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<rfc xmlns:xi="http://www.w3.org/2001/XInclude" ipr="trust200902" docName="draft-ietf-openpgp-pqc-10" category="info" submissionType="IETF" tocInclude="true" sortRefs="true" symRefs="true" version="3">
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  <front>
    <title abbrev="PQC in OpenPGP">Post-Quantum Cryptography in OpenPGP</title>
    <seriesInfo name="Internet-Draft" value="draft-ietf-openpgp-pqc-10"/>
    <author initials="S." surname="Kousidis" fullname="Stavros Kousidis">
      <organization>BSI</organization>
      <address>
        <postal>
          <country>Germany</country>
        </postal>
        <email>kousidis.ietf@gmail.com</email>
      </address>
    </author>
    <author initials="J." surname="Roth" fullname="Johannes Roth">
      <organization>MTG AG</organization>
      <address>
        <postal>
          <country>Germany</country>
        </postal>
        <email>johannes.roth@mtg.de</email>
      </address>
    </author>
    <author initials="F." surname="Strenzke" fullname="Falko Strenzke">
      <organization>MTG AG</organization>
      <address>
        <postal>
          <country>Germany</country>
        </postal>
        <email>falko.strenzke@mtg.de</email>
      </address>
    </author>
    <author initials="A." surname="Wussler" fullname="Aron Wussler">
      <organization>Proton AG</organization>
      <address>
        <postal>
          <country>Switzerland</country>
        </postal>
        <email>aron@wussler.it</email>
      </address>
    </author>
    <date year="2025" month="May" day="27"/>
    <area>sec</area>
    <workgroup>Network Working Group</workgroup>
    <keyword>Internet-Draft</keyword>
    <abstract>
      <?line 216?>

<t>This document defines a post-quantum public-key algorithm extension for the OpenPGP protocol.
Given the generally assumed threat of a cryptographically relevant quantum computer, this extension provides a basis for long-term secure OpenPGP signatures and ciphertexts.
Specifically, it defines composite public-key encryption based on ML-KEM (formerly CRYSTALS-Kyber), composite public-key signatures based on ML-DSA (formerly CRYSTALS-Dilithium), both in combination with elliptic curve cryptography, and SLH-DSA (formerly SPHINCS+) as a standalone public key signature scheme.</t>
    </abstract>
    <note removeInRFC="true">
      <name>About This Document</name>
      <t>
        Status information for this document may be found at <eref target="https://datatracker.ietf.org/doc/draft-ietf-openpgp-pqc/"/>.
      </t>
      <t>
        Discussion of this document takes place on the
        WG Working Group mailing list (<eref target="mailto:openpgp@ietf.org"/>),
        which is archived at <eref target="https://mailarchive.ietf.org/arch/browse/openpgp/"/>.
        Subscribe at <eref target="https://www.ietf.org/mailman/listinfo/openpgp/"/>.
      </t>
      <t>Source for this draft and an issue tracker can be found at
        <eref target="https://github.com/openpgp-pqc/draft-openpgp-pqc"/>.</t>
    </note>
  </front>
  <middle>
    <?line 222?>

