1 /*
2 * Copyright 1995-2026 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 <ctype.h>
13 #include <openssl/objects.h>
14 #include <openssl/evp.h>
15 #include <openssl/hmac.h>
16 #include <openssl/core_names.h>
17 #include <openssl/ocsp.h>
18 #include <openssl/conf.h>
19 #include <openssl/x509v3.h>
20 #include <openssl/dh.h>
21 #include <openssl/bn.h>
22 #include <openssl/provider.h>
23 #include <openssl/param_build.h>
24 #include "internal/nelem.h"
25 #include "internal/sizes.h"
26 #include "internal/tlsgroups.h"
27 #include "internal/ssl_unwrap.h"
28 #include "ssl_local.h"
29 #include "quic/quic_local.h"
30 #include <openssl/ct.h>
31
32 static const SIGALG_LOOKUP *find_sig_alg(SSL_CONNECTION *s, X509 *x, EVP_PKEY *pkey);
33 static int tls12_sigalg_allowed(const SSL_CONNECTION *s, int op, const SIGALG_LOOKUP *lu);
34
35 SSL3_ENC_METHOD const TLSv1_enc_data = {
36 tls1_setup_key_block,
37 tls1_generate_master_secret,
38 tls1_change_cipher_state,
39 tls1_final_finish_mac,
40 TLS_MD_CLIENT_FINISH_CONST, TLS_MD_CLIENT_FINISH_CONST_SIZE,
41 TLS_MD_SERVER_FINISH_CONST, TLS_MD_SERVER_FINISH_CONST_SIZE,
42 tls1_alert_code,
43 tls1_export_keying_material,
44 0,
45 ssl3_set_handshake_header,
46 tls_close_construct_packet,
47 ssl3_handshake_write
48 };
49
50 SSL3_ENC_METHOD const TLSv1_1_enc_data = {
51 tls1_setup_key_block,
52 tls1_generate_master_secret,
53 tls1_change_cipher_state,
54 tls1_final_finish_mac,
55 TLS_MD_CLIENT_FINISH_CONST, TLS_MD_CLIENT_FINISH_CONST_SIZE,
56 TLS_MD_SERVER_FINISH_CONST, TLS_MD_SERVER_FINISH_CONST_SIZE,
57 tls1_alert_code,
58 tls1_export_keying_material,
59 0,
60 ssl3_set_handshake_header,
61 tls_close_construct_packet,
62 ssl3_handshake_write
63 };
64
65 SSL3_ENC_METHOD const TLSv1_2_enc_data = {
66 tls1_setup_key_block,
67 tls1_generate_master_secret,
68 tls1_change_cipher_state,
69 tls1_final_finish_mac,
70 TLS_MD_CLIENT_FINISH_CONST, TLS_MD_CLIENT_FINISH_CONST_SIZE,
71 TLS_MD_SERVER_FINISH_CONST, TLS_MD_SERVER_FINISH_CONST_SIZE,
72 tls1_alert_code,
73 tls1_export_keying_material,
74 SSL_ENC_FLAG_SIGALGS | SSL_ENC_FLAG_SHA256_PRF
75 | SSL_ENC_FLAG_TLS1_2_CIPHERS,
76 ssl3_set_handshake_header,
77 tls_close_construct_packet,
78 ssl3_handshake_write
79 };
80
81 SSL3_ENC_METHOD const TLSv1_3_enc_data = {
82 tls13_setup_key_block,
83 tls13_generate_master_secret,
84 tls13_change_cipher_state,
85 tls13_final_finish_mac,
86 TLS_MD_CLIENT_FINISH_CONST, TLS_MD_CLIENT_FINISH_CONST_SIZE,
87 TLS_MD_SERVER_FINISH_CONST, TLS_MD_SERVER_FINISH_CONST_SIZE,
88 tls13_alert_code,
89 tls13_export_keying_material,
90 SSL_ENC_FLAG_SIGALGS | SSL_ENC_FLAG_SHA256_PRF,
91 ssl3_set_handshake_header,
92 tls_close_construct_packet,
93 ssl3_handshake_write
94 };
95
tls1_default_timeout(void)96 OSSL_TIME tls1_default_timeout(void)
97 {
98 /*
99 * 2 hours, the 24 hours mentioned in the TLSv1 spec is way too long for
100 * http, the cache would over fill
101 */
102 return ossl_seconds2time(60 * 60 * 2);
103 }
104
tls1_new(SSL * s)105 int tls1_new(SSL *s)
106 {
107 if (!ssl3_new(s))
108 return 0;
109 if (!s->method->ssl_clear(s))
110 return 0;
111
112 return 1;
113 }
114
tls1_free(SSL * s)115 void tls1_free(SSL *s)
116 {
117 SSL_CONNECTION *sc = SSL_CONNECTION_FROM_SSL(s);
118
119 if (sc == NULL)
120 return;
121
122 OPENSSL_free(sc->ext.session_ticket);
123 ssl3_free(s);
124 }
125
tls1_clear(SSL * s)126 int tls1_clear(SSL *s)
127 {
128 SSL_CONNECTION *sc = SSL_CONNECTION_FROM_SSL(s);
129
130 if (sc == NULL)
131 return 0;
132
133 if (!ssl3_clear(s))
134 return 0;
135
136 if (s->method->version == TLS_ANY_VERSION)
137 sc->version = TLS_MAX_VERSION_INTERNAL;
138 else
139 sc->version = s->method->version;
140
141 return 1;
142 }
143
144 /* Legacy NID to group_id mapping. Only works for groups we know about */
145 static const struct {
146 int nid;
147 uint16_t group_id;
148 } nid_to_group[] = {
149 { NID_sect163k1, OSSL_TLS_GROUP_ID_sect163k1 },
150 { NID_sect163r1, OSSL_TLS_GROUP_ID_sect163r1 },
151 { NID_sect163r2, OSSL_TLS_GROUP_ID_sect163r2 },
152 { NID_sect193r1, OSSL_TLS_GROUP_ID_sect193r1 },
153 { NID_sect193r2, OSSL_TLS_GROUP_ID_sect193r2 },
154 { NID_sect233k1, OSSL_TLS_GROUP_ID_sect233k1 },
155 { NID_sect233r1, OSSL_TLS_GROUP_ID_sect233r1 },
156 { NID_sect239k1, OSSL_TLS_GROUP_ID_sect239k1 },
157 { NID_sect283k1, OSSL_TLS_GROUP_ID_sect283k1 },
158 { NID_sect283r1, OSSL_TLS_GROUP_ID_sect283r1 },
159 { NID_sect409k1, OSSL_TLS_GROUP_ID_sect409k1 },
160 { NID_sect409r1, OSSL_TLS_GROUP_ID_sect409r1 },
161 { NID_sect571k1, OSSL_TLS_GROUP_ID_sect571k1 },
162 { NID_sect571r1, OSSL_TLS_GROUP_ID_sect571r1 },
163 { NID_secp160k1, OSSL_TLS_GROUP_ID_secp160k1 },
164 { NID_secp160r1, OSSL_TLS_GROUP_ID_secp160r1 },
165 { NID_secp160r2, OSSL_TLS_GROUP_ID_secp160r2 },
166 { NID_secp192k1, OSSL_TLS_GROUP_ID_secp192k1 },
167 { NID_X9_62_prime192v1, OSSL_TLS_GROUP_ID_secp192r1 },
168 { NID_secp224k1, OSSL_TLS_GROUP_ID_secp224k1 },
169 { NID_secp224r1, OSSL_TLS_GROUP_ID_secp224r1 },
170 { NID_secp256k1, OSSL_TLS_GROUP_ID_secp256k1 },
171 { NID_X9_62_prime256v1, OSSL_TLS_GROUP_ID_secp256r1 },
172 { NID_secp384r1, OSSL_TLS_GROUP_ID_secp384r1 },
173 { NID_secp521r1, OSSL_TLS_GROUP_ID_secp521r1 },
174 { NID_brainpoolP256r1, OSSL_TLS_GROUP_ID_brainpoolP256r1 },
175 { NID_brainpoolP384r1, OSSL_TLS_GROUP_ID_brainpoolP384r1 },
176 { NID_brainpoolP512r1, OSSL_TLS_GROUP_ID_brainpoolP512r1 },
177 { EVP_PKEY_X25519, OSSL_TLS_GROUP_ID_x25519 },
178 { EVP_PKEY_X448, OSSL_TLS_GROUP_ID_x448 },
179 { NID_brainpoolP256r1tls13, OSSL_TLS_GROUP_ID_brainpoolP256r1_tls13 },
180 { NID_brainpoolP384r1tls13, OSSL_TLS_GROUP_ID_brainpoolP384r1_tls13 },
181 { NID_brainpoolP512r1tls13, OSSL_TLS_GROUP_ID_brainpoolP512r1_tls13 },
182 { NID_id_tc26_gost_3410_2012_256_paramSetA, OSSL_TLS_GROUP_ID_gc256A },
183 { NID_id_tc26_gost_3410_2012_256_paramSetB, OSSL_TLS_GROUP_ID_gc256B },
184 { NID_id_tc26_gost_3410_2012_256_paramSetC, OSSL_TLS_GROUP_ID_gc256C },
185 { NID_id_tc26_gost_3410_2012_256_paramSetD, OSSL_TLS_GROUP_ID_gc256D },
186 { NID_id_tc26_gost_3410_2012_512_paramSetA, OSSL_TLS_GROUP_ID_gc512A },
187 { NID_id_tc26_gost_3410_2012_512_paramSetB, OSSL_TLS_GROUP_ID_gc512B },
188 { NID_id_tc26_gost_3410_2012_512_paramSetC, OSSL_TLS_GROUP_ID_gc512C },
189 { NID_ffdhe2048, OSSL_TLS_GROUP_ID_ffdhe2048 },
190 { NID_ffdhe3072, OSSL_TLS_GROUP_ID_ffdhe3072 },
191 { NID_ffdhe4096, OSSL_TLS_GROUP_ID_ffdhe4096 },
192 { NID_ffdhe6144, OSSL_TLS_GROUP_ID_ffdhe6144 },
193 { NID_ffdhe8192, OSSL_TLS_GROUP_ID_ffdhe8192 }
194 };
195
196 static const unsigned char ecformats_default[] = {
197 TLSEXT_ECPOINTFORMAT_uncompressed,
198 TLSEXT_ECPOINTFORMAT_ansiX962_compressed_prime,
199 TLSEXT_ECPOINTFORMAT_ansiX962_compressed_char2
200 };
201
202 /* Group list string of the built-in pseudo group DEFAULT */
203 #define DEFAULT_GROUP_NAME "DEFAULT"
204 #define TLS_DEFAULT_GROUP_LIST \
205 "?*X25519MLKEM768 / ?*X25519:?secp256r1 / ?X448:?secp384r1:?secp521r1 / ?ffdhe2048:?ffdhe3072"
206
207 static const uint16_t suiteb_curves[] = {
208 OSSL_TLS_GROUP_ID_secp256r1,
209 OSSL_TLS_GROUP_ID_secp384r1,
210 };
211
212 /* Group list string of the built-in pseudo group DEFAULT_SUITE_B */
213 #define SUITE_B_GROUP_NAME "DEFAULT_SUITE_B"
214 #define SUITE_B_GROUP_LIST "?secp256r1:?secp384r1",
215
216 struct provider_ctx_data_st {
217 SSL_CTX *ctx;
218 OSSL_PROVIDER *provider;
219 };
220
221 #define TLS_GROUP_LIST_MALLOC_BLOCK_SIZE 10
222 static OSSL_CALLBACK add_provider_groups;
add_provider_groups(const OSSL_PARAM params[],void * data)223 static int add_provider_groups(const OSSL_PARAM params[], void *data)
224 {
225 struct provider_ctx_data_st *pgd = data;
226 SSL_CTX *ctx = pgd->ctx;
227 const OSSL_PARAM *p;
228 TLS_GROUP_INFO *ginf = NULL;
229 EVP_KEYMGMT *keymgmt;
230 unsigned int gid;
231 unsigned int is_kem = 0;
232 int ret = 0;
233
234 if (ctx->group_list_max_len == ctx->group_list_len) {
235 TLS_GROUP_INFO *tmp = NULL;
236
237 if (ctx->group_list_max_len == 0)
238 tmp = OPENSSL_malloc(sizeof(TLS_GROUP_INFO)
239 * TLS_GROUP_LIST_MALLOC_BLOCK_SIZE);
240 else
241 tmp = OPENSSL_realloc(ctx->group_list,
242 (ctx->group_list_max_len
243 + TLS_GROUP_LIST_MALLOC_BLOCK_SIZE)
244 * sizeof(TLS_GROUP_INFO));
245 if (tmp == NULL)
246 return 0;
247 ctx->group_list = tmp;
248 memset(tmp + ctx->group_list_max_len,
249 0,
250 sizeof(TLS_GROUP_INFO) * TLS_GROUP_LIST_MALLOC_BLOCK_SIZE);
251 ctx->group_list_max_len += TLS_GROUP_LIST_MALLOC_BLOCK_SIZE;
252 }
253
254 ginf = &ctx->group_list[ctx->group_list_len];
255
256 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_GROUP_NAME);
257 if (p == NULL || p->data_type != OSSL_PARAM_UTF8_STRING) {
258 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
259 goto err;
260 }
261 ginf->tlsname = OPENSSL_strdup(p->data);
262 if (ginf->tlsname == NULL)
263 goto err;
264
265 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_GROUP_NAME_INTERNAL);
266 if (p == NULL || p->data_type != OSSL_PARAM_UTF8_STRING) {
267 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
268 goto err;
269 }
270 ginf->realname = OPENSSL_strdup(p->data);
271 if (ginf->realname == NULL)
272 goto err;
273
274 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_GROUP_ID);
275 if (p == NULL || !OSSL_PARAM_get_uint(p, &gid) || gid > UINT16_MAX) {
276 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
277 goto err;
278 }
279 ginf->group_id = (uint16_t)gid;
280
281 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_GROUP_ALG);
282 if (p == NULL || p->data_type != OSSL_PARAM_UTF8_STRING) {
283 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
284 goto err;
285 }
286 ginf->algorithm = OPENSSL_strdup(p->data);
287 if (ginf->algorithm == NULL)
288 goto err;
289
290 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_GROUP_SECURITY_BITS);
291 if (p == NULL || !OSSL_PARAM_get_uint(p, &ginf->secbits)) {
292 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
293 goto err;
294 }
295
296 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_GROUP_IS_KEM);
297 if (p != NULL && (!OSSL_PARAM_get_uint(p, &is_kem) || is_kem > 1)) {
298 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
299 goto err;
300 }
301 ginf->is_kem = 1 & is_kem;
302
303 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_GROUP_MIN_TLS);
304 if (p == NULL || !OSSL_PARAM_get_int(p, &ginf->mintls)) {
305 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
306 goto err;
307 }
308
309 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_GROUP_MAX_TLS);
310 if (p == NULL || !OSSL_PARAM_get_int(p, &ginf->maxtls)) {
311 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
312 goto err;
313 }
314
315 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_GROUP_MIN_DTLS);
316 if (p == NULL || !OSSL_PARAM_get_int(p, &ginf->mindtls)) {
317 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
318 goto err;
319 }
320
321 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_GROUP_MAX_DTLS);
322 if (p == NULL || !OSSL_PARAM_get_int(p, &ginf->maxdtls)) {
323 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
324 goto err;
325 }
326 /*
327 * Now check that the algorithm is actually usable for our property query
328 * string. Regardless of the result we still return success because we have
329 * successfully processed this group, even though we may decide not to use
330 * it.
331 */
332 ret = 1;
333 ERR_set_mark();
334 keymgmt = EVP_KEYMGMT_fetch(ctx->libctx, ginf->algorithm, ctx->propq);
335 if (keymgmt != NULL) {
336 /* We have successfully fetched the algorithm, we can use the group. */
337 ctx->group_list_len++;
338 ginf = NULL;
339 EVP_KEYMGMT_free(keymgmt);
340 }
341 ERR_pop_to_mark();
342 err:
343 if (ginf != NULL) {
344 OPENSSL_free(ginf->tlsname);
345 OPENSSL_free(ginf->realname);
346 OPENSSL_free(ginf->algorithm);
347 ginf->algorithm = ginf->tlsname = ginf->realname = NULL;
348 }
349 return ret;
350 }
351
discover_provider_groups(OSSL_PROVIDER * provider,void * vctx)352 static int discover_provider_groups(OSSL_PROVIDER *provider, void *vctx)
353 {
354 struct provider_ctx_data_st pgd;
355
356 pgd.ctx = vctx;
357 pgd.provider = provider;
358 return OSSL_PROVIDER_get_capabilities(provider, "TLS-GROUP",
359 add_provider_groups, &pgd);
360 }
361
ssl_load_groups(SSL_CTX * ctx)362 int ssl_load_groups(SSL_CTX *ctx)
363 {
364 if (!OSSL_PROVIDER_do_all(ctx->libctx, discover_provider_groups, ctx))
365 return 0;
366
367 return SSL_CTX_set1_groups_list(ctx, TLS_DEFAULT_GROUP_LIST);
368 }
369
inferred_keytype(const TLS_SIGALG_INFO * sinf)370 static const char *inferred_keytype(const TLS_SIGALG_INFO *sinf)
371 {
372 return (sinf->keytype != NULL
373 ? sinf->keytype
374 : (sinf->sig_name != NULL
375 ? sinf->sig_name
376 : sinf->sigalg_name));
377 }
378
379 #define TLS_SIGALG_LIST_MALLOC_BLOCK_SIZE 10
380 static OSSL_CALLBACK add_provider_sigalgs;
add_provider_sigalgs(const OSSL_PARAM params[],void * data)381 static int add_provider_sigalgs(const OSSL_PARAM params[], void *data)
382 {
383 struct provider_ctx_data_st *pgd = data;
384 SSL_CTX *ctx = pgd->ctx;
385 OSSL_PROVIDER *provider = pgd->provider;
386 const OSSL_PARAM *p;
387 TLS_SIGALG_INFO *sinf = NULL;
388 EVP_KEYMGMT *keymgmt;
389 const char *keytype;
390 unsigned int code_point = 0;
391 int ret = 0;
392
393 if (ctx->sigalg_list_max_len == ctx->sigalg_list_len) {
394 TLS_SIGALG_INFO *tmp = NULL;
395
396 if (ctx->sigalg_list_max_len == 0)
397 tmp = OPENSSL_malloc(sizeof(TLS_SIGALG_INFO)
398 * TLS_SIGALG_LIST_MALLOC_BLOCK_SIZE);
399 else
400 tmp = OPENSSL_realloc(ctx->sigalg_list,
401 (ctx->sigalg_list_max_len
402 + TLS_SIGALG_LIST_MALLOC_BLOCK_SIZE)
403 * sizeof(TLS_SIGALG_INFO));
404 if (tmp == NULL)
405 return 0;
406 ctx->sigalg_list = tmp;
407 memset(tmp + ctx->sigalg_list_max_len, 0,
408 sizeof(TLS_SIGALG_INFO) * TLS_SIGALG_LIST_MALLOC_BLOCK_SIZE);
409 ctx->sigalg_list_max_len += TLS_SIGALG_LIST_MALLOC_BLOCK_SIZE;
410 }
411
412 sinf = &ctx->sigalg_list[ctx->sigalg_list_len];
413
414 /* First, mandatory parameters */
415 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_NAME);
416 if (p == NULL || p->data_type != OSSL_PARAM_UTF8_STRING) {
417 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
418 goto err;
419 }
420 OPENSSL_free(sinf->sigalg_name);
421 sinf->sigalg_name = OPENSSL_strdup(p->data);
422 if (sinf->sigalg_name == NULL)
423 goto err;
424
425 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_IANA_NAME);
426 if (p == NULL || p->data_type != OSSL_PARAM_UTF8_STRING) {
427 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
428 goto err;
429 }
430 OPENSSL_free(sinf->name);
431 sinf->name = OPENSSL_strdup(p->data);
432 if (sinf->name == NULL)
433 goto err;
434
435 p = OSSL_PARAM_locate_const(params,
436 OSSL_CAPABILITY_TLS_SIGALG_CODE_POINT);
437 if (p == NULL
438 || !OSSL_PARAM_get_uint(p, &code_point)
439 || code_point > UINT16_MAX) {
440 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
441 goto err;
442 }
443 sinf->code_point = (uint16_t)code_point;
444
445 p = OSSL_PARAM_locate_const(params,
446 OSSL_CAPABILITY_TLS_SIGALG_SECURITY_BITS);
447 if (p == NULL || !OSSL_PARAM_get_uint(p, &sinf->secbits)) {
448 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
449 goto err;
450 }
451
452 /* Now, optional parameters */
453 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_OID);
454 if (p == NULL) {
455 sinf->sigalg_oid = NULL;
456 } else if (p->data_type != OSSL_PARAM_UTF8_STRING) {
457 goto err;
458 } else {
459 OPENSSL_free(sinf->sigalg_oid);
460 sinf->sigalg_oid = OPENSSL_strdup(p->data);
461 if (sinf->sigalg_oid == NULL)
462 goto err;
463 }
464
465 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_SIG_NAME);
466 if (p == NULL) {
467 sinf->sig_name = NULL;
468 } else if (p->data_type != OSSL_PARAM_UTF8_STRING) {
469 goto err;
470 } else {
471 OPENSSL_free(sinf->sig_name);
472 sinf->sig_name = OPENSSL_strdup(p->data);
473 if (sinf->sig_name == NULL)
474 goto err;
475 }
476
477 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_SIG_OID);
478 if (p == NULL) {
479 sinf->sig_oid = NULL;
480 } else if (p->data_type != OSSL_PARAM_UTF8_STRING) {
481 goto err;
482 } else {
483 OPENSSL_free(sinf->sig_oid);
484 sinf->sig_oid = OPENSSL_strdup(p->data);
485 if (sinf->sig_oid == NULL)
486 goto err;
487 }
488
489 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_HASH_NAME);
490 if (p == NULL) {
491 sinf->hash_name = NULL;
492 } else if (p->data_type != OSSL_PARAM_UTF8_STRING) {
493 goto err;
494 } else {
495 OPENSSL_free(sinf->hash_name);
496 sinf->hash_name = OPENSSL_strdup(p->data);
497 if (sinf->hash_name == NULL)
498 goto err;
499 }
500
501 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_HASH_OID);
502 if (p == NULL) {
503 sinf->hash_oid = NULL;
504 } else if (p->data_type != OSSL_PARAM_UTF8_STRING) {
505 goto err;
506 } else {
507 OPENSSL_free(sinf->hash_oid);
508 sinf->hash_oid = OPENSSL_strdup(p->data);
509 if (sinf->hash_oid == NULL)
510 goto err;
511 }
512
513 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_KEYTYPE);
514 if (p == NULL) {
515 sinf->keytype = NULL;
516 } else if (p->data_type != OSSL_PARAM_UTF8_STRING) {
517 goto err;
518 } else {
519 OPENSSL_free(sinf->keytype);
520 sinf->keytype = OPENSSL_strdup(p->data);
521 if (sinf->keytype == NULL)
522 goto err;
523 }
524
525 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_KEYTYPE_OID);
526 if (p == NULL) {
527 sinf->keytype_oid = NULL;
528 } else if (p->data_type != OSSL_PARAM_UTF8_STRING) {
529 goto err;
530 } else {
531 OPENSSL_free(sinf->keytype_oid);
532 sinf->keytype_oid = OPENSSL_strdup(p->data);
533 if (sinf->keytype_oid == NULL)
534 goto err;
535 }
536
537 /* Optional, not documented prior to 3.5 */
538 sinf->mindtls = sinf->maxdtls = -1;
539 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_MIN_DTLS);
540 if (p != NULL && !OSSL_PARAM_get_int(p, &sinf->mindtls)) {
541 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
542 goto err;
543 }
544 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_MAX_DTLS);
545 if (p != NULL && !OSSL_PARAM_get_int(p, &sinf->maxdtls)) {
546 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
547 goto err;
548 }
549 /* DTLS version numbers grow downward */
550 if ((sinf->maxdtls != 0) && (sinf->maxdtls != -1) && ((sinf->maxdtls > sinf->mindtls))) {
551 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
552 goto err;
553 }
554 /* No provider sigalgs are supported in DTLS, reset after checking. */
555 sinf->mindtls = sinf->maxdtls = -1;
556
557 /* The remaining parameters below are mandatory again */
558 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_MIN_TLS);
559 if (p == NULL || !OSSL_PARAM_get_int(p, &sinf->mintls)) {
560 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
561 goto err;
562 }
563 p = OSSL_PARAM_locate_const(params, OSSL_CAPABILITY_TLS_SIGALG_MAX_TLS);
564 if (p == NULL || !OSSL_PARAM_get_int(p, &sinf->maxtls)) {
565 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
566 goto err;
567 }
568 if ((sinf->maxtls != 0) && (sinf->maxtls != -1) && ((sinf->maxtls < sinf->mintls))) {
569 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
570 goto err;
571 }
572 if ((sinf->mintls != 0) && (sinf->mintls != -1) && ((sinf->mintls > TLS1_3_VERSION)))
573 sinf->mintls = sinf->maxtls = -1;
574 if ((sinf->maxtls != 0) && (sinf->maxtls != -1) && ((sinf->maxtls < TLS1_3_VERSION)))
575 sinf->mintls = sinf->maxtls = -1;
576
577 /* Ignore unusable sigalgs */
578 if (sinf->mintls == -1 && sinf->mindtls == -1) {
579 ret = 1;
580 goto err;
581 }
582
583 /*
584 * Now check that the algorithm is actually usable for our property query
585 * string. Regardless of the result we still return success because we have
586 * successfully processed this signature, even though we may decide not to
587 * use it.
588 */
589 ret = 1;
590 ERR_set_mark();
591 keytype = inferred_keytype(sinf);
592 keymgmt = EVP_KEYMGMT_fetch(ctx->libctx, keytype, ctx->propq);
593 if (keymgmt != NULL) {
594 /*
595 * We have successfully fetched the algorithm - however if the provider
596 * doesn't match this one then we ignore it.
597 *
598 * Note: We're cheating a little here. Technically if the same algorithm
599 * is available from more than one provider then it is undefined which
600 * implementation you will get back. Theoretically this could be
601 * different every time...we assume here that you'll always get the
602 * same one back if you repeat the exact same fetch. Is this a reasonable
603 * assumption to make (in which case perhaps we should document this
604 * behaviour)?
605 */
606 if (EVP_KEYMGMT_get0_provider(keymgmt) == provider) {
607 /*
608 * We have a match - so we could use this signature;
609 * Check proper object registration first, though.
610 * Don't care about return value as this may have been
611 * done within providers or previous calls to
612 * add_provider_sigalgs.
