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Move libssl's internals into the bssl namespace. This is horrible, but everything else I tried was worse. The goal with this CL is to take the extern "C" out of ssl/internal.h and move most symbols to namespace bssl, so we can start using C++ helpers and destructors without worry. Complications: - Public API functions must be extern "C" and match their declaration in ssl.h, which is unnamespaced. C++ really does not want you to interleave namespaced and unnamespaced things. One can actually write a namespaced extern "C" function, but this means, from C++'s perspective, the function is namespaced. Trying to namespace the public header would worked but ended up too deep a rabbithole. - Our STACK_OF macros do not work right in namespaces. - The typedefs for our exposed but opaque types are visible in the header files and copied into consuming projects as forward declarations. We ultimately want to give SSL a destructor, but clobbering an unnamespaced ssl_st::~ssl_st seems bad manners. - MSVC complains about ambiguous names if one typedefs SSL to bssl::SSL. This CL opts for: - ssl/*.cc must begin with #define BORINGSSL_INTERNAL_CXX_TYPES. This informs the public headers to create forward declarations which are compatible with our namespaces. - For now, C++-defined type FOO ends up at bssl::FOO with a typedef outside. Later I imagine we'll rename many of them. - Internal functions get namespace bssl, so we stop worrying about stomping the tls1_prf symbol. Exported C functions are stuck as they are. Rather than try anything weird, bite the bullet and reorder files which have a mix of public and private functions. I expect that over time, the public functions will become fairly small as we move logic to more idiomatic C++. Files without any public C functions can just be written normally. - To avoid MSVC troubles, some bssl types are renamed to CPlusPlusStyle in advance of them being made idiomatic C++. Bug: 132 Change-Id: Ic931895e117c38b14ff8d6e5a273e868796c7581 Reviewed-on: https://boringssl-review.googlesource.com/18124 Reviewed-by: David Benjamin <davidben@google.com>
преди 7 години
Move libssl's internals into the bssl namespace. This is horrible, but everything else I tried was worse. The goal with this CL is to take the extern "C" out of ssl/internal.h and move most symbols to namespace bssl, so we can start using C++ helpers and destructors without worry. Complications: - Public API functions must be extern "C" and match their declaration in ssl.h, which is unnamespaced. C++ really does not want you to interleave namespaced and unnamespaced things. One can actually write a namespaced extern "C" function, but this means, from C++'s perspective, the function is namespaced. Trying to namespace the public header would worked but ended up too deep a rabbithole. - Our STACK_OF macros do not work right in namespaces. - The typedefs for our exposed but opaque types are visible in the header files and copied into consuming projects as forward declarations. We ultimately want to give SSL a destructor, but clobbering an unnamespaced ssl_st::~ssl_st seems bad manners. - MSVC complains about ambiguous names if one typedefs SSL to bssl::SSL. This CL opts for: - ssl/*.cc must begin with #define BORINGSSL_INTERNAL_CXX_TYPES. This informs the public headers to create forward declarations which are compatible with our namespaces. - For now, C++-defined type FOO ends up at bssl::FOO with a typedef outside. Later I imagine we'll rename many of them. - Internal functions get namespace bssl, so we stop worrying about stomping the tls1_prf symbol. Exported C functions are stuck as they are. Rather than try anything weird, bite the bullet and reorder files which have a mix of public and private functions. I expect that over time, the public functions will become fairly small as we move logic to more idiomatic C++. Files without any public C functions can just be written normally. - To avoid MSVC troubles, some bssl types are renamed to CPlusPlusStyle in advance of them being made idiomatic C++. Bug: 132 Change-Id: Ic931895e117c38b14ff8d6e5a273e868796c7581 Reviewed-on: https://boringssl-review.googlesource.com/18124 Reviewed-by: David Benjamin <davidben@google.com>
преди 7 години
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  1. /* Copyright (c) 2016, Google Inc.
  2. *
  3. * Permission to use, copy, modify, and/or distribute this software for any
  4. * purpose with or without fee is hereby granted, provided that the above
  5. * copyright notice and this permission notice appear in all copies.