<section anchor="introduction">
      <name>Introduction</name>
      <t>The OpenPGP protocol supports various traditional public-key algorithms based on the factoring or discrete logarithm problem.
As the security of algorithms based on these mathematical problems is endangered by the advent of quantum computers, there is a need to extend OpenPGP by algorithms that remain secure in the presence of quantum computers.</t>
      <t>Such cryptographic algorithms are referred to as post-quantum cryptography.
The algorithms defined in this extension were chosen for standardization by the National Institute of Standards and Technology (NIST) in mid 2022 <xref target="NISTIR-8413"/> as the result of the NIST Post-Quantum Cryptography Standardization process initiated in 2016 <xref target="NIST-PQC"/>.
Namely, these are ML-KEM <xref target="FIPS-203"/> as a Key Encapsulation Mechanism (KEM), a KEM being a modern building block for public-key encryption, and ML-DSA <xref target="FIPS-204"/> as well as SLH-DSA <xref target="FIPS-205"/> as signature schemes.</t>
      <t>For the two ML-* schemes, this document follows the conservative strategy to deploy post-quantum in combination with traditional schemes such that the security is retained even if all schemes but one in the combination are broken.
In contrast, the stateless hash-based signature scheme SLH-DSA is considered to be sufficiently well understood with respect to its security assumptions in order to be used standalone.
To this end, this document specifies the following new set: SLH-DSA standalone and the two ML-* as composite with ECC-based KEM and digital signature schemes.
Here, the term "composite" indicates that any data structure or algorithm pertaining to the combination of the two components appears as single data structure or algorithm from the protocol perspective.</t>
      <t>The document specifies the conventions for interoperability between compliant OpenPGP implementations that make use of this extension and the newly defined algorithms or algorithm combinations.</t>
      <section anchor="conventions-used-in-this-document">
        <name>Conventions used in this Document</name>
        <section anchor="terminology-for-multi-algorithm-schemes">
          <name>Terminology for Multi-Algorithm Schemes</name>
          <t>The terminology in this document is oriented towards the definitions in <xref target="I-D.ietf-pquip-pqt-hybrid-terminology"/>.
Specifically, the terms "multi-algorithm", "composite" and "non-composite" are used in correspondence with the definitions therein.
The abbreviation "PQ" is used for post-quantum schemes.
To denote the combination of post-quantum and traditional schemes, the abbreviation "PQ/T" is used.
The short form "PQ(/T)" stands for PQ or PQ/T.</t>
        </section>
      </section>
      <section anchor="post-quantum-cryptography">
        <name>Post-Quantum Cryptography</name>
        <t>This section describes the individual post-quantum cryptographic schemes.
All schemes listed here are believed to provide security in the presence of a cryptographically relevant quantum computer.
However, the mathematical problems on which the two ML-* schemes and SLH-DSA are based, are fundamentally different, and accordingly the level of trust commonly placed in them as well as their performance characteristics vary.</t>
        <section anchor="mlkem-intro">
          <name>ML-KEM</name>
          <t>ML-KEM <xref target="FIPS-203"/> is based on the hardness of solving the Learning with Errors problem in module lattices (MLWE).
The scheme is believed to provide security against cryptanalytic attacks by classical as well as quantum computers.
This specification defines ML-KEM only in composite combination with ECDH encryption schemes in order to provide a pre-quantum security fallback.</t>
        </section>
        <section anchor="mldsa-intro">
          <name>ML-DSA</name>
          <t>ML-DSA <xref target="FIPS-204"/> is a signature scheme that, like ML-KEM, is based on the hardness of solving the Learning With Errors problem and a variant of the Short Integer Solution problem in module lattices (MLWE and SelfTargetMSIS).
Accordingly, this specification only defines ML-DSA in composite combination with EdDSA signature schemes.</t>
        </section>
        <section anchor="slh-dsa">
          <name>SLH-DSA</name>
          <t>SLH-DSA <xref target="FIPS-205"/> is a stateless hash-based signature scheme.
Its security relies on the hardness of finding preimages for cryptographic hash functions.
This feature is generally considered to be a high security guarantee.
Therefore, this specification defines SLH-DSA as a standalone signature scheme.</t>
          <t>In deployments the performance characteristics of SLH-DSA should be taken into account.
We refer to <xref target="performance-considerations"/> for a discussion of the performance characteristics of this scheme.</t>
        </section>
      </section>
      <section anchor="elliptic-curve-cryptography">
        <name>Elliptic Curve Cryptography</name>
        <t>The ECDH encryption is defined here as a KEM via X25519 and X448 which are defined in <xref target="RFC7748"/>.
EdDSA as defined in <xref target="RFC8032"/> is used as the elliptic curve-based digital signature scheme.</t>
      </section>
      <section anchor="multi-algo-schemes">
        <name>Standalone and Multi-Algorithm Schemes</name>
        <t>This section provides a categorization of the new algorithms and their combinations.</t>
        <section anchor="composite-multi-alg">
          <name>Standalone and Composite Multi-Algorithm Schemes</name>
          <t>This specification introduces new cryptographic schemes, which can be categorized as follows:</t>
          <ul spacing="normal">
            <li>
              <t>PQ/T multi-algorithm public-key encryption, namely a composite combination of ML-KEM with an ECDH KEM,</t>
            </li>
            <li>
              <t>PQ/T multi-algorithm digital signature, namely composite combinations of ML-DSA with EdDSA signature schemes,</t>
            </li>
            <li>
              <t>PQ digital signature, namely SLH-DSA as a standalone cryptographic algorithm.</t>
            </li>
          </ul>
          <t>For each of the composite schemes, this specification mandates that the consuming party has to successfully perform the cryptographic algorithms for each of the component schemes used in a cryptographic message, in order for the message to be deciphered and considered as valid.
This means that all component signatures must be verified successfully in order to achieve a successful verification of the composite signature.
In the case of the composite public-key decryption, each of the component KEM decapsulation operations must succeed.</t>
        </section>
        <section anchor="non-composite-multi-alg">
          <name>Non-Composite Algorithm Combinations</name>
          <t>As the OpenPGP protocol <xref target="RFC9580"/> allows for multiple signatures to be applied to a single message, it is also possible to realize non-composite combinations of signatures.
Furthermore, multiple OpenPGP signatures may be combined on the application layer.
These latter two cases realize non-composite combinations of signatures.
<xref target="multiple-signatures"/> specifies how implementations should handle the verification of such combinations of signatures.</t>
          <t>Furthermore, the OpenPGP protocol also allows parallel encryption to different keys by using multiple PKESK packets, thus realizing non-composite multi-algorithm public-key encryption.</t>
        </section>
      </section>
    </section>
    <section anchor="supported-public-key-algorithms">
      <name>Supported Public Key Algorithms</name>
      <t>This section specifies the composite ML-KEM + ECDH and ML-DSA + EdDSA schemes as well as the standalone SLH-DSA signature scheme.
All of these schemes are fully specified via their algorithm ID, i.e., they are not parametrized.</t>
      <section anchor="algorithm-specifications">
        <name>Algorithm Specifications</name>
        <t>For signatures, the following (composite) signature schemes are specified:</t>
        <table anchor="sig-alg-specs">
          <name>Signature algorithm specifications</name>
          <thead>
            <tr>
              <th align="right">ID</th>
              <th align="left">Algorithm</th>
              <th align="left">Requirement</th>
              <th align="left">Definition</th>
            </tr>
          </thead>
          <tbody>
            <tr>
              <td align="right">30</td>
              <td align="left">ML-DSA-65+Ed25519</td>
              <td align="left">MUST</td>
              <td align="left">
                <xref target="ecc-mldsa"/></td>
            </tr>
            <tr>
              <td align="right">31</td>
              <td align="left">ML-DSA-87+Ed448</td>
              <td align="left">SHOULD</td>
              <td align="left">
                <xref target="ecc-mldsa"/></td>
            </tr>
            <tr>
              <td align="right">32</td>
              <td align="left">SLH-DSA-SHAKE-128s</td>
              <td align="left">MAY</td>
              <td align="left">
                <xref target="slhdsa"/></td>
            </tr>
            <tr>
              <td align="right">33</td>
              <td align="left">SLH-DSA-SHAKE-128f</td>
              <td align="left">MAY</td>
              <td align="left">
                <xref target="slhdsa"/></td>
            </tr>
            <tr>
              <td align="right">34</td>
              <td align="left">SLH-DSA-SHAKE-256s</td>
              <td align="left">MAY</td>
              <td align="left">
                <xref target="slhdsa"/></td>
            </tr>
          </tbody>
        </table>
        <t>For encryption, the following composite KEM schemes are specified:</t>
        <table anchor="kem-alg-specs">
          <name>KEM algorithm specifications</name>
          <thead>
            <tr>
              <th align="left">ID</th>
              <th align="left">Algorithm</th>
              <th align="left">Requirement</th>
              <th align="left">Definition</th>
            </tr>
          </thead>
          <tbody>
            <tr>
              <td align="left">35</td>
              <td align="left">ML-KEM-768+X25519</td>
              <td align="left">MUST</td>
              <td align="left">
                <xref target="ecc-mlkem"/></td>
            </tr>
            <tr>
              <td align="left">36</td>
              <td align="left">ML-KEM-1024+X448</td>
              <td align="left">SHOULD</td>
              <td align="left">
                <xref target="ecc-mlkem"/></td>
            </tr>
          </tbody>
        </table>
        <t>The specified algorithm IDs offer two security levels for each scheme, for a tradeoff between security and performance.
SLH-DSA is also offered in a "fast" and a "small" variant to allow for further tradeoffs.
For SLH-DSA-SHAKE-256, only the "small" variant is offered to contain signature size.
See also <xref target="performance-considerations"/> for further considerations about parameter choices.</t>
      </section>
    </section>
    <section anchor="algorithm-combinations">
      <name>Algorithm Combinations</name>
      <section anchor="composite-kem">
        <name>Composite KEMs</name>
        <t>The ML-KEM + ECDH public-key encryption involves both the ML-KEM and an ECDH KEM in an a priori non-separable manner.
This is achieved via KEM combination, i.e. both key encapsulations/decapsulations are performed in parallel, and the resulting key shares are fed into a key combiner to produce a single shared secret for message encryption.</t>
        <t>As explained in <xref target="non-composite-multi-alg"/>, the OpenPGP protocol inherently supports parallel encryption to different keys.
Note that the confidentiality of a message is not post-quantum secure when encrypting to different keys if at least one key does not support PQ(/T) encryption schemes.</t>
      </section>
      <section anchor="composite-signatures">
        <name>Composite Signatures</name>
        <t>The ML-DSA + EdDSA signature consists of independent ML-DSA and EdDSA signatures, and an implementation MUST successfully validate both signatures to state that the ML-DSA + EdDSA signature is valid.</t>
      </section>
      <section anchor="multiple-signatures">
        <name>Multiple Signatures</name>
        <t>The OpenPGP message format allows multiple signatures of a message, i.e. the attachment of multiple signature packets.</t>
        <t>An implementation MAY sign a message with a traditional key and a PQ(/T) key from the same sender.
This ensures backwards compatibility due to <eref target="https://www.rfc-editor.org/rfc/rfc9580#section-5.2.5">[RFC9580, Section 5.2.5]</eref>, since a legacy implementation without PQ(/T) support can fall back on the traditional signature.</t>
        <t>Newer implementations with PQ(/T) support MAY ignore the traditional signature(s) during validation.</t>
        <t>Implementations SHOULD consider the message correctly signed if at least one of the non-ignored signatures validates successfully.
This is an interpretation of <eref target="https://www.rfc-editor.org/rfc/rfc9580#section-5.2.5">[RFC9580, Section 5.2.5]</eref>.</t>
      </section>
      <section anchor="ecc-requirements">
        <name>ECC requirements</name>
        <t>Even though the zero point, also called the point at infinity, may occur as a result of arithmetic operations on points of an elliptic curve, it MUST NOT appear in any ECC data structure defined in this document.</t>
        <t>Furthermore, when performing the explicitly listed operations in <xref target="x25519-kem"/> or <xref target="x448-kem"/> it is REQUIRED to follow the specification and security advisory mandated from the respective elliptic curve specification.</t>
      </section>
      <section anchor="key-version-binding">
        <name>Key version binding</name>
        <t>All (PQ/T) asymmetric algorithms are to be used only in v6 (and newer) keys and certificates, with the single exception of ML-KEM-768+X25519 (algorithm ID 35), which is also allowed in v4 encryption-capable subkeys.</t>
      </section>
    </section>
    <section anchor="composite-kem-schemes">
      <name>Composite KEM schemes</name>
      <section anchor="building-blocks">
        <name>Building Blocks</name>
        <section anchor="ecc-kem">
          <name>ECDH KEMs</name>
          <t>In this section we define the encryption, decryption, and data formats for the ECDH component of the composite algorithms.</t>
          <t><xref target="tab-ecdh-cfrg-artifacts"/> describes the ECDH-KEM parameters and artifact lengths.
The artifacts in <xref target="tab-ecdh-cfrg-artifacts"/> follow the encodings described in <xref target="RFC7748"/>.</t>
          <table anchor="tab-ecdh-cfrg-artifacts">
            <name>Montgomery curves parameters and artifact lengths</name>
            <thead>
              <tr>
                <th align="left"> </th>
                <th align="left">X25519</th>
                <th align="left">X448</th>
              </tr>
            </thead>
            <tbody>
              <tr>
                <td align="left">Algorithm ID reference</td>
                <td align="left">35</td>
                <td align="left">36</td>
              </tr>
              <tr>
                <td align="left">Field size</td>
                <td align="left">32 octets</td>
                <td align="left">56 octets</td>
              </tr>
              <tr>
                <td align="left">ECDH-KEM</td>
                <td align="left">x25519Kem (<xref target="x25519-kem"/>)</td>
                <td align="left">x448Kem (<xref target="x448-kem"/>)</td>
              </tr>
              <tr>
                <td align="left">ECDH public key</td>
                <td align="left">32 octets <xref target="RFC7748"/></td>
                <td align="left">56 octets <xref target="RFC7748"/></td>
              </tr>
              <tr>
                <td align="left">ECDH secret key</td>
                <td align="left">32 octets <xref target="RFC7748"/></td>
                <td align="left">56 octets <xref target="RFC7748"/></td>
              </tr>
              <tr>
                <td align="left">ECDH ephemeral</td>
                <td align="left">32 octets <xref target="RFC7748"/></td>
                <td align="left">56 octets <xref target="RFC7748"/></td>
              </tr>
              <tr>
                <td align="left">ECDH key share</td>
                <td align="left">32 octets <xref target="RFC7748"/></td>
                <td align="left">56 octets <xref target="RFC7748"/></td>
              </tr>
            </tbody>
          </table>
          <t>The various procedures to perform the operations of an ECDH KEM are defined in the following subsections.
Specifically, each of these subsections defines the instances of the following operations:</t>
          <artwork><![CDATA[
(ecdhCipherText, ecdhKeyShare) <- ECDH-KEM.Encaps(ecdhPublicKey)
]]></artwork>
          <t>and</t>
          <artwork><![CDATA[
(ecdhKeyShare) <- ECDH-KEM.Decaps(ecdhSecretKey, ecdhCipherText, ecdhPublicKey)
]]></artwork>
          <t>To instantiate <tt>ECDH-KEM</tt>, one must select a parameter set from <xref target="tab-ecdh-cfrg-artifacts"/>.</t>
          <section anchor="x25519-kem">
            <name>X25519-KEM</name>
            <t>The encapsulation and decapsulation operations of <tt>x25519kem</tt> are described using the function <tt>X25519()</tt> and encodings defined in <xref target="RFC7748"/>.
The <tt>ecdhSecretKey</tt> is denoted as <tt>r</tt>, the <tt>ecdhPublicKey</tt> as <tt>R</tt>, they are subject to the equation <tt>R = X25519(r, U(P))</tt>.
Here, <tt>U(P)</tt> denotes the u-coordinate of the base point of Curve25519.</t>
            <t>The operation <tt>x25519Kem.Encaps()</tt> is defined as follows:</t>
            <ol spacing="normal" type="1"><li>
                <t>Generate an ephemeral key pair {<tt>v</tt>, <tt>V</tt>} via <tt>V = X25519(v,U(P))</tt> where <tt>v</tt> is a randomly generated octet string with a length of 32 octets</t>
              </li>
              <li>
                <t>Compute the shared coordinate <tt>X = X25519(v, R)</tt> where <tt>R</tt> is the recipient's public key <tt>ecdhPublicKey</tt></t>
              </li>
              <li>
                <t>Set the output <tt>ecdhCipherText</tt> to <tt>V</tt></t>
              </li>
              <li>
                <t>Set the output <tt>ecdhKeyShare</tt> to <tt>X</tt></t>
              </li>
            </ol>
            <t>The operation <tt>x25519Kem.Decaps()</tt> is defined as follows:</t>
            <ol spacing="normal" type="1"><li>
                <t>Compute the shared coordinate <tt>X = X25519(r, V)</tt>, where <tt>r</tt> is the <tt>ecdhSecretKey</tt> and <tt>V</tt> is the <tt>ecdhCipherText</tt></t>
              </li>
              <li>
                <t>Set the output <tt>ecdhKeyShare</tt> to <tt>X</tt></t>
              </li>
            </ol>
          </section>
          <section anchor="x448-kem">
            <name>X448-KEM</name>
            <t>The encapsulation and decapsulation operations of <tt>x448kem</tt> are described using the function <tt>X448()</tt> and encodings defined in <xref target="RFC7748"/>.
The <tt>ecdhSecretKey</tt> is denoted as <tt>r</tt>, the <tt>ecdhPublicKey</tt> as <tt>R</tt>, they are subject to the equation <tt>R = X25519(r, U(P))</tt>.
Here, <tt>U(P)</tt> denotes the u-coordinate of the base point of Curve448.</t>
            <t>The operation <tt>x448.Encaps()</tt> is defined as follows:</t>
            <ol spacing="normal" type="1"><li>
                <t>Generate an ephemeral key pair {<tt>v</tt>, <tt>V</tt>} via <tt>V = X448(v,U(P))</tt> where <tt>v</tt> is a randomly generated octet string with a length of 56 octets</t>
              </li>
              <li>
                <t>Compute the shared coordinate <tt>X = X448(v, R)</tt> where <tt>R</tt> is the recipient's public key <tt>ecdhPublicKey</tt></t>
              </li>
              <li>
                <t>Set the output <tt>ecdhCipherText</tt> to <tt>V</tt></t>
              </li>
              <li>
                <t>Set the output <tt>ecdhKeyShare</tt> to <tt>X</tt></t>
              </li>
            </ol>
            <t>The operation <tt>x448Kem.Decaps()</tt> is defined as follows:</t>
            <ol spacing="normal" type="1"><li>
                <t>Compute the shared coordinate <tt>X = X448(r, V)</tt>, where <tt>r</tt> is the <tt>ecdhSecretKey</tt> and <tt>V</tt> is the <tt>ecdhCipherText</tt></t>
              </li>
              <li>
                <t>Set the output <tt>ecdhKeyShare</tt> to <tt>X</tt></t>
              </li>
            </ol>
          </section>
        </section>
        <section anchor="mlkem-ops">
          <name>ML-KEM</name>
          <t>ML-KEM features the following operations:</t>
          <artwork><![CDATA[
(mlkemCipherText, mlkemKeyShare) <- ML-KEM.Encaps(mlkemPublicKey)
]]></artwork>
          <t>and</t>
          <artwork><![CDATA[
(mlkemKeyShare) <- ML-KEM.Decaps(mlkemCipherText, mlkemSecretKey)
]]></artwork>
          <t>The above are the operations <tt>ML-KEM.Encaps</tt> and <tt>ML-KEM.Decaps</tt> defined in <xref target="FIPS-203"/>.
Note that <tt>mlkemPublicKey</tt> is the encapsulation and <tt>mlkemSecretKey</tt> is the decapsulation key.</t>
          <t>ML-KEM has the parametrization with the corresponding artifact lengths in octets as given in <xref target="tab-mlkem-artifacts"/>.
All artifacts are encoded as defined in <xref target="FIPS-203"/>.</t>
          <table anchor="tab-mlkem-artifacts">
            <name>ML-KEM parameters artifact lengths in octets</name>
            <thead>
              <tr>
                <th align="right">Algorithm ID reference</th>
                <th align="left">ML-KEM</th>
                <th align="left">Public key</th>
                <th align="left">Secret key</th>
                <th align="left">Ciphertext</th>
                <th align="left">Key share</th>
              </tr>
            </thead>
            <tbody>
              <tr>
                <td align="right">35</td>
                <td align="left">ML-KEM-768</td>
                <td align="left">1184</td>
                <td align="left">64</td>
                <td align="left">1088</td>
                <td align="left">32</td>
              </tr>
              <tr>
                <td align="right">36</td>
                <td align="left">ML-KEM-1024</td>
                <td align="left">1568</td>
                <td align="left">64</td>
                <td align="left">1568</td>
                <td align="left">32</td>
              </tr>
            </tbody>
          </table>
          <t>To instantiate <tt>ML-KEM</tt>, one must select a parameter set from the column "ML-KEM" of <xref target="tab-mlkem-artifacts"/>.</t>
          <t>The procedure to perform <tt>ML-KEM.Encaps()</tt> is as follows:</t>
          <ol spacing="normal" type="1"><li>
              <t>Invoke <tt>(mlkemCipherText, mlkemKeyShare) &lt;- ML-KEM.Encaps(mlkemPublicKey)</tt>, where <tt>mlkemPublicKey</tt> is the recipient's public key</t>
            </li>
            <li>
              <t>Set <tt>mlkemCipherText</tt> as the ML-KEM ciphertext</t>
            </li>
            <li>
              <t>Set <tt>mlkemKeyShare</tt> as the ML-KEM symmetric key share</t>
            </li>
          </ol>
          <t>The procedure to perform <tt>ML-KEM.Decaps()</tt> is as follows:</t>
          <ol spacing="normal" type="1"><li>
              <t>Invoke <tt>mlkemKeyShare &lt;-  ML-KEM.Decaps(mlkemCipherText, mlkemSecretKey)</tt></t>
            </li>
            <li>
              <t>Set <tt>mlkemKeyShare</tt> as the ML-KEM symmetric key share</t>
            </li>
          </ol>
        </section>
      </section>
      <section anchor="ecc-mlkem">
        <name>Composite Encryption Schemes with ML-KEM</name>
        <t><xref target="kem-alg-specs"/> specifies the following ML-KEM + ECDH composite public-key encryption schemes:</t>
        <table anchor="tab-mlkem-ecc-composite">
          <name>ML-KEM + ECDH composite schemes</name>
          <thead>
            <tr>
              <th align="right">Algorithm ID reference</th>
              <th align="left">ML-KEM</th>
              <th align="left">ECDH-KEM</th>
            </tr>
          </thead>
          <tbody>
            <tr>
              <td align="right">35</td>
              <td align="left">ML-KEM-768</td>
              <td align="left">x25519Kem</td>
            </tr>
            <tr>
              <td align="right">36</td>
              <td align="left">ML-KEM-1024</td>
              <td align="left">x448Kem</td>
            </tr>
          </tbody>
        </table>
        <t>The ML-KEM + ECDH composite public-key encryption schemes are built according to the following principal design:</t>
        <ul spacing="normal">
          <li>
            <t>The ML-KEM encapsulation algorithm is invoked to create an ML-KEM ciphertext together with an ML-KEM symmetric key share.</t>
          </li>
          <li>
            <t>The encapsulation algorithm of an ECDH KEM, namely X25519-KEM or X448-KEM, is invoked to create an ECDH ciphertext together with an ECDH symmetric key share.</t>
          </li>
          <li>
            <t>A Key-Encryption-Key (KEK) is computed as the output of a key combiner that receives as input both of the above created symmetric key shares and the protocol binding information.</t>
          </li>
          <li>
            <t>The session key for content encryption is then wrapped as described in <xref target="RFC3394"/> using AES-256 as algorithm and the KEK as key.</t>
          </li>
          <li>
            <t>The PKESK packet's algorithm-specific parts are made up of the ML-KEM ciphertext, the ECDH ciphertext, and the wrapped session key.</t>
          </li>
        </ul>
        <section anchor="kem-key-combiner">
          <name>Key combiner</name>
          <t>For the composite KEM schemes defined in <xref target="kem-alg-specs"/> the following procedure MUST be used to compute the KEK that wraps a session key.
The construction is a key derivation function compliant to <xref target="SP800-56C"/>, Section 4, based on SHA3-256.
It is given by the following algorithm, which computes the key encryption key <tt>KEK</tt> that is used to wrap, i.e., encrypt, the session key.</t>
          <artwork><![CDATA[
//   multiKeyCombine(
//       mlkemKeyShare, ecdhKeyShare,
//       ecdhCipherText, ecdhPublicKey,
//       algId
//   )
//
//   Input:
//   mlkemKeyShare   - the ML-KEM key share encoded as an octet string
//   ecdhKeyShare    - the ECDH key share encoded as an octet string
//   ecdhCipherText  - the ECDH ciphertext encoded as an octet string
//   ecdhPublicKey   - the ECDH public key of the recipient as an octet string
//   algId           - the OpenPGP algorithm ID of the public-key encryption algorithm

