>
>>
>> 3.  Overview
>>
>>    The mechanism described in this draft aims:
>>
>>    o  to eliminate all forwarding entries to distant customer ASes  
>> in P
>>       routers;
>>
>
> What's a "P router"? It is nto defined in section 2.
>
> =>The P router has functions as a transit router of the core  
> network. The P Router typically connected to one or more PE Routers.  
> P router is well-know concept, so it is unnecessary to be defined in  
> the draft.
>
>>
>>
>>    o  to eliminate the forwarding entries, targeted to distant  
>> customer
>>       ASes not behind the border routers, in the border routers;
>>
>
> This is still unclear to me.
>
> =>That's means that a border router(e.g. PE router) can only retain  
> a routing information towards to the ER and a reachability  
> information of adjacency network.
>
>
>>    o  to be deployed incrementally;
>>
>>    o  to help reduce the number of tunnels.
>>
>
> Which tunnels? LISP tunnels? MO tunnels?
>
> => In the draft, the tunnels is built between the ERs(When some  
> aggregations have been performed in another ER in AS2, a ER in AS1  
> will construct a tunnel towards to the ER in AS2) or between the ER  
> and ETR(ER could construct a tunnel directly go to ETR, if there is  
> no aggreation on AS-path or ER's network is closed to the ETR's  
> network). In the draft, both tunnel will be encapsulated with LISP  
> header.
>
>           4.  When an ITR meets packets
>>
>>    When an ITR receives a packet originated from a customer site, it
>>    checks whether a copy of mapping exists in its cache first.
>>
>>    If the mapping exists, the ITR encapsulates the packet in a LISP
>>    header, putting the RLOC extracted from the mapping onto the outer
>>    destination address, meanwhile selecting one of the ITR's RLOC  
>> as the
>>    outer source address.
>>
>>    Else if cache misses (i.e., no relevant copy of mapping exists  
>> in the
>>    ITR), two concurrent events occur:
>>
>>    o  Data Plane Traffic: the packet simply follows a default route
>>       preset manually or automatically to an ER in current AS.   
>> Since ER
>>       knows whole global mapping information, it can forward every
>>       packet to the right ETR by encapsulating the packet in LISP  
>> header
>>       with the ITR's RLOC in the outer source address and the ETR's  
>> RLOC
>>       in the outer destination address.
>
> From this I understand that the ER is very similar to the Default  
> Mapper defined in APT. Is it correct?
>
> => Not really. APT will maintain all of fines-granulated mapping  
> information. But, ER will retain mapping information leaned from  
> ordinary BGP protocol. You can even take a ER as a normal BGP speaker.
>
>
>
>
>>
>>    o  Control Plane Traffic: the ITR sends a Mapping Query to its
>>       default Mapping Server (MS) in the AS.  And then a mapping  
>> LOOKUP
>>       process (details of mapping lookup process are shown in  
>> Section 7)
>>       is launched in the Mapping Overlay (MO) by the Master Mapping  
>> Node
>>       (MMN) of the ITR.  After the MMN receives a copy of queried
>>       mapping from the MO, it returns the copy to the ITR which
>>       initiated the Mapping Query, and is cached for a period of  
>> time.
>>
>>
> If the AS has at least one ER containing all the mappings, why not  
> querying the ER and retrieve the mapping from there?
>
> => Application might suffer from the delay which caused by waiting  
> mapping download. Besides, although ER can contain a global mapping  
> information, but the mapping infromation is not fines-granulated. In  
> other words, the termination of the tunnel may not be ETR, but  
> another ER. Of course, ITR can query ER and retrieve mapping. But  
> ITR may not construct a end-to-end tunnel between ITR and ETR. So,  
> we recommend ITR to query mapping information from DHT-based overlay  
> network.
>
>
>
>> 5.  Utilization of current BGP system
>>
>
> This part about BGP is very difficult for me to understand. You are  
> not using another instance of BGP (like ALT) you are using same  
> instance of BGP used to propagate routing information to propagate   
> mappings, right?
>
> => Right. In order to achieve the goals of incremental deployment,  
> there is no modification on the BGP protocol.
>
>
> BGP follows a push model, does it mean that all mappings are  
> propagated to all BGP speakers? In this case why the MO is needed?
>
> => The mapping information learned from BGP is not fines-granulated.  
> the fines-granulated mapping informaiton stored by MO can help to  
> reduce tunneling number.
>
>
>
>>
>
>>
>> 6.  EID Router mechanism
>>
>> 6.1.  Address aggregation policy
>>
>>    All addresses from edge customer ASes can be seen as the EIDs.   
>> EID
>>    prefixes can be aggregated to EID aggregated prefix.  Moreover we
>>    allow EIDs to be aggregated with RLOCs to EID+RLOC aggregated  
>> prefix.
>>    For example, suppose two EID blocks 166.111.8/24 and 166.111.9/24
>>    belong to two customer ASes homed to a provider AS which has some
>>    RLOCs range from 166.111.10/24 to 166.111.11/24, the provider AS  
>> can
>>    aggregate either to an EID aggregated prefix 166.111.8/23 or to an
>>    EID+RLOC aggregated prefix 166.111.8/22.
>>
>
> Here you are merging what LISP tries to split: EID and RLOCs. Isn't  
> this dangerous?
>
> => In the draft, the EID routing will be injected into the ER. From  
> ER point of view, it's a normal thing to merge both EID and RLOCs  
> into ER routing table.
>
>
>
> Also, you lose information. How to distinguish in 166.111.8/22 which  
> part is EID and which is RLOC?
>
> =>In the draft, RLOC is a relative concept. RLOC might not be ETR  
> address. It could be arbitrary ER address in AS-path, on which  
> aggregation will be performed. Therefore, EID+RLOC aggregated prefix  
> come about, there should be another ER address server as the RLOC.
> Chen, et al.            Expires January 12, 2010               [Page  
> 10]
>> Internet-Draft                    ER+MO                        July  
>> 2009
>>
>>
>> 7.  Supplementary DHT Mapping Overlay (MO)
>
> This section is again unclear to me. Probably I lack of background  
> on Kademlia, but still....
>
> =>The DHT-mapping signalling will reuse the kademlia p2p protocol,  
> since it is the most commonly used protocol.  We would like to use  
> DHT MO as supplementary meachnism to accomodate with data-plane flow.
>
> Thanks for the discussion.
>
> -Gang
>
>
>
>>


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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space; ">Hi,<div><br></div><div>just to =
have full understanding, can you give me an example of "fines-granulated =
mapping information" and "not fines-granulated mapping =
information"?</div><div><br></div><div>Thanks</div><div><br></div><div>L.<=
/div><div><br><div><div>On Jul 20, 2009, at 17:34 , Chen Gang =
wrote:</div><br class=3D"Apple-interchange-newline"><blockquote =
type=3D"cite"><div>Hello, Luigi</div> <div>&nbsp;</div> <div>Please see =
my reply inline.<br><br></div> <div class=3D"gmail_quote"> <blockquote =
class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0px 0px =
0.8ex; BORDER-LEFT: #ccc 1px solid"> <div style=3D"WORD-WRAP: =
break-word"> <blockquote type=3D"cite"> <div> <div><font =
color=3D"#144fae"></font></div> <div><font =
color=3D"#144fae"><br></font></div> <div><font color=3D"#144fae">3. =
&nbsp;Overview</font></div> <div><font color=3D"#144fae"><br></font></div>=
 <div><font color=3D"#144fae">&nbsp;&nbsp; The mechanism described in =
this draft aims:</font></div> <div><font =
color=3D"#144fae"><br></font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; o &nbsp;to eliminate all forwarding =
entries to distant customer ASes in P</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;routers;</font></div> =
<div><font color=3D"#144fae"><br></font></div></div></blockquote> =
<div><br></div> <div>What's a "P router"? It is nto defined in section =
2.</div></div></blockquote> <div>&nbsp;</div> <div>=3D&gt;The P router =
has functions as a transit router of the core network. The P Router =
typically connected to one or more PE Routers. P router is well-know =
concept, so it is unnecessary to be defined in the draft.</div> =
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: =
0px 0px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid"> <div style=3D"WORD-WRAP: =
break-word"> <div><span id=3D""></span></div> <div><br></div> =
<blockquote type=3D"cite"> <div> <div><br></div> <div><font =
color=3D"#144fae"><br></font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; o &nbsp;to eliminate the forwarding =
entries, targeted to distant customer</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;ASes not behind the border =
routers, in the border routers;</font></div> <div><font =
color=3D"#144fae"><br></font></div></div></blockquote> <div><br></div> =
<div>This is still unclear to me.</div></div></blockquote> =
<div>&nbsp;</div> <div>=3D&gt;That's means that a border router(e.g. PE =
router) can only retain a routing information towards to the ER and a =
reachability information&nbsp;of adjacency network. </div> <blockquote =
class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0px 0px =
0.8ex; BORDER-LEFT: #ccc 1px solid"> <div style=3D"WORD-WRAP: =
break-word"> <div><span id=3D""></span></div> <div><br></div><br> =
<blockquote type=3D"cite"> <div> <div><font color=3D"#144fae">&nbsp;&nbsp;=
 o &nbsp;to be deployed incrementally;</font></div> <div><font =
color=3D"#144fae"><br></font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; o &nbsp;to help reduce the number of =
tunnels.</font></div> <div><font =
color=3D"#144fae"><br></font></div></div></blockquote> <div><br></div> =
<div>Which tunnels? LISP tunnels? MO tunnels?</div></div></blockquote> =
<div>&nbsp;</div> <div>=3D&gt; In the draft, the&nbsp;tunnels is built =
between the ERs(When&nbsp;some aggregations have been performed in =
another ER in AS2, a ER in AS1&nbsp;will construct a tunnel towards to =
the ER in AS2) or between the ER and ETR(ER could construct&nbsp;a =
tunnel&nbsp;directly&nbsp;go to ETR, if there is no aggreation on =
AS-path or ER's network&nbsp;is closed&nbsp;to the ETR's network). In =
the draft, both tunnel will be encapsulated with LISP header.</div> =
<div>&nbsp;</div> <blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT:=
 1ex; MARGIN: 0px 0px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid"> <div =
style=3D"WORD-WRAP: break-word"> <div><span id=3D""></span></div> =
<div><font =
color=3D"#144fae">&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp; =
4. &nbsp;When an ITR meets packets</font></div> <blockquote type=3D"cite">=
 <div> <div><font color=3D"#144fae"><br></font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; When an ITR receives a packet originated =
from a customer site, it</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; checks whether a copy of mapping exists =
in its cache first.</font></div> <div><font =
color=3D"#144fae"><br></font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; If the mapping exists, the ITR =
encapsulates the packet in a LISP</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; header, putting the RLOC extracted from =
the mapping onto the outer</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; destination address, meanwhile selecting =
one of the ITR's RLOC as the</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; outer source address.</font></div> =
<div><font color=3D"#144fae"><br></font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; Else if cache misses (i.e., no relevant =
copy of mapping exists in the</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; ITR), two concurrent events =
occur:</font></div> <div><font color=3D"#144fae"><br></font></div> =
<div><font color=3D"#144fae">&nbsp;&nbsp; o &nbsp;Data Plane Traffic: =
the packet simply follows a default route</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;preset manually or =
automatically to an ER in current AS. &nbsp;Since ER</font></div> =
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;knows whole =
global mapping information, it can forward every</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;packet to the right ETR by =
encapsulating the packet in LISP header</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;with the ITR's RLOC in the =
outer source address and the ETR's RLOC</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;in the outer destination =
address.</font></div></div></blockquote> <div><br></div> <div>=46rom =
this I understand that the ER is very similar to the Default Mapper =
defined in APT. Is it correct?</div></div></blockquote> =
<div>&nbsp;</div> <div>=3D&gt; Not really. APT will maintain all of =
fines-granulated mapping information. But, ER will retain mapping =
information leaned from ordinary BGP protocol. You can even take a ER as =
a normal BGP speaker.&nbsp;</div> <div>&nbsp;</div><p class=3D"MsoNormal" =
style=3D"MARGIN: 0cm 0cm 0pt"><span lang=3D"EN-US"><font face=3D"Times =
New Roman" size=3D"3"></font></span></p> <blockquote class=3D"gmail_quote"=
 style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0px 0px 0.8ex; BORDER-LEFT: =
#ccc 1px solid"> <div style=3D"WORD-WRAP: break-word"> <div><span =
id=3D""></span></div> <div><br></div> <div><br></div><br> <blockquote =
type=3D"cite"> <div> <div><font color=3D"#144fae"><br></font></div> =
<div><font color=3D"#144fae">&nbsp;&nbsp; o &nbsp;Control Plane Traffic: =
the ITR sends a Mapping Query to its</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;default Mapping Server (MS) =
in the AS. &nbsp;And then a mapping LOOKUP</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;process (details of mapping =
lookup process are shown in Section 7)</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;is launched in the Mapping =
Overlay (MO) by the Master Mapping Node</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;(MMN) of the ITR. =
&nbsp;After the MMN receives a copy of queried</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;mapping from the MO, it =
returns the copy to the ITR which</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;initiated the Mapping Query, =
and is cached for a period of time.</font></div> <div><font =
color=3D"#144fae"><br></font></div> <div><font =
color=3D"#144fae"><br></font></div></div></blockquote> <div>If the AS =
has at least one ER containing all the mappings, why not querying the ER =
and retrieve the mapping from there?</div></div></blockquote> =
<div>&nbsp;</div> <div>=3D&gt;&nbsp;Application might suffer from the =
delay which caused by waiting mapping download. Besides, although ER can =
contain a global mapping information, but the mapping infromation is not =
fines-granulated. In other words, the termination of the tunnel may not =
be ETR, but another ER.&nbsp;Of course, ITR can query ER and retrieve =
mapping. But ITR may not construct a end-to-end tunnel between ITR and =
ETR. So, we recommend ITR to query mapping information from DHT-based =
overlay network.</div> <div>&nbsp;</div> <blockquote class=3D"gmail_quote"=
 style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0px 0px 0.8ex; BORDER-LEFT: =
#ccc 1px solid"> <div style=3D"WORD-WRAP: break-word"> <div><span =
id=3D""></span></div> <div><br></div> <div> <div><font =
color=3D"#144fae"></font></div><font color=3D"#144fae"><br></font></div> =
<blockquote type=3D"cite"> <div> <div><font color=3D"#144fae">5. =
&nbsp;Utilization of current BGP system</font></div> <div><font =
color=3D"#144fae"><br></font></div></div></blockquote> <div><br></div> =
<div>This part about BGP is very difficult for me to understand. You are =
not using another instance of BGP (like ALT) you are using same instance =
of BGP used to propagate routing information to propagate =
&nbsp;mappings, right?</div> </div></blockquote> <div>&nbsp;</div> =
<div>=3D&gt; Right. In order to achieve the goals of incremental =
deployment, there is no modification on the BGP protocol.</div> =
<div>&nbsp;</div> <blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT:=
 1ex; MARGIN: 0px 0px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid"> <div =
style=3D"WORD-WRAP: break-word"> <div><span id=3D""></span></div> =
<div><br></div> <div>BGP follows a push model, does it mean that all =
mappings are propagated to all BGP speakers? In this case why the MO is =
needed?</div></div></blockquote> <div>&nbsp;</div> <div>=3D&gt; The =
mapping information learned from BGP is not fines-granulated. the =
fines-granulated mapping informaiton stored by MO can help to reduce =
tunneling number.</div> <div>&nbsp;</div> <blockquote =
class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0px 0px =
0.8ex; BORDER-LEFT: #ccc 1px solid"> <div style=3D"WORD-WRAP: =
break-word"> <div><span id=3D""></span></div> <div><br></div><br> =
<blockquote type=3D"cite"> <div> <div> <div><font =
color=3D"#144fae"></font></div></div></div></blockquote></div></blockquote=
> <blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: =
0px 0px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid"> <div style=3D"WORD-WRAP: =
break-word"> <blockquote type=3D"cite"> <div> <div><font =
color=3D"#144fae"></font>&nbsp;</div> <div><font color=3D"#144fae">6. =
&nbsp;EID Router mechanism</font></div> <div><font =
color=3D"#144fae"><br></font></div> <div><font color=3D"#144fae">6.1. =
&nbsp;Address aggregation policy</font></div> <div><font =
color=3D"#144fae"><br></font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; All addresses from edge customer ASes can =
be seen as the EIDs. &nbsp;EID</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; prefixes can be aggregated to EID =
aggregated prefix. &nbsp;Moreover we</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; allow EIDs to be aggregated with RLOCs to =
EID+RLOC aggregated prefix.</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; For example, suppose two EID blocks =
166.111.8/24 and 166.111.9/24</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; belong to two customer ASes homed to a =
provider AS which has some</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; RLOCs range from 166.111.10/24 to =
166.111.11/24, the provider AS can</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; aggregate either to an EID aggregated =
prefix 166.111.8/23 or to an</font></div> <div><font =
color=3D"#144fae">&nbsp;&nbsp; EID+RLOC aggregated prefix =
166.111.8/22.</font></div> <div><font =
color=3D"#144fae"><br></font></div></div></blockquote> <div><br></div> =
<div>Here you are merging what LISP tries to split: EID and RLOCs. Isn't =
this dangerous?</div></div></blockquote> <div>&nbsp;</div> <div>=3D&gt; =
In the draft, the EID routing will be injected into the ER. =46rom ER =
point of view, it's a normal&nbsp;thing to merge both EID and RLOCs into =
ER routing table.</div> <div>&nbsp;</div> <div>&nbsp;</div> <blockquote =
class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0px 0px =
0.8ex; BORDER-LEFT: #ccc 1px solid"> <div style=3D"WORD-WRAP: =
break-word"> <div><span id=3D""></span></div> <div><br></div> <div>Also, =
you lose information. How to distinguish in 166.111.8/22 which part is =
EID and which is RLOC?</div></div></blockquote> <div>&nbsp;</div> =
<div>=3D&gt;In the draft, RLOC is a relative concept. RLOC might not be =
ETR address. It could be arbitrary ER address in AS-path, on which =
aggregation will be performed. Therefore, EID+RLOC aggregated prefix =
come about, there should be another ER address server as the =
RLOC.&nbsp;</div> <blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT:=
 1ex; MARGIN: 0px 0px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid"> <div =
style=3D"WORD-WRAP: break-word"> <div><span id=3D""></span></div> =
<div><font color=3D"#144fae">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; &nbsp; [Page 10]</font></div> <blockquote type=3D"cite"> <div> =
<div></div> <div><font color=3D"#144fae">Internet-Draft &nbsp; &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO &nbsp; =
&nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp;July 2009</font></div> <div><font =
color=3D"#144fae"><br></font></div> <div><font =
color=3D"#144fae"><br></font></div> <div><font color=3D"#144fae">7. =
&nbsp;Supplementary DHT Mapping Overlay =
(MO)</font></div></div></blockquote> <div><br></div> <div>This section =
is again unclear to me. Probably I lack of background on Kademlia, but =
still....</div></div></blockquote> <div>&nbsp;</div> <div>=3D&gt;The =
DHT-mapping signalling will reuse the kademlia p2p protocol, since it is =
the most commonly used protocol.&nbsp; We would like to use DHT MO as =
supplementary meachnism to accomodate with data-plane flow.</div> =
<div>&nbsp;</div> <div>Thanks for the discussion.</div> =
<div>&nbsp;</div> <div>-Gang</div> <div>&nbsp;</div> <div>&nbsp;</div> =
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: =
0px 0px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid"> <div style=3D"WORD-WRAP: =
break-word"> <div><span id=3D""></span></div><br> <blockquote =
type=3D"cite"> <div> <div><font =
color=3D"#144fae"><br></font></div></div></blockquote></div></blockquote><=
/div></blockquote></div><br></div></body></html>=

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References: <36ba02b00907060839w1f20e50cre44a0cdae17d6cb7@mail.gmail.com> <200907090907292188089@gmail.com> <B79B48B4-5691-4F77-ADD0-5BDCA91FBBC5@cisco.com> <200907091130018289671@gmail.com> <173E97C8-13BB-4C93-AE68-67430DB7E18F@cisco.com> <200907092344507503907@gmail.com> <36ba02b00907130649s1de4bf2cq3f2ea6162a493a4c@mail.gmail.com> <6B63332D-C220-435F-BD1F-D90F3B9181C8@net.t-labs.tu-berlin.de> <36ba02b00907200834y43c3ab2bs4a97e8265557d312@mail.gmail.com> <65A33D6F-5D8A-401C-ACA8-952039BB4928@net.t-labs.tu-berlin.de>
Date: Mon, 20 Jul 2009 23:54:34 +0800
Message-ID: <36ba02b00907200854o78dd63f1lb49a9269ff1f3db2@mail.gmail.com>
From: Chen Gang <phdgang@gmail.com>
To: Luigi Iannone <luigi@net.t-labs.tu-berlin.de>
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Cc: lisp@ietf.org
Subject: Re: [lisp] An Incremental Deployable Mapping Service Draft
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2009/7/20 Luigi Iannone <luigi@net.t-labs.tu-berlin.de>

> Hi,
> just to have full understanding, can you give me an example of
> "fines-granulated mapping information" and "not fines-granulated mapping
> information"?
>

=3D>fines-granulated mapping information indicates a relationship between a
EID prefix and a ETR address.

"not fines-granulated mapping information" means a relationship between a
EID prefix and a address of ER, on which BGP aggreation is performed.

Thanks




>
> Thanks
>
> L.
>
>  On Jul 20, 2009, at 17:34 , Chen Gang wrote:
>
>  Hello, Luigi
>
> Please see my reply inline.
>
>
>> 3.  Overview
>>
>>    The mechanism described in this draft aims:
>>
>>    o  to eliminate all forwarding entries to distant customer ASes in P
>>       routers;
>>
>>
>> What's a "P router"? It is nto defined in section 2.
>>
>
> =3D>The P router has functions as a transit router of the core network. T=
he P
> Router typically connected to one or more PE Routers. P router is well-kn=
ow
> concept, so it is unnecessary to be defined in the draft.
>
>>
>>
>>
>>    o  to eliminate the forwarding entries, targeted to distant customer
>>       ASes not behind the border routers, in the border routers;
>>
>>
>> This is still unclear to me.
>>
>
> =3D>That's means that a border router(e.g. PE router) can only retain a
> routing information towards to the ER and a reachability information of
> adjacency network.
>
>>
>>
>>     o  to be deployed incrementally;
>>
>>    o  to help reduce the number of tunnels.
>>
>>
>> Which tunnels? LISP tunnels? MO tunnels?
>>
>
> =3D> In the draft, the tunnels is built between the ERs(When some
> aggregations have been performed in another ER in AS2, a ER in AS1 will
> construct a tunnel towards to the ER in AS2) or between the ER and ETR(ER
> could construct a tunnel directly go to ETR, if there is no aggreation on
> AS-path or ER's network is closed to the ETR's network). In the draft, bo=
th
> tunnel will be encapsulated with LISP header.
>
>
>>            4.  When an ITR meets packets
>>
>>
>>    When an ITR receives a packet originated from a customer site, it
>>    checks whether a copy of mapping exists in its cache first.
>>
>>    If the mapping exists, the ITR encapsulates the packet in a LISP
>>    header, putting the RLOC extracted from the mapping onto the outer
>>    destination address, meanwhile selecting one of the ITR's RLOC as the
>>    outer source address.
>>
>>    Else if cache misses (i.e., no relevant copy of mapping exists in the
>>    ITR), two concurrent events occur:
>>
>>    o  Data Plane Traffic: the packet simply follows a default route
>>       preset manually or automatically to an ER in current AS.  Since ER
>>       knows whole global mapping information, it can forward every
>>       packet to the right ETR by encapsulating the packet in LISP header
>>       with the ITR's RLOC in the outer source address and the ETR's RLOC
>>       in the outer destination address.
>>
>>
>> From this I understand that the ER is very similar to the Default Mapper
>> defined in APT. Is it correct?
>>
>
> =3D> Not really. APT will maintain all of fines-granulated mapping
> information. But, ER will retain mapping information leaned from ordinary
> BGP protocol. You can even take a ER as a normal BGP speaker.
>
>
>
>>
>>
>>
>>    o  Control Plane Traffic: the ITR sends a Mapping Query to its
>>       default Mapping Server (MS) in the AS.  And then a mapping LOOKUP
>>       process (details of mapping lookup process are shown in Section 7)
>>       is launched in the Mapping Overlay (MO) by the Master Mapping Node
>>       (MMN) of the ITR.  After the MMN receives a copy of queried
>>       mapping from the MO, it returns the copy to the ITR which
>>       initiated the Mapping Query, and is cached for a period of time.
>>
>>
>> If the AS has at least one ER containing all the mappings, why not
>> querying the ER and retrieve the mapping from there?
>>
>
> =3D> Application might suffer from the delay which caused by waiting mapp=
ing
> download. Besides, although ER can contain a global mapping information, =
but
> the mapping infromation is not fines-granulated. In other words, the
> termination of the tunnel may not be ETR, but another ER. Of course, ITR =
can
> query ER and retrieve mapping. But ITR may not construct a end-to-end tun=
nel
> between ITR and ETR. So, we recommend ITR to query mapping information fr=
om
> DHT-based overlay network.
>
>
>>
>>
>>  5.  Utilization of current BGP system
>>
>>
>> This part about BGP is very difficult for me to understand. You are not
>> using another instance of BGP (like ALT) you are using same instance of =
BGP
>> used to propagate routing information to propagate  mappings, right?
>>
>
> =3D> Right. In order to achieve the goals of incremental deployment, ther=
e is
> no modification on the BGP protocol.
>
>
>>
>> BGP follows a push model, does it mean that all mappings are propagated =
to
>> all BGP speakers? In this case why the MO is needed?
>>
>
> =3D> The mapping information learned from BGP is not fines-granulated. th=
e
> fines-granulated mapping informaiton stored by MO can help to reduce
> tunneling number.
>
>
>>
>>
>>
>> 6.  EID Router mechanism
>>
>> 6.1.  Address aggregation policy
>>
>>    All addresses from edge customer ASes can be seen as the EIDs.  EID
>>    prefixes can be aggregated to EID aggregated prefix.  Moreover we
>>    allow EIDs to be aggregated with RLOCs to EID+RLOC aggregated prefix.
>>    For example, suppose two EID blocks 166.111.8/24 and 166.111.9/24
>>    belong to two customer ASes homed to a provider AS which has some
>>    RLOCs range from 166.111.10/24 to 166.111.11/24, the provider AS can
>>    aggregate either to an EID aggregated prefix 166.111.8/23 or to an
>>    EID+RLOC aggregated prefix 166.111.8/22.
>>
>>
>> Here you are merging what LISP tries to split: EID and RLOCs. Isn't this
>> dangerous?
>>
>
> =3D> In the draft, the EID routing will be injected into the ER. From ER
> point of view, it's a normal thing to merge both EID and RLOCs into ER
> routing table.
>
>
>
>>
>> Also, you lose information. How to distinguish in 166.111.8/22 which par=
t
>> is EID and which is RLOC?
>>
>
> =3D>In the draft, RLOC is a relative concept. RLOC might not be ETR addre=
ss.
> It could be arbitrary ER address in AS-path, on which aggregation will be
> performed. Therefore, EID+RLOC aggregated prefix come about, there should=
 be
> another ER address server as the RLOC.
>
>>  Chen, et al.            Expires January 12, 2010               [Page 10=
]
>>
>>  Internet-Draft                    ER+MO                        July 200=
9
>>
>>
>> 7.  Supplementary DHT Mapping Overlay (MO)
>>
>>
>> This section is again unclear to me. Probably I lack of background on
>> Kademlia, but still....
>>
>
> =3D>The DHT-mapping signalling will reuse the kademlia p2p protocol, sinc=
e it
> is the most commonly used protocol.  We would like to use DHT MO as
> supplementary meachnism to accomodate with data-plane flow.
>
> Thanks for the discussion.
>
> -Gang
>
>
>
>>
>>
>>
>


--=20
=B3=C2=B8=D5
phdgang@gmail.com

--000e0cd329ca8724c2046f2527a8
Content-Type: text/html; charset=GB2312
Content-Transfer-Encoding: quoted-printable

<br>
<div class=3D"gmail_quote">2009/7/20 Luigi Iannone <span dir=3D"ltr">&lt;<a=
 href=3D"mailto:luigi@net.t-labs.tu-berlin.de">luigi@net.t-labs.tu-berlin.d=
e</a>&gt;</span><br>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">Hi,=20
<div><br></div>
<div>just to have full understanding, can you give me an example of &quot;f=
ines-granulated mapping information&quot; and &quot;not fines-granulated ma=
pping information&quot;?</div></div></blockquote>
<div>&nbsp;</div>
<div>=3D&gt;fines-granulated mapping information indicates a relationship b=
etween a EID prefix and a ETR address.</div>
<div>&nbsp;</div>
<div>&quot;not fines-granulated mapping information&quot; means a relations=
hip between a EID prefix and a address of ER, on which BGP aggreation is pe=
rformed.</div>
<div>&nbsp;</div>
<div>Thanks</div>
<div>&nbsp;</div>
<div>&nbsp;</div>
<div>&nbsp;</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span id=3D""></span></div>
<div><br></div>
<div>Thanks</div>
<div><br></div><font color=3D"#888888">
<div>L.</div></font>
<div>
<div></div>
<div class=3D"h5">
<div><br>
<div>
<div>On Jul 20, 2009, at 17:34 , Chen Gang wrote:</div><br>
<blockquote type=3D"cite">
<div>Hello, Luigi</div>
<div>&nbsp;</div>
<div>Please see my reply inline.<br><br></div>
<div class=3D"gmail_quote">
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae"></font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">3. &nbsp;Overview</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; The mechanism described in this d=
raft aims:</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; o &nbsp;to eliminate all forwardi=
ng entries to distant customer ASes in P</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;routers;</font></div=
>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div><br></div>
<div>What&#39;s a &quot;P router&quot;? It is nto defined in section 2.</di=
v></div></blockquote>
<div>&nbsp;</div>
<div>=3D&gt;The P router has functions as a transit router of the core netw=
ork. The P Router typically connected to one or more PE Routers. P router i=
s well-know concept, so it is unnecessary to be defined in the draft.</div>