  6. *
  7. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
  8. * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
  9. * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY
  10. * SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  11. * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN ACTION
  12. * OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF OR IN
  13. * CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. */
  14. #include <openssl/ssl.h>
  15. #include <assert.h>
  16. #include <string.h>
  17. #include <utility>
  18. #include <openssl/aead.h>
  19. #include <openssl/bytestring.h>
  20. #include <openssl/digest.h>
  21. #include <openssl/hkdf.h>
  22. #include <openssl/hmac.h>
  23. #include <openssl/mem.h>
  24. #include "../crypto/internal.h"
  25. #include "internal.h"
  26. BSSL_NAMESPACE_BEGIN
  27. static bool init_key_schedule(SSL_HANDSHAKE *hs, uint16_t version,
  28. const SSL_CIPHER *cipher) {
  29. if (!hs->transcript.InitHash(version, cipher)) {
  30. return false;
  31. }
  32. hs->hash_len = hs->transcript.DigestLen();
  33. // Initialize the secret to the zero key.
  34. OPENSSL_memset(hs->secret, 0, hs->hash_len);
  35. return true;
  36. }
  37. bool tls13_init_key_schedule(SSL_HANDSHAKE *hs, const uint8_t *psk,
  38. size_t psk_len) {
  39. if (!init_key_schedule(hs, ssl_protocol_version(hs->ssl), hs->new_cipher)) {
  40. return false;
  41. }
  42. hs->transcript.FreeBuffer();
  43. return HKDF_extract(hs->secret, &hs->hash_len, hs->transcript.Digest(), psk,
  44. psk_len, hs->secret, hs->hash_len);
  45. }
  46. bool tls13_init_early_key_schedule(SSL_HANDSHAKE *hs, const uint8_t *psk,
  47. size_t psk_len) {
  48. SSL *const ssl = hs->ssl;
  49. return init_key_schedule(hs, ssl_session_protocol_version(ssl->session.get()),
  50. ssl->session->cipher) &&
  51. HKDF_extract(hs->secret, &hs->hash_len, hs->transcript.Digest(), psk,
  52. psk_len, hs->secret, hs->hash_len);
  53. }
  54. static bool hkdf_expand_label(uint8_t *out, const EVP_MD *digest,
  55. const uint8_t *secret, size_t secret_len,
  56. const char *label, size_t label_len,
  57. const uint8_t *hash, size_t hash_len,
  58. size_t len) {
  59. static const char kTLS13ProtocolLabel[] = "tls13 ";
  60. ScopedCBB cbb;
  61. CBB child;
  62. Array<uint8_t> hkdf_label;
  63. if (!CBB_init(cbb.get(), 2 + 1 + strlen(kTLS13ProtocolLabel) + label_len + 1 +
  64. hash_len) ||
  65. !CBB_add_u16(cbb.get(), len) ||
  66. !CBB_add_u8_length_prefixed(cbb.get(), &child) ||
  67. !CBB_add_bytes(&child, (const uint8_t *)kTLS13ProtocolLabel,
  68. strlen(kTLS13ProtocolLabel)) ||
  69. !CBB_add_bytes(&child, (const uint8_t *)label, label_len) ||
  70. !CBB_add_u8_length_prefixed(cbb.get(), &child) ||
  71. !CBB_add_bytes(&child, hash, hash_len) ||
  72. !CBBFinishArray(cbb.get(), &hkdf_label)) {
  73. return false;
  74. }
  75. return HKDF_expand(out, len, digest, secret, secret_len, hkdf_label.data(),
  76. hkdf_label.size());
  77. }
  78. static const char kTLS13LabelDerived[] = "derived";
  79. bool tls13_advance_key_schedule(SSL_HANDSHAKE *hs, const uint8_t *in,
  80. size_t len) {
  81. uint8_t derive_context[EVP_MAX_MD_SIZE];
  82. unsigned derive_context_len;
  83. if (!EVP_Digest(nullptr, 0, derive_context, &derive_context_len,
  84. hs->transcript.Digest(), nullptr)) {
  85. return false;
  86. }
  87. if (!hkdf_expand_label(hs->secret, hs->transcript.Digest(), hs->secret,
  88. hs->hash_len, kTLS13LabelDerived,
  89. strlen(kTLS13LabelDerived), derive_context,
  90. derive_context_len, hs->hash_len)) {
  91. return false;
  92. }
  93. return HKDF_extract(hs->secret, &hs->hash_len, hs->transcript.Digest(), in,
  94. len, hs->secret, hs->hash_len);
  95. }
  96. // derive_secret derives a secret of length |len| and writes the result in |out|
  97. // with the given label and the current base secret and most recently-saved
  98. // handshake context. It returns true on success and false on error.