KEK = SHA3-256(
          mlkemKeyShare || ecdhKeyShare ||
          ecdhCipherText || ecdhPublicKey ||
          algId || domSep || len(domSep)
      )
return KEK
]]></artwork>
          <t>The value <tt>domSep</tt> is a constant set to the UTF-8 encoding of the string "OpenPGPCompositeKDFv1", i.e.</t>
          <artwork><![CDATA[
domSep = 4F 70 65 6E 50 47 50 43 6F 6D 70 6F 73 69 74 65 4B 44 46 76 31
]]></artwork>
          <t>Here <tt>len(domSep)</tt> is the single octet with the value equal to the octet-length of <tt>domSep</tt>, i.e., decimal 21.</t>
        </section>
        <section anchor="ecc-mlkem-generation">
          <name>Key generation procedure</name>
          <t>The implementation MUST generate the ML-KEM and the ECDH component keys independently.
ML-KEM key generation follows the specification <xref target="FIPS-203"/> and the artifacts are encoded as fixed-length octet strings as defined in <xref target="mlkem-ops"/>.
For ECDH this is done following the relative specification in <xref target="RFC7748"/>, and encoding the outputs as fixed-length octet strings in the format specified in <xref target="tab-ecdh-cfrg-artifacts"/>.</t>
        </section>
        <section anchor="ecc-mlkem-encryption">
          <name>Encryption procedure</name>
          <t>The procedure to perform public-key encryption with an ML-KEM + ECDH composite scheme is as follows:</t>
          <ol spacing="normal" type="1"><li>
              <t>Take the recipient's authenticated public-key packet <tt>pkComposite</tt> and <tt>sessionKey</tt> as input</t>
            </li>
            <li>
              <t>Parse the algorithm ID from <tt>pkComposite</tt> and set it as <tt>algId</tt></t>
            </li>
            <li>
              <t>Extract the <tt>ecdhPublicKey</tt> and <tt>mlkemPublicKey</tt> component from the algorithm specific data encoded in <tt>pkComposite</tt> with the format specified in <xref target="mlkem-ecc-key"/>.</t>
            </li>
            <li>
              <t>Instantiate the ECDH-KEM and the ML-KEM depending on the algorithm ID according to <xref target="tab-mlkem-ecc-composite"/></t>
            </li>
            <li>
              <t>Compute <tt>(ecdhCipherText, ecdhKeyShare) = ECDH-KEM.Encaps(ecdhPublicKey)</tt></t>
            </li>
            <li>
              <t>Compute <tt>(mlkemCipherText, mlkemKeyShare) = ML-KEM.Encaps(mlkemPublicKey)</tt></t>
            </li>
            <li>
              <t>Compute <tt>KEK = multiKeyCombine(mlkemKeyShare, ecdhKeyShare, ecdhCipherText, ecdhPublicKey, algId)</tt> as defined in <xref target="kem-key-combiner"/></t>
            </li>
            <li>
              <t>Compute <tt>C = AESKeyWrap(KEK, sessionKey)</tt> with AES-256 as per <xref target="RFC3394"/> that includes a 64 bit integrity check</t>
            </li>
            <li>
              <t>Output the algorithm specific part of the PKESK as <tt>ecdhCipherText || mlkemCipherText || len(C, symAlgId) (|| symAlgId)  || C</tt>, where both <tt>symAlgId</tt> and <tt>len(C, symAlgId)</tt> are single octet fields, <tt>symAlgId</tt> denotes the symmetric algorithm ID used and is present only for a v3 PKESK, and <tt>len(C, symAlgId)</tt> denotes the combined octet length of the fields specified as the arguments.</t>
            </li>
          </ol>
        </section>
        <section anchor="decryption-procedure">
          <name>Decryption procedure</name>
          <t>The procedure to perform public-key decryption with an ML-KEM + ECDH composite scheme is as follows:</t>
          <ol spacing="normal" type="1"><li>
              <t>Take the matching PKESK and own secret key packet as input</t>
            </li>
            <li>
              <t>From the PKESK extract the algorithm ID as <tt>algId</tt> and the wrapped session key as <tt>encryptedKey</tt></t>
            </li>
            <li>
              <t>Check that the own and the extracted algorithm ID match</t>
            </li>
            <li>
              <t>Parse the <tt>ecdhSecretKey</tt> and <tt>mlkemSecretKey</tt> from the algorithm specific data of the own secret key encoded in the format specified in <xref target="mlkem-ecc-key"/></t>
            </li>
            <li>
              <t>Instantiate the ECDH-KEM and the ML-KEM depending on the algorithm ID according to <xref target="tab-mlkem-ecc-composite"/></t>
            </li>
            <li>
              <t>Parse <tt>ecdhCipherText</tt>, <tt>mlkemCipherText</tt>, and <tt>C</tt> from <tt>encryptedKey</tt> encoded as <tt>ecdhCipherText || mlkemCipherText || len(C,symAlgId) (|| symAlgId) || C</tt> as specified in <xref target="ecc-mlkem-pkesk"/>, where <tt>symAlgId</tt> is present only in the case of a v3 PKESK.</t>
            </li>
            <li>
              <t>Compute <tt>(ecdhKeyShare) = ECDH-KEM.Decaps(ecdhCipherText, ecdhSecretKey, ecdhPublicKey)</tt></t>
            </li>
            <li>
              <t>Compute <tt>(mlkemKeyShare) = ML-KEM.Decaps(mlkemCipherText, mlkemSecretKey)</tt></t>
            </li>
            <li>
              <t>Compute <tt>KEK = multiKeyCombine(mlkemKeyShare, ecdhKeyShare, ecdhCipherText, ecdhPublicKey, algId)</tt> as defined in <xref target="kem-key-combiner"/></t>
            </li>
            <li>
              <t>Compute <tt>sessionKey = AESKeyUnwrap(KEK, C)</tt>  with AES-256 as per <xref target="RFC3394"/>, aborting if the 64 bit integrity check fails</t>
            </li>
            <li>
              <t>Output <tt>sessionKey</tt></t>
            </li>
          </ol>
        </section>
      </section>
      <section anchor="packet-specifications">
        <name>Packet specifications</name>
        <section anchor="ecc-mlkem-pkesk">
          <name>Public-Key Encrypted Session Key Packets (Tag 1)</name>
          <t>The algorithm-specific fields consist of the output of the encryption procedure described in <xref target="ecc-mlkem-encryption"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A fixed-length octet string representing an ECDH ephemeral public key in the format associated with the curve as specified in <xref target="ecc-kem"/>.</t>
            </li>
            <li>
              <t>A fixed-length octet string of the ML-KEM ciphertext, whose length depends on the algorithm ID as specified in <xref target="tab-mlkem-artifacts"/>.</t>
            </li>
            <li>
              <t>A one-octet size of the following fields.</t>
            </li>
            <li>
              <t>Only in the case of a v3 PKESK packet: a one-octet symmetric algorithm identifier.</t>
            </li>
            <li>
              <t>The wrapped session key represented as an octet string.</t>
            </li>
          </ul>
          <t>Note that like in the case of the algorithms X25519 and X448 specified in <xref target="RFC9580"/>, for the ML-KEM composite schemes, in the case of a v3 PKESK packet, the symmetric algorithm identifier is not encrypted.
Instead, it is placed in plaintext after the <tt>mlkemCipherText</tt> and before the length octet preceding the wrapped session key.
In the case of v3 PKESK packets for ML-KEM composite schemes, the symmetric algorithm used MUST be AES-128, AES-192 or AES-256 (algorithm ID 7, 8 or 9).</t>
          <t>In the case of a v3 PKESK, a receiving implementation MUST check if the length of the unwrapped symmetric key matches the symmetric algorithm identifier, and abort if this is not the case.</t>
          <t>Implementations MUST NOT use the obsolete Symmetrically Encrypted Data packet (tag 9) to encrypt data protected with the algorithms described in this document.</t>
        </section>
        <section anchor="mlkem-ecc-key">
          <name>Key Material Packets</name>
          <t>The composite ML-KEM-768 + X25519 (algorithm ID 35) MUST be used only with v4 or v6 keys, as defined in <xref target="RFC9580"/>, or newer versions defined by updates of that document.</t>
          <t>The composite ML-KEM-1024 + X448 (algorithm ID 36) MUST be used only with v6 keys, as defined in <xref target="RFC9580"/>, or newer versions defined by updates of that document.</t>
          <t>The algorithm-specific public key is this series of values:</t>
          <ul spacing="normal">
            <li>
              <t>A fixed-length octet string representing an EC point public key, in the point format associated with the curve specified in <xref target="ecc-kem"/>.</t>
            </li>
            <li>
              <t>A fixed-length octet string containing the ML-KEM public key, whose length depends on the algorithm ID as specified in <xref target="tab-mlkem-artifacts"/>.</t>
            </li>
          </ul>
          <t>The algorithm-specific secret key is these two values:</t>
          <ul spacing="normal">
            <li>
              <t>A fixed-length octet string of the encoded secret scalar, whose encoding and length depend on the algorithm ID as specified in <xref target="ecc-kem"/>.</t>
            </li>
            <li>
              <t>A fixed-length octet string containing the ML-KEM secret key in seed format, whose length is 64 octets (compare <xref target="tab-mlkem-artifacts"/>).
The seed format is defined in accordance with <xref target="FIPS-203"/>, Section 3.3.
Namely, the secret key is given by the concatenation of the values of <tt>d</tt>  and <tt>z</tt>, generated in steps 1 and 2 of <tt>ML-KEM.KeyGen</tt> <xref target="FIPS-203"/>, each of a length of 32 octets.
Upon parsing the secret key format, or before using the secret key, for the expansion of the key, the function <tt>ML-KEM.KeyGen_internal</tt> <xref target="FIPS-203"/> has to be invoked with the parsed values of <tt>d</tt> and <tt>z</tt> as input.</t>
            </li>
          </ul>
        </section>
      </section>
    </section>
    <section anchor="composite-signature-schemes">
      <name>Composite Signature Schemes</name>
      <section anchor="building-blocks-1">
        <name>Building blocks</name>
        <section anchor="eddsa-signature">
          <name>EdDSA-Based signatures</name>
          <t>Throughout this specification EdDSA refers to the PureEdDSA variant defined in
<xref target="RFC8032"/>.</t>
          <t>To sign and verify with EdDSA the following operations are defined:</t>
          <artwork><![CDATA[
(eddsaSignature) <- EdDSA.Sign(eddsaSecretKey, dataDigest)
]]></artwork>
          <t>and</t>
          <artwork><![CDATA[
(verified) <- EdDSA.Verify(eddsaPublicKey, eddsaSignature, dataDigest)
]]></artwork>
          <t>The public and secret key, as well as the signature MUST be encoded according to <xref target="RFC8032"/> as fixed-length octet strings.
The following table describes the EdDSA parameters and artifact lengths:</t>
          <table anchor="tab-eddsa-artifacts">
            <name>EdDSA parameters and artifact lengths in octets</name>
            <thead>
              <tr>
                <th align="right">Algorithm ID reference</th>
                <th align="left">Curve</th>
                <th align="left">Field size</th>
                <th align="left">Public key</th>
                <th align="left">Secret key</th>
                <th align="left">Signature</th>
              </tr>
            </thead>
            <tbody>
              <tr>
                <td align="right">30</td>
                <td align="left">Ed25519</td>
                <td align="left">32</td>
                <td align="left">32</td>
                <td align="left">32</td>
                <td align="left">64</td>
              </tr>
              <tr>
                <td align="right">31</td>
                <td align="left">Ed448</td>
                <td align="left">57</td>
                <td align="left">57</td>
                <td align="left">57</td>
                <td align="left">114</td>
              </tr>
            </tbody>
          </table>
        </section>
        <section anchor="mldsa-signature">
          <name>ML-DSA signatures</name>
          <t>Throughout this specification ML-DSA refers to the default pure and hedged version of ML-DSA defined in <xref target="FIPS-204"/>.</t>
          <t>For ML-DSA signature generation the default hedged version of the algorithm <tt>ML-DSA.Sign</tt> given in <xref target="FIPS-204"/> is used.
That is, to sign with ML-DSA the following operation is defined:</t>
          <artwork><![CDATA[
(mldsaSignature) <- ML-DSA.Sign(mldsaSecretKey, dataDigest)
]]></artwork>
          <t>For ML-DSA signature verification the algorithm <tt>ML-DSA.Verify</tt> given in <xref target="FIPS-204"/> is used.
That is, to verify with ML-DSA the following operation is defined:</t>
          <artwork><![CDATA[
(verified) <- ML-DSA.Verify(mldsaPublicKey, dataDigest, mldsaSignature)
]]></artwork>
          <t>ML-DSA has the parametrization with the corresponding artifact lengths in octets as given in <xref target="tab-mldsa-artifacts"/>.
All artifacts are encoded as defined in <xref target="FIPS-204"/>.</t>
          <table anchor="tab-mldsa-artifacts">
            <name>ML-DSA parameters and artifact lengths in octets</name>
            <thead>
              <tr>
                <th align="right">Algorithm ID reference</th>
                <th align="left">ML-DSA</th>
                <th align="left">Public key</th>
                <th align="left">Secret key</th>
                <th align="left">Signature value</th>
              </tr>
            </thead>
            <tbody>
              <tr>
                <td align="right">30</td>
                <td align="left">ML-DSA-65</td>
                <td align="left">1952</td>
                <td align="left">32</td>
                <td align="left">3309</td>
              </tr>
              <tr>
                <td align="right">31</td>
                <td align="left">ML-DSA-87</td>
                <td align="left">2592</td>
                <td align="left">32</td>
                <td align="left">4627</td>
              </tr>
            </tbody>
          </table>
        </section>
      </section>
      <section anchor="ecc-mldsa">
        <name>Composite Signature Schemes with ML-DSA</name>
        <section anchor="ecc-mldsa-generation">
          <name>Key generation procedure</name>
          <t>The implementation MUST generate the ML-DSA and the EdDSA component keys independently.
ML-DSA key generation follows the specification <xref target="FIPS-204"/> and the artifacts are encoded as fixed-length octet strings as defined in <xref target="mldsa-signature"/>.
For EdDSA this is done following the relative specification in <xref target="RFC7748"/>, and encoding the artifacts as specified in <xref target="eddsa-signature"/> as fixed-length octet strings.</t>
        </section>
        <section anchor="signature-generation">
          <name>Signature Generation</name>
          <t>To sign a message <tt>M</tt> with ML-DSA + EdDSA the following sequence of operations has to be performed:</t>
          <ol spacing="normal" type="1"><li>
              <t>Generate <tt>dataDigest</tt> according to <eref target="https://www.rfc-editor.org/rfc/rfc9580#section-5.2.4">[RFC9580, Section 5.2.4]</eref></t>
            </li>
            <li>
              <t>Create the EdDSA signature over <tt>dataDigest</tt> with <tt>EdDSA.Sign()</tt> from <xref target="eddsa-signature"/></t>
            </li>
            <li>
              <t>Create the ML-DSA signature over <tt>dataDigest</tt> with <tt>ML-DSA.Sign()</tt> from <xref target="mldsa-signature"/></t>
            </li>
            <li>
              <t>Encode the EdDSA and ML-DSA signatures according to the packet structure given in <xref target="ecc-mldsa-sig-packet"/>.</t>
            </li>
          </ol>
        </section>
        <section anchor="signature-verification">
          <name>Signature Verification</name>
          <t>To verify an ML-DSA + EdDSA signature the following sequence of operations has to be performed:</t>
          <ol spacing="normal" type="1"><li>
              <t>Verify the EdDSA signature with <tt>EdDSA.Verify()</tt> from <xref target="eddsa-signature"/></t>
            </li>
            <li>
              <t>Verify the ML-DSA signature with <tt>ML-DSA.Verify()</tt> from <xref target="mldsa-signature"/></t>
            </li>
          </ol>
          <t>As specified in <xref target="composite-signatures"/> an implementation MUST validate both signatures, i.e. EdDSA and ML-DSA, successfully to state that a composite ML-DSA + EdDSA signature is valid.</t>
        </section>
      </section>
      <section anchor="packet-specifications-1">
        <name>Packet Specifications</name>
        <section anchor="ecc-mldsa-sig-packet">
          <name>Signature Packet (Tag 2)</name>
          <t>The composite ML-DSA + EdDSA schemes MUST be used only with v6 signatures, as defined in <xref target="RFC9580"/>, or newer versions defined by updates of that document.</t>
          <t>The algorithm-specific v6 signature parameters for ML-DSA + EdDSA signatures consist of:</t>
          <ul spacing="normal">
            <li>
              <t>A fixed-length octet string representing the EdDSA signature, whose length depends on the algorithm ID as specified in <xref target="tab-eddsa-artifacts"/>.</t>
            </li>
            <li>
              <t>A fixed-length octet string of the ML-DSA signature value, whose length depends on the algorithm ID as specified in <xref target="tab-mldsa-artifacts"/>.</t>
            </li>
          </ul>
          <t>A composite ML-DSA + EdDSA signature MUST use a hash algorithm with a digest size of at least 256 bits for the computation of the message digest.
A verifying implementation MUST reject any composite ML-DSA + EdDSA signature that uses a hash algorithm with a smaller digest size.</t>
        </section>
        <section anchor="key-material-packets">
          <name>Key Material Packets</name>
          <t>The composite ML-DSA + EdDSA schemes MUST be used only with v6 keys, as defined in <xref target="RFC9580"/>, or newer versions defined by updates of that document.</t>
          <t>The algorithm-specific public key for ML-DSA + EdDSA keys is this series of values:</t>
          <ul spacing="normal">
            <li>
              <t>A fixed-length octet string representing the EdDSA public key, whose length depends on the algorithm ID as specified in <xref target="tab-eddsa-artifacts"/>.</t>
            </li>
            <li>
              <t>A fixed-length octet string containing the ML-DSA public key, whose length depends on the algorithm ID as specified in <xref target="tab-mldsa-artifacts"/>.</t>
            </li>
          </ul>
          <t>The algorithm-specific secret key for ML-DSA + EdDSA keys is this series of values:</t>
          <ul spacing="normal">
            <li>
              <t>A fixed-length octet string representing the EdDSA secret key, whose length depends on the algorithm ID as specified in <xref target="tab-eddsa-artifacts"/>.</t>
            </li>
            <li>
              <t>A fixed-length octet string containing the ML-DSA secret key in seed format, whose length is 32 octets (compare <xref target="tab-mldsa-artifacts"/>).
The seed format is defined in accordance with <xref target="FIPS-204"/>, Section 3.6.3.
Namely, the secret key is given by the value <tt>xi</tt> generated in step 1 of <tt>ML-DSA.KeyGen</tt> <xref target="FIPS-204"/>.
Upon parsing the secret key format, or before using the secret key, for the expansion of the key, the function <tt>ML-DSA.KeyGen_internal</tt> <xref target="FIPS-204"/> has to be invoked with the parsed value of <tt>xi</tt> as input.</t>
            </li>
          </ul>
        </section>
      </section>
    </section>
    <section anchor="slh-dsa-1">
      <name>SLH-DSA</name>
      <t>Throughout this specification SLH-DSA refers to the default pure and hedged version of SLH-DSA defined in <xref target="FIPS-205"/>.</t>
      <section anchor="slhdsa">
        <name>The SLH-DSA Algorithms</name>
        <t>The following table lists the group of algorithm code points for the SLH-DSA signature scheme and the corresponding artifact lengths.
This group of algorithms is henceforth referred to as "SLH-DSA code points".</t>
        <table anchor="slhdsa-artifact-lengths">
          <name>SLH-DSA algorithm code points and the corresponding artifact lengths in octets.</name>
          <thead>
            <tr>
              <th align="right">Algorithm ID reference</th>
              <th align="left">SLH-DSA public key</th>
              <th align="left">SLH-DSA secret key</th>
              <th align="left">SLH-DSA signature</th>
            </tr>
          </thead>
          <tbody>
            <tr>
              <td align="right">32</td>
              <td align="left">32</td>
              <td align="left">64</td>
              <td align="left">7856</td>
            </tr>
            <tr>
              <td align="right">33</td>
              <td align="left">32</td>
              <td align="left">64</td>
              <td align="left">17088</td>
            </tr>
            <tr>
              <td align="right">34</td>
              <td align="left">64</td>
              <td align="left">128</td>
              <td align="left">29792</td>
            </tr>
          </tbody>
        </table>
        <section anchor="key-generation">
          <name>Key generation</name>
          <t>SLH-DSA key generation is performed via the algorithm <tt>SLH-DSA.KeyGen</tt> as specified in <xref target="FIPS-205"/>, and the artifacts are encoded as fixed-length octet strings as defined in <xref target="slhdsa"/>.</t>
        </section>
        <section anchor="signature-generation-1">
          <name>Signature Generation</name>
          <t>SLH-DSA signature generation is performed via the default hedged version of the algorithm <tt>SLH-DSA.Sign</tt> as specified in <xref target="FIPS-205"/>.</t>
        </section>
        <section anchor="signature-verification-1">
          <name>Signature Verification</name>
          <t>SLH-DSA signature verification is performed via the algorithm <tt>SLH-DSA.Verify</tt> as specified in <xref target="FIPS-205"/>.</t>
        </section>
      </section>
      <section anchor="packet-specifications-2">
        <name>Packet specifications</name>
        <section anchor="signature-packet-tag-2">
          <name>Signature Packet (Tag 2)</name>
          <t>The SLH-DSA algorithms MUST be used only with v6 signatures, as defined in <eref target="https://www.rfc-editor.org/rfc/rfc9580#section-5.2.3">[RFC9580, Section 5.2.3]</eref>.</t>
          <t>The algorithm-specific part of a signature packet for an SLH-DSA algorithm code point consists of:</t>
          <ul spacing="normal">
            <li>
              <t>A fixed-length octet string of the SLH-DSA signature value, whose length depends on the algorithm ID in the format specified in <xref target="slhdsa-artifact-lengths"/>.</t>
            </li>
          </ul>
          <t>An SLH-DSA signature MUST use a hash algorithm with a digest size of at least 256 bits for the computation of the message digest.
A verifying implementation MUST reject any SLH-DSA signature that uses a hash algorithm with a smaller digest size.</t>
        </section>
        <section anchor="key-material-packets-1">
          <name>Key Material Packets</name>
          <t>The SLH-DSA algorithms code points MUST be used only with v6 keys, as defined in <xref target="RFC9580"/>, or newer versions defined by updates of that document.</t>
          <t>The algorithm-specific part of the public key consists of:</t>
          <ul spacing="normal">
            <li>
              <t>A fixed-length octet string containing the SLH-DSA public key, whose length depends on the algorithm ID as specified in <xref target="slhdsa-artifact-lengths"/>.</t>
            </li>
          </ul>
          <t>The algorithm-specific part of the secret key consists of:</t>
          <ul spacing="normal">
            <li>
              <t>A fixed-length octet string containing the SLH-DSA secret key, whose length depends on the algorithm ID as specified in <xref target="slhdsa-artifact-lengths"/>.</t>
            </li>
          </ul>
        </section>
      </section>
    </section>
    <section anchor="notes-on-algorithms">
      <name>Notes on Algorithms</name>
      <section anchor="symmetric-algorithms-for-seipd-packets">
        <name>Symmetric Algorithms for SEIPD Packets</name>
        <t>Implementations MUST implement <tt>AES-256</tt>.
An implementation SHOULD use <tt>AES-256</tt> in the case of a v1 SEIPD packet, or <tt>AES-256</tt> with any available AEAD mode in the case of a v2 SEIPD packet, if all recipient certificates indicate support for it (explicitly or implicitly).</t>
        <t>A certificate that contains a PQ(/T) key SHOULD include <tt>AES-256</tt> in the "Preferred Symmetric Ciphers for v1 SEIPD" subpacket and SHOULD include the pair <tt>AES-256</tt> with <tt>OCB</tt> in the "Preferred AEAD Ciphersuites" subpacket.</t>
        <t>If <tt>AES-256</tt> is not explicitly in the list of the "Preferred Symmetric Ciphers for v1 SEIPD" subpacket, and if the certificate contains a PQ(/T) key, it is implicitly at the end of the list.
This is justified since <tt>AES-256</tt> is mandatory to implement.
If <tt>AES-128</tt> is also implicitly added to the list, it is added after <tt>AES-256</tt>.</t>
        <t>If the pair <tt>AES-256</tt> with <tt>OCB</tt> is not explicitly in the list of the "Preferred AEAD Ciphersuites" subpacket, and if the certificate contains a PQ(/T) key, it is implicitly at the end of the list.
This is justified since <tt>AES-256</tt> and <tt>OCB</tt> are mandatory to implement.
If the pair <tt>AES-128</tt> with <tt>OCB</tt> is also implicitly added to the list, it is added after the pair <tt>AES-256</tt> with <tt>OCB</tt>.</t>
      </section>
      <section anchor="hash-algorithms-for-key-binding-signatures">
        <name>Hash Algorithms for Key Binding Signatures</name>
        <t>Subkey binding signatures over algorithms described in this document and primary key binding signatures made by algorithms described in this document MUST NOT be made with <tt>MD5</tt>, <tt>SHA-1</tt>, or <tt>RIPEMD-160</tt>.
A receiving implementation MUST treat such a signature as invalid.</t>
      </section>
    </section>
    <section anchor="migration-considerations">
      <name>Migration Considerations</name>
      <t>The post-quantum KEM algorithms defined in <xref target="kem-alg-specs"/> and the signature algorithms defined in <xref target="sig-alg-specs"/> are a set of new public key algorithms that extend the algorithm selection of <xref target="RFC9580"/>.
During the transition period, the post-quantum algorithms will not be supported by all clients.
Therefore various migration considerations must be taken into account, in particular backwards compatibility to existing implementations that have not yet been updated to support the post-quantum algorithms.</t>
      <section anchor="encrypting-to-traditional-and-pqt-keys">
        <name>Encrypting to Traditional and PQ(/T) Keys</name>
        <t>As noted in <xref target="composite-kem"/>, the confidentiality of a message is not post-quantum secure when using multiple PKESKs if at least one does not use PQ(/T) encryption schemes.
An implementation should not abort the encryption process when encrypting a message to both PQ(/T) and traditional keys to allow for a smooth transition to post-quantum cryptography.</t>
      </section>
      <section anchor="signing-with-traditional-and-pqt-keys">
        <name>Signing with Traditional and PQ(/T) Keys</name>
        <t>An implementation may sign with both a PQ(/T) and a traditional key using multiple signatures over the same data as described in <xref target="multiple-signatures"/>.
Signing only with PQ(/T) key material is not backwards compatible.</t>
      </section>
      <section anchor="generating-pqt-keys">
        <name>Generating PQ(/T) Keys</name>
        <t>It is RECOMMENDED to generate fresh secrets when generating PQ(/T) keys.
Note that reusing key material from existing ECC keys in PQ(/T) keys does not provide backwards compatibility.</t>
      </section>
    </section>
    <section anchor="security-considerations">
      <name>Security Considerations</name>
      <section anchor="security-aspects-of-composite-signatures">
        <name>Security Aspects of Composite Signatures</name>
        <t>When multiple signatures are applied to a message, the question of the protocol's resistance against signature stripping attacks naturally arises.
In a signature stripping attack, an adversary removes one or more of the signatures such that only a subset of the signatures remain in the message at the point when it is verified.
This amounts to a downgrade attack that potentially reduces the value of the signature.
It should be noted that the composite signature schemes specified in this draft are not subject to a signature stripping vulnerability.
This is due to the fact that in any OpenPGP signature, the hashed meta data includes the signature algorithm ID, as specified in <eref target="https://www.rfc-editor.org/rfc/rfc9580#section-5.2.4">[RFC9580, Section 5.2.4]</eref>.
As a consequence, a component signature taken out of the context of a specific composite algorithm is not a valid signature for any message.</t>
        <t>Furthermore, it is also not possible to craft a new signature for a message that was signed twice with a composite algorithm by interchanging (i.e., remixing) the component signatures, which would classify as a weak existential forgery.
This is due to the fact that each v6 signature also includes a random salt at the start of the hashed meta data, as also specified in the aforementioned reference.</t>
      </section>
      <section anchor="sec-key-combiner">
        <name>Key combiner</name>
        <t>For the key combination in <xref target="kem-key-combiner"/> this specification limits itself to the use of SHA3-256 in a construction following <xref target="SP800-56C"/>.
A central security notion of a key combiner is IND-CCA2-security. It is argued in <xref target="BCD_24"/> that the key combiner specified in <xref target="kem-key-combiner"/> is IND-CCA2-secure if ML-KEM is IND-CCA2-secure or the Strong Diffie-Hellman problem in a nominal group holds. Note that Curve25519 and Curve448 qualify as such nominal groups <xref target="ABH_21"/>.</t>
        <t>Note that the inclusion of the EC public key in the key combiner also accounts for multi-target attacks against X25519 and X448.</t>
        <section anchor="sec-fixed-info">
          <name>Domain separation and context binding</name>
          <t>The <tt>domSep</tt> information defined in <xref target="kem-key-combiner"/> provides the domain separation for the key combiner construction.
This ensures that the input keying material is used to generate a KEK for a specific purpose.
Appending the length octet ensures that no collisions can result across different domains, which might be defined in the future.
This is because <tt>domSep || len(domSep)</tt> is guaranteed to result in a suffix-free set of octet strings even if further values should be defined for <tt>dompSep</tt>.
The term "suffix-free" applied to a set of words indicates that no word is the suffix of another.
Thus this property ensures unambiguous parsing of a word from the rear of a string. Unambiguous parseability, in turn, ensures that no collisions can happen on the space of input strings to the key combiner.</t>
          <t>The algorithm ID, passed as the <tt>algID</tt> parameter to <tt>multiKeyCombine</tt>, binds the derived KEK to the chosen algorithm.
The algorithm ID identifies unequivocally the algorithm, the parameters for its instantiation, and the length of all artifacts, including the derived key.</t>
        </section>
      </section>
      <section anchor="hedged-sec-cons">
        <name>ML-DSA and SLH-DSA hedged variants</name>
        <t>This specification makes use of the default "hedged" variants of ML-DSA and SLH-DSA, which mix fresh randomness into the respective signature-generation algorithm's internal hashing step.
This has the advantage of an enhanced side-channel resistance of the signature operations according to  <xref target="FIPS-204"/> and <xref target="FIPS-205"/>.</t>
      </section>
      <section anchor="minimum-digest-size-for-pqt-signatures">
        <name>Minimum digest size for PQ(/T)-signatures</name>
        <t>This specification requires that all PQ(/T) signatures defined in this document are made on message digests computed with a hash algorithm with at least 256 bits of digest size.
Since all signature algorithms defined in this document require version 6 (or newer) signature packets, which currently include a leading random salt value in the hashed data, the required property is not collision but (2nd) preimage resistance.
Therefore, a hash algorithm with a digest size of at least 256 bits is sufficient to match the targeted security levels of all PQ(/T) algorithms defined in this document.</t>
      </section>
      <section anchor="symmetric-algorithms-for-seipd-packets-1">
        <name>Symmetric Algorithms for SEIPD Packets</name>
        <t>This specification mandates support for <tt>AES-256</tt> for two reasons.
First, <tt>AES-KeyWrap</tt> with <tt>AES-256</tt> is already part of the composite KEM construction.
Second, some of the PQ(/T) algorithms target the security level of <tt>AES-256</tt>.</t>
        <t>For the same reasons, this specification further recommends the use of <tt>AES-256</tt> if it is supported by all recipient certificates, regardless of what the implementation would otherwise choose based on the recipients' preferences.
This recommendation should be understood as a clear and simple rule for the selection of <tt>AES-256</tt> for encryption.
Implementations may also make more nuanced decisions.</t>
      </section>
      <section anchor="key-generation-1">
        <name>Key generation</name>
        <t>When generating keys, this specification requires component keys to be generated independently, and recommends not to reuse existing keys for any of the components.
Note that reusing a key across different protocols may lead to signature confusion vulnerabilities, that formally classify as signature forgeries. Generally, reusing a key for different purposes may lead to subtle vulnerabilities.</t>
      </section>
    </section>
    <section anchor="additional-considerations">
      <name>Additional considerations</name>
      <section anchor="performance-considerations">
        <name>Performance Considerations for SLH-DSA</name>
        <t>This specification introduces both ML-DSA + EdDSA as well as SLH-DSA as PQ(/T) signature schemes.</t>
        <t>Generally, it can be said that ML-DSA + EdDSA provides a performance in terms of execution time requirements that is close to that of traditional ECC signature schemes.
Regarding the size of signatures and public keys, though, ML-DSA has far greater requirements than traditional schemes like EC-based or even RSA signature schemes.</t>
        <t>Implementers may want to offer SLH-DSA for applications where the weaker security assumptions of a hash-based signature scheme are required – namely only the 2nd preimage resistance of a hash function – and thus a potentially higher degree of trust in the long-term security of signatures is achieved.
However, SLH-DSA has performance characteristics in terms of execution time of the signature generation as well as space requirements for the signature that are even greater than those of ML-DSA + EdDSA signature schemes.</t>
        <t>Pertaining to the execution time, the particularly costly operation in SLH-DSA is the signature generation.
Depending on the parameter set, it can range from approximately the one hundred fold to more than the two thousand fold of that of ML-DSA-87.
These number are based on the performance measurements published in the NIST submissions for SLH-DSA and ML-DSA.
In order to achieve fast signature generation times, the algorithm SLH-DSA-SHAKE-128f ("f" standing for "fast") should be chosen.
This comes at the expense of a larger signature size.
This choice can be relevant in applications where mass signing occurs or a small latency is required.</t>
        <t>In order to minimize the space requirements of an SLH-DSA signature, an algorithm ID with the name ending in "s" for "small" should be chosen.
This comes at the expense of a longer signature generation time.
In particular, SLH-DSA-SHAKE-128s achieves the smallest possible signature size, which is about the double size of an ML-DSA-87 signature.
Where a higher security level than 128 bit is needed, SLH-DSA-SHAKE-256s can be used.</t>
        <t>Unlike the signature generation time, the signature verification time of SLH-DSA is not that much larger than that of other PQC schemes.
Based on the performance measurements published in the NIST submissions for SLH-DSA and ML-DSA, the verification time of the SLH-DSA is, for the parameters covered by this specification, larger than that of ML-DSA-87 by a factor ranging from four (for -128s) over nine (for -256s) to twelve (for -128f).</t>
      </section>
    </section>
    <section anchor="iana-considerations">
      <name>IANA Considerations</name>
      <t>IANA is requested to add the algorithm IDs defined in <xref target="iana-pubkey-algos"/> to the existing registry <tt>OpenPGP Public Key Algorithms</tt>.
The field specifications enclosed in brackets for the ML-KEM + ECDH composite algorithms denote fields that are only conditionally contained in the data structure.</t>
      <table anchor="iana-pubkey-algos">
        <name>IANA updates for registry 'OpenPGP Public Key Algorithms'</name>
        <thead>
          <tr>
            <th align="left">ID</th>
            <th align="left">Algorithm</th>
            <th align="right">Public Key Format</th>
            <th align="right">Secret Key Format</th>
            <th align="right">Signature Format</th>
            <th align="right">PKESK Format</th>
            <th align="right">Reference</th>
          </tr>
        </thead>
        <tbody>
          <tr>
            <td align="left">30</td>
            <td align="left">ML-DSA-65+Ed25519</td>
            <td align="right">32 octets Ed25519 public key (<xref target="tab-eddsa-artifacts"/>), 1952 octets ML-DSA-65 public key (<xref target="tab-mldsa-artifacts"/>)</td>
            <td align="right">32 octets Ed25519 secret key (<xref target="tab-eddsa-artifacts"/>), 4032  octets ML-DSA-65 secret (<xref target="tab-mldsa-artifacts"/>)</td>
            <td align="right">64 octets Ed25519 signature (<xref target="tab-eddsa-artifacts"/>), 3293 octets ML-DSA-65 signature (<xref target="tab-mldsa-artifacts"/>)</td>
            <td align="right">N/A</td>
            <td align="right">
              <xref target="ecc-mldsa"/></td>
          </tr>
          <tr>
            <td align="left">31</td>
            <td align="left">ML-DSA-87+Ed448</td>
            <td align="right">57 octets Ed448 public key (<xref target="tab-eddsa-artifacts"/>),  2592 octets ML-DSA-87 public key (<xref target="tab-mldsa-artifacts"/>)</td>
            <td align="right">57 octets Ed448 secret key (<xref target="tab-eddsa-artifacts"/>), 4896 octets ML-DSA-87 secret (<xref target="tab-mldsa-artifacts"/>)</td>
            <td align="right">114 octets Ed448 signature (<xref target="tab-eddsa-artifacts"/>), 4595 octets ML-DSA-87 signature (<xref target="tab-mldsa-artifacts"/>)</td>
            <td align="right">N/A</td>
            <td align="right">
              <xref target="ecc-mldsa"/></td>
          </tr>
          <tr>
            <td align="left">32</td>
            <td align="left">SLH-DSA-SHAKE-128s</td>
            <td align="right">32 octets public key (<xref target="slhdsa-artifact-lengths"/>)</td>
            <td align="right">64 octets secret key (<xref target="slhdsa-artifact-lengths"/>)</td>
            <td align="right">7856 octets signature (<xref target="slhdsa-artifact-lengths"/>)</td>
            <td align="right">N/A</td>
            <td align="right">
              <xref target="slhdsa"/></td>
          </tr>
          <tr>
            <td align="left">33</td>
            <td align="left">SLH-DSA-SHAKE-128f</td>
            <td align="right">32 octets public key (<xref target="slhdsa-artifact-lengths"/>)</td>
            <td align="right">64 octets secret key (<xref target="slhdsa-artifact-lengths"/>)</td>
            <td align="right">17088 octets signature (<xref target="slhdsa-artifact-lengths"/>)</td>
            <td align="right">N/A</td>
            <td align="right">
              <xref target="slhdsa"/></td>
          </tr>
          <tr>
            <td align="left">34</td>
            <td align="left">SLH-DSA-SHAKE-256s</td>
            <td align="right">64 octets public key (<xref target="slhdsa-artifact-lengths"/>)</td>
            <td align="right">128 octets secret key (<xref target="slhdsa-artifact-lengths"/>)</td>
            <td align="right">29792 octets signature (<xref target="slhdsa-artifact-lengths"/>)</td>
            <td align="right">N/A</td>
            <td align="right">
              <xref target="slhdsa"/></td>
          </tr>
          <tr>
            <td align="left">35</td>
            <td align="left">ML-KEM-768+X25519</td>
            <td align="right">32 octets X25519 public key (<xref target="tab-ecdh-cfrg-artifacts"/>), 1184 octets ML-KEM-768 public key (<xref target="tab-mlkem-artifacts"/>)</td>
            <td align="right">32 octets X25519 secret key (<xref target="tab-ecdh-cfrg-artifacts"/>), 2400 octets ML-KEM-768 secret-key (<xref target="tab-mlkem-artifacts"/>)</td>
            <td align="right">N/A</td>
            <td align="right">32 octets X25519 ciphertext, 1088 octets ML-KEM-768 ciphertext [, 1 octet algorithm ID in case of v3 PKESK], 1 octet length field of value <tt>n</tt>, <tt>n</tt> octets wrapped session key (<xref target="ecc-mlkem-pkesk"/>)</td>
            <td align="right">
              <xref target="ecc-mlkem"/></td>
          </tr>
          <tr>
            <td align="left">36</td>
            <td align="left">ML-KEM-1024+X448</td>
            <td align="right">56 octets X448 public key (<xref target="tab-ecdh-cfrg-artifacts"/>), 1568  octets ML-KEM-1024 public key (<xref target="tab-mlkem-artifacts"/>)</td>
            <td align="right">56 octets X448 secret key (<xref target="tab-ecdh-cfrg-artifacts"/>), 3168 octets ML-KEM-1024 secret-key (<xref target="tab-mlkem-artifacts"/>)</td>
            <td align="right">N/A</td>
            <td align="right">56 octets X448 ciphertext, 1568 octets ML-KEM-1024 ciphertext [, 1 octet algorithm ID in case of v3 PKESK], 1 octet length field of value <tt>n</tt>, <tt>n</tt> octets wrapped session key (<xref target="ecc-mlkem-pkesk"/>)</td>
            <td align="right">
              <xref target="ecc-mlkem"/></td>
          </tr>
        </tbody>
      </table>
    </section>
    <section anchor="changelog">
      <name>Changelog</name>
      <section anchor="draft-wussler-openpgp-pqc-01">
        <name>draft-wussler-openpgp-pqc-01</name>
        <ul spacing="normal">
          <li>
            <t>Shifted the algorithm IDs by 4 to align with the crypto-refresh.</t>
          </li>
          <li>
            <t>Renamed v5 packets into v6 to align with the crypto-refresh.</t>
          </li>
          <li>
            <t>Defined IND-CCA2 security for KDF and key combination.</t>
          </li>
          <li>
            <t>Added explicit key generation procedures.</t>
          </li>
          <li>
            <t>Changed the key combination KMAC salt.</t>
          </li>
          <li>
            <t>Mandated Parameter ID check in SPHINCS+ signature verification.</t>
          </li>
          <li>
            <t>Fixed key share size for Kyber-768.</t>
          </li>
          <li>
            <t>Added "Preliminaries" section.</t>
          </li>
          <li>
            <t>Fixed IANA considerations.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-wussler-openpgp-pqc-02">
        <name>draft-wussler-openpgp-pqc-02</name>
        <ul spacing="normal">
          <li>
            <t>Added the ephemeral and public key in the ECC key derivation function.</t>
          </li>
          <li>
            <t>Removed public key hash from key combiner.</t>
          </li>
          <li>
            <t>Allowed v3 PKESKs and v4 keys with PQ algorithms, limiting them to AES
symmetric ciphers.
for encryption with SEIPDv1, in line with the crypto-refresh.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-wussler-openpgp-pqc-03">
        <name>draft-wussler-openpgp-pqc-03</name>
        <ul spacing="normal">
          <li>
            <t>Replaced round 3 submission with NIST PQC Draft Standards FIPS 203, 204, 205.</t>
          </li>
          <li>
            <t>Added consideration about security level for hashes.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-wussler-openpgp-pqc-04">
        <name>draft-wussler-openpgp-pqc-04</name>
        <ul spacing="normal">
          <li>
            <t>Added Johannes Roth as author</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-ietf-openpgp-pqc-00">
        <name>draft-ietf-openpgp-pqc-00</name>
        <ul spacing="normal">
          <li>
            <t>Renamed draft</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-ietf-openpgp-pqc-01">
        <name>draft-ietf-openpgp-pqc-01</name>
        <ul spacing="normal">
          <li>
            <t>Mandated <tt>AES-256</tt> as mandatory to implement.</t>
          </li>
          <li>
            <t>Added <tt>AES-256</tt> / <tt>AES-128</tt> with <tt>OCB</tt> implicitly to v1/v2 SEIPD preferences of "PQ(/T) certificates".</t>
          </li>
          <li>
            <t>Added a recommendation to use <tt>AES-256</tt> when possible.</t>
          </li>
          <li>
            <t>Swapped the optional v3 PKESK algorithm identifier with length octet in order to align with X25519 and X448.</t>
          </li>
          <li>
            <t>Fixed ML-DSA secret key size.</t>
          </li>
          <li>
            <t>Added test vectors.</t>
          </li>
          <li>
            <t>Correction and completion of IANA instructions.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-ietf-openpgp-pqc-02">
        <name>draft-ietf-openpgp-pqc-02</name>
        <ul spacing="normal">
          <li>
            <t>Removed git rebase artifact.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-ietf-openpgp-pqc-03">
        <name>draft-ietf-openpgp-pqc-03</name>
        <ul spacing="normal">
          <li>
            <t>Updated SLH-DSA by removing parametrization and restricting to three SLH-DSA-SHAKE algorithm code points.</t>
          </li>
          <li>
            <t>Removed NIST and Brainpool curve hybrids, dropped ECDSA from the current specification.</t>
          </li>
          <li>
            <t>Updated KDF as proposed at IETF 119.</t>
          </li>
          <li>
            <t>Removed whitespaces from composite algorithm names.</t>
          </li>
          <li>
            <t>Explicitly disallowed SED (tag 9) and weak hashes when using PQ algorithms.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-ietf-openpgp-pqc-04">
        <name>draft-ietf-openpgp-pqc-04</name>
        <ul spacing="normal">
          <li>
            <t>Fixed ML-DSA signature size.</t>
          </li>
          <li>
            <t>Fixed parameters order in PKESK description.</t>
          </li>
          <li>
            <t>Fixed missing inputs into KEM combination description.</t>
          </li>
          <li>
            <t>Improved parallel encryption guidance.</t>
          </li>
          <li>
            <t>Improved SED deprecation decscription.</t>
          </li>
          <li>
            <t>Added ML-DSA test vectors.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-ietf-openpgp-pqc-05">
        <name>draft-ietf-openpgp-pqc-05</name>
        <ul spacing="normal">
          <li>
            <t>Reworked KEM combiner for the purpose of NIST-compliance.</t>
          </li>
          <li>
            <t>Mandated v6 keys for ML-KEM + ECDH algorithms.</t>
          </li>
          <li>
            <t>Defined secret key seed format for ML-KEM and ML-DSA.</t>
          </li>
          <li>
            <t>Added key generation security considerations.</t>
          </li>
          <li>
            <t>Replaced initial public drafts with FIPS 203, 204, 205.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-ietf-openpgp-pqc-06">
        <name>draft-ietf-openpgp-pqc-06</name>
        <ul spacing="normal">
          <li>
            <t>Fixed and improved test vectors.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-ietf-openpgp-pqc-07">
        <name>draft-ietf-openpgp-pqc-07</name>
        <ul spacing="normal">
          <li>
            <t>Assigned code points 30 - 34 for ML-DSA + EdDSA and SLH-DSA algorithms.</t>
          </li>
          <li>
            <t>Aligned KEM combiner with LAMPS.</t>
          </li>
          <li>
            <t>Dropped CCA-conversion of X25519/X448 and adjusted security considerations.</t>
          </li>
          <li>
            <t>Switched to hedged variant also for SLH-DSA.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-ietf-openpgp-pqc-08">
        <name>draft-ietf-openpgp-pqc-08</name>
        <ul spacing="normal">
          <li>
            <t>Assigned code points 35 and 36 for ML-KEM + ECDH algorithms.</t>
          </li>
          <li>
            <t>Removed hash binding for ML-DSA + EdDSA and SLH-DSA algorithms.</t>
          </li>
          <li>
            <t>Allowed usage of ML-KEM-768 + X25519 with v4 keys.</t>
          </li>
          <li>
            <t>Aligned KEM combiner to X-Wing and switched to suffix-free encoding of the domain separator.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-ietf-openpgp-pqc-09">
        <name>draft-ietf-openpgp-pqc-09</name>
        <ul spacing="normal">
          <li>
            <t>Removed subkey semantics related guidance.</t>
          </li>
          <li>
            <t>Updated test vectors.</t>
          </li>
          <li>
            <t>Added non-normative algorithm explanation.</t>
          </li>
        </ul>
      </section>
      <section anchor="draft-ietf-openpgp-pqc-10">
        <name>draft-ietf-openpgp-pqc-10</name>
        <ul spacing="normal">
          <li>
            <t>Specified minimum requirements for signature message digest sizes.</t>
          </li>
          <li>
            <t>Added security considerations for signature message digest sizes.</t>
          </li>
        </ul>
      </section>
    </section>
    <section anchor="contributors">
      <name>Contributors</name>
      <t>Stephan Ehlen (BSI)<br/>
Carl-Daniel Hailfinger (BSI)<br/>
Andreas Huelsing (TU Eindhoven)</t>
    </section>
    <section numbered="false" anchor="acknowledgments">
      <name>Acknowledgments</name>
      <t>Thanks to Daniel Huigens and Evangelos Karatsiolis for the early review and feedback on this document.</t>
    </section>
  </middle>
  <back>
    <references anchor="sec-combined-references">
      <name>References</name>
      <references anchor="sec-normative-references">
        <name>Normative References</name>
        <reference anchor="RFC7748">
          <front>
            <title>Elliptic Curves for Security</title>
            <author fullname="A. Langley" initials="A." surname="Langley"/>
            <author fullname="M. Hamburg" initials="M." surname="Hamburg"/>
            <author fullname="S. Turner" initials="S." surname="Turner"/>
            <date month="January" year="2016"/>
            <abstract>
              <t>This memo specifies two elliptic curves over prime fields that offer a high level of practical security in cryptographic applications, including Transport Layer Security (TLS). These curves are intended to operate at the ~128-bit and ~224-bit security level, respectively, and are generated deterministically based on a list of required properties.</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="7748"/>
          <seriesInfo name="DOI" value="10.17487/RFC7748"/>
        </reference>
        <reference anchor="RFC8032">
          <front>
            <title>Edwards-Curve Digital Signature Algorithm (EdDSA)</title>
            <author fullname="S. Josefsson" initials="S." surname="Josefsson"/>
            <author fullname="I. Liusvaara" initials="I." surname="Liusvaara"/>
            <date month="January" year="2017"/>
            <abstract>
              <t>This document describes elliptic curve signature scheme Edwards-curve Digital Signature Algorithm (EdDSA). The algorithm is instantiated with recommended parameters for the edwards25519 and edwards448 curves. An example implementation and test vectors are provided.</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="8032"/>
          <seriesInfo name="DOI" value="10.17487/RFC8032"/>
        </reference>
        <reference anchor="RFC3394">
          <front>
            <title>Advanced Encryption Standard (AES) Key Wrap Algorithm</title>
            <author fullname="J. Schaad" initials="J." surname="Schaad"/>
            <author fullname="R. Housley" initials="R." surname="Housley"/>
            <date month="September" year="2002"/>
          </front>
          <seriesInfo name="RFC" value="3394"/>
          <seriesInfo name="DOI" value="10.17487/RFC3394"/>
        </reference>
        <reference anchor="RFC9580">
          <front>
            <title>OpenPGP</title>
            <author fullname="P. Wouters" initials="P." role="editor" surname="Wouters"/>
            <author fullname="D. Huigens" initials="D." surname="Huigens"/>
            <author fullname="J. Winter" initials="J." surname="Winter"/>
            <author fullname="Y. Niibe" initials="Y." surname="Niibe"/>
            <date month="July" year="2024"/>
            <abstract>
              <t>This document specifies the message formats used in OpenPGP. OpenPGP provides encryption with public key or symmetric cryptographic algorithms, digital signatures, compression, and key management.</t>
              <t>This document is maintained in order to publish all necessary information needed to develop interoperable applications based on the OpenPGP format. It is not a step-by-step cookbook for writing an application. It describes only the format and methods needed to read, check, generate, and write conforming packets crossing any network. It does not deal with storage and implementation questions. It does, however, discuss implementation issues necessary to avoid security flaws.</t>
              <t>This document obsoletes RFCs 4880 ("OpenPGP Message Format"), 5581 ("The Camellia Cipher in OpenPGP"), and 6637 ("Elliptic Curve Cryptography (ECC) in OpenPGP").</t>
            </abstract>
          </front>
          <seriesInfo name="RFC" value="9580"/>
          <seriesInfo name="DOI" value="10.17487/RFC9580"/>
        </reference>
      </references>
      <references anchor="sec-informative-references">
        <name>Informative References</name>
        <reference anchor="I-D.ietf-pquip-pqt-hybrid-terminology">
          <front>
            <title>Terminology for Post-Quantum Traditional Hybrid Schemes</title>
            <author fullname="Flo D" initials="F." surname="D">
              <organization>UK National Cyber Security Centre</organization>
            </author>
            <author fullname="Michael P" initials="M." surname="P">
              <organization>UK National Cyber Security Centre</organization>
            </author>
            <author fullname="Britta Hale" initials="B." surname="Hale">
              <organization>Naval Postgraduate School</organization>
            </author>
            <date day="10" month="January" year="2025"/>
            <abstract>
              <t>   One aspect of the transition to post-quantum algorithms in
   cryptographic protocols is the development of hybrid schemes that
   incorporate both post-quantum and traditional asymmetric algorithms.
   This document defines terminology for such schemes.  It is intended
   to be used as a reference and, hopefully, to ensure consistency and
   clarity across different protocols, standards, and organisations.

