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<rfc xmlns:xi="http://www.w3.org/2001/XInclude" ipr="trust200902" docName="draft-tjiang-dmm-5g-dupf-5mbs-00" category="info" tocInclude="true" sortRefs="true" symRefs="true" version="3">
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  <front>
    <title abbrev="5G dUPFs and 5MBS">5G Distributed UPFs for 5G Multicast and Broadcast Services (5MBS)</title>
    <seriesInfo name="Internet-Draft" value="draft-tjiang-dmm-5g-dupf-5mbs-00"/>
    <author initials="T." surname="Jiang" fullname="Tianji Jiang">
      <organization>China Mobile</organization>
      <address>
        <email>tianjijiang@chinamobile.com</email>
      </address>
    </author>
    <date year="2022" month="March" day="07"/>
    <area>Routing</area>
    <workgroup>dmm</workgroup>
    <keyword>5g, UPF</keyword>
    <abstract>
      <t>The companion draft <xref target="I-D.zzhang-dmm-5g-distributed-upf"/> has described 
the 5G mobile user plane (MUP) via the refinement of distributed UPFs, 
along with various user plane implementations that some vendors and
operators are exploring, with the requirement of not introducing changes 
to 3GPP architecture &amp; signaling. The document 3GPP TS 23.247 <xref target="_3GPP-23.247"/>
for 5G multicast and broadcast services, or 5MBS, specifies the 5GS architecture
to support MBS communication. Thanks to the addition of new 5GS 
network functions (NFs) and MB-interfaces on 5G CP &amp; UP, 
this might post additional provisioning &amp; implementation challenges to 
the underlay transport infrastructure.</t>
      <t>This document is not an attempt to do 3GPP SDO work in IETF. Instead, it 
discusses how to potentially integrate distributed UPFs with the delivery of 5MBS 
communication, as well as the benefits of using distributed UPFs to 
handle 5MBS traffic delivery.</t>
    </abstract>
  </front>
  <middle>
    <section anchor="distributed-upfs-in-5g-user-plane">
      <name>Distributed UPFs in 5G User Plane</name>
      <t>Mobile User Plane (MUP) in 5G has two distinct parts: the Access Network
part between UE and gNB, and the Core Network part between gNB and UPF.
UPFs are traditionally deployed at central locations, with UEs' PDU sessions
encapsulated and extended thru GTP-U tunnels 
via the N3 (and potentially N9) interfaces in 5GS. 
The interface N6 supports fundamentally a direct IP or Ethernet connection to the
data network or DN.</t>
      <t>Actually, UPFs could be distributed &amp; deployed closer to gNBs.<br/>
The draft <xref target="I-D.zzhang-dmm-5g-distributed-upf"/> has described 
the 5G mobile user plane (MUP) via the refinement of distributed UPFs or dUPFs.
The following picture shows the dUPF architecture:</t>
      <artwork><![CDATA[
                          N3             N6
    UE1          gNB1      |     dUPF1    | 
+---------+                |+------+-----+|
|   PDU   |                || PDU  |     ||      PE1     
+---------+ +------+------+|+------+ IP/ ||    +-----+--+ 
|         | |      |GTP-U |||GTP-U |     ||----+ IP/ |  |
| 5G-AN   | |5G-AN +------+|+------+Ether||    |Ether|  |
| xHaul   | |xHaul |L3/2/1|||L3/2/1|     ||    +-----+--+
+---------+ +------|------+|+------------+|   (          ) 
                           |              |  ( Transport  )  PE3
                           |              |  (  Network   +--+-----+
    UE2          gNB2      |     dUPF2    |  (            |  | IP/ |
+---------+                |+------+-----+|  (   (DN)     |  |Ether|
|   PDU   |                || PDU  |     ||   (           +--+-----+
+---------+ +------+------+|+------+ IP/ ||    +-----+--+
|         | |      |GTP-U |||GTP-U |     ||    | IP/ |  |
| 5G-AN   | |5G-AN +------+|+------+Ether||    |Ether|  |
| xHaul   | |xHaul |L3/2/1|||L3/2/1|     ||    +-----+--+
+---------+ +-------------+|+------------+|      PE2
]]></artwork>
      <t>In distributed UPF architecture,
the central (PSA) UPF is no longer needed. dUPF1 and UPF2 connect
via PE1 and PE2, respectively, to the DN VPN (or network instance/NI)
that UE1 and UE2 intend to access.
