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Gilles Peskinee59236f2018-01-27 23:32:46 +01001/**
2 * \file psa/crypto.h
3 * \brief Platform Security Architecture cryptography module
4 */
Jaeden Amerocab54942018-07-25 13:26:13 +01005/*
6 * Copyright (C) 2018, ARM Limited, All Rights Reserved
7 * SPDX-License-Identifier: Apache-2.0
8 *
9 * Licensed under the Apache License, Version 2.0 (the "License"); you may
10 * not use this file except in compliance with the License.
11 * You may obtain a copy of the License at
12 *
13 * http://www.apache.org/licenses/LICENSE-2.0
14 *
15 * Unless required by applicable law or agreed to in writing, software
16 * distributed under the License is distributed on an "AS IS" BASIS, WITHOUT
17 * WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
18 * See the License for the specific language governing permissions and
19 * limitations under the License.
20 */
Gilles Peskinee59236f2018-01-27 23:32:46 +010021
22#ifndef PSA_CRYPTO_H
23#define PSA_CRYPTO_H
24
25#include "crypto_platform.h"
26
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +010027#include <stddef.h>
28
Gilles Peskine62a7e7e2018-02-07 21:54:47 +010029#ifdef __DOXYGEN_ONLY__
Gilles Peskinef5b9fa12018-03-07 16:40:18 +010030/* This __DOXYGEN_ONLY__ block contains mock definitions for things that
31 * must be defined in the crypto_platform.h header. These mock definitions
32 * are present in this file as a convenience to generate pretty-printed
33 * documentation that includes those definitions. */
34
Gilles Peskine62a7e7e2018-02-07 21:54:47 +010035/** \defgroup platform Implementation-specific definitions
36 * @{
37 */
38
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +010039/** \brief Key slot number.
40 *
41 * This type represents key slots. It must be an unsigned integral
Gilles Peskine308b91d2018-02-08 09:47:44 +010042 * type. The choice of type is implementation-dependent.
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +010043 * 0 is not a valid key slot number. The meaning of other values is
44 * implementation dependent.
45 *
46 * At any given point in time, each key slot either contains a
47 * cryptographic object, or is empty. Key slots are persistent:
48 * once set, the cryptographic object remains in the key slot until
49 * explicitly destroyed.
50 */
51typedef _unsigned_integral_type_ psa_key_slot_t;
52
Gilles Peskine62a7e7e2018-02-07 21:54:47 +010053/**@}*/
Gilles Peskinef5b9fa12018-03-07 16:40:18 +010054#endif /* __DOXYGEN_ONLY__ */
Gilles Peskine62a7e7e2018-02-07 21:54:47 +010055
Gilles Peskinee59236f2018-01-27 23:32:46 +010056#ifdef __cplusplus
57extern "C" {
58#endif
59
60/** \defgroup basic Basic definitions
61 * @{
62 */
63
Gilles Peskinee9a0a9d2018-06-20 13:59:04 +020064#if defined(PSA_SUCCESS)
65/* If PSA_SUCCESS is defined, assume that PSA crypto is being used
66 * together with PSA IPC, which also defines the identifier
67 * PSA_SUCCESS. We must not define PSA_SUCCESS ourselves in that case;
68 * the other error code names don't clash. Also define psa_status_t as
69 * an alias for the type used by PSA IPC. This is a temporary hack
mohammad160313f43942018-08-05 12:09:44 +030070 * until we unify error reporting in PSA IPC and PSA crypto.
Gilles Peskinee9a0a9d2018-06-20 13:59:04 +020071 *
72 * Note that psa_defs.h must be included before this header!
73 */
74typedef psa_error_t psa_status_t;
75
76#else /* defined(PSA_SUCCESS) */
77
Gilles Peskinee59236f2018-01-27 23:32:46 +010078/**
79 * \brief Function return status.
80 *
Gilles Peskinee9a0a9d2018-06-20 13:59:04 +020081 * This is either #PSA_SUCCESS (which is zero), indicating success,
82 * or a nonzero value indicating that an error occurred. Errors are
83 * encoded as one of the \c PSA_ERROR_xxx values defined here.
Gilles Peskinee59236f2018-01-27 23:32:46 +010084 */
itayzafrirc2a79762018-06-18 16:20:16 +030085typedef int32_t psa_status_t;
Gilles Peskinee9a0a9d2018-06-20 13:59:04 +020086
itayzafrirc2a79762018-06-18 16:20:16 +030087/** The action was completed successfully. */
88#define PSA_SUCCESS ((psa_status_t)0)
Gilles Peskinee9a0a9d2018-06-20 13:59:04 +020089
90#endif /* !defined(PSA_SUCCESS) */
itayzafrirc2a79762018-06-18 16:20:16 +030091
itayzafrirf26dbfc2018-08-01 16:09:08 +030092/** An error occurred that does not correspond to any defined
93 * failure cause.
94 *
95 * Implementations may use this error code if none of the other standard
96 * error codes are applicable. */
97#define PSA_ERROR_UNKNOWN_ERROR ((psa_status_t)1)
98
itayzafrirc2a79762018-06-18 16:20:16 +030099/** The requested operation or a parameter is not supported
100 * by this implementation.
101 *
102 * Implementations should return this error code when an enumeration
103 * parameter such as a key type, algorithm, etc. is not recognized.
104 * If a combination of parameters is recognized and identified as
105 * not valid, return #PSA_ERROR_INVALID_ARGUMENT instead. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300106#define PSA_ERROR_NOT_SUPPORTED ((psa_status_t)2)
itayzafrirc2a79762018-06-18 16:20:16 +0300107
108/** The requested action is denied by a policy.
109 *
110 * Implementations should return this error code when the parameters
111 * are recognized as valid and supported, and a policy explicitly
112 * denies the requested operation.
113 *
114 * If a subset of the parameters of a function call identify a
115 * forbidden operation, and another subset of the parameters are
116 * not valid or not supported, it is unspecified whether the function
117 * returns #PSA_ERROR_NOT_PERMITTED, #PSA_ERROR_NOT_SUPPORTED or
118 * #PSA_ERROR_INVALID_ARGUMENT. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300119#define PSA_ERROR_NOT_PERMITTED ((psa_status_t)3)
itayzafrirc2a79762018-06-18 16:20:16 +0300120
121/** An output buffer is too small.
122 *
Gilles Peskinebe42f312018-07-13 14:38:15 +0200123 * Applications can call the \c PSA_xxx_SIZE macro listed in the function
itayzafrirc2a79762018-06-18 16:20:16 +0300124 * description to determine a sufficient buffer size.
125 *
126 * Implementations should preferably return this error code only
127 * in cases when performing the operation with a larger output
128 * buffer would succeed. However implementations may return this
129 * error if a function has invalid or unsupported parameters in addition
130 * to the parameters that determine the necessary output buffer size. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300131#define PSA_ERROR_BUFFER_TOO_SMALL ((psa_status_t)4)
itayzafrirc2a79762018-06-18 16:20:16 +0300132
133/** A slot is occupied, but must be empty to carry out the
134 * requested action.
135 *
136 * If the slot number is invalid (i.e. the requested action could
137 * not be performed even after erasing the slot's content),
138 * implementations shall return #PSA_ERROR_INVALID_ARGUMENT instead. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300139#define PSA_ERROR_OCCUPIED_SLOT ((psa_status_t)5)
itayzafrirc2a79762018-06-18 16:20:16 +0300140
141/** A slot is empty, but must be occupied to carry out the
142 * requested action.
143 *
144 * If the slot number is invalid (i.e. the requested action could
145 * not be performed even after creating appropriate content in the slot),
146 * implementations shall return #PSA_ERROR_INVALID_ARGUMENT instead. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300147#define PSA_ERROR_EMPTY_SLOT ((psa_status_t)6)
itayzafrirc2a79762018-06-18 16:20:16 +0300148
149/** The requested action cannot be performed in the current state.
150 *
151 * Multipart operations return this error when one of the
152 * functions is called out of sequence. Refer to the function
153 * descriptions for permitted sequencing of functions.
154 *
155 * Implementations shall not return this error code to indicate
156 * that a key slot is occupied when it needs to be free or vice versa,
157 * but shall return #PSA_ERROR_OCCUPIED_SLOT or #PSA_ERROR_EMPTY_SLOT
158 * as applicable. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300159#define PSA_ERROR_BAD_STATE ((psa_status_t)7)
itayzafrirc2a79762018-06-18 16:20:16 +0300160
161/** The parameters passed to the function are invalid.
162 *
163 * Implementations may return this error any time a parameter or
164 * combination of parameters are recognized as invalid.
165 *
166 * Implementations shall not return this error code to indicate
167 * that a key slot is occupied when it needs to be free or vice versa,
168 * but shall return #PSA_ERROR_OCCUPIED_SLOT or #PSA_ERROR_EMPTY_SLOT
169 * as applicable. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300170#define PSA_ERROR_INVALID_ARGUMENT ((psa_status_t)8)
itayzafrirc2a79762018-06-18 16:20:16 +0300171
172/** There is not enough runtime memory.
173 *
174 * If the action is carried out across multiple security realms, this
175 * error can refer to available memory in any of the security realms. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300176#define PSA_ERROR_INSUFFICIENT_MEMORY ((psa_status_t)9)
itayzafrirc2a79762018-06-18 16:20:16 +0300177
178/** There is not enough persistent storage.
179 *
180 * Functions that modify the key storage return this error code if
181 * there is insufficient storage space on the host media. In addition,
182 * many functions that do not otherwise access storage may return this
183 * error code if the implementation requires a mandatory log entry for
184 * the requested action and the log storage space is full. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300185#define PSA_ERROR_INSUFFICIENT_STORAGE ((psa_status_t)10)
itayzafrirc2a79762018-06-18 16:20:16 +0300186
187/** There was a communication failure inside the implementation.
188 *
189 * This can indicate a communication failure between the application
190 * and an external cryptoprocessor or between the cryptoprocessor and
191 * an external volatile or persistent memory. A communication failure
192 * may be transient or permanent depending on the cause.
193 *
194 * \warning If a function returns this error, it is undetermined
195 * whether the requested action has completed or not. Implementations
196 * should return #PSA_SUCCESS on successful completion whenver
197 * possible, however functions may return #PSA_ERROR_COMMUNICATION_FAILURE
198 * if the requested action was completed successfully in an external
199 * cryptoprocessor but there was a breakdown of communication before
200 * the cryptoprocessor could report the status to the application.
201 */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300202#define PSA_ERROR_COMMUNICATION_FAILURE ((psa_status_t)11)
itayzafrirc2a79762018-06-18 16:20:16 +0300203
204/** There was a storage failure that may have led to data loss.
205 *
206 * This error indicates that some persistent storage is corrupted.
207 * It should not be used for a corruption of volatile memory
208 * (use #PSA_ERROR_TAMPERING_DETECTED), for a communication error
209 * between the cryptoprocessor and its external storage (use
210 * #PSA_ERROR_COMMUNICATION_FAILURE), or when the storage is
211 * in a valid state but is full (use #PSA_ERROR_INSUFFICIENT_STORAGE).
212 *
213 * Note that a storage failure does not indicate that any data that was
214 * previously read is invalid. However this previously read data may no
215 * longer be readable from storage.
216 *
217 * When a storage failure occurs, it is no longer possible to ensure
218 * the global integrity of the keystore. Depending on the global
219 * integrity guarantees offered by the implementation, access to other
220 * data may or may not fail even if the data is still readable but
221 * its integrity canont be guaranteed.
222 *
223 * Implementations should only use this error code to report a
224 * permanent storage corruption. However application writers should
225 * keep in mind that transient errors while reading the storage may be
226 * reported using this error code. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300227#define PSA_ERROR_STORAGE_FAILURE ((psa_status_t)12)
itayzafrirc2a79762018-06-18 16:20:16 +0300228
229/** A hardware failure was detected.
230 *
231 * A hardware failure may be transient or permanent depending on the
232 * cause. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300233#define PSA_ERROR_HARDWARE_FAILURE ((psa_status_t)13)
itayzafrirc2a79762018-06-18 16:20:16 +0300234
235/** A tampering attempt was detected.
236 *
237 * If an application receives this error code, there is no guarantee
238 * that previously accessed or computed data was correct and remains
239 * confidential. Applications should not perform any security function
240 * and should enter a safe failure state.
241 *
242 * Implementations may return this error code if they detect an invalid
243 * state that cannot happen during normal operation and that indicates
244 * that the implementation's security guarantees no longer hold. Depending
245 * on the implementation architecture and on its security and safety goals,
246 * the implementation may forcibly terminate the application.
247 *
248 * This error code is intended as a last resort when a security breach
249 * is detected and it is unsure whether the keystore data is still
250 * protected. Implementations shall only return this error code
251 * to report an alarm from a tampering detector, to indicate that
252 * the confidentiality of stored data can no longer be guaranteed,
253 * or to indicate that the integrity of previously returned data is now
254 * considered compromised. Implementations shall not use this error code
255 * to indicate a hardware failure that merely makes it impossible to
256 * perform the requested operation (use #PSA_ERROR_COMMUNICATION_FAILURE,
257 * #PSA_ERROR_STORAGE_FAILURE, #PSA_ERROR_HARDWARE_FAILURE,
258 * #PSA_ERROR_INSUFFICIENT_ENTROPY or other applicable error code
259 * instead).
260 *
261 * This error indicates an attack against the application. Implementations
262 * shall not return this error code as a consequence of the behavior of
263 * the application itself. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300264#define PSA_ERROR_TAMPERING_DETECTED ((psa_status_t)14)
itayzafrirc2a79762018-06-18 16:20:16 +0300265
266/** There is not enough entropy to generate random data needed
267 * for the requested action.
268 *
269 * This error indicates a failure of a hardware random generator.
270 * Application writers should note that this error can be returned not
271 * only by functions whose purpose is to generate random data, such
272 * as key, IV or nonce generation, but also by functions that execute
273 * an algorithm with a randomized result, as well as functions that
274 * use randomization of intermediate computations as a countermeasure
275 * to certain attacks.
276 *
277 * Implementations should avoid returning this error after psa_crypto_init()
278 * has succeeded. Implementations should generate sufficient
279 * entropy during initialization and subsequently use a cryptographically
280 * secure pseudorandom generator (PRNG). However implementations may return
281 * this error at any time if a policy requires the PRNG to be reseeded
282 * during normal operation. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300283#define PSA_ERROR_INSUFFICIENT_ENTROPY ((psa_status_t)15)
itayzafrirc2a79762018-06-18 16:20:16 +0300284
285/** The signature, MAC or hash is incorrect.
286 *
287 * Verification functions return this error if the verification
288 * calculations completed successfully, and the value to be verified
289 * was determined to be incorrect.
290 *
291 * If the value to verify has an invalid size, implementations may return
292 * either #PSA_ERROR_INVALID_ARGUMENT or #PSA_ERROR_INVALID_SIGNATURE. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300293#define PSA_ERROR_INVALID_SIGNATURE ((psa_status_t)16)
itayzafrirc2a79762018-06-18 16:20:16 +0300294
295/** The decrypted padding is incorrect.
296 *
297 * \warning In some protocols, when decrypting data, it is essential that
298 * the behavior of the application does not depend on whether the padding
299 * is correct, down to precise timing. Applications should prefer
300 * protocols that use authenticated encryption rather than plain
301 * encryption. If the application must perform a decryption of
302 * unauthenticated data, the application writer should take care not
303 * to reveal whether the padding is invalid.
304 *
305 * Implementations should strive to make valid and invalid padding
306 * as close as possible to indistinguishable to an external observer.
307 * In particular, the timing of a decryption operation should not
308 * depend on the validity of the padding. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300309#define PSA_ERROR_INVALID_PADDING ((psa_status_t)17)
itayzafrirc2a79762018-06-18 16:20:16 +0300310
Gilles Peskineeab56e42018-07-12 17:12:33 +0200311/** The generator has insufficient capacity left.
312 *
313 * Once a function returns this error, attempts to read from the
314 * generator will always return this error. */
itayzafrirf26dbfc2018-08-01 16:09:08 +0300315#define PSA_ERROR_INSUFFICIENT_CAPACITY ((psa_status_t)18)
Gilles Peskinee59236f2018-01-27 23:32:46 +0100316
317/**
318 * \brief Library initialization.
319 *
320 * Applications must call this function before calling any other
321 * function in this module.
322 *
323 * Applications may call this function more than once. Once a call
324 * succeeds, subsequent calls are guaranteed to succeed.
325 *
Gilles Peskine28538492018-07-11 17:34:00 +0200326 * \retval #PSA_SUCCESS
327 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
328 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
329 * \retval #PSA_ERROR_HARDWARE_FAILURE
330 * \retval #PSA_ERROR_TAMPERING_DETECTED
331 * \retval #PSA_ERROR_INSUFFICIENT_ENTROPY
Gilles Peskinee59236f2018-01-27 23:32:46 +0100332 */
333psa_status_t psa_crypto_init(void);
334
Gilles Peskine2905a7a2018-03-07 16:39:31 +0100335#define PSA_BITS_TO_BYTES(bits) (((bits) + 7) / 8)
336#define PSA_BYTES_TO_BITS(bytes) ((bytes) * 8)
Gilles Peskine0189e752018-02-03 23:57:22 +0100337
Gilles Peskinee59236f2018-01-27 23:32:46 +0100338/**@}*/
339
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +0100340/** \defgroup crypto_types Key and algorithm types
341 * @{
342 */
343
Gilles Peskine308b91d2018-02-08 09:47:44 +0100344/** \brief Encoding of a key type.
345 */
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +0100346typedef uint32_t psa_key_type_t;
347
Gilles Peskinef5b9fa12018-03-07 16:40:18 +0100348/** An invalid key type value.
349 *
350 * Zero is not the encoding of any key type.
351 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100352#define PSA_KEY_TYPE_NONE ((psa_key_type_t)0x00000000)
Gilles Peskinef5b9fa12018-03-07 16:40:18 +0100353
354/** Vendor-defined flag
355 *
356 * Key types defined by this standard will never have the
357 * #PSA_KEY_TYPE_VENDOR_FLAG bit set. Vendors who define additional key types
358 * must use an encoding with the #PSA_KEY_TYPE_VENDOR_FLAG bit set and should
359 * respect the bitwise structure used by standard encodings whenever practical.
360 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100361#define PSA_KEY_TYPE_VENDOR_FLAG ((psa_key_type_t)0x80000000)
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +0100362
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200363#define PSA_KEY_TYPE_CATEGORY_MASK ((psa_key_type_t)0x70000000)
364#define PSA_KEY_TYPE_CATEGORY_SYMMETRIC ((psa_key_type_t)0x40000000)
365#define PSA_KEY_TYPE_CATEGORY_RAW ((psa_key_type_t)0x50000000)
366#define PSA_KEY_TYPE_CATEGORY_PUBLIC_KEY ((psa_key_type_t)0x60000000)
367#define PSA_KEY_TYPE_CATEGORY_KEY_PAIR ((psa_key_type_t)0x70000000)
368
369#define PSA_KEY_TYPE_CATEGORY_FLAG_PAIR ((psa_key_type_t)0x10000000)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200370
Gilles Peskinee8779742018-08-10 16:10:56 +0200371/** Whether a key type is vendor-defined. */
372#define PSA_KEY_TYPE_IS_VENDOR_DEFINED(type) \
373 (((type) & PSA_KEY_TYPE_VENDOR_FLAG) != 0)
374
375/** Whether a key type is an unstructured array of bytes.
376 *
377 * This encompasses both symmetric keys and non-key data.
378 */
379#define PSA_KEY_TYPE_IS_UNSTRUCTURED(type) \
380 (((type) & PSA_KEY_TYPE_CATEGORY_MASK & ~(psa_key_type_t)0x10000000) == \
381 PSA_KEY_TYPE_CATEGORY_SYMMETRIC)
382
383/** Whether a key type is asymmetric: either a key pair or a public key. */
384#define PSA_KEY_TYPE_IS_ASYMMETRIC(type) \
385 (((type) & PSA_KEY_TYPE_CATEGORY_MASK \
386 & ~PSA_KEY_TYPE_CATEGORY_FLAG_PAIR) == \
387 PSA_KEY_TYPE_CATEGORY_PUBLIC_KEY)
388/** Whether a key type is the public part of a key pair. */
389#define PSA_KEY_TYPE_IS_PUBLIC_KEY(type) \
390 (((type) & PSA_KEY_TYPE_CATEGORY_MASK) == PSA_KEY_TYPE_CATEGORY_PUBLIC_KEY)
391/** Whether a key type is a key pair containing a private part and a public
392 * part. */
393#define PSA_KEY_TYPE_IS_KEYPAIR(type) \
394 (((type) & PSA_KEY_TYPE_CATEGORY_MASK) == PSA_KEY_TYPE_CATEGORY_KEY_PAIR)
395/** The key pair type corresponding to a public key type.
396 *
397 * You may also pass a key pair type as \p type, it will be left unchanged.
398 *
399 * \param type A public key type or key pair type.
400 *
401 * \return The corresponding key pair type.
402 * If \p type is not a public key or a key pair,
403 * the return value is undefined.
404 */
405#define PSA_KEY_TYPE_KEYPAIR_OF_PUBLIC_KEY(type) \
406 ((type) | PSA_KEY_TYPE_CATEGORY_FLAG_PAIR)
407/** The public key type corresponding to a key pair type.
408 *
409 * You may also pass a key pair type as \p type, it will be left unchanged.
410 *
411 * \param type A public key type or key pair type.
412 *
413 * \return The corresponding public key type.
414 * If \p type is not a public key or a key pair,
415 * the return value is undefined.
416 */
417#define PSA_KEY_TYPE_PUBLIC_KEY_OF_KEYPAIR(type) \
418 ((type) & ~PSA_KEY_TYPE_CATEGORY_FLAG_PAIR)
419/** Whether a key type is an RSA key (pair or public-only). */
420#define PSA_KEY_TYPE_IS_RSA(type) \
421 (PSA_KEY_TYPE_PUBLIC_KEY_OF_KEYPAIR(type) == PSA_KEY_TYPE_RSA_PUBLIC_KEY)
422
Gilles Peskine35855962018-04-19 08:39:16 +0200423/** Raw data.
