1 /*
2 * Copyright 2020-2025 The OpenSSL Project Authors. All Rights Reserved.
3 *
4 * Licensed under the Apache License 2.0 (the "License"). You may not use
5 * this file except in compliance with the License. You can obtain a copy
6 * in the file LICENSE in the source distribution or at
7 * https://www.openssl.org/source/license.html
8 */
9
10 #include <stdio.h>
11 #include <stdlib.h>
12 #include <openssl/evp.h>
13 #include <openssl/rand.h>
14 #include <openssl/core.h>
15 #include <openssl/core_names.h>
16 #include <openssl/crypto.h>
17 #include "internal/cryptlib.h"
18 #include "internal/numbers.h"
19 #include "internal/provider.h"
20 #include "internal/core.h"
21 #include "crypto/evp.h"
22 #include "evp_local.h"
23
24 struct evp_rand_st {
25 OSSL_PROVIDER *prov;
26 int name_id;
27 char *type_name;
28 const char *description;
29 CRYPTO_REF_COUNT refcnt;
30
31 const OSSL_DISPATCH *dispatch;
32 OSSL_FUNC_rand_newctx_fn *newctx;
33 OSSL_FUNC_rand_freectx_fn *freectx;
34 OSSL_FUNC_rand_instantiate_fn *instantiate;
35 OSSL_FUNC_rand_uninstantiate_fn *uninstantiate;
36 OSSL_FUNC_rand_generate_fn *generate;
37 OSSL_FUNC_rand_reseed_fn *reseed;
38 OSSL_FUNC_rand_nonce_fn *nonce;
39 OSSL_FUNC_rand_enable_locking_fn *enable_locking;
40 OSSL_FUNC_rand_lock_fn *lock;
41 OSSL_FUNC_rand_unlock_fn *unlock;
42 OSSL_FUNC_rand_gettable_params_fn *gettable_params;
43 OSSL_FUNC_rand_gettable_ctx_params_fn *gettable_ctx_params;
44 OSSL_FUNC_rand_settable_ctx_params_fn *settable_ctx_params;
45 OSSL_FUNC_rand_get_params_fn *get_params;
46 OSSL_FUNC_rand_get_ctx_params_fn *get_ctx_params;
47 OSSL_FUNC_rand_set_ctx_params_fn *set_ctx_params;
48 OSSL_FUNC_rand_verify_zeroization_fn *verify_zeroization;
49 OSSL_FUNC_rand_get_seed_fn *get_seed;
50 OSSL_FUNC_rand_clear_seed_fn *clear_seed;
51 } /* EVP_RAND */;
52
evp_rand_up_ref(void * vrand)53 static int evp_rand_up_ref(void *vrand)
54 {
55 EVP_RAND *rand = (EVP_RAND *)vrand;
56 int ref = 0;
57
58 if (rand != NULL)
59 return CRYPTO_UP_REF(&rand->refcnt, &ref);
60 return 1;
61 }
62
evp_rand_free(void * vrand)63 static void evp_rand_free(void *vrand)
64 {
65 EVP_RAND *rand = (EVP_RAND *)vrand;
66 int ref = 0;
67
68 if (rand == NULL)
69 return;
70 CRYPTO_DOWN_REF(&rand->refcnt, &ref);
71 if (ref > 0)
72 return;
73 OPENSSL_free(rand->type_name);
74 ossl_provider_free(rand->prov);
75 CRYPTO_FREE_REF(&rand->refcnt);
76 OPENSSL_free(rand);
77 }
78
evp_rand_new(void)79 static void *evp_rand_new(void)
80 {
81 EVP_RAND *rand = OPENSSL_zalloc(sizeof(*rand));
82
83 if (rand == NULL)
84 return NULL;
85
86 if (!CRYPTO_NEW_REF(&rand->refcnt, 1)) {
87 OPENSSL_free(rand);
88 return NULL;
89 }
90 return rand;
91 }
92
93 /* Enable locking of the underlying DRBG/RAND if available */
EVP_RAND_enable_locking(EVP_RAND_CTX * rand)94 int EVP_RAND_enable_locking(EVP_RAND_CTX *rand)
95 {
96 if (rand->meth->enable_locking != NULL)
97 return rand->meth->enable_locking(rand->algctx);
98 ERR_raise(ERR_LIB_EVP, EVP_R_LOCKING_NOT_SUPPORTED);
99 return 0;
100 }
101
