bearssl.c 25 KB

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  1. /***************************************************************************
  2. * _ _ ____ _
  3. * Project ___| | | | _ \| |
  4. * / __| | | | |_) | |
  5. * | (__| |_| | _ <| |___
  6. * \___|\___/|_| \_\_____|
  7. *
  8. * Copyright (C) 2019, Michael Forney, <[email protected]>
  9. *
  10. * This software is licensed as described in the file COPYING, which
  11. * you should have received as part of this distribution. The terms
  12. * are also available at https://curl.haxx.se/docs/copyright.html.
  13. *
  14. * You may opt to use, copy, modify, merge, publish, distribute and/or sell
  15. * copies of the Software, and permit persons to whom the Software is
  16. * furnished to do so, under the terms of the COPYING file.
  17. *
  18. * This software is distributed on an "AS IS" basis, WITHOUT WARRANTY OF ANY
  19. * KIND, either express or implied.
  20. *
  21. ***************************************************************************/
  22. #include "curl_setup.h"
  23. #ifdef USE_BEARSSL
  24. #include <bearssl.h>
  25. #include "bearssl.h"
  26. #include "urldata.h"
  27. #include "sendf.h"
  28. #include "inet_pton.h"
  29. #include "vtls.h"
  30. #include "connect.h"
  31. #include "select.h"
  32. #include "multiif.h"
  33. #include "curl_printf.h"
  34. #include "curl_memory.h"
  35. struct x509_context {
  36. const br_x509_class *vtable;
  37. br_x509_minimal_context minimal;
  38. bool verifyhost;
  39. bool verifypeer;
  40. };
  41. struct ssl_backend_data {
  42. br_ssl_client_context ctx;
  43. struct x509_context x509;
  44. unsigned char buf[BR_SSL_BUFSIZE_BIDI];
  45. br_x509_trust_anchor *anchors;
  46. size_t anchors_len;
  47. const char *protocols[2];
  48. /* SSL client context is active */
  49. bool active;
  50. /* size of pending write, yet to be flushed */
  51. size_t pending_write;
  52. };
  53. #define BACKEND connssl->backend
  54. struct cafile_parser {
  55. CURLcode err;
  56. bool in_cert;
  57. br_x509_decoder_context xc;
  58. /* array of trust anchors loaded from CAfile */
  59. br_x509_trust_anchor *anchors;
  60. size_t anchors_len;
  61. /* buffer for DN data */
  62. unsigned char dn[1024];
  63. size_t dn_len;
  64. };
  65. static void append_dn(void *ctx, const void *buf, size_t len)
  66. {
  67. struct cafile_parser *ca = ctx;
  68. if(ca->err != CURLE_OK || !ca->in_cert)
  69. return;
  70. if(sizeof(ca->dn) - ca->dn_len < len) {
  71. ca->err = CURLE_FAILED_INIT;
  72. return;
  73. }
  74. memcpy(ca->dn + ca->dn_len, buf, len);
  75. ca->dn_len += len;
  76. }
  77. static void x509_push(void *ctx, const void *buf, size_t len)
  78. {
  79. struct cafile_parser *ca = ctx;
  80. if(ca->in_cert)
  81. br_x509_decoder_push(&ca->xc, buf, len);
  82. }
  83. static CURLcode load_cafile(const char *path, br_x509_trust_anchor **anchors,
  84. size_t *anchors_len)
  85. {
  86. struct cafile_parser ca;
  87. br_pem_decoder_context pc;
  88. br_x509_trust_anchor *ta;
  89. size_t ta_size;
  90. br_x509_trust_anchor *new_anchors;
  91. size_t new_anchors_len;
  92. br_x509_pkey *pkey;
  93. FILE *fp;
  94. unsigned char buf[BUFSIZ], *p;
  95. const char *name;
  96. size_t n, i, pushed;
  97. fp = fopen(path, "rb");
  98. if(!fp)
  99. return CURLE_SSL_CACERT_BADFILE;
  100. ca.err = CURLE_OK;
  101. ca.in_cert = FALSE;