424 *
425 * A "key" of this type cannot be used for any cryptographic operation.
426 * Applications may use this type to store arbitrary data in the keystore. */
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200427#define PSA_KEY_TYPE_RAW_DATA ((psa_key_type_t)0x50000001)
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +0100428
Gilles Peskine35855962018-04-19 08:39:16 +0200429/** HMAC key.
430 *
431 * The key policy determines which underlying hash algorithm the key can be
432 * used for.
433 *
434 * HMAC keys should generally have the same size as the underlying hash.
Gilles Peskinebe42f312018-07-13 14:38:15 +0200435 * This size can be calculated with #PSA_HASH_SIZE(\c alg) where
436 * \c alg is the HMAC algorithm or the underlying hash algorithm. */
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200437#define PSA_KEY_TYPE_HMAC ((psa_key_type_t)0x51000000)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200438
Gilles Peskineea0fb492018-07-12 17:17:20 +0200439/** A secret for key derivation.
440 *
441 * The key policy determines which key derivation algorithm the key
442 * can be used for.
443 */
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200444#define PSA_KEY_TYPE_DERIVE ((psa_key_type_t)0x52000000)
Gilles Peskineea0fb492018-07-12 17:17:20 +0200445
Gilles Peskine35855962018-04-19 08:39:16 +0200446/** Key for an cipher, AEAD or MAC algorithm based on the AES block cipher.
447 *
448 * The size of the key can be 16 bytes (AES-128), 24 bytes (AES-192) or
449 * 32 bytes (AES-256).
450 */
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200451#define PSA_KEY_TYPE_AES ((psa_key_type_t)0x40000001)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200452
Gilles Peskine35855962018-04-19 08:39:16 +0200453/** Key for a cipher or MAC algorithm based on DES or 3DES (Triple-DES).
454 *
455 * The size of the key can be 8 bytes (single DES), 16 bytes (2-key 3DES) or
456 * 24 bytes (3-key 3DES).
457 *
458 * Note that single DES and 2-key 3DES are weak and strongly
459 * deprecated and should only be used to decrypt legacy data. 3-key 3DES
460 * is weak and deprecated and should only be used in legacy protocols.
461 */
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200462#define PSA_KEY_TYPE_DES ((psa_key_type_t)0x40000002)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200463
Gilles Peskine35855962018-04-19 08:39:16 +0200464/** Key for an cipher, AEAD or MAC algorithm based on the
465 * Camellia block cipher. */
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200466#define PSA_KEY_TYPE_CAMELLIA ((psa_key_type_t)0x40000003)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200467
Gilles Peskine35855962018-04-19 08:39:16 +0200468/** Key for the RC4 stream cipher.
469 *
470 * Note that RC4 is weak and deprecated and should only be used in
471 * legacy protocols. */
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200472#define PSA_KEY_TYPE_ARC4 ((psa_key_type_t)0x40000004)
Gilles Peskine98f0a242018-02-06 18:57:29 +0100473
Gilles Peskine308b91d2018-02-08 09:47:44 +0100474/** RSA public key. */
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200475#define PSA_KEY_TYPE_RSA_PUBLIC_KEY ((psa_key_type_t)0x60010000)
Gilles Peskine308b91d2018-02-08 09:47:44 +0100476/** RSA key pair (private and public key). */
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200477#define PSA_KEY_TYPE_RSA_KEYPAIR ((psa_key_type_t)0x70010000)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200478
Gilles Peskine06dc2632018-03-08 07:47:25 +0100479/** DSA public key. */
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200480#define PSA_KEY_TYPE_DSA_PUBLIC_KEY ((psa_key_type_t)0x60020000)
Gilles Peskine06dc2632018-03-08 07:47:25 +0100481/** DSA key pair (private and public key). */
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200482#define PSA_KEY_TYPE_DSA_KEYPAIR ((psa_key_type_t)0x70020000)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200483
Gilles Peskine78b3bb62018-08-10 16:03:41 +0200484#define PSA_KEY_TYPE_ECC_PUBLIC_KEY_BASE ((psa_key_type_t)0x60030000)
485#define PSA_KEY_TYPE_ECC_KEYPAIR_BASE ((psa_key_type_t)0x70030000)
Gilles Peskine98f0a242018-02-06 18:57:29 +0100486#define PSA_KEY_TYPE_ECC_CURVE_MASK ((psa_key_type_t)0x0000ffff)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200487/** Elliptic curve key pair. */
Gilles Peskine06dc2632018-03-08 07:47:25 +0100488#define PSA_KEY_TYPE_ECC_KEYPAIR(curve) \
489 (PSA_KEY_TYPE_ECC_KEYPAIR_BASE | (curve))
Gilles Peskinedcd14942018-07-12 00:30:52 +0200490/** Elliptic curve public key. */
Gilles Peskine06dc2632018-03-08 07:47:25 +0100491#define PSA_KEY_TYPE_ECC_PUBLIC_KEY(curve) \
492 (PSA_KEY_TYPE_ECC_PUBLIC_KEY_BASE | (curve))
Gilles Peskine98f0a242018-02-06 18:57:29 +0100493
Gilles Peskined8008d62018-06-29 19:51:51 +0200494/** Whether a key type is an elliptic curve key (pair or public-only). */
Gilles Peskinec66ea6a2018-02-03 22:43:28 +0100495#define PSA_KEY_TYPE_IS_ECC(type) \
Gilles Peskine06dc2632018-03-08 07:47:25 +0100496 ((PSA_KEY_TYPE_PUBLIC_KEY_OF_KEYPAIR(type) & \
497 ~PSA_KEY_TYPE_ECC_CURVE_MASK) == PSA_KEY_TYPE_ECC_PUBLIC_KEY_BASE)
Gilles Peskine55728b02018-07-16 23:08:16 +0200498#define PSA_KEY_TYPE_IS_ECC_KEYPAIR(type) \
499 (((type) & ~PSA_KEY_TYPE_ECC_CURVE_MASK) == \
500 PSA_KEY_TYPE_ECC_KEYPAIR_BASE)
501#define PSA_KEY_TYPE_IS_ECC_PUBLIC_KEY(type) \
502 (((type) & ~PSA_KEY_TYPE_ECC_CURVE_MASK) == \
503 PSA_KEY_TYPE_ECC_PUBLIC_KEY_BASE)
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +0100504
Gilles Peskinee1fed0d2018-06-18 20:45:45 +0200505/** The type of PSA elliptic curve identifiers. */
506typedef uint16_t psa_ecc_curve_t;
507/** Extract the curve from an elliptic curve key type. */
508#define PSA_KEY_TYPE_GET_CURVE(type) \
509 ((psa_ecc_curve_t) (PSA_KEY_TYPE_IS_ECC(type) ? \
510 ((type) & PSA_KEY_TYPE_ECC_CURVE_MASK) : \
511 0))
512
513/* The encoding of curve identifiers is currently aligned with the
514 * TLS Supported Groups Registry (formerly known as the
515 * TLS EC Named Curve Registry)
516 * https://www.iana.org/assignments/tls-parameters/tls-parameters.xhtml#tls-parameters-8
517 * The values are defined by RFC 4492, RFC 7027 and RFC 7919. */
518#define PSA_ECC_CURVE_SECT163K1 ((psa_ecc_curve_t) 0x0001)
519#define PSA_ECC_CURVE_SECT163R1 ((psa_ecc_curve_t) 0x0002)
520#define PSA_ECC_CURVE_SECT163R2 ((psa_ecc_curve_t) 0x0003)
521#define PSA_ECC_CURVE_SECT193R1 ((psa_ecc_curve_t) 0x0004)
522#define PSA_ECC_CURVE_SECT193R2 ((psa_ecc_curve_t) 0x0005)
523#define PSA_ECC_CURVE_SECT233K1 ((psa_ecc_curve_t) 0x0006)
524#define PSA_ECC_CURVE_SECT233R1 ((psa_ecc_curve_t) 0x0007)
525#define PSA_ECC_CURVE_SECT239K1 ((psa_ecc_curve_t) 0x0008)
526#define PSA_ECC_CURVE_SECT283K1 ((psa_ecc_curve_t) 0x0009)
527#define PSA_ECC_CURVE_SECT283R1 ((psa_ecc_curve_t) 0x000a)
528#define PSA_ECC_CURVE_SECT409K1 ((psa_ecc_curve_t) 0x000b)
529#define PSA_ECC_CURVE_SECT409R1 ((psa_ecc_curve_t) 0x000c)
530#define PSA_ECC_CURVE_SECT571K1 ((psa_ecc_curve_t) 0x000d)
531#define PSA_ECC_CURVE_SECT571R1 ((psa_ecc_curve_t) 0x000e)
532#define PSA_ECC_CURVE_SECP160K1 ((psa_ecc_curve_t) 0x000f)
533#define PSA_ECC_CURVE_SECP160R1 ((psa_ecc_curve_t) 0x0010)
534#define PSA_ECC_CURVE_SECP160R2 ((psa_ecc_curve_t) 0x0011)
535#define PSA_ECC_CURVE_SECP192K1 ((psa_ecc_curve_t) 0x0012)
536#define PSA_ECC_CURVE_SECP192R1 ((psa_ecc_curve_t) 0x0013)
537#define PSA_ECC_CURVE_SECP224K1 ((psa_ecc_curve_t) 0x0014)
538#define PSA_ECC_CURVE_SECP224R1 ((psa_ecc_curve_t) 0x0015)
539#define PSA_ECC_CURVE_SECP256K1 ((psa_ecc_curve_t) 0x0016)
540#define PSA_ECC_CURVE_SECP256R1 ((psa_ecc_curve_t) 0x0017)
541#define PSA_ECC_CURVE_SECP384R1 ((psa_ecc_curve_t) 0x0018)
542#define PSA_ECC_CURVE_SECP521R1 ((psa_ecc_curve_t) 0x0019)
543#define PSA_ECC_CURVE_BRAINPOOL_P256R1 ((psa_ecc_curve_t) 0x001a)
544#define PSA_ECC_CURVE_BRAINPOOL_P384R1 ((psa_ecc_curve_t) 0x001b)
545#define PSA_ECC_CURVE_BRAINPOOL_P512R1 ((psa_ecc_curve_t) 0x001c)
546#define PSA_ECC_CURVE_CURVE25519 ((psa_ecc_curve_t) 0x001d)
547#define PSA_ECC_CURVE_CURVE448 ((psa_ecc_curve_t) 0x001e)
548#define PSA_ECC_CURVE_FFDHE_2048 ((psa_ecc_curve_t) 0x0100)
549#define PSA_ECC_CURVE_FFDHE_3072 ((psa_ecc_curve_t) 0x0101)
550#define PSA_ECC_CURVE_FFDHE_4096 ((psa_ecc_curve_t) 0x0102)
551#define PSA_ECC_CURVE_FFDHE_6144 ((psa_ecc_curve_t) 0x0103)
552#define PSA_ECC_CURVE_FFDHE_8192 ((psa_ecc_curve_t) 0x0104)
553
Gilles Peskine7e198532018-03-08 07:50:30 +0100554/** The block size of a block cipher.
555 *
556 * \param type A cipher key type (value of type #psa_key_type_t).
557 *
558 * \return The block size for a block cipher, or 1 for a stream cipher.
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200559 * The return value is undefined if \p type is not a supported
Gilles Peskine35855962018-04-19 08:39:16 +0200560 * cipher key type.
561 *
562 * \note It is possible to build stream cipher algorithms on top of a block
563 * cipher, for example CTR mode (#PSA_ALG_CTR).
564 * This macro only takes the key type into account, so it cannot be
565 * used to determine the size of the data that #psa_cipher_update()
566 * might buffer for future processing in general.
Gilles Peskine7e198532018-03-08 07:50:30 +0100567 *
568 * \note This macro returns a compile-time constant if its argument is one.
569 *
570 * \warning This macro may evaluate its argument multiple times.
571 */
Gilles Peskine03182e92018-03-07 16:40:52 +0100572#define PSA_BLOCK_CIPHER_BLOCK_SIZE(type) \
Gilles Peskine8c9def32018-02-08 10:02:12 +0100573 ( \
574 (type) == PSA_KEY_TYPE_AES ? 16 : \
575 (type) == PSA_KEY_TYPE_DES ? 8 : \
576 (type) == PSA_KEY_TYPE_CAMELLIA ? 16 : \
Gilles Peskine7e198532018-03-08 07:50:30 +0100577 (type) == PSA_KEY_TYPE_ARC4 ? 1 : \
Gilles Peskine8c9def32018-02-08 10:02:12 +0100578 0)
579
Gilles Peskine308b91d2018-02-08 09:47:44 +0100580/** \brief Encoding of a cryptographic algorithm.
581 *
582 * For algorithms that can be applied to multiple key types, this type
583 * does not encode the key type. For example, for symmetric ciphers
584 * based on a block cipher, #psa_algorithm_t encodes the block cipher
585 * mode and the padding mode while the block cipher itself is encoded
586 * via #psa_key_type_t.
587 */
Gilles Peskine20035e32018-02-03 22:44:14 +0100588typedef uint32_t psa_algorithm_t;
589
Gilles Peskine98f0a242018-02-06 18:57:29 +0100590#define PSA_ALG_VENDOR_FLAG ((psa_algorithm_t)0x80000000)
591#define PSA_ALG_CATEGORY_MASK ((psa_algorithm_t)0x7f000000)
592#define PSA_ALG_CATEGORY_HASH ((psa_algorithm_t)0x01000000)
593#define PSA_ALG_CATEGORY_MAC ((psa_algorithm_t)0x02000000)
594#define PSA_ALG_CATEGORY_CIPHER ((psa_algorithm_t)0x04000000)
595#define PSA_ALG_CATEGORY_AEAD ((psa_algorithm_t)0x06000000)
596#define PSA_ALG_CATEGORY_SIGN ((psa_algorithm_t)0x10000000)
597#define PSA_ALG_CATEGORY_ASYMMETRIC_ENCRYPTION ((psa_algorithm_t)0x12000000)
598#define PSA_ALG_CATEGORY_KEY_AGREEMENT ((psa_algorithm_t)0x22000000)
599#define PSA_ALG_CATEGORY_KEY_DERIVATION ((psa_algorithm_t)0x30000000)
Gilles Peskine20035e32018-02-03 22:44:14 +0100600
Gilles Peskine98f0a242018-02-06 18:57:29 +0100601#define PSA_ALG_IS_VENDOR_DEFINED(alg) \
602 (((alg) & PSA_ALG_VENDOR_FLAG) != 0)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200603
Gilles Peskine308b91d2018-02-08 09:47:44 +0100604/** Whether the specified algorithm is a hash algorithm.
605 *
Gilles Peskine7e198532018-03-08 07:50:30 +0100606 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
Gilles Peskine308b91d2018-02-08 09:47:44 +0100607 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200608 * \return 1 if \p alg is a hash algorithm, 0 otherwise.
609 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskine7e198532018-03-08 07:50:30 +0100610 * algorithm identifier.
611 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100612#define PSA_ALG_IS_HASH(alg) \
613 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_HASH)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200614
615/** Whether the specified algorithm is a MAC algorithm.
616 *
617 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
618 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200619 * \return 1 if \p alg is a MAC algorithm, 0 otherwise.
620 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskinedcd14942018-07-12 00:30:52 +0200621 * algorithm identifier.
622 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100623#define PSA_ALG_IS_MAC(alg) \
624 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_MAC)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200625
626/** Whether the specified algorithm is a symmetric cipher algorithm.
627 *
628 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
629 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200630 * \return 1 if \p alg is a symmetric cipher algorithm, 0 otherwise.
631 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskinedcd14942018-07-12 00:30:52 +0200632 * algorithm identifier.
633 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100634#define PSA_ALG_IS_CIPHER(alg) \
635 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_CIPHER)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200636
637/** Whether the specified algorithm is an authenticated encryption
638 * with associated data (AEAD) algorithm.
639 *
640 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
641 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200642 * \return 1 if \p alg is an AEAD algorithm, 0 otherwise.
643 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskinedcd14942018-07-12 00:30:52 +0200644 * algorithm identifier.
645 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100646#define PSA_ALG_IS_AEAD(alg) \
647 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_AEAD)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200648
649/** Whether the specified algorithm is a public-key signature algorithm.
650 *
651 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
652 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200653 * \return 1 if \p alg is a public-key signature algorithm, 0 otherwise.
654 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskinedcd14942018-07-12 00:30:52 +0200655 * algorithm identifier.
656 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100657#define PSA_ALG_IS_SIGN(alg) \
658 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_SIGN)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200659
660/** Whether the specified algorithm is a public-key encryption algorithm.
661 *
662 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
663 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200664 * \return 1 if \p alg is a public-key encryption algorithm, 0 otherwise.
665 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskinedcd14942018-07-12 00:30:52 +0200666 * algorithm identifier.
667 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100668#define PSA_ALG_IS_ASYMMETRIC_ENCRYPTION(alg) \
669 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_ASYMMETRIC_ENCRYPTION)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200670
671/** Whether the specified algorithm is a key agreement algorithm.
672 *
673 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
674 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200675 * \return 1 if \p alg is a key agreement algorithm, 0 otherwise.
676 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskinedcd14942018-07-12 00:30:52 +0200677 * algorithm identifier.
678 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100679#define PSA_ALG_IS_KEY_AGREEMENT(alg) \
680 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_KEY_AGREEMENT)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200681
682/** Whether the specified algorithm is a key derivation algorithm.
683 *
684 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
685 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200686 * \return 1 if \p alg is a key derivation algorithm, 0 otherwise.
687 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskinedcd14942018-07-12 00:30:52 +0200688 * algorithm identifier.
689 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100690#define PSA_ALG_IS_KEY_DERIVATION(alg) \
691 (((alg) & PSA_ALG_CATEGORY_MASK) == PSA_ALG_CATEGORY_KEY_DERIVATION)
692
693#define PSA_ALG_HASH_MASK ((psa_algorithm_t)0x000000ff)
694#define PSA_ALG_MD2 ((psa_algorithm_t)0x01000001)
695#define PSA_ALG_MD4 ((psa_algorithm_t)0x01000002)
696#define PSA_ALG_MD5 ((psa_algorithm_t)0x01000003)
Gilles Peskinee3f694f2018-03-08 07:48:40 +0100697#define PSA_ALG_RIPEMD160 ((psa_algorithm_t)0x01000004)
698#define PSA_ALG_SHA_1 ((psa_algorithm_t)0x01000005)
Gilles Peskineedd76872018-07-20 17:42:05 +0200699/** SHA2-224 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100700#define PSA_ALG_SHA_224 ((psa_algorithm_t)0x01000008)
Gilles Peskineedd76872018-07-20 17:42:05 +0200701/** SHA2-256 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100702#define PSA_ALG_SHA_256 ((psa_algorithm_t)0x01000009)
Gilles Peskineedd76872018-07-20 17:42:05 +0200703/** SHA2-384 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100704#define PSA_ALG_SHA_384 ((psa_algorithm_t)0x0100000a)
Gilles Peskineedd76872018-07-20 17:42:05 +0200705/** SHA2-512 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100706#define PSA_ALG_SHA_512 ((psa_algorithm_t)0x0100000b)
Gilles Peskineedd76872018-07-20 17:42:05 +0200707/** SHA2-512/224 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100708#define PSA_ALG_SHA_512_224 ((psa_algorithm_t)0x0100000c)
Gilles Peskineedd76872018-07-20 17:42:05 +0200709/** SHA2-512/256 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100710#define PSA_ALG_SHA_512_256 ((psa_algorithm_t)0x0100000d)
Gilles Peskineedd76872018-07-20 17:42:05 +0200711/** SHA3-224 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100712#define PSA_ALG_SHA3_224 ((psa_algorithm_t)0x01000010)
Gilles Peskineedd76872018-07-20 17:42:05 +0200713/** SHA3-256 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100714#define PSA_ALG_SHA3_256 ((psa_algorithm_t)0x01000011)
Gilles Peskineedd76872018-07-20 17:42:05 +0200715/** SHA3-384 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100716#define PSA_ALG_SHA3_384 ((psa_algorithm_t)0x01000012)
Gilles Peskineedd76872018-07-20 17:42:05 +0200717/** SHA3-512 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100718#define PSA_ALG_SHA3_512 ((psa_algorithm_t)0x01000013)
719
Gilles Peskine8c9def32018-02-08 10:02:12 +0100720#define PSA_ALG_MAC_SUBCATEGORY_MASK ((psa_algorithm_t)0x00c00000)
Gilles Peskine98f0a242018-02-06 18:57:29 +0100721#define PSA_ALG_HMAC_BASE ((psa_algorithm_t)0x02800000)
Gilles Peskine35855962018-04-19 08:39:16 +0200722/** Macro to build an HMAC algorithm.
723 *
Gilles Peskinedda3bd32018-07-12 19:40:46 +0200724 * For example, #PSA_ALG_HMAC(#PSA_ALG_SHA_256) is HMAC-SHA-256.
Gilles Peskine35855962018-04-19 08:39:16 +0200725 *
Gilles Peskineea4469f2018-06-28 13:57:23 +0200726 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
Gilles Peskine7256e6c2018-07-12 00:34:26 +0200727 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
Gilles Peskine35855962018-04-19 08:39:16 +0200728 *
Gilles Peskineea4469f2018-06-28 13:57:23 +0200729 * \return The corresponding HMAC algorithm.
730 * \return Unspecified if \p alg is not a supported
731 * hash algorithm.
