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From: Luigi Iannone <ggx@gigix.net>
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To: Dino Farinacci <farinacci@gmail.com>
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Cc: "jmh.direct" <jmh.direct@joelhalpern.com>, lisp@ietf.org
Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
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> On 29 Apr 2016, at 23:18, Dino Farinacci <farinacci@gmail.com> wrote:
>=20
> So how about this as a proposal. The DDT doc refers to 32-bits for the =
control-plane and RFC 6830 refers to 24-bits in the data-plane and the =
LCAF document explains how to map the 32 into 24 and what the benefit =
is?
>=20
> So I=E2=80=99m asking and offering to update the LCAF document to =
reflect this. Agree?
>=20

Sounds good to me. I just would like to see a ref to LCAF in the DDT =
document, so that we have a pointer toward were the 32 to 24 bits =
conversion is described.

ciao

L.


> Dino
>=20
>> The change was consequence of the following comment that I made to =
the authors as shepherd:
>>=20
>>>> Instance ID:
>>>> =E2=80=94=E2=80=94=E2=80=94=E2=80=94=E2=80=94=E2=80=94=E2=80=94=E2=80=
=94
>>>>=20
>>>> This document define the IID as a 32 bit field, how does it work =
with the 24 bit IID defined in RFC6830?
>>>> I would suggest that either you provide discussion on the above =
point or you refine the IID as 24 bit.
>>>=20
>>=20
>> The main point being: how do we shrink the 32bits IID in the 24bits =
field of the LISP header?
>>=20
>> As for the explanation of Dino in this thread, the best thing is to =
leave 32 as value, but I would like to see an explicit explanation on =
how to go from 32bits  to 24 bits, referencing the LCAF document. It is =
just a clarification sentence to add.
>>=20
>> ciao
>>=20
>> L.
>>=20
>>=20
>>=20
>>=20
>>=20
>>=20
>>=20
>>> On 27 Apr 2016, at 22:47, jmh.direct <jmh.direct@joelhalpern.com> =
wrote:
>>>=20
>>> Authors, was there a working group request for, or review of, this =
change?
>>>=20
>>> Yours,
>>> Joel
>>>=20
>>>=20
>>>=20
>>> Sent via the Samsung Galaxy S=C2=AE 6, an AT&T 4G LTE smartphone
>>> -------- Original message --------
>>> From: Dino Farinacci <farinacci@gmail.com>
>>> Date: 4/27/2016 4:44 PM (GMT-05:00)
>>> To: "Joel M. Halpern" <jmh@joelhalpern.com>
>>> Cc: Anton Smirnov <asmirnov@cisco.com>, lisp@ietf.org
>>> Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
>>>=20
>>> On Apr 27, 2016, at 1:36 PM, Joel M. Halpern <jmh@joelhalpern.com> =
wrote:
>>>>=20
>>>> I am a bit confused.  I suspect other working group members are as =
well.
>>>> The DDT document completed WG last call some time ago, and was =
waiting for some final edits, which were I believe just done.
>>>> The LCAF document has completed last call.
>>>=20
>>> Well I lost track of the DDT document status.
>>>=20
>>>> Dino, which document are you requesting be modified?  What =
modification are you asking for?
>>>=20
>>> I am requesting a single change (in 2 places, see below). A change =
back from 24-bits to 32-bits describing the instance-ID. I don=E2=80=99t =
know why the change was done during this late stage in the draft. To me, =
that is a huge change.
>>>=20
>>>> Or have I got it backwards, and Anton is asking for a modification? =
 As I said, I got lost.
>>>=20
>>> I reviewed the changes in -05 and noticed this:
>>>=20
>>>=20
>>>=20
>>>=20
>>>=20
>>>=20
>>> And the change should not have happened since our intention at the =
very begninning was to have 2**32 VPNs.
>>>=20
>>> There was no justification for this change and it happened very late =
in the process.
>>>=20
>>> Dino
>>>=20
>>>>=20
>>>> Yours,
>>>> Joel
>>>>=20
>>>> On 4/27/16 4:25 PM, Dino Farinacci wrote:
>>>>> Can you make the change so we can try to advance the document to =
last call?
>>>>>=20
>>>>> Dino
>>>>>=20
>>>>>> On Apr 27, 2016, at 1:23 PM, Anton Smirnov <asmirnov@cisco.com> =
wrote:
>>>>>>=20
>>>>>> we will consider this input for the next doc revision.
>>>>>>=20
>>>>>> Anton
>>>>>>=20
>>>>>>=20
>>>>>>> On 04/27/2016 07:06 PM, Dino Farinacci wrote:
>>>>>>>=20
>>>>>>>> Hi Dino,
>>>>>>>> since XEID prefix is not seen anywhere on the wire these words =
should not be viewed as normative; more like guidance for implementers. =
For DDT specification itself it is not important if IID is 24-bit, =
32-bit or any other bit length. DDT relies on other control plane =
specifications (notably LCAF draft) to specify how IID looks like and =
how it is propagated in control messages.
>>>>>>>=20
>>>>>>> If that is the case, why is the length included in the text =
then? I disagree though, the length is critically important because it =
conveys the maximum number of VPNs, per mapping system, that can be =
supported.
>>>>>>>=20
>>>>>>>> LCAF draft currently depicts 32-bit space to store IID on the =
figure but then goes on saying:
>>>>>>>>=20
>>>>>>>>> Instance ID:  the low-order 24-bits that can go into a LISP =
data
>>>>>>>>>    header when the I-bit is set.  See [RFC6830] for details.
>>>>>>>=20
>>>>>>> Right, because that is the only way to fit 32-bits into 24. ;-)
>>>>>>>=20
>>>>>>>> So IMO the ambiguity comes from the LCAF document. =
draft-ietf-lisp-lcaf should be more specific on IID length. Furthermore, =
if LCAF draft explicitly defined IID to be 32-bits then it should =
discuss what to do with excess bits in case of LISP encapsulation.
>>>>>>>=20
>>>>>>> No, this is not true. And you might not have the history of DDT. =
But we put 32-bits in the DDT document and then had the encoding in the =
LCAF document reflect that.
>>>>>>>=20
>>>>>>>> If DDT draft progresses before LCAF draft then it is more =
correct to be compatible with existing RFCs in saying that IID is a =
24-bit value. DDT doc does not look like a proper place to redefine IID =
length from 24-bit to 32-bits.
>>>>>>>=20
>>>>>>> The LCAF draft just ended last call and is going to IESG.
>>>>>>>=20
>>>>>>>> If you strongly disagree with above then to unblock DDT spec =
from LCAF ambiguity we may remove explicit mention of IID bit length =
from DDT spec and put something like "IID as defined by the LCAF =
draft=E2=80=9D.
>>>>>>>=20
>>>>>>> You can=E2=80=99t remove it. You have to make it 32-bits =
otherwise you created an inconsistency that is (1) not needed and (2) =
for no good reason.
>>>>>>>=20
>>>>>>> I suggest you leave that text alone and keep it at 32-bits.
>>>>>>>=20
>>>>>>> Dino
>>>>>>>=20
>>>>>>>>=20
>>>>>>>> Anton
>>>>>>>>=20
>>>>>>>>=20
>>>>>>>>> On 04/25/2016 09:49 PM, Dino Farinacci wrote:
>>>>>>>>> Authors, this change:
>>>>>>>>>=20
>>>>>>>>>=20
>>>>>>>>> Is actually incorrect (change change is from 32 to 24). We =
have 32-bit
>>>>>>>>> Instance-ID encodings in the LCAF Instance ID Type and want to =
support
>>>>>>>>> that length in the control-plane EVEN THOUGH the data-plane =
can only
>>>>>>>>> hold 24-bits.
>>>>>>>>>=20
>>>>>>>>> Meaning, if you use different mapping systems, you can =
actually reuse
>>>>>>>>> instance-IDs. This reuse was part of our initial intention.
>>>>>>>>>=20
>>>>>>>>> Dino
>>>>>>>=20
>>>>>=20
>>>>> _______________________________________________
>>>>> lisp mailing list
>>>>> lisp@ietf.org
>>>>> https://www.ietf.org/mailman/listinfo/lisp
>>>>>=20
>>>=20
>>> _______________________________________________
>>> lisp mailing list
>>> lisp@ietf.org
>>> https://www.ietf.org/mailman/listinfo/lisp
>>=20
>=20


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From: Dino Farinacci <farinacci@gmail.com>
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Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
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> On May 2, 2016, at 1:36 AM, Luigi Iannone <ggx@gigix.net> wrote:
>=20
>=20
>> On 29 Apr 2016, at 23:18, Dino Farinacci <farinacci@gmail.com> wrote:
>>=20
>> So how about this as a proposal. The DDT doc refers to 32-bits for =
the control-plane and RFC 6830 refers to 24-bits in the data-plane and =
the LCAF document explains how to map the 32 into 24 and what the =
benefit is?
>>=20
>> So I=E2=80=99m asking and offering to update the LCAF document to =
reflect this. Agree?
>>=20
>=20
> Sounds good to me. I just would like to see a ref to LCAF in the DDT =
document, so that we have a pointer toward were the 32 to 24 bits =
conversion is described.

How about this change? Please ack DDT authors and then supply a =
reference to draft-ietf-lisp-lcaf-13.

Once I get an ack, I=E2=80=99ll submit this post-last-call draft update.

Dino


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Network Working Group                                       D. Farinacci
Internet-Draft                                               lispers.net
Intended status: Experimental                                   D. Meyer
Expires: November 3, 2016                                        Brocade
                                                             J. Snijders
                                                      NTT Communications
                                                             May 2, 2016


                  LISP Canonical Address Format (LCAF)
                        draft-ietf-lisp-lcaf-13

Abstract

   This draft defines a canonical address format encoding used in LISP
   control messages and in the encoding of lookup keys for the LISP
   Mapping Database System.

Status of This Memo

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

   Internet-Drafts are working documents of the Internet Engineering
   Task Force (IETF).  Note that other groups may also distribute
   working documents as Internet-Drafts.  The list of current Internet-
   Drafts is at http://datatracker.ietf.org/drafts/current/.

   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."

   This Internet-Draft will expire on November 3, 2016.

Copyright Notice

   Copyright (c) 2016 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
   (http://trustee.ietf.org/license-info) in effect on the date of
   publication of this document.  Please review these documents
   carefully, as they describe your rights and restrictions with respect
   to this document.  Code Components extracted from this document must
   include Simplified BSD License text as described in Section 4.e of




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   the Trust Legal Provisions and are provided without warranty as
   described in the Simplified BSD License.

Table of Contents

   1.  Introduction  . . . . . . . . . . . . . . . . . . . . . . . .   3
   2.  Definition of Terms . . . . . . . . . . . . . . . . . . . . .   4
   3.  LISP Canonical Address Format Encodings . . . . . . . . . . .   4
   4.  LISP Canonical Address Applications . . . . . . . . . . . . .   7
     4.1.  Segmentation using LISP . . . . . . . . . . . . . . . . .   7
     4.2.  Carrying AS Numbers in the Mapping Database . . . . . . .   8
     4.3.  Assigning Geo Coordinates to Locator Addresses  . . . . .   9
     4.4.  NAT Traversal Scenarios . . . . . . . . . . . . . . . . .  12
     4.5.  Multicast Group Membership Information  . . . . . . . . .  14
     4.6.  Traffic Engineering using Re-encapsulating Tunnels  . . .  15
     4.7.  Storing Security Data in the Mapping Database . . . . . .  17
     4.8.  Source/Destination 2-Tuple Lookups  . . . . . . . . . . .  18
     4.9.  Replication List Entries for Multicast Forwarding . . . .  20
     4.10. Applications for AFI List Type  . . . . . . . . . . . . .  21
       4.10.1.  Binding IPv4 and IPv6 Addresses  . . . . . . . . . .  21
       4.10.2.  Layer-2 VPNs . . . . . . . . . . . . . . . . . . . .  22
       4.10.3.  ASCII Names in the Mapping Database  . . . . . . . .  23
       4.10.4.  Using Recursive LISP Canonical Address Encodings . .  24
       4.10.5.  Compatibility Mode Use Case  . . . . . . . . . . . .  25
   5.  Experimental LISP Canonical Address Applications  . . . . . .  26
     5.1.  Convey Application Specific Data  . . . . . . . . . . . .  26
     5.2.  Generic Database Mapping Lookups  . . . . . . . . . . . .  27
     5.3.  PETR Admission Control Functionality  . . . . . . . . . .  29
     5.4.  Data Model Encoding . . . . . . . . . . . . . . . . . . .  30
     5.5.  Encoding Key/Value Address Pairs  . . . . . . . . . . . .  31
     5.6.  Multiple Data-Planes  . . . . . . . . . . . . . . . . . .  32
   6.  Security Considerations . . . . . . . . . . . . . . . . . . .  34
   7.  IANA Considerations . . . . . . . . . . . . . . . . . . . . .  34
   8.  References  . . . . . . . . . . . . . . . . . . . . . . . . .  35
     8.1.  Normative References  . . . . . . . . . . . . . . . . . .  35
     8.2.  Informative References  . . . . . . . . . . . . . . . . .  36
   Appendix A.  Acknowledgments  . . . . . . . . . . . . . . . . . .  37
   Appendix B.  Document Change Log  . . . . . . . . . . . . . . . .  38
     B.1.  Changes to draft-ietf-lisp-lcaf-13.txt  . . . . . . . . .  38
     B.2.  Changes to draft-ietf-lisp-lcaf-12.txt  . . . . . . . . .  38
     B.3.  Changes to draft-ietf-lisp-lcaf-11.txt  . . . . . . . . .  38
     B.4.  Changes to draft-ietf-lisp-lcaf-10.txt  . . . . . . . . .  38
     B.5.  Changes to draft-ietf-lisp-lcaf-09.txt  . . . . . . . . .  39
     B.6.  Changes to draft-ietf-lisp-lcaf-08.txt  . . . . . . . . .  39
     B.7.  Changes to draft-ietf-lisp-lcaf-07.txt  . . . . . . . . .  39
     B.8.  Changes to draft-ietf-lisp-lcaf-06.txt  . . . . . . . . .  39
     B.9.  Changes to draft-ietf-lisp-lcaf-05.txt  . . . . . . . . .  39
     B.10. Changes to draft-ietf-lisp-lcaf-04.txt  . . . . . . . . .  39



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     B.11. Changes to draft-ietf-lisp-lcaf-03.txt  . . . . . . . . .  40
     B.12. Changes to draft-ietf-lisp-lcaf-02.txt  . . . . . . . . .  40
     B.13. Changes to draft-ietf-lisp-lcaf-01.txt  . . . . . . . . .  40
     B.14. Changes to draft-ietf-lisp-lcaf-00.txt  . . . . . . . . .  40
   Authors' Addresses  . . . . . . . . . . . . . . . . . . . . . . .  40

1.  Introduction

   The LISP architecture and protocols [RFC6830] introduces two new
   numbering spaces, Endpoint Identifiers (EIDs) and Routing Locators
   (RLOCs) which are intended to replace most use of IP addresses on the
   Internet.  To provide flexibility for current and future
   applications, these values can be encoded in LISP control messages
   using a general syntax that includes Address Family Identifier (AFI),
   length, and value fields.

   Currently defined AFIs include IPv4 and IPv6 addresses, which are
   formatted according to code-points assigned in [AFI] as follows:

   IPv4 Encoded Address:

     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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |            AFI =3D 1            |       IPv4 Address ...        |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |     ...  IPv4 Address         |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   IPv6 Encoded Address:

     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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |            AFI =3D 2            |       IPv6 Address ...        |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                     ...  IPv6 Address  ...                    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                     ...  IPv6 Address  ...                    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                     ...  IPv6 Address  ...                    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |     ...  IPv6 Address         |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   This document describes the currently-defined AFIs the LISP protocol
   uses along with their encodings and introduces the LISP Canonical




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   Address Format (LCAF) that can be used to define the LISP-specific
   encodings for arbitrary AFI values.

2.  Definition of Terms

   Address Family Identifier (AFI):  a term used to describe an address
      encoding in a packet.  An address family currently defined for
      IPv4 or IPv6 addresses.  See [AFI] and [RFC1700] for details.  The
      reserved AFI value of 0 is used in this specification to indicate
      an unspecified encoded address where the the length of the address
      is 0 bytes following the 16-bit AFI value of 0.

   Unspecified Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |            AFI =3D 0            |    <nothing follows AFI=3D0>    =
|
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   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 a 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.

   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.

3.  LISP Canonical Address Format Encodings

   IANA has assigned AFI value 16387 (0x4003) to the LISP architecture
   and protocols.  This specification defines the encoding format of the
   LISP Canonical Address (LCA).  This section defines both experimental
   types as well as types that reside in the registry that have
   corresponding working group drafts.  See IANA Considerations section
   for a list of types that will reside in the LISP-LCAF Registry.



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   The Address Family AFI definitions from [AFI] only allocate code-
   points for the AFI value itself.  The length of the address or entity
   that follows is not defined and is implied based on conventional
   experience.  Where the LISP protocol uses LISP Canonical Addresses
   specifically, the address length definitions will be in this
   specification and take precedent over any other specification.

   The first 6 bytes of an LISP Canonical Address are followed by a
   variable length of fields:

     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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |    Type       |     Rsvd2     |            Length             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Rsvd1:  this 8-bit field is reserved for future use and MUST be
      transmitted as 0 and ignored on receipt.

   Flags:  this 8-bit field is for future definition and use.  For now,
      set to zero on transmission and ignored on receipt.

   Type:  this 8-bit field is specific to the LISP Canonical Address
      formatted encodings, values are:

     Type 0:  Null Body Type

     Type 1:  AFI List Type

     Type 2:  Instance ID Type

     Type 3:  AS Number Type

     Type 4:  Application Data Type

     Type 5:  Geo Coordinates Type

     Type 6:  Opaque Key Type

     Type 7:  NAT-Traversal Type

     Type 8:  Nonce Locator Type

     Type 9:  Multicast Info Type

     Type 10:  Explicit Locator Path Type



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     Type 11:  Security Key Type

     Type 12:  Source/Dest Key Type

     Type 13:  Replication List Entry Type

     Type 14:  JSON Data Model Type

     Type 15:  Key/Value Address Pair Type

     Type 16:  Encapsulation Format Type

   Rsvd2:  this 8-bit field is reserved for future use and MUST be
      transmitted as 0 and ignored on receipt.

   Length:  this 16-bit field is in units of bytes and covers all of the
      LISP Canonical Address payload, starting and including the byte
      after the Length field.  So any LCAF encoded address will have a
      minimum length of 8 bytes when the Length field is 0.  The 8 bytes
      include the AFI, Flags, Type, Reserved, and Length fields.  When
      the AFI is not next to encoded address in a control message, then
      the encoded address will have a minimum length of 6 bytes when the
      Length field is 0.  The 6 bytes include the Flags, Type, Reserved,
      and Length fields.

   [RFC6830] states RLOC records are sorted when encoded in control
   messages so the locator-set has consistent order across all xTRs for
   a given EID.  The sort order is based on sort-key {afi, RLOC-
   address}. When an RLOC is LCAF encoded, the sort-key is {afi, LCAF-
   Type, payload}. Therefore, when a locator-set has a mix of AFI
   records and LCAF records, all LCAF records will appear after all the
   AFI records.



















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4.  LISP Canonical Address Applications

4.1.  Segmentation using LISP

   When multiple organizations inside of a LISP site are using private
   addresses [RFC1918] as EID-prefixes, their address spaces must remain
   segregated due to possible address duplication.  An Instance ID in
   the address encoding can aid in making the entire AFI based address
   unique.

   Another use for the Instance ID LISP Canonical Address Format is when
   creating multiple segmented VPNs inside of a LISP site where keeping
   EID-prefix based subnets is desirable.

   Instance ID LISP Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 2    | IID mask-len  |             4 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                         Instance ID                           |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |         Address  ...          |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   IID mask-len:  if the AFI is set to 0, then this format is not
      encoding an extended EID-prefix but rather an instance-ID range
      where the 'IID mask-len' indicates the number of high-order bits
      used in the Instance ID field for the range.

   Length value n:  length in bytes of the AFI address that follows the
      Instance ID field including the AFI field itself.

   Instance ID:  the low-order 24-bits that can go into a LISP data
      header when the I-bit is set.  See [RFC6830] for details.  The
      reason for the length difference is so the maximum number of
      instances supported per mapping system is 2^32 while conserving
      space in the LISP data header.  This comes at the expense of
      limiting the maximum number of instances per xTR to 2^24.