  99. static bool derive_secret(SSL_HANDSHAKE *hs, uint8_t *out, size_t len,
  100. const char *label, size_t label_len) {
  101. uint8_t context_hash[EVP_MAX_MD_SIZE];
  102. size_t context_hash_len;
  103. if (!hs->transcript.GetHash(context_hash, &context_hash_len)) {
  104. return false;
  105. }
  106. return hkdf_expand_label(out, hs->transcript.Digest(), hs->secret,
  107. hs->hash_len, label, label_len, context_hash,
  108. context_hash_len, len);
  109. }
  110. bool tls13_set_traffic_key(SSL *ssl, enum ssl_encryption_level_t level,
  111. enum evp_aead_direction_t direction,
  112. const uint8_t *traffic_secret,
  113. size_t traffic_secret_len) {
  114. const SSL_SESSION *session = SSL_get_session(ssl);
  115. uint16_t version = ssl_session_protocol_version(session);
  116. if (traffic_secret_len > 0xff) {
  117. OPENSSL_PUT_ERROR(SSL, ERR_R_OVERFLOW);
  118. return false;
  119. }
  120. UniquePtr<SSLAEADContext> traffic_aead;
  121. if (ssl->quic_method == nullptr) {
  122. // Look up cipher suite properties.
  123. const EVP_AEAD *aead;
  124. size_t discard;
  125. if (!ssl_cipher_get_evp_aead(&aead, &discard, &discard, session->cipher,
  126. version, SSL_is_dtls(ssl))) {
  127. return false;
  128. }
  129. const EVP_MD *digest = ssl_session_get_digest(session);
  130. // Derive the key.
  131. size_t key_len = EVP_AEAD_key_length(aead);
  132. uint8_t key[EVP_AEAD_MAX_KEY_LENGTH];
  133. if (!hkdf_expand_label(key, digest, traffic_secret, traffic_secret_len,
  134. "key", 3, NULL, 0, key_len)) {
  135. return false;
  136. }
  137. // Derive the IV.
  138. size_t iv_len = EVP_AEAD_nonce_length(aead);
  139. uint8_t iv[EVP_AEAD_MAX_NONCE_LENGTH];
  140. if (!hkdf_expand_label(iv, digest, traffic_secret, traffic_secret_len, "iv",
  141. 2, NULL, 0, iv_len)) {
  142. return false;
  143. }
  144. traffic_aead = SSLAEADContext::Create(
  145. direction, session->ssl_version, SSL_is_dtls(ssl), session->cipher,
  146. MakeConstSpan(key, key_len), Span<const uint8_t>(),
  147. MakeConstSpan(iv, iv_len));
  148. } else {
  149. // Install a placeholder SSLAEADContext so that SSL accessors work. The
  150. // encryption itself will be handled by the SSL_QUIC_METHOD.
  151. traffic_aead =
  152. SSLAEADContext::CreatePlaceholderForQUIC(version, session->cipher);
  153. }
  154. if (!traffic_aead) {
  155. return false;
  156. }
  157. if (direction == evp_aead_open) {
  158. if (!ssl->method->set_read_state(ssl, std::move(traffic_aead))) {
  159. return false;
  160. }
  161. } else {
  162. if (!ssl->method->set_write_state(ssl, std::move(traffic_aead))) {
  163. return false;
  164. }
  165. }
  166. // Save the traffic secret.