  102. ca.anchors = NULL;
  103. ca.anchors_len = 0;
  104. br_pem_decoder_init(&pc);
  105. br_pem_decoder_setdest(&pc, x509_push, &ca);
  106. for(;;) {
  107. n = fread(buf, 1, sizeof(buf), fp);
  108. if(n == 0)
  109. break;
  110. p = buf;
  111. while(n) {
  112. pushed = br_pem_decoder_push(&pc, p, n);
  113. if(ca.err)
  114. goto fail;
  115. p += pushed;
  116. n -= pushed;
  117. switch(br_pem_decoder_event(&pc)) {
  118. case 0:
  119. break;
  120. case BR_PEM_BEGIN_OBJ:
  121. name = br_pem_decoder_name(&pc);
  122. if(strcmp(name, "CERTIFICATE") && strcmp(name, "X509 CERTIFICATE"))
  123. break;
  124. br_x509_decoder_init(&ca.xc, append_dn, &ca);
  125. if(ca.anchors_len == SIZE_MAX / sizeof(ca.anchors[0])) {
  126. ca.err = CURLE_OUT_OF_MEMORY;
  127. goto fail;
  128. }
  129. new_anchors_len = ca.anchors_len + 1;
  130. new_anchors = realloc(ca.anchors,
  131. new_anchors_len * sizeof(ca.anchors[0]));
  132. if(!new_anchors) {
  133. ca.err = CURLE_OUT_OF_MEMORY;
  134. goto fail;
  135. }
  136. ca.anchors = new_anchors;
  137. ca.anchors_len = new_anchors_len;
  138. ca.in_cert = TRUE;
  139. ca.dn_len = 0;
  140. ta = &ca.anchors[ca.anchors_len - 1];
  141. ta->dn.data = NULL;
  142. break;
  143. case BR_PEM_END_OBJ:
  144. if(!ca.in_cert)
  145. break;
  146. ca.in_cert = FALSE;
  147. if(br_x509_decoder_last_error(&ca.xc)) {
  148. ca.err = CURLE_SSL_CACERT_BADFILE;
  149. goto fail;
  150. }
  151. ta->flags = 0;
  152. if(br_x509_decoder_isCA(&ca.xc))
  153. ta->flags |= BR_X509_TA_CA;
  154. pkey = br_x509_decoder_get_pkey(&ca.xc);
  155. if(!pkey) {
  156. ca.err = CURLE_SSL_CACERT_BADFILE;
  157. goto fail;
  158. }
  159. ta->pkey = *pkey;
  160. /* calculate space needed for trust anchor data */
  161. ta_size = ca.dn_len;
  162. switch(pkey->key_type) {
  163. case BR_KEYTYPE_RSA:
  164. ta_size += pkey->key.rsa.nlen + pkey->key.rsa.elen;
  165. break;
  166. case BR_KEYTYPE_EC:
  167. ta_size += pkey->key.ec.qlen;
  168. break;
  169. default:
  170. ca.err = CURLE_FAILED_INIT;
  171. goto fail;
  172. }
  173. /* fill in trust anchor DN and public key data */
  174. ta->dn.data = malloc(ta_size);
  175. if(!ta->dn.data) {
  176. ca.err = CURLE_OUT_OF_MEMORY;
  177. goto fail;
  178. }
  179. memcpy(ta->dn.data, ca.dn, ca.dn_len);
  180. ta->dn.len = ca.dn_len;
  181. switch(pkey->key_type) {
  182. case BR_KEYTYPE_RSA:
  183. ta->pkey.key.rsa.n = ta->dn.data + ta->dn.len;
  184. memcpy(ta->pkey.key.rsa.n, pkey->key.rsa.n, pkey->key.rsa.nlen);
  185. ta->pkey.key.rsa.e = ta->pkey.key.rsa.n + ta->pkey.key.rsa.nlen;
  186. memcpy(ta->pkey.key.rsa.e, pkey->key.rsa.e, pkey->key.rsa.elen);
  187. break;
  188. case BR_KEYTYPE_EC:
  189. ta->pkey.key.ec.q = ta->dn.data + ta->dn.len;
  190. memcpy(ta->pkey.key.ec.q, pkey->key.ec.q, pkey->key.ec.qlen);
  191. break;
  192. }
  193. break;
  194. default:
  195. ca.err = CURLE_SSL_CACERT_BADFILE;
  196. goto fail;
  197. }
  198. }
  199. }
  200. if(ferror(fp))
  201. ca.err = CURLE_READ_ERROR;
  202. fail:
  203. fclose(fp);
  204. if(ca.err == CURLE_OK) {
  205. *anchors = ca.anchors;
  206. *anchors_len = ca.anchors_len;
  207. }
  208. else {
  209. for(i = 0; i < ca.anchors_len; ++i)
  210. free(ca.anchors[i].dn.data);
  211. free(ca.anchors);
  212. }
  213. return ca.err;
  214. }
  215. static void x509_start_chain(const br_x509_class **ctx,