   AFI =3D x:  x can be any AFI value from [AFI].

   This LISP Canonical Address Type can be used to encode either EID or
   RLOC addresses.




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   Usage: When used as a lookup key, the EID is regarded as a extended-
   EID in the mapping system.  And this encoding is used in EID records
   in Map-Requests, Map-Replies, Map-Registers, and Map-Notify messages.
   When LISP-DDT [LISP-DDT] is used as the mapping system mechanism,
   extended EIDs are used in Map-Referral messages.





















4.2.  Carrying AS Numbers in the Mapping Database

   When an AS number is stored in the LISP Mapping Database System for
   either policy or documentation reasons, it can be encoded in a LISP
   Canonical Address.

   AS Number LISP Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 3    |     Rsvd2     |             4 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                           AS Number                           |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |         Address  ...          |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of the AFI address that follows the
      AS Number field including the AFI field itself.



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   AS Number:  the 32-bit AS number of the autonomous system that has
      been assigned either the EID or RLOC that follows.

   AFI =3D x:  x can be any AFI value from [AFI].

   The AS Number Canonical Address Type can be used to encode either EID
   or RLOC addresses.  The former is used to describe the LISP-ALT AS
   number the EID-prefix for the site is being carried for.  The latter
   is used to describe the AS that is carrying RLOC based prefixes in
   the underlying routing system.

   Usage: This encoding can be used in EID or RLOC records in Map-
   Requests, Map-Replies, Map-Registers, and Map-Notify messages.  When
   LISP-DDT [LISP-DDT] is used as the mapping system mechanism, extended
   EIDs are used in Map-Referral messages.





















4.3.  Assigning Geo Coordinates to Locator Addresses

   If an ETR desires to send a Map-Reply describing the Geo Coordinates
   for each locator in its locator-set, it can use the Geo Coordinate
   Type to convey physical location information.

   Coordinates are specified using the WGS-84 (World Geodetic System)
   reference coordinate system [WGS-84].







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   Geo Coordinate LISP Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 5    |     Rsvd2     |            12 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |N|     Latitude Degrees        |    Minutes    |    Seconds    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |E|     Longitude Degrees       |    Minutes    |    Seconds    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                            Altitude                           |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |         Address  ...          |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of the AFI address that follows the
      8-byte Longitude and Latitude fields including the AFI field
      itself.

   N: When set to 1 means North, otherwise South.

   Latitude Degrees:  Valid values range from 0 to 90 degrees above or
      below the equator (northern or southern hemisphere, respectively).

   Latitude Minutes:  Valid values range from 0 to 59.

   Latitude Seconds:  Valid values range from 0 to 59.

   E: When set to 1 means East, otherwise West.

   Longitude Degrees:  Value values are from 0 to 180 degrees right or
      left of the Prime Meridian.

   Longitude Minutes:  Valid values range from 0 to 59.

   Longitude Seconds:  Valid values range from 0 to 59.

   Altitude:  Height relative to sea level in meters.  This is a signed
      integer meaning that the altitude could be below sea level.  A
      value of 0x7fffffff indicates no Altitude value is encoded.

   AFI =3D x:  x can be any AFI value from [AFI].

   The Geo Coordinates Canonical Address Type can be used to encode
   either EID or RLOC addresses.  When used for EID encodings, you can



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   determine the physical location of an EID along with the topological
   location by observing the locator-set.

   Usage: This encoding can be used in EID or RLOC records in Map-
   Requests, Map-Replies, Map-Registers, and Map-Notify messages.  When
   LISP-DDT [LISP-DDT] is used as the mapping system mechanism, extended
   EIDs are used in Map-Referral messages.












































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4.4.  NAT Traversal Scenarios

   When a LISP system is conveying global address and mapped port
   information when traversing through a NAT device, the NAT-Traversal
   LCAF Type is used.  See [LISP-NATT] for details.

   NAT-Traversal Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 7    |     Rsvd2     |             4 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |       MS UDP Port Number      |      ETR UDP Port Number      |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |  Global ETR RLOC Address  ... |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |       MS RLOC Address  ...    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          | Private ETR RLOC Address  ... |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |      RTR RLOC Address 1 ...   |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |      RTR RLOC Address k ...   |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of the AFI addresses that follows
      the UDP Port Number field including the AFI fields themselves.

   MS UDP Port Number:  this is the UDP port number of the Map-Server
      and is set to 4342.

   ETR UDP Port Number:  this is the port number returned to a LISP
      system which was copied from the source port from a packet that
      has flowed through a NAT device.

   AFI =3D x:  x can be any AFI value from [AFI].

   Global ETR RLOC Address:  this is an address known to be globally
      unique built by NAT-traversal functionality in a LISP router.

   MS RLOC Address:  this is the address of the Map-Server used in the
      destination RLOC of a packet that has flowed through a NAT device.






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   Private ETR RLOC Address:  this is an address known to be a private
      address inserted in this LCAF format by a LISP router that resides
      on the private side of a NAT device.

   RTR RLOC Address:  this is an encapsulation address used by an ITR or
      PITR which resides behind a NAT device.  This address is known to
      have state in a NAT device so packets can flow from it to the LISP
      ETR behind the NAT.  There can be one or more NTR addresses
      supplied in these set of fields.  The number of NTRs encoded is
      determined by the LCAF length field.  When there are no NTRs
      supplied, the NTR fields can be omitted and reflected by the LCAF
      length field or an AFI of 0 can be used to indicate zero NTRs
      encoded.

   Usage: This encoding can be used in Info-Request and Info-Reply
   messages.  The mapping system does not store this information.  The
   information is used by an xTR and Map-Server to convey private and
   public address information when traversing NAT and firewall devices.

































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4.5.  Multicast Group Membership Information

   Multicast group information can be published in the mapping database
   so a lookup on an EID based group address can return a replication
   list of group addresses or a unicast addresses for single replication
   or multiple head-end replications.  The intent of this type of
   unicast replication is to deliver packets to multiple ETRs at
   receiver LISP multicast sites.  The locator-set encoding for this EID
   record type can be a list of ETRs when they each register with "Merge
   Semantics".  The encoding can be a typical AFI encoded locator
   address.  When an RTR list is being registered (with multiple levels
   according to [LISP-RE]), the Replication List Entry LCAF type is used
   for locator encoding.

   This LCAF encoding can be used to send broadcast packets to all
   members of a subnet when each EIDs are away from their home subnet
   location.

   Multicast Info Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 9    |     Rsvd2     |             8 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                         Instance-ID                           |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |            Reserved           | Source MaskLen| Group MaskLen |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |   Source/Subnet Address  ...  |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |       Group Address  ...      |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of fields that follow.

   Reserved:  must be set to zero and ignore on receipt.

   Instance ID:  the low-order 24-bits that can go into a LISP data
      header when the I-bit is set.  See [RFC6830] for details.  The use
      of the Instance-ID in this LCAF type is to associate a multicast
      forwarding entry for a given VPN.  The instance-ID describes the
      VPN and is registered to the mapping database system as a 3-tuple
      of (Instance-ID, S-prefix, G-prefix).

   Source MaskLen:  the mask length of the source prefix that follows.



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   Group MaskLen:  the mask length of the group prefix that follows.

   AFI =3D x:  x can be any AFI value from [AFI].  When a specific AFI =
has
      its own encoding of a multicast address, this field must be either
      a group address or a broadcast address.

   Usage: This encoding can be used in EID records in Map-Requests, Map-
   Replies, Map-Registers, and Map-Notify messages.  When LISP-DDT
   [LISP-DDT] is used as the mapping system mechanism, extended EIDs are
   used in Map-Referral messages.































4.6.  Traffic Engineering using Re-encapsulating Tunnels

   For a given EID lookup into the mapping database, this LCAF format
   can be returned to provide a list of locators in an explicit re-
   encapsulation path.  See [LISP-TE] for details.





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   Explicit Locator Path (ELP) Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 10   |     Rsvd2     |               n               |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           Rsvd3         |L|P|S|           AFI =3D x             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                         Reencap Hop 1  ...                    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           Rsvd3         |L|P|S|           AFI =3D x             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                         Reencap Hop k  ...                    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of fields that follow.

   Lookup bit (L):  this is the Lookup bit used to indicate to the user
      of the ELP to not use this address for encapsulation but to look
      it up in the mapping database system to obtain an encapsulating
      RLOC address.

   RLOC-Probe bit (P):  this is the RLOC-probe bit which means the
      Reencap Hop allows RLOC-probe messages to be sent to it.  When the
      R-bit is set to 0, RLOC-probes must not be sent.  When a Reencap
      Hop is an anycast address then multiple physical Reencap Hops are
      using the same RLOC address.  In this case, RLOC-probes are not
      needed because when the closest RLOC address is not reachable
      another RLOC address can reachable.

   Strict bit (S):  this the strict bit which means the associated
      Rencap Hop is required to be used.  If this bit is 0, the
      reencapsulator can skip this Reencap Hop and go to the next one in
      the list.

   AFI =3D x:  x can be any AFI value from [AFI].  When a specific AFI =
has
      its own encoding of a multicast address, this field must be either
      a group address or a broadcast address.

   Usage: This encoding can be used in RLOC records in Map-Requests,
   Map-Replies, Map-Registers, and Map-Notify messages.  This encoding
   not need to be understood by the mapping system for mapping database
   lookups since this LCAF type is not a lookup key.





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4.7.  Storing Security Data in the Mapping Database

   When a locator in a locator-set has a security key associated with
   it, this LCAF format will be used to encode key material.  See
   [LISP-DDT] for details.

   Security Key Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 11   |      Rsvd2    |             6 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Key Count   |      Rsvd3    | Key Algorithm |   Rsvd4     |R|
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           Key Length          |       Key Material ...        |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                        ... Key Material                       |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |       Locator Address ...     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of fields that start with the Key
      Material field.

   Key Count:  the Key Count field declares the number of Key sections
      included in this LCAF.

   Key Algorithm:  the Algorithm field identifies the key's
      cryptographic algorithm and specifies the format of the Public Key
      field.

   R bit:  this is the revoke bit and, if set, it specifies that this
      Key is being Revoked.

   Key Length:  this field determines the length in bytes of the Key
      Material field.

   Key Material:  the Key Material field stores the key material.  The
      format of the key material stored depends on the Key Algorithm
      field.

   AFI =3D x:  x can be any AFI value from [AFI].This is the locator
      address that owns the encoded security key.





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   Usage: This encoding can be used in EID or RLOC records in Map-
   Requests, Map-Replies, Map-Registers, and Map-Notify messages.  When
   LISP-DDT [LISP-DDT] is used as the mapping system mechanism, extended
   EIDs are used in Map-Referral messages.





















4.8.  Source/Destination 2-Tuple Lookups

   When both a source and destination address of a flow needs
   consideration for different locator-sets, this 2-tuple key is used in
   EID fields in LISP control messages.  When the Source/Dest key is
   registered to the mapping database, it can be encoded as a source-
   prefix and destination-prefix.  When the Source/Dest is used as a key
   for a mapping database lookup the source and destination come from a
   data packet.

















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   Source/Dest Key Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 12   |     Rsvd2     |             4 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |            Reserved           |   Source-ML   |    Dest-ML    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |         Source-Prefix ...     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |     Destination-Prefix ...    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of fields that follow.

   Reserved:  must be set to zero and ignore on receipt.

   Source-ML:  the mask length of the source prefix that follows.

   Dest-ML:  the mask length of the destination prefix that follows.

   AFI =3D x:  x can be any AFI value from [AFI].  When a specific AFI =
has
      its own encoding of a multicast address, this field must be either
      a group address or a broadcast address.

   Refer to [LISP-TE] for usage details.

   Usage: This encoding can be used in EID records in Map-Requests, Map-
   Replies, Map-Registers, and Map-Notify messages.  When LISP-DDT
   [LISP-DDT] is used as the mapping system mechanism, extended EIDs are
   used in Map-Referral messages.

















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4.9.  Replication List Entries for Multicast Forwarding

   The Replication List Entry LCAF type is an encoding for a locator
   being used for unicast replication according to the specification in
   [LISP-RE].  This locator encoding is pointed to by a Multicast Info
   LCAF Type and is registered by Re-encapsulating Tunnel Routers (RTRs)
   that are participating in an overlay distribution tree.  Each RTR
   will register its locator address and its configured level in the
   distribution tree.

   Replication List Entry Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 13   |    Rsvd2      |             4 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              Rsvd3            |     Rsvd4     |  Level Value  |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |           RTR/ETR #1 ...      |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              Rsvd3            |     Rsvd4     |  Level Value  |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |           RTR/ETR  #n ...     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of fields that follow.

   Rsvd{1,2,3,4}:  must be set to zero and ignore on receipt.

   Level Value:  this value is associated with the level within the
      overlay distribution tree hierarchy where the RTR resides.  The
      level numbers are ordered from lowest value being close to the ITR
      (meaning that ITRs replicate to level-0 RTRs) and higher levels
      are further downstream on the distribution tree closer to ETRs of
      multicast receiver sites.

   AFI =3D x:  x can be any AFI value from [AFI].  A specific AFI has =
its
      own encoding of either a unicast or multicast locator address.
      All RTR/ETR entries for the same level should be combined together
      by a Map-Server to avoid searching through the entire multi-level
      list of locator entries in a Map-Reply message.

   Usage: This encoding can be used in RLOC records in Map-Requests,
   Map-Replies, Map-Registers, and Map-Notify messages.




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4.10.  Applications for AFI List Type

4.10.1.  Binding IPv4 and IPv6 Addresses

   When header translation between IPv4 and IPv6 is desirable a LISP
   Canonical Address can use the AFI List Type to carry multiple AFIs in
   one LCAF AFI.

   Address Binding LISP Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 1    |     Rsvd2     |         2 + 4 + 2 + 16        |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |            AFI =3D 1            |       IPv4 Address ...        |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |     ...  IPv4 Address         |            AFI =3D 2            |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                          IPv6 Address ...                     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                     ...  IPv6 Address  ...                    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                     ...  IPv6 Address  ...                    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                     ...  IPv6 Address                         |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length:  length in bytes is fixed at 24 when IPv4 and IPv6 AFI
      encoded addresses are used.

   This type of address format can be included in a Map-Request when the
   address is being used as an EID, but the Mapping Database System
   lookup destination can use only the IPv4 address.  This is so a
   Mapping Database Service Transport System, such as LISP-ALT
   [RFC6836], can use the Map-Request destination address to route the
   control message to the desired LISP site.

   Usage: This encoding can be used in EID or RLOC records in Map-
   Requests, Map-Replies, Map-Registers, and Map-Notify messages.  See
   subsections in this section for specific use cases.








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4.10.2.  Layer-2 VPNs

   When MAC addresses are stored in the LISP Mapping Database System,
   the AFI List Type can be used to carry AFI 6.

   MAC Address LISP Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 1    |     Rsvd2     |             2 + 6             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |             AFI =3D 6           |    Layer-2 MAC Address  ...   |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                    ... Layer-2 MAC Address                    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length:  length in bytes is fixed at 8 when MAC address AFI encoded
      addresses are used.

   This address format can be used to connect layer-2 domains together
   using LISP over an IPv4 or IPv6 core network to create a layer-2 VPN.
   In this use-case, a MAC address is being used as an EID, and the
   locator-set that this EID maps to can be an IPv4 or IPv6 RLOCs, or
   even another MAC address being used as an RLOC.
























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4.10.3.  ASCII Names in the Mapping Database

   If DNS names or URIs are stored in the LISP Mapping Database System,
   the AFI List Type can be used to carry an ASCII string where it is
   delimited by length 'n' of the LCAF Length encoding.

   ASCII LISP Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 1    |     Rsvd2     |             2 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |             AFI =3D 17          |      DNS Name or URI  ...     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes AFI=3D17 field and the =
null-terminated
      ASCII string (the last byte of 0 is included).































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4.10.4.  Using Recursive LISP Canonical Address Encodings

   When any combination of above is desirable, the AFI List Type value
   can be used to carry within the LCAF AFI another LCAF AFI.

   Recursive LISP Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 1    |     Rsvd2     |             8 + 18            |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 4    |     Rsvd2     |            12 + 6             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   IP TOS, IPv6 QQS or Flow Label              |    Protocol   |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |    Local Port (lower-range)   |    Local Port (upper-range)   |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Remote Port (lower-range)   |   Remote Port (upper-range)   |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |            AFI =3D 1            |       IPv4 Address ...        |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |     ...  IPv4 Address         |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length:  length in bytes is fixed at 18 when an AFI=3D1 IPv4 address =
is
      included.

   This format could be used by a Mapping Database Transport System,
   such as LISP-ALT [RFC6836], where the AFI=3D1 IPv4 address is used as
   an EID and placed in the Map-Request destination address by the
   sending LISP system.  The ALT system can deliver the Map-Request to
   the LISP destination site independent of the Application Data Type
   AFI payload values.  When this AFI is processed by the destination
   LISP site, it can return different locator-sets based on the type of
   application or level of service that is being requested.











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4.10.5.  Compatibility Mode Use Case

   A LISP system should use the AFI List Type format when sending to
   LISP systems that do not support a particular LCAF Type used to
   encode locators.  This allows the receiving system to be able to
   parse a locator address for encapsulation purposes.  The list of AFIs
   in an AFI List LCAF Type has no semantic ordering and a receiver
   should parse each AFI element no matter what the ordering.

   Compatibility Mode Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 1    |     Rsvd2     |          8 + 14 + 6           |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 5    |     Rsvd2     |            12 + 2             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |N|     Latitude Degrees        |    Minutes    |    Seconds    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |E|     Longitude Degrees       |    Minutes    |    Seconds    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                            Altitude                           |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D 0          |           AFI =3D 1             =
|
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                          IPv4 Address                         |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   If a system does not recognized the Geo Coordinate LCAF Type that is
   accompanying a locator address, an encoder can include the Geo
   Coordinate LCAF Type embedded in a AFI List LCAF Type where the AFI
   in the Geo Coordinate LCAF is set to 0 and the AFI encoded next in
   the list is encoded with a valid AFI value to identify the locator
   address.

   A LISP system is required to support the AFI List LCAF Type to use
   this procedure.  It would skip over 10 bytes of the Geo Coordinate
   LCAF Type to get to the locator address encoding (an IPv4 locator
   address).  A LISP system that does support the Geo Coordinate LCAF
   Type can support parsing the locator address within the Geo
   Coordinate LCAF encoding or in the locator encoding that follows in
   the AFI List LCAF.




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5.  Experimental LISP Canonical Address Applications

5.1.  Convey Application Specific Data

   When a locator-set needs to be conveyed based on the type of
   application or the Per-Hop Behavior (PHB) of a packet, the
   Application Data Type can be used.

   Application Data LISP Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 4    |     Rsvd2     |            12 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |       IP TOS, IPv6 TC, or Flow Label          |    Protocol   |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |    Local Port (lower-range)   |    Local Port (upper-range)   |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Remote Port (lower-range)   |   Remote Port (upper-range)   |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |         Address  ...          |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of the AFI address that follows the
      8-byte Application Data fields including the AFI field itself.

   IP TOS, IPv6 TC, or Flow Label:  this field stores the 8-bit IPv4 TOS
      field used in an IPv4 header, the 8-bit IPv6 Traffic Class or Flow
      Label used in an IPv6 header.

   Local Port/Remote Port Ranges:  these fields are from the TCP, UDP,
      or SCTP transport header.  A range can be specified by using a
      lower value and an upper value.  When a single port is encoded,
      the lower and upper value fields are the same.

   AFI =3D x:  x can be any AFI value from [AFI].

   The Application Data Canonical Address Type is used for an EID
   encoding when an ITR wants a locator-set for a specific application.
   When used for an RLOC encoding, the ETR is supplying a locator-set
   for each specific application is has been configured to advertise.

   Usage: This encoding can be used in EID records in Map-Requests, Map-
   Replies, Map-Registers, and Map-Notify messages.  When LISP-DDT
   [LISP-DDT] is used as the mapping system mechanism, extended EIDs are



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   used in Map-Referral messages.  This LCAF type is used as a lookup
   key to the mapping system that can return a longest-match or exact-
   match entry.





















5.2.  Generic Database Mapping Lookups

   When the LISP Mapping Database system holds information accessed by a
   generic formatted key (where the key is not the usual IPv4 or IPv6
   address), an opaque key may be desirable.