  167. if (direction == evp_aead_open) {
  168. OPENSSL_memmove(ssl->s3->read_traffic_secret, traffic_secret,
  169. traffic_secret_len);
  170. ssl->s3->read_traffic_secret_len = traffic_secret_len;
  171. ssl->s3->read_level = level;
  172. } else {
  173. OPENSSL_memmove(ssl->s3->write_traffic_secret, traffic_secret,
  174. traffic_secret_len);
  175. ssl->s3->write_traffic_secret_len = traffic_secret_len;
  176. ssl->s3->write_level = level;
  177. }
  178. return true;
  179. }
  180. static const char kTLS13LabelExporter[] = "exp master";
  181. static const char kTLS13LabelEarlyExporter[] = "e exp master";
  182. static const char kTLS13LabelClientEarlyTraffic[] = "c e traffic";
  183. static const char kTLS13LabelClientHandshakeTraffic[] = "c hs traffic";
  184. static const char kTLS13LabelServerHandshakeTraffic[] = "s hs traffic";
  185. static const char kTLS13LabelClientApplicationTraffic[] = "c ap traffic";
  186. static const char kTLS13LabelServerApplicationTraffic[] = "s ap traffic";
  187. bool tls13_derive_early_secrets(SSL_HANDSHAKE *hs) {
  188. SSL *const ssl = hs->ssl;
  189. if (!derive_secret(hs, hs->early_traffic_secret, hs->hash_len,
  190. kTLS13LabelClientEarlyTraffic,
  191. strlen(kTLS13LabelClientEarlyTraffic)) ||
  192. !ssl_log_secret(ssl, "CLIENT_EARLY_TRAFFIC_SECRET",
  193. hs->early_traffic_secret, hs->hash_len) ||
  194. !derive_secret(hs, ssl->s3->early_exporter_secret, hs->hash_len,
  195. kTLS13LabelEarlyExporter,
  196. strlen(kTLS13LabelEarlyExporter))) {
  197. return false;
  198. }
  199. ssl->s3->early_exporter_secret_len = hs->hash_len;
  200. if (ssl->quic_method != nullptr) {
  201. if (ssl->server) {
  202. if (!ssl->quic_method->set_encryption_secrets(
  203. ssl, ssl_encryption_early_data, nullptr, hs->early_traffic_secret,
  204. hs->hash_len)) {
  205. OPENSSL_PUT_ERROR(SSL, SSL_R_QUIC_INTERNAL_ERROR);
  206. return false;
  207. }
  208. } else {
  209. if (!ssl->quic_method->set_encryption_secrets(
  210. ssl, ssl_encryption_early_data, hs->early_traffic_secret, nullptr,
  211. hs->hash_len)) {
  212. OPENSSL_PUT_ERROR(SSL, SSL_R_QUIC_INTERNAL_ERROR);
  213. return false;
  214. }
  215. }
  216. }
  217. return true;
  218. }
  219. bool tls13_derive_handshake_secrets(SSL_HANDSHAKE *hs) {
  220. SSL *const ssl = hs->ssl;
  221. if (!derive_secret(hs, hs->client_handshake_secret, hs->hash_len,
  222. kTLS13LabelClientHandshakeTraffic,
  223. strlen(kTLS13LabelClientHandshakeTraffic)) ||
  224. !ssl_log_secret(ssl, "CLIENT_HANDSHAKE_TRAFFIC_SECRET",
  225. hs->client_handshake_secret, hs->hash_len) ||
  226. !derive_secret(hs, hs->server_handshake_secret, hs->hash_len,
  227. kTLS13LabelServerHandshakeTraffic,
  228. strlen(kTLS13LabelServerHandshakeTraffic)) ||
  229. !ssl_log_secret(ssl, "SERVER_HANDSHAKE_TRAFFIC_SECRET",
  230. hs->server_handshake_secret, hs->hash_len)) {
  231. return false;
  232. }
  233. if (ssl->quic_method != nullptr) {
  234. if (ssl->server) {
  235. if (!ssl->quic_method->set_encryption_secrets(
  236. ssl, ssl_encryption_handshake, hs->client_handshake_secret,
  237. hs->server_handshake_secret, hs->hash_len)) {
  238. OPENSSL_PUT_ERROR(SSL, SSL_R_QUIC_INTERNAL_ERROR);
  239. return false;
  240. }
  241. } else {
  242. if (!ssl->quic_method->set_encryption_secrets(
  243. ssl, ssl_encryption_handshake, hs->server_handshake_secret,