<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span></span></div>
<div><br></div>
<blockquote type=3D"cite">
<div>
<div><br></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; o &nbsp;to eliminate the forwardi=
ng entries, targeted to distant customer</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;ASes not behind the =
border routers, in the border routers;</font></div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div><br></div>
<div>This is still unclear to me.</div></div></blockquote>
<div>&nbsp;</div>
<div>=3D&gt;That&#39;s means that a border router(e.g. PE router) can only =
retain a routing information towards to the ER and a reachability informati=
on&nbsp;of adjacency network. </div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span></span></div>
<div><br></div><br>
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae">&nbsp;&nbsp; o &nbsp;to be deployed incrementa=
lly;</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; o &nbsp;to help reduce the number=
 of tunnels.</font></div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div><br></div>
<div>Which tunnels? LISP tunnels? MO tunnels?</div></div></blockquote>
<div>&nbsp;</div>
<div>=3D&gt; In the draft, the&nbsp;tunnels is built between the ERs(When&n=
bsp;some aggregations have been performed in another ER in AS2, a ER in AS1=
&nbsp;will construct a tunnel towards to the ER in AS2) or between the ER a=
nd ETR(ER could construct&nbsp;a tunnel&nbsp;directly&nbsp;go to ETR, if th=
ere is no aggreation on AS-path or ER&#39;s network&nbsp;is closed&nbsp;to =
the ETR&#39;s network). In the draft, both tunnel will be encapsulated with=
 LISP header.</div>

<div>&nbsp;</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span></span></div>
<div><font color=3D"#144fae">&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbs=
p;&nbsp; 4. &nbsp;When an ITR meets packets</font></div>
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; When an ITR receives a packet ori=
ginated from a customer site, it</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; checks whether a copy of mapping =
exists in its cache first.</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; If the mapping exists, the ITR en=
capsulates the packet in a LISP</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; header, putting the RLOC extracte=
d from the mapping onto the outer</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; destination address, meanwhile se=
lecting one of the ITR&#39;s RLOC as the</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; outer source address.</font></div=
>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; Else if cache misses (i.e., no re=
levant copy of mapping exists in the</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; ITR), two concurrent events occur=
:</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; o &nbsp;Data Plane Traffic: the p=
acket simply follows a default route</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;preset manually or a=
utomatically to an ER in current AS. &nbsp;Since ER</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;knows whole global m=
apping information, it can forward every</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;packet to the right =
ETR by encapsulating the packet in LISP header</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;with the ITR&#39;s R=
LOC in the outer source address and the ETR&#39;s RLOC</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;in the outer destina=
tion address.</font></div></div></blockquote>
<div><br></div>
<div>From this I understand that the ER is very similar to the Default Mapp=
er defined in APT. Is it correct?</div></div></blockquote>
<div>&nbsp;</div>
<div>=3D&gt; Not really. APT will maintain all of fines-granulated mapping =
information. But, ER will retain mapping information leaned from ordinary B=
GP protocol. You can even take a ER as a normal BGP speaker.&nbsp;</div>
<div>&nbsp;</div>
<p style=3D"MARGIN: 0cm 0cm 0pt"><span lang=3D"EN-US"><font face=3D"Times N=
ew Roman" size=3D"3"></font></span></p>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span></span></div>
<div><br></div>
<div><br></div><br>
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; o &nbsp;Control Plane Traffic: th=
e ITR sends a Mapping Query to its</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;default Mapping Serv=
er (MS) in the AS. &nbsp;And then a mapping LOOKUP</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;process (details of =
mapping lookup process are shown in Section 7)</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;is launched in the M=
apping Overlay (MO) by the Master Mapping Node</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;(MMN) of the ITR. &n=
bsp;After the MMN receives a copy of queried</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;mapping from the MO,=
 it returns the copy to the ITR which</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; &nbsp; &nbsp;initiated the Mappin=
g Query, and is cached for a period of time.</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div>If the AS has at least one ER containing all the mappings, why not que=
rying the ER and retrieve the mapping from there?</div></div></blockquote>
<div>&nbsp;</div>
<div>=3D&gt;&nbsp;Application might suffer from the delay which caused by w=
aiting mapping download. Besides, although ER can contain a global mapping =
information, but the mapping infromation is not fines-granulated. In other =
words, the termination of the tunnel may not be ETR, but another ER.&nbsp;O=
f course, ITR can query ER and retrieve mapping. But ITR may not construct =
a end-to-end tunnel between ITR and ETR. So, we recommend ITR to query mapp=
ing information from DHT-based overlay network.</div>

<div>&nbsp;</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span></span></div>
<div><br></div>
<div>
<div><font color=3D"#144fae"></font></div><font color=3D"#144fae"><br></fon=
t></div>
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae">5. &nbsp;Utilization of current BGP system</fo=
nt></div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div><br></div>
<div>This part about BGP is very difficult for me to understand. You are no=
t using another instance of BGP (like ALT) you are using same instance of B=
GP used to propagate routing information to propagate &nbsp;mappings, right=
?</div>
</div></blockquote>
<div>&nbsp;</div>
<div>=3D&gt; Right. In order to achieve the goals of incremental deployment=
, there is no modification on the BGP protocol.</div>
<div>&nbsp;</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span></span></div>
<div><br></div>
<div>BGP follows a push model, does it mean that all mappings are propagate=
d to all BGP speakers? In this case why the MO is needed?</div></div></bloc=
kquote>
<div>&nbsp;</div>
<div>=3D&gt; The mapping information learned from BGP is not fines-granulat=
ed. the fines-granulated mapping informaiton stored by MO can help to reduc=
e tunneling number.</div>
<div>&nbsp;</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span></span></div>
<div><br></div><br>
<blockquote type=3D"cite">
<div>
<div>
<div><font color=3D"#144fae"></font></div></div></div></blockquote></div></=
blockquote>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae"></font>&nbsp;</div>
<div><font color=3D"#144fae">6. &nbsp;EID Router mechanism</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">6.1. &nbsp;Address aggregation policy</font></=
div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; All addresses from edge customer =
ASes can be seen as the EIDs. &nbsp;EID</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; prefixes can be aggregated to EID=
 aggregated prefix. &nbsp;Moreover we</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; allow EIDs to be aggregated with =
RLOCs to EID+RLOC aggregated prefix.</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; For example, suppose two EID bloc=
ks 166.111.8/24 and 166.111.9/24</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; belong to two customer ASes homed=
 to a provider AS which has some</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; RLOCs range from 166.111.10/24 to=
 166.111.11/24, the provider AS can</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; aggregate either to an EID aggreg=
ated prefix 166.111.8/23 or to an</font></div>
<div><font color=3D"#144fae">&nbsp;&nbsp; EID+RLOC aggregated prefix 166.11=
1.8/22.</font></div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote>
<div><br></div>
<div>Here you are merging what LISP tries to split: EID and RLOCs. Isn&#39;=
t this dangerous?</div></div></blockquote>
<div>&nbsp;</div>
<div>=3D&gt; In the draft, the EID routing will be injected into the ER. Fr=
om ER point of view, it&#39;s a normal&nbsp;thing to merge both EID and RLO=
Cs into ER routing table.</div>
<div>&nbsp;</div>
<div>&nbsp;</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span></span></div>
<div><br></div>
<div>Also, you lose information. How to distinguish in 166.111.8/22 which p=
art is EID and which is RLOC?</div></div></blockquote>
<div>&nbsp;</div>
<div>=3D&gt;In the draft, RLOC is a relative concept. RLOC might not be ETR=
 address. It could be arbitrary ER address in AS-path, on which aggregation=
 will be performed. Therefore, EID+RLOC aggregated prefix come about, there=
 should be another ER address server as the RLOC.&nbsp;</div>

<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span></span></div>
<div><font color=3D"#144fae">Chen, et al. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp=
; &nbsp;Expires January 12, 2010 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; =
&nbsp; [Page 10]</font></div>
<blockquote type=3D"cite">
<div>
<div></div>
<div><font color=3D"#144fae">Internet-Draft &nbsp; &nbsp; &nbsp; &nbsp; &nb=
sp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;ER+MO &nbsp; &nbsp; &nbsp; &nbsp; &nb=
sp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;July 2009</font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae"><br></font></div>
<div><font color=3D"#144fae">7. &nbsp;Supplementary DHT Mapping Overlay (MO=
)</font></div></div></blockquote>
<div><br></div>
<div>This section is again unclear to me. Probably I lack of background on =
Kademlia, but still....</div></div></blockquote>
<div>&nbsp;</div>
<div>=3D&gt;The DHT-mapping signalling will reuse the kademlia p2p protocol=
, since it is the most commonly used protocol.&nbsp; We would like to use D=
HT MO as supplementary meachnism to accomodate with data-plane flow.</div>
<div>&nbsp;</div>
<div>Thanks for the discussion.</div>
<div>&nbsp;</div>
<div>-Gang</div>
<div>&nbsp;</div>
<div>&nbsp;</div>
<blockquote class=3D"gmail_quote" style=3D"PADDING-LEFT: 1ex; MARGIN: 0px 0=
px 0px 0.8ex; BORDER-LEFT: #ccc 1px solid">
<div style=3D"WORD-WRAP: break-word">
<div><span></span></div><br>
<blockquote type=3D"cite">
<div>
<div><font color=3D"#144fae"><br></font></div></div></blockquote></div></bl=
ockquote></div></blockquote></div><br></div></div></div></div></blockquote>=
</div><br><br clear=3D"all">
<div></div><br>-- <br>=B3=C2=B8=D5<br><a href=3D"mailto:phdgang@gmail.com">=
phdgang@gmail.com</a><br>

--000e0cd329ca8724c2046f2527a8--

From dmm@1-4-5.net  Mon Jul 20 17:05:57 2009
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Date: Mon, 20 Jul 2009 17:05:50 -0700
From: David Meyer <dmm@1-4-5.net>
To: Stephane Bortzmeyer <bortzmeyer@nic.fr>
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Subject: Re: [lisp] Linux lig source code available
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On Mon, Jul 20, 2009 at 08:36:52AM -0700, David Meyer wrote:
> 	Stephane,
>=20
> 	First, please pick up the updated code on
> =09
>           http://github.com/davidmeyer/lig/tree/master=20
>=20
> 	(thanks Tom P; I like this way better). In any event,
> 	that code reflects draft-ietf-lisp-03.txt. Second, there
> 	are a few map-resolvers you can point at:
>=20
> 	titanium-dmm-alt.rloc.lisp4.net:	128.223.156.35
> 	titanium-ripe.rloc.lisp4.net:		193.0.0.170
> 	titanium-dmm-ms.rloc.lisp4.net:		128.223.156.139
> 	titanium-vaf-alt.rloc.lisp4.net:	204.69.200.7

	BTW, http://www.lisp4.net/images/lisp_network.png is a
	pretty current picture of network. I see we should
	annotate it with domain names so it would be more useful
	for you when testing all of this stuff.

	Thanks,

	Dave

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From bortzmeyer@nic.fr  Tue Jul 21 02:20:51 2009
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On Mon, Jul 20, 2009 at 08:36:52AM -0700,
 David Meyer <dmm@1-4-5.net> wrote 
 a message of 72 lines which said:

> [dmm@m106:]86% lig -d titanium-dmm.lisp4.net -m titanium-ripe.rloc.lisp4.net

Does not work for me:

% sudo ./lig -d 192.0.2.1 -m titanium-vaf-alt.rloc.lisp4.net 
Using source address:   208.75.84.80
Using source port:      47357
Send map-request to titanium-vaf-alt.rloc.lisp4.net (204.69.200.7) for 192.0.2.1 (192.0.2.1) ...
Send map-request to titanium-vaf-alt.rloc.lisp4.net (204.69.200.7) for 192.0.2.1 (192.0.2.1) ...
Send map-request to titanium-vaf-alt.rloc.lisp4.net (204.69.200.7) for 192.0.2.1 (192.0.2.1) ...
*** No map-reply received ***

It does not seem to be firewall-related since tcpdump sees the packets
coming in and out:

% tcpdump -n -v host 204.69.200.7 
tcpdump: listening on eth0, link-type EN10MB (Ethernet), capture size 96 bytes
11:11:37.123146 IP (tos 0x0, ttl 64, id 0, offset 0, flags [DF], proto UDP (17), length 92) 208.75.84.80.42656 > 204.69.200.7.4341: UDP, length 64
11:11:37.177246 IP (tos 0xc0, ttl 238, id 3451, offset 0, flags [none], proto UDP (17), length 52) 204.69.200.7.4342 > 208.75.84.80.0: UDP, length 24
11:11:38.610988 IP (tos 0x0, ttl 64, id 0, offset 0, flags [DF], proto UDP (17), length 92) 208.75.84.80.42656 > 204.69.200.7.4341: UDP, length 64
11:11:38.615483 IP (tos 0x0, ttl 64, id 0, offset 0, flags [DF], proto UDP (17), length 92) 208.75.84.80.42656 > 204.69.200.7.4341: UDP, length 64
11:11:38.665215 IP (tos 0xc0, ttl 238, id 3452, offset 0, flags [none], proto UDP (17), length 52) 204.69.200.7.4342 > 208.75.84.80.0: UDP, length 24
11:11:38.670797 IP (tos 0xc0, ttl 238, id 3453, offset 0, flags [none], proto UDP (17), length 52) 204.69.200.7.4342 > 208.75.84.80.0: UDP, length 24

Linux/Gentoo, kernel 2.6.16.29, lig just obtained from github,
compilation done with gcc 4.1.2.

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On Tue, Jul 21, 2009 at 11:15:44AM +0200,
 Stephane Bortzmeyer <bortzmeyer@nic.fr> wrote 
 a message of 34 lines which said:

> Does not work for me:

OK, I missed the fact that unknown EID generate *no* reply. Sorry for
the false alarm.

% sudo ./lig -d 153.16.10.254  -m titanium-ripe.rloc.lisp4.net
Using source address:   217.70.190.232
Using source port:      38530
Send map-request to titanium-ripe.rloc.lisp4.net (193.0.0.170) for 153.16.10.254 (153.16.10.254) ...
Received map-reply from 207.98.65.94 with rtt 0.20600 sec

Mapping entry for EID 153.16.10.254:
153.16.10.0/24, via map-reply, record ttl: 1440, auth, nonce: 0x508f13ff
  Locator           State     Priority/Weight
  128.223.156.134   up        1/50      
  207.98.65.94      up        1/50     


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To: Stephane Bortzmeyer <bortzmeyer@nic.fr>
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On Tue, Jul 21, 2009 at 11:26:39AM +0200, Stephane Bortzmeyer wrote:
> On Tue, Jul 21, 2009 at 11:15:44AM +0200,
>  Stephane Bortzmeyer <bortzmeyer@nic.fr> wrote=20
>  a message of 34 lines which said:
>=20
> > Does not work for me:
>=20
> OK, I missed the fact that unknown EID generate *no* reply. Sorry for
> the false alarm.
>=20
> % sudo ./lig -d 153.16.10.254  -m titanium-ripe.rloc.lisp4.net
> Using source address:   217.70.190.232
> Using source port:      38530
> Send map-request to titanium-ripe.rloc.lisp4.net (193.0.0.170) for 153.16=
=2E10.254 (153.16.10.254) ...
> Received map-reply from 207.98.65.94 with rtt 0.20600 sec
>=20
> Mapping entry for EID 153.16.10.254:
> 153.16.10.0/24, via map-reply, record ttl: 1440, auth, nonce: 0x508f13ff
>   Locator           State     Priority/Weight
>   128.223.156.134   up        1/50     =20
>   207.98.65.94      up        1/50    =20

Good to see :-)

Dave

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From jmh@joelhalpern.com  Tue Jul 21 06:37:56 2009
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I am slightly confused.  Stephane indicates that his problem was that an 
unknown EID generates no reply.  Dave seems to find that reasonable.
But the spec explicitly says that an EID which is not mapped needs a 
negative reply.  (Which seems like a very good idea, particularly since 
there are behaviors that depend upon the ITR knowing this correctly.)
So why is there no reply?

Joel

David Meyer wrote:
> On Tue, Jul 21, 2009 at 11:26:39AM +0200, Stephane Bortzmeyer wrote:
>> On Tue, Jul 21, 2009 at 11:15:44AM +0200,
>>  Stephane Bortzmeyer <bortzmeyer@nic.fr> wrote 
>>  a message of 34 lines which said:
>>
>>> Does not work for me:
>> OK, I missed the fact that unknown EID generate *no* reply. Sorry for
>> the false alarm.
>>
>> % sudo ./lig -d 153.16.10.254  -m titanium-ripe.rloc.lisp4.net
>> Using source address:   217.70.190.232
>> Using source port:      38530
>> Send map-request to titanium-ripe.rloc.lisp4.net (193.0.0.170) for 153.16.10.254 (153.16.10.254) ...
>> Received map-reply from 207.98.65.94 with rtt 0.20600 sec
>>
>> Mapping entry for EID 153.16.10.254:
>> 153.16.10.0/24, via map-reply, record ttl: 1440, auth, nonce: 0x508f13ff
>>   Locator           State     Priority/Weight
>>   128.223.156.134   up        1/50      
>>   207.98.65.94      up        1/50     
> 
> Good to see :-)
> 
> Dave
> 
> 
> ------------------------------------------------------------------------
> 
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp

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On Tue, Jul 21, 2009 at 09:37:37AM -0400, Joel M. Halpern wrote:
> I am slightly confused.  Stephane indicates that his problem was that an =
=20
> unknown EID generates no reply.  Dave seems to find that reasonable.

	Joel, I did not say that. I said it was "Good to see :-)"
	[0] that it worked it with a known EID. Please quote me
	correctly if find the need to quote me.=20

> But the spec explicitly says that an EID which is not mapped needs a =20
> negative reply.  (Which seems like a very good idea, particularly since =
=20
> there are behaviors that depend upon the ITR knowing this correctly.)
> So why is there no reply?

	Don't know. Maybe its a bug in my code (I'm sure there
	are many). Anyway, we know that Dino's code generates
	negative map-replies. I'll check it out.

	Dave

[0]	See Message-ID: <20090721092639.GA10171@nic.fr>


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> 	Don't know. Maybe its a bug in my code (I'm sure there
> 	are many). Anyway, we know that Dino's code generates
> 	negative map-replies. I'll check it out.

	BTW, I just checked. FWIW:

[root@m106:]48# lig 128.223.156.117 -m titanium-dmm-alt.rloc.lisp4.net
Send map-request to titanium-dmm-alt.rloc.lisp4.net for 128.223.156.117 ...
Received map-reply from 128.223.156.35 with rtt 0.00400 sec

Mapping entry for EID 128.223.156.117:
128.0.0.0/4, record ttl: 1440
  Locator           State     Priority/Weight
[root@m106:]49#=20

	I can do a better job of letting folks know this is a
	negative map-reply, but the point is what you can see
	above.

	Dave

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Cc: lisp@ietf.org
Subject: Re: [lisp] Linux lig source code available
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And here is an example from my xTR:

titanium-dino# lig 128.223.156.117
Send map-request to 128.223.156.139 for 128.223.156.117 ...
Received map-reply from 128.223.156.139 with rtt 0.041112 secs

Map-cache entry for EID 128.223.156.117:
128.0.0.0/4, uptime: 09:26:40, expires: 23:59:58, via map-reply
   Negative cache entry, action: forward-native

Dino

On Jul 21, 2009, at 7:26 AM, David Meyer wrote:

>> 	Don't know. Maybe its a bug in my code (I'm sure there
>> 	are many). Anyway, we know that Dino's code generates
>> 	negative map-replies. I'll check it out.
>
> 	BTW, I just checked. FWIW:
>
> [root@m106:]48# lig 128.223.156.117 -m titanium-dmm-alt.rloc.lisp4.net
> Send map-request to titanium-dmm-alt.rloc.lisp4.net for  
> 128.223.156.117 ...
> Received map-reply from 128.223.156.35 with rtt 0.00400 sec
>
> Mapping entry for EID 128.223.156.117:
> 128.0.0.0/4, record ttl: 1440
>  Locator           State     Priority/Weight
> [root@m106:]49#
>
> 	I can do a better job of letting folks know this is a
> 	negative map-reply, but the point is what you can see
> 	above.
>
> 	Dave
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


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To: Dino Farinacci <dino@cisco.com>
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References: <20090706204112.GA11883@1-4-5.net> <20090720150926.GA17519@nic.fr> <20090720153652.GA4343@1-4-5.net> <20090721091544.GA7399@nic.fr> <20090721092639.GA10171@nic.fr> <20090721123042.GA14046@1-4-5.net> <4A65C4A1.5070100@joelhalpern.com> <20090721142201.GA16955@1-4-5.net> <20090721142646.GA17359@1-4-5.net> <45868D6E-50FC-476E-AF6B-32209E29B1C3@cisco.com>
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Subject: Re: [lisp] Linux lig source code available
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On Tue, Jul 21, 2009 at 09:02:55AM -0700, Dino Farinacci wrote:
> And here is an example from my xTR:

	Fixed. Here's what you'll see now:

	For a negative map-reply:

[dmm@wayback:~]7% lig 1.2.3.4 -m titanium-vaf-alt.rloc.lisp4.net
Send map-request to titanium-vaf-alt.rloc.lisp4.net for 1.2.3.4 ...
Received map-reply from 204.69.200.7 with rtt 0.03100 secs

Mapping entry for EID 1.2.3.4:
0.0.0.0/1, record ttl: 1440
  Negative cache entry, action: forward-native
[dmm@wayback:~]8%=20


	For a non-negative map-reply:

[dmm@wayback:~]4% lig titanium-dino.lisp4.net -m titanium-dmm-alt.rloc.lisp=
4.net=20
Send map-request to titanium-dmm-alt.rloc.lisp4.net for titanium-dino.lisp4=
=2Enet ...
Received map-reply from 173.8.188.25 with rtt 0.04000 secs

Mapping entry for EID 153.16.37.1:
153.16.37.0/24, record ttl: 60
  Locator           State     Priority/Weight
  76.246.19.176     up        1/25     =20
  173.8.188.25      up        1/25     =20
  173.8.188.26      up        1/25     =20
  173.8.188.27      up        1/25     =20
[dmm@wayback:~]5%=20

	Updated source on

	http://github.com/davidmeyer/lig/tree/master

	Dave

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From hartmans@mit.edu  Wed Jul 22 12:01:05 2009
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Subject: [lisp] Conflict with the LISP meeting
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Folks, as some of you know, I am not attending IETF 75 because it
conflicts with another conference.  I had hoped to participate
remotely in the LISP meeting Monday.  Unfortunately, it looks like I
will not be somewhere with Internet Monday so I will find that
challenging.

Darrel will of course be there and I will be monitoring the list
before and after the meeting.

From hannu.flinck@nsn.com  Fri Jul 24 04:01:24 2009
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From: "Flinck, Hannu (NSN - FI/Espoo)" <hannu.flinck@nsn.com>
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 This all looks quite complicated with

- short and long prefixes
- updating ITR caches, using TTLs of 1-2 to keep them in sync
- having separate cases when talking to mobile and non mobile
- mobile LISP nodes with access to map servers and resolvers

I was wondering if you considered just having a mobile ip homeagent
within a LISP site. If you added map server and resolver interface to
the home agent then you would have accomplished much what you want: LISP
ITR/ETRs can use mapping system based indirection and the rest stays as
it is.

Having standard home agent in the LISP site proxying the EIDs would
circumvent the problem of ETR knowing if a node is mobile or not. Home
agent would know that is the mobile registered to it with std mobile IP
messaging. Home agent would provide the first point of contact for those
ITR that do not know more specific match to RLOC. MN would advice the
corresponding node to use care of EID and all comes as part of mobile
IP(v6).=20



Best regards
Hannu


>-----Original Message-----
>From: lisp-bounces@ietf.org [mailto:lisp-bounces@ietf.org] On=20
>Behalf Of ext Dino Farinacci
>Sent: Tuesday, July 14, 2009 18:55
>To: Scott Brim
>Cc: lisp@ietf.org
>Subject: Re: [lisp] Mobile LISP
>
>> Dino Farinacci allegedly wrote on 07/03/2009 6:24 PM:
>>>> If I am reading you right, as described, a site with fixed=20
>>>> infrastructure and a lot of mobile nodes needs to send its short=20
>>>> prefix and ALL the long prefixes (that are not home)  to=20
>anyone who=20
>>>> asks about the short prefix?  That does not seem like a good trade.
>>>
>>> Well the LISP mobile node can do the Map-Request thing I=20
>mentioned as=20
>>> well. That would be better because the stationary site only=20
>needs the
>>> /32 state in it's ITRs only for the roaming LISP mobile nodes it is=20
>>> talking to.
>>>
>>> I think this is a better fix. What I am saying is that the LISP=20
>>> mobile node can set the SMR-bit in data packets returning to the=20
>>> stationary site that has cached the /16.
>>
>> That delays the final result by one step, but the result is=20
>still that=20
>> the correspondent site (maybe stationary) has entries for=20
>the /16 and=20
>> /32s for all of the mobile nodes it is talking to.
>>
>>> We just have to spec in the main LISP spec that a=20
>decapsulated packet=20
>>> with the SMR-bit set should cause a Map-Request to be sent=20
>using the=20
>>> source EID of the packet as the target.
>>
>> How do you avoid hijacking?
>
>You send a verifying Map-Request as described in the spec.
>
>>> By the way if a stationary sites or a LISP mobile node that is
>>> *starting* to talk to a roaming LISP mobile node, won't have this=20
>>> problem. Reason being is because a Map-Request will be sent for the=20
>>> /32 of the mobile node, the reply returned.
>>
>> ... which will get SMRed as the node moves, and will have a low TTL=20
>> whether the node moves or not.
>>
>> There will be many more mobile nodes than there are sites.  I'm just=20
>> trying to total up the various modes of interaction and think about=20
>> how it all scales.  It might work but I'm concerned.
>
>Well, as you know we want to design the mapping database to=20
>support 10^10 entries. At the time we stated this, that was=20
>the number of sites. So the number of LISP mobile nodes can be=20
>included in that number.
>
>Dino
>
>
>_______________________________________________
>lisp mailing list
>lisp@ietf.org
>https://www.ietf.org/mailman/listinfo/lisp
>

From jzwiebel@cisco.com  Fri Jul 24 05:39:28 2009
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On Jul 24, 2009, at 12:50 AM, Flinck, Hannu (NSN - FI/Espoo) wrote:

>
> I was wondering if you considered just having a mobile ip homeagent
> within a LISP site.

Then it would be the same a the current mobile IP.  No gain.
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<html><body style="word-wrap: break-word; -webkit-nbsp-mode: space; -webkit-line-break: after-white-space; ">
<br><div><div>On Jul 24, 2009, at 12:50 AM, Flinck, Hannu (NSN - FI/Espoo) wrote:</div><br class="Apple-interchange-newline"><blockquote type="cite"><p style="margin: 0.0px 0.0px 0.0px 0.0px; font: 10.0px Monaco; min-height: 14.0px"><br></p> <p style="margin: 0.0px 0.0px 0.0px 0.0px"><font face="Monaco" size="2" style="font: 10.0px Monaco">I was wondering if you considered just having a mobile ip homeagent</font></p> <p style="margin: 0.0px 0.0px 0.0px 0.0px"><font face="Monaco" size="2" style="font: 10.0px Monaco">within a LISP site.</font></p> </blockquote></div><br><div>Then it would be the same a the current mobile IP. &nbsp;No gain.</div></body></html>
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From hannu.flinck@nsn.com  Fri Jul 24 05:45:15 2009
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Subject: Re: [lisp] Mobile LISP
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Not exactly, the added value would be that the "mobile ip binding" =3D =
EID
RLOC mapping is in the global mapping resolution system, so when once a
new correspondent node whose ITR didn't have the cached mapping would
get the right mapping from the mapping system. The mobile IP functions
are needed only for the case when there is a cached mapping pointing /16
or what ever shorter prefix.
=20
- Hannu


________________________________

	From: ext John Zwiebel [mailto:jzwiebel@cisco.com]=20
	Sent: Friday, July 24, 2009 15:39
	To: Flinck, Hannu (NSN - FI/Espoo)
	Cc: John Zwiebel; lisp@ietf.org
	Subject: Re: [lisp] Mobile LISP
=09
=09

	On Jul 24, 2009, at 12:50 AM, Flinck, Hannu (NSN - FI/Espoo)
wrote:


	=09
	=09

		I was wondering if you considered just having a mobile
ip homeagent

		within a LISP site.