  216. const char *server_name)
  217. {
  218. struct x509_context *x509 = (struct x509_context *)ctx;
  219. if(!x509->verifyhost)
  220. server_name = NULL;
  221. x509->minimal.vtable->start_chain(&x509->minimal.vtable, server_name);
  222. }
  223. static void x509_start_cert(const br_x509_class **ctx, uint32_t length)
  224. {
  225. struct x509_context *x509 = (struct x509_context *)ctx;
  226. x509->minimal.vtable->start_cert(&x509->minimal.vtable, length);
  227. }
  228. static void x509_append(const br_x509_class **ctx, const unsigned char *buf,
  229. size_t len)
  230. {
  231. struct x509_context *x509 = (struct x509_context *)ctx;
  232. x509->minimal.vtable->append(&x509->minimal.vtable, buf, len);
  233. }
  234. static void x509_end_cert(const br_x509_class **ctx)
  235. {
  236. struct x509_context *x509 = (struct x509_context *)ctx;
  237. x509->minimal.vtable->end_cert(&x509->minimal.vtable);
  238. }
  239. static unsigned x509_end_chain(const br_x509_class **ctx)
  240. {
  241. struct x509_context *x509 = (struct x509_context *)ctx;
  242. unsigned err;
  243. err = x509->minimal.vtable->end_chain(&x509->minimal.vtable);
  244. if(err && !x509->verifypeer) {
  245. /* ignore any X.509 errors */
  246. err = BR_ERR_OK;
  247. }
  248. return err;
  249. }
  250. static const br_x509_pkey *x509_get_pkey(const br_x509_class *const *ctx,
  251. unsigned *usages)
  252. {
  253. struct x509_context *x509 = (struct x509_context *)ctx;
  254. return x509->minimal.vtable->get_pkey(&x509->minimal.vtable, usages);
  255. }
  256. static const br_x509_class x509_vtable = {
  257. sizeof(struct x509_context),
  258. x509_start_chain,
  259. x509_start_cert,
  260. x509_append,
  261. x509_end_cert,
  262. x509_end_chain,
  263. x509_get_pkey
  264. };
  265. static CURLcode bearssl_connect_step1(struct connectdata *conn, int sockindex)
  266. {
  267. struct Curl_easy *data = conn->data;
  268. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  269. const char * const ssl_cafile = SSL_CONN_CONFIG(CAfile);
  270. const char *hostname = SSL_IS_PROXY() ? conn->http_proxy.host.name :
  271. conn->host.name;
  272. const bool verifypeer = SSL_CONN_CONFIG(verifypeer);
  273. const bool verifyhost = SSL_CONN_CONFIG(verifyhost);
  274. CURLcode ret;
  275. unsigned version_min, version_max;
  276. #ifdef ENABLE_IPV6
  277. struct in6_addr addr;
  278. #else
  279. struct in_addr addr;
  280. #endif
  281. switch(SSL_CONN_CONFIG(version)) {
  282. case CURL_SSLVERSION_SSLv2:
  283. failf(data, "BearSSL does not support SSLv2");
  284. return CURLE_SSL_CONNECT_ERROR;
  285. case CURL_SSLVERSION_SSLv3:
  286. failf(data, "BearSSL does not support SSLv3");
  287. return CURLE_SSL_CONNECT_ERROR;
  288. case CURL_SSLVERSION_TLSv1_0:
  289. version_min = BR_TLS10;
  290. version_max = BR_TLS10;
  291. break;
  292. case CURL_SSLVERSION_TLSv1_1:
  293. version_min = BR_TLS11;
  294. version_max = BR_TLS11;
  295. break;
  296. case CURL_SSLVERSION_TLSv1_2:
  297. version_min = BR_TLS12;
  298. version_max = BR_TLS12;
  299. break;
  300. case CURL_SSLVERSION_DEFAULT:
  301. case CURL_SSLVERSION_TLSv1:
  302. version_min = BR_TLS10;
  303. version_max = BR_TLS12;
  304. break;
  305. default:
  306. failf(data, "BearSSL: unknown CURLOPT_SSLVERSION");
  307. return CURLE_SSL_CONNECT_ERROR;
  308. }
  309. if(ssl_cafile) {