   Opaque Key LISP Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 6    |     Rsvd2     |             3 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    | Key Field Num |      Key Wildcard Fields      |   Key . . .   |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                       . . . Key                               |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of the type's payload.  The value n
      is the number of bytes that follow this Length field.





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   Key Field Num:  the number of fields (minus 1) the key can be broken
      up into.  The width of the fields are fixed length.  So for a key
      size of 8 bytes, with a Key Field Num of 4 allows 4 fields of 2
      bytes in length.  Valid values for this field range from 0 to 15
      supporting a maximum of 16 field separations.

   Key Wildcard Fields:  describes which fields in the key are not used
      as part of the key lookup.  This wildcard encoding is a bitfield.
      Each bit is a don't-care bit for a corresponding field in the key.
      Bit 0 (the low-order bit) in this bitfield corresponds the first
      field, right-justified in the key, bit 1 the second field, and so
      on.  When a bit is set in the bitfield it is a don't-care bit and
      should not be considered as part of the database lookup.  When the
      entire 16-bits is set to 0, then all bits of the key are used for
      the database lookup.

   Key:  the variable length key used to do a LISP Database Mapping
      lookup.  The length of the key is the value n (shown above) minus
      3.

   Usage: This is an experimental type where the usage has not been
   defined yet.





























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5.3.  PETR Admission Control Functionality

   When a public PETR device wants to verify who is encapsulating to it,
   it can check for a specific nonce value in the LISP encapsulated
   packet.  To convey the nonce to admitted ITRs or PITRs, this LCAF
   format is used in a Map-Register or Map-Reply locator-record.

   Nonce Locator Canonical Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 8    |     Rsvd2     |             4 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Reserved    |                  Nonce                        |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |         Address  ...          |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of the AFI address that follows the
      Nonce field including the AFI field itself.

   Reserved:  must be set to zero and ignore on receipt.

   Nonce:  this is a nonce value returned by an ETR in a Map-Reply
      locator-record to be used by an ITR or PITR when encapsulating to
      the locator address encoded in the AFI field of this LCAF type.

   AFI =3D x:  x can be any AFI value from [AFI].

   Usage: This is an experimental type where the usage has not been
   defined yet.

















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5.4.  Data Model Encoding

   This type allows a JSON data model to be encoded either as an EID or
   RLOC.

   JSON Data Model Type Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 14   |    Rsvd2    |B|             2 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           JSON length         | JSON binary/text encoding ... |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |       Optional Address ...    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of fields that follow.

   Rsvd{1,2}:  must be set to zero and ignore on receipt.

   B bit:  indicates that the JSON field is binary encoded according to
      [JSON-BINARY] when the bit is set to 1.  Otherwise the encoding is
      based on text encoding according to [RFC4627].

   JSON length:  length in octets of the following 'JSON binary/text
      encoding' field.

   JSON binary/text encoding field:  a variable length field that
      contains either binary or text encodings.

   AFI =3D x:  x can be any AFI value from [AFI].  A specific AFI has =
its
      own encoding of either a unicast or multicast locator address.
      All RTR/ETR entries for the same level should be combined together
      by a Map-Server to avoid searching through the entire multi-level
      list of locator entries in a Map-Reply message.

   Usage: This is an experimental type where the usage has not been
   defined yet.










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5.5.  Encoding Key/Value Address Pairs

   The Key/Value pair is for example useful for attaching attributes to
   other elements of LISP packets, such as EIDs or RLOCs.  When
   attaching attributes to EIDs or RLOCs, it's necessary to distinguish
   between the element that should be used as EID or RLOC, and hence as
   key for lookups, and additional attributes.  This is especially the
   case when the difference cannot be determined from the types of the
   elements, such as when two IP addresses are being used.

   Key/Value Pair Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 15   |     Rsvd2     |               n               |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |       Address as Key ...      |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |       Address as Value ...    |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Length value n:  length in bytes of fields that follow.

   Rsvd{1,2}:  must be set to zero and ignore on receipt.

   AFI =3D x:  x can be any AFI value from [AFI].  A specific AFI has =
its
      own encoding of either a unicast or multicast locator address.
      All RTR/ETR entries for the same level should be combined together
      by a Map-Server to avoid searching through the entire multi-level
      list of locator entries in a Map-Reply message.

   Address as Key:  this AFI encoded address will be attached with the
      attributes encoded in "Address as Value" which follows this field.

   Address as Value:  this AFI encoded address will be the attribute
      address that goes along with "Address as Key" which precedes this
      field.

   Usage: This is an experimental type where the usage has not been
   defined yet.








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5.6.  Multiple Data-Planes

   Overlays are becoming popular in many parts of the network which have
   created an explosion of data-plane encapsulation headers.  Since the
   LISP mapping system can hold many types of address formats, it can
   represent the encapsulation format supported by an RLOC as well.
   When an encapsulator receives a Map-Reply with an Encapsulation
   Format LCAF Type encoded in an RLOC-record, it can select an
   encapsulation format, that it can support, from any of the
   encapsulation protocols which have the bit set to 1 in this LCAF
   type.

   Encapsulation Format Address 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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |           AFI =3D 16387         |     Rsvd1     |     Flags     |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |   Type =3D 16   |     Rsvd2     |             4 + n             |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |        Reserved-for-Future-Encapsulations       |U|G|N|v|V|l|L|
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |              AFI =3D x          |          Address ...          |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+

   Rsvd1/Rsvd2:  must be set to zero and ignored on receipt.

   Length value n:  length in bytes of the AFI address that follows the
      next 32-bits including the AFI field itself.

   Reserved-for-Future-Encapsulations:  must be set to zero and ignored
      on receipt.  This field will get bits allocated to future
      encapsulations, as they are created.

   L: The RLOCs listed in the AFI encoded addresses in the next longword
      can accept layer3 LISP encapsulation using destination UDP port
      4341 [RFC6830].

   l: The RLOCs listed in the AFI encoded addresses in the next longword
      can accept layer2 LISP encapsulation using destination UDP port
      8472 [L2-LISP].

   V: The RLOCs listed in the AFI encoded addresses in the next longword
      can accept VXLAN encapsulation using destination UDP port 4789
      [RFC7348].





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   v: The RLOCs listed in the AFI encoded addresses in the next longword
      can accept VXLAN-GPE encapsulation using destination UDP port 4790
      [GPE].

   N: The RLOCs listed in the AFI encoded addresses in the next longword
      can accept NV-GRE encapsulation using IPv4/ IPv6 protocol number
      47 [NVGRE].

   G: The RLOCs listed in the AFI encoded addresses in the next longword
      can accept GENEVE encapsulation using destination UDP port 6081
      [GENEVE].

   U: The RLOCs listed in the AFI encoded addresses in the next longword
      can accept GUE encapsulation using destination UDP port TBD [GUE].

   Usage: This encoding can be used in RLOC records in Map-Requests,
   Map-Replies, Map-Registers, and Map-Notify messages.


































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6.  Security Considerations

   There are no security considerations for this specification.  The
   security considerations are documented for the protocols that use
   LISP Canonical Addressing.  Refer to the those relevant
   specifications.

   The use of the Geo-Coordinates LCAF Type may raise physical privacy
   issues.  It can be up to the mapping system, based on policy
   parameters, when this LCAF type is returned to a Map-Requester.

7.  IANA Considerations

   This document defines a canonical address format encoding used in
   LISP control messages and in the encoding of lookup keys for the LISP
   Mapping Database System.  Such address format is based on a fixed AFI
   (16387) and a LISP LCAF Type field.

   The LISP LCAF Type field is an 8-bit field specific to the LISP
   Canonical Address formatted encodings, for which IANA is to create
   and maintain a new registry (as outlined in [RFC5226]) entitled "LISP
   LCAF Type".  Initial values for the LISP LCAF Type registry are given
   below.  Future assignments are to be made through expert review with
   a specification required publication.  Assignments consist of a LISP
   LCAF Type name and its associated value:


























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           +-------+------------------------------+------------+
           | Value | LISP LCAF Type Name          | Definition |
           +-------+------------------------------+------------+
           | 0     | Null Body Type               | Section 3  |
           |       |                              |            |
           | 1     | AFI List Type                | Section 3  |
           |       |                              |            |
           | 2     | Instance ID Type             | Section 3  |
           |       |                              |            |
           | 3     | AS Number Type               | Section 3  |
           |       |                              |            |
           | 5     | Geo Coordinates Type         | Section 3  |
           |       |                              |            |
           | 7     | NAT-Traversal Type           | Section 3  |
           |       |                              |            |
           | 9     | Multicast Info Type          | Section 3  |
           |       |                              |            |
           | 10    | Explicit Locator Path Type   | Section 3  |
           |       |                              |            |
           | 11    | Security Key Type            | Section 3  |
           |       |                              |            |
           | 12    | Source/Dest Key Type         | Section 3  |
           |       |                              |            |
           | 13    | Replication List Entry Type  | Section 3  |
           +-------+------------------------------+------------+

                  Table 1: LISP LCAF Type Initial Values

8.  References

8.1.  Normative References

   [RFC1700]  Reynolds, J. and J. Postel, "Assigned Numbers", RFC 1700,
              DOI 10.17487/RFC1700, October 1994,
              <http://www.rfc-editor.org/info/rfc1700>.

   [RFC1918]  Rekhter, Y., Moskowitz, B., Karrenberg, D., de Groot, G.,
              and E. Lear, "Address Allocation for Private Internets",
              BCP 5, RFC 1918, DOI 10.17487/RFC1918, February 1996,
              <http://www.rfc-editor.org/info/rfc1918>.

   [RFC4627]  Crockford, D., "The application/json Media Type for
              JavaScript Object Notation (JSON)", RFC 4627,
              DOI 10.17487/RFC4627, July 2006,
              <http://www.rfc-editor.org/info/rfc4627>.






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   [RFC5226]  Narten, T. and H. Alvestrand, "Guidelines for Writing an
              IANA Considerations Section in RFCs", BCP 26, RFC 5226,
              DOI 10.17487/RFC5226, May 2008,
              <http://www.rfc-editor.org/info/rfc5226>.

   [RFC6830]  Farinacci, D., Fuller, V., Meyer, D., and D. Lewis, "The
              Locator/ID Separation Protocol (LISP)", RFC 6830,
              DOI 10.17487/RFC6830, January 2013,
              <http://www.rfc-editor.org/info/rfc6830>.

   [RFC6836]  Fuller, V., Farinacci, D., Meyer, D., and D. Lewis,
              "Locator/ID Separation Protocol Alternative Logical
              Topology (LISP+ALT)", RFC 6836, DOI 10.17487/RFC6836,
              January 2013, <http://www.rfc-editor.org/info/rfc6836>.

   [RFC7348]  Mahalingam, M., Dutt, D., Duda, K., Agarwal, P., Kreeger,
              L., Sridhar, T., Bursell, M., and C. Wright, "Virtual
              eXtensible Local Area Network (VXLAN): A Framework for
              Overlaying Virtualized Layer 2 Networks over Layer 3
              Networks", RFC 7348, DOI 10.17487/RFC7348, August 2014,
              <http://www.rfc-editor.org/info/rfc7348>.

8.2.  Informative References

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

   [GENEVE]   Gross, J., Sridhar, T., Garg, P., Wright, C., Ganga, I.,
              Agarwal, P., Duda, K., Dutt, D., and J. Hudson, "Geneve:
              Generic Network Virtualization Encapsulation", draft-
              gross-geneve-02 (work in progress).

   [GPE]      Quinn, P., Agarwal, P., Fernando, R., Kreeger, L.,
              Kreeger, L., Lewis, D., Maino, F., Smith, M., Yadav, N.,
              Yong, L., Xu, X., Elzur, U., and P. Garg, "Generic
              Protocol Extension for VXLAN", draft-quinn-vxlan-gpe-
              03.txt (work in progress).

   [GUE]      Herbert, T. and L. Yong, "Generic UDP Encapsulation",
              draft-herbert-gue-02.txt (work in progress).

   [JSON-BINARY]
              "Universal Binary JSON Specification",
              URL http://ubjson.org.

   [L2-LISP]  Smith, M., Dutt, D., Farinacci, D., and F. Maino, "Layer 2
              (L2) LISP Encapsulation Format", draft-smith-lisp-
              layer2-03.txt (work in progress).



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   [LISP-DDT]
              Fuller, V., Lewis, D., and V. Ermagan, "LISP Delegated
              Database Tree", draft-ietf-lisp-ddt-01.txt (work in
              progress).

   [LISP-NATT]
              Ermagan, V., Farinacci, D., Lewis, D., Skriver, J., Maino,
              F., and C. White, "NAT traversal for LISP", draft-ermagan-
              lisp-nat-traversal-10.txt (work in progress).

   [LISP-RE]  Coras, F., Cabellos-Aparicio, A., Domingo-Pascual, J.,
              Maino, F., and D. Farinacci, "LISP Replication
              Engineering", draft-coras-lisp-re-08.txt (work in
              progress).

   [LISP-TE]  Farinacci, D., Lahiri, P., and M. Kowal, "LISP Traffic
              Engineering Use-Cases", draft-farinacci-lisp-te-10.txt
              (work in progress).

   [NVGRE]    Sridharan, M., Greenberg, A., Wang, Y., Garg, P.,
              Venkataramiah, N., Duda, K., Ganga, I., Lin, G., Pearson,
              M., Thaler, P., and C. Tumuluri, "NVGRE: Network
              Virtualization using Generic Routing Encapsulation",
              draft-sridharan-virtualization-nvgre-06.txt (work in
              progress).

   [WGS-84]   Geodesy and Geophysics Department, DoD., "World Geodetic
              System 1984", NIMA TR8350.2, January 2000, <http://earth-
              info.nga.mil/GandG/publications/tr8350.2/wgs84fin.pdf>.

Appendix A.  Acknowledgments

   The authors would like to thank Vince Fuller, Gregg Schudel, Jesper
   Skriver, Luigi Iannone, Isidor Kouvelas, and Sander Steffann for
   their technical and editorial commentary.

   The authors would like to thank Victor Moreno for discussions that
   lead to the definition of the Multicast Info LCAF type.

   The authors would like to thank Parantap Lahiri and Michael Kowal for
   discussions that lead to the definition of the Explicit Locator Path
   (ELP) LCAF type.

   The authors would like to thank Fabio Maino and Vina Ermagan for
   discussions that lead to the definition of the Security Key LCAF
   type.





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   The authors would like to thank Albert Cabellos-Aparicio and Florin
   Coras for discussions that lead to the definition of the Replication
   List Entry LCAF type.

   Thanks goes to Michiel Blokzijl and Alberto Rodriguez-Natal for
   suggesting new LCAF types.

   Thanks also goes to Terry Manderson for assistance obtaining a LISP
   AFI value from IANA.

Appendix B.  Document Change Log

B.1.  Changes to draft-ietf-lisp-lcaf-13.txt

   o  Submitted May 2016.

   o  Explain the Instance-ID LCAF Type is 32-bits in length and the
      Instance-ID field in the LISP encapsulation header is 24-bits.

B.2.  Changes to draft-ietf-lisp-lcaf-12.txt

   o  Submitted March 2016.

   o  Updated references and document timer.

   o  Removed the R, J, and L bits from the Multicast Info Type LCAF
      since working group decided to not go forward with draft-
      farinacci-lisp-mr-signaling-03.txt in favor of draft- ietf-lisp-
      signal-free-00.txt.

B.3.  Changes to draft-ietf-lisp-lcaf-11.txt

   o  Submitted September 2015.

   o  Reflecting comments from Prague LISP working group.

   o  Readying document for a LISP LCAF registry, RFC publication, and
      for new use-cases that will be defined in the new charter.

B.4.  Changes to draft-ietf-lisp-lcaf-10.txt

   o  Submitted June 2015.

   o  Fix coauthor Job's contact information.







Farinacci, et al.       Expires November 3, 2016               [Page 38]
=0C
Internet-Draft    LISP Canonical Address Format (LCAF)          May 2016


B.5.  Changes to draft-ietf-lisp-lcaf-09.txt

   o  Submitted June 2015.

   o  Fix IANA Considerations section to request a registry to allocate
      and track LCAF Type values.

B.6.  Changes to draft-ietf-lisp-lcaf-08.txt

   o  Submitted April 2015.

   o  Comment from Florin.  The Application Data Type length field has a
      typo.  The field should be labeled "12 + n" and not "8 + n".

   o  Fix length fields in the sections titled "Using Recursive LISP
      Canonical Address Encodings", "Generic Database Mapping Lookups",
      and "Data Model Encoding".

B.7.  Changes to draft-ietf-lisp-lcaf-07.txt

   o  Submitted December 2014.

   o  Add a new LCAF Type called "Encapsulation Format" so decapsulating
      xTRs can inform encapsulating xTRs what data-plane encapsulations
      they support.

B.8.  Changes to draft-ietf-lisp-lcaf-06.txt

   o  Submitted October 2014.

   o  Make it clear how sorted RLOC records are done when LCAFs are used
      as the RLOC record.

B.9.  Changes to draft-ietf-lisp-lcaf-05.txt

   o  Submitted May 2014.

   o  Add a length field of the JSON payload that can be used for either
      binary or text encoding of JSON data.

B.10.  Changes to draft-ietf-lisp-lcaf-04.txt

   o  Submitted January 2014.

   o  Agreement among ELP implementors to have the AFI 16-bit field
      adjacent to the address.  This will make the encoding consistent
      with all other LCAF type address encodings.




Farinacci, et al.       Expires November 3, 2016               [Page 39]
=0C
Internet-Draft    LISP Canonical Address Format (LCAF)          May 2016


B.11.  Changes to draft-ietf-lisp-lcaf-03.txt

   o  Submitted September 2013.

   o  Updated references and author's affilations.

   o  Added Instance-ID to the Multicast Info Type so there is relative
      ease in parsing (S,G) entries within a VPN.

   o  Add port range encodings to the Application Data LCAF Type.

   o  Add a new JSON LCAF Type.

   o  Add Address Key/Value LCAF Type to allow attributes to be attached
      to an address.

B.12.  Changes to draft-ietf-lisp-lcaf-02.txt

   o  Submitted March 2013.

   o  Added new LCAF Type "Replication List Entry" to support LISP
      replication engineering use-cases.

   o  Changed references to new LISP RFCs.

B.13.  Changes to draft-ietf-lisp-lcaf-01.txt

   o  Submitted January 2013.

   o  Change longitude range from 0-90 to 0-180 in section 4.4.

   o  Added reference to WGS-84 in section 4.4.

B.14.  Changes to draft-ietf-lisp-lcaf-00.txt

   o  Posted first working group draft August 2012.

   o  This draft was renamed from draft-farinacci-lisp-lcaf-10.txt.

