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Gilles Peskinef3b731e2018-12-12 13:38:31 +01001/**
2 * \file psa/crypto_values.h
3 *
4 * \brief PSA cryptography module: macros to build and analyze integer values.
5 *
6 * \note This file may not be included directly. Applications must
7 * include psa/crypto.h. Drivers must include the appropriate driver
8 * header file.
9 *
10 * This file contains portable definitions of macros to build and analyze
11 * values of integral types that encode properties of cryptographic keys,
12 * designations of cryptographic algorithms, and error codes returned by
13 * the library.
14 *
15 * This header file only defines preprocessor macros.
16 */
17/*
18 * Copyright (C) 2018, ARM Limited, All Rights Reserved
19 * SPDX-License-Identifier: Apache-2.0
20 *
21 * Licensed under the Apache License, Version 2.0 (the "License"); you may
22 * not use this file except in compliance with the License.
23 * You may obtain a copy of the License at
24 *
25 * http://www.apache.org/licenses/LICENSE-2.0
26 *
27 * Unless required by applicable law or agreed to in writing, software
28 * distributed under the License is distributed on an "AS IS" BASIS, WITHOUT
29 * WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
30 * See the License for the specific language governing permissions and
31 * limitations under the License.
32 *
33 * This file is part of mbed TLS (https://tls.mbed.org)
34 */
35
36#ifndef PSA_CRYPTO_VALUES_H
37#define PSA_CRYPTO_VALUES_H
38
39/** \defgroup error Error codes
40 * @{
41 */
42
David Saadab4ecc272019-02-14 13:48:10 +020043/* PSA error codes */
44
Gilles Peskinef3b731e2018-12-12 13:38:31 +010045/** The action was completed successfully. */
46#define PSA_SUCCESS ((psa_status_t)0)
Gilles Peskinef3b731e2018-12-12 13:38:31 +010047
48/** An error occurred that does not correspond to any defined
49 * failure cause.
50 *
51 * Implementations may use this error code if none of the other standard
52 * error codes are applicable. */
David Saadab4ecc272019-02-14 13:48:10 +020053#define PSA_ERROR_GENERIC_ERROR ((psa_status_t)-132)
Gilles Peskinef3b731e2018-12-12 13:38:31 +010054
55/** The requested operation or a parameter is not supported
56 * by this implementation.
57 *
58 * Implementations should return this error code when an enumeration
59 * parameter such as a key type, algorithm, etc. is not recognized.
60 * If a combination of parameters is recognized and identified as
61 * not valid, return #PSA_ERROR_INVALID_ARGUMENT instead. */
David Saadab4ecc272019-02-14 13:48:10 +020062#define PSA_ERROR_NOT_SUPPORTED ((psa_status_t)-134)
Gilles Peskinef3b731e2018-12-12 13:38:31 +010063
64/** The requested action is denied by a policy.
65 *
66 * Implementations should return this error code when the parameters
67 * are recognized as valid and supported, and a policy explicitly
68 * denies the requested operation.
69 *
70 * If a subset of the parameters of a function call identify a
71 * forbidden operation, and another subset of the parameters are
72 * not valid or not supported, it is unspecified whether the function
73 * returns #PSA_ERROR_NOT_PERMITTED, #PSA_ERROR_NOT_SUPPORTED or
74 * #PSA_ERROR_INVALID_ARGUMENT. */
David Saadab4ecc272019-02-14 13:48:10 +020075#define PSA_ERROR_NOT_PERMITTED ((psa_status_t)-133)
Gilles Peskinef3b731e2018-12-12 13:38:31 +010076
77/** An output buffer is too small.
78 *
79 * Applications can call the \c PSA_xxx_SIZE macro listed in the function
80 * description to determine a sufficient buffer size.
81 *
82 * Implementations should preferably return this error code only
83 * in cases when performing the operation with a larger output
84 * buffer would succeed. However implementations may return this
85 * error if a function has invalid or unsupported parameters in addition
86 * to the parameters that determine the necessary output buffer size. */
David Saadab4ecc272019-02-14 13:48:10 +020087#define PSA_ERROR_BUFFER_TOO_SMALL ((psa_status_t)-138)
Gilles Peskinef3b731e2018-12-12 13:38:31 +010088
David Saadab4ecc272019-02-14 13:48:10 +020089/** Asking for an item that already exists
Gilles Peskinef3b731e2018-12-12 13:38:31 +010090 *
David Saadab4ecc272019-02-14 13:48:10 +020091 * Implementations should return this error, when attempting
92 * to write an item (like a key) that already exists. */
93#define PSA_ERROR_ALREADY_EXISTS ((psa_status_t)-139)
Gilles Peskinef3b731e2018-12-12 13:38:31 +010094
David Saadab4ecc272019-02-14 13:48:10 +020095/** Asking for an item that doesn't exist
Gilles Peskinef3b731e2018-12-12 13:38:31 +010096 *
David Saadab4ecc272019-02-14 13:48:10 +020097 * Implementations should return this error, if a requested item (like
98 * a key) does not exist. */
99#define PSA_ERROR_DOES_NOT_EXIST ((psa_status_t)-140)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100100
101/** The requested action cannot be performed in the current state.
102 *
103 * Multipart operations return this error when one of the
104 * functions is called out of sequence. Refer to the function
105 * descriptions for permitted sequencing of functions.
106 *
107 * Implementations shall not return this error code to indicate
Adrian L. Shaw67e1c7a2019-05-14 15:24:21 +0100108 * that a key either exists or not,
109 * but shall instead return #PSA_ERROR_ALREADY_EXISTS or #PSA_ERROR_DOES_NOT_EXIST
Adrian L. Shawd56456c2019-05-15 11:36:13 +0100110 * as applicable.
111 *
112 * Implementations shall not return this error code to indicate that a
113 * key handle is invalid, but shall return #PSA_ERROR_INVALID_HANDLE
114 * instead. */
David Saadab4ecc272019-02-14 13:48:10 +0200115#define PSA_ERROR_BAD_STATE ((psa_status_t)-137)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100116
117/** The parameters passed to the function are invalid.
118 *
119 * Implementations may return this error any time a parameter or
120 * combination of parameters are recognized as invalid.
121 *
Adrian L. Shawd56456c2019-05-15 11:36:13 +0100122 * Implementations shall not return this error code to indicate that a
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100123 * key handle is invalid, but shall return #PSA_ERROR_INVALID_HANDLE
124 * instead.
125 */
David Saadab4ecc272019-02-14 13:48:10 +0200126#define PSA_ERROR_INVALID_ARGUMENT ((psa_status_t)-135)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100127
128/** There is not enough runtime memory.
129 *
130 * If the action is carried out across multiple security realms, this
131 * error can refer to available memory in any of the security realms. */
David Saadab4ecc272019-02-14 13:48:10 +0200132#define PSA_ERROR_INSUFFICIENT_MEMORY ((psa_status_t)-141)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100133
134/** There is not enough persistent storage.
135 *
136 * Functions that modify the key storage return this error code if
137 * there is insufficient storage space on the host media. In addition,
138 * many functions that do not otherwise access storage may return this
139 * error code if the implementation requires a mandatory log entry for
140 * the requested action and the log storage space is full. */
David Saadab4ecc272019-02-14 13:48:10 +0200141#define PSA_ERROR_INSUFFICIENT_STORAGE ((psa_status_t)-142)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100142
143/** There was a communication failure inside the implementation.
144 *
145 * This can indicate a communication failure between the application
146 * and an external cryptoprocessor or between the cryptoprocessor and
147 * an external volatile or persistent memory. A communication failure
148 * may be transient or permanent depending on the cause.
149 *
150 * \warning If a function returns this error, it is undetermined
151 * whether the requested action has completed or not. Implementations
Gilles Peskinebe061332019-07-18 13:52:30 +0200152 * should return #PSA_SUCCESS on successful completion whenever
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100153 * possible, however functions may return #PSA_ERROR_COMMUNICATION_FAILURE
154 * if the requested action was completed successfully in an external
155 * cryptoprocessor but there was a breakdown of communication before
156 * the cryptoprocessor could report the status to the application.
157 */
David Saadab4ecc272019-02-14 13:48:10 +0200158#define PSA_ERROR_COMMUNICATION_FAILURE ((psa_status_t)-145)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100159
160/** There was a storage failure that may have led to data loss.
161 *
162 * This error indicates that some persistent storage is corrupted.
163 * It should not be used for a corruption of volatile memory
Gilles Peskine4b3eb692019-05-16 21:35:18 +0200164 * (use #PSA_ERROR_CORRUPTION_DETECTED), for a communication error
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100165 * between the cryptoprocessor and its external storage (use
166 * #PSA_ERROR_COMMUNICATION_FAILURE), or when the storage is
167 * in a valid state but is full (use #PSA_ERROR_INSUFFICIENT_STORAGE).
168 *
169 * Note that a storage failure does not indicate that any data that was
170 * previously read is invalid. However this previously read data may no
171 * longer be readable from storage.
172 *
173 * When a storage failure occurs, it is no longer possible to ensure
174 * the global integrity of the keystore. Depending on the global
175 * integrity guarantees offered by the implementation, access to other
176 * data may or may not fail even if the data is still readable but
Gilles Peskinebf7a98b2019-02-22 16:42:11 +0100177 * its integrity cannot be guaranteed.
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100178 *
179 * Implementations should only use this error code to report a
180 * permanent storage corruption. However application writers should
181 * keep in mind that transient errors while reading the storage may be
182 * reported using this error code. */
David Saadab4ecc272019-02-14 13:48:10 +0200183#define PSA_ERROR_STORAGE_FAILURE ((psa_status_t)-146)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100184
185/** A hardware failure was detected.
186 *
187 * A hardware failure may be transient or permanent depending on the
188 * cause. */
David Saadab4ecc272019-02-14 13:48:10 +0200189#define PSA_ERROR_HARDWARE_FAILURE ((psa_status_t)-147)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100190
191/** A tampering attempt was detected.
192 *
193 * If an application receives this error code, there is no guarantee
194 * that previously accessed or computed data was correct and remains
195 * confidential. Applications should not perform any security function
196 * and should enter a safe failure state.
197 *
198 * Implementations may return this error code if they detect an invalid
199 * state that cannot happen during normal operation and that indicates
200 * that the implementation's security guarantees no longer hold. Depending
201 * on the implementation architecture and on its security and safety goals,
202 * the implementation may forcibly terminate the application.
203 *
204 * This error code is intended as a last resort when a security breach
205 * is detected and it is unsure whether the keystore data is still
206 * protected. Implementations shall only return this error code
207 * to report an alarm from a tampering detector, to indicate that
208 * the confidentiality of stored data can no longer be guaranteed,
209 * or to indicate that the integrity of previously returned data is now
210 * considered compromised. Implementations shall not use this error code
211 * to indicate a hardware failure that merely makes it impossible to
212 * perform the requested operation (use #PSA_ERROR_COMMUNICATION_FAILURE,
213 * #PSA_ERROR_STORAGE_FAILURE, #PSA_ERROR_HARDWARE_FAILURE,
214 * #PSA_ERROR_INSUFFICIENT_ENTROPY or other applicable error code
215 * instead).
216 *
217 * This error indicates an attack against the application. Implementations
218 * shall not return this error code as a consequence of the behavior of
219 * the application itself. */
Gilles Peskine4b3eb692019-05-16 21:35:18 +0200220#define PSA_ERROR_CORRUPTION_DETECTED ((psa_status_t)-151)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100221
222/** There is not enough entropy to generate random data needed
223 * for the requested action.
224 *
225 * This error indicates a failure of a hardware random generator.
226 * Application writers should note that this error can be returned not
227 * only by functions whose purpose is to generate random data, such
228 * as key, IV or nonce generation, but also by functions that execute
229 * an algorithm with a randomized result, as well as functions that
230 * use randomization of intermediate computations as a countermeasure
231 * to certain attacks.
232 *
233 * Implementations should avoid returning this error after psa_crypto_init()
234 * has succeeded. Implementations should generate sufficient
235 * entropy during initialization and subsequently use a cryptographically
236 * secure pseudorandom generator (PRNG). However implementations may return
237 * this error at any time if a policy requires the PRNG to be reseeded
238 * during normal operation. */
David Saadab4ecc272019-02-14 13:48:10 +0200239#define PSA_ERROR_INSUFFICIENT_ENTROPY ((psa_status_t)-148)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100240
241/** The signature, MAC or hash is incorrect.
242 *
243 * Verification functions return this error if the verification
244 * calculations completed successfully, and the value to be verified
245 * was determined to be incorrect.
246 *
247 * If the value to verify has an invalid size, implementations may return
248 * either #PSA_ERROR_INVALID_ARGUMENT or #PSA_ERROR_INVALID_SIGNATURE. */
David Saadab4ecc272019-02-14 13:48:10 +0200249#define PSA_ERROR_INVALID_SIGNATURE ((psa_status_t)-149)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100250
251/** The decrypted padding is incorrect.
252 *
253 * \warning In some protocols, when decrypting data, it is essential that
254 * the behavior of the application does not depend on whether the padding
255 * is correct, down to precise timing. Applications should prefer
256 * protocols that use authenticated encryption rather than plain
257 * encryption. If the application must perform a decryption of
258 * unauthenticated data, the application writer should take care not
259 * to reveal whether the padding is invalid.
