1 /*
2 * Copyright 1995-2016 The OpenSSL Project Authors. All Rights Reserved.
3 * Copyright (c) 2002, Oracle and/or its affiliates. All rights reserved.
4 *
5 * Licensed under the OpenSSL license (the "License"). You may not use
6 * this file except in compliance with the License. You can obtain a copy
7 * in the file LICENSE in the source distribution or at
8 * https://www.openssl.org/source/license.html
9 */
10
11 #include <openssl/ssl.h>
12
13 #include <assert.h>
14 #include <limits.h>
15 #include <string.h>
16
17 #include <utility>
18
19 #include <openssl/bn.h>
20 #include <openssl/bytestring.h>
21 #include <openssl/ec_key.h>
22 #include <openssl/err.h>
23 #include <openssl/mem.h>
24 #include <openssl/sha.h>
25 #include <openssl/x509.h>
26
27 #include "../crypto/internal.h"
28 #include "internal.h"
29
30
31 BSSL_NAMESPACE_BEGIN
32
CERT(const SSL_X509_METHOD * x509_method_arg)33 CERT::CERT(const SSL_X509_METHOD *x509_method_arg)
34 : legacy_credential(MakeUnique<SSL_CREDENTIAL>(SSLCredentialType::kX509)),
35 x509_method(x509_method_arg) {}
36
~CERT()37 CERT::~CERT() { x509_method->cert_free(this); }
38
ssl_cert_dup(CERT * cert)39 UniquePtr<CERT> ssl_cert_dup(CERT *cert) {
40 UniquePtr<CERT> ret = MakeUnique<CERT>(cert->x509_method);
41 if (!ret) {
42 return nullptr;
43 }
44
45 // TODO(crbug.com/boringssl/431): This should just be |CopyFrom|.
46 for (const auto &cred : cert->credentials) {
47 if (!ret->credentials.Push(UpRef(cred))) {
48 return nullptr;
49 }
50 }
51
52 // |legacy_credential| is mutable, so it must be copied. We cannot simply
53 // bump the reference count.
54 ret->legacy_credential = cert->legacy_credential->Dup();
55 if (ret->legacy_credential == nullptr) {
56 return nullptr;
57 }
58
59 ret->cert_cb = cert->cert_cb;
60 ret->cert_cb_arg = cert->cert_cb_arg;
61
62 ret->x509_method->cert_dup(ret.get(), cert);
63
64 ret->sid_ctx = cert->sid_ctx;
65 return ret;
66 }
67
ssl_cert_set_cert_cb(CERT * cert,int (* cb)(SSL * ssl,void * arg),void * arg)68 static void ssl_cert_set_cert_cb(CERT *cert, int (*cb)(SSL *ssl, void *arg),
69 void *arg) {
70 cert->cert_cb = cb;
71 cert->cert_cb_arg = arg;
72 }
73
cert_set_chain_and_key(CERT * cert,CRYPTO_BUFFER * const * certs,size_t num_certs,EVP_PKEY * privkey,const SSL_PRIVATE_KEY_METHOD * privkey_method)74 static int cert_set_chain_and_key(
75 CERT *cert, CRYPTO_BUFFER *const *certs, size_t num_certs,
76 EVP_PKEY *privkey, const SSL_PRIVATE_KEY_METHOD *privkey_method) {
77 if (num_certs == 0 || //
78 (privkey == NULL && privkey_method == NULL)) {
79 OPENSSL_PUT_ERROR(SSL, ERR_R_PASSED_NULL_PARAMETER);
80 return 0;
81 }
82
83 if (privkey != NULL && privkey_method != NULL) {
84 OPENSSL_PUT_ERROR(SSL, SSL_R_CANNOT_HAVE_BOTH_PRIVKEY_AND_METHOD);
85 return 0;
86 }
87
88 cert->legacy_credential->ClearCertAndKey();
89 if (!SSL_CREDENTIAL_set1_cert_chain(cert->legacy_credential.get(), certs,
90 num_certs)) {
91 return 0;
92 }
93
94 cert->x509_method->cert_flush_cached_leaf(cert);
95 cert->x509_method->cert_flush_cached_chain(cert);
96
97 return privkey != nullptr
98 ? SSL_CREDENTIAL_set1_private_key(cert->legacy_credential.get(),
99 privkey)
100 : SSL_CREDENTIAL_set_private_key_method(
101 cert->legacy_credential.get(), privkey_method);
102 }
103
ssl_set_cert(CERT * cert,UniquePtr<CRYPTO_BUFFER> buffer)104 bool ssl_set_cert(CERT *cert, UniquePtr<CRYPTO_BUFFER> buffer) {
105 // Don't fail for a cert/key mismatch, just free the current private key.