              </t>
            </abstract>
          </front>
          <seriesInfo name="Internet-Draft" value="draft-ietf-pquip-pqt-hybrid-terminology-06"/>
        </reference>
        <reference anchor="NIST-PQC" target="https://csrc.nist.gov/projects/post-quantum-cryptography/post-quantum-cryptography-standardization">
          <front>
            <title>Post-Quantum Cryptography Standardization</title>
            <author initials="L." surname="Chen" fullname="Lily Chen">
              <organization/>
            </author>
            <author initials="D." surname="Moody" fullname="Dustin Moody">
              <organization/>
            </author>
            <author initials="Y." surname="Liu" fullname="Yi-Kai Liu">
              <organization/>
            </author>
            <date year="2016" month="December"/>
          </front>
        </reference>
        <reference anchor="NISTIR-8413" target="https://doi.org/10.6028/NIST.IR.8413-upd1">
          <front>
            <title>Status Report on the Third Round of the NIST Post-Quantum Cryptography Standardization Process</title>
            <author initials="G." surname="Alagic" fullname="Gorjan Alagic">
              <organization/>
            </author>
            <author initials="D." surname="Apon" fullname="Daniel Apon">
              <organization/>
            </author>
            <author initials="D." surname="Cooper" fullname="David Cooper">
              <organization/>
            </author>
            <author initials="Q." surname="Dang" fullname="Quynh Dang">
              <organization/>
            </author>
            <author initials="T." surname="Dang" fullname="Thinh Dang">
              <organization/>
            </author>
            <author initials="J." surname="Kelsey" fullname="John Kelsay">
              <organization/>
            </author>
            <author initials="J." surname="Lichtinger" fullname="Jacob Lichtinger">
              <organization/>
            </author>
            <author initials="C." surname="Miller" fullname="Carl Miller">
              <organization/>
            </author>
            <author initials="D." surname="Moody" fullname="Dustin Moody">
              <organization/>
            </author>
            <author initials="R." surname="Peralta" fullname="Rene Peralta">
              <organization/>
            </author>
            <author initials="R." surname="Perlner" fullname="Ray Perlner">
              <organization/>
            </author>
            <author initials="A." surname="Robinson" fullname="Angela Robinson">
              <organization/>
            </author>
            <author initials="D." surname="Smith-Tone" fullname="Daniel Smith-Tone">
              <organization/>
            </author>
            <author initials="Y." surname="Liu" fullname="Yi-Kai Liu">
              <organization/>
            </author>
            <date year="2022" month="September"/>
          </front>
          <seriesInfo name="NIST IR 8413" value=""/>
        </reference>
        <reference anchor="SP800-56C" target="https://doi.org/10.6028/NIST.SP.800-56Cr2">
          <front>
            <title>Recommendation for Key-Derivation Methods in Key-Establishment Schemes</title>
            <author initials="E." surname="Barker" fullname="Elaine Barker">
              <organization/>
            </author>
            <author initials="L." surname="Chen" fullname="Lily Chen">
              <organization/>
            </author>
            <author initials="A." surname="Roginsky" fullname="Allen Roginsky">
              <organization/>
            </author>
            <author initials="R." surname="Davis" fullname="Richard Davis">
              <organization/>
            </author>
            <date year="2020" month="August"/>
          </front>
          <seriesInfo name="NIST Special Publication 800-56C Rev. 2" value=""/>
        </reference>
        <reference anchor="FIPS-203" target="https://doi.org/10.6028/NIST.FIPS.203">
          <front>
            <title>Module-Lattice-Based Key-Encapsulation Mechanism Standard</title>
            <author>
              <organization>National Institute of Standards and Technology</organization>
            </author>
            <date year="2024" month="August"/>
          </front>
        </reference>
        <reference anchor="FIPS-204" target="https://doi.org/10.6028/NIST.FIPS.204">
          <front>
            <title>Module-Lattice-Based Digital Signature Standard</title>
            <author>
              <organization>National Institute of Standards and Technology</organization>
            </author>
            <date year="2024" month="August"/>
          </front>
        </reference>
        <reference anchor="FIPS-205" target="https://doi.org/10.6028/NIST.FIPS.205">
          <front>
            <title>Stateless Hash-Based Digital Signature Standard</title>
            <author>
              <organization>National Institute of Standards and Technology</organization>
            </author>
            <date year="2024" month="August"/>
          </front>
        </reference>
        <reference anchor="BCD_24" target="https://doi.org/10.62056/a3qj89n4e">
          <front>
            <title>X-Wing The Hybrid KEM You’ve Been Looking For</title>
            <author initials="M." surname="Barbosa" fullname="Manuel Barbosa">
              <organization/>
            </author>
            <author initials="D." surname="Connolly" fullname="Deirdre Connolly">
              <organization/>
            </author>
            <author initials="J. D." surname="Duarte" fullname="Joao Diogo Duarte">
              <organization/>
            </author>
            <author initials="A." surname="Kaiser" fullname="Aaron Kaiser">
              <organization/>
            </author>
            <author initials="P." surname="Schwabe" fullname="Peter Schwabe">
              <organization/>
            </author>
            <author initials="K." surname="Varner" fullname="Karoline Varner">
              <organization/>
            </author>
            <author initials="B." surname="Westerbaan" fullname="Bas Westerbaan">
              <organization/>
            </author>
            <date year="2024"/>
          </front>
        </reference>
        <reference anchor="ABH_21" target="https://doi.org/10.1007/978-3-030-77870-5_4">
          <front>
            <title>Analysing the HPKE Standard</title>
            <author initials="J." surname="Alwen" fullname="Joel Alwen">
              <organization/>
            </author>
            <author initials="B." surname="Blanchet" fullname="Bruno Blanchet">
              <organization/>
            </author>
            <author initials="E." surname="Hauck" fullname="Eduard Hauck">
              <organization/>
            </author>
            <author initials="E." surname="Kiltz" fullname="Eike Kiltz">
              <organization/>
            </author>
            <author initials="B." surname="Lipp" fullname="Benjamin Lipp">
              <organization/>
            </author>
            <author initials="D." surname="Riepel" fullname="Doreen Riepl">
              <organization/>
            </author>
            <date year="2021"/>
          </front>
        </reference>
      </references>
    </references>
    <?line 1064?>

