blob: 32e956925bec068fcd68548fa73ed1a024f7ccb0 [file] [log] [blame]
Gilles Peskinee59236f2018-01-27 23:32:46 +01001/**
2 * \file psa/crypto_extra.h
3 *
4 * \brief PSA cryptography module: Mbed TLS vendor extensions
Gilles Peskine07c91f52018-06-28 18:02:53 +02005 *
6 * \note This file may not be included directly. Applications must
7 * include psa/crypto.h.
8 *
9 * This file is reserved for vendor-specific definitions.
Gilles Peskinee59236f2018-01-27 23:32:46 +010010 */
11/*
Bence Szépkúti1e148272020-08-07 13:07:28 +020012 * Copyright The Mbed TLS Contributors
Gilles Peskinee59236f2018-01-27 23:32:46 +010013 * SPDX-License-Identifier: Apache-2.0
14 *
15 * Licensed under the Apache License, Version 2.0 (the "License"); you may
16 * not use this file except in compliance with the License.
17 * You may obtain a copy of the License at
18 *
19 * http://www.apache.org/licenses/LICENSE-2.0
20 *
21 * Unless required by applicable law or agreed to in writing, software
22 * distributed under the License is distributed on an "AS IS" BASIS, WITHOUT
23 * WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
24 * See the License for the specific language governing permissions and
25 * limitations under the License.
Gilles Peskinee59236f2018-01-27 23:32:46 +010026 */
27
28#ifndef PSA_CRYPTO_EXTRA_H
29#define PSA_CRYPTO_EXTRA_H
Mateusz Starzyk846f0212021-05-19 19:44:07 +020030#include "mbedtls/private_access.h"
Gilles Peskinee59236f2018-01-27 23:32:46 +010031
Jaeden Amero81cefed2019-02-25 08:51:27 +000032#include "mbedtls/platform_util.h"
33
Gilles Peskine09c02ee2021-11-25 20:30:47 +010034#include "crypto_types.h"
Gilles Peskine7a894f22019-11-26 16:06:46 +010035#include "crypto_compat.h"
36
Gilles Peskinee59236f2018-01-27 23:32:46 +010037#ifdef __cplusplus
38extern "C" {
39#endif
40
Netanel Gonen2bcd3122018-11-19 11:53:02 +020041/* UID for secure storage seed */
avolinski0d2c2662018-11-21 17:31:07 +020042#define PSA_CRYPTO_ITS_RANDOM_SEED_UID 0xFFFFFF52
Netanel Gonen2bcd3122018-11-19 11:53:02 +020043
Bence Szépkútibb0cfeb2021-05-28 09:42:25 +020044/* See mbedtls_config.h for definition */
Steven Cooreman863470a2021-02-15 14:03:19 +010045#if !defined(MBEDTLS_PSA_KEY_SLOT_COUNT)
46#define MBEDTLS_PSA_KEY_SLOT_COUNT 32
Steven Cooreman1f968fd2021-02-15 14:00:24 +010047#endif
Jaeden Amero5e6d24c2019-02-21 10:41:29 +000048
Gilles Peskine96f0b3b2019-05-10 19:33:38 +020049/** \addtogroup attributes
50 * @{
51 */
52
53/** \brief Declare the enrollment algorithm for a key.
54 *
55 * An operation on a key may indifferently use the algorithm set with
56 * psa_set_key_algorithm() or with this function.
57 *
58 * \param[out] attributes The attribute structure to write to.
59 * \param alg2 A second algorithm that the key may be used
60 * for, in addition to the algorithm set with
61 * psa_set_key_algorithm().
62 *
63 * \warning Setting an enrollment algorithm is not recommended, because
64 * using the same key with different algorithms can allow some
65 * attacks based on arithmetic relations between different
66 * computations made with the same key, or can escalate harmless
67 * side channels into exploitable ones. Use this function only
Gilles Peskinef25c9ec2019-05-22 11:45:59 +020068 * if it is necessary to support a protocol for which it has been
Gilles Peskine96f0b3b2019-05-10 19:33:38 +020069 * verified that the usage of the key with multiple algorithms
70 * is safe.
71 */
72static inline void psa_set_key_enrollment_algorithm(
73 psa_key_attributes_t *attributes,
74 psa_algorithm_t alg2)
75{
Mateusz Starzyk846f0212021-05-19 19:44:07 +020076 attributes->MBEDTLS_PRIVATE(core).MBEDTLS_PRIVATE(policy).MBEDTLS_PRIVATE(alg2) = alg2;
Gilles Peskine96f0b3b2019-05-10 19:33:38 +020077}
78
79/** Retrieve the enrollment algorithm policy from key attributes.
80 *
81 * \param[in] attributes The key attribute structure to query.
82 *
83 * \return The enrollment algorithm stored in the attribute structure.
84 */
85static inline psa_algorithm_t psa_get_key_enrollment_algorithm(
86 const psa_key_attributes_t *attributes)
87{
Gilles Peskine449bd832023-01-11 14:50:10 +010088 return attributes->MBEDTLS_PRIVATE(core).MBEDTLS_PRIVATE(policy).MBEDTLS_PRIVATE(alg2);
Gilles Peskine96f0b3b2019-05-10 19:33:38 +020089}
90
Gilles Peskinec8000c02019-08-02 20:15:51 +020091#if defined(MBEDTLS_PSA_CRYPTO_SE_C)
92
93/** Retrieve the slot number where a key is stored.
94 *
95 * A slot number is only defined for keys that are stored in a secure
96 * element.
97 *
98 * This information is only useful if the secure element is not entirely
99 * managed through the PSA Cryptography API. It is up to the secure
100 * element driver to decide how PSA slot numbers map to any other interface
101 * that the secure element may have.
102 *
103 * \param[in] attributes The key attribute structure to query.
104 * \param[out] slot_number On success, the slot number containing the key.
105 *
106 * \retval #PSA_SUCCESS
107 * The key is located in a secure element, and \p *slot_number
108 * indicates the slot number that contains it.
109 * \retval #PSA_ERROR_NOT_PERMITTED
110 * The caller is not permitted to query the slot number.
111 * Mbed Crypto currently does not return this error.
112 * \retval #PSA_ERROR_INVALID_ARGUMENT
113 * The key is not located in a secure element.
114 */
115psa_status_t psa_get_key_slot_number(
116 const psa_key_attributes_t *attributes,
Gilles Peskine449bd832023-01-11 14:50:10 +0100117 psa_key_slot_number_t *slot_number);
Gilles Peskinec8000c02019-08-02 20:15:51 +0200118
119/** Choose the slot number where a key is stored.
120 *
121 * This function declares a slot number in the specified attribute
122 * structure.
123 *
124 * A slot number is only meaningful for keys that are stored in a secure
125 * element. It is up to the secure element driver to decide how PSA slot
126 * numbers map to any other interface that the secure element may have.
127 *
128 * \note Setting a slot number in key attributes for a key creation can
129 * cause the following errors when creating the key:
130 * - #PSA_ERROR_NOT_SUPPORTED if the selected secure element does
131 * not support choosing a specific slot number.
132 * - #PSA_ERROR_NOT_PERMITTED if the caller is not permitted to
133 * choose slot numbers in general or to choose this specific slot.
134 * - #PSA_ERROR_INVALID_ARGUMENT if the chosen slot number is not
135 * valid in general or not valid for this specific key.
136 * - #PSA_ERROR_ALREADY_EXISTS if there is already a key in the
137 * selected slot.
138 *
139 * \param[out] attributes The attribute structure to write to.
140 * \param slot_number The slot number to set.
141 */
142static inline void psa_set_key_slot_number(
143 psa_key_attributes_t *attributes,
Gilles Peskine449bd832023-01-11 14:50:10 +0100144 psa_key_slot_number_t slot_number)
Gilles Peskinec8000c02019-08-02 20:15:51 +0200145{
Mateusz Starzyk846f0212021-05-19 19:44:07 +0200146 attributes->MBEDTLS_PRIVATE(core).MBEDTLS_PRIVATE(flags) |= MBEDTLS_PSA_KA_FLAG_HAS_SLOT_NUMBER;
147 attributes->MBEDTLS_PRIVATE(slot_number) = slot_number;
Gilles Peskinec8000c02019-08-02 20:15:51 +0200148}
149
Gilles Peskine5fe5e272019-08-02 20:30:01 +0200150/** Remove the slot number attribute from a key attribute structure.
151 *
152 * This function undoes the action of psa_set_key_slot_number().
153 *
154 * \param[out] attributes The attribute structure to write to.
155 */
156static inline void psa_clear_key_slot_number(
Gilles Peskine449bd832023-01-11 14:50:10 +0100157 psa_key_attributes_t *attributes)
Gilles Peskine5fe5e272019-08-02 20:30:01 +0200158{
Gilles Peskine449bd832023-01-11 14:50:10 +0100159 attributes->MBEDTLS_PRIVATE(core).MBEDTLS_PRIVATE(flags) &=
160 ~MBEDTLS_PSA_KA_FLAG_HAS_SLOT_NUMBER;
Gilles Peskine5fe5e272019-08-02 20:30:01 +0200161}
162
Gilles Peskined7729582019-08-05 15:55:54 +0200163/** Register a key that is already present in a secure element.
164 *
165 * The key must be located in a secure element designated by the
166 * lifetime field in \p attributes, in the slot set with
167 * psa_set_key_slot_number() in the attribute structure.
168 * This function makes the key available through the key identifier
169 * specified in \p attributes.
170 *
171 * \param[in] attributes The attributes of the existing key.
172 *
173 * \retval #PSA_SUCCESS
174 * The key was successfully registered.
175 * Note that depending on the design of the driver, this may or may
176 * not guarantee that a key actually exists in the designated slot
177 * and is compatible with the specified attributes.
178 * \retval #PSA_ERROR_ALREADY_EXISTS
179 * There is already a key with the identifier specified in
180 * \p attributes.
Gilles Peskine3efcebb2019-10-01 14:18:35 +0200181 * \retval #PSA_ERROR_NOT_SUPPORTED
182 * The secure element driver for the specified lifetime does not
183 * support registering a key.
Gilles Peskined7729582019-08-05 15:55:54 +0200184 * \retval #PSA_ERROR_INVALID_ARGUMENT
Ronald Crond3b458c2021-03-31 17:51:29 +0200185 * The identifier in \p attributes is invalid, namely the identifier is
Andrzej Kurekf7c1f742022-02-03 11:30:54 -0500186 * not in the user range, or
Gilles Peskined7729582019-08-05 15:55:54 +0200187 * \p attributes specifies a lifetime which is not located
Andrzej Kurekf7c1f742022-02-03 11:30:54 -0500188 * in a secure element, or no slot number is specified in \p attributes,
Gilles Peskined7729582019-08-05 15:55:54 +0200189 * or the specified slot number is not valid.
190 * \retval #PSA_ERROR_NOT_PERMITTED
191 * The caller is not authorized to register the specified key slot.
192 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
gabor-mezei-arm452b0a32020-11-09 17:42:55 +0100193 * \retval #PSA_ERROR_INSUFFICIENT_STORAGE
Gilles Peskined7729582019-08-05 15:55:54 +0200194 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
gabor-mezei-arm452b0a32020-11-09 17:42:55 +0100195 * \retval #PSA_ERROR_DATA_INVALID
196 * \retval #PSA_ERROR_DATA_CORRUPT
Gilles Peskined7729582019-08-05 15:55:54 +0200197 * \retval #PSA_ERROR_CORRUPTION_DETECTED
198 * \retval #PSA_ERROR_BAD_STATE
199 * The library has not been previously initialized by psa_crypto_init().
200 * It is implementation-dependent whether a failure to initialize
201 * results in this error code.
202 */
203psa_status_t mbedtls_psa_register_se_key(
204 const psa_key_attributes_t *attributes);
205
Gilles Peskinec8000c02019-08-02 20:15:51 +0200206#endif /* MBEDTLS_PSA_CRYPTO_SE_C */
207
Gilles Peskine96f0b3b2019-05-10 19:33:38 +0200208/**@}*/
209
Gilles Peskinee59236f2018-01-27 23:32:46 +0100210/**
211 * \brief Library deinitialization.
212 *
213 * This function clears all data associated with the PSA layer,
214 * including the whole key store.
215 *
216 * This is an Mbed TLS extension.
217 */
Gilles Peskine449bd832023-01-11 14:50:10 +0100218void mbedtls_psa_crypto_free(void);
Gilles Peskinee59236f2018-01-27 23:32:46 +0100219
Gilles Peskine4bac9a42019-05-23 20:32:30 +0200220/** \brief Statistics about
221 * resource consumption related to the PSA keystore.
222 *
223 * \note The content of this structure is not part of the stable API and ABI
224 * of Mbed Crypto and may change arbitrarily from version to version.
225 */
Gilles Peskine449bd832023-01-11 14:50:10 +0100226typedef struct mbedtls_psa_stats_s {
Gilles Peskine4bac9a42019-05-23 20:32:30 +0200227 /** Number of slots containing key material for a volatile key. */
Mateusz Starzyk846f0212021-05-19 19:44:07 +0200228 size_t MBEDTLS_PRIVATE(volatile_slots);
Gilles Peskine4bac9a42019-05-23 20:32:30 +0200229 /** Number of slots containing key material for a key which is in
230 * internal persistent storage. */
Mateusz Starzyk846f0212021-05-19 19:44:07 +0200231 size_t MBEDTLS_PRIVATE(persistent_slots);
Gilles Peskine4bac9a42019-05-23 20:32:30 +0200232 /** Number of slots containing a reference to a key in a
233 * secure element. */
Mateusz Starzyk846f0212021-05-19 19:44:07 +0200234 size_t MBEDTLS_PRIVATE(external_slots);
Gilles Peskine4bac9a42019-05-23 20:32:30 +0200235 /** Number of slots which are occupied, but do not contain
236 * key material yet. */
Mateusz Starzyk846f0212021-05-19 19:44:07 +0200237 size_t MBEDTLS_PRIVATE(half_filled_slots);
Gilles Peskine4bac9a42019-05-23 20:32:30 +0200238 /** Number of slots that contain cache data. */
Mateusz Starzyk846f0212021-05-19 19:44:07 +0200239 size_t MBEDTLS_PRIVATE(cache_slots);
Gilles Peskine4bac9a42019-05-23 20:32:30 +0200240 /** Number of slots that are not used for anything. */
Mateusz Starzyk846f0212021-05-19 19:44:07 +0200241 size_t MBEDTLS_PRIVATE(empty_slots);
Ronald Cron1ad1eee2020-11-15 14:21:04 +0100242 /** Number of slots that are locked. */
Mateusz Starzyk846f0212021-05-19 19:44:07 +0200243 size_t MBEDTLS_PRIVATE(locked_slots);
Gilles Peskine4bac9a42019-05-23 20:32:30 +0200244 /** Largest key id value among open keys in internal persistent storage. */
Mateusz Starzyk846f0212021-05-19 19:44:07 +0200245 psa_key_id_t MBEDTLS_PRIVATE(max_open_internal_key_id);
Gilles Peskine4bac9a42019-05-23 20:32:30 +0200246 /** Largest key id value among open keys in secure elements. */
Mateusz Starzyk846f0212021-05-19 19:44:07 +0200247 psa_key_id_t MBEDTLS_PRIVATE(max_open_external_key_id);
Gilles Peskine4bac9a42019-05-23 20:32:30 +0200248} mbedtls_psa_stats_t;
249
250/** \brief Get statistics about
251 * resource consumption related to the PSA keystore.
252 *
253 * \note When Mbed Crypto is built as part of a service, with isolation
254 * between the application and the keystore, the service may or
255 * may not expose this function.
256 */
Gilles Peskine449bd832023-01-11 14:50:10 +0100257void mbedtls_psa_get_stats(mbedtls_psa_stats_t *stats);
Netanel Gonen2bcd3122018-11-19 11:53:02 +0200258
Netanel Gonen2bcd3122018-11-19 11:53:02 +0200259/**
Gilles Peskineee2ffd32018-11-16 11:02:49 +0100260 * \brief Inject an initial entropy seed for the random generator into
261 * secure storage.
