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Diffstat (limited to 'nrfdemo/build/tfm/api_ns/interface/include/psa/crypto_extra.h')
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1 files changed, 0 insertions, 1495 deletions
diff --git a/nrfdemo/build/tfm/api_ns/interface/include/psa/crypto_extra.h b/nrfdemo/build/tfm/api_ns/interface/include/psa/crypto_extra.h deleted file mode 100644 index 6709b7b..0000000 --- a/nrfdemo/build/tfm/api_ns/interface/include/psa/crypto_extra.h +++ /dev/null @@ -1,1495 +0,0 @@ -/* - * Copyright (c) 2018-2023, Arm Limited. All rights reserved. - * - * SPDX-License-Identifier: BSD-3-Clause - * - */ -/** - * \file psa/crypto_extra.h - * - * \brief PSA cryptography module: vendor extensions - * - * \note This file may not be included directly. Applications must - * include psa/crypto.h. - * - * This file is reserved for vendor-specific definitions. - */ - -#ifndef PSA_CRYPTO_EXTRA_H -#define PSA_CRYPTO_EXTRA_H - -#include "crypto_types.h" -#include "crypto_compat.h" - -#ifdef __cplusplus -extern "C" { -#endif - -/** \addtogroup crypto_types - * @{ - */ - -/** DSA public key. - * - * The import and export format is the - * representation of the public key `y = g^x mod p` as a big-endian byte - * string. The length of the byte string is the length of the base prime `p` - * in bytes. - */ -#define PSA_KEY_TYPE_DSA_PUBLIC_KEY ((psa_key_type_t) 0x4002) - -/** DSA key pair (private and public key). - * - * The import and export format is the - * representation of the private key `x` as a big-endian byte string. The - * length of the byte string is the private key size in bytes (leading zeroes - * are not stripped). - * - * Deterministic DSA key derivation with psa_generate_derived_key follows - * FIPS 186-4 §B.1.2: interpret the byte string as integer - * in big-endian order. Discard it if it is not in the range - * [0, *N* - 2] where *N* is the boundary of the private key domain - * (the prime *p* for Diffie-Hellman, the subprime *q* for DSA, - * or the order of the curve's base point for ECC). - * Add 1 to the resulting integer and use this as the private key *x*. - * - */ -#define PSA_KEY_TYPE_DSA_KEY_PAIR ((psa_key_type_t) 0x7002) - -/** Whether a key type is a DSA key (pair or public-only). */ -#define PSA_KEY_TYPE_IS_DSA(type) \ - (PSA_KEY_TYPE_PUBLIC_KEY_OF_KEY_PAIR(type) == PSA_KEY_TYPE_DSA_PUBLIC_KEY) - -#define PSA_ALG_DSA_BASE ((psa_algorithm_t) 0x06000400) -/** DSA signature with hashing. - * - * This is the signature scheme defined by FIPS 186-4, - * with a random per-message secret number (*k*). - * - * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that - * #PSA_ALG_IS_HASH(\p hash_alg) is true). - * This includes #PSA_ALG_ANY_HASH - * when specifying the algorithm in a usage policy. - * - * \return The corresponding DSA signature algorithm. - * \return Unspecified if \p hash_alg is not a supported - * hash algorithm. - */ -#define PSA_ALG_DSA(hash_alg) \ - (PSA_ALG_DSA_BASE | ((hash_alg) & PSA_ALG_HASH_MASK)) -#define PSA_ALG_DETERMINISTIC_DSA_BASE ((psa_algorithm_t) 0x06000500) -#define PSA_ALG_DSA_DETERMINISTIC_FLAG PSA_ALG_ECDSA_DETERMINISTIC_FLAG -/** Deterministic DSA signature with hashing. - * - * This is the deterministic variant defined by RFC 6979 of - * the signature scheme defined by FIPS 186-4. - * - * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that - * #PSA_ALG_IS_HASH(\p hash_alg) is true). - * This includes #PSA_ALG_ANY_HASH - * when specifying the algorithm in a usage policy. - * - * \return The corresponding DSA signature algorithm. - * \return Unspecified if \p hash_alg is not a supported - * hash algorithm. - */ -#define PSA_ALG_DETERMINISTIC_DSA(hash_alg) \ - (PSA_ALG_DETERMINISTIC_DSA_BASE | ((hash_alg) & PSA_ALG_HASH_MASK)) -#define PSA_ALG_IS_DSA(alg) \ - (((alg) & ~PSA_ALG_HASH_MASK & ~PSA_ALG_DSA_DETERMINISTIC_FLAG) == \ - PSA_ALG_DSA_BASE) -#define PSA_ALG_DSA_IS_DETERMINISTIC(alg) \ - (((alg) & PSA_ALG_DSA_DETERMINISTIC_FLAG) != 0) -#define PSA_ALG_IS_DETERMINISTIC_DSA(alg) \ - (PSA_ALG_IS_DSA(alg) && PSA_ALG_DSA_IS_DETERMINISTIC(alg)) -#define PSA_ALG_IS_RANDOMIZED_DSA(alg) \ - (PSA_ALG_IS_DSA(alg) && !PSA_ALG_DSA_IS_DETERMINISTIC(alg)) - - -/* We need to expand the sample definition of this macro from - * the API definition. */ -#undef PSA_ALG_IS_VENDOR_HASH_AND_SIGN -#define PSA_ALG_IS_VENDOR_HASH_AND_SIGN(alg) \ - PSA_ALG_IS_DSA(alg) - -/* Workaround for build warnings when MBed TLS has enabled MBEDTLS_USE_PSA_CRYPTO - * - * Mbed TLS is not compatible with TF-Ms PSA API headers. - * - * In order to prevent build warnings for the follow functions we add the - * prototypes for them here. - * If the application tries to link with these functions it will get a link-time - * error. This use-case is not supported by TF-M. - */ -void psa_set_key_enrollment_algorithm( - psa_key_attributes_t *attributes, - psa_algorithm_t alg2); -psa_algorithm_t psa_get_key_enrollment_algorithm( - const psa_key_attributes_t *attributes); - - -#define PSA_KEY_TYPE_SPAKE2P_KEY_PAIR_BASE ((psa_key_type_t) 0x7400) -#define PSA_KEY_TYPE_SPAKE2P_PUBLIC_KEY_BASE ((psa_key_type_t) 0x4400) -#define PSA_KEY_TYPE_SPAKE2P_CURVE_MASK ((psa_key_type_t) 0x00ff) - - /** SPAKE2+ key pair. Both the prover and verifier key. - * - * The size of a SPAKE2+ key is the size associated with the elliptic curve - * group. See the documentation of each elliptic curve family for details. - * To construct a SPAKE2+ key pair, it must be output from a key derivation - * operation. - * The corresponding public key can be exported using psa_export_public_key(). - * See also #PSA_KEY_TYPE_SPAKE2P_PUBLIC_KEY(). - * - * \param curve A value of type psa_ecc_family_t that identifies the elliptic - * curve family to be used. - */ -#define PSA_KEY_TYPE_SPAKE2P_KEY_PAIR(curve) \ - ((psa_key_type_t) (PSA_KEY_TYPE_SPAKE2P_KEY_PAIR_BASE | (curve))) - - /** SPAKE2+ public key. The verifier key. - * - * The size of an SPAKE2+ public key is the same as the corresponding private - * key. See #PSA_KEY_TYPE_SPAKE2P_KEY_PAIR() and the documentation of each - * elliptic curve family for details. - * To construct a SPAKE2+ public key, it must be imported. - * - * \param curve A value of type psa_ecc_family_t that identifies the elliptic - * curve family to be used. - */ -#define PSA_KEY_TYPE_SPAKE2P_PUBLIC_KEY(curve) \ - ((psa_key_type_t) (PSA_KEY_TYPE_SPAKE2P_PUBLIC_KEY_BASE | (curve))) - - /** Whether a key type is a SPAKE2+ key (pair or public-only). */ -#define PSA_KEY_TYPE_IS_SPAKE2P(type) \ - ((PSA_KEY_TYPE_PUBLIC_KEY_OF_KEY_PAIR(type) & \ - ~PSA_KEY_TYPE_SPAKE2P_CURVE_MASK) == \ - PSA_KEY_TYPE_SPAKE2P_PUBLIC_KEY_BASE) - /** Whether a key type is a SPAKE2+ key pair. */ -#define PSA_KEY_TYPE_IS_SPAKE2P_KEY_PAIR(type) \ - (((type) & ~PSA_KEY_TYPE_SPAKE2P_CURVE_MASK) == \ - PSA_KEY_TYPE_SPAKE2P_KEY_PAIR_BASE) - /** Whether a key type is a SPAKE2+ public key. */ -#define PSA_KEY_TYPE_IS_SPAKE2P_PUBLIC_KEY(type) \ - (((type) & ~PSA_KEY_TYPE_SPAKE2P_CURVE_MASK) == \ - PSA_KEY_TYPE_SPAKE2P_PUBLIC_KEY_BASE) - /** Extract the curve from a SPAKE2+ key type. */ -#define PSA_KEY_TYPE_SPAKE2P_GET_FAMILY(type) \ - ((psa_ecc_family_t) (PSA_KEY_TYPE_IS_SPAKE2P(type) ? \ - ((type) & PSA_KEY_TYPE_SPAKE2P_CURVE_MASK) : \ - 0)) - -#define PSA_KEY_TYPE_SRP_KEY_PAIR_BASE ((psa_key_type_t) 0x7700) -#define PSA_KEY_TYPE_SRP_PUBLIC_KEY_BASE ((psa_key_type_t) 0x4700) -#define PSA_KEY_TYPE_SRP_GROUP_MASK ((psa_key_type_t) 0x00ff) - - /** SRP key pair. Both the client and server key. - * - * The size of a SRP key is the size associated with the Diffie-Hellman - * group. See the documentation of each Diffie-Hellman group for details. - * To construct a SRP key pair, the password hash must be imported. - * The corresponding public key (password verifier) can be exported using - * psa_export_public_key(). See also #PSA_KEY_TYPE_SRP_PUBLIC_KEY(). - * - * \param group A value of type ::psa_dh_family_t that identifies the - * Diffie-Hellman group to be used. - */ -#define PSA_KEY_TYPE_SRP_KEY_PAIR(group) \ - ((psa_key_type_t) (PSA_KEY_TYPE_SRP_KEY_PAIR_BASE | (group))) - - /** SRP public key. The server key (password verifier). - * - * The size of an SRP public key is the same as the corresponding private - * key. See #PSA_KEY_TYPE_SRP_KEY_PAIR() and the documentation of each - * Diffie-Hellman group for details. - * To construct a SRP public key, it must be imported. The key size - * in attributes must not be zero. - * - * \param group A value of type ::psa_dh_family_t that identifies the - * Diffie-Hellman group to be used. - */ -#define PSA_KEY_TYPE_SRP_PUBLIC_KEY(group) \ - ((psa_key_type_t) (PSA_KEY_TYPE_SRP_PUBLIC_KEY_BASE | (group))) - - /** Whether a key type is a SRP key (pair or public-only). */ -#define PSA_KEY_TYPE_IS_SRP(type) \ - ((PSA_KEY_TYPE_PUBLIC_KEY_OF_KEY_PAIR(type) & \ - ~PSA_KEY_TYPE_SRP_GROUP_MASK) == \ - PSA_KEY_TYPE_SRP_PUBLIC_KEY_BASE) - /** Whether a key type is a SRP key pair. */ -#define PSA_KEY_TYPE_IS_SRP_KEY_PAIR(type) \ - (((type) & ~PSA_KEY_TYPE_SRP_GROUP_MASK) == \ - PSA_KEY_TYPE_SRP_KEY_PAIR_BASE) - /** Whether a key type is a SRP public key. */ -#define PSA_KEY_TYPE_IS_SRP_PUBLIC_KEY(type) \ - (((type) & ~PSA_KEY_TYPE_SRP_GROUP_MASK) == \ - PSA_KEY_TYPE_SRP_PUBLIC_KEY_BASE) - /** Extract the curve from a SRP key type. */ -#define PSA_KEY_TYPE_SRP_GET_FAMILY(type) \ - ((psa_ecc_family_t) (PSA_KEY_TYPE_IS_SRP(type) ? \ - ((type) & PSA_KEY_TYPE_SRP_GROUP_MASK) : \ - 0)) - -#define PSA_ALG_CATEGORY_PAKE ((psa_algorithm_t) 0x0a000000) - -/** Whether the specified algorithm is a password-authenticated key exchange. - * - * \param alg An algorithm identifier (value of type #psa_algorithm_t). - * - * \return 1 if \p alg is a password-authenticated key exchange (PAKE) - * algorithm, 0 otherwise. - * This macro may return either 0 or 1 if \p alg is not a supported - * algorithm identifier. - */ -#define PSA_ALG_IS_PAKE(alg) \ - (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_PAKE) - -/** The Password-authenticated key exchange by juggling (J-PAKE) algorithm. - * - * This is J-PAKE as defined by RFC 8236, instantiated with the following - * parameters: - * - * - The group can be either an elliptic curve or defined over a finite field. - * - Schnorr NIZK proof as defined by RFC 8235 and using the same group as the - * J-PAKE algorithm. - * - A cryptographic hash function. - * - * To select these parameters and set up the cipher suite, call these functions - * in any order: - * - * \code - * psa_pake_cs_set_algorithm(cipher_suite, PSA_ALG_JPAKE(hash)); - * psa_pake_cs_set_primitive(cipher_suite, - * PSA_PAKE_PRIMITIVE(type, family, bits)); - * \endcode - * - * For more information on how to set a specific curve or field, refer to the - * documentation of the individual \c PSA_PAKE_PRIMITIVE_TYPE_XXX constants. - * - * After initializing a J-PAKE operation, call - * - * \code - * psa_pake_setup(operation, key, cipher_suite); - * psa_pake_set_user(operation, ...); - * psa_pake_set_peer(operation, ...); - * \endcode - * - * The password is provided as a key. This can be the password text itself, - * in an agreed character encoding, or some value derived from the password - * as required by a higher level protocol. - * - * (The implementation converts the key material to a number as described in - * Section 2.3.8 of _SEC 1: Elliptic Curve Cryptography_ - * (https://www.secg.org/sec1-v2.pdf), before reducing it modulo \c q. Here - * \c q is order of the group defined by the primitive set in the cipher suite. - * The \c psa_pake_setup() function returns an error if the result of the - * reduction is 0.) - * - * The key exchange flow for J-PAKE is as follows: - * -# To get the first round data that needs to be sent to the peer, call - * \code - * // Get g1 - * psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // Get the ZKP public key for x1 - * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...); - * // Get the ZKP proof for x1 - * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PROOF, ...); - * // Get g2 - * psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // Get the ZKP public key for x2 - * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...); - * // Get the ZKP proof for x2 - * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PROOF, ...); - * \endcode - * -# To provide the first round data received from the peer to the operation, - * call - * \code - * // Set g3 - * psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // Set the ZKP public key for x3 - * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...); - * // Set the ZKP proof for x3 - * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PROOF, ...); - * // Set g4 - * psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // Set the ZKP public key for x4 - * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...); - * // Set the ZKP proof for x4 - * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PROOF, ...); - * \endcode - * -# To get the second round data that needs to be sent to the peer, call - * \code - * // Get A - * psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // Get ZKP public key for x2*s - * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...); - * // Get ZKP proof for x2*s - * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PROOF, ...); - * \endcode - * -# To provide the second round data received from the peer to the operation, - * call - * \code - * // Set B - * psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // Set ZKP public key for x4*s - * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...); - * // Set ZKP proof for x4*s - * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PROOF, ...); - * \endcode - * -# To access the shared secret call - * \code - * // Get Ka=Kb=K - * psa_pake_get_shared_key() - * \endcode - * - * For more information consult the documentation of the individual - * \c PSA_PAKE_STEP_XXX constants. - * - * At this point there is a cryptographic guarantee that only the authenticated - * party who used the same password is able to compute the key. But there is no - * guarantee that the peer is the party it claims to be and was able to do so. - * - * That is, the authentication is only implicit (the peer is not authenticated - * at this point, and no action should be taken that assume that they are - like - * for example accessing restricted files). - * - * To make the authentication explicit there are various methods, see Section 5 - * of RFC 8236 for two examples. - * - */ -#define PSA_ALG_JPAKE_BASE ((psa_algorithm_t) 0x0a000100) -#define PSA_ALG_JPAKE(hash_alg) (PSA_ALG_JPAKE_BASE | ((hash_alg) & PSA_ALG_HASH_MASK)) -#define PSA_ALG_IS_JPAKE(alg) (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_JPAKE_BASE) - - /** The SPAKE2+ algorithm. - * - * SPAKE2+ is the augmented password-authenticated key exchange protocol, - * defined by RFC9383. SPAKE2+ includes confirmation of the shared secret - * key that results from the key exchange. - * SPAKE2+ is required by Matter Specification, Version 1.2, as MATTER_PAKE. - * Matter uses an earlier draft of the SPAKE2+ protocol: "SPAKE2+, an - * Augmented PAKE (Draft 02)". - * Although the operation of the PAKE is similar for both of these variants, - * they have different key schedules for the derivation of the shared secret. - * - * When setting up a PAKE cipher suite to use the SPAKE2+ protocol defined - * in RFC9383: - * - For cipher-suites that use HMAC for key confirmation, use the - * PSA_ALG_SPAKE2P_HMAC() algorithm, parameterized by