<section anchor="test-vectors">
      <name>Test Vectors</name>
      <t>To help implementing this specification a set of non-normative examples follow here.</t>
      <section anchor="sample-v6-ed25519-with-ml-kem-768x25519-data">
        <name>Sample v6 Ed25519 with ML-KEM-768+X25519 Data</name>
        <section anchor="test-vector-sec-ed25519">
          <name>Transferable Secret Key</name>
          <t>Here is a Transferable Secret Key consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 Ed25519 Private-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-768+X25519 Private-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <t>The primary key has the fingerprint <tt>c789e17d9dbdca7b3c833a3c063feb0353f80ad911fe27868fb0645df803e947</tt>.</t>
          <t>The subkey has the fingerprint <tt>dafe0eebb2675ecfcdc20a23fe89ca5d12e83f527dfa354b6dcf662131a48b9d</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v6-eddsa-sample-sk.asc"><![CDATA[
-----BEGIN PGP PRIVATE KEY BLOCK-----
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-----END PGP PRIVATE KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="test-vector-pub-ed25519">
          <name>Transferable Public Key</name>
          <t>Here is the corresponding Transferable Public Key for <xref target="test-vector-sec-ed25519"/> consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 Ed25519 Public-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-768+X25519 Public-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v6-eddsa-sample-pk.asc"><![CDATA[
-----BEGIN PGP PUBLIC KEY BLOCK-----
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-----END PGP PUBLIC KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="encrypted-and-signed-message">
          <name>Encrypted and Signed Message</name>
          <t>Here is a signed message "Testing\n" encrypted to the certificate <xref target="test-vector-pub-ed25519"/> and signed by the secret key <xref target="test-vector-sec-ed25519"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 PKESK</t>
            </li>
            <li>
              <t>A v2 SEIPD</t>
            </li>
          </ul>
          <t>The hex-encoded <tt>mlkemKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>b0e45408d8c713f3941cd27276f879e557df013e05bcf43e37d4c60266a4b797</tt>.</t>
          <t>The hex-encoded <tt>ecdhKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>9d994741e0db5eacee44cb028c2ec48b1346feae2576aaac383bbcd64138c932</tt>.</t>
          <t>The hex-encoded output of <tt>multiKeyCombine</tt> is <tt>5bf078bf7977109db6dead92d3578b62d0ab0487ef84e8e0af08f4b4b229e590</tt>.</t>
          <t>The hex-encoded session key is <tt>94a3b8c9784463bb96b682cddf549adb23579b75bcb646f989d7cfe3e6e14435</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v6-eddsa-sample-message.asc"><![CDATA[
-----BEGIN PGP MESSAGE-----
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-----END PGP MESSAGE-----
]]></sourcecode>
        </section>
      </section>
      <section anchor="sample-v4-ed25519-with-ml-kem-768x25519-data">
        <name>Sample v4 Ed25519 with ML-KEM-768+X25519 Data</name>
        <section anchor="test-vector-sec-v4-ed25519">
          <name>Transferable Secret Key</name>
          <t>Here is a Transferable Secret Key consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v4 Ed25519 Private-Key packet</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v4 positive certification self-signature</t>
            </li>
            <li>
              <t>A v4 ML-KEM-768+X25519 Private-Subkey packet</t>
            </li>
            <li>
              <t>A v4 subkey binding signature</t>
            </li>
          </ul>
          <t>The primary key has the fingerprint <tt>342e5db2de345215cb2c944f7102ffed3b9cf12d</tt>.</t>
          <t>The subkey has the fingerprint <tt>e51dbfea51936988b5428fffa4f95f985ed61a51</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v4-eddsa-sample-sk.asc"><![CDATA[
-----BEGIN PGP PRIVATE KEY BLOCK-----