106 // (When switching to a different keypair, the caller should switch the
107 // certificate, then the key.)
108 if (!cert->legacy_credential->SetLeafCert(std::move(buffer),
109 /*discard_key_on_mismatch=*/true)) {
110 return false;
111 }
112
113 cert->x509_method->cert_flush_cached_leaf(cert);
114 return true;
115 }
116
ssl_parse_cert_chain(uint8_t * out_alert,UniquePtr<STACK_OF (CRYPTO_BUFFER)> * out_chain,UniquePtr<EVP_PKEY> * out_pubkey,uint8_t * out_leaf_sha256,CBS * cbs,CRYPTO_BUFFER_POOL * pool)117 bool ssl_parse_cert_chain(uint8_t *out_alert,
118 UniquePtr<STACK_OF(CRYPTO_BUFFER)> *out_chain,
119 UniquePtr<EVP_PKEY> *out_pubkey,
120 uint8_t *out_leaf_sha256, CBS *cbs,
121 CRYPTO_BUFFER_POOL *pool) {
122 out_chain->reset();
123 out_pubkey->reset();
124
125 CBS certificate_list;
126 if (!CBS_get_u24_length_prefixed(cbs, &certificate_list)) {
127 *out_alert = SSL_AD_DECODE_ERROR;
128 OPENSSL_PUT_ERROR(SSL, SSL_R_DECODE_ERROR);
129 return false;
130 }
131
132 if (CBS_len(&certificate_list) == 0) {
133 return true;
134 }
135
136 UniquePtr<STACK_OF(CRYPTO_BUFFER)> chain(sk_CRYPTO_BUFFER_new_null());
137 if (!chain) {
138 *out_alert = SSL_AD_INTERNAL_ERROR;
139 return false;
140 }
141
142 UniquePtr<EVP_PKEY> pubkey;
143 while (CBS_len(&certificate_list) > 0) {
144 CBS certificate;
145 if (!CBS_get_u24_length_prefixed(&certificate_list, &certificate) ||
146 CBS_len(&certificate) == 0) {
147 *out_alert = SSL_AD_DECODE_ERROR;
148 OPENSSL_PUT_ERROR(SSL, SSL_R_CERT_LENGTH_MISMATCH);
149 return false;
150 }
151
152 if (sk_CRYPTO_BUFFER_num(chain.get()) == 0) {
153 pubkey = ssl_cert_parse_pubkey(&certificate);
154 if (!pubkey) {
155 *out_alert = SSL_AD_DECODE_ERROR;
156 return false;
157 }
158
159 // Retain the hash of the leaf certificate if requested.
160 if (out_leaf_sha256 != NULL) {
161 SHA256(CBS_data(&certificate), CBS_len(&certificate), out_leaf_sha256);
162 }
163 }
164
165 UniquePtr<CRYPTO_BUFFER> buf(
166 CRYPTO_BUFFER_new_from_CBS(&certificate, pool));
167 if (!buf || //
168 !PushToStack(chain.get(), std::move(buf))) {
169 *out_alert = SSL_AD_INTERNAL_ERROR;
170 return false;
171 }
172 }
173
174 *out_chain = std::move(chain);
175 *out_pubkey = std::move(pubkey);
176 return true;
177 }
178
179 // ssl_cert_skip_to_spki parses a DER-encoded, X.509 certificate from |in| and
180 // positions |*out_tbs_cert| to cover the TBSCertificate, starting at the
181 // subjectPublicKeyInfo.