613 */
614 OBJ_create(sinf->sigalg_oid, sinf->sigalg_name, NULL);
615 /* sanity check: Without successful registration don't use alg */
616 if ((OBJ_txt2nid(sinf->sigalg_name) == NID_undef) || (OBJ_nid2obj(OBJ_txt2nid(sinf->sigalg_name)) == NULL)) {
617 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
618 goto err;
619 }
620 if (sinf->sig_name != NULL)
621 OBJ_create(sinf->sig_oid, sinf->sig_name, NULL);
622 if (sinf->keytype != NULL)
623 OBJ_create(sinf->keytype_oid, sinf->keytype, NULL);
624 if (sinf->hash_name != NULL)
625 OBJ_create(sinf->hash_oid, sinf->hash_name, NULL);
626 OBJ_add_sigid(OBJ_txt2nid(sinf->sigalg_name),
627 (sinf->hash_name != NULL
628 ? OBJ_txt2nid(sinf->hash_name)
629 : NID_undef),
630 OBJ_txt2nid(keytype));
631 ctx->sigalg_list_len++;
632 sinf = NULL;
633 }
634 EVP_KEYMGMT_free(keymgmt);
635 }
636 ERR_pop_to_mark();
637 err:
638 if (sinf != NULL) {
639 OPENSSL_free(sinf->name);
640 sinf->name = NULL;
641 OPENSSL_free(sinf->sigalg_name);
642 sinf->sigalg_name = NULL;
643 OPENSSL_free(sinf->sigalg_oid);
644 sinf->sigalg_oid = NULL;
645 OPENSSL_free(sinf->sig_name);
646 sinf->sig_name = NULL;
647 OPENSSL_free(sinf->sig_oid);
648 sinf->sig_oid = NULL;
649 OPENSSL_free(sinf->hash_name);
650 sinf->hash_name = NULL;
651 OPENSSL_free(sinf->hash_oid);
652 sinf->hash_oid = NULL;
653 OPENSSL_free(sinf->keytype);
654 sinf->keytype = NULL;
655 OPENSSL_free(sinf->keytype_oid);
656 sinf->keytype_oid = NULL;
657 }
658 return ret;
659 }
660
discover_provider_sigalgs(OSSL_PROVIDER * provider,void * vctx)661 static int discover_provider_sigalgs(OSSL_PROVIDER *provider, void *vctx)
662 {
663 struct provider_ctx_data_st pgd;
664
665 pgd.ctx = vctx;
666 pgd.provider = provider;
667 OSSL_PROVIDER_get_capabilities(provider, "TLS-SIGALG",
668 add_provider_sigalgs, &pgd);
669 /*
670 * Always OK, even if provider doesn't support the capability:
671 * Reconsider testing retval when legacy sigalgs are also loaded this way.
672 */
673 return 1;
674 }
675
ssl_load_sigalgs(SSL_CTX * ctx)676 int ssl_load_sigalgs(SSL_CTX *ctx)
677 {
678 size_t i;
679 SSL_CERT_LOOKUP lu;
680
681 if (!OSSL_PROVIDER_do_all(ctx->libctx, discover_provider_sigalgs, ctx))
682 return 0;
683
684 /* now populate ctx->ssl_cert_info */
685 if (ctx->sigalg_list_len > 0) {
686 OPENSSL_free(ctx->ssl_cert_info);
687 ctx->ssl_cert_info = OPENSSL_zalloc(sizeof(lu) * ctx->sigalg_list_len);
688 if (ctx->ssl_cert_info == NULL)
689 return 0;
690 for (i = 0; i < ctx->sigalg_list_len; i++) {
691 const char *keytype = inferred_keytype(&ctx->sigalg_list[i]);
692 ctx->ssl_cert_info[i].pkey_nid = OBJ_txt2nid(keytype);
693 ctx->ssl_cert_info[i].amask = SSL_aANY;
694 }
695 }
696
697 /*
698 * For now, leave it at this: legacy sigalgs stay in their own
699 * data structures until "legacy cleanup" occurs.
700 */
701
702 return 1;
703 }
704
tls1_group_name2id(SSL_CTX * ctx,const char * name)705 static uint16_t tls1_group_name2id(SSL_CTX *ctx, const char *name)
706 {
707 size_t i;
708
709 for (i = 0; i < ctx->group_list_len; i++) {
710 if (OPENSSL_strcasecmp(ctx->group_list[i].tlsname, name) == 0
711 || OPENSSL_strcasecmp(ctx->group_list[i].realname, name) == 0)
712 return ctx->group_list[i].group_id;
713 }
714
715 return 0;
716 }
717
tls1_group_id_lookup(SSL_CTX * ctx,uint16_t group_id)718 const TLS_GROUP_INFO *tls1_group_id_lookup(SSL_CTX *ctx, uint16_t group_id)
719 {
720 size_t i;
721
722 for (i = 0; i < ctx->group_list_len; i++) {
723 if (ctx->group_list[i].group_id == group_id)
724 return &ctx->group_list[i];
725 }
726
727 return NULL;
728 }
729
tls1_group_id2name(SSL_CTX * ctx,uint16_t group_id)730 const char *tls1_group_id2name(SSL_CTX *ctx, uint16_t group_id)
731 {
732 const TLS_GROUP_INFO *tls_group_info = tls1_group_id_lookup(ctx, group_id);
733
734 if (tls_group_info == NULL)
735 return NULL;
736
737 return tls_group_info->tlsname;
738 }
739
tls1_group_id2nid(uint16_t group_id,int include_unknown)740 int tls1_group_id2nid(uint16_t group_id, int include_unknown)
741 {
742 size_t i;
743
744 if (group_id == 0)
745 return NID_undef;
746
747 /*
748 * Return well known Group NIDs - for backwards compatibility. This won't
749 * work for groups we don't know about.
750 */
751 for (i = 0; i < OSSL_NELEM(nid_to_group); i++) {
752 if (nid_to_group[i].group_id == group_id)
753 return nid_to_group[i].nid;
754 }
755 if (!include_unknown)
756 return NID_undef;
757 return TLSEXT_nid_unknown | (int)group_id;
758 }
759
tls1_nid2group_id(int nid)760 uint16_t tls1_nid2group_id(int nid)
761 {
762 size_t i;
763
764 /*
765 * Return well known Group ids - for backwards compatibility. This won't
766 * work for groups we don't know about.
767 */
768 for (i = 0; i < OSSL_NELEM(nid_to_group); i++) {
769 if (nid_to_group[i].nid == nid)
770 return nid_to_group[i].group_id;
771 }
772
773 return 0;
774 }
775
776 /*
777 * Set *pgroups to the supported groups list and *pgroupslen to
778 * the number of groups supported.
779 */
tls1_get_supported_groups(SSL_CONNECTION * s,const uint16_t ** pgroups,size_t * pgroupslen)780 void tls1_get_supported_groups(SSL_CONNECTION *s, const uint16_t **pgroups,
781 size_t *pgroupslen)
782 {
783 SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
784
785 /* For Suite B mode only include P-256, P-384 */
786 switch (tls1_suiteb(s)) {
787 case SSL_CERT_FLAG_SUITEB_128_LOS:
788 *pgroups = suiteb_curves;
789 *pgroupslen = OSSL_NELEM(suiteb_curves);
790 break;
791
792 case SSL_CERT_FLAG_SUITEB_128_LOS_ONLY:
793 *pgroups = suiteb_curves;
794 *pgroupslen = 1;
795 break;
796
797 case SSL_CERT_FLAG_SUITEB_192_LOS:
798 *pgroups = suiteb_curves + 1;
799 *pgroupslen = 1;
800 break;
801
802 default:
803 if (s->ext.supportedgroups == NULL) {
804 *pgroups = sctx->ext.supportedgroups;
805 *pgroupslen = sctx->ext.supportedgroups_len;
806 } else {
807 *pgroups = s->ext.supportedgroups;
808 *pgroupslen = s->ext.supportedgroups_len;
809 }
810 break;
811 }
812 }
813
814 /*
815 * Some comments for the function below:
816 * s->ext.supportedgroups == NULL means legacy syntax (no [*,/,-]) from built-in group array.
817 * In this case, we need to send exactly one key share, which MUST be the first (leftmost)
818 * eligible group from the legacy list. Therefore, we provide the entire list of supported
819 * groups in this case.
820 *
821 * A 'flag' to indicate legacy syntax is created by setting the number of key shares to 1,
822 * but the groupID to 0.
823 * The 'flag' is checked right at the beginning in tls_construct_ctos_key_share and either
824 * the "list of requested key share groups" is used, or the "list of supported groups" in
825 * combination with setting add_only_one = 1 is applied.
826 */
tls1_get_requested_keyshare_groups(SSL_CONNECTION * s,const uint16_t ** pgroups,size_t * pgroupslen)827 void tls1_get_requested_keyshare_groups(SSL_CONNECTION *s, const uint16_t **pgroups,
828 size_t *pgroupslen)
829 {
830 SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
831
832 if (s->ext.supportedgroups == NULL) {
833 *pgroups = sctx->ext.supportedgroups;
834 *pgroupslen = sctx->ext.supportedgroups_len;
835 } else {
836 *pgroups = s->ext.keyshares;
837 *pgroupslen = s->ext.keyshares_len;
838 }
839 }
840
tls1_get_group_tuples(SSL_CONNECTION * s,const size_t ** ptuples,size_t * ptupleslen)841 void tls1_get_group_tuples(SSL_CONNECTION *s, const size_t **ptuples,
842 size_t *ptupleslen)
843 {
844 SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
845
846 if (s->ext.supportedgroups == NULL) {
847 *ptuples = sctx->ext.tuples;
848 *ptupleslen = sctx->ext.tuples_len;
849 } else {
850 *ptuples = s->ext.tuples;
851 *ptupleslen = s->ext.tuples_len;
852 }
853 }
854
tls_valid_group(SSL_CONNECTION * s,uint16_t group_id,int minversion,int maxversion,int isec,int * okfortls13)855 int tls_valid_group(SSL_CONNECTION *s, uint16_t group_id,
856 int minversion, int maxversion,
857 int isec, int *okfortls13)
858 {
859 const TLS_GROUP_INFO *ginfo = tls1_group_id_lookup(SSL_CONNECTION_GET_CTX(s),
860 group_id);
861 int ret;
862 int group_minversion, group_maxversion;
863
864 if (okfortls13 != NULL)
865 *okfortls13 = 0;
866
867 if (ginfo == NULL)
868 return 0;
869
870 group_minversion = SSL_CONNECTION_IS_DTLS(s) ? ginfo->mindtls : ginfo->mintls;
871 group_maxversion = SSL_CONNECTION_IS_DTLS(s) ? ginfo->maxdtls : ginfo->maxtls;
872
873 if (group_minversion < 0 || group_maxversion < 0)
874 return 0;
875 if (group_maxversion == 0)
876 ret = 1;
877 else
878 ret = (ssl_version_cmp(s, minversion, group_maxversion) <= 0);
879 if (group_minversion > 0)
880 ret &= (ssl_version_cmp(s, maxversion, group_minversion) >= 0);
881
882 if (!SSL_CONNECTION_IS_DTLS(s)) {
883 if (ret && okfortls13 != NULL && maxversion == TLS1_3_VERSION)
884 *okfortls13 = (group_maxversion == 0)
885 || (group_maxversion >= TLS1_3_VERSION);
886 }
887 ret &= !isec
888 || strcmp(ginfo->algorithm, "EC") == 0
889 || strcmp(ginfo->algorithm, "X25519") == 0
890 || strcmp(ginfo->algorithm, "X448") == 0;
891
892 return ret;
893 }
894
895 /* See if group is allowed by security callback */
tls_group_allowed(SSL_CONNECTION * s,uint16_t group,int op)896 int tls_group_allowed(SSL_CONNECTION *s, uint16_t group, int op)
897 {
898 const TLS_GROUP_INFO *ginfo = tls1_group_id_lookup(SSL_CONNECTION_GET_CTX(s),
899 group);
900 unsigned char gtmp[2];
901
902 if (ginfo == NULL)
903 return 0;
904
905 gtmp[0] = group >> 8;
906 gtmp[1] = group & 0xff;
907 return ssl_security(s, op, ginfo->secbits,
908 tls1_group_id2nid(ginfo->group_id, 0), (void *)gtmp);
909 }
910
911 /* Return 1 if "id" is in "list" */
tls1_in_list(uint16_t id,const uint16_t * list,size_t listlen)912 static int tls1_in_list(uint16_t id, const uint16_t *list, size_t listlen)
913 {
914 size_t i;
915 for (i = 0; i < listlen; i++)
916 if (list[i] == id)
917 return 1;
918 return 0;
919 }
920
921 typedef struct {
922 TLS_GROUP_INFO *grp;
923 size_t ix;
924 } TLS_GROUP_IX;
925
DEFINE_STACK_OF(TLS_GROUP_IX)926 DEFINE_STACK_OF(TLS_GROUP_IX)
927
928 static void free_wrapper(TLS_GROUP_IX *a)
929 {
930 OPENSSL_free(a);
931 }
932
tls_group_ix_cmp(const TLS_GROUP_IX * const * a,const TLS_GROUP_IX * const * b)933 static int tls_group_ix_cmp(const TLS_GROUP_IX *const *a,
934 const TLS_GROUP_IX *const *b)
935 {
936 int idcmpab = (*a)->grp->group_id < (*b)->grp->group_id;
937 int idcmpba = (*b)->grp->group_id < (*a)->grp->group_id;
938 int ixcmpab = (*a)->ix < (*b)->ix;
939 int ixcmpba = (*b)->ix < (*a)->ix;
940
941 /* Ascending by group id */
942 if (idcmpab != idcmpba)
943 return (idcmpba - idcmpab);
944 /* Ascending by original appearance index */
945 return ixcmpba - ixcmpab;
946 }
947
tls1_get0_implemented_groups(int min_proto_version,int max_proto_version,TLS_GROUP_INFO * grps,size_t num,long all,STACK_OF (OPENSSL_CSTRING)* out)948 int tls1_get0_implemented_groups(int min_proto_version, int max_proto_version,
949 TLS_GROUP_INFO *grps, size_t num, long all,
950 STACK_OF(OPENSSL_CSTRING) *out)
951 {
952 STACK_OF(TLS_GROUP_IX) *collect = NULL;
953 TLS_GROUP_IX *gix;
954 uint16_t id = 0;
955 int ret = 0;
956 size_t ix;
957
958 if (grps == NULL || out == NULL)
959 return 0;
960 if ((collect = sk_TLS_GROUP_IX_new(tls_group_ix_cmp)) == NULL)
961 return 0;
962 for (ix = 0; ix < num; ++ix, ++grps) {
963 if (grps->mintls > 0 && max_proto_version > 0
964 && grps->mintls > max_proto_version)
965 continue;
966 if (grps->maxtls > 0 && min_proto_version > 0
967 && grps->maxtls < min_proto_version)
968 continue;
969
970 if ((gix = OPENSSL_malloc(sizeof(*gix))) == NULL)
971 goto end;
972 gix->grp = grps;
973 gix->ix = ix;
974 if (sk_TLS_GROUP_IX_push(collect, gix) <= 0) {
975 OPENSSL_free(gix);
976 goto end;
977 }
978 }
979
980 sk_TLS_GROUP_IX_sort(collect);
981 num = sk_TLS_GROUP_IX_num(collect);
982 for (ix = 0; ix < num; ++ix) {
983 gix = sk_TLS_GROUP_IX_value(collect, ix);
984 if (!all && gix->grp->group_id == id)
985 continue;
986 id = gix->grp->group_id;
987 if (sk_OPENSSL_CSTRING_push(out, gix->grp->tlsname) <= 0)
988 goto end;
989 }
990 ret = 1;
991
992 end:
993 sk_TLS_GROUP_IX_pop_free(collect, free_wrapper);
994 return ret;
995 }
996
997 /*-
998 * For nmatch >= 0, return the id of the |nmatch|th shared group or 0
999 * if there is no match.
1000 * For nmatch == -1, return number of matches
1001 * For nmatch == -2, return the id of the group to use for
1002 * a tmp key, or 0 if there is no match.
1003 */
tls1_shared_group(SSL_CONNECTION * s,int nmatch)1004 uint16_t tls1_shared_group(SSL_CONNECTION *s, int nmatch)
1005 {
1006 const uint16_t *pref, *supp;
1007 size_t num_pref, num_supp, i;
1008 int k;
1009 SSL_CTX *ctx = SSL_CONNECTION_GET_CTX(s);
1010
1011 /* Can't do anything on client side */
1012 if (s->server == 0)
1013 return 0;
1014 if (nmatch == -2) {
1015 if (tls1_suiteb(s)) {
1016 /*
1017 * For Suite B ciphersuite determines curve: we already know
1018 * these are acceptable due to previous checks.
1019 */
1020 unsigned long cid = s->s3.tmp.new_cipher->id;
1021
1022 if (cid == TLS1_CK_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256)
1023 return OSSL_TLS_GROUP_ID_secp256r1;
1024 if (cid == TLS1_CK_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384)
1025 return OSSL_TLS_GROUP_ID_secp384r1;
1026 /* Should never happen */
1027 return 0;
1028 }
1029 /* If not Suite B just return first preference shared curve */
1030 nmatch = 0;
1031 }
1032 /*
1033 * If server preference set, our groups are the preference order
1034 * otherwise peer decides.
1035 */
1036 if (s->options & SSL_OP_CIPHER_SERVER_PREFERENCE) {
1037 tls1_get_supported_groups(s, &pref, &num_pref);
1038 tls1_get_peer_groups(s, &supp, &num_supp);
1039 } else {
1040 tls1_get_peer_groups(s, &pref, &num_pref);
1041 tls1_get_supported_groups(s, &supp, &num_supp);
1042 }
1043
1044 for (k = 0, i = 0; i < num_pref; i++) {
1045 uint16_t id = pref[i];
1046 const TLS_GROUP_INFO *inf;
1047 int minversion, maxversion;
1048
1049 if (!tls1_in_list(id, supp, num_supp)
1050 || !tls_group_allowed(s, id, SSL_SECOP_CURVE_SHARED))
1051 continue;
1052 inf = tls1_group_id_lookup(ctx, id);
1053 if (!ossl_assert(inf != NULL))
1054 return 0;
1055
1056 minversion = SSL_CONNECTION_IS_DTLS(s)
1057 ? inf->mindtls
1058 : inf->mintls;
1059 maxversion = SSL_CONNECTION_IS_DTLS(s)
1060 ? inf->maxdtls
1061 : inf->maxtls;
1062 if (maxversion == -1)
1063 continue;
1064 if ((minversion != 0 && ssl_version_cmp(s, s->version, minversion) < 0)
1065 || (maxversion != 0
1066 && ssl_version_cmp(s, s->version, maxversion) > 0))
1067 continue;
1068
1069 if (nmatch == k)
1070 return id;
1071 k++;
1072 }
1073 if (nmatch == -1)
1074 return k;
1075 /* Out of range (nmatch > k). */
1076 return 0;
1077 }
1078
tls1_set_groups(uint16_t ** grpext,size_t * grpextlen,uint16_t ** ksext,size_t * ksextlen,size_t ** tplext,size_t * tplextlen,int * groups,size_t ngroups)1079 int tls1_set_groups(uint16_t **grpext, size_t *grpextlen,
1080 uint16_t **ksext, size_t *ksextlen,
1081 size_t **tplext, size_t *tplextlen,
1082 int *groups, size_t ngroups)
1083 {
1084 uint16_t *glist = NULL, *kslist = NULL;
1085 size_t *tpllist = NULL;
1086 size_t i;
1087 /*
1088 * Bitmap of groups included to detect duplicates: two variables are added
1089 * to detect duplicates as some values are more than 32.
1090 */
1091 unsigned long *dup_list = NULL;
1092 unsigned long dup_list_egrp = 0;
1093 unsigned long dup_list_dhgrp = 0;
1094
1095 if (ngroups == 0) {
1096 ERR_raise(ERR_LIB_SSL, SSL_R_BAD_LENGTH);
1097 return 0;
1098 }
1099 if ((glist = OPENSSL_malloc(ngroups * sizeof(*glist))) == NULL)
1100 goto err;
1101 if ((kslist = OPENSSL_malloc(1 * sizeof(*kslist))) == NULL)
1102 goto err;
1103 if ((tpllist = OPENSSL_malloc(1 * sizeof(*tpllist))) == NULL)
1104 goto err;
1105 for (i = 0; i < ngroups; i++) {
1106 unsigned long idmask;
1107 uint16_t id;
1108 id = tls1_nid2group_id(groups[i]);
1109 if ((id & 0x00FF) >= (sizeof(unsigned long) * 8))
1110 goto err;
1111 idmask = 1L << (id & 0x00FF);
1112 dup_list = (id < 0x100) ? &dup_list_egrp : &dup_list_dhgrp;
1113 if (!id || ((*dup_list) & idmask))
1114 goto err;
1115 *dup_list |= idmask;
1116 glist[i] = id;
1117 }
1118 OPENSSL_free(*grpext);
1119 OPENSSL_free(*ksext);
1120 OPENSSL_free(*tplext);
1121 *grpext = glist;
1122 *grpextlen = ngroups;
1123 /*
1124 * No * prefix was used, let tls_construct_ctos_key_share choose a key
1125 * share. This has the advantage that it will filter unsupported groups
1126 * before choosing one, which this function does not do. See also the
1127 * comment for tls1_get_requested_keyshare_groups.
1128 */
1129 kslist[0] = 0;
1130 *ksext = kslist;
1131 *ksextlen = 1;
1132 tpllist[0] = ngroups;
1133 *tplext = tpllist;
1134 *tplextlen = 1;
1135 return 1;
1136 err:
1137 OPENSSL_free(glist);
1138 OPENSSL_free(kslist);
1139 OPENSSL_free(tpllist);
1140 return 0;
1141 }
1142
1143 /*
1144 * Definition of DEFAULT[_XYZ] pseudo group names.
1145 * A pseudo group name is actually a full list of groups, including prefixes
1146 * and or tuple delimiters. It can be hierarchically defined (for potential future use).
1147 * IMPORTANT REMARK: For ease of use, in the built-in lists of groups, unknown groups or
1148 * groups not backed by a provider will always silently be ignored, even without '?' prefix
1149 */
1150 typedef struct {
1151 const char *list_name; /* The name of this pseudo group */
1152 const char *group_string; /* The group string of this pseudo group */
1153 } default_group_string_st; /* (can include '?', '*'. '-', '/' as needed) */
1154
1155 /* Built-in pseudo group-names must start with a (D or d) */
1156 static const char *DEFAULT_GROUPNAME_FIRST_CHARACTER = "D";
1157
1158 /* The list of all built-in pseudo-group-name structures */
1159 static const default_group_string_st default_group_strings[] = {
1160 { DEFAULT_GROUP_NAME, TLS_DEFAULT_GROUP_LIST },
1161 { SUITE_B_GROUP_NAME, SUITE_B_GROUP_LIST }
1162 };
1163
1164 /*
1165 * Some GOST names are not resolved by tls1_group_name2id,
1166 * hence we'll check for those manually
1167 */
1168 typedef struct {
1169 const char *group_name;
1170 uint16_t groupID;
1171 } name2id_st;
1172 static const name2id_st name2id_arr[] = {
1173 { "GC256A", OSSL_TLS_GROUP_ID_gc256A },
1174 { "GC256B", OSSL_TLS_GROUP_ID_gc256B },
1175 { "GC256C", OSSL_TLS_GROUP_ID_gc256C },
1176 { "GC256D", OSSL_TLS_GROUP_ID_gc256D },
1177 { "GC512A", OSSL_TLS_GROUP_ID_gc512A },
1178 { "GC512B", OSSL_TLS_GROUP_ID_gc512B },
1179 { "GC512C", OSSL_TLS_GROUP_ID_gc512C },
1180 };
1181
1182 /*
1183 * Group list management:
1184 * We establish three lists along with their related size counters:
1185 * 1) List of (unique) groups
1186 * 2) List of number of groups per group-priority-tuple
1187 * 3) List of (unique) key share groups
1188 */
1189 #define GROUPLIST_INCREMENT 32 /* Memory allocation chunk size (64 Bytes chunks ~= cache line) */
1190 #define GROUP_NAME_BUFFER_LENGTH 64 /* Max length of a group name */
1191
1192 /*
1193 * Preparation of the prefix used to indicate the desire to send a key share,
1194 * the characters used as separators between groups or tuples of groups, the
1195 * character to indicate that an unknown group should be ignored, and the
1196 * character to indicate that a group should be deleted from a list
1197 */
1198 #ifndef TUPLE_DELIMITER_CHARACTER
1199 /* The prefix characters to indicate group tuple boundaries */
1200 #define TUPLE_DELIMITER_CHARACTER '/'
1201 #endif
1202 #ifndef GROUP_DELIMITER_CHARACTER
1203 /* The prefix characters to indicate group tuple boundaries */
1204 #define GROUP_DELIMITER_CHARACTER ':'
1205 #endif
1206 #ifndef IGNORE_UNKNOWN_GROUP_CHARACTER
1207 /* The prefix character to ignore unknown groups */
1208 #define IGNORE_UNKNOWN_GROUP_CHARACTER '?'
1209 #endif
1210 #ifndef KEY_SHARE_INDICATOR_CHARACTER
1211 /* The prefix character to trigger a key share addition */
1212 #define KEY_SHARE_INDICATOR_CHARACTER '*'
1213 #endif
1214 #ifndef REMOVE_GROUP_INDICATOR_CHARACTER
1215 /* The prefix character to trigger a key share removal */
1216 #define REMOVE_GROUP_INDICATOR_CHARACTER '-'
1217 #endif
1218 static const char prefixes[] = { TUPLE_DELIMITER_CHARACTER,
1219 GROUP_DELIMITER_CHARACTER,
1220 IGNORE_UNKNOWN_GROUP_CHARACTER,
1221 KEY_SHARE_INDICATOR_CHARACTER,
1222 REMOVE_GROUP_INDICATOR_CHARACTER,
1223 '\0' };
1224
1225 /*
1226 * High-level description of how group strings are analyzed:
1227 * A first call back function (tuple_cb) is used to process group tuples, and a
1228 * second callback function (gid_cb) is used to process the groups inside a tuple.
1229 * Those callback functions are (indirectly) called by CONF_parse_list with
1230 * different separators (nominally ':' or '/'), a variable based on gid_cb_st
1231 * is used to keep track of the parsing results between the various calls
1232 */
1233
1234 typedef struct {
1235 SSL_CTX *ctx;
1236 /* Variables to hold the three lists (groups, requested keyshares, tuple structure) */
1237 size_t gidmax; /* The memory allocation chunk size for the group IDs */
1238 size_t gidcnt; /* Number of groups */
1239 uint16_t *gid_arr; /* The IDs of the supported groups (flat list) */
1240 size_t tplmax; /* Allocated length of tuplcnt_arr */
1241 /*
1242 * Number of *closed* (fully parsed) tuples. During parsing there is
1243 * always one additional active tuple being built, stored at index tplcnt.
1244 * tuplcnt_arr therefore always needs at least tplcnt + 1 allocated slots.