102 /* Lock the underlying DRBG/RAND if available */
evp_rand_lock(EVP_RAND_CTX * rand)103 static int evp_rand_lock(EVP_RAND_CTX *rand)
104 {
105 if (rand->meth->lock != NULL)
106 return rand->meth->lock(rand->algctx);
107 return 1;
108 }
109
110 /* Unlock the underlying DRBG/RAND if available */
evp_rand_unlock(EVP_RAND_CTX * rand)111 static void evp_rand_unlock(EVP_RAND_CTX *rand)
112 {
113 if (rand->meth->unlock != NULL)
114 rand->meth->unlock(rand->algctx);
115 }
116
evp_rand_from_algorithm(int name_id,const OSSL_ALGORITHM * algodef,OSSL_PROVIDER * prov)117 static void *evp_rand_from_algorithm(int name_id,
118 const OSSL_ALGORITHM *algodef,
119 OSSL_PROVIDER *prov)
120 {
121 const OSSL_DISPATCH *fns = algodef->implementation;
122 EVP_RAND *rand = NULL;
123 int fnrandcnt = 0, fnctxcnt = 0, fnlockcnt = 0, fnenablelockcnt = 0;
124 #ifdef FIPS_MODULE
125 int fnzeroizecnt = 0;
126 #endif
127
128 if ((rand = evp_rand_new()) == NULL) {
129 ERR_raise(ERR_LIB_EVP, ERR_R_EVP_LIB);
130 return NULL;
131 }
132 rand->name_id = name_id;
133 if ((rand->type_name = ossl_algorithm_get1_first_name(algodef)) == NULL) {
134 evp_rand_free(rand);
135 return NULL;
136 }
137 rand->description = algodef->algorithm_description;
138 rand->dispatch = fns;
139 for (; fns->function_id != 0; fns++) {
140 switch (fns->function_id) {
141 case OSSL_FUNC_RAND_NEWCTX:
142 if (rand->newctx != NULL)
143 break;
144 rand->newctx = OSSL_FUNC_rand_newctx(fns);
145 fnctxcnt++;
146 break;
147 case OSSL_FUNC_RAND_FREECTX:
148 if (rand->freectx != NULL)
149 break;
150 rand->freectx = OSSL_FUNC_rand_freectx(fns);
151 fnctxcnt++;
152 break;
153 case OSSL_FUNC_RAND_INSTANTIATE:
154 if (rand->instantiate != NULL)
155 break;
156 rand->instantiate = OSSL_FUNC_rand_instantiate(fns);
157 fnrandcnt++;
158 break;
159 case OSSL_FUNC_RAND_UNINSTANTIATE:
160 if (rand->uninstantiate != NULL)
161 break;
162 rand->uninstantiate = OSSL_FUNC_rand_uninstantiate(fns);
163 fnrandcnt++;
164 break;
165 case OSSL_FUNC_RAND_GENERATE:
166 if (rand->generate != NULL)
167 break;
168 rand->generate = OSSL_FUNC_rand_generate(fns);
169 fnrandcnt++;
170 break;
171 case OSSL_FUNC_RAND_RESEED:
172 if (rand->reseed != NULL)
173 break;
174 rand->reseed = OSSL_FUNC_rand_reseed(fns);
175 break;
176 case OSSL_FUNC_RAND_NONCE:
177 if (rand->nonce != NULL)
178 break;
179 rand->nonce = OSSL_FUNC_rand_nonce(fns);
180 break;
181 case OSSL_FUNC_RAND_ENABLE_LOCKING:
182 if (rand->enable_locking != NULL)
183 break;
184 rand->enable_locking = OSSL_FUNC_rand_enable_locking(fns);
185 fnenablelockcnt++;
186 break;
187 case OSSL_FUNC_RAND_LOCK:
188 if (rand->lock != NULL)
189 break;
190 rand->lock = OSSL_FUNC_rand_lock(fns);
191 fnlockcnt++;
192 break;
193 case OSSL_FUNC_RAND_UNLOCK:
194 if (rand->unlock != NULL)
195 break;
196 rand->unlock = OSSL_FUNC_rand_unlock(fns);
197 fnlockcnt++;
198 break;
199 case OSSL_FUNC_RAND_GETTABLE_PARAMS:
200 if (rand->gettable_params != NULL)
201 break;
202 rand->gettable_params = OSSL_FUNC_rand_gettable_params(fns);