ssl_cert_skip_to_spki(const CBS * in,CBS * out_tbs_cert)182 static bool ssl_cert_skip_to_spki(const CBS *in, CBS *out_tbs_cert) {
183 /* From RFC 5280, section 4.1
184 * Certificate ::= SEQUENCE {
185 * tbsCertificate TBSCertificate,
186 * signatureAlgorithm AlgorithmIdentifier,
187 * signatureValue BIT STRING }
188
189 * TBSCertificate ::= SEQUENCE {
190 * version [0] EXPLICIT Version DEFAULT v1,
191 * serialNumber CertificateSerialNumber,
192 * signature AlgorithmIdentifier,
193 * issuer Name,
194 * validity Validity,
195 * subject Name,
196 * subjectPublicKeyInfo SubjectPublicKeyInfo,
197 * ... } */
198 CBS buf = *in;
199
200 CBS toplevel;
201 if (!CBS_get_asn1(&buf, &toplevel, CBS_ASN1_SEQUENCE) || //
202 CBS_len(&buf) != 0 || //
203 !CBS_get_asn1(&toplevel, out_tbs_cert, CBS_ASN1_SEQUENCE) || //
204 // version
205 !CBS_get_optional_asn1(
206 out_tbs_cert, NULL, NULL,
207 CBS_ASN1_CONSTRUCTED | CBS_ASN1_CONTEXT_SPECIFIC | 0) || //
208
209 // serialNumber
210 !CBS_get_asn1(out_tbs_cert, NULL, CBS_ASN1_INTEGER) ||
211 // signature algorithm
212 !CBS_get_asn1(out_tbs_cert, NULL, CBS_ASN1_SEQUENCE) ||
213 // issuer
214 !CBS_get_asn1(out_tbs_cert, NULL, CBS_ASN1_SEQUENCE) ||
215 // validity
216 !CBS_get_asn1(out_tbs_cert, NULL, CBS_ASN1_SEQUENCE) ||
217 // subject
218 !CBS_get_asn1(out_tbs_cert, NULL, CBS_ASN1_SEQUENCE)) {
219 return false;
220 }
221
222 return true;
223 }
224
ssl_cert_extract_issuer(const CBS * in,CBS * out_dn)225 bool ssl_cert_extract_issuer(const CBS *in, CBS *out_dn) {
226 CBS buf = *in;
227
228 CBS toplevel;
229 CBS cert;
230 if (!CBS_get_asn1(&buf, &toplevel, CBS_ASN1_SEQUENCE) || //
231 CBS_len(&buf) != 0 || //
232 !CBS_get_asn1(&toplevel, &cert, CBS_ASN1_SEQUENCE) || //
233 // version
234 !CBS_get_optional_asn1(
235 &cert, NULL, NULL,
236 CBS_ASN1_CONSTRUCTED | CBS_ASN1_CONTEXT_SPECIFIC | 0) || //
237 // serialNumber
238 !CBS_get_asn1(&cert, NULL, CBS_ASN1_INTEGER) || //
239 // signature algorithm
240 !CBS_get_asn1(&cert, NULL, CBS_ASN1_SEQUENCE) || //
241 // issuer
242 !CBS_get_asn1_element(&cert, out_dn, CBS_ASN1_SEQUENCE)) {
243 return false;
244 }
245 return true;
246 }
247
ssl_cert_matches_issuer(const CBS * in,const CBS * dn)248 bool ssl_cert_matches_issuer(const CBS *in, const CBS *dn) {
249 CBS issuer;
250
251 if (!ssl_cert_extract_issuer(in, &issuer)) {
252 return false;
253 }
254 return CBS_mem_equal(&issuer, CBS_data(dn), CBS_len(dn));
255 }
256
ssl_cert_parse_pubkey(const CBS * in)257 UniquePtr<EVP_PKEY> ssl_cert_parse_pubkey(const CBS *in) {
258 CBS buf = *in, tbs_cert;
259 if (!ssl_cert_skip_to_spki(&buf, &tbs_cert)) {
260 OPENSSL_PUT_ERROR(SSL, SSL_R_CANNOT_PARSE_LEAF_CERT);
261 return nullptr;
262 }
263
264 return UniquePtr<EVP_PKEY>(EVP_parse_public_key(&tbs_cert));
265 }
266
ssl_compare_public_and_private_key(const EVP_PKEY * pubkey,const EVP_PKEY * privkey)267 bool ssl_compare_public_and_private_key(const EVP_PKEY *pubkey,
268 const EVP_PKEY *privkey) {
269 if (EVP_PKEY_is_opaque(privkey)) {
270 // We cannot check an opaque private key and have to trust that it
271 // matches.