  310. ret = load_cafile(ssl_cafile, &BACKEND->anchors, &BACKEND->anchors_len);
  311. if(ret != CURLE_OK) {
  312. if(verifypeer) {
  313. failf(data, "error setting certificate verify locations:\n"
  314. " CAfile: %s\n", ssl_cafile);
  315. return ret;
  316. }
  317. infof(data, "error setting certificate verify locations,"
  318. " continuing anyway:\n");
  319. }
  320. }
  321. /* initialize SSL context */
  322. br_ssl_client_init_full(&BACKEND->ctx, &BACKEND->x509.minimal,
  323. BACKEND->anchors, BACKEND->anchors_len);
  324. br_ssl_engine_set_versions(&BACKEND->ctx.eng, version_min, version_max);
  325. br_ssl_engine_set_buffer(&BACKEND->ctx.eng, BACKEND->buf,
  326. sizeof(BACKEND->buf), 1);
  327. /* initialize X.509 context */
  328. BACKEND->x509.vtable = &x509_vtable;
  329. BACKEND->x509.verifypeer = verifypeer;
  330. BACKEND->x509.verifyhost = verifyhost;
  331. br_ssl_engine_set_x509(&BACKEND->ctx.eng, &BACKEND->x509.vtable);
  332. if(SSL_SET_OPTION(primary.sessionid)) {
  333. void *session;
  334. Curl_ssl_sessionid_lock(conn);
  335. if(!Curl_ssl_getsessionid(conn, &session, NULL, sockindex)) {
  336. br_ssl_engine_set_session_parameters(&BACKEND->ctx.eng, session);
  337. infof(data, "BearSSL: re-using session ID\n");
  338. }
  339. Curl_ssl_sessionid_unlock(conn);
  340. }
  341. if(conn->bits.tls_enable_alpn) {
  342. int cur = 0;
  343. /* NOTE: when adding more protocols here, increase the size of the
  344. * protocols array in `struct ssl_backend_data`.
  345. */
  346. #ifdef USE_NGHTTP2
  347. if(data->set.httpversion >= CURL_HTTP_VERSION_2 &&
  348. (!SSL_IS_PROXY() || !conn->bits.tunnel_proxy)) {
  349. BACKEND->protocols[cur++] = NGHTTP2_PROTO_VERSION_ID;
  350. infof(data, "ALPN, offering %s\n", NGHTTP2_PROTO_VERSION_ID);
  351. }
  352. #endif
  353. BACKEND->protocols[cur++] = ALPN_HTTP_1_1;
  354. infof(data, "ALPN, offering %s\n", ALPN_HTTP_1_1);
  355. br_ssl_engine_set_protocol_names(&BACKEND->ctx.eng,
  356. BACKEND->protocols, cur);
  357. }
  358. if((1 == Curl_inet_pton(AF_INET, hostname, &addr))
  359. #ifdef ENABLE_IPV6
  360. || (1 == Curl_inet_pton(AF_INET6, hostname, &addr))
  361. #endif
  362. ) {
  363. if(verifyhost) {
  364. failf(data, "BearSSL: "
  365. "host verification of IP address is not supported");
  366. return CURLE_PEER_FAILED_VERIFICATION;
  367. }
  368. hostname = NULL;
  369. }
  370. if(!br_ssl_client_reset(&BACKEND->ctx, hostname, 0))
  371. return CURLE_FAILED_INIT;
  372. BACKEND->active = TRUE;
  373. connssl->connecting_state = ssl_connect_2;
  374. return CURLE_OK;
  375. }
  376. static CURLcode bearssl_run_until(struct connectdata *conn, int sockindex,
  377. unsigned target)
  378. {
  379. struct Curl_easy *data = conn->data;
  380. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  381. curl_socket_t sockfd = conn->sock[sockindex];
  382. unsigned state;
  383. unsigned char *buf;
  384. size_t len;
  385. ssize_t ret;
  386. int err;
  387. for(;;) {
  388. state = br_ssl_engine_current_state(&BACKEND->ctx.eng);
  389. if(state & BR_SSL_CLOSED) {
  390. err = br_ssl_engine_last_error(&BACKEND->ctx.eng);
  391. switch(err) {
  392. case BR_ERR_OK:
  393. /* TLS close notify */
  394. if(connssl->state != ssl_connection_complete) {
  395. failf(data, "SSL: connection closed during handshake");
  396. return CURLE_SSL_CONNECT_ERROR;
  397. }
  398. return CURLE_OK;