203 break;
204 case OSSL_FUNC_RAND_GETTABLE_CTX_PARAMS:
205 if (rand->gettable_ctx_params != NULL)
206 break;
207 rand->gettable_ctx_params = OSSL_FUNC_rand_gettable_ctx_params(fns);
208 break;
209 case OSSL_FUNC_RAND_SETTABLE_CTX_PARAMS:
210 if (rand->settable_ctx_params != NULL)
211 break;
212 rand->settable_ctx_params = OSSL_FUNC_rand_settable_ctx_params(fns);
213 break;
214 case OSSL_FUNC_RAND_GET_PARAMS:
215 if (rand->get_params != NULL)
216 break;
217 rand->get_params = OSSL_FUNC_rand_get_params(fns);
218 break;
219 case OSSL_FUNC_RAND_GET_CTX_PARAMS:
220 if (rand->get_ctx_params != NULL)
221 break;
222 rand->get_ctx_params = OSSL_FUNC_rand_get_ctx_params(fns);
223 fnctxcnt++;
224 break;
225 case OSSL_FUNC_RAND_SET_CTX_PARAMS:
226 if (rand->set_ctx_params != NULL)
227 break;
228 rand->set_ctx_params = OSSL_FUNC_rand_set_ctx_params(fns);
229 break;
230 case OSSL_FUNC_RAND_VERIFY_ZEROIZATION:
231 if (rand->verify_zeroization != NULL)
232 break;
233 rand->verify_zeroization = OSSL_FUNC_rand_verify_zeroization(fns);
234 #ifdef FIPS_MODULE
235 fnzeroizecnt++;
236 #endif
237 break;
238 case OSSL_FUNC_RAND_GET_SEED:
239 if (rand->get_seed != NULL)
240 break;
241 rand->get_seed = OSSL_FUNC_rand_get_seed(fns);
242 break;
243 case OSSL_FUNC_RAND_CLEAR_SEED:
244 if (rand->clear_seed != NULL)
245 break;
246 rand->clear_seed = OSSL_FUNC_rand_clear_seed(fns);
247 break;
248 }
249 }
250 /*
251 * In order to be a consistent set of functions we must have at least
252 * a complete set of "rand" functions and a complete set of context
253 * management functions. In FIPS mode, we also require the zeroization
254 * verification function.
255 *
256 * In addition, if locking can be enabled, we need a complete set of
257 * locking functions.
258 */
259 if (fnrandcnt != 3
260 || fnctxcnt != 3
261 || (fnenablelockcnt != 0 && fnenablelockcnt != 1)
262 || (fnlockcnt != 0 && fnlockcnt != 2)
263 #ifdef FIPS_MODULE
264 || fnzeroizecnt != 1
265 #endif
266 ) {
267 evp_rand_free(rand);
268 ERR_raise(ERR_LIB_EVP, EVP_R_INVALID_PROVIDER_FUNCTIONS);
269 return NULL;
270 }
271
272 if (prov != NULL && !ossl_provider_up_ref(prov)) {
273 evp_rand_free(rand);
274 ERR_raise(ERR_LIB_EVP, ERR_R_INTERNAL_ERROR);
275 return NULL;
276 }
277 rand->prov = prov;
278
279 return rand;
280 }
281
EVP_RAND_fetch(OSSL_LIB_CTX * libctx,const char * algorithm,const char * properties)282 EVP_RAND *EVP_RAND_fetch(OSSL_LIB_CTX *libctx, const char *algorithm,
283 const char *properties)
284 {
285 return evp_generic_fetch(libctx, OSSL_OP_RAND, algorithm, properties,
286 evp_rand_from_algorithm, evp_rand_up_ref,
287 evp_rand_free);
288 }
289
EVP_RAND_up_ref(EVP_RAND * rand)290 int EVP_RAND_up_ref(EVP_RAND *rand)
291 {
292 return evp_rand_up_ref(rand);
293 }
294
EVP_RAND_free(EVP_RAND * rand)295 void EVP_RAND_free(EVP_RAND *rand)
296 {
297 evp_rand_free(rand);
298 }
299
evp_rand_get_number(const EVP_RAND * rand)300 int evp_rand_get_number(const EVP_RAND *rand)
301 {
302 return rand->name_id;
303 }
304