272 return true;
273 }
274
275 switch (EVP_PKEY_cmp(pubkey, privkey)) {
276 case 1:
277 return true;
278 case 0:
279 OPENSSL_PUT_ERROR(X509, X509_R_KEY_VALUES_MISMATCH);
280 return false;
281 case -1:
282 OPENSSL_PUT_ERROR(X509, X509_R_KEY_TYPE_MISMATCH);
283 return false;
284 case -2:
285 OPENSSL_PUT_ERROR(X509, X509_R_UNKNOWN_KEY_TYPE);
286 return false;
287 }
288
289 assert(0);
290 return false;
291 }
292
ssl_cert_check_key_usage(const CBS * in,enum ssl_key_usage_t bit)293 bool ssl_cert_check_key_usage(const CBS *in, enum ssl_key_usage_t bit) {
294 CBS buf = *in;
295
296 CBS tbs_cert, outer_extensions;
297 int has_extensions;
298 if (!ssl_cert_skip_to_spki(&buf, &tbs_cert) ||
299 // subjectPublicKeyInfo
300 !CBS_get_asn1(&tbs_cert, NULL, CBS_ASN1_SEQUENCE) ||
301 // issuerUniqueID
302 !CBS_get_optional_asn1(&tbs_cert, NULL, NULL,
303 CBS_ASN1_CONTEXT_SPECIFIC | 1) ||
304 // subjectUniqueID
305 !CBS_get_optional_asn1(&tbs_cert, NULL, NULL,
306 CBS_ASN1_CONTEXT_SPECIFIC | 2) ||
307 !CBS_get_optional_asn1(
308 &tbs_cert, &outer_extensions, &has_extensions,
309 CBS_ASN1_CONSTRUCTED | CBS_ASN1_CONTEXT_SPECIFIC | 3)) {
310 OPENSSL_PUT_ERROR(SSL, SSL_R_CANNOT_PARSE_LEAF_CERT);
311 return false;
312 }
313
314 if (!has_extensions) {
315 return true;
316 }
317
318 CBS extensions;
319 if (!CBS_get_asn1(&outer_extensions, &extensions, CBS_ASN1_SEQUENCE)) {
320 OPENSSL_PUT_ERROR(SSL, SSL_R_CANNOT_PARSE_LEAF_CERT);
321 return false;
322 }
323
324 while (CBS_len(&extensions) > 0) {
325 CBS extension, oid, contents;
326 if (!CBS_get_asn1(&extensions, &extension, CBS_ASN1_SEQUENCE) ||
327 !CBS_get_asn1(&extension, &oid, CBS_ASN1_OBJECT) ||
328 (CBS_peek_asn1_tag(&extension, CBS_ASN1_BOOLEAN) &&
329 !CBS_get_asn1(&extension, NULL, CBS_ASN1_BOOLEAN)) ||
330 !CBS_get_asn1(&extension, &contents, CBS_ASN1_OCTETSTRING) ||
331 CBS_len(&extension) != 0) {
332 OPENSSL_PUT_ERROR(SSL, SSL_R_CANNOT_PARSE_LEAF_CERT);
333 return false;
334 }
335
336 static const uint8_t kKeyUsageOID[3] = {0x55, 0x1d, 0x0f};
337 if (CBS_len(&oid) != sizeof(kKeyUsageOID) ||
338 OPENSSL_memcmp(CBS_data(&oid), kKeyUsageOID, sizeof(kKeyUsageOID)) !=
339 0) {
340 continue;
341 }
342
343 CBS bit_string;
344 if (!CBS_get_asn1(&contents, &bit_string, CBS_ASN1_BITSTRING) ||
345 CBS_len(&contents) != 0) {
346 OPENSSL_PUT_ERROR(SSL, SSL_R_CANNOT_PARSE_LEAF_CERT);
347 return false;
348 }
349
350 // This is the KeyUsage extension. See
351 // https://tools.ietf.org/html/rfc5280#section-4.2.1.3
352 if (!CBS_is_valid_asn1_bitstring(&bit_string)) {
353 OPENSSL_PUT_ERROR(SSL, SSL_R_CANNOT_PARSE_LEAF_CERT);
354 return false;
355 }
356
357 if (!CBS_asn1_bitstring_has_bit(&bit_string, bit)) {
358 OPENSSL_PUT_ERROR(SSL, SSL_R_KEY_USAGE_BIT_INCORRECT);
359 return false;
360 }
361
362 return true;
363 }
364
365 // No KeyUsage extension found.