the required hash - * algorithm. - * - For cipher-suites that use CMAC-AES-128 for key confirmation, use the - * PSA_ALG_SPAKE2P_CMAC() algorithm, parameterized by the required hash - * algorithm. - * - Use a PAKE primitive for the required elliptic curve. - * - * For example, the following code creates a cipher suite to select SPAKE2+ - * using edwards25519 with the SHA-256 hash function: - * - * \code - * psa_pake_cipher_suite_t cipher_suite = PSA_PAKE_CIPHER_SUITE_INIT; - * psa_pake_cs_set_algorithm(cipher_suite, PSA_ALG_SPAKE2P_HMAC(PSA_ALG_SHA_256)); - * psa_pake_cs_set_primitive(&cipher_suite, - * PSA_PAKE_PRIMITIVE(PSA_PAKE_PRIMITIVE_TYPE_ECC, - * PSA_ECC_FAMILY_TWISTED_EDWARDS, 255)); - * \endcode - * - * When setting up a PAKE cipher suite to use the SPAKE2+ protocol used by - * Matter: - * - Use the PSA_ALG_SPAKE2P_MATTER algorithm. - * - Use the PSA_PAKE_PRIMITIVE(PSA_PAKE_PRIMITIVE_TYPE_ECC, - * PSA_ECC_FAMILY_SECP_R1, 256) - * PAKE primitive. - * - * The following code creates a cipher suite to select the Matter variant of - * SPAKE2+: - * - * \code - * psa_pake_cipher_suite_t cipher_suite = PSA_PAKE_CIPHER_SUITE_INIT; - * psa_pake_cs_set_algorithm(&cipher_suite, PSA_ALG_SPAKE2P_MATTER); - * psa_pake_cs_set_primitive(&cipher_suite, - * PSA_PAKE_PRIMITIVE(PSA_PAKE_PRIMITIVE_TYPE_ECC, - * PSA_ECC_FAMILY_SECP_R1, 256)); - * \endcode - * - * After initializing a SPAKE2+ operation, call - * - * \code - * psa_pake_setup(operation, password, cipher_suite); - * psa_pake_set_role(operation, ...); - * \endcode - * - * The password provided to the client side must be of type - * #PSA_KEY_TYPE_SPAKE2P_KEY_PAIR. - * The password provided to the server side must be of type - * #PSA_KEY_TYPE_SPAKE2P_PUBLIC_KEY. - * - * The role set by \c psa_pake_set_role() must be either - * \c PSA_PAKE_ROLE_CLIENT or \c PSA_PAKE_ROLE_SERVER. - * - * Then provide any additional, optional parameters: - * - * \code - * psa_pake_set_user(operation, ...); - * psa_pake_set_peer(operation, ...); - * psa_pake_set_context(operation, ...); - * \endcode - * - * - * The key exchange flow for a SPAKE2+ client is as follows: - * \code - * // send shareP - * psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // receive shareV - * psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // receive confirmV - * psa_pake_input(operation, #PSA_PAKE_STEP_CONFIRM, ...); - * // send confirmP - * psa_pake_output(operation, #PSA_PAKE_STEP_CONFIRM, ...); - * // get K_shared - * psa_pake_get_shared_key(operation, ...); - * \endcode - * - * The key exchange flow for a SPAKE2+ server is as follows: - * \code - * // receive shareP - * psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // send shareV - * psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // send confirmV - * psa_pake_output(operation, #PSA_PAKE_STEP_CONFIRM, ...); - * // receive confirmP - * psa_pake_input(operation, #PSA_PAKE_STEP_CONFIRM, ...); - * // get K_shared - * psa_pake_get_shared_key(operation, ...); - * \endcode - * - * The shared secret that is produced by SPAKE2+ is pseudorandom. Although - * it can be used directly as an encryption key, it is recommended to use - * the shared secret as an input to a key derivation operation to produce - * additional cryptographic keys. - */ -#define PSA_ALG_IS_SPAKE2P_HMAC_BASE ((psa_algorithm_t) 0x0a000400) -#define PSA_ALG_SPAKE2P_HMAC(hash_alg) (PSA_ALG_IS_SPAKE2P_HMAC_BASE | ((hash_alg) & PSA_ALG_HASH_MASK)) -#define PSA_ALG_IS_SPAKE2P_CMAC_BASE ((psa_algorithm_t) 0x0a000500) -#define PSA_ALG_SPAKE2P_CMAC(hash_alg) (PSA_ALG_IS_SPAKE2P_CMAC_BASE | ((hash_alg) & PSA_ALG_HASH_MASK)) -#define PSA_ALG_SPAKE2P_MATTER ((psa_algorithm_t) 0x0A000609) -#define PSA_ALG_IS_SPAKE2P(alg) (((alg) & ~0x000003ff) == PSA_ALG_IS_SPAKE2P_HMAC_BASE) -#define PSA_ALG_IS_SPAKE2P_HMAC(alg) (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_IS_SPAKE2P_HMAC_BASE) -#define PSA_ALG_IS_SPAKE2P_CMAC(alg) (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_IS_SPAKE2P_CMAC_BASE) - - /** The Secure Remote Passwort key exchange (SRP) algorithm. - * - * This is SRP-6 as defined by RFC 2945 and RFC 5054, instantiated with the - * following parameters: - * - * - The group is defined over a finite field using a secure prime. - * - A cryptographic hash function. - * - * To select these parameters and set up the cipher suite, call these functions: - * - * \code - * psa_pake_cipher_suite_t cipher_suite = PSA_PAKE_CIPHER_SUITE_INIT; - * psa_pake_cs_set_algorithm(cipher_suite, PSA_ALG_SRP_6(hash)); - * psa_pake_cs_set_primitive(&cipher_suite, - * PSA_PAKE_PRIMITIVE(type, family, bits)); - * \endcode - * - * After initializing a SRP operation, call: - * - * \code - * psa_pake_setup(operation, password, cipher_suite); - * psa_pake_set_role(operation, ...); - * psa_pake_set_user(operation, ...); - * \endcode - * - * The password provided to the client side must be of type - * #PSA_KEY_TYPE_SRP_KEY_PAIR. - * The password provided to the server side must be of type - * #PSA_KEY_TYPE_SRP_PUBLIC_KEY. - * - * The role set by \c psa_pake_set_role() must be either - * \c PSA_PAKE_ROLE_CLIENT or \c PSA_PAKE_ROLE_SERVER. - * - * For the SRP client key exchange call the following functions in any order: - * \code - * // get salt - * psa_pake_input(operation, #PSA_PAKE_STEP_SALT, ...); - * // get server key - * psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // write client key - * psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * \endcode - * - * For the SRP server key exchange call the following functions in any order: - * \code - * // get salt - * psa_pake_input(operation, #PSA_PAKE_STEP_SALT, ...); - * // get client key - * psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * // write server key - * psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...); - * \endcode - * - * For the client proof phase call the following functions in this order: - * \code - * // send M1 - * psa_pake_input(operation, #PSA_PAKE_STEP_CONFIRM, ...); - * // receive M2 - * psa_pake_output(operation, #PSA_PAKE_STEP_CONFIRM, ...); - * // Get secret - * psa_pake_get_shared_key() - * \endcode - * - * For the server proof phase call the following functions in this order: - * \code - * // receive M1 - * psa_pake_output(operation, #PSA_PAKE_STEP_CONFIRM, ...); - * // send M2 - * psa_pake_input(operation, #PSA_PAKE_STEP_CONFIRM, ...); - * // Get secret - * psa_pake_get_shared_key() - * \endcode - * - * The shared secret that is produced by SRP is pseudorandom. Although - * it can be used directly as an encryption key, it is recommended to use - * the shared secret as an input to a key derivation operation to produce - * additional cryptographic keys. - */ -#define PSA_ALG_SRP_6_BASE ((psa_algorithm_t) 0x0a000300) -#define PSA_ALG_SRP_6(hash_alg) (PSA_ALG_SRP_6_BASE | ((hash_alg) & PSA_ALG_HASH_MASK)) -#define PSA_ALG_IS_SRP_6(alg) (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_SRP_6_BASE) - -/** @} */ - -/** \defgroup pake Password-authenticated key exchange (PAKE) - * - * This is a proposed PAKE interface for the PSA Crypto API. It is not part of - * the official PSA Crypto API yet. - * - * \note The content of this section is not part of the stable API and ABI - * of Mbed TLS and may change arbitrarily from version to version. - * Same holds for the corresponding macros #PSA_ALG_CATEGORY_PAKE and - * #PSA_ALG_JPAKE. - * @{ - */ - -/** A value to indicate no role in a PAKE algorithm. - * This value can be used in a call to psa_pake_set_role() for symmetric PAKE - * algorithms which do not assign roles. - */ -#define PSA_PAKE_ROLE_NONE ((psa_pake_role_t) 0x00) - -/** The first peer in a balanced PAKE. - * - * Although balanced PAKE algorithms are symmetric, some of them need an - * ordering of