Authors' Addresses

   Dino Farinacci
   lispers.net
   San Jose, CA
   USA

   Email: farinacci@gmail.com




Farinacci, et al.       Expires November 3, 2016               [Page 40]
=0C
Internet-Draft    LISP Canonical Address Format (LCAF)          May 2016


   Dave Meyer
   Brocade
   San Jose, CA
   USA

   Email: dmm@1-4-5.net


   Job Snijders
   NTT Communications
   Theodorus Majofskistraat 100
   Amsterdam  1065 SZ
   NL

   Email: job@ntt.net




































Farinacci, et al.       Expires November 3, 2016               [Page 41]

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Content-Transfer-Encoding: quoted-printable
Content-Type: text/plain;
	charset=utf-8




>=20
> ciao
>=20
> L.
>=20
>=20
>> Dino
>>=20
>>> The change was consequence of the following comment that I made to =
the authors as shepherd:
>>>=20
>>>>> Instance ID:
>>>>> =E2=80=94=E2=80=94=E2=80=94=E2=80=94=E2=80=94=E2=80=94=E2=80=94=E2=80=
=94
>>>>>=20
>>>>> This document define the IID as a 32 bit field, how does it work =
with the 24 bit IID defined in RFC6830?
>>>>> I would suggest that either you provide discussion on the above =
point or you refine the IID as 24 bit.
>>>>=20
>>>=20
>>> The main point being: how do we shrink the 32bits IID in the 24bits =
field of the LISP header?
>>>=20
>>> As for the explanation of Dino in this thread, the best thing is to =
leave 32 as value, but I would like to see an explicit explanation on =
how to go from 32bits  to 24 bits, referencing the LCAF document. It is =
just a clarification sentence to add.
>>>=20
>>> ciao
>>>=20
>>> L.
>>>=20
>>>=20
>>>=20
>>>=20
>>>=20
>>>=20
>>>=20
>>>> On 27 Apr 2016, at 22:47, jmh.direct <jmh.direct@joelhalpern.com> =
wrote:
>>>>=20
>>>> Authors, was there a working group request for, or review of, this =
change?
>>>>=20
>>>> Yours,
>>>> Joel
>>>>=20
>>>>=20
>>>>=20
>>>> Sent via the Samsung Galaxy S=C2=AE 6, an AT&T 4G LTE smartphone
>>>> -------- Original message --------
>>>> From: Dino Farinacci <farinacci@gmail.com>
>>>> Date: 4/27/2016 4:44 PM (GMT-05:00)
>>>> To: "Joel M. Halpern" <jmh@joelhalpern.com>
>>>> Cc: Anton Smirnov <asmirnov@cisco.com>, lisp@ietf.org
>>>> Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
>>>>=20
>>>> On Apr 27, 2016, at 1:36 PM, Joel M. Halpern <jmh@joelhalpern.com> =
wrote:
>>>>>=20
>>>>> I am a bit confused.  I suspect other working group members are as =
well.
>>>>> The DDT document completed WG last call some time ago, and was =
waiting for some final edits, which were I believe just done.
>>>>> The LCAF document has completed last call.
>>>>=20
>>>> Well I lost track of the DDT document status.
>>>>=20
>>>>> Dino, which document are you requesting be modified?  What =
modification are you asking for?
>>>>=20
>>>> I am requesting a single change (in 2 places, see below). A change =
back from 24-bits to 32-bits describing the instance-ID. I don=E2=80=99t =
know why the change was done during this late stage in the draft. To me, =
that is a huge change.
>>>>=20
>>>>> Or have I got it backwards, and Anton is asking for a =
modification?  As I said, I got lost.
>>>>=20
>>>> I reviewed the changes in -05 and noticed this:
>>>>=20
>>>>=20
>>>>=20
>>>>=20
>>>>=20
>>>>=20
>>>> And the change should not have happened since our intention at the =
very begninning was to have 2**32 VPNs.
>>>>=20
>>>> There was no justification for this change and it happened very =
late in the process.
>>>>=20
>>>> Dino
>>>>=20
>>>>>=20
>>>>> Yours,
>>>>> Joel
>>>>>=20
>>>>> On 4/27/16 4:25 PM, Dino Farinacci wrote:
>>>>>> Can you make the change so we can try to advance the document to =
last call?
>>>>>>=20
>>>>>> Dino
>>>>>>=20
>>>>>>> On Apr 27, 2016, at 1:23 PM, Anton Smirnov <asmirnov@cisco.com> =
wrote:
>>>>>>>=20
>>>>>>> we will consider this input for the next doc revision.
>>>>>>>=20
>>>>>>> Anton
>>>>>>>=20
>>>>>>>=20
>>>>>>>> On 04/27/2016 07:06 PM, Dino Farinacci wrote:
>>>>>>>>=20
>>>>>>>>> Hi Dino,
>>>>>>>>> since XEID prefix is not seen anywhere on the wire these words =
should not be viewed as normative; more like guidance for implementers. =
For DDT specification itself it is not important if IID is 24-bit, =
32-bit or any other bit length. DDT relies on other control plane =
specifications (notably LCAF draft) to specify how IID looks like and =
how it is propagated in control messages.
>>>>>>>>=20
>>>>>>>> If that is the case, why is the length included in the text =
then? I disagree though, the length is critically important because it =
conveys the maximum number of VPNs, per mapping system, that can be =
supported.
>>>>>>>>=20
>>>>>>>>> LCAF draft currently depicts 32-bit space to store IID on the =
figure but then goes on saying:
>>>>>>>>>=20
>>>>>>>>>> Instance ID:  the low-order 24-bits that can go into a LISP =
data
>>>>>>>>>>   header when the I-bit is set.  See [RFC6830] for details.
>>>>>>>>=20
>>>>>>>> Right, because that is the only way to fit 32-bits into 24. ;-)
>>>>>>>>=20
>>>>>>>>> So IMO the ambiguity comes from the LCAF document. =
draft-ietf-lisp-lcaf should be more specific on IID length. Furthermore, =
if LCAF draft explicitly defined IID to be 32-bits then it should =
discuss what to do with excess bits in case of LISP encapsulation.
>>>>>>>>=20
>>>>>>>> No, this is not true. And you might not have the history of =
DDT. But we put 32-bits in the DDT document and then had the encoding in =
the LCAF document reflect that.
>>>>>>>>=20
>>>>>>>>> If DDT draft progresses before LCAF draft then it is more =
correct to be compatible with existing RFCs in saying that IID is a =
24-bit value. DDT doc does not look like a proper place to redefine IID =
length from 24-bit to 32-bits.
>>>>>>>>=20
>>>>>>>> The LCAF draft just ended last call and is going to IESG.
>>>>>>>>=20
>>>>>>>>> If you strongly disagree with above then to unblock DDT spec =
from LCAF ambiguity we may remove explicit mention of IID bit length =
from DDT spec and put something like "IID as defined by the LCAF =
draft=E2=80=9D.
>>>>>>>>=20
>>>>>>>> You can=E2=80=99t remove it. You have to make it 32-bits =
otherwise you created an inconsistency that is (1) not needed and (2) =
for no good reason.
>>>>>>>>=20
>>>>>>>> I suggest you leave that text alone and keep it at 32-bits.
>>>>>>>>=20
>>>>>>>> Dino
>>>>>>>>=20
>>>>>>>>>=20
>>>>>>>>> Anton
>>>>>>>>>=20
>>>>>>>>>=20
>>>>>>>>>> On 04/25/2016 09:49 PM, Dino Farinacci wrote:
>>>>>>>>>> Authors, this change:
>>>>>>>>>>=20
>>>>>>>>>>=20
>>>>>>>>>> Is actually incorrect (change change is from 32 to 24). We =
have 32-bit
>>>>>>>>>> Instance-ID encodings in the LCAF Instance ID Type and want =
to support
>>>>>>>>>> that length in the control-plane EVEN THOUGH the data-plane =
can only
>>>>>>>>>> hold 24-bits.
>>>>>>>>>>=20
>>>>>>>>>> Meaning, if you use different mapping systems, you can =
actually reuse
>>>>>>>>>> instance-IDs. This reuse was part of our initial intention.
>>>>>>>>>>=20
>>>>>>>>>> Dino
>>>>>>>>=20
>>>>>>=20
>>>>>> _______________________________________________
>>>>>> lisp mailing list
>>>>>> lisp@ietf.org
>>>>>> https://www.ietf.org/mailman/listinfo/lisp
>>>>>>=20
>>>>=20
>>>> _______________________________________________
>>>> lisp mailing list
>>>> lisp@ietf.org
>>>> https://www.ietf.org/mailman/listinfo/lisp
>>>=20
>>=20
>=20


--Apple-Mail=_3B4FB10A-646D-488B-BB47-08C5D3F2188A--


From nobody Mon May  2 11:43:16 2016
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To: Dino Farinacci <farinacci@gmail.com>, Luigi Iannone <ggx@gigix.net>
References: <s8prc1nhqx94ufkp47fy0fr0.1461790075310@email.android.com> <9424E3EB-AC5D-4A8D-8718-C7D11B69DEB0@gigix.net> <8799D497-C427-4E4C-8B2C-F9269A506D41@gmail.com> <EE35AFE1-3E08-4C76-A4EF-6178C2B34A41@gigix.net> <EC0BE517-FC68-4CAC-B54A-3AD9A1B15B02@gmail.com>
From: "Joel M. Halpern" <jmh@joelhalpern.com>
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Date: Mon, 2 May 2016 14:42:48 -0400
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Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
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I have a problem.  I was hoping to stay out of this.

But the proposed description does not work.

Since xTRs form overlapping sets, I don't see any way to assign IDs to 
Instances such that any given xTR does not need see the upper 8 bits of 
the instance-ID it receives.

If the argument were that we want future flexibility, so we are 
supporting 32 bits in the control plane, I could see it.  But as 
written, I would not know what to do in an Etr or ITR if I had an 
Instance ID with the upper bits set?  Do I truncate on send, and compare 
only the lower 24 bits upon receipt?  Once we start needing the upper 
byte, I don't see how that could work very long.

Yours,
Joel

On 5/2/16 1:10 PM, Dino Farinacci wrote:
>
>> On May 2, 2016, at 1:36 AM, Luigi Iannone <ggx@gigix.net> wrote:
>>
>>
>>> On 29 Apr 2016, at 23:18, Dino Farinacci <farinacci@gmail.com> wrote:
>>>
>>> So how about this as a proposal. The DDT doc refers to 32-bits for the control-plane and RFC 6830 refers to 24-bits in the data-plane and the LCAF document explains how to map the 32 into 24 and what the benefit is?
>>>
>>> So I’m asking and offering to update the LCAF document to reflect this. Agree?
>>>
>>
>> Sounds good to me. I just would like to see a ref to LCAF in the DDT document, so that we have a pointer toward were the 32 to 24 bits conversion is described.
>
> How about this change? Please ack DDT authors and then supply a reference to draft-ietf-lisp-lcaf-13.
>
> Once I get an ack, I’ll submit this post-last-call draft update.
>
> Dino
>
>
>
>
>
>
>
>
>
>
>>
>> ciao
>>
>> L.
>>
>>
>>> Dino
>>>
>>>> The change was consequence of the following comment that I made to the authors as shepherd:
>>>>
>>>>>> Instance ID:
>>>>>> ————————
>>>>>>
>>>>>> This document define the IID as a 32 bit field, how does it work with the 24 bit IID defined in RFC6830?
>>>>>> I would suggest that either you provide discussion on the above point or you refine the IID as 24 bit.
>>>>>
>>>>
>>>> The main point being: how do we shrink the 32bits IID in the 24bits field of the LISP header?
>>>>
>>>> As for the explanation of Dino in this thread, the best thing is to leave 32 as value, but I would like to see an explicit explanation on how to go from 32bits  to 24 bits, referencing the LCAF document. It is just a clarification sentence to add.
>>>>
>>>> ciao
>>>>
>>>> L.
>>>>
>>>>
>>>>
>>>>
>>>>
>>>>
>>>>
>>>>> On 27 Apr 2016, at 22:47, jmh.direct <jmh.direct@joelhalpern.com> wrote:
>>>>>
>>>>> Authors, was there a working group request for, or review of, this change?
>>>>>
>>>>> Yours,
>>>>> Joel
>>>>>
>>>>>
>>>>>
>>>>> Sent via the Samsung Galaxy S® 6, an AT&T 4G LTE smartphone
>>>>> -------- Original message --------
>>>>> From: Dino Farinacci <farinacci@gmail.com>
>>>>> Date: 4/27/2016 4:44 PM (GMT-05:00)
>>>>> To: "Joel M. Halpern" <jmh@joelhalpern.com>
>>>>> Cc: Anton Smirnov <asmirnov@cisco.com>, lisp@ietf.org
>>>>> Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
>>>>>
>>>>> On Apr 27, 2016, at 1:36 PM, Joel M. Halpern <jmh@joelhalpern.com> wrote:
>>>>>>
>>>>>> I am a bit confused.  I suspect other working group members are as well.
>>>>>> The DDT document completed WG last call some time ago, and was waiting for some final edits, which were I believe just done.
>>>>>> The LCAF document has completed last call.
>>>>>
>>>>> Well I lost track of the DDT document status.
>>>>>
>>>>>> Dino, which document are you requesting be modified?  What modification are you asking for?
>>>>>
>>>>> I am requesting a single change (in 2 places, see below). A change back from 24-bits to 32-bits describing the instance-ID. I don’t know why the change was done during this late stage in the draft. To me, that is a huge change.
>>>>>
>>>>>> Or have I got it backwards, and Anton is asking for a modification?  As I said, I got lost.
>>>>>
>>>>> I reviewed the changes in -05 and noticed this:
>>>>>
>>>>>
>>>>>
>>>>>
>>>>>
>>>>>
>>>>> And the change should not have happened since our intention at the very begninning was to have 2**32 VPNs.
>>>>>
>>>>> There was no justification for this change and it happened very late in the process.
>>>>>
>>>>> Dino
>>>>>
>>>>>>
>>>>>> Yours,
>>>>>> Joel
>>>>>>
>>>>>> On 4/27/16 4:25 PM, Dino Farinacci wrote:
>>>>>>> Can you make the change so we can try to advance the document to last call?
>>>>>>>
>>>>>>> Dino
>>>>>>>
>>>>>>>> On Apr 27, 2016, at 1:23 PM, Anton Smirnov <asmirnov@cisco.com> wrote:
>>>>>>>>
>>>>>>>> we will consider this input for the next doc revision.
>>>>>>>>
>>>>>>>> Anton
>>>>>>>>
>>>>>>>>
>>>>>>>>> On 04/27/2016 07:06 PM, Dino Farinacci wrote:
>>>>>>>>>
>>>>>>>>>> Hi Dino,
>>>>>>>>>> since XEID prefix is not seen anywhere on the wire these words should not be viewed as normative; more like guidance for implementers. For DDT specification itself it is not important if IID is 24-bit, 32-bit or any other bit length. DDT relies on other control plane specifications (notably LCAF draft) to specify how IID looks like and how it is propagated in control messages.
>>>>>>>>>
>>>>>>>>> If that is the case, why is the length included in the text then? I disagree though, the length is critically important because it conveys the maximum number of VPNs, per mapping system, that can be supported.
>>>>>>>>>
>>>>>>>>>> LCAF draft currently depicts 32-bit space to store IID on the figure but then goes on saying:
>>>>>>>>>>
>>>>>>>>>>> Instance ID:  the low-order 24-bits that can go into a LISP data
>>>>>>>>>>>   header when the I-bit is set.  See [RFC6830] for details.
>>>>>>>>>
>>>>>>>>> Right, because that is the only way to fit 32-bits into 24. ;-)
>>>>>>>>>
>>>>>>>>>> So IMO the ambiguity comes from the LCAF document. draft-ietf-lisp-lcaf should be more specific on IID length. Furthermore, if LCAF draft explicitly defined IID to be 32-bits then it should discuss what to do with excess bits in case of LISP encapsulation.
>>>>>>>>>
>>>>>>>>> No, this is not true. And you might not have the history of DDT. But we put 32-bits in the DDT document and then had the encoding in the LCAF document reflect that.
>>>>>>>>>
>>>>>>>>>> If DDT draft progresses before LCAF draft then it is more correct to be compatible with existing RFCs in saying that IID is a 24-bit value. DDT doc does not look like a proper place to redefine IID length from 24-bit to 32-bits.
>>>>>>>>>
>>>>>>>>> The LCAF draft just ended last call and is going to IESG.
>>>>>>>>>
>>>>>>>>>> If you strongly disagree with above then to unblock DDT spec from LCAF ambiguity we may remove explicit mention of IID bit length from DDT spec and put something like "IID as defined by the LCAF draft”.
>>>>>>>>>
>>>>>>>>> You can’t remove it. You have to make it 32-bits otherwise you created an inconsistency that is (1) not needed and (2) for no good reason.
>>>>>>>>>
>>>>>>>>> I suggest you leave that text alone and keep it at 32-bits.
>>>>>>>>>
>>>>>>>>> Dino
>>>>>>>>>
>>>>>>>>>>
>>>>>>>>>> Anton
>>>>>>>>>>
>>>>>>>>>>
>>>>>>>>>>> On 04/25/2016 09:49 PM, Dino Farinacci wrote:
>>>>>>>>>>> Authors, this change:
>>>>>>>>>>>
>>>>>>>>>>>
>>>>>>>>>>> Is actually incorrect (change change is from 32 to 24). We have 32-bit
>>>>>>>>>>> Instance-ID encodings in the LCAF Instance ID Type and want to support
>>>>>>>>>>> that length in the control-plane EVEN THOUGH the data-plane can only
>>>>>>>>>>> hold 24-bits.
>>>>>>>>>>>
>>>>>>>>>>> Meaning, if you use different mapping systems, you can actually reuse
>>>>>>>>>>> instance-IDs. This reuse was part of our initial intention.
>>>>>>>>>>>
>>>>>>>>>>> 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 nobody Mon May  2 12:16:23 2016
Return-Path: <farinacci@gmail.com>
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From: Dino Farinacci <farinacci@gmail.com>
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Date: Mon, 2 May 2016 12:16:15 -0700
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References: <s8prc1nhqx94ufkp47fy0fr0.1461790075310@email.android.com> <9424E3EB-AC5D-4A8D-8718-C7D11B69DEB0@gigix.net> <8799D497-C427-4E4C-8B2C-F9269A506D41@gmail.com> <EE35AFE1-3E08-4C76-A4EF-6178C2B34A41@gigix.net> <EC0BE517-FC68-4CAC-B54A-3AD9A1B15B02@gmail.com> <51fa309b-332b-443e-ab13-1886bc8ff00e@joelhalpern.com>
To: "Joel M. Halpern" <jmh@joelhalpern.com>
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Cc: lisp@ietf.org
Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
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> I have a problem.  I was hoping to stay out of this.

Glad you joined in.

> But the proposed description does not work.

Well we can improve on it.

> Since xTRs form overlapping sets, I don't see any way to assign IDs to =
Instances such that any given xTR does not need see the upper 8 bits of =
the instance-ID it receives.

Well the lisp-vpn document could explain in more detail. We had one, it =
expired, and I think its going to refreshed soon. I=E2=80=99ll contact =
the authors.

> If the argument were that we want future flexibility, so we are =
supporting 32 bits in the control plane, I could see it.  But as =
written, I would not know what to do in an Etr or ITR if I had an =
Instance ID with the upper bits set?  Do I truncate on send, and compare =
only the lower 24 bits upon receipt?  Once we start needing the upper =
byte, I don't see how that could work very long.

Here is an example.

Say a network administrator wants to configure instance-IDs 0x800000ff =
and 0x000000ff each on different interfaces. Much like VRFs can be =
configured. This xTR *could* encap with this configuration but cannot =
decap. So let=E2=80=99s go through each direction:

(1) When a packet arrives on interface 0x800000ff, the ITR knows what =
map-cache to use based on the 32-bit instance-ID. If there is a cache =
miss, it can do a 32-bit lookup and the mapping system will certainly =
return RLOCs for the given EID being requested (the extended EID as =
defined in the DDT spec).

(2) Let=E2=80=99s say the RLOCs go to ETRs that are configured with =
instance-ID 0x800000ff. So when packets arrive at this ETR, the data =
header indicates 0x0000ff. The ETR has no problem finding the correct =
routing table for 0x0000FF (it is the same as 0x800000FF). That is there =
are two names for the table.

(3) Let=E2=80=99s say the RLOCs that are returned for an EID lookup for =
0x000000FF (which is unique from 0x800000ff in the  mapping system) for =
another ETR. And that ETR is configured with only the instance ID =
0x000000ff (just like the ETR in (2)). Here there is no problem. And =
encapsulated packets to 0x0000ff go to to the ETR for decap and =
delivery.

(4) If the ITR in (1) is also an ETR and gets encapsulated packets for =
0x0000ff, it has some choices:

    (a) Don=E2=80=99t allow this to happen and disallow the =
configuration so the xTR in (1) looks like=20
       the xTRs in (2) and (3).
    (b) Check both tables for an EID match. And use the one that =
matches. This assumes globally
       unique addresses so the EID is in either one or the other table =
but not both.
    (c) Do a source RLOC lookup where the xTR can register what =
instance-IDs it supports so you can get
       the other 8 bits.

This needs to be explained in a use-case document on the usage of =
assigning instance-IDs. The LCAF spec needs to resist putting these =
details in there, but just describe the encoding and the format of =
messages.

Comments?

Dino


=09


From nobody Mon May  2 13:05:35 2016
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To: Dino Farinacci <farinacci@gmail.com>
References: <s8prc1nhqx94ufkp47fy0fr0.1461790075310@email.android.com> <9424E3EB-AC5D-4A8D-8718-C7D11B69DEB0@gigix.net> <8799D497-C427-4E4C-8B2C-F9269A506D41@gmail.com> <EE35AFE1-3E08-4C76-A4EF-6178C2B34A41@gigix.net> <EC0BE517-FC68-4CAC-B54A-3AD9A1B15B02@gmail.com> <51fa309b-332b-443e-ab13-1886bc8ff00e@joelhalpern.com> <749E72A6-42C5-49EC-AFC0-AB3A361FB1C2@gmail.com>
From: "Joel M. Halpern" <jmh@joelhalpern.com>
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Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
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I would like to at least see a sentence indicating that if a 
configuration of egress processing needs instance IDs that differ on the 
upper 8 bits, they need separate ETR instances.