Gilles Peskine35855962018-04-19 08:39:16 +0200732 */
733#define PSA_ALG_HMAC(hash_alg) \
Gilles Peskine8c9def32018-02-08 10:02:12 +0100734 (PSA_ALG_HMAC_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
Gilles Peskinedcd14942018-07-12 00:30:52 +0200735
Gilles Peskine8c9def32018-02-08 10:02:12 +0100736#define PSA_ALG_HMAC_HASH(hmac_alg) \
737 (PSA_ALG_CATEGORY_HASH | ((hmac_alg) & PSA_ALG_HASH_MASK))
Gilles Peskinedcd14942018-07-12 00:30:52 +0200738
739/** Whether the specified algorithm is an HMAC algorithm.
740 *
741 * HMAC is a family of MAC algorithms that are based on a hash function.
742 *
743 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
744 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200745 * \return 1 if \p alg is an HMAC algorithm, 0 otherwise.
746 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskinedcd14942018-07-12 00:30:52 +0200747 * algorithm identifier.
748 */
Gilles Peskine8c9def32018-02-08 10:02:12 +0100749#define PSA_ALG_IS_HMAC(alg) \
750 (((alg) & (PSA_ALG_CATEGORY_MASK | PSA_ALG_MAC_SUBCATEGORY_MASK)) == \
751 PSA_ALG_HMAC_BASE)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200752
Gilles Peskine8c9def32018-02-08 10:02:12 +0100753#define PSA_ALG_CIPHER_MAC_BASE ((psa_algorithm_t)0x02c00000)
754#define PSA_ALG_CBC_MAC ((psa_algorithm_t)0x02c00001)
755#define PSA_ALG_CMAC ((psa_algorithm_t)0x02c00002)
756#define PSA_ALG_GMAC ((psa_algorithm_t)0x02c00003)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200757
758/** Whether the specified algorithm is a MAC algorithm based on a block cipher.
759 *
Gilles Peskine6ac73a92018-07-12 19:47:19 +0200760 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
761 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200762 * \return 1 if \p alg is a MAC algorithm based on a block cipher, 0 otherwise.
763 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskinedcd14942018-07-12 00:30:52 +0200764 * algorithm identifier.
765 */
Gilles Peskine8c9def32018-02-08 10:02:12 +0100766#define PSA_ALG_IS_CIPHER_MAC(alg) \
767 (((alg) & (PSA_ALG_CATEGORY_MASK | PSA_ALG_MAC_SUBCATEGORY_MASK)) == \
768 PSA_ALG_CIPHER_MAC_BASE)
Gilles Peskine98f0a242018-02-06 18:57:29 +0100769
Gilles Peskine8c9def32018-02-08 10:02:12 +0100770#define PSA_ALG_CIPHER_SUBCATEGORY_MASK ((psa_algorithm_t)0x00c00000)
Gilles Peskine428dc5a2018-03-03 21:27:18 +0100771#define PSA_ALG_BLOCK_CIPHER_BASE ((psa_algorithm_t)0x04000000)
Gilles Peskine8c9def32018-02-08 10:02:12 +0100772#define PSA_ALG_BLOCK_CIPHER_MODE_MASK ((psa_algorithm_t)0x000000ff)
Gilles Peskine428dc5a2018-03-03 21:27:18 +0100773#define PSA_ALG_BLOCK_CIPHER_PADDING_MASK ((psa_algorithm_t)0x003f0000)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200774
775/** Use a block cipher mode without padding.
776 *
777 * This padding mode may only be used with messages whose lengths are a
778 * whole number of blocks for the chosen block cipher.
779 */
Gilles Peskine428dc5a2018-03-03 21:27:18 +0100780#define PSA_ALG_BLOCK_CIPHER_PAD_NONE ((psa_algorithm_t)0x00000000)
Gilles Peskinedda3bd32018-07-12 19:40:46 +0200781
Gilles Peskine98f0a242018-02-06 18:57:29 +0100782#define PSA_ALG_BLOCK_CIPHER_PAD_PKCS7 ((psa_algorithm_t)0x00010000)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200783
784/** Whether the specified algorithm is a block cipher.
785 *
786 * A block cipher is a symmetric cipher that encrypts or decrypts messages
787 * by chopping them into fixed-size blocks. Processing a message requires
788 * applying a _padding mode_ to transform the message into one whose
789 * length is a whole number of blocks. To construct an algorithm
790 * identifier for a block cipher, apply a bitwise-or between the block
791 * cipher mode and the padding mode. For example, CBC with PKCS#7 padding
792 * is `PSA_ALG_CBC_BASE | PSA_ALG_BLOCK_CIPHER_PAD_PKCS7`.
793 *
794 * The transformation applied to each block is determined by the key type.
795 * For example, to use AES-128-CBC-PKCS7, use the algorithm above with
796 * a key of type #PSA_KEY_TYPE_AES and a length of 128 bits (16 bytes).
797 *
798 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
799 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200800 * \return 1 if \p alg is a block cipher algorithm, 0 otherwise.
801 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskinedcd14942018-07-12 00:30:52 +0200802 * algorithm identifier or if it is not a symmetric cipher algorithm.
803 */
Gilles Peskine8c9def32018-02-08 10:02:12 +0100804#define PSA_ALG_IS_BLOCK_CIPHER(alg) \
805 (((alg) & (PSA_ALG_CATEGORY_MASK | PSA_ALG_CIPHER_SUBCATEGORY_MASK)) == \
806 PSA_ALG_BLOCK_CIPHER_BASE)
807
Gilles Peskinedcd14942018-07-12 00:30:52 +0200808/** The CBC block cipher mode.
809 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100810#define PSA_ALG_CBC_BASE ((psa_algorithm_t)0x04000001)
Gilles Peskine8c9def32018-02-08 10:02:12 +0100811#define PSA_ALG_CFB_BASE ((psa_algorithm_t)0x04000002)
812#define PSA_ALG_OFB_BASE ((psa_algorithm_t)0x04000003)
813#define PSA_ALG_XTS_BASE ((psa_algorithm_t)0x04000004)
Gilles Peskine5d1888e2018-07-12 00:32:42 +0200814
815#define PSA_ALG_STREAM_CIPHER_BASE ((psa_algorithm_t)0x04800000)
Gilles Peskinedda3bd32018-07-12 19:40:46 +0200816
Gilles Peskinedcd14942018-07-12 00:30:52 +0200817/** The CTR stream cipher mode.
818 *
819 * CTR is a stream cipher which is built from a block cipher. The
820 * underlying block cipher is determined by the key type. For example,
821 * to use AES-128-CTR, use this algorithm with
822 * a key of type #PSA_KEY_TYPE_AES and a length of 128 bits (16 bytes).
823 */
Gilles Peskine98f0a242018-02-06 18:57:29 +0100824#define PSA_ALG_CTR ((psa_algorithm_t)0x04800001)
Gilles Peskinedda3bd32018-07-12 19:40:46 +0200825
Gilles Peskinedcd14942018-07-12 00:30:52 +0200826/** The ARC4 stream cipher algorithm.
827 */
Gilles Peskine8c9def32018-02-08 10:02:12 +0100828#define PSA_ALG_ARC4 ((psa_algorithm_t)0x04800002)
Gilles Peskine98f0a242018-02-06 18:57:29 +0100829
Gilles Peskinedcd14942018-07-12 00:30:52 +0200830/** Whether the specified algorithm is a stream cipher.
831 *
832 * A stream cipher is a symmetric cipher that encrypts or decrypts messages
833 * by applying a bitwise-xor with a stream of bytes that is generated
834 * from a key.
835 *
836 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
837 *
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200838 * \return 1 if \p alg is a stream cipher algorithm, 0 otherwise.
839 * This macro may return either 0 or 1 if \p alg is not a supported
Gilles Peskinedcd14942018-07-12 00:30:52 +0200840 * algorithm identifier or if it is not a symmetric cipher algorithm.
841 */
Moran Pekerbed71a22018-04-22 20:19:20 +0300842#define PSA_ALG_IS_STREAM_CIPHER(alg) \
843 (((alg) & (PSA_ALG_CATEGORY_MASK | PSA_ALG_CIPHER_SUBCATEGORY_MASK)) == \
Gilles Peskine5d1888e2018-07-12 00:32:42 +0200844 PSA_ALG_STREAM_CIPHER_BASE)
Moran Pekerbed71a22018-04-22 20:19:20 +0300845
Gilles Peskine8c9def32018-02-08 10:02:12 +0100846#define PSA_ALG_CCM ((psa_algorithm_t)0x06000001)
847#define PSA_ALG_GCM ((psa_algorithm_t)0x06000002)
Gilles Peskine98f0a242018-02-06 18:57:29 +0100848
Gilles Peskine55bf3d12018-06-26 15:53:48 +0200849#define PSA_ALG_RSA_PKCS1V15_SIGN_BASE ((psa_algorithm_t)0x10020000)
850/** RSA PKCS#1 v1.5 signature with hashing.
851 *
852 * This is the signature scheme defined by RFC 8017
853 * (PKCS#1: RSA Cryptography Specifications) under the name
854 * RSASSA-PKCS1-v1_5.
855 *
856 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
Gilles Peskine7256e6c2018-07-12 00:34:26 +0200857 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
Gilles Peskine55bf3d12018-06-26 15:53:48 +0200858 *
859 * \return The corresponding RSA PKCS#1 v1.5 signature algorithm.
860 * \return Unspecified if \p alg is not a supported
861 * hash algorithm.
862 */
Gilles Peskinea5926232018-03-28 14:16:50 +0200863#define PSA_ALG_RSA_PKCS1V15_SIGN(hash_alg) \
Gilles Peskine55bf3d12018-06-26 15:53:48 +0200864 (PSA_ALG_RSA_PKCS1V15_SIGN_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
865/** Raw PKCS#1 v1.5 signature.
866 *
867 * The input to this algorithm is the DigestInfo structure used by
868 * RFC 8017 (PKCS#1: RSA Cryptography Specifications), &sect;9.2
869 * steps 3&ndash;6.
870 */
871#define PSA_ALG_RSA_PKCS1V15_SIGN_RAW PSA_ALG_RSA_PKCS1V15_SIGN_BASE
Gilles Peskinea5926232018-03-28 14:16:50 +0200872#define PSA_ALG_IS_RSA_PKCS1V15_SIGN(alg) \
Gilles Peskine55bf3d12018-06-26 15:53:48 +0200873 (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_RSA_PKCS1V15_SIGN_BASE)
Gilles Peskinedcd14942018-07-12 00:30:52 +0200874
Gilles Peskine55bf3d12018-06-26 15:53:48 +0200875#define PSA_ALG_RSA_PSS_BASE ((psa_algorithm_t)0x10030000)
876/** RSA PSS signature with hashing.
877 *
878 * This is the signature scheme defined by RFC 8017
879 * (PKCS#1: RSA Cryptography Specifications) under the name
Gilles Peskinea4d20bd2018-06-29 23:35:02 +0200880 * RSASSA-PSS, with the message generation function MGF1, and with
881 * a salt length equal to the length of the hash. The specified
Gilles Peskine55bf3d12018-06-26 15:53:48 +0200882 * hash algorithm is used to hash the input message, to create the
883 * salted hash, and for the mask generation.
884 *
885 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
Gilles Peskine7256e6c2018-07-12 00:34:26 +0200886 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
Gilles Peskine55bf3d12018-06-26 15:53:48 +0200887 *
888 * \return The corresponding RSA PSS signature algorithm.
889 * \return Unspecified if \p alg is not a supported
890 * hash algorithm.
891 */
892#define PSA_ALG_RSA_PSS(hash_alg) \
893 (PSA_ALG_RSA_PSS_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
894#define PSA_ALG_IS_RSA_PSS(alg) \
895 (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_RSA_PSS_BASE)
896
Gilles Peskinea81d85b2018-06-26 16:10:23 +0200897#define PSA_ALG_DSA_BASE ((psa_algorithm_t)0x10040000)
898/** DSA signature with hashing.
899 *
900 * This is the signature scheme defined by FIPS 186-4,
901 * with a random per-message secret number (*k*).
902 *
903 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
Gilles Peskine7256e6c2018-07-12 00:34:26 +0200904 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
Gilles Peskinea81d85b2018-06-26 16:10:23 +0200905 *
906 * \return The corresponding DSA signature algorithm.
907 * \return Unspecified if \p alg is not a supported
908 * hash algorithm.
909 */
910#define PSA_ALG_DSA(hash_alg) \
911 (PSA_ALG_DSA_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
912#define PSA_ALG_DETERMINISTIC_DSA_BASE ((psa_algorithm_t)0x10050000)
913#define PSA_ALG_DSA_DETERMINISTIC_FLAG ((psa_algorithm_t)0x00010000)
914#define PSA_ALG_DETERMINISTIC_DSA(hash_alg) \
915 (PSA_ALG_DETERMINISTIC_DSA_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
916#define PSA_ALG_IS_DSA(alg) \
917 (((alg) & ~PSA_ALG_HASH_MASK & ~PSA_ALG_DSA_DETERMINISTIC_FLAG) == \
918 PSA_ALG_DSA_BASE)
919#define PSA_ALG_DSA_IS_DETERMINISTIC(alg) \
920 (((alg) & PSA_ALG_DSA_DETERMINISTIC_FLAG) != 0)
Gilles Peskine55728b02018-07-16 23:08:16 +0200921#define PSA_ALG_IS_DETERMINISTIC_DSA(alg) \
922 (PSA_ALG_IS_DSA(alg) && PSA_ALG_DSA_IS_DETERMINISTIC(alg))
923#define PSA_ALG_IS_RANDOMIZED_DSA(alg) \
924 (PSA_ALG_IS_DSA(alg) && !PSA_ALG_DSA_IS_DETERMINISTIC(alg))
Gilles Peskinea81d85b2018-06-26 16:10:23 +0200925
926#define PSA_ALG_ECDSA_BASE ((psa_algorithm_t)0x10060000)
927/** ECDSA signature with hashing.
928 *
929 * This is the ECDSA signature scheme defined by ANSI X9.62,
930 * with a random per-message secret number (*k*).
931 *
Gilles Peskineeae6eee2018-06-28 13:56:01 +0200932 * The representation of the signature as a byte string consists of
933 * the concatentation of the signature values *r* and *s*. Each of
934 * *r* and *s* is encoded as an *N*-octet string, where *N* is the length
935 * of the base point of the curve in octets. Each value is represented
936 * in big-endian order (most significant octet first).
937 *
Gilles Peskinea81d85b2018-06-26 16:10:23 +0200938 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
Gilles Peskine7256e6c2018-07-12 00:34:26 +0200939 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
Gilles Peskinea81d85b2018-06-26 16:10:23 +0200940 *
941 * \return The corresponding ECDSA signature algorithm.
942 * \return Unspecified if \p alg is not a supported
943 * hash algorithm.
944 */
945#define PSA_ALG_ECDSA(hash_alg) \
946 (PSA_ALG_ECDSA_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
947/** ECDSA signature without hashing.
948 *
Gilles Peskineeae6eee2018-06-28 13:56:01 +0200949 * This is the same signature scheme as #PSA_ALG_ECDSA(), but
Gilles Peskinea81d85b2018-06-26 16:10:23 +0200950 * without specifying a hash algorithm. This algorithm may only be
951 * used to sign or verify a sequence of bytes that should be an
952 * already-calculated hash. Note that the input is padded with
953 * zeros on the left or truncated on the left as required to fit
954 * the curve size.
955 */
956#define PSA_ALG_ECDSA_ANY PSA_ALG_ECDSA_BASE
957#define PSA_ALG_DETERMINISTIC_ECDSA_BASE ((psa_algorithm_t)0x10070000)
958/** Deterministic ECDSA signature with hashing.
959 *
960 * This is the deterministic ECDSA signature scheme defined by RFC 6979.
961 *
Gilles Peskineeae6eee2018-06-28 13:56:01 +0200962 * The representation of a signature is the same as with #PSA_ALG_ECDSA().
963 *
Gilles Peskinea81d85b2018-06-26 16:10:23 +0200964 * Note that when this algorithm is used for verification, signatures
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200965 * made with randomized ECDSA (#PSA_ALG_ECDSA(\p hash_alg)) with the
Gilles Peskinea81d85b2018-06-26 16:10:23 +0200966 * same private key are accepted. In other words,
Gilles Peskinefa4070c2018-07-12 19:23:03 +0200967 * #PSA_ALG_DETERMINISTIC_ECDSA(\p hash_alg) differs from
968 * #PSA_ALG_ECDSA(\p hash_alg) only for signature, not for verification.
Gilles Peskinea81d85b2018-06-26 16:10:23 +0200969 *
970 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
Gilles Peskine7256e6c2018-07-12 00:34:26 +0200971 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
Gilles Peskinea81d85b2018-06-26 16:10:23 +0200972 *
973 * \return The corresponding deterministic ECDSA signature
974 * algorithm.
975 * \return Unspecified if \p alg is not a supported
976 * hash algorithm.
977 */
978#define PSA_ALG_DETERMINISTIC_ECDSA(hash_alg) \
979 (PSA_ALG_DETERMINISTIC_ECDSA_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
980#define PSA_ALG_IS_ECDSA(alg) \
981 (((alg) & ~PSA_ALG_HASH_MASK & ~PSA_ALG_DSA_DETERMINISTIC_FLAG) == \
982 PSA_ALG_ECDSA_BASE)
983#define PSA_ALG_ECDSA_IS_DETERMINISTIC(alg) \
984 (((alg) & PSA_ALG_DSA_DETERMINISTIC_FLAG) != 0)
Gilles Peskine55728b02018-07-16 23:08:16 +0200985#define PSA_ALG_IS_DETERMINISTIC_ECDSA(alg) \
986 (PSA_ALG_IS_ECDSA(alg) && PSA_ALG_ECDSA_IS_DETERMINISTIC(alg))
987#define PSA_ALG_IS_RANDOMIZED_ECDSA(alg) \
988 (PSA_ALG_IS_ECDSA(alg) && !PSA_ALG_ECDSA_IS_DETERMINISTIC(alg))
Gilles Peskinea81d85b2018-06-26 16:10:23 +0200989
Gilles Peskine7ed29c52018-06-26 15:50:08 +0200990/** Get the hash used by a hash-and-sign signature algorithm.
991 *
992 * A hash-and-sign algorithm is a signature algorithm which is
993 * composed of two phases: first a hashing phase which does not use
994 * the key and produces a hash of the input message, then a signing
995 * phase which only uses the hash and the key and not the message
996 * itself.
997 *
998 * \param alg A signature algorithm (\c PSA_ALG_XXX value such that
Gilles Peskine7256e6c2018-07-12 00:34:26 +0200999 * #PSA_ALG_IS_SIGN(\p alg) is true).
Gilles Peskine7ed29c52018-06-26 15:50:08 +02001000 *
1001 * \return The underlying hash algorithm if \p alg is a hash-and-sign
1002 * algorithm.
1003 * \return 0 if \p alg is a signature algorithm that does not
1004 * follow the hash-and-sign structure.
1005 * \return Unspecified if \p alg is not a signature algorithm or
1006 * if it is not supported by the implementation.
1007 */
1008#define PSA_ALG_SIGN_GET_HASH(alg) \
Gilles Peskinea81d85b2018-06-26 16:10:23 +02001009 (PSA_ALG_IS_RSA_PSS(alg) || PSA_ALG_IS_RSA_PKCS1V15_SIGN(alg) || \
1010 PSA_ALG_IS_DSA(alg) || PSA_ALG_IS_ECDSA(alg) ? \
Gilles Peskine54622ae2018-06-29 22:24:24 +02001011 ((alg) & PSA_ALG_HASH_MASK) == 0 ? /*"raw" algorithm*/ 0 : \
Gilles Peskine7ed29c52018-06-26 15:50:08 +02001012 ((alg) & PSA_ALG_HASH_MASK) | PSA_ALG_CATEGORY_HASH : \
1013 0)
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +01001014
Gilles Peskinedcd14942018-07-12 00:30:52 +02001015/** RSA PKCS#1 v1.5 encryption.
1016 */
Gilles Peskine55bf3d12018-06-26 15:53:48 +02001017#define PSA_ALG_RSA_PKCS1V15_CRYPT ((psa_algorithm_t)0x12020000)
Gilles Peskinedcd14942018-07-12 00:30:52 +02001018
Gilles Peskine55bf3d12018-06-26 15:53:48 +02001019#define PSA_ALG_RSA_OAEP_BASE ((psa_algorithm_t)0x12030000)
Gilles Peskinedcd14942018-07-12 00:30:52 +02001020/** RSA OAEP encryption.
1021 *
1022 * This is the encryption scheme defined by RFC 8017
1023 * (PKCS#1: RSA Cryptography Specifications) under the name
1024 * RSAES-OAEP, with the message generation function MGF1.
1025 *
1026 * \param hash_alg The hash algorithm (\c PSA_ALG_XXX value such that
1027 * #PSA_ALG_IS_HASH(\p hash_alg) is true) to use
1028 * for MGF1.
1029 *
1030 * \return The corresponding RSA OAEP signature algorithm.
1031 * \return Unspecified if \p alg is not a supported
1032 * hash algorithm.
1033 */
Gilles Peskine55bf3d12018-06-26 15:53:48 +02001034#define PSA_ALG_RSA_OAEP(hash_alg) \
1035 (PSA_ALG_RSA_OAEP_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
1036#define PSA_ALG_IS_RSA_OAEP(alg) \
1037 (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_RSA_OAEP_BASE)
Gilles Peskine072ac562018-06-30 00:21:29 +02001038#define PSA_ALG_RSA_OAEP_GET_HASH(alg) \
1039 (PSA_ALG_IS_RSA_OAEP(alg) ? \
1040 ((alg) & PSA_ALG_HASH_MASK) | PSA_ALG_CATEGORY_HASH : \
1041 0)
Gilles Peskined1e8e412018-06-07 09:49:39 +02001042
Gilles Peskinebef7f142018-07-12 17:22:21 +02001043#define PSA_ALG_HKDF_BASE ((psa_algorithm_t)0x30000100)
1044/** Macro to build an HKDF algorithm.
1045 *
1046 * For example, `PSA_ALG_HKDF(PSA_ALG_SHA256)` is HKDF using HMAC-SHA-256.
