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<rfc xmlns:xi="http://www.w3.org/2001/XInclude" ipr="trust200902" docName="draft-ietf-avtcore-rtp-haptics-12" category="std" consensus="true" submissionType="IETF" updates="9695" tocInclude="true" sortRefs="true" symRefs="true" version="3">
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  <front>
    <title abbrev="RTP-Payload-Haptic">RTP Payload Format for Haptics</title>
    <seriesInfo name="Internet-Draft" value="draft-ietf-avtcore-rtp-haptics-12"/>
    <author initials="" surname="HS Yang" fullname="Hyunsik Yang">
      <organization>InterDigital</organization>
      <address>
        <postal>
          <country>USA</country>
        </postal>
        <email>hyunsik.yang@interdigital.com</email>
      </address>
    </author>
    <author initials="X." surname="de Foy" fullname="Xavier de Foy">
      <organization>InterDigital</organization>
      <address>
        <postal>
          <country>Canada</country>
        </postal>
        <email>xavier.defoy@interdigital.com</email>
      </address>
    </author>
    <date/>
    <area>Transport</area>
    <workgroup>avtcore</workgroup>
    <abstract>
      <?line 58?>

<t>This memo specifies an RTP payload format for the MPEG-I haptic data. A haptic media stream is composed of MIHS units including a MIHS (MPEG-I Haptic Stream) unit header and zero or more MIHS packets. The RTP payload header format allows for packetization of a MIHS unit in an RTP packet payload as well as fragmentation of a MIHS unit into multiple RTP packets. The original subtype registration for haptics/hmpg, registered with IANA in RFC9695, did not include any required or optional parameters. This memo updates RFC9695 and the haptics/hmpg registration to add optional parameters. It also provides SDP usage information for the haptics media type.</t>
    </abstract>
  </front>
  <middle>
    <?line 62?>

<section anchor="introduction">
      <name>Introduction</name>
      <t>Haptics provides users with tactile effects in addition to audio and video, allowing them to experience sensory immersion. Haptic data is mainly transmitted to devices that act as actuators and provides them with information to operate according to the values defined in haptic effects. The IETF registered haptics as a primary media type akin to audio and video <xref target="RFC9695"/>.</t>
      <t>The MPEG Haptics Coding standard <xref target="ISO.IEC.23090-31"/> defines the data formats, metadata, and codec architecture to encode, decode, synthesize and transmit haptic signals. Within this MPEG standard, a haptic media stream is composed of MIHS units including a MIHS unit header and zero or more MIHS packets. The MIHS unit is a unit of packetization suitable for streaming, and similar in essence to the NAL (Network Abstraction Layer) unit defined in some video specifications. This document specifies how haptic data (MIHS units) can be transmitted using the RTP protocol. This document follows recommendations in <xref target="RFC8088"/> and <xref target="RFC2736"/> for RTP payload format writers. This document does not specify synchronization (lip sync) mechanisms between haptics and audio/video components.  In addition, this document specifies the associated SDP parameters and SDP Offer/Answer considerations for the haptics media type.</t>
    </section>
    <section anchor="conventions">
      <name>Conventions</name>
      <t>The key words "MUST", "MUST NOT", "REQUIRED", "SHALL", "SHALL NOT", "SHOULD", "SHOULD NOT", "RECOMMENDED", "NOT RECOMMENDED", "MAY", and "OPTIONAL" in this document are to be interpreted as described in BCP 14 <xref target="RFC2119"/> <xref target="RFC8174"/> when, and only when, they appear in all capitals, as shown here.</t>
    </section>
    <section anchor="definition">
      <name>Definition</name>
      <t>This document uses the definitions of the MPEG Haptics Coding standard <xref target="ISO.IEC.23090-31"/>. Some of these terms are provided here for convenience.</t>
      <t>Actuator: component of a device for rendering haptic sensations.</t>
      <t>Avatar: body (or part of body) representation.</t>
      <t>Band: component in a channel for containing effects for a specific range of frequencies.</t>
      <t>Channel: component in a perception containing one or more bands rendered on a device at a specific body location.</t>
      <t>Device: physical system having one or more actuators configured to render a haptic sensation corresponding with a given signal.</t>
      <t>Effect: component of a band for defining a signal, consisting of a haptic waveform or one or more haptic keyframes.</t>
      <t>Experience: top level haptic component containing perceptions and metadata.</t>
      <t>Haptics: tactile sensations.</t>
      <t>Keyframe: component of an effect mapping a position in time or space to an effect parameter such as amplitude or frequency.</t>
      <t>Metadata: global information about an experience, perception, channel, or band.</t>
      <t>MIHS unit: unit of packetization of the MPEG-I Haptic Stream format, which is used as unit of payload in the format described in this memo. See <xref target="haptic-format-description"/> for details.</t>
      <t>Modality: type of haptics, such as vibration, force, pressure, position, velocity, or temperature.</t>
      <t>Perception: haptic perception containing channels of a specific modality.</t>
      <t>Signal: representation of the haptics associated with a specific modality to be rendered on a device.</t>
      <t>Hmpg format: hmpg is a binary compressed format for haptics data. Information is stored in a binary form and data compression is applied on data at the band level. The haptics/hmpg media subtype is registered in <xref target="RFC9695"/> and updated by this memo.</t>
      <t>Independent unit: a MIHS unit is independent if it can be decoded independently from earlier units. Independent units contain timing information and are also called "sync units" in <xref target="ISO.IEC.23090-31"/>.</t>
      <t>Dependent unit: a MIHS unit is dependent if it requires earlier units for decoding. Dependent units do not contain timing information and are also called "non-sync units" in <xref target="ISO.IEC.23090-31"/>.</t>
      <t>Time-independent effect: a haptic effect that occurs regardless of time. The tactile feedback of a texture is a representative example. Time-independent effects are encoded in spatial MIHS units, defined in <xref target="MIHS-format"/>.</t>
      <t>Time-dependent effect: a haptic effect that varies over time. For example, tactile feedback for vibration and force  are time-dependent effects, and are encoded in temporal MIHS units, defined in <xref target="MIHS-format"/>.</t>
    </section>
    <section anchor="haptic-format-description">
      <name>Haptic Format Description</name>
      <section anchor="overview-of-haptic-coding">
        <name>Overview of Haptic Coding</name>
        <t>The MPEG Haptics Coding standard specifies methods for efficient transmission and rendering of haptic signals, to enable immersive experiences. It supports multiple types of perceptions, including the most common vibrotactile (sense of touch that perceives vibrations) and kinesthetic perceptions (tactile resistance or force), but also other, less common perceptions, including for example the sense of temperature or texture. It also supports two approaches for encoding haptic signals: a "quantized" approach based on samples of measured data, and a "descriptive" approach where the signal is synthesized using a combination of functions. Both quantized and descriptive data can be encoded in a human-readable exchange format based on JSON (.hjif), or in a binary packetized format for distribution and streaming (.hmpg). This last format is referred to as the MIHS format and is a base for the RTP payload format described in this document.</t>
      </section>
      <section anchor="MIHS-format">
        <name>MIHS format</name>
        <t>MIHS is a stream format used to transport haptic data. Haptic data including haptic effects is packetized according to the MIHS format, and delivered to actuators, which operate according to the provided effects. The MIHS format has two levels of packetization, MIHS units and MIHS packets.</t>
        <t>MIHS units are composed of a MIHS unit header and zero or more MIHS packets. Four types of MIHS units are defined. An initialization MIHS unit contains MIHS packets carrying metadata necessary to reset and initialize a haptic decoder, including a timestamp. A temporal MIHS unit contains one or more MIHS packets defining time-dependent effects and providing modalities such as pressure, velocity, and acceleration. The duration of a temporal unit is a positive number. A spatial MIHS unit contains one or more MIHS packets providing time-independent effects, such as vibrotactile texture, stiffness, and friction. The duration of a spatial unit is always zero.