Gilles Peskine0338ded2018-11-15 18:19:27 +0100262 *
263 * This function injects data to be used as a seed for the random generator
264 * used by the PSA Crypto implementation. On devices that lack a trusted
265 * entropy source (preferably a hardware random number generator),
266 * the Mbed PSA Crypto implementation uses this value to seed its
267 * random generator.
268 *
269 * On devices without a trusted entropy source, this function must be
270 * called exactly once in the lifetime of the device. On devices with
271 * a trusted entropy source, calling this function is optional.
272 * In all cases, this function may only be called before calling any
273 * other function in the PSA Crypto API, including psa_crypto_init().
274 *
275 * When this function returns successfully, it populates a file in
276 * persistent storage. Once the file has been created, this function
277 * can no longer succeed.
Gilles Peskineee2ffd32018-11-16 11:02:49 +0100278 *
279 * If any error occurs, this function does not change the system state.
280 * You can call this function again after correcting the reason for the
281 * error if possible.
Netanel Gonen2bcd3122018-11-19 11:53:02 +0200282 *
283 * \warning This function **can** fail! Callers MUST check the return status.
284 *
Gilles Peskine0338ded2018-11-15 18:19:27 +0100285 * \warning If you use this function, you should use it as part of a
286 * factory provisioning process. The value of the injected seed
287 * is critical to the security of the device. It must be
288 * *secret*, *unpredictable* and (statistically) *unique per device*.
289 * You should be generate it randomly using a cryptographically
290 * secure random generator seeded from trusted entropy sources.
291 * You should transmit it securely to the device and ensure
292 * that its value is not leaked or stored anywhere beyond the
293 * needs of transmitting it from the point of generation to
294 * the call of this function, and erase all copies of the value
295 * once this function returns.
Netanel Gonen2bcd3122018-11-19 11:53:02 +0200296 *
Gilles Peskine0338ded2018-11-15 18:19:27 +0100297 * This is an Mbed TLS extension.
298 *
Netanel Gonen1d7195f2018-11-22 16:24:48 +0200299 * \note This function is only available on the following platforms:
Gilles Peskinee3dbdd82019-02-25 11:04:06 +0100300 * * If the compile-time option MBEDTLS_PSA_INJECT_ENTROPY is enabled.
301 * Note that you must provide compatible implementations of
302 * mbedtls_nv_seed_read and mbedtls_nv_seed_write.
Gilles Peskine0cfaed12018-11-22 17:11:45 +0200303 * * In a client-server integration of PSA Cryptography, on the client side,
Netanel Gonen1d7195f2018-11-22 16:24:48 +0200304 * if the server supports this feature.
Netanel Gonen596e65e2018-11-22 18:41:43 +0200305 * \param[in] seed Buffer containing the seed value to inject.
Gilles Peskine0cfaed12018-11-22 17:11:45 +0200306 * \param[in] seed_size Size of the \p seed buffer.
Netanel Gonen596e65e2018-11-22 18:41:43 +0200307 * The size of the seed in bytes must be greater
Chris Jones3848e312021-03-11 16:17:59 +0000308 * or equal to both #MBEDTLS_ENTROPY_BLOCK_SIZE
309 * and the value of \c MBEDTLS_ENTROPY_MIN_PLATFORM
310 * in `library/entropy_poll.h` in the Mbed TLS source
311 * code.
Netanel Gonen596e65e2018-11-22 18:41:43 +0200312 * It must be less or equal to
313 * #MBEDTLS_ENTROPY_MAX_SEED_SIZE.
Netanel Gonen2bcd3122018-11-19 11:53:02 +0200314 *
315 * \retval #PSA_SUCCESS
Gilles Peskine0338ded2018-11-15 18:19:27 +0100316 * The seed value was injected successfully. The random generator
317 * of the PSA Crypto implementation is now ready for use.
318 * You may now call psa_crypto_init() and use the PSA Crypto
319 * implementation.
Netanel Gonen2bcd3122018-11-19 11:53:02 +0200320 * \retval #PSA_ERROR_INVALID_ARGUMENT
Gilles Peskineee2ffd32018-11-16 11:02:49 +0100321 * \p seed_size is out of range.
Netanel Gonen2bcd3122018-11-19 11:53:02 +0200322 * \retval #PSA_ERROR_STORAGE_FAILURE
Gilles Peskine0338ded2018-11-15 18:19:27 +0100323 * There was a failure reading or writing from storage.
Netanel Gonen2bcd3122018-11-19 11:53:02 +0200324 * \retval #PSA_ERROR_NOT_PERMITTED
Gilles Peskine0338ded2018-11-15 18:19:27 +0100325 * The library has already been initialized. It is no longer
326 * possible to call this function.
Netanel Gonen2bcd3122018-11-19 11:53:02 +0200327 */
Jaeden Ameroc7529c92019-08-19 11:08:04 +0100328psa_status_t mbedtls_psa_inject_entropy(const uint8_t *seed,
Netanel Gonen2bcd3122018-11-19 11:53:02 +0200329 size_t seed_size);
330
Gilles Peskinee38ab1a2019-05-16 13:51:50 +0200331/** \addtogroup crypto_types
332 * @{
333 */
334
Gilles Peskinea1302192019-05-16 13:58:24 +0200335/** DSA public key.
336 *
337 * The import and export format is the
338 * representation of the public key `y = g^x mod p` as a big-endian byte
339 * string. The length of the byte string is the length of the base prime `p`
340 * in bytes.
341 */
Gilles Peskine449bd832023-01-11 14:50:10 +0100342#define PSA_KEY_TYPE_DSA_PUBLIC_KEY ((psa_key_type_t) 0x4002)
Gilles Peskinea1302192019-05-16 13:58:24 +0200343
344/** DSA key pair (private and public key).
345 *
346 * The import and export format is the
347 * representation of the private key `x` as a big-endian byte string. The
348 * length of the byte string is the private key size in bytes (leading zeroes
349 * are not stripped).
350 *
Shaun Case8b0ecbc2021-12-20 21:14:10 -0800351 * Deterministic DSA key derivation with psa_generate_derived_key follows
Gilles Peskinea1302192019-05-16 13:58:24 +0200352 * FIPS 186-4 §B.1.2: interpret the byte string as integer
353 * in big-endian order. Discard it if it is not in the range
354 * [0, *N* - 2] where *N* is the boundary of the private key domain
355 * (the prime *p* for Diffie-Hellman, the subprime *q* for DSA,
356 * or the order of the curve's base point for ECC).
357 * Add 1 to the resulting integer and use this as the private key *x*.
358 *
359 */
Gilles Peskine449bd832023-01-11 14:50:10 +0100360#define PSA_KEY_TYPE_DSA_KEY_PAIR ((psa_key_type_t) 0x7002)
Gilles Peskinea1302192019-05-16 13:58:24 +0200361
Tom Cosgrovece7f18c2022-07-28 05:50:56 +0100362/** Whether a key type is a DSA key (pair or public-only). */
Gilles Peskinee38ab1a2019-05-16 13:51:50 +0200363#define PSA_KEY_TYPE_IS_DSA(type) \
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200364 (PSA_KEY_TYPE_PUBLIC_KEY_OF_KEY_PAIR(type) == PSA_KEY_TYPE_DSA_PUBLIC_KEY)
Gilles Peskinee38ab1a2019-05-16 13:51:50 +0200365
Gilles Peskine449bd832023-01-11 14:50:10 +0100366#define PSA_ALG_DSA_BASE ((psa_algorithm_t) 0x06000400)
Gilles Peskinee38ab1a2019-05-16 13:51:50 +0200367/** DSA signature with hashing.
368 *
369 * This is the signature scheme defined by FIPS 186-4,
370 * with a random per-message secret number (*k*).
371 *
372 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
373 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
374 * This includes #PSA_ALG_ANY_HASH
375 * when specifying the algorithm in a usage policy.
376 *
377 * \return The corresponding DSA signature algorithm.
378 * \return Unspecified if \p hash_alg is not a supported
379 * hash algorithm.
380 */
381#define PSA_ALG_DSA(hash_alg) \
382 (PSA_ALG_DSA_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
Gilles Peskine449bd832023-01-11 14:50:10 +0100383#define PSA_ALG_DETERMINISTIC_DSA_BASE ((psa_algorithm_t) 0x06000500)
Gilles Peskine972630e2019-11-29 11:55:48 +0100384#define PSA_ALG_DSA_DETERMINISTIC_FLAG PSA_ALG_ECDSA_DETERMINISTIC_FLAG
Gilles Peskinee38ab1a2019-05-16 13:51:50 +0200385/** Deterministic DSA signature with hashing.
386 *
387 * This is the deterministic variant defined by RFC 6979 of
388 * the signature scheme defined by FIPS 186-4.
389 *
390 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
391 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
392 * This includes #PSA_ALG_ANY_HASH
393 * when specifying the algorithm in a usage policy.
394 *
395 * \return The corresponding DSA signature algorithm.
396 * \return Unspecified if \p hash_alg is not a supported
397 * hash algorithm.
398 */
399#define PSA_ALG_DETERMINISTIC_DSA(hash_alg) \
400 (PSA_ALG_DETERMINISTIC_DSA_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
401#define PSA_ALG_IS_DSA(alg) \
402 (((alg) & ~PSA_ALG_HASH_MASK & ~PSA_ALG_DSA_DETERMINISTIC_FLAG) == \
403 PSA_ALG_DSA_BASE)
404#define PSA_ALG_DSA_IS_DETERMINISTIC(alg) \
405 (((alg) & PSA_ALG_DSA_DETERMINISTIC_FLAG) != 0)
406#define PSA_ALG_IS_DETERMINISTIC_DSA(alg) \
407 (PSA_ALG_IS_DSA(alg) && PSA_ALG_DSA_IS_DETERMINISTIC(alg))
408#define PSA_ALG_IS_RANDOMIZED_DSA(alg) \
409 (PSA_ALG_IS_DSA(alg) && !PSA_ALG_DSA_IS_DETERMINISTIC(alg))
410
411
412/* We need to expand the sample definition of this macro from
413 * the API definition. */
Gilles Peskine6d400852021-02-24 21:39:52 +0100414#undef PSA_ALG_IS_VENDOR_HASH_AND_SIGN
415#define PSA_ALG_IS_VENDOR_HASH_AND_SIGN(alg) \
416 PSA_ALG_IS_DSA(alg)
Gilles Peskinee38ab1a2019-05-16 13:51:50 +0200417
418/**@}*/
419
Gilles Peskine24f10f82019-05-16 12:18:32 +0200420/** \addtogroup attributes
421 * @{
422 */
423
Gilles Peskinedcaefae2019-05-16 12:55:35 +0200424/** Custom Diffie-Hellman group.
425 *
Paul Elliott75e27032020-06-03 15:17:39 +0100426 * For keys of type #PSA_KEY_TYPE_DH_PUBLIC_KEY(#PSA_DH_FAMILY_CUSTOM) or
427 * #PSA_KEY_TYPE_DH_KEY_PAIR(#PSA_DH_FAMILY_CUSTOM), the group data comes
Gilles Peskinedcaefae2019-05-16 12:55:35 +0200428 * from domain parameters set by psa_set_key_domain_parameters().
429 */
Paul Elliott75e27032020-06-03 15:17:39 +0100430#define PSA_DH_FAMILY_CUSTOM ((psa_dh_family_t) 0x7e)
Gilles Peskinedcaefae2019-05-16 12:55:35 +0200431
Przemek Stekiel51eac532022-12-07 11:04:51 +0100432/** EC-JPAKE operation stages. */
Przemek Stekiel1c3cfb42023-01-26 10:35:02 +0100433#define PSA_PAKE_OPERATION_STAGE_SETUP 0
434#define PSA_PAKE_OPERATION_STAGE_COLLECT_INPUTS 1
435#define PSA_PAKE_OPERATION_STAGE_COMPUTATION 2
Gilles Peskinedcaefae2019-05-16 12:55:35 +0200436
Gilles Peskine24f10f82019-05-16 12:18:32 +0200437/**
438 * \brief Set domain parameters for a key.
439 *
440 * Some key types require additional domain parameters in addition to
441 * the key type identifier and the key size. Use this function instead
442 * of psa_set_key_type() when you need to specify domain parameters.
443 *
444 * The format for the required domain parameters varies based on the key type.
445 *
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200446 * - For RSA keys (#PSA_KEY_TYPE_RSA_PUBLIC_KEY or #PSA_KEY_TYPE_RSA_KEY_PAIR),
Gilles Peskine24f10f82019-05-16 12:18:32 +0200447 * the domain parameter data consists of the public exponent,
448 * represented as a big-endian integer with no leading zeros.
449 * This information is used when generating an RSA key pair.
450 * When importing a key, the public exponent is read from the imported
451 * key data and the exponent recorded in the attribute structure is ignored.
452 * As an exception, the public exponent 65537 is represented by an empty
453 * byte string.
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200454 * - For DSA keys (#PSA_KEY_TYPE_DSA_PUBLIC_KEY or #PSA_KEY_TYPE_DSA_KEY_PAIR),
bootstrap-prime6dbbf442022-05-17 19:30:44 -0400455 * the `Dss-Params` format as defined by RFC 3279 §2.3.2.
Gilles Peskine24f10f82019-05-16 12:18:32 +0200456 * ```
bootstrap-prime6dbbf442022-05-17 19:30:44 -0400457 * Dss-Params ::= SEQUENCE {
Gilles Peskine24f10f82019-05-16 12:18:32 +0200458 * p INTEGER,
459 * q INTEGER,
460 * g INTEGER
461 * }
462 * ```
Gilles Peskinedcaefae2019-05-16 12:55:35 +0200463 * - For Diffie-Hellman key exchange keys
Paul Elliott75e27032020-06-03 15:17:39 +0100464 * (#PSA_KEY_TYPE_DH_PUBLIC_KEY(#PSA_DH_FAMILY_CUSTOM) or
465 * #PSA_KEY_TYPE_DH_KEY_PAIR(#PSA_DH_FAMILY_CUSTOM)), the
Gilles Peskine24f10f82019-05-16 12:18:32 +0200466 * `DomainParameters` format as defined by RFC 3279 §2.3.3.
467 * ```
468 * DomainParameters ::= SEQUENCE {
469 * p INTEGER, -- odd prime, p=jq +1
470 * g INTEGER, -- generator, g
471 * q INTEGER, -- factor of p-1
472 * j INTEGER OPTIONAL, -- subgroup factor
bootstrap-prime6dbbf442022-05-17 19:30:44 -0400473 * validationParams ValidationParams OPTIONAL
Gilles Peskine24f10f82019-05-16 12:18:32 +0200474 * }
bootstrap-prime6dbbf442022-05-17 19:30:44 -0400475 * ValidationParams ::= SEQUENCE {
Gilles Peskine24f10f82019-05-16 12:18:32 +0200476 * seed BIT STRING,
477 * pgenCounter INTEGER
478 * }
479 * ```
480 *
481 * \note This function may allocate memory or other resources.
482 * Once you have called this function on an attribute structure,
483 * you must call psa_reset_key_attributes() to free these resources.
484 *
485 * \note This is an experimental extension to the interface. It may change
486 * in future versions of the library.
487 *
488 * \param[in,out] attributes Attribute structure where the specified domain
489 * parameters will be stored.
490 * If this function fails, the content of
491 * \p attributes is not modified.
492 * \param type Key type (a \c PSA_KEY_TYPE_XXX value).
493 * \param[in] data Buffer containing the key domain parameters.
494 * The content of this buffer is interpreted
495 * according to \p type as described above.
496 * \param data_length Size of the \p data buffer in bytes.