  399. case BR_ERR_X509_EXPIRED:
  400. failf(data, "SSL: X.509 verification: "
  401. "certificate is expired or not yet valid");
  402. return CURLE_PEER_FAILED_VERIFICATION;
  403. case BR_ERR_X509_BAD_SERVER_NAME:
  404. failf(data, "SSL: X.509 verification: "
  405. "expected server name was not found in the chain");
  406. return CURLE_PEER_FAILED_VERIFICATION;
  407. case BR_ERR_X509_NOT_TRUSTED:
  408. failf(data, "SSL: X.509 verification: "
  409. "chain could not be linked to a trust anchor");
  410. return CURLE_PEER_FAILED_VERIFICATION;
  411. }
  412. /* X.509 errors are documented to have the range 32..63 */
  413. if(err >= 32 && err < 64)
  414. return CURLE_PEER_FAILED_VERIFICATION;
  415. return CURLE_SSL_CONNECT_ERROR;
  416. }
  417. if(state & target)
  418. return CURLE_OK;
  419. if(state & BR_SSL_SENDREC) {
  420. buf = br_ssl_engine_sendrec_buf(&BACKEND->ctx.eng, &len);
  421. ret = swrite(sockfd, buf, len);
  422. if(ret == -1) {
  423. if(SOCKERRNO == EAGAIN || SOCKERRNO == EWOULDBLOCK) {
  424. if(connssl->state != ssl_connection_complete)
  425. connssl->connecting_state = ssl_connect_2_writing;
  426. return CURLE_AGAIN;
  427. }
  428. return CURLE_WRITE_ERROR;
  429. }
  430. br_ssl_engine_sendrec_ack(&BACKEND->ctx.eng, ret);
  431. }
  432. else if(state & BR_SSL_RECVREC) {
  433. buf = br_ssl_engine_recvrec_buf(&BACKEND->ctx.eng, &len);
  434. ret = sread(sockfd, buf, len);
  435. if(ret == 0) {
  436. failf(data, "SSL: EOF without close notify");
  437. return CURLE_READ_ERROR;
  438. }
  439. if(ret == -1) {
  440. if(SOCKERRNO == EAGAIN || SOCKERRNO == EWOULDBLOCK) {
  441. if(connssl->state != ssl_connection_complete)
  442. connssl->connecting_state = ssl_connect_2_reading;
  443. return CURLE_AGAIN;
  444. }
  445. return CURLE_READ_ERROR;
  446. }
  447. br_ssl_engine_recvrec_ack(&BACKEND->ctx.eng, ret);
  448. }
  449. }
  450. }
  451. static CURLcode bearssl_connect_step2(struct connectdata *conn, int sockindex)
  452. {
  453. struct Curl_easy *data = conn->data;
  454. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  455. CURLcode ret;
  456. ret = bearssl_run_until(conn, sockindex, BR_SSL_SENDAPP | BR_SSL_RECVAPP);
  457. if(ret == CURLE_AGAIN)
  458. return CURLE_OK;
  459. if(ret == CURLE_OK) {
  460. if(br_ssl_engine_current_state(&BACKEND->ctx.eng) == BR_SSL_CLOSED) {
  461. failf(data, "SSL: connection closed during handshake");
  462. return CURLE_SSL_CONNECT_ERROR;
  463. }
  464. connssl->connecting_state = ssl_connect_3;
  465. }
  466. return ret;
  467. }
  468. static CURLcode bearssl_connect_step3(struct connectdata *conn, int sockindex)
  469. {
  470. struct Curl_easy *data = conn->data;
  471. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  472. CURLcode ret;
  473. DEBUGASSERT(ssl_connect_3 == connssl->connecting_state);
  474. if(conn->bits.tls_enable_alpn) {
  475. const char *protocol;
  476. protocol = br_ssl_engine_get_selected_protocol(&BACKEND->ctx.eng);
  477. if(protocol) {
  478. infof(data, "ALPN, server accepted to use %s\n", protocol);
  479. #ifdef USE_NGHTTP2
  480. if(!strcmp(protocol, NGHTTP2_PROTO_VERSION_ID))
  481. conn->negnpn = CURL_HTTP_VERSION_2;
  482. else
  483. #endif
  484. if(!strcmp(protocol, ALPN_HTTP_1_1))
  485. conn->negnpn = CURL_HTTP_VERSION_1_1;
  486. else
  487. infof(data, "ALPN, unrecognized protocol %s\n", protocol);