	Then it would be the same a the current mobile IP.  No gain.


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charset=3Dus-ascii">
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<BODY=20
style=3D"WORD-WRAP: break-word; webkit-nbsp-mode: space; =
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<DIV dir=3Dltr align=3Dleft><SPAN class=3D416344012-24072009><FONT =
face=3DArial=20
color=3D#0000ff size=3D2>Not exactly, the added value would be that the =
"mobile ip=20
binding" =3D EID RLOC mapping is in the global mapping resolution =
system, so when=20
once a new correspondent node whose ITR didn't have the cached mapping =
would get=20
the right mapping from the mapping system. The mobile IP functions are =
needed=20
only for the case when there is a cached mapping pointing /16 or what =
ever=20
shorter prefix.</FONT></SPAN></DIV>
<DIV dir=3Dltr align=3Dleft><SPAN class=3D416344012-24072009><FONT =
face=3DArial=20
color=3D#0000ff size=3D2></FONT></SPAN>&nbsp;</DIV>
<DIV dir=3Dltr align=3Dleft><SPAN class=3D416344012-24072009><FONT =
face=3DArial=20
color=3D#0000ff size=3D2>- Hannu</FONT></SPAN></DIV><BR>
<BLOCKQUOTE dir=3Dltr=20
style=3D"PADDING-LEFT: 5px; MARGIN-LEFT: 5px; BORDER-LEFT: #0000ff 2px =
solid; MARGIN-RIGHT: 0px">
  <DIV class=3DOutlookMessageHeader lang=3Den-us dir=3Dltr align=3Dleft>
  <HR tabIndex=3D-1>
  <FONT face=3DTahoma size=3D2><B>From:</B> ext John Zwiebel=20
  [mailto:jzwiebel@cisco.com] <BR><B>Sent:</B> Friday, July 24, 2009=20
  15:39<BR><B>To:</B> Flinck, Hannu (NSN - FI/Espoo)<BR><B>Cc:</B> John =
Zwiebel;=20
  lisp@ietf.org<BR><B>Subject:</B> Re: [lisp] Mobile =
LISP<BR></FONT><BR></DIV>
  <DIV></DIV><BR>
  <DIV>
  <DIV>On Jul 24, 2009, at 12:50 AM, Flinck, Hannu (NSN - FI/Espoo)=20
  wrote:</DIV><BR class=3DApple-interchange-newline>
  <BLOCKQUOTE type=3D"cite">
    <P style=3D"MIN-HEIGHT: 14px; MARGIN: 0px; FONT: 10px =
Monaco"><BR></P>
    <P style=3D"MARGIN: 0px"><FONT style=3D"FONT: 10px Monaco" =
face=3DMonaco size=3D2>I=20
    was wondering if you considered just having a mobile ip =
homeagent</FONT></P>
    <P style=3D"MARGIN: 0px"><FONT style=3D"FONT: 10px Monaco" =
face=3DMonaco=20
    size=3D2>within a LISP site.</FONT></P></BLOCKQUOTE></DIV><BR>
  <DIV>Then it would be the same a the current mobile IP. &nbsp;No=20
gain.</DIV></BLOCKQUOTE></BODY></HTML>

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Subject: Re: [lisp] Mobile LISP
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> This all looks quite complicated with
>
> - short and long prefixes

There are the prefixes of the home area where the EIDs reside for  
stationary hosts. And there are more specifics that roam. The more  
specifics are only in the map-server that serves the short EID-prefix  
and the ITRs which talk to the LISP mobile node.

> - updating ITR caches, using TTLs of 1-2 to keep them in sync

You can use "verifying Map-Requests". Which means when a LISP mobile  
node moves, it can send a Map-Request to one of the locators for each  
of its map-cache entries. The receiver of such a Map-Request can see  
that the mapping data for the LISP mobile node has changed. It can (1)  
cache the new information without verifying (not recommended) or (2)  
send a verifying Map-Request back to the mobile node so it can return  
a Map-Reply with the nonce used in the verifying Map-Request.

So, you can use short TTLs or the approach above.

> - having separate cases when talking to mobile and non mobile

The separate cases are based on if the non-mobile node is at a LISP  
capable site or not. The reason for more mechanism is to interwork a  
non-LISP site with a mobile node. A mobile node which looks like a  
single LISP site (where the LISP host, ITR, and ETR are all in the  
same device).

That mechanism has to be there when a stationary non-LISP site wants  
to talk to another stationary LISP site. So we just use that for the  
mobile node case.

> - mobile LISP nodes with access to map servers and resolvers

Today you need a DNS resolver in your mobile node. This is just one  
more piece of information that can be easily put into DHCP. But we  
think its a home-base installation parameter as is the EID for the  
mobile-node. Because the map-server and the EID do not change while  
the mobile node roams.

> I was wondering if you considered just having a mobile ip homeagent
> within a LISP site. If you added map server and resolver interface to
> the home agent then you would have accomplished much what you want:  
> LISP
> ITR/ETRs can use mapping system based indirection and the rest stays  
> as
> it is.

The map-server is like a home-agent, but ONLY for the control-plane.  
We don't want to make this like MIP. We want to do better and add more  
features given we have a LISP infrastructure deployed.

We can get shortest paths between any two LISP nodes while both roam.  
And allow those nodes to roam at the same time, either being a client  
or server of each other, while keeping TCP connections alive.

These LISP mobile nodes can use more than one radio at a time because  
they can be multi-homed and decide ingress policy like any other LISP  
site.

> Having standard home agent in the LISP site proxying the EIDs would
> circumvent the problem of ETR knowing if a node is mobile or not. Home
> agent would know that is the mobile registered to it with std mobile  
> IP
> messaging. Home agent would provide the first point of contact for  
> those

That is exactly what the map-server does when the mobile node  
registers to it.

> ITR that do not know more specific match to RLOC. MN would advice the
> corresponding node to use care of EID and all comes as part of mobile
> IP(v6).

There is some confusion. There is no more specific matching of RLOCs  
in the ITR. The underlying routing does not change due to this  
movement. The RLOCs are resident in the topology the mobile node moves  
to.

THERE IS NO WITHDRAWAL OR INJECTION OF BGP ROUTES into the underlying  
core. The BGP routing system is in steady state.

All that changes is the binding of EID to RLOC. And since the mobile  
node is the only one (i.e. the first one) to know if this change, it  
registers to the map-server so new Map-Requests can find the new  
location of the MN and existing cachers will be informed by verifying  
Map-Requests or short TTLs.

The reason we spec short TTLs is because it might make sense when  
doing mobile-node to mobile-node communication to have the MN itself  
clear it's own (smaller) cache. Where we might not want this for an  
ITR that is forwarding  packets for stationary hosts at a LISP site.

 From a scalability perspective, we are protecting the core from more  
specific routes while allowing shortest paths between any two LISP  
hosts, be it stationary or mobile. The more specific routes are in the  
mapping database AND ARE NOT PROPAGATED THROUGHOUT THE MAPPING  
DATABASE infrastructure.

The LISP mapping database is fully distributed so the more specific  
EIDs are only stored where they need to based on usage.

Dino

>
>
>
> Best regards
> Hannu
>
>
>> -----Original Message-----
>> From: lisp-bounces@ietf.org [mailto:lisp-bounces@ietf.org] On
>> Behalf Of ext Dino Farinacci
>> Sent: Tuesday, July 14, 2009 18:55
>> To: Scott Brim
>> Cc: lisp@ietf.org
>> Subject: Re: [lisp] Mobile LISP
>>
>>> Dino Farinacci allegedly wrote on 07/03/2009 6:24 PM:
>>>>> If I am reading you right, as described, a site with fixed
>>>>> infrastructure and a lot of mobile nodes needs to send its short
>>>>> prefix and ALL the long prefixes (that are not home)  to
>> anyone who
>>>>> asks about the short prefix?  That does not seem like a good  
>>>>> trade.
>>>>
>>>> Well the LISP mobile node can do the Map-Request thing I
>> mentioned as
>>>> well. That would be better because the stationary site only
>> needs the
>>>> /32 state in it's ITRs only for the roaming LISP mobile nodes it is
>>>> talking to.
>>>>
>>>> I think this is a better fix. What I am saying is that the LISP
>>>> mobile node can set the SMR-bit in data packets returning to the
>>>> stationary site that has cached the /16.
>>>
>>> That delays the final result by one step, but the result is
>> still that
>>> the correspondent site (maybe stationary) has entries for
>> the /16 and
>>> /32s for all of the mobile nodes it is talking to.
>>>
>>>> We just have to spec in the main LISP spec that a
>> decapsulated packet
>>>> with the SMR-bit set should cause a Map-Request to be sent
>> using the
>>>> source EID of the packet as the target.
>>>
>>> How do you avoid hijacking?
>>
>> You send a verifying Map-Request as described in the spec.
>>
>>>> By the way if a stationary sites or a LISP mobile node that is
>>>> *starting* to talk to a roaming LISP mobile node, won't have this
>>>> problem. Reason being is because a Map-Request will be sent for the
>>>> /32 of the mobile node, the reply returned.
>>>
>>> ... which will get SMRed as the node moves, and will have a low TTL
>>> whether the node moves or not.
>>>
>>> There will be many more mobile nodes than there are sites.  I'm just
>>> trying to total up the various modes of interaction and think about
>>> how it all scales.  It might work but I'm concerned.
>>
>> Well, as you know we want to design the mapping database to
>> support 10^10 entries. At the time we stated this, that was
>> the number of sites. So the number of LISP mobile nodes can be
>> included in that number.
>>
>> Dino
>>
>>
>> _______________________________________________
>> lisp mailing list
>> lisp@ietf.org
>> https://www.ietf.org/mailman/listinfo/lisp
>>
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


From darlewis@cisco.com  Sat Jul 25 11:14:34 2009
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All,

If anyone would like to volenteer for the WG meeting, pls reply to
myself and Terry.  Thanks in advance!

-Darrel

From mrw@lilacglade.org  Sun Jul 26 14:05:08 2009
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Subject: [lisp] LISP Mobility Architecture
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I was surprised to see this document on the LISP agenda for Stockholm,  
because I don't think it is in-charter for the LISP WG.

That said, I have a few technical comments on the document...

I like the idea of viewing broadband subscribers whose addresses  
change frequently as a subset of mobile nodes.  This is a particularly  
interesting case, because when they "roam" there is no "home network"  
that can be reached using their former address, so some existing  
mobility mechanisms wouldn't work in this case.  I am not sure,  
though, how this definition is consistent with later portions of the  
document that define a LISP Mobile Node as a "LISP capable fast  
roaming mobile hand-set".

I am also uncertain that the architecture described is consistent with  
the goals stated in the document.  For instance, one goal is that the  
LISP-MN must not require additional state in the mapping system.   
However, mobility is achieved by making a single mobile node look like  
a LISP site.  Could you explain how this architecture avoids  
additional state in the mapping system when it would (as I understand  
it) support mobile handsets and broadband home networks by making all  
of them into separate LISP sites?

Margaret




From dino@cisco.com  Sun Jul 26 15:43:07 2009
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> I was surprised to see this document on the LISP agenda for  
> Stockholm, because I don't think it is in-charter for the LISP WG.

Well if we are going to have a mobile Internet, and a mobile device is  
an IP host, and if moving around means some sort of an address is  
going to change, we need to scale the routing system to accommodate  
that.

Wouldn't you agree?

> That said, I have a few technical comments on the document...
>
> I like the idea of viewing broadband subscribers whose addresses  
> change frequently as a subset of mobile nodes.  This is a  
> particularly interesting case, because when they "roam" there is no  
> "home network" that can be reached using their former address, so  
> some existing mobility mechanisms wouldn't work in this case.  I am  
> not sure, though, how this definition is consistent with later  
> portions of the document that define a LISP Mobile Node as a "LISP  
> capable fast roaming mobile hand-set".

The hosts behind the broadband link have a home network. It is the  
physical location they reside. And the addresses, their EID addresses  
are how they are reached. If you map the EID to the locator that can  
reach them, and the locators changes, you want to register the new  
mapping into the mapping database system.

The edge home router is the device that runs LISP. What overlaps in  
this device with the LISP-MN architecture is that when a new DHCP'able  
locator address is learned by this device, it is this device that  
registers the new binding.

Today with a LISP capable site the bindings are configured, so if you  
do a ISP change, at subscription time, so to speak, the ETRs are  
reconfigured to register the new bindings.

In the broadband case, the change happens when DHCP address is learned  
and hence when the register happenings.

> I am also uncertain that the architecture described is consistent  
> with the goals stated in the document.  For instance, one goal is  
> that the LISP-MN must not require additional state in the mapping  
> system.

Well we don't say that explicitly. But when we do state "no additional  
state in the mapping system" we really mean "no additional state  
throughout the entire mapping system".

The map-servers keep the state the mobile nodes register to.

> However, mobility is achieved by making a single mobile node look  
> like a LISP site.  Could you explain how this architecture avoids  
> additional state in the mapping system when it would (as I  
> understand it) support mobile handsets and broadband home networks  
> by making all of them into separate LISP sites?

Dave will explain this tomorrow in his planned presentation, but the  
short answer is mobile nodes register their bindings to their  
respective map-servers. The Map-Servers, when ALT is used as the  
mechanism to learn mappings, only advertises an aggregate route into  
the ALT. So no ALT routers have to store /32 state (/128 state for  
IPv6). No other Map-Servers have to store /32 state. No Map-Resolvers  
have to store /32 state. And only the ITRs that are talking to the  
mobile node, will store the /32 state. They must because they need to  
informed of the new locator(s) when the mobile node moves.

Dino

>
> Margaret
>
>
>
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


From hannu.flinck@nsn.com  Mon Jul 27 00:24:17 2009
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Subject: Re: [lisp] LISP Mobility Architecture
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Dino wrote:

"Well if we are going to have a mobile Internet, and a mobile device is
an IP host, and if moving around means some sort of an address is going
to change, we need to scale the routing system to accommodate that.

Wouldn't you agree?"

None of the current mobility solutions for mobile nodes require routing
system redesign. Indirection is implemented as an overlay on top of the
routing system. There are several reasons for this but time scale of the
events of routing and mobility do not match too well.

- Hannu

>-----Original Message-----
>From: lisp-bounces@ietf.org [mailto:lisp-bounces@ietf.org] On=20
>Behalf Of ext Dino Farinacci
>Sent: Monday, July 27, 2009 01:43
>To: Margaret Wasserman
>Cc: lisp@ietf.org
>Subject: Re: [lisp] LISP Mobility Architecture
>
>> I was surprised to see this document on the LISP agenda for=20
>Stockholm,=20
>> because I don't think it is in-charter for the LISP WG.
>
>Well if we are going to have a mobile Internet, and a mobile=20
>device is an IP host, and if moving around means some sort of=20
>an address is going to change, we need to scale the routing=20
>system to accommodate that.
>
>Wouldn't you agree?
>
>> That said, I have a few technical comments on the document...
>>
>> I like the idea of viewing broadband subscribers whose addresses=20
>> change frequently as a subset of mobile nodes.  This is a=20
>particularly=20
>> interesting case, because when they "roam" there is no "home=20
>network"=20
>> that can be reached using their former address, so some existing=20
>> mobility mechanisms wouldn't work in this case.  I am not sure,=20
>> though, how this definition is consistent with later portions of the=20
>> document that define a LISP Mobile Node as a "LISP capable fast=20
>> roaming mobile hand-set".
>
>The hosts behind the broadband link have a home network. It is=20
>the physical location they reside. And the addresses, their=20
>EID addresses are how they are reached. If you map the EID to=20
>the locator that can reach them, and the locators changes, you=20
>want to register the new mapping into the mapping database system.
>
>The edge home router is the device that runs LISP. What=20
>overlaps in this device with the LISP-MN architecture is that=20
>when a new DHCP'able locator address is learned by this=20
>device, it is this device that registers the new binding.
>
>Today with a LISP capable site the bindings are configured, so=20
>if you do a ISP change, at subscription time, so to speak, the=20
>ETRs are reconfigured to register the new bindings.
>
>In the broadband case, the change happens when DHCP address is=20
>learned and hence when the register happenings.
>
>> I am also uncertain that the architecture described is=20
>consistent with=20
>> the goals stated in the document.  For instance, one goal is=20
>that the=20
>> LISP-MN must not require additional state in the mapping system.
>
>Well we don't say that explicitly. But when we do state "no=20
>additional state in the mapping system" we really mean "no=20
>additional state throughout the entire mapping system".
>
>The map-servers keep the state the mobile nodes register to.
>
>> However, mobility is achieved by making a single mobile node=20
>look like=20
>> a LISP site.  Could you explain how this architecture avoids=20
>> additional state in the mapping system when it would (as I=20
>understand=20
>> it) support mobile handsets and broadband home networks by=20
>making all=20
>> of them into separate LISP sites?
>
>Dave will explain this tomorrow in his planned presentation,=20
>but the short answer is mobile nodes register their bindings=20
>to their respective map-servers. The Map-Servers, when ALT is=20
>used as the mechanism to learn mappings, only advertises an=20
>aggregate route into the ALT. So no ALT routers have to store=20
>/32 state (/128 state for IPv6). No other Map-Servers have to=20
>store /32 state. No Map-Resolvers have to store /32 state. And=20
>only the ITRs that are talking to the mobile node, will store=20
>the /32 state. They must because they need to informed of the=20
>new locator(s) when the mobile node moves.
>
>Dino
>
>>
>> Margaret
>>
>>
>>
>> _______________________________________________
>> lisp mailing list
>> lisp@ietf.org
>> https://www.ietf.org/mailman/listinfo/lisp
>
>_______________________________________________
>lisp mailing list
>lisp@ietf.org
>https://www.ietf.org/mailman/listinfo/lisp
>

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From: Dino Farinacci <dino@cisco.com>
To: "Flinck, Hannu (NSN - FI/Espoo)" <hannu.flinck@nsn.com>
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Cc: lisp@ietf.org
Subject: Re: [lisp] LISP Mobility Architecture
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> Dino wrote:
>
> "Well if we are going to have a mobile Internet, and a mobile device  
> is
> an IP host, and if moving around means some sort of an address is  
> going
> to change, we need to scale the routing system to accommodate that.
>
> Wouldn't you agree?"
>
> None of the current mobility solutions for mobile nodes require  
> routing
> system redesign. Indirection is implemented as an overlay on top of  
> the
> routing system. There are several reasons for this but time scale of  
> the
> events of routing and mobility do not match too well.

It's because they use tunneling. If we have a LISP infrastructure in  
place and it is an overlay, you use it. But the LISP tunneling/ 
encapsulation is done without triangle paths from CN to MN.

Dino

>
> - Hannu
>
>> -----Original Message-----
>> From: lisp-bounces@ietf.org [mailto:lisp-bounces@ietf.org] On
>> Behalf Of ext Dino Farinacci
>> Sent: Monday, July 27, 2009 01:43
>> To: Margaret Wasserman
>> Cc: lisp@ietf.org
>> Subject: Re: [lisp] LISP Mobility Architecture
>>
>>> I was surprised to see this document on the LISP agenda for
>> Stockholm,
>>> because I don't think it is in-charter for the LISP WG.
>>
>> Well if we are going to have a mobile Internet, and a mobile
>> device is an IP host, and if moving around means some sort of
>> an address is going to change, we need to scale the routing
>> system to accommodate that.
>>
>> Wouldn't you agree?
>>
>>> That said, I have a few technical comments on the document...
>>>
>>> I like the idea of viewing broadband subscribers whose addresses
>>> change frequently as a subset of mobile nodes.  This is a
>> particularly
>>> interesting case, because when they "roam" there is no "home
>> network"
>>> that can be reached using their former address, so some existing
>>> mobility mechanisms wouldn't work in this case.  I am not sure,
>>> though, how this definition is consistent with later portions of the
>>> document that define a LISP Mobile Node as a "LISP capable fast
>>> roaming mobile hand-set".
>>
>> The hosts behind the broadband link have a home network. It is
>> the physical location they reside. And the addresses, their
>> EID addresses are how they are reached. If you map the EID to
>> the locator that can reach them, and the locators changes, you
>> want to register the new mapping into the mapping database system.
>>
>> The edge home router is the device that runs LISP. What
>> overlaps in this device with the LISP-MN architecture is that
>> when a new DHCP'able locator address is learned by this
>> device, it is this device that registers the new binding.
>>
>> Today with a LISP capable site the bindings are configured, so
>> if you do a ISP change, at subscription time, so to speak, the
>> ETRs are reconfigured to register the new bindings.
>>
>> In the broadband case, the change happens when DHCP address is
>> learned and hence when the register happenings.
>>
>>> I am also uncertain that the architecture described is
>> consistent with
>>> the goals stated in the document.  For instance, one goal is
>> that the
>>> LISP-MN must not require additional state in the mapping system.
>>
>> Well we don't say that explicitly. But when we do state "no
>> additional state in the mapping system" we really mean "no
>> additional state throughout the entire mapping system".
>>
>> The map-servers keep the state the mobile nodes register to.
>>
>>> However, mobility is achieved by making a single mobile node
>> look like
>>> a LISP site.  Could you explain how this architecture avoids
>>> additional state in the mapping system when it would (as I
>> understand
>>> it) support mobile handsets and broadband home networks by
>> making all
>>> of them into separate LISP sites?
>>
>> Dave will explain this tomorrow in his planned presentation,
>> but the short answer is mobile nodes register their bindings
>> to their respective map-servers. The Map-Servers, when ALT is
>> used as the mechanism to learn mappings, only advertises an
>> aggregate route into the ALT. So no ALT routers have to store
>> /32 state (/128 state for IPv6). No other Map-Servers have to
>> store /32 state. No Map-Resolvers have to store /32 state. And
>> only the ITRs that are talking to the mobile node, will store
>> the /32 state. They must because they need to informed of the
>> new locator(s) when the mobile node moves.
>>
>> Dino
>>
>>>
>>> Margaret
>>>
>>>
>>>
>>> _______________________________________________
>>> lisp mailing list
>>> lisp@ietf.org
>>> https://www.ietf.org/mailman/listinfo/lisp
>>
>> _______________________________________________
>> lisp mailing list
>> lisp@ietf.org
>> https://www.ietf.org/mailman/listinfo/lisp
>>
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


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--NextPart

A New Internet-Draft is available from the on-line Internet-Drafts directories.
This draft is a work item of the Locator/ID Separation Protocol Working Group of the IETF.


	Title           : Locator/ID Separation Protocol (LISP)
	Author(s)       : D. Farinacci, et al.
	Filename        : draft-ietf-lisp-03.txt
	Pages           : 64
	Date            : 2009-07-27

This draft describes a simple, incremental, network-based protocol to
implement separation of Internet addresses into Endpoint Identifiers
(EIDs) and Routing Locators (RLOCs).  This mechanism requires no
changes to host stacks and no major changes to existing database
infrastructures.  The proposed protocol can be implemented in a
relatively small number of routers.

This proposal was stimulated by the problem statement effort at the
Amsterdam IAB Routing and Addressing Workshop (RAWS), which took
place in October 2006.

A URL for this Internet-Draft is:
http://www.ietf.org/internet-drafts/draft-ietf-lisp-03.txt

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Subject: [lisp] Fwd:  I-D Action:draft-ietf-lisp-03.txt
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FYI.

Dino

Begin forwarded message:

> From: Internet-Drafts@ietf.org
> Date: July 27, 2009 3:45:01 AM PDT
> To: i-d-announce@ietf.org
> Cc: lisp@ietf.org
> Subject: [lisp] I-D Action:draft-ietf-lisp-03.txt
>
> A New Internet-Draft is available from the on-line Internet-Drafts  
> directories.
> This draft is a work item of the Locator/ID Separation Protocol  
> Working Group of the IETF.
>
>
> 	Title           : Locator/ID Separation Protocol (LISP)
> 	Author(s)       : D. Farinacci, et al.
> 	Filename        : draft-ietf-lisp-03.txt
> 	Pages           : 64
> 	Date            : 2009-07-27
>
> This draft describes a simple, incremental, network-based protocol to
> implement separation of Internet addresses into Endpoint Identifiers
> (EIDs) and Routing Locators (RLOCs).  This mechanism requires no
> changes to host stacks and no major changes to existing database
> infrastructures.  The proposed protocol can be implemented in a
> relatively small number of routers.
>
> This proposal was stimulated by the problem statement effort at the
> Amsterdam IAB Routing and Addressing Workshop (RAWS), which took
> place in October 2006.
>
> A URL for this Internet-Draft is:
> http://www.ietf.org/internet-drafts/draft-ietf-lisp-03.txt
>
> Internet-Drafts are also available by anonymous FTP at:
> ftp://ftp.ietf.org/internet-drafts/
>
> Below is the data which will enable a MIME compliant mail reader
> implementation to automatically retrieve the ASCII version of the
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From mrw@lilacglade.org  Mon Jul 27 04:36:32 2009
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From: Margaret Wasserman <mrw@lilacglade.org>
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Subject: Re: [lisp] LISP Mobility Architecture
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HI Dino,

On Jul 26, 2009, at 6:42 PM, Dino Farinacci wrote:

>> I was surprised to see this document on the LISP agenda for  
>> Stockholm, because I don't think it is in-charter for the LISP WG.
>
> Well if we are going to have a mobile Internet, and a mobile device  
> is an IP host, and if moving around means some sort of an address is  
> going to change, we need to scale the routing system to accommodate  
> that.
>
> Wouldn't you agree?

Sorry for the late reply, I was in transit.

There are a lot of things we will need in a future LISP-based Internet  
that are not in charter for the LISP WG (security, management, etc.).   
The LISP charter very clearly restricts the work of the LISP WG to 5  
items, and mobility isn't one of them.

>> That said, I have a few technical comments on the document...
>>
>> I like the idea of viewing broadband subscribers whose addresses  
>> change frequently as a subset of mobile nodes.  This is a  
>> particularly interesting case, because when they "roam" there is no  
>> "home network" that can be reached using their former address, so  
>> some existing mobility mechanisms wouldn't work in this case.  I am  
>> not sure, though, how this definition is consistent with later  
>> portions of the document that define a LISP Mobile Node as a "LISP  
>> capable fast roaming mobile hand-set".
>
> The hosts behind the broadband link have a home network. It is the  
> physical location they reside. And the addresses, their EID  
> addresses are how they are reached. If you map the EID to the  
> locator that can reach them, and the locators changes, you want to  
> register the new mapping into the mapping database system.
>
> The edge home router is the device that runs LISP. What overlaps in  
> this device with the LISP-MN architecture is that when a new  
> DHCP'able locator address is learned by this device, it is this  
> device that registers the new binding.

In this scenario, you are expecting LISP  to run on the edge of my  
home or enterprise network, but I hadn't been thinking of it that  
way...  It was my understanding that the scalability of LISP would  
come from the ability to aggregate RLOCs for several sites behind a  
single LISP router (in other words, my ISP would have a LISP router  
within their network, aggregating RLOCs for a larger (logical or  
geographic) area.

> Today with a LISP capable site the bindings are configured, so if  
> you do a ISP change, at subscription time, so to speak, the ETRs are  
> reconfigured to register the new bindings.
>
> In the broadband case, the change happens when DHCP address is  
> learned and hence when the register happenings.

I am not sure what these statements mean...  If I move my node to  
another site, its DHCP request will not go to/through anything in my  
home network.  So, how does that lead to reconfiguration of the ETR in  
my home router?
>>
>> I am also uncertain that the architecture described is consistent  
>> with the goals stated in the document.  For instance, one goal is  
>> that the LISP-MN must not require additional state in the mapping  
>> system.
>
> Well we don't say that explicitly. But when we do state "no  
> additional state in the mapping system" we really mean "no  
> additional state throughout the entire mapping system".
>
> The map-servers keep the state the mobile nodes register to.

Are you also expecting that I will have my own map server within, or  
at the edge of, my home network?  Or would my mobility state be  
maintained in my ISP's map server?  If the former, I agree that the  
extra state is all maintained in a system that is controlled (and paid  
for) by the entity that wants the mobility.  This works nicely.  If it  
is going to be in my ISP's map server, though, that added state and  
complexity might be a reason to prefer mobility mechanisms I could  
control myself.
>
> Dave will explain this tomorrow in his planned presentation, but the  
> short answer is mobile nodes register their bindings to their  
> respective map-servers. The Map-Servers, when ALT is used as the  
> mechanism to learn mappings, only advertises an aggregate route into  
> the ALT. So no ALT routers have to store /32 state (/128 state for  
> IPv6). No other Map-Servers have to store /32 state. No Map- 
> Resolvers have to store /32 state. And only the ITRs that are  
> talking to the mobile node, will store the /32 state. They must  
> because they need to informed of the new locator(s) when the mobile  
> node moves.

I agree that this part of things will scale nicely.

Margaret



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Subject: Re: [lisp] LISP Mobility Architecture
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Hi Margaret,

On 7/27/09 1:36 PM, Margaret Wasserman wrote:
> In this scenario, you are expecting LISP  to run on the edge of my 
> home or enterprise network, but I hadn't been thinking of it that 
> way...  It was my understanding that the scalability of LISP would 
> come from the ability to aggregate RLOCs for several sites behind a 
> single LISP router (in other words, my ISP would have a LISP router 
> within their network, aggregating RLOCs for a larger (logical or 
> geographic) area.

When do RLOCs sit behind a LISP router?  Most often one would expect EIDs.