497 *
498 * \retval #PSA_SUCCESS
499 * \retval #PSA_ERROR_INVALID_ARGUMENT
500 * \retval #PSA_ERROR_NOT_SUPPORTED
501 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
502 */
503psa_status_t psa_set_key_domain_parameters(psa_key_attributes_t *attributes,
504 psa_key_type_t type,
505 const uint8_t *data,
506 size_t data_length);
507
508/**
509 * \brief Get domain parameters for a key.
510 *
511 * Get the domain parameters for a key with this function, if any. The format
512 * of the domain parameters written to \p data is specified in the
513 * documentation for psa_set_key_domain_parameters().
514 *
515 * \note This is an experimental extension to the interface. It may change
516 * in future versions of the library.
517 *
518 * \param[in] attributes The key attribute structure to query.
519 * \param[out] data On success, the key domain parameters.
520 * \param data_size Size of the \p data buffer in bytes.
521 * The buffer is guaranteed to be large
522 * enough if its size in bytes is at least
523 * the value given by
524 * PSA_KEY_DOMAIN_PARAMETERS_SIZE().
525 * \param[out] data_length On success, the number of bytes
526 * that make up the key domain parameters data.
527 *
528 * \retval #PSA_SUCCESS
529 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
530 */
531psa_status_t psa_get_key_domain_parameters(
532 const psa_key_attributes_t *attributes,
533 uint8_t *data,
534 size_t data_size,
535 size_t *data_length);
536
537/** Safe output buffer size for psa_get_key_domain_parameters().
538 *
539 * This macro returns a compile-time constant if its arguments are
540 * compile-time constants.
541 *
542 * \warning This function may call its arguments multiple times or
543 * zero times, so you should not pass arguments that contain
544 * side effects.
545 *
546 * \note This is an experimental extension to the interface. It may change
547 * in future versions of the library.
548 *
549 * \param key_type A supported key type.
550 * \param key_bits The size of the key in bits.
551 *
552 * \return If the parameters are valid and supported, return
553 * a buffer size in bytes that guarantees that
554 * psa_get_key_domain_parameters() will not fail with
555 * #PSA_ERROR_BUFFER_TOO_SMALL.
556 * If the parameters are a valid combination that is not supported
Gilles Peskine27a983d2019-05-16 17:24:53 +0200557 * by the implementation, this macro shall return either a
Gilles Peskine24f10f82019-05-16 12:18:32 +0200558 * sensible size or 0.
559 * If the parameters are not valid, the
560 * return value is unspecified.
561 */
562#define PSA_KEY_DOMAIN_PARAMETERS_SIZE(key_type, key_bits) \
563 (PSA_KEY_TYPE_IS_RSA(key_type) ? sizeof(int) : \
564 PSA_KEY_TYPE_IS_DH(key_type) ? PSA_DH_KEY_DOMAIN_PARAMETERS_SIZE(key_bits) : \
565 PSA_KEY_TYPE_IS_DSA(key_type) ? PSA_DSA_KEY_DOMAIN_PARAMETERS_SIZE(key_bits) : \
566 0)
567#define PSA_DH_KEY_DOMAIN_PARAMETERS_SIZE(key_bits) \
568 (4 + (PSA_BITS_TO_BYTES(key_bits) + 5) * 3 /*without optional parts*/)
569#define PSA_DSA_KEY_DOMAIN_PARAMETERS_SIZE(key_bits) \
570 (4 + (PSA_BITS_TO_BYTES(key_bits) + 5) * 2 /*p, g*/ + 34 /*q*/)
571
572/**@}*/
573
Gilles Peskine5055b232019-12-12 17:49:31 +0100574/** \defgroup psa_tls_helpers TLS helper functions
575 * @{
576 */
577
578#if defined(MBEDTLS_ECP_C)
579#include <mbedtls/ecp.h>
580
581/** Convert an ECC curve identifier from the Mbed TLS encoding to PSA.
582 *
583 * \note This function is provided solely for the convenience of
584 * Mbed TLS and may be removed at any time without notice.
585 *
586 * \param grpid An Mbed TLS elliptic curve identifier
587 * (`MBEDTLS_ECP_DP_xxx`).
588 * \param[out] bits On success, the bit size of the curve.
589 *
590 * \return The corresponding PSA elliptic curve identifier
Paul Elliott8ff510a2020-06-02 17:19:28 +0100591 * (`PSA_ECC_FAMILY_xxx`).
Gilles Peskine5055b232019-12-12 17:49:31 +0100592 * \return \c 0 on failure (\p grpid is not recognized).
593 */
Gilles Peskine449bd832023-01-11 14:50:10 +0100594static inline psa_ecc_family_t mbedtls_ecc_group_to_psa(mbedtls_ecp_group_id grpid,
595 size_t *bits)
Darryl Green2f0eb512020-04-24 15:21:14 +0100596{
Gilles Peskine449bd832023-01-11 14:50:10 +0100597 switch (grpid) {
Darryl Green2f0eb512020-04-24 15:21:14 +0100598 case MBEDTLS_ECP_DP_SECP192R1:
599 *bits = 192;
Gilles Peskine449bd832023-01-11 14:50:10 +0100600 return PSA_ECC_FAMILY_SECP_R1;
Darryl Green2f0eb512020-04-24 15:21:14 +0100601 case MBEDTLS_ECP_DP_SECP224R1:
602 *bits = 224;
Gilles Peskine449bd832023-01-11 14:50:10 +0100603 return PSA_ECC_FAMILY_SECP_R1;
Darryl Green2f0eb512020-04-24 15:21:14 +0100604 case MBEDTLS_ECP_DP_SECP256R1:
605 *bits = 256;
Gilles Peskine449bd832023-01-11 14:50:10 +0100606 return PSA_ECC_FAMILY_SECP_R1;
Darryl Green2f0eb512020-04-24 15:21:14 +0100607 case MBEDTLS_ECP_DP_SECP384R1:
608 *bits = 384;
Gilles Peskine449bd832023-01-11 14:50:10 +0100609 return PSA_ECC_FAMILY_SECP_R1;
Darryl Green2f0eb512020-04-24 15:21:14 +0100610 case MBEDTLS_ECP_DP_SECP521R1:
611 *bits = 521;
Gilles Peskine449bd832023-01-11 14:50:10 +0100612 return PSA_ECC_FAMILY_SECP_R1;
Darryl Green2f0eb512020-04-24 15:21:14 +0100613 case MBEDTLS_ECP_DP_BP256R1:
614 *bits = 256;
Gilles Peskine449bd832023-01-11 14:50:10 +0100615 return PSA_ECC_FAMILY_BRAINPOOL_P_R1;
Darryl Green2f0eb512020-04-24 15:21:14 +0100616 case MBEDTLS_ECP_DP_BP384R1:
617 *bits = 384;
Gilles Peskine449bd832023-01-11 14:50:10 +0100618 return PSA_ECC_FAMILY_BRAINPOOL_P_R1;
Darryl Green2f0eb512020-04-24 15:21:14 +0100619 case MBEDTLS_ECP_DP_BP512R1:
620 *bits = 512;
Gilles Peskine449bd832023-01-11 14:50:10 +0100621 return PSA_ECC_FAMILY_BRAINPOOL_P_R1;
Darryl Green2f0eb512020-04-24 15:21:14 +0100622 case MBEDTLS_ECP_DP_CURVE25519:
623 *bits = 255;
Gilles Peskine449bd832023-01-11 14:50:10 +0100624 return PSA_ECC_FAMILY_MONTGOMERY;
Darryl Green2f0eb512020-04-24 15:21:14 +0100625 case MBEDTLS_ECP_DP_SECP192K1:
626 *bits = 192;
Gilles Peskine449bd832023-01-11 14:50:10 +0100627 return PSA_ECC_FAMILY_SECP_K1;
Darryl Green2f0eb512020-04-24 15:21:14 +0100628 case MBEDTLS_ECP_DP_SECP224K1:
629 *bits = 224;
Gilles Peskine449bd832023-01-11 14:50:10 +0100630 return PSA_ECC_FAMILY_SECP_K1;
Darryl Green2f0eb512020-04-24 15:21:14 +0100631 case MBEDTLS_ECP_DP_SECP256K1:
632 *bits = 256;
Gilles Peskine449bd832023-01-11 14:50:10 +0100633 return PSA_ECC_FAMILY_SECP_K1;
Darryl Green2f0eb512020-04-24 15:21:14 +0100634 case MBEDTLS_ECP_DP_CURVE448:
635 *bits = 448;
Gilles Peskine449bd832023-01-11 14:50:10 +0100636 return PSA_ECC_FAMILY_MONTGOMERY;
Darryl Green2f0eb512020-04-24 15:21:14 +0100637 default:
638 *bits = 0;
Gilles Peskine449bd832023-01-11 14:50:10 +0100639 return 0;
Darryl Green2f0eb512020-04-24 15:21:14 +0100640 }
641}
Gilles Peskine5055b232019-12-12 17:49:31 +0100642
643/** Convert an ECC curve identifier from the PSA encoding to Mbed TLS.
644 *
645 * \note This function is provided solely for the convenience of
646 * Mbed TLS and may be removed at any time without notice.
647 *
648 * \param curve A PSA elliptic curve identifier
Paul Elliott8ff510a2020-06-02 17:19:28 +0100649 * (`PSA_ECC_FAMILY_xxx`).
Gilles Peskine2fa6b5f2021-01-27 15:44:45 +0100650 * \param bits The bit-length of a private key on \p curve.
651 * \param bits_is_sloppy If true, \p bits may be the bit-length rounded up
652 * to the nearest multiple of 8. This allows the caller
653 * to infer the exact curve from the length of a key
654 * which is supplied as a byte string.
Gilles Peskine5055b232019-12-12 17:49:31 +0100655 *
656 * \return The corresponding Mbed TLS elliptic curve identifier
657 * (`MBEDTLS_ECP_DP_xxx`).
658 * \return #MBEDTLS_ECP_DP_NONE if \c curve is not recognized.
Gilles Peskine2fa6b5f2021-01-27 15:44:45 +0100659 * \return #MBEDTLS_ECP_DP_NONE if \p bits is not
Gilles Peskine5055b232019-12-12 17:49:31 +0100660 * correct for \p curve.
661 */
Gilles Peskine449bd832023-01-11 14:50:10 +0100662mbedtls_ecp_group_id mbedtls_ecc_group_of_psa(psa_ecc_family_t curve,
663 size_t bits,
664 int bits_is_sloppy);
Gilles Peskine5055b232019-12-12 17:49:31 +0100665#endif /* MBEDTLS_ECP_C */
666
667/**@}*/
668
Gilles Peskineb8af2282020-11-13 18:00:34 +0100669/** \defgroup psa_external_rng External random generator
670 * @{
671 */
672
673#if defined(MBEDTLS_PSA_CRYPTO_EXTERNAL_RNG)
674/** External random generator function, implemented by the platform.
675 *
676 * When the compile-time option #MBEDTLS_PSA_CRYPTO_EXTERNAL_RNG is enabled,
677 * this function replaces Mbed TLS's entropy and DRBG modules for all
678 * random generation triggered via PSA crypto interfaces.
679 *
Gilles Peskineb663a602020-11-18 15:27:37 +0100680 * \note This random generator must deliver random numbers with cryptographic
681 * quality and high performance. It must supply unpredictable numbers
682 * with a uniform distribution. The implementation of this function
683 * is responsible for ensuring that the random generator is seeded
684 * with sufficient entropy. If you have a hardware TRNG which is slow
685 * or delivers non-uniform output, declare it as an entropy source
686 * with mbedtls_entropy_add_source() instead of enabling this option.
687 *
Gilles Peskineb8af2282020-11-13 18:00:34 +0100688 * \param[in,out] context Pointer to the random generator context.
689 * This is all-bits-zero on the first call
690 * and preserved between successive calls.
691 * \param[out] output Output buffer. On success, this buffer
692 * contains random data with a uniform
693 * distribution.
694 * \param output_size The size of the \p output buffer in bytes.
695 * \param[out] output_length On success, set this value to \p output_size.
696 *
697 * \retval #PSA_SUCCESS
Gilles Peskinee995b9b2020-11-30 12:08:00 +0100698 * Success. The output buffer contains \p output_size bytes of
699 * cryptographic-quality random data, and \c *output_length is
700 * set to \p output_size.
701 * \retval #PSA_ERROR_INSUFFICIENT_ENTROPY
702 * The random generator requires extra entropy and there is no
703 * way to obtain entropy under current environment conditions.
704 * This error should not happen under normal circumstances since
705 * this function is responsible for obtaining as much entropy as
706 * it needs. However implementations of this function may return
707 * #PSA_ERROR_INSUFFICIENT_ENTROPY if there is no way to obtain
708 * entropy without blocking indefinitely.
Gilles Peskineb8af2282020-11-13 18:00:34 +0100709 * \retval #PSA_ERROR_HARDWARE_FAILURE
Gilles Peskinee995b9b2020-11-30 12:08:00 +0100710 * A failure of the random generator hardware that isn't covered
711 * by #PSA_ERROR_INSUFFICIENT_ENTROPY.
Gilles Peskineb8af2282020-11-13 18:00:34 +0100712 */
713psa_status_t mbedtls_psa_external_get_random(
714 mbedtls_psa_external_random_context_t *context,
Gilles Peskine449bd832023-01-11 14:50:10 +0100715 uint8_t *output, size_t output_size, size_t *output_length);
Gilles Peskineb8af2282020-11-13 18:00:34 +0100716#endif /* MBEDTLS_PSA_CRYPTO_EXTERNAL_RNG */
717
718/**@}*/
719
Steven Cooreman6801f082021-02-19 17:21:22 +0100720/** \defgroup psa_builtin_keys Built-in keys
721 * @{
722 */
723
724/** The minimum value for a key identifier that is built into the
725 * implementation.
726 *
727 * The range of key identifiers from #MBEDTLS_PSA_KEY_ID_BUILTIN_MIN
728 * to #MBEDTLS_PSA_KEY_ID_BUILTIN_MAX within the range from
729 * #PSA_KEY_ID_VENDOR_MIN and #PSA_KEY_ID_VENDOR_MAX and must not intersect
730 * with any other set of implementation-chosen key identifiers.
731 *
732 * This value is part of the library's ABI since changing it would invalidate
733 * the values of built-in key identifiers in applications.
734 */
Gilles Peskine449bd832023-01-11 14:50:10 +0100735#define MBEDTLS_PSA_KEY_ID_BUILTIN_MIN ((psa_key_id_t) 0x7fff0000)
Steven Cooreman6801f082021-02-19 17:21:22 +0100736
737/** The maximum value for a key identifier that is built into the
738 * implementation.
739 *
740 * See #MBEDTLS_PSA_KEY_ID_BUILTIN_MIN for more information.
741 */
Gilles Peskine449bd832023-01-11 14:50:10 +0100742#define MBEDTLS_PSA_KEY_ID_BUILTIN_MAX ((psa_key_id_t) 0x7fffefff)
Steven Cooreman6801f082021-02-19 17:21:22 +0100743
744/** A slot number identifying a key in a driver.
745 *
746 * Values of this type are used to identify built-in keys.
747 */
748typedef uint64_t psa_drv_slot_number_t;
749
750#if defined(MBEDTLS_PSA_CRYPTO_BUILTIN_KEYS)
751/** Test whether a key identifier belongs to the builtin key range.
752 *
753 * \param key_id Key identifier to test.
754 *
755 * \retval 1
756 * The key identifier is a builtin key identifier.
757 * \retval 0
758 * The key identifier is not a builtin key identifier.
759 */
Gilles Peskine449bd832023-01-11 14:50:10 +0100760static inline int psa_key_id_is_builtin(psa_key_id_t key_id)
Steven Cooreman6801f082021-02-19 17:21:22 +0100761{
Gilles Peskine449bd832023-01-11 14:50:10 +0100762 return (key_id >= MBEDTLS_PSA_KEY_ID_BUILTIN_MIN) &&
763 (key_id <= MBEDTLS_PSA_KEY_ID_BUILTIN_MAX);
Steven Cooreman6801f082021-02-19 17:21:22 +0100764}
765
Steven Cooremanb938b0b2021-04-06 13:08:42 +0200766/** Platform function to obtain the location and slot number of a built-in key.