260 *
261 * Implementations should strive to make valid and invalid padding
262 * as close as possible to indistinguishable to an external observer.
263 * In particular, the timing of a decryption operation should not
264 * depend on the validity of the padding. */
David Saadab4ecc272019-02-14 13:48:10 +0200265#define PSA_ERROR_INVALID_PADDING ((psa_status_t)-150)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100266
David Saadab4ecc272019-02-14 13:48:10 +0200267/** Return this error when there's insufficient data when attempting
268 * to read from a resource. */
269#define PSA_ERROR_INSUFFICIENT_DATA ((psa_status_t)-143)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100270
Andrew Thoelke3c2b8032019-08-22 12:20:12 +0100271/** The key handle is not valid. See also :ref:\`key-handles\`.
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100272 */
David Saadab4ecc272019-02-14 13:48:10 +0200273#define PSA_ERROR_INVALID_HANDLE ((psa_status_t)-136)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100274
275/**@}*/
276
277/** \defgroup crypto_types Key and algorithm types
278 * @{
279 */
280
281/** An invalid key type value.
282 *
283 * Zero is not the encoding of any key type.
284 */
Gilles Peskinef65ed6f2019-12-04 17:18:41 +0100285#define PSA_KEY_TYPE_NONE ((psa_key_type_t)0x0000)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100286
Andrew Thoelkedd49cf92019-09-24 13:11:49 +0100287/** Vendor-defined key type flag.
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100288 *
289 * Key types defined by this standard will never have the
290 * #PSA_KEY_TYPE_VENDOR_FLAG bit set. Vendors who define additional key types
291 * must use an encoding with the #PSA_KEY_TYPE_VENDOR_FLAG bit set and should
292 * respect the bitwise structure used by standard encodings whenever practical.
293 */
Gilles Peskinef65ed6f2019-12-04 17:18:41 +0100294#define PSA_KEY_TYPE_VENDOR_FLAG ((psa_key_type_t)0x8000)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100295
Gilles Peskinef65ed6f2019-12-04 17:18:41 +0100296#define PSA_KEY_TYPE_CATEGORY_MASK ((psa_key_type_t)0x7000)
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100297#define PSA_KEY_TYPE_CATEGORY_RAW ((psa_key_type_t)0x1000)
298#define PSA_KEY_TYPE_CATEGORY_SYMMETRIC ((psa_key_type_t)0x2000)
299#define PSA_KEY_TYPE_CATEGORY_PUBLIC_KEY ((psa_key_type_t)0x4000)
Gilles Peskinef65ed6f2019-12-04 17:18:41 +0100300#define PSA_KEY_TYPE_CATEGORY_KEY_PAIR ((psa_key_type_t)0x7000)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100301
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100302#define PSA_KEY_TYPE_CATEGORY_FLAG_PAIR ((psa_key_type_t)0x3000)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100303
Andrew Thoelkedd49cf92019-09-24 13:11:49 +0100304/** Whether a key type is vendor-defined.
305 *
306 * See also #PSA_KEY_TYPE_VENDOR_FLAG.
307 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100308#define PSA_KEY_TYPE_IS_VENDOR_DEFINED(type) \
309 (((type) & PSA_KEY_TYPE_VENDOR_FLAG) != 0)
310
311/** Whether a key type is an unstructured array of bytes.
312 *
313 * This encompasses both symmetric keys and non-key data.
314 */
315#define PSA_KEY_TYPE_IS_UNSTRUCTURED(type) \
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100316 (((type) & PSA_KEY_TYPE_CATEGORY_MASK) == PSA_KEY_TYPE_CATEGORY_RAW || \
317 ((type) & PSA_KEY_TYPE_CATEGORY_MASK) == PSA_KEY_TYPE_CATEGORY_SYMMETRIC)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100318
319/** Whether a key type is asymmetric: either a key pair or a public key. */
320#define PSA_KEY_TYPE_IS_ASYMMETRIC(type) \
321 (((type) & PSA_KEY_TYPE_CATEGORY_MASK \
322 & ~PSA_KEY_TYPE_CATEGORY_FLAG_PAIR) == \
323 PSA_KEY_TYPE_CATEGORY_PUBLIC_KEY)
324/** Whether a key type is the public part of a key pair. */
325#define PSA_KEY_TYPE_IS_PUBLIC_KEY(type) \
326 (((type) & PSA_KEY_TYPE_CATEGORY_MASK) == PSA_KEY_TYPE_CATEGORY_PUBLIC_KEY)
327/** Whether a key type is a key pair containing a private part and a public
328 * part. */
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200329#define PSA_KEY_TYPE_IS_KEY_PAIR(type) \
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100330 (((type) & PSA_KEY_TYPE_CATEGORY_MASK) == PSA_KEY_TYPE_CATEGORY_KEY_PAIR)
331/** The key pair type corresponding to a public key type.
332 *
333 * You may also pass a key pair type as \p type, it will be left unchanged.
334 *
335 * \param type A public key type or key pair type.
336 *
337 * \return The corresponding key pair type.
338 * If \p type is not a public key or a key pair,
339 * the return value is undefined.
340 */
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200341#define PSA_KEY_TYPE_KEY_PAIR_OF_PUBLIC_KEY(type) \
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100342 ((type) | PSA_KEY_TYPE_CATEGORY_FLAG_PAIR)
343/** The public key type corresponding to a key pair type.
344 *
345 * You may also pass a key pair type as \p type, it will be left unchanged.
346 *
347 * \param type A public key type or key pair type.
348 *
349 * \return The corresponding public key type.
350 * If \p type is not a public key or a key pair,
351 * the return value is undefined.
352 */
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200353#define PSA_KEY_TYPE_PUBLIC_KEY_OF_KEY_PAIR(type) \
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100354 ((type) & ~PSA_KEY_TYPE_CATEGORY_FLAG_PAIR)
355
356/** Raw data.
357 *
358 * A "key" of this type cannot be used for any cryptographic operation.
359 * Applications may use this type to store arbitrary data in the keystore. */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100360#define PSA_KEY_TYPE_RAW_DATA ((psa_key_type_t)0x1001)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100361
362/** HMAC key.
363 *
364 * The key policy determines which underlying hash algorithm the key can be
365 * used for.
366 *
367 * HMAC keys should generally have the same size as the underlying hash.
368 * This size can be calculated with #PSA_HASH_SIZE(\c alg) where
369 * \c alg is the HMAC algorithm or the underlying hash algorithm. */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100370#define PSA_KEY_TYPE_HMAC ((psa_key_type_t)0x1100)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100371
372/** A secret for key derivation.
373 *
374 * The key policy determines which key derivation algorithm the key
375 * can be used for.
376 */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100377#define PSA_KEY_TYPE_DERIVE ((psa_key_type_t)0x1200)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100378
Gilles Peskine737c6be2019-05-21 16:01:06 +0200379/** Key for a cipher, AEAD or MAC algorithm based on the AES block cipher.
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100380 *
381 * The size of the key can be 16 bytes (AES-128), 24 bytes (AES-192) or
382 * 32 bytes (AES-256).
383 */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100384#define PSA_KEY_TYPE_AES ((psa_key_type_t)0x2400)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100385
386/** Key for a cipher or MAC algorithm based on DES or 3DES (Triple-DES).
387 *
388 * The size of the key can be 8 bytes (single DES), 16 bytes (2-key 3DES) or
389 * 24 bytes (3-key 3DES).
390 *
391 * Note that single DES and 2-key 3DES are weak and strongly
392 * deprecated and should only be used to decrypt legacy data. 3-key 3DES
393 * is weak and deprecated and should only be used in legacy protocols.
394 */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100395#define PSA_KEY_TYPE_DES ((psa_key_type_t)0x2301)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100396
Gilles Peskine737c6be2019-05-21 16:01:06 +0200397/** Key for a cipher, AEAD or MAC algorithm based on the
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100398 * Camellia block cipher. */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100399#define PSA_KEY_TYPE_CAMELLIA ((psa_key_type_t)0x2403)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100400
401/** Key for the RC4 stream cipher.
402 *
403 * Note that RC4 is weak and deprecated and should only be used in
404 * legacy protocols. */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100405#define PSA_KEY_TYPE_ARC4 ((psa_key_type_t)0x2002)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100406
Gilles Peskine3e79c8e2019-05-06 15:20:04 +0200407/** Key for the ChaCha20 stream cipher or the Chacha20-Poly1305 AEAD algorithm.
408 *
409 * ChaCha20 and the ChaCha20_Poly1305 construction are defined in RFC 7539.
410 *
411 * Implementations must support 12-byte nonces, may support 8-byte nonces,
412 * and should reject other sizes.
413 */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100414#define PSA_KEY_TYPE_CHACHA20 ((psa_key_type_t)0x2004)
Gilles Peskine3e79c8e2019-05-06 15:20:04 +0200415
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100416/** RSA public key. */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100417#define PSA_KEY_TYPE_RSA_PUBLIC_KEY ((psa_key_type_t)0x4001)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100418/** RSA key pair (private and public key). */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100419#define PSA_KEY_TYPE_RSA_KEY_PAIR ((psa_key_type_t)0x7001)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100420/** Whether a key type is an RSA key (pair or public-only). */
421#define PSA_KEY_TYPE_IS_RSA(type) \
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200422 (PSA_KEY_TYPE_PUBLIC_KEY_OF_KEY_PAIR(type) == PSA_KEY_TYPE_RSA_PUBLIC_KEY)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100423
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100424#define PSA_KEY_TYPE_ECC_PUBLIC_KEY_BASE ((psa_key_type_t)0x4100)
Gilles Peskinef65ed6f2019-12-04 17:18:41 +0100425#define PSA_KEY_TYPE_ECC_KEY_PAIR_BASE ((psa_key_type_t)0x7100)
426#define PSA_KEY_TYPE_ECC_CURVE_MASK ((psa_key_type_t)0x00ff)
Andrew Thoelke214064e2019-09-25 22:16:21 +0100427/** Elliptic curve key pair.
428 *
429 * \param curve A value of type ::psa_ecc_curve_t that identifies the
430 * ECC curve to be used.
431 */
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200432#define PSA_KEY_TYPE_ECC_KEY_PAIR(curve) \
433 (PSA_KEY_TYPE_ECC_KEY_PAIR_BASE | (curve))
Andrew Thoelke214064e2019-09-25 22:16:21 +0100434/** Elliptic curve public key.
435 *
436 * \param curve A value of type ::psa_ecc_curve_t that identifies the
437 * ECC curve to be used.
438 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100439#define PSA_KEY_TYPE_ECC_PUBLIC_KEY(curve) \
440 (PSA_KEY_TYPE_ECC_PUBLIC_KEY_BASE | (curve))
441
442/** Whether a key type is an elliptic curve key (pair or public-only). */
443#define PSA_KEY_TYPE_IS_ECC(type) \
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200444 ((PSA_KEY_TYPE_PUBLIC_KEY_OF_KEY_PAIR(type) & \
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100445 ~PSA_KEY_TYPE_ECC_CURVE_MASK) == PSA_KEY_TYPE_ECC_PUBLIC_KEY_BASE)
Gilles Peskine5e9c9cc2018-12-12 14:02:48 +0100446/** Whether a key type is an elliptic curve key pair. */
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200447#define PSA_KEY_TYPE_IS_ECC_KEY_PAIR(type) \
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100448 (((type) & ~PSA_KEY_TYPE_ECC_CURVE_MASK) == \
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200449 PSA_KEY_TYPE_ECC_KEY_PAIR_BASE)
Gilles Peskine5e9c9cc2018-12-12 14:02:48 +0100450/** Whether a key type is an elliptic curve public key. */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100451#define PSA_KEY_TYPE_IS_ECC_PUBLIC_KEY(type) \
452 (((type) & ~PSA_KEY_TYPE_ECC_CURVE_MASK) == \
453 PSA_KEY_TYPE_ECC_PUBLIC_KEY_BASE)
454
455/** Extract the curve from an elliptic curve key type. */
456#define PSA_KEY_TYPE_GET_CURVE(type) \
457 ((psa_ecc_curve_t) (PSA_KEY_TYPE_IS_ECC(type) ? \
458 ((type) & PSA_KEY_TYPE_ECC_CURVE_MASK) : \
459 0))
460
Gilles Peskine228abc52019-12-03 17:24:19 +0100461/** SEC Koblitz curves over prime fields.
462 *
463 * This family comprises the following curves:
464 * secp192k1, secp224k1, secp256k1.
465 * They are defined in _Standards for Efficient Cryptography_,
466 * _SEC 2: Recommended Elliptic Curve Domain Parameters_.
467 * https://www.secg.org/sec2-v2.pdf
468 */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100469#define PSA_ECC_CURVE_SECP_K1 ((psa_ecc_curve_t) 0x17)
Gilles Peskine228abc52019-12-03 17:24:19 +0100470
471/** SEC random curves over prime fields.
472 *
473 * This family comprises the following curves:
474 * secp192k1, secp224r1, secp256r1, secp384r1, secp521r1.
475 * They are defined in _Standards for Efficient Cryptography_,
476 * _SEC 2: Recommended Elliptic Curve Domain Parameters_.