A silent MIHS unit indicates that there is no effect during a time interval and its duration is a positive number.</t>
        <t>A MIHS unit can be marked as independent or dependent. When a decoder processes an independent unit, it resets the previous effects and therefore provides a haptic experience independent from any previous MIHS unit.  A dependent unit is the continuation of previous MIHS units and cannot be independently decoded and rendered without having decoded previous MIHS unit(s). Initialization and spatial MIHS units are always independent units. Temporal and silent MIHS units can be dependent or independent units.</t>
        <t><xref target="_figure-stream"/> illustrates a succession of MIHS units in a MIHS stream.</t>
        <figure anchor="_figure-stream">
          <name>Example of MIHS stream</name>
          <artset>
            <artwork type="svg"><svg xmlns="http://www.w3.org/2000/svg" version="1.1" height="112" width="528" viewBox="0 0 528 112" class="diagram" text-anchor="middle" font-family="monospace" font-size="13px" stroke-linecap="round">
                <path d="M 8,32 L 8,80" fill="none" stroke="black"/>
                <path d="M 80,32 L 80,80" fill="none" stroke="black"/>
                <path d="M 96,32 L 96,80" fill="none" stroke="black"/>
                <path d="M 160,32 L 160,80" fill="none" stroke="black"/>
                <path d="M 176,32 L 176,80" fill="none" stroke="black"/>
                <path d="M 280,32 L 280,80" fill="none" stroke="black"/>
                <path d="M 296,32 L 296,80" fill="none" stroke="black"/>
                <path d="M 408,32 L 408,80" fill="none" stroke="black"/>
                <path d="M 424,32 L 424,80" fill="none" stroke="black"/>
                <path d="M 520,32 L 520,80" fill="none" stroke="black"/>
                <path d="M 8,32 L 80,32" fill="none" stroke="black"/>
                <path d="M 96,32 L 160,32" fill="none" stroke="black"/>
                <path d="M 176,32 L 280,32" fill="none" stroke="black"/>
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                <g class="text">
                  <text x="44" y="52">Initial*</text>
                  <text x="128" y="52">Spatial</text>
                  <text x="228" y="52">Temporal</text>
                  <text x="332" y="52">Temporal</text>
                  <text x="388" y="52">Unit</text>
                  <text x="452" y="52">Silent</text>
                  <text x="500" y="52">Unit</text>
                  <text x="36" y="68">Unit</text>
                  <text x="88" y="68">-</text>
                  <text x="124" y="68">Unit</text>
                  <text x="168" y="68">-</text>
                  <text x="228" y="68">Unit(indep.)</text>
                  <text x="288" y="68">-</text>
                  <text x="352" y="68">(dependent)</text>
                  <text x="416" y="68">-</text>
                  <text x="468" y="68">(indep.)</text>
                  <text x="72" y="100">*Initialization</text>
                </g>
              </svg>
            </artwork>
            <artwork type="ascii-art"><![CDATA[
+--------+ +-------+ +------------+ +-------------+ +-----------+
|Initial*| |Spatial| |  Temporal  | |Temporal Unit| |Silent Unit|
| Unit   |-| Unit  |-|Unit(indep.)|-| (dependent) |-| (indep.)  |
+--------+ +-------+ +------------+ +-------------+ +-----------+
 *Initialization
]]></artwork>
          </artset>
        </figure>
      </section>
    </section>
    <section anchor="payload-format-for-haptics">
      <name>Payload Format For Haptics</name>
      <section anchor="rtp-usage">
        <name>RTP Header Usage</name>
        <t>The RTP header is defined in <xref target="RFC3550"/> and represented in <xref target="_figure-rtpheader"/>. Unless contextualized below, the meaning of the fields depicted in  <xref target="_figure-rtpheader"/> is the same as in <xref target="rtp-usage"/> of <xref target="RFC3550"/>.</t>
        <figure anchor="_figure-rtpheader">
          <name>RTP header for Haptic.</name>
          <artset>
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                  <text x="64" y="52">3</text>
                  <text x="80" y="52">4</text>
                  <text x="96" y="52">5</text>
                  <text x="112" y="52">6</text>
                  <text x="128" y="52">7</text>
                  <text x="144" y="52">8</text>
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                  <text x="416" y="52">5</text>
                  <text x="432" y="52">6</text>
                  <text x="448" y="52">7</text>
                  <text x="464" y="52">8</text>
                  <text x="480" y="52">9</text>
                  <text x="496" y="52">0</text>
                  <text x="512" y="52">1</text>
                  <text x="24" y="84">V=2</text>
                  <text x="48" y="84">P</text>
                  <text x="64" y="84">X</text>
                  <text x="100" y="84">CC</text>
                  <text x="144" y="84">M</text>
                  <text x="204" y="84">PT</text>
                  <text x="356" y="84">Sequence</text>
                  <text x="420" y="84">Number</text>
                  <text x="264" y="116">Timestamp</text>
                  <text x="160" y="148">Synchronization</text>
                  <text x="252" y="148">Source</text>
                  <text x="308" y="148">(SSRC)</text>
                  <text x="380" y="148">Identifier</text>
                  <text x="156" y="180">Contributing</text>
                  <text x="236" y="180">Source</text>
                  <text x="292" y="180">(CSRC)</text>
                  <text x="368" y="180">Identifiers</text>
                  <text x="260" y="196">....</text>
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              </svg>
            </artwork>
            <artwork type="ascii-art"><![CDATA[
 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
+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
|V=2|P|X|  CC   |M|     PT      |       Sequence Number         |
+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
|                           Timestamp                           |
+---------------------------------------------------------------+
|           Synchronization Source (SSRC) Identifier            |
+---------------------------------------------------------------+
|            Contributing Source (CSRC) Identifiers             |
|                             ....                              |
+---------------------------------------------------------------+
]]></artwork>
          </artset>
        </figure>
        <t>Marker bit (M): 1 bit. The marker bit SHOULD be set to one in the first non-silent RTP packet after a period of haptic silence. This enables jitter buffer adaptation and haptics device washout (i.e., reset to a neutral position) prior to the beginning of the burst with minimal impact on the quality of experience for the end user. The marker bit in all other packets MUST be set to zero.</t>
        <t>Timestamp (TS): 32 bits. A timestamp representing the sampling time of the first sample of the MIHS unit in the RTP payload. The clock frequency MUST be set to the sample rate of the encoded haptic data and is conveyed out-of-band (e.g., as an SDP parameter).</t>
      </section>
      <section anchor="payload-header">
        <name>Payload Header</name>
        <t>The RTP payload header follows the RTP header. <xref target="_figure-payloadheader"/> describes the RTP payload header for Haptic.</t>
        <figure anchor="_figure-payloadheader">
          <name>RTP Payload Header for Haptic.</name>
          <artset>
            <artwork type="svg"><svg xmlns="http://www.w3.org/2000/svg" version="1.1" height="112" width="144" viewBox="0 0 144 112" class="diagram" text-anchor="middle" font-family="monospace" font-size="13px" stroke-linecap="round">
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                  <text x="16" y="52">0</text>
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                  <text x="80" y="52">4</text>
                  <text x="96" y="52">5</text>
                  <text x="112" y="52">6</text>
                  <text x="128" y="52">7</text>
                  <text x="16" y="84">D</text>
                  <text x="44" y="84">UT</text>
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            <artwork type="ascii-art"><![CDATA[
+-+-+-+-+-+-+-+-+
|0|1|2|3|4|5|6|7|
+-+-+-+-+-+-+-+-+
|D| UT  |   L   |
+-+-----+-------+
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          </artset>
        </figure>
        <t>D (Dependency, 1 bit): this field is used to indicate whether the MIHS unit included in the RTP payload is, when its value is one, dependent or, when its value is zero, independent.</t>
        <t>UT (Unit Type, 3 bits): this field indicates the type of the MIHS unit included in the RTP payload. UT field values are listed in <xref target="_figure-transmission-type"/>.</t>
        <t>L (MIHS Layer, 4 bits): this field is an integer value which indicates the priority order of the MIHS unit included in the RTP payload, as determined by the haptic sender (e.g., by the haptic codec), based on application-specific needs. For example, the sender may use the MIHS layer to prioritize perceptions with the largest impact on the end-user experience. Zero corresponds to the highest priority. The semantic of individual MIHS layers are not specified and left for the application to assign. In cases where the sender does not use the L field to indicate the priority order of the MIHS unit, L value is '0'.</t>