Using the incoming RLOC is risky at best, and probably will fail in 
real-world circumstances.

I think there needs to be some explanation in the LCAF draft.  The more 
verbose explanation can be in the VPN draft.

Yours,
Joel

On 5/2/16 3:16 PM, Dino Farinacci wrote:
>> I have a problem.  I was hoping to stay out of this.
>
> Glad you joined in.
>
>> But the proposed description does not work.
>
> Well we can improve on it.
>
>> Since xTRs form overlapping sets, I don't see any way to assign IDs to Instances such that any given xTR does not need see the upper 8 bits of the instance-ID it receives.
>
> Well the lisp-vpn document could explain in more detail. We had one, it expired, and I think its going to refreshed soon. I’ll contact the authors.
>
>> If the argument were that we want future flexibility, so we are supporting 32 bits in the control plane, I could see it.  But as written, I would not know what to do in an Etr or ITR if I had an Instance ID with the upper bits set?  Do I truncate on send, and compare only the lower 24 bits upon receipt?  Once we start needing the upper byte, I don't see how that could work very long.
>
> Here is an example.
>
> Say a network administrator wants to configure instance-IDs 0x800000ff and 0x000000ff each on different interfaces. Much like VRFs can be configured. This xTR *could* encap with this configuration but cannot decap. So let’s go through each direction:
>
> (1) When a packet arrives on interface 0x800000ff, the ITR knows what map-cache to use based on the 32-bit instance-ID. If there is a cache miss, it can do a 32-bit lookup and the mapping system will certainly return RLOCs for the given EID being requested (the extended EID as defined in the DDT spec).
>
> (2) Let’s say the RLOCs go to ETRs that are configured with instance-ID 0x800000ff. So when packets arrive at this ETR, the data header indicates 0x0000ff. The ETR has no problem finding the correct routing table for 0x0000FF (it is the same as 0x800000FF). That is there are two names for the table.
>
> (3) Let’s say the RLOCs that are returned for an EID lookup for 0x000000FF (which is unique from 0x800000ff in the  mapping system) for another ETR. And that ETR is configured with only the instance ID 0x000000ff (just like the ETR in (2)). Here there is no problem. And encapsulated packets to 0x0000ff go to to the ETR for decap and delivery.
>
> (4) If the ITR in (1) is also an ETR and gets encapsulated packets for 0x0000ff, it has some choices:
>
>     (a) Don’t allow this to happen and disallow the configuration so the xTR in (1) looks like
>        the xTRs in (2) and (3).
>     (b) Check both tables for an EID match. And use the one that matches. This assumes globally
>        unique addresses so the EID is in either one or the other table but not both.
>     (c) Do a source RLOC lookup where the xTR can register what instance-IDs it supports so you can get
>        the other 8 bits.
>
> This needs to be explained in a use-case document on the usage of assigning instance-IDs. The LCAF spec needs to resist putting these details in there, but just describe the encoding and the format of messages.
>
> Comments?
>
> Dino
>
>
> 	
>
>


From nobody Mon May  2 13:20:02 2016
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From: Dino Farinacci <farinacci@gmail.com>
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Date: Mon, 2 May 2016 13:19:38 -0700
Message-Id: <DFF83801-161A-4B7D-90C2-707C084C2E88@gmail.com>
References: <s8prc1nhqx94ufkp47fy0fr0.1461790075310@email.android.com> <9424E3EB-AC5D-4A8D-8718-C7D11B69DEB0@gigix.net> <8799D497-C427-4E4C-8B2C-F9269A506D41@gmail.com> <EE35AFE1-3E08-4C76-A4EF-6178C2B34A41@gigix.net> <EC0BE517-FC68-4CAC-B54A-3AD9A1B15B02@gmail.com> <51fa309b-332b-443e-ab13-1886bc8ff00e@joelhalpern.com> <749E72A6-42C5-49EC-AFC0-AB3A361FB1C2@gmail.com> <934975d4-d67a-d9ef-f8d6-5ca171df30e9@joelhalpern.com>
To: "Joel M. Halpern" <jmh@joelhalpern.com>
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Cc: lisp@ietf.org
Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
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> I would like to at least see a sentence indicating that if a =
configuration of egress processing needs instance IDs that differ on the =
upper 8 bits, they need separate ETR instances.

See the new change below. I assume what you mean by =E2=80=9Cseparate =
ETR instances=E2=80=9D, that if the high order bits are the same, the =
ETR should be configure with a unique 24-bits. Please confirm.

Dino




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<html><body style=3D"word-wrap: break-word; -webkit-nbsp-mode: space; =
-webkit-line-break: after-white-space;"><blockquote type=3D"cite" =
class=3D"">I would like to at least see a sentence indicating that if a =
configuration of egress processing needs&nbsp;instance IDs that differ =
on the upper 8 bits, they need separate ETR instances.<br =
class=3D""></blockquote><div class=3D""><br class=3D""></div>See the new =
change below. I assume what you mean by =E2=80=9Cseparate ETR =
instances=E2=80=9D, that if the high order bits are the same, the ETR =
should be configure with a unique 24-bits. Please confirm.<div =
class=3D""><br class=3D""></div><div class=3D"">Dino</div><div =
class=3D""><br class=3D""></div><div class=3D""><img apple-inline=3D"yes" =
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apple-width=3D"yes" apple-height=3D"yes" =
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class=3D""><br class=3D""><br class=3D""></div></body></html>=

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From nobody Mon May  2 13:23:13 2016
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To: Dino Farinacci <farinacci@gmail.com>
References: <s8prc1nhqx94ufkp47fy0fr0.1461790075310@email.android.com> <9424E3EB-AC5D-4A8D-8718-C7D11B69DEB0@gigix.net> <8799D497-C427-4E4C-8B2C-F9269A506D41@gmail.com> <EE35AFE1-3E08-4C76-A4EF-6178C2B34A41@gigix.net> <EC0BE517-FC68-4CAC-B54A-3AD9A1B15B02@gmail.com> <51fa309b-332b-443e-ab13-1886bc8ff00e@joelhalpern.com> <749E72A6-42C5-49EC-AFC0-AB3A361FB1C2@gmail.com> <934975d4-d67a-d9ef-f8d6-5ca171df30e9@joelhalpern.com> <DFF83801-161A-4B7D-90C2-707C084C2E88@gmail.com>
From: "Joel M. Halpern" <jmh@joelhalpern.com>
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Date: Mon, 2 May 2016 16:22:45 -0400
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Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
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I can live with that here.  I think the text in the VPN draft is going 
to be "interesting".

Yours,
Joel

On 5/2/16 4:19 PM, Dino Farinacci wrote:
>> I would like to at least see a sentence indicating that if a
>> configuration of egress processing needs instance IDs that differ on
>> the upper 8 bits, they need separate ETR instances.
>
> See the new change below. I assume what you mean by “separate ETR
> instances”, that if the high order bits are the same, the ETR should be
> configure with a unique 24-bits. Please confirm.
>
> Dino
>
>
>


From nobody Mon May  2 13:27:25 2016
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From: Dino Farinacci <farinacci@gmail.com>
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Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
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I=E2=80=99ll remember to comment and possibly show an example with ascii =
art.

Dino

> On May 2, 2016, at 1:22 PM, Joel M. Halpern <jmh@joelhalpern.com> =
wrote:
>=20
> I can live with that here.  I think the text in the VPN draft is going =
to be "interesting".
>=20
> Yours,
> Joel
>=20
> On 5/2/16 4:19 PM, Dino Farinacci wrote:
>>> I would like to at least see a sentence indicating that if a
>>> configuration of egress processing needs instance IDs that differ on
>>> the upper 8 bits, they need separate ETR instances.
>>=20
>> See the new change below. I assume what you mean by =E2=80=9Cseparate =
ETR
>> instances=E2=80=9D, that if the high order bits are the same, the ETR =
should be
>> configure with a unique 24-bits. Please confirm.
>>=20
>> Dino
>>=20
>>=20
>>=20


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From: "Vina Ermagan (vermagan)" <vermagan@cisco.com>
To: Dino Farinacci <farinacci@gmail.com>, Luigi Iannone <ggx@gigix.net>
Thread-Topic: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
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This seems fine to me, including the changes suggested by Joel. We=B9ll
change the text in DDT to 32 bits for IID and referencing LCAF for more
details, in the next revision.

Best,
Vina

On 5/2/16, 10:10 AM, "lisp on behalf of Dino Farinacci"
<lisp-bounces@ietf.org on behalf of farinacci@gmail.com> wrote:

>
>> On May 2, 2016, at 1:36 AM, Luigi Iannone <ggx@gigix.net> wrote:
>>=20
>>=20
>>> On 29 Apr 2016, at 23:18, Dino Farinacci <farinacci@gmail.com> wrote:
>>>=20
>>> So how about this as a proposal. The DDT doc refers to 32-bits for the
>>>control-plane and RFC 6830 refers to 24-bits in the data-plane and the
>>>LCAF document explains how to map the 32 into 24 and what the benefit
>>>is?
>>>=20
>>> So I=B9m asking and offering to update the LCAF document to reflect
>>>this. Agree?
>>>=20
>>=20
>> Sounds good to me. I just would like to see a ref to LCAF in the DDT
>>document, so that we have a pointer toward were the 32 to 24 bits
>>conversion is described.
>
>How about this change? Please ack DDT authors and then supply a reference
>to draft-ietf-lisp-lcaf-13.
>
>Once I get an ack, I=B9ll submit this post-last-call draft update.
>
>Dino
>


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A new meeting session request has just been submitted by Luigi Iannone, a Chair of the lisp working group.


---------------------------------------------------------
Working Group Name: Locator/ID Separation Protocol
Area Name: Routing Area
Session Requester: Luigi Iannone

Number of Sessions: 1
Length of Session(s):  1.5 Hours
Number of Attendees: 50
Conflicts to Avoid: 
 First Priority: rtgwg nvo3 i2rs sidr grow sfc sdnrg nfvrg pim intarea
 Second Priority: mboned icnrg irtfopen idr spring bier maprg
 Third Priority: l2tpext bess 


Special Requests:
  
---------------------------------------------------------


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Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
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Hello,

I am fine with the latest text proposed by Dino. Just a small question, =
should that =E2=80=9Cmust=E2=80=9D be actually a =E2=80=9CMUST=E2=80=9D =
as for RFC2119??

ciao

Luigi

> On 02 May 2016, at 23:29, Vina Ermagan (vermagan) <vermagan@cisco.com> =
wrote:
>=20
> This seems fine to me, including the changes suggested by Joel. We=C2=B9=
ll
> change the text in DDT to 32 bits for IID and referencing LCAF for =
more
> details, in the next revision.
>=20
> Best,
> Vina
>=20
> On 5/2/16, 10:10 AM, "lisp on behalf of Dino Farinacci"
> <lisp-bounces@ietf.org on behalf of farinacci@gmail.com> wrote:
>=20
>>=20
>>> On May 2, 2016, at 1:36 AM, Luigi Iannone <ggx@gigix.net> wrote:
>>>=20
>>>=20
>>>> On 29 Apr 2016, at 23:18, Dino Farinacci <farinacci@gmail.com> =
wrote:
>>>>=20
>>>> So how about this as a proposal. The DDT doc refers to 32-bits for =
the
>>>> control-plane and RFC 6830 refers to 24-bits in the data-plane and =
the
>>>> LCAF document explains how to map the 32 into 24 and what the =
benefit
>>>> is?
>>>>=20
>>>> So I=C2=B9m asking and offering to update the LCAF document to =
reflect
>>>> this. Agree?
>>>>=20
>>>=20
>>> Sounds good to me. I just would like to see a ref to LCAF in the DDT
>>> document, so that we have a pointer toward were the 32 to 24 bits
>>> conversion is described.
>>=20
>> How about this change? Please ack DDT authors and then supply a =
reference
>> to draft-ietf-lisp-lcaf-13.
>>=20
>> Once I get an ack, I=C2=B9ll submit this post-last-call draft update.
>>=20
>> Dino
>>=20
>=20


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From: Dino Farinacci <farinacci@gmail.com>
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References: <s8prc1nhqx94ufkp47fy0fr0.1461790075310@email.android.com> <9424E3EB-AC5D-4A8D-8718-C7D11B69DEB0@gigix.net> <8799D497-C427-4E4C-8B2C-F9269A506D41@gmail.com> <EE35AFE1-3E08-4C76-A4EF-6178C2B34A41@gigix.net> <EC0BE517-FC68-4CAC-B54A-3AD9A1B15B02@gmail.com> <D34D13C5.82923%vermagan@cisco.com> <01BED710-17CF-43F5-8EEF-CCEE975D88F8@gigix.net>
To: Luigi Iannone <ggx@gigix.net>
Archived-At: <http://mailarchive.ietf.org/arch/msg/lisp/a8fAuIEw5pZwiFPDQaZrtBUkXL8>
Cc: "jmh.direct" <jmh.direct@joelhalpern.com>, "lisp@ietf.org" <lisp@ietf.org>
Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-05.txt
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I will change and submit today.=20

Dino

> On May 3, 2016, at 1:40 AM, Luigi Iannone <ggx@gigix.net> wrote:
>=20
> Hello,
>=20
> I am fine with the latest text proposed by Dino. Just a small question, sh=
ould that =E2=80=9Cmust=E2=80=9D be actually a =E2=80=9CMUST=E2=80=9D as for=
 RFC2119??
>=20
> ciao
>=20
> Luigi
>=20
>> On 02 May 2016, at 23:29, Vina Ermagan (vermagan) <vermagan@cisco.com> wr=
ote:
>>=20
>> This seems fine to me, including the changes suggested by Joel. We=C2=B9l=
l
>> change the text in DDT to 32 bits for IID and referencing LCAF for more
>> details, in the next revision.
>>=20
>> Best,
>> Vina
>>=20
>> On 5/2/16, 10:10 AM, "lisp on behalf of Dino Farinacci"
>> <lisp-bounces@ietf.org on behalf of farinacci@gmail.com> wrote:
>>=20
>>>=20
>>>> On May 2, 2016, at 1:36 AM, Luigi Iannone <ggx@gigix.net> wrote:
>>>>=20
>>>>=20
>>>>> On 29 Apr 2016, at 23:18, Dino Farinacci <farinacci@gmail.com> wrote:
>>>>>=20
>>>>> So how about this as a proposal. The DDT doc refers to 32-bits for the=

>>>>> control-plane and RFC 6830 refers to 24-bits in the data-plane and the=

>>>>> LCAF document explains how to map the 32 into 24 and what the benefit
>>>>> is?
>>>>>=20
>>>>> So I=C2=B9m asking and offering to update the LCAF document to reflect=

>>>>> this. Agree?
>>>>>=20
>>>>=20
>>>> Sounds good to me. I just would like to see a ref to LCAF in the DDT
>>>> document, so that we have a pointer toward were the 32 to 24 bits
>>>> conversion is described.
>>>=20
>>> How about this change? Please ack DDT authors and then supply a referenc=
e
>>> to draft-ietf-lisp-lcaf-13.
>>>=20
>>> Once I get an ack, I=C2=B9ll submit this post-last-call draft update.
>>>=20
>>> Dino
>>>=20
>>=20
>=20


From nobody Tue May  3 08:59:00 2016
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Subject: [lisp] I-D Action: draft-ietf-lisp-lcaf-13.txt
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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 of the IETF.

        Title           : LISP Canonical Address Format (LCAF)
        Authors         : Dino Farinacci
                          Dave Meyer
                          Job Snijders
	Filename        : draft-ietf-lisp-lcaf-13.txt
	Pages           : 41
	Date            : 2016-05-03

Abstract:
   This draft defines a canonical address format encoding used in LISP
   control messages and in the encoding of lookup keys for the LISP
   Mapping Database System.


The IETF datatracker status page for this draft is:
https://datatracker.ietf.org/doc/draft-ietf-lisp-lcaf/

There's also a htmlized version available at:
https://tools.ietf.org/html/draft-ietf-lisp-lcaf-13

A diff from the previous version is available at:
https://www.ietf.org/rfcdiff?url2=draft-ietf-lisp-lcaf-13


Please note that it may take a couple of minutes from the time of submission
until the htmlized version and diff are available at tools.ietf.org.

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ftp://ftp.ietf.org/internet-drafts/


From nobody Wed May  4 09:50:45 2016
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From: "Jose Saldana" <jsaldana@unizar.es>
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Subject: [lisp] New draft posted: draft-saldana-lisp-compress-mux-00.txt
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Hi all,

We have just posted this draft =
https://datatracker.ietf.org/doc/draft-saldana-lisp-compress-mux/.

              Header compression and multiplexing in LISP
                   draft-saldana-lisp-compress-mux-00

Abstract

   When small payloads are transmitted through a packet-switched
   network, the resulting overhead may result significant.  This is
   stressed in the case of LISP, where a number of headers are prepended
   to a packet, as new headers have to be added to each packet.

   This document proposes to send together a number of small packets,
   which are in the buffer of a ITR, having the same ETR as destination,
   into a single packet.  Therefore, they will share a single LISP
   header, and therefore bandwidth savings can be obtained, and a
   reduction in the overall number of packets sent to the network can be
   achieved.

A running implementation can be found here: =
https://github.com/Simplemux/lispmob-with-simplemux. I has been built as =
a fork of lispmob.

The idea is very similar to what was published in this paper: =
http://diec.unizar.es/~jsaldana/personal/budapest_ICC_2013_in_proc.pdf

Your feedback about the draft will be appreciated.

Thanks in advance,

Jose Saldana
Juli=C3=A1n Fern=C3=A1ndez Navajas
Jos=C3=A9 Ruiz Mas

> -----Mensaje original-----
> De: internet-drafts@ietf.org [mailto:internet-drafts@ietf.org]
> Enviado el: mi=C3=A9rcoles, 04 de mayo de 2016 18:20
> Para: Jose Ruiz Mas <jruiz@unizar.es>; Jose Saldana =
<jsaldana@unizar.es>;
> Julian Fernandez Navajas <navajas@unizar.es>
> Asunto: New Version Notification for =
draft-saldana-lisp-compress-mux-00.txt
>=20
>=20
> A new version of I-D, draft-saldana-lisp-compress-mux-00.txt
> has been successfully submitted by Jose Saldana and posted to the IETF
> repository.
>=20
> Name:		draft-saldana-lisp-compress-mux
> Revision:	00
> Title:		Header compression and multiplexing in LISP
> Document date:	2016-05-04
> Group:		Individual Submission
> Pages:		8
> URL:            =
https://www.ietf.org/internet-drafts/draft-saldana-lisp-compress-mux-
> 00.txt
> Status:         =
https://datatracker.ietf.org/doc/draft-saldana-lisp-compress-mux/
> Htmlized:       =
https://tools.ietf.org/html/draft-saldana-lisp-compress-mux-00
>=20
>=20
> Abstract:
>    When small payloads are transmitted through a packet-switched
>    network, the resulting overhead may result significant.  This is
>    stressed in the case of LISP, where a number of headers are =
prepended
>    to a packet, as new headers have to be added to each packet.
>=20
>    This document proposes to send together a number of small packets,
>    which are in the buffer of a ITR, having the same ETR as =
destination,
>    into a single packet.  Therefore, they will share a single LISP
>    header, and therefore bandwidth savings can be obtained, and a
>    reduction in the overall number of packets sent to the network can =
be
>    achieved.
>=20
>=20
>=20
>=20
> Please note that it may take a couple of minutes from the time of =
submission until
> the htmlized version and diff are available at tools.ietf.org.
>=20
> The IETF Secretariat



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For your review. Thank you.