477 * https://www.secg.org/sec2-v2.pdf
478 */
Gilles Peskinef65ed6f2019-12-04 17:18:41 +0100479#define PSA_ECC_CURVE_SECP_R1 ((psa_ecc_curve_t) 0x12)
Gilles Peskine228abc52019-12-03 17:24:19 +0100480/* SECP160R2 (SEC2 v1, obsolete) */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100481#define PSA_ECC_CURVE_SECP_R2 ((psa_ecc_curve_t) 0x1b)
Gilles Peskine228abc52019-12-03 17:24:19 +0100482
483/** SEC Koblitz curves over binary fields.
484 *
485 * This family comprises the following curves:
486 * sect163k1, sect233k1, sect239k1, sect283k1, sect409k1, sect571k1.
487 * They are defined in _Standards for Efficient Cryptography_,
488 * _SEC 2: Recommended Elliptic Curve Domain Parameters_.
489 * https://www.secg.org/sec2-v2.pdf
490 */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100491#define PSA_ECC_CURVE_SECT_K1 ((psa_ecc_curve_t) 0x27)
Gilles Peskine228abc52019-12-03 17:24:19 +0100492
493/** SEC random curves over binary fields.
494 *
495 * This family comprises the following curves:
496 * sect163r1, sect233r1, sect283r1, sect409r1, sect571r1.
497 * They are defined in _Standards for Efficient Cryptography_,
498 * _SEC 2: Recommended Elliptic Curve Domain Parameters_.
499 * https://www.secg.org/sec2-v2.pdf
500 */
Gilles Peskinef65ed6f2019-12-04 17:18:41 +0100501#define PSA_ECC_CURVE_SECT_R1 ((psa_ecc_curve_t) 0x22)
Gilles Peskine228abc52019-12-03 17:24:19 +0100502
503/** SEC additional random curves over binary fields.
504 *
505 * This family comprises the following curve:
506 * sect163r2.
507 * It is defined in _Standards for Efficient Cryptography_,
508 * _SEC 2: Recommended Elliptic Curve Domain Parameters_.
509 * https://www.secg.org/sec2-v2.pdf
510 */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100511#define PSA_ECC_CURVE_SECT_R2 ((psa_ecc_curve_t) 0x2b)
Gilles Peskine228abc52019-12-03 17:24:19 +0100512
513/** Brainpool P random curves.
514 *
515 * This family comprises the following curves:
516 * brainpoolP160r1, brainpoolP192r1, brainpoolP224r1, brainpoolP256r1,
517 * brainpoolP320r1, brainpoolP384r1, brainpoolP512r1.
518 * It is defined in RFC 5639.
519 */
Gilles Peskinef65ed6f2019-12-04 17:18:41 +0100520#define PSA_ECC_CURVE_BRAINPOOL_P_R1 ((psa_ecc_curve_t) 0x30)
Gilles Peskine228abc52019-12-03 17:24:19 +0100521
522/** Curve25519 and Curve448.
523 *
524 * This family comprises the following Montgomery curves:
525 * - 255-bit: Bernstein et al.,
526 * _Curve25519: new Diffie-Hellman speed records_, LNCS 3958, 2006.
527 * The algorithm #PSA_ALG_ECDH performs X25519 when used with this curve.
528 * - 448-bit: Hamburg,
529 * _Ed448-Goldilocks, a new elliptic curve_, NIST ECC Workshop, 2015.
530 * The algorithm #PSA_ALG_ECDH performs X448 when used with this curve.
531 */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100532#define PSA_ECC_CURVE_MONTGOMERY ((psa_ecc_curve_t) 0x41)
Gilles Peskine228abc52019-12-03 17:24:19 +0100533
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100534#define PSA_KEY_TYPE_DH_PUBLIC_KEY_BASE ((psa_key_type_t)0x4200)
Gilles Peskinef65ed6f2019-12-04 17:18:41 +0100535#define PSA_KEY_TYPE_DH_KEY_PAIR_BASE ((psa_key_type_t)0x7200)
536#define PSA_KEY_TYPE_DH_GROUP_MASK ((psa_key_type_t)0x00ff)
Andrew Thoelke214064e2019-09-25 22:16:21 +0100537/** Diffie-Hellman key pair.
538 *
539 * \param group A value of type ::psa_dh_group_t that identifies the
540 * Diffie-Hellman group to be used.
541 */
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200542#define PSA_KEY_TYPE_DH_KEY_PAIR(group) \
543 (PSA_KEY_TYPE_DH_KEY_PAIR_BASE | (group))
Andrew Thoelke214064e2019-09-25 22:16:21 +0100544/** Diffie-Hellman public key.
545 *
546 * \param group A value of type ::psa_dh_group_t that identifies the
547 * Diffie-Hellman group to be used.
548 */
Gilles Peskinedcaefae2019-05-16 12:55:35 +0200549#define PSA_KEY_TYPE_DH_PUBLIC_KEY(group) \
550 (PSA_KEY_TYPE_DH_PUBLIC_KEY_BASE | (group))
551
552/** Whether a key type is a Diffie-Hellman key (pair or public-only). */
553#define PSA_KEY_TYPE_IS_DH(type) \
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200554 ((PSA_KEY_TYPE_PUBLIC_KEY_OF_KEY_PAIR(type) & \
Gilles Peskinedcaefae2019-05-16 12:55:35 +0200555 ~PSA_KEY_TYPE_DH_GROUP_MASK) == PSA_KEY_TYPE_DH_PUBLIC_KEY_BASE)
556/** Whether a key type is a Diffie-Hellman key pair. */
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200557#define PSA_KEY_TYPE_IS_DH_KEY_PAIR(type) \
Gilles Peskinedcaefae2019-05-16 12:55:35 +0200558 (((type) & ~PSA_KEY_TYPE_DH_GROUP_MASK) == \
Gilles Peskinec93b80c2019-05-16 19:39:54 +0200559 PSA_KEY_TYPE_DH_KEY_PAIR_BASE)
Gilles Peskinedcaefae2019-05-16 12:55:35 +0200560/** Whether a key type is a Diffie-Hellman public key. */
561#define PSA_KEY_TYPE_IS_DH_PUBLIC_KEY(type) \
562 (((type) & ~PSA_KEY_TYPE_DH_GROUP_MASK) == \
563 PSA_KEY_TYPE_DH_PUBLIC_KEY_BASE)
564
565/** Extract the group from a Diffie-Hellman key type. */
566#define PSA_KEY_TYPE_GET_GROUP(type) \
567 ((psa_dh_group_t) (PSA_KEY_TYPE_IS_DH(type) ? \
568 ((type) & PSA_KEY_TYPE_DH_GROUP_MASK) : \
569 0))
570
Gilles Peskine228abc52019-12-03 17:24:19 +0100571/** Diffie-Hellman groups defined in RFC 7919 Appendix A.
572 *
573 * This family includes groups with the following key sizes (in bits):
574 * 2048, 3072, 4096, 6144, 8192. A given implementation may support
575 * all of these sizes or only a subset.
576 */
Gilles Peskine7cfcb3f2019-12-04 18:58:44 +0100577#define PSA_DH_GROUP_RFC7919 ((psa_dh_group_t) 0x03)
Gilles Peskine228abc52019-12-03 17:24:19 +0100578
Gilles Peskine2eea95c2019-12-02 17:44:12 +0100579#define PSA_GET_KEY_TYPE_BLOCK_SIZE_EXPONENT(type) \
Gilles Peskinef65ed6f2019-12-04 17:18:41 +0100580 (((type) >> 8) & 7)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100581/** The block size of a block cipher.
582 *
583 * \param type A cipher key type (value of type #psa_key_type_t).
584 *
585 * \return The block size for a block cipher, or 1 for a stream cipher.
586 * The return value is undefined if \p type is not a supported
587 * cipher key type.
588 *
589 * \note It is possible to build stream cipher algorithms on top of a block
590 * cipher, for example CTR mode (#PSA_ALG_CTR).
591 * This macro only takes the key type into account, so it cannot be
592 * used to determine the size of the data that #psa_cipher_update()
593 * might buffer for future processing in general.
594 *
595 * \note This macro returns a compile-time constant if its argument is one.
596 *
597 * \warning This macro may evaluate its argument multiple times.
598 */
599#define PSA_BLOCK_CIPHER_BLOCK_SIZE(type) \
Gilles Peskine2eea95c2019-12-02 17:44:12 +0100600 (((type) & PSA_KEY_TYPE_CATEGORY_MASK) == PSA_KEY_TYPE_CATEGORY_SYMMETRIC ? \
601 1u << PSA_GET_KEY_TYPE_BLOCK_SIZE_EXPONENT(type) : \
602 0u)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100603
Andrew Thoelkedd49cf92019-09-24 13:11:49 +0100604/** Vendor-defined algorithm flag.
605 *
606 * Algorithms defined by this standard will never have the #PSA_ALG_VENDOR_FLAG
607 * bit set. Vendors who define additional algorithms must use an encoding with
608 * the #PSA_ALG_VENDOR_FLAG bit set and should respect the bitwise structure
609 * used by standard encodings whenever practical.
610 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100611#define PSA_ALG_VENDOR_FLAG ((psa_algorithm_t)0x80000000)
Andrew Thoelkedd49cf92019-09-24 13:11:49 +0100612
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100613#define PSA_ALG_CATEGORY_MASK ((psa_algorithm_t)0x7f000000)
614#define PSA_ALG_CATEGORY_HASH ((psa_algorithm_t)0x01000000)
615#define PSA_ALG_CATEGORY_MAC ((psa_algorithm_t)0x02000000)
616#define PSA_ALG_CATEGORY_CIPHER ((psa_algorithm_t)0x04000000)
617#define PSA_ALG_CATEGORY_AEAD ((psa_algorithm_t)0x06000000)
618#define PSA_ALG_CATEGORY_SIGN ((psa_algorithm_t)0x10000000)
619#define PSA_ALG_CATEGORY_ASYMMETRIC_ENCRYPTION ((psa_algorithm_t)0x12000000)
Gilles Peskine6843c292019-01-18 16:44:49 +0100620#define PSA_ALG_CATEGORY_KEY_DERIVATION ((psa_algorithm_t)0x20000000)
621#define PSA_ALG_CATEGORY_KEY_AGREEMENT ((psa_algorithm_t)0x30000000)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100622
Andrew Thoelkedd49cf92019-09-24 13:11:49 +0100623/** Whether an algorithm is vendor-defined.
624 *
625 * See also #PSA_ALG_VENDOR_FLAG.
626 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100627#define PSA_ALG_IS_VENDOR_DEFINED(alg) \
628 (((alg) & PSA_ALG_VENDOR_FLAG) != 0)
629
630/** Whether the specified algorithm is a hash algorithm.
631 *
632 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
633 *
634 * \return 1 if \p alg is a hash algorithm, 0 otherwise.
635 * This macro may return either 0 or 1 if \p alg is not a supported
636 * algorithm identifier.
637 */
638#define PSA_ALG_IS_HASH(alg) \
639 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_HASH)
640
641/** Whether the specified algorithm is a MAC algorithm.
642 *
643 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
644 *
645 * \return 1 if \p alg is a MAC algorithm, 0 otherwise.
646 * This macro may return either 0 or 1 if \p alg is not a supported
647 * algorithm identifier.
648 */
649#define PSA_ALG_IS_MAC(alg) \
650 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_MAC)
651
652/** Whether the specified algorithm is a symmetric cipher algorithm.
653 *
654 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
655 *
656 * \return 1 if \p alg is a symmetric cipher algorithm, 0 otherwise.
657 * This macro may return either 0 or 1 if \p alg is not a supported
658 * algorithm identifier.
659 */
660#define PSA_ALG_IS_CIPHER(alg) \
661 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_CIPHER)
662
663/** Whether the specified algorithm is an authenticated encryption
664 * with associated data (AEAD) algorithm.
665 *
666 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
667 *
668 * \return 1 if \p alg is an AEAD algorithm, 0 otherwise.
669 * This macro may return either 0 or 1 if \p alg is not a supported
670 * algorithm identifier.
671 */
672#define PSA_ALG_IS_AEAD(alg) \
673 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_AEAD)
674
Gilles Peskine4eb05a42020-05-26 17:07:16 +0200675/** Whether the specified algorithm is an asymmetric signature algorithm,
Gilles Peskine6cc0a202020-05-05 16:05:26 +0200676 * also known as public-key signature algorithm.
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100677 *
678 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
679 *
Gilles Peskine6cc0a202020-05-05 16:05:26 +0200680 * \return 1 if \p alg is an asymmetric signature algorithm, 0 otherwise.
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100681 * This macro may return either 0 or 1 if \p alg is not a supported
682 * algorithm identifier.
683 */
684#define PSA_ALG_IS_SIGN(alg) \
685 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_SIGN)
686
Gilles Peskine6cc0a202020-05-05 16:05:26 +0200687/** Whether the specified algorithm is an asymmetric encryption algorithm,
688 * also known as public-key encryption algorithm.
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100689 *
690 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
691 *
Gilles Peskine6cc0a202020-05-05 16:05:26 +0200692 * \return 1 if \p alg is an asymmetric encryption algorithm, 0 otherwise.
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100693 * This macro may return either 0 or 1 if \p alg is not a supported
694 * algorithm identifier.