366 return true;
367 }
368
SSL_parse_CA_list(SSL * ssl,uint8_t * out_alert,CBS * cbs)369 UniquePtr<STACK_OF(CRYPTO_BUFFER)> SSL_parse_CA_list(SSL *ssl,
370 uint8_t *out_alert,
371 CBS *cbs) {
372 CRYPTO_BUFFER_POOL *const pool = ssl->ctx->pool;
373
374 UniquePtr<STACK_OF(CRYPTO_BUFFER)> ret(sk_CRYPTO_BUFFER_new_null());
375 if (!ret) {
376 *out_alert = SSL_AD_INTERNAL_ERROR;
377 return nullptr;
378 }
379
380 CBS child;
381 if (!CBS_get_u16_length_prefixed(cbs, &child)) {
382 *out_alert = SSL_AD_DECODE_ERROR;
383 OPENSSL_PUT_ERROR(SSL, SSL_R_LENGTH_MISMATCH);
384 return nullptr;
385 }
386
387 while (CBS_len(&child) > 0) {
388 CBS distinguished_name;
389 if (!CBS_get_u16_length_prefixed(&child, &distinguished_name)) {
390 *out_alert = SSL_AD_DECODE_ERROR;
391 OPENSSL_PUT_ERROR(SSL, SSL_R_CA_DN_TOO_LONG);
392 return nullptr;
393 }
394
395 UniquePtr<CRYPTO_BUFFER> buffer(
396 CRYPTO_BUFFER_new_from_CBS(&distinguished_name, pool));
397 if (!buffer || //
398 !PushToStack(ret.get(), std::move(buffer))) {
399 *out_alert = SSL_AD_INTERNAL_ERROR;
400 return nullptr;
401 }
402 }
403
404 if (!ssl->ctx->x509_method->check_CA_list(ret.get())) {
405 *out_alert = SSL_AD_DECODE_ERROR;
406 OPENSSL_PUT_ERROR(SSL, SSL_R_DECODE_ERROR);
407 return nullptr;
408 }
409
410 return ret;
411 }
412
CA_names_non_empty(const STACK_OF (CRYPTO_BUFFER)* config_names,const STACK_OF (CRYPTO_BUFFER)* ctx_names)413 static bool CA_names_non_empty(const STACK_OF(CRYPTO_BUFFER) *config_names,
414 const STACK_OF(CRYPTO_BUFFER) *ctx_names) {
415 if (config_names != nullptr) {
416 return sk_CRYPTO_BUFFER_num(config_names) > 0;
417 }
418 if (ctx_names != nullptr) {
419 return sk_CRYPTO_BUFFER_num(ctx_names) > 0;
420 }
421 return false;
422 }
423
424
marshal_CA_names(const STACK_OF (CRYPTO_BUFFER)* config_names,const STACK_OF (CRYPTO_BUFFER)* ctx_names,CBB * cbb)425 static bool marshal_CA_names(const STACK_OF(CRYPTO_BUFFER) *config_names,
426 const STACK_OF(CRYPTO_BUFFER) *ctx_names,
427 CBB *cbb) {
428 const STACK_OF(CRYPTO_BUFFER) *names =
429 config_names == nullptr ? ctx_names : config_names;