peers for the transcript calculations. If the algorithm does not - * need this, both #PSA_PAKE_ROLE_FIRST and #PSA_PAKE_ROLE_SECOND are - * accepted. - */ -#define PSA_PAKE_ROLE_FIRST ((psa_pake_role_t) 0x01) - -/** The second peer in a balanced PAKE. - * - * Although balanced PAKE algorithms are symmetric, some of them need an - * ordering of peers for the transcript calculations. If the algorithm does not - * need this, either #PSA_PAKE_ROLE_FIRST or #PSA_PAKE_ROLE_SECOND are - * accepted. - */ -#define PSA_PAKE_ROLE_SECOND ((psa_pake_role_t) 0x02) - -/** The client in an augmented PAKE. - * - * Augmented PAKE algorithms need to differentiate between client and server. - */ -#define PSA_PAKE_ROLE_CLIENT ((psa_pake_role_t) 0x11) - -/** The server in an augmented PAKE. - * - * Augmented PAKE algorithms need to differentiate between client and server. - */ -#define PSA_PAKE_ROLE_SERVER ((psa_pake_role_t) 0x12) - -/** The PAKE primitive type indicating the use of elliptic curves. - * - * The values of the \c family and \c bits fields of the cipher suite identify a - * specific elliptic curve, using the same mapping that is used for ECC - * (::psa_ecc_family_t) keys. - * - * (Here \c family means the value returned by PSA_PAKE_PRIMITIVE_GET_FAMILY() and - * \c bits means the value returned by PSA_PAKE_PRIMITIVE_GET_BITS().) - * - * Input and output during the operation can involve group elements and scalar - * values: - * -# The format for group elements is the same as for public keys on the - * specific curve would be. For more information, consult the documentation of - * psa_export_public_key(). - * -# The format for scalars is the same as for private keys on the specific - * curve would be. For more information, consult the documentation of - * psa_export_key(). - */ -#define PSA_PAKE_PRIMITIVE_TYPE_ECC ((psa_pake_primitive_type_t) 0x01) - -/** The PAKE primitive type indicating the use of Diffie-Hellman groups. - * - * The values of the \c family and \c bits fields of the cipher suite identify - * a specific Diffie-Hellman group, using the same mapping that is used for - * Diffie-Hellman (::psa_dh_family_t) keys. - * - * (Here \c family means the value returned by PSA_PAKE_PRIMITIVE_GET_FAMILY() and - * \c bits means the value returned by PSA_PAKE_PRIMITIVE_GET_BITS().) - * - * Input and output during the operation can involve group elements and scalar - * values: - * -# The format for group elements is the same as for public keys on the - * specific group would be. For more information, consult the documentation of - * psa_export_public_key(). - * -# The format for scalars is the same as for private keys on the specific - * group would be. For more information, consult the documentation of - * psa_export_key(). - */ -#define PSA_PAKE_PRIMITIVE_TYPE_DH ((psa_pake_primitive_type_t) 0x02) - -/** Construct a PAKE primitive from type, family and bit-size. - * - * \param pake_type The type of the primitive - * (value of type ::psa_pake_primitive_type_t). - * \param pake_family The family of the primitive - * (the type and interpretation of this parameter depends - * on \p pake_type, for more information consult the - * documentation of individual ::psa_pake_primitive_type_t - * constants). - * \param pake_bits The bit-size of the primitive - * (Value of type \c size_t. The interpretation - * of this parameter depends on \p pake_family, for more - * information consult the documentation of individual - * ::psa_pake_primitive_type_t constants). - * - * \return The constructed primitive value of type ::psa_pake_primitive_t. - * Return 0 if the requested primitive can't be encoded as - * ::psa_pake_primitive_t. - */ -#define PSA_PAKE_PRIMITIVE(pake_type, pake_family, pake_bits) \ - (((pake_bits & 0xFFFF) != pake_bits) ? 0 : \ - ((psa_pake_primitive_t) (((pake_type) << 24 | \ - (pake_family) << 16) | (pake_bits)))) - -#define PSA_PAKE_PRIMITIVE_GET_BITS(pake_primitive) \ - ((size_t)(pake_primitive & 0xFFFF)) - -#define PSA_PAKE_PRIMITIVE_GET_FAMILY(pake_primitive) \ - ((psa_pake_family_t)((pake_primitive >> 16) & 0xFF)) - -#define PSA_PAKE_PRIMITIVE_GET_TYPE(pake_primitive) \ - ((psa_pake_primitive_type_t)((pake_primitive >> 24) & 0xFF)) - -/** A key confirmation value that indicates a confirmed key in a PAKE cipher - * suite. - * - * This key confirmation value will result in the PAKE algorithm exchanging - * data to verify that the shared key is identical for both parties. This is - * the default key confirmation value in an initialized PAKE cipher suite - * object. - * Some algorithms do not include confirmation of the shared key. - */ -#define PSA_PAKE_CONFIRMED_KEY 0 - -/** A key confirmation value that indicates an unconfirmed key in a PAKE cipher - * suite. - * - * This key confirmation value will result in the PAKE algorithm terminating - * prior to confirming that the resulting shared key is identical for both - * parties. - * Some algorithms do not support returning an unconfirmed shared key. - */ -#define PSA_PAKE_UNCONFIRMED_KEY 1 - - /** The key share being sent to or received from the peer. - * - * The format for both input and output at this step is the same as for public - * keys on the group determined by the primitive (::psa_pake_primitive_t) would - * be. - * - * For more information on the format, consult the documentation of - * psa_export_public_key(). - * - * For information regarding how the group is determined, consult the - * documentation #PSA_PAKE_PRIMITIVE. - */ -#define PSA_PAKE_STEP_KEY_SHARE ((psa_pake_step_t) 0x01) - -/** A Schnorr NIZKP public key. - * - * This is the ephemeral public key in the Schnorr Non-Interactive - * Zero-Knowledge Proof (the value denoted by the letter 'V' in RFC 8235). - * - * The format for both input and output at this step is the same as for public - * keys on the group determined by the primitive (::psa_pake_primitive_t) would - * be. - * - * For more information on the format, consult the documentation of - * psa_export_public_key(). - * - * For information regarding how the group is determined, consult the - * documentation #PSA_PAKE_PRIMITIVE. - */ -#define PSA_PAKE_STEP_ZK_PUBLIC ((psa_pake_step_t) 0x02) - -/** A Schnorr NIZKP proof. - * - * This is the proof in the Schnorr Non-Interactive Zero-Knowledge Proof (the - * value denoted by the letter 'r' in RFC 8235). - * - * Both for input and output, the value at this step is an integer less than - * the order of the group selected in the cipher suite. The format depends on - * the group as well: - * - * - For Montgomery curves, the encoding is little endian. - * - For everything else the encoding is big endian (see Section 2.3.8 of - * _SEC 1: Elliptic Curve Cryptography_ at https://www.secg.org/sec1-v2.pdf). - * - * In both cases leading zeroes are allowed as long as the length in bytes does - * not exceed the byte length of the group order. - * - * For information regarding how the group is determined, consult the - * documentation #PSA_PAKE_PRIMITIVE. - */ -#define PSA_PAKE_STEP_ZK_PROOF ((psa_pake_step_t) 0x03) - -/** The key confirmation value. - * - * This value is used during the key confirmation phase of a PAKE protocol. - * The format of the value depends on the algorithm and cipher suite: - * - * For SPAKE2+ algorithms, the format for both input and output at this step is - * the same as the output of the MAC algorithm specified in the cipher suite. - * - * For PSA_ALG_SRP_6, the format for both input and output at this step is - * the same as the output of the Hash algorithm specified. - */ -#define PSA_PAKE_STEP_CONFIRM ((psa_pake_step_t)0x04) - -/** The salt. - * - * The format for both input and output at this step is plain binary data. - */ -#define PSA_PAKE_STEP_SALT ((psa_pake_step_t)0x05) - -/** Retrieve the