      </section>
      <section anchor="payload-structures">
        <name>Payload Structures</name>
        <t>Three different types of RTP packet payload structures are specified. A single unit packet contains a single MIHS unit in the payload.  A fragmentation unit contains a subset of a MIHS unit. An aggregation packet contains multiple MIHS units in the payload. The unit type (UT) field of the RTP payload header, as shown in  <xref target="_figure-transmission-type"/>, identifies both the payload structure and, in the case of a single-unit structure, also identifies the type of MIHS unit present in the payload.</t>
        <figure anchor="_figure-transmission-type">
          <name>Payload structure type for haptic</name>
          <artset>
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                <g class="text">
                  <text x="20" y="36">Unit</text>
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                  <text x="420" y="180">(MTAP)</text>
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            <artwork type="ascii-art"><![CDATA[
Unit     Payload   Packet Type Name
Type     Structure
-------------------------------------------------------
0        N/A       Unassigned
1        Single    Initialization MIHS Unit
2        Single    Temporal MIHS Unit
3        Single    Spatial MIHS Unit
4        Single    Silent MIHS Unit
5        Aggr      Single-Time Aggregation Packet (STAP)
6        Aggr      Multi-Time Aggregation Packet (MTAP)
7        Frag      Fragmentation Unit
]]></artwork>
          </artset>
        </figure>
        <t>The payload structures are represented in <xref target="_figure-transmission-style"/>.  The single unit payload structure is specified in <xref target="single"/>. The fragmented unit payload structure is specified in <xref target="fragmented"/>. The aggregation packet payload structure is specified in <xref target="aggregated"/>.  The padding in the figures of these section refers to the RTP padding defined in <xref target="RFC3550"/>.</t>
        <figure anchor="_figure-transmission-style">
          <name>RTP Transmission modes</name>
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                  <text x="460" y="52">Header</text>
                  <text x="384" y="84">RTP</text>
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                  <text x="492" y="84">Header</text>
                  <text x="400" y="100">(UT</text>
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                  <text x="224" y="164">(UT</text>
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                  <text x="32" y="180">RTP</text>
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                  <text x="432" y="228">...</text>
                  <text x="16" y="276">(a)</text>
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                  <text x="108" y="276">unit</text>
                  <text x="236" y="276">(b)fragmentation</text>
                  <text x="324" y="276">unit</text>
                  <text x="360" y="276">(c)</text>
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                  <text x="500" y="276">packet</text>
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              </svg>
            </artwork>
            <artwork type="ascii-art"><![CDATA[
                                            +-------------------+
                                            |     RTP Header    |
                                            +-------------------+
                                            | RTP Payload Header|
                      +-------------------+ |   (UT = Aggr)     |
                      |     RTP Header    | +-------------------+
+-------------------+ +-------------------+ |  MIHS unit 1 Size |
|     RTP Header    | | RTP Payload Header| +-------------------+
+-------------------+ |   (UT = Frag)     | |    MIHS Unit 1    |
| RTP Payload Header| +-------------------+ +-------------------+
+-------------------+ |     FU Header     | |  MIHS unit 2 Size |
|    RTP Payload    | +-------------------+ +-------------------+
| (Single MIHS unit)| |    RTP Payload    | |       ...         |
+-------------------+ +-------------------+ +-------------------+

(a) single unit      (b)fragmentation unit (c) aggregation packet

]]></artwork>
          </artset>
        </figure>
        <section anchor="single">
          <name>Single Unit Payload Structure</name>
          <t>In a single unit payload structure, as described in <xref target="_figure-transmission-single"/>, the RTP packet contains the RTP header, followed by the payload header and one single MIHS unit. The payload header follows the structure described in <xref target="payload-header"/>. The  payload contains a MIHS unit as defined in <xref target="ISO.IEC.23090-31"/>.</t>
          <figure anchor="_figure-transmission-single">
            <name>Single Unit Payload Structure</name>
            <artset>
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                    <text x="300" y="148">Data</text>
                    <text x="312" y="180">...OPTIONAL</text>
                    <text x="376" y="180">RTP</text>
                    <text x="424" y="180">padding</text>
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              </artwork>
              <artwork type="ascii-art"><![CDATA[
 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
+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
|                          RTP Header                           |
+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
|Payload Header |                                               |
+---------------+                                               |
|                        MIHS Unit Data                         |
|                               +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
|                               |...OPTIONAL RTP padding        |
+-------------------------------+-------------------------------+
]]></artwork>
            </artset>
          </figure>
        </section>
        <section anchor="fragmented">
          <name>Fragmented Unit Payload Structure</name>
          <t>In a fragmented unit payload structure, as described in <xref target="_figure-fragment-structure"/>, the RTP packet contains the RTP header, followed by the payload header, a Fragmented Unit (FU) header, and a MIHS unit fragment. The payload header follows the structure described in <xref target="payload-header"/>. The value of the UT field of the payload header is 7. The FU header follows the structure described in <xref target="_figure-fragment-header"/>. In the case of fragmentation, all RTP payload header fields MUST remain unchanged across all fragments.</t>
          <figure anchor="_figure-fragment-structure">
            <name>Fragmentation Unit Payload Structure</name>
            <artset>
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                    <text x="176" y="52">0</text>
                    <text x="192" y="52">1</text>
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                    <text x="232" y="84">RTP</text>
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                    <text x="424" y="180">Padding</text>
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              </artwork>
              <artwork type="ascii-art"><![CDATA[
 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
+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
|                          RTP Header                           |
+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
|Payload Header | FU Header     |                               |
+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+                               |
|                     MIHS Unit Fragment                        |
|                               +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
|                               |...OPTIONAL RTP Padding        |
+-------------------------------+-------------------------------+
]]></artwork>
            </artset>
          </figure>
          <t>FU headers are used to enable fragmenting a single MIHS unit into multiple RTP packets. Fragments of the same MIHS unit MUST be sent in consecutive order with ascending RTP sequence numbers (with no other RTP packets within the same RTP stream being sent between the first and last fragment). FUs MUST NOT be nested, i.e., an FU MUST NOT contain a subset of another FU.</t>
          <t><xref target="_figure-fragment-header"/> describes a FU header, including the following fields:</t>
          <figure anchor="_figure-fragment-header">
            <name>Fragmentation unit header</name>
            <artset>
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                    <text x="152" y="52">4</text>
                    <text x="184" y="52">5</text>
                    <text x="216" y="52">6</text>
                    <text x="248" y="52">7</text>
                    <text x="24" y="84">FUS</text>
                    <text x="56" y="84">FUE</text>
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                    <text x="220" y="84">UT</text>
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              </artwork>
              <artwork type="ascii-art"><![CDATA[
+---+---+---+---+---+---+---+---+
| 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 |