Steven Cooreman6801f082021-02-19 17:21:22 +0100767 *
768 * An application-specific implementation of this function must be provided if
Steven Cooreman203bcbb2021-03-18 17:17:40 +0100769 * #MBEDTLS_PSA_CRYPTO_BUILTIN_KEYS is enabled. This would typically be provided
Steven Cooreman6801f082021-02-19 17:21:22 +0100770 * as part of a platform's system image.
771 *
Steven Cooremanc8b95342021-03-18 20:48:06 +0100772 * #MBEDTLS_SVC_KEY_ID_GET_KEY_ID(\p key_id) needs to be in the range from
Steven Cooreman6801f082021-02-19 17:21:22 +0100773 * #MBEDTLS_PSA_KEY_ID_BUILTIN_MIN to #MBEDTLS_PSA_KEY_ID_BUILTIN_MAX.
774 *
775 * In a multi-application configuration
776 * (\c MBEDTLS_PSA_CRYPTO_KEY_ID_ENCODES_OWNER is defined),
777 * this function should check that #MBEDTLS_SVC_KEY_ID_GET_OWNER_ID(\p key_id)
778 * is allowed to use the given key.
779 *
Steven Cooremanc8b95342021-03-18 20:48:06 +0100780 * \param key_id The key ID for which to retrieve the
781 * location and slot attributes.
782 * \param[out] lifetime On success, the lifetime associated with the key
783 * corresponding to \p key_id. Lifetime is a
784 * combination of which driver contains the key,
Steven Cooreman31e27af2021-04-14 10:32:05 +0200785 * and with what persistence level the key is
786 * intended to be used. If the platform
787 * implementation does not contain specific
788 * information about the intended key persistence
789 * level, the persistence level may be reported as
790 * #PSA_KEY_PERSISTENCE_DEFAULT.
Steven Cooremanc8b95342021-03-18 20:48:06 +0100791 * \param[out] slot_number On success, the slot number known to the driver
792 * registered at the lifetime location reported
Steven Cooremanb938b0b2021-04-06 13:08:42 +0200793 * through \p lifetime which corresponds to the
Steven Cooreman6801f082021-02-19 17:21:22 +0100794 * requested built-in key.
795 *
796 * \retval #PSA_SUCCESS
797 * The requested key identifier designates a built-in key.
798 * In a multi-application configuration, the requested owner
799 * is allowed to access it.
800 * \retval #PSA_ERROR_DOES_NOT_EXIST
801 * The requested key identifier is not a built-in key which is known
802 * to this function. If a key exists in the key storage with this
803 * identifier, the data from the storage will be used.
Steven Cooreman203bcbb2021-03-18 17:17:40 +0100804 * \return (any other error)
Steven Cooreman6801f082021-02-19 17:21:22 +0100805 * Any other error is propagated to the function that requested the key.
806 * Common errors include:
807 * - #PSA_ERROR_NOT_PERMITTED: the key exists but the requested owner
808 * is not allowed to access it.
809 */
810psa_status_t mbedtls_psa_platform_get_builtin_key(
Steven Cooremanc8b95342021-03-18 20:48:06 +0100811 mbedtls_svc_key_id_t key_id,
812 psa_key_lifetime_t *lifetime,
Gilles Peskine449bd832023-01-11 14:50:10 +0100813 psa_drv_slot_number_t *slot_number);
Steven Cooreman6801f082021-02-19 17:21:22 +0100814#endif /* MBEDTLS_PSA_CRYPTO_BUILTIN_KEYS */
815
816/** @} */
817
Janos Follath702cf092021-05-26 12:58:23 +0100818/** \addtogroup crypto_types
819 * @{
820 */
821
Gilles Peskine449bd832023-01-11 14:50:10 +0100822#define PSA_ALG_CATEGORY_PAKE ((psa_algorithm_t) 0x0a000000)
Janos Follath702cf092021-05-26 12:58:23 +0100823
824/** Whether the specified algorithm is a password-authenticated key exchange.
825 *
826 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
827 *
828 * \return 1 if \p alg is a password-authenticated key exchange (PAKE)
829 * algorithm, 0 otherwise.
830 * This macro may return either 0 or 1 if \p alg is not a supported
831 * algorithm identifier.
832 */
833#define PSA_ALG_IS_PAKE(alg) \
834 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_PAKE)
835
836/** The Password-authenticated key exchange by juggling (J-PAKE) algorithm.
837 *
838 * This is J-PAKE as defined by RFC 8236, instantiated with the following
839 * parameters:
840 *
841 * - The group can be either an elliptic curve or defined over a finite field.
842 * - Schnorr NIZK proof as defined by RFC 8235 and using the same group as the
843 * J-PAKE algorithm.
Janos Follath46c02372021-06-08 15:22:51 +0100844 * - A cryptographic hash function.
Janos Follath702cf092021-05-26 12:58:23 +0100845 *
Janos Follath46c02372021-06-08 15:22:51 +0100846 * To select these parameters and set up the cipher suite, call these functions
847 * in any order:
Janos Follathb384ec12021-06-03 14:48:51 +0100848 *
849 * \code
850 * psa_pake_cs_set_algorithm(cipher_suite, PSA_ALG_JPAKE);
851 * psa_pake_cs_set_primitive(cipher_suite,
852 * PSA_PAKE_PRIMITIVE(type, family, bits));
853 * psa_pake_cs_set_hash(cipher_suite, hash);
854 * \endcode
Janos Follath702cf092021-05-26 12:58:23 +0100855 *
856 * For more information on how to set a specific curve or field, refer to the
857 * documentation of the individual \c PSA_PAKE_PRIMITIVE_TYPE_XXX constants.
858 *
859 * After initializing a J-PAKE operation, call
Janos Follathb384ec12021-06-03 14:48:51 +0100860 *
861 * \code
862 * psa_pake_setup(operation, cipher_suite);
863 * psa_pake_set_user(operation, ...);
864 * psa_pake_set_peer(operation, ...);
865 * psa_pake_set_password_key(operation, ...);
866 * \endcode
Janos Follath702cf092021-05-26 12:58:23 +0100867 *
Neil Armstrong16145372022-05-20 10:42:36 +0200868 * The password is provided as a key. This can be the password text itself,
869 * in an agreed character encoding, or some value derived from the password
870 * as required by a higher level protocol.
Janos Follath702cf092021-05-26 12:58:23 +0100871 *
Neil Armstrong16145372022-05-20 10:42:36 +0200872 * (The implementation converts the key material to a number as described in
Janos Follath702cf092021-05-26 12:58:23 +0100873 * Section 2.3.8 of _SEC 1: Elliptic Curve Cryptography_
874 * (https://www.secg.org/sec1-v2.pdf), before reducing it modulo \c q. Here
875 * \c q is order of the group defined by the primitive set in the cipher suite.
Neil Armstrong5892aa62022-05-27 09:44:47 +0200876 * The \c psa_pake_set_password_key() function returns an error if the result
Janos Follath702cf092021-05-26 12:58:23 +0100877 * of the reduction is 0.)
878 *
879 * The key exchange flow for J-PAKE is as follows:
880 * -# To get the first round data that needs to be sent to the peer, call
Janos Follathb384ec12021-06-03 14:48:51 +0100881 * \code
882 * // Get g1
883 * psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...);
884 * // Get the ZKP public key for x1
885 * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...);
886 * // Get the ZKP proof for x1
887 * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PROOF, ...);
888 * // Get g2
889 * psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...);
890 * // Get the ZKP public key for x2
891 * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...);
892 * // Get the ZKP proof for x2
893 * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PROOF, ...);
894 * \endcode
Janos Follath702cf092021-05-26 12:58:23 +0100895 * -# To provide the first round data received from the peer to the operation,
896 * call
Janos Follathb384ec12021-06-03 14:48:51 +0100897 * \code
898 * // Set g3
899 * psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...);
900 * // Set the ZKP public key for x3
901 * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...);
902 * // Set the ZKP proof for x3
903 * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PROOF, ...);
904 * // Set g4
905 * psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...);
906 * // Set the ZKP public key for x4
907 * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...);
908 * // Set the ZKP proof for x4
909 * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PROOF, ...);
910 * \endcode
Janos Follath702cf092021-05-26 12:58:23 +0100911 * -# To get the second round data that needs to be sent to the peer, call
Janos Follathb384ec12021-06-03 14:48:51 +0100912 * \code
913 * // Get A
914 * psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...);
915 * // Get ZKP public key for x2*s
916 * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...);
917 * // Get ZKP proof for x2*s
918 * psa_pake_output(operation, #PSA_PAKE_STEP_ZK_PROOF, ...);
919 * \endcode
Janos Follath702cf092021-05-26 12:58:23 +0100920 * -# To provide the second round data received from the peer to the operation,
921 * call
Janos Follathb384ec12021-06-03 14:48:51 +0100922 * \code
923 * // Set B
924 * psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...);
925 * // Set ZKP public key for x4*s
926 * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PUBLIC, ...);
927 * // Set ZKP proof for x4*s
928 * psa_pake_input(operation, #PSA_PAKE_STEP_ZK_PROOF, ...);
929 * \endcode
Janos Follath702cf092021-05-26 12:58:23 +0100930 * -# To access the shared secret call
Janos Follathb384ec12021-06-03 14:48:51 +0100931 * \code
932 * // Get Ka=Kb=K
933 * psa_pake_get_implicit_key()
934 * \endcode
Janos Follath702cf092021-05-26 12:58:23 +0100935 *
936 * For more information consult the documentation of the individual
937 * \c PSA_PAKE_STEP_XXX constants.
938 *
939 * At this point there is a cryptographic guarantee that only the authenticated
940 * party who used the same password is able to compute the key. But there is no
Janos Follatha46e28f2021-06-03 13:07:03 +0100941 * guarantee that the peer is the party it claims to be and was able to do so.
Janos Follath702cf092021-05-26 12:58:23 +0100942 *
943 * That is, the authentication is only implicit (the peer is not authenticated
944 * at this point, and no action should be taken that assume that they are - like
945 * for example accessing restricted files).
946 *
947 * To make the authentication explicit there are various methods, see Section 5
948 * of RFC 8236 for two examples.
949 *
950 */
Gilles Peskine449bd832023-01-11 14:50:10 +0100951#define PSA_ALG_JPAKE ((psa_algorithm_t) 0x0a000100)
Janos Follath702cf092021-05-26 12:58:23 +0100952
953/** @} */
954
955/** \defgroup pake Password-authenticated key exchange (PAKE)
Janos Follath7d69b3a2021-05-26 13:10:56 +0100956 *
957 * This is a proposed PAKE interface for the PSA Crypto API. It is not part of
958 * the official PSA Crypto API yet.
959 *
960 * \note The content of this section is not part of the stable API and ABI
961 * of Mbed Crypto and may change arbitrarily from version to version.
962 * Same holds for the corresponding macros #PSA_ALG_CATEGORY_PAKE and
963 * #PSA_ALG_JPAKE.
Janos Follath702cf092021-05-26 12:58:23 +0100964 * @{
965 */
966
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +0200967/** \brief Encoding of the application role of PAKE
Janos Follath702cf092021-05-26 12:58:23 +0100968 *
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +0200969 * Encodes the application's role in the algorithm is being executed. For more
970 * information see the documentation of individual \c PSA_PAKE_ROLE_XXX
971 * constants.
Janos Follath702cf092021-05-26 12:58:23 +0100972 */
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +0200973typedef uint8_t psa_pake_role_t;
Janos Follath702cf092021-05-26 12:58:23 +0100974
975/** Encoding of input and output indicators for PAKE.
976 *
977 * Some PAKE algorithms need to exchange more data than just a single key share.
978 * This type is for encoding additional input and output data for such
979 * algorithms.
980 */
981typedef uint8_t psa_pake_step_t;
982
983/** Encoding of the type of the PAKE's primitive.
984 *
985 * Values defined by this standard will never be in the range 0x80-0xff.
986 * Vendors who define additional types must use an encoding in this range.
987 *
988 * For more information see the documentation of individual
989 * \c PSA_PAKE_PRIMITIVE_TYPE_XXX constants.
990 */
991typedef uint8_t psa_pake_primitive_type_t;
992
993/** \brief Encoding of the family of the primitive associated with the PAKE.
994 *
995 * For more information see the documentation of individual
996 * \c PSA_PAKE_PRIMITIVE_TYPE_XXX constants.
997 */
998typedef uint8_t psa_pake_family_t;
999
1000/** \brief Encoding of the primitive associated with the PAKE.
1001 *
1002 * For more information see the documentation of the #PSA_PAKE_PRIMITIVE macro.
1003 */
1004typedef uint32_t psa_pake_primitive_t;
1005
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +02001006/** A value to indicate no role in a PAKE algorithm.
1007 * This value can be used in a call to psa_pake_set_role() for symmetric PAKE
1008 * algorithms which do not assign roles.
1009 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001010#define PSA_PAKE_ROLE_NONE ((psa_pake_role_t) 0x00)
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +02001011
Janos Follath702cf092021-05-26 12:58:23 +01001012/** The first peer in a balanced PAKE.
1013 *
1014 * Although balanced PAKE algorithms are symmetric, some of them needs an
1015 * ordering of peers for the transcript calculations. If the algorithm does not
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +02001016 * need this, both #PSA_PAKE_ROLE_FIRST and #PSA_PAKE_ROLE_SECOND are
Janos Follath702cf092021-05-26 12:58:23 +01001017 * accepted.
1018 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001019#define PSA_PAKE_ROLE_FIRST ((psa_pake_role_t) 0x01)
Janos Follath702cf092021-05-26 12:58:23 +01001020
1021/** The second peer in a balanced PAKE.
1022 *
1023 * Although balanced PAKE algorithms are symmetric, some of them needs an
1024 * ordering of peers for the transcript calculations. If the algorithm does not
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +02001025 * need this, either #PSA_PAKE_ROLE_FIRST or #PSA_PAKE_ROLE_SECOND are
Janos Follath702cf092021-05-26 12:58:23 +01001026 * accepted.
1027 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001028#define PSA_PAKE_ROLE_SECOND ((psa_pake_role_t) 0x02)
Janos Follath702cf092021-05-26 12:58:23 +01001029
1030/** The client in an augmented PAKE.
1031 *
1032 * Augmented PAKE algorithms need to differentiate between client and server.
1033 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001034#define PSA_PAKE_ROLE_CLIENT ((psa_pake_role_t) 0x11)
Janos Follath702cf092021-05-26 12:58:23 +01001035
1036/** The server in an augmented PAKE.
1037 *
1038 * Augmented PAKE algorithms need to differentiate between client and server.
1039 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001040#define PSA_PAKE_ROLE_SERVER ((psa_pake_role_t) 0x12)
Janos Follath702cf092021-05-26 12:58:23 +01001041
1042/** The PAKE primitive type indicating the use of elliptic curves.
1043 *
1044 * The values of the \c family and \c bits fields of the cipher suite identify a
1045 * specific elliptic curve, using the same mapping that is used for ECC
1046 * (::psa_ecc_family_t) keys.
1047 *
1048 * (Here \c family means the value returned by psa_pake_cs_get_family() and
1049 * \c bits means the value returned by psa_pake_cs_get_bits().)
1050 *
1051 * Input and output during the operation can involve group elements and scalar
1052 * values:
1053 * -# The format for group elements is the same as for public keys on the
1054 * specific curve would be. For more information, consult the documentation of
1055 * psa_export_public_key().
1056 * -# The format for scalars is the same as for private keys on the specific
1057 * curve would be. For more information, consult the documentation of
1058 * psa_export_key().
1059 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001060#define PSA_PAKE_PRIMITIVE_TYPE_ECC ((psa_pake_primitive_type_t) 0x01)
Janos Follath702cf092021-05-26 12:58:23 +01001061
1062/** The PAKE primitive type indicating the use of Diffie-Hellman groups.