xUkEZ3SFgBuhDibMGc69QTyzKYr3R7MMaQOZuU0Bwg82JVcL+NGHswA4zWTCi+mw
P/WoL5x2SDW3bNe2kpcypEWdTapexJdgWxDlzS5QUUMgdXNlciAoVGVzdCBLZXkp
IDxwcWMtdGVzdC1rZXlAZXhhbXBsZS5jb20+wsAABBMbCAB2BYJndIWAAwsJBwmQ
cQL/7Tuc8S01FAAAAAAAHAAQc2FsdEBub3RhdGlvbnMub3BlbnBncGpzLm9yZ+Ul
WyqYGQo/YJguDbFrolcCFQgCFgACGQECmwMCHgkWIQQ0Ll2y3jRSFcsslE9xAv/t
O5zxLQUnCQIHAgAAiv81HEeRhisNla+h8zV+vQ9HbCb5/ukgpBG527xzg2ULCaTJ
s/DvNGl/cC+EhWQ8Bk1+dKSr9fwFBmxb3fkxTEYEx8RpBGd0hYAjsIfqoDHr3VUD
76sj9JP+04jzHeAhTXnoPF3N7Cs281UB+Awo6DCHkI8GuMzoPE4BOsuYu1RyWZL7
xZTGtTqua8iSHLRoqLppdL7u0M5IUafYaacURmnGARVgK6FvljpMVX33rAn3yzAV
2STMln8wxhRJ2Qol0Ss+m4L2hyt74h0a05D9M8Iyl2J+w8G54jmcaRxmNoBlOnes
M052o7TlwcZjwKJ2po1Uw8SNqoqAKUBnu5wA87MfJ699igCog2mT8De1W7VA5V4m
hWkk3IaGUG+Yahrox3Kx1Vgeeg3d9grjNZAHCMJEt8wFKmH+Ca8GNljDAEOGQrDs
FzZz0Lg7Gx/96Wuv2gNktLCgPHS+ZHn3J6pXe5klpWA8oFi9uLkj2JHyeqG7x1Kv
K3MQFb4RjJbBIE5GKkdQ0xLA+I6vwr5wBm4li27Xps81NwvwSmHlU0bvOCl4Bwdc
p7gqQ0t6JX0qs18jW8Du5l08FgTYBT3qHEwj9BezKqVCUqfXG7bR+DoN+CR4kxZx
Wa/EhXmvqhxJGllP2G+QQFSS2Zn6SFXf58OaMswI1jEPu4RjbEK698d8JiFuKXUA
sH1MfGdF5aXw5rUF4wYIBA9yUjsukD5dhGdPRxeD4hdCSiZjKTEFdDnSZwMTiSx8
AFE04w2jR8OKCiN+g8TtBzYq10TAARs29D0thFAuMr9dkYFbFAXdIFgCYl9w1Rpw
g6QwpWJl+lUTc6+QiXTq+qRjQq4zIHv3KBf3y8PM9VsWhISCqrbtRXlqQylRAREx
Sg0eqA8pIm1n0WdpWpRDNmNERsRDy8ksBpjEskLuOn2/syUrGz8IKipIgWx/KURs
UQDOdkWoa2gboXlf7CsD+oVemcK3YWPoa0G2WVHlLCDrNr/Yl86e120PeDDmbKKB
xY9xSwF/sZu5K3/mGYBwUmZdfGty1nOexsr0agYZSkEjBkRCWYJYqi+BswClWxr6
1kpYxL6aK5HyCMvoGAa8BbIyp4ZXKXFn61KoW8UtUzUcVcZ7cnD6KwQDCgvt8zkl
mbraF6fCZx18gSgKJ6EqDBc8xM91jItq5rAonI6OyZ1pAGHNp0ucMwD2h5INVcpG
5Svbcbgp8g4Nhb2YC6SbGsrMYg7r56vq4V+PAWToljJbRZZYg86SDMnN2B7vtGIZ
7EzerETOqs5FIXyENGku5MB/dswa+0qDZZJd4SvIAx4QZBMD0btXIFYOVZVGsKDf
l2aqQrz9dFzWGBWdukVEK1fupVeqNLSRGrunEUtuM0+duXgr+R9opk96lAIdyiar
BgglwnoE98KrWbg3VQoxpkWisiOEQZlnx6h84WUzoCDmtiNOSwGyOR0BekNxwAy3
aA3bgX1hUBk4pH1OlEK7M2w9EiVXu23Ka0dBrGJPoIgcBcbAQyC34CeptLxHfLJK
1jYkt8JlEM29EUpthHK5mm4ACbMi6hSaKY2zhDp2NGAXBGTW8DZDdHhWIZtfdgjC
9cExwJ1Y+Q5jOkhSAodehgXFEmkJJ8diLIEr8R7aoE/BRIGgsl/P9TOoSziAukuR
022b9VpaxFmAw5VKwR1p+LGSO5NNk8pHNDHO8Z1vq2ucB6XUJZP4+KPae2VsP3sz
XOt9s+Q8MgD8dFKGx/K6MnUo8d4SiSN6xwZrRTOI8isx7mKUottWlFnIp6AbcIcW
v2muZAinRVJ+QOF+0tPZ+UlFXff0TOQboC0lStCNTWQH9VssBXnVyzpmkelDStd3
cXl7xiULVi0u5cKqBBgbCABgBYJndIWACZBxAv/tO5zxLTUUAAAAAAAcABBzYWx0
QG5vdGF0aW9ucy5vcGVucGdwanMub3JngVWn5tMqxzNf8aApl434UAKbDBYhBDQu
XbLeNFIVyyyUT3EC/+07nPEtAADn/QwnUsJ2e8wOM1CRL7UfYfta21hApsSrb/KP
aFZa4v1Zz2bq/w+2YWC5UFY9hPTVriMS9ve0oUncLSoTJfMCmwk=
-----END PGP PRIVATE KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="test-vector-pub-v4-ed25519">
          <name>Transferable Public Key</name>
          <t>Here is the corresponding Transferable Public Key for <xref target="test-vector-sec-v4-ed25519"/> consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v4 Ed25519 Public-Key packet</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v4 positive certification self-signature</t>
            </li>
            <li>
              <t>A v4 ML-KEM-768+X25519 Public-Subkey packet</t>
            </li>
            <li>
              <t>A v4 subkey binding signature</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v4-eddsa-sample-pk.asc"><![CDATA[
-----BEGIN PGP PUBLIC KEY BLOCK-----
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-----END PGP PUBLIC KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="encrypted-and-signed-seipd-v1-message">
          <name>Encrypted and Signed SEIPD v1 Message</name>
          <t>Here is a signed message "Testing\n" encrypted to the certificate <xref target="test-vector-pub-v4-ed25519"/> and signed by the secret key <xref target="test-vector-sec-v4-ed25519"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A v3 PKESK</t>
            </li>
            <li>
              <t>A v1 SEIPD</t>
            </li>
          </ul>
          <t>The hex-encoded <tt>mlkemKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>16f2aea8ec1ca277c04cc7b87681d7d38511a38f554775a8fc4de41aa76eb586</tt>.</t>
          <t>The hex-encoded <tt>ecdhKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>2fc0c8fcace9636c86d1ee1715a302819ad48c549579a462a33eed36627c532e</tt>.</t>
          <t>The hex-encoded output of <tt>multiKeyCombine</tt> is <tt>c1591d7511f9f0213bfd57cf316e5ec0d40c4ea826fa989ab606aa3b8a1a2c1f</tt>.</t>
          <t>The hex-encoded session key is <tt>b4dc7197e1519822ca689da484643edf272934d98ae1974b5d88317a7a6a3c4f</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v4-eddsa-sample-message-v1.asc"><![CDATA[
-----BEGIN PGP MESSAGE-----