1245 */
1246 size_t tplcnt;
1247 size_t *tuplcnt_arr; /* Per-tuple group counts; [0..tplcnt-1] closed, [tplcnt] active */
1248 size_t ksidmax; /* The memory allocation chunk size */
1249 size_t ksidcnt; /* Number of key shares */
1250 uint16_t *ksid_arr; /* The IDs of the key share groups (flat list) */
1251 /* Variable to keep state between execution of callback or helper functions */
1252 int inner; /* Are we expanding a DEFAULT list */
1253 int first; /* First tuple of possibly nested expansion? */
1254 } gid_cb_st;
1255
1256 /* Forward declaration of tuple callback function */
1257 static int tuple_cb(const char *tuple, int len, void *arg);
1258
1259 /*
1260 * Extract and process the individual groups (and their prefixes if present)
1261 * present in a tuple. Note: The argument 'elem' is a NON-\0-terminated string
1262 * and must be appended by a \0 if used as \0-terminated string
1263 */
gid_cb(const char * elem,int len,void * arg)1264 static int gid_cb(const char *elem, int len, void *arg)
1265 {
1266 gid_cb_st *garg = arg;
1267 size_t i, j, k;
1268 uint16_t gid = 0;
1269 int found_group = 0;
1270 char etmp[GROUP_NAME_BUFFER_LENGTH];
1271 int retval = 1; /* We assume success */
1272 const char *current_prefix;
1273 int ignore_unknown = 0;
1274 int add_keyshare = 0;
1275 int remove_group = 0;
1276 size_t restored_prefix_index = 0;
1277 char *restored_default_group_string;
1278 int continue_while_loop = 1;
1279
1280 /* Sanity checks */
1281 if (garg == NULL || elem == NULL || len <= 0) {
1282 ERR_raise(ERR_LIB_SSL, SSL_R_UNSUPPORTED_CONFIG_VALUE);
1283 return 0;
1284 }
1285
1286 /* Check the possible prefixes (remark: Leading and trailing spaces already cleared) */
1287 while (continue_while_loop && len > 0
1288 && ((current_prefix = strchr(prefixes, elem[0])) != NULL
1289 || OPENSSL_strncasecmp(current_prefix = (char *)DEFAULT_GROUPNAME_FIRST_CHARACTER, elem, 1) == 0)) {
1290
1291 switch (*current_prefix) {
1292 case TUPLE_DELIMITER_CHARACTER:
1293 /* tuple delimiter not allowed here -> syntax error */
1294 return -1;
1295 break;
1296 case GROUP_DELIMITER_CHARACTER:
1297 return -1; /* Not a valid prefix for a single group name-> syntax error */
1298 break;
1299 case KEY_SHARE_INDICATOR_CHARACTER:
1300 if (add_keyshare)
1301 return -1; /* Only single key share prefix allowed -> syntax error */
1302 add_keyshare = 1;
1303 ++elem;
1304 --len;
1305 break;
1306 case REMOVE_GROUP_INDICATOR_CHARACTER:
1307 if (remove_group)
1308 return -1; /* Only single remove group prefix allowed -> syntax error */
1309 remove_group = 1;
1310 ++elem;
1311 --len;
1312 break;
1313 case IGNORE_UNKNOWN_GROUP_CHARACTER:
1314 if (ignore_unknown)
1315 return -1; /* Only single ? allowed -> syntax error */
1316 ignore_unknown = 1;
1317 ++elem;
1318 --len;
1319 break;
1320 default:
1321 /*
1322 * Check whether a DEFAULT[_XYZ] 'pseudo group' (= a built-in
1323 * list of groups) should be added
1324 */
1325 for (i = 0; i < OSSL_NELEM(default_group_strings); i++) {
1326 if ((size_t)len == (strlen(default_group_strings[i].list_name))
1327 && OPENSSL_strncasecmp(default_group_strings[i].list_name, elem, len) == 0) {
1328 int saved_first;
1329
1330 /*
1331 * We're asked to insert an entire list of groups from a
1332 * DEFAULT[_XYZ] 'pseudo group' which we do by
1333 * recursively calling this function (indirectly via
1334 * CONF_parse_list and tuple_cb); essentially, we treat a DEFAULT
1335 * group string like a tuple which is appended to the current tuple
1336 * rather then starting a new tuple.
1337 */
1338 if (ignore_unknown || remove_group)
1339 return -1; /* removal or ignore not allowed here -> syntax error */
1340
1341 /*
1342 * First, we restore any keyshare prefix in a new zero-terminated string
1343 * (if not already present)
1344 */
1345 restored_default_group_string = OPENSSL_malloc((1 /* max prefix length */ + strlen(default_group_strings[i].group_string) + 1 /* \0 */) * sizeof(char));
1346 if (restored_default_group_string == NULL)
1347 return 0;
1348 if (add_keyshare
1349 /* Remark: we tolerate a duplicated keyshare indicator here */
1350 && default_group_strings[i].group_string[0]
1351 != KEY_SHARE_INDICATOR_CHARACTER)
1352 restored_default_group_string[restored_prefix_index++] = KEY_SHARE_INDICATOR_CHARACTER;
1353
1354 memcpy(restored_default_group_string + restored_prefix_index,
1355 default_group_strings[i].group_string,
1356 strlen(default_group_strings[i].group_string));
1357 restored_default_group_string[strlen(default_group_strings[i].group_string) + restored_prefix_index] = '\0';
1358 /*
1359 * Append first tuple of result to current tuple, and don't
1360 * terminate the last tuple until we return to a top-level
1361 * tuple_cb.
1362 */
1363 saved_first = garg->first;
1364 garg->inner = garg->first = 1;
1365 retval = CONF_parse_list(restored_default_group_string,
1366 TUPLE_DELIMITER_CHARACTER, 1, tuple_cb, garg);
1367 garg->inner = 0;
1368 garg->first = saved_first;
1369 /* We don't need the \0-terminated string anymore */
1370 OPENSSL_free(restored_default_group_string);
1371
1372 return retval;
1373 }
1374 }
1375 /*
1376 * If we reached this point, a group name started with a 'd' or 'D', but no request
1377 * for a DEFAULT[_XYZ] 'pseudo group' was detected, hence processing of the group
1378 * name can continue as usual (= the while loop checking prefixes can end)
1379 */
1380 continue_while_loop = 0;
1381 break;
1382 }
1383 }
1384
1385 if (len == 0)
1386 return -1; /* Seems we have prefxes without a group name -> syntax error */
1387
1388 /* Memory management in case more groups are present compared to initial allocation */
1389 if (garg->gidcnt == garg->gidmax) {
1390 uint16_t *tmp = OPENSSL_realloc(garg->gid_arr,
1391 (garg->gidmax + GROUPLIST_INCREMENT) * sizeof(*garg->gid_arr));
1392
1393 if (tmp == NULL)
1394 return 0;
1395
1396 garg->gidmax += GROUPLIST_INCREMENT;
1397 garg->gid_arr = tmp;
1398 }
1399 /* Memory management for key share groups */
1400 if (garg->ksidcnt == garg->ksidmax) {
1401 uint16_t *tmp = OPENSSL_realloc(garg->ksid_arr,
1402 (garg->ksidmax + GROUPLIST_INCREMENT) * sizeof(*garg->ksid_arr));
1403
1404 if (tmp == NULL)
1405 return 0;
1406 garg->ksidmax += GROUPLIST_INCREMENT;
1407 garg->ksid_arr = tmp;
1408 }
1409
1410 if (len > (int)(sizeof(etmp) - 1))
1411 return -1; /* group name to long -> syntax error */
1412
1413 /*
1414 * Prepare addition or removal of a single group by converting
1415 * a group name into its groupID equivalent
1416 */
1417
1418 /* Create a \0-terminated string and get the gid for this group if possible */
1419 memcpy(etmp, elem, len);
1420 etmp[len] = 0;
1421
1422 /* Get the groupID */
1423 gid = tls1_group_name2id(garg->ctx, etmp);
1424 /*
1425 * Handle the case where no valid groupID was returned
1426 * e.g. for an unknown group, which we'd ignore (only) if relevant prefix was set
1427 */
1428 if (gid == 0) {
1429 /* Is it one of the GOST groups ? */
1430 for (i = 0; i < OSSL_NELEM(name2id_arr); i++) {
1431 if (OPENSSL_strcasecmp(etmp, name2id_arr[i].group_name) == 0) {
1432 gid = name2id_arr[i].groupID;
1433 break;
1434 }
1435 }
1436 if (gid == 0) { /* still not found */
1437 /* Unknown group - ignore if ignore_unknown; trigger error otherwise */
1438 retval = ignore_unknown;
1439 goto done;
1440 }
1441 }
1442
1443 /* Make sure that at least one provider is supporting this groupID */
1444 found_group = 0;
1445 for (j = 0; j < garg->ctx->group_list_len; j++)
1446 if (garg->ctx->group_list[j].group_id == gid) {
1447 found_group = 1;
1448 break;
1449 }
1450
1451 /*
1452 * No provider supports this group - ignore if
1453 * ignore_unknown; trigger error otherwise
1454 */
1455 if (found_group == 0) {
1456 retval = ignore_unknown;
1457 goto done;
1458 }
1459 /* Remove group (and keyshare) from anywhere in the list if present, ignore if not present */
1460 if (remove_group) {
1461 /* Is the current group specified anywhere in the entire list so far? */
1462 found_group = 0;
1463 for (i = 0; i < garg->gidcnt; i++)
1464 if (garg->gid_arr[i] == gid) {
1465 found_group = 1;
1466 break;
1467 }
1468 /* The group to remove is at position i in the list of (zero indexed) groups */
1469 if (found_group) {
1470 /* We remove that group from its position (which is at i)... */
1471 for (j = i; j < (garg->gidcnt - 1); j++)
1472 garg->gid_arr[j] = garg->gid_arr[j + 1]; /* ...shift remaining groups left ... */
1473 garg->gidcnt--; /* ..and update the book keeping for the number of groups */
1474
1475 /*
1476 * We also must update the number of groups either in a previous tuple (which we
1477 * must identify and check whether it becomes empty due to the deletion) or in
1478 * the current tuple, pending where the deleted group resides
1479 */
1480 k = 0;
1481 for (j = 0; j < garg->tplcnt; j++) {
1482 k += garg->tuplcnt_arr[j];
1483 /* Remark: i is zero-indexed, k is one-indexed */
1484 if (k > i) { /* remove from one of the previous tuples */
1485 garg->tuplcnt_arr[j]--;
1486 break; /* We took care not to have group duplicates, hence we can stop here */
1487 }
1488 }
1489 if (k <= i) /* remove from current tuple */
1490 garg->tuplcnt_arr[j]--;
1491
1492 /* We also remove the group from the list of keyshares (if present) */
1493 found_group = 0;
1494 for (i = 0; i < garg->ksidcnt; i++)
1495 if (garg->ksid_arr[i] == gid) {
1496 found_group = 1;
1497 break;
1498 }
1499 if (found_group) {
1500 /* Found, hence we remove that keyshare from its position (which is at i)... */
1501 for (j = i; j < (garg->ksidcnt - 1); j++)
1502 garg->ksid_arr[j] = garg->ksid_arr[j + 1]; /* shift remaining key shares */
1503 /* ... and update the book keeping */
1504 garg->ksidcnt--;
1505 }
1506 }
1507 } else { /* Processing addition of a single new group */
1508
1509 /* Check for duplicates */
1510 for (i = 0; i < garg->gidcnt; i++)
1511 if (garg->gid_arr[i] == gid) {
1512 /* Duplicate group anywhere in the list of groups - ignore */
1513 goto done;
1514 }
1515
1516 /* Add the current group to the 'flat' list of groups */
1517 garg->gid_arr[garg->gidcnt++] = gid;
1518 /* and update the book keeping for the number of groups in current tuple */
1519 garg->tuplcnt_arr[garg->tplcnt]++;
1520
1521 /* We want to add a key share for the current group */
1522 if (add_keyshare)
1523 garg->ksid_arr[garg->ksidcnt++] = gid;
1524 }
1525
1526 done:
1527 return retval;
1528 }
1529
1530 /*
1531 * Ensure tuplcnt_arr has room for at least tplcnt + 2 entries so that
1532 * close_tuple() can safely increment tplcnt and write the new active-tuple
1533 * slot at index tplcnt + 1. Must be called before that increment.
1534 */
grow_tuples(gid_cb_st * garg)1535 static int grow_tuples(gid_cb_st *garg)
1536 {
1537 static size_t max_tplcnt = (~(size_t)0) / sizeof(size_t);
1538
1539 /*
1540 * Ensure we have room for at least one additional tuple.
1541 * (tplcnt + 1 are in active use).
1542 */
1543 if (garg->tplcnt + 1 == garg->tplmax) {
1544 size_t newcnt = garg->tplmax + GROUPLIST_INCREMENT;
1545 size_t newsz = newcnt * sizeof(size_t);
1546 size_t *tmp;
1547
1548 if (newsz > max_tplcnt
1549 || (tmp = OPENSSL_realloc(garg->tuplcnt_arr, newsz)) == NULL)
1550 return 0;
1551
1552 garg->tplmax = newcnt;
1553 garg->tuplcnt_arr = tmp;
1554 }
1555 return 1;
1556 }
1557
1558 /*
1559 * Finalise the active tuple (at index tplcnt) and open a fresh one.
1560 * tplcnt is the count of closed tuples; the active tuple lives at tplcnt
1561 * throughout parsing. After this call tplcnt is incremented and the new
1562 * active tuple at the updated index is initialised to 0.
1563 * Empty tuples (gidcnt == 0) are discarded without advancing tplcnt.
1564 */
close_tuple(gid_cb_st * garg)1565 static int close_tuple(gid_cb_st *garg)
1566 {
1567 size_t gidcnt = garg->tuplcnt_arr[garg->tplcnt];
1568
1569 if (gidcnt == 0)
1570 return 1; /* Discard empty tuple; no need to open a new slot */
1571
1572 /* Grow before the increment: the new active slot will be at tplcnt + 1 */
1573 if (!grow_tuples(garg))
1574 return 0;
1575
1576 /* Promote closed tuple and initialise the new active tuple slot */
1577 garg->tuplcnt_arr[++garg->tplcnt] = 0;
1578 return 1;
1579 }
1580
1581 /* Extract and process a tuple of groups */
tuple_cb(const char * tuple,int len,void * arg)1582 static int tuple_cb(const char *tuple, int len, void *arg)
1583 {
1584 gid_cb_st *garg = arg;
1585 int retval = 1; /* We assume success */
1586 char *restored_tuple_string;
1587
1588 /* Sanity checks */
1589 if (garg == NULL || tuple == NULL || len <= 0) {
1590 ERR_raise(ERR_LIB_SSL, SSL_R_UNSUPPORTED_CONFIG_VALUE);
1591 return 0;
1592 }
1593
1594 if (garg->inner && !garg->first && !close_tuple(garg))
1595 return 0;
1596 garg->first = 0;
1597
1598 /* Convert to \0-terminated string */
1599 restored_tuple_string = OPENSSL_malloc((len + 1 /* \0 */) * sizeof(char));
1600 if (restored_tuple_string == NULL)
1601 return 0;
1602 memcpy(restored_tuple_string, tuple, len);
1603 restored_tuple_string[len] = '\0';
1604
1605 /* Analyze group list of this tuple */
1606 retval = CONF_parse_list(restored_tuple_string, GROUP_DELIMITER_CHARACTER, 1, gid_cb, arg);
1607
1608 /* We don't need the \o-terminated string anymore */
1609 OPENSSL_free(restored_tuple_string);
1610
1611 if (!garg->inner && !close_tuple(garg))
1612 return 0;
1613 return retval;
1614 }
1615
1616 /*
1617 * Set groups and prepare generation of keyshares based on a string of groupnames,
1618 * names separated by the group or the tuple delimiter, with per-group prefixes to
1619 * (1) add a key share for this group, (2) ignore the group if unknown to the current
1620 * context, (3) delete a previous occurrence of the group in the current tuple.
1621 *
1622 * The list parsing is done in two hierarchical steps: The top-level step extracts the
1623 * string of a tuple using tuple_cb, while the next lower step uses gid_cb to
1624 * parse and process the groups inside a tuple
1625 */
tls1_set_groups_list(SSL_CTX * ctx,uint16_t ** grpext,size_t * grpextlen,uint16_t ** ksext,size_t * ksextlen,size_t ** tplext,size_t * tplextlen,const char * str)1626 int tls1_set_groups_list(SSL_CTX *ctx,
1627 uint16_t **grpext, size_t *grpextlen,
1628 uint16_t **ksext, size_t *ksextlen,
1629 size_t **tplext, size_t *tplextlen,
1630 const char *str)
1631 {
1632 size_t i = 0, j;
1633 int ret = 0, parse_ret = 0;
1634 gid_cb_st gcb;
1635
1636 /* Sanity check */
1637 if (ctx == NULL) {
1638 ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_NULL_PARAMETER);
1639 return 0;
1640 }
1641
1642 memset(&gcb, 0, sizeof(gcb));
1643 gcb.gidmax = GROUPLIST_INCREMENT;
1644 gcb.tplmax = GROUPLIST_INCREMENT;
1645 gcb.ksidmax = GROUPLIST_INCREMENT;
1646 gcb.ctx = ctx;
1647
1648 /* Prepare initial chunks of memory for groups, tuples and keyshares groupIDs */
1649 gcb.gid_arr = OPENSSL_malloc(gcb.gidmax * sizeof(*gcb.gid_arr));
1650 if (gcb.gid_arr == NULL)
1651 goto end;
1652 gcb.tuplcnt_arr = OPENSSL_malloc(gcb.tplmax * sizeof(*gcb.tuplcnt_arr));
1653 if (gcb.tuplcnt_arr == NULL)
1654 goto end;
1655 gcb.tuplcnt_arr[0] = 0;
1656 gcb.ksid_arr = OPENSSL_malloc(gcb.ksidmax * sizeof(*gcb.ksid_arr));
1657 if (gcb.ksid_arr == NULL)
1658 goto end;
1659
1660 while (str[0] != '\0' && isspace((unsigned char)*str))
1661 str++;
1662 if (str[0] == '\0')
1663 goto empty_list;
1664
1665 /*
1666 * Start the (potentially recursive) tuple processing by calling CONF_parse_list
1667 * with the TUPLE_DELIMITER_CHARACTER (which will call tuple_cb after cleaning spaces)
1668 */
1669 parse_ret = CONF_parse_list(str, TUPLE_DELIMITER_CHARACTER, 1, tuple_cb, &gcb);
1670
1671 if (parse_ret == 0)
1672 goto end;
1673 if (parse_ret == -1) {
1674 ERR_raise_data(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT,
1675 "Syntax error in '%s'", str);
1676 goto end;
1677 }
1678
1679 /*
1680 * We check whether a tuple was completely emptied by using "-" prefix
1681 * excessively, in which case we remove the tuple
1682 */
1683 for (i = j = 0; j < gcb.tplcnt; j++) {
1684 if (gcb.tuplcnt_arr[j] == 0)
1685 continue;
1686 /* If there's a gap, move to first unfilled slot */
1687 if (j == i)
1688 ++i;
1689 else
1690 gcb.tuplcnt_arr[i++] = gcb.tuplcnt_arr[j];
1691 }
1692 gcb.tplcnt = i;
1693
1694 if (gcb.ksidcnt > OPENSSL_CLIENT_MAX_KEY_SHARES) {
1695 ERR_raise_data(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT,
1696 "To many keyshares requested in '%s' (max = %d)",
1697 str, OPENSSL_CLIENT_MAX_KEY_SHARES);
1698 goto end;
1699 }
1700
1701 /*
1702 * For backward compatibility we let the rest of the code know that a key share
1703 * for the first valid group should be added if no "*" prefix was used anywhere
1704 */
1705 if (gcb.gidcnt > 0 && gcb.ksidcnt == 0) {
1706 /*
1707 * No key share group prefix character was used, hence we indicate that a single
1708 * key share should be sent and flag that it should come from the supported_groups list
1709 */
1710 gcb.ksidcnt = 1;
1711 gcb.ksid_arr[0] = 0;
1712 }
1713
1714 empty_list:
1715 /*
1716 * A call to tls1_set_groups_list with any of the args (other than ctx) set
1717 * to NULL only does a syntax check, hence we're done here and report success
1718 */
1719 if (grpext == NULL || ksext == NULL || tplext == NULL || grpextlen == NULL || ksextlen == NULL || tplextlen == NULL) {
1720 ret = 1;
1721 goto end;
1722 }
1723
1724 /*
1725 * tuple_cb and gid_cb combo ensures there are no duplicates or unknown groups so we
1726 * can just go ahead and set the results (after disposing the existing)
1727 */
1728 OPENSSL_free(*grpext);
1729 *grpext = gcb.gid_arr;
1730 *grpextlen = gcb.gidcnt;
1731 OPENSSL_free(*ksext);
1732 *ksext = gcb.ksid_arr;
1733 *ksextlen = gcb.ksidcnt;
1734 OPENSSL_free(*tplext);
1735 *tplext = gcb.tuplcnt_arr;
1736 *tplextlen = gcb.tplcnt;
1737
1738 return 1;
1739
1740 end:
1741 OPENSSL_free(gcb.gid_arr);
1742 OPENSSL_free(gcb.tuplcnt_arr);
1743 OPENSSL_free(gcb.ksid_arr);
1744 return ret;
1745 }
1746
1747 /* Check a group id matches preferences */
tls1_check_group_id(SSL_CONNECTION * s,uint16_t group_id,int check_own_groups)1748 int tls1_check_group_id(SSL_CONNECTION *s, uint16_t group_id,
1749 int check_own_groups)
1750 {
1751 const uint16_t *groups;
1752 size_t groups_len;
1753
1754 if (group_id == 0)
1755 return 0;
1756
1757 /* Check for Suite B compliance */
1758 if (tls1_suiteb(s) && s->s3.tmp.new_cipher != NULL) {
1759 unsigned long cid = s->s3.tmp.new_cipher->id;
1760
1761 if (cid == TLS1_CK_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256) {
1762 if (group_id != OSSL_TLS_GROUP_ID_secp256r1)
1763 return 0;
1764 } else if (cid == TLS1_CK_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384) {
1765 if (group_id != OSSL_TLS_GROUP_ID_secp384r1)
1766 return 0;
1767 } else {
1768 /* Should never happen */
1769 return 0;
1770 }
1771 }
1772
1773 if (check_own_groups) {
1774 /* Check group is one of our preferences */
1775 tls1_get_supported_groups(s, &groups, &groups_len);
1776 if (!tls1_in_list(group_id, groups, groups_len))
1777 return 0;
1778 }
1779
1780 if (!tls_group_allowed(s, group_id, SSL_SECOP_CURVE_CHECK))
1781 return 0;
1782
1783 /* For clients, nothing more to check */
1784 if (!s->server)
1785 return 1;
1786
1787 /* Check group is one of peers preferences */
1788 tls1_get_peer_groups(s, &groups, &groups_len);
1789
1790 /*
1791 * RFC 4492 does not require the supported elliptic curves extension
1792 * so if it is not sent we can just choose any curve.
1793 * It is invalid to send an empty list in the supported groups
1794 * extension, so groups_len == 0 always means no extension.
1795 */
1796 if (groups_len == 0)
1797 return 1;
1798 return tls1_in_list(group_id, groups, groups_len);
1799 }
1800
tls1_get_formatlist(SSL_CONNECTION * s,const unsigned char ** pformats,size_t * num_formats)1801 void tls1_get_formatlist(SSL_CONNECTION *s, const unsigned char **pformats,
1802 size_t *num_formats)
1803 {
1804 /*
1805 * If we have a custom point format list use it otherwise use default
1806 */
1807 if (s->ext.ecpointformats) {
1808 *pformats = s->ext.ecpointformats;
1809 *num_formats = s->ext.ecpointformats_len;
1810 } else {
1811 *pformats = ecformats_default;
1812 /* For Suite B we don't support char2 fields */
1813 if (tls1_suiteb(s))
1814 *num_formats = sizeof(ecformats_default) - 1;
1815 else
1816 *num_formats = sizeof(ecformats_default);
1817 }
1818 }
1819
1820 /* Return group id of a key */
tls1_get_group_id(EVP_PKEY * pkey)1821 static uint16_t tls1_get_group_id(EVP_PKEY *pkey)
1822 {
1823 int curve_nid = ssl_get_EC_curve_nid(pkey);
1824
1825 if (curve_nid == NID_undef)
1826 return 0;
1827 return tls1_nid2group_id(curve_nid);
1828 }
1829
1830 /*
1831 * Check cert parameters compatible with extensions: currently just checks EC
1832 * certificates have compatible curves and compression.
1833 */
tls1_check_cert_param(SSL_CONNECTION * s,X509 * x,int check_ee_md)1834 static int tls1_check_cert_param(SSL_CONNECTION *s, X509 *x, int check_ee_md)
1835 {
1836 uint16_t group_id;
1837 EVP_PKEY *pkey;
1838 pkey = X509_get0_pubkey(x);
1839 if (pkey == NULL)
1840 return 0;
1841 /* If not EC nothing to do */
1842 if (!EVP_PKEY_is_a(pkey, "EC"))
1843 return 1;
1844 group_id = tls1_get_group_id(pkey);
1845 /*
1846 * For a server we allow the certificate to not be in our list of supported
1847 * groups.
1848 */
1849 if (!tls1_check_group_id(s, group_id, !s->server))
1850 return 0;
1851 /*
1852 * Special case for suite B. We *MUST* sign using SHA256+P-256 or
1853 * SHA384+P-384.
1854 */
1855 if (check_ee_md && tls1_suiteb(s)) {
1856 int check_md;
1857 size_t i;
1858
1859 /* Check to see we have necessary signing algorithm */
1860 if (group_id == OSSL_TLS_GROUP_ID_secp256r1)
1861 check_md = NID_ecdsa_with_SHA256;
1862 else if (group_id == OSSL_TLS_GROUP_ID_secp384r1)
1863 check_md = NID_ecdsa_with_SHA384;
1864 else
1865 return 0; /* Should never happen */
1866 for (i = 0; i < s->shared_sigalgslen; i++) {
1867 if (check_md == s->shared_sigalgs[i]->sigandhash)
1868 return 1;
1869 }
1870 return 0;
1871 }
1872 return 1;
1873 }
1874
1875 /*
1876 * tls1_check_ec_tmp_key - Check EC temporary key compatibility
1877 * @s: SSL connection
1878 * @cid: Cipher ID we're considering using
1879 *
1880 * Checks that the kECDHE cipher suite we're considering using
1881 * is compatible with the client extensions.
1882 *
1883 * Returns 0 when the cipher can't be used or 1 when it can.
1884 */
tls1_check_ec_tmp_key(SSL_CONNECTION * s,unsigned long cid)1885 int tls1_check_ec_tmp_key(SSL_CONNECTION *s, unsigned long cid)
1886 {
1887 /* If not Suite B just need a shared group */
1888 if (!tls1_suiteb(s))
1889 return tls1_shared_group(s, 0) != 0;
1890 /*
1891 * If Suite B, AES128 MUST use P-256 and AES256 MUST use P-384, no other
1892 * curves permitted.