1063 *
1064 * The values of the \c family and \c bits fields of the cipher suite identify
1065 * a specific Diffie-Hellman group, using the same mapping that is used for
1066 * Diffie-Hellman (::psa_dh_family_t) keys.
1067 *
1068 * (Here \c family means the value returned by psa_pake_cs_get_family() and
1069 * \c bits means the value returned by psa_pake_cs_get_bits().)
1070 *
1071 * Input and output during the operation can involve group elements and scalar
1072 * values:
1073 * -# The format for group elements is the same as for public keys on the
1074 * specific group would be. For more information, consult the documentation of
1075 * psa_export_public_key().
1076 * -# The format for scalars is the same as for private keys on the specific
1077 * group would be. For more information, consult the documentation of
1078 * psa_export_key().
1079 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001080#define PSA_PAKE_PRIMITIVE_TYPE_DH ((psa_pake_primitive_type_t) 0x02)
Janos Follath702cf092021-05-26 12:58:23 +01001081
1082/** Construct a PAKE primitive from type, family and bit-size.
1083 *
1084 * \param pake_type The type of the primitive
1085 * (value of type ::psa_pake_primitive_type_t).
1086 * \param pake_family The family of the primitive
1087 * (the type and interpretation of this parameter depends
1088 * on \p type, for more information consult the
1089 * documentation of individual ::psa_pake_primitive_type_t
1090 * constants).
1091 * \param pake_bits The bit-size of the primitive
1092 * (Value of type \c size_t. The interpretation
1093 * of this parameter depends on \p family, for more
1094 * information consult the documentation of individual
1095 * ::psa_pake_primitive_type_t constants).
1096 *
1097 * \return The constructed primitive value of type ::psa_pake_primitive_t.
1098 * Return 0 if the requested primitive can't be encoded as
1099 * ::psa_pake_primitive_t.
1100 */
1101#define PSA_PAKE_PRIMITIVE(pake_type, pake_family, pake_bits) \
1102 ((pake_bits & 0xFFFF) != pake_bits) ? 0 : \
1103 ((psa_pake_primitive_t) (((pake_type) << 24 | \
Gilles Peskine449bd832023-01-11 14:50:10 +01001104 (pake_family) << 16) | (pake_bits)))
Janos Follath702cf092021-05-26 12:58:23 +01001105
1106/** The key share being sent to or received from the peer.
1107 *
1108 * The format for both input and output at this step is the same as for public
1109 * keys on the group determined by the primitive (::psa_pake_primitive_t) would
1110 * be.
1111 *
1112 * For more information on the format, consult the documentation of
1113 * psa_export_public_key().
1114 *
1115 * For information regarding how the group is determined, consult the
1116 * documentation #PSA_PAKE_PRIMITIVE.
1117 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001118#define PSA_PAKE_STEP_KEY_SHARE ((psa_pake_step_t) 0x01)
Janos Follath702cf092021-05-26 12:58:23 +01001119
1120/** A Schnorr NIZKP public key.
1121 *
Janos Follath55dd5dc2021-06-03 15:51:09 +01001122 * This is the ephemeral public key in the Schnorr Non-Interactive
1123 * Zero-Knowledge Proof (the value denoted by the letter 'V' in RFC 8235).
1124 *
Janos Follath702cf092021-05-26 12:58:23 +01001125 * The format for both input and output at this step is the same as for public
1126 * keys on the group determined by the primitive (::psa_pake_primitive_t) would
1127 * be.
1128 *
1129 * For more information on the format, consult the documentation of
1130 * psa_export_public_key().
1131 *
1132 * For information regarding how the group is determined, consult the
1133 * documentation #PSA_PAKE_PRIMITIVE.
1134 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001135#define PSA_PAKE_STEP_ZK_PUBLIC ((psa_pake_step_t) 0x02)
Janos Follath702cf092021-05-26 12:58:23 +01001136
1137/** A Schnorr NIZKP proof.
1138 *
Janos Follath55dd5dc2021-06-03 15:51:09 +01001139 * This is the proof in the Schnorr Non-Interactive Zero-Knowledge Proof (the
1140 * value denoted by the letter 'r' in RFC 8235).
Janos Follath702cf092021-05-26 12:58:23 +01001141 *
Janos Follath1f013182021-06-08 15:30:48 +01001142 * Both for input and output, the value at this step is an integer less than
1143 * the order of the group selected in the cipher suite. The format depends on
1144 * the group as well:
Janos Follath702cf092021-05-26 12:58:23 +01001145 *
Janos Follath1f013182021-06-08 15:30:48 +01001146 * - For Montgomery curves, the encoding is little endian.
Janos Follath55dd5dc2021-06-03 15:51:09 +01001147 * - For everything else the encoding is big endian (see Section 2.3.8 of
1148 * _SEC 1: Elliptic Curve Cryptography_ at https://www.secg.org/sec1-v2.pdf).
Janos Follath702cf092021-05-26 12:58:23 +01001149 *
Janos Follath1f013182021-06-08 15:30:48 +01001150 * In both cases leading zeroes are allowed as long as the length in bytes does
1151 * not exceed the byte length of the group order.
1152 *
Janos Follath702cf092021-05-26 12:58:23 +01001153 * For information regarding how the group is determined, consult the
1154 * documentation #PSA_PAKE_PRIMITIVE.
1155 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001156#define PSA_PAKE_STEP_ZK_PROOF ((psa_pake_step_t) 0x03)
Janos Follath702cf092021-05-26 12:58:23 +01001157
Shaun Case8b0ecbc2021-12-20 21:14:10 -08001158/** The type of the data structure for PAKE cipher suites.
Janos Follath702cf092021-05-26 12:58:23 +01001159 *
1160 * This is an implementation-defined \c struct. Applications should not
1161 * make any assumptions about the content of this structure.
1162 * Implementation details can change in future versions without notice.
1163 */
1164typedef struct psa_pake_cipher_suite_s psa_pake_cipher_suite_t;
1165
Neil Armstrong5ff6a7f2022-05-20 10:12:01 +02001166/** Return an initial value for a PAKE cipher suite object.
1167 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001168static psa_pake_cipher_suite_t psa_pake_cipher_suite_init(void);
Neil Armstrong5ff6a7f2022-05-20 10:12:01 +02001169
Janos Follath702cf092021-05-26 12:58:23 +01001170/** Retrieve the PAKE algorithm from a PAKE cipher suite.
1171 *
Janos Follath702cf092021-05-26 12:58:23 +01001172 * \param[in] cipher_suite The cipher suite structure to query.
1173 *
1174 * \return The PAKE algorithm stored in the cipher suite structure.
1175 */
1176static psa_algorithm_t psa_pake_cs_get_algorithm(
Gilles Peskine449bd832023-01-11 14:50:10 +01001177 const psa_pake_cipher_suite_t *cipher_suite);
Janos Follath702cf092021-05-26 12:58:23 +01001178
1179/** Declare the PAKE algorithm for the cipher suite.
1180 *
1181 * This function overwrites any PAKE algorithm
1182 * previously set in \p cipher_suite.
1183 *
Janos Follath702cf092021-05-26 12:58:23 +01001184 * \param[out] cipher_suite The cipher suite structure to write to.
1185 * \param algorithm The PAKE algorithm to write.
1186 * (`PSA_ALG_XXX` values of type ::psa_algorithm_t
1187 * such that #PSA_ALG_IS_PAKE(\c alg) is true.)
1188 * If this is 0, the PAKE algorithm in
1189 * \p cipher_suite becomes unspecified.
1190 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001191static void psa_pake_cs_set_algorithm(psa_pake_cipher_suite_t *cipher_suite,
1192 psa_algorithm_t algorithm);
Janos Follath702cf092021-05-26 12:58:23 +01001193
1194/** Retrieve the primitive from a PAKE cipher suite.
1195 *
Janos Follath702cf092021-05-26 12:58:23 +01001196 * \param[in] cipher_suite The cipher suite structure to query.
1197 *
1198 * \return The primitive stored in the cipher suite structure.
1199 */
1200static psa_pake_primitive_t psa_pake_cs_get_primitive(
Gilles Peskine449bd832023-01-11 14:50:10 +01001201 const psa_pake_cipher_suite_t *cipher_suite);
Janos Follath702cf092021-05-26 12:58:23 +01001202
1203/** Declare the primitive for a PAKE cipher suite.
1204 *
1205 * This function overwrites any primitive previously set in \p cipher_suite.
1206 *
Janos Follath702cf092021-05-26 12:58:23 +01001207 * \param[out] cipher_suite The cipher suite structure to write to.
1208 * \param primitive The primitive to write. If this is 0, the
1209 * primitive type in \p cipher_suite becomes
1210 * unspecified.
1211 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001212static void psa_pake_cs_set_primitive(psa_pake_cipher_suite_t *cipher_suite,
1213 psa_pake_primitive_t primitive);
Janos Follath702cf092021-05-26 12:58:23 +01001214
Neil Armstrongff9cac72022-05-20 10:25:15 +02001215/** Retrieve the PAKE family from a PAKE cipher suite.
1216 *
Neil Armstrongff9cac72022-05-20 10:25:15 +02001217 * \param[in] cipher_suite The cipher suite structure to query.
1218 *
1219 * \return The PAKE family stored in the cipher suite structure.
1220 */
1221static psa_pake_family_t psa_pake_cs_get_family(
Gilles Peskine449bd832023-01-11 14:50:10 +01001222 const psa_pake_cipher_suite_t *cipher_suite);
Neil Armstrongff9cac72022-05-20 10:25:15 +02001223
Neil Armstrongd5a48252022-05-20 10:26:36 +02001224/** Retrieve the PAKE primitive bit-size from a PAKE cipher suite.
1225 *
Neil Armstrongd5a48252022-05-20 10:26:36 +02001226 * \param[in] cipher_suite The cipher suite structure to query.
1227 *
1228 * \return The PAKE primitive bit-size stored in the cipher suite structure.
1229 */
1230static uint16_t psa_pake_cs_get_bits(
Gilles Peskine449bd832023-01-11 14:50:10 +01001231 const psa_pake_cipher_suite_t *cipher_suite);
Neil Armstrongd5a48252022-05-20 10:26:36 +02001232
Janos Follath702cf092021-05-26 12:58:23 +01001233/** Retrieve the hash algorithm from a PAKE cipher suite.
1234 *
Janos Follath702cf092021-05-26 12:58:23 +01001235 * \param[in] cipher_suite The cipher suite structure to query.
1236 *
1237 * \return The hash algorithm stored in the cipher suite structure. The return
1238 * value is 0 if the PAKE is not parametrised by a hash algorithm or if
1239 * the hash algorithm is not set.
1240 */
1241static psa_algorithm_t psa_pake_cs_get_hash(
Gilles Peskine449bd832023-01-11 14:50:10 +01001242 const psa_pake_cipher_suite_t *cipher_suite);
Janos Follath702cf092021-05-26 12:58:23 +01001243
1244/** Declare the hash algorithm for a PAKE cipher suite.
1245 *
1246 * This function overwrites any hash algorithm
1247 * previously set in \p cipher_suite.
1248 *
Janos Follath702cf092021-05-26 12:58:23 +01001249 * Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX`
1250 * values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true)
1251 * for more information.
1252 *
1253 * \param[out] cipher_suite The cipher suite structure to write to.
1254 * \param hash The hash involved in the cipher suite.
1255 * (`PSA_ALG_XXX` values of type ::psa_algorithm_t
1256 * such that #PSA_ALG_IS_HASH(\c alg) is true.)
1257 * If this is 0, the hash algorithm in
1258 * \p cipher_suite becomes unspecified.
1259 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001260static void psa_pake_cs_set_hash(psa_pake_cipher_suite_t *cipher_suite,
1261 psa_algorithm_t hash);
Janos Follath702cf092021-05-26 12:58:23 +01001262
1263/** The type of the state data structure for PAKE operations.
1264 *
1265 * Before calling any function on a PAKE operation object, the application
1266 * must initialize it by any of the following means:
1267 * - Set the structure to all-bits-zero, for example:
1268 * \code
1269 * psa_pake_operation_t operation;
1270 * memset(&operation, 0, sizeof(operation));
1271 * \endcode
1272 * - Initialize the structure to logical zero values, for example:
1273 * \code
1274 * psa_pake_operation_t operation = {0};
1275 * \endcode
1276 * - Initialize the structure to the initializer #PSA_PAKE_OPERATION_INIT,
1277 * for example:
1278 * \code
1279 * psa_pake_operation_t operation = PSA_PAKE_OPERATION_INIT;
1280 * \endcode
1281 * - Assign the result of the function psa_pake_operation_init()
1282 * to the structure, for example:
1283 * \code
1284 * psa_pake_operation_t operation;
1285 * operation = psa_pake_operation_init();
1286 * \endcode
1287 *
1288 * This is an implementation-defined \c struct. Applications should not
1289 * make any assumptions about the content of this structure.
1290 * Implementation details can change in future versions without notice. */
1291typedef struct psa_pake_operation_s psa_pake_operation_t;
1292
Przemek Stekiel51eac532022-12-07 11:04:51 +01001293/** The type of input values for PAKE operations. */
1294typedef struct psa_crypto_driver_pake_inputs_s psa_crypto_driver_pake_inputs_t;
1295
Przemek Stekielb09c4872023-01-17 12:05:38 +01001296/** The type of computation stage for J-PAKE operations. */
Przemek Stekiele12ed362022-12-21 12:54:46 +01001297typedef struct psa_jpake_computation_stage_s psa_jpake_computation_stage_t;
1298
Tom Cosgrovece7f18c2022-07-28 05:50:56 +01001299/** Return an initial value for a PAKE operation object.
Janos Follath702cf092021-05-26 12:58:23 +01001300 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001301static psa_pake_operation_t psa_pake_operation_init(void);
Janos Follath702cf092021-05-26 12:58:23 +01001302
Przemek Stekielca8d2b22023-01-17 16:21:33 +01001303/** Get the lengths of the password in bytes from given inputs.
1304 *
1305 * \param[in] inputs Operation inputs.
1306 * \param[out] password_len Return buffer for password length.
1307 *
1308 * \retval #PSA_SUCCESS
1309 * Success.
1310 * \retval #PSA_ERROR_BAD_STATE
1311 * Password hasn't been set yet.
1312 */
1313psa_status_t psa_crypto_driver_pake_get_password_len(
1314 const psa_crypto_driver_pake_inputs_t *inputs,
1315 size_t *password_len);
1316
1317/** Get the password from given inputs.
1318 *
1319 * \param[in] inputs Operation inputs.
1320 * \param[out] buffer Return buffer for password.
1321 * \param[in] buffer_size Size of the return buffer in bytes.
1322 * \param[in] buffer_length Actual size of the password in bytes.
1323 *
1324 * \retval #PSA_SUCCESS
1325 * Success.
1326 * \retval #PSA_ERROR_BAD_STATE
1327 * Password hasn't been set yet.
1328 */
1329psa_status_t psa_crypto_driver_pake_get_password(
1330 const psa_crypto_driver_pake_inputs_t *inputs,
1331 uint8_t *buffer, size_t buffer_size, size_t *buffer_length);
1332
1333/** Get the role from given inputs.
1334 *
1335 * \param[in] inputs Operation inputs.
1336 * \param[out] role Return buffer for role.
1337 *
1338 * \retval #PSA_SUCCESS
1339 * Success.
1340 * \retval #PSA_ERROR_BAD_STATE
1341 * Role hasn't been set yet.
1342 */
1343psa_status_t psa_crypto_driver_pake_get_role(
1344 const psa_crypto_driver_pake_inputs_t *inputs,
1345 psa_pake_role_t *role);
1346
1347/** Get the cipher suite from given inputs.
1348 *
1349 * \param[in] inputs Operation inputs.
1350 * \param[out] cipher_suite Return buffer for role.