695 */
696#define PSA_ALG_IS_ASYMMETRIC_ENCRYPTION(alg) \
697 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_ASYMMETRIC_ENCRYPTION)
698
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100699/** Whether the specified algorithm is a key agreement algorithm.
700 *
701 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
702 *
703 * \return 1 if \p alg is a key agreement algorithm, 0 otherwise.
704 * This macro may return either 0 or 1 if \p alg is not a supported
705 * algorithm identifier.
706 */
707#define PSA_ALG_IS_KEY_AGREEMENT(alg) \
Gilles Peskine47e79fb2019-02-08 11:24:59 +0100708 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_KEY_AGREEMENT)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100709
710/** Whether the specified algorithm is a key derivation algorithm.
711 *
712 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
713 *
714 * \return 1 if \p alg is a key derivation algorithm, 0 otherwise.
715 * This macro may return either 0 or 1 if \p alg is not a supported
716 * algorithm identifier.
717 */
718#define PSA_ALG_IS_KEY_DERIVATION(alg) \
719 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_KEY_DERIVATION)
720
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100721#define PSA_ALG_HASH_MASK ((psa_algorithm_t)0x000000ff)
Adrian L. Shaw21e71452019-09-20 16:01:11 +0100722/** MD2 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100723#define PSA_ALG_MD2 ((psa_algorithm_t)0x01000001)
Adrian L. Shaw21e71452019-09-20 16:01:11 +0100724/** MD4 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100725#define PSA_ALG_MD4 ((psa_algorithm_t)0x01000002)
Adrian L. Shaw21e71452019-09-20 16:01:11 +0100726/** MD5 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100727#define PSA_ALG_MD5 ((psa_algorithm_t)0x01000003)
Adrian L. Shaw21e71452019-09-20 16:01:11 +0100728/** PSA_ALG_RIPEMD160 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100729#define PSA_ALG_RIPEMD160 ((psa_algorithm_t)0x01000004)
Adrian L. Shaw21e71452019-09-20 16:01:11 +0100730/** SHA1 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100731#define PSA_ALG_SHA_1 ((psa_algorithm_t)0x01000005)
732/** SHA2-224 */
733#define PSA_ALG_SHA_224 ((psa_algorithm_t)0x01000008)
734/** SHA2-256 */
735#define PSA_ALG_SHA_256 ((psa_algorithm_t)0x01000009)
736/** SHA2-384 */
737#define PSA_ALG_SHA_384 ((psa_algorithm_t)0x0100000a)
738/** SHA2-512 */
739#define PSA_ALG_SHA_512 ((psa_algorithm_t)0x0100000b)
740/** SHA2-512/224 */
741#define PSA_ALG_SHA_512_224 ((psa_algorithm_t)0x0100000c)
742/** SHA2-512/256 */
743#define PSA_ALG_SHA_512_256 ((psa_algorithm_t)0x0100000d)
744/** SHA3-224 */
745#define PSA_ALG_SHA3_224 ((psa_algorithm_t)0x01000010)
746/** SHA3-256 */
747#define PSA_ALG_SHA3_256 ((psa_algorithm_t)0x01000011)
748/** SHA3-384 */
749#define PSA_ALG_SHA3_384 ((psa_algorithm_t)0x01000012)
750/** SHA3-512 */
751#define PSA_ALG_SHA3_512 ((psa_algorithm_t)0x01000013)
752
Gilles Peskine763fb9a2019-01-28 13:29:01 +0100753/** In a hash-and-sign algorithm policy, allow any hash algorithm.
Gilles Peskine30f77cd2019-01-14 16:06:39 +0100754 *
Gilles Peskine763fb9a2019-01-28 13:29:01 +0100755 * This value may be used to form the algorithm usage field of a policy
756 * for a signature algorithm that is parametrized by a hash. The key
757 * may then be used to perform operations using the same signature
758 * algorithm parametrized with any supported hash.
759 *
760 * That is, suppose that `PSA_xxx_SIGNATURE` is one of the following macros:
Gilles Peskine30f77cd2019-01-14 16:06:39 +0100761 * - #PSA_ALG_RSA_PKCS1V15_SIGN, #PSA_ALG_RSA_PSS,
Gilles Peskine30f77cd2019-01-14 16:06:39 +0100762 * - #PSA_ALG_ECDSA, #PSA_ALG_DETERMINISTIC_ECDSA.
Gilles Peskine763fb9a2019-01-28 13:29:01 +0100763 * Then you may create and use a key as follows:
Gilles Peskine30f77cd2019-01-14 16:06:39 +0100764 * - Set the key usage field using #PSA_ALG_ANY_HASH, for example:
765 * ```
Gilles Peskine89d8c5c2019-11-26 17:01:59 +0100766 * psa_set_key_usage_flags(&attributes, PSA_KEY_USAGE_SIGN_HASH); // or VERIFY
Gilles Peskine80b39ae2019-05-15 16:09:46 +0200767 * psa_set_key_algorithm(&attributes, PSA_xxx_SIGNATURE(PSA_ALG_ANY_HASH));
Gilles Peskine30f77cd2019-01-14 16:06:39 +0100768 * ```
769 * - Import or generate key material.
Gilles Peskine89d8c5c2019-11-26 17:01:59 +0100770 * - Call psa_sign_hash() or psa_verify_hash(), passing
Gilles Peskine30f77cd2019-01-14 16:06:39 +0100771 * an algorithm built from `PSA_xxx_SIGNATURE` and a specific hash. Each
772 * call to sign or verify a message may use a different hash.
773 * ```
Gilles Peskine89d8c5c2019-11-26 17:01:59 +0100774 * psa_sign_hash(handle, PSA_xxx_SIGNATURE(PSA_ALG_SHA_256), ...);
775 * psa_sign_hash(handle, PSA_xxx_SIGNATURE(PSA_ALG_SHA_512), ...);
776 * psa_sign_hash(handle, PSA_xxx_SIGNATURE(PSA_ALG_SHA3_256), ...);
Gilles Peskine30f77cd2019-01-14 16:06:39 +0100777 * ```
778 *
779 * This value may not be used to build other algorithms that are
780 * parametrized over a hash. For any valid use of this macro to build
Gilles Peskine3be6b7f2019-03-05 19:32:26 +0100781 * an algorithm \c alg, #PSA_ALG_IS_HASH_AND_SIGN(\c alg) is true.
Gilles Peskine30f77cd2019-01-14 16:06:39 +0100782 *
783 * This value may not be used to build an algorithm specification to
784 * perform an operation. It is only valid to build policies.
785 */
786#define PSA_ALG_ANY_HASH ((psa_algorithm_t)0x010000ff)
787
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100788#define PSA_ALG_MAC_SUBCATEGORY_MASK ((psa_algorithm_t)0x00c00000)
789#define PSA_ALG_HMAC_BASE ((psa_algorithm_t)0x02800000)
790/** Macro to build an HMAC algorithm.
791 *
792 * For example, #PSA_ALG_HMAC(#PSA_ALG_SHA_256) is HMAC-SHA-256.
793 *
794 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
795 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
796 *
797 * \return The corresponding HMAC algorithm.
Gilles Peskine3be6b7f2019-03-05 19:32:26 +0100798 * \return Unspecified if \p hash_alg is not a supported
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100799 * hash algorithm.
800 */
801#define PSA_ALG_HMAC(hash_alg) \
802 (PSA_ALG_HMAC_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
803
804#define PSA_ALG_HMAC_GET_HASH(hmac_alg) \
805 (PSA_ALG_CATEGORY_HASH | ((hmac_alg) & PSA_ALG_HASH_MASK))
806
807/** Whether the specified algorithm is an HMAC algorithm.
808 *
809 * HMAC is a family of MAC algorithms that are based on a hash function.
810 *
811 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
812 *
813 * \return 1 if \p alg is an HMAC algorithm, 0 otherwise.
814 * This macro may return either 0 or 1 if \p alg is not a supported
815 * algorithm identifier.
816 */
817#define PSA_ALG_IS_HMAC(alg) \
818 (((alg) & (PSA_ALG_CATEGORY_MASK | PSA_ALG_MAC_SUBCATEGORY_MASK)) == \
819 PSA_ALG_HMAC_BASE)
820
821/* In the encoding of a MAC algorithm, the bits corresponding to
822 * PSA_ALG_MAC_TRUNCATION_MASK encode the length to which the MAC is
823 * truncated. As an exception, the value 0 means the untruncated algorithm,
824 * whatever its length is. The length is encoded in 6 bits, so it can
825 * reach up to 63; the largest MAC is 64 bytes so its trivial truncation
826 * to full length is correctly encoded as 0 and any non-trivial truncation
827 * is correctly encoded as a value between 1 and 63. */
828#define PSA_ALG_MAC_TRUNCATION_MASK ((psa_algorithm_t)0x00003f00)
829#define PSA_MAC_TRUNCATION_OFFSET 8
830
831/** Macro to build a truncated MAC algorithm.
832 *
833 * A truncated MAC algorithm is identical to the corresponding MAC
834 * algorithm except that the MAC value for the truncated algorithm
835 * consists of only the first \p mac_length bytes of the MAC value
836 * for the untruncated algorithm.
837 *
838 * \note This macro may allow constructing algorithm identifiers that
839 * are not valid, either because the specified length is larger
840 * than the untruncated MAC or because the specified length is
841 * smaller than permitted by the implementation.
842 *
843 * \note It is implementation-defined whether a truncated MAC that
844 * is truncated to the same length as the MAC of the untruncated
845 * algorithm is considered identical to the untruncated algorithm
846 * for policy comparison purposes.
847 *
Gilles Peskine434899f2018-10-19 11:30:26 +0200848 * \param mac_alg A MAC algorithm identifier (value of type
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100849 * #psa_algorithm_t such that #PSA_ALG_IS_MAC(\p alg)
850 * is true). This may be a truncated or untruncated
851 * MAC algorithm.
852 * \param mac_length Desired length of the truncated MAC in bytes.
853 * This must be at most the full length of the MAC
854 * and must be at least an implementation-specified
855 * minimum. The implementation-specified minimum
856 * shall not be zero.
857 *
858 * \return The corresponding MAC algorithm with the specified
859 * length.
860 * \return Unspecified if \p alg is not a supported
861 * MAC algorithm or if \p mac_length is too small or
862 * too large for the specified MAC algorithm.
863 */
Gilles Peskine434899f2018-10-19 11:30:26 +0200864#define PSA_ALG_TRUNCATED_MAC(mac_alg, mac_length) \
865 (((mac_alg) & ~PSA_ALG_MAC_TRUNCATION_MASK) | \
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100866 ((mac_length) << PSA_MAC_TRUNCATION_OFFSET & PSA_ALG_MAC_TRUNCATION_MASK))
867
868/** Macro to build the base MAC algorithm corresponding to a truncated
869 * MAC algorithm.
870 *
Gilles Peskine434899f2018-10-19 11:30:26 +0200871 * \param mac_alg A MAC algorithm identifier (value of type
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100872 * #psa_algorithm_t such that #PSA_ALG_IS_MAC(\p alg)
873 * is true). This may be a truncated or untruncated
874 * MAC algorithm.
875 *
876 * \return The corresponding base MAC algorithm.
877 * \return Unspecified if \p alg is not a supported
878 * MAC algorithm.
879 */
Gilles Peskine434899f2018-10-19 11:30:26 +0200880#define PSA_ALG_FULL_LENGTH_MAC(mac_alg) \
881 ((mac_alg) & ~PSA_ALG_MAC_TRUNCATION_MASK)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100882
883/** Length to which a MAC algorithm is truncated.
884 *
Gilles Peskine434899f2018-10-19 11:30:26 +0200885 * \param mac_alg A MAC algorithm identifier (value of type
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100886 * #psa_algorithm_t such that #PSA_ALG_IS_MAC(\p alg)
887 * is true).
888 *
889 * \return Length of the truncated MAC in bytes.
890 * \return 0 if \p alg is a non-truncated MAC algorithm.
891 * \return Unspecified if \p alg is not a supported
892 * MAC algorithm.
893 */
Gilles Peskine434899f2018-10-19 11:30:26 +0200894#define PSA_MAC_TRUNCATED_LENGTH(mac_alg) \
895 (((mac_alg) & PSA_ALG_MAC_TRUNCATION_MASK) >> PSA_MAC_TRUNCATION_OFFSET)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100896
897#define PSA_ALG_CIPHER_MAC_BASE ((psa_algorithm_t)0x02c00000)
Adrian L. Shawfd2aed42019-07-11 15:47:40 +0100898/** The CBC-MAC construction over a block cipher
899 *
900 * \warning CBC-MAC is insecure in many cases.
901 * A more secure mode, such as #PSA_ALG_CMAC, is recommended.
902 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100903#define PSA_ALG_CBC_MAC ((psa_algorithm_t)0x02c00001)
Adrian L. Shawfd2aed42019-07-11 15:47:40 +0100904/** The CMAC construction over a block cipher */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100905#define PSA_ALG_CMAC ((psa_algorithm_t)0x02c00002)
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100906
907/** Whether the specified algorithm is a MAC algorithm based on a block cipher.
908 *
909 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
910 *
911 * \return 1 if \p alg is a MAC algorithm based on a block cipher, 0 otherwise.