1893 */
1894 if (cid == TLS1_CK_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256)
1895 return tls1_check_group_id(s, OSSL_TLS_GROUP_ID_secp256r1, 1);
1896 if (cid == TLS1_CK_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384)
1897 return tls1_check_group_id(s, OSSL_TLS_GROUP_ID_secp384r1, 1);
1898
1899 return 0;
1900 }
1901
1902 /* Default sigalg schemes */
1903 static const uint16_t tls12_sigalgs[] = {
1904 TLSEXT_SIGALG_mldsa65,
1905 TLSEXT_SIGALG_mldsa87,
1906 TLSEXT_SIGALG_mldsa44,
1907 TLSEXT_SIGALG_ecdsa_secp256r1_sha256,
1908 TLSEXT_SIGALG_ecdsa_secp384r1_sha384,
1909 TLSEXT_SIGALG_ecdsa_secp521r1_sha512,
1910 TLSEXT_SIGALG_ed25519,
1911 TLSEXT_SIGALG_ed448,
1912 TLSEXT_SIGALG_ecdsa_brainpoolP256r1_sha256,
1913 TLSEXT_SIGALG_ecdsa_brainpoolP384r1_sha384,
1914 TLSEXT_SIGALG_ecdsa_brainpoolP512r1_sha512,
1915
1916 TLSEXT_SIGALG_rsa_pss_pss_sha256,
1917 TLSEXT_SIGALG_rsa_pss_pss_sha384,
1918 TLSEXT_SIGALG_rsa_pss_pss_sha512,
1919 TLSEXT_SIGALG_rsa_pss_rsae_sha256,
1920 TLSEXT_SIGALG_rsa_pss_rsae_sha384,
1921 TLSEXT_SIGALG_rsa_pss_rsae_sha512,
1922
1923 TLSEXT_SIGALG_rsa_pkcs1_sha256,
1924 TLSEXT_SIGALG_rsa_pkcs1_sha384,
1925 TLSEXT_SIGALG_rsa_pkcs1_sha512,
1926
1927 TLSEXT_SIGALG_ecdsa_sha224,
1928 TLSEXT_SIGALG_ecdsa_sha1,
1929
1930 TLSEXT_SIGALG_rsa_pkcs1_sha224,
1931 TLSEXT_SIGALG_rsa_pkcs1_sha1,
1932
1933 TLSEXT_SIGALG_dsa_sha224,
1934 TLSEXT_SIGALG_dsa_sha1,
1935
1936 TLSEXT_SIGALG_dsa_sha256,
1937 TLSEXT_SIGALG_dsa_sha384,
1938 TLSEXT_SIGALG_dsa_sha512,
1939
1940 #ifndef OPENSSL_NO_GOST
1941 TLSEXT_SIGALG_gostr34102012_256_intrinsic,
1942 TLSEXT_SIGALG_gostr34102012_512_intrinsic,
1943 TLSEXT_SIGALG_gostr34102012_256_gostr34112012_256,
1944 TLSEXT_SIGALG_gostr34102012_512_gostr34112012_512,
1945 TLSEXT_SIGALG_gostr34102001_gostr3411,
1946 #endif
1947 };
1948
1949 static const uint16_t suiteb_sigalgs[] = {
1950 TLSEXT_SIGALG_ecdsa_secp256r1_sha256,
1951 TLSEXT_SIGALG_ecdsa_secp384r1_sha384
1952 };
1953
1954 static const SIGALG_LOOKUP sigalg_lookup_tbl[] = {
1955 { TLSEXT_SIGALG_ecdsa_secp256r1_sha256_name,
1956 "ECDSA+SHA256", TLSEXT_SIGALG_ecdsa_secp256r1_sha256,
1957 NID_sha256, SSL_MD_SHA256_IDX, EVP_PKEY_EC, SSL_PKEY_ECC,
1958 NID_ecdsa_with_SHA256, NID_X9_62_prime256v1, 1, 0,
1959 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
1960 { TLSEXT_SIGALG_ecdsa_secp384r1_sha384_name,
1961 "ECDSA+SHA384", TLSEXT_SIGALG_ecdsa_secp384r1_sha384,
1962 NID_sha384, SSL_MD_SHA384_IDX, EVP_PKEY_EC, SSL_PKEY_ECC,
1963 NID_ecdsa_with_SHA384, NID_secp384r1, 1, 0,
1964 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
1965 { TLSEXT_SIGALG_ecdsa_secp521r1_sha512_name,
1966 "ECDSA+SHA512", TLSEXT_SIGALG_ecdsa_secp521r1_sha512,
1967 NID_sha512, SSL_MD_SHA512_IDX, EVP_PKEY_EC, SSL_PKEY_ECC,
1968 NID_ecdsa_with_SHA512, NID_secp521r1, 1, 0,
1969 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
1970
1971 { TLSEXT_SIGALG_ed25519_name,
1972 NULL, TLSEXT_SIGALG_ed25519,
1973 NID_undef, -1, EVP_PKEY_ED25519, SSL_PKEY_ED25519,
1974 NID_undef, NID_undef, 1, 0,
1975 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
1976 { TLSEXT_SIGALG_ed448_name,
1977 NULL, TLSEXT_SIGALG_ed448,
1978 NID_undef, -1, EVP_PKEY_ED448, SSL_PKEY_ED448,
1979 NID_undef, NID_undef, 1, 0,
1980 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
1981
1982 { TLSEXT_SIGALG_ecdsa_sha224_name,
1983 "ECDSA+SHA224", TLSEXT_SIGALG_ecdsa_sha224,
1984 NID_sha224, SSL_MD_SHA224_IDX, EVP_PKEY_EC, SSL_PKEY_ECC,
1985 NID_ecdsa_with_SHA224, NID_undef, 1, 0,
1986 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
1987 { TLSEXT_SIGALG_ecdsa_sha1_name,
1988 "ECDSA+SHA1", TLSEXT_SIGALG_ecdsa_sha1,
1989 NID_sha1, SSL_MD_SHA1_IDX, EVP_PKEY_EC, SSL_PKEY_ECC,
1990 NID_ecdsa_with_SHA1, NID_undef, 1, 0,
1991 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
1992
1993 { TLSEXT_SIGALG_ecdsa_brainpoolP256r1_sha256_name,
1994 TLSEXT_SIGALG_ecdsa_brainpoolP256r1_sha256_alias,
1995 TLSEXT_SIGALG_ecdsa_brainpoolP256r1_sha256,
1996 NID_sha256, SSL_MD_SHA256_IDX, EVP_PKEY_EC, SSL_PKEY_ECC,
1997 NID_ecdsa_with_SHA256, NID_brainpoolP256r1, 1, 0,
1998 TLS1_3_VERSION, 0, -1, -1 },
1999 { TLSEXT_SIGALG_ecdsa_brainpoolP384r1_sha384_name,
2000 TLSEXT_SIGALG_ecdsa_brainpoolP384r1_sha384_alias,
2001 TLSEXT_SIGALG_ecdsa_brainpoolP384r1_sha384,
2002 NID_sha384, SSL_MD_SHA384_IDX, EVP_PKEY_EC, SSL_PKEY_ECC,
2003 NID_ecdsa_with_SHA384, NID_brainpoolP384r1, 1, 0,
2004 TLS1_3_VERSION, 0, -1, -1 },
2005 { TLSEXT_SIGALG_ecdsa_brainpoolP512r1_sha512_name,
2006 TLSEXT_SIGALG_ecdsa_brainpoolP512r1_sha512_alias,
2007 TLSEXT_SIGALG_ecdsa_brainpoolP512r1_sha512,
2008 NID_sha512, SSL_MD_SHA512_IDX, EVP_PKEY_EC, SSL_PKEY_ECC,
2009 NID_ecdsa_with_SHA512, NID_brainpoolP512r1, 1, 0,
2010 TLS1_3_VERSION, 0, -1, -1 },
2011
2012 { TLSEXT_SIGALG_rsa_pss_rsae_sha256_name,
2013 "PSS+SHA256", TLSEXT_SIGALG_rsa_pss_rsae_sha256,
2014 NID_sha256, SSL_MD_SHA256_IDX, EVP_PKEY_RSA_PSS, SSL_PKEY_RSA,
2015 NID_undef, NID_undef, 1, 0,
2016 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
2017 { TLSEXT_SIGALG_rsa_pss_rsae_sha384_name,
2018 "PSS+SHA384", TLSEXT_SIGALG_rsa_pss_rsae_sha384,
2019 NID_sha384, SSL_MD_SHA384_IDX, EVP_PKEY_RSA_PSS, SSL_PKEY_RSA,
2020 NID_undef, NID_undef, 1, 0,
2021 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
2022 { TLSEXT_SIGALG_rsa_pss_rsae_sha512_name,
2023 "PSS+SHA512", TLSEXT_SIGALG_rsa_pss_rsae_sha512,
2024 NID_sha512, SSL_MD_SHA512_IDX, EVP_PKEY_RSA_PSS, SSL_PKEY_RSA,
2025 NID_undef, NID_undef, 1, 0,
2026 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
2027
2028 { TLSEXT_SIGALG_rsa_pss_pss_sha256_name,
2029 NULL, TLSEXT_SIGALG_rsa_pss_pss_sha256,
2030 NID_sha256, SSL_MD_SHA256_IDX, EVP_PKEY_RSA_PSS, SSL_PKEY_RSA_PSS_SIGN,
2031 NID_undef, NID_undef, 1, 0,
2032 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
2033 { TLSEXT_SIGALG_rsa_pss_pss_sha384_name,
2034 NULL, TLSEXT_SIGALG_rsa_pss_pss_sha384,
2035 NID_sha384, SSL_MD_SHA384_IDX, EVP_PKEY_RSA_PSS, SSL_PKEY_RSA_PSS_SIGN,
2036 NID_undef, NID_undef, 1, 0,
2037 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
2038 { TLSEXT_SIGALG_rsa_pss_pss_sha512_name,
2039 NULL, TLSEXT_SIGALG_rsa_pss_pss_sha512,
2040 NID_sha512, SSL_MD_SHA512_IDX, EVP_PKEY_RSA_PSS, SSL_PKEY_RSA_PSS_SIGN,
2041 NID_undef, NID_undef, 1, 0,
2042 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
2043
2044 { TLSEXT_SIGALG_rsa_pkcs1_sha256_name,
2045 "RSA+SHA256", TLSEXT_SIGALG_rsa_pkcs1_sha256,
2046 NID_sha256, SSL_MD_SHA256_IDX, EVP_PKEY_RSA, SSL_PKEY_RSA,
2047 NID_sha256WithRSAEncryption, NID_undef, 1, 0,
2048 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
2049 { TLSEXT_SIGALG_rsa_pkcs1_sha384_name,
2050 "RSA+SHA384", TLSEXT_SIGALG_rsa_pkcs1_sha384,
2051 NID_sha384, SSL_MD_SHA384_IDX, EVP_PKEY_RSA, SSL_PKEY_RSA,
2052 NID_sha384WithRSAEncryption, NID_undef, 1, 0,
2053 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
2054 { TLSEXT_SIGALG_rsa_pkcs1_sha512_name,
2055 "RSA+SHA512", TLSEXT_SIGALG_rsa_pkcs1_sha512,
2056 NID_sha512, SSL_MD_SHA512_IDX, EVP_PKEY_RSA, SSL_PKEY_RSA,
2057 NID_sha512WithRSAEncryption, NID_undef, 1, 0,
2058 TLS1_2_VERSION, 0, DTLS1_2_VERSION, 0 },
2059
2060 { TLSEXT_SIGALG_rsa_pkcs1_sha224_name,
2061 "RSA+SHA224", TLSEXT_SIGALG_rsa_pkcs1_sha224,
2062 NID_sha224, SSL_MD_SHA224_IDX, EVP_PKEY_RSA, SSL_PKEY_RSA,
2063 NID_sha224WithRSAEncryption, NID_undef, 1, 0,
2064 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2065 { TLSEXT_SIGALG_rsa_pkcs1_sha1_name,
2066 "RSA+SHA1", TLSEXT_SIGALG_rsa_pkcs1_sha1,
2067 NID_sha1, SSL_MD_SHA1_IDX, EVP_PKEY_RSA, SSL_PKEY_RSA,
2068 NID_sha1WithRSAEncryption, NID_undef, 1, 0,
2069 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2070
2071 { TLSEXT_SIGALG_dsa_sha256_name,
2072 "DSA+SHA256", TLSEXT_SIGALG_dsa_sha256,
2073 NID_sha256, SSL_MD_SHA256_IDX, EVP_PKEY_DSA, SSL_PKEY_DSA_SIGN,
2074 NID_dsa_with_SHA256, NID_undef, 1, 0,
2075 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2076 { TLSEXT_SIGALG_dsa_sha384_name,
2077 "DSA+SHA384", TLSEXT_SIGALG_dsa_sha384,
2078 NID_sha384, SSL_MD_SHA384_IDX, EVP_PKEY_DSA, SSL_PKEY_DSA_SIGN,
2079 NID_undef, NID_undef, 1, 0,
2080 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2081 { TLSEXT_SIGALG_dsa_sha512_name,
2082 "DSA+SHA512", TLSEXT_SIGALG_dsa_sha512,
2083 NID_sha512, SSL_MD_SHA512_IDX, EVP_PKEY_DSA, SSL_PKEY_DSA_SIGN,
2084 NID_undef, NID_undef, 1, 0,
2085 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2086 { TLSEXT_SIGALG_dsa_sha224_name,
2087 "DSA+SHA224", TLSEXT_SIGALG_dsa_sha224,
2088 NID_sha224, SSL_MD_SHA224_IDX, EVP_PKEY_DSA, SSL_PKEY_DSA_SIGN,
2089 NID_undef, NID_undef, 1, 0,
2090 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2091 { TLSEXT_SIGALG_dsa_sha1_name,
2092 "DSA+SHA1", TLSEXT_SIGALG_dsa_sha1,
2093 NID_sha1, SSL_MD_SHA1_IDX, EVP_PKEY_DSA, SSL_PKEY_DSA_SIGN,
2094 NID_dsaWithSHA1, NID_undef, 1, 0,
2095 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2096
2097 #ifndef OPENSSL_NO_GOST
2098 { TLSEXT_SIGALG_gostr34102012_256_intrinsic_alias, /* RFC9189 */
2099 TLSEXT_SIGALG_gostr34102012_256_intrinsic_name,
2100 TLSEXT_SIGALG_gostr34102012_256_intrinsic,
2101 NID_id_GostR3411_2012_256, SSL_MD_GOST12_256_IDX,
2102 NID_id_GostR3410_2012_256, SSL_PKEY_GOST12_256,
2103 NID_undef, NID_undef, 1, 0,
2104 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2105 { TLSEXT_SIGALG_gostr34102012_256_intrinsic_alias, /* RFC9189 */
2106 TLSEXT_SIGALG_gostr34102012_256_intrinsic_name,
2107 TLSEXT_SIGALG_gostr34102012_512_intrinsic,
2108 NID_id_GostR3411_2012_512, SSL_MD_GOST12_512_IDX,
2109 NID_id_GostR3410_2012_512, SSL_PKEY_GOST12_512,
2110 NID_undef, NID_undef, 1, 0,
2111 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2112
2113 { TLSEXT_SIGALG_gostr34102012_256_gostr34112012_256_name,
2114 NULL, TLSEXT_SIGALG_gostr34102012_256_gostr34112012_256,
2115 NID_id_GostR3411_2012_256, SSL_MD_GOST12_256_IDX,
2116 NID_id_GostR3410_2012_256, SSL_PKEY_GOST12_256,
2117 NID_undef, NID_undef, 1, 0,
2118 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2119 { TLSEXT_SIGALG_gostr34102012_512_gostr34112012_512_name,
2120 NULL, TLSEXT_SIGALG_gostr34102012_512_gostr34112012_512,
2121 NID_id_GostR3411_2012_512, SSL_MD_GOST12_512_IDX,
2122 NID_id_GostR3410_2012_512, SSL_PKEY_GOST12_512,
2123 NID_undef, NID_undef, 1, 0,
2124 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2125 { TLSEXT_SIGALG_gostr34102001_gostr3411_name,
2126 NULL, TLSEXT_SIGALG_gostr34102001_gostr3411,
2127 NID_id_GostR3411_94, SSL_MD_GOST94_IDX,
2128 NID_id_GostR3410_2001, SSL_PKEY_GOST01,
2129 NID_undef, NID_undef, 1, 0,
2130 TLS1_2_VERSION, TLS1_2_VERSION, DTLS1_2_VERSION, DTLS1_2_VERSION },
2131 #endif
2132 };
2133 /* Legacy sigalgs for TLS < 1.2 RSA TLS signatures */
2134 static const SIGALG_LOOKUP legacy_rsa_sigalg = {
2135 "rsa_pkcs1_md5_sha1", NULL, 0,
2136 NID_md5_sha1, SSL_MD_MD5_SHA1_IDX,
2137 EVP_PKEY_RSA, SSL_PKEY_RSA,
2138 NID_undef, NID_undef, 1, 0,
2139 TLS1_VERSION, TLS1_2_VERSION, DTLS1_VERSION, DTLS1_2_VERSION
2140 };
2141
2142 /*
2143 * Default signature algorithm values used if signature algorithms not present.
2144 * From RFC5246. Note: order must match certificate index order.
2145 */
2146 static const uint16_t tls_default_sigalg[] = {
2147 TLSEXT_SIGALG_rsa_pkcs1_sha1, /* SSL_PKEY_RSA */
2148 0, /* SSL_PKEY_RSA_PSS_SIGN */
2149 TLSEXT_SIGALG_dsa_sha1, /* SSL_PKEY_DSA_SIGN */
2150 TLSEXT_SIGALG_ecdsa_sha1, /* SSL_PKEY_ECC */
2151 TLSEXT_SIGALG_gostr34102001_gostr3411, /* SSL_PKEY_GOST01 */
2152 TLSEXT_SIGALG_gostr34102012_256_intrinsic, /* SSL_PKEY_GOST12_256 */
2153 TLSEXT_SIGALG_gostr34102012_512_intrinsic, /* SSL_PKEY_GOST12_512 */
2154 0, /* SSL_PKEY_ED25519 */
2155 0, /* SSL_PKEY_ED448 */
2156 };
2157
ssl_setup_sigalgs(SSL_CTX * ctx)2158 int ssl_setup_sigalgs(SSL_CTX *ctx)
2159 {
2160 size_t i, cache_idx, sigalgs_len, enabled;
2161 const SIGALG_LOOKUP *lu;
2162 SIGALG_LOOKUP *cache = NULL;
2163 uint16_t *tls12_sigalgs_list = NULL;
2164 EVP_PKEY *tmpkey = EVP_PKEY_new();
2165 int istls;
2166 int ret = 0;
2167
2168 if (ctx == NULL)
2169 goto err;
2170
2171 istls = !SSL_CTX_IS_DTLS(ctx);
2172
2173 sigalgs_len = OSSL_NELEM(sigalg_lookup_tbl) + ctx->sigalg_list_len;
2174
2175 cache = OPENSSL_zalloc(sizeof(const SIGALG_LOOKUP) * sigalgs_len);
2176 if (cache == NULL || tmpkey == NULL)
2177 goto err;
2178
2179 tls12_sigalgs_list = OPENSSL_zalloc(sizeof(uint16_t) * sigalgs_len);
2180 if (tls12_sigalgs_list == NULL)
2181 goto err;
2182
2183 ERR_set_mark();
2184 /* First fill cache and tls12_sigalgs list from legacy algorithm list */
2185 for (i = 0, lu = sigalg_lookup_tbl;
2186 i < OSSL_NELEM(sigalg_lookup_tbl); lu++, i++) {
2187 EVP_PKEY_CTX *pctx;
2188
2189 cache[i] = *lu;
2190
2191 /*
2192 * Check hash is available.
2193 * This test is not perfect. A provider could have support
2194 * for a signature scheme, but not a particular hash. However the hash
2195 * could be available from some other loaded provider. In that case it
2196 * could be that the signature is available, and the hash is available
2197 * independently - but not as a combination. We ignore this for now.
2198 */
2199 if (lu->hash != NID_undef
2200 && ctx->ssl_digest_methods[lu->hash_idx] == NULL) {
2201 cache[i].available = 0;
2202 continue;
2203 }
2204
2205 if (!EVP_PKEY_set_type(tmpkey, lu->sig)) {
2206 cache[i].available = 0;
2207 continue;
2208 }
2209 pctx = EVP_PKEY_CTX_new_from_pkey(ctx->libctx, tmpkey, ctx->propq);
2210 /* If unable to create pctx we assume the sig algorithm is unavailable */
2211 if (pctx == NULL)
2212 cache[i].available = 0;
2213 EVP_PKEY_CTX_free(pctx);
2214 }
2215
2216 /* Now complete cache and tls12_sigalgs list with provider sig information */
2217 cache_idx = OSSL_NELEM(sigalg_lookup_tbl);
2218 for (i = 0; i < ctx->sigalg_list_len; i++) {
2219 TLS_SIGALG_INFO si = ctx->sigalg_list[i];
2220 cache[cache_idx].name = si.name;
2221 cache[cache_idx].name12 = si.sigalg_name;
2222 cache[cache_idx].sigalg = si.code_point;
2223 tls12_sigalgs_list[cache_idx] = si.code_point;
2224 cache[cache_idx].hash = si.hash_name ? OBJ_txt2nid(si.hash_name) : NID_undef;
2225 cache[cache_idx].hash_idx = ssl_get_md_idx(cache[cache_idx].hash);
2226 cache[cache_idx].sig = OBJ_txt2nid(si.sigalg_name);
2227 cache[cache_idx].sig_idx = i + SSL_PKEY_NUM;
2228 cache[cache_idx].sigandhash = OBJ_txt2nid(si.sigalg_name);
2229 cache[cache_idx].curve = NID_undef;
2230 cache[cache_idx].mintls = TLS1_3_VERSION;
2231 cache[cache_idx].maxtls = TLS1_3_VERSION;
2232 cache[cache_idx].mindtls = -1;
2233 cache[cache_idx].maxdtls = -1;
2234 /* Compatibility with TLS 1.3 is checked on load */
2235 cache[cache_idx].available = istls;
2236 cache[cache_idx].advertise = 0;
2237 cache_idx++;
2238 }
2239 ERR_pop_to_mark();
2240
2241 enabled = 0;
2242 for (i = 0; i < OSSL_NELEM(tls12_sigalgs); ++i) {
2243 SIGALG_LOOKUP *ent = cache;
2244 size_t j;
2245
2246 for (j = 0; j < sigalgs_len; ent++, j++) {
2247 if (ent->sigalg != tls12_sigalgs[i])
2248 continue;
2249 /* Dedup by marking cache entry as default enabled. */
2250 if (ent->available && !ent->advertise) {
2251 ent->advertise = 1;
2252 tls12_sigalgs_list[enabled++] = tls12_sigalgs[i];
2253 }
2254 break;
2255 }
2256 }
2257
2258 /* Append any provider sigalgs not yet handled */
2259 for (i = OSSL_NELEM(sigalg_lookup_tbl); i < sigalgs_len; ++i) {
2260 SIGALG_LOOKUP *ent = &cache[i];
2261
2262 if (ent->available && !ent->advertise)
2263 tls12_sigalgs_list[enabled++] = ent->sigalg;
2264 }
2265
2266 ctx->sigalg_lookup_cache = cache;
2267 ctx->sigalg_lookup_cache_len = sigalgs_len;
2268 ctx->tls12_sigalgs = tls12_sigalgs_list;
2269 ctx->tls12_sigalgs_len = enabled;
2270 cache = NULL;
2271 tls12_sigalgs_list = NULL;
2272
2273 ret = 1;
2274 err:
2275 OPENSSL_free(cache);
2276 OPENSSL_free(tls12_sigalgs_list);
2277 EVP_PKEY_free(tmpkey);
2278 return ret;
2279 }
2280
2281 #define SIGLEN_BUF_INCREMENT 100
2282
SSL_get1_builtin_sigalgs(OSSL_LIB_CTX * libctx)2283 char *SSL_get1_builtin_sigalgs(OSSL_LIB_CTX *libctx)
2284 {
2285 size_t i, maxretlen = SIGLEN_BUF_INCREMENT;
2286 const SIGALG_LOOKUP *lu;
2287 EVP_PKEY *tmpkey = EVP_PKEY_new();
2288 char *retval = OPENSSL_malloc(maxretlen);
2289
2290 if (retval == NULL)
2291 return NULL;
2292
2293 /* ensure retval string is NUL terminated */
2294 retval[0] = (char)0;
2295
2296 for (i = 0, lu = sigalg_lookup_tbl;
2297 i < OSSL_NELEM(sigalg_lookup_tbl); lu++, i++) {
2298 EVP_PKEY_CTX *pctx;
2299 int enabled = 1;
2300
2301 ERR_set_mark();
2302 /* Check hash is available in some provider. */
2303 if (lu->hash != NID_undef) {
2304 EVP_MD *hash = EVP_MD_fetch(libctx, OBJ_nid2ln(lu->hash), NULL);
2305
2306 /* If unable to create we assume the hash algorithm is unavailable */
2307 if (hash == NULL) {
2308 enabled = 0;
2309 ERR_pop_to_mark();
2310 continue;
2311 }
2312 EVP_MD_free(hash);
2313 }
2314
2315 if (!EVP_PKEY_set_type(tmpkey, lu->sig)) {
2316 enabled = 0;
2317 ERR_pop_to_mark();
2318 continue;
2319 }
2320 pctx = EVP_PKEY_CTX_new_from_pkey(libctx, tmpkey, NULL);
2321 /* If unable to create pctx we assume the sig algorithm is unavailable */
2322 if (pctx == NULL)
2323 enabled = 0;
2324 ERR_pop_to_mark();
2325 EVP_PKEY_CTX_free(pctx);
2326
2327 if (enabled) {
2328 const char *sa = lu->name;
2329
2330 if (sa != NULL) {
2331 if (strlen(sa) + strlen(retval) + 1 >= maxretlen) {
2332 char *tmp;
2333
2334 maxretlen += SIGLEN_BUF_INCREMENT;
2335 tmp = OPENSSL_realloc(retval, maxretlen);
2336 if (tmp == NULL) {
2337 OPENSSL_free(retval);
2338 return NULL;
2339 }
2340 retval = tmp;
2341 }
2342 if (strlen(retval) > 0)
2343 OPENSSL_strlcat(retval, ":", maxretlen);
2344 OPENSSL_strlcat(retval, sa, maxretlen);
2345 } else {
2346 /* lu->name must not be NULL */
2347 ERR_raise(ERR_LIB_SSL, ERR_R_INTERNAL_ERROR);
2348 }
2349 }
2350 }
2351
2352 EVP_PKEY_free(tmpkey);
2353 return retval;
2354 }
2355
2356 /* Lookup TLS signature algorithm */
tls1_lookup_sigalg(const SSL_CTX * ctx,uint16_t sigalg)2357 static const SIGALG_LOOKUP *tls1_lookup_sigalg(const SSL_CTX *ctx,
2358 uint16_t sigalg)
2359 {
2360 size_t i;
2361 const SIGALG_LOOKUP *lu = ctx->sigalg_lookup_cache;
2362
2363 for (i = 0; i < ctx->sigalg_lookup_cache_len; lu++, i++) {
2364 if (lu->sigalg == sigalg) {
2365 if (!lu->available)
2366 return NULL;
2367 return lu;
2368 }
2369 }
2370 return NULL;
2371 }
2372
2373 /* Lookup hash: return 0 if invalid or not enabled */
tls1_lookup_md(SSL_CTX * ctx,const SIGALG_LOOKUP * lu,const EVP_MD ** pmd)2374 int tls1_lookup_md(SSL_CTX *ctx, const SIGALG_LOOKUP *lu, const EVP_MD **pmd)
2375 {
2376 const EVP_MD *md;
2377
2378 if (lu == NULL)
2379 return 0;
2380 /* lu->hash == NID_undef means no associated digest */
2381 if (lu->hash == NID_undef) {
2382 md = NULL;
2383 } else {
2384 md = ssl_md(ctx, lu->hash_idx);
2385 if (md == NULL)
2386 return 0;
2387 }
2388 if (pmd)
2389 *pmd = md;
2390 return 1;
2391 }
2392
2393 /*
2394 * Check if key is large enough to generate RSA-PSS signature.
2395 *
2396 * The key must greater than or equal to 2 * hash length + 2.
2397 * SHA512 has a hash length of 64 bytes, which is incompatible
2398 * with a 128 byte (1024 bit) key.
2399 */
2400 #define RSA_PSS_MINIMUM_KEY_SIZE(md) (2 * EVP_MD_get_size(md) + 2)
rsa_pss_check_min_key_size(SSL_CTX * ctx,const EVP_PKEY * pkey,const SIGALG_LOOKUP * lu)2401 static int rsa_pss_check_min_key_size(SSL_CTX *ctx, const EVP_PKEY *pkey,
2402 const SIGALG_LOOKUP *lu)
2403 {
2404 const EVP_MD *md;
2405
2406 if (pkey == NULL)
2407 return 0;
2408 if (!tls1_lookup_md(ctx, lu, &md) || md == NULL)
2409 return 0;
2410 if (EVP_MD_get_size(md) <= 0)
2411 return 0;
2412 if (EVP_PKEY_get_size(pkey) < RSA_PSS_MINIMUM_KEY_SIZE(md))
2413 return 0;
2414 return 1;
2415 }
2416
2417 /*
2418 * Returns a signature algorithm when the peer did not send a list of supported
2419 * signature algorithms. The signature algorithm is fixed for the certificate
2420 * type. |idx| is a certificate type index (SSL_PKEY_*). When |idx| is -1 the
2421 * certificate type from |s| will be used.