1351 *
1352 * \retval #PSA_SUCCESS
1353 * Success.
1354 * \retval #PSA_ERROR_BAD_STATE
1355 * Cipher_suite hasn't been set yet.
1356 */
1357psa_status_t psa_crypto_driver_pake_get_cipher_suite(
1358 const psa_crypto_driver_pake_inputs_t *inputs,
1359 psa_pake_cipher_suite_t *cipher_suite);
1360
Janos Follath702cf092021-05-26 12:58:23 +01001361/** Set the session information for a password-authenticated key exchange.
1362 *
1363 * The sequence of operations to set up a password-authenticated key exchange
1364 * is as follows:
1365 * -# Allocate an operation object which will be passed to all the functions
1366 * listed here.
1367 * -# Initialize the operation object with one of the methods described in the
1368 * documentation for #psa_pake_operation_t, e.g.
1369 * #PSA_PAKE_OPERATION_INIT.
1370 * -# Call psa_pake_setup() to specify the cipher suite.
1371 * -# Call \c psa_pake_set_xxx() functions on the operation to complete the
1372 * setup. The exact sequence of \c psa_pake_set_xxx() functions that needs
1373 * to be called depends on the algorithm in use.
1374 *
1375 * Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX`
1376 * values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true)
1377 * for more information.
1378 *
1379 * A typical sequence of calls to perform a password-authenticated key
1380 * exchange:
1381 * -# Call psa_pake_output(operation, #PSA_PAKE_STEP_KEY_SHARE, ...) to get the
1382 * key share that needs to be sent to the peer.
1383 * -# Call psa_pake_input(operation, #PSA_PAKE_STEP_KEY_SHARE, ...) to provide
1384 * the key share that was received from the peer.
1385 * -# Depending on the algorithm additional calls to psa_pake_output() and
1386 * psa_pake_input() might be necessary.
1387 * -# Call psa_pake_get_implicit_key() for accessing the shared secret.
1388 *
1389 * Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX`
1390 * values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true)
1391 * for more information.
1392 *
1393 * If an error occurs at any step after a call to psa_pake_setup(),
1394 * the operation will need to be reset by a call to psa_pake_abort(). The
1395 * application may call psa_pake_abort() at any time after the operation
1396 * has been initialized.
1397 *
1398 * After a successful call to psa_pake_setup(), the application must
1399 * eventually terminate the operation. The following events terminate an
1400 * operation:
1401 * - A call to psa_pake_abort().
1402 * - A successful call to psa_pake_get_implicit_key().
1403 *
1404 * \param[in,out] operation The operation object to set up. It must have
Janos Follath3293dae2021-06-03 13:21:33 +01001405 * been initialized but not set up yet.
Neil Armstrong47e700e2022-05-20 10:16:41 +02001406 * \param[in] cipher_suite The cipher suite to use. (A cipher suite fully
Janos Follath702cf092021-05-26 12:58:23 +01001407 * characterizes a PAKE algorithm and determines
1408 * the algorithm as well.)
1409 *
1410 * \retval #PSA_SUCCESS
1411 * Success.
Neil Armstrong4721a6f2022-05-20 10:53:00 +02001412 * \retval #PSA_ERROR_INVALID_ARGUMENT
1413 * The algorithm in \p cipher_suite is not a PAKE algorithm, or the
1414 * PAKE primitive in \p cipher_suite is not compatible with the
1415 * PAKE algorithm, or the hash algorithm in \p cipher_suite is invalid
1416 * or not compatible with the PAKE algorithm and primitive.
Janos Follath702cf092021-05-26 12:58:23 +01001417 * \retval #PSA_ERROR_NOT_SUPPORTED
Neil Armstrong4721a6f2022-05-20 10:53:00 +02001418 * The algorithm in \p cipher_suite is not a supported PAKE algorithm,
1419 * or the PAKE primitive in \p cipher_suite is not supported or not
1420 * compatible with the PAKE algorithm, or the hash algorithm in
1421 * \p cipher_suite is not supported or not compatible with the PAKE
1422 * algorithm and primitive.
Janos Follath702cf092021-05-26 12:58:23 +01001423 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
Janos Follath702cf092021-05-26 12:58:23 +01001424 * \retval #PSA_ERROR_CORRUPTION_DETECTED
1425 * \retval #PSA_ERROR_BAD_STATE
Andrzej Kurekf7c1f742022-02-03 11:30:54 -05001426 * The operation state is not valid, or
1427 * the library has not been previously initialized by psa_crypto_init().
Janos Follath702cf092021-05-26 12:58:23 +01001428 * It is implementation-dependent whether a failure to initialize
1429 * results in this error code.
1430 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001431psa_status_t psa_pake_setup(psa_pake_operation_t *operation,
1432 const psa_pake_cipher_suite_t *cipher_suite);
Janos Follath702cf092021-05-26 12:58:23 +01001433
1434/** Set the password for a password-authenticated key exchange from key ID.
1435 *
1436 * Call this function when the password, or a value derived from the password,
Janos Follath52f9efa2021-05-27 08:40:16 +01001437 * is already present in the key store.
Janos Follath702cf092021-05-26 12:58:23 +01001438 *
1439 * \param[in,out] operation The operation object to set the password for. It
1440 * must have been set up by psa_pake_setup() and
1441 * not yet in use (neither psa_pake_output() nor
1442 * psa_pake_input() has been called yet). It must
1443 * be on operation for which the password hasn't
Janos Follath52f9efa2021-05-27 08:40:16 +01001444 * been set yet (psa_pake_set_password_key()
Janos Follath559f05e2021-05-26 15:44:30 +01001445 * hasn't been called yet).
Janos Follath702cf092021-05-26 12:58:23 +01001446 * \param password Identifier of the key holding the password or a
1447 * value derived from the password (eg. by a
1448 * memory-hard function). It must remain valid
1449 * until the operation terminates. It must be of
1450 * type #PSA_KEY_TYPE_PASSWORD or
1451 * #PSA_KEY_TYPE_PASSWORD_HASH. It has to allow
1452 * the usage #PSA_KEY_USAGE_DERIVE.
1453 *
1454 * \retval #PSA_SUCCESS
1455 * Success.
Janos Follath702cf092021-05-26 12:58:23 +01001456 * \retval #PSA_ERROR_INVALID_HANDLE
Neil Armstrong71cae612022-05-20 11:00:49 +02001457 * \p password is not a valid key identifier.
Janos Follath702cf092021-05-26 12:58:23 +01001458 * \retval #PSA_ERROR_NOT_PERMITTED
Neil Armstrong71cae612022-05-20 11:00:49 +02001459 * The key does not have the #PSA_KEY_USAGE_DERIVE flag, or it does not
1460 * permit the \p operation's algorithm.
1461 * \retval #PSA_ERROR_INVALID_ARGUMENT
1462 * The key type for \p password is not #PSA_KEY_TYPE_PASSWORD or
1463 * #PSA_KEY_TYPE_PASSWORD_HASH, or \p password is not compatible with
1464 * the \p operation's cipher suite.
1465 * \retval #PSA_ERROR_NOT_SUPPORTED
1466 * The key type or key size of \p password is not supported with the
1467 * \p operation's cipher suite.
1468 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1469 * \retval #PSA_ERROR_CORRUPTION_DETECTED
1470 * \retval #PSA_ERROR_STORAGE_FAILURE
1471 * \retval #PSA_ERROR_DATA_CORRUPT
1472 * \retval #PSA_ERROR_DATA_INVALID
Janos Follath702cf092021-05-26 12:58:23 +01001473 * \retval #PSA_ERROR_BAD_STATE
Andrzej Kurekf7c1f742022-02-03 11:30:54 -05001474 * The operation state is not valid (it must have been set up.), or
1475 * the library has not been previously initialized by psa_crypto_init().
Janos Follath702cf092021-05-26 12:58:23 +01001476 * It is implementation-dependent whether a failure to initialize
1477 * results in this error code.
1478 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001479psa_status_t psa_pake_set_password_key(psa_pake_operation_t *operation,
1480 mbedtls_svc_key_id_t password);
Janos Follath702cf092021-05-26 12:58:23 +01001481
Janos Follath702cf092021-05-26 12:58:23 +01001482/** Set the user ID for a password-authenticated key exchange.
1483 *
1484 * Call this function to set the user ID. For PAKE algorithms that associate a
1485 * user identifier with each side of the session you need to call
1486 * psa_pake_set_peer() as well. For PAKE algorithms that associate a single
1487 * user identifier with the session, call psa_pake_set_user() only.
1488 *
1489 * Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX`
1490 * values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true)
1491 * for more information.
1492 *
1493 * \param[in,out] operation The operation object to set the user ID for. It
1494 * must have been set up by psa_pake_setup() and
1495 * not yet in use (neither psa_pake_output() nor
1496 * psa_pake_input() has been called yet). It must
1497 * be on operation for which the user ID hasn't
1498 * been set (psa_pake_set_user() hasn't been
1499 * called yet).
1500 * \param[in] user_id The user ID to authenticate with.
1501 * \param user_id_len Size of the \p user_id buffer in bytes.
1502 *
1503 * \retval #PSA_SUCCESS
1504 * Success.
Andrzej Kurekf7c1f742022-02-03 11:30:54 -05001505 * \retval #PSA_ERROR_INVALID_ARGUMENT
Neil Armstrong35851682022-05-20 11:02:37 +02001506 * \p user_id is not valid for the \p operation's algorithm and cipher
1507 * suite.
1508 * \retval #PSA_ERROR_NOT_SUPPORTED
1509 * The value of \p user_id is not supported by the implementation.
Janos Follath702cf092021-05-26 12:58:23 +01001510 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1511 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
Janos Follath702cf092021-05-26 12:58:23 +01001512 * \retval #PSA_ERROR_CORRUPTION_DETECTED
Janos Follath702cf092021-05-26 12:58:23 +01001513 * \retval #PSA_ERROR_BAD_STATE
Andrzej Kurekf7c1f742022-02-03 11:30:54 -05001514 * The operation state is not valid, or
1515 * the library has not been previously initialized by psa_crypto_init().
Janos Follath702cf092021-05-26 12:58:23 +01001516 * It is implementation-dependent whether a failure to initialize
1517 * results in this error code.
1518 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001519psa_status_t psa_pake_set_user(psa_pake_operation_t *operation,
1520 const uint8_t *user_id,
1521 size_t user_id_len);
Janos Follath702cf092021-05-26 12:58:23 +01001522
1523/** Set the peer ID for a password-authenticated key exchange.
1524 *
1525 * Call this function in addition to psa_pake_set_user() for PAKE algorithms
1526 * that associate a user identifier with each side of the session. For PAKE
1527 * algorithms that associate a single user identifier with the session, call
1528 * psa_pake_set_user() only.
1529 *
1530 * Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX`
1531 * values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true)
1532 * for more information.
1533 *
1534 * \param[in,out] operation The operation object to set the peer ID for. It
1535 * must have been set up by psa_pake_setup() and
1536 * not yet in use (neither psa_pake_output() nor
1537 * psa_pake_input() has been called yet). It must
1538 * be on operation for which the peer ID hasn't
1539 * been set (psa_pake_set_peer() hasn't been
1540 * called yet).
1541 * \param[in] peer_id The peer's ID to authenticate.
1542 * \param peer_id_len Size of the \p peer_id buffer in bytes.
1543 *
1544 * \retval #PSA_SUCCESS
1545 * Success.
Neil Armstrong16ff7882022-05-20 11:04:20 +02001546 * \retval #PSA_ERROR_INVALID_ARGUMENT
1547 * \p user_id is not valid for the \p operation's algorithm and cipher
1548 * suite.
Janos Follath702cf092021-05-26 12:58:23 +01001549 * \retval #PSA_ERROR_NOT_SUPPORTED
1550 * The algorithm doesn't associate a second identity with the session.
1551 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1552 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
Janos Follath702cf092021-05-26 12:58:23 +01001553 * \retval #PSA_ERROR_CORRUPTION_DETECTED
Janos Follath702cf092021-05-26 12:58:23 +01001554 * \retval #PSA_ERROR_BAD_STATE
Neil Armstrong0d245752022-05-20 11:35:40 +02001555 * Calling psa_pake_set_peer() is invalid with the \p operation's
1556 * algorithm, the operation state is not valid, or the library has not
Andrzej Kurekf7c1f742022-02-03 11:30:54 -05001557 * been previously initialized by psa_crypto_init().
Janos Follath702cf092021-05-26 12:58:23 +01001558 * It is implementation-dependent whether a failure to initialize
1559 * results in this error code.
1560 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001561psa_status_t psa_pake_set_peer(psa_pake_operation_t *operation,
1562 const uint8_t *peer_id,
1563 size_t peer_id_len);
Janos Follath702cf092021-05-26 12:58:23 +01001564
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +02001565/** Set the application role for a password-authenticated key exchange.
Janos Follath702cf092021-05-26 12:58:23 +01001566 *
1567 * Not all PAKE algorithms need to differentiate the communicating entities.
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +02001568 * It is optional to call this function for PAKEs that don't require a role
1569 * to be specified. For such PAKEs the application role parameter is ignored,
1570 * or #PSA_PAKE_ROLE_NONE can be passed as \c role.
Janos Follath702cf092021-05-26 12:58:23 +01001571 *
1572 * Refer to the documentation of individual PAKE algorithm types (`PSA_ALG_XXX`
1573 * values of type ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true)
1574 * for more information.
1575 *
Neil Armstrongef157512022-05-25 11:49:45 +02001576 * \param[in,out] operation The operation object to specify the
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +02001577 * application's role for. It must have been set up
1578 * by psa_pake_setup() and not yet in use (neither
1579 * psa_pake_output() nor psa_pake_input() has been
1580 * called yet). It must be on operation for which
1581 * the application's role hasn't been specified
1582 * (psa_pake_set_role() hasn't been called yet).
1583 * \param role A value of type ::psa_pake_role_t indicating the
1584 * application's role in the PAKE the algorithm
1585 * that is being set up. For more information see
1586 * the documentation of \c PSA_PAKE_ROLE_XXX
1587 * constants.
Janos Follath702cf092021-05-26 12:58:23 +01001588 *
1589 * \retval #PSA_SUCCESS
1590 * Success.
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +02001591 * \retval #PSA_ERROR_INVALID_ARGUMENT
1592 * The \p role is not a valid PAKE role in the \p operation’s algorithm.
Janos Follath702cf092021-05-26 12:58:23 +01001593 * \retval #PSA_ERROR_NOT_SUPPORTED
Neil Armstrong2a6dd9c2022-05-20 11:17:10 +02001594 * The \p role for this algorithm is not supported or is not valid.
Janos Follath702cf092021-05-26 12:58:23 +01001595 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
Janos Follath702cf092021-05-26 12:58:23 +01001596 * \retval #PSA_ERROR_CORRUPTION_DETECTED
1597 * \retval #PSA_ERROR_BAD_STATE
Andrzej Kurekf7c1f742022-02-03 11:30:54 -05001598 * The operation state is not valid, or
1599 * the library has not been previously initialized by psa_crypto_init().
Janos Follath702cf092021-05-26 12:58:23 +01001600 * It is implementation-dependent whether a failure to initialize
1601 * results in this error code.
1602 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001603psa_status_t psa_pake_set_role(psa_pake_operation_t *operation,
1604 psa_pake_role_t role);
Janos Follath702cf092021-05-26 12:58:23 +01001605
1606/** Get output for a step of a password-authenticated key exchange.
1607 *
1608 * Depending on the algorithm being executed, you might need to call this
1609 * function several times or you might not need to call this at all.
1610 *
1611 * The exact sequence of calls to perform a password-authenticated key
1612 * exchange depends on the algorithm in use. Refer to the documentation of
1613 * individual PAKE algorithm types (`PSA_ALG_XXX` values of type
1614 * ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) for more
1615 * information.
1616 *
1617 * If this function returns an error status, the operation enters an error
1618 * state and must be aborted by calling psa_pake_abort().