EVP_RAND_get0_name(const EVP_RAND * rand)305 const char *EVP_RAND_get0_name(const EVP_RAND *rand)
306 {
307 return rand->type_name;
308 }
309
EVP_RAND_get0_description(const EVP_RAND * rand)310 const char *EVP_RAND_get0_description(const EVP_RAND *rand)
311 {
312 return rand->description;
313 }
314
EVP_RAND_is_a(const EVP_RAND * rand,const char * name)315 int EVP_RAND_is_a(const EVP_RAND *rand, const char *name)
316 {
317 return rand != NULL && evp_is_a(rand->prov, rand->name_id, NULL, name);
318 }
319
EVP_RAND_get0_provider(const EVP_RAND * rand)320 const OSSL_PROVIDER *EVP_RAND_get0_provider(const EVP_RAND *rand)
321 {
322 return rand->prov;
323 }
324
EVP_RAND_get_params(EVP_RAND * rand,OSSL_PARAM params[])325 int EVP_RAND_get_params(EVP_RAND *rand, OSSL_PARAM params[])
326 {
327 if (rand->get_params != NULL)
328 return rand->get_params(params);
329 return 1;
330 }
331
EVP_RAND_CTX_up_ref(EVP_RAND_CTX * ctx)332 int EVP_RAND_CTX_up_ref(EVP_RAND_CTX *ctx)
333 {
334 int ref = 0;
335
336 return CRYPTO_UP_REF(&ctx->refcnt, &ref);
337 }
338
EVP_RAND_CTX_new(EVP_RAND * rand,EVP_RAND_CTX * parent)339 EVP_RAND_CTX *EVP_RAND_CTX_new(EVP_RAND *rand, EVP_RAND_CTX *parent)
340 {
341 EVP_RAND_CTX *ctx;
342 void *parent_ctx = NULL;
343 const OSSL_DISPATCH *parent_dispatch = NULL;
344
345 if (rand == NULL) {
346 ERR_raise(ERR_LIB_EVP, EVP_R_INVALID_NULL_ALGORITHM);
347 return NULL;
348 }
349
350 ctx = OPENSSL_zalloc(sizeof(*ctx));
351 if (ctx == NULL)
352 return NULL;
353 if (!CRYPTO_NEW_REF(&ctx->refcnt, 1)) {
354 OPENSSL_free(ctx);
355 return NULL;
356 }
357 if (parent != NULL) {
358 if (!EVP_RAND_CTX_up_ref(parent)) {
359 ERR_raise(ERR_LIB_EVP, ERR_R_INTERNAL_ERROR);
360 CRYPTO_FREE_REF(&ctx->refcnt);
361 OPENSSL_free(ctx);
362 return NULL;
363 }
364 parent_ctx = parent->algctx;
365 parent_dispatch = parent->meth->dispatch;
366 }
367 if ((ctx->algctx = rand->newctx(ossl_provider_ctx(rand->prov), parent_ctx,
368 parent_dispatch))
369 == NULL
370 || !EVP_RAND_up_ref(rand)) {
371 ERR_raise(ERR_LIB_EVP, ERR_R_EVP_LIB);
372 rand->freectx(ctx->algctx);
373 CRYPTO_FREE_REF(&ctx->refcnt);
374 OPENSSL_free(ctx);
375 EVP_RAND_CTX_free(parent);
376 return NULL;
377 }
378 ctx->meth = rand;
379 ctx->parent = parent;
380 return ctx;
381 }
382
EVP_RAND_CTX_free(EVP_RAND_CTX * ctx)383 void EVP_RAND_CTX_free(EVP_RAND_CTX *ctx)
384 {
385 int ref = 0;
386 EVP_RAND_CTX *parent;
387
388 if (ctx == NULL)
389 return;
390
391 CRYPTO_DOWN_REF(&ctx->refcnt, &ref);
392 if (ref > 0)
393 return;
394 parent = ctx->parent;
395 ctx->meth->freectx(ctx->algctx);
396 ctx->algctx = NULL;
397 EVP_RAND_free(ctx->meth);
398 CRYPTO_FREE_REF(&ctx->refcnt);
399 OPENSSL_free(ctx);
400 EVP_RAND_CTX_free(parent);
401 }
402
EVP_RAND_CTX_get0_rand(EVP_RAND_CTX * ctx)403 EVP_RAND *EVP_RAND_CTX_get0_rand(EVP_RAND_CTX *ctx)
404 {
405 return ctx->meth;
406 }
407
evp_rand_get_ctx_params_locked(EVP_RAND_CTX * ctx,OSSL_PARAM params[])408 static int evp_rand_get_ctx_params_locked(EVP_RAND_CTX *ctx,
409 OSSL_PARAM params[])
410 {