Eliot


From jari.arkko@piuha.net  Mon Jul 27 05:07:27 2009
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Subject: Re: [lisp] LISP Mobility Architecture
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Margaret Wasserman wrote:
> I was surprised to see this document on the LISP agenda for Stockholm, 
> because I don't think it is in-charter for the LISP WG.

The charter focuses on basics, because we really need to figure out 
encapsulation format, failure detection, and the mapping system.

There is a ton of other interesting things that one could look at, 
including mobility. I don't mind the WG discussing some of these 
additional topics as well, but only if there's time left from the 
basics. The overall goal is not to add all possible features to Lisp, 
but to get a stable base specification that we can evaluate -- how well 
it works, does it cause problems, etc. Lets not get distracted from this 
central goal.

Jari
>
> That said, I have a few technical comments on the document...
>
> I like the idea of viewing broadband subscribers whose addresses 
> change frequently as a subset of mobile nodes.  This is a particularly 
> interesting case, because when they "roam" there is no "home network" 
> that can be reached using their former address, so some existing 
> mobility mechanisms wouldn't work in this case.  I am not sure, 
> though, how this definition is consistent with later portions of the 
> document that define a LISP Mobile Node as a "LISP capable fast 
> roaming mobile hand-set".
>
> I am also uncertain that the architecture described is consistent with 
> the goals stated in the document.  For instance, one goal is that the 
> LISP-MN must not require additional state in the mapping system.  
> However, mobility is achieved by making a single mobile node look like 
> a LISP site.  Could you explain how this architecture avoids 
> additional state in the mapping system when it would (as I understand 
> it) support mobile handsets and broadband home networks by making all 
> of them into separate LISP sites?
>
> Margaret
>
>
>
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp
>
>


From hannu.flinck@nsn.com  Mon Jul 27 05:41:56 2009
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From: "Flinck, Hannu (NSN - FI/Espoo)" <hannu.flinck@nsn.com>
To: "ext Eliot Lear" <lear@cisco.com>, "Margaret Wasserman" <mrw@lilacglade.org>
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Subject: Re: [lisp] LISP Mobility Architecture
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Isn't this one of the mobility cases? Lisp mobile node with a routable
address?

- Hannu=20

>-----Original Message-----
>From: lisp-bounces@ietf.org [mailto:lisp-bounces@ietf.org] On=20
>Behalf Of ext Eliot Lear
>Sent: Monday, July 27, 2009 14:45
>To: Margaret Wasserman
>Cc: lisp@ietf.org
>Subject: Re: [lisp] LISP Mobility Architecture
>
>Hi Margaret,
>
>On 7/27/09 1:36 PM, Margaret Wasserman wrote:
>> In this scenario, you are expecting LISP  to run on the edge of my=20
>> home or enterprise network, but I hadn't been thinking of it that=20
>> way...  It was my understanding that the scalability of LISP would=20
>> come from the ability to aggregate RLOCs for several sites behind a=20
>> single LISP router (in other words, my ISP would have a LISP router=20
>> within their network, aggregating RLOCs for a larger (logical or
>> geographic) area.
>
>When do RLOCs sit behind a LISP router?  Most often one would=20
>expect EIDs.
>
>Eliot
>
>_______________________________________________
>lisp mailing list
>lisp@ietf.org
>https://www.ietf.org/mailman/listinfo/lisp
>

From jnc@mercury.lcs.mit.edu  Mon Jul 27 06:01:41 2009
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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
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Subject: Re: [lisp] LISP Mobility Architecture
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    > From: Margaret Wasserman <mrw@lilacglade.org>

    > It was my understanding that the scalability of LISP would come from
    > the ability to aggregate RLOCs for several sites behind a single LISP
    > router (in other words, my ISP would have a LISP router within their
    > network, aggregating RLOCs for a larger (logical or geographic) area.

The scalability of LISP fundamentally derives from the addition of a new
namespace (or, to be a tad more precise, splitting an existing namespace -
addresses - into two separate ones: routing locators, and endpoint
identifiers); and there is a layer of binding (i.e. associations of names
from one namespace to names in the other) between the two namespaces.

With that in hand (and sorry if this next is obvious/repetitive), the names
used by the routing layer can be assigned in a way that maximizes their
aggregability - and that goal doesn't have to be compromised by other goals
that people have when there's only a single namespace (e.g. persistence of
identifiers), and those names are also being used for other things. That,
fundamentally, is how the routing scalability works (or is supposed to :-).

I see the host mobility as an instance of something different from the
routing aggregability: the general principle of 'hey, we have this new
binding layer there, what _else_ can we do with it'.

It's common that when you provide a new, powerful tool (and a binding layer
is an example), it has many uses, and a great part of the charm of LISP, for
me when I first saw it, was the realization that it had that general-purpose
nature.


To answer your question in detail, the the scalability of LISP comes not from
"the ability to aggregate RLOCs for several sites behind a single LISP
router", but rather to 'aggregate' _EIDs_ for several sites behind a single
LISP router.

I say 'aggregate' because it's not aggregation in the usual sense (having a
group of addresses that one can collapse into one routing entry), but the
_effect_ is the same - where before, one would have needed multiple routes to
cover all those destinations (to the EIDs themselves, one now needs only one
- a route to the RLOC of the LISP router.


    > If I move my node to another site, its DHCP request will not go
    > to/through anything in my home network. So, how does that lead to
    > reconfiguration of the ETR in my home router?

I'm a bit hazy on the details, but basically the mobile node has to register
its new location (i.e. the RLOC where it currently is) with the mapping
system. That way, entities which want to talk to it ask 'what's the RLOC to
use to get to this EID', and are given the RLOC of its current location.

That process might include notifying a home ETR, but it doesn't fundamentally
_have_ to - it's easy to imagine systems where the home ETR has no idea the
mobile node has 'gone walkabout'. it all depends on how the mapping system is
set up (and the current ALT mapping system is intended to be replacable with
something better). I think at the moment the ETR has to be notified, because
of the way ALT works, but like I said it's not fundamental (in the sense that
'it can't possibly work without this information getting to that node').


    > Are you also expecting that I will have my own map server within, or at
    > the edge of, my home network?

In general, no. Although you do have to have a LISP router somewhere, and the
closer to the current location of the mobile node (topologically) the better,
otherwise you'll get 'stretch' in the path.

The map server could be anywhere in the Internet - the traffic doesn't go
through it, it's only used to find the EID->RLOC binding - just like your DNS
server could be anywhere in the Internet.

    > Or would my mobility state be maintained in my ISP's map server?

Some Map Server (or group of them) is going to be authoritative for the EID
range your mobile node has an EID out of - i.e. it is the one(s) anyone has
to go to to find the current EID->RLOC binding. That Map Server has to be
updated.

    > If the former, I agree that the extra state is all maintained in a
    > system that is controlled (and paid for) by the entity that wants the
    > mobility.

Well, the location of that binding (i.e. the place you have to go to to find
out the current value of "EID->RLOC") doesn't change over time. If it's in
Map Server X when you're at your 'base' location, it will still be in Map
Server X when you're mobile. The only thing that happens is that as you move
around, that binding has to be updated. Whether one considers that a
significant cost for the provider of the Map Server is the question. As long
as it's not manual updating, I guess I don't see that it can induce a
significant _extra_ cost, over the costs of providing the Map Server to begin
with. (And you have to have a Map Server to run LISP at all.)

    > If it is going to be in my ISP's map server, though, that added state
    > and complexity might be a reason to prefer mobility mechanisms I could
    > control myself.

I guess I don't understand this? Perhaps the foregoing will have answered
the question?

	Noel

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On Mon, Jul 27, 2009 at 03:41:48PM +0300, Flinck, Hannu (NSN - FI/Espoo) wr=
ote:
> Isn't this one of the mobility cases? Lisp mobile node with a routable
> address?

	I'm not sure what you mean by "routable address". A
	LISP MN will have a relatively static EID and 1 or more
	RLOCs. =20

	Dave

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=20
Hi Margaret,

One quick comment about a subject that has come up many times.  I want
to highlight it because this subject has come up before and I think its
important to be explicit.

You wrote:
>=20
> In this scenario, you are expecting LISP  to run on the edge of my =20
> home or enterprise network, but I hadn't been thinking of it that =20
> way...  It was my understanding that the scalability of LISP would =20
> come from the ability to aggregate RLOCs for several sites behind a =20
> single LISP router (in other words, my ISP would have a LISP router =20
> within their network, aggregating RLOCs for a larger (logical or =20
> geographic) area.
>=20

We've attempted (it seems less than successfully) to state that the
anticipated typical deployment of LISP Ingress/Egress Tunnel Routers
(xTRs) are on a Customer Edge (CE) type device.  In this case LISP does
not require the participation of your ISP.  So your ISP _would not_ have
a LISP router within their network.

These RLOCs can be aggregated in the DFZ because a given (CE-->PE) link
is numbered out of the PE provider's (provider assigned) prefix (just as
they are today - lisp doesn't change this).

Hope this helps clear up some of the (apparent) confusion.

Thanks,

-Darrel

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Subject: Re: [lisp] LISP Mobility Architecture
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> HI Dino,
>
> On Jul 26, 2009, at 6:42 PM, Dino Farinacci wrote:
>
>>> I was surprised to see this document on the LISP agenda for  
>>> Stockholm, because I don't think it is in-charter for the LISP WG.
>>
>> Well if we are going to have a mobile Internet, and a mobile device  
>> is an IP host, and if moving around means some sort of an address  
>> is going to change, we need to scale the routing system to  
>> accommodate that.
>>
>> Wouldn't you agree?
>
> Sorry for the late reply, I was in transit.
>
> There are a lot of things we will need in a future LISP-based  
> Internet that are not in charter for the LISP WG (security,  
> management, etc.).  The LISP charter very clearly restricts the work  
> of the LISP WG to 5 items, and mobility isn't one of them.

Sure, I can go along with that.

I do agree with Jari's point. We have to be careful about feature- 
creep in LISP. But from customers we have talked to, deploying LISP  
*just to solve the route scalability problem* may not be compelling  
enough.

So we have to balance this view. But we can't have the cart come  
before the horse.

>>> That said, I have a few technical comments on the document...
>>>
>>> I like the idea of viewing broadband subscribers whose addresses  
>>> change frequently as a subset of mobile nodes.  This is a  
>>> particularly interesting case, because when they "roam" there is  
>>> no "home network" that can be reached using their former address,  
>>> so some existing mobility mechanisms wouldn't work in this case.   
>>> I am not sure, though, how this definition is consistent with  
>>> later portions of the document that define a LISP Mobile Node as a  
>>> "LISP capable fast roaming mobile hand-set".
>>
>> The hosts behind the broadband link have a home network. It is the  
>> physical location they reside. And the addresses, their EID  
>> addresses are how they are reached. If you map the EID to the  
>> locator that can reach them, and the locators changes, you want to  
>> register the new mapping into the mapping database system.
>>
>> The edge home router is the device that runs LISP. What overlaps in  
>> this device with the LISP-MN architecture is that when a new  
>> DHCP'able locator address is learned by this device, it is this  
>> device that registers the new binding.
>
> In this scenario, you are expecting LISP  to run on the edge of my  
> home or enterprise network, but I hadn't been thinking of it that  
> way...  It was my understanding that the scalability of LISP would  
> come from the ability to aggregate RLOCs for several sites behind a  
> single LISP router (in other words, my ISP would have a LISP router  
> within their network, aggregating RLOCs for a larger (logical or  
> geographic) area.

Nope, the sweet spot is in a CPE router for a branch office or SOHO  
site, or a home router in a residential site.

>> Today with a LISP capable site the bindings are configured, so if  
>> you do a ISP change, at subscription time, so to speak, the ETRs  
>> are reconfigured to register the new bindings.
>>
>> In the broadband case, the change happens when DHCP address is  
>> learned and hence when the register happenings.
>
> I am not sure what these statements mean...  If I move my node to  
> another site, its DHCP request will not go to/through anything in my  
> home network.  So, how does that lead to reconfiguration of the ETR  
> in my home router?

You have to be clear what you are talking about. If you are moving a  
LISP mobile node, the EID goes with the node and DHCP is used to get a  
new RLOC for the EID.

If you move a stationary host, you can reassign an EID to that node is  
it's part of the allocation of the moved-to site. But this would be a  
more permanent move and not really a "roaming event".

>>> I am also uncertain that the architecture described is consistent  
>>> with the goals stated in the document.  For instance, one goal is  
>>> that the LISP-MN must not require additional state in the mapping  
>>> system.
>>
>> Well we don't say that explicitly. But when we do state "no  
>> additional state in the mapping system" we really mean "no  
>> additional state throughout the entire mapping system".
>>
>> The map-servers keep the state the mobile nodes register to.
>
> Are you also expecting that I will have my own map server within, or  
> at the edge of, my home network?

Map-Servers are in the infrastructure, just like the DNS servers you  
use.

>  Or would my mobility state be maintained in my ISP's map server?   
> If the former, I agree that the

The Map-Server could be deployed by an interconnect provider, a  
service provider, a government, a registry, a neutral party, or a  
third party that monetized this service.

The Map-Server you use may have no relationship to the physical link  
you buy from a service provider.

> extra state is all maintained in a system that is controlled (and  
> paid for) by the entity that wants the mobility.  This works  
> nicely.  If it is going to be in my ISP's map server, though, that  
> added state and complexity might be a reason to prefer mobility  
> mechanisms I could control myself.

If it would be complex for the service provider, don't you think it  
would be intractable for a mobile user? And do you really want users  
to control where state is put in the network?

>> Dave will explain this tomorrow in his planned presentation, but  
>> the short answer is mobile nodes register their bindings to their  
>> respective map-servers. The Map-Servers, when ALT is used as the  
>> mechanism to learn mappings, only advertises an aggregate route  
>> into the ALT. So no ALT routers have to store /32 state (/128 state  
>> for IPv6). No other Map-Servers have to store /32 state. No Map- 
>> Resolvers have to store /32 state. And only the ITRs that are  
>> talking to the mobile node, will store the /32 state. They must  
>> because they need to informed of the new locator(s) when the mobile  
>> node moves.
>
> I agree that this part of things will scale nicely.

Good. Pity Dave couldn't present. He could conveyed the design to be  
more obvious to more people.

Dino


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Cc: lisp@ietf.org
Subject: Re: [lisp] LISP Mobility Architecture
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I'm sorry - where do you mean RLOC?

On 7/27/09 8:12 PM, Flinck, Hannu (NSN - FI/Espoo) wrote:
> I mean RLOC.
>
> Hannu
>
>
> -----Original Message-----
> From: ext David Meyer
> Sent: 27/07/2009 4:46:09 pm
> To: ext David Meyer;Flinck, Hannu (NSN - FI/Espoo)
> Cc: ext Eliot Lear;Margaret Wasserman;lisp@ietf.org
> Subject: Re: [lisp] LISP Mobility Architecture
>
>
> On Mon, Jul 27, 2009 at 03:41:48PM +0300, Flinck, Hannu (NSN - FI/Espoo) wrote:
>    
>> Isn't this one of the mobility cases? Lisp mobile node with a routable
>> address?
>>      
> 	I'm not sure what you mean by "routable address". A
> 	LISP MN will have a relatively static EID and 1 or more
> 	RLOCs.
>
> 	Dave
>
>    


From hannu.flinck@nsn.com  Mon Jul 27 11:19:44 2009
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Subject: Re: [lisp] LISP Mobility Architecture
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I mean RLOC.

Hannu


-----Original Message-----
From: ext David Meyer
Sent: 27/07/2009 4:46:09 pm
To: ext David Meyer;Flinck, Hannu (NSN - FI/Espoo)
Cc: ext Eliot Lear;Margaret Wasserman;lisp@ietf.org
Subject: Re: [lisp] LISP Mobility Architecture


On Mon, Jul 27, 2009 at 03:41:48PM +0300, Flinck, Hannu (NSN - FI/Espoo) =
wrote:
> Isn't this one of the mobility cases? Lisp mobile node with a routable
> address?

	I'm not sure what you mean by "routable address". A
	LISP MN will have a relatively static EID and 1 or more
	RLOCs. =20

	Dave

From tme@americafree.tv  Tue Jul 28 00:56:31 2009
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From: Marshall Eubanks <tme@americafree.tv>
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Subject: [lisp] IPv6 UDP checksum issue
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This is a reminder that  draft-fairhurst-6man-tsvwg-udptt and

http://tools.ietf.org/html/draft-eubanks-chimento-6man-00

are still open and will be discussed at the 6man meeting Wednesday.

Basically, one prescribes no checksum for the "outer" packet in
IPv6 encapsulations, the other a fixed checksum per flow. My
understanding is that this matter is relevant to LISP.

If you are interested, please try to attend as a decision may be made  
soon.

Regards
Marshall

From HeinerHummel@aol.com  Tue Jul 28 01:47:21 2009
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-------------------------------1248770822
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In einer eMail vom 27.07.2009 13:36:48 Westeurop=E4ische Normalzeit schrei=
bt  
mrw@lilacglade.org:

It was  my understanding that the scalability of LISP would  
come from the  ability to aggregate RLOCs for several sites behind a  
single LISP  router (in other words, my ISP would have a LISP router  
within their  network, aggregating RLOCs for a larger (logical or  
geographic)  area.



Well respected: LISP introduces, potentially, a new namespace. But then:=
 It 
 reuses the old one by splitting it up. Whereas TARA would  indeed 
introduce  an new additional namespace, derived from the  geographical coo=
rdinates, 
which enables topology aggregation as to ABOLISH (not  just reduce or 
reshape) the scalability problem.
 
It was also mentioned that later on LISP may exchange its namespace by  
something better. But that can only work out in combination with some bett=
er  
concept, i.e. with some other concept.
Note, it neither takes a push- nor a pull model- to get geographical  
coordinates there where they are supposed to be. No ALT. No CONs. No  noth=
ing.
 
And see above "ability to aggregegate": the use of  geo.cordinates enables=
 
not just one single aggregation  hierarchy (like with IP prefixes) but as=
 
many as you want: each single spot on  the surface of this planet can be=
 
viewed as the centerpoint of multiple  areas of contentric circles around=
 it. I 
don't know of any better aggregation  scheme and also believe that exploit=
ing 
the geographical coordinates is the  natural approach to deal with IP 
Mobility.
 
 
Heiner
 
 
 
 

-------------------------------1248770822
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<!DOCTYPE HTML PUBLIC "-//W3C//DTD HTML 4.0 Transitional//EN">
<HTML><HEAD>
<META content=3D"text/html; charset=3DISO-8859-1" http-equiv=3DContent-Typ=
e>
<META name=3DGENERATOR content=3D"MSHTML 8.00.6001.18783"></HEAD>
<BODY style=3D"FONT-FAMILY: Arial; COLOR: #000000; FONT-SIZE: 10pt" id=3Dr=
ole_body 
bottomMargin=3D7 leftMargin=3D7 rightMargin=3D7 topMargin=3D7><FONT id=3Dr=
ole_document 
color=3D#000000 size=3D2 face=3DArial>
<DIV>
<DIV>In einer eMail vom 27.07.2009 13:36:48 Westeurop=E4ische Normalzeit=
 schreibt 
mrw@lilacglade.org:</DIV>
<BLOCKQUOTE 
style=3D"BORDER-LEFT: blue 2px solid; PADDING-LEFT: 5px; MARGIN-LEFT: 5px"=
><FONT 
  style=3D"BACKGROUND-COLOR: transparent" color=3D#000000 size=3D2 face=3D=
Arial>It was 
  my understanding that the scalability of LISP would&nbsp; <BR>come from=
 the 
  ability to aggregate RLOCs for several sites behind a&nbsp; <BR>single=
 LISP 
  router (in other words, my ISP would have a LISP router&nbsp; <BR>within=
 their 
  network, aggregating RLOCs for a larger (logical or&nbsp; <BR>geographic=
) 
  area.<BR></FONT></BLOCKQUOTE></DIV>
<DIV></DIV>
<DIV>Well respected: LISP introduces, potentially, a new namespace. But th=
en: It 
reuses the old one by splitting it up. Whereas TARA would 
indeed&nbsp;introduce&nbsp; an new additional namespace, derived from the=
 
geographical coordinates, which enables topology aggregation as to ABOLISH=
 (not 
just reduce or reshape) the scalability problem.</DIV>
<DIV>&nbsp;</DIV>
<DIV>It was also mentioned that later on LISP may exchange its namespace=
 by 
something better. But that can only work out in combination with some bett=
er 
concept, i.e. with some other concept.</DIV>
<DIV>Note, it neither takes a push- nor a pull model- to get geographical=
 
coordinates there where they are supposed to be. No ALT. No CONs. No 
nothing.</DIV>
<DIV>&nbsp;</DIV>
<DIV>And see above "ability to aggregegate": the use of 
geo.cordinates&nbsp;enables not&nbsp;just&nbsp;one single&nbsp;aggregation=
 
hierarchy (like with IP prefixes) but as many as you want: each single spo=
t on 
the surface of this planet can be viewed&nbsp;as the centerpoint of multip=
le 
areas of contentric circles around it. I don't know of any better aggregat=
ion 
scheme and also believe that exploiting the geographical coordinates is th=
e 
natural approach to deal with IP Mobility.</DIV>
<DIV>&nbsp;</DIV>
<DIV>&nbsp;</DIV>
<DIV>Heiner</DIV>
<DIV>&nbsp;</DIV>
<DIV>&nbsp;</DIV>
<DIV>&nbsp;</DIV>
<DIV>&nbsp;</DIV></FONT></BODY></HTML>

-------------------------------1248770822--

From hartmans@mit.edu  Tue Jul 28 03:35:50 2009
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From: Sam Hartman <hartmans-ietf@mit.edu>
Date: Tue, 28 Jul 2009 06:35:39 -0400
In-Reply-To: <BFE1CA06-E22C-4B89-A856-9EAB5AFA5E43@lilacglade.org> (Margaret Wasserman's message of "Mon\, 27 Jul 2009 07\:36\:11 -0400")
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Subject: Re: [lisp] LISP Mobility Architecture
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>>>>> "Margaret" == Margaret Wasserman <mrw@lilacglade.org> writes:

    Margaret> Sorry for the late reply, I was in transit.

    Margaret> There are a lot of things we will need in a future
    Margaret> LISP-based Internet that are not in charter for the LISP
    Margaret> WG (security, management, etc.).  The LISP charter very
    Margaret> clearly restricts the work of the LISP WG to 5 items,
    Margaret> and mobility isn't one of them.


It is my understanding of the LISP charter that security and
management are in scope, although in some cases we may choose to
document rather than solve security and management problems.  I
believe you were one of the people at the LISP BOF working to make
sure that we worked on some aspects of management.

Some aspects of management--defining a data model, management protocol
are out of scope, but understanding management concerns, etc,are in scope.

From hartmans@mit.edu  Tue Jul 28 06:26:09 2009
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From: Sam Hartman <hartmans-ietf@mit.edu>
Date: Tue, 28 Jul 2009 09:26:06 -0400
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Subject: [lisp] Mobility architecture and LISP charter
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I asked the proponents of the mobility architecture draft to prepare a
slide explaining why their draft fits within the LISP charter.  Since
this was not presented yesterday, I'd like to ask for that here.  Some
discussion has already taken places, but I'd like to ask for a short
explanation of why this draft falls within the charter that the
proponents can agree to.  The chairs will use this explanation along
with comments from the discussion and AD in evaluating whether this is
in scope.

From lear@cisco.com  Tue Jul 28 06:55:22 2009
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Cc: lisp@ietf.org
Subject: Re: [lisp] Mobility architecture and LISP charter
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Sam,

LISP mobility is a natural area to explore (some of us considered doing
so a while ago).  One reason one could view it in scope is that mobility
is likely to test the scalability of various mapping systems,
demonstrating strengths and weaknesses.  If one were to write an
analysis about different mapping systems, you would certainly want to
discuss mobility.  It appears in the charter that you are being asked to
do the analysis, and so this could be considered a supporting work.

And even if you don't agree with that logic, you should still allow the
authors to present work in this framework, even if you need to amend the
charter.  The output of this group will be experimental specifications,
results, and analysis.  Nothing here is closing the door on any other
work the IETF or IRTF might produce or recommend.  The LISP Mobility
work also offers us an opportunity to compare and contrast other
IP-based mobility systems like MIP[v6].  Similarly, I would suggest that
other LISP-based mobility solutions be considered.

Eliot

On 7/28/09 3:26 PM, Sam Hartman wrote:
>
> I asked the proponents of the mobility architecture draft to prepare a
> slide explaining why their draft fits within the LISP charter.  Since
> this was not presented yesterday, I'd like to ask for that here.  Some
> discussion has already taken places, but I'd like to ask for a short
> explanation of why this draft falls within the charter that the
> proponents can agree to.  The chairs will use this explanation along
> with comments from the discussion and AD in evaluating whether this is
> in scope.
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp
>
>   


From dmm@1-4-5.net  Tue Jul 28 08:12:44 2009
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Subject: Re: [lisp] Mobility architecture and LISP charter
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On Tue, Jul 28, 2009 at 09:26:06AM -0400, Sam Hartman wrote:
>=20
>=20
> I asked the proponents of the mobility architecture draft to prepare a
> slide explaining why their draft fits within the LISP charter.  Since
> this was not presented yesterday, I'd like to ask for that here.  Some
> discussion has already taken places, but I'd like to ask for a short
> explanation of why this draft falls within the charter that the
> proponents can agree to.  The chairs will use this explanation along
> with comments from the discussion and AD in evaluating whether this is
> in scope.
       Sam,

        I built slide 10 in the deck posted for the agenda to
        answer your question. Briefly:

        - Clearly routing must scale to support an Internet with a
          large number of mobile nodes. Since such mobility is
	  expected to be a big part of the Internet's future, the
	  network must scale to support mobility at this scale.

        - The LISP map-server and ALT infrastructure are
	  mechanisms to do this for stationary sites which change
          addresses. Unlike the case with IPv6 and MIP6, we want
	  to build an Internet where mobile nodes are first-class
	  citizens (as just pointed out in MEXT).

        - The same infrastructure used when mobile nodes change
          addresses

	- Finally, a LISP site may be a single node.  That is,
	  the  base LISP spec does not define the size of a LISP
	  site or the EID-prefix that might be assigned to a site.

        LISP MN is in scope for the LISP WG for these reasons. To
        the point: LISP MN uses the LISP technology being
        standardized in the LISP WG today. Since that technology
        is in scope (obviously), LISP MN is in scope.

        Dave

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Cc: ipv6@ietf.org, lisp@ietf.org
Subject: Re: [lisp] IPv6 UDP checksum issue
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> This is a reminder that  draft-fairhurst-6man-tsvwg-udptt and
>
> http://tools.ietf.org/html/draft-eubanks-chimento-6man-00
>
> are still open and will be discussed at the 6man meeting Wednesday.
>
> Basically, one prescribes no checksum for the "outer" packet in
> IPv6 encapsulations, the other a fixed checksum per flow. My
> understanding is that this matter is relevant to LISP.
>
> If you are interested, please try to attend as a decision may be  
> made soon.

Sorry, I have a conflict right now. But here is the position of one  
LISP implementor and a coauthor of the LISP specifications:

 From a practical perspective, we prefer that a LISP encapsulator (ITR  
and PTR) not incurred additional work when encapsulating packets. The  
main LISP spec indicates:

(1) The UDP checksum in the outer header MUST be set to 0 by an  
encapsulator.
(2) The decapsulator MUST ignore the UDP checksum.

We stand by this text and see no reason to change it.

There are no practical reasons to use outer header UDP checksums  
regardless of the 4 combinations of packet types (v4-in-v4, v6-in-v6,  
v6-in-v4, or v4-or-v6) being forwarded by LISP routers.

Dino


>
> Regards
> Marshall
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


From iljitsch@muada.com  Wed Jul 29 05:10:10 2009
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Subject: Re: [lisp] IPv6 UDP checksum issue
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On 29 jul 2009, at 14:02, Dino Farinacci wrote:

> From a practical perspective, we prefer that a LISP encapsulator  
> (ITR and PTR) not incurred additional work when encapsulating  
> packets. The main LISP spec indicates:

> (1) The UDP checksum in the outer header MUST be set to 0 by an  
> encapsulator.
> (2) The decapsulator MUST ignore the UDP checksum.

> We stand by this text and see no reason to change it.

Others, please note that this is orthogonal to the discussion at hand,  
as LISP packets will not go to unsuspecting IPv6 hosts, while with the  
help of a translator, legal-but-ill-advised IPv4 packets with UDP  
payload without a checksum will.

From mrw@lilacglade.org  Wed Jul 29 08:55:54 2009
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Subject: Re: [lisp] LISP Mobility Architecture
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On Jul 27, 2009, at 7:45 AM, Eliot Lear wrote:

> Hi Margaret,
>
> On 7/27/09 1:36 PM, Margaret Wasserman wrote:
>> In this scenario, you are expecting LISP  to run on the edge of my  
>> home or enterprise network, but I hadn't been thinking of it that  
>> way...  It was my understanding that the scalability of LISP would  
>> come from the ability to aggregate RLOCs for several sites behind a  
>> single LISP router (in other words, my ISP would have a LISP router  
>> within their network, aggregating RLOCs for a larger (logical or  
>> geographic) area.
>
> When do RLOCs sit behind a LISP router?  Most often one would expect  
> EIDs.