1619 *
1620 * \param[in,out] operation Active PAKE operation.
1621 * \param step The step of the algorithm for which the output is
1622 * requested.
1623 * \param[out] output Buffer where the output is to be written in the
1624 * format appropriate for this \p step. Refer to
1625 * the documentation of the individual
1626 * \c PSA_PAKE_STEP_XXX constants for more
1627 * information.
1628 * \param output_size Size of the \p output buffer in bytes. This must
Neil Armstrong7bc71e92022-05-20 10:36:14 +02001629 * be at least #PSA_PAKE_OUTPUT_SIZE(\p alg, \p
1630 * primitive, \p step) where \p alg and
1631 * \p primitive are the PAKE algorithm and primitive
1632 * in the operation's cipher suite, and \p step is
1633 * the output step.
Janos Follath702cf092021-05-26 12:58:23 +01001634 *
1635 * \param[out] output_length On success, the number of bytes of the returned
1636 * output.
1637 *
1638 * \retval #PSA_SUCCESS
1639 * Success.
Janos Follath702cf092021-05-26 12:58:23 +01001640 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
1641 * The size of the \p output buffer is too small.
Neil Armstrong664077e2022-05-20 11:24:41 +02001642 * \retval #PSA_ERROR_INVALID_ARGUMENT
1643 * \p step is not compatible with the operation's algorithm.
1644 * \retval #PSA_ERROR_NOT_SUPPORTED
1645 * \p step is not supported with the operation's algorithm.
1646 * \retval #PSA_ERROR_INSUFFICIENT_ENTROPY
Janos Follath702cf092021-05-26 12:58:23 +01001647 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1648 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
Janos Follath702cf092021-05-26 12:58:23 +01001649 * \retval #PSA_ERROR_CORRUPTION_DETECTED
1650 * \retval #PSA_ERROR_STORAGE_FAILURE
Neil Armstrong664077e2022-05-20 11:24:41 +02001651 * \retval #PSA_ERROR_DATA_CORRUPT
1652 * \retval #PSA_ERROR_DATA_INVALID
Janos Follath702cf092021-05-26 12:58:23 +01001653 * \retval #PSA_ERROR_BAD_STATE
Neil Armstronge9b45812022-05-20 11:39:09 +02001654 * The operation state is not valid (it must be active, and fully set
1655 * up, and this call must conform to the algorithm's requirements
1656 * for ordering of input and output steps), or
Andrzej Kurekf7c1f742022-02-03 11:30:54 -05001657 * the library has not been previously initialized by psa_crypto_init().
Janos Follath702cf092021-05-26 12:58:23 +01001658 * It is implementation-dependent whether a failure to initialize
1659 * results in this error code.
1660 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001661psa_status_t psa_pake_output(psa_pake_operation_t *operation,
1662 psa_pake_step_t step,
1663 uint8_t *output,
1664 size_t output_size,
1665 size_t *output_length);
Janos Follath702cf092021-05-26 12:58:23 +01001666
1667/** Provide input for a step of a password-authenticated key exchange.
1668 *
1669 * Depending on the algorithm being executed, you might need to call this
1670 * function several times or you might not need to call this at all.
1671 *
1672 * The exact sequence of calls to perform a password-authenticated key
1673 * exchange depends on the algorithm in use. Refer to the documentation of
1674 * individual PAKE algorithm types (`PSA_ALG_XXX` values of type
1675 * ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) for more
1676 * information.
1677 *
1678 * If this function returns an error status, the operation enters an error
1679 * state and must be aborted by calling psa_pake_abort().
1680 *
1681 * \param[in,out] operation Active PAKE operation.
1682 * \param step The step for which the input is provided.
Neil Armstrong799106b2022-05-20 10:18:53 +02001683 * \param[in] input Buffer containing the input in the format
Janos Follath702cf092021-05-26 12:58:23 +01001684 * appropriate for this \p step. Refer to the
1685 * documentation of the individual
1686 * \c PSA_PAKE_STEP_XXX constants for more
1687 * information.
Neil Armstrong799106b2022-05-20 10:18:53 +02001688 * \param input_length Size of the \p input buffer in bytes.
Janos Follath702cf092021-05-26 12:58:23 +01001689 *
1690 * \retval #PSA_SUCCESS
1691 * Success.
Neil Armstrong407b27b2022-05-20 11:28:23 +02001692 * \retval #PSA_ERROR_INVALID_SIGNATURE
1693 * The verification fails for a #PSA_PAKE_STEP_ZK_PROOF input step.
Andrzej Kurekf7c1f742022-02-03 11:30:54 -05001694 * \retval #PSA_ERROR_INVALID_ARGUMENT
Neil Armstrong407b27b2022-05-20 11:28:23 +02001695 * \p is not compatible with the \p operation’s algorithm, or the
1696 * \p input is not valid for the \p operation's algorithm, cipher suite
1697 * or \p step.
1698 * \retval #PSA_ERROR_NOT_SUPPORTED
1699 * \p step p is not supported with the \p operation's algorithm, or the
1700 * \p input is not supported for the \p operation's algorithm, cipher
1701 * suite or \p step.
Janos Follath702cf092021-05-26 12:58:23 +01001702 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1703 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
Janos Follath702cf092021-05-26 12:58:23 +01001704 * \retval #PSA_ERROR_CORRUPTION_DETECTED
1705 * \retval #PSA_ERROR_STORAGE_FAILURE
Neil Armstrong407b27b2022-05-20 11:28:23 +02001706 * \retval #PSA_ERROR_DATA_CORRUPT
1707 * \retval #PSA_ERROR_DATA_INVALID
Janos Follath702cf092021-05-26 12:58:23 +01001708 * \retval #PSA_ERROR_BAD_STATE
Neil Armstronge9b45812022-05-20 11:39:09 +02001709 * The operation state is not valid (it must be active, and fully set
1710 * up, and this call must conform to the algorithm's requirements
1711 * for ordering of input and output steps), or
Andrzej Kurekf7c1f742022-02-03 11:30:54 -05001712 * the library has not been previously initialized by psa_crypto_init().
Janos Follath702cf092021-05-26 12:58:23 +01001713 * It is implementation-dependent whether a failure to initialize
1714 * results in this error code.
1715 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001716psa_status_t psa_pake_input(psa_pake_operation_t *operation,
1717 psa_pake_step_t step,
1718 const uint8_t *input,
1719 size_t input_length);
Janos Follath702cf092021-05-26 12:58:23 +01001720
1721/** Get implicitly confirmed shared secret from a PAKE.
1722 *
1723 * At this point there is a cryptographic guarantee that only the authenticated
1724 * party who used the same password is able to compute the key. But there is no
Janos Follatha46e28f2021-06-03 13:07:03 +01001725 * guarantee that the peer is the party it claims to be and was able to do so.
Janos Follath702cf092021-05-26 12:58:23 +01001726 *
Janos Follathb4db90f2021-06-03 13:17:09 +01001727 * That is, the authentication is only implicit. Since the peer is not
1728 * authenticated yet, no action should be taken yet that assumes that the peer
1729 * is who it claims to be. For example, do not access restricted files on the
1730 * peer's behalf until an explicit authentication has succeeded.
Janos Follath702cf092021-05-26 12:58:23 +01001731 *
1732 * This function can be called after the key exchange phase of the operation
1733 * has completed. It imports the shared secret output of the PAKE into the
1734 * provided derivation operation. The input step
1735 * #PSA_KEY_DERIVATION_INPUT_SECRET is used when placing the shared key
1736 * material in the key derivation operation.
1737 *
1738 * The exact sequence of calls to perform a password-authenticated key
1739 * exchange depends on the algorithm in use. Refer to the documentation of
1740 * individual PAKE algorithm types (`PSA_ALG_XXX` values of type
1741 * ::psa_algorithm_t such that #PSA_ALG_IS_PAKE(\c alg) is true) for more
1742 * information.
1743 *
1744 * When this function returns successfully, \p operation becomes inactive.
1745 * If this function returns an error status, both \p operation
1746 * and \p key_derivation operations enter an error state and must be aborted by
1747 * calling psa_pake_abort() and psa_key_derivation_abort() respectively.
1748 *
1749 * \param[in,out] operation Active PAKE operation.
1750 * \param[out] output A key derivation operation that is ready
1751 * for an input step of type
1752 * #PSA_KEY_DERIVATION_INPUT_SECRET.
1753 *
1754 * \retval #PSA_SUCCESS
1755 * Success.
Janos Follath702cf092021-05-26 12:58:23 +01001756 * \retval #PSA_ERROR_INVALID_ARGUMENT
Neil Armstrong97d74b82022-05-20 11:30:31 +02001757 * #PSA_KEY_DERIVATION_INPUT_SECRET is not compatible with the
1758 * algorithm in the \p output key derivation operation.
1759 * \retval #PSA_ERROR_NOT_SUPPORTED
1760 * Input from a PAKE is not supported by the algorithm in the \p output
1761 * key derivation operation.
Janos Follath702cf092021-05-26 12:58:23 +01001762 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1763 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
Janos Follath702cf092021-05-26 12:58:23 +01001764 * \retval #PSA_ERROR_CORRUPTION_DETECTED
1765 * \retval #PSA_ERROR_STORAGE_FAILURE
Neil Armstrong97d74b82022-05-20 11:30:31 +02001766 * \retval #PSA_ERROR_DATA_CORRUPT
1767 * \retval #PSA_ERROR_DATA_INVALID
Janos Follath702cf092021-05-26 12:58:23 +01001768 * \retval #PSA_ERROR_BAD_STATE
Andrzej Kurekf7c1f742022-02-03 11:30:54 -05001769 * The PAKE operation state is not valid (it must be active, but beyond
1770 * that validity is specific to the algorithm), or
1771 * the library has not been previously initialized by psa_crypto_init(),
1772 * or the state of \p output is not valid for
1773 * the #PSA_KEY_DERIVATION_INPUT_SECRET step. This can happen if the
1774 * step is out of order or the application has done this step already
1775 * and it may not be repeated.
Janos Follath702cf092021-05-26 12:58:23 +01001776 * It is implementation-dependent whether a failure to initialize
1777 * results in this error code.
1778 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001779psa_status_t psa_pake_get_implicit_key(psa_pake_operation_t *operation,
1780 psa_key_derivation_operation_t *output);
Janos Follath702cf092021-05-26 12:58:23 +01001781
Neil Armstrong0c8ef932022-05-20 10:23:51 +02001782/** Abort a PAKE operation.
1783 *
1784 * Aborting an operation frees all associated resources except for the \c
1785 * operation structure itself. Once aborted, the operation object can be reused
1786 * for another operation by calling psa_pake_setup() again.
1787 *
1788 * This function may be called at any time after the operation
1789 * object has been initialized as described in #psa_pake_operation_t.
1790 *
1791 * In particular, calling psa_pake_abort() after the operation has been
1792 * terminated by a call to psa_pake_abort() or psa_pake_get_implicit_key()
1793 * is safe and has no effect.
1794 *
1795 * \param[in,out] operation The operation to abort.
1796 *
1797 * \retval #PSA_SUCCESS
Neil Armstrong59fa8ee2022-05-20 11:31:04 +02001798 * Success.
Neil Armstrong0c8ef932022-05-20 10:23:51 +02001799 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1800 * \retval #PSA_ERROR_CORRUPTION_DETECTED
1801 * \retval #PSA_ERROR_BAD_STATE
1802 * The library has not been previously initialized by psa_crypto_init().
1803 * It is implementation-dependent whether a failure to initialize
1804 * results in this error code.
1805 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001806psa_status_t psa_pake_abort(psa_pake_operation_t *operation);
Neil Armstrong0c8ef932022-05-20 10:23:51 +02001807
Janos Follath702cf092021-05-26 12:58:23 +01001808/**@}*/
1809
1810/** A sufficient output buffer size for psa_pake_output().
1811 *
1812 * If the size of the output buffer is at least this large, it is guaranteed
1813 * that psa_pake_output() will not fail due to an insufficient output buffer
1814 * size. The actual size of the output might be smaller in any given call.
1815 *
1816 * See also #PSA_PAKE_OUTPUT_MAX_SIZE
1817 *
Janos Follath46c02372021-06-08 15:22:51 +01001818 * \param alg A PAKE algorithm (\c PSA_ALG_XXX value such that
Janos Follath702cf092021-05-26 12:58:23 +01001819 * #PSA_ALG_IS_PAKE(\p alg) is true).
1820 * \param primitive A primitive of type ::psa_pake_primitive_t that is
1821 * compatible with algorithm \p alg.
1822 * \param output_step A value of type ::psa_pake_step_t that is valid for the
1823 * algorithm \p alg.
1824 * \return A sufficient output buffer size for the specified
Neil Armstrongcd974d52022-05-20 10:30:12 +02001825 * PAKE algorithm, primitive, and output step. If the
1826 * PAKE algorithm, primitive, or output step is not
1827 * recognized, or the parameters are incompatible,
1828 * return 0.
Janos Follath702cf092021-05-26 12:58:23 +01001829 */
Neil Armstrong7aaa34a2022-06-08 14:05:02 +02001830#define PSA_PAKE_OUTPUT_SIZE(alg, primitive, output_step) \
Gilles Peskine449bd832023-01-11 14:50:10 +01001831 (alg == PSA_ALG_JPAKE && \
1832 primitive == PSA_PAKE_PRIMITIVE(PSA_PAKE_PRIMITIVE_TYPE_ECC, \
1833 PSA_ECC_FAMILY_SECP_R1, 256) ? \
1834 ( \
1835 output_step == PSA_PAKE_STEP_KEY_SHARE ? 65 : \
1836 output_step == PSA_PAKE_STEP_ZK_PUBLIC ? 65 : \
1837 32 \
1838 ) : \
1839 0)
Janos Follath702cf092021-05-26 12:58:23 +01001840
1841/** A sufficient input buffer size for psa_pake_input().
1842 *
Janos Follathb4db90f2021-06-03 13:17:09 +01001843 * The value returned by this macro is guaranteed to be large enough for any
1844 * valid input to psa_pake_input() in an operation with the specified
1845 * parameters.
Janos Follath702cf092021-05-26 12:58:23 +01001846 *
1847 * See also #PSA_PAKE_INPUT_MAX_SIZE
1848 *
Janos Follath46c02372021-06-08 15:22:51 +01001849 * \param alg A PAKE algorithm (\c PSA_ALG_XXX value such that
Janos Follath702cf092021-05-26 12:58:23 +01001850 * #PSA_ALG_IS_PAKE(\p alg) is true).
1851 * \param primitive A primitive of type ::psa_pake_primitive_t that is
1852 * compatible with algorithm \p alg.
Janos Follathec83eb62021-05-27 08:41:59 +01001853 * \param input_step A value of type ::psa_pake_step_t that is valid for the
Janos Follath702cf092021-05-26 12:58:23 +01001854 * algorithm \p alg.
Janos Follath38d29db2021-06-03 13:14:42 +01001855 * \return A sufficient input buffer size for the specified
1856 * input, cipher suite and algorithm. If the cipher suite,
1857 * the input type or PAKE algorithm is not recognized, or
Janos Follath702cf092021-05-26 12:58:23 +01001858 * the parameters are incompatible, return 0.
1859 */
Neil Armstrong7aaa34a2022-06-08 14:05:02 +02001860#define PSA_PAKE_INPUT_SIZE(alg, primitive, input_step) \
Gilles Peskine449bd832023-01-11 14:50:10 +01001861 (alg == PSA_ALG_JPAKE && \
1862 primitive == PSA_PAKE_PRIMITIVE(PSA_PAKE_PRIMITIVE_TYPE_ECC, \
1863 PSA_ECC_FAMILY_SECP_R1, 256) ? \
1864 ( \
1865 input_step == PSA_PAKE_STEP_KEY_SHARE ? 65 : \
1866 input_step == PSA_PAKE_STEP_ZK_PUBLIC ? 65 : \
1867 32 \
1868 ) : \
1869 0)
Janos Follath702cf092021-05-26 12:58:23 +01001870
Neil Armstrong2056ce52022-05-25 11:38:15 +02001871/** Output buffer size for psa_pake_output() for any of the supported PAKE
1872 * algorithm and primitive suites and output step.