912 * This macro may return either 0 or 1 if \p alg is not a supported
913 * algorithm identifier.
914 */
915#define PSA_ALG_IS_BLOCK_CIPHER_MAC(alg) \
916 (((alg) & (PSA_ALG_CATEGORY_MASK | PSA_ALG_MAC_SUBCATEGORY_MASK)) == \
917 PSA_ALG_CIPHER_MAC_BASE)
918
919#define PSA_ALG_CIPHER_STREAM_FLAG ((psa_algorithm_t)0x00800000)
920#define PSA_ALG_CIPHER_FROM_BLOCK_FLAG ((psa_algorithm_t)0x00400000)
921
922/** Whether the specified algorithm is a stream cipher.
923 *
924 * A stream cipher is a symmetric cipher that encrypts or decrypts messages
925 * by applying a bitwise-xor with a stream of bytes that is generated
926 * from a key.
927 *
928 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
929 *
930 * \return 1 if \p alg is a stream cipher algorithm, 0 otherwise.
931 * This macro may return either 0 or 1 if \p alg is not a supported
932 * algorithm identifier or if it is not a symmetric cipher algorithm.
933 */
934#define PSA_ALG_IS_STREAM_CIPHER(alg) \
935 (((alg) & (PSA_ALG_CATEGORY_MASK | PSA_ALG_CIPHER_STREAM_FLAG)) == \
936 (PSA_ALG_CATEGORY_CIPHER | PSA_ALG_CIPHER_STREAM_FLAG))
937
938/** The ARC4 stream cipher algorithm.
939 */
940#define PSA_ALG_ARC4 ((psa_algorithm_t)0x04800001)
941
Gilles Peskine3e79c8e2019-05-06 15:20:04 +0200942/** The ChaCha20 stream cipher.
943 *
944 * ChaCha20 is defined in RFC 7539.
945 *
946 * The nonce size for psa_cipher_set_iv() or psa_cipher_generate_iv()
947 * must be 12.
948 *
949 * The initial block counter is always 0.
950 *
951 */
952#define PSA_ALG_CHACHA20 ((psa_algorithm_t)0x04800005)
953
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100954/** The CTR stream cipher mode.
955 *
956 * CTR is a stream cipher which is built from a block cipher.
957 * The underlying block cipher is determined by the key type.
958 * For example, to use AES-128-CTR, use this algorithm with
959 * a key of type #PSA_KEY_TYPE_AES and a length of 128 bits (16 bytes).
960 */
961#define PSA_ALG_CTR ((psa_algorithm_t)0x04c00001)
962
Adrian L. Shawfd2aed42019-07-11 15:47:40 +0100963/** The CFB stream cipher mode.
964 *
965 * The underlying block cipher is determined by the key type.
966 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100967#define PSA_ALG_CFB ((psa_algorithm_t)0x04c00002)
968
Adrian L. Shawfd2aed42019-07-11 15:47:40 +0100969/** The OFB stream cipher mode.
970 *
971 * The underlying block cipher is determined by the key type.
972 */
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100973#define PSA_ALG_OFB ((psa_algorithm_t)0x04c00003)
974
975/** The XTS cipher mode.
976 *
977 * XTS is a cipher mode which is built from a block cipher. It requires at
978 * least one full block of input, but beyond this minimum the input
979 * does not need to be a whole number of blocks.
980 */
981#define PSA_ALG_XTS ((psa_algorithm_t)0x044000ff)
982
Steven Cooremaned3c9ec2020-07-06 14:08:59 +0200983/** The Electronic Code Book (ECB) mode of a block cipher, with no padding.
984 *
985 * The underlying block cipher is determined by the key type.
986 *
987 * This symmetric cipher mode can only be used with messages whose lengths
988 * are whole number of blocks for the chosen block cipher.
989 */
990#define PSA_ALG_ECB_NO_PADDING ((psa_algorithm_t)0x04404400)
991
Gilles Peskinef3b731e2018-12-12 13:38:31 +0100992/** The CBC block cipher chaining mode, with no padding.
993 *
994 * The underlying block cipher is determined by the key type.
995 *
996 * This symmetric cipher mode can only be used with messages whose lengths
997 * are whole number of blocks for the chosen block cipher.
998 */
999#define PSA_ALG_CBC_NO_PADDING ((psa_algorithm_t)0x04600100)
1000
1001/** The CBC block cipher chaining mode with PKCS#7 padding.
1002 *
1003 * The underlying block cipher is determined by the key type.
1004 *
1005 * This is the padding method defined by PKCS#7 (RFC 2315) &sect;10.3.
1006 */
1007#define PSA_ALG_CBC_PKCS7 ((psa_algorithm_t)0x04600101)
1008
Gilles Peskine679693e2019-05-06 15:10:16 +02001009#define PSA_ALG_AEAD_FROM_BLOCK_FLAG ((psa_algorithm_t)0x00400000)
1010
1011/** Whether the specified algorithm is an AEAD mode on a block cipher.
1012 *
1013 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
1014 *
1015 * \return 1 if \p alg is an AEAD algorithm which is an AEAD mode based on
1016 * a block cipher, 0 otherwise.
1017 * This macro may return either 0 or 1 if \p alg is not a supported
1018 * algorithm identifier.
1019 */
1020#define PSA_ALG_IS_AEAD_ON_BLOCK_CIPHER(alg) \
1021 (((alg) & (PSA_ALG_CATEGORY_MASK | PSA_ALG_AEAD_FROM_BLOCK_FLAG)) == \
1022 (PSA_ALG_CATEGORY_AEAD | PSA_ALG_AEAD_FROM_BLOCK_FLAG))
1023
Gilles Peskine9153ec02019-02-15 13:02:02 +01001024/** The CCM authenticated encryption algorithm.
Adrian L. Shawfd2aed42019-07-11 15:47:40 +01001025 *
1026 * The underlying block cipher is determined by the key type.
Gilles Peskine9153ec02019-02-15 13:02:02 +01001027 */
Gilles Peskine679693e2019-05-06 15:10:16 +02001028#define PSA_ALG_CCM ((psa_algorithm_t)0x06401001)
Gilles Peskine9153ec02019-02-15 13:02:02 +01001029
1030/** The GCM authenticated encryption algorithm.
Adrian L. Shawfd2aed42019-07-11 15:47:40 +01001031 *
1032 * The underlying block cipher is determined by the key type.
Gilles Peskine9153ec02019-02-15 13:02:02 +01001033 */
Gilles Peskine679693e2019-05-06 15:10:16 +02001034#define PSA_ALG_GCM ((psa_algorithm_t)0x06401002)
1035
1036/** The Chacha20-Poly1305 AEAD algorithm.
1037 *
1038 * The ChaCha20_Poly1305 construction is defined in RFC 7539.
Gilles Peskine3e79c8e2019-05-06 15:20:04 +02001039 *
1040 * Implementations must support 12-byte nonces, may support 8-byte nonces,
1041 * and should reject other sizes.
1042 *
1043 * Implementations must support 16-byte tags and should reject other sizes.
Gilles Peskine679693e2019-05-06 15:10:16 +02001044 */
1045#define PSA_ALG_CHACHA20_POLY1305 ((psa_algorithm_t)0x06001005)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001046
1047/* In the encoding of a AEAD algorithm, the bits corresponding to
1048 * PSA_ALG_AEAD_TAG_LENGTH_MASK encode the length of the AEAD tag.
1049 * The constants for default lengths follow this encoding.
1050 */
1051#define PSA_ALG_AEAD_TAG_LENGTH_MASK ((psa_algorithm_t)0x00003f00)
1052#define PSA_AEAD_TAG_LENGTH_OFFSET 8
1053
1054/** Macro to build a shortened AEAD algorithm.
1055 *
1056 * A shortened AEAD algorithm is similar to the corresponding AEAD
1057 * algorithm, but has an authentication tag that consists of fewer bytes.
1058 * Depending on the algorithm, the tag length may affect the calculation
1059 * of the ciphertext.
1060 *
Gilles Peskine434899f2018-10-19 11:30:26 +02001061 * \param aead_alg An AEAD algorithm identifier (value of type
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001062 * #psa_algorithm_t such that #PSA_ALG_IS_AEAD(\p alg)
1063 * is true).
1064 * \param tag_length Desired length of the authentication tag in bytes.
1065 *
1066 * \return The corresponding AEAD algorithm with the specified
1067 * length.
1068 * \return Unspecified if \p alg is not a supported
1069 * AEAD algorithm or if \p tag_length is not valid
1070 * for the specified AEAD algorithm.
1071 */
Gilles Peskine434899f2018-10-19 11:30:26 +02001072#define PSA_ALG_AEAD_WITH_TAG_LENGTH(aead_alg, tag_length) \
1073 (((aead_alg) & ~PSA_ALG_AEAD_TAG_LENGTH_MASK) | \
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001074 ((tag_length) << PSA_AEAD_TAG_LENGTH_OFFSET & \
1075 PSA_ALG_AEAD_TAG_LENGTH_MASK))
1076
1077/** Calculate the corresponding AEAD algorithm with the default tag length.
1078 *
Gilles Peskine434899f2018-10-19 11:30:26 +02001079 * \param aead_alg An AEAD algorithm (\c PSA_ALG_XXX value such that
1080 * #PSA_ALG_IS_AEAD(\p alg) is true).
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001081 *
Gilles Peskine434899f2018-10-19 11:30:26 +02001082 * \return The corresponding AEAD algorithm with the default
1083 * tag length for that algorithm.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001084 */
Unknowne2e19952019-08-21 03:33:04 -04001085#define PSA_ALG_AEAD_WITH_DEFAULT_TAG_LENGTH(aead_alg) \
1086 ( \
1087 PSA_ALG_AEAD_WITH_DEFAULT_TAG_LENGTH_CASE(aead_alg, PSA_ALG_CCM) \
1088 PSA_ALG_AEAD_WITH_DEFAULT_TAG_LENGTH_CASE(aead_alg, PSA_ALG_GCM) \
1089 PSA_ALG_AEAD_WITH_DEFAULT_TAG_LENGTH_CASE(aead_alg, PSA_ALG_CHACHA20_POLY1305) \
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001090 0)
Unknowne2e19952019-08-21 03:33:04 -04001091#define PSA_ALG_AEAD_WITH_DEFAULT_TAG_LENGTH_CASE(aead_alg, ref) \
1092 PSA_ALG_AEAD_WITH_TAG_LENGTH(aead_alg, 0) == \
1093 PSA_ALG_AEAD_WITH_TAG_LENGTH(ref, 0) ? \
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001094 ref :
1095
1096#define PSA_ALG_RSA_PKCS1V15_SIGN_BASE ((psa_algorithm_t)0x10020000)
1097/** RSA PKCS#1 v1.5 signature with hashing.
1098 *
1099 * This is the signature scheme defined by RFC 8017
1100 * (PKCS#1: RSA Cryptography Specifications) under the name
1101 * RSASSA-PKCS1-v1_5.
1102 *
1103 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
1104 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
Gilles Peskine30f77cd2019-01-14 16:06:39 +01001105 * This includes #PSA_ALG_ANY_HASH
1106 * when specifying the algorithm in a usage policy.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001107 *
1108 * \return The corresponding RSA PKCS#1 v1.5 signature algorithm.
Gilles Peskine3be6b7f2019-03-05 19:32:26 +01001109 * \return Unspecified if \p hash_alg is not a supported
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001110 * hash algorithm.
1111 */
1112#define PSA_ALG_RSA_PKCS1V15_SIGN(hash_alg) \
1113 (PSA_ALG_RSA_PKCS1V15_SIGN_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
1114/** Raw PKCS#1 v1.5 signature.
1115 *
1116 * The input to this algorithm is the DigestInfo structure used by
1117 * RFC 8017 (PKCS#1: RSA Cryptography Specifications), &sect;9.2
1118 * steps 3&ndash;6.
1119 */
1120#define PSA_ALG_RSA_PKCS1V15_SIGN_RAW PSA_ALG_RSA_PKCS1V15_SIGN_BASE
1121#define PSA_ALG_IS_RSA_PKCS1V15_SIGN(alg) \
1122 (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_RSA_PKCS1V15_SIGN_BASE)
1123
1124#define PSA_ALG_RSA_PSS_BASE ((psa_algorithm_t)0x10030000)
1125/** RSA PSS signature with hashing.
1126 *
1127 * This is the signature scheme defined by RFC 8017
1128 * (PKCS#1: RSA Cryptography Specifications) under the name
1129 * RSASSA-PSS, with the message generation function MGF1, and with
1130 * a salt length equal to the length of the hash. The specified
1131 * hash algorithm is used to hash the input message, to create the
1132 * salted hash, and for the mask generation.
1133 *
1134 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
1135 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
Gilles Peskine30f77cd2019-01-14 16:06:39 +01001136 * This includes #PSA_ALG_ANY_HASH
1137 * when specifying the algorithm in a usage policy.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001138 *
1139 * \return The corresponding RSA PSS signature algorithm.
Gilles Peskine3be6b7f2019-03-05 19:32:26 +01001140 * \return Unspecified if \p hash_alg is not a supported
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001141 * hash algorithm.