2422 * Returns the signature algorithm to use, or NULL on error.
2423 */
tls1_get_legacy_sigalg(const SSL_CONNECTION * s,int idx)2424 static const SIGALG_LOOKUP *tls1_get_legacy_sigalg(const SSL_CONNECTION *s,
2425 int idx)
2426 {
2427 if (idx == -1) {
2428 if (s->server) {
2429 size_t i;
2430
2431 /* Work out index corresponding to ciphersuite */
2432 for (i = 0; i < s->ssl_pkey_num; i++) {
2433 const SSL_CERT_LOOKUP *clu
2434 = ssl_cert_lookup_by_idx(i, SSL_CONNECTION_GET_CTX(s));
2435
2436 if (clu == NULL)
2437 continue;
2438 if (clu->amask & s->s3.tmp.new_cipher->algorithm_auth) {
2439 idx = i;
2440 break;
2441 }
2442 }
2443
2444 /*
2445 * Some GOST ciphersuites allow more than one signature algorithms
2446 * */
2447 if (idx == SSL_PKEY_GOST01 && s->s3.tmp.new_cipher->algorithm_auth != SSL_aGOST01) {
2448 int real_idx;
2449
2450 for (real_idx = SSL_PKEY_GOST12_512; real_idx >= SSL_PKEY_GOST01;
2451 real_idx--) {
2452 if (s->cert->pkeys[real_idx].privatekey != NULL) {
2453 idx = real_idx;
2454 break;
2455 }
2456 }
2457 }
2458 /*
2459 * As both SSL_PKEY_GOST12_512 and SSL_PKEY_GOST12_256 indices can be used
2460 * with new (aGOST12-only) ciphersuites, we should find out which one is available really.
2461 */
2462 else if (idx == SSL_PKEY_GOST12_256) {
2463 int real_idx;
2464
2465 for (real_idx = SSL_PKEY_GOST12_512; real_idx >= SSL_PKEY_GOST12_256;
2466 real_idx--) {
2467 if (s->cert->pkeys[real_idx].privatekey != NULL) {
2468 idx = real_idx;
2469 break;
2470 }
2471 }
2472 }
2473 } else {
2474 idx = s->cert->key - s->cert->pkeys;
2475 }
2476 }
2477 if (idx < 0 || idx >= (int)OSSL_NELEM(tls_default_sigalg))
2478 return NULL;
2479
2480 if (SSL_USE_SIGALGS(s) || idx != SSL_PKEY_RSA) {
2481 const SIGALG_LOOKUP *lu = tls1_lookup_sigalg(SSL_CONNECTION_GET_CTX(s),
2482 tls_default_sigalg[idx]);
2483
2484 if (lu == NULL)
2485 return NULL;
2486 if (!tls1_lookup_md(SSL_CONNECTION_GET_CTX(s), lu, NULL))
2487 return NULL;
2488 if (!tls12_sigalg_allowed(s, SSL_SECOP_SIGALG_SUPPORTED, lu))
2489 return NULL;
2490 return lu;
2491 }
2492 if (!tls12_sigalg_allowed(s, SSL_SECOP_SIGALG_SUPPORTED, &legacy_rsa_sigalg))
2493 return NULL;
2494 return &legacy_rsa_sigalg;
2495 }
2496 /* Set peer sigalg based key type */
tls1_set_peer_legacy_sigalg(SSL_CONNECTION * s,const EVP_PKEY * pkey)2497 int tls1_set_peer_legacy_sigalg(SSL_CONNECTION *s, const EVP_PKEY *pkey)
2498 {
2499 size_t idx;
2500 const SIGALG_LOOKUP *lu;
2501
2502 if (ssl_cert_lookup_by_pkey(pkey, &idx, SSL_CONNECTION_GET_CTX(s)) == NULL)
2503 return 0;
2504 lu = tls1_get_legacy_sigalg(s, idx);
2505 if (lu == NULL)
2506 return 0;
2507 s->s3.tmp.peer_sigalg = lu;
2508 return 1;
2509 }
2510
tls12_get_psigalgs(SSL_CONNECTION * s,int sent,const uint16_t ** psigs)2511 size_t tls12_get_psigalgs(SSL_CONNECTION *s, int sent, const uint16_t **psigs)
2512 {
2513 /*
2514 * If Suite B mode use Suite B sigalgs only, ignore any other
2515 * preferences.
2516 */
2517 switch (tls1_suiteb(s)) {
2518 case SSL_CERT_FLAG_SUITEB_128_LOS:
2519 *psigs = suiteb_sigalgs;
2520 return OSSL_NELEM(suiteb_sigalgs);
2521
2522 case SSL_CERT_FLAG_SUITEB_128_LOS_ONLY:
2523 *psigs = suiteb_sigalgs;
2524 return 1;
2525
2526 case SSL_CERT_FLAG_SUITEB_192_LOS:
2527 *psigs = suiteb_sigalgs + 1;
2528 return 1;
2529 }
2530 /*
2531 * We use client_sigalgs (if not NULL) if we're a server
2532 * and sending a certificate request or if we're a client and
2533 * determining which shared algorithm to use.
2534 */
2535 if ((s->server == sent) && s->cert->client_sigalgs != NULL) {
2536 *psigs = s->cert->client_sigalgs;
2537 return s->cert->client_sigalgslen;
2538 } else if (s->cert->conf_sigalgs) {
2539 *psigs = s->cert->conf_sigalgs;
2540 return s->cert->conf_sigalgslen;
2541 } else {
2542 *psigs = SSL_CONNECTION_GET_CTX(s)->tls12_sigalgs;
2543 return SSL_CONNECTION_GET_CTX(s)->tls12_sigalgs_len;
2544 }
2545 }
2546
2547 /*
2548 * Called by servers only. Checks that we have a sig alg that supports the
2549 * specified EC curve.
2550 */
tls_check_sigalg_curve(const SSL_CONNECTION * s,int curve)2551 int tls_check_sigalg_curve(const SSL_CONNECTION *s, int curve)
2552 {
2553 const uint16_t *sigs;
2554 size_t siglen, i;
2555
2556 if (s->cert->conf_sigalgs) {
2557 sigs = s->cert->conf_sigalgs;
2558 siglen = s->cert->conf_sigalgslen;
2559 } else {
2560 sigs = SSL_CONNECTION_GET_CTX(s)->tls12_sigalgs;
2561 siglen = SSL_CONNECTION_GET_CTX(s)->tls12_sigalgs_len;
2562 }
2563
2564 for (i = 0; i < siglen; i++) {
2565 const SIGALG_LOOKUP *lu = tls1_lookup_sigalg(SSL_CONNECTION_GET_CTX(s), sigs[i]);
2566
2567 if (lu == NULL)
2568 continue;
2569 if (lu->sig == EVP_PKEY_EC
2570 && lu->curve != NID_undef
2571 && curve == lu->curve)
2572 return 1;
2573 }
2574
2575 return 0;
2576 }
2577
2578 /*
2579 * Return the number of security bits for the signature algorithm, or 0 on
2580 * error.
2581 */
sigalg_security_bits(SSL_CTX * ctx,const SIGALG_LOOKUP * lu)2582 static int sigalg_security_bits(SSL_CTX *ctx, const SIGALG_LOOKUP *lu)
2583 {
2584 const EVP_MD *md = NULL;
2585 int secbits = 0;
2586
2587 if (!tls1_lookup_md(ctx, lu, &md))
2588 return 0;
2589 if (md != NULL) {
2590 int md_type = EVP_MD_get_type(md);
2591
2592 /* Security bits: half digest bits */
2593 secbits = EVP_MD_get_size(md) * 4;
2594 if (secbits <= 0)
2595 return 0;
2596 /*
2597 * SHA1 and MD5 are known to be broken. Reduce security bits so that
2598 * they're no longer accepted at security level 1. The real values don't
2599 * really matter as long as they're lower than 80, which is our
2600 * security level 1.
2601 * https://eprint.iacr.org/2020/014 puts a chosen-prefix attack for
2602 * SHA1 at 2^63.4 and MD5+SHA1 at 2^67.2
2603 * https://documents.epfl.ch/users/l/le/lenstra/public/papers/lat.pdf
2604 * puts a chosen-prefix attack for MD5 at 2^39.
2605 */
2606 if (md_type == NID_sha1)
2607 secbits = 64;
2608 else if (md_type == NID_md5_sha1)
2609 secbits = 67;
2610 else if (md_type == NID_md5)
2611 secbits = 39;
2612 } else {
2613 /* Values from https://tools.ietf.org/html/rfc8032#section-8.5 */
2614 if (lu->sigalg == TLSEXT_SIGALG_ed25519)
2615 secbits = 128;
2616 else if (lu->sigalg == TLSEXT_SIGALG_ed448)
2617 secbits = 224;
2618 }
2619 /*
2620 * For provider-based sigalgs we have secbits information available
2621 * in the (provider-loaded) sigalg_list structure
2622 */
2623 if ((secbits == 0) && (lu->sig_idx >= SSL_PKEY_NUM)
2624 && ((lu->sig_idx - SSL_PKEY_NUM) < (int)ctx->sigalg_list_len)) {
2625 secbits = ctx->sigalg_list[lu->sig_idx - SSL_PKEY_NUM].secbits;
2626 }
2627 return secbits;
2628 }
2629
tls_sigalg_compat(SSL_CONNECTION * sc,const SIGALG_LOOKUP * lu)2630 static int tls_sigalg_compat(SSL_CONNECTION *sc, const SIGALG_LOOKUP *lu)
2631 {
2632 int minversion, maxversion;
2633 int minproto, maxproto;
2634
2635 if (!lu->available)
2636 return 0;
2637
2638 if (SSL_CONNECTION_IS_DTLS(sc)) {
2639 if (sc->ssl.method->version == DTLS_ANY_VERSION) {
2640 minproto = sc->min_proto_version;
2641 maxproto = sc->max_proto_version;
2642 } else {
2643 maxproto = minproto = sc->version;
2644 }
2645 minversion = lu->mindtls;
2646 maxversion = lu->maxdtls;
2647 } else {
2648 if (sc->ssl.method->version == TLS_ANY_VERSION) {
2649 minproto = sc->min_proto_version;
2650 maxproto = sc->max_proto_version;
2651 } else {
2652 maxproto = minproto = sc->version;
2653 }
2654 minversion = lu->mintls;
2655 maxversion = lu->maxtls;
2656 }
2657 if (minversion == -1 || maxversion == -1
2658 || (minversion != 0 && maxproto != 0
2659 && ssl_version_cmp(sc, minversion, maxproto) > 0)
2660 || (maxversion != 0 && minproto != 0
2661 && ssl_version_cmp(sc, maxversion, minproto) < 0)
2662 || !tls12_sigalg_allowed(sc, SSL_SECOP_SIGALG_SUPPORTED, lu))
2663 return 0;
2664 return 1;
2665 }
2666
2667 /*
2668 * Check signature algorithm is consistent with sent supported signature
2669 * algorithms and if so set relevant digest and signature scheme in
2670 * s.
2671 */
tls12_check_peer_sigalg(SSL_CONNECTION * s,uint16_t sig,EVP_PKEY * pkey)2672 int tls12_check_peer_sigalg(SSL_CONNECTION *s, uint16_t sig, EVP_PKEY *pkey)
2673 {
2674 const uint16_t *sent_sigs;
2675 const EVP_MD *md = NULL;
2676 char sigalgstr[2];
2677 size_t sent_sigslen, i, cidx;
2678 int pkeyid = -1;
2679 const SIGALG_LOOKUP *lu;
2680 int secbits = 0;
2681
2682 pkeyid = EVP_PKEY_get_id(pkey);
2683
2684 if (SSL_CONNECTION_IS_TLS13(s)) {
2685 /* Disallow DSA for TLS 1.3 */
2686 if (pkeyid == EVP_PKEY_DSA) {
2687 SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER, SSL_R_WRONG_SIGNATURE_TYPE);
2688 return 0;
2689 }
2690 /* Only allow PSS for TLS 1.3 */
2691 if (pkeyid == EVP_PKEY_RSA)
2692 pkeyid = EVP_PKEY_RSA_PSS;
2693 }
2694
2695 /* Is this code point available and compatible with the protocol */
2696 lu = tls1_lookup_sigalg(SSL_CONNECTION_GET_CTX(s), sig);
2697 if (lu == NULL || !tls_sigalg_compat(s, lu)) {
2698 SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER, SSL_R_WRONG_SIGNATURE_TYPE);
2699 return 0;
2700 }
2701
2702 /* If we don't know the pkey nid yet go and find it */
2703 if (pkeyid == EVP_PKEY_KEYMGMT) {
2704 const SSL_CERT_LOOKUP *scl = ssl_cert_lookup_by_pkey(pkey, NULL, SSL_CONNECTION_GET_CTX(s));
2705
2706 if (scl == NULL) {
2707 SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER, SSL_R_WRONG_SIGNATURE_TYPE);
2708 return 0;
2709 }
2710 pkeyid = scl->pkey_nid;
2711 }
2712
2713 /* Should never happen */
2714 if (pkeyid == -1) {
2715 SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER, SSL_R_WRONG_SIGNATURE_TYPE);
2716 return -1;
2717 }
2718
2719 /*
2720 * Check sigalgs is known. Disallow SHA1/SHA224 with TLS 1.3. Check key type
2721 * is consistent with signature: RSA keys can be used for RSA-PSS
2722 */
2723 if ((SSL_CONNECTION_IS_TLS13(s)
2724 && (lu->hash == NID_sha1 || lu->hash == NID_sha224))
2725 || (pkeyid != lu->sig
2726 && (lu->sig != EVP_PKEY_RSA_PSS || pkeyid != EVP_PKEY_RSA))) {
2727 SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER, SSL_R_WRONG_SIGNATURE_TYPE);
2728 return 0;
2729 }
2730 /* Check the sigalg is consistent with the key OID */
2731 if (!ssl_cert_lookup_by_nid(
2732 (pkeyid == EVP_PKEY_RSA_PSS) ? EVP_PKEY_get_id(pkey) : pkeyid,
2733 &cidx, SSL_CONNECTION_GET_CTX(s))
2734 || lu->sig_idx != (int)cidx) {
2735 SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER, SSL_R_WRONG_SIGNATURE_TYPE);
2736 return 0;
2737 }
2738
2739 if (pkeyid == EVP_PKEY_EC) {
2740
2741 /* For TLS 1.3 or Suite B check curve matches signature algorithm */
2742 if (SSL_CONNECTION_IS_TLS13(s) || tls1_suiteb(s)) {
2743 int curve = ssl_get_EC_curve_nid(pkey);
2744
2745 if (lu->curve != NID_undef && curve != lu->curve) {
2746 SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER, SSL_R_WRONG_CURVE);
2747 return 0;
2748 }
2749 }
2750 if (!SSL_CONNECTION_IS_TLS13(s)) {
2751 /* Check curve matches extensions */
2752 if (!tls1_check_group_id(s, tls1_get_group_id(pkey), 1)) {
2753 SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER, SSL_R_WRONG_CURVE);
2754 return 0;
2755 }
2756 if (tls1_suiteb(s)) {
2757 /* Check sigalg matches a permissible Suite B value */
2758 if (sig != TLSEXT_SIGALG_ecdsa_secp256r1_sha256
2759 && sig != TLSEXT_SIGALG_ecdsa_secp384r1_sha384) {
2760 SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE,
2761 SSL_R_WRONG_SIGNATURE_TYPE);
2762 return 0;
2763 }
2764 }
2765 }
2766 } else if (tls1_suiteb(s)) {
2767 SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE, SSL_R_WRONG_SIGNATURE_TYPE);
2768 return 0;
2769 }
2770
2771 /* Check signature matches a type we sent */
2772 sent_sigslen = tls12_get_psigalgs(s, 1, &sent_sigs);
2773 for (i = 0; i < sent_sigslen; i++, sent_sigs++) {
2774 if (sig == *sent_sigs)
2775 break;
2776 }
2777 /* Allow fallback to SHA1 if not strict mode */
2778 if (i == sent_sigslen && (lu->hash != NID_sha1 || s->cert->cert_flags & SSL_CERT_FLAGS_CHECK_TLS_STRICT)) {
2779 SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE, SSL_R_WRONG_SIGNATURE_TYPE);
2780 return 0;
2781 }
2782 if (!tls1_lookup_md(SSL_CONNECTION_GET_CTX(s), lu, &md)) {
2783 SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE, SSL_R_UNKNOWN_DIGEST);
2784 return 0;
2785 }
2786 /*
2787 * Make sure security callback allows algorithm. For historical
2788 * reasons we have to pass the sigalg as a two byte char array.
2789 */
2790 sigalgstr[0] = (sig >> 8) & 0xff;
2791 sigalgstr[1] = sig & 0xff;
2792 secbits = sigalg_security_bits(SSL_CONNECTION_GET_CTX(s), lu);
2793 if (secbits == 0 || !ssl_security(s, SSL_SECOP_SIGALG_CHECK, secbits, md != NULL ? EVP_MD_get_type(md) : NID_undef, (void *)sigalgstr)) {
2794 SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE, SSL_R_WRONG_SIGNATURE_TYPE);
2795 return 0;
2796 }
2797 /* Store the sigalg the peer uses */
2798 s->s3.tmp.peer_sigalg = lu;
2799 return 1;
2800 }
2801
SSL_get_peer_signature_type_nid(const SSL * s,int * pnid)2802 int SSL_get_peer_signature_type_nid(const SSL *s, int *pnid)
2803 {
2804 const SSL_CONNECTION *sc = SSL_CONNECTION_FROM_CONST_SSL(s);
2805
2806 if (sc == NULL)
2807 return 0;
2808
2809 if (sc->s3.tmp.peer_sigalg == NULL)
2810 return 0;
2811 *pnid = sc->s3.tmp.peer_sigalg->sig;
2812 return 1;
2813 }
2814
SSL_get_signature_type_nid(const SSL * s,int * pnid)2815 int SSL_get_signature_type_nid(const SSL *s, int *pnid)
2816 {
2817 const SSL_CONNECTION *sc = SSL_CONNECTION_FROM_CONST_SSL(s);
2818
2819 if (sc == NULL)
2820 return 0;
2821
2822 if (sc->s3.tmp.sigalg == NULL)
2823 return 0;
2824 *pnid = sc->s3.tmp.sigalg->sig;
2825 return 1;
2826 }
2827
2828 /*
2829 * Set a mask of disabled algorithms: an algorithm is disabled if it isn't
2830 * supported, doesn't appear in supported signature algorithms, isn't supported
2831 * by the enabled protocol versions or by the security level.
2832 *
2833 * This function should only be used for checking which ciphers are supported
2834 * by the client.
2835 *
2836 * Call ssl_cipher_disabled() to check that it's enabled or not.
2837 */
ssl_set_client_disabled(SSL_CONNECTION * s)2838 int ssl_set_client_disabled(SSL_CONNECTION *s)
2839 {
2840 s->s3.tmp.mask_a = 0;
2841 s->s3.tmp.mask_k = 0;
2842 ssl_set_sig_mask(&s->s3.tmp.mask_a, s, SSL_SECOP_SIGALG_MASK);
2843 if (ssl_get_min_max_version(s, &s->s3.tmp.min_ver,
2844 &s->s3.tmp.max_ver, NULL)
2845 != 0)
2846 return 0;
2847 #ifndef OPENSSL_NO_PSK
2848 /* with PSK there must be client callback set */
2849 if (!s->psk_client_callback) {
2850 s->s3.tmp.mask_a |= SSL_aPSK;
2851 s->s3.tmp.mask_k |= SSL_PSK;
2852 }
2853 #endif /* OPENSSL_NO_PSK */
2854 #ifndef OPENSSL_NO_SRP
2855 if (!(s->srp_ctx.srp_Mask & SSL_kSRP)) {
2856 s->s3.tmp.mask_a |= SSL_aSRP;
2857 s->s3.tmp.mask_k |= SSL_kSRP;
2858 }
2859 #endif
2860 return 1;
2861 }
2862
2863 /*
2864 * ssl_cipher_disabled - check that a cipher is disabled or not
2865 * @s: SSL connection that you want to use the cipher on
2866 * @c: cipher to check
2867 * @op: Security check that you want to do
2868 * @ecdhe: If set to 1 then TLSv1 ECDHE ciphers are also allowed in SSLv3
2869 *
2870 * Returns 1 when it's disabled, 0 when enabled.
2871 */
ssl_cipher_disabled(const SSL_CONNECTION * s,const SSL_CIPHER * c,int op,int ecdhe)2872 int ssl_cipher_disabled(const SSL_CONNECTION *s, const SSL_CIPHER *c,
2873 int op, int ecdhe)
2874 {
2875 int minversion = SSL_CONNECTION_IS_DTLS(s) ? c->min_dtls : c->min_tls;
2876 int maxversion = SSL_CONNECTION_IS_DTLS(s) ? c->max_dtls : c->max_tls;
2877
2878 if (c->algorithm_mkey & s->s3.tmp.mask_k
2879 || c->algorithm_auth & s->s3.tmp.mask_a)
2880 return 1;
2881 if (s->s3.tmp.max_ver == 0)
2882 return 1;
2883
2884 if (SSL_IS_QUIC_INT_HANDSHAKE(s))
2885 /* For QUIC, only allow these ciphersuites. */
2886 switch (SSL_CIPHER_get_id(c)) {
2887 case TLS1_3_CK_AES_128_GCM_SHA256:
2888 case TLS1_3_CK_AES_256_GCM_SHA384:
2889 case TLS1_3_CK_CHACHA20_POLY1305_SHA256:
2890 break;
2891 default:
2892 return 1;
2893 }
2894
2895 /*
2896 * For historical reasons we will allow ECHDE to be selected by a server
2897 * in SSLv3 if we are a client
2898 */
2899 if (minversion == TLS1_VERSION
2900 && ecdhe
2901 && (c->algorithm_mkey & (SSL_kECDHE | SSL_kECDHEPSK)) != 0)
2902 minversion = SSL3_VERSION;
2903
2904 if (ssl_version_cmp(s, minversion, s->s3.tmp.max_ver) > 0
2905 || ssl_version_cmp(s, maxversion, s->s3.tmp.min_ver) < 0)
2906 return 1;
2907
2908 return !ssl_security(s, op, c->strength_bits, 0, (void *)c);
2909 }
2910
tls_use_ticket(SSL_CONNECTION * s)2911 int tls_use_ticket(SSL_CONNECTION *s)
2912 {
2913 if ((s->options & SSL_OP_NO_TICKET))
2914 return 0;
2915 return ssl_security(s, SSL_SECOP_TICKET, 0, 0, NULL);
2916 }
2917
tls1_set_server_sigalgs(SSL_CONNECTION * s)2918 int tls1_set_server_sigalgs(SSL_CONNECTION *s)
2919 {
2920 size_t i;
2921
2922 /* Clear any shared signature algorithms */
2923 OPENSSL_free(s->shared_sigalgs);
2924 s->shared_sigalgs = NULL;
2925 s->shared_sigalgslen = 0;
2926
2927 /* Clear certificate validity flags */
2928 if (s->s3.tmp.valid_flags)
2929 memset(s->s3.tmp.valid_flags, 0, s->ssl_pkey_num * sizeof(uint32_t));
2930 else
2931 s->s3.tmp.valid_flags = OPENSSL_zalloc(s->ssl_pkey_num * sizeof(uint32_t));
2932 if (s->s3.tmp.valid_flags == NULL)
2933 return 0;
2934 /*
2935 * If peer sent no signature algorithms check to see if we support
2936 * the default algorithm for each certificate type
2937 */
2938 if (s->s3.tmp.peer_cert_sigalgs == NULL
2939 && s->s3.tmp.peer_sigalgs == NULL) {
2940 const uint16_t *sent_sigs;
2941 size_t sent_sigslen = tls12_get_psigalgs(s, 1, &sent_sigs);
2942
2943 for (i = 0; i < s->ssl_pkey_num; i++) {
2944 const SIGALG_LOOKUP *lu = tls1_get_legacy_sigalg(s, i);
2945 size_t j;
2946
2947 if (lu == NULL)
2948 continue;
2949 /* Check default matches a type we sent */
2950 for (j = 0; j < sent_sigslen; j++) {
2951 if (lu->sigalg == sent_sigs[j]) {
2952 s->s3.tmp.valid_flags[i] = CERT_PKEY_SIGN;
2953 break;
2954 }
2955 }
2956 }
2957 return 1;
2958 }
2959
2960 if (!tls1_process_sigalgs(s)) {
2961 SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
2962 return 0;
2963 }
2964 if (s->shared_sigalgs != NULL)
2965 return 1;
2966
2967 /* Fatal error if no shared signature algorithms */
2968 SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE,
2969 SSL_R_NO_SHARED_SIGNATURE_ALGORITHMS);
2970 return 0;
2971 }
2972
2973 /*-
2974 * Gets the ticket information supplied by the client if any.
2975 *
2976 * hello: The parsed ClientHello data
2977 * ret: (output) on return, if a ticket was decrypted, then this is set to
2978 * point to the resulting session.
2979 */
tls_get_ticket_from_client(SSL_CONNECTION * s,CLIENTHELLO_MSG * hello,SSL_SESSION ** ret)2980 SSL_TICKET_STATUS tls_get_ticket_from_client(SSL_CONNECTION *s,
2981 CLIENTHELLO_MSG *hello,
2982 SSL_SESSION **ret)
2983 {
2984 size_t size;
2985 RAW_EXTENSION *ticketext;
2986
2987 *ret = NULL;
2988 s->ext.ticket_expected = 0;
2989
2990 /*
2991 * If tickets disabled or not supported by the protocol version
2992 * (e.g. TLSv1.3) behave as if no ticket present to permit stateful
2993 * resumption.
2994 */
2995 if (s->version <= SSL3_VERSION || !tls_use_ticket(s))
2996 return SSL_TICKET_NONE;
2997
2998 ticketext = &hello->pre_proc_exts[TLSEXT_IDX_session_ticket];
2999 if (!ticketext->present)
3000 return SSL_TICKET_NONE;
3001
3002 size = PACKET_remaining(&ticketext->data);
3003
3004 return tls_decrypt_ticket(s, PACKET_data(&ticketext->data), size,
3005 hello->session_id, hello->session_id_len, ret);
3006 }
3007
3008 /*-
3009 * tls_decrypt_ticket attempts to decrypt a session ticket.
3010 *
3011 * If s->tls_session_secret_cb is set and we're not doing TLSv1.3 then we are
3012 * expecting a pre-shared key ciphersuite, in which case we have no use for
3013 * session tickets and one will never be decrypted, nor will
3014 * s->ext.ticket_expected be set to 1.
3015 *
3016 * Side effects:
3017 * Sets s->ext.ticket_expected to 1 if the server will have to issue
3018 * a new session ticket to the client because the client indicated support
3019 * (and s->tls_session_secret_cb is NULL) but the client either doesn't have
3020 * a session ticket or we couldn't use the one it gave us, or if
3021 * s->ctx->ext.ticket_key_cb asked to renew the client's ticket.
3022 * Otherwise, s->ext.ticket_expected is set to 0.
3023 *
3024 * etick: points to the body of the session ticket extension.
3025 * eticklen: the length of the session tickets extension.
3026 * sess_id: points at the session ID.
3027 * sesslen: the length of the session ID.
3028 * psess: (output) on return, if a ticket was decrypted, then this is set to
3029 * point to the resulting session.