Janos Follath702cf092021-05-26 12:58:23 +01001873 *
1874 * This macro must expand to a compile-time constant integer.
1875 *
Neil Armstrong2056ce52022-05-25 11:38:15 +02001876 * See also #PSA_PAKE_OUTPUT_SIZE(\p alg, \p primitive, \p step).
Janos Follath702cf092021-05-26 12:58:23 +01001877 */
Manuel Pégourié-Gonnardec7012d2022-10-05 12:17:34 +02001878#define PSA_PAKE_OUTPUT_MAX_SIZE 65
Janos Follath702cf092021-05-26 12:58:23 +01001879
Neil Armstrong2056ce52022-05-25 11:38:15 +02001880/** Input buffer size for psa_pake_input() for any of the supported PAKE
1881 * algorithm and primitive suites and input step.
Janos Follath702cf092021-05-26 12:58:23 +01001882 *
1883 * This macro must expand to a compile-time constant integer.
1884 *
Neil Armstrong2056ce52022-05-25 11:38:15 +02001885 * See also #PSA_PAKE_INPUT_SIZE(\p alg, \p primitive, \p step).
Janos Follath702cf092021-05-26 12:58:23 +01001886 */
Manuel Pégourié-Gonnardec7012d2022-10-05 12:17:34 +02001887#define PSA_PAKE_INPUT_MAX_SIZE 65
Janos Follath702cf092021-05-26 12:58:23 +01001888
Neil Armstrongfb993022022-05-20 10:08:58 +02001889/** Returns a suitable initializer for a PAKE cipher suite object of type
1890 * psa_pake_cipher_suite_t.
1891 */
Gilles Peskine449bd832023-01-11 14:50:10 +01001892#define PSA_PAKE_CIPHER_SUITE_INIT { PSA_ALG_NONE, 0, 0, 0, PSA_ALG_NONE }
Neil Armstrongfb993022022-05-20 10:08:58 +02001893
Neil Armstrong0151c552022-05-20 10:13:53 +02001894/** Returns a suitable initializer for a PAKE operation object of type
1895 * psa_pake_operation_t.
1896 */
Przemek Stekiel1c3cfb42023-01-26 10:35:02 +01001897#define PSA_PAKE_OPERATION_INIT { 0, PSA_ALG_NONE, PSA_PAKE_OPERATION_STAGE_SETUP, \
Przemek Stekieldde6a912023-01-26 08:46:37 +01001898 { { 0 } }, { { 0 } } }
Neil Armstrong0151c552022-05-20 10:13:53 +02001899
Gilles Peskine449bd832023-01-11 14:50:10 +01001900struct psa_pake_cipher_suite_s {
Janos Follath702cf092021-05-26 12:58:23 +01001901 psa_algorithm_t algorithm;
1902 psa_pake_primitive_type_t type;
1903 psa_pake_family_t family;
1904 uint16_t bits;
1905 psa_algorithm_t hash;
1906};
1907
1908static inline psa_algorithm_t psa_pake_cs_get_algorithm(
Gilles Peskine449bd832023-01-11 14:50:10 +01001909 const psa_pake_cipher_suite_t *cipher_suite)
Janos Follath702cf092021-05-26 12:58:23 +01001910{
Gilles Peskine449bd832023-01-11 14:50:10 +01001911 return cipher_suite->algorithm;
Janos Follath702cf092021-05-26 12:58:23 +01001912}
1913
1914static inline void psa_pake_cs_set_algorithm(
1915 psa_pake_cipher_suite_t *cipher_suite,
1916 psa_algorithm_t algorithm)
1917{
Gilles Peskine449bd832023-01-11 14:50:10 +01001918 if (!PSA_ALG_IS_PAKE(algorithm)) {
Janos Follath702cf092021-05-26 12:58:23 +01001919 cipher_suite->algorithm = 0;
Gilles Peskine449bd832023-01-11 14:50:10 +01001920 } else {
Janos Follath702cf092021-05-26 12:58:23 +01001921 cipher_suite->algorithm = algorithm;
Gilles Peskine449bd832023-01-11 14:50:10 +01001922 }
Janos Follath702cf092021-05-26 12:58:23 +01001923}
1924
1925static inline psa_pake_primitive_t psa_pake_cs_get_primitive(
Gilles Peskine449bd832023-01-11 14:50:10 +01001926 const psa_pake_cipher_suite_t *cipher_suite)
Janos Follath702cf092021-05-26 12:58:23 +01001927{
Gilles Peskine449bd832023-01-11 14:50:10 +01001928 return PSA_PAKE_PRIMITIVE(cipher_suite->type, cipher_suite->family,
1929 cipher_suite->bits);
Janos Follath702cf092021-05-26 12:58:23 +01001930}
1931
1932static inline void psa_pake_cs_set_primitive(
Gilles Peskine449bd832023-01-11 14:50:10 +01001933 psa_pake_cipher_suite_t *cipher_suite,
1934 psa_pake_primitive_t primitive)
Janos Follath702cf092021-05-26 12:58:23 +01001935{
1936 cipher_suite->type = (psa_pake_primitive_type_t) (primitive >> 24);
1937 cipher_suite->family = (psa_pake_family_t) (0xFF & (primitive >> 16));
1938 cipher_suite->bits = (uint16_t) (0xFFFF & primitive);
1939}
1940
Neil Armstrongff9cac72022-05-20 10:25:15 +02001941static inline psa_pake_family_t psa_pake_cs_get_family(
Gilles Peskine449bd832023-01-11 14:50:10 +01001942 const psa_pake_cipher_suite_t *cipher_suite)
Neil Armstrongff9cac72022-05-20 10:25:15 +02001943{
Gilles Peskine449bd832023-01-11 14:50:10 +01001944 return cipher_suite->family;
Neil Armstrongff9cac72022-05-20 10:25:15 +02001945}
1946
Neil Armstrongd5a48252022-05-20 10:26:36 +02001947static inline uint16_t psa_pake_cs_get_bits(
Gilles Peskine449bd832023-01-11 14:50:10 +01001948 const psa_pake_cipher_suite_t *cipher_suite)
Neil Armstrongd5a48252022-05-20 10:26:36 +02001949{
Gilles Peskine449bd832023-01-11 14:50:10 +01001950 return cipher_suite->bits;
Neil Armstrongd5a48252022-05-20 10:26:36 +02001951}
1952
Janos Follath702cf092021-05-26 12:58:23 +01001953static inline psa_algorithm_t psa_pake_cs_get_hash(
Gilles Peskine449bd832023-01-11 14:50:10 +01001954 const psa_pake_cipher_suite_t *cipher_suite)
Janos Follath702cf092021-05-26 12:58:23 +01001955{
Gilles Peskine449bd832023-01-11 14:50:10 +01001956 return cipher_suite->hash;
Janos Follath702cf092021-05-26 12:58:23 +01001957}
1958
Gilles Peskine449bd832023-01-11 14:50:10 +01001959static inline void psa_pake_cs_set_hash(psa_pake_cipher_suite_t *cipher_suite,
1960 psa_algorithm_t hash)
Janos Follath702cf092021-05-26 12:58:23 +01001961{
Gilles Peskine449bd832023-01-11 14:50:10 +01001962 if (!PSA_ALG_IS_HASH(hash)) {
Janos Follath702cf092021-05-26 12:58:23 +01001963 cipher_suite->hash = 0;
Gilles Peskine449bd832023-01-11 14:50:10 +01001964 } else {
Janos Follath702cf092021-05-26 12:58:23 +01001965 cipher_suite->hash = hash;
Gilles Peskine449bd832023-01-11 14:50:10 +01001966 }
Janos Follath702cf092021-05-26 12:58:23 +01001967}
1968
Przemek Stekiel51eac532022-12-07 11:04:51 +01001969struct psa_crypto_driver_pake_inputs_s {
Przemek Stekiel51eac532022-12-07 11:04:51 +01001970 uint8_t *MBEDTLS_PRIVATE(password);
1971 size_t MBEDTLS_PRIVATE(password_len);
1972 psa_pake_role_t MBEDTLS_PRIVATE(role);
1973 psa_key_lifetime_t MBEDTLS_PRIVATE(key_lifetime);
1974 psa_pake_cipher_suite_t MBEDTLS_PRIVATE(cipher_suite);
1975};
1976
Przemek Stekiele12ed362022-12-21 12:54:46 +01001977enum psa_jpake_step {
1978 PSA_PAKE_STEP_INVALID = 0,
1979 PSA_PAKE_STEP_X1_X2 = 1,
1980 PSA_PAKE_STEP_X2S = 2,
1981 PSA_PAKE_STEP_DERIVE = 3,
1982};
1983
1984enum psa_jpake_state {
1985 PSA_PAKE_STATE_INVALID = 0,
1986 PSA_PAKE_STATE_SETUP = 1,
1987 PSA_PAKE_STATE_READY = 2,
1988 PSA_PAKE_OUTPUT_X1_X2 = 3,
1989 PSA_PAKE_OUTPUT_X2S = 4,
1990 PSA_PAKE_INPUT_X1_X2 = 5,
1991 PSA_PAKE_INPUT_X4S = 6,
1992};
1993
1994enum psa_jpake_sequence {
1995 PSA_PAKE_SEQ_INVALID = 0,
1996 PSA_PAKE_X1_STEP_KEY_SHARE = 1, /* also X2S & X4S KEY_SHARE */
1997 PSA_PAKE_X1_STEP_ZK_PUBLIC = 2, /* also X2S & X4S ZK_PUBLIC */
1998 PSA_PAKE_X1_STEP_ZK_PROOF = 3, /* also X2S & X4S ZK_PROOF */
1999 PSA_PAKE_X2_STEP_KEY_SHARE = 4,
2000 PSA_PAKE_X2_STEP_ZK_PUBLIC = 5,
2001 PSA_PAKE_X2_STEP_ZK_PROOF = 6,
2002 PSA_PAKE_SEQ_END = 7,
2003};
2004
Przemek Stekiel38b4e172023-01-18 15:52:24 +01002005typedef enum psa_pake_driver_step {
Przemek Stekielb09c4872023-01-17 12:05:38 +01002006 PSA_JPAKE_STEP_INVALID = 0, /* Invalid step */
2007 PSA_JPAKE_X1_STEP_KEY_SHARE = 1, /* Round 1: input/output key share (for ephemeral private key X1).*/
2008 PSA_JPAKE_X1_STEP_ZK_PUBLIC = 2, /* Round 1: input/output Schnorr NIZKP public key for the X1 key */
2009 PSA_JPAKE_X1_STEP_ZK_PROOF = 3, /* Round 1: input/output Schnorr NIZKP proof for the X1 key */
2010 PSA_JPAKE_X2_STEP_KEY_SHARE = 4, /* Round 1: input/output key share (for ephemeral private key X2).*/
2011 PSA_JPAKE_X2_STEP_ZK_PUBLIC = 5, /* Round 1: input/output Schnorr NIZKP public key for the X2 key */
2012 PSA_JPAKE_X2_STEP_ZK_PROOF = 6, /* Round 1: input/output Schnorr NIZKP proof for the X2 key */
2013 PSA_JPAKE_X2S_STEP_KEY_SHARE = 7, /* Round 2: output X2S key (our key) */
2014 PSA_JPAKE_X2S_STEP_ZK_PUBLIC = 8, /* Round 2: output Schnorr NIZKP public key for the X2S key (our key) */
2015 PSA_JPAKE_X2S_STEP_ZK_PROOF = 9, /* Round 2: output Schnorr NIZKP proof for the X2S key (our key) */
2016 PSA_JPAKE_X4S_STEP_KEY_SHARE = 10, /* Round 2: input X4S key (from peer) */
2017 PSA_JPAKE_X4S_STEP_ZK_PUBLIC = 11, /* Round 2: input Schnorr NIZKP public key for the X4S key (from peer) */
2018 PSA_JPAKE_X4S_STEP_ZK_PROOF = 12 /* Round 2: input Schnorr NIZKP proof for the X4S key (from peer) */
Przemek Stekiel38b4e172023-01-18 15:52:24 +01002019} psa_pake_driver_step_t;
Przemek Stekiel57980032023-01-09 15:07:26 +01002020
Przemek Stekielb09c4872023-01-17 12:05:38 +01002021
Przemek Stekiele12ed362022-12-21 12:54:46 +01002022struct psa_jpake_computation_stage_s {
2023 unsigned int MBEDTLS_PRIVATE(state);
2024 unsigned int MBEDTLS_PRIVATE(sequence);
2025 unsigned int MBEDTLS_PRIVATE(input_step);
2026 unsigned int MBEDTLS_PRIVATE(output_step);
2027};
2028
Gilles Peskine449bd832023-01-11 14:50:10 +01002029struct psa_pake_operation_s {
Przemek Stekield91bcb72022-11-22 14:00:51 +01002030 /** Unique ID indicating which driver got assigned to do the
2031 * operation. Since driver contexts are driver-specific, swapping
2032 * drivers halfway through the operation is not supported.
2033 * ID values are auto-generated in psa_crypto_driver_wrappers.h
2034 * ID value zero means the context is not valid or not assigned to
2035 * any driver (i.e. none of the driver contexts are active). */
2036 unsigned int MBEDTLS_PRIVATE(id);
Przemek Stekiele12ed362022-12-21 12:54:46 +01002037 /* Algorithm used for PAKE operation */
2038 psa_algorithm_t MBEDTLS_PRIVATE(alg);
Przemek Stekiel51eac532022-12-07 11:04:51 +01002039 /* Based on stage (collecting inputs/computation) we select active structure of data union.
2040 * While switching stage (when driver setup is called) collected inputs
2041 are copied to the corresponding operation context. */
2042 uint8_t MBEDTLS_PRIVATE(stage);
Przemek Stekiele12ed362022-12-21 12:54:46 +01002043 /* Holds computation stage of the PAKE algorithms. */
Przemek Stekieldde6a912023-01-26 08:46:37 +01002044 union {
2045 psa_jpake_computation_stage_t MBEDTLS_PRIVATE(jpake);
2046 } MBEDTLS_PRIVATE(computation_stage);
Przemek Stekiel51eac532022-12-07 11:04:51 +01002047 union {
Przemek Stekiel51eac532022-12-07 11:04:51 +01002048 psa_crypto_driver_pake_inputs_t MBEDTLS_PRIVATE(inputs);
2049 psa_driver_pake_context_t MBEDTLS_PRIVATE(ctx);
2050 } MBEDTLS_PRIVATE(data);
Janos Follath702cf092021-05-26 12:58:23 +01002051};
2052
Gilles Peskine449bd832023-01-11 14:50:10 +01002053static inline struct psa_pake_cipher_suite_s psa_pake_cipher_suite_init(void)
Neil Armstrong5ff6a7f2022-05-20 10:12:01 +02002054{
2055 const struct psa_pake_cipher_suite_s v = PSA_PAKE_CIPHER_SUITE_INIT;
Gilles Peskine449bd832023-01-11 14:50:10 +01002056 return v;
Neil Armstrong5ff6a7f2022-05-20 10:12:01 +02002057}
2058
Gilles Peskine449bd832023-01-11 14:50:10 +01002059static inline struct psa_pake_operation_s psa_pake_operation_init(void)
Janos Follath702cf092021-05-26 12:58:23 +01002060{
2061 const struct psa_pake_operation_s v = PSA_PAKE_OPERATION_INIT;
Gilles Peskine449bd832023-01-11 14:50:10 +01002062 return v;
Janos Follath702cf092021-05-26 12:58:23 +01002063}
2064
Gilles Peskinee59236f2018-01-27 23:32:46 +01002065#ifdef __cplusplus
2066}
2067#endif
2068
2069#endif /* PSA_CRYPTO_EXTRA_H */