auth.c 24 KB

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  1. /* SCTP kernel implementation
  2. * (C) Copyright 2007 Hewlett-Packard Development Company, L.P.
  3. *
  4. * This file is part of the SCTP kernel implementation
  5. *
  6. * This SCTP implementation is free software;
  7. * you can redistribute it and/or modify it under the terms of
  8. * the GNU General Public License as published by
  9. * the Free Software Foundation; either version 2, or (at your option)
  10. * any later version.
  11. *
  12. * This SCTP implementation is distributed in the hope that it
  13. * will be useful, but WITHOUT ANY WARRANTY; without even the implied
  14. * ************************
  15. * warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
  16. * See the GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with GNU CC; see the file COPYING. If not, write to
  20. * the Free Software Foundation, 59 Temple Place - Suite 330,
  21. * Boston, MA 02111-1307, USA.
  22. *
  23. * Please send any bug reports or fixes you make to the
  24. * email address(es):
  25. * lksctp developers <lksctp-developers@lists.sourceforge.net>
  26. *
  27. * Or submit a bug report through the following website:
  28. * http://www.sf.net/projects/lksctp
  29. *
  30. * Written or modified by:
  31. * Vlad Yasevich <vladislav.yasevich@hp.com>
  32. *
  33. * Any bugs reported given to us we will try to fix... any fixes shared will
  34. * be incorporated into the next SCTP release.
  35. */
  36. #include <linux/slab.h>
  37. #include <linux/types.h>
  38. #include <linux/crypto.h>
  39. #include <linux/scatterlist.h>
  40. #include <net/sctp/sctp.h>
  41. #include <net/sctp/auth.h>
  42. static struct sctp_hmac sctp_hmac_list[SCTP_AUTH_NUM_HMACS] = {
  43. {
  44. /* id 0 is reserved. as all 0 */
  45. .hmac_id = SCTP_AUTH_HMAC_ID_RESERVED_0,
  46. },
  47. {
  48. .hmac_id = SCTP_AUTH_HMAC_ID_SHA1,
  49. .hmac_name="hmac(sha1)",
  50. .hmac_len = SCTP_SHA1_SIG_SIZE,
  51. },
  52. {
  53. /* id 2 is reserved as well */
  54. .hmac_id = SCTP_AUTH_HMAC_ID_RESERVED_2,
  55. },
  56. #if defined (CONFIG_CRYPTO_SHA256) || defined (CONFIG_CRYPTO_SHA256_MODULE)
  57. {
  58. .hmac_id = SCTP_AUTH_HMAC_ID_SHA256,
  59. .hmac_name="hmac(sha256)",
  60. .hmac_len = SCTP_SHA256_SIG_SIZE,
  61. }
  62. #endif
  63. };
  64. void sctp_auth_key_put(struct sctp_auth_bytes *key)
  65. {
  66. if (!key)
  67. return;
  68. if (atomic_dec_and_test(&key->refcnt)) {
  69. kfree(key);
  70. SCTP_DBG_OBJCNT_DEC(keys);
  71. }
  72. }
  73. /* Create a new key structure of a given length */
  74. static struct sctp_auth_bytes *sctp_auth_create_key(__u32 key_len, gfp_t gfp)
  75. {
  76. struct sctp_auth_bytes *key;
  77. /* Verify that we are not going to overflow INT_MAX */
  78. if ((INT_MAX - key_len) < sizeof(struct sctp_auth_bytes))
  79. return NULL;
  80. /* Allocate the shared key */
  81. key = kmalloc(sizeof(struct sctp_auth_bytes) + key_len, gfp);
  82. if (!key)
  83. return NULL;
  84. key->len = key_len;
  85. atomic_set(&key->refcnt, 1);
  86. SCTP_DBG_OBJCNT_INC(keys);
  87. return key;
  88. }
  89. /* Create a new shared key container with a give key id */
  90. struct sctp_shared_key *sctp_auth_shkey_create(__u16 key_id, gfp_t gfp)
  91. {
  92. struct sctp_shared_key *new;
  93. /* Allocate the shared key container */
  94. new = kzalloc(sizeof(struct sctp_shared_key), gfp);
  95. if (!new)
  96. return NULL;
  97. INIT_LIST_HEAD(&new->key_list);
  98. new->key_id = key_id;
  99. return new;
  100. }
  101. /* Free the shared key stucture */
  102. static void sctp_auth_shkey_free(struct sctp_shared_key *sh_key)
  103. {
  104. BUG_ON(!list_empty(&sh_key->key_list));
  105. sctp_auth_key_put(sh_key->key);
  106. sh_key->key = NULL;
  107. kfree(sh_key);
  108. }
  109. /* Destory the entire key list. This is done during the
  110. * associon and endpoint free process.