+---+---+---+---+---+---+---+---+
|FUS|FUE|   RSV     |     UT    |
+---+---+-----------+-----------+
]]></artwork>
            </artset>
          </figure>
          <t>FUS (Fragmented Unit Start, 1 bit): this field MUST be set to 1 for the first fragment, and 0 for the other fragments.</t>
          <t>FUE (Fragmented Unit End, 1 bit): this field MUST be set to 1 for the last fragment, and 0 for the other fragments.</t>
          <t>The combination FUS=1 and FUE=1 MUST NOT occur; such packets are invalid.</t>
          <t>RSV (Reserved, 3 bits): these bits MUST be set to 0 by the sender and ignored by the receiver.</t>
          <t>UT (Unit Type, 3 bits): this field indicates the type of the MIHS unit this fragment belongs to, using values defined in <xref target="_figure-transmission-type"/>.</t>
          <t>The use of MIHS unit fragmentation in RTP means that a media receiver can receive some fragments, but not other fragments. The missing fragments will typically not be retransmitted by RTP. This results in partially received MIHS units, which can be either dropped or used by the decoding application, based on implementation. In cases where consecutive fragments with FUE and FUS are lost, the receiver may in some cases be able to detect that surrounding fragments belong to a different partially received MIHS unit (e.g., if the UT field holds a different value).</t>
        </section>
        <section anchor="aggregated">
          <name>Aggregation Packet Payload Structure</name>
          <t>In an aggregation packet, as described in <xref target="_figure-aggre-structure"/>, the RTP packet contains an RTP header, followed by a payload header, and, for each aggregated MIHS Unit, a MIHS unit size followed by the MIHS unit. The payload header follows the structure described in <xref target="payload-header"/>.</t>
          <figure anchor="_figure-aggre-structure">
            <name>Single-Time Aggregation Packet</name>
            <artset>
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     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
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                          RTP Header                           |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |        RTP Payload Header     |       MIHS Unit 1 Size        |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                           MIHS Unit 1                         |
    |                                                               |
    :                                                               :
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |        MIHS Unit 2 Size     |                                 |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+                                 |
    |                           MIHS Unit 2                         |
    |                                                               |
    |                               +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                               |...OPTIONAL RTP padding        |
    +-------------------------------+-------------------------------+
]]></artwork>
            </artset>
          </figure>
          <t><xref target="_figure-aggre-structure"/> shows a Single-Time Aggregation Packet (STAP), which can be used to transmit multiple MIHS units that correspond to the same timestamp. For example, if two frequencies are used for the same content, they can be transmitted at once in a STAP. Multiple spatial units can also be sent together in a STAP, since this type of haptics data is time independent. The MIHS unit length field (16 bits) holds the length of the MIHS unit following it, in bytes. The value of the UT field of the payload header is 5.</t>
          <figure anchor="_figure-aggremtap-structure">
            <name>Multiple-time aggregation packet</name>
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    0                   1                   2                   3
    0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                          RTP Header                           |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
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    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    |                           TS Offset           |               |
    +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+               |
    |                           MIHS Unit 1                         |
    |                                                               |
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    |   TS offset   |                                               |
    |-+-+-+-+-+-+-+-+                                               |
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    |                               |...OPTIONAL RTP padding        |
    +-------------------------------+-------------------------------+
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          </figure>
          <t><xref target="_figure-aggremtap-structure"/> shows a multi-time aggregation packet. It is used to transmit multiple MIHS units with different timestamps, in one RTP packet. Multi-time aggregation can help reduce the number of packets, in environments where some delay is acceptable. The value of the UT field of the Payload Header is 6. The MIHS unit length field (16 bits) holds the length of the MIHS unit following it, in bytes. The timestamp offset field (TS offset, 16 bits) is present in the MTAP case, and MUST be set to the value of (time of the MIHS unit - RTP timestamp of the packet).  The timestamp offset of the earliest aggregation unit MUST always be zero. Therefore, the RTP timestamp of the MTAP is identical to the earliest MIHS unit time.</t>
        </section>
      </section>
      <section anchor="mihs-trans">
        <name>MIHS Units Transmission and Reception Considerations</name>
        <t>The following considerations apply for the streaming of MIHS units over RTP:</t>
        <t>The MIHS format enables variable duration units and uses initialization MIHS units to declare the duration of subsequent non-zero duration MIHS units, as well as the maximum variation of this duration. A sender SHOULD set constant or low-variability (e.g., lower than the playout buffer) durations in initialization MIHS units, for RTP streaming. This enables the receiver to determine early (e.g., using a timer) when a unit has been lost and make the decoder more robust to RTP packet loss. If a sender sends MIHS units with high duration variations, the receiver MAY need to wait for a long period of time (e.g., the upper bound of the duration variation), to determine if a MIHS unit was lost in transmission. Whether this behavior is acceptable or not is application dependent, and the application can configure the encoder to generate MIHS unit of lengths with the appropriate variation.</t>
        <t>The MIHS format uses silent MIHS units to signal haptic silence. A sender MAY decide not to send silent units, to save network resources. Since, from a receiver standpoint, a missed MIHS unit may originate from a not-sent silent unit, or a lost packet, a sender MAY send one, or a few, MIHS silent units at the beginning of a haptic silence. If a media receiver receives a MIHS silent unit, the receiver SHOULD assume that silence is intended until the reception of a non-silent MIHS unit. This can reduce the number of false detections of lost RTP packets by the decoder.</t>
        <t>In some multimedia conference scenarios using an RTP video mixer (e.g., when adding or selecting a new source), it is recommended to use Full Intra Request (FIR) feedback messages with Haptics <xref target="RFC5104"/>. The purpose of the FIR message is to cause an encoder to send a decoder refresh point at the earliest opportunity. In the context of haptics, an appropriate decoder refresh point is an initialization MIHS unit. The initialization MIHS unit point enables a decoder to be reset to a known state and be able decode all MIHS units following it.</t>
      </section>
    </section>
    <section anchor="payload-format-parameters">
      <name>Payload Format Parameters</name>
      <t>This section describes payload format parameters. <xref target="format-param"/> updates the 'haptics' Media Type Registration and <xref target="optional-param"/> specifies new optional parameters. <xref target="sdp-registration"/> further registers a new token in the media sub-registry of the Session Description Protocols (SDP) Parameters registry.</t>
      <section anchor="format-param">
        <name>Media Type Registration Update</name>
        <t>This memo updates the 'hmpg' haptic subtype defined in <xref target="RFC9695"/> for use with the MPEG-I haptics streamable binary coding format described in ISO/IEC 23090-31: Haptics coding <xref target="ISO.IEC.23090-31"/>. This memo especially defines optional parameters for this type in <xref target="optional-param"/>. The original subtype registration for haptics/hmpg, registered with IANA in <xref target="RFC9695"/>, did not include any required or optional parameters. This document introduces optional parameters to enable extended functionality while maintaining backward compatibility.</t>
        <t>A mapping of the parameters into the Session Description Protocol (SDP) <xref target="RFC8866"/> is also provided for applications that use SDP. Equivalent parameters could be defined elsewhere for use with control protocols that do not use SDP.