430 CBB child, name_cbb;
431
432 if (!CBB_add_u16_length_prefixed(cbb, &child)) {
433 return false;
434 }
435
436 if (names == nullptr) {
437 return CBB_flush(cbb);
438 }
439
440 for (const CRYPTO_BUFFER *name : names) {
441 if (!CBB_add_u16_length_prefixed(&child, &name_cbb) ||
442 !CBB_add_bytes(&name_cbb, CRYPTO_BUFFER_data(name),
443 CRYPTO_BUFFER_len(name))) {
444 return false;
445 }
446 }
447
448 return CBB_flush(cbb);
449 }
450
ssl_has_client_CAs(const SSL_CONFIG * cfg)451 bool ssl_has_client_CAs(const SSL_CONFIG *cfg) {
452 return CA_names_non_empty(cfg->client_CA.get(),
453 cfg->ssl->ctx->client_CA.get());
454 }
455
ssl_has_CA_names(const SSL_CONFIG * cfg)456 bool ssl_has_CA_names(const SSL_CONFIG *cfg) {
457 return CA_names_non_empty(cfg->CA_names.get(), cfg->ssl->ctx->CA_names.get());
458 }
459
ssl_add_client_CA_list(const SSL_HANDSHAKE * hs,CBB * cbb)460 bool ssl_add_client_CA_list(const SSL_HANDSHAKE *hs, CBB *cbb) {
461 return marshal_CA_names(hs->config->client_CA.get(),
462 hs->ssl->ctx->client_CA.get(), cbb);
463 }
464
ssl_add_CA_names(const SSL_HANDSHAKE * hs,CBB * cbb)465 bool ssl_add_CA_names(const SSL_HANDSHAKE *hs, CBB *cbb) {
466 return marshal_CA_names(hs->config->CA_names.get(),
467 hs->ssl->ctx->CA_names.get(), cbb);
468 }
469
ssl_check_leaf_certificate(SSL_HANDSHAKE * hs,EVP_PKEY * pkey,const CRYPTO_BUFFER * leaf)470 bool ssl_check_leaf_certificate(SSL_HANDSHAKE *hs, EVP_PKEY *pkey,
471 const CRYPTO_BUFFER *leaf) {
472 assert(ssl_protocol_version(hs->ssl) < TLS1_3_VERSION);
473
474 // Check the certificate's type matches the cipher. This does not check key
475 // usage restrictions, which are handled separately.
476 //
477 // TODO(davidben): Put the key type and key usage checks in one place.
478 if (!(hs->new_cipher->algorithm_auth &
479 ssl_cipher_auth_mask_for_key(pkey, /*sign_ok=*/true))) {
480 OPENSSL_PUT_ERROR(SSL, SSL_R_WRONG_CERTIFICATE_TYPE);
481 return false;
482 }
483
484 if (EVP_PKEY_id(pkey) == EVP_PKEY_EC) {
485 // Check the key's group and point format are acceptable.