There could exist other PEs, like PE3 in the picture, for other sites of 
the same network domain(VPN or NI) or for global Internet access.</t>
      <t>There are some benefits of distributed UPFs:</t>
      <ul spacing="normal">
        <li>The N3 interface becomes very simple - over a direct or short transport 
connection between gNB and dUPF.</li>
        <li>The transport infrastructure off N3/N9 and N6 are straightforward, 
most likely over the same underlay VPN (MPLS, SR-MPLS or SRv6) 
supporting the traditional 
N3/N9 tunneling as in centralized PSA UPF case.</li>
        <li>MEC becomes much simpler since no need to deploy
centralized PSA UPF plus ULCL UPFs; UE-UE traffic can be 
optimized for LAN-type services (via host-route).</li>
      </ul>
      <t>In short, the distributed UPFs model achieves "N3/N9/N6 shortcut and
central UPF bypass", which is desired by many operators.</t>
    </section>
    <section anchor="g-multicast-and-broadcast-services-5mbs">
      <name>5G Multicast and Broadcast Services (5MBS)</name>
      <t>The 3GPP document TS 23.247 <xref target="_3GPP-23.247"/>  for 
5G multicast and broadcast services, or 5MBS,
specifies the 5GS architecture to support MBS communication. The following 
picture shows the brief system architecture of 5MBS:</t>
      <artwork><![CDATA[
               ----+----------(SBA for 5GC) ---------+-----
                   |          |                      |
                +--+--+   +---+---+              +---+----+
                | AMF |   |  SMF  |              | MB-SMF |
                +--+--+   +-+-+-+-+              +---+----+
                  /           |                      |                     
              N2 /         N4 |                  N4mb|
                /             |                      |
               /    N3    +-+-+---+     N19mb    +---+----+ N6mb +----+
          +-----+---------+  UPF  +--------------| MB-UPF |------| DN |
 +----+   |     |         +-------+ (Individual) +---+----+      +----+
 | UE +---+ gNB |                                    |     
 +----+   +-----+                                    |
                |_________N3mb (shared delivery)_____|              
]]></artwork>
      <t>TS 23.247 <xref target="_3GPP-23.247"/> adds 
new 5GS network functions (NFs) on both 5G control-plane (CP)
and user-plane (UP). For example, the CP NF MB-SMF is, in collaboration with
the regular SMF, to provision and signal 
to the UP NF MB-UPF (via the interface N4mb) for setting up MBS delivery path.</t>
      <t>5MBS has specified two data delivery modes, individual delivery vs. shared delivery:</t>
      <ul spacing="normal">
        <li>Individual delivery: When the (downlink or DL) 
MBS packets are received by the MB-UPF from the interface N6mb,
MB-UPF replicates &amp; forwards those packets towards (multiple) UPFs, via the interface
N19mb, through either unicast (requiring 
multiple GTP tunnels if unicast underlay transport is applied) or multicast 
(if multicast underlay transport over N19mb is applied) transmission.</li>
        <li>Shared delivery: When the (DL) MBS packets are received by the MB-UPF from N6mb,
MB-UPF replicates &amp; forwards those packets towards (multiple) gNBs, via the
interface N3mb (the lower-path in the picture), through either 
(multiple) separate GTP tunnels if unicast underlay transport over N3mb is applied, 
or a single GTP tunnel if multicast underlay over N3mb is supported.</li>
      </ul>
    </section>
    <section anchor="g-distributed-upf-for-5g-mbs-communication">
      <name>5G Distributed UPF for 5G MBS Communication</name>
      <section anchor="mbs-transport-challenges">
        <name>5MBS Transport Challenges</name>
        <t>The 5MBS architecture in TS 23.247 <xref target="_3GPP-23.247"/> introduces some network challenges:</t>
        <ul spacing="normal">
          <li>Because of the addition of new CP and UP NFs, this will post additional 
provisioning &amp; implementation challenges to the underlay transport 
infrastructure. For example, in the individual delivery mode, both SMF and MB-SMF 
have to synchronize with each other to 
help set up the relay/stitching path between UPF, MB-UPF and DN.</li>
          <li>The picture in previous section shows
three new interface types corresponding to three different segments: N3mb, 
N6mb and N19mb. Based on the traffic delivery mode, once MB-UPF receives DL
traffic from N6mb, it will have to do either individual or shared delivery.</li>
          <li>In accordance with TS 23.247 <xref target="_3GPP-23.247"/>, 
the underlay transport infrastructure of all three segments 
can use either unicast or multicast transmission, based on the capabilities of 
underlay networks. For example, for the DL <em>shared</em> delivery from MB-UPF to gNB
via the interface N3mb, 5G MBS packets can be transmitted 
to multiple gNBs via multicast transmission if the underlay network supports. 