The receiver MUST ignore any parameter unspecified in this memo.</t>
        <t>The following entries identify the media type being updated:</t>
        <t>Type name: haptics</t>
        <t>Subtype name: hmpg</t>
        <t>The following entries are replaced by this memo:</t>
        <t>Optional parameters: see section 6.2 of RFC XXX (note to RFC editor: replace with this RFC's number).</t>
        <t>Person &amp; email address to contact for further information: Yeshwant Muthusamy (yeshwant@yeshvik.com) and Hyunsik Yang (hyunsik.yang@interdigital.com)</t>
      </section>
      <section anchor="optional-param">
        <name>Optional Parameters Definition</name>
        <t>It is optional to include the SDP parameters in this section. Some parameters have a default value which MUST be inferred if the parameter is not present in the SDP, unless an out-of-band agreement indicates a different value, as described in <xref target="sdp-cons"/>. The values of the SDP parameters indicated in this section are based on the current version of the MPEG Haptics Coding standard (ISO/IEC 23090-31:2025) and may be different in future versions of <xref target="ISO.IEC.23090-31"/>.</t>
        <t>ver:</t>
        <t>This parameter provides the year of the edition and amendment of ISO/IEC 23090-31 that this file conforms to, as defined in <xref target="ISO.IEC.23090-31"/>: MPEG_haptics object.version is a string which may hold values such as XXXX or XXXX-Y where XXXX is the year of publication and Y is the amendment number, if any. For the initial (and current) version of the MPEG Haptics Coding standard (ISO/IEC 23090-31:2025) , the value is "2025". When ver  is not present, a default value of "2025" SHOULD be inferred.</t>
        <t>profile:</t>
        <t>This parameter indicates the profile used to generate the encoded stream as defined in <xref target="ISO.IEC.23090-31"/>: MPEG_haptics object.profile is a string which may hold the values "simple-parametric" or "main". When profile is not present, the default value "main" SHOULD be inferred.</t>
        <t>lvl:</t>
        <t>This parameter indicates the level used to generate the encoded stream as defined in <xref target="ISO.IEC.23090-31"/>: MPEG_haptics object.level is an integer which may hold the values 1 or 2. When lvl is not present, the default value 2 SHOULD be inferred.</t>
        <t>maxlod:</t>
        <t>This parameter indicates the maximum level of details to use for the avatar(s). The avatar level of detail (LOD) is defined in <xref target="ISO.IEC.23090-31"/>: MPEG_haptics.avatar object.lod is an integer which may hold the value 0 or a positive integer.</t>
        <t>avtypes:</t>
        <t>This parameter indicates, using a comma-separated list, types of haptic perception represented by the avatar(s). The avatar type is defined in <xref target="ISO.IEC.23090-31"/>: MPEG_haptics.avatar object.type is a string which may hold values among "Vibration", "Pressure", "Temperature", "Custom".</t>
        <t>modalities:</t>
        <t>This parameter indicates, using a comma-separated list, haptic perception modalities (e.g., pressure, acceleration, velocity, position, temperature, etc.). The perception modality is defined in <xref target="ISO.IEC.23090-31"/>: MPEG_haptics.perception object.perception_modality is a string which may hold values among "Pressure", "Acceleration", "Velocity", "Position", "Temperature", "Vibrotactile", "Water", "Wind", "Force", "Electrotactile", "Vibrotactile Texture", "Stiffness", "Friction", "Humidity", "User-defined Temporal", "User-defined Spatial", "Other".</t>
        <t>bodypartmask:</t>
        <t>This parameter is an integer which indicates, using a bitmask, the location of the devices or actuators on the body. The body part mask is defined in <xref target="ISO.IEC.23090-31"/>: MPEG_haptics.reference_device object.body_part_mask is a 32-bit integer which may hold a bit mask using bit positions defined in table 7 of <xref target="ISO.IEC.23090-31"/>.</t>
        <t>maxfreq:</t>
        <t>This parameter is an integer which indicates the maximum frequency of haptic data for vibrotactile perceptions (Hz). Maximum frequency is defined in <xref target="ISO.IEC.23090-31"/>: MPEG_haptics.reference_device object.maximum_frequency.</t>
        <t>minfreq:</t>
        <t>This parameter is an integer which indicates the minimum frequency of haptic data for vibrotactile perceptions (Hz). Minimum frequency is defined in <xref target="ISO.IEC.23090-31"/>: MPEG_haptics.reference_device object.minimum_frequency.</t>
        <t>dvctypes:</t>
        <t>This parameter indicates, using a comma-separated list, the types of actuators. The device type is defined in <xref target="ISO.IEC.23090-31"/>: MPEG_haptics.reference_device object.type is a string which may hold values among "LRA", "VCA", "ERM", "Piezo" or "Unknown".</t>
        <t>silencesupp:</t>
        <t>This parameter is an integer which indicates whether silence suppression should be used (1) or not (0). When silencesupp is not present, the default value 0 SHOULD be inferred.</t>
      </section>
      <section anchor="sdp-registration">
        <name>SDP Parameter Registration</name>
        <t>This memo registers a 'haptics' token in the media sub-registry of the Session Description Protocols (SDP) Parameters registry. This registration contains the required information elements outlined in the SDP registration procedure defined in section 8.2 of <xref target="RFC8866"/>.</t>
        <t>(1)  Contact Information:</t>
        <artwork><![CDATA[
       Name: Hyunsik Yang
       Email: hyunsik.yang@interdigital.com
]]></artwork>
        <t>(2)  Name being registered (as it will appear in SDP): haptics</t>
        <t>(3)  Long-form name in English: haptics</t>
        <t>(4)  Type of name ('media', 'proto', 'fmt', 'bwtype', 'nettype', or
        'addrtype'): media</t>
        <t>(5)  Purpose of the registered name:</t>
        <artwork><![CDATA[
       The 'haptics' media type for the Session Description Protocol
       is used to describe a media stream whose content can be
       rendered as touch-related sensations.
       The media subtype further describes the specific
       format of the haptics stream.  The 'haptics' media type for
       SDP is used to establish haptics media streams.
]]></artwork>
        <t>(6)  Specification for the registered name: RFC XXXX</t>
        <t>RFC Editor Note: Replace RFC XXXX with the published RFC number.</t>
      </section>
    </section>
    <section anchor="sdp-considerations">
      <name>SDP Considerations</name>
      <t>The mapping of above defined payload format media type to the corresponding fields in the Session Description Protocol (SDP) is done according to <xref target="RFC8866"/>.</t>
      <t>The media name in the "m=" line of SDP MUST be haptics.</t>
      <t>The encoding name in the "a=rtpmap" line of SDP MUST be hmpg</t>
      <t>The clock rate in the "a=rtpmap" line may be any sampling rate, typically 8000.</t>
      <t>The optional parameters (defined in <xref target="optional-param"/>), when present, MUST be included in the "a=fmtp" line of SDP. This is expressed as a media type string, in the form of a semicolon-separated list of parameter=value pairs. Parameter values, including string values, MUST be written without quotation marks ("") in SDP. Parameter values which are strings are not case sensitive and SHOULD be written in lowercase.</t>
      <t>An example of media representation corresponding to the hmpg RTP payload in SDP is as follows:</t>
      <artwork><![CDATA[
m=haptics 43291 UDP/TLS/RTP/SAVPF 115
a=rtpmap:115 hmpg/8000
a=fmtp:115 profile=main;lvl=1;ver=2025
]]></artwork>
      <section anchor="sdp-cons">
        <name>SDP Offer/Answer Considerations</name>
        <t>When using the offer/answer procedure described in <xref target="RFC3264"/> to negotiate the use of haptic, the following considerations apply:</t>