Dino

> Begin forwarded message:
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> From: internet-drafts@ietf.org
> Subject: New Version Notification for =
draft-farinacci-lisp-eid-anonymity-00.txt
> Date: May 6, 2016 at 2:07:28 PM PDT
> To: "Dino Farinacci" <farinacci@gmail.com>, "Padma Pillay-Esnault" =
<padma@huawei.com>
>=20
>=20
> A new version of I-D, draft-farinacci-lisp-eid-anonymity-00.txt
> has been successfully submitted by Dino Farinacci and posted to the
> IETF repository.
>=20
> Name:		draft-farinacci-lisp-eid-anonymity
> Revision:	00
> Title:		LISP EID Anonymity
> Document date:	2016-05-06
> Group:		Individual Submission
> Pages:		8
> URL:            =
https://www.ietf.org/internet-drafts/draft-farinacci-lisp-eid-anonymity-00=
.txt
> Status:         =
https://datatracker.ietf.org/doc/draft-farinacci-lisp-eid-anonymity/
> Htmlized:       =
https://tools.ietf.org/html/draft-farinacci-lisp-eid-anonymity-00
>=20
>=20
> Abstract:
>   This specification will describe how ephemeral LISP EIDs can be used
>   to create source anonymity.  The idea makes use of frequently
>   changing EIDs much like how a credit-card system uses a different
>   credit-card numbers for each transaction.
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> Please note that it may take a couple of minutes from the time of =
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> until the htmlized version and diff are available at tools.ietf.org.
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From: Dino Farinacci <farinacci@gmail.com>
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For your review. Thank you.

Dino

> Begin forwarded message:
>=20
> From: internet-drafts@ietf.org
> Subject: New Version Notification for =
draft-farinacci-lisp-predictive-rlocs-00.txt
> Date: May 6, 2016 at 2:08:03 PM PDT
> To: "Dino Farinacci" <farinacci@gmail.com>, "Padma Pillay-Esnault" =
<padma@huawei.com>
>=20
>=20
> A new version of I-D, draft-farinacci-lisp-predictive-rlocs-00.txt
> has been successfully submitted by Dino Farinacci and posted to the
> IETF repository.
>=20
> Name:		draft-farinacci-lisp-predictive-rlocs
> Revision:	00
> Title:		LISP Predictive RLOCs
> Document date:	2016-05-06
> Group:		Individual Submission
> Pages:		13
> URL:            =
https://www.ietf.org/internet-drafts/draft-farinacci-lisp-predictive-rlocs=
-00.txt
> Status:         =
https://datatracker.ietf.org/doc/draft-farinacci-lisp-predictive-rlocs/
> Htmlized:       =
https://tools.ietf.org/html/draft-farinacci-lisp-predictive-rlocs-00
>=20
>=20
> Abstract:
>   This specification will describe a method to achieve near-zero =
packet
>   loss when an EID is roaming quickly across RLOCs.
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>=20
>=20
>=20
>=20
> Please note that it may take a couple of minutes from the time of =
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From nobody Fri May  6 15:14:11 2016
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Subject: [lisp] WG Action: Rechartered Locator/ID Separation Protocol (lisp)
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The Locator/ID Separation Protocol (lisp) WG in the Routing Area of the
IETF has been rechartered. For additional information, please contact the
Area Directors or the WG Chairs.

Locator/ID Separation Protocol (lisp)
-----------------------------------------------------------------------
Current status: Active WG

Chairs:
  Joel Halpern <jmh@joelhalpern.com>
  Luigi Iannone <ggx@gigix.net>

Secretaries:
  Damien Saucez <damien.saucez@gmail.com>
  Wassim Haddad <Wassim.Haddad@ericsson.com>

Assigned Area Director:
  Deborah Brungard <db3546@att.com>

Routing Area Directors:
  Alia Atlas <akatlas@gmail.com>
  Alvaro Retana <aretana@cisco.com>
  Deborah Brungard <db3546@att.com>
 
Mailing list:
  Address: lisp@ietf.org
  To subscribe: https://www.ietf.org/mailman/listinfo/lisp
  Archive: https://mailarchive.ietf.org/arch/browse/lisp/

Charter: https://datatracker.ietf.org/doc/charter-ietf-lisp/

The LISP WG has completed the first set of Experimental RFCs describing
the Locator/ID Separation Protocol (LISP). LISP supports a routing
architecture which decouples the routing locators and identifiers, thus
allowing for efficient aggregation of the routing locator space and
providing persistent identifiers in the identifier space. LISP requires 
no changes to end-systems or to routers that do not directly participate 
in the LISP deployment. LISP aims for an incrementally deployable
protocol. The scope of the LISP technology is potentially applicable to
have a large span, including unicast and multicast overlays at Layer 2 
as well as at Layer 3, encompassing NAT traversal, VPNs, and supporting
mobility as a general feature, independently of whether it is a mobile 
user or a migrating Virtual Machine (VM). Hence, the LISP technology is
applicable in both Data Centers and public Internet environments.

The LISP WG is chartered to continue work on the LISP base protocol and
produce standard-track documents. In order to produce a coherent set of
documents, the first (and high priority) work item of the LISP Working
Group is to develop a standard-track solution based on the completed
Experimental RFCs and the experience gained from early deployments.
This work will include reviewing the existing set of Experimental RFCs
and doing the necessary enhancements to support a base set of standards
track RFCs. The group will review the current set of Working Group
documents to identify potential standards-track documents and do
the necessary enhancements to support standards-track.

In parallel with the previous main work item, the LISP WG will work on 
the items listed below:

  - Multi-protocol support: Specifying the required extensions to
support multi-protocol encapsulation (e.g., L2 or NSH (Network
Service Headers). Rather than developing new encapsulations the
work will aim at using existing well-established encapsulations or
emerging from other Working Groups such as NVO3 and SFC.
  
  - Alternative Mapping System Design: By extending LISP with new
multi-protocols support, it becomes necessary to develop the required
mapping function and control plane extensions to operate LISP
map-assisted networks (which might include Hierarchical Pull,
Publish/Subscribe, or Push models, independent mapping systems
interconnection, security extensions, or alternative transports of the
LISP control protocol).
  
  - Mobility: Some LISP deployment scenarios include mobile nodes
(in mobile environments) or Virtual Machines (VMs in data centers),
hence, support needs to be provided in order to achieve seamless
connectivity. This work item may benefit from experience of other
Working Groups like DMM (Distributed Mobility Management) or NVO3
(for VM migration).
  
  - Multicast: Support for overlay multicast by means of replication
as well as interfacing with existing underlay multicast support. This
may need discussion with other Working Groups related to multicast
solutions (e.g. PIM).
 
  - Data-Plane Encryption: In some scenarios, it may be desirable to
encrypt LISP encapsulated traffic. In this case, the data-plane
encryption mechanism itself and support for control-plane security
material exchange needs to be specified. Any solution proposed in this
work item has to be reviewed by security experts. 
  
  - NAT-Traversal: Support for NAT-traversal solution in deployments
where LISP tunnel routers are separated from correspondent tunnel
routers by a NAT (e.g., LISP mobile node).
  
  - Models for managing the LISP protocol and deployments that include
data models, as well as allowing for programmable management interfaces.
These management methods should be considered for both the data-plane,
control plane, and mapping system components of standards-track
documents.

Similar to the main work item, documents for these work items will as 
well target standard-track unless the document is of a different 
maturity level (e.g., Informational or Experimental). In the latter 
case, the Working Group will evaluate the maturity level and propose a 
recommended track for the document.
 
Collaboration with other working groups, as stated in the different work 
items (e.g., PIM, NVO3, DMM, SFC), is important to ensure to have 
technologies that work smoothly together. The LISP Working Group is 
chartered to work on the LISP technology. It may use technologies 
developed in other working groups, but if it identifies needs for 
extensions or modifications, those extensions and modifications will be 
addressed in the working groups that developed those technologies. The 
LISP Working Group may provide feedback to other working groups based on 
experience gained while using their solutions.

Milestones:
  Aug 2016 - Submit a LISP control-plane security mechanism document to
the IESG for consideration as Experimental
  Apr 2017 - Submit a LISP unicast data-plane specification (6830bis)
document to the IESG for consideration as Proposed Standard
  Apr 2017 - Submit a LISP multicast data-plane specification (6831bis)
document to the IESG for consideration as Proposed Standard
  Jul 2017 - Submit a LISP control-plane specification (6833bis) document
to the IESG for consideration as Proposed Standard
  Jul 2017 - Submit a LISP interworking specification (6832bis) document
to the IESG for consideration as Proposed Standard
  Jul 2017 - Submit a LISP Mobility document to the IESG for
consideration as Proposed Standard



From nobody Mon May  9 12:02:43 2016
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From: Alberto Rodriguez-Natal <arnatal@ac.upc.edu>
Date: Mon, 9 May 2016 20:32:14 +0200
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--001a114075ae3ac41605326d084a
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Dino,

This is really interesting, thanks for writing!

We did some work in privacy for LISP-MN back in the day when I was a MSc
student. Later we published the results on an ICC paper that you can find
in [1]. Maybe you can use some of that for the draft :)

Best,
Alberto

[1]
https://www.researchgate.net/publication/302512680_Location_and_Identity_Privacy_for_LISP-MN

--001a114075ae3ac41605326d084a
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<div dir=3D"ltr"><div><div>Dino,<br><br></div>This is really interesting, t=
hanks for writing!<br><br>We did some work in privacy for LISP-MN back in t=
he day when I was a MSc student. Later we published the results on an ICC p=
aper that you can find in [1]. Maybe you can use some of that for the draft=
 :)<br><br></div><div>Best,<br></div><div>Alberto<br></div><div><br></div>[=
1] <a href=3D"https://www.researchgate.net/publication/302512680_Location_a=
nd_Identity_Privacy_for_LISP-MN">https://www.researchgate.net/publication/3=
02512680_Location_and_Identity_Privacy_for_LISP-MN</a><br></div>

--001a114075ae3ac41605326d084a--


From nobody Mon May  9 12:38:38 2016
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From: Dino Farinacci <farinacci@gmail.com>
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References: <20160506210728.7372.53165.idtracker@ietfa.amsl.com> <7B002409-73C7-4B43-9F20-DC19B67B1619@gmail.com> <CA+YHcKGmMNfS-T5=Li_OUyjujG9Gk=s81mkG1fRxHcNRJdHs5g@mail.gmail.com>
To: Alberto Rodriguez-Natal <arnatal@ac.upc.edu>
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Subject: Re: [lisp] New Version Notification for draft-farinacci-lisp-eid-anonymity-00.txt
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We=E2=80=99ll certainly have a look. Thanks!

Dino

> On May 9, 2016, at 11:32 AM, Alberto Rodriguez-Natal =
<arnatal@ac.upc.edu> wrote:
>=20
> Dino,
>=20
> This is really interesting, thanks for writing!
>=20
> We did some work in privacy for LISP-MN back in the day when I was a =
MSc student. Later we published the results on an ICC paper that you can =
find in [1]. Maybe you can use some of that for the draft :)
>=20
> Best,
> Alberto
>=20
> [1] =
https://www.researchgate.net/publication/302512680_Location_and_Identity_P=
rivacy_for_LISP-MN


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From: "BRUNGARD, DEBORAH A" <db3546@att.com>
To: "lisp@ietf.org" <lisp@ietf.org>
Thread-Topic: WG Action: Rechartered Locator/ID Separation Protocol (lisp)
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Subject: [lisp] FW: WG Action: Rechartered Locator/ID Separation Protocol (lisp)
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LISP,

Your new charter has been approved. Much thanks to your chairs for their he=
lp!
All the best-
Deborah


-----Original Message-----
From: iesg [mailto:iesg-bounces@ietf.org] On Behalf Of The IESG
Sent: Friday, May 06, 2016 6:14 PM
To: IETF-Announce <ietf-announce@ietf.org>
Cc: lisp-chairs@ietf.org; lisp@ietf.org; The IESG <iesg@ietf.org>
Subject: WG Action: Rechartered Locator/ID Separation Protocol (lisp)

The Locator/ID Separation Protocol (lisp) WG in the Routing Area of the
IETF has been rechartered. For additional information, please contact the
Area Directors or the WG Chairs.

Locator/ID Separation Protocol (lisp)
-----------------------------------------------------------------------
Current status: Active WG

Chairs:
  Joel Halpern <jmh@joelhalpern.com>
  Luigi Iannone <ggx@gigix.net>

Secretaries:
  Damien Saucez <damien.saucez@gmail.com>
  Wassim Haddad <Wassim.Haddad@ericsson.com>

Assigned Area Director:
  Deborah Brungard <db3546@att.com>

Routing Area Directors:
  Alia Atlas <akatlas@gmail.com>
  Alvaro Retana <aretana@cisco.com>
  Deborah Brungard <db3546@att.com>
=20
Mailing list:
  Address: lisp@ietf.org
  To subscribe: https://www.ietf.org/mailman/listinfo/lisp
  Archive: https://mailarchive.ietf.org/arch/browse/lisp/

Charter: https://datatracker.ietf.org/doc/charter-ietf-lisp/

The LISP WG has completed the first set of Experimental RFCs describing
the Locator/ID Separation Protocol (LISP). LISP supports a routing
architecture which decouples the routing locators and identifiers, thus
allowing for efficient aggregation of the routing locator space and
providing persistent identifiers in the identifier space. LISP requires=20
no changes to end-systems or to routers that do not directly participate=20
in the LISP deployment. LISP aims for an incrementally deployable
protocol. The scope of the LISP technology is potentially applicable to
have a large span, including unicast and multicast overlays at Layer 2=20
as well as at Layer 3, encompassing NAT traversal, VPNs, and supporting
mobility as a general feature, independently of whether it is a mobile=20
user or a migrating Virtual Machine (VM). Hence, the LISP technology is
applicable in both Data Centers and public Internet environments.

The LISP WG is chartered to continue work on the LISP base protocol and
produce standard-track documents. In order to produce a coherent set of
documents, the first (and high priority) work item of the LISP Working
Group is to develop a standard-track solution based on the completed
Experimental RFCs and the experience gained from early deployments.
This work will include reviewing the existing set of Experimental RFCs
and doing the necessary enhancements to support a base set of standards
track RFCs. The group will review the current set of Working Group
documents to identify potential standards-track documents and do
the necessary enhancements to support standards-track.

In parallel with the previous main work item, the LISP WG will work on=20
the items listed below:

  - Multi-protocol support: Specifying the required extensions to
support multi-protocol encapsulation (e.g., L2 or NSH (Network
Service Headers). Rather than developing new encapsulations the
work will aim at using existing well-established encapsulations or
emerging from other Working Groups such as NVO3 and SFC.
 =20
  - Alternative Mapping System Design: By extending LISP with new
multi-protocols support, it becomes necessary to develop the required
mapping function and control plane extensions to operate LISP
map-assisted networks (which might include Hierarchical Pull,
Publish/Subscribe, or Push models, independent mapping systems
interconnection, security extensions, or alternative transports of the
LISP control protocol).
 =20
  - Mobility: Some LISP deployment scenarios include mobile nodes
(in mobile environments) or Virtual Machines (VMs in data centers),
hence, support needs to be provided in order to achieve seamless
connectivity. This work item may benefit from experience of other
Working Groups like DMM (Distributed Mobility Management) or NVO3
(for VM migration).
 =20
  - Multicast: Support for overlay multicast by means of replication
as well as interfacing with existing underlay multicast support. This
may need discussion with other Working Groups related to multicast
solutions (e.g. PIM).
=20
  - Data-Plane Encryption: In some scenarios, it may be desirable to
encrypt LISP encapsulated traffic. In this case, the data-plane
encryption mechanism itself and support for control-plane security
material exchange needs to be specified. Any solution proposed in this
work item has to be reviewed by security experts.=20
 =20
  - NAT-Traversal: Support for NAT-traversal solution in deployments
where LISP tunnel routers are separated from correspondent tunnel
routers by a NAT (e.g., LISP mobile node).
 =20
  - Models for managing the LISP protocol and deployments that include
data models, as well as allowing for programmable management interfaces.
These management methods should be considered for both the data-plane,
control plane, and mapping system components of standards-track
documents.

Similar to the main work item, documents for these work items will as=20
well target standard-track unless the document is of a different=20
maturity level (e.g., Informational or Experimental). In the latter=20
case, the Working Group will evaluate the maturity level and propose a=20
recommended track for the document.
=20
Collaboration with other working groups, as stated in the different work=20
items (e.g., PIM, NVO3, DMM, SFC), is important to ensure to have=20
technologies that work smoothly together. The LISP Working Group is=20
chartered to work on the LISP technology. It may use technologies=20
developed in other working groups, but if it identifies needs for=20
extensions or modifications, those extensions and modifications will be=20
addressed in the working groups that developed those technologies. The=20
LISP Working Group may provide feedback to other working groups based on=20
experience gained while using their solutions.

Milestones:
  Aug 2016 - Submit a LISP control-plane security mechanism document to
the IESG for consideration as Experimental
  Apr 2017 - Submit a LISP unicast data-plane specification (6830bis)
document to the IESG for consideration as Proposed Standard
  Apr 2017 - Submit a LISP multicast data-plane specification (6831bis)
document to the IESG for consideration as Proposed Standard
  Jul 2017 - Submit a LISP control-plane specification (6833bis) document
to the IESG for consideration as Proposed Standard
  Jul 2017 - Submit a LISP interworking specification (6832bis) document
to the IESG for consideration as Proposed Standard
  Jul 2017 - Submit a LISP Mobility document to the IESG for
consideration as Proposed Standard



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Subject: Re: [lisp] FW: WG Action: Rechartered Locator/ID Separation Protocol (lisp)
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> Your new charter has been approved. Much thanks to your chairs for their h=
elp!
> All the best-
> Deborah

And thank you Deborah for championing it through. We got cool stuff coming.=20=


Dino=


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Subject: [lisp] Fwd: NomCom 2016-2017 Call for Volunteers
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Please volunteer.
Thank you,
Joel


-------- Forwarded Message --------
Subject: NomCom 2016-2017 Call for Volunteers
Date: Thu, 19 May 2016 12:03:42 -0700
From: NomCom Chair 2016 <nomcom-chair-2016@ietf.org>
Reply-To: ietf@ietf.org
To: IETF Announcement List <ietf-announce@ietf.org>

Subject: NomCom 2016-2017 Call for Volunteers

The IETF nomcom appoints folks to fill the open slots on the IAOC, the 
IAB, and the IESG.

Ten voting members for the nomcom are selected in a verifiably random 
way from a pool of volunteers. The more volunteers, the better chance we 
have of choosing
a random yet representative cross section of the IETF population.

The details of the operation of the nomcom can be found in RFC 7437, and 
BCP10/RFC3797 details the selection algorithm.

Volunteers must have attended 3 of the past 5 IETF meetings.  As 
specified in RFC 7437, that means three out of the five past meetings up 
to the time this email announcement goes out to start the solicitation 
of volunteers. The five meetings out of which you must have attended 
*three* are:

IETF = 91 (Honolulu)      \
        92 (Dallas)         \
        93 (Prague)          -*** ANY THREE!
        94 (Yokohama)       /
        95 (Buenos Aires)  /


If you qualify, please volunteer. Before you decide to volunteer, please 
remember that anyone appointed to this Nomcom will not be considered as 
a candidate for any of the positions that the 2016 - 2017 Nomcom is 
responsible for filling.

Some 229 people have already volunteered by ticking the box on the IETF 
95 registration form. 131 of these have been verified as eligible. I 
will contact all of these shortly. Thank you for volunteering!

The list of people and posts whose terms end with the March 2017 IETF 
meeting, and thus the positions for which this nomcom is responsible, are

IAOC:

     Lou Berger

IAB:

     Ralph Droms
     Russ Housley
     Robert Sparks
     Andrew Sullivan
     Dave Thaler
     Suzanne Woolf

IESG:

     Jari Arkko (GEN)
     Deborah Brungard (RTG)
     Ben Campbell (ART)
     Spencer Dawkins (TSV)
     Stephen Farrell (SEC)
     Joel Jaeggli (OPS)     Terry Manderson (INT)
     Alvaro Retana (RTG)


All appointments are for 2 years. The ART and Routing areas have 3 ADs 
and the General area has 1; all other areas have 2 ADs. Thus, all areas 
(with the exception of GEN) have at least one continuing AD.

The primary activity for this nomcom will begin in July 2016 and should 
be completed in January 2017.   The nomcom will have regularly scheduled 
conference calls to ensure progress. There will be activities to collect 
requirements from the community, review candidate questionnaires, review 
feedback from community members about candidates, and talk to candidates.

While being a nomcom member does require some time commitment it is also 
a very rewarding experience.

As a member of the nomcom it is very important that you be able to 
attend IETF97
(Seoul) to conduct interviews. Being at IETF96 (Berlin) is useful for 
orientation.  Being at IETF98 is not essential.