  111. */
  112. void sctp_auth_destroy_keys(struct list_head *keys)
  113. {
  114. struct sctp_shared_key *ep_key;
  115. struct sctp_shared_key *tmp;
  116. if (list_empty(keys))
  117. return;
  118. key_for_each_safe(ep_key, tmp, keys) {
  119. list_del_init(&ep_key->key_list);
  120. sctp_auth_shkey_free(ep_key);
  121. }
  122. }
  123. /* Compare two byte vectors as numbers. Return values
  124. * are:
  125. * 0 - vectors are equal
  126. * < 0 - vector 1 is smaller than vector2
  127. * > 0 - vector 1 is greater than vector2
  128. *
  129. * Algorithm is:
  130. * This is performed by selecting the numerically smaller key vector...
  131. * If the key vectors are equal as numbers but differ in length ...
  132. * the shorter vector is considered smaller
  133. *
  134. * Examples (with small values):
  135. * 000123456789 > 123456789 (first number is longer)
  136. * 000123456789 < 234567891 (second number is larger numerically)
  137. * 123456789 > 2345678 (first number is both larger & longer)
  138. */
  139. static int sctp_auth_compare_vectors(struct sctp_auth_bytes *vector1,
  140. struct sctp_auth_bytes *vector2)
  141. {
  142. int diff;
  143. int i;
  144. const __u8 *longer;
  145. diff = vector1->len - vector2->len;
  146. if (diff) {
  147. longer = (diff > 0) ? vector1->data : vector2->data;
  148. /* Check to see if the longer number is
  149. * lead-zero padded. If it is not, it
  150. * is automatically larger numerically.
  151. */
  152. for (i = 0; i < abs(diff); i++ ) {
  153. if (longer[i] != 0)
  154. return diff;
  155. }
  156. }
  157. /* lengths are the same, compare numbers */
  158. return memcmp(vector1->data, vector2->data, vector1->len);
  159. }
  160. /*
  161. * Create a key vector as described in SCTP-AUTH, Section 6.1
  162. * The RANDOM parameter, the CHUNKS parameter and the HMAC-ALGO
  163. * parameter sent by each endpoint are concatenated as byte vectors.
  164. * These parameters include the parameter type, parameter length, and
  165. * the parameter value, but padding is omitted; all padding MUST be
  166. * removed from this concatenation before proceeding with further
  167. * computation of keys. Parameters which were not sent are simply
  168. * omitted from the concatenation process. The resulting two vectors
  169. * are called the two key vectors.
  170. */
  171. static struct sctp_auth_bytes *sctp_auth_make_key_vector(
  172. sctp_random_param_t *random,
  173. sctp_chunks_param_t *chunks,
  174. sctp_hmac_algo_param_t *hmacs,
  175. gfp_t gfp)
  176. {
  177. struct sctp_auth_bytes *new;
  178. __u32 len;
  179. __u32 offset = 0;
  180. len = ntohs(random->param_hdr.length) + ntohs(hmacs->param_hdr.length);
  181. if (chunks)
  182. len += ntohs(chunks->param_hdr.length);
  183. new = kmalloc(sizeof(struct sctp_auth_bytes) + len, gfp);
  184. if (!new)
  185. return NULL;
  186. new->len = len;
  187. memcpy(new->data, random, ntohs(random->param_hdr.length));
  188. offset += ntohs(random->param_hdr.length);
  189. if (chunks) {
  190. memcpy(new->data + offset, chunks,
  191. ntohs(chunks->param_hdr.length));
  192. offset += ntohs(chunks->param_hdr.length);
  193. }
  194. memcpy(new->data + offset, hmacs, ntohs(hmacs->param_hdr.length));
  195. return new;
  196. }
  197. /* Make a key vector based on our local parameters */
  198. static struct sctp_auth_bytes *sctp_auth_make_local_vector(
  199. const struct sctp_association *asoc,
  200. gfp_t gfp)
  201. {
  202. return sctp_auth_make_key_vector(
  203. (sctp_random_param_t*)asoc->c.auth_random,
  204. (sctp_chunks_param_t*)asoc->c.auth_chunks,
  205. (sctp_hmac_algo_param_t*)asoc->c.auth_hmacs,
  206. gfp);
  207. }
  208. /* Make a key vector based on peer's parameters */
  209. static struct sctp_auth_bytes *sctp_auth_make_peer_vector(
  210. const struct sctp_association *asoc,
  211. gfp_t gfp)
  212. {
  213. return sctp_auth_make_key_vector(asoc->peer.peer_random,
  214. asoc->peer.peer_chunks,
  215. asoc->peer.peer_hmacs,
  216. gfp);
  217. }
  218. /* Set the value of the association shared key base on the parameters
  219. * given. The algorithm is:
  220. * From the endpoint pair shared keys and the key vectors the
  221. * association shared keys are computed. This is performed by selecting
  222. * the numerically smaller key vector and concatenating it to the
  223. * endpoint pair shared key, and then concatenating the numerically
  224. * larger key vector to that. The result of the concatenation is the
  225. * association shared key.