        <t>When used for a unidirectional stream, the SDP parameters represent the properties of the sender (on the sending side) and of the receiver (on the receiving side). When used for a sendrecv stream, the SDP parameters represent the properties of the receiver.</t>
        <t>The receiver properties expressed using the SDP parameters 'ver', 'profile' and 'lvl' correspond to implementation capabilities. The ver, profile, lvl parameters MUST be used symmetrically in SDP offer and answer. That is, their values in the answer MUST match those in the offer, either explicitly signaled or implicitly inferred. In the same session, ver, profile, and lvl MUST NOT be changed in subsequent offers or answers.</t>
        <t>The properties expressed using SDP parameters other than 'ver', 'profile' and 'lvl' are provided as recommendations for efficient data transmission and are not binding, meaning that a sender is encouraged but not required to conform to the parameters specified by the receiver. These properties MAY be set to different values in offers and answers. These properties MAY be updated in subsequent offers or answers.</t>
        <t>Any receiver compliant with <xref target="ISO.IEC.23090-31"/> MUST be capable of decoding any stream with a compatible version, profile, and level. A receiver supporting a more general profile will accept a stream corresponding to a same or less general profile (e.g., "main" is more general than "simple-parametric"). A receiver supporting a given level will accept a stream corresponding to a same or lower level. A receiver supporting a given version will accept a stream corresponding to the same version and MAY accept other versions. A receiver MAY ignore any part of a received stream, e.g., that it does not have support for rendering.</t>
        <t>The haptic signal can be sampled at different rates. The MPEG Haptics Coding standard does not mandate a specific frequency. A typical sample rate is 8000Hz.</t>
        <t>The parameter 'ver' indicates the version of the haptic standard specification. If it is not specified, the The parameter 'ver' indicates the version of the haptic standard specification. If it is not specified, the value "2025" indicating the MPEG Haptics Coding standard ISO/IEC 23090-31:2025 <xref target="ISO.IEC.23090-31"/>  SHOULD be inferred, although the sender and receiver MAY use a specific value based on an out-of-band agreement. The parameter 'profile' is used to restrict the number of tools used (e.g., the simple-parametric profile fits enable simpler implementations than the main profile). If it is not specified, the most general profile "main" SHOULD be inferred, although the sender and receiver MAY use a specific value based on an out-of-band agreement. The parameter 'lvl' is used to further characterize implementations within a given profile, e.g., according to the maximum supported number of channels, bands, and perceptions. If it is not specified, the most general level "2" SHOULD be inferred, although the sender and receiver MAY use a specific version based on an out-of-band agreement.</t>
        <t>Other parameters can be used to indicate bitstream properties as well as receiver capabilities. The parameters 'maxlod', 'avtypes', 'bodypartmask', 'maxfreq', 'minfreq', 'dvctypes', and 'modalities' can be sent by a sender to reflect the characteristics of bitstreams and can be set by a receiver to reflect the nature and capabilities of local actuator devices, or a preferred set of bitstream properties. For example, different receivers MAY have different sets of local actuators, in which case these parameters can be used to select a stream adapted to the receiver. In some other cases, some receivers MAY indicate a preference for a set of bitstream properties such as perceptions, min/max frequency, or body-part-mask, which contribute the most to the user experience for a given application, in which case these parameters can be used to select a stream which include and possibly prioritizes those properties. For example, if the haptic stream server provides more information than the body mask specified by the receiver, the additional information can be either integrated into a single effect or ignored by the receiver.</t>
        <t>The parameter 'silencesupp' can be used to indicate sender and receiver capabilities or preferences. This parameter indicates whether silence suppression should be used, as described in <xref target="mihs-trans"/>. If it is not specified, the value "0", indicating no silence suppression, SHOULD be inferred, although the sender and receiver MAY use silence suppression based on an out-of-band agreement.</t>
      </section>
      <section anchor="declarative-sdp-considerations">
        <name>Declarative SDP Considerations</name>
        <t>When haptic content over RTP is offered with SDP in a declarative style, the parameters capable of indicating both bitstream properties as well as receiver capabilities are used to indicate only bitstream properties.  For example, in this case, the parameters maxlod, bodypartmask, maxfreq, minfreq, dvctypes, and modalities declare the values used by the bitstream, not the capabilities for receiving bitstreams. A receiver of the SDP is required to support all parameters and values of the parameters provided; otherwise, the receiver MUST reject or not participate in the session.  It falls on the creator of the session to use values that are expected to be supported by the receiving application.</t>
      </section>
    </section>
    <section anchor="congestion-control-considerations">
      <name>Congestion Control Considerations</name>
      <t>The general congestion control considerations for transporting RTP data apply to HMPG haptics over RTP as well <xref target="RFC3550"/>.</t>
      <t>It is possible to adapt network bandwidth usage by adjusting either the encoder bit rate or by adjusting the stream content (e.g., level of detail, body parts, actuator frequency range, target device types, modalities). The considerations in this section are applicable to best-effort networks and controlled environments.</t>
      <t>In case of congestion, a receiver or intermediate node MAY prioritize independent packets over dependent ones, since the non-reception of an independent MIHS unit can prevent the decoding of multiple subsequent dependent MIHS units. In case of congestion, a receiver or intermediate node MAY prioritize initialization MIHS units over other units, since initialization MIHS units contain metadata used to re-initialize the decoder, and MAY drop silent MIHS units before other types of MIHS units, since a receiver MAY interpret a missing MIHS unit as a silence. It is also possible, using the layer field of the RTP payload header, to allocate MIHS units to different layers based on their content, to prioritize haptic data contributing the most to the user experience. In case of congestion, intermediate nodes and receivers SHOULD use the MIHS layer value to determine the relative importance of haptic RTP packets.</t>
      <t>Receivers should monitor timestamps and treat gaps as loss of the corresponding MIHS units. MIHS units, as defined in <xref target="ISO.IEC.23090-31"/>, should be checked for structural integrity according to their type. When CRC16 or CRC32 information is present in MIHS units, receivers must validate data integrity, and units failing CRC checks should be treated as lost. Receivers should further monitor indicators of service degradation such as unexpected silent gaps, repeated decoder reinitializations, or decoding failures. Receivers should report packet loss to the sender using RTCP Receiver Reports <xref target="RFC3550"/> and, when available, may report detailed loss and jitter metrics using mechanisms described in <xref target="RFC4585"/>.</t>
    </section>
    <section anchor="security-considerations">
      <name>Security Considerations</name>
      <t>This RTP payload format is subject to security threats commonly associated with RTP payload formats, as well as threats specific to the interaction of haptic devices with the physical world, and threats associated with the use of compression by the codec.