1047 *
1048 * \param hash_alg A hash algorithm (\c PSA_ALG_XXX value such that
1049 * #PSA_ALG_IS_HASH(\p hash_alg) is true).
1050 *
1051 * \return The corresponding HKDF algorithm.
1052 * \return Unspecified if \p alg is not a supported
1053 * hash algorithm.
1054 */
1055#define PSA_ALG_HKDF(hash_alg) \
1056 (PSA_ALG_HKDF_BASE | ((hash_alg) & PSA_ALG_HASH_MASK))
1057/** Whether the specified algorithm is an HKDF algorithm.
1058 *
1059 * HKDF is a family of key derivation algorithms that are based on a hash
1060 * function and the HMAC construction.
1061 *
1062 * \param alg An algorithm identifier (value of type #psa_algorithm_t).
1063 *
1064 * \return 1 if \c alg is an HKDF algorithm, 0 otherwise.
1065 * This macro may return either 0 or 1 if \c alg is not a supported
1066 * key derivation algorithm identifier.
1067 */
1068#define PSA_ALG_IS_HKDF(alg) \
1069 (((alg) & ~PSA_ALG_HASH_MASK) == PSA_ALG_HKDF_BASE)
1070#define PSA_ALG_HKDF_GET_HASH(hkdf_alg) \
1071 (PSA_ALG_CATEGORY_HASH | ((hkdf_alg) & PSA_ALG_HASH_MASK))
1072
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +01001073/**@}*/
1074
1075/** \defgroup key_management Key management
1076 * @{
1077 */
1078
1079/**
1080 * \brief Import a key in binary format.
1081 *
Gilles Peskinef5b9fa12018-03-07 16:40:18 +01001082 * This function supports any output from psa_export_key(). Refer to the
1083 * documentation of psa_export_key() for the format for each key type.
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +01001084 *
Gilles Peskine308b91d2018-02-08 09:47:44 +01001085 * \param key Slot where the key will be stored. This must be a
1086 * valid slot for a key of the chosen type. It must
1087 * be unoccupied.
1088 * \param type Key type (a \c PSA_KEY_TYPE_XXX value).
Gilles Peskineedd11a12018-07-12 01:08:58 +02001089 * \param[in] data Buffer containing the key data.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001090 * \param data_length Size of the \p data buffer in bytes.
Gilles Peskine308b91d2018-02-08 09:47:44 +01001091 *
Gilles Peskine28538492018-07-11 17:34:00 +02001092 * \retval #PSA_SUCCESS
Gilles Peskine308b91d2018-02-08 09:47:44 +01001093 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02001094 * \retval #PSA_ERROR_NOT_SUPPORTED
Gilles Peskine65eb8582018-04-19 08:28:58 +02001095 * The key type or key size is not supported, either by the
1096 * implementation in general or in this particular slot.
Gilles Peskine28538492018-07-11 17:34:00 +02001097 * \retval #PSA_ERROR_INVALID_ARGUMENT
Gilles Peskine308b91d2018-02-08 09:47:44 +01001098 * The key slot is invalid,
1099 * or the key data is not correctly formatted.
Gilles Peskine28538492018-07-11 17:34:00 +02001100 * \retval #PSA_ERROR_OCCUPIED_SLOT
Gilles Peskine65eb8582018-04-19 08:28:58 +02001101 * There is already a key in the specified slot.
Gilles Peskine28538492018-07-11 17:34:00 +02001102 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1103 * \retval #PSA_ERROR_INSUFFICIENT_STORAGE
1104 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1105 * \retval #PSA_ERROR_HARDWARE_FAILURE
1106 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +01001107 */
1108psa_status_t psa_import_key(psa_key_slot_t key,
1109 psa_key_type_t type,
1110 const uint8_t *data,
1111 size_t data_length);
1112
1113/**
Gilles Peskine154bd952018-04-19 08:38:16 +02001114 * \brief Destroy a key and restore the slot to its default state.
1115 *
1116 * This function destroys the content of the key slot from both volatile
1117 * memory and, if applicable, non-volatile storage. Implementations shall
1118 * make a best effort to ensure that any previous content of the slot is
1119 * unrecoverable.
1120 *
1121 * This function also erases any metadata such as policies. It returns the
1122 * specified slot to its default state.
1123 *
1124 * \param key The key slot to erase.
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +01001125 *
Gilles Peskine28538492018-07-11 17:34:00 +02001126 * \retval #PSA_SUCCESS
Gilles Peskine65eb8582018-04-19 08:28:58 +02001127 * The slot's content, if any, has been erased.
Gilles Peskine28538492018-07-11 17:34:00 +02001128 * \retval #PSA_ERROR_NOT_PERMITTED
Gilles Peskine65eb8582018-04-19 08:28:58 +02001129 * The slot holds content and cannot be erased because it is
1130 * read-only, either due to a policy or due to physical restrictions.
Gilles Peskine28538492018-07-11 17:34:00 +02001131 * \retval #PSA_ERROR_INVALID_ARGUMENT
Gilles Peskine65eb8582018-04-19 08:28:58 +02001132 * The specified slot number does not designate a valid slot.
Gilles Peskine28538492018-07-11 17:34:00 +02001133 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
Gilles Peskine65eb8582018-04-19 08:28:58 +02001134 * There was an failure in communication with the cryptoprocessor.
1135 * The key material may still be present in the cryptoprocessor.
Gilles Peskine28538492018-07-11 17:34:00 +02001136 * \retval #PSA_ERROR_STORAGE_FAILURE
Gilles Peskine65eb8582018-04-19 08:28:58 +02001137 * The storage is corrupted. Implementations shall make a best effort
1138 * to erase key material even in this stage, however applications
1139 * should be aware that it may be impossible to guarantee that the
1140 * key material is not recoverable in such cases.
Gilles Peskine28538492018-07-11 17:34:00 +02001141 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine65eb8582018-04-19 08:28:58 +02001142 * An unexpected condition which is not a storage corruption or
1143 * a communication failure occurred. The cryptoprocessor may have
1144 * been compromised.
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +01001145 */
1146psa_status_t psa_destroy_key(psa_key_slot_t key);
1147
1148/**
1149 * \brief Get basic metadata about a key.
1150 *
Gilles Peskine308b91d2018-02-08 09:47:44 +01001151 * \param key Slot whose content is queried. This must
1152 * be an occupied key slot.
Gilles Peskineedd11a12018-07-12 01:08:58 +02001153 * \param[out] type On success, the key type (a \c PSA_KEY_TYPE_XXX value).
Gilles Peskine308b91d2018-02-08 09:47:44 +01001154 * This may be a null pointer, in which case the key type
1155 * is not written.
Gilles Peskineedd11a12018-07-12 01:08:58 +02001156 * \param[out] bits On success, the key size in bits.
Gilles Peskine9a1ba0d2018-03-21 20:49:16 +01001157 * This may be a null pointer, in which case the key size
Gilles Peskine308b91d2018-02-08 09:47:44 +01001158 * is not written.
1159 *
Gilles Peskine28538492018-07-11 17:34:00 +02001160 * \retval #PSA_SUCCESS
1161 * \retval #PSA_ERROR_EMPTY_SLOT
1162 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1163 * \retval #PSA_ERROR_HARDWARE_FAILURE
1164 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +01001165 */
1166psa_status_t psa_get_key_information(psa_key_slot_t key,
1167 psa_key_type_t *type,
1168 size_t *bits);
1169
1170/**
1171 * \brief Export a key in binary format.
1172 *
1173 * The output of this function can be passed to psa_import_key() to
1174 * create an equivalent object.
1175 *
1176 * If a key is created with psa_import_key() and then exported with
1177 * this function, it is not guaranteed that the resulting data is
1178 * identical: the implementation may choose a different representation
Gilles Peskine92b30732018-03-03 21:29:30 +01001179 * of the same key if the format permits it.
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +01001180 *
Gilles Peskine308b91d2018-02-08 09:47:44 +01001181 * For standard key types, the output format is as follows:
1182 *
1183 * - For symmetric keys (including MAC keys), the format is the
1184 * raw bytes of the key.
1185 * - For DES, the key data consists of 8 bytes. The parity bits must be
1186 * correct.
1187 * - For Triple-DES, the format is the concatenation of the
1188 * two or three DES keys.
Gilles Peskine92b30732018-03-03 21:29:30 +01001189 * - For RSA key pairs (#PSA_KEY_TYPE_RSA_KEYPAIR), the format
Gilles Peskine4e1e9be2018-08-10 18:57:40 +02001190 * is the non-encrypted DER encoding of the representation defined by
1191 * PKCS\#1 (RFC 8017) as `RSAPrivateKey`, version 0.
1192 * ```
1193 * RSAPrivateKey ::= SEQUENCE {
1194 * version Version, -- 0
1195 * modulus INTEGER, -- n
1196 * publicExponent INTEGER, -- e
1197 * privateExponent INTEGER, -- d
1198 * prime1 INTEGER, -- p
1199 * prime2 INTEGER, -- q
1200 * exponent1 INTEGER, -- d mod (p-1)
1201 * exponent2 INTEGER, -- d mod (q-1)
1202 * coefficient INTEGER, -- (inverse of q) mod p
1203 * }
1204 * ```
1205 * - For DSA private keys (#PSA_KEY_TYPE_DSA_KEYPAIR), the format
1206 * is the non-encrypted DER encoding of the representation used by
1207 * OpenSSL and OpenSSH, which the following ASN.1 structure:
1208 * ```
1209 * DSAPrivateKey ::= SEQUENCE {
1210 * version Version, -- 0
1211 * prime INTEGER, -- p
1212 * subprime INTEGER, -- q
1213 * generator INTEGER, -- g
1214 * public INTEGER, -- y
1215 * private INTEGER, -- x
1216 * }
1217 * ```
1218 * - For elliptic curve key pairs (key types for which
1219 * #PSA_KEY_TYPE_IS_ECC_KEYPAIR is true), the format is the
1220 * non-encrypted DER encoding of the representation defined by RFC 5915 as
1221 * `ECPrivateKey`, version 1.
1222 * ```
1223 * ECPrivateKey ::= SEQUENCE {
1224 * version INTEGER, -- must be 1
1225 * privateKey OCTET STRING,
1226 * -- `ceiling(log_{256}(n))`-byte string, big endian,
1227 * -- where n is the order of the curve.
1228 * parameters ECParameters {{ NamedCurve }}, -- mandatory
1229 * publicKey BIT STRING -- mandatory
1230 * }
1231 * ```
1232 * - For public keys (key types for which #PSA_KEY_TYPE_IS_PUBLIC_KEY is
1233 * true), the format is the same as for psa_export_public_key().
Gilles Peskine308b91d2018-02-08 09:47:44 +01001234 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02001235 * \param key Slot whose content is to be exported. This must
1236 * be an occupied key slot.
1237 * \param[out] data Buffer where the key data is to be written.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001238 * \param data_size Size of the \p data buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02001239 * \param[out] data_length On success, the number of bytes
1240 * that make up the key data.
Gilles Peskine308b91d2018-02-08 09:47:44 +01001241 *
Gilles Peskine28538492018-07-11 17:34:00 +02001242 * \retval #PSA_SUCCESS
1243 * \retval #PSA_ERROR_EMPTY_SLOT
1244 * \retval #PSA_ERROR_NOT_PERMITTED
Darryl Green9e2d7a02018-07-24 16:33:30 +01001245 * \retval #PSA_ERROR_NOT_SUPPORTED
Gilles Peskine1be949b2018-08-10 19:06:59 +02001246 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
1247 * The size of the \p data buffer is too small. You can determine a
1248 * sufficient buffer size by calling
1249 * #PSA_KEY_EXPORT_MAX_SIZE(\c type, \c bits)
1250 * where \c type is the key type
1251 * and \c bits is the key size in bits.
Gilles Peskine28538492018-07-11 17:34:00 +02001252 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1253 * \retval #PSA_ERROR_HARDWARE_FAILURE
1254 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +01001255 */
1256psa_status_t psa_export_key(psa_key_slot_t key,
1257 uint8_t *data,
1258 size_t data_size,
1259 size_t *data_length);
1260
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001261/**
1262 * \brief Export a public key or the public part of a key pair in binary format.
1263 *
1264 * The output of this function can be passed to psa_import_key() to
1265 * create an object that is equivalent to the public key.
1266 *
Gilles Peskine4e1e9be2018-08-10 18:57:40 +02001267 * The format is the DER representation defined by RFC 5280 as
1268 * `SubjectPublicKeyInfo`, with the `subjectPublicKey` format
1269 * specified below.
1270 * ```
1271 * SubjectPublicKeyInfo ::= SEQUENCE {
1272 * algorithm AlgorithmIdentifier,
1273 * subjectPublicKey BIT STRING }
1274 * AlgorithmIdentifier ::= SEQUENCE {
1275 * algorithm OBJECT IDENTIFIER,
1276 * parameters ANY DEFINED BY algorithm OPTIONAL }
1277 * ```
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001278 *
Gilles Peskine4e1e9be2018-08-10 18:57:40 +02001279 * - For RSA public keys (#PSA_KEY_TYPE_RSA_PUBLIC_KEY),
1280 * the `subjectPublicKey` format is defined by RFC 3279 &sect;2.3.1 as
1281 * `RSAPublicKey`,
1282 * with the OID `rsaEncryption`,
1283 * and with the parameters `NULL`.
1284 * ```
1285 * pkcs-1 OBJECT IDENTIFIER ::= { iso(1) member-body(2) us(840)
1286 * rsadsi(113549) pkcs(1) 1 }
1287 * rsaEncryption OBJECT IDENTIFIER ::= { pkcs-1 1 }
1288 *
1289 * RSAPublicKey ::= SEQUENCE {
1290 * modulus INTEGER, -- n
1291 * publicExponent INTEGER } -- e
1292 * ```
1293 * - For DSA public keys (#PSA_KEY_TYPE_DSA_PUBLIC_KEY),
1294 * the `subjectPublicKey` format is defined by RFC 3279 &sect;2.3.2 as
1295 * `DSAPublicKey`,
1296 * with the OID `id-dsa`,
1297 * and with the parameters `DSS-Parms`.
1298 * ```
1299 * id-dsa OBJECT IDENTIFIER ::= {
1300 * iso(1) member-body(2) us(840) x9-57(10040) x9cm(4) 1 }
1301 *
1302 * Dss-Parms ::= SEQUENCE {
1303 * p INTEGER,
1304 * q INTEGER,
1305 * g INTEGER }
1306 * DSAPublicKey ::= INTEGER -- public key, Y
1307 * ```
1308 * - For elliptic curve public keys (key types for which
1309 * #PSA_KEY_TYPE_IS_ECC_PUBLIC_KEY is true),
1310 * the `subjectPublicKey` format is defined by RFC 3279 &sect;2.3.5 as
1311 * `ECPoint`, which is an OCTET STRING containing the uncompressed
1312 * representation defined by SEC1 &sect;2.3.3.
1313 * The OID is `id-ecPublicKey`,
1314 * and the parameters must be given as a `namedCurve`.
1315 * ```
1316 * ansi-X9-62 OBJECT IDENTIFIER ::=
1317 * { iso(1) member-body(2) us(840) 10045 }
1318 * id-public-key-type OBJECT IDENTIFIER ::= { ansi-X9.62 2 }
1319 * id-ecPublicKey OBJECT IDENTIFIER ::= { id-publicKeyType 1 }
1320 *
1321 * ECPoint ::= OCTET STRING
1322 * -- first byte: 0x04;
1323 * -- then x_P as a `ceiling(log_{256}(n))`-byte string, big endian;
1324 * -- then y_P as a `ceiling(log_{256}(n))`-byte string, big endian,
1325 * -- where n is the order of the curve.
1326 *
1327 * EcpkParameters ::= CHOICE { -- other choices are not allowed
1328 * namedCurve OBJECT IDENTIFIER }
1329 * ```
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001330 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02001331 * \param key Slot whose content is to be exported. This must
1332 * be an occupied key slot.
1333 * \param[out] data Buffer where the key data is to be written.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001334 * \param data_size Size of the \p data buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02001335 * \param[out] data_length On success, the number of bytes
1336 * that make up the key data.
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001337 *
Gilles Peskine28538492018-07-11 17:34:00 +02001338 * \retval #PSA_SUCCESS
1339 * \retval #PSA_ERROR_EMPTY_SLOT
1340 * \retval #PSA_ERROR_INVALID_ARGUMENT
Gilles Peskine1be949b2018-08-10 19:06:59 +02001341 * The key is neither a public key nor a key pair.
1342 * \retval #PSA_ERROR_NOT_SUPPORTED
1343 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
1344 * The size of the \p data buffer is too small. You can determine a
1345 * sufficient buffer size by calling
1346 * #PSA_KEY_EXPORT_MAX_SIZE(#PSA_KEY_TYPE_PUBLIC_KEY_OF_KEYPAIR(\c type), \c bits)
1347 * where \c type is the key type
1348 * and \c bits is the key size in bits.
Gilles Peskine28538492018-07-11 17:34:00 +02001349 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1350 * \retval #PSA_ERROR_HARDWARE_FAILURE
1351 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001352 */
1353psa_status_t psa_export_public_key(psa_key_slot_t key,
1354 uint8_t *data,
1355 size_t data_size,
1356 size_t *data_length);
1357
1358/**@}*/
1359
1360/** \defgroup policy Key policies
1361 * @{
1362 */
1363
1364/** \brief Encoding of permitted usage on a key. */
1365typedef uint32_t psa_key_usage_t;
1366
Gilles Peskine7e198532018-03-08 07:50:30 +01001367/** Whether the key may be exported.
1368 *
1369 * A public key or the public part of a key pair may always be exported
1370 * regardless of the value of this permission flag.
1371 *
1372 * If a key does not have export permission, implementations shall not
1373 * allow the key to be exported in plain form from the cryptoprocessor,
1374 * whether through psa_export_key() or through a proprietary interface.
1375 * The key may however be exportable in a wrapped form, i.e. in a form
1376 * where it is encrypted by another key.
1377 */
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001378#define PSA_KEY_USAGE_EXPORT ((psa_key_usage_t)0x00000001)
1379
Gilles Peskine7e198532018-03-08 07:50:30 +01001380/** Whether the key may be used to encrypt a message.
1381 *
Gilles Peskinedcd14942018-07-12 00:30:52 +02001382 * This flag allows the key to be used for a symmetric encryption operation,
1383 * for an AEAD encryption-and-authentication operation,
1384 * or for an asymmetric encryption operation,
1385 * if otherwise permitted by the key's type and policy.
1386 *
Gilles Peskine7e198532018-03-08 07:50:30 +01001387 * For a key pair, this concerns the public key.
1388 */
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001389#define PSA_KEY_USAGE_ENCRYPT ((psa_key_usage_t)0x00000100)
Gilles Peskine7e198532018-03-08 07:50:30 +01001390
1391/** Whether the key may be used to decrypt a message.
1392 *
Gilles Peskinedcd14942018-07-12 00:30:52 +02001393 * This flag allows the key to be used for a symmetric decryption operation,
1394 * for an AEAD decryption-and-verification operation,
1395 * or for an asymmetric decryption operation,
1396 * if otherwise permitted by the key's type and policy.
1397 *
Gilles Peskine7e198532018-03-08 07:50:30 +01001398 * For a key pair, this concerns the private key.
1399 */
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001400#define PSA_KEY_USAGE_DECRYPT ((psa_key_usage_t)0x00000200)
Gilles Peskine7e198532018-03-08 07:50:30 +01001401
1402/** Whether the key may be used to sign a message.
1403 *
Gilles Peskinedcd14942018-07-12 00:30:52 +02001404 * This flag allows the key to be used for a MAC calculation operation
1405 * or for an asymmetric signature operation,
1406 * if otherwise permitted by the key's type and policy.
1407 *
Gilles Peskine7e198532018-03-08 07:50:30 +01001408 * For a key pair, this concerns the private key.
1409 */
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001410#define PSA_KEY_USAGE_SIGN ((psa_key_usage_t)0x00000400)
Gilles Peskine7e198532018-03-08 07:50:30 +01001411
1412/** Whether the key may be used to verify a message signature.
1413 *
Gilles Peskinedcd14942018-07-12 00:30:52 +02001414 * This flag allows the key to be used for a MAC verification operation
1415 * or for an asymmetric signature verification operation,
1416 * if otherwise permitted by by the key's type and policy.
1417 *
Gilles Peskine7e198532018-03-08 07:50:30 +01001418 * For a key pair, this concerns the public key.
1419 */
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001420#define PSA_KEY_USAGE_VERIFY ((psa_key_usage_t)0x00000800)
1421
Gilles Peskineea0fb492018-07-12 17:17:20 +02001422/** Whether the key may be used to derive other keys.
1423 */
1424#define PSA_KEY_USAGE_DERIVE ((psa_key_usage_t)0x00001000)
1425
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001426/** The type of the key policy data structure.
1427 *
1428 * This is an implementation-defined \c struct. Applications should not
1429 * make any assumptions about the content of this structure except
1430 * as directed by the documentation of a specific implementation. */
1431typedef struct psa_key_policy_s psa_key_policy_t;
1432
1433/** \brief Initialize a key policy structure to a default that forbids all
Gilles Peskine6ac73a92018-07-12 19:47:19 +02001434 * usage of the key.
1435 *
1436 * \param[out] policy The policy object to initialize.
1437 */
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001438void psa_key_policy_init(psa_key_policy_t *policy);
1439
Gilles Peskine7e198532018-03-08 07:50:30 +01001440/** \brief Set the standard fields of a policy structure.
1441 *
1442 * Note that this function does not make any consistency check of the
1443 * parameters. The values are only checked when applying the policy to
1444 * a key slot with psa_set_key_policy().
Gilles Peskine6ac73a92018-07-12 19:47:19 +02001445 *
1446 * \param[out] policy The policy object to modify.
1447 * \param usage The permitted uses for the key.