PAKE algorithm from a PAKE cipher suite. - * - * \param[in] cipher_suite The cipher suite structure to query. - * - * \return The PAKE algorithm stored in the cipher suite structure. - */ -static psa_algorithm_t psa_pake_cs_get_algorithm( - const psa_pake_cipher_suite_t *cipher_suite); - -/** Declare the PAKE algorithm for the cipher suite. - * - * This function overwrites any PAKE algorithm - * previously set in \p cipher_suite. - * - * \param[out] cipher_suite The cipher suite structure to write to. - * \param algorithm The PAKE algorithm to write. - * (`PSA_ALG_XXX` values of type ::psa_algorithm_t - * such that #PSA_ALG_IS_PAKE(\c alg) is true.) - * If this is 0, the PAKE algorithm in - * \p cipher_suite becomes unspecified. - */ -static void psa_pake_cs_set_algorithm(psa_pake_cipher_suite_t *cipher_suite, - psa_algorithm_t algorithm); - -/** Retrieve the primitive from a PAKE cipher suite. - * - * \param[in] cipher_suite The cipher suite structure to query. - * - * \return The primitive stored in the cipher suite structure. - */ -static psa_pake_primitive_t psa_pake_cs_get_primitive( - const psa_pake_cipher_suite_t *cipher_suite); - -/** Declare the primitive for a PAKE cipher suite. - * - * This function overwrites any primitive previously set in \p cipher_suite. - * - * \param[out] cipher_suite The cipher suite structure to write to. - * \param primitive The primitive to write. If this is 0, the - * primitive type in \p cipher_suite becomes - * unspecified. - */ -static void psa_pake_cs_set_primitive(psa_pake_cipher_suite_t *cipher_suite, - psa_pake_primitive_t primitive); - -/** The type of the state data structure for PAKE operations. - * - * Before calling any function on a PAKE operation object, the application - * must initialize it by any of the following means: - * - Set the structure to all-bits-zero, for example: - * \code - * psa_pake_operation_t operation; - * memset(&operation, 0, sizeof(operation)); - * \endcode - * - Initialize the structure to logical zero values, for example: - * \code - * psa_pake_operation_t operation = {0}; - * \endcode - * - Initialize the structure to the initializer #PSA_PAKE_OPERATION_INIT, - * for example: - * \code - * psa_pake_operation_t operation = PSA_PAKE_OPERATION_INIT; - * \endcode - * - Assign the result of the function psa_pake_operation_init() - * to the structure, for example: - * \code - * psa_pake_operation_t operation; - * operation = psa_pake_operation_init(); - * \endcode - * - * This is an implementation-defined \c struct. Applications should not - * make any assumptions about the content of this structure. - * Implementation details can change in future versions without notice. */ -typedef struct psa_pake_operation_s psa_pake_operation_t; - -/** Return an initial value for a PAKE operation object. - */ -static psa_pake_operation_t psa_pake_operation_init(void); - -/** Set the session information for a password-authenticated key exchange. - * - * The sequence of operations to set up a password-authenticated key exchange - * is as follows: - * -# Allocate an operation object which will be passed to all the functions - * listed here. - * -# Initialize the operation object with one of the methods described in the - * documentation for #psa_pake_operation_t, e.g. - * #PSA_PAKE_OPERATION_INIT. - * -# Call psa_pake_setup() to specify the password key and the cipher suite. - * -# Call \c psa_pake_set_xxx() functions on the operation to complete the - * setup. The exact sequence of \c psa_pake_set_xxx() functions that needs - * to be called depends on the algorithm in use. - * - * Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX` - * values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) - * for more information. - * - * A typical sequence of calls to perform a password-authenticated key - * exchange: - * -# Call psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...) to get the - * key share that needs to be sent to the peer. - * -# Call psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...) to provide - * the key share that was received from the peer. - * -# Depending on the algorithm additional calls to psa_pake_output() and - * psa_pake_input() might be necessary. - * -# Call psa_pake_get_shared_key() for accessing the shared secret. - * - * Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX` - * values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) - * for more information. - * - * If an error occurs at any step after a call to psa_pake_setup(), - * the operation will need to be reset by a call to psa_pake_abort(). The - * application may call psa_pake_abort() at any time after the operation - * has been initialized. - * - * After a successful call to psa_pake_setup(), the application must - * eventually terminate the operation. The following events terminate an - * operation: - * - A call to psa_pake_abort(). - * - A successful call to psa_pake_get_shared_key(). - * - * \param[in,out] operation The operation object to set up. It must have - * been initialized but not set up yet. - * \param[in] password_key Identifier of the key holding the password or - * a value derived from the password. It must - * remain valid until the operation terminates. - * The valid key types depend on the PAKE algorithm, - * and participant role. - * \param[in] cipher_suite The cipher suite to use. (A cipher suite fully - * characterizes a PAKE algorithm and determines - * the algorithm as well.) - * - * \retval #PSA_SUCCESS - * Success. - * \retval #PSA_ERROR_INVALID_HANDLE - * \p password_key is not a valid key identifier. - * \retval #PSA_ERROR_NOT_PERMITTED - * The key does not have the #PSA_KEY_USAGE_DERIVE flag, or it does not - * permit the \p operation's algorithm. - * \retval #PSA_ERROR_INVALID_ARGUMENT - * The algorithm in \p cipher_suite is not a PAKE algorithm or encodes - * an invalid hash algorithm, or the PAKE primitive in \p cipher_suite - * is not compatible with the PAKE algorithm, or the key confirmation - * value in \p cipher_suite is not compatible with the PAKE algorithm - * and primitive, or the \p password_key is not compatible with - * \p cipher_suite. - * \retval #PSA_ERROR_NOT_SUPPORTED - * The algorithm in \p cipher_suite is not a supported PAKE algorithm, - * or the PAKE primitive in \p cipher_suite is not supported or not - * compatible with the PAKE algorithm, or the key confirmation value - * in \p cipher_suite is not supported or not compatible with the PAKE - * algorithm and primitive, or the key type or key size of - * \p password_key is not supported with \p cipher_suite. - * \retval #PSA_ERROR_COMMUNICATION_FAILURE \emptydescription - * \retval #PSA_ERROR_CORRUPTION_DETECTED \emptydescription - * \retval #PSA_ERROR_BAD_STATE - * The operation state is not valid, or - * the library has not been previously initialized by psa_crypto_init(). - * It is implementation-dependent whether a failure to initialize - * results in this error code. - */ -psa_status_t psa_pake_setup(psa_pake_operation_t *operation, - mbedtls_svc_key_id_t password_key, - const psa_pake_cipher_suite_t *cipher_suite); - -/** Set the application role for a password-authenticated key exchange. -* -* Not all PAKE algorithms need to differentiate the communicating entities. -* It is optional to call this function for PAKEs that don't require a role -* to be specified. For such PAKEs the application role parameter is ignored, -* or #PSA_PAKE_ROLE_NONE can be passed as \c role. -* -* Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX` -* values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) -* for more information. -* -* \param[in,out] operation The operation object to specify the -* application's role for. It must have been set up -* by psa_pake_setup() and