  488. Curl_multiuse_state(conn, conn->negnpn == CURL_HTTP_VERSION_2 ?
  489. BUNDLE_MULTIPLEX : BUNDLE_NO_MULTIUSE);
  490. }
  491. else
  492. infof(data, "ALPN, server did not agree to a protocol\n");
  493. }
  494. if(SSL_SET_OPTION(primary.sessionid)) {
  495. bool incache;
  496. void *oldsession;
  497. br_ssl_session_parameters *session;
  498. session = malloc(sizeof(*session));
  499. if(!session)
  500. return CURLE_OUT_OF_MEMORY;
  501. br_ssl_engine_get_session_parameters(&BACKEND->ctx.eng, session);
  502. Curl_ssl_sessionid_lock(conn);
  503. incache = !(Curl_ssl_getsessionid(conn, &oldsession, NULL, sockindex));
  504. if(incache)
  505. Curl_ssl_delsessionid(conn, oldsession);
  506. ret = Curl_ssl_addsessionid(conn, session, 0, sockindex);
  507. Curl_ssl_sessionid_unlock(conn);
  508. if(ret) {
  509. free(session);
  510. return CURLE_OUT_OF_MEMORY;
  511. }
  512. }
  513. connssl->connecting_state = ssl_connect_done;
  514. return CURLE_OK;
  515. }
  516. static ssize_t bearssl_send(struct connectdata *conn, int sockindex,
  517. const void *buf, size_t len, CURLcode *err)
  518. {
  519. struct Curl_easy *data = conn->data;
  520. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  521. unsigned char *app;
  522. size_t applen;
  523. for(;;) {
  524. *err = bearssl_run_until(conn, sockindex, BR_SSL_SENDAPP);
  525. if (*err != CURLE_OK)
  526. return -1;
  527. app = br_ssl_engine_sendapp_buf(&BACKEND->ctx.eng, &applen);
  528. if(!app) {
  529. failf(data, "SSL: connection closed during write");
  530. *err = CURLE_SEND_ERROR;
  531. return -1;
  532. }
  533. if(BACKEND->pending_write) {
  534. applen = BACKEND->pending_write;
  535. BACKEND->pending_write = 0;
  536. return applen;
  537. }
  538. if(applen > len)
  539. applen = len;
  540. memcpy(app, buf, applen);
  541. br_ssl_engine_sendapp_ack(&BACKEND->ctx.eng, applen);
  542. br_ssl_engine_flush(&BACKEND->ctx.eng, 0);
  543. BACKEND->pending_write = applen;
  544. }
  545. }
  546. static ssize_t bearssl_recv(struct connectdata *conn, int sockindex,
  547. char *buf, size_t len, CURLcode *err)
  548. {
  549. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  550. unsigned char *app;
  551. size_t applen;
  552. *err = bearssl_run_until(conn, sockindex, BR_SSL_RECVAPP);
  553. if(*err != CURLE_OK)
  554. return -1;
  555. app = br_ssl_engine_recvapp_buf(&BACKEND->ctx.eng, &applen);
  556. if(!app)
  557. return 0;
  558. if(applen > len)
  559. applen = len;
  560. memcpy(buf, app, applen);
  561. br_ssl_engine_recvapp_ack(&BACKEND->ctx.eng, applen);
  562. return applen;
  563. }
  564. static CURLcode bearssl_connect_common(struct connectdata *conn,
  565. int sockindex,
  566. bool nonblocking,
  567. bool *done)
  568. {
  569. CURLcode ret;
  570. struct Curl_easy *data = conn->data;
  571. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  572. curl_socket_t sockfd = conn->sock[sockindex];
  573. time_t timeout_ms;
  574. int what;
  575. /* check if the connection has already been established */
  576. if(ssl_connection_complete == connssl->state) {
  577. *done = TRUE;
  578. return CURLE_OK;
  579. }
  580. if(ssl_connect_1 == connssl->connecting_state) {