wcPUA6T5X5he1hpRI8oKxrVQiCkB27ePKVHeA4pTYMKZA6u1l8syrP2+sEULDgvB
GmH6+0mTw07VEh6J1i1+3ymnnTqLhkv3YqdBtiC81+PL05YPCymPZaWf0ajq+4sM
dnBfLJ3BPrsJw03sVHIBh+L3qolG0CliIzGKxIPz9F5RBSvDdSIwCNg9hnfZjpMu
kcmceYISpWjJR+LeAieyYOTZ+Qhx71jYQ2svfpwW+XAw03uMpZkvqkOJmYr8uUca
i8x2j4G6EUXuu9NswSPPirCqU6OZVdpoHUZusFyRZz89V10fQr9hrnJOGw0VtPGz
SMEulSosvnvnK2BQ2ccJVNn0s/mk+fttQLpBBsKCH0UK8norIXt5ahxdj9sSwBTf
q6cPlHz1o9OnFSuewFkapA4PuLxhf4YY8ZTsC9LUZLiMf8MrMza7gbtnEbBzW3bx
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Wfo=
-----END PGP MESSAGE-----
]]></sourcecode>
        </section>
        <section anchor="encrypted-and-signed-seipd-v2-message">
          <name>Encrypted and Signed SEIPD v2 Message</name>
          <t>Here is a signed message "Testing\n" encrypted to the certificate <xref target="test-vector-pub-v4-ed25519"/> and signed by the secret key <xref target="test-vector-sec-v4-ed25519"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 PKESK</t>
            </li>
            <li>
              <t>A v2 SEIPD</t>
            </li>
          </ul>
          <t>The hex-encoded <tt>mlkemKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>16a22adbeced91ada60b5561611748edd2fedc51e0770f86d7394870062e7322</tt>.</t>
          <t>The hex-encoded <tt>ecdhKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>5ac67eab192f25ac99d87543e6fcd3a4769cb02c9d1afdc79354c2baa2289e29</tt>.</t>
          <t>The hex-encoded output of <tt>multiKeyCombine</tt> is <tt>5c5652a690b55d1e9545fbd722f838cd8ff4d3657af5a9026d02f3185ca74993</tt>.</t>
          <t>The hex-encoded session key is <tt>160867d96032b640208c1c92174d0270bb89189d72320711acd221bbea2a26b6</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v4-eddsa-sample-message-v2.asc"><![CDATA[
-----BEGIN PGP MESSAGE-----

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-----END PGP MESSAGE-----
]]></sourcecode>
        </section>
      </section>
      <section anchor="sample-ml-dsa-65ed25519-with-ml-kem-768x25519-data">
        <name>Sample ML-DSA-65+Ed25519 with ML-KEM-768+X25519 Data</name>
        <section anchor="test-vector-sec-mldsa65">
          <name>Transferable Secret Key</name>
          <t>Here is a Transferable Secret Key consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 ML-DSA-65+Ed25519 Private-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-768+X25519 Private-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <t>The primary key has the fingerprint <tt>a3e2e14b6a493ff930fb27321f125e9a6880338be9fb7da3ae065ea65793242f</tt>.</t>
          <t>The subkey has the fingerprint <tt>7dae8fbce23022607167af72a002e774e0ca379a2d7ae072384e1e8fde3265e4</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v6-mldsa-65-sample-sk.asc"><![CDATA[
-----BEGIN PGP PRIVATE KEY BLOCK-----

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-----END PGP PRIVATE KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="test-vector-pub-mldsa65">
          <name>Transferable Public Key</name>
          <t>Here is the corresponding Transferable Public Key for <xref target="test-vector-sec-mldsa65"/> consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 ML-DSA-65+Ed25519 Public-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-768+X25519 Public-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v6-mldsa-65-sample-pk.asc"><![CDATA[
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mPfFf/sGVrWgPwSQlhYl0tuOlFNlo3dLHnJG/d7/MxD617aiS9pcwWF9hSDHNvdm
9ZyW2WcdNP+ccGv+xpul3FIZ2s1T1MSGcdQ+LmHcX/BBfkY8eqKU7o2FURiNXgtq
Rfc1b8naACMxOTpba5e60dwhfJvgLURSmLrpGSAkV2JopLrNFBhMf52jpgAAAAAA
AAAAAAAAAAAABA8TGSIp
-----END PGP PUBLIC KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="encrypted-and-signed-message-1">
          <name>Encrypted and Signed Message</name>
          <t>Here is a signed message "Testing\n" encrypted to the certificate <xref target="test-vector-pub-mldsa65"/> and signed by the secret key <xref target="test-vector-sec-mldsa65"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 PKESK</t>
            </li>
            <li>
              <t>A v2 SEIPD</t>
            </li>
          </ul>
          <t>The hex-encoded <tt>mlkemKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>0987fe72ad5ea58e73344f9a2a543f4131d9fdb7cf07474f501430a20f705b4d</tt>.</t>
          <t>The hex-encoded <tt>ecdhKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>88f3e9a8de1917127b4b758f6e83bd4ce00faaae01bd8b6e412a43a710b26012</tt>.</t>
          <t>The hex-encoded output of <tt>multiKeyCombine</tt> is <tt>a4904982f7caa9c9de690afd772d8bfe027a1ad6a5bbda00db68963fe303ae8e</tt>.</t>
          <t>The hex-encoded session key is <tt>adee68618b302d4bfd7ae3d432bc63a1c1ad7f5fd6e7fd7bdedbb0d0b14a5c9a</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v6-mldsa-65-sample-message.asc"><![CDATA[
-----BEGIN PGP MESSAGE-----