411 return ctx->meth->get_ctx_params(ctx->algctx, params);
412 }
413
EVP_RAND_CTX_get_params(EVP_RAND_CTX * ctx,OSSL_PARAM params[])414 int EVP_RAND_CTX_get_params(EVP_RAND_CTX *ctx, OSSL_PARAM params[])
415 {
416 int res;
417
418 if (!evp_rand_lock(ctx))
419 return 0;
420 res = evp_rand_get_ctx_params_locked(ctx, params);
421 evp_rand_unlock(ctx);
422 return res;
423 }
424
evp_rand_set_ctx_params_locked(EVP_RAND_CTX * ctx,const OSSL_PARAM params[])425 static int evp_rand_set_ctx_params_locked(EVP_RAND_CTX *ctx,
426 const OSSL_PARAM params[])
427 {
428 if (ctx->meth->set_ctx_params != NULL)
429 return ctx->meth->set_ctx_params(ctx->algctx, params);
430 return 1;
431 }
432
EVP_RAND_CTX_set_params(EVP_RAND_CTX * ctx,const OSSL_PARAM params[])433 int EVP_RAND_CTX_set_params(EVP_RAND_CTX *ctx, const OSSL_PARAM params[])
434 {
435 int res;
436
437 if (!evp_rand_lock(ctx))
438 return 0;
439 res = evp_rand_set_ctx_params_locked(ctx, params);
440 evp_rand_unlock(ctx);
441 return res;
442 }
443
EVP_RAND_gettable_params(const EVP_RAND * rand)444 const OSSL_PARAM *EVP_RAND_gettable_params(const EVP_RAND *rand)
445 {
446 if (rand->gettable_params == NULL)
447 return NULL;
448 return rand->gettable_params(ossl_provider_ctx(EVP_RAND_get0_provider(rand)));
449 }
450
EVP_RAND_gettable_ctx_params(const EVP_RAND * rand)451 const OSSL_PARAM *EVP_RAND_gettable_ctx_params(const EVP_RAND *rand)
452 {
453 void *provctx;
454
455 if (rand->gettable_ctx_params == NULL)
456 return NULL;
457 provctx = ossl_provider_ctx(EVP_RAND_get0_provider(rand));
458 return rand->gettable_ctx_params(NULL, provctx);
459 }
460
EVP_RAND_settable_ctx_params(const EVP_RAND * rand)461 const OSSL_PARAM *EVP_RAND_settable_ctx_params(const EVP_RAND *rand)
462 {
463 void *provctx;
464
465 if (rand->settable_ctx_params == NULL)
466 return NULL;
467 provctx = ossl_provider_ctx(EVP_RAND_get0_provider(rand));
468 return rand->settable_ctx_params(NULL, provctx);
469 }
470
EVP_RAND_CTX_gettable_params(EVP_RAND_CTX * ctx)471 const OSSL_PARAM *EVP_RAND_CTX_gettable_params(EVP_RAND_CTX *ctx)
472 {
473 void *provctx;
474
475 if (ctx->meth->gettable_ctx_params == NULL)
476 return NULL;
477 provctx = ossl_provider_ctx(EVP_RAND_get0_provider(ctx->meth));
478 return ctx->meth->gettable_ctx_params(ctx->algctx, provctx);
479 }
480
EVP_RAND_CTX_settable_params(EVP_RAND_CTX * ctx)481 const OSSL_PARAM *EVP_RAND_CTX_settable_params(EVP_RAND_CTX *ctx)
482 {
483 void *provctx;
484
485 if (ctx->meth->settable_ctx_params == NULL)
486 return NULL;
487 provctx = ossl_provider_ctx(EVP_RAND_get0_provider(ctx->meth));
488 return ctx->meth->settable_ctx_params(ctx->algctx, provctx);
489 }
490
EVP_RAND_do_all_provided(OSSL_LIB_CTX * libctx,void (* fn)(EVP_RAND * rand,void * arg),void * arg)491 void EVP_RAND_do_all_provided(OSSL_LIB_CTX *libctx,
492 void (*fn)(EVP_RAND *rand, void *arg),
493 void *arg)
494 {
495 evp_generic_do_all(libctx, OSSL_OP_RAND,
496 (void (*)(void *, void *))fn, arg,
497 evp_rand_from_algorithm, evp_rand_up_ref,
498 evp_rand_free);