  581. ret = bearssl_connect_step1(conn, sockindex);
  582. if(ret)
  583. return ret;
  584. }
  585. while(ssl_connect_2 == connssl->connecting_state ||
  586. ssl_connect_2_reading == connssl->connecting_state ||
  587. ssl_connect_2_writing == connssl->connecting_state) {
  588. /* check allowed time left */
  589. timeout_ms = Curl_timeleft(data, NULL, TRUE);
  590. if(timeout_ms < 0) {
  591. /* no need to continue if time already is up */
  592. failf(data, "SSL connection timeout");
  593. return CURLE_OPERATION_TIMEDOUT;
  594. }
  595. /* if ssl is expecting something, check if it's available. */
  596. if(ssl_connect_2_reading == connssl->connecting_state ||
  597. ssl_connect_2_writing == connssl->connecting_state) {
  598. curl_socket_t writefd = ssl_connect_2_writing ==
  599. connssl->connecting_state?sockfd:CURL_SOCKET_BAD;
  600. curl_socket_t readfd = ssl_connect_2_reading ==
  601. connssl->connecting_state?sockfd:CURL_SOCKET_BAD;
  602. what = Curl_socket_check(readfd, CURL_SOCKET_BAD, writefd,
  603. nonblocking?0:timeout_ms);
  604. if(what < 0) {
  605. /* fatal error */
  606. failf(data, "select/poll on SSL socket, errno: %d", SOCKERRNO);
  607. return CURLE_SSL_CONNECT_ERROR;
  608. }
  609. else if(0 == what) {
  610. if(nonblocking) {
  611. *done = FALSE;
  612. return CURLE_OK;
  613. }
  614. else {
  615. /* timeout */
  616. failf(data, "SSL connection timeout");
  617. return CURLE_OPERATION_TIMEDOUT;
  618. }
  619. }
  620. /* socket is readable or writable */
  621. }
  622. /* Run transaction, and return to the caller if it failed or if this
  623. * connection is done nonblocking and this loop would execute again. This
  624. * permits the owner of a multi handle to abort a connection attempt
  625. * before step2 has completed while ensuring that a client using select()
  626. * or epoll() will always have a valid fdset to wait on.
  627. */
  628. ret = bearssl_connect_step2(conn, sockindex);
  629. if(ret || (nonblocking &&
  630. (ssl_connect_2 == connssl->connecting_state ||
  631. ssl_connect_2_reading == connssl->connecting_state ||
  632. ssl_connect_2_writing == connssl->connecting_state)))
  633. return ret;
  634. }
  635. if(ssl_connect_3 == connssl->connecting_state) {
  636. ret = bearssl_connect_step3(conn, sockindex);
  637. if(ret)
  638. return ret;
  639. }
  640. if(ssl_connect_done == connssl->connecting_state) {
  641. connssl->state = ssl_connection_complete;
  642. conn->recv[sockindex] = bearssl_recv;
  643. conn->send[sockindex] = bearssl_send;
  644. *done = TRUE;
  645. }
  646. else
  647. *done = FALSE;
  648. /* Reset our connect state machine */
  649. connssl->connecting_state = ssl_connect_1;
  650. return CURLE_OK;
  651. }
  652. static size_t Curl_bearssl_version(char *buffer, size_t size)
  653. {
  654. return msnprintf(buffer, size, "BearSSL");
  655. }
  656. static bool Curl_bearssl_data_pending(const struct connectdata *conn,
  657. int connindex)
  658. {
  659. const struct ssl_connect_data *connssl = &conn->ssl[connindex];
  660. return br_ssl_engine_current_state(&BACKEND->ctx.eng) & BR_SSL_RECVAPP;
  661. }