Security consideration for threats commonly associated with RTP payload formats are outlined in <xref target="RFC3550"/>, as well as in RTP profiles such as RTP/AVP <xref target="RFC3551"/>), RTP/AVPF <xref target="RFC4585"/>, RTP/SAVP <xref target="RFC3711"/>, or RTP/SAVPF <xref target="RFC5124"/>.</t>
      <t>Haptic sensors and actuators operate within the physical environment. This introduces the potential for information leakage through sensors, or damage to actuators due to data tampering. Additionally, misusing the functionalities of actuators (such as force, position, temperature, vibration, electro-tactile, etc.) may pose a risk of harm to the user, for example by setting keyframe parameters (e.g., amplitude, position, frequency) or channel gain to a value that surpasses a permissible range. While individual devices can implement security measures to reduce or eliminate those risks on a per-device basis, in some cases harm can be inflicted by setting values which are permissible for the individual device. For example, causing contact with the physical environment or triggering unexpected force feedback can potentially harm the user. Each haptic system should therefore implement system-dependent security measures, which are more error prone. To limit the risk that attackers exploit weaknesses in haptic systems, it is important that haptic transmission should be protected against malicious traffic injection or tampering.</t>
      <t>However, as "Securing the RTP Framework: Why RTP Does Not Mandate a Single Media Security Solution" <xref target="RFC7202"/> discusses, it is not an RTP payload format's responsibility to discuss or mandate what solutions are used to meet the basic security goals like confidentiality, integrity, and source authenticity for RTP in general. The responsibility for implementing security mechanisms lies with the application developer. They can find guidance on available security mechanisms and important considerations in "Options for Securing RTP Sessions" <xref target="RFC7201"/>. Applications SHOULD use one or more appropriate strong security mechanisms.</t>
      <t>The haptic codec used with this payload format uses a compression algorithm (see sections 8.2.8.5 and 8.3.3.2 in <xref target="ISO.IEC.23090-31"/>). An attacker may inject pathological datagrams into the stream which are complex to decode and cause the receiver to be overloaded, similarly to <xref target="RFC3551"/>.</t>
      <t>End-to-end security with authentication, integrity, or confidentiality protection will prevent a Media-Aware Network Element (MANE) from performing media-aware operations other than discarding complete packets. In the case of confidentiality protection, it will even be prevented from discarding packets in a media-aware way. To be allowed to perform such operations, a MANE is required to be a trusted entity that is included in the security context establishment.</t>
    </section>
    <section anchor="iana-considerations">
      <name>IANA Considerations</name>
      <t>This memo updates a media type registration with IANA; see <xref target="format-param"/>.</t>
    </section>
    <section anchor="acknowledgments">
      <name>Acknowledgments</name>
      <t>Thanks to Philippe Guillotel, Quentin Galvane, Jonathan Lennox, Marius Kleidl and Stephan Wenger for the comments and discussions about this draft.</t>
    </section>
  </middle>
  <back>
    <references anchor="sec-combined-references">
      <name>References</name>
      <references anchor="sec-normative-references">
        <name>Normative References</name>
        <reference anchor="ISO.IEC.23090-31" target="https://www.iso.org/standard/86122.html">
          <front>
            <title>Information technology - Coded representation of immersive media</title>
            <author>
              <organization>ISO/IEC</organization>
            </author>
            <date year="2025"/>
          </front>
          <seriesInfo name="ISO/IEC" value="23090-31:2025"/>
        </reference>
        <reference anchor="RFC2119">
          <front>
            <title>Key words for use in RFCs to Indicate Requirement Levels</title>
            <author fullname="S. Bradner" initials="S." surname="Bradner"/>
            <date month="March" year="1997"/>
            <abstract>
              <t>In many standards track documents several words are used to signify the requirements in the specification. These words are often capitalized. This document defines these words as they should be interpreted in IETF documents. This document specifies an Internet Best Current Practices for the Internet Community, and requests discussion and suggestions for improvements.</t>
            </abstract>
          </front>
          <seriesInfo name="BCP" value="14"/>
          <seriesInfo name="RFC" value="2119"/>
          <seriesInfo name="DOI" value="10.17487/RFC2119"/>
        </reference>
        <reference anchor="RFC8174">
          <front>
            <title>Ambiguity of Uppercase vs Lowercase in RFC 2119 Key Words</title>
            <author fullname="B. Leiba" initials="B." surname="Leiba"/>
            <date month="May" year="2017"/>
            <abstract>
              <t>RFC 2119 specifies common key words that may be used in protocol specifications. This document aims to reduce the ambiguity by clarifying that only UPPERCASE usage of the key words have the defined special meanings.</t>
            </abstract>
          </front>
          <seriesInfo name="BCP" value="14"/>
          <seriesInfo name="RFC" value="8174"/>
          <seriesInfo name="DOI" value="10.17487/RFC8174"/>
        </reference>
        <reference anchor="RFC3550">
          <front>
            <title>RTP: A Transport Protocol for Real-Time Applications</title>
            <author fullname="H. Schulzrinne" initials="H." surname="Schulzrinne"/>
            <author fullname="S. Casner" initials="S." surname="Casner"/>
            <author fullname="R. Frederick" initials="R." surname="Frederick"/>
            <author fullname="V. Jacobson" initials="V." surname="Jacobson"/>
            <date month="July" year="2003"/>
            <abstract>
              <t>This memorandum describes RTP, the real-time transport protocol. RTP provides end-to-end network transport functions suitable for applications transmitting real-time data, such as audio, video or simulation data, over multicast or unicast network services. RTP does not address resource reservation and does not guarantee quality-of- service for real-time services. The data transport is augmented by a control protocol (RTCP) to allow monitoring of the data delivery in a manner scalable to large multicast networks, and to provide minimal control and identification functionality. RTP and RTCP are designed to be independent of the underlying transport and network layers. The protocol supports the use of RTP-level translators and mixers. Most of the text in this memorandum is identical to RFC 1889 which it obsoletes. There are no changes in the packet formats on the wire, only changes to the rules and algorithms governing how the protocol is used. The biggest change is an enhancement to the scalable timer algorithm for calculating when to send RTCP packets in order to minimize transmission in excess of the intended rate when many participants join a session simultaneously. [STANDARDS-TRACK]</t>
            </abstract>
          </front>
          <seriesInfo name="STD" value="64"/>
          <seriesInfo name="RFC" value="3550"/>
          <seriesInfo name="DOI" value="10.17487/RFC3550"/>
        </reference>
        <reference anchor="RFC9695">
          <front>
            <title>The 'haptics' Top-Level Media Type</title>
            <author fullname="Y. K. Muthusamy" initials="Y. K." surname="Muthusamy"/>
            <author fullname="C. Ullrich" initials="C." surname="Ullrich"/>
            <date month="March" year="2025"/>
            <abstract>
              <t>This memo registers and documents the 'haptics' top-level media type, under which subtypes for representation formats for haptics may be registered. This document also serves as a registration for a set of subtypes, which are representative of some existing subtypes already in use.</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="9695"/>
          <seriesInfo name="DOI" value="10.17487/RFC9695"/>
        </reference>
        <reference anchor="RFC8866">
          <front>
            <title>SDP: Session Description Protocol</title>
            <author fullname="A. Begen" initials="A." surname="Begen"/>
            <author fullname="P. Kyzivat" initials="P." surname="Kyzivat"/>
            <author fullname="C. Perkins" initials="C." surname="Perkins"/>
            <author fullname="M. Handley" initials="M." surname="Handley"/>
            <date month="January" year="2021"/>
            <abstract>
              <t>This memo defines the Session Description Protocol (SDP). SDP is intended for describing multimedia sessions for the purposes of session announcement, session invitation, and other forms of multimedia session initiation. This document obsoletes RFC 4566.</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="8866"/>
          <seriesInfo name="DOI" value="10.17487/RFC8866"/>
        </reference>
        <reference anchor="RFC3264">
          <front>
            <title>An Offer/Answer Model with Session Description Protocol (SDP)</title>
            <author fullname="J. Rosenberg" initials="J." surname="Rosenberg"/>
            <author fullname="H. Schulzrinne" initials="H." surname="Schulzrinne"/>
            <date month="June" year="2002"/>
            <abstract>
              <t>This document defines a mechanism by which two entities can make use of the Session Description Protocol (SDP) to arrive at a common view of a multimedia session between them. In the model, one participant offers the other a description of the desired session from their perspective, and the other participant answers with the desired session from their perspective. This offer/answer model is most useful in unicast sessions where information from both participants is needed for the complete view of the session. The offer/answer model is used by protocols like the Session Initiation Protocol (SIP). [STANDARDS-TRACK]</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="3264"/>
          <seriesInfo name="DOI" value="10.17487/RFC3264"/>
        </reference>
      </references>