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-----END PGP MESSAGE-----
]]></sourcecode>
        </section>
        <section anchor="detached-signature">
          <name>Detached signature</name>
          <t>Here is a detached signature for the message "Testing\n" made by the secret key <xref target="test-vector-sec-mldsa65"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 signature packet</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v6-mldsa-65-sample-signature.asc"><![CDATA[
-----BEGIN PGP SIGNATURE-----

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-----END PGP SIGNATURE-----
]]></sourcecode>
        </section>
      </section>
      <section anchor="sample-ml-dsa-87ed448-with-ml-kem-1024x448-data">
        <name>Sample ML-DSA-87+Ed448 with ML-KEM-1024+X448 Data</name>
        <section anchor="test-vector-sec-mldsa87">
          <name>Transferable Secret Key</name>
          <t>Here is a Transferable Secret Key consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 ML-DSA-87+Ed448 Private-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-1024+X448 Private-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <t>The primary key has the fingerprint <tt>0d7a8be1410cd68eed4845ab487b4b4cfaecd8ebad1a1166a84230499200ee20</tt>.</t>
          <t>The subkey has the fingerprint <tt>65090e147a8116ab7f62ab4ec7aae59d9e6532feb2af230c73cdc869fbc60c8f</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v6-mldsa-87-sample-sk.asc"><![CDATA[
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AAAAAAAAAAAAAAAAAAAAAAAAAAUMFRwiKDA1
-----END PGP PRIVATE KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="test-vector-pub-mldsa87">
          <name>Transferable Public Key</name>
          <t>Here is the corresponding Transferable Public Key for <xref target="test-vector-sec-mldsa87"/> consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 ML-DSA-87+Ed448 Public-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-1024+X448 Public-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v6-mldsa-87-sample-pk.asc"><![CDATA[
-----BEGIN PGP PUBLIC KEY BLOCK-----

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+hA+VW/H9x4gMD9A2CE9QUWkx+X7B2N9n/cAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
BQwVHCIoMDU=
-----END PGP PUBLIC KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="encrypted-and-signed-message-2">
          <name>Encrypted and Signed Message</name>
          <t>Here is a signed message "Testing\n" encrypted to the certificate <xref target="test-vector-pub-mldsa87"/> and signed by the secret key <xref target="test-vector-sec-mldsa87"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 PKESK</t>
            </li>
            <li>
              <t>A v2 SEIPD</t>
            </li>
          </ul>
          <t>The hex-encoded <tt>mlkemKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>f18f161e617b8ce5968f109aadea1e7e1511d10165768d36127ba913c00637d2</tt>.</t>
          <t>The hex-encoded <tt>ecdhKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>732860c8114ae84a964664b1f607785d11bc7d24d5324510adad89bd52db7ee0df9982ad0d1669bdd05556330c86f2dae9e2edea42e05bc5</tt>.</t>
          <t>The hex-encoded output of <tt>multiKeyCombine</tt> is <tt>ef1e32906f67d39bc800d90cabb0033c77ca6dce8ffca3e96d9c7348e2e8c16e</tt>.</t>
          <t>The hex-encoded session key is <tt>0588ce40b038aac353d1cf8c67a674b412985105794821013ef154f786c4d89d</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v6-mldsa-87-sample-message.asc"><![CDATA[
-----BEGIN PGP MESSAGE-----

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6jABLkDxsZe/ixevCiU4XidtQlWzcm3eZQyi6FBXG8ozEscx4xleXKL1arfMQdmg
RndrBzSIqzm4f89faqCUmpLGIHwg0K5IZvgKA22lwhxEMbF4hM6AcpL6VVGT/U8a
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XGYbHFYosZVIIxvSJLyodIhA/1/qnIw3yIpcoj+ajKSDRgB5LsACnv7tbNTnk+FN
uAk2ky4ULBquYvDAfKlP/ctTuvXKxFGOLfjs2SWHM7oE6uT5ZRjFcTuFGCh4Keto
8NY8lm3CNRlbowG/Zb7BRtGVMp1QyH+oNWWhQnX4qa4UWxLt1fVhBd4ydsf952sd
2+UvVpojaPMtH60a/oArv8EF7qSGtJ9SCeO4we+pgVyCnVG/HgdidKjkpuWl5kFe
revN2ps8CB6HdPS3pu3cbIUYFB1kq/bGzN8jRGW4el09C3J8u16sJAdEKiI3CyGD
LovztLij3S1Fa8xhCzAwSQY5ap+3MveW3ZZfRkQUmHasLfsbUqR6o+KyYzBdMrq7
r9dO/yldgvycbQA=
-----END PGP MESSAGE-----
]]></sourcecode>
        </section>
        <section anchor="detached-signature-1">
          <name>Detached signature</name>
          <t>Here is a detached signature for the message "Testing\n" made by the secret key <xref target="test-vector-sec-mldsa87"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 signature packet</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v6-mldsa-87-sample-signature.asc"><![CDATA[
-----BEGIN PGP SIGNATURE-----

wtIdBgEfDgAAACkFgmgR5rQioQYNeovhQQzWju1IRatIe0tM+uzY660aEWaoQjBJ
kgDuIAAAAADCOSDu4urY00OJ6HbRJFwnZa1NdpSNQfQOqTfO6HjXPykO3VR/CDj0
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BPKHDH5xMKvsHUu2EMrPs0R9cyLxacRJB2DqA+p8Tr0C12f1zSlfzsdkD+erhzN1
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e5DDsp3cq4gkGCtZziVzC7wTXPPA3A+cYny3UpCaV6yQTOdugm37Kmbjico1I3b2
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Bw4/Xqbj8PgAAAAAAAAAAAAAAAAAAAAABQ0XHycvMzs=
-----END PGP SIGNATURE-----
]]></sourcecode>
        </section>
      </section>
      <section anchor="sample-slh-dsa-shake-128s-with-ml-kem-768x25519-data">
        <name>Sample SLH-DSA-SHAKE-128s with ML-KEM-768+X25519 Data</name>
        <section anchor="test-vector-sec-slhdsa-128s">
          <name>Transferable Secret Key</name>
          <t>Here is a Transferable Secret Key consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 SLH-DSA-128s Private-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-768+X25519 Private-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <t>The primary key has the fingerprint <tt>eed4d13fc36c78e48276a93233339c4dd230fd5f6f5c5b82c63d5c0b5e361d92</tt>.</t>
          <t>The subkey has the fingerprint <tt>3e8745a4bb488779e0f32480fa23f8d0bfd8c2f49d7f74e957e1c2ffc2ef4bfc</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v6-slhdsa-128s-sample-sk.asc"><![CDATA[
-----BEGIN PGP PRIVATE KEY BLOCK-----

xWsGZ3SFgCAAAAAgQPDNHNhyzJ2PPw0ek0AW0by2yelpy7HxW0OF6n3NhroAv0y3
AGbhhW5pe6POhMyR8Vdv1/nHg2w6mvDMXHng+t1A8M0c2HLMnY8/DR6TQBbRvLbJ
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OSngGNmRTigQ
-----END PGP PRIVATE KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="test-vector-pub-slhdsa-128s">
          <name>Transferable Public Key</name>
          <t>Here is the corresponding Transferable Public Key for <xref target="test-vector-sec-slhdsa-128s"/> consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 SLH-DSA-128s Public-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-768+X25519 Public-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v6-slhdsa-128s-sample-pk.asc"><![CDATA[
-----BEGIN PGP PUBLIC KEY BLOCK-----

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rluC1ZlWi6EEdlkjeC91x5CaoiNRhfzaW1TebGjchBkumLnFJ954tMP/5ysfsFOL
o0Hrwk+tHHB7dQuBn8FSkIkUurJVT/vVtYcJfl/SZnx56aNeL9OV+KePSRS93o1D
OqNezwg+Kx8swBvpPxAQMCzVq9CVfHzdUDt0C/imQekRIreSX6zUbgsbeQeSO3j0
cOrVcviHJIqF4pArtSHV0pUIMcusFC5I1Z0ARKsrOSngGNmRTigQ
-----END PGP PUBLIC KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="encrypted-and-signed-message-3">
          <name>Encrypted and Signed Message</name>
          <t>Here is a signed message "Testing\n" encrypted to the certificate <xref target="test-vector-pub-slhdsa-128s"/> and signed by the secret key <xref target="test-vector-sec-slhdsa-128s"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 PKESK</t>
            </li>
            <li>
              <t>A v2 SEIPD</t>
            </li>
          </ul>
          <t>The hex-encoded <tt>mlkemKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>5dc60150f5f965ddc8014b6aa2ecae1831467e98fa315422f238984d6421a22e</tt>.</t>
          <t>The hex-encoded <tt>ecdhKeyShare</tt> input to <tt>multiKeyCombine</tt> is <tt>9dbd0f9bde7fef09817146e53a0b5ce7d27e79612670968fa0025422c578ab55</tt>.</t>
          <t>The hex-encoded output of <tt>multiKeyCombine</tt> is <tt>ae8ab57801911c04c7b4c2a2f665cf8d8a8188f948c2a65e39c292d9b1d86e32</tt>.</t>
          <t>The hex-encoded session key is <tt>e87567cad8fee5738f92090feed009d8af95437fa664f94da98776d966bbbc52</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v6-slhdsa-128s-sample-message.asc"><![CDATA[
-----BEGIN PGP MESSAGE-----

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-----END PGP MESSAGE-----
]]></sourcecode>
        </section>
        <section anchor="detached-signature-2">
          <name>Detached signature</name>
          <t>Here is a detached signature for the message "Testing\n" made by the secret key <xref target="test-vector-sec-slhdsa-128s"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 signature packet</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v6-slhdsa-128s-sample-signature.asc"><![CDATA[
-----BEGIN PGP SIGNATURE-----

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qys5KeAY2ZFOKBA=
-----END PGP SIGNATURE-----
]]></sourcecode>
        </section>
      </section>
      <section anchor="sample-slh-dsa-shake-128f-with-ml-kem-768x25519-data">
        <name>Sample SLH-DSA-SHAKE-128f with ML-KEM-768+X25519 Data</name>
        <section anchor="test-vector-sec-slhdsa-128f">
          <name>Transferable Secret Key</name>
          <t>Here is a Transferable Secret Key consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 SLH-DSA-128f Private-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-768+X25519 Private-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <t>The primary key has the fingerprint <tt>d54e0307021169f7b88beb2b76e3aad0e114be1a8f982d74dba9ca51d03537f4</tt>.</t>
          <t>The subkey has the fingerprint <tt>d8875664256c382dd7f3a5ce05021088922811f5d0b1a1f8c7769944a51b7002</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v6-slhdsa-128f-sample-sk.asc"><![CDATA[
-----BEGIN PGP PRIVATE KEY BLOCK-----

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-----END PGP PRIVATE KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="test-vector-pub-slhdsa-128f">
          <name>Transferable Public Key</name>
          <t>Here is the corresponding Transferable Public Key for <xref target="test-vector-sec-slhdsa-128f"/> consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 SLH-DSA-128f Public-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-768+X25519 Public-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v6-slhdsa-128f-sample-pk.asc"><![CDATA[
-----BEGIN PGP PUBLIC KEY BLOCK-----

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-----END PGP PUBLIC KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="detached-signature-3">
          <name>Detached signature</name>
          <t>Here is a detached signature for the message "Testing\n" made by the secret key <xref target="test-vector-sec-slhdsa-128f"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 signature packet</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v6-slhdsa-128f-sample-signature.asc"><![CDATA[
-----BEGIN PGP SIGNATURE-----

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-----END PGP SIGNATURE-----
]]></sourcecode>
        </section>
      </section>
      <section anchor="sample-slh-dsa-shake-256s-with-ml-kem-1024x448-data">
        <name>Sample SLH-DSA-SHAKE-256s with ML-KEM-1024+X448 Data</name>
        <section anchor="test-vector-sec-slhdsa-256s">
          <name>Transferable Secret Key</name>
          <t>Here is a Transferable Secret Key consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 SLH-DSA-256s Private-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-1024+X448 Private-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <t>The primary key has the fingerprint <tt>72fff84863aeba67f0d1d7691173247dd427533b9d7ee76011c6f77f2ce9fa7a</tt>.</t>
          <t>The subkey has the fingerprint <tt>570a5bbab93169876a8240da35a1ada7ba8a640aabe3ab467c797214844df15f</tt>.</t>
          <sourcecode type="application/pgp-keys" name="v6-slhdsa-256s-sample-sk.asc"><![CDATA[
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6g86ciwawUGiW7BOie0Q4sY7tT4=
-----END PGP PRIVATE KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="test-vector-pub-slhdsa-256s">
          <name>Transferable Public Key</name>
          <t>Here is the corresponding Transferable Public Key for <xref target="test-vector-sec-slhdsa-256s"/> consisting of:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 SLH-DSA-256s Public-Key packet</t>
            </li>
            <li>
              <t>A v6 direct key self-signature</t>
            </li>
            <li>
              <t>A User ID packet</t>
            </li>
            <li>
              <t>A v6 positive certification self-signature</t>
            </li>
            <li>
              <t>A v6 ML-KEM-1024+X448 Public-Subkey packet</t>
            </li>
            <li>
              <t>A v6 subkey binding signature</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v6-slhdsa-256s-sample-pk.asc"><![CDATA[
-----BEGIN PGP PUBLIC KEY BLOCK-----

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TontEOLGO7U+
-----END PGP PUBLIC KEY BLOCK-----
]]></sourcecode>
        </section>
        <section anchor="detached-signature-4">
          <name>Detached signature</name>
          <t>Here is a detached signature for the message "Testing\n" made by the secret key <xref target="test-vector-sec-slhdsa-256s"/>:</t>
          <ul spacing="normal">
            <li>
              <t>A v6 signature packet</t>
            </li>
          </ul>
          <sourcecode type="application/pgp-keys" name="v6-slhdsa-256s-sample-signature.asc"><![CDATA[
-----BEGIN PGP SIGNATURE-----

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-----END PGP SIGNATURE-----
]]></sourcecode>
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