1448 * \param alg The algorithm that the key may be used for.
Gilles Peskine7e198532018-03-08 07:50:30 +01001449 */
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001450void psa_key_policy_set_usage(psa_key_policy_t *policy,
1451 psa_key_usage_t usage,
1452 psa_algorithm_t alg);
1453
Gilles Peskine6ac73a92018-07-12 19:47:19 +02001454/** \brief Retrieve the usage field of a policy structure.
1455 *
1456 * \param[in] policy The policy object to query.
1457 *
1458 * \return The permitted uses for a key with this policy.
1459 */
Gilles Peskineaa7bc472018-07-12 00:54:56 +02001460psa_key_usage_t psa_key_policy_get_usage(const psa_key_policy_t *policy);
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001461
Gilles Peskine6ac73a92018-07-12 19:47:19 +02001462/** \brief Retrieve the algorithm field of a policy structure.
1463 *
1464 * \param[in] policy The policy object to query.
1465 *
1466 * \return The permitted algorithm for a key with this policy.
1467 */
Gilles Peskineaa7bc472018-07-12 00:54:56 +02001468psa_algorithm_t psa_key_policy_get_algorithm(const psa_key_policy_t *policy);
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001469
1470/** \brief Set the usage policy on a key slot.
1471 *
1472 * This function must be called on an empty key slot, before importing,
1473 * generating or creating a key in the slot. Changing the policy of an
1474 * existing key is not permitted.
Gilles Peskine7e198532018-03-08 07:50:30 +01001475 *
1476 * Implementations may set restrictions on supported key policies
1477 * depending on the key type and the key slot.
Gilles Peskine6ac73a92018-07-12 19:47:19 +02001478 *
1479 * \param key The key slot whose policy is to be changed.
1480 * \param[in] policy The policy object to query.
1481 *
1482 * \retval #PSA_SUCCESS
1483 * \retval #PSA_ERROR_OCCUPIED_SLOT
1484 * \retval #PSA_ERROR_NOT_SUPPORTED
1485 * \retval #PSA_ERROR_INVALID_ARGUMENT
1486 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1487 * \retval #PSA_ERROR_HARDWARE_FAILURE
1488 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001489 */
1490psa_status_t psa_set_key_policy(psa_key_slot_t key,
1491 const psa_key_policy_t *policy);
1492
Gilles Peskine7e198532018-03-08 07:50:30 +01001493/** \brief Get the usage policy for a key slot.
Gilles Peskine6ac73a92018-07-12 19:47:19 +02001494 *
1495 * \param key The key slot whose policy is being queried.
1496 * \param[out] policy On success, the key's policy.
1497 *
1498 * \retval #PSA_SUCCESS
1499 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1500 * \retval #PSA_ERROR_HARDWARE_FAILURE
1501 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine7e198532018-03-08 07:50:30 +01001502 */
Gilles Peskine7698bcf2018-03-03 21:30:44 +01001503psa_status_t psa_get_key_policy(psa_key_slot_t key,
1504 psa_key_policy_t *policy);
Gilles Peskine20035e32018-02-03 22:44:14 +01001505
1506/**@}*/
1507
Gilles Peskine609b6a52018-03-03 21:31:50 +01001508/** \defgroup persistence Key lifetime
1509 * @{
1510 */
1511
1512/** Encoding of key lifetimes.
1513 */
1514typedef uint32_t psa_key_lifetime_t;
1515
1516/** A volatile key slot retains its content as long as the application is
1517 * running. It is guaranteed to be erased on a power reset.
1518 */
1519#define PSA_KEY_LIFETIME_VOLATILE ((psa_key_lifetime_t)0x00000000)
1520
1521/** A persistent key slot retains its content as long as it is not explicitly
1522 * destroyed.
1523 */
1524#define PSA_KEY_LIFETIME_PERSISTENT ((psa_key_lifetime_t)0x00000001)
1525
1526/** A write-once key slot may not be modified once a key has been set.
1527 * It will retain its content as long as the device remains operational.
1528 */
1529#define PSA_KEY_LIFETIME_WRITE_ONCE ((psa_key_lifetime_t)0x7fffffff)
1530
Gilles Peskined393e182018-03-08 07:49:16 +01001531/** \brief Retrieve the lifetime of a key slot.
1532 *
1533 * The assignment of lifetimes to slots is implementation-dependent.
Gilles Peskine8ca56022018-04-17 14:07:59 +02001534 *
Gilles Peskine9bb53d72018-04-17 14:09:24 +02001535 * \param key Slot to query.
Gilles Peskineedd11a12018-07-12 01:08:58 +02001536 * \param[out] lifetime On success, the lifetime value.
Gilles Peskine8ca56022018-04-17 14:07:59 +02001537 *
Gilles Peskine28538492018-07-11 17:34:00 +02001538 * \retval #PSA_SUCCESS
mohammad1603804cd712018-03-20 22:44:08 +02001539 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02001540 * \retval #PSA_ERROR_INVALID_ARGUMENT
mohammad1603a7d245a2018-04-17 00:40:08 -07001541 * The key slot is invalid.
Gilles Peskine28538492018-07-11 17:34:00 +02001542 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1543 * \retval #PSA_ERROR_HARDWARE_FAILURE
1544 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskined393e182018-03-08 07:49:16 +01001545 */
Gilles Peskine609b6a52018-03-03 21:31:50 +01001546psa_status_t psa_get_key_lifetime(psa_key_slot_t key,
1547 psa_key_lifetime_t *lifetime);
1548
Gilles Peskined393e182018-03-08 07:49:16 +01001549/** \brief Change the lifetime of a key slot.
1550 *
1551 * Whether the lifetime of a key slot can be changed at all, and if so
Gilles Peskine19067982018-03-20 17:54:53 +01001552 * whether the lifetime of an occupied key slot can be changed, is
Gilles Peskined393e182018-03-08 07:49:16 +01001553 * implementation-dependent.
Gilles Peskine8ca56022018-04-17 14:07:59 +02001554 *
Gilles Peskine9bb53d72018-04-17 14:09:24 +02001555 * \param key Slot whose lifetime is to be changed.
1556 * \param lifetime The lifetime value to set for the given key slot.
Gilles Peskine8ca56022018-04-17 14:07:59 +02001557 *
Gilles Peskine28538492018-07-11 17:34:00 +02001558 * \retval #PSA_SUCCESS
mohammad1603804cd712018-03-20 22:44:08 +02001559 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02001560 * \retval #PSA_ERROR_INVALID_ARGUMENT
mohammad1603804cd712018-03-20 22:44:08 +02001561 * The key slot is invalid,
mohammad1603a7d245a2018-04-17 00:40:08 -07001562 * or the lifetime value is invalid.
Gilles Peskine28538492018-07-11 17:34:00 +02001563 * \retval #PSA_ERROR_NOT_SUPPORTED
Gilles Peskinef0c9dd32018-04-17 14:11:07 +02001564 * The implementation does not support the specified lifetime value,
1565 * at least for the specified key slot.
Gilles Peskine28538492018-07-11 17:34:00 +02001566 * \retval #PSA_ERROR_OCCUPIED_SLOT
Gilles Peskinef0c9dd32018-04-17 14:11:07 +02001567 * The slot contains a key, and the implementation does not support
1568 * changing the lifetime of an occupied slot.
Gilles Peskine28538492018-07-11 17:34:00 +02001569 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1570 * \retval #PSA_ERROR_HARDWARE_FAILURE
1571 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskined393e182018-03-08 07:49:16 +01001572 */
1573psa_status_t psa_set_key_lifetime(psa_key_slot_t key,
mohammad1603ea050092018-04-17 00:31:34 -07001574 psa_key_lifetime_t lifetime);
Gilles Peskined393e182018-03-08 07:49:16 +01001575
Gilles Peskine609b6a52018-03-03 21:31:50 +01001576/**@}*/
1577
Gilles Peskine9ef733f2018-02-07 21:05:37 +01001578/** \defgroup hash Message digests
1579 * @{
1580 */
1581
Gilles Peskine308b91d2018-02-08 09:47:44 +01001582/** The type of the state data structure for multipart hash operations.
1583 *
Gilles Peskine92b30732018-03-03 21:29:30 +01001584 * This is an implementation-defined \c struct. Applications should not
Gilles Peskine308b91d2018-02-08 09:47:44 +01001585 * make any assumptions about the content of this structure except
1586 * as directed by the documentation of a specific implementation. */
Gilles Peskine9ef733f2018-02-07 21:05:37 +01001587typedef struct psa_hash_operation_s psa_hash_operation_t;
1588
Gilles Peskine308b91d2018-02-08 09:47:44 +01001589/** The size of the output of psa_hash_finish(), in bytes.
1590 *
1591 * This is also the hash size that psa_hash_verify() expects.
1592 *
1593 * \param alg A hash algorithm (\c PSA_ALG_XXX value such that
Gilles Peskine7256e6c2018-07-12 00:34:26 +02001594 * #PSA_ALG_IS_HASH(\p alg) is true), or an HMAC algorithm
Gilles Peskinebe42f312018-07-13 14:38:15 +02001595 * (#PSA_ALG_HMAC(\c hash_alg) where \c hash_alg is a
Gilles Peskine35855962018-04-19 08:39:16 +02001596 * hash algorithm).
Gilles Peskine308b91d2018-02-08 09:47:44 +01001597 *
1598 * \return The hash size for the specified hash algorithm.
1599 * If the hash algorithm is not recognized, return 0.
1600 * An implementation may return either 0 or the correct size
1601 * for a hash algorithm that it recognizes, but does not support.
1602 */
Gilles Peskine7ed29c52018-06-26 15:50:08 +02001603#define PSA_HASH_SIZE(alg) \
1604 ( \
1605 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_MD2 ? 16 : \
1606 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_MD4 ? 16 : \
1607 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_MD5 ? 16 : \
1608 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_RIPEMD160 ? 20 : \
1609 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_SHA_1 ? 20 : \
1610 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_SHA_224 ? 28 : \
1611 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_SHA_256 ? 32 : \
1612 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_SHA_384 ? 48 : \
1613 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_SHA_512 ? 64 : \
1614 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_SHA_512_224 ? 28 : \
1615 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_SHA_512_256 ? 32 : \
1616 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_SHA3_224 ? 28 : \
1617 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_SHA3_256 ? 32 : \
1618 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_SHA3_384 ? 48 : \
1619 PSA_ALG_HMAC_HASH(alg) == PSA_ALG_SHA3_512 ? 64 : \
Gilles Peskine9ef733f2018-02-07 21:05:37 +01001620 0)
1621
Gilles Peskine308b91d2018-02-08 09:47:44 +01001622/** Start a multipart hash operation.
1623 *
1624 * The sequence of operations to calculate a hash (message digest)
1625 * is as follows:
1626 * -# Allocate an operation object which will be passed to all the functions
1627 * listed here.
Gilles Peskineda8191d1c2018-07-08 19:46:38 +02001628 * -# Call psa_hash_setup() to specify the algorithm.
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001629 * -# Call psa_hash_update() zero, one or more times, passing a fragment
Gilles Peskine308b91d2018-02-08 09:47:44 +01001630 * of the message each time. The hash that is calculated is the hash
1631 * of the concatenation of these messages in order.
1632 * -# To calculate the hash, call psa_hash_finish().
1633 * To compare the hash with an expected value, call psa_hash_verify().
1634 *
1635 * The application may call psa_hash_abort() at any time after the operation
Gilles Peskineda8191d1c2018-07-08 19:46:38 +02001636 * has been initialized with psa_hash_setup().
Gilles Peskine308b91d2018-02-08 09:47:44 +01001637 *
Gilles Peskineda8191d1c2018-07-08 19:46:38 +02001638 * After a successful call to psa_hash_setup(), the application must
Gilles Peskineed522972018-03-20 17:54:15 +01001639 * eventually terminate the operation. The following events terminate an
1640 * operation:
Gilles Peskine308b91d2018-02-08 09:47:44 +01001641 * - A failed call to psa_hash_update().
Gilles Peskine19067982018-03-20 17:54:53 +01001642 * - A call to psa_hash_finish(), psa_hash_verify() or psa_hash_abort().
Gilles Peskine308b91d2018-02-08 09:47:44 +01001643 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02001644 * \param[out] operation The operation object to use.
1645 * \param alg The hash algorithm to compute (\c PSA_ALG_XXX value
1646 * such that #PSA_ALG_IS_HASH(\p alg) is true).
Gilles Peskine308b91d2018-02-08 09:47:44 +01001647 *
Gilles Peskine28538492018-07-11 17:34:00 +02001648 * \retval #PSA_SUCCESS
Gilles Peskine308b91d2018-02-08 09:47:44 +01001649 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02001650 * \retval #PSA_ERROR_NOT_SUPPORTED
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001651 * \p alg is not supported or is not a hash algorithm.
Gilles Peskine28538492018-07-11 17:34:00 +02001652 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1653 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1654 * \retval #PSA_ERROR_HARDWARE_FAILURE
1655 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine308b91d2018-02-08 09:47:44 +01001656 */
Gilles Peskineda8191d1c2018-07-08 19:46:38 +02001657psa_status_t psa_hash_setup(psa_hash_operation_t *operation,
Gilles Peskine9ef733f2018-02-07 21:05:37 +01001658 psa_algorithm_t alg);
1659
Gilles Peskine308b91d2018-02-08 09:47:44 +01001660/** Add a message fragment to a multipart hash operation.
1661 *
Gilles Peskineda8191d1c2018-07-08 19:46:38 +02001662 * The application must call psa_hash_setup() before calling this function.
Gilles Peskine308b91d2018-02-08 09:47:44 +01001663 *
1664 * If this function returns an error status, the operation becomes inactive.
1665 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02001666 * \param[in,out] operation Active hash operation.
1667 * \param[in] input Buffer containing the message fragment to hash.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001668 * \param input_length Size of the \p input buffer in bytes.
Gilles Peskine308b91d2018-02-08 09:47:44 +01001669 *
Gilles Peskine28538492018-07-11 17:34:00 +02001670 * \retval #PSA_SUCCESS
Gilles Peskine308b91d2018-02-08 09:47:44 +01001671 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02001672 * \retval #PSA_ERROR_BAD_STATE
Gilles Peskine308b91d2018-02-08 09:47:44 +01001673 * The operation state is not valid (not started, or already completed).
Gilles Peskine28538492018-07-11 17:34:00 +02001674 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1675 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1676 * \retval #PSA_ERROR_HARDWARE_FAILURE
1677 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine308b91d2018-02-08 09:47:44 +01001678 */
Gilles Peskine9ef733f2018-02-07 21:05:37 +01001679psa_status_t psa_hash_update(psa_hash_operation_t *operation,
1680 const uint8_t *input,
1681 size_t input_length);
1682
Gilles Peskine308b91d2018-02-08 09:47:44 +01001683/** Finish the calculation of the hash of a message.
1684 *
Gilles Peskineda8191d1c2018-07-08 19:46:38 +02001685 * The application must call psa_hash_setup() before calling this function.
Gilles Peskine308b91d2018-02-08 09:47:44 +01001686 * This function calculates the hash of the message formed by concatenating
1687 * the inputs passed to preceding calls to psa_hash_update().
1688 *
1689 * When this function returns, the operation becomes inactive.
1690 *
1691 * \warning Applications should not call this function if they expect
1692 * a specific value for the hash. Call psa_hash_verify() instead.
1693 * Beware that comparing integrity or authenticity data such as
1694 * hash values with a function such as \c memcmp is risky
1695 * because the time taken by the comparison may leak information
1696 * about the hashed data which could allow an attacker to guess
1697 * a valid hash and thereby bypass security controls.
1698 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02001699 * \param[in,out] operation Active hash operation.
1700 * \param[out] hash Buffer where the hash is to be written.
1701 * \param hash_size Size of the \p hash buffer in bytes.
1702 * \param[out] hash_length On success, the number of bytes
1703 * that make up the hash value. This is always
Gilles Peskinebe42f312018-07-13 14:38:15 +02001704 * #PSA_HASH_SIZE(\c alg) where \c alg is the
Gilles Peskineedd11a12018-07-12 01:08:58 +02001705 * hash algorithm that is calculated.
Gilles Peskine308b91d2018-02-08 09:47:44 +01001706 *
Gilles Peskine28538492018-07-11 17:34:00 +02001707 * \retval #PSA_SUCCESS
Gilles Peskine308b91d2018-02-08 09:47:44 +01001708 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02001709 * \retval #PSA_ERROR_BAD_STATE
Gilles Peskine308b91d2018-02-08 09:47:44 +01001710 * The operation state is not valid (not started, or already completed).
Gilles Peskine28538492018-07-11 17:34:00 +02001711 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001712 * The size of the \p hash buffer is too small. You can determine a
Gilles Peskine7256e6c2018-07-12 00:34:26 +02001713 * sufficient buffer size by calling #PSA_HASH_SIZE(\c alg)
Gilles Peskine308b91d2018-02-08 09:47:44 +01001714 * where \c alg is the hash algorithm that is calculated.
Gilles Peskine28538492018-07-11 17:34:00 +02001715 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1716 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1717 * \retval #PSA_ERROR_HARDWARE_FAILURE
1718 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine308b91d2018-02-08 09:47:44 +01001719 */
Gilles Peskine9ef733f2018-02-07 21:05:37 +01001720psa_status_t psa_hash_finish(psa_hash_operation_t *operation,
1721 uint8_t *hash,
1722 size_t hash_size,
1723 size_t *hash_length);
1724
Gilles Peskine308b91d2018-02-08 09:47:44 +01001725/** Finish the calculation of the hash of a message and compare it with
1726 * an expected value.
1727 *
Gilles Peskineda8191d1c2018-07-08 19:46:38 +02001728 * The application must call psa_hash_setup() before calling this function.
Gilles Peskine308b91d2018-02-08 09:47:44 +01001729 * This function calculates the hash of the message formed by concatenating
1730 * the inputs passed to preceding calls to psa_hash_update(). It then
1731 * compares the calculated hash with the expected hash passed as a
1732 * parameter to this function.
1733 *
1734 * When this function returns, the operation becomes inactive.
1735 *
Gilles Peskine19067982018-03-20 17:54:53 +01001736 * \note Implementations shall make the best effort to ensure that the
Gilles Peskine308b91d2018-02-08 09:47:44 +01001737 * comparison between the actual hash and the expected hash is performed
1738 * in constant time.
1739 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02001740 * \param[in,out] operation Active hash operation.
1741 * \param[in] hash Buffer containing the expected hash value.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001742 * \param hash_length Size of the \p hash buffer in bytes.
Gilles Peskine308b91d2018-02-08 09:47:44 +01001743 *
Gilles Peskine28538492018-07-11 17:34:00 +02001744 * \retval #PSA_SUCCESS
Gilles Peskine308b91d2018-02-08 09:47:44 +01001745 * The expected hash is identical to the actual hash of the message.
Gilles Peskine28538492018-07-11 17:34:00 +02001746 * \retval #PSA_ERROR_INVALID_SIGNATURE
Gilles Peskine308b91d2018-02-08 09:47:44 +01001747 * The hash of the message was calculated successfully, but it
1748 * differs from the expected hash.
Gilles Peskine28538492018-07-11 17:34:00 +02001749 * \retval #PSA_ERROR_BAD_STATE
Gilles Peskine308b91d2018-02-08 09:47:44 +01001750 * The operation state is not valid (not started, or already completed).
Gilles Peskine28538492018-07-11 17:34:00 +02001751 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1752 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1753 * \retval #PSA_ERROR_HARDWARE_FAILURE
1754 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine308b91d2018-02-08 09:47:44 +01001755 */
Gilles Peskine9ef733f2018-02-07 21:05:37 +01001756psa_status_t psa_hash_verify(psa_hash_operation_t *operation,
1757 const uint8_t *hash,
1758 size_t hash_length);
1759
Gilles Peskine308b91d2018-02-08 09:47:44 +01001760/** Abort a hash operation.
1761 *
Gilles Peskine308b91d2018-02-08 09:47:44 +01001762 * Aborting an operation frees all associated resources except for the
Gilles Peskineb82ab6f2018-07-13 15:33:43 +02001763 * \p operation structure itself. Once aborted, the operation object
1764 * can be reused for another operation by calling
1765 * psa_hash_setup() again.
Gilles Peskine308b91d2018-02-08 09:47:44 +01001766 *
Gilles Peskineb82ab6f2018-07-13 15:33:43 +02001767 * You may call this function any time after the operation object has
1768 * been initialized by any of the following methods:
1769 * - A call to psa_hash_setup(), whether it succeeds or not.
1770 * - Initializing the \c struct to all-bits-zero.
1771 * - Initializing the \c struct to logical zeros, e.g.
1772 * `psa_hash_operation_t operation = {0}`.
Gilles Peskine308b91d2018-02-08 09:47:44 +01001773 *
Gilles Peskineb82ab6f2018-07-13 15:33:43 +02001774 * In particular, calling psa_hash_abort() after the operation has been
1775 * terminated by a call to psa_hash_abort(), psa_hash_finish() or
1776 * psa_hash_verify() is safe and has no effect.
1777 *
1778 * \param[in,out] operation Initialized hash operation.
Gilles Peskine308b91d2018-02-08 09:47:44 +01001779 *
Gilles Peskine28538492018-07-11 17:34:00 +02001780 * \retval #PSA_SUCCESS
1781 * \retval #PSA_ERROR_BAD_STATE
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001782 * \p operation is not an active hash operation.
Gilles Peskine28538492018-07-11 17:34:00 +02001783 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1784 * \retval #PSA_ERROR_HARDWARE_FAILURE
1785 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine308b91d2018-02-08 09:47:44 +01001786 */
1787psa_status_t psa_hash_abort(psa_hash_operation_t *operation);
Gilles Peskine9ef733f2018-02-07 21:05:37 +01001788
1789/**@}*/
1790
Gilles Peskine8c9def32018-02-08 10:02:12 +01001791/** \defgroup MAC Message authentication codes
1792 * @{
1793 */
1794
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001795/** The type of the state data structure for multipart MAC operations.