      <references anchor="sec-informative-references">
        <name>Informative References</name>
        <reference anchor="RFC2736">
          <front>
            <title>Guidelines for Writers of RTP Payload Format Specifications</title>
            <author fullname="M. Handley" initials="M." surname="Handley"/>
            <author fullname="C. Perkins" initials="C." surname="Perkins"/>
            <date month="December" year="1999"/>
            <abstract>
              <t>This document provides general guidelines aimed at assisting the authors of RTP Payload Format specifications in deciding on good formats. This document specifies an Internet Best Current Practices for the Internet Community, and requests discussion and suggestions for improvements.</t>
            </abstract>
          </front>
          <seriesInfo name="BCP" value="36"/>
          <seriesInfo name="RFC" value="2736"/>
          <seriesInfo name="DOI" value="10.17487/RFC2736"/>
        </reference>
        <reference anchor="RFC8088">
          <front>
            <title>How to Write an RTP Payload Format</title>
            <author fullname="M. Westerlund" initials="M." surname="Westerlund"/>
            <date month="May" year="2017"/>
            <abstract>
              <t>This document contains information on how best to write an RTP payload format specification. It provides reading tips, design practices, and practical tips on how to produce an RTP payload format specification quickly and with good results. A template is also included with instructions.</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="8088"/>
          <seriesInfo name="DOI" value="10.17487/RFC8088"/>
        </reference>
        <reference anchor="RFC7201">
          <front>
            <title>Options for Securing RTP Sessions</title>
            <author fullname="M. Westerlund" initials="M." surname="Westerlund"/>
            <author fullname="C. Perkins" initials="C." surname="Perkins"/>
            <date month="April" year="2014"/>
            <abstract>
              <t>The Real-time Transport Protocol (RTP) is used in a large number of different application domains and environments. This heterogeneity implies that different security mechanisms are needed to provide services such as confidentiality, integrity, and source authentication of RTP and RTP Control Protocol (RTCP) packets suitable for the various environments. The range of solutions makes it difficult for RTP-based application developers to pick the most suitable mechanism. This document provides an overview of a number of security solutions for RTP and gives guidance for developers on how to choose the appropriate security mechanism.</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="7201"/>
          <seriesInfo name="DOI" value="10.17487/RFC7201"/>
        </reference>
        <reference anchor="RFC7202">
          <front>
            <title>Securing the RTP Framework: Why RTP Does Not Mandate a Single Media Security Solution</title>
            <author fullname="C. Perkins" initials="C." surname="Perkins"/>
            <author fullname="M. Westerlund" initials="M." surname="Westerlund"/>
            <date month="April" year="2014"/>
            <abstract>
              <t>This memo discusses the problem of securing real-time multimedia sessions. It also explains why the Real-time Transport Protocol (RTP) and the associated RTP Control Protocol (RTCP) do not mandate a single media security mechanism. This is relevant for designers and reviewers of future RTP extensions to ensure that appropriate security mechanisms are mandated and that any such mechanisms are specified in a manner that conforms with the RTP architecture.</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="7202"/>
          <seriesInfo name="DOI" value="10.17487/RFC7202"/>
        </reference>
        <reference anchor="RFC5124">
          <front>
            <title>Extended Secure RTP Profile for Real-time Transport Control Protocol (RTCP)-Based Feedback (RTP/SAVPF)</title>
            <author fullname="J. Ott" initials="J." surname="Ott"/>
            <author fullname="E. Carrara" initials="E." surname="Carrara"/>
            <date month="February" year="2008"/>
            <abstract>
              <t>An RTP profile (SAVP) for secure real-time communications and another profile (AVPF) to provide timely feedback from the receivers to a sender are defined in RFC 3711 and RFC 4585, respectively. This memo specifies the combination of both profiles to enable secure RTP communications with feedback. [STANDARDS-TRACK]</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="5124"/>
          <seriesInfo name="DOI" value="10.17487/RFC5124"/>
        </reference>
        <reference anchor="RFC3711">
          <front>
            <title>The Secure Real-time Transport Protocol (SRTP)</title>
            <author fullname="M. Baugher" initials="M." surname="Baugher"/>
            <author fullname="D. McGrew" initials="D." surname="McGrew"/>
            <author fullname="M. Naslund" initials="M." surname="Naslund"/>
            <author fullname="E. Carrara" initials="E." surname="Carrara"/>
            <author fullname="K. Norrman" initials="K." surname="Norrman"/>
            <date month="March" year="2004"/>
            <abstract>
              <t>This document describes the Secure Real-time Transport Protocol (SRTP), a profile of the Real-time Transport Protocol (RTP), which can provide confidentiality, message authentication, and replay protection to the RTP traffic and to the control traffic for RTP, the Real-time Transport Control Protocol (RTCP). [STANDARDS-TRACK]</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="3711"/>
          <seriesInfo name="DOI" value="10.17487/RFC3711"/>
        </reference>
        <reference anchor="RFC3551">
          <front>
            <title>RTP Profile for Audio and Video Conferences with Minimal Control</title>
            <author fullname="H. Schulzrinne" initials="H." surname="Schulzrinne"/>
            <author fullname="S. Casner" initials="S." surname="Casner"/>
            <date month="July" year="2003"/>
            <abstract>
              <t>This document describes a profile called "RTP/AVP" for the use of the real-time transport protocol (RTP), version 2, and the associated control protocol, RTCP, within audio and video multiparticipant conferences with minimal control. It provides interpretations of generic fields within the RTP specification suitable for audio and video conferences. In particular, this document defines a set of default mappings from payload type numbers to encodings. This document also describes how audio and video data may be carried within RTP. It defines a set of standard encodings and their names when used within RTP. The descriptions provide pointers to reference implementations and the detailed standards. This document is meant as an aid for implementors of audio, video and other real-time multimedia applications. This memorandum obsoletes RFC 1890. It is mostly backwards-compatible except for functions removed because two interoperable implementations were not found. The additions to RFC 1890 codify existing practice in the use of payload formats under this profile and include new payload formats defined since RFC 1890 was published. [STANDARDS-TRACK]</t>
            </abstract>
          </front>
          <seriesInfo name="STD" value="65"/>
          <seriesInfo name="RFC" value="3551"/>
          <seriesInfo name="DOI" value="10.17487/RFC3551"/>
        </reference>
        <reference anchor="RFC4585">
          <front>
            <title>Extended RTP Profile for Real-time Transport Control Protocol (RTCP)-Based Feedback (RTP/AVPF)</title>
            <author fullname="J. Ott" initials="J." surname="Ott"/>
            <author fullname="S. Wenger" initials="S." surname="Wenger"/>
            <author fullname="N. Sato" initials="N." surname="Sato"/>
            <author fullname="C. Burmeister" initials="C." surname="Burmeister"/>
            <author fullname="J. Rey" initials="J." surname="Rey"/>
            <date month="July" year="2006"/>
            <abstract>
              <t>Real-time media streams that use RTP are, to some degree, resilient against packet losses. Receivers may use the base mechanisms of the Real-time Transport Control Protocol (RTCP) to report packet reception statistics and thus allow a sender to adapt its transmission behavior in the mid-term. This is the sole means for feedback and feedback-based error repair (besides a few codec-specific mechanisms). This document defines an extension to the Audio-visual Profile (AVP) that enables receivers to provide, statistically, more immediate feedback to the senders and thus allows for short-term adaptation and efficient feedback-based repair mechanisms to be implemented. This early feedback profile (AVPF) maintains the AVP bandwidth constraints for RTCP and preserves scalability to large groups. [STANDARDS-TRACK]</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="4585"/>
          <seriesInfo name="DOI" value="10.17487/RFC4585"/>
        </reference>
        <reference anchor="RFC5104">
          <front>
            <title>Codec Control Messages in the RTP Audio-Visual Profile with Feedback (AVPF)</title>
            <author fullname="S. Wenger" initials="S." surname="Wenger"/>
            <author fullname="U. Chandra" initials="U." surname="Chandra"/>
            <author fullname="M. Westerlund" initials="M." surname="Westerlund"/>
            <author fullname="B. Burman" initials="B." surname="Burman"/>
            <date month="February" year="2008"/>
            <abstract>
              <t>This document specifies a few extensions to the messages defined in the Audio-Visual Profile with Feedback (AVPF). They are helpful primarily in conversational multimedia scenarios where centralized multipoint functionalities are in use. However, some are also usable in smaller multicast environments and point-to-point calls.</t>
              <t>The extensions discussed are messages related to the ITU-T Rec. H.271 Video Back Channel, Full Intra Request, Temporary Maximum Media Stream Bit Rate, and Temporal-Spatial Trade-off. [STANDARDS-TRACK]</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="5104"/>
          <seriesInfo name="DOI" value="10.17487/RFC5104"/>
        </reference>
      </references>
    </references>
  </back>
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