1142 */
1143#define PSA_ALG_RSA_PSS(hash_alg) \
1144 (PSA_ALG_RSA_PSS_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
1145#define PSA_ALG_IS_RSA_PSS(alg) \
1146 (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_RSA_PSS_BASE)
1147
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001148#define PSA_ALG_ECDSA_BASE ((psa_algorithm_t)0x10060000)
1149/** ECDSA signature with hashing.
1150 *
1151 * This is the ECDSA signature scheme defined by ANSI X9.62,
1152 * with a random per-message secret number (*k*).
1153 *
1154 * The representation of the signature as a byte string consists of
1155 * the concatentation of the signature values *r* and *s*. Each of
1156 * *r* and *s* is encoded as an *N*-octet string, where *N* is the length
1157 * of the base point of the curve in octets. Each value is represented
1158 * in big-endian order (most significant octet first).
1159 *
1160 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
1161 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
Gilles Peskine30f77cd2019-01-14 16:06:39 +01001162 * This includes #PSA_ALG_ANY_HASH
1163 * when specifying the algorithm in a usage policy.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001164 *
1165 * \return The corresponding ECDSA signature algorithm.
Gilles Peskine3be6b7f2019-03-05 19:32:26 +01001166 * \return Unspecified if \p hash_alg is not a supported
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001167 * hash algorithm.
1168 */
1169#define PSA_ALG_ECDSA(hash_alg) \
1170 (PSA_ALG_ECDSA_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
1171/** ECDSA signature without hashing.
1172 *
1173 * This is the same signature scheme as #PSA_ALG_ECDSA(), but
1174 * without specifying a hash algorithm. This algorithm may only be
1175 * used to sign or verify a sequence of bytes that should be an
1176 * already-calculated hash. Note that the input is padded with
1177 * zeros on the left or truncated on the left as required to fit
1178 * the curve size.
1179 */
1180#define PSA_ALG_ECDSA_ANY PSA_ALG_ECDSA_BASE
1181#define PSA_ALG_DETERMINISTIC_ECDSA_BASE ((psa_algorithm_t)0x10070000)
1182/** Deterministic ECDSA signature with hashing.
1183 *
1184 * This is the deterministic ECDSA signature scheme defined by RFC 6979.
1185 *
1186 * The representation of a signature is the same as with #PSA_ALG_ECDSA().
1187 *
1188 * Note that when this algorithm is used for verification, signatures
1189 * made with randomized ECDSA (#PSA_ALG_ECDSA(\p hash_alg)) with the
1190 * same private key are accepted. In other words,
1191 * #PSA_ALG_DETERMINISTIC_ECDSA(\p hash_alg) differs from
1192 * #PSA_ALG_ECDSA(\p hash_alg) only for signature, not for verification.
1193 *
1194 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
1195 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
Gilles Peskine30f77cd2019-01-14 16:06:39 +01001196 * This includes #PSA_ALG_ANY_HASH
1197 * when specifying the algorithm in a usage policy.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001198 *
1199 * \return The corresponding deterministic ECDSA signature
1200 * algorithm.
Gilles Peskine3be6b7f2019-03-05 19:32:26 +01001201 * \return Unspecified if \p hash_alg is not a supported
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001202 * hash algorithm.
1203 */
1204#define PSA_ALG_DETERMINISTIC_ECDSA(hash_alg) \
1205 (PSA_ALG_DETERMINISTIC_ECDSA_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
Gilles Peskine972630e2019-11-29 11:55:48 +01001206#define PSA_ALG_ECDSA_DETERMINISTIC_FLAG ((psa_algorithm_t)0x00010000)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001207#define PSA_ALG_IS_ECDSA(alg) \
Gilles Peskine972630e2019-11-29 11:55:48 +01001208 (((alg) & ~PSA_ALG_HASH_MASK & ~PSA_ALG_ECDSA_DETERMINISTIC_FLAG) == \
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001209 PSA_ALG_ECDSA_BASE)
1210#define PSA_ALG_ECDSA_IS_DETERMINISTIC(alg) \
Gilles Peskine972630e2019-11-29 11:55:48 +01001211 (((alg) & PSA_ALG_ECDSA_DETERMINISTIC_FLAG) != 0)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001212#define PSA_ALG_IS_DETERMINISTIC_ECDSA(alg) \
1213 (PSA_ALG_IS_ECDSA(alg) && PSA_ALG_ECDSA_IS_DETERMINISTIC(alg))
1214#define PSA_ALG_IS_RANDOMIZED_ECDSA(alg) \
1215 (PSA_ALG_IS_ECDSA(alg) && !PSA_ALG_ECDSA_IS_DETERMINISTIC(alg))
1216
Gilles Peskined35b4892019-01-14 16:02:15 +01001217/** Whether the specified algorithm is a hash-and-sign algorithm.
1218 *
Gilles Peskine6cc0a202020-05-05 16:05:26 +02001219 * Hash-and-sign algorithms are asymmetric (public-key) signature algorithms
1220 * structured in two parts: first the calculation of a hash in a way that
1221 * does not depend on the key, then the calculation of a signature from the
Gilles Peskined35b4892019-01-14 16:02:15 +01001222 * hash value and the key.
1223 *
1224 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
1225 *
1226 * \return 1 if \p alg is a hash-and-sign algorithm, 0 otherwise.
1227 * This macro may return either 0 or 1 if \p alg is not a supported
1228 * algorithm identifier.
1229 */
1230#define PSA_ALG_IS_HASH_AND_SIGN(alg) \
1231 (PSA_ALG_IS_RSA_PSS(alg) || PSA_ALG_IS_RSA_PKCS1V15_SIGN(alg) || \
Gilles Peskinee38ab1a2019-05-16 13:51:50 +02001232 PSA_ALG_IS_ECDSA(alg))
Gilles Peskined35b4892019-01-14 16:02:15 +01001233
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001234/** Get the hash used by a hash-and-sign signature algorithm.
1235 *
1236 * A hash-and-sign algorithm is a signature algorithm which is
1237 * composed of two phases: first a hashing phase which does not use
1238 * the key and produces a hash of the input message, then a signing
1239 * phase which only uses the hash and the key and not the message
1240 * itself.
1241 *
1242 * \param alg A signature algorithm (\c PSA_ALG_XXX value such that
1243 * #PSA_ALG_IS_SIGN(\p alg) is true).
1244 *
1245 * \return The underlying hash algorithm if \p alg is a hash-and-sign
1246 * algorithm.
1247 * \return 0 if \p alg is a signature algorithm that does not
1248 * follow the hash-and-sign structure.
1249 * \return Unspecified if \p alg is not a signature algorithm or
1250 * if it is not supported by the implementation.
1251 */
1252#define PSA_ALG_SIGN_GET_HASH(alg) \
Gilles Peskined35b4892019-01-14 16:02:15 +01001253 (PSA_ALG_IS_HASH_AND_SIGN(alg) ? \
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001254 ((alg) & PSA_ALG_HASH_MASK) == 0 ? /*"raw" algorithm*/ 0 : \
1255 ((alg) & PSA_ALG_HASH_MASK) | PSA_ALG_CATEGORY_HASH : \
1256 0)
1257
1258/** RSA PKCS#1 v1.5 encryption.
1259 */
1260#define PSA_ALG_RSA_PKCS1V15_CRYPT ((psa_algorithm_t)0x12020000)
1261
1262#define PSA_ALG_RSA_OAEP_BASE ((psa_algorithm_t)0x12030000)
1263/** RSA OAEP encryption.
1264 *
1265 * This is the encryption scheme defined by RFC 8017
1266 * (PKCS#1: RSA Cryptography Specifications) under the name
1267 * RSAES-OAEP, with the message generation function MGF1.
1268 *
1269 * \param hash_alg The hash algorithm (\c PSA_ALG_XXX value such that
1270 * #PSA_ALG_IS_HASH(\p hash_alg) is true) to use
1271 * for MGF1.
1272 *
Gilles Peskine9ff8d1f2020-05-05 16:00:17 +02001273 * \return The corresponding RSA OAEP encryption algorithm.
Gilles Peskine3be6b7f2019-03-05 19:32:26 +01001274 * \return Unspecified if \p hash_alg is not a supported
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001275 * hash algorithm.
1276 */
1277#define PSA_ALG_RSA_OAEP(hash_alg) \
1278 (PSA_ALG_RSA_OAEP_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
1279#define PSA_ALG_IS_RSA_OAEP(alg) \
1280 (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_RSA_OAEP_BASE)
1281#define PSA_ALG_RSA_OAEP_GET_HASH(alg) \
1282 (PSA_ALG_IS_RSA_OAEP(alg) ? \
1283 ((alg) & PSA_ALG_HASH_MASK) | PSA_ALG_CATEGORY_HASH : \
1284 0)
1285
Gilles Peskine6843c292019-01-18 16:44:49 +01001286#define PSA_ALG_HKDF_BASE ((psa_algorithm_t)0x20000100)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001287/** Macro to build an HKDF algorithm.
1288 *
1289 * For example, `PSA_ALG_HKDF(PSA_ALG_SHA256)` is HKDF using HMAC-SHA-256.
1290 *
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001291 * This key derivation algorithm uses the following inputs:
Gilles Peskine03410b52019-05-16 16:05:19 +02001292 * - #PSA_KEY_DERIVATION_INPUT_SALT is the salt used in the "extract" step.
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001293 * It is optional; if omitted, the derivation uses an empty salt.
Gilles Peskine03410b52019-05-16 16:05:19 +02001294 * - #PSA_KEY_DERIVATION_INPUT_SECRET is the secret key used in the "extract" step.
1295 * - #PSA_KEY_DERIVATION_INPUT_INFO is the info string used in the "expand" step.
1296 * You must pass #PSA_KEY_DERIVATION_INPUT_SALT before #PSA_KEY_DERIVATION_INPUT_SECRET.
1297 * You may pass #PSA_KEY_DERIVATION_INPUT_INFO at any time after steup and before
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001298 * starting to generate output.
1299 *
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001300 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
1301 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
1302 *
1303 * \return The corresponding HKDF algorithm.
Gilles Peskine3be6b7f2019-03-05 19:32:26 +01001304 * \return Unspecified if \p hash_alg is not a supported
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001305 * hash algorithm.
1306 */
1307#define PSA_ALG_HKDF(hash_alg) \
1308 (PSA_ALG_HKDF_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
1309/** Whether the specified algorithm is an HKDF algorithm.
1310 *
1311 * HKDF is a family of key derivation algorithms that are based on a hash
1312 * function and the HMAC construction.
1313 *
1314 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
1315 *
1316 * \return 1 if \c alg is an HKDF algorithm, 0 otherwise.
1317 * This macro may return either 0 or 1 if \c alg is not a supported
1318 * key derivation algorithm identifier.
1319 */
1320#define PSA_ALG_IS_HKDF(alg) \
1321 (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_HKDF_BASE)
1322#define PSA_ALG_HKDF_GET_HASH(hkdf_alg) \
1323 (PSA_ALG_CATEGORY_HASH | ((hkdf_alg) & PSA_ALG_HASH_MASK))
1324
Gilles Peskine6843c292019-01-18 16:44:49 +01001325#define PSA_ALG_TLS12_PRF_BASE ((psa_algorithm_t)0x20000200)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001326/** Macro to build a TLS-1.2 PRF algorithm.
1327 *
1328 * TLS 1.2 uses a custom pseudorandom function (PRF) for key schedule,
1329 * specified in Section 5 of RFC 5246. It is based on HMAC and can be
1330 * used with either SHA-256 or SHA-384.
1331 *
Gilles Peskineed87d312019-05-29 17:32:39 +02001332 * This key derivation algorithm uses the following inputs, which must be
1333 * passed in the order given here:
1334 * - #PSA_KEY_DERIVATION_INPUT_SEED is the seed.
Gilles Peskine2cb9e392019-05-21 15:58:13 +02001335 * - #PSA_KEY_DERIVATION_INPUT_SECRET is the secret key.
1336 * - #PSA_KEY_DERIVATION_INPUT_LABEL is the label.
Gilles Peskine2cb9e392019-05-21 15:58:13 +02001337 *
1338 * For the application to TLS-1.2 key expansion, the seed is the
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001339 * concatenation of ServerHello.Random + ClientHello.Random,
Gilles Peskine2cb9e392019-05-21 15:58:13 +02001340 * and the label is "key expansion".
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001341 *
1342 * For example, `PSA_ALG_TLS12_PRF(PSA_ALG_SHA256)` represents the
1343 * TLS 1.2 PRF using HMAC-SHA-256.
1344 *
1345 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
1346 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
1347 *
1348 * \return The corresponding TLS-1.2 PRF algorithm.
Gilles Peskine3be6b7f2019-03-05 19:32:26 +01001349 * \return Unspecified if \p hash_alg is not a supported
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001350 * hash algorithm.
1351 */
1352#define PSA_ALG_TLS12_PRF(hash_alg) \
1353 (PSA_ALG_TLS12_PRF_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
1354
1355/** Whether the specified algorithm is a TLS-1.2 PRF algorithm.
1356 *
1357 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
1358 *
1359 * \return 1 if \c alg is a TLS-1.2 PRF algorithm, 0 otherwise.
1360 * This macro may return either 0 or 1 if \c alg is not a supported
1361 * key derivation algorithm identifier.