499 }
500
EVP_RAND_names_do_all(const EVP_RAND * rand,void (* fn)(const char * name,void * data),void * data)501 int EVP_RAND_names_do_all(const EVP_RAND *rand,
502 void (*fn)(const char *name, void *data),
503 void *data)
504 {
505 if (rand->prov != NULL)
506 return evp_names_do_all(rand->prov, rand->name_id, fn, data);
507
508 return 1;
509 }
510
evp_rand_instantiate_locked(EVP_RAND_CTX * ctx,unsigned int strength,int prediction_resistance,const unsigned char * pstr,size_t pstr_len,const OSSL_PARAM params[])511 static int evp_rand_instantiate_locked(EVP_RAND_CTX *ctx, unsigned int strength, int prediction_resistance,
512 const unsigned char *pstr, size_t pstr_len, const OSSL_PARAM params[])
513 {
514 return ctx->meth->instantiate(ctx->algctx, strength, prediction_resistance,
515 pstr, pstr_len, params);
516 }
517
EVP_RAND_instantiate(EVP_RAND_CTX * ctx,unsigned int strength,int prediction_resistance,const unsigned char * pstr,size_t pstr_len,const OSSL_PARAM params[])518 int EVP_RAND_instantiate(EVP_RAND_CTX *ctx, unsigned int strength,
519 int prediction_resistance,
520 const unsigned char *pstr, size_t pstr_len,
521 const OSSL_PARAM params[])
522 {
523 int res;
524
525 if (!evp_rand_lock(ctx))
526 return 0;
527 res = evp_rand_instantiate_locked(ctx, strength, prediction_resistance,
528 pstr, pstr_len, params);
529 evp_rand_unlock(ctx);
530 return res;
531 }
532
evp_rand_uninstantiate_locked(EVP_RAND_CTX * ctx)533 static int evp_rand_uninstantiate_locked(EVP_RAND_CTX *ctx)
534 {
535 return ctx->meth->uninstantiate(ctx->algctx);
536 }
537
EVP_RAND_uninstantiate(EVP_RAND_CTX * ctx)538 int EVP_RAND_uninstantiate(EVP_RAND_CTX *ctx)
539 {
540 int res;
541
542 if (!evp_rand_lock(ctx))
543 return 0;
544 res = evp_rand_uninstantiate_locked(ctx);
545 evp_rand_unlock(ctx);
546 return res;
547 }
548
evp_rand_generate_locked(EVP_RAND_CTX * ctx,unsigned char * out,size_t outlen,unsigned int strength,int prediction_resistance,const unsigned char * addin,size_t addin_len)549 static int evp_rand_generate_locked(EVP_RAND_CTX *ctx, unsigned char *out,
550 size_t outlen, unsigned int strength,
551 int prediction_resistance,
552 const unsigned char *addin,
553 size_t addin_len)
554 {
555 size_t chunk, max_request = 0;
556 OSSL_PARAM params[2] = { OSSL_PARAM_END, OSSL_PARAM_END };
557
558 params[0] = OSSL_PARAM_construct_size_t(OSSL_RAND_PARAM_MAX_REQUEST,
559 &max_request);
560 if (!evp_rand_get_ctx_params_locked(ctx, params)
561 || max_request == 0) {
562 ERR_raise(ERR_LIB_EVP, EVP_R_UNABLE_TO_GET_MAXIMUM_REQUEST_SIZE);
563 return 0;
564 }
565 for (; outlen > 0; outlen -= chunk, out += chunk) {
566 chunk = outlen > max_request ? max_request : outlen;
567 if (!ctx->meth->generate(ctx->algctx, out, chunk, strength,
568 prediction_resistance, addin, addin_len)) {
569 ERR_raise(ERR_LIB_EVP, EVP_R_GENERATE_ERROR);
570 return 0;
571 }
572 /*
573 * Prediction resistance is only relevant the first time around,
574 * subsequently, the DRBG has already been properly reseeded.