  244. hs->client_handshake_secret, hs->hash_len)) {
  245. OPENSSL_PUT_ERROR(SSL, SSL_R_QUIC_INTERNAL_ERROR);
  246. return false;
  247. }
  248. }
  249. }
  250. return true;
  251. }
  252. bool tls13_derive_application_secrets(SSL_HANDSHAKE *hs) {
  253. SSL *const ssl = hs->ssl;
  254. ssl->s3->exporter_secret_len = hs->hash_len;
  255. if (!derive_secret(hs, hs->client_traffic_secret_0, hs->hash_len,
  256. kTLS13LabelClientApplicationTraffic,
  257. strlen(kTLS13LabelClientApplicationTraffic)) ||
  258. !ssl_log_secret(ssl, "CLIENT_TRAFFIC_SECRET_0",
  259. hs->client_traffic_secret_0, hs->hash_len) ||
  260. !derive_secret(hs, hs->server_traffic_secret_0, hs->hash_len,
  261. kTLS13LabelServerApplicationTraffic,
  262. strlen(kTLS13LabelServerApplicationTraffic)) ||
  263. !ssl_log_secret(ssl, "SERVER_TRAFFIC_SECRET_0",
  264. hs->server_traffic_secret_0, hs->hash_len) ||
  265. !derive_secret(hs, ssl->s3->exporter_secret, hs->hash_len,
  266. kTLS13LabelExporter, strlen(kTLS13LabelExporter)) ||
  267. !ssl_log_secret(ssl, "EXPORTER_SECRET", ssl->s3->exporter_secret,
  268. hs->hash_len)) {
  269. return false;
  270. }
  271. if (ssl->quic_method != nullptr) {
  272. if (ssl->server) {
  273. if (!ssl->quic_method->set_encryption_secrets(
  274. ssl, ssl_encryption_application, hs->client_traffic_secret_0,
  275. hs->server_traffic_secret_0, hs->hash_len)) {
  276. OPENSSL_PUT_ERROR(SSL, SSL_R_QUIC_INTERNAL_ERROR);
  277. return false;
  278. }
  279. } else {
  280. if (!ssl->quic_method->set_encryption_secrets(
  281. ssl, ssl_encryption_application, hs->server_traffic_secret_0,
  282. hs->client_traffic_secret_0, hs->hash_len)) {
  283. OPENSSL_PUT_ERROR(SSL, SSL_R_QUIC_INTERNAL_ERROR);
  284. return false;
  285. }
  286. }
  287. }
  288. return true;
  289. }
  290. static const char kTLS13LabelApplicationTraffic[] = "traffic upd";
  291. bool tls13_rotate_traffic_key(SSL *ssl, enum evp_aead_direction_t direction) {
  292. uint8_t *secret;
  293. size_t secret_len;
  294. if (direction == evp_aead_open) {
  295. secret = ssl->s3->read_traffic_secret;
  296. secret_len = ssl->s3->read_traffic_secret_len;
  297. } else {
  298. secret = ssl->s3->write_traffic_secret;
  299. secret_len = ssl->s3->write_traffic_secret_len;
  300. }
  301. const EVP_MD *digest = ssl_session_get_digest(SSL_get_session(ssl));
  302. if (!hkdf_expand_label(secret, digest, secret, secret_len,
  303. kTLS13LabelApplicationTraffic,
  304. strlen(kTLS13LabelApplicationTraffic), NULL, 0,
  305. secret_len)) {
  306. return false;
  307. }
  308. return tls13_set_traffic_key(ssl, ssl_encryption_application, direction,
  309. secret, secret_len);
  310. }
  311. static const char kTLS13LabelResumption[] = "res master";
  312. bool tls13_derive_resumption_secret(SSL_HANDSHAKE *hs) {
  313. if (hs->hash_len > SSL_MAX_MASTER_KEY_LENGTH) {
  314. OPENSSL_PUT_ERROR(SSL, ERR_R_INTERNAL_ERROR);
  315. return false;
  316. }
  317. hs->new_session->master_key_length = hs->hash_len;
  318. return derive_secret(hs, hs->new_session->master_key,
  319. hs->new_session->master_key_length,
  320. kTLS13LabelResumption, strlen(kTLS13LabelResumption));
  321. }
  322. static const char kTLS13LabelFinished[] = "finished";
  323. // tls13_verify_data sets |out| to be the HMAC of |context| using a derived
  324. // Finished key for both Finished messages and the PSK binder.