1362 */
1363#define PSA_ALG_IS_TLS12_PRF(alg) \
1364 (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_TLS12_PRF_BASE)
1365#define PSA_ALG_TLS12_PRF_GET_HASH(hkdf_alg) \
1366 (PSA_ALG_CATEGORY_HASH | ((hkdf_alg) & PSA_ALG_HASH_MASK))
1367
Gilles Peskine6843c292019-01-18 16:44:49 +01001368#define PSA_ALG_TLS12_PSK_TO_MS_BASE ((psa_algorithm_t)0x20000300)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001369/** Macro to build a TLS-1.2 PSK-to-MasterSecret algorithm.
1370 *
1371 * In a pure-PSK handshake in TLS 1.2, the master secret is derived
1372 * from the PreSharedKey (PSK) through the application of padding
1373 * (RFC 4279, Section 2) and the TLS-1.2 PRF (RFC 5246, Section 5).
1374 * The latter is based on HMAC and can be used with either SHA-256
1375 * or SHA-384.
1376 *
Gilles Peskineed87d312019-05-29 17:32:39 +02001377 * This key derivation algorithm uses the following inputs, which must be
1378 * passed in the order given here:
1379 * - #PSA_KEY_DERIVATION_INPUT_SEED is the seed.
Gilles Peskine2cb9e392019-05-21 15:58:13 +02001380 * - #PSA_KEY_DERIVATION_INPUT_SECRET is the secret key.
1381 * - #PSA_KEY_DERIVATION_INPUT_LABEL is the label.
Gilles Peskine2cb9e392019-05-21 15:58:13 +02001382 *
1383 * For the application to TLS-1.2, the seed (which is
1384 * forwarded to the TLS-1.2 PRF) is the concatenation of the
1385 * ClientHello.Random + ServerHello.Random,
1386 * and the label is "master secret" or "extended master secret".
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001387 *
1388 * For example, `PSA_ALG_TLS12_PSK_TO_MS(PSA_ALG_SHA256)` represents the
1389 * TLS-1.2 PSK to MasterSecret derivation PRF using HMAC-SHA-256.
1390 *
1391 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
1392 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
1393 *
1394 * \return The corresponding TLS-1.2 PSK to MS algorithm.
Gilles Peskine3be6b7f2019-03-05 19:32:26 +01001395 * \return Unspecified if \p hash_alg is not a supported
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001396 * hash algorithm.
1397 */
1398#define PSA_ALG_TLS12_PSK_TO_MS(hash_alg) \
1399 (PSA_ALG_TLS12_PSK_TO_MS_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
1400
1401/** Whether the specified algorithm is a TLS-1.2 PSK to MS algorithm.
1402 *
1403 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
1404 *
1405 * \return 1 if \c alg is a TLS-1.2 PSK to MS algorithm, 0 otherwise.
1406 * This macro may return either 0 or 1 if \c alg is not a supported
1407 * key derivation algorithm identifier.
1408 */
1409#define PSA_ALG_IS_TLS12_PSK_TO_MS(alg) \
1410 (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_TLS12_PSK_TO_MS_BASE)
1411#define PSA_ALG_TLS12_PSK_TO_MS_GET_HASH(hkdf_alg) \
1412 (PSA_ALG_CATEGORY_HASH | ((hkdf_alg) & PSA_ALG_HASH_MASK))
1413
Gilles Peskinea52460c2019-04-12 00:11:21 +02001414#define PSA_ALG_KEY_DERIVATION_MASK ((psa_algorithm_t)0x0803ffff)
1415#define PSA_ALG_KEY_AGREEMENT_MASK ((psa_algorithm_t)0x10fc0000)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001416
Gilles Peskine6843c292019-01-18 16:44:49 +01001417/** Macro to build a combined algorithm that chains a key agreement with
1418 * a key derivation.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001419 *
Gilles Peskine6843c292019-01-18 16:44:49 +01001420 * \param ka_alg A key agreement algorithm (\c PSA_ALG_XXX value such
1421 * that #PSA_ALG_IS_KEY_AGREEMENT(\p ka_alg) is true).
1422 * \param kdf_alg A key derivation algorithm (\c PSA_ALG_XXX value such
1423 * that #PSA_ALG_IS_KEY_DERIVATION(\p kdf_alg) is true).
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001424 *
Gilles Peskine6843c292019-01-18 16:44:49 +01001425 * \return The corresponding key agreement and derivation
1426 * algorithm.
1427 * \return Unspecified if \p ka_alg is not a supported
1428 * key agreement algorithm or \p kdf_alg is not a
1429 * supported key derivation algorithm.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001430 */
Gilles Peskine6843c292019-01-18 16:44:49 +01001431#define PSA_ALG_KEY_AGREEMENT(ka_alg, kdf_alg) \
1432 ((ka_alg) | (kdf_alg))
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001433
1434#define PSA_ALG_KEY_AGREEMENT_GET_KDF(alg) \
1435 (((alg) & PSA_ALG_KEY_DERIVATION_MASK) | PSA_ALG_CATEGORY_KEY_DERIVATION)
1436
Gilles Peskine6843c292019-01-18 16:44:49 +01001437#define PSA_ALG_KEY_AGREEMENT_GET_BASE(alg) \
1438 (((alg) & PSA_ALG_KEY_AGREEMENT_MASK) | PSA_ALG_CATEGORY_KEY_AGREEMENT)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001439
Gilles Peskine47e79fb2019-02-08 11:24:59 +01001440/** Whether the specified algorithm is a raw key agreement algorithm.
1441 *
1442 * A raw key agreement algorithm is one that does not specify
1443 * a key derivation function.
1444 * Usually, raw key agreement algorithms are constructed directly with
1445 * a \c PSA_ALG_xxx macro while non-raw key agreement algorithms are
1446 * constructed with PSA_ALG_KEY_AGREEMENT().
1447 *
1448 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
1449 *
1450 * \return 1 if \p alg is a raw key agreement algorithm, 0 otherwise.
1451 * This macro may return either 0 or 1 if \p alg is not a supported
1452 * algorithm identifier.
1453 */
Gilles Peskine6843c292019-01-18 16:44:49 +01001454#define PSA_ALG_IS_RAW_KEY_AGREEMENT(alg) \
Gilles Peskine47e79fb2019-02-08 11:24:59 +01001455 (PSA_ALG_IS_KEY_AGREEMENT(alg) && \
1456 PSA_ALG_KEY_AGREEMENT_GET_KDF(alg) == PSA_ALG_CATEGORY_KEY_DERIVATION)
Gilles Peskine6843c292019-01-18 16:44:49 +01001457
1458#define PSA_ALG_IS_KEY_DERIVATION_OR_AGREEMENT(alg) \
1459 ((PSA_ALG_IS_KEY_DERIVATION(alg) || PSA_ALG_IS_KEY_AGREEMENT(alg)))
1460
1461/** The finite-field Diffie-Hellman (DH) key agreement algorithm.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001462 *
Gilles Peskine2e37c0d2019-03-05 19:32:02 +01001463 * The shared secret produced by key agreement is
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001464 * `g^{ab}` in big-endian format.
1465 * It is `ceiling(m / 8)` bytes long where `m` is the size of the prime `p`
1466 * in bits.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001467 */
Gilles Peskine6843c292019-01-18 16:44:49 +01001468#define PSA_ALG_FFDH ((psa_algorithm_t)0x30100000)
1469
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001470/** Whether the specified algorithm is a finite field Diffie-Hellman algorithm.
1471 *
Gilles Peskine2e37c0d2019-03-05 19:32:02 +01001472 * This includes the raw finite field Diffie-Hellman algorithm as well as
1473 * finite-field Diffie-Hellman followed by any supporter key derivation
1474 * algorithm.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001475 *
1476 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
1477 *
1478 * \return 1 if \c alg is a finite field Diffie-Hellman algorithm, 0 otherwise.
1479 * This macro may return either 0 or 1 if \c alg is not a supported
1480 * key agreement algorithm identifier.
1481 */
1482#define PSA_ALG_IS_FFDH(alg) \
Gilles Peskine6843c292019-01-18 16:44:49 +01001483 (PSA_ALG_KEY_AGREEMENT_GET_BASE(alg) == PSA_ALG_FFDH)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001484
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001485/** The elliptic curve Diffie-Hellman (ECDH) key agreement algorithm.
1486 *
Gilles Peskine6843c292019-01-18 16:44:49 +01001487 * The shared secret produced by key agreement is the x-coordinate of
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001488 * the shared secret point. It is always `ceiling(m / 8)` bytes long where
1489 * `m` is the bit size associated with the curve, i.e. the bit size of the
1490 * order of the curve's coordinate field. When `m` is not a multiple of 8,
1491 * the byte containing the most significant bit of the shared secret
1492 * is padded with zero bits. The byte order is either little-endian
1493 * or big-endian depending on the curve type.
1494 *
1495 * - For Montgomery curves (curve types `PSA_ECC_CURVE_CURVEXXX`),
1496 * the shared secret is the x-coordinate of `d_A Q_B = d_B Q_A`
1497 * in little-endian byte order.
1498 * The bit size is 448 for Curve448 and 255 for Curve25519.
1499 * - For Weierstrass curves over prime fields (curve types
1500 * `PSA_ECC_CURVE_SECPXXX` and `PSA_ECC_CURVE_BRAINPOOL_PXXX`),
1501 * the shared secret is the x-coordinate of `d_A Q_B = d_B Q_A`
1502 * in big-endian byte order.
1503 * The bit size is `m = ceiling(log_2(p))` for the field `F_p`.
1504 * - For Weierstrass curves over binary fields (curve types
1505 * `PSA_ECC_CURVE_SECTXXX`),
1506 * the shared secret is the x-coordinate of `d_A Q_B = d_B Q_A`
1507 * in big-endian byte order.
1508 * The bit size is `m` for the field `F_{2^m}`.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001509 */
Gilles Peskine6843c292019-01-18 16:44:49 +01001510#define PSA_ALG_ECDH ((psa_algorithm_t)0x30200000)
1511
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001512/** Whether the specified algorithm is an elliptic curve Diffie-Hellman
1513 * algorithm.
1514 *
Gilles Peskine2e37c0d2019-03-05 19:32:02 +01001515 * This includes the raw elliptic curve Diffie-Hellman algorithm as well as
1516 * elliptic curve Diffie-Hellman followed by any supporter key derivation
1517 * algorithm.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001518 *
1519 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
1520 *
1521 * \return 1 if \c alg is an elliptic curve Diffie-Hellman algorithm,
1522 * 0 otherwise.
1523 * This macro may return either 0 or 1 if \c alg is not a supported
1524 * key agreement algorithm identifier.
1525 */
1526#define PSA_ALG_IS_ECDH(alg) \
Gilles Peskine6843c292019-01-18 16:44:49 +01001527 (PSA_ALG_KEY_AGREEMENT_GET_BASE(alg) == PSA_ALG_ECDH)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001528
Gilles Peskine30f77cd2019-01-14 16:06:39 +01001529/** Whether the specified algorithm encoding is a wildcard.
1530 *
1531 * Wildcard values may only be used to set the usage algorithm field in
1532 * a policy, not to perform an operation.
1533 *
1534 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
1535 *
1536 * \return 1 if \c alg is a wildcard algorithm encoding.
1537 * \return 0 if \c alg is a non-wildcard algorithm encoding (suitable for
1538 * an operation).
1539 * \return This macro may return either 0 or 1 if \c alg is not a supported
1540 * algorithm identifier.
1541 */
1542#define PSA_ALG_IS_WILDCARD(alg) \
1543 (PSA_ALG_IS_HASH_AND_SIGN(alg) ? \
1544 PSA_ALG_SIGN_GET_HASH(alg) == PSA_ALG_ANY_HASH : \
1545 (alg) == PSA_ALG_ANY_HASH)
1546
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001547/**@}*/
1548
1549/** \defgroup key_lifetimes Key lifetimes
1550 * @{
1551 */
1552
Gilles Peskine2d2bb1d2020-02-05 19:07:18 +01001553/** The default lifetime for volatile keys.
1554 *
1555 * A volatile key only exists as long as the handle to it is not closed.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001556 * The key material is guaranteed to be erased on a power reset.
Gilles Peskine2d2bb1d2020-02-05 19:07:18 +01001557 *
1558 * A key with this lifetime is typically stored in the RAM area of the
1559 * PSA Crypto subsystem. However this is an implementation choice.
1560 * If an implementation stores data about the key in a non-volatile memory,
1561 * it must release all the resources associated with the key and erase the
1562 * key material if the calling application terminates.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001563 */
1564#define PSA_KEY_LIFETIME_VOLATILE ((psa_key_lifetime_t)0x00000000)
1565
Gilles Peskine5dcb74f2020-05-04 18:42:44 +02001566/** The default lifetime for persistent keys.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001567 *
1568 * A persistent key remains in storage until it is explicitly destroyed or
1569 * until the corresponding storage area is wiped. This specification does
1570 * not define any mechanism to wipe a storage area, but implementations may
1571 * provide their own mechanism (for example to perform a factory reset,
1572 * to prepare for device refurbishment, or to uninstall an application).
1573 *
1574 * This lifetime value is the default storage area for the calling
1575 * application. Implementations may offer other storage areas designated
1576 * by other lifetime values as implementation-specific extensions.