575 */
576 prediction_resistance = 0;
577 }
578 return 1;
579 }
580
EVP_RAND_generate(EVP_RAND_CTX * ctx,unsigned char * out,size_t outlen,unsigned int strength,int prediction_resistance,const unsigned char * addin,size_t addin_len)581 int EVP_RAND_generate(EVP_RAND_CTX *ctx, unsigned char *out, size_t outlen,
582 unsigned int strength, int prediction_resistance,
583 const unsigned char *addin, size_t addin_len)
584 {
585 int res;
586
587 if (!evp_rand_lock(ctx))
588 return 0;
589 res = evp_rand_generate_locked(ctx, out, outlen, strength,
590 prediction_resistance, addin, addin_len);
591 evp_rand_unlock(ctx);
592 return res;
593 }
594
evp_rand_reseed_locked(EVP_RAND_CTX * ctx,int prediction_resistance,const unsigned char * ent,size_t ent_len,const unsigned char * addin,size_t addin_len)595 static int evp_rand_reseed_locked(EVP_RAND_CTX *ctx, int prediction_resistance,
596 const unsigned char *ent, size_t ent_len,
597 const unsigned char *addin, size_t addin_len)
598 {
599 if (ctx->meth->reseed != NULL)
600 return ctx->meth->reseed(ctx->algctx, prediction_resistance,
601 ent, ent_len, addin, addin_len);
602 return 1;
603 }
604
EVP_RAND_reseed(EVP_RAND_CTX * ctx,int prediction_resistance,const unsigned char * ent,size_t ent_len,const unsigned char * addin,size_t addin_len)605 int EVP_RAND_reseed(EVP_RAND_CTX *ctx, int prediction_resistance,
606 const unsigned char *ent, size_t ent_len,
607 const unsigned char *addin, size_t addin_len)
608 {
609 int res;
610
611 if (!evp_rand_lock(ctx))
612 return 0;
613 res = evp_rand_reseed_locked(ctx, prediction_resistance,
614 ent, ent_len, addin, addin_len);
615 evp_rand_unlock(ctx);
616 return res;
617 }
618
evp_rand_strength_locked(EVP_RAND_CTX * ctx)619 static unsigned int evp_rand_strength_locked(EVP_RAND_CTX *ctx)
620 {
621 OSSL_PARAM params[2] = { OSSL_PARAM_END, OSSL_PARAM_END };
622 unsigned int strength = 0;
623
624 params[0] = OSSL_PARAM_construct_uint(OSSL_RAND_PARAM_STRENGTH, &strength);
625 if (!evp_rand_get_ctx_params_locked(ctx, params))
626 return 0;
627 return strength;
628 }
629
EVP_RAND_get_strength(EVP_RAND_CTX * ctx)630 unsigned int EVP_RAND_get_strength(EVP_RAND_CTX *ctx)
631 {
632 unsigned int res;
633
634 if (!evp_rand_lock(ctx))
635 return 0;
636 res = evp_rand_strength_locked(ctx);
637 evp_rand_unlock(ctx);
638 return res;
639 }
640
evp_rand_nonce_locked(EVP_RAND_CTX * ctx,unsigned char * out,size_t outlen)641 static int evp_rand_nonce_locked(EVP_RAND_CTX *ctx, unsigned char *out,
642 size_t outlen)
643 {
644 unsigned int str = evp_rand_strength_locked(ctx);
645
646 if (ctx->meth->nonce != NULL)
647 return ctx->meth->nonce(ctx->algctx, out, str, outlen, outlen) > 0;
648 return evp_rand_generate_locked(ctx, out, outlen, str, 0, NULL, 0);
649 }
650
EVP_RAND_nonce(EVP_RAND_CTX * ctx,unsigned char * out,size_t outlen)651 int EVP_RAND_nonce(EVP_RAND_CTX *ctx, unsigned char *out, size_t outlen)
652 {
653 int res;
654
655 if (ctx == NULL || out == NULL || outlen == 0) {
656 ERR_raise(ERR_LIB_EVP, ERR_R_PASSED_NULL_PARAMETER);