I guess I'm not using the right terminology, sorry.  I could also be  
misunderstanding something, but...

It is my understanding that LISP provides a possible solution to the  
global route scaling problem because it creates two tiered routing  
domains:  a global routing domain that uses RLOCS that are allocated  
in contiguous blocks that mirror the global network topology, and an  
edge routing domain that uses EIDs.

I thought that the transition between the global routing domain  
(RLOCs) and the edge routing domain (EIDs) would happen at a fairly  
high level in the topology -- in an ISP network or perhaps at the edge  
of a large enterprise, which would result in significant scaling  
benefits for the Internet core.  However, it seems that some of the  
design decisions being made in LISP (such as UDP/IP tunneling for NAT  
traversal, statements in the mobility spec) are being made to enable  
the RLOC-to-EID transition to happen at the edge of much smaller  
networks (homes, small offices, etc.), perhaps even behind a local NAT  
box.

If LISP is deployed at the home gateway level, I am not sure how we  
gain much in the way of route scaling improvements, since we would  
have to support global domain (RLOC) routing all the way down to the  
per-home level, which is what we are doing today.

So, what am I missing or misunderstanding?

Margaret




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Subject: Re: [lisp] LISP Mobility Architecture
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Hi Margaret,

> It is my understanding that LISP provides a possible solution to the
> global route scaling problem because it creates two tiered routing
> domains:  a global routing domain that uses RLOCS that are allocated
> in contiguous blocks that mirror the global network topology, and an
> edge routing domain that uses EIDs.
>
> I thought that the transition between the global routing domain
> (RLOCs) and the edge routing domain (EIDs) would happen at a fairly
> high level in the topology -- in an ISP network or perhaps at the edge
> of a large enterprise, which would result in significant scaling
> benefits for the Internet core.  However, it seems that some of the
> design decisions being made in LISP (such as UDP/IP tunneling for NAT
> traversal, statements in the mobility spec) are being made to enable
> the RLOC-to-EID transition to happen at the edge of much smaller
> networks (homes, small offices, etc.), perhaps even behind a local NAT
> box.
>
> If LISP is deployed at the home gateway level, I am not sure how we
> gain much in the way of route scaling improvements, since we would
> have to support global domain (RLOC) routing all the way down to the
> per-home level, which is what we are doing today.
>
> So, what am I missing or misunderstanding?

Not much.  I think you've got quite a lot of it (or we're both missing a
lot ;-).  I would simply ask the question, when given a choice between
chocolate and vanilla, have both.  Life's too short.  Why not go for
both home gateways AND enterprise edges?  I think it's perfectly
feasible.  What the mobile node draft then does, by the way, is take
that one further.  This tops the scaling chart.

Eliot

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Subject: Re: [lisp] LISP Mobility Architecture
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> On Jul 27, 2009, at 7:45 AM, Eliot Lear wrote:
>
>> Hi Margaret,
>>
>> On 7/27/09 1:36 PM, Margaret Wasserman wrote:
>>> In this scenario, you are expecting LISP  to run on the edge of my  
>>> home or enterprise network, but I hadn't been thinking of it that  
>>> way...  It was my understanding that the scalability of LISP would  
>>> come from the ability to aggregate RLOCs for several sites behind  
>>> a single LISP router (in other words, my ISP would have a LISP  
>>> router within their network, aggregating RLOCs for a larger  
>>> (logical or geographic) area.
>>
>> When do RLOCs sit behind a LISP router?  Most often one would  
>> expect EIDs.
>
> I guess I'm not using the right terminology, sorry.  I could also be  
> misunderstanding something, but...
>
> It is my understanding that LISP provides a possible solution to the  
> global route scaling problem because it creates two tiered routing  
> domains:  a global routing domain that uses RLOCS that are allocated  
> in contiguous blocks that mirror the global network topology, and an  
> edge routing domain that uses EIDs.

Right.

> I thought that the transition between the global routing domain  
> (RLOCs) and the edge routing domain (EIDs) would happen at a fairly  
> high level in the topology -- in an ISP network or perhaps at the  
> edge of a large

The word "transition" usually means moving from one technology to  
another. So I think it is being misused here. EIDs are used over the  
top of the core infrastructure and are not globally routable. They are  
used as TCP/UDP socket-ids and don't change when RLOCs might.

> enterprise, which would result in significant scaling benefits for  
> the Internet core.  However, it seems that some of the design  
> decisions being made in LISP (such as UDP/IP tunneling for NAT  
> traversal, statements in the

If the home is still going to use private addresses and the LISP  
architecture indicates EIDs are global addresses, NAT will still be  
needed to translate from a private address used as a TCP/UDP socket-id  
to a global one. And then you can encapsulate after the translation  
step to get multi-homing.

> mobility spec) are being made to enable the RLOC-to-EID transition  
> to happen at the edge of much smaller networks (homes, small  
> offices, etc.), perhaps even behind a local NAT box.

I don't know where you are referring to "RLOC-to-EID transition" and  
frankly don't know what you mean.

> If LISP is deployed at the home gateway level, I am not sure how we  
> gain much in the way of route scaling improvements, since we would  
> have to support global domain (RLOC) routing all the way down to the  
> per-home level, which is what we are doing today.
>
> So, what am I missing or misunderstanding?

LISP solves many problems due to it's level of indirection. The home  
gateway case allows you to have a single IP address as a locator much  
like a home NAT box does. But you get other benefits like:

(1) Both egress and ingress low-opex multi-homing.
(2) IPv6 usage at home to IPv6 servers wihtout needing IPv6 deployed  
between the 2 sites.
(3) Allows TCP connections to stay up while your DSL provider changes  
your IP address (i.e. your RLOC).

Dino

>
> Margaret
>
>
>


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Subject: Re: [lisp] LISP Mobility Architecture
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    > From: jnc@mercury.lcs.mit.edu (Noel Chiappa)

    >> From: Margaret Wasserman <mrw@lilacglade.org>

I just realized that this part of my answer was confusing/wrong. Let me try
this again:

    >> Are you also expecting that I will have my own map server within, or at
    >> the edge of, my home network?

    > Although you do have to have a LISP router somewhere, and the closer to
    > the current location of the mobile node (topologically) the better,
    > otherwise you'll get 'stretch' in the path.

A LISP Mobile Node is its own xTR (i.e. LISP encapsulating/decapsulating
router); the mobile host is prepared to receive and emit wrapped packets.

For communicating with a non-LISP host, the LISP MN does need a proxy LISP
encapsulating/decapsulating router somewhere, the 'Proxy ITR/ETR' (these
could be two different boxes, actually).

	Noel

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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
Cc: jnc@mercury.lcs.mit.edu
Subject: Re: [lisp] LISP Mobility Architecture
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    > From: Margaret Wasserman <mrw@lilacglade.org>

    > It is my understanding that LISP provides a possible solution to the
    > global route scaling problem because it creates two tiered routing
    > domains: a global routing domain that uses RLOCS that are allocated in
    > contiguous blocks that mirror the global network topology, and an edge
    > routing domain that uses EIDs.

No, not really. Well, what you say is accurate, but it's only a _partial_
picture of what's really going on.

Like I said, the best way to think of LISP is that it's an incrementally
deployable system which splits the single IP address namespace into two
separate namespaces: one for location, and one for identity. In keeping with
the 'incremental' part, there is a boundary between the (logical) part of the
network in which those two separate name(space)s exist, and the (logical)
part of the network in which there's only one; and the location of that
boundary can move over time.

In the 'basic' LISP configuration, that boundary is at the very edge of a
site - to absolutely minimize the number of things that have to be changed
(e.g. hosts and routers inside the site don't have to be touched). There's an
xTR at the boundary (wherever that is) which encapsulates/decapsulates
packets; the encapsulated packet has both an EID and an RLOC (i.e. names from
the two separate namespaces).

In the mobile node case, that boundary has moved right into the host: i.e.
_part_ of the host software understand that there are two separate
namespaces, and that the host has both an EID and an RLOC, and part (e.g. the
TCP) known only of the single 'IP address' namespace.


    > I thought that the transition between the global routing domain (RLOCs)
    > and the edge routing domain (EIDs) would happen at a fairly high level
    > in the topology ... However, it seems that some of the design decisions
    > being made in LISP ... are being made to enable the RLOC-to-EID
    > transition to happen at the edge of much smaller networks (homes, small
    > offices, etc.), perhaps even behind a local NAT box.

Right. That's the 'location of the boundary moves over time' thing.

    > If LISP is deployed at the home gateway level, I am not sure how we
    > gain much in the way of route scaling improvements, since we would have
    > to support global domain (RLOC) routing all the way down to the
    > per-home level, which is what we are doing today.

The thing is that we expect RLOCs to be assigned in such a way that they are
much more eggregatable (i.e. smaller routing tables).

E.g. one problem has always been that people don't want to change their
hosts' IP addresses, because it's a pain in the XXX. So they keep their IP
addresses when they move, and that causes routing table bloat.

To put it another way, the requirements of low routing overhead (aggregatable
addresses) and the requirement of ordinary users (have unchanging IP
addresses for their hosts) were diametrically opposed - and as long as we
only had a single namespace, there was no way to do both of those things at
the same time.

Now, with separate EID and RLOC spaces, we can. RLOCs are assigned to be
maximally aggregatable, and EIDs stay constant no matter where the host(s)
move. E.g. when a small office moves to a different ISP, it can both keep its
old IP addresses, but without adding an entry to the core routing tables.

So, to go back to your question: even if we have a neighbourhood full of LISP
MN's, the entire neighbourhood will still only generate a single routing
table entry - all the LISP MN's will have RLOCs allocated from a single
block, even if their EIDs are from all sorts of different blocks.


    > So, what am I missing or misunderstanding?

Did that clarify it? If not, please keep asking questions.

	Noel

From jnc@mercury.lcs.mit.edu  Wed Jul 29 18:35:24 2009
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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
Cc: jnc@mercury.lcs.mit.edu
Subject: Re: [lisp] LISP Mobility Architecture
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    > From: Dino Farinacci <dino@cisco.com>

    > If the home is still going to use private addresses .. NAT will still
    > be needed to translate from a private address .. to a global one.

The thing is that when NAT is used in a LISP context, there are _two_
potential ways to do so. Remember that NAT in a normal 'vanilla IPv4' context
allows a single global IP address to be shared by a bunch of hosts.

With LISP, in the first usage mode, a NAT box can allow a single _EID_ to be
shared by a bunch of hosts. This happens when the NAT box is between i) the
LISP two-namespace/one-namespace boundary (see previous message), and ii) the
hosts.

In the second usage mode, a NAT box can allow a single _RLOC_ to be shared by
a bunch of xTRs. This happens when the NAT box is between i) the LISP
two-namespace/one-namespace boundary (i.e. the xTRS), and ii) the rest of the
network.

I'm not sure there's much use for the second mode, mind... I imagine the
usual usage mode would be to allow a single EID to be shared between a bunch
of hosts.

Note that NAT is sort of orthogonal to LISP - LISP splits a single namespace
into two, where each namespace has _different_ properties; NAT shares a
single name between several entities, where for each user of the name their
use has _identical_ properties with the other users (except for referring to
a different box).


    >> are being made to enable the RLOC-to-EID transition to happen at the
    >> edge of much smaller networks

    > I don't know where you are referring to "RLOC-to-EID transition" and
    > frankly don't know what you mean.

I think she means 'transition from a mapped/wrapped packet, with separate
RLOC and EID, to an unwrapped/unmapped packet, with only an EID'.


    > But you get other benefits like:
    > 
    > (1) Both egress and ingress low-opex multi-homing.
    > ...
    > (3) Allows TCP connections to stay up while your DSL provider changes
    > your IP address (i.e. your RLOC).

Do note that for the third (and probably the first as well), you need to have
'permanent' EIDs (IP addresses) assigned to your host(s); you can't use the
IP address the provider handed out to your cable/DSL/whatever hookup, because
when it renumbers, that IP address - and in particular, its 'EID nature' -
will 'belong' to someone else.

	Noel

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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
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Subject: Re: [lisp] LISP Mobility Architecture
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    > From: jnc@mercury.lcs.mit.edu (Noel Chiappa)

    > In the second usage mode, a NAT box can allow a single _RLOC_ to be
    > shared by a bunch of xTRs. This happens when the NAT box is between i)
    > the LISP two-namespace/one-namespace boundary (i.e. the xTRS), and ii)
    > the rest of the network.

    > I'm not sure there's much use for the second mode, mind...

Doohhh. My brain really isn't firing on all cylinders tonight..

Having the NAT box between the xTR and the rest of the network is, of course,
exactly what the situation will be anytime a LISP MN migrates to some place
that's behind a NAT box. 

There's some extra hair the xTR has to deal with in this case (basically,
since NAT boxes don't have LISP ALGs, the xTR has to find its 'real' global
RLOC to put in LISP control messages), but I don't recall how that works.

	Noel

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Subject: [lisp] LISP does not involve separate namespaces
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This follows from Noel's message, responding to Margaret, in the "Re:
[lisp] LISP Mobility Architecture" thread:

  http://www.ietf.org/mail-archive/web/lisp/current/msg00744.html

I haven't been following recent discussions and I don't have time to
read about or critique the new LISP mobility ID.  However folks
interested in mobility might wish to compare it with a scheme which
is applicable to LISP:

  TTR Mobility Extensions for Core-Edge Separation Solutions to the
  Internet's Routing Scaling Problem
  Robin Whittle, Steven Russert  2008-08-25
  http://www.firstpr.com.au/ip/ivip/#mobile

I will comment on these continued assertions about LISP involving two
separate namespaces.  Please see this page for links to all the
previous discussion about the meaning of "namespace" and my posts to
the list about this:

  http://www.firstpr.com.au/ip/ivip/namespace/


Noel Chiappa wrote:

>> From: Margaret Wasserman <mrw@lilacglade.org>
> 
>> It is my understanding that LISP provides a possible solution to the
>> global route scaling problem because it creates two tiered routing
>> domains: a global routing domain that uses RLOCS that are allocated in
>> contiguous blocks that mirror the global network topology, and an edge
>> routing domain that uses EIDs.

I think this is an accurate description of LISP and the other
core-edge separation schemes such as APT, Ivip and TRRP.  There needs
to be not too many prefixes which contain RLOCs, since each such
prefix needs to be in the global BGP routing table - and a primary
goal of any core-edge separation scheme is to reduce the number of
such routes.

> No, not really. Well, what you say is accurate, but it's only a _partial_
> picture of what's really going on.
> 
> Like I said, the best way to think of LISP is that it's an incrementally
> deployable system which splits the single IP address namespace into two
> separate namespaces: one for location, and one for identity. 


These are not separate namespaces according to any definition I have
been able to find.  Noel, what is your definition of "namespace"?

LISP involves two subsets of the global unicast address space.  Some
prefixes are in the global routing table and their addresses can be
used for RLOC addresses.  EID addresses are in other prefixes which
are not within the first set, and so do not contribute to the burden
on the BGP control plane by adding to the size of the global BGP
routing table.

A namespace is a context within which a number or name is
interpreted.  If there were two separate namespaces, then 12.34.56.78
would have one meaning on namespace 1 and another in namespace 2.
Any situation which handles packets with addresses in two separate
namespaces needs a way to figure out which namespace to use for each
packet when interpreting the meaning of its address.

However, what happens with LISP or any other core-edge separation
scheme is that multiple prefixes of the global unicast space
constituting the "RLOC-capable" subset of the address space are used
for one purpose and the remainder of the global unicast space cannot
be used for routing packets in the BGP core.  That second subset can
be used for EID addresses.

LISP (in any form suitable for the foreseeable future, and as
currently formally defined) does not allow the use of a single
address for both purposes at once.  This would be possible only if
there were separate namespaces.

In principle, LISP could work with separate namespaces for RLOCs and
EIDs, but there is no way this can work in any time in the
foreseeable future because it would require all BGP routers to also
recognise these two namespaces.  Then, the BGP routers would be able
to see the packet destination address 12.34.56.78 as being either
within the RLOC namespace, or the EID namespace.  This would require
modifications to all BGP routers and some new packet structure to
carry information specifying the use of the RLOC or EID namespace.

The whole idea of LISP, APT, Ivip and TRRP is to remain compatible
with existing packet structures and BGP routers (though there are
options in Ivip which do involve modified routers and packet
structures as a way of avoiding encapsulation).

I am sure that as long as LISP is to remain compatible with existing
packet structures and BGP routers, that it does not involve separate
namespaces for RLOC and EID addresses.


> In keeping with
> the 'incremental' part, there is a boundary between the (logical) part of the
> network in which those two separate name(space)s exist, and the (logical)
> part of the network in which there's only one; and the location of that
> boundary can move over time.

Noel, I would appreciate it if you described with a concrete examples
how these two separate "namespaces" would work.  I think this would
illuminate some misunderstandings or at least point out the different
meanings you and I ascribe to the term "namespace".


> In the 'basic' LISP configuration, that boundary is at the very edge of a
> site - to absolutely minimize the number of things that have to be changed
> (e.g. hosts and routers inside the site don't have to be touched). There's an
> xTR at the boundary (wherever that is) which encapsulates/decapsulates
> packets; the encapsulated packet has both an EID and an RLOC (i.e. names from
> the two separate namespaces).
> 
> In the mobile node case, that boundary has moved right into the host: i.e.
> _part_ of the host software understand that there are two separate
> namespaces, and that the host has both an EID and an RLOC, and part (e.g. the
> TCP) known only of the single 'IP address' namespace.
> 
> 
>     > I thought that the transition between the global routing domain (RLOCs)
>     > and the edge routing domain (EIDs) would happen at a fairly high level
>     > in the topology ... However, it seems that some of the design decisions
>     > being made in LISP ... are being made to enable the RLOC-to-EID
>     > transition to happen at the edge of much smaller networks (homes, small
>     > offices, etc.), perhaps even behind a local NAT box.
> 
> Right. That's the 'location of the boundary moves over time' thing.
> 
>     > If LISP is deployed at the home gateway level, I am not sure how we
>     > gain much in the way of route scaling improvements, since we would have
>     > to support global domain (RLOC) routing all the way down to the
>     > per-home level, which is what we are doing today.

I share Margaret's concern.  This is not a problem with the TTR
approach to mobility.


> The thing is that we expect RLOCs to be assigned in such a way that they are
> much more eggregatable (i.e. smaller routing tables).

This is the goal of LISP etc.  To achieve it, the addresses used by
end-user networks need to be EID addresses.  This includes any
end-user network where a mobile device might have its care-of address.

If Mobile LISP involves end-user networks having RLOC addresses, then
I can't see how LISP could achieve its goals of making such networks
portable between ISPs without renumbering and/or giving them robust
multihoming via two or more upstream ISPs.

You can't have some address 12.34.56.78 be both an EID and an RLOC.

If an ITR treated this address as an EID, it would encapsulate any
packet with 12.34.56.78 as its destination address and tunnel it to
some RLOC address, based on looking up the mapping for 12.34.56.78.

If any packet is encapsulated and tunneled to an address which an ITR
recognises as being within the EID subset of addresses (which I think
Noel calls the EID "namespace") then either that ITR or some other
ITR will simply encapsulate the resulting packet as just described.
This would continue for as often as the RLOC address returned by the
mapping system was also within the subset of addresses known as the
EID subset: that subset for which the mapping system will return an RLOC.

It is absolutely clear that this has never been the intention with
LISP.  Every draft from 00 to the current 12:

  http://tools.ietf.org/html/draft-farinacci-lisp-12#page-8

includes this as part of the definition of EID:

  "EIDs MUST NOT be used as LISP RLOCs."

If there were two separate namespaces for RLOC and EID space, then
this statement would not be true.  The same numeric address could be
used as both an EID and an RLOC.


> E.g. one problem has always been that people don't want to change their
> hosts' IP addresses, because it's a pain in the XXX. So they keep their IP
> addresses when they move, and that causes routing table bloat.
> 
> To put it another way, the requirements of low routing overhead (aggregatable
> addresses) and the requirement of ordinary users (have unchanging IP
> addresses for their hosts) were diametrically opposed - and as long as we
> only had a single namespace, there was no way to do both of those things at
> the same time.
> 
> Now, with separate EID and RLOC spaces, we can. RLOCs are assigned to be
> maximally aggregatable, and EIDs stay constant no matter where the host(s)
> move. E.g. when a small office moves to a different ISP, it can both keep its
> old IP addresses, but without adding an entry to the core routing tables.
> 
> So, to go back to your question: even if we have a neighbourhood full of LISP
> MN's, the entire neighbourhood will still only generate a single routing
> table entry - all the LISP MN's will have RLOCs allocated from a single
> block, even if their EIDs are from all sorts of different blocks.
> 
> 
>     > So, what am I missing or misunderstanding?
> 
> Did that clarify it? If not, please keep asking questions.

Noel, how can a LISP MN act as its own ETR without an RLOC address of
its own?  From all I know about LISP, any such ETR function needs to
have a unique IP address which is part of a prefix in the RLOC subset
of the global unicast subset of the address space.

If the MN is in an end-user network, and that end-user network is
using EID addresses (as it must be be portable and scalably
multihomable, as LISP provides), then its address can't be within an
RLOC prefix.  So how could the MN be its own ETR?

By contrast, in the TTR approach to mobility, the MN is not its own
ETR.  It establishes a two-way tunnel to a Translating Tunnel Router,
which with a single RLOC address is the ETR for many MNs in
potentially many networks.  The MN's care-of address can be behind
NAT and it will still be able to make a two-way encrypted tunnel to
the TTR.  The TTR acts as its ETR and also handles outgoing packets,
so the TTR is probably also an ITR.

Multihoming and mobility is achieved by the MN tunneling to multiple
TTRs, ideally a TTR which is "close" to the network it is tunneling from.

 - Robin


From jnc@mercury.lcs.mit.edu  Wed Jul 29 20:15:36 2009
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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
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Subject: Re: [lisp] LISP does not involve separate namespaces
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    > From: Robin Whittle <rw@firstpr.com.au>

    > A namespace is a context within which a number or name is interpreted.

Exactly.

    > the remainder of the global unicast space cannot be used for routing
    > packets in the BGP core. 

Not necessarily.

LISP is a long process, and things that are true at one phase are not true at
another. Remember the big debate some months back about whether a LISP EID
was a 'true' EID or not? Well, now, with LISP Mobile, they are (i.e. the
LEIDs of mobile nodes contain absolutely no location information whatsoever).

So I expect that some day we may well see instances of the same 32-bit number
being the RLOC of one place, and the EID of a host somewhere else.

    > This includes any end-user network where a mobile device might have its
    > care-of address.

LISP Mobile does not have care-of addresses.

    > how can a LISP MN act as its own ETR without an RLOC address of its
    > own? 

It has an RLOC: whatever IPvN address it has been assigned by DHCP, etc, on
the network to which it is currently attached.

    > If the MN is in an end-user network, and that end-user network is using
    > EID addresses .. then its address can't be within an RLOC prefix.

If a LISP MN is behind an existing xTR (e.g. at a site boundary), then
packets to it from elsewhere in the network have to be
double-LISP-encapsulated when the arrive at the site's ETR (i.e. by the
encapsulating ITR). The site xTR strips the first layer, and then the xTR in
the LISP MN strips the second. I'm not sure if this is covered in the draft,
but it happens pretty naturally: the EID maps to an RLOC which happens to be
an EID (i.e. there's a valid mapping for it), and gets mapped and
encapsulated again.

(This is an instance of a circumstance where the two namespaces do in fact
overlap. There is some complex hair I won't go into where if 'core' RLOCs are
being allocated out of a namespace with another syntax, e.g. some new
variable-length locator-spare, the source ITR can tell when it can stop
looking up the RLOC, on the offchance it's also an 'EID', because RLOCs with
that syntax cannot be an EID, but that's a long way down the road so I'm
going to ignore it for now.)

	Noel

From rw@firstpr.com.au  Wed Jul 29 23:49:07 2009
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Subject: [lisp] Critique of Mobile LISP: draft-meyer-lisp-mn-00
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Short version:   This LISP Mobile approach can't work when the MN's
                 address is behind NAT, as it would be on virtually
                 all domestic, SOHO and commercial Internet services
                 today.  This applies whether the NAT box's public
                 address is a conventional "RLOC" address or a LISP-
                 mapped EID address.

                 It cannot typically achieve continual connectivity
                 when the MN changes to a new address (what would be
                 called a new Care-of Address in conventional MIP or
                 with the TTR Mobility approach).

                 It requires double encapsulation when the MN is on
                 a LISP-mapped EID address.  This is exceedingly
                 burdensome for VoIP packets in IPv6, due to the
                 need to duplicate the IPv6, UDP and LISP headers.
                 This also worsens the Path MTU Discovery problems.

                 For instance, if the MN moves from an RLOC address
                 to an EID address, all the ITRs will need to add
                 a second set of headers.  However, the ITRs have
                 no way of informing the sending hosts that there
                 is now a reduced value for the maximum packet length
                 they should send.

                 Every MN needs a dedicated address for its ETR
                 function.  This is OK in IPv6 but very inefficient
                 in IPv4.

                 The MN's reliance on a frequently distant
                 Map-Resolver will further delay initial packets
                 and reduce the reliability of the system.

                 The TTR Mobility approach has none of these
                 problems.


I read the I-D:

  http://tools.ietf.org/html/draft-meyer-lisp-mn-00

This mentions (p 5):

     Proxy ETR (PETR):  An infrastructure element used to decapsulate
     packets sent from mobile nodes non-LISP sites.  Proxy ETRs are
     described in [LISP-IW].       ^

There seems to be a word missing before "non-LISP".  Maybe "to
non-LISP sites."?

"Proxy ETRs" are not described in:

   http://tools.ietf.org/html/draft-lewis-lisp-interworking-02

I don't understand how a "Proxy ETR" could be used while adhering to
one of the User Requirements (5.1), which is to avoid triangle routing:

   Shortest Path Data Plane:  The LISP-MN architecture MUST allow for
      shortest path bidirectional traffic between a LISP mobile node
      and a stationary node, and between a LISP mobile node and
      another LISP mobile node (i.e., without triangle routing in the
      data path).  This provides a low-latency data path between the
      LISP mobile node and the nodes that it is communicating with.

More on this below.

The 3rd line of page 8 may be missing "changed" or similar after "are
not".

I see on page 9 that Map Servers can act as query servers, rather
than simply forwarding mapping replies to ETRs.  I recall discussing
this a few months ago and being told that they did not do this.  I
think it is a good idea that they be able to respond to the query
themselves.

I also see that MNs never send packets directly to ordinary IP
addresses ("RLOC" addresses, of hosts or whatever which are not on
LISP-mapped "EID" addresses).  Instead, the packet is tunneled to a
PETR (Proxy ETR).  This seems to be at odds with the requirement to
avoid "triangle routing".


Also on page 9:

   Note that a LISP mobile node will need additional interworking
   infrastructure when talking to non-LISP sites [LISP-IW]; this is
   consistent with the design of any host at a LISP site which talks
   to a host at a non-LISP site.

Hosts operating on LISP-mapped addresses have never needed any
additional infrastructure to send packets to (my understanding of
"talking to") hosts with conventional addresses.

Hosts on conventional ("RLOC") addresses in networks without ITRs
have always required "additional infrastructure" to be able to send
packets to hosts on LISP-mapped EID addresses.   I proposed this in
June 2006 and LISP acquired such a mechanism - as a Proxy Tunnel
Router (ITR in the DFZ) - in November 2006.

The following paragraph (pages 9 and 10) explicitly restates that
packets sent from MNs to hosts (stationary or using conventional
mobile IP techniques) on non-LISP networks (that is on "RLOC" rather
than "EID" addresses) will be sent via an intermediate Proxy ETR.
This seems to be at odds with the above mentioned user requirement
for no triangle routing.

On page 11 the location of the Proxy ETR is discussed:

   In general, the PETR will be co-located with the LISP mobile
   node's Map-Server.

(See also discussion of section 12.1)

Generally, no matter where in the world the MN is located, it only
uses a single Map-Server, which is determined by the MN's EID
address.  This EID address and therefore the identity and location of
the Map-Server will not alter from one month to the next, or one year
to the next.   So if the Map-Server is in California and the MN is in
Bangladesh, as long as the Proxy ETR is the same device as the
Map-Server, then if the MN has a packet to send to a non-LISP
destination host in India, the packet will be encapsulated to
California and then be sent in its raw form to India.

This problem is acknowledged:

   This may add stretch to packets sent from a
   LISP mobile node to a non-LISP destination.

However, this acknowledgement doesn't go far enough.  The truth of
the matter is that this violates the above user requirement to avoid
triangle routing - and it would surely make this form of mobility
unacceptable to most users.

So far in the I-D, there has been no discussion of why this Proxy-ETR
approach is required.  I guess it is required because the local
network which the MN has an address on is likely to have filtering
which would drop any packet sent from the MN with its EID address as
the source address, since this EID would not be part of the local
network's address range.

(This problem is solved in the TTR approach to mobility:
 http://www.firstpr.com.au/ip/ivip/#mobile by the MN forming a
 two-way encrypted tunnel to one or more Translating Tunnel Routers
 which are ideally nearby, and which send such packets, in the raw
 directly to the destination host.)


On page 13, while I haven't tried to understand every aspect of how
the MN updates the mapping information in ITRs of devices which are
sending packets to it, I am concerned about the requirement that this
update in some circumstances be not achieved at all - but rather that
the desired result is achieved by the ITR's mapping cache timing out.