  662. static CURLcode Curl_bearssl_random(struct Curl_easy *data UNUSED_PARAM,
  663. unsigned char *entropy, size_t length)
  664. {
  665. static br_hmac_drbg_context ctx;
  666. static bool seeded = FALSE;
  667. if(!seeded) {
  668. br_prng_seeder seeder;
  669. br_hmac_drbg_init(&ctx, &br_sha256_vtable, NULL, 0);
  670. seeder = br_prng_seeder_system(NULL);
  671. if(!seeder || !seeder(&ctx.vtable))
  672. return CURLE_FAILED_INIT;
  673. seeded = TRUE;
  674. }
  675. br_hmac_drbg_generate(&ctx, entropy, length);
  676. return CURLE_OK;
  677. }
  678. static CURLcode Curl_bearssl_connect(struct connectdata *conn, int sockindex)
  679. {
  680. CURLcode ret;
  681. bool done = FALSE;
  682. ret = bearssl_connect_common(conn, sockindex, FALSE, &done);
  683. if(ret)
  684. return ret;
  685. DEBUGASSERT(done);
  686. return CURLE_OK;
  687. }
  688. static CURLcode Curl_bearssl_connect_nonblocking(struct connectdata *conn,
  689. int sockindex, bool *done)
  690. {
  691. return bearssl_connect_common(conn, sockindex, TRUE, done);
  692. }
  693. static void *Curl_bearssl_get_internals(struct ssl_connect_data *connssl,
  694. CURLINFO info UNUSED_PARAM)
  695. {
  696. return &BACKEND->ctx;
  697. }
  698. static void Curl_bearssl_close(struct connectdata *conn, int sockindex)
  699. {
  700. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  701. size_t i;
  702. if(BACKEND->active) {
  703. br_ssl_engine_close(&BACKEND->ctx.eng);
  704. (void)bearssl_run_until(conn, sockindex, BR_SSL_CLOSED);
  705. }
  706. for(i = 0; i < BACKEND->anchors_len; ++i)
  707. free(BACKEND->anchors[i].dn.data);
  708. free(BACKEND->anchors);
  709. }
  710. static void Curl_bearssl_session_free(void *ptr)
  711. {
  712. free(ptr);
  713. }
  714. static CURLcode Curl_bearssl_md5sum(unsigned char *input,
  715. size_t inputlen,
  716. unsigned char *md5sum,
  717. size_t md5len UNUSED_PARAM)
  718. {
  719. br_md5_context ctx;
  720. br_md5_init(&ctx);
  721. br_md5_update(&ctx, input, inputlen);
  722. br_md5_out(&ctx, md5sum);
  723. return CURLE_OK;
  724. }
  725. static CURLcode Curl_bearssl_sha256sum(const unsigned char *input,
  726. size_t inputlen,
  727. unsigned char *sha256sum,
  728. size_t sha256len UNUSED_PARAM)
  729. {
  730. br_sha256_context ctx;
  731. br_sha256_init(&ctx);
  732. br_sha256_update(&ctx, input, inputlen);
  733. br_sha256_out(&ctx, sha256sum);
  734. return CURLE_OK;
  735. }
  736. const struct Curl_ssl Curl_ssl_bearssl = {
  737. { CURLSSLBACKEND_BEARSSL, "bearssl" },
  738. 0,
  739. sizeof(struct ssl_backend_data),
  740. Curl_none_init,
  741. Curl_none_cleanup,
  742. Curl_bearssl_version,
  743. Curl_none_check_cxn,
  744. Curl_none_shutdown,
  745. Curl_bearssl_data_pending,
  746. Curl_bearssl_random,
  747. Curl_none_cert_status_request,
  748. Curl_bearssl_connect,
  749. Curl_bearssl_connect_nonblocking,
  750. Curl_bearssl_get_internals,
  751. Curl_bearssl_close,
  752. Curl_none_close_all,
  753. Curl_bearssl_session_free,
  754. Curl_none_set_engine,
  755. Curl_none_set_engine_default,
  756. Curl_none_engines_list,
  757. Curl_none_false_start,
  758. Curl_bearssl_md5sum,
  759. Curl_bearssl_sha256sum
  760. };
  761. #endif /* USE_BEARSSL */