657 return 0;
658 }
659
660 if (!evp_rand_lock(ctx))
661 return 0;
662 res = evp_rand_nonce_locked(ctx, out, outlen);
663 evp_rand_unlock(ctx);
664 return res;
665 }
666
EVP_RAND_get_state(EVP_RAND_CTX * ctx)667 int EVP_RAND_get_state(EVP_RAND_CTX *ctx)
668 {
669 OSSL_PARAM params[2] = { OSSL_PARAM_END, OSSL_PARAM_END };
670 int state;
671
672 params[0] = OSSL_PARAM_construct_int(OSSL_RAND_PARAM_STATE, &state);
673 if (!EVP_RAND_CTX_get_params(ctx, params))
674 state = EVP_RAND_STATE_ERROR;
675 return state;
676 }
677
evp_rand_verify_zeroization_locked(EVP_RAND_CTX * ctx)678 static int evp_rand_verify_zeroization_locked(EVP_RAND_CTX *ctx)
679 {
680 if (ctx->meth->verify_zeroization != NULL)
681 return ctx->meth->verify_zeroization(ctx->algctx);
682 return 0;
683 }
684
EVP_RAND_verify_zeroization(EVP_RAND_CTX * ctx)685 int EVP_RAND_verify_zeroization(EVP_RAND_CTX *ctx)
686 {
687 int res;
688
689 if (!evp_rand_lock(ctx))
690 return 0;
691 res = evp_rand_verify_zeroization_locked(ctx);
692 evp_rand_unlock(ctx);
693 return res;
694 }
695
evp_rand_can_seed(EVP_RAND_CTX * ctx)696 int evp_rand_can_seed(EVP_RAND_CTX *ctx)
697 {
698 return ctx->meth->get_seed != NULL;
699 }
700
evp_rand_get_seed_locked(EVP_RAND_CTX * ctx,unsigned char ** buffer,int entropy,size_t min_len,size_t max_len,int prediction_resistance,const unsigned char * adin,size_t adin_len)701 static size_t evp_rand_get_seed_locked(EVP_RAND_CTX *ctx,
702 unsigned char **buffer,
703 int entropy,
704 size_t min_len, size_t max_len,
705 int prediction_resistance,
706 const unsigned char *adin,
707 size_t adin_len)
708 {
709 if (ctx->meth->get_seed != NULL)
710 return ctx->meth->get_seed(ctx->algctx, buffer,
711 entropy, min_len, max_len,
712 prediction_resistance,
713 adin, adin_len);
714 return 0;
715 }
716
evp_rand_get_seed(EVP_RAND_CTX * ctx,unsigned char ** buffer,int entropy,size_t min_len,size_t max_len,int prediction_resistance,const unsigned char * adin,size_t adin_len)717 size_t evp_rand_get_seed(EVP_RAND_CTX *ctx,
718 unsigned char **buffer,
719 int entropy, size_t min_len, size_t max_len,
720 int prediction_resistance,
721 const unsigned char *adin, size_t adin_len)
722 {
723 int res;
724
725 if (!evp_rand_lock(ctx))
726 return 0;
727 res = evp_rand_get_seed_locked(ctx,
728 buffer,
729 entropy, min_len, max_len,
730 prediction_resistance,
731 adin, adin_len);
732 evp_rand_unlock(ctx);
733 return res;
734 }
735
evp_rand_clear_seed_locked(EVP_RAND_CTX * ctx,unsigned char * buffer,size_t b_len)736 static void evp_rand_clear_seed_locked(EVP_RAND_CTX *ctx,
737 unsigned char *buffer, size_t b_len)
738 {
739 if (ctx->meth->clear_seed != NULL)
740 ctx->meth->clear_seed(ctx->algctx, buffer, b_len);
741 }
742
evp_rand_clear_seed(EVP_RAND_CTX * ctx,unsigned char * buffer,size_t b_len)743 void evp_rand_clear_seed(EVP_RAND_CTX *ctx,
744 unsigned char *buffer, size_t b_len)
745 {
746 if (!evp_rand_lock(ctx))
747 return;
748 evp_rand_clear_seed_locked(ctx, buffer, b_len);
749 evp_rand_unlock(ctx);
750 }
751