  325. static bool tls13_verify_data(const EVP_MD *digest, uint16_t version,
  326. uint8_t *out, size_t *out_len,
  327. const uint8_t *secret, size_t hash_len,
  328. uint8_t *context, size_t context_len) {
  329. uint8_t key[EVP_MAX_MD_SIZE];
  330. unsigned len;
  331. if (!hkdf_expand_label(key, digest, secret, hash_len, kTLS13LabelFinished,
  332. strlen(kTLS13LabelFinished), NULL, 0, hash_len) ||
  333. HMAC(digest, key, hash_len, context, context_len, out, &len) == NULL) {
  334. return false;
  335. }
  336. *out_len = len;
  337. return true;
  338. }
  339. bool tls13_finished_mac(SSL_HANDSHAKE *hs, uint8_t *out, size_t *out_len,
  340. bool is_server) {
  341. const uint8_t *traffic_secret;
  342. if (is_server) {
  343. traffic_secret = hs->server_handshake_secret;
  344. } else {
  345. traffic_secret = hs->client_handshake_secret;
  346. }
  347. uint8_t context_hash[EVP_MAX_MD_SIZE];
  348. size_t context_hash_len;
  349. if (!hs->transcript.GetHash(context_hash, &context_hash_len) ||
  350. !tls13_verify_data(hs->transcript.Digest(), hs->ssl->version, out,
  351. out_len, traffic_secret, hs->hash_len, context_hash,
  352. context_hash_len)) {
  353. return 0;
  354. }
  355. return 1;
  356. }
  357. static const char kTLS13LabelResumptionPSK[] = "resumption";
  358. bool tls13_derive_session_psk(SSL_SESSION *session, Span<const uint8_t> nonce) {
  359. const EVP_MD *digest = ssl_session_get_digest(session);
  360. return hkdf_expand_label(session->master_key, digest, session->master_key,
  361. session->master_key_length, kTLS13LabelResumptionPSK,
  362. strlen(kTLS13LabelResumptionPSK), nonce.data(),
  363. nonce.size(), session->master_key_length);
  364. }
  365. static const char kTLS13LabelExportKeying[] = "exporter";
  366. bool tls13_export_keying_material(SSL *ssl, Span<uint8_t> out,
  367. Span<const uint8_t> secret,
  368. Span<const char> label,
  369. Span<const uint8_t> context) {
  370. if (secret.empty()) {
  371. assert(0);
  372. OPENSSL_PUT_ERROR(SSL, ERR_R_INTERNAL_ERROR);
  373. return false;
  374. }
  375. const EVP_MD *digest = ssl_session_get_digest(SSL_get_session(ssl));
  376. uint8_t hash[EVP_MAX_MD_SIZE];
  377. uint8_t export_context[EVP_MAX_MD_SIZE];
  378. uint8_t derived_secret[EVP_MAX_MD_SIZE];
  379. unsigned hash_len;
  380. unsigned export_context_len;
  381. unsigned derived_secret_len = EVP_MD_size(digest);
  382. return EVP_Digest(context.data(), context.size(), hash, &hash_len, digest,
  383. nullptr) &&
  384. EVP_Digest(nullptr, 0, export_context, &export_context_len, digest,
  385. nullptr) &&
  386. hkdf_expand_label(derived_secret, digest, secret.data(), secret.size(),
  387. label.data(), label.size(), export_context,
  388. export_context_len, derived_secret_len) &&
  389. hkdf_expand_label(out.data(), digest, derived_secret,
  390. derived_secret_len, kTLS13LabelExportKeying,
  391. strlen(kTLS13LabelExportKeying), hash, hash_len,
  392. out.size());
  393. }
  394. static const char kTLS13LabelPSKBinder[] = "res binder";
  395. static bool tls13_psk_binder(uint8_t *out, uint16_t version,
  396. const EVP_MD *digest, uint8_t *psk, size_t psk_len,
  397. uint8_t *context, size_t context_len,
  398. size_t hash_len) {
  399. uint8_t binder_context[EVP_MAX_MD_SIZE];
  400. unsigned binder_context_len;
  401. if (!EVP_Digest(NULL, 0, binder_context, &binder_context_len, digest, NULL)) {
  402. return false;
  403. }