Please volunteer by sending me an email before 23:59 UTC June 20, 2016, 
as follows:

To: nomcom-chair-2016@ietf.org
Subject: Nomcom 2016-17 Volunteer

Please include the following information in the email body:

Your Full Name: __________
     // as you write it on the IETF registration form
Current Primary Affiliation:
     // Typically what goes in the Company field
     // in the IETF Registration Form
Emails: _______________
    // All email addresses used to register for the past 5 IETF meetings
    // Preferred email address first
Telephone: _______________________
     // For confirmation if selected

You should expect an email response from me within 5 business days 
stating whether or not you are qualified.  If you don't receive this 
response, please re-send your email with the tag "RESEND"" added to the 
subject line.

If you are not yet sure if you would like to volunteer, please consider 
that nomcom members play a very important role in shaping the leadership 
of the IETF.
Questions by email or voice are welcome. Volunteering for the nomcom is 
a great way to contribute to the IETF!

You can find a detailed timeline on the nomcom web site at:
     https://datatracker.ietf.org/nomcom/2016/

I will be publishing a more detailed target timetable, as well as 
details of the randomness seeds to be used for the RFC 3797 selection 
process, within the next few weeks.

Thank you!

Lucy Lynch
llynch@civil-tongue.net
nomcom-chair-2016@ietf.org



From nobody Fri May 27 03:08:49 2016
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From: Xuxiaohu <xuxiaohu@huawei.com>
To: "int-area@ietf.org" <int-area@ietf.org>, Softwires WG <softwires@ietf.org>, "nvo3@ietf.org" <nvo3@ietf.org>, "lisp@ietf.org" <lisp@ietf.org>, "tsvwg@ietf.org" <tsvwg@ietf.org>
Thread-Topic: Is it feasible to perform fragmentation on UDP encapsulated packets.
Thread-Index: AQHRt/+2WtIZvGZrakmsedKxg0Mnzw==
Date: Fri, 27 May 2016 10:08:28 +0000
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Subject: [lisp] Is it feasible to perform fragmentation on UDP encapsulated packets.
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<Note that I have changed the subject of the email hence it has nothing to =
do with the WG adoption call now. It's just a discussion on a particular is=
sue which is related to those WGs which are working on UDP tunnels. The rea=
son for containing the old email is to use it as a background which may be =
useful for better understanding of this particular issue>

The possible side-effect of performing fragmentation on UDP encapsulated pa=
ckets is to worsen the reassembly burden on tunnel egress since fragments o=
f UDP encapsulated packets are more likely to be forwarded across different=
 paths towards the tunnel egress than those of IP or GRE encapsulated packe=
ts.

It seems that most X-over-UDP proposals choose to prohibit the tunnel ingre=
ss from performing fragmentation on UDP encapsulated packets. See the follo=
wing quoted text regarding fragmentation from those X-over-UDP drafts:

LISP:

When an ITR receives a packet from a site-facing interface and adds H
   octets worth of encapsulation to yield a packet size greater than L
   octets, 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.

VXLAN:

VTEPs MUST NOT fragment VXLAN packets.  Intermediate routers may
   fragment encapsulated VXLAN packets due to the larger frame size.
   The destination VTEP MAY silently discard such VXLAN fragments.

VXLAN-GPE:

VTEPs MUST never fragment an encapsulated VXLAN GPE packet, and when
   the outer IP header is IPv4, VTEPs MUST set the DF bit in the outer
   IPv4 header.

GEVENE:

   To prevent fragmentation and maximize performance, the best practice
   when using Geneve is to ensure that the MTU of the physical network
   is greater than or equal to the MTU of the encapsulated network plus
   tunnel headers.

GUE:

    If a packet is fragmented before encapsulation in GUE, all the
    related fragments must be encapsulated using the same source port
    (inner flow identifier). An operator may set MTU to account for
    encapsulation overhead and reduce the likelihood of fragmentation.

GRE/UDP

Regarding packet fragmentation, an encapsulator/decapsulator SHOULD
   be compliant with [RFC7588] and perform fragmentation before the
   encapsulation.

However, the above choice seems conflict with the requirements as described=
 in https://tools.ietf.org/html/draft-ietf-intarea-tunnels-02


I wonder whether the IETF should reach a consensus on whether or not the fr=
agmentation on UDP encapsulated packets should be allowed.
 =20
Best regards,
Xiaohu

> -----Original Message-----
> From: Xuxiaohu
> Sent: Thursday, May 26, 2016 4:35 PM
> To: 'Joe Touch'; Fred Baker (fred); Wassim Haddad
> Cc: int-area@ietf.org
> Subject: RE: [Int-area] Call for adoption of draft-xu-intarea-ip-in-udp-0=
3
>=20
>=20
>=20
> > -----Original Message-----
> > From: Joe Touch [mailto:touch@isi.edu]
> > Sent: Thursday, May 26, 2016 2:11 AM
> > To: Xuxiaohu; Fred Baker (fred); Wassim Haddad
> > Cc: int-area@ietf.org
> > Subject: Re: [Int-area] Call for adoption of
> > draft-xu-intarea-ip-in-udp-03
> >
> >
> >
> > On 5/24/2016 7:24 PM, Xuxiaohu wrote:
> > > Hi Joe,
> > >
> > > I wonder whether you want to tell me the following truth by the
> > > example that you gave: no matter whatever improvements we had done
> > > with this draft, those persons who dislike it by the light of nature
> > > would dislike it in the end.
> >
> > The only improvements that would make this doc useful would be to add
> > capabilities already in GRE/UDP or GUE/UDP, which we already have.
>=20
> Let's go over the four things you mentioned earlier in GRE/UDP and GUE/UD=
P:
>=20
> 	- stronger checksums
>=20
> In GRE/UDP, in order to use UDP-zero-checksum, it gave the following
> restrictions:
> " 6. UDP Checksum Handling
>=20
>    6.1. UDP Checksum with IPv4
>=20
>    For UDP in IPv4, the UDP checksum MUST be processed as specified in
>    [RFC768] and [RFC1122] for both transmit and receive. The IPv4
>=20
>=20
>=20
> Yong, Crabber, Xu, Herbert                                    [Page 12]
> -------------------------------------------------------------------------=
-------
>=20
> Internet-Draft          GRE-in-UDP Encapsulation             March 2016
>=20
>    header includes a checksum which protects against mis-delivery of
>    the packet due to corruption of IP addresses. The UDP checksum
>    potentially provides protection against corruption of the UDP header,
>    GRE header, and GRE payload. Disabling the use of checksums is a
>    deployment consideration that should take into account the risk and
>    effects of packet corruption.
>=20
>    When a decapsulator receives a packet, the UDP checksum field MUST
>    be processed. If the UDP checksum is non-zero, the decapsulator MUST
>    verify the checksum before accepting the packet. By default a
>    decapsulator SHOULD accept UDP packets with a zero checksum. A node
>    MAY be configured to disallow zero checksums per [RFC1122]; this may
>    be done selectively, for instance disallowing zero checksums from
>    certain hosts that are known to be sending over paths subject to
>    packet corruption. If verification of a non-zero checksum fails, a
>    decapsulator lacks the capability to verify a non-zero checksum, or
>    a packet with a zero-checksum was received and the decapsulator is
>    configured to disallow, the packet MUST be dropped and an event MAY
>    be logged.
>=20
>    6.2. UDP Checksum with IPv6
>=20
>    For UDP in IPv6, the UDP checksum MUST be processed as specified in
>    [RFC768] and [RFC2460] for both transmit and receive.
>=20
>    When UDP is used over IPv6, the UDP checksum is relied upon to
>    protect both the IPv6 and UDP headers from corruption. As such, A
>    default GRE-in-UDP Tunnel MUST perform UDP checksum; A TMCE GRE-in-
>    UDP Tunnel MAY be configured with the UDP zero-checksum mode if the
>    traffic-managed controlled environment or a set of closely
>    cooperating traffic-managed controlled environments (such as by
>    network operators who have agreed to work together in order to
>    jointly provide specific services) meet at least one of following
>    conditions:
>=20
>    a. It is known (perhaps through knowledge of equipment types and
>       lower layer checks) that packet corruption is exceptionally
>       unlikely and where the operator is willing to take the risk of
>       undetected packet corruption.
>=20
>    b. It is judged through observational measurements (perhaps of
>       historic or current traffic flows that use a non-zero checksum)
>       that the level of packet corruption is tolerably low and where
>       the operator is willing to take the risk of undetected packet
>       corruption.
>=20
>=20
>=20
>=20
>=20
> Yong, Crabber, Xu, Herbert                                    [Page 13]
> -------------------------------------------------------------------------=
-------
>=20
> Internet-Draft          GRE-in-UDP Encapsulation             March 2016
>=20
>    c. Carrying applications that are tolerant of mis-delivered or
>       corrupted packets (perhaps through higher layer checksum,
>       validation, and retransmission or transmission redundancy) where
>       the operator is willing to rely on the applications using the
>       tunnel to survive any corrupt packets.
>=20
>    The following requirements apply to a TMCE GRE-in-UDP tunnel that
>    use UDP zero-checksum mode:
>=20
>      a. Use of the UDP checksum with IPv6 MUST be the default
>         configuration of all GRE-in-UDP tunnels.
>=20
>      b. The GRE-in-UDP tunnel implementation MUST comply with all
>         requirements specified in Section 4 of [RFC6936] and with
>         requirement 1 specified in Section 5 of [RFC6936].
>=20
>      c. The tunnel decapsulator SHOULD only allow the use of UDP zero-
>         checksum mode for IPv6 on a single received UDP Destination
>         Port regardless of the encapsulator. The motivation for this
>         requirement is possible corruption of the UDP Destination Port,
>         which may cause packet delivery to the wrong UDP port. If that
>         other UDP port requires the UDP checksum, the mis-delivered
>         packet will be discarded.
>=20
>      d. It is RECOMMENDED that the UDP zero-checksum mode for IPv6 is
>         only enabled for certain selected source addresses. The tunnel
>         decapsulator MUST check that the source and destination IPv6
>         addresses are valid for the GRE-in-UDP tunnel on which the
>         packet was received if that tunnel uses UDP zero-checksum mode
>         and discard any packet for which this check fails.
>=20
>      e. The tunnel encapsulator SHOULD use different IPv6 addresses for
>         each GRE-in-UDP tunnel that uses UDP zero-checksum mode
>         regardless of the decapsulator in order to strengthen the
>         decapsulator's check of the IPv6 source address (i.e., the same
>         IPv6 source address SHOULD NOT be used with more than one IPv6
>         destination address, independent of whether that destination
>         address is a unicast or multicast address). When this is not
>         possible, it is RECOMMENDED to use each source IPv6 address for
>         as few UDP zero-checksum mode GRE-in-UDP tunnels as is feasible.
>=20
>      f. When any middlebox exists on the path of a GRE-in-UDP tunnel,
>         it is RECOMMENDED to use the default mode, i.e. use UDP
>         checksum, to reduce the chance that the encapsulated packets to
>         be dropped.
>=20
>=20
>=20
>=20
>=20
> Yong, Crabber, Xu, Herbert                                    [Page 14]
> -------------------------------------------------------------------------=
-------
>=20
> Internet-Draft          GRE-in-UDP Encapsulation             March 2016
>=20
>      g. Any middlebox that allows the UDP zero-checksum mode for IPv6
>         MUST comply with requirement 1 and 8-10 in Section 5 of
>         [RFC6936].
>=20
>      h. Measures SHOULD be taken to prevent IPv6 traffic with zero UDP
>         checksums from "escaping" to the general Internet; see Section
>         8 for examples of such measures.
>=20
>      i. IPv6 traffic with zero UDP checksums MUST be actively monitored
>         for errors by the network operator. For example, the operator
>         may monitor Ethernet layer packet error rates.
>=20
>      j. If a packet with a non-zero checksum is received, the checksum
>         MUST be verified before accepting the packet. This is
>         regardless of whether the tunnel encapsulator and decapsulator
>         have been configured with UDP zero-checksum mode.
>=20
>    The above requirements do not change either the requirements
>    specified in [RFC2460] as modified by [RFC6935] or the requirements
>    specified in [RFC6936].
>=20
>    The requirement to check the source IPv6 address in addition to the
>    destination IPv6 address, plus the strong recommendation against
>    reuse of source IPv6 addresses among GRE-in-UDP tunnels collectively
>    provide some mitigation for the absence of UDP checksum coverage of
>    the IPv6 header. A traffic-managed controlled environment that
>    satisfies at least one of three conditions listed above in this
>    section provides additional assurance.
>=20
>    A GRE-in-UDP tunnel is suitable for transmission over lower layers
>    in the traffic-managed controlled environments that are allowed by
>    the exceptions stated above and the rate of corruption of the inner
>    IP packet on such networks is not expected to increase by comparison
>    to GRE traffic that is not encapsulated in UDP.  For these reasons,
>    GRE-in-UDP does not provide an additional integrity check except
>    when GRE checksum is used when UDP zero-checksum mode is used with
>    IPv6, and this design is in accordance with requirements 2, 3 and 5
>    specified in Section 5 of [RFC6936].
>=20
>    Generic Router Encapsulation (GRE) does not accumulate incorrect
>    state as a consequence of GRE header corruption. A corrupt GRE
>    packet may result in either packet discard or forwarding of the
>    packet without accumulation of GRE state. Active monitoring of GRE-
>    in-UDP traffic for errors is REQUIRED as occurrence of errors will
>    result in some accumulation of error information outside the
>    protocol for operational and management purposes. This design is in
>    accordance with requirement 4 specified in Section 5 of [RFC6936].
>=20
>=20
>=20
> Yong, Crabber, Xu, Herbert                                    [Page 15]
> -------------------------------------------------------------------------=
-------
>=20
> Internet-Draft          GRE-in-UDP Encapsulation             March 2016
>=20
>    The remaining requirements specified in Section 5 of [RFC6936] are
>    not applicable to GRE-in-UDP.  Requirements 6 and 7 do not apply
>    because GRE does not include a control feedback mechanism.
>    Requirements 8-10 are middlebox requirements that do not apply to
>    GRE-in-UDP tunnel endpoints (see Section 7.1 for further middlebox
>    discussion).
>=20
>    It is worth mentioning that the use of a zero UDP checksum should
>    present the equivalent risk of undetected packet corruption when
>    sending similar packet using GRE-in-IPv6 without UDP [RFC7676] and
>    without GRE checksums.
>=20
>    In summary, a TMCE GRE-in-UDP Tunnel is allowed to use UDP-zero-
>    checksum mode for IPv6 when the conditions and requirements stated
>    above are met. Otherwise the UDP checksum need to be used for IPv6
>    as specified in [RFC768] and [RFC2460]. Use of GRE checksum is
>    RECOMMENED when the UDP checksum is not used.
> "
>=20
> In GUE, to support UDP-checksum-zero, it said
>=20
> " Therefore, when GUE is used over
>     IPv6, either the UDP checksum must be enabled or the GUE header
>     checksum must be used.  An encapsulator MAY set a zero UDP checksum
>     for performance or implementation reasons, in which case the GUE
>     header checksum MUST be used or applicable requirements for using
>     zero UDP checksums in [GREUDP] MUST be met. If the UDP checksum is
>     enabled, then the GUE header checksum should not be used since it is
>     mostly redundant."
>=20
> It's easy for me to add the similar words to the IP-in-UDP draft like "th=
e
> applicable requirements for using zero UDP checksum in [GREUDP] MUST be
> met when zero UDP checksum is used by the tunnel ingress". However, the
> major goal for disabling the UDP checksum is to improve the performance.
> When GUE header checksum is used and/or the bunch of applicable
> requirements as described in GRE/UDP are verified, is the goal of improvi=
ng
> performance still achievable? If not, why not directly enable the UDP-che=
cksum
> instead?
>=20
> 	- fragmentation support
>=20
> In GRE/UDP, it said
>=20
> " 4.1. MTU and Fragmentation
>=20
>    Regarding packet fragmentation, an encapsulator/decapsulator SHOULD
>    be compliant with [RFC7588] and perform fragmentation before the
>    encapsulation. The size of fragments SHOULD be less or equal to the
>    PMTU associated with the path between the GRE ingress and the GRE
>    egress tunnel endpoints minus the GRE and UDP overhead ..."
>=20
> in GUE, it said
>=20
> " 4.9. MTU and fragmentation
>=20
>     Standard conventions for handling of MTU (Maximum Transmission Unit)
>     and fragmentation in conjunction with networking tunnels
>     (encapsulation of layer 2 or layer 3 packets) should be followed.
>     Details are described in MTU and Fragmentation Issues with In-the-
>     Network Tunneling [RFC4459]... "
>=20
> It seems that the only missing thing in the IP-in-UDP draft is to allow t=
he outer
> fragmentation. However, as it said in
> (https://tools.ietf.org/html/draft-ietf-intarea-tunnels-02#page-13), " ..=
.IPsec
> performs only Outer Fragmentation; this distinguishes it from IP-in-IP, w=
hich
> performs only Inner Fragmentation. " Note that IP-in-IP is the dominant
> encapsulation choice within Softwires networks. In other words, performin=
g
> only inner fragmentation works very well in practice. Furthermore, the ou=
ter
> fragmentation issue (e.g., reassembly cost for the egress) would become e=
ven
> worse since the fragments of X-in-UDP packets are more likely to be forwa=
rded
> across different paths than those of X-in-IP and X-in-GRE packets. Hence,=
 I'm
> wondering whether it's worthwhile to support the outer fragmentation on U=
DP
> encapsulated packets which seems useless in practice.
>=20
> 	- signalling support (e.g., to test whether a tunnel is up or
> 	to measure MTUs)
>=20
> I haven't found any description of this in both GRE/UDP and GUE. Did you?
>=20
> 	- support for robust ID fields (related to fragmentation,
> 	e.g., to overcome the limits of IPv4 ID as per RFC 6864)
>=20
> I haven't found any description of this in both GRE/UDP and GUE. Did you?
>=20
> Xiaohu
>=20
> > It is not our obligation to find a way for your document to proceed -
> > that onus is on you.
> >
> > Joe


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References: <E83B905A-FF6D-4996-B71A-7921DE4B133B@ericsson.com> <BFC09F5C-D6DF-4B6B-AA95-03919B9F09FB@cisco.com> <573E2A0E.1060609@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D54EB60@NKGEML515-MBX.china.huawei.com> <573F453C.5060908@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D554B73@NKGEML515-MBS.china.huawei.com> <5743303C.5040109@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D55514C@NKGEML515-MBS.china.huawei.com> <5743DD16.3050506@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D555482@NKGEML515-MBS.china.huawei.com> <57448C14.2060203@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D5557DE@NKGEML515-MBS.china.huawei.com> <9c462520-eb8e-fcd0-0a08-228f80fbc779@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D5596E0@NKGEML515-MBS.china.huawei.com>
To: Xuxiaohu <xuxiaohu@huawei.com>
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Subject: Re: [lisp] [Softwires] Is it feasible to perform fragmentation on UDP encapsulated packets.
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> <Note that I have changed the subject of the email hence it has =
nothing to do with the WG adoption call now. It's just a discussion on a =
particular issue which is related to those WGs which are working on UDP =
tunnels. The reason for containing the old email is to use it as a =
background which may be useful for better understanding of this =
particular issue>
>=20
> The possible side-effect of performing fragmentation on UDP =
encapsulated packets is to worsen the reassembly burden on tunnel egress =
since fragments of UDP encapsulated packets are more likely to be =
forwarded across different paths towards the tunnel egress than those of =
IP or GRE encapsulated packets.
>=20
> It seems that most X-over-UDP proposals choose to prohibit the tunnel =
ingress from performing fragmentation on UDP encapsulated packets. See =
the following quoted text regarding fragmentation from those X-over-UDP =
drafts:
>=20
> LISP:
>=20
> When an ITR receives a packet from a site-facing interface and adds H
>   octets worth of encapsulation to yield a packet size greater than L
>   octets, 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.
>=20
> VXLAN:
>=20
> VTEPs MUST NOT fragment VXLAN packets.  Intermediate routers may
>   fragment encapsulated VXLAN packets due to the larger frame size.
>   The destination VTEP MAY silently discard such VXLAN fragments.
>=20
> VXLAN-GPE:
>=20
> VTEPs MUST never fragment an encapsulated VXLAN GPE packet, and when
>   the outer IP header is IPv4, VTEPs MUST set the DF bit in the outer
>   IPv4 header.
>=20
> GEVENE:
>=20
>   To prevent fragmentation and maximize performance, the best practice
>   when using Geneve is to ensure that the MTU of the physical network
>   is greater than or equal to the MTU of the encapsulated network plus
>   tunnel headers.
>=20
> GUE:
>=20
>    If a packet is fragmented before encapsulation in GUE, all the
>    related fragments must be encapsulated using the same source port
>    (inner flow identifier). An operator may set MTU to account for
>    encapsulation overhead and reduce the likelihood of fragmentation.
>=20
> GRE/UDP
>=20
> Regarding packet fragmentation, an encapsulator/decapsulator SHOULD
>   be compliant with [RFC7588] and perform fragmentation before the
>   encapsulation.
>=20
> However, the above choice seems conflict with the requirements as =
described in https://tools.ietf.org/html/draft-ietf-intarea-tunnels-02
>=20
>=20
> I wonder whether the IETF should reach a consensus on whether or not =
the fragmentation on UDP encapsulated packets should be allowed.