  In particular, a LISP mobile node SHOULD set the TTL on the
  mappings in its Map-Replies to be in 1-2 minute range.

Does this mean either or both of the following?

  1 - That MNs will burden ITRs with the need for frequent
      lookups of mapping, due to the short caching time.

  2 - That this caching time of 1 to 2 minutes also controls how
      long it will take before an ITR can successfully tunnel
      packets to a MN which has changed its RLOC address?

Point 1 is a scaling and efficiency problem - and can most easily be
rectified by making the time very long, such as 30 minutes or a few
hours.

Point 2 is a direct constraint on connectivity when the MN changes
its point of connection, which some MNs will do frequently.  This
problem can be reduced by reducing the caching time.

So the goal of mobile connectivity seems to be directly at odds with
the scalability of the LISP system.

   (With the TTR approach, the mapping does not need to change
    whenever the MN gets a new CoA.  It only changes
    when it chooses to use a new TTR.  A new TTR may not be
    required for months - as long as the CoA is within 1000km
    or so - and connectivity is retained no matter how far
    apart the CoA and TTR are.)

Does this mean that in order to keep LISP scalable, and to minimise
the burden on ITRs and the mapping resolution infrastructure, that
when a MN moves to a new RLOC address, its user must put up with
(typically) 1 or 2 minutes of lost connectivity?   This would be
completely unacceptable to most users, even if the application-level
sessions survived - and most sessions would time out.

(I will pass over the section on multicast - I haven't read the LISP
multicast stuff and since multicast doesn't work on the global
Internet today, I have never been able to figure out why LISP is
concerned with it.)

Section 9.1 discusses the MN being on a private address, such as
10.x.x.x or whatever - and therefore implicitly behind NAT.  It cites
a not-yet-existent I-D: "draft-x-lisp-nat-traversal-00.txt (work in
progress), June 2009."  I can find no mention of such a draft in the
mailing list.

I cannot imagine how this could work.  Furthermore, I am sure it
won't work.

ITRs need to be able to tunnel packets to ETRs without any prior
arrangement.  The MN can't directly know the address of its NAT box.

There might be some tricky way the MN's Map-Server could figure out
the public address of the NAT box, but there's no way a properly
written NAT function would allow packets sent by some ITR to be sent
to the MN.

LISP MNs cannot work if they are behind NAT - either where the NAT
box's public address is in conventional ("RLOC") space or is a
LISP-mapped EID address.


Section 9.2 discusses the common scenario in which the MN's address
is a LISP-mapped EID address.

Packets sent to the MN need to go through the following steps:

  1 - First level encapsulation to create a second header (the
      first header is that of the original packet, and contains
      in its destination field the EID address of the MN).

      This encapsulation is performed by one of:

        a - For a non-LISP-mobile sending host in a conventional LISP
            site: an ITR in that site.

        b - For a non-mobile or conventionally mobile sending host in
            a site without an ITR: in a Proxy Tunnel Router (PTR -
            ITR in the DFZ).

        c - For a LISP-mobile sending host: in the ITR function of
            that MN.

      The destination address of this second header is the EID
      address which the destination MN is using in a manner analogous
      to the "Care-of-Address" CoA in conventional mobile IP or in
      the TTR Mobility approach.   This is the address by which
      the destination MN's ETR function can be reached.

  2 - Second level encapsulation - the same ITR as mentioned above
      recognises that it has just applied an EID address in the
      previous step (normally, prior to this Mobility I-D, all
      such encapsulation was to an RLOC address, which explicitly
      cannot be an EID address), so it looks up the mapping for that
      EID address and finds it mapped to a real RLOC address.
      (I will assume the MN's "CoA" is not within the network of
      another LISP MN's network, which would require another level
      of headers still.)

      The destination address of this second header is the ETR
      address of the site at which the MN has its address (the
      address I consider to be its CoA address, although the I-D
      does not use this terminology).

  3 - The resulting packet is forwarded, typically across the DFZ,
      and arrives at the ETR of the MN's site.  That ETR pops off
      the 3rd header and forwards the packet to the internal address
      within that network which is the MN's "CoA" address - within
      the LISP-mapped EID space this network uses.

  4 - The packet arrives at the MN's ETR function, which strips off
      the 2nd header and passes the original packet to its stack
      for normal processing.

There are at least two problems with this arrangement:

  1 - This doubles the packet overhead.  This is particularly a
      concern for IPv6, where it is doubling the IPv6 header, the UDP
      header and the LISP header.  Now the headers are way longer
      than many data packets, including especially VoIP packets.

  2 - This worsens the problems with Path MTU Discovery - longer
      packets exceeding MTU limits.

      For instance, if the MN is originally on an RLOC address then
      the LISP ITR and the sending host *may* be able to set up
      the sending host's packet length to match the limitations
      of the path with one set of headers (IP, UDP and LISP).

      However, if the MN moves to a LISP-mapped EID address, then
      the ITR will need to apply a second set of headers.  It has
      no way of conveying to the sending host that the maximum
      packet length should now be shorter - so either the packets
      will be dropped at the limiting router, or the ITR would need
      to fragment the packet and send it as two, for the ETR in the
      destination network to reassemble.

There also needs to be some logic in the ITR to ensure that it won't
keep adding headers if the mapping of one EID is also to an EID which
is mapped to another EID.


Section 12.1 contains a requirement that the Proxy ETR only accept
packets sent from RLOCs which it is authorised to receive packets
from.  This authorisation information must come from the Map-Server
which handles the EID which the MN's EID prefix is a part of.

Even if a particular RLOC address is registered, this does not ensure
that only packets from the MN will be handled by the Proxy ETR.
There's no way the Proxy ETR could verify the real source of packets.
 The outer header's source address could be spoofed and so could the
inner header's.

In summary, the problems I see with this LISP Mobile approach include:

  1 - Cannot work with the MN behind NAT, whether the NAT box's
      public address is an ordinary RLOC address or on a LISP-mapped
      EID address.

  2 - Requires "triangle routing" via a Proxy ETR for packets sent by
      the MN to non-LISP destination hosts.

          In principle, the Map-Server could have multiple Proxy-ETRs
          all over the world and somehow tell the MN to use one
          closest to its current "CoA" address.  This would start
          to resemble the TTR Mobility approach.

  3 - Requires double encapsulation if the MN's "CoA" is on a LISP-
      mapped EID address.  This is inefficient and leads to worse
      PMTUD problems

  4 - AFAIK, in some or many scenarios, there would be lost
      connectivity when the MN changes its "CoA" - or at the very
      least a really undesirable trade-off between the goals of
      reducing this and of making the LISP system scalable.

  5 - Does not scale will in IPv4, since each MN needs a dedicated
      address for its ETR function in addition to its own EID
      address.  This ETR address cannot be used by any other device.

      While that ETR address may well be a LISP-mapped EID address,
      this is still chewing two addresses from the IPv4 space for
      a single mobile device.

  6 - Relying on a typically distant Map-Resolver will increase the
      delay times for the MN's internal ITR function being able to
      send initial packets.  It will also reduce the reliability
      of the system compared to the usual LISP arrangement where
      the Map-Resolver is in the sending host's own network.


Dino and colleagues:  Steve Russert and I proposed the TTR Mobility
approach in August last year:

   http://www.firstpr.com.au/ip/ivip/#mobile

The TTR Mobility approach is applicable to LISP.

MNs work fine behind NAT and there is no problem with triangle
routing, assuming that there is a network of TTRs such that the MN
can generally use one which is nearby.  (These would be commercially
profitable systems, so there would be competition between TTR network
providers.)

There is no loss of connectivity when the MN changes its CoA,
assuming it has a few seconds to set up one CoA before losing the
current one.   Connectivity will be continual from all CoAs, no
matter how distant the TTR, but optimal path lengths, lower latency
and reduced packet loss rates will be achieved when the MN uses a
nearby TTR.

>From what I can see the TTR approach would be better than what you
are proposing in this new LISP Mobility draft.

What objections would you have to using the TTR approach instead?

  - Robin


From menth@informatik.uni-wuerzburg.de  Thu Jul 30 01:36:48 2009
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Date: Thu, 30 Jul 2009 10:36:44 +0200
From: Michael Menth <menth@informatik.uni-wuerzburg.de>
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Subject: [lisp] FIRMS
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Hi,

I would like to draw your attention to my talk on a "Future InteRnet 
Mapping System (FIRMS)" in RRG on Friday 2.15 pm in Congresshall C.
http://trac.tools.ietf.org/group/irtf/trac/wiki/RRGagendaStockholm

This mapping system could be used also for LISP, but it is designed to 
be more general than for what LISP is currently intended, e.g., it 
supports per-EID mapping. We implemented the list-ms interface, but we 
call the map-server "map-base" in our proposal as it is not necessarily 
collocated with an ETR.

I am looking forward to your comments.

Regards,

    Michael

-- 
Dr. Michael Menth, Assistant Professor
University of Wuerzburg, Institute of Computer Science
Am Hubland, D-97074 Wuerzburg, Germany, room B206
phone: (+49)-931/31-86644 (new), fax: (+49)-931/888-6632
mailto:menth@informatik.uni-wuerzburg.de
http://www3.informatik.uni-wuerzburg.de/research/ngn


From rw@firstpr.com.au  Thu Jul 30 05:54:53 2009
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Date: Thu, 30 Jul 2009 22:54:58 +1000
From: Robin Whittle <rw@firstpr.com.au>
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Subject: Re: [lisp] LISP does not involve separate namespaces
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Short version:  "RLOC" and "EID" are not, and never have been,
                separate namespaces.

                They are two sets into which addresses may be
                classified, where the addresses are all interpreted
                according to the one namespace: that which applies
                to the set of addresses known as global unicast.

                Before LISP Mobile, and still according to
                draft-farinacci-lisp-12, "RLOC" and "EID" are
                disjoint sets.

                LISP Mobile can use one address as both an EID and
                an RLOC, so these sets are no longer disjoint, but
                are potentially overlapping.

                LISP and the other core-edge separation schemes do
                not involve separate namespaces for the RLOC and EID
                addressing functions.  If they did (as HIP does) then
                we would not be able to have them voluntarily
                deployed on a wide enough scale to solve the routing
                scaling problem.


Hi Noel,

Thanks for your speedy response, in which you wrote:

> > A namespace is a context within which a number or name is interpreted.
> 
> Exactly.

OK!


> > the remainder of the global unicast space cannot be used for routing
> > packets in the BGP core. 
> 
> Not necessarily.
> 
> LISP is a long process, and things that are true at one phase are not true at
> another. Remember the big debate some months back about whether a LISP EID
> was a 'true' EID or not? Well, now, with LISP Mobile, they are (i.e. the
> LEIDs of mobile nodes contain absolutely no location information whatsoever).
> 
> So I expect that some day we may well see instances of the same 32-bit number
> being the RLOC of one place, and the EID of a host somewhere else.

An example of this appears in draft-meyer-lisp-mn-00.  Please see my
previous message which is a critique of this I-D:

   http://www.ietf.org/mail-archive/web/lisp/current/msg00749.html

The ITR encapsulates a traffic packet so it will be tunneled to and
ETR function of the MN, which can be on an EID address.  If so, then
the ITR adds a second layer of encapsulation so the resulting packet
is tunneled to the ETR of the LISP site to which this EID prefix is
currently mapped.

    Header 3:  To ZZ, the ETR at the ISP which is being used by the
               LISP end-user network within which the MN is currently
               located.

    Header 2:  To YY, the MN's address within that LISP end-user
               network.

    Header 1:  The original packet - to XX, the MN's own EID address.

Here the one address YY is used in both an EID role and an RLOC role:

   1 - As the RLOC address of the MN's ETR function: that is, YY is
       the address at which the MN is currently located - which in
       this example happens to be in an end-user network network
       which is using LISP-mapped EID space.  (This would generally
       be known as the MN's Care-of Address, but this terminology
       is not used in the LISP-MN draft.)

       The ITR got this address YY by looking up the mapping for
       the MN's own EID address: XX.

   2 - YY is used as an EID because the MN's current address is
       within a LISP-mapped EID prefix.

       The ITR looks up its mapping for this and from that
       mapping decides on a particular ETR address to which this
       packet must be encapsulated.  This is the ETR address
       of the ISP the LISP site is using - an RLOC address ZZ.


> > This includes any end-user network where a mobile device might have its
> > care-of address.
> 
> LISP Mobile does not have care-of addresses.

OK - but it has an address on the network to which it is currently
attached.  In mobile IP the same concept is known as a "care-of
address" and I suggest this be used in Mobile LISP too.  MNs will
often have multiple care-of addresses (or whatever you want to call
them) on multiple networks.  For instance the MN could have an
address on a 3G network and another via WiFi to a completely
different network.  Some of these addresses will be on RLOC addresses
and others on EID addresses.


> > how can a LISP MN act as its own ETR without an RLOC address of its
> > own? 
> 
> It has an RLOC: whatever IPvN address it has been assigned by DHCP, etc, on
> the network to which it is currently attached.

As I mentioned in my critique, Mobile LISP can't work with the MN on
an address behind NAT.


> > If the MN is in an end-user network, and that end-user network is using
> > EID addresses .. then its address can't be within an RLOC prefix.
> 
> If a LISP MN is behind an existing xTR (e.g. at a site boundary), then
> packets to it from elsewhere in the network have to be
> double-LISP-encapsulated when the arrive at the site's ETR (i.e. by the
> encapsulating ITR). The site xTR strips the first layer, and then the xTR in
> the LISP MN strips the second. 

I have now read and commented on the LISP Mobile I-D.  I had not
anticipated that anyone would propose double encapsulation.


> I'm not sure if this is covered in the draft,
> but it happens pretty naturally: the EID maps to an RLOC which happens to be
> an EID (i.e. there's a valid mapping for it), and gets mapped and
> encapsulated again.
> 
> (This is an instance of a circumstance where the two namespaces do in fact
> overlap. There is some complex hair I won't go into where if 'core' RLOCs are
> being allocated out of a namespace with another syntax, e.g. some new
> variable-length locator-spare, the source ITR can tell when it can stop
> looking up the RLOC, on the offchance it's also an 'EID', because RLOCs with
> that syntax cannot be an EID, but that's a long way down the road so I'm
> going to ignore it for now.)

OK.

I think you are using the term "namespace" far too loosely.

A few days ago, you wrote:

  http://www.ietf.org/mail-archive/web/lisp/current/msg00726.html

    The scalability of LISP fundamentally derives from the addition
    of a new namespace (or, to be a tad more precise, splitting an
    existing namespace - addresses - into two separate ones: routing
    locators, and endpoint identifiers); and there is a layer of
    binding (i.e. associations of names from one namespace to names
    in the other) between the two namespaces.

A namespace cannot be split.  It is a context by which the meaning of
a number or name is evaluated.

The set of addresses to which a namespace applies can be split, but
the result is not separate namespaces - it is just separate subsets
of numbers within the original namespace.

The set of numbers 0000 0000 to 9999 9999 has a particular set of
meanings in the namespace of the Australian 03 telephone area code
(Victoria and Tasmania).

We can split this set of numbers in various ways.  For instance, we
can split it numerically, such as all the numbers starting with 7,
all the numbers starting with 8 etc.

We could also split this set it into subsets according to whether the
number referred to an active telephone service or not.  That subset
could be further split into subsets for homes, business and
government etc.

None of these subsets are to be interpreted by separate namespaces.

They are all interpreted according to a single namespace: the logic
by which numbers in the 03 part of the Australian telephone number
system are interpreted.

There is another namespace for 8 digit numbers which are within the
Australian 02 area code (New South Wales - daft name for an
Australian state 38 times bigger than Wales . . .)

A particular number/name 3344 5566 has one meaning in the 02
namespace and another, completely separate and independent, meaning
in the 03 namespace.

With Mobile LISP, even when the MN's internal ETR function is on an
EID address, that address is still interpreted according to one
namespace by which all global unicast addresses are interpreted.

However, it is used for two purposes:

  Firstly, it is used as an address of an ETR.  In that case, we
  think of it as an RLOC.

  Secondly, it is used as the address of something where that
  address is mapped by the LISP mapping system, and the system
  returns an "RLOC" address (rather than a response saying it is not
  mapped).  In this case, the address is being used as an EID.


When LISP was designed, and still according to the latest version:

  http://tools.ietf.org/html/draft-farinacci-lisp-12

it was not contemplated that any address would be used for both roles
at once.  Consequently, there is an edict to this effect:

  EIDs MUST NOT be used as LISP RLOCs.

This will need to be revised in order to be compatible with
draft-meyer-lisp-mn-00.

The original LISP arrangement was not separate namespaces for RLOCs
and EIDs - it was simply separating the set of addresses which the
global unicast address space applies to into two separate subsets.
Any address which is used as an EID is a member of the "EID" set and
is prohibited from being used as an RLOC, so it can't be in the
"RLOC" set.

Now, with Mobile LISP, "EID" and "RLOC" become descriptions of roles
which an address could perform.

An address YY can be the RLOC of XX when XX is being used in its EID
role.  The same value YY can be used an EID role, for which an
address ZZ is the RLOC of YY.

I think it is neither accurate nor helpful to portray these separate
roles or sets as separate namespaces.  To do so would degrade the
important and otherwise clear meaning of "namespace" and/or present
LISP in a confusing and inaccurate manner.

When an ITR gets mapping for a packet's destination address and
therefore encapsulates the packet, it will at that point be using the
inner (original) destination address as an EID and the results of the
mapping lookup, for the outer destination address, as an RLOC.

An ITR will always find a mapping for, and therefore will
encapsulate, any packet whose address is within the EID subset of the
 global unicast address space.

There is no separate namespace.  All packets are treated the same
way.  If they arrive at or are generated within the ITR their outer
header's destination address is examined to see whether the mapping
system returns an RLOC.  If it does, the packet is encapsulated with
that RLOC address as the outer header's destination.

Before the LISP Mobile I-D, and still according to
draft-farinacci-lisp-12, these subsets of the set of global unicast
addresses:

   RLOC     EID

were disjoint sets.

Now, according to LISP Mobile, they are potentially overlapping sets.

They are not separate namespaces.

When a router or an ITR processes a packet with a given address NN in
the destination field, it always does the same thing.  There is
nothing to say "interpret this as an EID" or "interpret this as an
RLOC".  (If there was, and if the ITR's behavior for NN changed as a
result, then there would be separate EID and RLOC namespaces.)

In all cases ordinary routers forward packets according to the
destination address.

In all cases the ITR looks at the destination address and if it can
find mapping for that address as an EID, then it will encapsulate the
packet.

While it is technically possible to use an IPv6 RLOC address to
tunnel a packet which is addressed to an IPv4 EID, this is not
separate RLOC and EID namespaces, since the number ranges of IPv4 and
IPv6 are incompatible.

Here is how LISP could have separate namespaces for EIDs and RLOCs,
using IPv4 addresses in the example.

   44.55.66.77 when interpreted according to the EID namespace
   identifies a particular host.

   44.55.66.77 when interpreted according to the RLOC namespace
   identifies an ETR address, which has no relationship whatsoever
   with the host just mentioned.

   This would be handy, since the entire set of global unicast
   addresses could be devoted to EID purposes and the same set could
   be used independently as RLOCs to identify billions of ETR
   addresses.

However, to implement this, every router, including every DFZ router,
would need to be modified to somehow identify the packets and decide
which namespace within which to interpret the destination address.
This could be done by looking past the IP header, finding a UDP
header of the right sort and then finding a LISP header.
Alternatively, the IPv4 header format could be changed to tell each
router which namespace to use.

This would be great except . . . . except we would have to
re-engineer every router in the world before LISP could be used.

The most important thing about the core-edge separation schemes
(LISP, APT, Ivip and TRRP - maybe SixOne Router too) is that they do
NOT use separate namespaces for identifying hosts and ETRs.  This
means they can be deployed globally without altering IP packet
formats or modifying all routers.  Also, there is no need to modify
hosts.

HIP has separate namespaces.  It only works with modified hosts.  HIP
cannot be a solution to the routing scaling problem, because we need
a system which can be introduced widely on an entirely voluntary
basis.  This rules out any system which only works with upgraded
hosts, such as HIP.

The requirement for widespread voluntary adoption may also rule out
any system which requires upgrades to all DFZ routers.  However I
remain optimistic that the alterations to packet formats and DFZ
router functions I suggest in draft-whittle-ivip4-etr-addr-forw-01
and especially http://www.firstpr.com.au/ip/ivip/ivip6/ could be
introduced easily before Ivip is deployed.


I tried to formalise these constraints due to the need for voluntary
adoption:

  http://www.firstpr.com.au/ip/ivip/RRG-2009/constraints/

no-one seemed to have a significant disagreement with them.

 - Robin


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Cc: lisp@ietf.org, Noel Chiappa <jnc@mercury.lcs.mit.edu>
Subject: Re: [lisp] LISP does not involve separate namespaces
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> Short version:  "RLOC" and "EID" are not, and never have been,
>                separate namespaces.

Let me give you an example where EIDs and RLOCs are separate namespaces.

Today, the LISP test network uses 2610:00d0::/32 as a global unique  
EID-prefix. IPv6 sites will have devices assigned from this global  
prefix. This is a PI-prefix because it is not assigned to any service  
provider. This prefix is not injected into the underlying routing  
system, be it the /32 itself or any more specifics.

RLOCs will be assigned out of the 2002::/16 (among possibly other high- 
level prefixes). They can be PA-assigned prefixes. They will be  
assigned to the LISP ETR CE/PE link. They will appear in locator-sets  
of LISP map-cache entries.

So, architecturally, the 2 address spaces are separate and can  
implemented that way. It could be desirable to have an EID address out  
of the 2002::/16 space or a RLOC address out of the 2610:00d0::/32  
space. But it may not be needed with such a large address space.

For IPv4, life is harder because of the vast install base, so the  
clear separation is harder to appreciate. But you could have the same  
address assigned from each namespace.

Just an FYI, in the prototype implementation, we use another VRF  
called "the LISP VRF" which stores solely EID-prefixes so we can  
operate the BGP-ALT in this namespace. And the default VRF has both  
namespaces so you can run underlying BGP at the site as well as having  
EID-subnets in your IGP.

Dino


From jnc@mercury.lcs.mit.edu  Thu Jul 30 06:34:52 2009
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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
Cc: jnc@mercury.lcs.mit.edu
Subject: Re: [lisp] LISP does not involve separate namespaces
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    > From: Robin Whittle <rw@firstpr.com.au>

    > "RLOC" and "EID" are not, and never have been, separate namespaces.

Yes, that's why we don't need a translation service to map from one to
another. Got it.

	Noel


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Cc: Noel Chiappa <jnc@mercury.lcs.mit.edu>, Robin Whittle <rw@firstpr.com.au>, lisp@ietf.org
Subject: Re: [lisp] LISP does not involve separate namespaces
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Dino Farinacci allegedly wrote on 07/30/2009 15:31 GMT+02:00:
> So, architecturally, the 2 address spaces are separate and can
> implemented that way. It could be desirable to have an EID address out
> of the 2002::/16 space or a RLOC address out of the 2610:00d0::/32
> space. But it may not be needed with such a large address space.
>
> For IPv4, life is harder because of the vast install base, so the clear
> separation is harder to appreciate. But you could have the same address
> assigned from each namespace.

Suppose a nameserver or some other piece of critical infrastructure is 
in RLOC space, and an endpoint wants to talk to it.  What happens?  How 
does the endpoint's site network, or xTR, tell whether the destination 
address is an RLOC or an EID if the address spaces overlap?

Scott

From jnc@mercury.lcs.mit.edu  Thu Jul 30 06:49:07 2009
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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
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Subject: Re: [lisp] LISP does not involve separate namespaces
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    > From: Scott Brim <scott.brim@gmail.com>

    > Suppose a nameserver or some other piece of critical infrastructure is
    > in RLOC space, and an endpoint wants to talk to it.

If endpoints want to be able to talk to it, probably the best way is to have
an EID assigned to it.

    > How does ... tell whether the destination address is an RLOC or an EID
    > if the address spaces overlap?

Without context, you can't.

People seem to be forgetting the words 'incremental' and 'practical' here.
Yes, if we were doing a 'clean sheet' design, we could make a clear
separation between the two. HELLO! We don't have that luxury. Some ugliness
is therefore inevitable.

	Noel

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Cc: Noel Chiappa <jnc@mercury.lcs.mit.edu>, Robin Whittle <rw@firstpr.com.au>, lisp@ietf.org
Subject: Re: [lisp] LISP does not involve separate namespaces
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> Dino Farinacci allegedly wrote on 07/30/2009 15:31 GMT+02:00:
>> So, architecturally, the 2 address spaces are separate and can
>> implemented that way. It could be desirable to have an EID address  
>> out
>> of the 2002::/16 space or a RLOC address out of the 2610:00d0::/32
>> space. But it may not be needed with such a large address space.
>>
>> For IPv4, life is harder because of the vast install base, so the  
>> clear
>> separation is harder to appreciate. But you could have the same  
>> address
>> assigned from each namespace.
>
> Suppose a nameserver or some other piece of critical infrastructure  
> is in RLOC space, and an endpoint wants to talk to it.  What  
> happens?  How does the endpoint's site network, or xTR, tell whether  
> the destination address is an RLOC or an EID if the address spaces  
> overlap?

The ALT tells you if the destination is in EID space or RLOC space.  
But that is not sufficient. You have to consider other cases based on  
the source address of the packet.

If the source address of the site host is not from a list of  
configured EID-prefixes for the site, the ITR "natively forwards" the  
packet (which means it does not encapsulate it). So this would be RLOC- 
to-RLOC communication. If the source address of the site host is from  
a list of configured EID-prefixes for the site, the ITR will natively  
forward based on the first paragraph above. So this would be EID-to- 
RLOC communication.

When an ITR is not attached to the ALT, which is the default setting  
for a LISP site router (because we want it to be as low-opex as  
possible), it will have "negative cache entries, which are coarse  
prefixes that reside in the map-cache, with an action of "natively  
forward". The map-resolver sends these "negative Map-Replies" when it  
finds out that the destination of a Map-Request is not in the ALT.

The negative cache entries are very coarse so we can keep the smallest  
number as possible in the map-cache. I have included some "show ip  
lisp map-cache" output from an ITR on the LISP test network. Notice  
the bit patterns and prefix mask-lengths used based on a single EID- 
prefix block of 153.16.0.0/16 allocated to LISP sites.

Dino

----

LISP IP Mapping Cache for VRF "default", 9 entries

0.0.0.0/1, uptime: 1d07h, expires: 23:54:43, via map-reply
   Negative cache entry, action: forward-native

128.0.0.0/4, uptime: 1d06h, expires: 23:54:43, via map-reply
   Negative cache entry, action: forward-native

152.0.0.0/8, uptime: 20:26:25, expires: 03:33:34, via map-reply
   Negative cache entry, action: forward-native

153.16.10.0/24, uptime: 1d07h, expires: 23:58:49, via map-reply, auth
   Locator          Uptime    State     Priority/Weight  Data|Control  
in/out
   xxx.xxx.xxx.xxx  1d07h     up        1/50             0/0  |  909/910
   xxx.xxx.xxx.xxx  1d07h     up        1/50             0/0  |  910/910

153.16.19.0/24, uptime: 1d02h, expires: 23:58:49, via map-reply, auth
   Locator       Uptime    State     Priority/Weight  Data|Control in/ 
out
   xxx.xxx.xxx.x 1d02h     up        5/100            3/4  |  3065/3066

154.0.0.0/7, uptime: 06:58:14, expires: 17:01:45, via map-reply
   Negative cache entry, action: forward-native

160.0.0.0/3, uptime: 06:50:32, expires: 17:09:27, via map-reply
   Negative cache entry, action: forward-native

192.0.0.0/3, uptime: 06:49:30, expires: 17:10:29, via map-reply
   Negative cache entry, action: forward-native

----


From mrw@lilacglade.org  Thu Jul 30 09:12:13 2009
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From: Margaret Wasserman <mrw@lilacglade.org>
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Hi Noel,

Thank you for your response.  It was very helpful, but I still have  
some questions/concerns...

On Jul 29, 2009, at 9:10 PM, Noel Chiappa wrote:
>
> Like I said, the best way to think of LISP is that it's an  
> incrementally
> deployable system which splits the single IP address namespace into  
> two
> separate namespaces: one for location, and one for identity. In  
> keeping with
> the 'incremental' part, there is a boundary between the (logical)  
> part of the
> network in which those two separate name(space)s exist, and the  
> (logical)
> part of the network in which there's only one; and the location of  
> that
> boundary can move over time.

This is what I referring to in my earlier message when I said RLOC-to- 
EID transition.  I think that the term "boundary" is much clearer.   
Thank you.
>

>> I thought that the transition between the global routing domain  
>> (RLOCs)
>> and the edge routing domain (EIDs) would happen at a fairly high  
>> level
>> in the topology ... However, it seems that some of the design  
>> decisions
>> being made in LISP ... are being made to enable the RLOC-to-EID
>> transition to happen at the edge of much smaller networks (homes,  
>> small
>> offices, etc.), perhaps even behind a local NAT box.
>
> Right. That's the 'location of the boundary moves over time' thing.

In which direction do you think the boundary will move?