  404. uint8_t early_secret[EVP_MAX_MD_SIZE] = {0};
  405. size_t early_secret_len;
  406. if (!HKDF_extract(early_secret, &early_secret_len, digest, psk, hash_len,
  407. NULL, 0)) {
  408. return false;
  409. }
  410. uint8_t binder_key[EVP_MAX_MD_SIZE] = {0};
  411. size_t len;
  412. if (!hkdf_expand_label(binder_key, digest, early_secret, hash_len,
  413. kTLS13LabelPSKBinder, strlen(kTLS13LabelPSKBinder),
  414. binder_context, binder_context_len, hash_len) ||
  415. !tls13_verify_data(digest, version, out, &len, binder_key, hash_len,
  416. context, context_len)) {
  417. return false;
  418. }
  419. return true;
  420. }
  421. bool tls13_write_psk_binder(SSL_HANDSHAKE *hs, uint8_t *msg, size_t len) {
  422. SSL *const ssl = hs->ssl;
  423. const EVP_MD *digest = ssl_session_get_digest(ssl->session.get());
  424. size_t hash_len = EVP_MD_size(digest);
  425. if (len < hash_len + 3) {
  426. OPENSSL_PUT_ERROR(SSL, ERR_R_INTERNAL_ERROR);
  427. return false;
  428. }
  429. ScopedEVP_MD_CTX ctx;
  430. uint8_t context[EVP_MAX_MD_SIZE];
  431. unsigned context_len;
  432. if (!EVP_DigestInit_ex(ctx.get(), digest, NULL) ||
  433. !EVP_DigestUpdate(ctx.get(), hs->transcript.buffer().data(),
  434. hs->transcript.buffer().size()) ||
  435. !EVP_DigestUpdate(ctx.get(), msg, len - hash_len - 3) ||
  436. !EVP_DigestFinal_ex(ctx.get(), context, &context_len)) {
  437. return false;
  438. }
  439. uint8_t verify_data[EVP_MAX_MD_SIZE] = {0};
  440. if (!tls13_psk_binder(verify_data, ssl->session->ssl_version, digest,
  441. ssl->session->master_key,
  442. ssl->session->master_key_length, context, context_len,
  443. hash_len)) {
  444. return false;
  445. }
  446. OPENSSL_memcpy(msg + len - hash_len, verify_data, hash_len);
  447. return true;
  448. }
  449. bool tls13_verify_psk_binder(SSL_HANDSHAKE *hs, SSL_SESSION *session,
  450. const SSLMessage &msg, CBS *binders) {
  451. size_t hash_len = hs->transcript.DigestLen();
  452. // The message must be large enough to exclude the binders.
  453. if (CBS_len(&msg.raw) < CBS_len(binders) + 2) {
  454. OPENSSL_PUT_ERROR(SSL, ERR_R_INTERNAL_ERROR);
  455. return false;
  456. }
  457. // Hash a ClientHello prefix up to the binders. This includes the header. For
  458. // now, this assumes we only ever verify PSK binders on initial
  459. // ClientHellos.
  460. uint8_t context[EVP_MAX_MD_SIZE];
  461. unsigned context_len;
  462. if (!EVP_Digest(CBS_data(&msg.raw), CBS_len(&msg.raw) - CBS_len(binders) - 2,
  463. context, &context_len, hs->transcript.Digest(), NULL)) {
  464. return false;
  465. }
  466. uint8_t verify_data[EVP_MAX_MD_SIZE] = {0};
  467. CBS binder;
  468. if (!tls13_psk_binder(verify_data, hs->ssl->version, hs->transcript.Digest(),
  469. session->master_key, session->master_key_length,
  470. context, context_len, hash_len) ||
  471. // We only consider the first PSK, so compare against the first binder.
  472. !CBS_get_u8_length_prefixed(binders, &binder)) {
  473. OPENSSL_PUT_ERROR(SSL, ERR_R_INTERNAL_ERROR);
  474. return false;
  475. }
  476. bool binder_ok = CBS_len(&binder) == hash_len &&
  477. CRYPTO_memcmp(CBS_data(&binder), verify_data, hash_len) == 0;
  478. #if defined(BORINGSSL_UNSAFE_FUZZER_MODE)
  479. binder_ok = true;
  480. #endif
  481. if (!binder_ok) {
  482. OPENSSL_PUT_ERROR(SSL, SSL_R_DIGEST_CHECK_FAILED);
  483. return false;
  484. }
  485. return true;
  486. }
  487. BSSL_NAMESPACE_END