3030 */
tls_decrypt_ticket(SSL_CONNECTION * s,const unsigned char * etick,size_t eticklen,const unsigned char * sess_id,size_t sesslen,SSL_SESSION ** psess)3031 SSL_TICKET_STATUS tls_decrypt_ticket(SSL_CONNECTION *s,
3032 const unsigned char *etick,
3033 size_t eticklen,
3034 const unsigned char *sess_id,
3035 size_t sesslen, SSL_SESSION **psess)
3036 {
3037 SSL_SESSION *sess = NULL;
3038 unsigned char *sdec;
3039 const unsigned char *p;
3040 int slen, ivlen, renew_ticket = 0, declen;
3041 SSL_TICKET_STATUS ret = SSL_TICKET_FATAL_ERR_OTHER;
3042 size_t mlen;
3043 unsigned char tick_hmac[EVP_MAX_MD_SIZE];
3044 SSL_HMAC *hctx = NULL;
3045 EVP_CIPHER_CTX *ctx = NULL;
3046 SSL_CTX *tctx = s->session_ctx;
3047 SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
3048
3049 if (eticklen == 0) {
3050 /*
3051 * The client will accept a ticket but doesn't currently have
3052 * one (TLSv1.2 and below), or treated as a fatal error in TLSv1.3
3053 */
3054 ret = SSL_TICKET_EMPTY;
3055 goto end;
3056 }
3057 if (!SSL_CONNECTION_IS_TLS13(s) && s->ext.session_secret_cb) {
3058 /*
3059 * Indicate that the ticket couldn't be decrypted rather than
3060 * generating the session from ticket now, trigger
3061 * abbreviated handshake based on external mechanism to
3062 * calculate the master secret later.
3063 */
3064 ret = SSL_TICKET_NO_DECRYPT;
3065 goto end;
3066 }
3067
3068 /* Need at least keyname + iv */
3069 if (eticklen < TLSEXT_KEYNAME_LENGTH + EVP_MAX_IV_LENGTH) {
3070 ret = SSL_TICKET_NO_DECRYPT;
3071 goto end;
3072 }
3073
3074 /* Initialize session ticket encryption and HMAC contexts */
3075 hctx = ssl_hmac_new(tctx);
3076 if (hctx == NULL) {
3077 ret = SSL_TICKET_FATAL_ERR_MALLOC;
3078 goto end;
3079 }
3080 ctx = EVP_CIPHER_CTX_new();
3081 if (ctx == NULL) {
3082 ret = SSL_TICKET_FATAL_ERR_MALLOC;
3083 goto end;
3084 }
3085 #ifndef OPENSSL_NO_DEPRECATED_3_0
3086 if (tctx->ext.ticket_key_evp_cb != NULL || tctx->ext.ticket_key_cb != NULL)
3087 #else
3088 if (tctx->ext.ticket_key_evp_cb != NULL)
3089 #endif
3090 {
3091 unsigned char *nctick = (unsigned char *)etick;
3092 int rv = 0;
3093
3094 if (tctx->ext.ticket_key_evp_cb != NULL)
3095 rv = tctx->ext.ticket_key_evp_cb(SSL_CONNECTION_GET_USER_SSL(s),
3096 nctick,
3097 nctick + TLSEXT_KEYNAME_LENGTH,
3098 ctx,
3099 ssl_hmac_get0_EVP_MAC_CTX(hctx),
3100 0);
3101 #ifndef OPENSSL_NO_DEPRECATED_3_0
3102 else if (tctx->ext.ticket_key_cb != NULL)
3103 /* if 0 is returned, write an empty ticket */
3104 rv = tctx->ext.ticket_key_cb(SSL_CONNECTION_GET_USER_SSL(s), nctick,
3105 nctick + TLSEXT_KEYNAME_LENGTH,
3106 ctx, ssl_hmac_get0_HMAC_CTX(hctx), 0);
3107 #endif
3108 if (rv < 0) {
3109 ret = SSL_TICKET_FATAL_ERR_OTHER;
3110 goto end;
3111 }
3112 if (rv == 0) {
3113 ret = SSL_TICKET_NO_DECRYPT;
3114 goto end;
3115 }
3116 if (rv == 2)
3117 renew_ticket = 1;
3118 } else {
3119 EVP_CIPHER *aes256cbc = NULL;
3120
3121 /* Check key name matches */
3122 if (memcmp(etick, tctx->ext.tick_key_name,
3123 TLSEXT_KEYNAME_LENGTH)
3124 != 0) {
3125 ret = SSL_TICKET_NO_DECRYPT;
3126 goto end;
3127 }
3128
3129 aes256cbc = EVP_CIPHER_fetch(sctx->libctx, "AES-256-CBC",
3130 sctx->propq);
3131 if (aes256cbc == NULL
3132 || ssl_hmac_init(hctx, tctx->ext.secure->tick_hmac_key,
3133 sizeof(tctx->ext.secure->tick_hmac_key),
3134 "SHA256")
3135 <= 0
3136 || EVP_DecryptInit_ex(ctx, aes256cbc, NULL,
3137 tctx->ext.secure->tick_aes_key,
3138 etick + TLSEXT_KEYNAME_LENGTH)
3139 <= 0) {
3140 EVP_CIPHER_free(aes256cbc);
3141 ret = SSL_TICKET_FATAL_ERR_OTHER;
3142 goto end;
3143 }
3144 EVP_CIPHER_free(aes256cbc);
3145 if (SSL_CONNECTION_IS_TLS13(s))
3146 renew_ticket = 1;
3147 }
3148 /*
3149 * Attempt to process session ticket, first conduct sanity and integrity
3150 * checks on ticket.
3151 */
3152 mlen = ssl_hmac_size(hctx);
3153 if (mlen == 0) {
3154 ret = SSL_TICKET_FATAL_ERR_OTHER;
3155 goto end;
3156 }
3157
3158 ivlen = EVP_CIPHER_CTX_get_iv_length(ctx);
3159 if (ivlen < 0) {
3160 ret = SSL_TICKET_FATAL_ERR_OTHER;
3161 goto end;
3162 }
3163
3164 /* Sanity check ticket length: must exceed keyname + IV + HMAC */
3165 if (eticklen <= TLSEXT_KEYNAME_LENGTH + ivlen + mlen) {
3166 ret = SSL_TICKET_NO_DECRYPT;
3167 goto end;
3168 }
3169 eticklen -= mlen;
3170 /* Check HMAC of encrypted ticket */
3171 if (ssl_hmac_update(hctx, etick, eticklen) <= 0
3172 || ssl_hmac_final(hctx, tick_hmac, NULL, sizeof(tick_hmac)) <= 0) {
3173 ret = SSL_TICKET_FATAL_ERR_OTHER;
3174 goto end;
3175 }
3176
3177 if (CRYPTO_memcmp(tick_hmac, etick + eticklen, mlen)) {
3178 ret = SSL_TICKET_NO_DECRYPT;
3179 goto end;
3180 }
3181 /* Attempt to decrypt session data */
3182 /* Move p after IV to start of encrypted ticket, update length */
3183 p = etick + TLSEXT_KEYNAME_LENGTH + ivlen;
3184 eticklen -= TLSEXT_KEYNAME_LENGTH + ivlen;
3185 sdec = OPENSSL_malloc(eticklen);
3186 if (sdec == NULL || EVP_DecryptUpdate(ctx, sdec, &slen, p, (int)eticklen) <= 0) {
3187 OPENSSL_free(sdec);
3188 ret = SSL_TICKET_FATAL_ERR_OTHER;
3189 goto end;
3190 }
3191 if (EVP_DecryptFinal(ctx, sdec + slen, &declen) <= 0) {
3192 OPENSSL_free(sdec);
3193 ret = SSL_TICKET_NO_DECRYPT;
3194 goto end;
3195 }
3196 slen += declen;
3197 p = sdec;
3198
3199 sess = d2i_SSL_SESSION_ex(NULL, &p, slen, sctx->libctx, sctx->propq);
3200 slen -= p - sdec;
3201 OPENSSL_free(sdec);
3202 if (sess) {
3203 /* Some additional consistency checks */
3204 if (slen != 0) {
3205 SSL_SESSION_free(sess);
3206 sess = NULL;
3207 ret = SSL_TICKET_NO_DECRYPT;
3208 goto end;
3209 }
3210 /*
3211 * The session ID, if non-empty, is used by some clients to detect
3212 * that the ticket has been accepted. So we copy it to the session
3213 * structure. If it is empty set length to zero as required by
3214 * standard.
3215 */
3216 if (sesslen) {
3217 memcpy(sess->session_id, sess_id, sesslen);
3218 sess->session_id_length = sesslen;
3219 }
3220 if (renew_ticket)
3221 ret = SSL_TICKET_SUCCESS_RENEW;
3222 else
3223 ret = SSL_TICKET_SUCCESS;
3224 goto end;
3225 }
3226 ERR_clear_error();
3227 /*
3228 * For session parse failure, indicate that we need to send a new ticket.
3229 */
3230 ret = SSL_TICKET_NO_DECRYPT;
3231
3232 end:
3233 EVP_CIPHER_CTX_free(ctx);
3234 ssl_hmac_free(hctx);
3235
3236 /*
3237 * If set, the decrypt_ticket_cb() is called unless a fatal error was
3238 * detected above. The callback is responsible for checking |ret| before it
3239 * performs any action
3240 */
3241 if (s->session_ctx->decrypt_ticket_cb != NULL
3242 && (ret == SSL_TICKET_EMPTY
3243 || ret == SSL_TICKET_NO_DECRYPT
3244 || ret == SSL_TICKET_SUCCESS
3245 || ret == SSL_TICKET_SUCCESS_RENEW)) {
3246 size_t keyname_len = eticklen;
3247 int retcb;
3248
3249 if (keyname_len > TLSEXT_KEYNAME_LENGTH)
3250 keyname_len = TLSEXT_KEYNAME_LENGTH;
3251 retcb = s->session_ctx->decrypt_ticket_cb(SSL_CONNECTION_GET_SSL(s),
3252 sess, etick, keyname_len,
3253 ret,
3254 s->session_ctx->ticket_cb_data);
3255 switch (retcb) {
3256 case SSL_TICKET_RETURN_ABORT:
3257 ret = SSL_TICKET_FATAL_ERR_OTHER;
3258 break;
3259
3260 case SSL_TICKET_RETURN_IGNORE:
3261 ret = SSL_TICKET_NONE;
3262 SSL_SESSION_free(sess);
3263 sess = NULL;
3264 break;
3265
3266 case SSL_TICKET_RETURN_IGNORE_RENEW:
3267 if (ret != SSL_TICKET_EMPTY && ret != SSL_TICKET_NO_DECRYPT)
3268 ret = SSL_TICKET_NO_DECRYPT;
3269 /* else the value of |ret| will already do the right thing */
3270 SSL_SESSION_free(sess);
3271 sess = NULL;
3272 break;
3273
3274 case SSL_TICKET_RETURN_USE:
3275 case SSL_TICKET_RETURN_USE_RENEW:
3276 if (ret != SSL_TICKET_SUCCESS
3277 && ret != SSL_TICKET_SUCCESS_RENEW)
3278 ret = SSL_TICKET_FATAL_ERR_OTHER;
3279 else if (retcb == SSL_TICKET_RETURN_USE)
3280 ret = SSL_TICKET_SUCCESS;
3281 else
3282 ret = SSL_TICKET_SUCCESS_RENEW;
3283 break;
3284
3285 default:
3286 ret = SSL_TICKET_FATAL_ERR_OTHER;
3287 }
3288 }
3289
3290 if (s->ext.session_secret_cb == NULL || SSL_CONNECTION_IS_TLS13(s)) {
3291 switch (ret) {
3292 case SSL_TICKET_NO_DECRYPT:
3293 case SSL_TICKET_SUCCESS_RENEW:
3294 case SSL_TICKET_EMPTY:
3295 s->ext.ticket_expected = 1;
3296 }
3297 }
3298
3299 *psess = sess;
3300
3301 return ret;
3302 }
3303
3304 /* Check to see if a signature algorithm is allowed */
tls12_sigalg_allowed(const SSL_CONNECTION * s,int op,const SIGALG_LOOKUP * lu)3305 static int tls12_sigalg_allowed(const SSL_CONNECTION *s, int op,
3306 const SIGALG_LOOKUP *lu)
3307 {
3308 unsigned char sigalgstr[2];
3309 int secbits;
3310
3311 if (lu == NULL || !lu->available)
3312 return 0;
3313 /* DSA is not allowed in TLS 1.3 */
3314 if (SSL_CONNECTION_IS_TLS13(s) && lu->sig == EVP_PKEY_DSA)
3315 return 0;
3316 /*
3317 * At some point we should fully axe DSA/etc. in ClientHello as per TLS 1.3
3318 * spec
3319 */
3320 if (!s->server && !SSL_CONNECTION_IS_DTLS(s)
3321 && s->s3.tmp.min_ver >= TLS1_3_VERSION
3322 && (lu->sig == EVP_PKEY_DSA || lu->hash_idx == SSL_MD_SHA1_IDX
3323 || lu->hash_idx == SSL_MD_MD5_IDX
3324 || lu->hash_idx == SSL_MD_SHA224_IDX))
3325 return 0;
3326
3327 /* See if public key algorithm allowed */
3328 if (ssl_cert_is_disabled(SSL_CONNECTION_GET_CTX(s), lu->sig_idx))
3329 return 0;
3330
3331 if (lu->sig == NID_id_GostR3410_2012_256
3332 || lu->sig == NID_id_GostR3410_2012_512
3333 || lu->sig == NID_id_GostR3410_2001) {
3334 /* We never allow GOST sig algs on the server with TLSv1.3 */
3335 if (s->server && SSL_CONNECTION_IS_TLS13(s))
3336 return 0;
3337 if (!s->server
3338 && SSL_CONNECTION_GET_SSL(s)->method->version == TLS_ANY_VERSION
3339 && s->s3.tmp.max_ver >= TLS1_3_VERSION) {
3340 int i, num;
3341 STACK_OF(SSL_CIPHER) *sk;
3342
3343 /*
3344 * We're a client that could negotiate TLSv1.3. We only allow GOST
3345 * sig algs if we could negotiate TLSv1.2 or below and we have GOST
3346 * ciphersuites enabled.
3347 */
3348
3349 if (s->s3.tmp.min_ver >= TLS1_3_VERSION)
3350 return 0;
3351
3352 sk = SSL_get_ciphers(SSL_CONNECTION_GET_SSL(s));
3353 num = sk != NULL ? sk_SSL_CIPHER_num(sk) : 0;
3354 for (i = 0; i < num; i++) {
3355 const SSL_CIPHER *c;
3356
3357 c = sk_SSL_CIPHER_value(sk, i);
3358 /* Skip disabled ciphers */
3359 if (ssl_cipher_disabled(s, c, SSL_SECOP_CIPHER_SUPPORTED, 0))
3360 continue;
3361
3362 if ((c->algorithm_mkey & (SSL_kGOST | SSL_kGOST18)) != 0)
3363 break;
3364 }
3365 if (i == num)
3366 return 0;
3367 }
3368 }
3369
3370 /* Finally see if security callback allows it */
3371 secbits = sigalg_security_bits(SSL_CONNECTION_GET_CTX(s), lu);
3372 sigalgstr[0] = (lu->sigalg >> 8) & 0xff;
3373 sigalgstr[1] = lu->sigalg & 0xff;
3374 return ssl_security(s, op, secbits, lu->hash, (void *)sigalgstr);
3375 }
3376
3377 /*
3378 * Get a mask of disabled public key algorithms based on supported signature
3379 * algorithms. For example if no signature algorithm supports RSA then RSA is
3380 * disabled.
3381 */
3382
ssl_set_sig_mask(uint32_t * pmask_a,SSL_CONNECTION * s,int op)3383 void ssl_set_sig_mask(uint32_t *pmask_a, SSL_CONNECTION *s, int op)
3384 {
3385 const uint16_t *sigalgs;
3386 size_t i, sigalgslen;
3387 uint32_t disabled_mask = SSL_aRSA | SSL_aDSS | SSL_aECDSA;
3388 /*
3389 * Go through all signature algorithms seeing if we support any
3390 * in disabled_mask.
3391 */
3392 sigalgslen = tls12_get_psigalgs(s, 1, &sigalgs);
3393 for (i = 0; i < sigalgslen; i++, sigalgs++) {
3394 const SIGALG_LOOKUP *lu = tls1_lookup_sigalg(SSL_CONNECTION_GET_CTX(s), *sigalgs);
3395 const SSL_CERT_LOOKUP *clu;
3396
3397 if (lu == NULL)
3398 continue;
3399
3400 clu = ssl_cert_lookup_by_idx(lu->sig_idx,
3401 SSL_CONNECTION_GET_CTX(s));
3402 if (clu == NULL)
3403 continue;
3404
3405 /* If algorithm is disabled see if we can enable it */
3406 if ((clu->amask & disabled_mask) != 0
3407 && tls12_sigalg_allowed(s, op, lu))
3408 disabled_mask &= ~clu->amask;
3409 }
3410 *pmask_a |= disabled_mask;
3411 }
3412
tls12_copy_sigalgs(SSL_CONNECTION * s,WPACKET * pkt,const uint16_t * psig,size_t psiglen)3413 int tls12_copy_sigalgs(SSL_CONNECTION *s, WPACKET *pkt,
3414 const uint16_t *psig, size_t psiglen)
3415 {
3416 size_t i;
3417 int rv = 0;
3418
3419 for (i = 0; i < psiglen; i++, psig++) {
3420 const SIGALG_LOOKUP *lu = tls1_lookup_sigalg(SSL_CONNECTION_GET_CTX(s), *psig);
3421
3422 if (lu == NULL || !tls_sigalg_compat(s, lu))
3423 continue;
3424 if (!WPACKET_put_bytes_u16(pkt, *psig))
3425 return 0;
3426 /*
3427 * If TLS 1.3 must have at least one valid TLS 1.3 message
3428 * signing algorithm: i.e. neither RSA nor SHA1/SHA224
3429 */
3430 if (rv == 0 && (!SSL_CONNECTION_IS_TLS13(s) || (lu->sig != EVP_PKEY_RSA && lu->hash != NID_sha1 && lu->hash != NID_sha224)))
3431 rv = 1;
3432 }
3433 if (rv == 0)
3434 ERR_raise(ERR_LIB_SSL, SSL_R_NO_SUITABLE_SIGNATURE_ALGORITHM);
3435 return rv;
3436 }
3437
3438 /* Given preference and allowed sigalgs set shared sigalgs */
tls12_shared_sigalgs(SSL_CONNECTION * s,const SIGALG_LOOKUP ** shsig,const uint16_t * pref,size_t preflen,const uint16_t * allow,size_t allowlen)3439 static size_t tls12_shared_sigalgs(SSL_CONNECTION *s,
3440 const SIGALG_LOOKUP **shsig,
3441 const uint16_t *pref, size_t preflen,
3442 const uint16_t *allow, size_t allowlen)
3443 {
3444 const uint16_t *ptmp, *atmp;
3445 size_t i, j, nmatch = 0;
3446 for (i = 0, ptmp = pref; i < preflen; i++, ptmp++) {
3447 const SIGALG_LOOKUP *lu = tls1_lookup_sigalg(SSL_CONNECTION_GET_CTX(s), *ptmp);
3448
3449 /* Skip disabled hashes or signature algorithms */
3450 if (lu == NULL
3451 || !tls12_sigalg_allowed(s, SSL_SECOP_SIGALG_SHARED, lu))
3452 continue;
3453 for (j = 0, atmp = allow; j < allowlen; j++, atmp++) {
3454 if (*ptmp == *atmp) {
3455 nmatch++;
3456 if (shsig)
3457 *shsig++ = lu;
3458 break;
3459 }
3460 }
3461 }
3462 return nmatch;
3463 }
3464
3465 /* Set shared signature algorithms for SSL structures */
tls1_set_shared_sigalgs(SSL_CONNECTION * s)3466 static int tls1_set_shared_sigalgs(SSL_CONNECTION *s)
3467 {
3468 const uint16_t *pref, *allow, *conf;
3469 size_t preflen, allowlen, conflen;
3470 size_t nmatch;
3471 const SIGALG_LOOKUP **salgs = NULL;
3472 CERT *c = s->cert;
3473 unsigned int is_suiteb = tls1_suiteb(s);
3474
3475 OPENSSL_free(s->shared_sigalgs);
3476 s->shared_sigalgs = NULL;
3477 s->shared_sigalgslen = 0;
3478 /* If client use client signature algorithms if not NULL */
3479 if (!s->server && c->client_sigalgs && !is_suiteb) {
3480 conf = c->client_sigalgs;
3481 conflen = c->client_sigalgslen;
3482 } else if (c->conf_sigalgs && !is_suiteb) {
3483 conf = c->conf_sigalgs;
3484 conflen = c->conf_sigalgslen;
3485 } else
3486 conflen = tls12_get_psigalgs(s, 0, &conf);
3487 if (s->options & SSL_OP_CIPHER_SERVER_PREFERENCE || is_suiteb) {
3488 pref = conf;
3489 preflen = conflen;
3490 allow = s->s3.tmp.peer_sigalgs;
3491 allowlen = s->s3.tmp.peer_sigalgslen;
3492 } else {
3493 allow = conf;
3494 allowlen = conflen;
3495 pref = s->s3.tmp.peer_sigalgs;
3496 preflen = s->s3.tmp.peer_sigalgslen;
3497 }
3498 nmatch = tls12_shared_sigalgs(s, NULL, pref, preflen, allow, allowlen);
3499 if (nmatch) {
3500 if ((salgs = OPENSSL_malloc(nmatch * sizeof(*salgs))) == NULL)
3501 return 0;
3502 nmatch = tls12_shared_sigalgs(s, salgs, pref, preflen, allow, allowlen);
3503 } else {
3504 salgs = NULL;
3505 }
3506 s->shared_sigalgs = salgs;
3507 s->shared_sigalgslen = nmatch;
3508 return 1;
3509 }
3510
tls1_save_u16(PACKET * pkt,uint16_t ** pdest,size_t * pdestlen)3511 int tls1_save_u16(PACKET *pkt, uint16_t **pdest, size_t *pdestlen)
3512 {
3513 unsigned int stmp;
3514 size_t size, i;
3515 uint16_t *buf;
3516
3517 size = PACKET_remaining(pkt);
3518
3519 /* Invalid data length */
3520 if (size == 0 || (size & 1) != 0)
3521 return 0;
3522
3523 size >>= 1;
3524
3525 if ((buf = OPENSSL_malloc(size * sizeof(*buf))) == NULL)
3526 return 0;
3527 for (i = 0; i < size && PACKET_get_net_2(pkt, &stmp); i++)
3528 buf[i] = stmp;
3529
3530 if (i != size) {
3531 OPENSSL_free(buf);
3532 return 0;
3533 }
3534
3535 OPENSSL_free(*pdest);
3536 *pdest = buf;
3537 *pdestlen = size;
3538
3539 return 1;
3540 }
3541
tls1_save_sigalgs(SSL_CONNECTION * s,PACKET * pkt,int cert)3542 int tls1_save_sigalgs(SSL_CONNECTION *s, PACKET *pkt, int cert)
3543 {
3544 /* Extension ignored for inappropriate versions */
3545 if (!SSL_USE_SIGALGS(s))
3546 return 1;
3547 /* Should never happen */
3548 if (s->cert == NULL)
3549 return 0;
3550
3551 if (cert)
3552 return tls1_save_u16(pkt, &s->s3.tmp.peer_cert_sigalgs,
3553 &s->s3.tmp.peer_cert_sigalgslen);
3554 else
3555 return tls1_save_u16(pkt, &s->s3.tmp.peer_sigalgs,
3556 &s->s3.tmp.peer_sigalgslen);
3557 }
3558
3559 /* Set preferred digest for each key type */
3560
tls1_process_sigalgs(SSL_CONNECTION * s)3561 int tls1_process_sigalgs(SSL_CONNECTION *s)
3562 {
3563 size_t i;
3564 uint32_t *pvalid = s->s3.tmp.valid_flags;
3565
3566 if (!tls1_set_shared_sigalgs(s))
3567 return 0;
3568
3569 for (i = 0; i < s->ssl_pkey_num; i++)
3570 pvalid[i] = 0;
3571
3572 for (i = 0; i < s->shared_sigalgslen; i++) {
3573 const SIGALG_LOOKUP *sigptr = s->shared_sigalgs[i];
3574 int idx = sigptr->sig_idx;
3575
3576 /* Ignore PKCS1 based sig algs in TLSv1.3 */
3577 if (SSL_CONNECTION_IS_TLS13(s) && sigptr->sig == EVP_PKEY_RSA)
3578 continue;
3579 /* If not disabled indicate we can explicitly sign */
3580 if (pvalid[idx] == 0
3581 && !ssl_cert_is_disabled(SSL_CONNECTION_GET_CTX(s), idx))
3582 pvalid[idx] = CERT_PKEY_EXPLICIT_SIGN | CERT_PKEY_SIGN;
3583 }
3584 return 1;
3585 }
3586
SSL_get_sigalgs(SSL * s,int idx,int * psign,int * phash,int * psignhash,unsigned char * rsig,unsigned char * rhash)3587 int SSL_get_sigalgs(SSL *s, int idx,
3588 int *psign, int *phash, int *psignhash,
3589 unsigned char *rsig, unsigned char *rhash)
3590 {
3591 uint16_t *psig;
3592 size_t numsigalgs;
3593 SSL_CONNECTION *sc = SSL_CONNECTION_FROM_SSL(s);
3594
3595 if (sc == NULL)
3596 return 0;
3597
3598 psig = sc->s3.tmp.peer_sigalgs;
3599 numsigalgs = sc->s3.tmp.peer_sigalgslen;
3600
3601 if (psig == NULL || numsigalgs > INT_MAX)
3602 return 0;
3603 if (idx >= 0) {
3604 const SIGALG_LOOKUP *lu;
3605
3606 if (idx >= (int)numsigalgs)
3607 return 0;
3608 psig += idx;
3609 if (rhash != NULL)
3610 *rhash = (unsigned char)((*psig >> 8) & 0xff);
3611 if (rsig != NULL)
3612 *rsig = (unsigned char)(*psig & 0xff);
3613 lu = tls1_lookup_sigalg(SSL_CONNECTION_GET_CTX(sc), *psig);
3614 if (psign != NULL)
3615 *psign = lu != NULL ? lu->sig : NID_undef;
3616 if (phash != NULL)
3617 *phash = lu != NULL ? lu->hash : NID_undef;
3618 if (psignhash != NULL)
3619 *psignhash = lu != NULL ? lu->sigandhash : NID_undef;
3620 }
3621 return (int)numsigalgs;
3622 }
3623
SSL_get_shared_sigalgs(SSL * s,int idx,int * psign,int * phash,int * psignhash,unsigned char * rsig,unsigned char * rhash)3624 int SSL_get_shared_sigalgs(SSL *s, int idx,
3625 int *psign, int *phash, int *psignhash,
3626 unsigned char *rsig, unsigned char *rhash)
3627 {
3628 const SIGALG_LOOKUP *shsigalgs;
3629 SSL_CONNECTION *sc = SSL_CONNECTION_FROM_SSL(s);
3630
3631 if (sc == NULL)
3632 return 0;
3633
3634 if (sc->shared_sigalgs == NULL
3635 || idx < 0
3636 || idx >= (int)sc->shared_sigalgslen
3637 || sc->shared_sigalgslen > INT_MAX)
3638 return 0;
3639 shsigalgs = sc->shared_sigalgs[idx];
3640 if (phash != NULL)
3641 *phash = shsigalgs->hash;
3642 if (psign != NULL)
3643 *psign = shsigalgs->sig;
3644 if (psignhash != NULL)
3645 *psignhash = shsigalgs->sigandhash;
3646 if (rsig != NULL)
3647 *rsig = (unsigned char)(shsigalgs->sigalg & 0xff);
3648 if (rhash != NULL)
3649 *rhash = (unsigned char)((shsigalgs->sigalg >> 8) & 0xff);
3650 return (int)sc->shared_sigalgslen;
3651 }
3652
3653 /* Maximum possible number of unique entries in sigalgs array */
3654 #define TLS_MAX_SIGALGCNT (OSSL_NELEM(sigalg_lookup_tbl) * 2)
3655
3656 typedef struct {
3657 size_t sigalgcnt;
3658 /* TLSEXT_SIGALG_XXX values */
3659 uint16_t sigalgs[TLS_MAX_SIGALGCNT];
3660 SSL_CTX *ctx;
3661 } sig_cb_st;
3662
get_sigorhash(int * psig,int * phash,const char * str)3663 static void get_sigorhash(int *psig, int *phash, const char *str)
3664 {
3665 if (OPENSSL_strcasecmp(str, "RSA") == 0) {
3666 *psig = EVP_PKEY_RSA;
3667 } else if (OPENSSL_strcasecmp(str, "RSA-PSS") == 0
3668 || OPENSSL_strcasecmp(str, "PSS") == 0) {
3669 *psig = EVP_PKEY_RSA_PSS;
3670 } else if (OPENSSL_strcasecmp(str, "DSA") == 0) {
3671 *psig = EVP_PKEY_DSA;
3672 } else if (OPENSSL_strcasecmp(str, "ECDSA") == 0) {
3673 *psig = EVP_PKEY_EC;
3674 } else {
3675 *phash = OBJ_sn2nid(str);
3676 if (*phash == NID_undef)
3677 *phash = OBJ_ln2nid(str);
3678 }
3679 }
3680 /* Maximum length of a signature algorithm string component */
3681 #define TLS_MAX_SIGSTRING_LEN 40
3682
sig_cb(const char * elem,int len,void * arg)3683 static int sig_cb(const char *elem, int len, void *arg)
3684 {
3685 sig_cb_st *sarg = arg;
3686 size_t i = 0;
3687 const SIGALG_LOOKUP *s;
3688 char etmp[TLS_MAX_SIGSTRING_LEN], *p;
3689 const char *iana, *alias;
3690 int sig_alg = NID_undef, hash_alg = NID_undef;
3691 int ignore_unknown = 0;
3692
3693 if (elem == NULL)
3694 return 0;
3695 if (elem[0] == '?') {
3696 ignore_unknown = 1;
3697 ++elem;
3698 --len;
3699 }
3700 if (sarg->sigalgcnt == TLS_MAX_SIGALGCNT)
3701 return 0;
3702 if (len > (int)(sizeof(etmp) - 1))
3703 return 0;
3704 memcpy(etmp, elem, len);
3705 etmp[len] = 0;
3706 p = strchr(etmp, '+');
3707 /*
3708 * We only allow SignatureSchemes listed in the sigalg_lookup_tbl;
3709 * if there's no '+' in the provided name, look for the new-style combined
3710 * name. If not, match both sig+hash to find the needed SIGALG_LOOKUP.