Gilles Peskine5dcb74f2020-05-04 18:42:44 +02001577 * See ::psa_key_lifetime_t for more information.
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001578 */
1579#define PSA_KEY_LIFETIME_PERSISTENT ((psa_key_lifetime_t)0x00000001)
1580
Gilles Peskineaff11812020-05-04 19:03:10 +02001581/** The persistence level of volatile keys.
1582 *
1583 * See ::psa_key_persistence_t for more information.
1584 */
Gilles Peskinebbb3c182020-05-04 18:42:06 +02001585#define PSA_KEY_PERSISTENCE_VOLATILE ((psa_key_persistence_t)0x00)
Gilles Peskineaff11812020-05-04 19:03:10 +02001586
1587/** The default persistence level for persistent keys.
1588 *
1589 * See ::psa_key_persistence_t for more information.
1590 */
Gilles Peskineee04e692020-05-04 18:52:21 +02001591#define PSA_KEY_PERSISTENCE_DEFAULT ((psa_key_persistence_t)0x01)
Gilles Peskineaff11812020-05-04 19:03:10 +02001592
1593/** A persistence level indicating that a key is never destroyed.
1594 *
1595 * See ::psa_key_persistence_t for more information.
1596 */
Gilles Peskinebbb3c182020-05-04 18:42:06 +02001597#define PSA_KEY_PERSISTENCE_READ_ONLY ((psa_key_persistence_t)0xff)
Gilles Peskine2d2bb1d2020-02-05 19:07:18 +01001598
1599#define PSA_KEY_LIFETIME_GET_PERSISTENCE(lifetime) \
Gilles Peskine4cfa4432020-05-06 13:44:32 +02001600 ((psa_key_persistence_t)((lifetime) & 0x000000ff))
Gilles Peskine2d2bb1d2020-02-05 19:07:18 +01001601
1602#define PSA_KEY_LIFETIME_GET_LOCATION(lifetime) \
Gilles Peskine4cfa4432020-05-06 13:44:32 +02001603 ((psa_key_location_t)((lifetime) >> 8))
Gilles Peskine2d2bb1d2020-02-05 19:07:18 +01001604
1605/** Whether a key lifetime indicates that the key is volatile.
1606 *
1607 * A volatile key is automatically destroyed by the implementation when
1608 * the application instance terminates. In particular, a volatile key
1609 * is automatically destroyed on a power reset of the device.
1610 *
1611 * A key that is not volatile is persistent. Persistent keys are
1612 * preserved until the application explicitly destroys them or until an
1613 * implementation-specific device management event occurs (for example,
1614 * a factory reset).
1615 *
1616 * \param lifetime The lifetime value to query (value of type
1617 * ::psa_key_lifetime_t).
1618 *
1619 * \return \c 1 if the key is volatile, otherwise \c 0.
1620 */
1621#define PSA_KEY_LIFETIME_IS_VOLATILE(lifetime) \
1622 (PSA_KEY_LIFETIME_GET_PERSISTENCE(lifetime) == \
Steven Cooremandb064452020-06-01 12:29:26 +02001623 PSA_KEY_PERSISTENCE_VOLATILE)
Gilles Peskine2d2bb1d2020-02-05 19:07:18 +01001624
Gilles Peskinec4ee2f32020-05-04 19:07:18 +02001625/** Construct a lifetime from a persistence level and a location.
1626 *
1627 * \param persistence The persistence level
1628 * (value of type ::psa_key_persistence_t).
1629 * \param location The location indicator
1630 * (value of type ::psa_key_location_t).
1631 *
1632 * \return The constructed lifetime value.
1633 */
1634#define PSA_KEY_LIFETIME_FROM_PERSISTENCE_AND_LOCATION(persistence, location) \
1635 ((location) << 8 | (persistence))
1636
Gilles Peskineaff11812020-05-04 19:03:10 +02001637/** The local storage area for persistent keys.
1638 *
1639 * This storage area is available on all systems that can store persistent
1640 * keys without delegating the storage to a third-party cryptoprocessor.
1641 *
1642 * See ::psa_key_location_t for more information.
1643 */
Gilles Peskineee04e692020-05-04 18:52:21 +02001644#define PSA_KEY_LOCATION_LOCAL_STORAGE ((psa_key_location_t)0x000000)
Gilles Peskineaff11812020-05-04 19:03:10 +02001645
Gilles Peskinebbb3c182020-05-04 18:42:06 +02001646#define PSA_KEY_LOCATION_VENDOR_FLAG ((psa_key_location_t)0x800000)
Gilles Peskine2d2bb1d2020-02-05 19:07:18 +01001647
Gilles Peskine4a231b82019-05-06 18:56:14 +02001648/** The minimum value for a key identifier chosen by the application.
1649 */
Jaeden Amero6fa62a52019-08-20 17:43:48 +01001650#define PSA_KEY_ID_USER_MIN ((psa_app_key_id_t)0x00000001)
Gilles Peskine280948a2019-05-16 15:27:14 +02001651/** The maximum value for a key identifier chosen by the application.
Gilles Peskine4a231b82019-05-06 18:56:14 +02001652 */
Jaeden Amero6fa62a52019-08-20 17:43:48 +01001653#define PSA_KEY_ID_USER_MAX ((psa_app_key_id_t)0x3fffffff)
Gilles Peskine280948a2019-05-16 15:27:14 +02001654/** The minimum value for a key identifier chosen by the implementation.
Gilles Peskine4a231b82019-05-06 18:56:14 +02001655 */
Jaeden Amero6fa62a52019-08-20 17:43:48 +01001656#define PSA_KEY_ID_VENDOR_MIN ((psa_app_key_id_t)0x40000000)
Gilles Peskine280948a2019-05-16 15:27:14 +02001657/** The maximum value for a key identifier chosen by the implementation.
Gilles Peskine4a231b82019-05-06 18:56:14 +02001658 */
Jaeden Amero6fa62a52019-08-20 17:43:48 +01001659#define PSA_KEY_ID_VENDOR_MAX ((psa_app_key_id_t)0x7fffffff)
Gilles Peskine4a231b82019-05-06 18:56:14 +02001660
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001661/**@}*/
1662
1663/** \defgroup policy Key policies
1664 * @{
1665 */
1666
1667/** Whether the key may be exported.
1668 *
1669 * A public key or the public part of a key pair may always be exported
1670 * regardless of the value of this permission flag.
1671 *
1672 * If a key does not have export permission, implementations shall not
1673 * allow the key to be exported in plain form from the cryptoprocessor,
1674 * whether through psa_export_key() or through a proprietary interface.
1675 * The key may however be exportable in a wrapped form, i.e. in a form
1676 * where it is encrypted by another key.
1677 */
1678#define PSA_KEY_USAGE_EXPORT ((psa_key_usage_t)0x00000001)
1679
Gilles Peskine8e0206a2019-05-14 14:24:28 +02001680/** Whether the key may be copied.
1681 *
Gilles Peskined6a8f5f2019-05-14 16:25:50 +02001682 * This flag allows the use of psa_copy_key() to make a copy of the key
Gilles Peskine8e0206a2019-05-14 14:24:28 +02001683 * with the same policy or a more restrictive policy.
1684 *
Gilles Peskined6a8f5f2019-05-14 16:25:50 +02001685 * For lifetimes for which the key is located in a secure element which
1686 * enforce the non-exportability of keys, copying a key outside the secure
1687 * element also requires the usage flag #PSA_KEY_USAGE_EXPORT.
1688 * Copying the key inside the secure element is permitted with just
1689 * #PSA_KEY_USAGE_COPY if the secure element supports it.
1690 * For keys with the lifetime #PSA_KEY_LIFETIME_VOLATILE or
Gilles Peskine8e0206a2019-05-14 14:24:28 +02001691 * #PSA_KEY_LIFETIME_PERSISTENT, the usage flag #PSA_KEY_USAGE_COPY
1692 * is sufficient to permit the copy.
1693 */
1694#define PSA_KEY_USAGE_COPY ((psa_key_usage_t)0x00000002)
1695
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001696/** Whether the key may be used to encrypt a message.
1697 *
1698 * This flag allows the key to be used for a symmetric encryption operation,
1699 * for an AEAD encryption-and-authentication operation,
1700 * or for an asymmetric encryption operation,
1701 * if otherwise permitted by the key's type and policy.
1702 *
1703 * For a key pair, this concerns the public key.
1704 */
1705#define PSA_KEY_USAGE_ENCRYPT ((psa_key_usage_t)0x00000100)
1706
1707/** Whether the key may be used to decrypt a message.
1708 *
1709 * This flag allows the key to be used for a symmetric decryption operation,
1710 * for an AEAD decryption-and-verification operation,
1711 * or for an asymmetric decryption operation,
1712 * if otherwise permitted by the key's type and policy.
1713 *
1714 * For a key pair, this concerns the private key.
1715 */
1716#define PSA_KEY_USAGE_DECRYPT ((psa_key_usage_t)0x00000200)
1717
1718/** Whether the key may be used to sign a message.
1719 *
1720 * This flag allows the key to be used for a MAC calculation operation
1721 * or for an asymmetric signature operation,
1722 * if otherwise permitted by the key's type and policy.
1723 *
1724 * For a key pair, this concerns the private key.
1725 */
Gilles Peskine89d8c5c2019-11-26 17:01:59 +01001726#define PSA_KEY_USAGE_SIGN_HASH ((psa_key_usage_t)0x00000400)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001727
1728/** Whether the key may be used to verify a message signature.
1729 *
1730 * This flag allows the key to be used for a MAC verification operation
1731 * or for an asymmetric signature verification operation,
1732 * if otherwise permitted by by the key's type and policy.
1733 *
1734 * For a key pair, this concerns the public key.
1735 */
Gilles Peskine89d8c5c2019-11-26 17:01:59 +01001736#define PSA_KEY_USAGE_VERIFY_HASH ((psa_key_usage_t)0x00000800)
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001737
1738/** Whether the key may be used to derive other keys.
1739 */
1740#define PSA_KEY_USAGE_DERIVE ((psa_key_usage_t)0x00001000)
1741
1742/**@}*/
1743
Gilles Peskineb70a0fd2019-01-07 22:59:38 +01001744/** \defgroup derivation Key derivation
1745 * @{
1746 */
1747
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001748/** A secret input for key derivation.
1749 *
Gilles Peskine224b0d62019-09-23 18:13:17 +02001750 * This should be a key of type #PSA_KEY_TYPE_DERIVE
1751 * (passed to psa_key_derivation_input_key())
1752 * or the shared secret resulting from a key agreement
1753 * (obtained via psa_key_derivation_key_agreement()).
Gilles Peskine178c9aa2019-09-24 18:21:06 +02001754 *
1755 * The secret can also be a direct input (passed to
1756 * key_derivation_input_bytes()). In this case, the derivation operation
1757 * may not be used to derive keys: the operation will only allow
1758 * psa_key_derivation_output_bytes(), not psa_key_derivation_output_key().
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001759 */
Gilles Peskinecf7292e2019-05-16 17:53:40 +02001760#define PSA_KEY_DERIVATION_INPUT_SECRET ((psa_key_derivation_step_t)0x0101)
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001761
1762/** A label for key derivation.
1763 *
Gilles Peskine224b0d62019-09-23 18:13:17 +02001764 * This should be a direct input.
1765 * It can also be a key of type #PSA_KEY_TYPE_RAW_DATA.
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001766 */
Gilles Peskinecf7292e2019-05-16 17:53:40 +02001767#define PSA_KEY_DERIVATION_INPUT_LABEL ((psa_key_derivation_step_t)0x0201)
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001768
1769/** A salt for key derivation.
1770 *
Gilles Peskine224b0d62019-09-23 18:13:17 +02001771 * This should be a direct input.
1772 * It can also be a key of type #PSA_KEY_TYPE_RAW_DATA.
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001773 */
Gilles Peskinecf7292e2019-05-16 17:53:40 +02001774#define PSA_KEY_DERIVATION_INPUT_SALT ((psa_key_derivation_step_t)0x0202)
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001775
1776/** An information string for key derivation.
1777 *
Gilles Peskine224b0d62019-09-23 18:13:17 +02001778 * This should be a direct input.
1779 * It can also be a key of type #PSA_KEY_TYPE_RAW_DATA.
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001780 */
Gilles Peskinecf7292e2019-05-16 17:53:40 +02001781#define PSA_KEY_DERIVATION_INPUT_INFO ((psa_key_derivation_step_t)0x0203)
Gilles Peskine6cdfdb72019-01-08 10:31:27 +01001782
Gilles Peskine2cb9e392019-05-21 15:58:13 +02001783/** A seed for key derivation.
1784 *
Gilles Peskine224b0d62019-09-23 18:13:17 +02001785 * This should be a direct input.
1786 * It can also be a key of type #PSA_KEY_TYPE_RAW_DATA.
Gilles Peskine2cb9e392019-05-21 15:58:13 +02001787 */
1788#define PSA_KEY_DERIVATION_INPUT_SEED ((psa_key_derivation_step_t)0x0204)
1789
Gilles Peskineb70a0fd2019-01-07 22:59:38 +01001790/**@}*/
1791
Gilles Peskinef3b731e2018-12-12 13:38:31 +01001792#endif /* PSA_CRYPTO_VALUES_H */