Am I right in my understanding that I can only have one LISP boundary  
between an end-node and the Internet core?  If so, will an end-site be  
unable to deploy LISP at their site boundary if their ISP has already  
deployed it at a higher level?  If that is the case, and the LISP  
boundary starts at the edges of sites, it would require a lot of  
coordination to move that boundary towards the Internet core later (as  
it would have to move upward for all sites at the same time, and the  
sites might lose some advantages that they have been enjoying).
>
>> If LISP is deployed at the home gateway level, I am not sure how we
>> gain much in the way of route scaling improvements, since we would  
>> have
>> to support global domain (RLOC) routing all the way down to the
>> per-home level, which is what we are doing today.
>
> The thing is that we expect RLOCs to be assigned in such a way that  
> they are
> much more eggregatable (i.e. smaller routing tables).
>
> E.g. one problem has always been that people don't want to change  
> their
> hosts' IP addresses, because it's a pain in the XXX. So they keep  
> their IP
> addresses when they move, and that causes routing table bloat.
>
> To put it another way, the requirements of low routing overhead  
> (aggregatable
> addresses) and the requirement of ordinary users (have unchanging IP
> addresses for their hosts) were diametrically opposed - and as long  
> as we
> only had a single namespace, there was no way to do both of those  
> things at
> the same time.
>
> Now, with separate EID and RLOC spaces, we can. RLOCs are assigned  
> to be
> maximally aggregatable, and EIDs stay constant no matter where the  
> host(s)
> move. E.g. when a small office moves to a different ISP, it can both  
> keep its
> old IP addresses, but without adding an entry to the core routing  
> tables.
>
> So, to go back to your question: even if we have a neighbourhood  
> full of LISP
> MN's, the entire neighbourhood will still only generate a single  
> routing
> table entry - all the LISP MN's will have RLOCs allocated from a  
> single
> block, even if their EIDs are from all sorts of different blocks.

This all makes sense to me, I think...

Your explanation basically says (as I interpret it) that LISP will  
allow us to give provider-independent identifiers (EIDs) to end sites,  
without adding routes to the core Internet routing tables.  There is  
an assertion/belief that end-sites will not care about what locators  
(RLOCs) are used to route their packets, as long as the identifier(s)  
(EIDs) that others (other end-nodes, users, customers) use to find  
them remain persistent, even if they move (topologically) within the  
Internet for whatever reason.  So, we believe that we will be able to  
freely change a LISP-enabled site's RLOCs to retain a high level of  
aggregation, even when a site changes ISPs or the structure of the ISP  
network changes.

If that assertion/belief is actually true, then I do understand (now  
that you have explained it to me -- thank you!) how LISP hopes to  
address the scaling issues with the global routing table, even if the  
LISP boundaries are at site boundaries.

I have some concerns about how well this will work, though...

We already (pre-LISP) have a situation where the DNS is often used as  
a mapping system to locate other sites and services.  The DNS name(s)  
of a site do not change when the site's address(es) change, so the DNS  
name could be considered a persistent identifier.  The problem is that  
certain properties of the DNS make it unreasonable to use DNS names in  
all of the places that we'd prefer to have a persistent identifier for  
a remote host.  Are we sure that EIDs (and the associated EID->RLOC  
mapping mechanism) will be acceptable for this purpose?  How are we  
planning to avoid the problems that have made the in the DNS  
unacceptable?

Margaret


From mrw@lilacglade.org  Thu Jul 30 09:50:05 2009
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Subject: Re: [lisp] IPv6 UDP checksum issue
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On Jul 29, 2009, at 8:02 AM, Dino Farinacci wrote:

>> This is a reminder that  draft-fairhurst-6man-tsvwg-udptt and
>>
>> http://tools.ietf.org/html/draft-eubanks-chimento-6man-00
>>
>> are still open and will be discussed at the 6man meeting Wednesday.
>>
>> Basically, one prescribes no checksum for the "outer" packet in
>> IPv6 encapsulations, the other a fixed checksum per flow. My
>> understanding is that this matter is relevant to LISP.
>>
>> If you are interested, please try to attend as a decision may be  
>> made soon.
>
> Sorry, I have a conflict right now. But here is the position of one  
> LISP implementor and a coauthor of the LISP specifications:
>
> From a practical perspective, we prefer that a LISP encapsulator  
> (ITR and PTR) not incurred additional work when encapsulating  
> packets. The main LISP spec indicates:
>
> (1) The UDP checksum in the outer header MUST be set to 0 by an  
> encapsulator.
> (2) The decapsulator MUST ignore the UDP checksum.
>
> We stand by this text and see no reason to change it.

Are you using "we" to refer to yourself as both an implementor and a  
co-author?  ;-)

FWIW, I have serious concerns about draft-fairhurst-6man-tsvwg-udptt,  
as it involves overloading the UDP "next-header" value to refer to two  
different header types (real UDP and UDP-TT).

However, I also have serious concerns about using zero UDP checksums  
with IPv6.
>
> There are no practical reasons to use outer header UDP checksums  
> regardless of the 4 combinations of packet types (v4-in-v4, v6-in- 
> v6, v6-in-v4, or v4-or-v6) being forwarded by LISP routers.

I think that this statement is answering the wrong question...

Since we have standards-track protocols that indicate that UDP  
checksums must not be zero in IPv6 (for good reasons), I believe that  
we should use valid UDP checksums in IPv6 outer headers, unless we can  
provide practical (and compelling) reasons why _not_ to do so.  So,  
what are those reasons?

If we do manage to achieve consensus that it makes sense to zero-out  
the UDP checksum in IPv6 outer headers, there are a number of  
questions we will have to answer...

The problem with eliminating the UDP checksum in UDP over IPv6 is that  
(unlike in IPv4) the IPv6 source and destination addresses are not  
protected.  So, the packet may be corrupted such that it is sent to  
the wrong destination.  When it arrives at the wrong destination, it  
may be processed by an IP stack that is unaware of LISP.

We need to consider what will happen if one of these packets is  
received by a non-LISP node.  Are you assuming that non-LISP stacks  
will simply throw away these packets, because they have zero (and  
therefore invalid) UDP checksums?  That's only a good assumption if we  
assume that LISP is the _only_ protocol that will allow the use of  
zero checksums.  If the packet is processed by the stack, there  
shouldn't be a non-LISP application on port 4342, so the packet should  
be dropped.  We should define, however, how the sending LISP node will  
deal with an ICMPv6 "port unreachable" error, so that an error  
received from the wrong destination does not interfere with  
communication with the right destination.

We also need to consider the possibility that a packet will be  
received by a different LISP node than the one for which it was  
intended, or that it will arrive at the correct LISP destination with  
the wrong source address in the external header.  What happens in  
those cases?

Margaret





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Subject: Re: [lisp] IPv6 UDP checksum issue
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On Thu, Jul 30, 2009 at 12:49 PM, Margaret Wasserman<mrw@lilacglade.org> wr=
ote:
>
>
> Since we have standards-track protocols that indicate that UDP checksums
> must not be zero in IPv6 (for good reasons), I believe that we should use

(enumerate good reasons pls)

> valid UDP checksums in IPv6 outer headers, unless we can provide practica=
l
> (and compelling) reasons why _not_ to do so. =A0So, what are those reason=
s?
>
> If we do manage to achieve consensus that it makes sense to zero-out the =
UDP
> checksum in IPv6 outer headers, there are a number of questions we will h=
ave
> to answer...

I thought the question was actually to:
o drop no-checksum packets at transition points (v4 -> v6)
  or
o compute checksums at transition points

I don't think there was discussion about not checksumming ipv6
packets, changing the v6 spec to look more like its predecessor here
isn't a bad thing (I think)... but wasn't part of the original
discussion.

> The problem with eliminating the UDP checksum in UDP over IPv6 is that
> (unlike in IPv4) the IPv6 source and destination addresses are not
> protected. =A0So, the packet may be corrupted such that it is sent to the
> wrong destination. =A0When it arrives at the wrong destination, it may be
> processed by an IP stack that is unaware of LISP.

huh? doesn't this mythical distant system have a network stack with
state for UDP packets and isn't it going to just reject the packet
with an icmp port-unreachable? (as happens today on all os's I've
seen)

>
> We need to consider what will happen if one of these packets is received =
by
> a non-LISP node. =A0Are you assuming that non-LISP stacks will simply thr=
ow

some list originating node will get a spurious icmp port unreachable.

>
> We also need to consider the possibility that a packet will be received b=
y a
> different LISP node than the one for which it was intended, or that it wi=
ll
> arrive at the correct LISP destination with the wrong source address in t=
he
> external header. =A0What happens in those cases?

lisp, I think, has nonce protections (or application layer
protections) for this sort of mishap, it has to  in order to deal with
normal security issues.

-chris

From jnc@mercury.lcs.mit.edu  Thu Jul 30 11:21:01 2009
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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
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Subject: Re: [lisp] LISP Mobility Architecture
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    > From: Margaret Wasserman <mrw@lilacglade.org>

    > Thank you for your response.

Sure.

    > but I still have some questions/concerns...

Sure.


    >> That's the 'location of the boundary moves over time' thing.

    > In which direction do you think the boundary will move?

My assumption has always been that it would move closer to the host, because
I'd like to see the 'advanced' area (the one where the two separate
namespaces are in use) spread over time, so that the architecture of the
Internet as a whole can evolve.

(I should explain that my long-term vision is that once we have a collection
of xTRs as a boundary around a 'LISP' backbone, we can evolve what's inside
that area separately from the edges.)


    > Am I right in my understanding that I can only have one LISP boundary
    > between an end-node and the Internet core?

I too had originally assumed there would/could only be one, but as pointed
out when the question about 'what happens when a LISP MN moves to a site
which has already deployed LISP, and gets as an 'RLOC' an IPvN address which
is actually an 'EID' in that site' came up, that situation is handled by
having nested LISP encapsulations. I.e. you can have more than one boundary,
they nest.

As RW correctly points out, this has the usual downsides of multiple
encapsulations: header overhead, etc. I'm also not thrilled about the way in
which it entangles the EID and RLOC namespaces. The upside is that it's
simpler to implement than the alternative (which is to have an encapsulation
which can hold multiple, nested, RLOCs, and a mapping system which can return
a nested-multi-RLOC output).

    > If so, will an end-site be unable to deploy LISP at their site boundary
    > if their ISP has already deployed it at a higher level?

Although this is in fact technically feasible, it's still an interesting
scenario to discuss and evaluate. I guess my first question is 'why would an
ISP deploy LISP anywhere but the ISP/customer boundary anyway'? There's no
point to deploying it at the ISP/ISP boundary. It would naturally be deployed
at the customer boundary, to protect the customer from address changes in the
ISP, no?

    > it would require a lot of coordination to move that boundary towards
    > the Internet core later (as it would have to move upward for all sites
    > at the same time

The question of 'how to move the boundary' is an interesting one, but there'
is not a synchronization issue - and in any event, I think it would be more
likely to move in the other direction (i.e. away from the core).


    > .. LISP will allow us to give provider-independent identifiers (EIDs)
    > to end sites, without adding routes to the core Internet routing
    > tables. .. end-sites will not care about what locators (RLOCs) are used
    > to route their packets, as long as the identifier(s) (EIDs) that others
    > .. use to find them remain persistent, even if they move
    > (topologically) within the Internet for whatever reason. So, we believe
    > that we will be able to freely change a LISP-enabled site's RLOCs to
    > retain a high level of aggregation, even when a site changes ISPs or
    > the structure of the ISP network changes.

Exactly. (In addition, a variety of things like multi-homing and traffic
engineering are also simpler if location and identity and separated, but
let's leave that for the moment.)

    > I have some concerns about how well this will work, though...

Well, nothing in life is certain... :-)

    > We already (pre-LISP) have a situation where the DNS is often used as a
    > mapping system to locate other sites and services. The DNS name(s) of a
    > site do not change when the site's address(es) change, so the DNS name
    > could be considered a persistent identifier. The problem is that
    > certain properties of the DNS make it unreasonable to use DNS names in
    > all of the places that we'd prefer to have a persistent identifier for
    > a remote host.

Well, exactly. I'd felt for a long time that we ought to be able to change
addreses easily, because we had DNS, but apparently that isn't so. Too many
places in the software use IP addresses, not DNS names.

To some degree this seems to be partially historical - since DNS name are
more recent, a lot of historical expectations were that we'd use IP
addresses, and so they got built in to a lot of places they didn't need to be.

Although there is _some_ success to DNS names, especially in places in which
they are 'deeply embedded'. E.g. moving a web site to a different provider
seems to be _relatively_ doable, because the web is _so_ centric on DNS
names.

    > Are we sure that EIDs (and the associated EID->RLOC mapping mechanism)
    > will be acceptable for this purpose?

I guess I'm hoping that a combination of i) already having two 'static'
namespaces (DNS names and EIDS), ii) the fact that most hosts can't even see
RLOCs, plus iii) hard-learned lessons about how painful it gets when names
which ought to be dynamic get 'hard-coded' into places where we ought to be
using non-dynamic names, will prevent the same problem happening all over
again. We'll see, I guess!

    > How are we planning to avoid the problems that have made the in the DNS
    > unacceptable?

It's not so much that DNS was unacceptable (I think), as that IP addresses
were used, e.g. in access control lists at places other than the site itself.

Were there problems with DNS names that led to people preferring addresses?
To the extent there were problems with DNS names, would EIDs be so different
that they would not share them? If so, then I think we can avoid people using
RLOCs, and degrading their dynamicity? Does that sound plausible?

	Noel

From lars.eggert@nokia.com  Thu Jul 30 12:26:09 2009
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Cc: "ipv6@ietf.org" <ipv6@ietf.org>, "lisp@ietf.org" <lisp@ietf.org>
Subject: Re: [lisp] IPv6 UDP checksum issue
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Hi, Dino,

On 2009-7-29, at 14:02, Dino Farinacci wrote:
> From a practical perspective, we prefer that a LISP encapsulator (ITR
> and PTR) not incurred additional work when encapsulating packets.

could you share some data on how much of a performance impact we're  
talking about here? I was under the (maybe naive) impression that  
checksum offloading was practically ubiquitous these days.

> The main LISP spec indicates:
>
> (1) The UDP checksum in the outer header MUST be set to 0 by an  
> encapsulator.
> (2) The decapsulator MUST ignore the UDP checksum.
>
> We stand by this text and see no reason to change it.

This is in direct conflict with what RFC2460 says, and I'd personally  
would find it problematic to approve publication of an Experimental  
protocol that did this, unless there was an IETF consensus on a  
standards-track document that would update RFC2460 accordingly. Such a  
document would IMO need to show extremely strong arguments for why  
this change is needed. Updating RFC2460 is also in direct conflict  
with the message that the IETF has been trying to send, namely, that  
IPv6 is stable and done. Is this really worth it?

> There are no practical reasons to use outer header UDP checksums
> regardless of the 4 combinations of packet types (v4-in-v4, v6-in-v6,
> v6-in-v4, or v4-or-v6) being forwarded by LISP routers.

I hear you, but is there any quantifiable downside to just compute the  
checksums, esp. if it can be done in hardware?

Thanks,
Lars
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From jnc@mercury.lcs.mit.edu  Thu Jul 30 13:22:39 2009
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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
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Subject: Re: [lisp] IPv6 UDP checksum issue
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    > From: Lars Eggert <lars.eggert@nokia.com>

    > This is in direct conflict with what RFC2460 says, and I'd personally
    > would find it problematic to approve publication of an Experimental
    > protocol that did this, unless there was an IETF consensus on a
    > standards-track document that would update RFC2460 accordingly. Such a
    > document would IMO need to show extremely strong arguments for why this
    > change is needed.

This is for an inter-router packet carriage use, not end-end. Why the dickens
should there be a mandatory checksum on the data in the packet for sending a
packet from one router to another?

	Noel

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> Hi, Dino,
>
> On 2009-7-29, at 14:02, Dino Farinacci wrote:
>> From a practical perspective, we prefer that a LISP encapsulator (ITR
>> and PTR) not incurred additional work when encapsulating packets.
>
> could you share some data on how much of a performance impact we're  
> talking about here? I was under the (maybe naive) impression that  
> checksum offloading was practically ubiquitous these days.

One of the problems with IPv6 is that is so similar to IPv4 but  
different enough to cause pain for implementations. So since we can  
use 0 UDP checksums for IPv4 in UDP in IPv4, we would want to build  
(or use existing hardware) that does IPv6-or-IPv4 in UDP in IPv6.

Reasons being (1) cost in building hardware, (2) chip area, (3) power,  
(4) complexity, and (5) inconsistency from IPv4.

This is only for encapsulated packets. This is for the outer header  
only.

>> The main LISP spec indicates:
>>
>> (1) The UDP checksum in the outer header MUST be set to 0 by an  
>> encapsulator.
>> (2) The decapsulator MUST ignore the UDP checksum.
>>
>> We stand by this text and see no reason to change it.
>
> This is in direct conflict with what RFC2460 says, and I'd  
> personally would find it problematic to approve

Sorry, but we want to build practical products. If you don't build  
practical standards, vendors will violate them.

> publication of an Experimental protocol that did this, unless there  
> was an IETF consensus on a standards-track document that would  
> update RFC2460 accordingly. Such a document would IMO need to show  
> extremely strong arguments for why this change is needed. Updating  
> RFC2460 is also in direct conflict with the message that the IETF  
> has been trying to send, namely, that IPv6 is stable and done. Is  
> this really worth it?
>
>> There are no practical reasons to use outer header UDP checksums
>> regardless of the 4 combinations of packet types (v4-in-v4, v6-in-v6,
>> v6-in-v4, or v4-or-v6) being forwarded by LISP routers.
>
> I hear you, but is there any quantifiable downside to just compute  
> the checksums, esp. if it can be done in hardware?

A hardware forwarding engine is not going to compute a pseudo-header  
checksum and compute every byte of a packet. It's just not going to  
happen.

There has never been a requirement to do this before. My guess is you  
can slow performance by 20%.

Dino


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Cc: ipv6@ietf.org, lisp@ietf.org
Subject: Re: [lisp] IPv6 UDP checksum issue
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> We need to consider what will happen if one of these packets is  
> received by a non-LISP node.  Are you assuming

Non-LISP nodes cannot decapsulate LISP packets so they don't have this  
problem.  ;-)

Zero UDP checksums are build in an outer UDP header by an ITR, and an  
ETR which decapsulates the packet will not check the checksum.

> that non-LISP stacks will simply throw away these packets, because  
> they have zero (and therefore invalid) UDP checksums?

We spec'ed this out for AMT as well. Same performance issue.

> That's only a good assumption if we assume that LISP is the _only_  
> protocol that will allow the use of zero checksums.  If the packet  
> is processed by the stack, there shouldn't be a non-LISP application  
> on port 4342, so the packet should be dropped.  We should define,  
> however, how the sending LISP node will deal with an ICMPv6 "port  
> unreachable" error, so that an error received from the wrong  
> destination does not interfere with communication with the right  
> destination.

I cannot parse any of this and non of it makes sense to me.

> We also need to consider the possibility that a packet will be  
> received by a different LISP node than the one for which it was  
> intended, or that it will arrive at the correct LISP destination  
> with the wrong source address in the external header.  What happens  
> in those cases?

This doesn't happen since the outer IP header is checksum.

Dino


From lars.eggert@nokia.com  Thu Jul 30 15:28:09 2009
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Subject: Re: [lisp] IPv6 UDP checksum issue
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Hi,

On 2009-7-30, at 22:22, Noel Chiappa wrote:
>> From: Lars Eggert <lars.eggert@nokia.com>
>
>> This is in direct conflict with what RFC2460 says, and I'd personally
>> would find it problematic to approve publication of an Experimental
>> protocol that did this, unless there was an IETF consensus on a
>> standards-track document that would update RFC2460 accordingly.  
>> Such a
>> document would IMO need to show extremely strong arguments for why  
>> this
>> change is needed.
>
> This is for an inter-router packet carriage use, not end-end. Why  
> the dickens
> should there be a mandatory checksum on the data in the packet for  
> sending a
> packet from one router to another?

Since we're up-levelling the discussion, I don't understand why one  
would use UDP as a router-router protocol in the first place,  
especially for IPv6, where the chance that the packet will hit a NAT  
are probably exactly zero.

What I'm saying is that *if* UDP us used, it needs to be used  
according to the RFCs that capture the IETF consensus on their use, or  
the IETF consensus must be revised.

Lars
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Cc: "ipv6@ietf.org" <ipv6@ietf.org>, Noel Chiappa <jnc@mercury.lcs.mit.edu>, "lisp@ietf.org" <lisp@ietf.org>
Subject: Re: [lisp] IPv6 UDP checksum issue
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> Since we're up-levelling the discussion, I don't understand why one  
> would use UDP as a router-router protocol in the first place,  
> especially for IPv6, where the chance that the packet will hit a NAT  
> are probably exactly zero.

Because when you use tunnel encapsulation, core routers attached to  
LAGs will see packets from one flow and polarize traffic on one member  
of the LAG.

So if the encapsulator can modify the source port of the UDP header  
based on a 5-tuple hash of the inner header, then there can be evenly  
balanced LAGs.

Core routers today load-split traffic across members of LAGs by doing  
a 5-tuple hash. And the 5 tuple hash works for TCP and UDP protocol  
numbered packets only.

The LISP authors received a lot of good input from network operators  
to not create this LAG problem. Hence, LISP uses UDP encapsulation.

> What I'm saying is that *if* UDP us used, it needs to be used  
> according to the RFCs that capture the IETF consensus on their use,  
> or the IETF consensus must be revised.

And what we are are saying is to be practical (and sensible).

Dino


From lars.eggert@nokia.com  Thu Jul 30 15:51:17 2009
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Cc: "ipv6@ietf.org" <ipv6@ietf.org>, "lisp@ietf.org" <lisp@ietf.org>
Subject: Re: [lisp] IPv6 UDP checksum issue
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Hi,

>> could you share some data on how much of a performance impact we're
>> talking about here? I was under the (maybe naive) impression that
>> checksum offloading was practically ubiquitous these days.
>
> One of the problems with IPv6 is that is so similar to IPv4 but
> different enough to cause pain for implementations. So since we can
> use 0 UDP checksums for IPv4 in UDP in IPv4, we would want to build
> (or use existing hardware) that does IPv6-or-IPv4 in UDP in IPv6.

if the existing hardware sends UDP packets over IPv6 with checksum  
zero, it is not compliant to the RFCs. If you're building new  
hardware, you will have to sacrifice some gates to do a UDP checksum  
calculation. Alternatively, you could pick a different encapsulation  
or change the IETF consensus on using UDP in IPv6.

> Sorry, but we want to build practical products. If you don't build
> practical standards, vendors will violate them.

Let me be blunt: If you are going to ignore IETF consensus, why are  
you here?

If you want to change that consensus, please convince the IETF to do  
so. Ignoring the consensus and the process by which we arrive at it is  
not an option.

>>> There are no practical reasons to use outer header UDP checksums
>>> regardless of the 4 combinations of packet types (v4-in-v4, v6-in- 
>>> v6,
>>> v6-in-v4, or v4-or-v6) being forwarded by LISP routers.
>>
>> I hear you, but is there any quantifiable downside to just compute
>> the checksums, esp. if it can be done in hardware?
>
> A hardware forwarding engine is not going to compute a pseudo-header
> checksum and compute every byte of a packet. It's just not going to
> happen.

I freely admit I'm not a hardware guy, but a hardware checksum was  
cheaply doable at (then) high-performance in 1995. See RFC1936.

> There has never been a requirement to do this before. My guess is you
> can slow performance by 20%.

There hasn't been a requirement for IPv4 because there is an IP header  
checksum. As to the performance numbers, my guess would be different,  
which is why I asked if you had data.

Lars
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From jnc@mercury.lcs.mit.edu  Thu Jul 30 16:33:09 2009
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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
Cc: jnc@mercury.lcs.mit.edu
Subject: Re: [lisp] IPv6 UDP checksum issue
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    > From: Lars Eggert <lars.eggert@nokia.com>

    > Alternatively, you could pick a different encapsulation

Dino, why don't we just drop the 'inside IPv6' encapsulations from the spec?
I.e. keep only IPv4 in IPv4 and IPv6 in IPv4? The IPv6 encapsulations could be
documented in a short non-IETF note that's posted on a personal web page
somewhere. (I'm assuming here that there are a few ISPs who'd actually want to
run inside IPv6, otherwise we could just drop them entirely.)

	Noel

From christian.vogt@ericsson.com  Thu Jul 30 17:01:21 2009
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Subject: [lisp] CFP - Special Issue on Internet Routing Scalability in IEEE JSAC
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Dear all -

FYI and for further distribution:  Below is a call for papers for a
special issue on Internet routing scalability in the IEEE Journal on
Selected Areas in Communications.

- Christian


------------------------------------------------------------------------


                            CALL FOR PAPERS
        IEEE Journal on Selected Areas in Communications (JSAC)
                     INTERNET ROUTING SCALABILITY

The Internet routing infrastructure provides connectivity among millions
of computers around the globe. As the Internet went through a phenomenal
growth over the last three decades, its routing system has encountered
multitude of challenges brought forth by the unprecedented scale of the
system.  In addition to the rapid growth in the number of customer
networks, there have been increasing trends of customer network
multihoming to facilitate load balancing and fail-over between multiple
providers, desiring provider-independent IP address assignments over
provider-allocated addresses to avoid internal renumbering when changing
providers, and Virtual Private Networks (VPNs) deployment to support
business and enterprise users. Unfortunately, the rapid user growth
compounded with multihoming, provider-independent addressing, and VPN
provisioning has led to a fast growth of the global routing systems. At
the same time, Internet service providers (ISPs) face economical
constraints that may prevent them from prompt upgrade to the latest
technologies to meet the demands.

More recently, the Internet routing architecture also confronted two new
challenges: the imminent exhaustion of IPv4 address space and hence
foreseeable wide deployment of IPv6, and the emerging mobile access to
Internet from billions of hand-held devices. The latter further drives
the demands for IPv6 roll out, yet the sheer size of the IPv6 address
space presents a great scaling concern to the routing system, and the
impact of various global-scale mobility solutions on the routing system
remains to be fully understood. The ever increasing size of the global
routing system also directly impacts its security and management. It is
imperative to solve the routing scalability problems in order to enable
continued growth of the Internet while allowing ISPs to operate with
feasible upgrade intervals.  This need has sparked a plethora of recent
research efforts, with proposed solutions ranging from
backwards-compatible, evolutionary techniques, to revolutionary
clean-slate approaches.

This special issue will focus on the latest research on Internet routing
scalability.  Prospective authors are expected to submit original
unpublished contributions to further analyze the problem space, to
compare and evaluate existing solution proposals, or to present new
solutions.  Topics of interest include, but are not limited to, the
following:

- addressing schemes that facilitate scalable routing designs,
- scalable solutions to network multihoming, traffic engineering, and
   VPN support
- impact of mobility on routing scalability
- routing threat analyses and security methods
- economical considerations
- analytical or comparative studies

All submissions must be prepared in accordance with the format described
at http://www.jsac.ucsd.edu/Guidelines/info.html, and be sent via email
to jsac-routing@lists.cs.ucla.edu according to the following timetable:

Manuscript submission:       October 30, 2009
Acceptance notification:     February 15, 2010
Final Manuscript due:        May 15, 2010
Publication:                 3rd quarter, 2010

Guest Editors:
- Tim Griffin, University of Cambridge UK (Timothy.Griffin@cl.cam.ac.uk)
- Tony Li, Ericsson USA (tony.li@tony.li)
- Dan Massey, Colorado State University, USA (massey@cs.colostate.edu)
- Christian Vogt, Ericsson USA (christian.vogt@ericsson.com)
- Jia Wang, AT&T Labs, Inc. - Research, USA (jiawang@research.att.com)
- Lixia Zhang, University of California, USA (lixia@cs.ucla.edu)

http://www.jsac.ucsd.edu/Calls/internetroutingscalabilityCFP.pdf



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Date: Thu, 30 Jul 2009 20:31:34 -0400
From: byzek <byzek@cisco.com>
To: Lars Eggert <lars.eggert@nokia.com>, "Dino Farinacci (dino)" <dino@cisco.com>
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Subject: Re: [lisp] IPv6 UDP checksum issue
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On Thu  7/30/09 6:51 PM, "Lars Eggert" <lars.eggert@nokia.com> wrote:

> Hi,
>=20
>>> could you share some data on how much of a performance impact we're
>>> talking about here? I was under the (maybe naive) impression that
>>> checksum offloading was practically ubiquitous these days.
>>=20
>> One of the problems with IPv6 is that is so similar to IPv4 but
>> different enough to cause pain for implementations. So since we can
>> use 0 UDP checksums for IPv4 in UDP in IPv4, we would want to build
>> (or use existing hardware) that does IPv6-or-IPv4 in UDP in IPv6.
>=20
> if the existing hardware sends UDP packets over IPv6 with checksum
> zero, it is not compliant to the RFCs. If you're building new
> hardware, you will have to sacrifice some gates to do a UDP checksum
> calculation. Alternatively, you could pick a different encapsulation
> or change the IETF consensus on using UDP in IPv6.
>=20
>> Sorry, but we want to build practical products. If you don't build
>> practical standards, vendors will violate them.
>=20
> Let me be blunt: If you are going to ignore IETF consensus, why are
> you here?
>=20
> If you want to change that consensus, please convince the IETF to do
> so. Ignoring the consensus and the process by which we arrive at it is
> not an option.
>=20
>>>> There are no practical reasons to use outer header UDP checksums
>>>> regardless of the 4 combinations of packet types (v4-in-v4, v6-in-
>>>> v6,
>>>> v6-in-v4, or v4-or-v6) being forwarded by LISP routers.
>>>=20
>>> I hear you, but is there any quantifiable downside to just compute
>>> the checksums, esp. if it can be done in hardware?
>>=20
>> A hardware forwarding engine is not going to compute a pseudo-header
>> checksum and compute every byte of a packet. It's just not going to
>> happen.
>=20
> I freely admit I'm not a hardware guy, but a hardware checksum was
> cheaply doable at (then) high-performance in 1995. See RFC1936.
>=20
>> There has never been a requirement to do this before. My guess is you
>> can slow performance by 20%.
>=20
> There hasn't been a requirement for IPv4 because there is an IP header
> checksum. As to the performance numbers, my guess would be different,
> which is why I asked if you had data.