1796 *
Gilles Peskine92b30732018-03-03 21:29:30 +01001797 * This is an implementation-defined \c struct. Applications should not
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001798 * make any assumptions about the content of this structure except
1799 * as directed by the documentation of a specific implementation. */
Gilles Peskine8c9def32018-02-08 10:02:12 +01001800typedef struct psa_mac_operation_s psa_mac_operation_t;
1801
Gilles Peskine89167cb2018-07-08 20:12:23 +02001802/** Start a multipart MAC calculation operation.
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001803 *
Gilles Peskine89167cb2018-07-08 20:12:23 +02001804 * This function sets up the calculation of the MAC
1805 * (message authentication code) of a byte string.
1806 * To verify the MAC of a message against an
1807 * expected value, use psa_mac_verify_setup() instead.
1808 *
1809 * The sequence of operations to calculate a MAC is as follows:
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001810 * -# Allocate an operation object which will be passed to all the functions
1811 * listed here.
Gilles Peskine89167cb2018-07-08 20:12:23 +02001812 * -# Call psa_mac_sign_setup() to specify the algorithm and key.
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001813 * The key remains associated with the operation even if the content
1814 * of the key slot changes.
1815 * -# Call psa_mac_update() zero, one or more times, passing a fragment
1816 * of the message each time. The MAC that is calculated is the MAC
1817 * of the concatenation of these messages in order.
Gilles Peskine89167cb2018-07-08 20:12:23 +02001818 * -# At the end of the message, call psa_mac_sign_finish() to finish
1819 * calculating the MAC value and retrieve it.
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001820 *
1821 * The application may call psa_mac_abort() at any time after the operation
Gilles Peskine89167cb2018-07-08 20:12:23 +02001822 * has been initialized with psa_mac_sign_setup().
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001823 *
Gilles Peskine89167cb2018-07-08 20:12:23 +02001824 * After a successful call to psa_mac_sign_setup(), the application must
1825 * eventually terminate the operation through one of the following methods:
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001826 * - A failed call to psa_mac_update().
Gilles Peskine89167cb2018-07-08 20:12:23 +02001827 * - A call to psa_mac_sign_finish() or psa_mac_abort().
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001828 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02001829 * \param[out] operation The operation object to use.
1830 * \param key Slot containing the key to use for the operation.
1831 * \param alg The MAC algorithm to compute (\c PSA_ALG_XXX value
1832 * such that #PSA_ALG_IS_MAC(alg) is true).
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001833 *
Gilles Peskine28538492018-07-11 17:34:00 +02001834 * \retval #PSA_SUCCESS
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001835 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02001836 * \retval #PSA_ERROR_EMPTY_SLOT
1837 * \retval #PSA_ERROR_NOT_PERMITTED
1838 * \retval #PSA_ERROR_INVALID_ARGUMENT
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001839 * \p key is not compatible with \p alg.
Gilles Peskine28538492018-07-11 17:34:00 +02001840 * \retval #PSA_ERROR_NOT_SUPPORTED
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001841 * \p alg is not supported or is not a MAC algorithm.
Gilles Peskine28538492018-07-11 17:34:00 +02001842 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1843 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1844 * \retval #PSA_ERROR_HARDWARE_FAILURE
1845 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine7e4acc52018-02-16 21:24:11 +01001846 */
Gilles Peskine89167cb2018-07-08 20:12:23 +02001847psa_status_t psa_mac_sign_setup(psa_mac_operation_t *operation,
1848 psa_key_slot_t key,
1849 psa_algorithm_t alg);
1850
1851/** Start a multipart MAC verification operation.
1852 *
1853 * This function sets up the verification of the MAC
1854 * (message authentication code) of a byte string against an expected value.
1855 *
1856 * The sequence of operations to verify a MAC is as follows:
1857 * -# Allocate an operation object which will be passed to all the functions
1858 * listed here.
1859 * -# Call psa_mac_verify_setup() to specify the algorithm and key.
1860 * The key remains associated with the operation even if the content
1861 * of the key slot changes.
1862 * -# Call psa_mac_update() zero, one or more times, passing a fragment
1863 * of the message each time. The MAC that is calculated is the MAC
1864 * of the concatenation of these messages in order.
1865 * -# At the end of the message, call psa_mac_verify_finish() to finish
1866 * calculating the actual MAC of the message and verify it against
1867 * the expected value.
1868 *
1869 * The application may call psa_mac_abort() at any time after the operation
1870 * has been initialized with psa_mac_verify_setup().
1871 *
1872 * After a successful call to psa_mac_verify_setup(), the application must
1873 * eventually terminate the operation through one of the following methods:
1874 * - A failed call to psa_mac_update().
1875 * - A call to psa_mac_verify_finish() or psa_mac_abort().
1876 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02001877 * \param[out] operation The operation object to use.
1878 * \param key Slot containing the key to use for the operation.
1879 * \param alg The MAC algorithm to compute (\c PSA_ALG_XXX value
1880 * such that #PSA_ALG_IS_MAC(\p alg) is true).
Gilles Peskine89167cb2018-07-08 20:12:23 +02001881 *
Gilles Peskine28538492018-07-11 17:34:00 +02001882 * \retval #PSA_SUCCESS
Gilles Peskine89167cb2018-07-08 20:12:23 +02001883 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02001884 * \retval #PSA_ERROR_EMPTY_SLOT
1885 * \retval #PSA_ERROR_NOT_PERMITTED
1886 * \retval #PSA_ERROR_INVALID_ARGUMENT
Gilles Peskine89167cb2018-07-08 20:12:23 +02001887 * \c key is not compatible with \c alg.
Gilles Peskine28538492018-07-11 17:34:00 +02001888 * \retval #PSA_ERROR_NOT_SUPPORTED
Gilles Peskine89167cb2018-07-08 20:12:23 +02001889 * \c alg is not supported or is not a MAC algorithm.
Gilles Peskine28538492018-07-11 17:34:00 +02001890 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1891 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1892 * \retval #PSA_ERROR_HARDWARE_FAILURE
1893 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine89167cb2018-07-08 20:12:23 +02001894 */
1895psa_status_t psa_mac_verify_setup(psa_mac_operation_t *operation,
1896 psa_key_slot_t key,
1897 psa_algorithm_t alg);
Gilles Peskine8c9def32018-02-08 10:02:12 +01001898
Gilles Peskinedcd14942018-07-12 00:30:52 +02001899/** Add a message fragment to a multipart MAC operation.
1900 *
1901 * The application must call psa_mac_sign_setup() or psa_mac_verify_setup()
1902 * before calling this function.
1903 *
1904 * If this function returns an error status, the operation becomes inactive.
1905 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02001906 * \param[in,out] operation Active MAC operation.
1907 * \param[in] input Buffer containing the message fragment to add to
1908 * the MAC calculation.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001909 * \param input_length Size of the \p input buffer in bytes.
Gilles Peskinedcd14942018-07-12 00:30:52 +02001910 *
1911 * \retval #PSA_SUCCESS
1912 * Success.
1913 * \retval #PSA_ERROR_BAD_STATE
1914 * The operation state is not valid (not started, or already completed).
1915 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1916 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1917 * \retval #PSA_ERROR_HARDWARE_FAILURE
1918 * \retval #PSA_ERROR_TAMPERING_DETECTED
1919 */
Gilles Peskine8c9def32018-02-08 10:02:12 +01001920psa_status_t psa_mac_update(psa_mac_operation_t *operation,
1921 const uint8_t *input,
1922 size_t input_length);
1923
Gilles Peskinedcd14942018-07-12 00:30:52 +02001924/** Finish the calculation of the MAC of a message.
1925 *
1926 * The application must call psa_mac_sign_setup() before calling this function.
1927 * This function calculates the MAC of the message formed by concatenating
1928 * the inputs passed to preceding calls to psa_mac_update().
1929 *
1930 * When this function returns, the operation becomes inactive.
1931 *
1932 * \warning Applications should not call this function if they expect
1933 * a specific value for the MAC. Call psa_mac_verify_finish() instead.
1934 * Beware that comparing integrity or authenticity data such as
1935 * MAC values with a function such as \c memcmp is risky
1936 * because the time taken by the comparison may leak information
1937 * about the MAC value which could allow an attacker to guess
1938 * a valid MAC and thereby bypass security controls.
1939 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02001940 * \param[in,out] operation Active MAC operation.
1941 * \param[out] mac Buffer where the MAC value is to be written.
1942 * \param mac_size Size of the \p mac buffer in bytes.
1943 * \param[out] mac_length On success, the number of bytes
1944 * that make up the MAC value. This is always
Gilles Peskinedda3bd32018-07-12 19:40:46 +02001945 * #PSA_MAC_FINAL_SIZE(\c key_type, \c key_bits, \c alg)
Gilles Peskineedd11a12018-07-12 01:08:58 +02001946 * where \c key_type and \c key_bits are the type and
Gilles Peskinedda3bd32018-07-12 19:40:46 +02001947 * bit-size respectively of the key and \c alg is the
Gilles Peskineedd11a12018-07-12 01:08:58 +02001948 * MAC algorithm that is calculated.
Gilles Peskinedcd14942018-07-12 00:30:52 +02001949 *
1950 * \retval #PSA_SUCCESS
1951 * Success.
1952 * \retval #PSA_ERROR_BAD_STATE
1953 * The operation state is not valid (not started, or already completed).
1954 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001955 * The size of the \p mac buffer is too small. You can determine a
Gilles Peskinedcd14942018-07-12 00:30:52 +02001956 * sufficient buffer size by calling PSA_MAC_FINAL_SIZE().
1957 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1958 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1959 * \retval #PSA_ERROR_HARDWARE_FAILURE
1960 * \retval #PSA_ERROR_TAMPERING_DETECTED
1961 */
Gilles Peskineacd4be32018-07-08 19:56:25 +02001962psa_status_t psa_mac_sign_finish(psa_mac_operation_t *operation,
1963 uint8_t *mac,
1964 size_t mac_size,
1965 size_t *mac_length);
Gilles Peskine8c9def32018-02-08 10:02:12 +01001966
Gilles Peskinedcd14942018-07-12 00:30:52 +02001967/** Finish the calculation of the MAC of a message and compare it with
1968 * an expected value.
1969 *
1970 * The application must call psa_mac_verify_setup() before calling this function.
1971 * This function calculates the MAC of the message formed by concatenating
1972 * the inputs passed to preceding calls to psa_mac_update(). It then
1973 * compares the calculated MAC with the expected MAC passed as a
1974 * parameter to this function.
1975 *
1976 * When this function returns, the operation becomes inactive.
1977 *
1978 * \note Implementations shall make the best effort to ensure that the
1979 * comparison between the actual MAC and the expected MAC is performed
1980 * in constant time.
1981 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02001982 * \param[in,out] operation Active MAC operation.
1983 * \param[in] mac Buffer containing the expected MAC value.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02001984 * \param mac_length Size of the \p mac buffer in bytes.
Gilles Peskinedcd14942018-07-12 00:30:52 +02001985 *
1986 * \retval #PSA_SUCCESS
1987 * The expected MAC is identical to the actual MAC of the message.
1988 * \retval #PSA_ERROR_INVALID_SIGNATURE
1989 * The MAC of the message was calculated successfully, but it
1990 * differs from the expected MAC.
1991 * \retval #PSA_ERROR_BAD_STATE
1992 * The operation state is not valid (not started, or already completed).
1993 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
1994 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
1995 * \retval #PSA_ERROR_HARDWARE_FAILURE
1996 * \retval #PSA_ERROR_TAMPERING_DETECTED
1997 */
Gilles Peskineacd4be32018-07-08 19:56:25 +02001998psa_status_t psa_mac_verify_finish(psa_mac_operation_t *operation,
1999 const uint8_t *mac,
2000 size_t mac_length);
Gilles Peskine8c9def32018-02-08 10:02:12 +01002001
Gilles Peskinedcd14942018-07-12 00:30:52 +02002002/** Abort a MAC operation.
2003 *
Gilles Peskinedcd14942018-07-12 00:30:52 +02002004 * Aborting an operation frees all associated resources except for the
Gilles Peskineb82ab6f2018-07-13 15:33:43 +02002005 * \p operation structure itself. Once aborted, the operation object
2006 * can be reused for another operation by calling
2007 * psa_mac_sign_setup() or psa_mac_verify_setup() again.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002008 *
Gilles Peskineb82ab6f2018-07-13 15:33:43 +02002009 * You may call this function any time after the operation object has
2010 * been initialized by any of the following methods:
2011 * - A call to psa_mac_sign_setup() or psa_mac_verify_setup(), whether
2012 * it succeeds or not.
2013 * - Initializing the \c struct to all-bits-zero.
2014 * - Initializing the \c struct to logical zeros, e.g.
2015 * `psa_mac_operation_t operation = {0}`.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002016 *
Gilles Peskineb82ab6f2018-07-13 15:33:43 +02002017 * In particular, calling psa_mac_abort() after the operation has been
2018 * terminated by a call to psa_mac_abort(), psa_mac_sign_finish() or
2019 * psa_mac_verify_finish() is safe and has no effect.
2020 *
2021 * \param[in,out] operation Initialized MAC operation.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002022 *
2023 * \retval #PSA_SUCCESS
2024 * \retval #PSA_ERROR_BAD_STATE
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002025 * \p operation is not an active MAC operation.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002026 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2027 * \retval #PSA_ERROR_HARDWARE_FAILURE
2028 * \retval #PSA_ERROR_TAMPERING_DETECTED
2029 */
Gilles Peskine8c9def32018-02-08 10:02:12 +01002030psa_status_t psa_mac_abort(psa_mac_operation_t *operation);
2031
2032/**@}*/
2033
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002034/** \defgroup cipher Symmetric ciphers
2035 * @{
2036 */
2037
2038/** The type of the state data structure for multipart cipher operations.
2039 *
2040 * This is an implementation-defined \c struct. Applications should not
2041 * make any assumptions about the content of this structure except
2042 * as directed by the documentation of a specific implementation. */
2043typedef struct psa_cipher_operation_s psa_cipher_operation_t;
2044
2045/** Set the key for a multipart symmetric encryption operation.
2046 *
2047 * The sequence of operations to encrypt a message with a symmetric cipher
2048 * is as follows:
2049 * -# Allocate an operation object which will be passed to all the functions
2050 * listed here.
Gilles Peskinefe119512018-07-08 21:39:34 +02002051 * -# Call psa_cipher_encrypt_setup() to specify the algorithm and key.
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002052 * The key remains associated with the operation even if the content
2053 * of the key slot changes.
itayzafrired7382f2018-08-02 14:19:33 +03002054 * -# Call either psa_cipher_generate_iv() or psa_cipher_set_iv() to
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002055 * generate or set the IV (initialization vector). You should use
itayzafrired7382f2018-08-02 14:19:33 +03002056 * psa_cipher_generate_iv() unless the protocol you are implementing
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002057 * requires a specific IV value.
2058 * -# Call psa_cipher_update() zero, one or more times, passing a fragment
2059 * of the message each time.
2060 * -# Call psa_cipher_finish().
2061 *
2062 * The application may call psa_cipher_abort() at any time after the operation
Gilles Peskinefe119512018-07-08 21:39:34 +02002063 * has been initialized with psa_cipher_encrypt_setup().
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002064 *
Gilles Peskinefe119512018-07-08 21:39:34 +02002065 * After a successful call to psa_cipher_encrypt_setup(), the application must
Gilles Peskineed522972018-03-20 17:54:15 +01002066 * eventually terminate the operation. The following events terminate an
2067 * operation:
itayzafrired7382f2018-08-02 14:19:33 +03002068 * - A failed call to psa_cipher_generate_iv(), psa_cipher_set_iv()
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002069 * or psa_cipher_update().
Gilles Peskine19067982018-03-20 17:54:53 +01002070 * - A call to psa_cipher_finish() or psa_cipher_abort().
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002071 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002072 * \param[out] operation The operation object to use.
2073 * \param key Slot containing the key to use for the operation.
2074 * \param alg The cipher algorithm to compute
2075 * (\c PSA_ALG_XXX value such that
2076 * #PSA_ALG_IS_CIPHER(\p alg) is true).
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002077 *
Gilles Peskine28538492018-07-11 17:34:00 +02002078 * \retval #PSA_SUCCESS
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002079 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02002080 * \retval #PSA_ERROR_EMPTY_SLOT
2081 * \retval #PSA_ERROR_NOT_PERMITTED
2082 * \retval #PSA_ERROR_INVALID_ARGUMENT
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002083 * \p key is not compatible with \p alg.
Gilles Peskine28538492018-07-11 17:34:00 +02002084 * \retval #PSA_ERROR_NOT_SUPPORTED
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002085 * \p alg is not supported or is not a cipher algorithm.
Gilles Peskine28538492018-07-11 17:34:00 +02002086 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2087 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2088 * \retval #PSA_ERROR_HARDWARE_FAILURE
2089 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002090 */
Gilles Peskinefe119512018-07-08 21:39:34 +02002091psa_status_t psa_cipher_encrypt_setup(psa_cipher_operation_t *operation,
2092 psa_key_slot_t key,
2093 psa_algorithm_t alg);
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002094
2095/** Set the key for a multipart symmetric decryption operation.
2096 *
2097 * The sequence of operations to decrypt a message with a symmetric cipher
2098 * is as follows:
2099 * -# Allocate an operation object which will be passed to all the functions
2100 * listed here.
Gilles Peskinefe119512018-07-08 21:39:34 +02002101 * -# Call psa_cipher_decrypt_setup() to specify the algorithm and key.
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002102 * The key remains associated with the operation even if the content
2103 * of the key slot changes.
2104 * -# Call psa_cipher_update() with the IV (initialization vector) for the
2105 * decryption. If the IV is prepended to the ciphertext, you can call
2106 * psa_cipher_update() on a buffer containing the IV followed by the
2107 * beginning of the message.
2108 * -# Call psa_cipher_update() zero, one or more times, passing a fragment
2109 * of the message each time.
2110 * -# Call psa_cipher_finish().
2111 *
2112 * The application may call psa_cipher_abort() at any time after the operation
Gilles Peskinefe119512018-07-08 21:39:34 +02002113 * has been initialized with psa_cipher_decrypt_setup().
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002114 *
Gilles Peskinefe119512018-07-08 21:39:34 +02002115 * After a successful call to psa_cipher_decrypt_setup(), the application must
Gilles Peskineed522972018-03-20 17:54:15 +01002116 * eventually terminate the operation. The following events terminate an
2117 * operation:
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002118 * - A failed call to psa_cipher_update().
Gilles Peskine19067982018-03-20 17:54:53 +01002119 * - A call to psa_cipher_finish() or psa_cipher_abort().
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002120 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002121 * \param[out] operation The operation object to use.
2122 * \param key Slot containing the key to use for the operation.
2123 * \param alg The cipher algorithm to compute
2124 * (\c PSA_ALG_XXX value such that
2125 * #PSA_ALG_IS_CIPHER(\p alg) is true).
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002126 *
Gilles Peskine28538492018-07-11 17:34:00 +02002127 * \retval #PSA_SUCCESS
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002128 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02002129 * \retval #PSA_ERROR_EMPTY_SLOT
2130 * \retval #PSA_ERROR_NOT_PERMITTED
2131 * \retval #PSA_ERROR_INVALID_ARGUMENT
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002132 * \p key is not compatible with \p alg.
Gilles Peskine28538492018-07-11 17:34:00 +02002133 * \retval #PSA_ERROR_NOT_SUPPORTED
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002134 * \p alg is not supported or is not a cipher algorithm.
Gilles Peskine28538492018-07-11 17:34:00 +02002135 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2136 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2137 * \retval #PSA_ERROR_HARDWARE_FAILURE
2138 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002139 */
Gilles Peskinefe119512018-07-08 21:39:34 +02002140psa_status_t psa_cipher_decrypt_setup(psa_cipher_operation_t *operation,
2141 psa_key_slot_t key,
2142 psa_algorithm_t alg);
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002143
Gilles Peskinedcd14942018-07-12 00:30:52 +02002144/** Generate an IV for a symmetric encryption operation.
2145 *
2146 * This function generates a random IV (initialization vector), nonce
2147 * or initial counter value for the encryption operation as appropriate
2148 * for the chosen algorithm, key type and key size.
2149 *
2150 * The application must call psa_cipher_encrypt_setup() before
2151 * calling this function.
2152 *
2153 * If this function returns an error status, the operation becomes inactive.
2154 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002155 * \param[in,out] operation Active cipher operation.
2156 * \param[out] iv Buffer where the generated IV is to be written.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002157 * \param iv_size Size of the \p iv buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002158 * \param[out] iv_length On success, the number of bytes of the
2159 * generated IV.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002160 *
2161 * \retval #PSA_SUCCESS
2162 * Success.
2163 * \retval #PSA_ERROR_BAD_STATE
2164 * The operation state is not valid (not started, or IV already set).
2165 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
Gilles Peskinedda3bd32018-07-12 19:40:46 +02002166 * The size of the \p iv buffer is too small.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002167 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2168 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2169 * \retval #PSA_ERROR_HARDWARE_FAILURE
2170 * \retval #PSA_ERROR_TAMPERING_DETECTED
2171 */
Gilles Peskinefe119512018-07-08 21:39:34 +02002172psa_status_t psa_cipher_generate_iv(psa_cipher_operation_t *operation,
2173 unsigned char *iv,
2174 size_t iv_size,
2175 size_t *iv_length);
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002176
Gilles Peskinedcd14942018-07-12 00:30:52 +02002177/** Set the IV for a symmetric encryption or decryption operation.
2178 *
2179 * This function sets the random IV (initialization vector), nonce
2180 * or initial counter value for the encryption or decryption operation.
2181 *
2182 * The application must call psa_cipher_encrypt_setup() before
2183 * calling this function.
2184 *
2185 * If this function returns an error status, the operation becomes inactive.