3711 * Just sig+hash is not unique since TLS 1.3 adds rsa_pss_pss_* and
3712 * rsa_pss_rsae_* that differ only by public key OID; in such cases
3713 * we will pick the _rsae_ variant, by virtue of them appearing earlier
3714 * in the table.
3715 */
3716 if (p == NULL) {
3717 if (sarg->ctx != NULL) {
3718 for (i = 0; i < sarg->ctx->sigalg_lookup_cache_len; i++) {
3719 iana = sarg->ctx->sigalg_lookup_cache[i].name;
3720 alias = sarg->ctx->sigalg_lookup_cache[i].name12;
3721 if ((alias != NULL && OPENSSL_strcasecmp(etmp, alias) == 0)
3722 || OPENSSL_strcasecmp(etmp, iana) == 0) {
3723 /* Ignore known, but unavailable sigalgs. */
3724 if (!sarg->ctx->sigalg_lookup_cache[i].available)
3725 return 1;
3726 sarg->sigalgs[sarg->sigalgcnt++] = sarg->ctx->sigalg_lookup_cache[i].sigalg;
3727 goto found;
3728 }
3729 }
3730 } else {
3731 /* Syntax checks use the built-in sigalgs */
3732 for (i = 0, s = sigalg_lookup_tbl;
3733 i < OSSL_NELEM(sigalg_lookup_tbl); i++, s++) {
3734 iana = s->name;
3735 alias = s->name12;
3736 if ((alias != NULL && OPENSSL_strcasecmp(etmp, alias) == 0)
3737 || OPENSSL_strcasecmp(etmp, iana) == 0) {
3738 sarg->sigalgs[sarg->sigalgcnt++] = s->sigalg;
3739 goto found;
3740 }
3741 }
3742 }
3743 } else {
3744 *p = 0;
3745 p++;
3746 if (*p == 0)
3747 return 0;
3748 get_sigorhash(&sig_alg, &hash_alg, etmp);
3749 get_sigorhash(&sig_alg, &hash_alg, p);
3750 if (sig_alg != NID_undef && hash_alg != NID_undef) {
3751 if (sarg->ctx != NULL) {
3752 for (i = 0; i < sarg->ctx->sigalg_lookup_cache_len; i++) {
3753 s = &sarg->ctx->sigalg_lookup_cache[i];
3754 if (s->hash == hash_alg && s->sig == sig_alg) {
3755 /* Ignore known, but unavailable sigalgs. */
3756 if (!sarg->ctx->sigalg_lookup_cache[i].available)
3757 return 1;
3758 sarg->sigalgs[sarg->sigalgcnt++] = s->sigalg;
3759 goto found;
3760 }
3761 }
3762 } else {
3763 for (i = 0; i < OSSL_NELEM(sigalg_lookup_tbl); i++) {
3764 s = &sigalg_lookup_tbl[i];
3765 if (s->hash == hash_alg && s->sig == sig_alg) {
3766 sarg->sigalgs[sarg->sigalgcnt++] = s->sigalg;
3767 goto found;
3768 }
3769 }
3770 }
3771 }
3772 }
3773 /* Ignore unknown algorithms if ignore_unknown */
3774 return ignore_unknown;
3775
3776 found:
3777 /* Ignore duplicates */
3778 for (i = 0; i < sarg->sigalgcnt - 1; i++) {
3779 if (sarg->sigalgs[i] == sarg->sigalgs[sarg->sigalgcnt - 1]) {
3780 sarg->sigalgcnt--;
3781 return 1;
3782 }
3783 }
3784 return 1;
3785 }
3786
3787 /*
3788 * Set supported signature algorithms based on a colon separated list of the
3789 * form sig+hash e.g. RSA+SHA512:DSA+SHA512
3790 */
tls1_set_sigalgs_list(SSL_CTX * ctx,CERT * c,const char * str,int client)3791 int tls1_set_sigalgs_list(SSL_CTX *ctx, CERT *c, const char *str, int client)
3792 {
3793 sig_cb_st sig;
3794 sig.sigalgcnt = 0;
3795
3796 if (ctx != NULL)
3797 sig.ctx = ctx;
3798 if (!CONF_parse_list(str, ':', 1, sig_cb, &sig))
3799 return 0;
3800 if (sig.sigalgcnt == 0) {
3801 ERR_raise_data(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT,
3802 "No valid signature algorithms in '%s'", str);
3803 return 0;
3804 }
3805 if (c == NULL)
3806 return 1;
3807 return tls1_set_raw_sigalgs(c, sig.sigalgs, sig.sigalgcnt, client);
3808 }
3809
tls1_set_raw_sigalgs(CERT * c,const uint16_t * psigs,size_t salglen,int client)3810 int tls1_set_raw_sigalgs(CERT *c, const uint16_t *psigs, size_t salglen,
3811 int client)
3812 {
3813 uint16_t *sigalgs;
3814
3815 if ((sigalgs = OPENSSL_malloc(salglen * sizeof(*sigalgs))) == NULL)
3816 return 0;
3817 memcpy(sigalgs, psigs, salglen * sizeof(*sigalgs));
3818
3819 if (client) {
3820 OPENSSL_free(c->client_sigalgs);
3821 c->client_sigalgs = sigalgs;
3822 c->client_sigalgslen = salglen;
3823 } else {
3824 OPENSSL_free(c->conf_sigalgs);
3825 c->conf_sigalgs = sigalgs;
3826 c->conf_sigalgslen = salglen;
3827 }
3828
3829 return 1;
3830 }
3831
tls1_set_sigalgs(CERT * c,const int * psig_nids,size_t salglen,int client)3832 int tls1_set_sigalgs(CERT *c, const int *psig_nids, size_t salglen, int client)
3833 {
3834 uint16_t *sigalgs, *sptr;
3835 size_t i;
3836
3837 if (salglen & 1)
3838 return 0;
3839 if ((sigalgs = OPENSSL_malloc((salglen / 2) * sizeof(*sigalgs))) == NULL)
3840 return 0;
3841 for (i = 0, sptr = sigalgs; i < salglen; i += 2) {
3842 size_t j;
3843 const SIGALG_LOOKUP *curr;
3844 int md_id = *psig_nids++;
3845 int sig_id = *psig_nids++;
3846
3847 for (j = 0, curr = sigalg_lookup_tbl; j < OSSL_NELEM(sigalg_lookup_tbl);
3848 j++, curr++) {
3849 if (curr->hash == md_id && curr->sig == sig_id) {
3850 *sptr++ = curr->sigalg;
3851 break;
3852 }
3853 }
3854
3855 if (j == OSSL_NELEM(sigalg_lookup_tbl))
3856 goto err;
3857 }
3858
3859 if (client) {
3860 OPENSSL_free(c->client_sigalgs);
3861 c->client_sigalgs = sigalgs;
3862 c->client_sigalgslen = salglen / 2;
3863 } else {
3864 OPENSSL_free(c->conf_sigalgs);
3865 c->conf_sigalgs = sigalgs;
3866 c->conf_sigalgslen = salglen / 2;
3867 }
3868
3869 return 1;
3870
3871 err:
3872 OPENSSL_free(sigalgs);
3873 return 0;
3874 }
3875
tls1_check_sig_alg(SSL_CONNECTION * s,X509 * x,int default_nid)3876 static int tls1_check_sig_alg(SSL_CONNECTION *s, X509 *x, int default_nid)
3877 {
3878 int sig_nid, use_pc_sigalgs = 0;
3879 size_t i;
3880 const SIGALG_LOOKUP *sigalg;
3881 size_t sigalgslen;
3882
3883 /*-
3884 * RFC 8446, section 4.2.3:
3885 *
3886 * The signatures on certificates that are self-signed or certificates
3887 * that are trust anchors are not validated, since they begin a
3888 * certification path (see [RFC5280], Section 3.2). A certificate that
3889 * begins a certification path MAY use a signature algorithm that is not
3890 * advertised as being supported in the "signature_algorithms"
3891 * extension.
3892 */
3893 if (default_nid == -1 || X509_self_signed(x, 0))
3894 return 1;
3895 sig_nid = X509_get_signature_nid(x);
3896 if (default_nid)
3897 return sig_nid == default_nid ? 1 : 0;
3898
3899 if (SSL_CONNECTION_IS_TLS13(s) && s->s3.tmp.peer_cert_sigalgs != NULL) {
3900 /*
3901 * If we're in TLSv1.3 then we only get here if we're checking the
3902 * chain. If the peer has specified peer_cert_sigalgs then we use them
3903 * otherwise we default to normal sigalgs.
3904 */
3905 sigalgslen = s->s3.tmp.peer_cert_sigalgslen;
3906 use_pc_sigalgs = 1;
3907 } else {
3908 sigalgslen = s->shared_sigalgslen;
3909 }
3910 for (i = 0; i < sigalgslen; i++) {
3911 int mdnid, pknid;
3912
3913 sigalg = use_pc_sigalgs
3914 ? tls1_lookup_sigalg(SSL_CONNECTION_GET_CTX(s),
3915 s->s3.tmp.peer_cert_sigalgs[i])
3916 : s->shared_sigalgs[i];
3917 if (sigalg == NULL)
3918 continue;
3919 if (sig_nid == sigalg->sigandhash)
3920 return 1;
3921 if (sigalg->sig != EVP_PKEY_RSA_PSS)
3922 continue;
3923 /*
3924 * Accept RSA PKCS#1 signatures in certificates when the signature
3925 * algorithms include RSA-PSS with a matching digest algorithm.
3926 *
3927 * When a TLS 1.3 peer inadvertently omits the legacy RSA PKCS#1 code
3928 * points, and we're doing strict checking of the certificate chain (in
3929 * a cert_cb via SSL_check_chain()) we may then reject RSA signed
3930 * certificates in the chain, but the TLS requirement on PSS should not
3931 * extend to certificates. Though the peer can in fact list the legacy
3932 * sigalgs for just this purpose, it is not likely that a better chain
3933 * signed with RSA-PSS is available.
3934 */
3935 if (!OBJ_find_sigid_algs(sig_nid, &mdnid, &pknid))
3936 continue;
3937 if (pknid == EVP_PKEY_RSA && mdnid == sigalg->hash)
3938 return 1;
3939 }
3940 return 0;
3941 }
3942
3943 /* Check to see if a certificate issuer name matches list of CA names */
ssl_check_ca_name(STACK_OF (X509_NAME)* names,X509 * x)3944 static int ssl_check_ca_name(STACK_OF(X509_NAME) *names, X509 *x)
3945 {
3946 const X509_NAME *nm;
3947 int i;
3948 nm = X509_get_issuer_name(x);
3949 for (i = 0; i < sk_X509_NAME_num(names); i++) {
3950 if (!X509_NAME_cmp(nm, sk_X509_NAME_value(names, i)))
3951 return 1;
3952 }
3953 return 0;
3954 }
3955
3956 /*
3957 * Check certificate chain is consistent with TLS extensions and is usable by
3958 * server. This servers two purposes: it allows users to check chains before
3959 * passing them to the server and it allows the server to check chains before
3960 * attempting to use them.
3961 */
3962
3963 /* Flags which need to be set for a certificate when strict mode not set */
3964
3965 #define CERT_PKEY_VALID_FLAGS \
3966 (CERT_PKEY_EE_SIGNATURE | CERT_PKEY_EE_PARAM)
3967 /* Strict mode flags */
3968 #define CERT_PKEY_STRICT_FLAGS \
3969 (CERT_PKEY_VALID_FLAGS | CERT_PKEY_CA_SIGNATURE | CERT_PKEY_CA_PARAM \
3970 | CERT_PKEY_ISSUER_NAME | CERT_PKEY_CERT_TYPE)
3971
tls1_check_chain(SSL_CONNECTION * s,X509 * x,EVP_PKEY * pk,STACK_OF (X509)* chain,int idx)3972 int tls1_check_chain(SSL_CONNECTION *s, X509 *x, EVP_PKEY *pk,
3973 STACK_OF(X509) *chain, int idx)
3974 {
3975 int i;
3976 int rv = 0;
3977 int check_flags = 0, strict_mode;
3978 CERT_PKEY *cpk = NULL;
3979 CERT *c = s->cert;
3980 uint32_t *pvalid;
3981 unsigned int suiteb_flags = tls1_suiteb(s);
3982
3983 /*
3984 * Meaning of idx:
3985 * idx == -1 means SSL_check_chain() invocation
3986 * idx == -2 means checking client certificate chains
3987 * idx >= 0 means checking SSL_PKEY index
3988 *
3989 * For RPK, where there may be no cert, we ignore -1
3990 */
3991 if (idx != -1) {
3992 if (idx == -2) {
3993 cpk = c->key;
3994 idx = (int)(cpk - c->pkeys);
3995 } else
3996 cpk = c->pkeys + idx;
3997 pvalid = s->s3.tmp.valid_flags + idx;
3998 x = cpk->x509;
3999 pk = cpk->privatekey;
4000 chain = cpk->chain;
4001 strict_mode = c->cert_flags & SSL_CERT_FLAGS_CHECK_TLS_STRICT;
4002 if (tls12_rpk_and_privkey(s, idx)) {
4003 *pvalid = rv = CERT_PKEY_RPK;
4004 return rv;
4005 }
4006 /* If no cert or key, forget it */
4007 if (x == NULL || pk == NULL)
4008 goto end;
4009 } else {
4010 size_t certidx;
4011
4012 if (x == NULL || pk == NULL)
4013 return 0;
4014
4015 if (ssl_cert_lookup_by_pkey(pk, &certidx,
4016 SSL_CONNECTION_GET_CTX(s))
4017 == NULL)
4018 return 0;
4019 idx = certidx;
4020 pvalid = s->s3.tmp.valid_flags + idx;
4021
4022 if (c->cert_flags & SSL_CERT_FLAGS_CHECK_TLS_STRICT)
4023 check_flags = CERT_PKEY_STRICT_FLAGS;
4024 else
4025 check_flags = CERT_PKEY_VALID_FLAGS;
4026 strict_mode = 1;
4027 }
4028
4029 if (suiteb_flags) {
4030 int ok;
4031 if (check_flags)
4032 check_flags |= CERT_PKEY_SUITEB;
4033 ok = X509_chain_check_suiteb(NULL, x, chain, suiteb_flags);
4034 if (ok == X509_V_OK)
4035 rv |= CERT_PKEY_SUITEB;
4036 else if (!check_flags)
4037 goto end;
4038 }
4039
4040 /*
4041 * Check all signature algorithms are consistent with signature
4042 * algorithms extension if TLS 1.2 or later and strict mode.
4043 */
4044 if (TLS1_get_version(SSL_CONNECTION_GET_SSL(s)) >= TLS1_2_VERSION
4045 && strict_mode) {
4046 int default_nid;
4047 int rsign = 0;
4048
4049 if (s->s3.tmp.peer_cert_sigalgs != NULL
4050 || s->s3.tmp.peer_sigalgs != NULL) {
4051 default_nid = 0;
4052 /* If no sigalgs extension use defaults from RFC5246 */
4053 } else {
4054 switch (idx) {
4055 case SSL_PKEY_RSA:
4056 rsign = EVP_PKEY_RSA;
4057 default_nid = NID_sha1WithRSAEncryption;
4058 break;
4059
4060 case SSL_PKEY_DSA_SIGN:
4061 rsign = EVP_PKEY_DSA;
4062 default_nid = NID_dsaWithSHA1;
4063 break;
4064
4065 case SSL_PKEY_ECC:
4066 rsign = EVP_PKEY_EC;
4067 default_nid = NID_ecdsa_with_SHA1;
4068 break;
4069
4070 case SSL_PKEY_GOST01:
4071 rsign = NID_id_GostR3410_2001;
4072 default_nid = NID_id_GostR3411_94_with_GostR3410_2001;
4073 break;
4074
4075 case SSL_PKEY_GOST12_256:
4076 rsign = NID_id_GostR3410_2012_256;
4077 default_nid = NID_id_tc26_signwithdigest_gost3410_2012_256;
4078 break;
4079
4080 case SSL_PKEY_GOST12_512:
4081 rsign = NID_id_GostR3410_2012_512;
4082 default_nid = NID_id_tc26_signwithdigest_gost3410_2012_512;
4083 break;
4084
4085 default:
4086 default_nid = -1;
4087 break;
4088 }
4089 }
4090 /*
4091 * If peer sent no signature algorithms extension and we have set
4092 * preferred signature algorithms check we support sha1.
4093 */
4094 if (default_nid > 0 && c->conf_sigalgs) {
4095 size_t j;
4096 const uint16_t *p = c->conf_sigalgs;
4097 for (j = 0; j < c->conf_sigalgslen; j++, p++) {
4098 const SIGALG_LOOKUP *lu = tls1_lookup_sigalg(SSL_CONNECTION_GET_CTX(s), *p);
4099
4100 if (lu != NULL && lu->hash == NID_sha1 && lu->sig == rsign)
4101 break;
4102 }
4103 if (j == c->conf_sigalgslen) {
4104 if (check_flags)
4105 goto skip_sigs;
4106 else
4107 goto end;
4108 }
4109 }
4110 /* Check signature algorithm of each cert in chain */
4111 if (SSL_CONNECTION_IS_TLS13(s)) {
4112 /*
4113 * We only get here if the application has called SSL_check_chain(),
4114 * so check_flags is always set.
4115 */
4116 if (find_sig_alg(s, x, pk) != NULL)
4117 rv |= CERT_PKEY_EE_SIGNATURE;
4118 } else if (!tls1_check_sig_alg(s, x, default_nid)) {
4119 if (!check_flags)
4120 goto end;
4121 } else
4122 rv |= CERT_PKEY_EE_SIGNATURE;
4123 rv |= CERT_PKEY_CA_SIGNATURE;
4124 for (i = 0; i < sk_X509_num(chain); i++) {
4125 if (!tls1_check_sig_alg(s, sk_X509_value(chain, i), default_nid)) {
4126 if (check_flags) {
4127 rv &= ~CERT_PKEY_CA_SIGNATURE;
4128 break;
4129 } else
4130 goto end;
4131 }
4132 }
4133 }
4134 /* Else not TLS 1.2, so mark EE and CA signing algorithms OK */
4135 else if (check_flags)
4136 rv |= CERT_PKEY_EE_SIGNATURE | CERT_PKEY_CA_SIGNATURE;
4137 skip_sigs:
4138 /* Check cert parameters are consistent */
4139 if (tls1_check_cert_param(s, x, 1))
4140 rv |= CERT_PKEY_EE_PARAM;
4141 else if (!check_flags)
4142 goto end;
4143 if (!s->server)
4144 rv |= CERT_PKEY_CA_PARAM;
4145 /* In strict mode check rest of chain too */
4146 else if (strict_mode) {
4147 rv |= CERT_PKEY_CA_PARAM;
4148 for (i = 0; i < sk_X509_num(chain); i++) {
4149 X509 *ca = sk_X509_value(chain, i);
4150 if (!tls1_check_cert_param(s, ca, 0)) {
4151 if (check_flags) {
4152 rv &= ~CERT_PKEY_CA_PARAM;
4153 break;
4154 } else
4155 goto end;
4156 }
4157 }
4158 }
4159 if (!s->server && strict_mode) {
4160 STACK_OF(X509_NAME) *ca_dn;
4161 int check_type = 0;
4162
4163 if (EVP_PKEY_is_a(pk, "RSA"))
4164 check_type = TLS_CT_RSA_SIGN;
4165 else if (EVP_PKEY_is_a(pk, "DSA"))
4166 check_type = TLS_CT_DSS_SIGN;
4167 else if (EVP_PKEY_is_a(pk, "EC"))
4168 check_type = TLS_CT_ECDSA_SIGN;
4169
4170 if (check_type) {
4171 const uint8_t *ctypes = s->s3.tmp.ctype;
4172 size_t j;
4173
4174 for (j = 0; j < s->s3.tmp.ctype_len; j++, ctypes++) {
4175 if (*ctypes == check_type) {
4176 rv |= CERT_PKEY_CERT_TYPE;
4177 break;
4178 }
4179 }
4180 if (!(rv & CERT_PKEY_CERT_TYPE) && !check_flags)
4181 goto end;
4182 } else {
4183 rv |= CERT_PKEY_CERT_TYPE;
4184 }
4185
4186 ca_dn = s->s3.tmp.peer_ca_names;
4187
4188 if (ca_dn == NULL
4189 || sk_X509_NAME_num(ca_dn) == 0
4190 || ssl_check_ca_name(ca_dn, x))
4191 rv |= CERT_PKEY_ISSUER_NAME;
4192 else
4193 for (i = 0; i < sk_X509_num(chain); i++) {
4194 X509 *xtmp = sk_X509_value(chain, i);
4195
4196 if (ssl_check_ca_name(ca_dn, xtmp)) {
4197 rv |= CERT_PKEY_ISSUER_NAME;
4198 break;
4199 }
4200 }
4201
4202 if (!check_flags && !(rv & CERT_PKEY_ISSUER_NAME))
4203 goto end;
4204 } else
4205 rv |= CERT_PKEY_ISSUER_NAME | CERT_PKEY_CERT_TYPE;
4206
4207 if (!check_flags || (rv & check_flags) == check_flags)
4208 rv |= CERT_PKEY_VALID;
4209
4210 end:
4211
4212 if (TLS1_get_version(SSL_CONNECTION_GET_SSL(s)) >= TLS1_2_VERSION)
4213 rv |= *pvalid & (CERT_PKEY_EXPLICIT_SIGN | CERT_PKEY_SIGN);
4214 else
4215 rv |= CERT_PKEY_SIGN | CERT_PKEY_EXPLICIT_SIGN;
4216
4217 /*
4218 * When checking a CERT_PKEY structure all flags are irrelevant if the
4219 * chain is invalid.