not yet in use (neither -* psa_pake_output() nor psa_pake_input() has been -* called yet). It must be an operation for which -* the application's role hasn't been specified -* (psa_pake_set_role() hasn't been called yet). -* \param role A value of type ::psa_pake_role_t indicating the -* application's role in the PAKE algorithm -* that is being set up. For more information see -* the documentation of \c PSA_PAKE_ROLE_XXX -* constants. -* -* \retval #PSA_SUCCESS -* Success. -* \retval #PSA_ERROR_INVALID_ARGUMENT -* The \p role is not a valid PAKE role in the \p operation’s algorithm. -* \retval #PSA_ERROR_NOT_SUPPORTED -* The \p role for this algorithm is not supported or is not valid. -* \retval #PSA_ERROR_COMMUNICATION_FAILURE \emptydescription -* \retval #PSA_ERROR_CORRUPTION_DETECTED \emptydescription -* \retval #PSA_ERROR_BAD_STATE -* The operation state is not valid, or -* the library has not been previously initialized by psa_crypto_init(). -* It is implementation-dependent whether a failure to initialize -* results in this error code. -*/ -psa_status_t psa_pake_set_role(psa_pake_operation_t *operation, - psa_pake_role_t role); - -/** Set the user ID for a password-authenticated key exchange. - * - * Call this function to set the user ID. For PAKE algorithms that associate a - * user identifier with each side of the session you need to call - * psa_pake_set_peer() as well. For PAKE algorithms that associate a single - * user identifier with the session, call psa_pake_set_user() only. - * - * Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX` - * values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) - * for more information. - * - * \param[in,out] operation The operation object to set the user ID for. It - * must have been set up by psa_pake_setup() and - * not yet in use (neither psa_pake_output() nor - * psa_pake_input() has been called yet). It must - * be on operation for which the user ID hasn't - * been set (psa_pake_set_user() hasn't been - * called yet). - * \param[in] user_id The user ID to authenticate with. - * \param user_id_len Size of the \p user_id buffer in bytes. - * - * \retval #PSA_SUCCESS - * Success. - * \retval #PSA_ERROR_INVALID_ARGUMENT - * \p user_id is not valid for the \p operation's algorithm and cipher - * suite. - * \retval #PSA_ERROR_NOT_SUPPORTED - * The value of \p user_id is not supported by the implementation. - * \retval #PSA_ERROR_INSUFFICIENT_MEMORY \emptydescription - * \retval #PSA_ERROR_COMMUNICATION_FAILURE \emptydescription - * \retval #PSA_ERROR_CORRUPTION_DETECTED \emptydescription - * \retval #PSA_ERROR_BAD_STATE - * The operation state is not valid, or - * the library has not been previously initialized by psa_crypto_init(). - * It is implementation-dependent whether a failure to initialize - * results in this error code. - */ -psa_status_t psa_pake_set_user(psa_pake_operation_t *operation, - const uint8_t *user_id, - size_t user_id_len); - -/** Set the peer ID for a password-authenticated key exchange. - * - * Call this function in addition to psa_pake_set_user() for PAKE algorithms - * that associate a user identifier with each side of the session. For PAKE - * algorithms that associate a single user identifier with the session, call - * psa_pake_set_user() only. - * - * Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX` - * values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) - * for more information. - * - * \param[in,out] operation The operation object to set the peer ID for. It - * must have been set up by psa_pake_setup() and - * not yet in use (neither psa_pake_output() nor - * psa_pake_input() has been called yet). It must - * be on operation for which the peer ID hasn't - * been set (psa_pake_set_peer() hasn't been - * called yet). - * \param[in] peer_id The peer's ID to authenticate. - * \param peer_id_len Size of the \p peer_id buffer in bytes. - * - * \retval #PSA_SUCCESS - * Success. - * \retval #PSA_ERROR_INVALID_ARGUMENT - * \p peer_id is not valid for the \p operation's algorithm and cipher - * suite. - * \retval #PSA_ERROR_NOT_SUPPORTED - * The algorithm doesn't associate a second identity with the session. - * \retval #PSA_ERROR_INSUFFICIENT_MEMORY \emptydescription - * \retval #PSA_ERROR_COMMUNICATION_FAILURE \emptydescription - * \retval #PSA_ERROR_CORRUPTION_DETECTED \emptydescription - * \retval #PSA_ERROR_BAD_STATE - * Calling psa_pake_set_peer() is invalid with the \p operation's - * algorithm, the operation state is not valid, or the library has not - * been previously initialized by psa_crypto_init(). - * It is implementation-dependent whether a failure to initialize - * results in this error code. - */ -psa_status_t psa_pake_set_peer(psa_pake_operation_t *operation, - const uint8_t *peer_id, - size_t peer_id_len); - -/** Set the context data for a password-authenticated key exchange. - * - * Call this function for PAKE algorithms that accept additional context data - * as part of the protocol setup. - * - * Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX` - * values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) - * for more information. - * - * \param[in,out] operation The operation object to set the context for. It - * must have been set up by psa_pake_setup() and - * not yet in use (neither psa_pake_output() nor - * psa_pake_input() has been called yet). It must - * be on operation for which the context hasn't - * been set (psa_pake_set_context() hasn't been - * called yet). - * \param[in] context The context. - * \param context_len Size of the \p context buffer in bytes. - * - * \retval #PSA_SUCCESS - * Success. - * \retval #PSA_ERROR_INVALID_ARGUMENT - * The \p context is not valid for the operation’s algorithm and cipher suite. - * \retval #PSA_ERROR_NOT_SUPPORTED - * The \p context is not supported by the implementation. - * \retval #PSA_ERROR_COMMUNICATION_FAILURE \emptydescription - * \retval #PSA_ERROR_CORRUPTION_DETECTED \emptydescription - * \retval #PSA_ERROR_BAD_STATE - * Calling psa_pake_set_context() is invalid with the \p operation's - * algorithm, the operation state is not valid, or the library has not - * been previously initialized by psa_crypto_init(). - * It is implementation-dependent whether a failure to initialize - * results in this error code. - */ -psa_status_t psa_pake_set_context(psa_pake_operation_t *operation, - const uint8_t *context, - size_t context_len); - -/** Get output for a step of a password-authenticated key exchange. - * - * Depending on the algorithm being executed, you might need to call this - * function several times or you might not need to call this at all. - * - * The exact sequence of calls to perform a password-authenticated key - * exchange depends on the algorithm in use. Refer to the documentation of - * individual PAKE algorithm types (`PSA_ALG_XXX` values of type - * ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) for more - * information. - * - * If this function returns an error status, the operation enters an error - * state and must be aborted by calling psa_pake_abort(). - * - * \param[in,out] operation Active PAKE operation. - * \param step The step of the algorithm for which the output - * is requested. - * \param[out] output Buffer where the output is to be written in the - * format appropriate for this \p step. Refer to - * the documentation of the individual - * \c PSA_PAKE_STEP_XXX constants for more - * information. - * \param output_size Size of the \p output buffer in bytes. This must - * be at least #PSA_PAKE_OUTPUT_SIZE(\c alg, \c - * primitive, \p output_step) where \c alg and - * \p primitive are the PAKE algorithm and primitive - * in the operation's cipher suite, and \p step is - * the output step. - * - * \param[out] output_length On