Otherwise, MB-UPF will have to use unicast to transmit separately 
to (multiple) gNBs. Considering that this unicast/multicast flexibility
is applicable to all the three above-mentioned segments, the implementation 
will have to face more challenges.</li>
        </ul>
      </section>
      <section anchor="g-distributed-upf-for-5mbs-implementation">
        <name>5G Distributed UPF for 5MBS Implementation</name>
        <t>The REQ8 of <xref target="RFC7333"/> talks about the multicast efficiency between
non-optimal and optimal routes, where it states that, in term of multicast 
considerations, DMM SHOULD enable multicast solutions to be developed to 
avoid network inefficiency in multicast traffic delivery.</t>
        <t>The current 5MBS architecture requires all DL multicast traffic go through
the (centralized) MB-UPF, regardless of using the individual or shared delivery. 
In many operators' networks, 5GS might be deployed
in a location that is relatively distant from customer (edge) sites. In
this scenario, the efficiency of multicast transmission will be compromised.
On the other aspect, 5G dUPF, deployed closer to gNB,
will make the implementation more efficient:</t>
        <ul spacing="normal">
          <li>For shared delivery, the MB-UPF can be distributed closer to gNB.
The N6mb is a normal IP interface which is connected to DN over underlay network. 
This transport connection will most likely use the VPN infrastructure
that has been provisioned by operators for 5GS.
As a dUPF, the N3mb tunnel off MB-UPF could be made much simpler. In some
field edge sites, a dUPF could co-locate on-prem with gNB, which can
even remove the usage of complex (inter-site) VPN to favor native IP transport.</li>
          <li>For individual delivery, it involves two UPFs, one regular UPF and one MB-UPF.
To follow the current 3GPP specification, 
we can distribute and deploy both UPFs closer to gNB. 
While the DL traffic off the N6mb interface may achieve the same gain 
as in the shared-delivery mode, the transport for N19mb tunnel and (regular) N3 tunnel 
can be significantly simplified. Remember we have mentioned that either unicast
or multicast (underlay) transmission can be used for N19mb (and actually also for N6mb
and N3mb). Therefore, applying dUPF will help simplify the N19mb VPN transmission.</li>
          <li>For individual delivery, if we expand the scope beyond the current 3GPP spec,
we could integrate the regular UPF and MB-UPF together as a distributed UPF, and 
then deploy the dUPF closer to gNB. In this scenario, both the N19mb and N3
tunnels can be simplified significantly. 
TS 23.247 <xref target="_3GPP-23.247"/> specifies the behaviors of
MB-UPF, as a standalone NF. Indeed, all the features and behaviors 
that would be implemented by a MB-UPF can be collaboratively integrated into a 
regular UPF. This type of 'merging' will lead to more network efficiency and
better multicast traffic forwarding, conforming the <xref target="RFC7333"/> REQ8.</li>
        </ul>
        <t>The draft <xref target="I-D.zzhang-dmm-5g-distributed-upf"/> discussed and compared briefly
different tunneling mechanisms to implement 3GPP GTP, i.e., SRv6, MPLS as the 
underlay, or in <xref target="I-D.mhkk-dmm-srv6mup-architecture"/> specifying a new SRv6 
based MUP architecture to replace GTP. While these proposals may experience
different issues upon 5MBS transport implementation, dUPF will make it 
more feasible.</t>
      </section>
    </section>
    <section anchor="security-considerations">
      <name>Security Considerations</name>
      <t>TBD.</t>
    </section>
    <section anchor="iana-considerations">
      <name>IANA Considerations</name>
      <t>This document requests no IANA actions.</t>
    </section>
  </middle>
  <back>
    <references>
      <name>References</name>
      <references>
        <name>Normative References</name>
        <reference anchor="RFC7333" target="https://www.rfc-editor.org/info/rfc7333" xml:base="https://xml2rfc.tools.ietf.org/public/rfc/bibxml/reference.RFC.7333.xml">
          <front>
            <title>Requirements for Distributed Mobility Management</title>
            <author initials="H." surname="Chan" fullname="H. Chan" role="editor">
              <organization/>
            </author>
            <author initials="D." surname="Liu" fullname="D. Liu">
              <organization/>
            </author>
            <author initials="P." surname="Seite" fullname="P. Seite">
              <organization/>
            </author>
            <author initials="H." surname="Yokota" fullname="H. Yokota">
              <organization/>
            </author>
            <author initials="J." surname="Korhonen" fullname="J. Korhonen">
              <organization/>
            </author>
            <date year="2014" month="August"/>
            <abstract>
              <t>This document defines the requirements for Distributed Mobility Management (DMM) at the network layer.  The hierarchical structure in traditional wireless networks has led primarily to centrally deployed mobility anchors.  As some wireless networks are evolving away from the hierarchical structure, it can be useful to have a distributed model for mobility management in which traffic does not need to traverse centrally deployed mobility anchors far from the optimal route.  The motivation and the problems addressed by each requirement are also described.</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="7333"/>