Having just implemented fragmentation and reassembly support in a MAP =
BR...

MAP does IPv4 over IPv6 tunnels with shared IPv4 address (aka routing on =
ports).

- Inner IPv4 fragmentation is relatively easy, cause you don't need to =
reassemble you can do virtual reassembly
- Outer IPv6 reassembly is much harder, cause you have to do it on the =
tunnel egress.

It is not possible to implement reassembly complying with IETF RFCs.
The IPv4 reassembly buffer is specified in IPv4 as 15 seconds, in IPv6 =
as 60 seconds.
My implementation does upwards of 100Mpps, you do the numbers.

If you can:
 - Guarantee always in sequence
 - Maximum fragment chain of 2
 - Maximum time and packet gap between first and last fragment of =
_very_small_

Then sure it is implementable, but if not then you're just setting =
yourself up for a DOS attack.
And if you have that much control over the environment, just increase =
the MTU in the tunnel domain.

Code is here:
https://git.fd.io/cgit/vpp/tree/vnet/vnet/map/ip6_map.c#n530

So in short, IETF can say whatever they like, that's not going to change =
reality.

Best regards,
Ole





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References: <E83B905A-FF6D-4996-B71A-7921DE4B133B@ericsson.com> <BFC09F5C-D6DF-4B6B-AA95-03919B9F09FB@cisco.com> <573E2A0E.1060609@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D54EB60@NKGEML515-MBX.china.huawei.com> <573F453C.5060908@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D554B73@NKGEML515-MBS.china.huawei.com> <5743303C.5040109@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D55514C@NKGEML515-MBS.china.huawei.com> <5743DD16.3050506@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D555482@NKGEML515-MBS.china.huawei.com> <57448C14.2060203@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D5557DE@NKGEML515-MBS.china.huawei.com> <9c462520-eb8e-fcd0-0a08-228f80fbc779@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D5596E0@NKGEML515-MBS.china.huawei.com>
Date: Fri, 27 May 2016 08:06:18 -0700
Message-ID: <CALx6S37-oA22ZKjF5MxsTPaR9nRS-b1JuVidWmPYjNkqQtWNBg@mail.gmail.com>
From: Tom Herbert <tom@herbertland.com>
To: Xuxiaohu <xuxiaohu@huawei.com>
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Subject: Re: [lisp] [Int-area] Is it feasible to perform fragmentation on UDP encapsulated packets.
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> The possible side-effect of performing fragmentation on UDP encapsulated =
packets is to worsen the reassembly burden on tunnel egress since fragments=
 of UDP encapsulated packets are more likely to be forwarded across differe=
nt paths towards the tunnel egress than those of IP or GRE encapsulated pac=
kets.
>

Xiaohu,

I don't understand why UDP encapsulation would make things worse than
other encapsulations. Fragmentation would be needed at tunnel ingress
when packet size exceeds MTU of the tunnel. RFC4459 describes the
issues and general solutions that apply to the different techniques of
IP tunneling.

> It seems that most X-over-UDP proposals choose to prohibit the tunnel ing=
ress from performing fragmentation on UDP encapsulated packets. See the fol=
lowing quoted text regarding fragmentation from those X-over-UDP drafts:
>
Please look a draft-herbert-gue-fragmentation-02. This is a method
where the fragmentation/reassembly is performed in the encapsulation
layer instead of (outer or inner) IP layer.

Tom


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From: Xuxiaohu <xuxiaohu@huawei.com>
To: "otroan@employees.org" <otroan@employees.org>
Thread-Topic: [lisp] [Softwires] Is it feasible to perform fragmentation on UDP encapsulated packets.
Thread-Index: AQHRt/+2WtIZvGZrakmsedKxg0Mnz5/MFO4AgAF3XFA=
Date: Sat, 28 May 2016 01:26:55 +0000
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References: <E83B905A-FF6D-4996-B71A-7921DE4B133B@ericsson.com> <BFC09F5C-D6DF-4B6B-AA95-03919B9F09FB@cisco.com> <573E2A0E.1060609@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D54EB60@NKGEML515-MBX.china.huawei.com> <573F453C.5060908@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D554B73@NKGEML515-MBS.china.huawei.com> <5743303C.5040109@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D55514C@NKGEML515-MBS.china.huawei.com> <5743DD16.3050506@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D555482@NKGEML515-MBS.china.huawei.com> <57448C14.2060203@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D5557DE@NKGEML515-MBS.china.huawei.com> <9c462520-eb8e-fcd0-0a08-228f80fbc779@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D5596E0@NKGEML515-MBS.china.huawei.com> <8790AF6F-CCD6-43AC-A50E-957B037643F1@employees.org>
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Subject: Re: [lisp] [Softwires] Is it feasible to perform fragmentation on UDP encapsulated packets.
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Hi Ole,

> -----Original Message-----
> From: lisp [mailto:lisp-bounces@ietf.org] On Behalf Of otroan@employees.o=
rg
> Sent: Friday, May 27, 2016 6:50 PM
> To: Xuxiaohu
> Cc: Softwires WG; nvo3@ietf.org; int-area@ietf.org; lisp@ietf.org;
> tsvwg@ietf.org
> Subject: Re: [lisp] [Softwires] Is it feasible to perform fragmentation o=
n UDP
> encapsulated packets.
>=20
> > <Note that I have changed the subject of the email hence it has nothing=
 to do
> with the WG adoption call now. It's just a discussion on a particular iss=
ue which is
> related to those WGs which are working on UDP tunnels. The reason for
> containing the old email is to use it as a background which may be useful=
 for
> better understanding of this particular issue>
> >
> > The possible side-effect of performing fragmentation on UDP encapsulate=
d
> packets is to worsen the reassembly burden on tunnel egress since fragmen=
ts of
> UDP encapsulated packets are more likely to be forwarded across different
> paths towards the tunnel egress than those of IP or GRE encapsulated pack=
ets.
> >
> > It seems that most X-over-UDP proposals choose to prohibit the tunnel i=
ngress
> from performing fragmentation on UDP encapsulated packets. See the follow=
ing
> quoted text regarding fragmentation from those X-over-UDP drafts:
> >
> > LISP:
> >
> > When an ITR receives a packet from a site-facing interface and adds H
> >   octets worth of encapsulation to yield a packet size greater than L
> >   octets, 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.
> >
> > VXLAN:
> >
> > VTEPs MUST NOT fragment VXLAN packets.  Intermediate routers may
> >   fragment encapsulated VXLAN packets due to the larger frame size.
> >   The destination VTEP MAY silently discard such VXLAN fragments.
> >
> > VXLAN-GPE:
> >
> > VTEPs MUST never fragment an encapsulated VXLAN GPE packet, and when
> >   the outer IP header is IPv4, VTEPs MUST set the DF bit in the outer
> >   IPv4 header.
> >
> > GEVENE:
> >
> >   To prevent fragmentation and maximize performance, the best practice
> >   when using Geneve is to ensure that the MTU of the physical network
> >   is greater than or equal to the MTU of the encapsulated network plus
> >   tunnel headers.
> >
> > GUE:
> >
> >    If a packet is fragmented before encapsulation in GUE, all the
> >    related fragments must be encapsulated using the same source port
> >    (inner flow identifier). An operator may set MTU to account for
> >    encapsulation overhead and reduce the likelihood of fragmentation.
> >
> > GRE/UDP
> >
> > Regarding packet fragmentation, an encapsulator/decapsulator SHOULD
> >   be compliant with [RFC7588] and perform fragmentation before the
> >   encapsulation.
> >
> > However, the above choice seems conflict with the requirements as descr=
ibed
> in https://tools.ietf.org/html/draft-ietf-intarea-tunnels-02
> >
> >
> > I wonder whether the IETF should reach a consensus on whether or not th=
e
> fragmentation on UDP encapsulated packets should be allowed.
>=20
> Having just implemented fragmentation and reassembly support in a MAP BR.=
..
>=20
> MAP does IPv4 over IPv6 tunnels with shared IPv4 address (aka routing on
> ports).
>=20
> - Inner IPv4 fragmentation is relatively easy, cause you don't need to re=
assemble
> you can do virtual reassembly
> - Outer IPv6 reassembly is much harder, cause you have to do it on the tu=
nnel
> egress.
>=20
> It is not possible to implement reassembly complying with IETF RFCs.
> The IPv4 reassembly buffer is specified in IPv4 as 15 seconds, in IPv6 as=
 60
> seconds.
> My implementation does upwards of 100Mpps, you do the numbers.

Thanks a lot for sharing your implementation experience!

> If you can:
>  - Guarantee always in sequence
>  - Maximum fragment chain of 2
>  - Maximum time and packet gap between first and last fragment of
> _very_small_
>=20
> Then sure it is implementable, but if not then you're just setting yourse=
lf up for a
> DOS attack.
> And if you have that much control over the environment, just increase the=
 MTU
> in the tunnel domain.

I couldn't agree more.

> Code is here:
> https://git.fd.io/cgit/vpp/tree/vnet/vnet/map/ip6_map.c#n530
>=20
> So in short, IETF can say whatever they like, that's not going to change =
reality.

Wouldn't it be better if the IETF guidelines on tunnel fragmentation could =
be more in conformity with the reality?

Best regards,
Xiaohu

> Best regards,
> Ole
>=20
>=20
>=20


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From: Xuxiaohu <xuxiaohu@huawei.com>
To: Tom Herbert <tom@herbertland.com>
Thread-Topic: [Int-area] Is it feasible to perform fragmentation on UDP encapsulated packets.
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Date: Sat, 28 May 2016 02:59:00 +0000
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Subject: Re: [lisp] [Int-area] Is it feasible to perform fragmentation on UDP encapsulated packets.
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References: <E83B905A-FF6D-4996-B71A-7921DE4B133B@ericsson.com> <BFC09F5C-D6DF-4B6B-AA95-03919B9F09FB@cisco.com> <573E2A0E.1060609@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D54EB60@NKGEML515-MBX.china.huawei.com> <573F453C.5060908@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D554B73@NKGEML515-MBS.china.huawei.com> <5743303C.5040109@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D55514C@NKGEML515-MBS.china.huawei.com> <5743DD16.3050506@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D555482@NKGEML515-MBS.china.huawei.com> <57448C14.2060203@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D5557DE@NKGEML515-MBS.china.huawei.com> <9c462520-eb8e-fcd0-0a08-228f80fbc779@isi.edu> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D5596E0@NKGEML515-MBS.china.huawei.com> <CALx6S37-oA22ZKjF5MxsTPaR9nRS-b1JuVidWmPYjNkqQtWNBg@mail.gmail.com> <1FEE3F8F5CCDE64C9A8E8F4AD27C19EE0D559AC0@NKGEML515-MBS.china.huawei.com>
Date: Mon, 30 May 2016 09:30:38 -0700
Message-ID: <CALx6S34uHJuTPk6Yq3m_9QKwzdvAAbv7_JCdd1QwWB3pBmRmwA@mail.gmail.com>
From: Tom Herbert <tom@herbertland.com>
To: Xuxiaohu <xuxiaohu@huawei.com>
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Subject: Re: [lisp] [Int-area] Is it feasible to perform fragmentation on UDP encapsulated packets.
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On Fri, May 27, 2016 at 7:59 PM, Xuxiaohu <xuxiaohu@huawei.com> wrote:
> Hi Tom,
>
>> -----Original Message-----
>> From: Tom Herbert [mailto:tom@herbertland.com]
>> Sent: Friday, May 27, 2016 11:06 PM
>> To: Xuxiaohu
>> Cc: int-area@ietf.org; Softwires WG; nvo3@ietf.org; lisp@ietf.org;
>> tsvwg@ietf.org
>> Subject: Re: [Int-area] Is it feasible to perform fragmentation on UDP
>> encapsulated packets.
>>
>> > The possible side-effect of performing fragmentation on UDP encapsulat=
ed
>> packets is to worsen the reassembly burden on tunnel egress since fragme=
nts of
>> UDP encapsulated packets are more likely to be forwarded across differen=
t
>> paths towards the tunnel egress than those of IP or GRE encapsulated pac=
kets.
>> >
>>
>> Xiaohu,
>>
>> I don't understand why UDP encapsulation would make things worse than ot=
her
>> encapsulations. Fragmentation would be needed at tunnel ingress when pac=
ket
>
> When performing fragmentation after UDP encapsulation (a.k.a., outer frag=
mentation), the first fragment (still a UDP packet) and the subsequent frag=
ments (not a UDP packet anymore) of a given UDP encapsulated packet are mor=
e likely to be routed over different paths in contrast to IP or GRE encapsu=
lated packets. As a result, the reordering issue on the tunnel egress which=
 is required to do reassembly would become even worse.
>
Presumably you are referring to ECMP and devices that parse the
transport header to use port information in the hash. There are two
ways this can be "fixed" in devices that do ECMP. 1) If the packet is
a fragment don't parse the transport header. This way all fragments
will be ECMP routed based on just L3 information so they all take the
same path. 2) Use non-zero IPv6 flow label and don't parse L4 header
to do ECMP. This means all fragments and all non-fragments of a flow
will follow the same path. The flow label approach also works with
protocols other than TCP and UDP as well as any arbitrary list of
extension headers. Both of these techniques have been implement in
Linux stack.

>> size exceeds MTU of the tunnel. RFC4459 describes the issues and general
>> solutions that apply to the different techniques of IP tunneling.
>
> Partially agree. The use of UDP as a tunneling protocol was not popular a=
t the time when RFC4459 was published. Otherwise, the worse recording issue=
 associated with the outer fragmentation of UDP encapsulated packets may ne=
ed more attention in that RFC.
>
Yes, but UDP was popular long before it was used for tunneling and the
problems with it of fragmentation/reassembly were well known.
Considering tunneling with UDP doesn't really change anything, the
same solutions (like those listed in RFC4459) still apply.

> By the way, RFC4459 has illustrated the risk of performing [outer] fragme=
ntation on tunneled packets clearly and said clearly that "...   So, if rea=
ssembly could be made to work sufficiently reliably, this would be one acce=
ptable fallback solution but only for IPv6." However, I just occasionally n=
oticed that in section 3.3.2.1 (Tunneling GRE over IPv4) of RFC7588, it sai=
d "By default, the GRE ingress node does not fragment delivery packets. How=
ever, the GRE ingress node includes a configuration option that allows deli=
very packet fragmentation." Does it mean there is a conflict between those =
two RFCs regarding whether outer fragmentation is needed for GRE over IPv4?
>
>> > It seems that most X-over-UDP proposals choose to prohibit the tunnel =
ingress
>> from performing fragmentation on UDP encapsulated packets. See the follo=
wing
>> quoted text regarding fragmentation from those X-over-UDP drafts:
>> >
>> Please look a draft-herbert-gue-fragmentation-02. This is a method where=
 the
>> fragmentation/reassembly is performed in the encapsulation layer instead=
 of
>> (outer or inner) IP layer.
>
> It's an interesting idea. However, since it needs a dedicated fragmentati=
on field in the GUE header, it seems that this approach is not suitable for=
 the compressed GUE packet (a.k.a., in the same format of IP-in-UDP) where =
the fragmentation field and even the whole GUE header is gone.
>
Different header formats can be used for different packets in the same
flow. The outer UDP header and flow label are sufficient for ECMP, as
long devices aren't parsing into the GUE payload to do ECMP then all
packets for a flow (fragmented or not) should follow the same path.

Tom

> Best regards,
> Xiaohu
>
>> Tom


From nobody Tue May 31 09:17:54 2016
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Subject: [lisp] I-D Action: draft-ietf-lisp-crypto-04.txt
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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 of the IETF.

        Title           : LISP Data-Plane Confidentiality
        Authors         : Dino Farinacci
                          Brian Weis
	Filename        : draft-ietf-lisp-crypto-04.txt
	Pages           : 18
	Date            : 2016-05-31

Abstract:
   This document describes a mechanism for encrypting LISP encapsulated
   traffic.  The design describes how key exchange is achieved using
   existing LISP control-plane mechanisms as well as how to secure the
   LISP data-plane from third-party surveillance attacks.


The IETF datatracker status page for this draft is:
https://datatracker.ietf.org/doc/draft-ietf-lisp-crypto/

There's also a htmlized version available at:
https://tools.ietf.org/html/draft-ietf-lisp-crypto-04

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Subject: [lisp] I-D Action: draft-ietf-lisp-ddt-07.txt
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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 of the IETF.

        Title           : LISP Delegated Database Tree
        Authors         : Vince Fuller
                          Darrel Lewis
                          Vina Ermagan
                          Amit Jain
                          Anton Smirnov
	Filename        : draft-ietf-lisp-ddt-07.txt
	Pages           : 37
	Date            : 2016-05-31

Abstract:
   This document describes the LISP Delegated Database Tree (LISP-DDT),
   a hierarchical, distributed database which embodies the delegation of
   authority to provide mappings from LISP Endpoint Identifiers (EIDs)
   to Routing Locators (RLOCs).  It is a statically-defined distribution
   of the EID namespace among a set of LISP-speaking servers, called DDT
   nodes.  Each DDT node is configured as "authoritative" for one or
   more EID-prefixes, along with the set of RLOCs for Map Servers or
   "child" DDT nodes to which more-specific EID-prefixes are delegated.


The IETF datatracker status page for this draft is:
https://datatracker.ietf.org/doc/draft-ietf-lisp-ddt/

There's also a htmlized version available at:
https://tools.ietf.org/html/draft-ietf-lisp-ddt-07

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https://www.ietf.org/rfcdiff?url2=draft-ietf-lisp-ddt-07


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until the htmlized version and diff are available at tools.ietf.org.

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From: Dino Farinacci <farinacci@gmail.com>
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Date: Tue, 31 May 2016 13:20:15 -0700
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Subject: Re: [lisp] I-D Action: draft-ietf-lisp-ddt-07.txt
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Thanks for the update guys.

Dino

> On May 31, 2016, at 11:55 AM, internet-drafts@ietf.org wrote:
>=20
>=20
> 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 of the =
IETF.
>=20
>        Title           : LISP Delegated Database Tree
>        Authors         : Vince Fuller
>                          Darrel Lewis
>                          Vina Ermagan
>                          Amit Jain
>                          Anton Smirnov
> 	Filename        : draft-ietf-lisp-ddt-07.txt
> 	Pages           : 37
> 	Date            : 2016-05-31
>=20
> Abstract:
>   This document describes the LISP Delegated Database Tree (LISP-DDT),
>   a hierarchical, distributed database which embodies the delegation =
of
>   authority to provide mappings from LISP Endpoint Identifiers (EIDs)
>   to Routing Locators (RLOCs).  It is a statically-defined =
distribution
>   of the EID namespace among a set of LISP-speaking servers, called =
DDT
>   nodes.  Each DDT node is configured as "authoritative" for one or
>   more EID-prefixes, along with the set of RLOCs for Map Servers or
>   "child" DDT nodes to which more-specific EID-prefixes are delegated.
>=20
>=20
> The IETF datatracker status page for this draft is:
> https://datatracker.ietf.org/doc/draft-ietf-lisp-ddt/
>=20
> There's also a htmlized version available at:
> https://tools.ietf.org/html/draft-ietf-lisp-ddt-07
>=20
> A diff from the previous version is available at:
> https://www.ietf.org/rfcdiff?url2=3Ddraft-ietf-lisp-ddt-07
>=20
>=20
> Please note that it may take a couple of minutes from the time of =
submission
> until the htmlized version and diff are available at tools.ietf.org.
>=20
> Internet-Drafts are also available by anonymous FTP at:
> ftp://ftp.ietf.org/internet-drafts/
>=20
> _______________________________________________
> lisp mailing list
> lisp@ietf.org
> https://www.ietf.org/mailman/listinfo/lisp