success, the number of bytes of the returned - * output. - * - * \retval #PSA_SUCCESS - * Success. - * \retval #PSA_ERROR_BUFFER_TOO_SMALL - * The size of the \p output buffer is too small. - * \retval #PSA_ERROR_INVALID_ARGUMENT - * \p step is not compatible with the operation's algorithm. - * \retval #PSA_ERROR_NOT_SUPPORTED - * \p step is not supported with the operation's algorithm. - * \retval #PSA_ERROR_INSUFFICIENT_ENTROPY \emptydescription - * \retval #PSA_ERROR_INSUFFICIENT_MEMORY \emptydescription - * \retval #PSA_ERROR_COMMUNICATION_FAILURE \emptydescription - * \retval #PSA_ERROR_CORRUPTION_DETECTED \emptydescription - * \retval #PSA_ERROR_STORAGE_FAILURE \emptydescription - * \retval #PSA_ERROR_DATA_CORRUPT \emptydescription - * \retval #PSA_ERROR_DATA_INVALID \emptydescription - * \retval #PSA_ERROR_BAD_STATE - * The operation state is not valid (it must be active, and fully set - * up, and this call must conform to the algorithm's requirements - * for ordering of input and output steps), or the library has not - * been previously initialized by psa_crypto_init(). - * It is implementation-dependent whether a failure to initialize - * results in this error code. - */ -psa_status_t psa_pake_output(psa_pake_operation_t *operation, - psa_pake_step_t step, - uint8_t *output, - size_t output_size, - size_t *output_length); - -/** Provide input for a step of a password-authenticated key exchange. - * - * Depending on the algorithm being executed, you might need to call this - * function several times or you might not need to call this at all. - * - * The exact sequence of calls to perform a password-authenticated key - * exchange depends on the algorithm in use. Refer to the documentation of - * individual PAKE algorithm types (`PSA_ALG_XXX` values of type - * ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) for more - * information. - * - * If this function returns an error status, the operation enters an error - * state and must be aborted by calling psa_pake_abort(). - * - * \param[in,out] operation Active PAKE operation. - * \param step The step for which the input is provided. - * \param[in] input Buffer containing the input in the format - * appropriate for this \p step. Refer to the - * documentation of the individual - * \c PSA_PAKE_STEP_XXX constants for more - * information. - * \param input_length Size of the \p input buffer in bytes. - * - * \retval #PSA_SUCCESS - * Success. - * \retval #PSA_ERROR_INVALID_SIGNATURE - * The verification fails for a #PSA_PAKE_STEP_ZK_PROOF input step. - * \retval #PSA_ERROR_INVALID_ARGUMENT - * \p step is not compatible with the operation's algorithm, or - * \p input_length is not compatible with the \p operation’s algorithm, - * or the \p input is not valid for the \p operation's algorithm, - * cipher suite or \p step. - * \retval #PSA_ERROR_NOT_SUPPORTED - * \p step is not supported with the operation's algorithm, or - * \p step p is not supported with the \p operation's algorithm, or the - * \p input is not supported for the \p operation's algorithm, cipher - * suite or \p step. - * \retval #PSA_ERROR_INSUFFICIENT_MEMORY \emptydescription - * \retval #PSA_ERROR_COMMUNICATION_FAILURE \emptydescription - * \retval #PSA_ERROR_CORRUPTION_DETECTED \emptydescription - * \retval #PSA_ERROR_STORAGE_FAILURE \emptydescription - * \retval #PSA_ERROR_DATA_CORRUPT \emptydescription - * \retval #PSA_ERROR_DATA_INVALID \emptydescription - * \retval #PSA_ERROR_BAD_STATE - * The operation state is not valid (it must be active, and fully set - * up, and this call must conform to the algorithm's requirements - * for ordering of input and output steps), or the library has not - * been previously initialized by psa_crypto_init(). - * It is implementation-dependent whether a failure to initialize - * results in this error code. - */ -psa_status_t psa_pake_input(psa_pake_operation_t *operation, - psa_pake_step_t step, - const uint8_t *input, - size_t input_length); - -/** Get shared secret from a PAKE. - * - * This is the final call in a PAKE operation, which retrieves the shared - * secret as a key. It is recommended that this key is used as an input to a - * key derivation operation to produce additional cryptographic keys. For - * some PAKE algorithms, the shared secret is also suitable for use as a key - * in cryptographic operations such as encryption. Refer to the documentation - * of individual PAKE algorithm types (`PSA_ALG_XXX` values of type - * ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) for more - * information. - * - * Depending on the key confirmation requested in the cipher suite, - * psa_pake_get_shared_key() must be called either before or after the - * key-confirmation output and input steps for the PAKE algorithm. The key - * confirmation affects the guarantees that can be made about the shared key: - * - * Unconfirmed key - * If the cipher suite used to set up the operation requested an unconfirmed - * key, the application must call psa_pake_get_shared_key() after the - * key-exchange output and input steps are completed. The PAKE algorithm - * provides a cryptographic guarantee that only a peer who used the same - * password, and identity inputs, is able to compute the same key. However, - * there is no guarantee that the peer is the participant it claims to be, - * and was able to compute the same key. - * Since the peer is not authenticated, no action should be taken that assumes - * that the peer is who it claims to be. For example, do not access restricted - * files on the peer’s behalf until an explicit authentication has succeeded. - * Note: - * Some PAKE algorithms do not enable the output of the shared secret until it - * has been confirmed. - * - * Confirmed key - * If the cipher suite used to set up the operation requested a confirmed key, - * the application must call psa_pake_get_shared_key() after the key-exchange - * and key-confirmation output and input steps are completed. - * Following key confirmation, the PAKE algorithm provides a cryptographic - * guarantee that the peer used the same password and identity inputs, and has - * computed the identical shared secret key. - * Since the peer is not authenticated, no action should be taken that assumes - * that the peer is who it claims to be. For example, do not access restricted - * files on the peer’s behalf until an explicit authentication has succeeded. - * Note: - * Some PAKE algorithms do not include any key-confirmation steps. - * - * The exact sequence of calls to perform a password-authenticated key - * exchange depends on the algorithm in use. - * - * When this function returns successfully, \p operation becomes inactive. - * If this function returns an error status, both \p operation - * and \c key_derivation operations enter an error state and must be aborted - * by calling psa_pake_abort(). - * - * \param[in,out] operation Active PAKE operation. - * \param[in] attributes The attributes for the new key. - * \param[out] key On success, an identifier for the newly created - * key. #PSA_KEY_ID_NULL on failure. - * - * \retval #PSA_SUCCESS - * Success. - * \retval #PSA_ERROR_NOT_PERMITTED - * The implementation does not permit creating a key with the - * specified attributes due to some implementation-specific policy. - * \retval #PSA_ERROR_ALREADY_EXISTS - * This is an attempt to create a persistent key, and there is - * already a persistent key with the given identifier. - * \retval #PSA_ERROR_INVALID_ARGUMENT - * The key type is not valid for output from this operation’s - * algorithm, or the key size is nonzero, or the key lifetime is - * invalid, the key identifier is not valid for the key lifetime, - * or the key usage flags include invalid values, or the key’s - * permitted-usage