2186 *
2187 * \note When encrypting, applications should use psa_cipher_generate_iv()
2188 * instead of this function, unless implementing a protocol that requires
2189 * a non-random IV.
2190 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002191 * \param[in,out] operation Active cipher operation.
2192 * \param[in] iv Buffer containing the IV to use.
2193 * \param iv_length Size of the IV in bytes.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002194 *
2195 * \retval #PSA_SUCCESS
2196 * Success.
2197 * \retval #PSA_ERROR_BAD_STATE
2198 * The operation state is not valid (not started, or IV already set).
2199 * \retval #PSA_ERROR_INVALID_ARGUMENT
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002200 * The size of \p iv is not acceptable for the chosen algorithm,
Gilles Peskinedcd14942018-07-12 00:30:52 +02002201 * or the chosen algorithm does not use an IV.
2202 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2203 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2204 * \retval #PSA_ERROR_HARDWARE_FAILURE
2205 * \retval #PSA_ERROR_TAMPERING_DETECTED
2206 */
Gilles Peskinefe119512018-07-08 21:39:34 +02002207psa_status_t psa_cipher_set_iv(psa_cipher_operation_t *operation,
2208 const unsigned char *iv,
2209 size_t iv_length);
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002210
Gilles Peskinedcd14942018-07-12 00:30:52 +02002211/** Encrypt or decrypt a message fragment in an active cipher operation.
2212 *
Gilles Peskine9ac94262018-07-12 20:15:32 +02002213 * Before calling this function, you must:
2214 * 1. Call either psa_cipher_encrypt_setup() or psa_cipher_decrypt_setup().
2215 * The choice of setup function determines whether this function
2216 * encrypts or decrypts its input.
2217 * 2. If the algorithm requires an IV, call psa_cipher_generate_iv()
2218 * (recommended when encrypting) or psa_cipher_set_iv().
Gilles Peskinedcd14942018-07-12 00:30:52 +02002219 *
2220 * If this function returns an error status, the operation becomes inactive.
2221 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002222 * \param[in,out] operation Active cipher operation.
2223 * \param[in] input Buffer containing the message fragment to
2224 * encrypt or decrypt.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002225 * \param input_length Size of the \p input buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002226 * \param[out] output Buffer where the output is to be written.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002227 * \param output_size Size of the \p output buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002228 * \param[out] output_length On success, the number of bytes
2229 * that make up the returned output.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002230 *
2231 * \retval #PSA_SUCCESS
2232 * Success.
2233 * \retval #PSA_ERROR_BAD_STATE
2234 * The operation state is not valid (not started, IV required but
2235 * not set, or already completed).
2236 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
2237 * The size of the \p output buffer is too small.
2238 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2239 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2240 * \retval #PSA_ERROR_HARDWARE_FAILURE
2241 * \retval #PSA_ERROR_TAMPERING_DETECTED
2242 */
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002243psa_status_t psa_cipher_update(psa_cipher_operation_t *operation,
2244 const uint8_t *input,
mohammad1603503973b2018-03-12 15:59:30 +02002245 size_t input_length,
Gilles Peskine2d277862018-06-18 15:41:12 +02002246 unsigned char *output,
2247 size_t output_size,
mohammad1603503973b2018-03-12 15:59:30 +02002248 size_t *output_length);
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002249
Gilles Peskinedcd14942018-07-12 00:30:52 +02002250/** Finish encrypting or decrypting a message in a cipher operation.
2251 *
2252 * The application must call psa_cipher_encrypt_setup() or
2253 * psa_cipher_decrypt_setup() before calling this function. The choice
2254 * of setup function determines whether this function encrypts or
2255 * decrypts its input.
2256 *
2257 * This function finishes the encryption or decryption of the message
2258 * formed by concatenating the inputs passed to preceding calls to
2259 * psa_cipher_update().
2260 *
2261 * When this function returns, the operation becomes inactive.
2262 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002263 * \param[in,out] operation Active cipher operation.
2264 * \param[out] output Buffer where the output is to be written.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002265 * \param output_size Size of the \p output buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002266 * \param[out] output_length On success, the number of bytes
2267 * that make up the returned output.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002268 *
2269 * \retval #PSA_SUCCESS
2270 * Success.
2271 * \retval #PSA_ERROR_BAD_STATE
2272 * The operation state is not valid (not started, IV required but
2273 * not set, or already completed).
2274 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
2275 * The size of the \p output buffer is too small.
2276 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2277 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2278 * \retval #PSA_ERROR_HARDWARE_FAILURE
2279 * \retval #PSA_ERROR_TAMPERING_DETECTED
2280 */
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002281psa_status_t psa_cipher_finish(psa_cipher_operation_t *operation,
mohammad1603503973b2018-03-12 15:59:30 +02002282 uint8_t *output,
Moran Peker0071b872018-04-22 20:16:58 +03002283 size_t output_size,
mohammad1603503973b2018-03-12 15:59:30 +02002284 size_t *output_length);
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002285
Gilles Peskinedcd14942018-07-12 00:30:52 +02002286/** Abort a cipher operation.
2287 *
Gilles Peskinedcd14942018-07-12 00:30:52 +02002288 * Aborting an operation frees all associated resources except for the
Gilles Peskineb82ab6f2018-07-13 15:33:43 +02002289 * \p operation structure itself. Once aborted, the operation object
2290 * can be reused for another operation by calling
2291 * psa_cipher_encrypt_setup() or psa_cipher_decrypt_setup() again.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002292 *
Gilles Peskineb82ab6f2018-07-13 15:33:43 +02002293 * You may call this function any time after the operation object has
2294 * been initialized by any of the following methods:
2295 * - A call to psa_cipher_encrypt_setup() or psa_cipher_decrypt_setup(),
2296 * whether it succeeds or not.
2297 * - Initializing the \c struct to all-bits-zero.
2298 * - Initializing the \c struct to logical zeros, e.g.
2299 * `psa_cipher_operation_t operation = {0}`.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002300 *
Gilles Peskineb82ab6f2018-07-13 15:33:43 +02002301 * In particular, calling psa_cipher_abort() after the operation has been
2302 * terminated by a call to psa_cipher_abort() or psa_cipher_finish()
2303 * is safe and has no effect.
2304 *
2305 * \param[in,out] operation Initialized cipher operation.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002306 *
2307 * \retval #PSA_SUCCESS
2308 * \retval #PSA_ERROR_BAD_STATE
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002309 * \p operation is not an active cipher operation.
Gilles Peskinedcd14942018-07-12 00:30:52 +02002310 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2311 * \retval #PSA_ERROR_HARDWARE_FAILURE
2312 * \retval #PSA_ERROR_TAMPERING_DETECTED
2313 */
Gilles Peskine428dc5a2018-03-03 21:27:18 +01002314psa_status_t psa_cipher_abort(psa_cipher_operation_t *operation);
2315
2316/**@}*/
2317
Gilles Peskine3b555712018-03-03 21:27:57 +01002318/** \defgroup aead Authenticated encryption with associated data (AEAD)
2319 * @{
2320 */
2321
Gilles Peskine5e39dc92018-06-08 11:41:57 +02002322/** The tag size for an AEAD algorithm, in bytes.
Gilles Peskine3b555712018-03-03 21:27:57 +01002323 *
Gilles Peskine5e39dc92018-06-08 11:41:57 +02002324 * \param alg An AEAD algorithm
2325 * (\c PSA_ALG_XXX value such that
Gilles Peskine7256e6c2018-07-12 00:34:26 +02002326 * #PSA_ALG_IS_AEAD(\p alg) is true).
Gilles Peskine5e39dc92018-06-08 11:41:57 +02002327 *
2328 * \return The tag size for the specified algorithm.
2329 * If the AEAD algorithm does not have an identified
2330 * tag that can be distinguished from the rest of
2331 * the ciphertext, return 0.
2332 * If the AEAD algorithm is not recognized, return 0.
2333 * An implementation may return either 0 or a
2334 * correct size for an AEAD algorithm that it
2335 * recognizes, but does not support.
2336 */
2337#define PSA_AEAD_TAG_SIZE(alg) \
2338 ((alg) == PSA_ALG_GCM ? 16 : \
2339 (alg) == PSA_ALG_CCM ? 16 : \
2340 0)
Gilles Peskine3b555712018-03-03 21:27:57 +01002341
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002342/** Process an authenticated encryption operation.
Gilles Peskine3b555712018-03-03 21:27:57 +01002343 *
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002344 * \param key Slot containing the key to use.
2345 * \param alg The AEAD algorithm to compute
2346 * (\c PSA_ALG_XXX value such that
Gilles Peskine7256e6c2018-07-12 00:34:26 +02002347 * #PSA_ALG_IS_AEAD(\p alg) is true).
Gilles Peskineedd11a12018-07-12 01:08:58 +02002348 * \param[in] nonce Nonce or IV to use.
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002349 * \param nonce_length Size of the \p nonce buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002350 * \param[in] additional_data Additional data that will be authenticated
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002351 * but not encrypted.
2352 * \param additional_data_length Size of \p additional_data in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002353 * \param[in] plaintext Data that will be authenticated and
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002354 * encrypted.
2355 * \param plaintext_length Size of \p plaintext in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002356 * \param[out] ciphertext Output buffer for the authenticated and
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002357 * encrypted data. The additional data is not
2358 * part of this output. For algorithms where the
2359 * encrypted data and the authentication tag
2360 * are defined as separate outputs, the
2361 * authentication tag is appended to the
2362 * encrypted data.
2363 * \param ciphertext_size Size of the \p ciphertext buffer in bytes.
2364 * This must be at least
2365 * #PSA_AEAD_ENCRYPT_OUTPUT_SIZE(\p alg,
2366 * \p plaintext_length).
Gilles Peskineedd11a12018-07-12 01:08:58 +02002367 * \param[out] ciphertext_length On success, the size of the output
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002368 * in the \b ciphertext buffer.
Gilles Peskine3b555712018-03-03 21:27:57 +01002369 *
Gilles Peskine28538492018-07-11 17:34:00 +02002370 * \retval #PSA_SUCCESS
Gilles Peskine3b555712018-03-03 21:27:57 +01002371 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02002372 * \retval #PSA_ERROR_EMPTY_SLOT
2373 * \retval #PSA_ERROR_NOT_PERMITTED
2374 * \retval #PSA_ERROR_INVALID_ARGUMENT
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002375 * \p key is not compatible with \p alg.
Gilles Peskine28538492018-07-11 17:34:00 +02002376 * \retval #PSA_ERROR_NOT_SUPPORTED
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002377 * \p alg is not supported or is not an AEAD algorithm.
Gilles Peskine28538492018-07-11 17:34:00 +02002378 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2379 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2380 * \retval #PSA_ERROR_HARDWARE_FAILURE
2381 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine3b555712018-03-03 21:27:57 +01002382 */
Gilles Peskine9fb0e012018-07-19 15:51:49 +02002383psa_status_t psa_aead_encrypt(psa_key_slot_t key,
2384 psa_algorithm_t alg,
2385 const uint8_t *nonce,
2386 size_t nonce_length,
2387 const uint8_t *additional_data,
2388 size_t additional_data_length,
2389 const uint8_t *plaintext,
2390 size_t plaintext_length,
2391 uint8_t *ciphertext,
2392 size_t ciphertext_size,
2393 size_t *ciphertext_length);
Gilles Peskine3b555712018-03-03 21:27:57 +01002394
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002395/** Process an authenticated decryption operation.
Gilles Peskine3b555712018-03-03 21:27:57 +01002396 *
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002397 * \param key Slot containing the key to use.
2398 * \param alg The AEAD algorithm to compute
2399 * (\c PSA_ALG_XXX value such that
Gilles Peskine7256e6c2018-07-12 00:34:26 +02002400 * #PSA_ALG_IS_AEAD(\p alg) is true).
Gilles Peskineedd11a12018-07-12 01:08:58 +02002401 * \param[in] nonce Nonce or IV to use.
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002402 * \param nonce_length Size of the \p nonce buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002403 * \param[in] additional_data Additional data that has been authenticated
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002404 * but not encrypted.
2405 * \param additional_data_length Size of \p additional_data in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002406 * \param[in] ciphertext Data that has been authenticated and
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002407 * encrypted. For algorithms where the
2408 * encrypted data and the authentication tag
2409 * are defined as separate inputs, the buffer
2410 * must contain the encrypted data followed
2411 * by the authentication tag.
2412 * \param ciphertext_length Size of \p ciphertext in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002413 * \param[out] plaintext Output buffer for the decrypted data.
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002414 * \param plaintext_size Size of the \p plaintext buffer in bytes.
2415 * This must be at least
2416 * #PSA_AEAD_DECRYPT_OUTPUT_SIZE(\p alg,
2417 * \p ciphertext_length).
Gilles Peskineedd11a12018-07-12 01:08:58 +02002418 * \param[out] plaintext_length On success, the size of the output
mohammad1603fb5b9cb2018-06-06 13:44:27 +03002419 * in the \b plaintext buffer.
Gilles Peskine3b555712018-03-03 21:27:57 +01002420 *
Gilles Peskine28538492018-07-11 17:34:00 +02002421 * \retval #PSA_SUCCESS
Gilles Peskine3b555712018-03-03 21:27:57 +01002422 * Success.
Gilles Peskine28538492018-07-11 17:34:00 +02002423 * \retval #PSA_ERROR_EMPTY_SLOT
2424 * \retval #PSA_ERROR_INVALID_SIGNATURE
Gilles Peskine1e7d8f12018-06-01 16:29:38 +02002425 * The ciphertext is not authentic.
Gilles Peskine28538492018-07-11 17:34:00 +02002426 * \retval #PSA_ERROR_NOT_PERMITTED
2427 * \retval #PSA_ERROR_INVALID_ARGUMENT
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002428 * \p key is not compatible with \p alg.
Gilles Peskine28538492018-07-11 17:34:00 +02002429 * \retval #PSA_ERROR_NOT_SUPPORTED
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002430 * \p alg is not supported or is not an AEAD algorithm.
Gilles Peskine28538492018-07-11 17:34:00 +02002431 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2432 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2433 * \retval #PSA_ERROR_HARDWARE_FAILURE
2434 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine3b555712018-03-03 21:27:57 +01002435 */
Gilles Peskine9fb0e012018-07-19 15:51:49 +02002436psa_status_t psa_aead_decrypt(psa_key_slot_t key,
2437 psa_algorithm_t alg,
2438 const uint8_t *nonce,
2439 size_t nonce_length,
2440 const uint8_t *additional_data,
2441 size_t additional_data_length,
2442 const uint8_t *ciphertext,
2443 size_t ciphertext_length,
2444 uint8_t *plaintext,
2445 size_t plaintext_size,
2446 size_t *plaintext_length);
Gilles Peskine3b555712018-03-03 21:27:57 +01002447
2448/**@}*/
2449
Gilles Peskine20035e32018-02-03 22:44:14 +01002450/** \defgroup asymmetric Asymmetric cryptography
2451 * @{
2452 */
2453
2454/**
Gilles Peskineeae6eee2018-06-28 13:56:01 +02002455 * \brief ECDSA signature size for a given curve bit size
Gilles Peskine0189e752018-02-03 23:57:22 +01002456 *
Gilles Peskineeae6eee2018-06-28 13:56:01 +02002457 * \param curve_bits Curve size in bits.
2458 * \return Signature size in bytes.
Gilles Peskine0189e752018-02-03 23:57:22 +01002459 *
2460 * \note This macro returns a compile-time constant if its argument is one.
Gilles Peskine0189e752018-02-03 23:57:22 +01002461 */
Gilles Peskineeae6eee2018-06-28 13:56:01 +02002462#define PSA_ECDSA_SIGNATURE_SIZE(curve_bits) \
2463 (PSA_BITS_TO_BYTES(curve_bits) * 2)
Gilles Peskine0189e752018-02-03 23:57:22 +01002464
Gilles Peskine0189e752018-02-03 23:57:22 +01002465/**
Gilles Peskine20035e32018-02-03 22:44:14 +01002466 * \brief Sign a hash or short message with a private key.
2467 *
Gilles Peskine08bac712018-06-26 16:14:46 +02002468 * Note that to perform a hash-and-sign signature algorithm, you must
Gilles Peskineda8191d1c2018-07-08 19:46:38 +02002469 * first calculate the hash by calling psa_hash_setup(), psa_hash_update()
Gilles Peskine08bac712018-06-26 16:14:46 +02002470 * and psa_hash_finish(). Then pass the resulting hash as the \p hash
2471 * parameter to this function. You can use #PSA_ALG_SIGN_GET_HASH(\p alg)
2472 * to determine the hash algorithm to use.
2473 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002474 * \param key Key slot containing an asymmetric key pair.
2475 * \param alg A signature algorithm that is compatible with
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002476 * the type of \p key.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002477 * \param[in] hash The hash or message to sign.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002478 * \param hash_length Size of the \p hash buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002479 * \param[out] signature Buffer where the signature is to be written.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002480 * \param signature_size Size of the \p signature buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002481 * \param[out] signature_length On success, the number of bytes
2482 * that make up the returned signature value.
Gilles Peskine308b91d2018-02-08 09:47:44 +01002483 *
Gilles Peskine28538492018-07-11 17:34:00 +02002484 * \retval #PSA_SUCCESS
2485 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002486 * The size of the \p signature buffer is too small. You can
Gilles Peskine308b91d2018-02-08 09:47:44 +01002487 * determine a sufficient buffer size by calling
Gilles Peskine7256e6c2018-07-12 00:34:26 +02002488 * #PSA_ASYMMETRIC_SIGN_OUTPUT_SIZE(\c key_type, \c key_bits, \p alg)
Gilles Peskine308b91d2018-02-08 09:47:44 +01002489 * where \c key_type and \c key_bits are the type and bit-size
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002490 * respectively of \p key.
Gilles Peskine28538492018-07-11 17:34:00 +02002491 * \retval #PSA_ERROR_NOT_SUPPORTED
2492 * \retval #PSA_ERROR_INVALID_ARGUMENT
2493 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2494 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2495 * \retval #PSA_ERROR_HARDWARE_FAILURE
2496 * \retval #PSA_ERROR_TAMPERING_DETECTED
2497 * \retval #PSA_ERROR_INSUFFICIENT_ENTROPY
Gilles Peskine20035e32018-02-03 22:44:14 +01002498 */
2499psa_status_t psa_asymmetric_sign(psa_key_slot_t key,
2500 psa_algorithm_t alg,
2501 const uint8_t *hash,
2502 size_t hash_length,
Gilles Peskine20035e32018-02-03 22:44:14 +01002503 uint8_t *signature,
2504 size_t signature_size,
2505 size_t *signature_length);
2506
2507/**
2508 * \brief Verify the signature a hash or short message using a public key.
2509 *
Gilles Peskine08bac712018-06-26 16:14:46 +02002510 * Note that to perform a hash-and-sign signature algorithm, you must
Gilles Peskineda8191d1c2018-07-08 19:46:38 +02002511 * first calculate the hash by calling psa_hash_setup(), psa_hash_update()
Gilles Peskine08bac712018-06-26 16:14:46 +02002512 * and psa_hash_finish(). Then pass the resulting hash as the \p hash
2513 * parameter to this function. You can use #PSA_ALG_SIGN_GET_HASH(\p alg)
2514 * to determine the hash algorithm to use.
2515 *
Gilles Peskine308b91d2018-02-08 09:47:44 +01002516 * \param key Key slot containing a public key or an
2517 * asymmetric key pair.
2518 * \param alg A signature algorithm that is compatible with
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002519 * the type of \p key.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002520 * \param[in] hash The hash or message whose signature is to be
Gilles Peskine08bac712018-06-26 16:14:46 +02002521 * verified.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002522 * \param hash_length Size of the \p hash buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002523 * \param[in] signature Buffer containing the signature to verify.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002524 * \param signature_length Size of the \p signature buffer in bytes.
Gilles Peskine308b91d2018-02-08 09:47:44 +01002525 *
Gilles Peskine28538492018-07-11 17:34:00 +02002526 * \retval #PSA_SUCCESS
Gilles Peskine308b91d2018-02-08 09:47:44 +01002527 * The signature is valid.
Gilles Peskine28538492018-07-11 17:34:00 +02002528 * \retval #PSA_ERROR_INVALID_SIGNATURE
Gilles Peskine308b91d2018-02-08 09:47:44 +01002529 * The calculation was perfomed successfully, but the passed
2530 * signature is not a valid signature.
Gilles Peskine28538492018-07-11 17:34:00 +02002531 * \retval #PSA_ERROR_NOT_SUPPORTED
2532 * \retval #PSA_ERROR_INVALID_ARGUMENT
2533 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2534 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2535 * \retval #PSA_ERROR_HARDWARE_FAILURE
2536 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine20035e32018-02-03 22:44:14 +01002537 */
2538psa_status_t psa_asymmetric_verify(psa_key_slot_t key,
2539 psa_algorithm_t alg,
2540 const uint8_t *hash,
2541 size_t hash_length,
Gilles Peskinee9191ff2018-06-27 14:58:41 +02002542 const uint8_t *signature,
Gilles Peskine526fab02018-06-27 18:19:40 +02002543 size_t signature_length);
Gilles Peskine20035e32018-02-03 22:44:14 +01002544
Gilles Peskine723feff2018-05-31 20:08:13 +02002545#define PSA_RSA_MINIMUM_PADDING_SIZE(alg) \
Gilles Peskine072ac562018-06-30 00:21:29 +02002546 (PSA_ALG_IS_RSA_OAEP(alg) ? \
2547 2 * PSA_HASH_FINAL_SIZE(PSA_ALG_RSA_OAEP_GET_HASH(alg)) + 1 : \
Gilles Peskine723feff2018-05-31 20:08:13 +02002548 11 /*PKCS#1v1.5*/)
Gilles Peskine6944f9a2018-03-28 14:18:39 +02002549
2550/**
2551 * \brief Encrypt a short message with a public key.