          <seriesInfo name="DOI" value="10.17487/RFC7333"/>
        </reference>
      </references>
      <references>
        <name>Informative References</name>
        <reference anchor="_3GPP-23.247">
          <front>
            <title>Architectural enhancements for 5G multicast-broadcast services; V17.1.0</title>
            <author>
              <organization/>
            </author>
            <date year="2021" month="December"/>
          </front>
        </reference>
        <reference anchor="I-D.zzhang-dmm-5g-distributed-upf" xml:base="https://xml2rfc.tools.ietf.org/public/rfc/bibxml3/reference.I-D.zzhang-dmm-5g-distributed-upf.xml" target="https://www.ietf.org/archive/id/draft-zzhang-dmm-5g-distributed-upf-00.txt">
          <front>
            <title>5G Distributed UPFs</title>
            <author fullname="Zhaohui Zhang">
              <organization>Juniper Networks</organization>
            </author>
            <author fullname="Keyur Patel">
              <organization>Arrcus</organization>
            </author>
            <author fullname="Tianji Jiang">
              <organization>China Mobile</organization>
            </author>
            <date month="March" day="6" year="2022"/>
            <abstract>
              <t>   This document describes evolution of mobile user plane in 5G,
   including distributed UPFs and alternative user plane implementations
   that some vendors/operators are pushing without changing 3GPP
   architecture/signaling.  This also sets the stage for discussions in
   a companion document about potentially integrating UPF and Acess Node
   (AN) in a future generation (xG) of mobile network.

              </t>
            </abstract>
          </front>
          <seriesInfo name="Internet-Draft" value="draft-zzhang-dmm-5g-distributed-upf-00"/>
        </reference>
        <reference anchor="I-D.mhkk-dmm-srv6mup-architecture" xml:base="https://xml2rfc.tools.ietf.org/public/rfc/bibxml3/reference.I-D.mhkk-dmm-srv6mup-architecture.xml" target="https://www.ietf.org/archive/id/draft-mhkk-dmm-srv6mup-architecture-01.txt">
          <front>
            <title>Segment Routing IPv6 Mobile User Plane Architecture for Distributed Mobility Management</title>
            <author fullname="Satoru Matsushima">
              <organization>SoftBank</organization>
            </author>
            <author fullname="Katsuhiro Horiba">
              <organization>SoftBank</organization>
            </author>
            <author fullname="Ashiq Khan">
              <organization>SoftBank</organization>
            </author>
            <author fullname="Yuya Kawakami">
              <organization>SoftBank</organization>
            </author>
            <author fullname="Tetsuya Murakami">
              <organization>Arrcus, Inc</organization>
            </author>
            <author fullname="Keyur Patel">
              <organization>Arrcus, Inc</organization>
            </author>
            <author fullname="Miya Kohno">
              <organization>Cisco Systems</organization>
            </author>
            <author fullname="Teppei Kamata">
              <organization>Cisco Systems</organization>
            </author>
            <author fullname="Pablo Camarillo">
              <organization>Cisco Systems</organization>
            </author>
            <author fullname="Daniel Voyer">
              <organization>Bell Canada</organization>
            </author>
            <author fullname="Shay Zadok">
              <organization>Broadcom</organization>
            </author>
            <author fullname="Israel Meilik">
              <organization>Broadcom</organization>
            </author>
            <author fullname="Ashutosh Agrawal">
              <organization>Intel</organization>
            </author>
            <author fullname="Kumaresh Perumal">
              <organization>Intel</organization>
            </author>
            <date month="November" day="10" year="2021"/>
            <abstract>
              <t>   This document defines the Segment Routing IPv6 Mobile User Plane
   (SRv6 MUP) architecture for Distributed Mobility Management.  The
   requirements for Distributed Mobility Management described in
   [RFC7333] can be satisfied by routing fashion.

   Mobile services are deployed over several parts of IP networks.  A
   Segment Routing over IPv6 (SRv6) network can accommodate all, or part
   of those networks thanks to the large address space of IPv6 and the
   network programming capability described in [RFC8986].

   Segment Routing IPv6 Mobile User Plane Architecture can incorporate
   existing session based mobile networks.  By leveraging SRv6 network
   programmability, mobile user plane can be integrated into the SRv6
   data plane.  In that routing paradigm, session information between
   the entities of the mobile user plane is turned to routing
   information.

              </t>
            </abstract>
          </front>
          <seriesInfo name="Internet-Draft" value="draft-mhkk-dmm-srv6mup-architecture-01"/>
        </reference>
      </references>
    </references>
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