486 EC_KEY *ec_key = EVP_PKEY_get0_EC_KEY(pkey);
487 uint16_t group_id;
488 if (!ssl_nid_to_group_id(
489 &group_id, EC_GROUP_get_curve_name(EC_KEY_get0_group(ec_key))) ||
490 !tls1_check_group_id(hs, group_id) ||
491 EC_KEY_get_conv_form(ec_key) != POINT_CONVERSION_UNCOMPRESSED) {
492 OPENSSL_PUT_ERROR(SSL, SSL_R_BAD_ECC_CERT);
493 return false;
494 }
495 }
496
497 return true;
498 }
499
500 BSSL_NAMESPACE_END
501
502 using namespace bssl;
503
SSL_set_chain_and_key(SSL * ssl,CRYPTO_BUFFER * const * certs,size_t num_certs,EVP_PKEY * privkey,const SSL_PRIVATE_KEY_METHOD * privkey_method)504 int SSL_set_chain_and_key(SSL *ssl, CRYPTO_BUFFER *const *certs,
505 size_t num_certs, EVP_PKEY *privkey,
506 const SSL_PRIVATE_KEY_METHOD *privkey_method) {
507 if (!ssl->config) {
508 return 0;
509 }
510 return cert_set_chain_and_key(ssl->config->cert.get(), certs, num_certs,
511 privkey, privkey_method);
512 }
513
SSL_CTX_set_chain_and_key(SSL_CTX * ctx,CRYPTO_BUFFER * const * certs,size_t num_certs,EVP_PKEY * privkey,const SSL_PRIVATE_KEY_METHOD * privkey_method)514 int SSL_CTX_set_chain_and_key(SSL_CTX *ctx, CRYPTO_BUFFER *const *certs,
515 size_t num_certs, EVP_PKEY *privkey,
516 const SSL_PRIVATE_KEY_METHOD *privkey_method) {
517 return cert_set_chain_and_key(ctx->cert.get(), certs, num_certs, privkey,
518 privkey_method);
519 }
520
SSL_certs_clear(SSL * ssl)521 void SSL_certs_clear(SSL *ssl) {
522 if (!ssl->config) {
523 return;
524 }
525
526 CERT *cert = ssl->config->cert.get();
527 cert->x509_method->cert_clear(cert);
528 cert->credentials.clear();
529 cert->legacy_credential->ClearCertAndKey();
530 }
531
STACK_OF(CRYPTO_BUFFER)532 const STACK_OF(CRYPTO_BUFFER) *SSL_CTX_get0_chain(const SSL_CTX *ctx) {
533 return ctx->cert->legacy_credential->chain.get();
534 }
535
STACK_OF(CRYPTO_BUFFER)536 const STACK_OF(CRYPTO_BUFFER) *SSL_get0_chain(const SSL *ssl) {
537 if (!ssl->config) {
538 return nullptr;
539 }
540 return ssl->config->cert->legacy_credential->chain.get();
541 }
542
SSL_CTX_use_certificate_ASN1(SSL_CTX * ctx,size_t der_len,const uint8_t * der)543 int SSL_CTX_use_certificate_ASN1(SSL_CTX *ctx, size_t der_len,
544 const uint8_t *der) {
545 UniquePtr<CRYPTO_BUFFER> buffer(CRYPTO_BUFFER_new(der, der_len, NULL));
546 if (!buffer) {
547 return 0;
548 }
549
550 return ssl_set_cert(ctx->cert.get(), std::move(buffer));
551 }
552
SSL_use_certificate_ASN1(SSL * ssl,const uint8_t * der,size_t der_len)553 int SSL_use_certificate_ASN1(SSL *ssl, const uint8_t *der, size_t der_len) {
554 UniquePtr<CRYPTO_BUFFER> buffer(CRYPTO_BUFFER_new(der, der_len, NULL));
555 if (!buffer || !ssl->config) {
556 return 0;
557 }
558
559 return ssl_set_cert(ssl->config->cert.get(), std::move(buffer));
560 }
561
SSL_CTX_set_cert_cb(SSL_CTX * ctx,int (* cb)(SSL * ssl,void * arg),void * arg)562 void SSL_CTX_set_cert_cb(SSL_CTX *ctx, int (*cb)(SSL *ssl, void *arg),
563 void *arg) {
564 ssl_cert_set_cert_cb(ctx->cert.get(), cb, arg);
565 }
566
SSL_set_cert_cb(SSL * ssl,int (* cb)(SSL * ssl,void * arg),void * arg)567 void SSL_set_cert_cb(SSL *ssl, int (*cb)(SSL *ssl, void *arg), void *arg) {