2552 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002553 * \param key Key slot containing a public key or an
2554 * asymmetric key pair.
2555 * \param alg An asymmetric encryption algorithm that is
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002556 * compatible with the type of \p key.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002557 * \param[in] input The message to encrypt.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002558 * \param input_length Size of the \p input buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002559 * \param[in] salt A salt or label, if supported by the
2560 * encryption algorithm.
2561 * If the algorithm does not support a
2562 * salt, pass \c NULL.
2563 * If the algorithm supports an optional
2564 * salt and you do not want to pass a salt,
2565 * pass \c NULL.
Gilles Peskine6944f9a2018-03-28 14:18:39 +02002566 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002567 * - For #PSA_ALG_RSA_PKCS1V15_CRYPT, no salt is
2568 * supported.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002569 * \param salt_length Size of the \p salt buffer in bytes.
2570 * If \p salt is \c NULL, pass 0.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002571 * \param[out] output Buffer where the encrypted message is to
2572 * be written.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002573 * \param output_size Size of the \p output buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002574 * \param[out] output_length On success, the number of bytes
2575 * that make up the returned output.
Gilles Peskine6944f9a2018-03-28 14:18:39 +02002576 *
Gilles Peskine28538492018-07-11 17:34:00 +02002577 * \retval #PSA_SUCCESS
2578 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002579 * The size of the \p output buffer is too small. You can
Gilles Peskine6944f9a2018-03-28 14:18:39 +02002580 * determine a sufficient buffer size by calling
Gilles Peskine7256e6c2018-07-12 00:34:26 +02002581 * #PSA_ASYMMETRIC_ENCRYPT_OUTPUT_SIZE(\c key_type, \c key_bits, \p alg)
Gilles Peskine6944f9a2018-03-28 14:18:39 +02002582 * where \c key_type and \c key_bits are the type and bit-size
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002583 * respectively of \p key.
Gilles Peskine28538492018-07-11 17:34:00 +02002584 * \retval #PSA_ERROR_NOT_SUPPORTED
2585 * \retval #PSA_ERROR_INVALID_ARGUMENT
2586 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2587 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2588 * \retval #PSA_ERROR_HARDWARE_FAILURE
2589 * \retval #PSA_ERROR_TAMPERING_DETECTED
2590 * \retval #PSA_ERROR_INSUFFICIENT_ENTROPY
Gilles Peskine6944f9a2018-03-28 14:18:39 +02002591 */
2592psa_status_t psa_asymmetric_encrypt(psa_key_slot_t key,
2593 psa_algorithm_t alg,
2594 const uint8_t *input,
2595 size_t input_length,
2596 const uint8_t *salt,
2597 size_t salt_length,
2598 uint8_t *output,
2599 size_t output_size,
2600 size_t *output_length);
2601
2602/**
2603 * \brief Decrypt a short message with a private key.
2604 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002605 * \param key Key slot containing an asymmetric key pair.
2606 * \param alg An asymmetric encryption algorithm that is
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002607 * compatible with the type of \p key.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002608 * \param[in] input The message to decrypt.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002609 * \param input_length Size of the \p input buffer in bytes.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002610 * \param[in] salt A salt or label, if supported by the
2611 * encryption algorithm.
2612 * If the algorithm does not support a
2613 * salt, pass \c NULL.
2614 * If the algorithm supports an optional
2615 * salt and you do not want to pass a salt,
2616 * pass \c NULL.
Gilles Peskine6944f9a2018-03-28 14:18:39 +02002617 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002618 * - For #PSA_ALG_RSA_PKCS1V15_CRYPT, no salt is
2619 * supported.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002620 * \param salt_length Size of the \p salt buffer in bytes.
2621 * If \p salt is \c NULL, pass 0.
Gilles Peskineedd11a12018-07-12 01:08:58 +02002622 * \param[out] output Buffer where the decrypted message is to
2623 * be written.
2624 * \param output_size Size of the \c output buffer in bytes.
2625 * \param[out] output_length On success, the number of bytes
2626 * that make up the returned output.
Gilles Peskine6944f9a2018-03-28 14:18:39 +02002627 *
Gilles Peskine28538492018-07-11 17:34:00 +02002628 * \retval #PSA_SUCCESS
2629 * \retval #PSA_ERROR_BUFFER_TOO_SMALL
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002630 * The size of the \p output buffer is too small. You can
Gilles Peskine6944f9a2018-03-28 14:18:39 +02002631 * determine a sufficient buffer size by calling
Gilles Peskinedda3bd32018-07-12 19:40:46 +02002632 * #PSA_ASYMMETRIC_DECRYPT_OUTPUT_SIZE(\c key_type, \c key_bits, \p alg)
Gilles Peskine6944f9a2018-03-28 14:18:39 +02002633 * where \c key_type and \c key_bits are the type and bit-size
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002634 * respectively of \p key.
Gilles Peskine28538492018-07-11 17:34:00 +02002635 * \retval #PSA_ERROR_NOT_SUPPORTED
2636 * \retval #PSA_ERROR_INVALID_ARGUMENT
2637 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2638 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2639 * \retval #PSA_ERROR_HARDWARE_FAILURE
2640 * \retval #PSA_ERROR_TAMPERING_DETECTED
2641 * \retval #PSA_ERROR_INSUFFICIENT_ENTROPY
2642 * \retval #PSA_ERROR_INVALID_PADDING
Gilles Peskine6944f9a2018-03-28 14:18:39 +02002643 */
2644psa_status_t psa_asymmetric_decrypt(psa_key_slot_t key,
2645 psa_algorithm_t alg,
2646 const uint8_t *input,
2647 size_t input_length,
2648 const uint8_t *salt,
2649 size_t salt_length,
2650 uint8_t *output,
2651 size_t output_size,
2652 size_t *output_length);
2653
Gilles Peskine2f9c4dc2018-01-28 13:16:24 +01002654/**@}*/
2655
Gilles Peskineedd76872018-07-20 17:42:05 +02002656/** \defgroup generators Generators
Gilles Peskineeab56e42018-07-12 17:12:33 +02002657 * @{
2658 */
2659
2660/** The type of the state data structure for generators.
2661 *
2662 * Before calling any function on a generator, the application must
2663 * initialize it by any of the following means:
2664 * - Set the structure to all-bits-zero, for example:
2665 * \code
2666 * psa_crypto_generator_t generator;
2667 * memset(&generator, 0, sizeof(generator));
2668 * \endcode
2669 * - Initialize the structure to logical zero values, for example:
2670 * \code
2671 * psa_crypto_generator_t generator = {0};
2672 * \endcode
2673 * - Initialize the structure to the initializer #PSA_CRYPTO_GENERATOR_INIT,
2674 * for example:
2675 * \code
2676 * psa_crypto_generator_t generator = PSA_CRYPTO_GENERATOR_INIT;
2677 * \endcode
2678 * - Assign the result of the function psa_crypto_generator_init()
2679 * to the structure, for example:
2680 * \code
2681 * psa_crypto_generator_t generator;
2682 * generator = psa_crypto_generator_init();
2683 * \endcode
2684 *
2685 * This is an implementation-defined \c struct. Applications should not
2686 * make any assumptions about the content of this structure except
2687 * as directed by the documentation of a specific implementation.
2688 */
2689typedef struct psa_crypto_generator_s psa_crypto_generator_t;
2690
2691/** \def PSA_CRYPTO_GENERATOR_INIT
2692 *
2693 * This macro returns a suitable initializer for a generator object
2694 * of type #psa_crypto_generator_t.
2695 */
2696#ifdef __DOXYGEN_ONLY__
2697/* This is an example definition for documentation purposes.
2698 * Implementations should define a suitable value in `crypto_struct.h`.
2699 */
2700#define PSA_CRYPTO_GENERATOR_INIT {0}
2701#endif
2702
2703/** Return an initial value for a generator object.
2704 */
2705static psa_crypto_generator_t psa_crypto_generator_init(void);
2706
2707/** Retrieve the current capacity of a generator.
2708 *
2709 * The capacity of a generator is the maximum number of bytes that it can
2710 * return. Reading *N* bytes from a generator reduces its capacity by *N*.
2711 *
2712 * \param[in] generator The generator to query.
2713 * \param[out] capacity On success, the capacity of the generator.
2714 *
2715 * \retval PSA_SUCCESS
2716 * \retval PSA_ERROR_BAD_STATE
2717 * \retval PSA_ERROR_COMMUNICATION_FAILURE
2718 */
2719psa_status_t psa_get_generator_capacity(const psa_crypto_generator_t *generator,
2720 size_t *capacity);
2721
2722/** Read some data from a generator.
2723 *
2724 * This function reads and returns a sequence of bytes from a generator.
2725 * The data that is read is discarded from the generator. The generator's
2726 * capacity is decreased by the number of bytes read.
2727 *
2728 * \param[in,out] generator The generator object to read from.
2729 * \param[out] output Buffer where the generator output will be
2730 * written.
2731 * \param output_length Number of bytes to output.
2732 *
2733 * \retval PSA_SUCCESS
2734 * \retval PSA_ERROR_INSUFFICIENT_CAPACITY
2735 * There were fewer than \p output_length bytes
2736 * in the generator. Note that in this case, no
2737 * output is written to the output buffer.
2738 * The generator's capacity is set to 0, thus
2739 * subsequent calls to this function will not
2740 * succeed, even with a smaller output buffer.
2741 * \retval PSA_ERROR_BAD_STATE
2742 * \retval PSA_ERROR_INSUFFICIENT_MEMORY
2743 * \retval PSA_ERROR_COMMUNICATION_FAILURE
2744 * \retval PSA_ERROR_HARDWARE_FAILURE
2745 * \retval PSA_ERROR_TAMPERING_DETECTED
2746 */
2747psa_status_t psa_generator_read(psa_crypto_generator_t *generator,
2748 uint8_t *output,
2749 size_t output_length);
2750
2751/** Create a symmetric key from data read from a generator.
2752 *
2753 * This function reads a sequence of bytes from a generator and imports
2754 * these bytes as a key.
2755 * The data that is read is discarded from the generator. The generator's
2756 * capacity is decreased by the number of bytes read.
2757 *
2758 * This function is equivalent to calling #psa_generator_read and
2759 * passing the resulting output to #psa_import_key, but
2760 * if the implementation provides an isolation boundary then
2761 * the key material is not exposed outside the isolation boundary.
2762 *
2763 * \param key Slot where the key will be stored. This must be a
2764 * valid slot for a key of the chosen type. It must
2765 * be unoccupied.
2766 * \param type Key type (a \c PSA_KEY_TYPE_XXX value).
2767 * This must be a symmetric key type.
2768 * \param bits Key size in bits.
2769 * \param[in,out] generator The generator object to read from.
2770 *
2771 * \retval PSA_SUCCESS
2772 * Success.
2773 * \retval PSA_ERROR_INSUFFICIENT_CAPACITY
2774 * There were fewer than \p output_length bytes
2775 * in the generator. Note that in this case, no
2776 * output is written to the output buffer.
2777 * The generator's capacity is set to 0, thus
2778 * subsequent calls to this function will not
2779 * succeed, even with a smaller output buffer.
2780 * \retval PSA_ERROR_NOT_SUPPORTED
2781 * The key type or key size is not supported, either by the
2782 * implementation in general or in this particular slot.
2783 * \retval PSA_ERROR_BAD_STATE
2784 * \retval PSA_ERROR_INVALID_ARGUMENT
2785 * The key slot is invalid.
2786 * \retval PSA_ERROR_OCCUPIED_SLOT
2787 * There is already a key in the specified slot.
2788 * \retval PSA_ERROR_INSUFFICIENT_MEMORY
2789 * \retval PSA_ERROR_INSUFFICIENT_STORAGE
2790 * \retval PSA_ERROR_COMMUNICATION_FAILURE
2791 * \retval PSA_ERROR_HARDWARE_FAILURE
2792 * \retval PSA_ERROR_TAMPERING_DETECTED
2793 */
2794psa_status_t psa_generator_import_key(psa_key_slot_t key,
2795 psa_key_type_t type,
2796 size_t bits,
2797 psa_crypto_generator_t *generator);
2798
2799/** Abort a generator.
2800 *
2801 * Once a generator has been aborted, its capacity is zero.
2802 * Aborting a generator frees all associated resources except for the
2803 * \c generator structure itself.
2804 *
2805 * This function may be called at any time as long as the generator
2806 * object has been initialized to #PSA_CRYPTO_GENERATOR_INIT, to
2807 * psa_crypto_generator_init() or a zero value. In particular, it is valid
2808 * to call psa_generator_abort() twice, or to call psa_generator_abort()
2809 * on a generator that has not been set up.
2810 *
2811 * Once aborted, the generator object may be called.
2812 *
2813 * \param[in,out] generator The generator to abort.
2814 *
2815 * \retval PSA_SUCCESS
2816 * \retval PSA_ERROR_BAD_STATE
2817 * \retval PSA_ERROR_COMMUNICATION_FAILURE
2818 * \retval PSA_ERROR_HARDWARE_FAILURE
2819 * \retval PSA_ERROR_TAMPERING_DETECTED
2820 */
2821psa_status_t psa_generator_abort(psa_crypto_generator_t *generator);
2822
2823/**@}*/
2824
Gilles Peskineea0fb492018-07-12 17:17:20 +02002825/** \defgroup derivation Key derivation
2826 * @{
2827 */
2828
2829/** Set up a key derivation operation.
2830 *
2831 * A key derivation algorithm takes three inputs: a secret input \p key and
2832 * two non-secret inputs \p label and p salt.
2833 * The result of this function is a byte generator which can
2834 * be used to produce keys and other cryptographic material.
2835 *
2836 * The role of \p label and \p salt is as follows:
Gilles Peskinebef7f142018-07-12 17:22:21 +02002837 * - For HKDF (#PSA_ALG_HKDF), \p salt is the salt used in the "extract" step
2838 * and \p label is the info string used in the "expand" step.
Gilles Peskineea0fb492018-07-12 17:17:20 +02002839 *
2840 * \param[in,out] generator The generator object to set up. It must
2841 * have been initialized to .
2842 * \param key Slot containing the secret key to use.
2843 * \param alg The key derivation algorithm to compute
2844 * (\c PSA_ALG_XXX value such that
2845 * #PSA_ALG_IS_KEY_DERIVATION(\p alg) is true).
2846 * \param[in] salt Salt to use.
2847 * \param salt_length Size of the \p salt buffer in bytes.
2848 * \param[in] label Label to use.
2849 * \param label_length Size of the \p label buffer in bytes.
2850 * \param capacity The maximum number of bytes that the
2851 * generator will be able to provide.
2852 *
2853 * \retval #PSA_SUCCESS
2854 * Success.
2855 * \retval #PSA_ERROR_EMPTY_SLOT
2856 * \retval #PSA_ERROR_NOT_PERMITTED
2857 * \retval #PSA_ERROR_INVALID_ARGUMENT
2858 * \c key is not compatible with \c alg,
2859 * or \p capacity is too large for the specified algorithm and key.
2860 * \retval #PSA_ERROR_NOT_SUPPORTED
2861 * \c alg is not supported or is not a key derivation algorithm.
2862 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2863 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2864 * \retval #PSA_ERROR_HARDWARE_FAILURE
2865 * \retval #PSA_ERROR_TAMPERING_DETECTED
2866 */
2867psa_status_t psa_key_derivation(psa_crypto_generator_t *generator,
Darryl Green88001362018-07-26 13:59:04 +01002868 psa_key_slot_t key,
Gilles Peskineea0fb492018-07-12 17:17:20 +02002869 psa_algorithm_t alg,
2870 const uint8_t *salt,
2871 size_t salt_length,
2872 const uint8_t *label,
2873 size_t label_length,
2874 size_t capacity);
2875
2876/**@}*/
2877
Gilles Peskineedd76872018-07-20 17:42:05 +02002878/** \defgroup random Random generation
Gilles Peskine9e7dc712018-03-28 14:18:50 +02002879 * @{
2880 */
2881
2882/**
2883 * \brief Generate random bytes.
2884 *
2885 * \warning This function **can** fail! Callers MUST check the return status
2886 * and MUST NOT use the content of the output buffer if the return
2887 * status is not #PSA_SUCCESS.
2888 *
2889 * \note To generate a key, use psa_generate_key() instead.
2890 *
Gilles Peskineedd11a12018-07-12 01:08:58 +02002891 * \param[out] output Output buffer for the generated data.
Gilles Peskine9e7dc712018-03-28 14:18:50 +02002892 * \param output_size Number of bytes to generate and output.
2893 *
Gilles Peskine28538492018-07-11 17:34:00 +02002894 * \retval #PSA_SUCCESS
2895 * \retval #PSA_ERROR_NOT_SUPPORTED
2896 * \retval #PSA_ERROR_INSUFFICIENT_ENTROPY
2897 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2898 * \retval #PSA_ERROR_HARDWARE_FAILURE
2899 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine9e7dc712018-03-28 14:18:50 +02002900 */
2901psa_status_t psa_generate_random(uint8_t *output,
2902 size_t output_size);
2903
Gilles Peskine4c317f42018-07-12 01:24:09 +02002904/** Extra parameters for RSA key generation.
2905 *
Gilles Peskinebe42f312018-07-13 14:38:15 +02002906 * You may pass a pointer to a structure of this type as the \c extra
Gilles Peskine4c317f42018-07-12 01:24:09 +02002907 * parameter to psa_generate_key().
2908 */
2909typedef struct {
Gilles Peskineedd76872018-07-20 17:42:05 +02002910 uint32_t e; /**< Public exponent value. Default: 65537. */
Gilles Peskine4c317f42018-07-12 01:24:09 +02002911} psa_generate_key_extra_rsa;
2912
Gilles Peskine9e7dc712018-03-28 14:18:50 +02002913/**
2914 * \brief Generate a key or key pair.
2915 *
Gilles Peskine4e69d7a2018-06-19 20:19:14 +02002916 * \param key Slot where the key will be stored. This must be a
2917 * valid slot for a key of the chosen type. It must
2918 * be unoccupied.
2919 * \param type Key type (a \c PSA_KEY_TYPE_XXX value).
2920 * \param bits Key size in bits.
Gilles Peskine53d991e2018-07-12 01:14:59 +02002921 * \param[in] extra Extra parameters for key generation. The
Gilles Peskine4e69d7a2018-06-19 20:19:14 +02002922 * interpretation of this parameter depends on
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002923 * \p type. All types support \c NULL to use
Gilles Peskine3fa675c2018-07-12 01:31:03 +02002924 * default parameters. Implementation that support
2925 * the generation of vendor-specific key types
2926 * that allow extra parameters shall document
2927 * the format of these extra parameters and
2928 * the default values. For standard parameters,
2929 * the meaning of \p extra is as follows:
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002930 * - For a symmetric key type (a type such
Gilles Peskine3fa675c2018-07-12 01:31:03 +02002931 * that #PSA_KEY_TYPE_IS_ASYMMETRIC(\p type) is
2932 * false), \p extra must be \c NULL.
Gilles Peskinefa4070c2018-07-12 19:23:03 +02002933 * - For an elliptic curve key type (a type
Gilles Peskine3fa675c2018-07-12 01:31:03 +02002934 * such that #PSA_KEY_TYPE_IS_ECC(\p type) is
2935 * false), \p extra must be \c NULL.
Gilles Peskinedda3bd32018-07-12 19:40:46 +02002936 * - For an RSA key (\p type is
2937 * #PSA_KEY_TYPE_RSA_KEYPAIR), \p extra is an
2938 * optional #psa_generate_key_extra_rsa structure
Gilles Peskine3fa675c2018-07-12 01:31:03 +02002939 * specifying the public exponent. The
2940 * default public exponent used when \p extra
2941 * is \c NULL is 65537.
Gilles Peskine53d991e2018-07-12 01:14:59 +02002942 * \param extra_size Size of the buffer that \p extra
2943 * points to, in bytes. Note that if \p extra is
2944 * \c NULL then \p extra_size must be zero.
Gilles Peskine9e7dc712018-03-28 14:18:50 +02002945 *
Gilles Peskine28538492018-07-11 17:34:00 +02002946 * \retval #PSA_SUCCESS
2947 * \retval #PSA_ERROR_NOT_SUPPORTED
2948 * \retval #PSA_ERROR_INVALID_ARGUMENT
2949 * \retval #PSA_ERROR_INSUFFICIENT_MEMORY
2950 * \retval #PSA_ERROR_INSUFFICIENT_ENTROPY
2951 * \retval #PSA_ERROR_COMMUNICATION_FAILURE
2952 * \retval #PSA_ERROR_HARDWARE_FAILURE
2953 * \retval #PSA_ERROR_TAMPERING_DETECTED
Gilles Peskine9e7dc712018-03-28 14:18:50 +02002954 */
2955psa_status_t psa_generate_key(psa_key_slot_t key,
2956 psa_key_type_t type,
2957 size_t bits,
Gilles Peskine53d991e2018-07-12 01:14:59 +02002958 const void *extra,
2959 size_t extra_size);
Gilles Peskine9e7dc712018-03-28 14:18:50 +02002960
2961/**@}*/
2962
Gilles Peskinee59236f2018-01-27 23:32:46 +01002963#ifdef __cplusplus
2964}
2965#endif
2966
Gilles Peskine0cad07c2018-06-27 19:49:02 +02002967/* The file "crypto_sizes.h" contains definitions for size calculation
2968 * macros whose definitions are implementation-specific. */
2969#include "crypto_sizes.h"
2970
Gilles Peskine9ef733f2018-02-07 21:05:37 +01002971/* The file "crypto_struct.h" contains definitions for
2972 * implementation-specific structs that are declared above. */
2973#include "crypto_struct.h"
2974
2975/* The file "crypto_extra.h" contains vendor-specific definitions. This
2976 * can include vendor-defined algorithms, extra functions, etc. */
Gilles Peskinee59236f2018-01-27 23:32:46 +01002977#include "crypto_extra.h"
2978
2979#endif /* PSA_CRYPTO_H */