4220 */
4221 if (!check_flags) {
4222 if (rv & CERT_PKEY_VALID) {
4223 *pvalid = rv;
4224 } else {
4225 /* Preserve sign and explicit sign flag, clear rest */
4226 *pvalid &= CERT_PKEY_EXPLICIT_SIGN | CERT_PKEY_SIGN;
4227 return 0;
4228 }
4229 }
4230 return rv;
4231 }
4232
4233 /* Set validity of certificates in an SSL structure */
tls1_set_cert_validity(SSL_CONNECTION * s)4234 void tls1_set_cert_validity(SSL_CONNECTION *s)
4235 {
4236 tls1_check_chain(s, NULL, NULL, NULL, SSL_PKEY_RSA);
4237 tls1_check_chain(s, NULL, NULL, NULL, SSL_PKEY_RSA_PSS_SIGN);
4238 tls1_check_chain(s, NULL, NULL, NULL, SSL_PKEY_DSA_SIGN);
4239 tls1_check_chain(s, NULL, NULL, NULL, SSL_PKEY_ECC);
4240 tls1_check_chain(s, NULL, NULL, NULL, SSL_PKEY_GOST01);
4241 tls1_check_chain(s, NULL, NULL, NULL, SSL_PKEY_GOST12_256);
4242 tls1_check_chain(s, NULL, NULL, NULL, SSL_PKEY_GOST12_512);
4243 tls1_check_chain(s, NULL, NULL, NULL, SSL_PKEY_ED25519);
4244 tls1_check_chain(s, NULL, NULL, NULL, SSL_PKEY_ED448);
4245 }
4246
4247 /* User level utility function to check a chain is suitable */
SSL_check_chain(SSL * s,X509 * x,EVP_PKEY * pk,STACK_OF (X509)* chain)4248 int SSL_check_chain(SSL *s, X509 *x, EVP_PKEY *pk, STACK_OF(X509) *chain)
4249 {
4250 SSL_CONNECTION *sc = SSL_CONNECTION_FROM_SSL(s);
4251
4252 if (sc == NULL)
4253 return 0;
4254
4255 return tls1_check_chain(sc, x, pk, chain, -1);
4256 }
4257
ssl_get_auto_dh(SSL_CONNECTION * s)4258 EVP_PKEY *ssl_get_auto_dh(SSL_CONNECTION *s)
4259 {
4260 EVP_PKEY *dhp = NULL;
4261 BIGNUM *p;
4262 int dh_secbits = 80, sec_level_bits;
4263 EVP_PKEY_CTX *pctx = NULL;
4264 OSSL_PARAM_BLD *tmpl = NULL;
4265 OSSL_PARAM *params = NULL;
4266 SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
4267
4268 if (s->cert->dh_tmp_auto != 2) {
4269 if (s->s3.tmp.new_cipher->algorithm_auth & (SSL_aNULL | SSL_aPSK)) {
4270 if (s->s3.tmp.new_cipher->strength_bits == 256)
4271 dh_secbits = 128;
4272 else
4273 dh_secbits = 80;
4274 } else {
4275 if (s->s3.tmp.cert == NULL)
4276 return NULL;
4277 dh_secbits = EVP_PKEY_get_security_bits(s->s3.tmp.cert->privatekey);
4278 }
4279 }
4280
4281 /* Do not pick a prime that is too weak for the current security level */
4282 sec_level_bits = ssl_get_security_level_bits(SSL_CONNECTION_GET_SSL(s),
4283 NULL, NULL);
4284 if (dh_secbits < sec_level_bits)
4285 dh_secbits = sec_level_bits;
4286
4287 if (dh_secbits >= 192)
4288 p = BN_get_rfc3526_prime_8192(NULL);
4289 else if (dh_secbits >= 152)
4290 p = BN_get_rfc3526_prime_4096(NULL);
4291 else if (dh_secbits >= 128)
4292 p = BN_get_rfc3526_prime_3072(NULL);
4293 else if (dh_secbits >= 112)
4294 p = BN_get_rfc3526_prime_2048(NULL);
4295 else
4296 p = BN_get_rfc2409_prime_1024(NULL);
4297 if (p == NULL)
4298 goto err;
4299
4300 pctx = EVP_PKEY_CTX_new_from_name(sctx->libctx, "DH", sctx->propq);
4301 if (pctx == NULL
4302 || EVP_PKEY_fromdata_init(pctx) != 1)
4303 goto err;
4304
4305 tmpl = OSSL_PARAM_BLD_new();
4306 if (tmpl == NULL
4307 || !OSSL_PARAM_BLD_push_BN(tmpl, OSSL_PKEY_PARAM_FFC_P, p)
4308 || !OSSL_PARAM_BLD_push_uint(tmpl, OSSL_PKEY_PARAM_FFC_G, 2))
4309 goto err;
4310
4311 params = OSSL_PARAM_BLD_to_param(tmpl);
4312 if (params == NULL
4313 || EVP_PKEY_fromdata(pctx, &dhp, EVP_PKEY_KEY_PARAMETERS, params) != 1)
4314 goto err;
4315
4316 err:
4317 OSSL_PARAM_free(params);
4318 OSSL_PARAM_BLD_free(tmpl);
4319 EVP_PKEY_CTX_free(pctx);
4320 BN_free(p);
4321 return dhp;
4322 }
4323
ssl_security_cert_key(SSL_CONNECTION * s,SSL_CTX * ctx,X509 * x,int op)4324 static int ssl_security_cert_key(SSL_CONNECTION *s, SSL_CTX *ctx, X509 *x,
4325 int op)
4326 {
4327 int secbits = -1;
4328 EVP_PKEY *pkey = X509_get0_pubkey(x);
4329
4330 if (pkey) {
4331 /*
4332 * If no parameters this will return -1 and fail using the default
4333 * security callback for any non-zero security level. This will
4334 * reject keys which omit parameters but this only affects DSA and
4335 * omission of parameters is never (?) done in practice.
4336 */
4337 secbits = EVP_PKEY_get_security_bits(pkey);
4338 }
4339 if (s != NULL)
4340 return ssl_security(s, op, secbits, 0, x);
4341 else
4342 return ssl_ctx_security(ctx, op, secbits, 0, x);
4343 }
4344
ssl_security_cert(SSL_CONNECTION * s,SSL_CTX * ctx,X509 * x,int is_ee)4345 int ssl_security_cert(SSL_CONNECTION *s, SSL_CTX *ctx, X509 *x, int is_ee)
4346 {
4347 if (is_ee) {
4348 if (!ssl_security_cert_key(s, ctx, x, SSL_SECOP_EE_KEY))
4349 return SSL_R_EE_KEY_TOO_SMALL;
4350 } else {
4351 if (!ssl_security_cert_key(s, ctx, x, SSL_SECOP_CA_KEY))
4352 return SSL_R_CA_KEY_TOO_SMALL;
4353 }
4354 return 1;
4355 }
4356
4357 /*
4358 * Call ssl_security_check() on all certificates in a stack.
4359 * If |x| is non NULL it is checked first, before checking the
4360 * certificates in the stack.
4361 *
4362 * Return values: 1 if ok otherwise the error code from the first
4363 * failing ssl_security_check().;
4364 */
4365
ssl_security_cert_chain(SSL_CONNECTION * s,STACK_OF (X509)* sk,X509 * x)4366 int ssl_security_cert_chain(SSL_CONNECTION *s, STACK_OF(X509) *sk,
4367 X509 *x)
4368 {
4369 int rv, start_idx, i;
4370
4371 if (x == NULL) {
4372 x = sk_X509_value(sk, 0);
4373 if (x == NULL)
4374 return ERR_R_INTERNAL_ERROR;
4375 start_idx = 1;
4376 } else
4377 start_idx = 0;
4378
4379 rv = ssl_security_cert(s, NULL, x, 1);
4380 if (rv != 1)
4381 return rv;
4382
4383 for (i = start_idx; i < sk_X509_num(sk); i++) {
4384 x = sk_X509_value(sk, i);
4385 rv = ssl_security_cert(s, NULL, x, 0);
4386 if (rv != 1)
4387 return rv;
4388 }
4389 return 1;
4390 }
4391
4392 /*
4393 * For TLS 1.2 servers check if we have a certificate which can be used
4394 * with the signature algorithm "lu" and return index of certificate.
4395 */
4396
tls12_get_cert_sigalg_idx(const SSL_CONNECTION * s,const SIGALG_LOOKUP * lu)4397 static int tls12_get_cert_sigalg_idx(const SSL_CONNECTION *s,
4398 const SIGALG_LOOKUP *lu)
4399 {
4400 int sig_idx = lu->sig_idx;
4401 const SSL_CERT_LOOKUP *clu = ssl_cert_lookup_by_idx(sig_idx,
4402 SSL_CONNECTION_GET_CTX(s));
4403
4404 /* If not recognised or not supported by cipher mask it is not suitable */
4405 if (clu == NULL
4406 || (clu->amask & s->s3.tmp.new_cipher->algorithm_auth) == 0
4407 || (clu->pkey_nid == EVP_PKEY_RSA_PSS
4408 && (s->s3.tmp.new_cipher->algorithm_mkey & SSL_kRSA) != 0))
4409 return -1;
4410
4411 /* If doing RPK, the CERT_PKEY won't be "valid" */
4412 if (tls12_rpk_and_privkey(s, sig_idx))
4413 return s->s3.tmp.valid_flags[sig_idx] & CERT_PKEY_RPK ? sig_idx : -1;
4414
4415 return s->s3.tmp.valid_flags[sig_idx] & CERT_PKEY_VALID ? sig_idx : -1;
4416 }
4417
4418 /*
4419 * Checks the given cert against signature_algorithm_cert restrictions sent by
4420 * the peer (if any) as well as whether the hash from the sigalg is usable with
4421 * the key.
4422 * Returns true if the cert is usable and false otherwise.
4423 */
check_cert_usable(SSL_CONNECTION * s,const SIGALG_LOOKUP * sig,X509 * x,EVP_PKEY * pkey)4424 static int check_cert_usable(SSL_CONNECTION *s, const SIGALG_LOOKUP *sig,
4425 X509 *x, EVP_PKEY *pkey)
4426 {
4427 const SIGALG_LOOKUP *lu;
4428 int mdnid, pknid, supported;
4429 size_t i;
4430 const char *mdname = NULL;
4431 SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
4432
4433 /*
4434 * If the given EVP_PKEY cannot support signing with this digest,
4435 * the answer is simply 'no'.
4436 */
4437 if (sig->hash != NID_undef)
4438 mdname = OBJ_nid2sn(sig->hash);
4439 supported = EVP_PKEY_digestsign_supports_digest(pkey, sctx->libctx,
4440 mdname,
4441 sctx->propq);
4442 if (supported <= 0)
4443 return 0;
4444
4445 /*
4446 * When RPK is negotiated there are no certificate signatures to
4447 * constrain, and there may not even be a certificate configured.
4448 */
4449 if (TLSEXT_cert_type_rpk == (s->server ? s->ext.server_cert_type : s->ext.client_cert_type))
4450 return 1;
4451
4452 /*
4453 * RPK was enabled, adding candidate private-key-only slots, but was not
4454 * negotiated, so the key-only slot is not usable.
4455 */
4456 if (x == NULL)
4457 return 0;
4458
4459 /*
4460 * The TLS 1.3 signature_algorithms_cert extension places restrictions
4461 * on the sigalg with which the certificate was signed (by its issuer).
4462 */
4463 if (s->s3.tmp.peer_cert_sigalgs != NULL) {
4464 if (!X509_get_signature_info(x, &mdnid, &pknid, NULL, NULL))
4465 return 0;
4466 for (i = 0; i < s->s3.tmp.peer_cert_sigalgslen; i++) {
4467 lu = tls1_lookup_sigalg(SSL_CONNECTION_GET_CTX(s),
4468 s->s3.tmp.peer_cert_sigalgs[i]);
4469 if (lu == NULL)
4470 continue;
4471
4472 /*
4473 * This does not differentiate between the
4474 * rsa_pss_pss_* and rsa_pss_rsae_* schemes since we do not
4475 * have a chain here that lets us look at the key OID in the
4476 * signing certificate.
4477 */
4478 if (mdnid == lu->hash && pknid == lu->sig)
4479 return 1;
4480 }
4481 return 0;
4482 }
4483
4484 /*
4485 * Without signat_algorithms_cert, any certificate for which we have
4486 * a viable public key is permitted.
4487 */
4488 return 1;
4489 }
4490
4491 /*
4492 * Returns true if |s| has a usable certificate configured for use
4493 * with signature scheme |sig|.
4494 * "Usable" includes a check for presence as well as applying
4495 * the signature_algorithm_cert restrictions sent by the peer (if any).
4496 * Returns false if no usable certificate is found.
4497 */
has_usable_cert(SSL_CONNECTION * s,const SIGALG_LOOKUP * sig,int idx)4498 static int has_usable_cert(SSL_CONNECTION *s, const SIGALG_LOOKUP *sig, int idx)
4499 {
4500 /* TLS 1.2 callers can override sig->sig_idx, but not TLS 1.3 callers. */
4501 if (idx == -1)
4502 idx = sig->sig_idx;
4503 if (!ssl_has_cert(s, idx))
4504 return 0;
4505
4506 return check_cert_usable(s, sig, s->cert->pkeys[idx].x509,
4507 s->cert->pkeys[idx].privatekey);
4508 }
4509
4510 /*
4511 * Returns true if the supplied cert |x| and key |pkey| is usable with the
4512 * specified signature scheme |sig|, or false otherwise.
4513 */
is_cert_usable(SSL_CONNECTION * s,const SIGALG_LOOKUP * sig,X509 * x,EVP_PKEY * pkey)4514 static int is_cert_usable(SSL_CONNECTION *s, const SIGALG_LOOKUP *sig, X509 *x,
4515 EVP_PKEY *pkey)
4516 {
4517 size_t idx;
4518
4519 if (ssl_cert_lookup_by_pkey(pkey, &idx, SSL_CONNECTION_GET_CTX(s)) == NULL)
4520 return 0;
4521
4522 /* Check the key is consistent with the sig alg */
4523 if ((int)idx != sig->sig_idx)
4524 return 0;
4525
4526 return check_cert_usable(s, sig, x, pkey);
4527 }
4528
4529 /*
4530 * Find a signature scheme that works with the supplied certificate |x| and key
4531 * |pkey|. |x| and |pkey| may be NULL in which case we additionally look at our
4532 * available certs/keys to find one that works.
4533 */
find_sig_alg(SSL_CONNECTION * s,X509 * x,EVP_PKEY * pkey)4534 static const SIGALG_LOOKUP *find_sig_alg(SSL_CONNECTION *s, X509 *x,
4535 EVP_PKEY *pkey)
4536 {
4537 const SIGALG_LOOKUP *lu = NULL;
4538 size_t i;
4539 int curve = -1;
4540 EVP_PKEY *tmppkey;
4541 SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
4542
4543 /* Look for a shared sigalgs matching possible certificates */
4544 for (i = 0; i < s->shared_sigalgslen; i++) {
4545 /* Skip SHA1, SHA224, DSA and RSA if not PSS */
4546 lu = s->shared_sigalgs[i];
4547 if (lu->hash == NID_sha1
4548 || lu->hash == NID_sha224
4549 || lu->sig == EVP_PKEY_DSA
4550 || lu->sig == EVP_PKEY_RSA
4551 || !tls_sigalg_compat(s, lu))
4552 continue;
4553
4554 /* Check that we have a cert, and signature_algorithms_cert */
4555 if (!tls1_lookup_md(sctx, lu, NULL))
4556 continue;
4557 if ((pkey == NULL && !has_usable_cert(s, lu, -1))
4558 || (pkey != NULL && !is_cert_usable(s, lu, x, pkey)))
4559 continue;
4560
4561 tmppkey = (pkey != NULL) ? pkey
4562 : s->cert->pkeys[lu->sig_idx].privatekey;
4563
4564 if (lu->sig == EVP_PKEY_EC) {
4565 if (curve == -1)
4566 curve = ssl_get_EC_curve_nid(tmppkey);
4567 if (lu->curve != NID_undef && curve != lu->curve)
4568 continue;
4569 } else if (lu->sig == EVP_PKEY_RSA_PSS) {
4570 /* validate that key is large enough for the signature algorithm */
4571 if (!rsa_pss_check_min_key_size(sctx, tmppkey, lu))
4572 continue;
4573 }
4574 break;
4575 }
4576
4577 if (i == s->shared_sigalgslen)
4578 return NULL;
4579
4580 return lu;
4581 }
4582
4583 /*
4584 * Choose an appropriate signature algorithm based on available certificates
4585 * Sets chosen certificate and signature algorithm.
4586 *
4587 * For servers if we fail to find a required certificate it is a fatal error,
4588 * an appropriate error code is set and a TLS alert is sent.
4589 *
4590 * For clients fatalerrs is set to 0. If a certificate is not suitable it is not
4591 * a fatal error: we will either try another certificate or not present one
4592 * to the server. In this case no error is set.
4593 */
tls_choose_sigalg(SSL_CONNECTION * s,int fatalerrs)4594 int tls_choose_sigalg(SSL_CONNECTION *s, int fatalerrs)
4595 {
4596 const SIGALG_LOOKUP *lu = NULL;
4597 int sig_idx = -1;
4598
4599 s->s3.tmp.cert = NULL;
4600 s->s3.tmp.sigalg = NULL;
4601
4602 if (SSL_CONNECTION_IS_TLS13(s)) {
4603 lu = find_sig_alg(s, NULL, NULL);
4604 if (lu == NULL) {
4605 if (!fatalerrs)
4606 return 1;
4607 SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE,
4608 SSL_R_NO_SUITABLE_SIGNATURE_ALGORITHM);
4609 return 0;
4610 }
4611 } else {
4612 /* If ciphersuite doesn't require a cert nothing to do */
4613 if (!(s->s3.tmp.new_cipher->algorithm_auth & SSL_aCERT))
4614 return 1;
4615 if (!s->server && !ssl_has_cert(s, s->cert->key - s->cert->pkeys))
4616 return 1;
4617
4618 if (SSL_USE_SIGALGS(s)) {
4619 size_t i;
4620 if (s->s3.tmp.peer_sigalgs != NULL) {
4621 int curve = -1;
4622 SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
4623
4624 /* For Suite B need to match signature algorithm to curve */
4625 if (tls1_suiteb(s))
4626 curve = ssl_get_EC_curve_nid(s->cert->pkeys[SSL_PKEY_ECC]
4627 .privatekey);
4628
4629 /*
4630 * Find highest preference signature algorithm matching
4631 * cert type
4632 */
4633 for (i = 0; i < s->shared_sigalgslen; i++) {
4634 /* Check the sigalg version bounds */
4635 lu = s->shared_sigalgs[i];
4636 if (!tls_sigalg_compat(s, lu))
4637 continue;
4638 if (s->server) {
4639 if ((sig_idx = tls12_get_cert_sigalg_idx(s, lu)) == -1)
4640 continue;
4641 } else {
4642 int cc_idx = s->cert->key - s->cert->pkeys;
4643
4644 sig_idx = lu->sig_idx;
4645 if (cc_idx != sig_idx)
4646 continue;
4647 }
4648 /* Check that we have a cert, and sig_algs_cert */
4649 if (!has_usable_cert(s, lu, sig_idx))
4650 continue;
4651 if (lu->sig == EVP_PKEY_RSA_PSS) {
4652 /* validate that key is large enough for the signature algorithm */
4653 EVP_PKEY *pkey = s->cert->pkeys[sig_idx].privatekey;
4654
4655 if (!rsa_pss_check_min_key_size(sctx, pkey, lu))
4656 continue;
4657 }
4658 if (curve == -1 || lu->curve == curve)
4659 break;
4660 }
4661 #ifndef OPENSSL_NO_GOST
4662 /*
4663 * Some Windows-based implementations do not send GOST algorithms indication
4664 * in supported_algorithms extension, so when we have GOST-based ciphersuite,
4665 * we have to assume GOST support.
4666 */
4667 if (i == s->shared_sigalgslen
4668 && (s->s3.tmp.new_cipher->algorithm_auth
4669 & (SSL_aGOST01 | SSL_aGOST12))
4670 != 0) {
4671 if ((lu = tls1_get_legacy_sigalg(s, -1)) == NULL) {
4672 if (!fatalerrs)
4673 return 1;
4674 SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE,
4675 SSL_R_NO_SUITABLE_SIGNATURE_ALGORITHM);
4676 return 0;
4677 } else {
4678 i = 0;
4679 sig_idx = lu->sig_idx;
4680 }
4681 }
4682 #endif
4683 if (i == s->shared_sigalgslen) {
4684 if (!fatalerrs)
4685 return 1;
4686 SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE,
4687 SSL_R_NO_SUITABLE_SIGNATURE_ALGORITHM);
4688 return 0;
4689 }
4690 } else {
4691 /*
4692 * If we have no sigalg use defaults
4693 */
4694 const uint16_t *sent_sigs;
4695 size_t sent_sigslen;
4696
4697 if ((lu = tls1_get_legacy_sigalg(s, -1)) == NULL) {
4698 if (!fatalerrs)
4699 return 1;
4700 SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE,
4701 SSL_R_NO_SUITABLE_SIGNATURE_ALGORITHM);
4702 return 0;
4703 }
4704
4705 /* Check signature matches a type we sent */
4706 sent_sigslen = tls12_get_psigalgs(s, 1, &sent_sigs);
4707 for (i = 0; i < sent_sigslen; i++, sent_sigs++) {
4708 if (lu->sigalg == *sent_sigs
4709 && has_usable_cert(s, lu, lu->sig_idx))
4710 break;
4711 }
4712 if (i == sent_sigslen) {
4713 if (!fatalerrs)
4714 return 1;
4715 SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE,
4716 SSL_R_WRONG_SIGNATURE_TYPE);
4717 return 0;
4718 }
4719 }
4720 } else {
4721 if ((lu = tls1_get_legacy_sigalg(s, -1)) == NULL) {
4722 if (!fatalerrs)
4723 return 1;
4724 SSLfatal(s, SSL_AD_INTERNAL_ERROR,
4725 SSL_R_NO_SUITABLE_SIGNATURE_ALGORITHM);
4726 return 0;
4727 }
4728 }
4729 }
4730 if (sig_idx == -1)
4731 sig_idx = lu->sig_idx;
4732 s->s3.tmp.cert = &s->cert->pkeys[sig_idx];
4733 s->cert->key = s->s3.tmp.cert;
4734 s->s3.tmp.sigalg = lu;
4735 return 1;
4736 }
4737
SSL_CTX_set_tlsext_max_fragment_length(SSL_CTX * ctx,uint8_t mode)4738 int SSL_CTX_set_tlsext_max_fragment_length(SSL_CTX *ctx, uint8_t mode)
4739 {
4740 if (mode != TLSEXT_max_fragment_length_DISABLED
4741 && !IS_MAX_FRAGMENT_LENGTH_EXT_VALID(mode)) {
4742 ERR_raise(ERR_LIB_SSL, SSL_R_SSL3_EXT_INVALID_MAX_FRAGMENT_LENGTH);
4743 return 0;
4744 }
4745
4746 ctx->ext.max_fragment_len_mode = mode;
4747 return 1;
4748 }
4749
SSL_set_tlsext_max_fragment_length(SSL * ssl,uint8_t mode)4750 int SSL_set_tlsext_max_fragment_length(SSL *ssl, uint8_t mode)
4751 {
4752 SSL_CONNECTION *sc = SSL_CONNECTION_FROM_SSL(ssl);
4753
4754 if (sc == NULL
4755 || (IS_QUIC(ssl) && mode != TLSEXT_max_fragment_length_DISABLED))
4756 return 0;
4757
4758 if (mode != TLSEXT_max_fragment_length_DISABLED
4759 && !IS_MAX_FRAGMENT_LENGTH_EXT_VALID(mode)) {
4760 ERR_raise(ERR_LIB_SSL, SSL_R_SSL3_EXT_INVALID_MAX_FRAGMENT_LENGTH);
4761 return 0;
4762 }
4763
4764 sc->ext.max_fragment_len_mode = mode;
4765 return 1;
4766 }
4767
SSL_SESSION_get_max_fragment_length(const SSL_SESSION * session)4768 uint8_t SSL_SESSION_get_max_fragment_length(const SSL_SESSION *session)
4769 {
4770 if (session->ext.max_fragment_len_mode == TLSEXT_max_fragment_length_UNSPECIFIED)
4771 return TLSEXT_max_fragment_length_DISABLED;
4772 return session->ext.max_fragment_len_mode;
4773 }
4774
4775 /*
4776 * Helper functions for HMAC access with legacy support included.
4777 */
ssl_hmac_new(const SSL_CTX * ctx)4778 SSL_HMAC *ssl_hmac_new(const SSL_CTX *ctx)
4779 {
4780 SSL_HMAC *ret = OPENSSL_zalloc(sizeof(*ret));
4781 EVP_MAC *mac = NULL;
4782
4783 if (ret == NULL)
4784 return NULL;
4785 #ifndef OPENSSL_NO_DEPRECATED_3_0
4786 if (ctx->ext.ticket_key_evp_cb == NULL
4787 && ctx->ext.ticket_key_cb != NULL) {
4788 if (!ssl_hmac_old_new(ret))
4789 goto err;
4790 return ret;
4791 }
4792 #endif
4793 mac = EVP_MAC_fetch(ctx->libctx, "HMAC", ctx->propq);
4794 if (mac == NULL || (ret->ctx = EVP_MAC_CTX_new(mac)) == NULL)
4795 goto err;
4796 EVP_MAC_free(mac);
4797 return ret;
4798 err:
4799 EVP_MAC_CTX_free(ret->ctx);
4800 EVP_MAC_free(mac);
4801 OPENSSL_free(ret);
4802 return NULL;
4803 }
4804
ssl_hmac_free(SSL_HMAC * ctx)4805 void ssl_hmac_free(SSL_HMAC *ctx)
4806 {
4807 if (ctx != NULL) {
4808 EVP_MAC_CTX_free(ctx->ctx);
4809 #ifndef OPENSSL_NO_DEPRECATED_3_0
4810 ssl_hmac_old_free(ctx);
4811 #endif
4812 OPENSSL_free(ctx);
4813 }
4814 }
4815
ssl_hmac_get0_EVP_MAC_CTX(SSL_HMAC * ctx)4816 EVP_MAC_CTX *ssl_hmac_get0_EVP_MAC_CTX(SSL_HMAC *ctx)
4817 {
4818 return ctx->ctx;
4819 }
4820
ssl_hmac_init(SSL_HMAC * ctx,void * key,size_t len,char * md)4821 int ssl_hmac_init(SSL_HMAC *ctx, void *key, size_t len, char *md)
4822 {
4823 OSSL_PARAM params[2], *p = params;
4824
4825 if (ctx->ctx != NULL) {
4826 *p++ = OSSL_PARAM_construct_utf8_string(OSSL_MAC_PARAM_DIGEST, md, 0);
4827 *p = OSSL_PARAM_construct_end();
4828 if (EVP_MAC_init(ctx->ctx, key, len, params))
4829 return 1;
4830 }
4831 #ifndef OPENSSL_NO_DEPRECATED_3_0
4832 if (ctx->old_ctx != NULL)
4833 return ssl_hmac_old_init(ctx, key, len, md);
4834 #endif
4835 return 0;
4836 }
4837
ssl_hmac_update(SSL_HMAC * ctx,const unsigned char * data,size_t len)4838 int ssl_hmac_update(SSL_HMAC *ctx, const unsigned char *data, size_t len)
4839 {
4840 if (ctx->ctx != NULL)
4841 return EVP_MAC_update(ctx->ctx, data, len);
4842 #ifndef OPENSSL_NO_DEPRECATED_3_0
4843 if (ctx->old_ctx != NULL)
4844 return ssl_hmac_old_update(ctx, data, len);
4845 #endif
4846 return 0;
4847 }
4848
ssl_hmac_final(SSL_HMAC * ctx,unsigned char * md,size_t * len,size_t max_size)4849 int ssl_hmac_final(SSL_HMAC *ctx, unsigned char *md, size_t *len,
4850 size_t max_size)
4851 {
4852 if (ctx->ctx != NULL)
4853 return EVP_MAC_final(ctx->ctx, md, len, max_size);
4854 #ifndef OPENSSL_NO_DEPRECATED_3_0
4855 if (ctx->old_ctx != NULL)
4856 return ssl_hmac_old_final(ctx, md, len);
4857 #endif
4858 return 0;
4859 }
4860
ssl_hmac_size(const SSL_HMAC * ctx)4861 size_t ssl_hmac_size(const SSL_HMAC *ctx)
4862 {
4863 if (ctx->ctx != NULL)
4864 return EVP_MAC_CTX_get_mac_size(ctx->ctx);
4865 #ifndef OPENSSL_NO_DEPRECATED_3_0
4866 if (ctx->old_ctx != NULL)
4867 return ssl_hmac_old_size(ctx);
4868 #endif
4869 return 0;
4870 }
4871
ssl_get_EC_curve_nid(const EVP_PKEY * pkey)4872 int ssl_get_EC_curve_nid(const EVP_PKEY *pkey)
4873 {
4874 char gname[OSSL_MAX_NAME_SIZE];
4875
4876 if (EVP_PKEY_get_group_name(pkey, gname, sizeof(gname), NULL) > 0)
4877 return OBJ_txt2nid(gname);
4878
4879 return NID_undef;
4880 }
4881
tls13_set_encoded_pub_key(EVP_PKEY * pkey,const unsigned char * enckey,size_t enckeylen)4882 __owur int tls13_set_encoded_pub_key(EVP_PKEY *pkey,
4883 const unsigned char *enckey,
4884 size_t enckeylen)
4885 {
4886 if (EVP_PKEY_is_a(pkey, "DH")) {
4887 int bits = EVP_PKEY_get_bits(pkey);
4888
4889 if (bits <= 0 || enckeylen != (size_t)bits / 8)
4890 /* the encoded key must be padded to the length of the p */
4891 return 0;
4892 } else if (EVP_PKEY_is_a(pkey, "EC")) {
4893 if (enckeylen < 3 /* point format and at least 1 byte for x and y */
4894 || enckey[0] != 0x04)
4895 return 0;
4896 }
4897
4898 return EVP_PKEY_set1_encoded_public_key(pkey, enckey, enckeylen);
4899 }
4900