It's not about performance; a large percentage of the currently-deployed
hardware can=B9t do UDP checksum calculations during encapsulation because it
doesn=B9t have access to the entire packet.  Most hardware is streamlined to
only provide the first n bytes of a packet to the forwarding engine, where
typically n < 128.

-J

>=20
> Lars
>=20
>=20
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


From rw@firstpr.com.au  Thu Jul 30 18:32:14 2009
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Cc: Scott Brim <scott.brim@gmail.com>, Noel Chiappa <jnc@mercury.lcs.mit.edu>
Subject: Re: [lisp] LISP does not involve separate namespaces
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I am replying to 5 sequential messages here - 2 from Dino, 2 from
Noel and 1 from Scott.

Dino's message:

  http://www.ietf.org/mail-archive/web/lisp/current/msg00752.html

2610:00d0::/32 and 2002::/16 are two separate subsets of the set of
addresses which are global unicast.  There is nothing about these
which accords with the definition of "namespace" Noel and I agree on:

  msg00748:

  RW:  A namespace is a context within which a number or name is
       interpreted.

  NC:  Exactly.

Dino - what is your definition of "namespace"?

When an ordinary router receives a packet with a destination address
matching either of these prefixes, it doesn't have any concept of
LISP or of the EID or RLOC role the address may be playing.

With Mobile LISP, the destination address could be in an RLOC role
(of the MN's internal ETR function) at the same time as being in an
EID role since it is a LISP-mapped EID address.

So there is no such different interpretation of addresses in these
prefixed by ordinary routers.

Nor would an ITR which supports Mobile LISP treat them any differently.

If an ITR receives, or generates within itself (as in Mobile LISP), a
packet with an address which the mapping system returns one or more
RLOCs for, then it will encapsulate the packet with one of those
RLOCs as the destination address of the outermost header.

So these are just subsets of the global unicast address space.
Before Mobile LISP they were non-overlapping (disjoint) subsets.
Now, with Mobile LISP, they are potentially overlapping sets.  These
sets - the fact that an address could be playing an EID and/or an
RLOC role - have nothing at all to do with separate namespaces.



Noel wrote:

  RW: > "RLOC" and "EID" are not, and never have been, separate
      > namespaces.

  Yes, that's why we don't need a translation service to map from one
  to another. Got it.

Rather than just blowing me off, please respond to my messages
msg00747 and msg00751 by showing in detail how LISP, as currently
defined or as it could be introduced in any practical manner,
involves separate namespaces for an address depending on the EID or
RLOC role it is playing.

There no such thing as translation from one namespace to another.

There is no translation between namespaces for the Cisco phone number
526-4000.  That number on its own is useless unless you happen to be
calling from close to Cisco's head office.  The namespace within
which this number can be interpreted to identify the Cisco head
office phone service is the US area code (400) namespace.

There is no such thing as translating the meaning which 526-4000 has
in the (400) namespace into an identical, similar or related meaning
in the (399) namespace, the (401) namespace or any other namespace.

RLOC and EID are roles an address can play within the LISP system.
Sometimes an address plays both roles, as does the YY address in
msg00751.


Scott wrote in msg00747, responding to Dino:

> How does the endpoint's site network, or xTR, tell whether the
> destination address is an RLOC or an EID if the address spaces
> overlap?

Before Mobile LISP, and as LISP as currently defined by
draft-farinacci-lisp-12 EID and RLOC address spaces are disjoint sets:

  EIDs MUST NOT be used as LISP RLOCs.

therefore, it would be possible for an xTR (ITR or ETR) to determine
which set a given address YY falls into.  It would do this by sending
a map request for YY.  If it receives mapping, then YY is an EID.  If
not, YY is an RLOC.   Before Mobile LISP, if a packet was addressed
to an EID, then the ITR would encapsulate it.  Then, since the
resulting outer header was and RLOC address, and since an RLOC
address could not also be an EID address, there was no need to
examine the packet further.  So the ITR simply forwards it.

With Mobile LISP, the set of addresses which are playing an EID role
can overlap with the set which are playing an RLOC role.  So there is
no clear notion of an address being "an EID" or "an RLOC".

An address might be playing the EID role in one relationship and an
RLOC role in another.  Please see my attempt to explain how Mobile
LISP works, with addresses XX, YY and ZZ in the double-encapsulation
system, in msg00751.

YY plays both roles at once.  It is a member of both the EID and the
RLOC subsets, which overlap.

There is no separate namespace for handling addresses which are
playing one role or another.  Ordinary routers treat packets just the
same, oblivious to LISP and the role the destination address might be
playing in various parts of the LISP system.

ETRs treat them just the same.  If an ETR receives a packet with the
outer destination address matching one of its ("RLOC") addresses, it
strips off that outer header and then processes the packet according
to the next header.

ITRs treat them just the same.  If an ITR receives, or generates
within itself, a packet with YY as the destination address, it looks
up the mapping for YY.  It makes no difference whether or not YY was
playing the RLOC role for an ETR which happens to be the internal ETR
function of a MN.  If the ITR receives mapping for YY, this tells it
that YY is part of the set of addresses which are playing an EID
role, so it encapsulates the packet with another set of headers (IP,
UDP and LISP) with an outer destination address selected from the one
or more "RLOC" addresses returned in the mapping.

None of this involves separate namespaces.


Noel wrote in msg00755:

> People seem to be forgetting the words 'incremental' and
> 'practical' here.  Yes, if we were doing a 'clean sheet' design, we
> could make a clear separation between the two. HELLO! We don't have
> that luxury. Some ugliness is therefore inevitable.

>From the perspective of architectural purity, I agree, ideally we
would have separate namespaces so we could re-use the entire global
unicast address space in an "RLOC" role without upsetting the
existing "EID" role.

On this basis, not having separate namespaces for addresses being
used in these roles is indeed "ugly".  On this basis, HIP is
beautiful and LISP, APT, Ivip and TRRP are ugly.


The routing scaling problem is a practical matter involving billions
of dollars and the capacity of the Internet to work efficiently -
including matters of economics, address space utilisation and access
for new entrants.  Billions of people depend on the Internet for
business, interpersonal, emergency and political communications.  The
Internet is of vast practical value.

As an academic exercise, the routing scaling problem probably would
be best solved with a clean-slate design, separate namespaces or
whatever.

Our task is a practical one, and the constraints imposed by the need
for very widespread voluntary adoption:

  http://www.firstpr.com.au/ip/ivip/RRG-2009/constraints/

mean that practical considerations are more important than
theoretical ideals.

LISP, APT, Ivip and TRRP all share the important attribute that they
can work with all devices - existing hosts and routers - continuing
to use the same single namespace for interpreting the meanings of
addresses which are used in both the RLOC and EID roles.  HIP can't
do this.

I am sure there could be a version of LISP with separate namespaces
for the EID and RLOC functions.  However, this would have nothing to
so with LISP as a potentially practical solution to the routing
scaling problem, which is what we are discussing on this list.

With billions of dollars and the fate of one of humanity's greatest
creations at stake, the fact that LISP, APT, Ivip, TRRP and any other
core-edge separation scheme does not involve separate namespaces for
EIDs and RLOCs is *beautiful*.


Dino, in msg00756, demonstrates how an ITR treats destination
addresses the same way irrespective of whatever EID or RLOC role they
may be playing in some part of the LISP system.  (I am assuming here
that the ITR supports Mobile LISP.)

The prefixes which are flagged "Negative cache entry" are flagged in
effect: "Don't bother looking up the mapping for any address which
matches this prefix - the ITR has already been told there is none.
Therefore, treat this address as if it is playing an RLOC role and
forward the packet, as it is, to the destination".

Prefixes which have "Locator ..." are in effect: "Any destination
address matching this prefix will be regarded as an EID by the ITR,
and so its packet will be encapsulated, with the outer destination
address being one of the "RLOC" addresses (xxx.xxx.xxx.xxx in Dino's
listing) which have already been cached from a previous map request.

If a packet arrives, or is generated internally, with a destination
address which does not match any of the prefixes in the cache, then
the ITR will request its mapping and a new entry will be added to the
cache.  Then, it will treat the package as described in one of the
two previous paragraphs.

The ITR doesn't know or care whether the destination address is
playing an EID or an RLOC role.  There is no separate namespace for
EIDs and RLOCs.

  - Robin



From rw@firstpr.com.au  Thu Jul 30 19:24:35 2009
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Subject: Re: [lisp] Critique of Mobile LISP: draft-meyer-lisp-mn-00 - why not use the TTR approach instead?
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Short version:  In what ways do the LISP team think that the current
                Mobile LISP approach is superior to the TTR approach?

                I am certain that Mobile LISP's principle of
                locating the ETR in the MN cannot be made to work
                well enough to be acceptable to most users.

                An alternative has existed since June 2007 and was
                fully documented in August 2008 - the "TTR Mobility
                Extensions for Core-Edge Separation Solutions to the
                Internet's Routing Scaling Problem".

                The TTR approach is well suited to LISP.  It will
                work fine with the MN's CoA behind NAT.  It provides
                continual connectivity as long as the MN has at least
                one functional CoA.  It does not require a mapping
                change every time the MN changes its CoA.

                For most users, if the current TTR is within 1000km
                or so of the MN, then there's no need to use another
                TTR, so there is no need to change the mapping.

                Even if the MN does acquire and rely upon a CoA on
                the other side of the Earth from the current TTR,
                a mapping change is not required.  A mapping change
                is only needed to use a different TTR, and generally
                it is best to use one close to the MN, to reduce
                latency and the risk of packet loss.  The MN can use
                both the old and the new TTRs at the same time, so
                there is no loss of connectivity as the mapping
                change propagates over seconds, minutes or even hours
                to the various ITRs which are handling packets
                addressed to the MN.


Further to my critique:

  http://www.ietf.org/mail-archive/web/lisp/current/msg00749.html


Mobile LISP follows the persistent assumption many people seem to
have when thinking about mobility and a core-edge separation scheme
such as LISP:  that the Mobile Node (MN) should act as its own ETR.

This lead most people to think that extending a core-edge separation
scheme to mobility would be impractical, since this means the mapping
would have to change every time the MN got a new Care-of Address
(CoA) - the address it acquires on some access network, and it may
acquire multiple such CoA addresses on multiple access networks.

Mobile LISP follows this most obvious approach and it is indeed
impractical for both of these two major reasons.  Just one would be
sufficient to make it completely impractical.

  1 - When the MN needs to use a different CoA, connectivity can
      only continue after the mapping has been updated and all
      ITRs which are currently sending packets to the MN's ETR
      function at the old CoA begin using the new mapping.

      This makes the whole proposal a complete non-starter.

      Even with Ivip, which should be able to get mapping updates
      to all ITRs in a few seconds (for a small fee - a few cents
      I guess) this would be a non-starter because even a few seconds
      of lost connectivity is unacceptable.  Furthermore, the cost
      of the updates becomes a significant impediment, considering
      the MN may acquire and use new CoAs frequently and
      automatically - perhaps every few seconds as various radio
      links become available.

      It is even worse with LISP, where there is no way of getting
      mapping to some or all ITRs in a few seconds.  Reducing
      the time delay for all ITRs updating their mapping can
      in some - I guess many - cases only be achieved by shortening
      the caching time, and therefore burdening ITRs and the global
      mapping lookup system with more frequent lookups.

      A MN might have a WiFi CoA and a 3G CoA.  The WiFi link is
      faster, cheaper and generally more reliable, so the WiFi
      CoA is the one to use as long as it is available.  However,
      when the WiFi system becomes unreachable, the MN needs to
      switch to the 3G system within a fraction of a second, with
      no loss of connectivity.  There's no way the current Mobile
      LISP approach can do this.


  2 - The inability of the system to work when the MN's CoA is
      behind NAT.

      ITRs need to be able to tunnel packets to the ETR function
      without any delay, handshaking etc.   This precludes the
      use of complex and time-consuming NAT traversal techniques
      (which, by the way, would be a great way of DOSing the
      MN and whatever servers were involved in the NAT traversal
      stuff).

      In IPv4 (the Internet which everyone relies upon - and the
      only one with a routing scaling problem) most mobile devices
      would be connected to the Net via NAT.  For instance any
      device on cabled or WiFi Ethernet in a home or SOHO setting.

The TTR approach has neither of these problems.  I first described it
on the RAM list in June 2007 (section: "ViP-Mobile"):

  http://www.ietf.org/mail-archive/web/ram/current/msg01518.html

The TTR approach has been available to LISP or any other core-edge
separation scheme since then - 2 years before the release of
draft-meyer-lisp-mn-00.

The TTR approach was fully documented, with diagrams etc. in August 2008:

  http://www.firstpr.com.au/ip/ivip/#mobile
  http://www.firstpr.com.au/ip/ivip/TTR-Mobility.pdf

  TTR Mobility Extensions for Core-Edge Separation Solutions to the
  Internet's Routing Scaling Problem
  Robin Whittle, Steven Russert 2008-08-25


  - Robin


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Cc: "ipv6@ietf.org" <ipv6@ietf.org>, "lisp@ietf.org" <lisp@ietf.org>
Subject: Re: [lisp] IPv6 UDP checksum issue
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> Hi,
>
>>> could you share some data on how much of a performance impact we're
>>> talking about here? I was under the (maybe naive) impression that
>>> checksum offloading was practically ubiquitous these days.
>>
>> One of the problems with IPv6 is that is so similar to IPv4 but
>> different enough to cause pain for implementations. So since we can
>> use 0 UDP checksums for IPv4 in UDP in IPv4, we would want to build
>> (or use existing hardware) that does IPv6-or-IPv4 in UDP in IPv6.
>
> if the existing hardware sends UDP packets over IPv6 with checksum  
> zero, it is not compliant to the RFCs. If you're building new  
> hardware, you will have to sacrifice some gates to do a UDP checksum  
> calculation. Alternatively, you could pick a different encapsulation  
> or change the IETF consensus on using UDP in IPv6.

Existing hardware has no case of encapsulating in UDP-IPv6. So this is  
a new *feature*.

I already told the list the cost of "sacrificing some gates". It's a  
non-starter. We cannot pick another encapsulation for the reasons I  
said before, LAGs.

Let's do this the right way. We have to make IPv6 stuff *easier* to  
implement rather than creating more barriers to entry.

>> Sorry, but we want to build practical products. If you don't build
>> practical standards, vendors will violate them.
>
> Let me be blunt: If you are going to ignore IETF consensus, why are  
> you here?

I am not ignoring IETF consensus. I am trying to convince you, and  
would urge the IETF to be practical. This is not a big issue, should  
have been resolved but has been argued since Vancouver IETF.

> If you want to change that consensus, please convince the IETF to do  
> so. Ignoring the consensus and the process by which we arrive at it  
> is not an option.

Why do you think we are ignoring the consensus. Marhsall Eubanks (and  
the MBONED working group)  has been trying to close this issue for AMT  
for around 2 years now. I have been helping him with it. We are being  
proactive.

So I am not sure why you have this defensive tone.

>>>> There are no practical reasons to use outer header UDP checksums
>>>> regardless of the 4 combinations of packet types (v4-in-v4, v6-in- 
>>>> v6,
>>>> v6-in-v4, or v4-or-v6) being forwarded by LISP routers.
>>>
>>> I hear you, but is there any quantifiable downside to just compute
>>> the checksums, esp. if it can be done in hardware?
>>
>> A hardware forwarding engine is not going to compute a pseudo-header
>> checksum and compute every byte of a packet. It's just not going to
>> happen.
>
> I freely admit I'm not a hardware guy, but a hardware checksum was  
> cheaply doable at (then) high-performance in 1995. See RFC1936.

Header checksums have been in hardware for decades. That is not what  
we are talking about here. When you require a forwarder to do an  
entire packet checksum which must be added into a pseudo header  
checksum of some fields which are not in contiguous memory, it  
requires more RTL, additional buffer and memory usage and a lot of  
time to add in every byte (that increases forwarding latency which  
users do not like). Entire packet checksums has *never* be done in any  
shipping router product.

IP header checksums, adds up 20 bytes which are contiguous and at a  
fixed location in a packet. Modifying checksums are easy too. But to  
ask a router to checksum every byte of a packet while encapsulating  
(when the checksum is not placed in a trailer) requires a lot of  
unnecessary complex logic when the packet is already protected at each  
link hop with CRCs.

>> There has never been a requirement to do this before. My guess is you
>> can slow performance by 20%.
>
> There hasn't been a requirement for IPv4 because there is an IP  
> header checksum. As to the performance numbers, my guess would be  
> different, which is why I asked if you had data.

We have really good CRCs on data links today. Requiring a UDP checksum  
in an encapsulating header is chasing a problem that doesn't exist.

Dino


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Cc: ipv6@ietf.org, lisp@ietf.org
Subject: Re: [lisp] IPv6 UDP checksum issue
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Because we want to make all combinations work. Because we want IPv6 to  
be real.

Why move it to another draft when the same contention will occur.

The opponents just have to face the music. And if they are going to  
take issue with this, what about the bigger more critical issues? Will  
those take decades to resolve? Don't we have a deployment deadline for  
IPv6?

Dino

On Jul 30, 2009, at 4:33 PM, Noel Chiappa wrote:

>
>> From: Lars Eggert <lars.eggert@nokia.com>
>
>> Alternatively, you could pick a different encapsulation
>
> Dino, why don't we just drop the 'inside IPv6' encapsulations from  
> the spec?
> I.e. keep only IPv4 in IPv4 and IPv6 in IPv4? The IPv6  
> encapsulations could be
> documented in a short non-IETF note that's posted on a personal web  
> page
> somewhere. (I'm assuming here that there are a few ISPs who'd  
> actually want to
> run inside IPv6, otherwise we could just drop them entirely.)
>
> 	Noel
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp


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Cc: ipv6@ietf.org, Noel Chiappa <jnc@mercury.lcs.mit.edu>, lisp@ietf.org
Subject: Re: [lisp] IPv6 UDP checksum issue
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On Fri, Jul 31, 2009 at 3:14 AM, Dino Farinacci<dino@cisco.com> wrote:
> Because we want to make all combinations work. Because we want IPv6 to be
> real.
>
> Why move it to another draft when the same contention will occur.
>
> The opponents just have to face the music. And if they are going to take
> issue with this, what about the bigger more critical issues? Will those t=
ake
> decades to resolve? Don't we have a deployment deadline for IPv6?

yes, ~5-7yrs before ipv4 free-pool run-out... wait that was 4-6 years ago.

> On Jul 30, 2009, at 4:33 PM, Noel Chiappa wrote:
>
>>
>>> From: Lars Eggert <lars.eggert@nokia.com>
>>
>>> Alternatively, you could pick a different encapsulation
>>
>> Dino, why don't we just drop the 'inside IPv6' encapsulations from the
>> spec?
>> I.e. keep only IPv4 in IPv4 and IPv6 in IPv4? The IPv6 encapsulations
>> could be
>> documented in a short non-IETF note that's posted on a personal web page
>> somewhere. (I'm assuming here that there are a few ISPs who'd actually
>> want to
>> run inside IPv6, otherwise we could just drop them entirely.)
>>
>> =A0 =A0 =A0 =A0Noel
>> _______________________________________________
>> lisp mailing list
>> lisp@ietf.org
>> https://www.ietf.org/mailman/listinfo/lisp
>
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp
>

From lars.eggert@nokia.com  Fri Jul 31 01:30:00 2009
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Cc: "ipv6@ietf.org" <ipv6@ietf.org>, "lisp@ietf.org" <lisp@ietf.org>
Subject: Re: [lisp] IPv6 UDP checksum issue
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Hi,

we're going in circles, maybe because I'm unclear. I'll try to explain  
my concerns in a different way, respond to some of your points below,  
and then go silent for a while to let others chime in.

I think we're all on the same page that there needs to be a checksum  
somewhere to protect against misdelivery to an application and data  
corruption.

With IPv4, there's some redundancy, because the IPv4 checksum and the  
transport checksums cover some of the same fields.

That redundancy was removed in IPv6 by eliminating an IPv6 checksum,  
to reduce forwarding cost. The transport checksum was made mandatory.  
The transport checksum is costlier to calculate than an IP header  
checksum, because it includes the data, but the argument was that  
endpoints have the capacity to do this.

Now, if a transport protocol is used for tunneling IP inside its  
payload, it no longer strictly needs to checksum-protect its payload  
*if* you require for the inner IP packet and its payload to be  
protected by some sort of checksum.

My point is that allowing this for this corner use case is essentially  
lifting the requirement of a mandatory UDP checksum altogether.

Why? Nobody is going to implement a check that verifies that if a UDP  
checksum of zero is encountered, that the payload of this UDP packet  
contains an IP packet that has a payload that is protected by some  
checksum. It's just too complicated.

So basically we'd be reverting the consensus behind RFC2460 to cover  
what I see as a corner use case.

Now, on to the specific points in your latest email:

On 2009-7-31, at 8:58, Dino Farinacci wrote:
> I already told the list the cost of "sacrificing some gates". It's a
> non-starter.

Please understand that for some of us, the idea of updating RFC2460 at  
this time is pretty close to a non-starter.

> We cannot pick another encapsulation for the reasons I
> said before, LAGs.

Are there significant deployments of port-based LAGs in existing IPv6  
networks?

>> Let me be blunt: If you are going to ignore IETF consensus, why are
>> you here?
>
> I am not ignoring IETF consensus. I am trying to convince you, and
> would urge the IETF to be practical. This is not a big issue, should
> have been resolved but has been argued since Vancouver IETF.

The paragraph in your original that I replied to here said: "Sorry,  
but we want to build practical products. If you don't build practical  
standards, vendors will violate them." To me, this sounds like you are  
going to do whatever you are going to do, independent of what the  
current IETF consensus in RFC2460 is.

> When you require a forwarder to do an
> entire packet checksum which must be added into a pseudo header
> checksum of some fields which are not in contiguous memory, it
> requires more RTL, additional buffer and memory usage and a lot of
> time to add in every byte (that increases forwarding latency which
> users do not like). Entire packet checksums has *never* be done in any
> shipping router product.

I understand that the overhead of computing a payload checksum is  
higher than computing a header checksum. I also understand that  
routers did not need to do this in the past.

LISP, an experimental protocol, has now decided to use UDP on routers  
with IPv6. The result is that according to the current IETF consensus,  
this leads to a situation where LISP boxes need to compute UDP  
checksums.

My personal opinion is that revising the IPv6 consensus around UDP  
over IPv6 for the purposes of an experimental protocol is not  
productive at this time. If the IETF comes to a different consensus,  
I'm fine with being in the rough on this. This is how our decision  
process works.

Thank you,
Lars
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From jnc@mercury.lcs.mit.edu  Fri Jul 31 05:06:29 2009
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Date: Fri, 31 Jul 2009 08:06:29 -0400 (EDT)
From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
Cc: jnc@mercury.lcs.mit.edu
Subject: Re: [lisp] IPv6 UDP checksum issue
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    > From: Dino Farinacci <dino@cisco.com>

    > Because we want to make all combinations work.

I wasn't saying to drop support for 'IPvN in IPv6' encapsulations from the
protocol, or the implementations. I was just saying take it out of the _RFC_.

    > Why move it to another draft when the same contention will occur.

Don't advance the I-D - just leave it as an I-D. (Think of it as 'routing
around the damage' :-).

	Noel

From dino@cisco.com  Fri Jul 31 05:26:35 2009
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Cc: "ipv6@ietf.org" <ipv6@ietf.org>, "lisp@ietf.org" <lisp@ietf.org>
Subject: Re: [lisp] IPv6 UDP checksum issue
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> Now, if a transport protocol is used for tunneling IP inside its  
> payload, it no longer strictly needs to checksum-protect its payload  
> *if* you require for the inner IP packet and its payload to be  
> protected by some sort of checksum.

Right, agree.

> My point is that allowing this for this corner use case is  
> essentially lifting the requirement of a mandatory UDP checksum  
> altogether.

Just lift it for protocols that encapsulate in UDP. That is, for  
tunneling protocols where routers encapsulate packets.

> Why? Nobody is going to implement a check that verifies that if a  
> UDP checksum of zero is encountered, that the payload of this UDP  
> packet contains an IP packet that has a payload that is protected by  
> some checksum. It's just too complicated.

Right, LISP specifies to ignore the checksum. Plus a check for zero is  
much cheaper than any other UDP "lite" proposals that have been put  
forth. It's one instruction in the forwarding path. But we don't have  
to do that in LISP.

> So basically we'd be reverting the consensus behind RFC2460 to cover  
> what I see as a corner use case.

I don't think we should do that.

Marshall Eubanks suggested an additional ID that says that UDP  
checksums could avoid use for tunneling protocols.

Why can't we just go forward with that idea?

> Now, on to the specific points in your latest email:
>
> On 2009-7-31, at 8:58, Dino Farinacci wrote:
>> I already told the list the cost of "sacrificing some gates". It's a
>> non-starter.
>
> Please understand that for some of us, the idea of updating RFC2460  
> at this time is pretty close to a non-starter.

I never suggested updating 2460.

>> We cannot pick another encapsulation for the reasons I
>> said before, LAGs.
>
> Are there significant deployments of port-based LAGs in existing  
> IPv6 networks?

Yes. At least, there are IPv6 routers that have silicon burned to do  
this. Even if those routers have not been configured to forward IPv6  
packets.

>>> Let me be blunt: If you are going to ignore IETF consensus, why are
>>> you here?
>>
>> I am not ignoring IETF consensus. I am trying to convince you, and
>> would urge the IETF to be practical. This is not a big issue, should
>> have been resolved but has been argued since Vancouver IETF.
>
> The paragraph in your original that I replied to here said: "Sorry,  
> but we want to build practical products. If you don't build  
> practical standards, vendors will violate them." To me, this sounds  
> like you are going to do whatever you are going to do, independent  
> of what the current IETF consensus in RFC2460 is.

The products will have their own trajectory path. I am active on this  
thread so the IETF drafts and the products can be consistent.

>> When you require a forwarder to do an
>> entire packet checksum which must be added into a pseudo header
>> checksum of some fields which are not in contiguous memory, it
>> requires more RTL, additional buffer and memory usage and a lot of
>> time to add in every byte (that increases forwarding latency which
>> users do not like). Entire packet checksums has *never* be done in  
>> any
>> shipping router product.
>
> I understand that the overhead of computing a payload checksum is  
> higher than computing a header checksum. I also understand that  
> routers did not need to do this in the past.

What is "this"?

> LISP, an experimental protocol, has now decided to use UDP on  
> routers with IPv6. The result is that according to the current IETF  
> consensus, this leads to a situation where LISP boxes need to  
> compute UDP checksums.

It is not "has now decided", it was drafted day-1 to use UDP because  
of important feedback from network operators.

> My personal opinion is that revising the IPv6 consensus around UDP  
> over IPv6 for the purposes of an experimental protocol is not  
> productive at this time. If the IETF comes to a different consensus,  
> I'm fine with being in the rough on this. This is how our decision  
> process works.

I would like to propose to have a "how UDP checksums are computed by  
hosts" and another document that says "how UDP checksums are computed  
by tunnel routers". That is a viable path forward I think. What do you  
think?

Dino


From jnc@mercury.lcs.mit.edu  Fri Jul 31 06:47:40 2009
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From: jnc@mercury.lcs.mit.edu (Noel Chiappa)
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Subject: Re: [lisp] IPv6 UDP checksum issue
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    > From: Lars Eggert <lars.eggert@nokia.com>

    > if a transport protocol is used for tunneling IP inside its payload, it
    > no longer strictly needs to checksum-protect its payload *if* you
    > require for the inner IP packet and its payload to be protected by some
    > sort of checksum.

Yes, exactly. Inside a LISP user-data packet, you will find one of two things:

- An IPv4 packet, in which case that packet is protected against mis-delivery
by its IP header checksum. (The payload in the user's packet may not be
protected by a checksum, but IPv4 allows applications to make this choice.)

- An IPv6 packet, in which case that packet is protected against mis-delivery
and damage by its header+payload checksum.

There are no other cases.

The UDP checksum in the outer header on LISP user-data does nothing, is
expensive/impossible to compute (depending on the hardware), and therefore the
correct practical engineering choice is to not compute it.

    > Nobody is going to implement a check that verifies that if a UDP
    > checksum of zero is encountered, that the payload of this UDP packet
    > contains an IP packet that has a payload that is protected by some
    > checksum. It's just too complicated.

You don't need to. There cannot be anything in an LISP user-data packet
_except_ an IP packet of some sort (see above).

	Noel