algorithm is invalid, or the key attributes, - * as a whole, are invalid. - * \retval #PSA_ERROR_NOT_SUPPORTED - * The key attributes, as a whole, are not supported for creation - * from a PAKE secret, either by the implementation in general or - * in the specified storage location. - * \retval #PSA_ERROR_INSUFFICIENT_MEMORY \emptydescription - * \retval #PSA_ERROR_COMMUNICATION_FAILURE \emptydescription - * \retval #PSA_ERROR_CORRUPTION_DETECTED \emptydescription - * \retval #PSA_ERROR_STORAGE_FAILURE \emptydescription - * \retval #PSA_ERROR_DATA_CORRUPT \emptydescription - * \retval #PSA_ERROR_DATA_INVALID \emptydescription - * \retval #PSA_ERROR_BAD_STATE - * The PAKE operation state is not valid (it must be ready to return - * the shared secret), or the library has not been previously - * initialized by psa_crypto_init(). - * It is implementation-dependent whether a failure to initialize - * results in this error code. - */ -psa_status_t psa_pake_get_shared_key(psa_pake_operation_t *operation, - const psa_key_attributes_t *attributes, - mbedtls_svc_key_id_t *key); - -/** Abort a PAKE operation. - * - * Aborting an operation frees all associated resources except for the \c - * operation structure itself. Once aborted, the operation object can be reused - * for another operation by calling psa_pake_setup() again. - * - * This function may be called at any time after the operation - * object has been initialized as described in #psa_pake_operation_t. - * - * In particular, calling psa_pake_abort() after the operation has been - * terminated by a call to psa_pake_abort() or psa_pake_get_shared_key() - * is safe and has no effect. - * - * \param[in,out] operation The operation to abort. - * - * \retval #PSA_SUCCESS - * Success. - * \retval #PSA_ERROR_COMMUNICATION_FAILURE \emptydescription - * \retval #PSA_ERROR_CORRUPTION_DETECTED \emptydescription - * \retval #PSA_ERROR_BAD_STATE - * The library has not been previously initialized by psa_crypto_init(). - * It is implementation-dependent whether a failure to initialize - * results in this error code. - */ -psa_status_t psa_pake_abort(psa_pake_operation_t *operation); - -/**@}*/ - -/** A sufficient output buffer size for psa_pake_output(). - * - * If the size of the output buffer is at least this large, it is guaranteed - * that psa_pake_output() will not fail due to an insufficient output buffer - * size. The actual size of the output might be smaller in any given call. - * - * See also #PSA_PAKE_OUTPUT_MAX_SIZE - * - * \param alg A PAKE algorithm (\c PSA_ALG_XXX value such that - * #PSA_ALG_IS_PAKE(\p alg) is true). - * \param primitive A primitive of type ::psa_pake_primitive_t that is - * compatible with algorithm \p alg. - * \param output_step A value of type ::psa_pake_step_t that is valid for the - * algorithm \p alg. - * \return A sufficient output buffer size for the specified - * PAKE algorithm, primitive, and output step. If the - * PAKE algorithm, primitive, or output step is not - * recognized, or the parameters are incompatible, - * return 0. - */ -#define PSA_PAKE_OUTPUT_SIZE(alg, primitive, output_step) \ - (output_step == PSA_PAKE_STEP_KEY_SHARE ? \ - PSA_PAKE_PRIMITIVE_GET_TYPE(primitive) == PSA_PAKE_PRIMITIVE_TYPE_DH ? \ - PSA_BITS_TO_BYTES(PSA_PAKE_PRIMITIVE_GET_BITS(primitive)) : \ - PSA_KEY_EXPORT_ECC_PUBLIC_KEY_MAX_SIZE(PSA_PAKE_PRIMITIVE_GET_BITS(primitive)) : \ - output_step == PSA_PAKE_STEP_ZK_PUBLIC ? \ - PSA_KEY_EXPORT_ECC_PUBLIC_KEY_MAX_SIZE(PSA_PAKE_PRIMITIVE_GET_BITS(primitive)) : \ - output_step == PSA_PAKE_STEP_ZK_PROOF ? \ - PSA_BITS_TO_BYTES(PSA_PAKE_PRIMITIVE_GET_BITS(primitive)) : \ - output_step == PSA_PAKE_STEP_CONFIRM ? \ - PSA_ALG_IS_SPAKE2P_CMAC(alg) ? \ - PSA_MAC_LENGTH(PSA_KEY_TYPE_AES, 128, PSA_ALG_CMAC) : \ - PSA_HASH_LENGTH(alg) : \ - 0u) - -/** A sufficient input buffer size for psa_pake_input(). - * - * The value returned by this macro is guaranteed to be large enough for any - * valid input to psa_pake_input() in an operation with the specified - * parameters. - * - * See also #PSA_PAKE_INPUT_MAX_SIZE - * - * \param alg A PAKE algorithm (\c PSA_ALG_XXX value such that - * #PSA_ALG_IS_PAKE(\p alg) is true). - * \param primitive A primitive of type ::psa_pake_primitive_t that is - * compatible with algorithm \p alg. - * \param input_step A value of type ::psa_pake_step_t that is valid for the - * algorithm \p alg. - * \return A sufficient input buffer size for the specified - * input, cipher suite and algorithm. If the cipher suite, - * the input type or PAKE algorithm is not recognized, or - * the parameters are incompatible, return 0. - */ -#define PSA_PAKE_INPUT_SIZE(alg, primitive, input_step) \ - (input_step == PSA_PAKE_STEP_KEY_SHARE ? \ - PSA_PAKE_PRIMITIVE_GET_TYPE(primitive) == PSA_PAKE_PRIMITIVE_TYPE_DH ? \ - PSA_BITS_TO_BYTES(PSA_PAKE_PRIMITIVE_GET_BITS(primitive)) : \ - PSA_KEY_EXPORT_ECC_PUBLIC_KEY_MAX_SIZE(PSA_PAKE_PRIMITIVE_GET_BITS(primitive)) : \ - input_step == PSA_PAKE_STEP_ZK_PUBLIC ? \ - PSA_KEY_EXPORT_ECC_PUBLIC_KEY_MAX_SIZE(PSA_PAKE_PRIMITIVE_GET_BITS(primitive)) : \ - input_step == PSA_PAKE_STEP_ZK_PROOF ? \ - PSA_BITS_TO_BYTES(PSA_PAKE_PRIMITIVE_GET_BITS(primitive)) : \ - input_step == PSA_PAKE_STEP_CONFIRM ? \ - PSA_ALG_IS_SPAKE2P_CMAC(alg) ? \ - PSA_MAC_LENGTH(PSA_KEY_TYPE_AES, 128, PSA_ALG_CMAC) : \ - PSA_HASH_LENGTH(alg) : \ - input_step == PSA_PAKE_STEP_SALT ? \ - 64u : \ - 0u) - -/** Output buffer size for psa_pake_output() for any of the supported PAKE - * algorithm and primitive suites and output step. - * - * This macro must expand to a compile-time constant integer. - * - * The value of this macro must be at least as large as the largest value - * returned by PSA_PAKE_OUTPUT_SIZE() - * - * See also #PSA_PAKE_OUTPUT_SIZE(\p alg, \p primitive, \p output_step). - */ -#ifdef PSA_WANT_ALG_SRP_6 -#define PSA_PAKE_OUTPUT_MAX_SIZE PSA_BITS_TO_BYTES(PSA_VENDOR_FFDH_MAX_KEY_BITS) -#else -#define PSA_PAKE_OUTPUT_MAX_SIZE PSA_KEY_EXPORT_ECC_PUBLIC_KEY_MAX_SIZE(PSA_VENDOR_ECC_MAX_CURVE_BITS) -#endif - -/** Input buffer size for psa_pake_input() for any of the supported PAKE - * algorithm and primitive suites and input step. - * - * This macro must expand to a compile-time constant integer. - * - * The value of this macro must be at least as large as the largest value - * returned by PSA_PAKE_INPUT_SIZE() - * - * See also #PSA_PAKE_INPUT_SIZE(\p alg, \p primitive, \p output_step). - */ -#ifdef PSA_WANT_ALG_SRP_6 -#define PSA_PAKE_INPUT_MAX_SIZE PSA_BITS_TO_BYTES(PSA_VENDOR_FFDH_MAX_KEY_BITS) -#else -#define PSA_PAKE_INPUT_MAX_SIZE PSA_KEY_EXPORT_ECC_PUBLIC_KEY_MAX_SIZE(PSA_VENDOR_ECC_MAX_CURVE_BITS) -#endif - -static inline psa_algorithm_t psa_pake_cs_get_algorithm( - const psa_pake_cipher_suite_t *cipher_suite) -{ - return cipher_suite->algorithm; -} - -static inline void psa_pake_cs_set_algorithm( - psa_pake_cipher_suite_t *cipher_suite, - psa_algorithm_t algorithm) -{ - if (!PSA_ALG_IS_PAKE(algorithm)) { - cipher_suite->algorithm = 0; - } else { - cipher_suite->algorithm = algorithm; - } -} - -static inline psa_pake_primitive_t psa_pake_cs_get_primitive( - const psa_pake_cipher_suite_t *cipher_suite) -{ - return cipher_suite->primitive; -} - -static inline void psa_pake_cs_set_primitive( - psa_pake_cipher_suite_t *cipher_suite, - psa_pake_primitive_t primitive) -{ - cipher_suite->primitive = primitive; -} - -static inline uint32_t psa_pake_cs_get_key_confirmation( - const psa_pake_cipher_suite_t* cipher_suite) -{ - return cipher_suite->key_confirmation; -} - -static inline void psa_pake_cs_set_key_confirmation( - psa_pake_cipher_suite_t* cipher_suite, - uint32_t key_confirmation) -{ - cipher_suite->key_confirmation = key_confirmation; -} - -/**@}*/ - -#ifdef __cplusplus -} -#endif - -#endif /* PSA_CRYPTO_EXTRA_H */ |