568 if (!ssl->config) {
569 return;
570 }
571 ssl_cert_set_cert_cb(ssl->config->cert.get(), cb, arg);
572 }
573
STACK_OF(CRYPTO_BUFFER)574 const STACK_OF(CRYPTO_BUFFER) *SSL_get0_peer_certificates(const SSL *ssl) {
575 SSL_SESSION *session = SSL_get_session(ssl);
576 if (session == NULL) {
577 return NULL;
578 }
579
580 return session->certs.get();
581 }
582
STACK_OF(CRYPTO_BUFFER)583 const STACK_OF(CRYPTO_BUFFER) *SSL_get0_server_requested_CAs(const SSL *ssl) {
584 if (ssl->s3->hs == NULL) {
585 return NULL;
586 }
587 return ssl->s3->hs->ca_names.get();
588 }
589
SSL_CTX_set_signed_cert_timestamp_list(SSL_CTX * ctx,const uint8_t * list,size_t list_len)590 int SSL_CTX_set_signed_cert_timestamp_list(SSL_CTX *ctx, const uint8_t *list,
591 size_t list_len) {
592 UniquePtr<CRYPTO_BUFFER> buf(CRYPTO_BUFFER_new(list, list_len, nullptr));
593 return buf != nullptr && SSL_CREDENTIAL_set1_signed_cert_timestamp_list(
594 ctx->cert->legacy_credential.get(), buf.get());
595 }
596
SSL_set_signed_cert_timestamp_list(SSL * ssl,const uint8_t * list,size_t list_len)597 int SSL_set_signed_cert_timestamp_list(SSL *ssl, const uint8_t *list,
598 size_t list_len) {
599 if (!ssl->config) {
600 return 0;
601 }
602 UniquePtr<CRYPTO_BUFFER> buf(CRYPTO_BUFFER_new(list, list_len, nullptr));
603 return buf != nullptr &&
604 SSL_CREDENTIAL_set1_signed_cert_timestamp_list(
605 ssl->config->cert->legacy_credential.get(), buf.get());
606 }
607
SSL_CTX_set_ocsp_response(SSL_CTX * ctx,const uint8_t * response,size_t response_len)608 int SSL_CTX_set_ocsp_response(SSL_CTX *ctx, const uint8_t *response,
609 size_t response_len) {
610 UniquePtr<CRYPTO_BUFFER> buf(
611 CRYPTO_BUFFER_new(response, response_len, nullptr));
612 return buf != nullptr && SSL_CREDENTIAL_set1_ocsp_response(
613 ctx->cert->legacy_credential.get(), buf.get());
614 }
615
SSL_set_ocsp_response(SSL * ssl,const uint8_t * response,size_t response_len)616 int SSL_set_ocsp_response(SSL *ssl, const uint8_t *response,
617 size_t response_len) {
618 if (!ssl->config) {
619 return 0;
620 }
621 UniquePtr<CRYPTO_BUFFER> buf(
622 CRYPTO_BUFFER_new(response, response_len, nullptr));
623 return buf != nullptr &&
624 SSL_CREDENTIAL_set1_ocsp_response(
625 ssl->config->cert->legacy_credential.get(), buf.get());
626 }
627
SSL_CTX_set0_client_CAs(SSL_CTX * ctx,STACK_OF (CRYPTO_BUFFER)* name_list)628 void SSL_CTX_set0_client_CAs(SSL_CTX *ctx, STACK_OF(CRYPTO_BUFFER) *name_list) {
629 ctx->x509_method->ssl_ctx_flush_cached_client_CA(ctx);
630 ctx->client_CA.reset(name_list);
631 }
632
SSL_set0_client_CAs(SSL * ssl,STACK_OF (CRYPTO_BUFFER)* name_list)633 void SSL_set0_client_CAs(SSL *ssl, STACK_OF(CRYPTO_BUFFER) *name_list) {
634 if (!ssl->config) {
635 return;
636 }
637 ssl->ctx->x509_method->ssl_flush_cached_client_CA(ssl->config.get());
638 ssl->config->client_CA.reset(name_list);
639 }
640
SSL_set0_CA_names(SSL * ssl,STACK_OF (CRYPTO_BUFFER)* name_list)641 void SSL_set0_CA_names(SSL *ssl, STACK_OF(CRYPTO_BUFFER) *name_list) {
642 if (!ssl->config) {
643 return;
644 }
645 ssl->config->CA_names.reset(name_list);
646 }
647