  226. */
  227. static struct sctp_auth_bytes *sctp_auth_asoc_set_secret(
  228. struct sctp_shared_key *ep_key,
  229. struct sctp_auth_bytes *first_vector,
  230. struct sctp_auth_bytes *last_vector,
  231. gfp_t gfp)
  232. {
  233. struct sctp_auth_bytes *secret;
  234. __u32 offset = 0;
  235. __u32 auth_len;
  236. auth_len = first_vector->len + last_vector->len;
  237. if (ep_key->key)
  238. auth_len += ep_key->key->len;
  239. secret = sctp_auth_create_key(auth_len, gfp);
  240. if (!secret)
  241. return NULL;
  242. if (ep_key->key) {
  243. memcpy(secret->data, ep_key->key->data, ep_key->key->len);
  244. offset += ep_key->key->len;
  245. }
  246. memcpy(secret->data + offset, first_vector->data, first_vector->len);
  247. offset += first_vector->len;
  248. memcpy(secret->data + offset, last_vector->data, last_vector->len);
  249. return secret;
  250. }
  251. /* Create an association shared key. Follow the algorithm
  252. * described in SCTP-AUTH, Section 6.1
  253. */
  254. static struct sctp_auth_bytes *sctp_auth_asoc_create_secret(
  255. const struct sctp_association *asoc,
  256. struct sctp_shared_key *ep_key,
  257. gfp_t gfp)
  258. {
  259. struct sctp_auth_bytes *local_key_vector;
  260. struct sctp_auth_bytes *peer_key_vector;
  261. struct sctp_auth_bytes *first_vector,
  262. *last_vector;
  263. struct sctp_auth_bytes *secret = NULL;
  264. int cmp;
  265. /* Now we need to build the key vectors
  266. * SCTP-AUTH , Section 6.1
  267. * The RANDOM parameter, the CHUNKS parameter and the HMAC-ALGO
  268. * parameter sent by each endpoint are concatenated as byte vectors.
  269. * These parameters include the parameter type, parameter length, and
  270. * the parameter value, but padding is omitted; all padding MUST be
  271. * removed from this concatenation before proceeding with further
  272. * computation of keys. Parameters which were not sent are simply
  273. * omitted from the concatenation process. The resulting two vectors
  274. * are called the two key vectors.
  275. */
  276. local_key_vector = sctp_auth_make_local_vector(asoc, gfp);
  277. peer_key_vector = sctp_auth_make_peer_vector(asoc, gfp);
  278. if (!peer_key_vector || !local_key_vector)
  279. goto out;
  280. /* Figure out the order in wich the key_vectors will be
  281. * added to the endpoint shared key.
  282. * SCTP-AUTH, Section 6.1:
  283. * This is performed by selecting the numerically smaller key
  284. * vector and concatenating it to the endpoint pair shared
  285. * key, and then concatenating the numerically larger key
  286. * vector to that. If the key vectors are equal as numbers
  287. * but differ in length, then the concatenation order is the
  288. * endpoint shared key, followed by the shorter key vector,
  289. * followed by the longer key vector. Otherwise, the key
  290. * vectors are identical, and may be concatenated to the
  291. * endpoint pair key in any order.
  292. */
  293. cmp = sctp_auth_compare_vectors(local_key_vector,
  294. peer_key_vector);
  295. if (cmp < 0) {
  296. first_vector = local_key_vector;
  297. last_vector = peer_key_vector;
  298. } else {
  299. first_vector = peer_key_vector;
  300. last_vector = local_key_vector;
  301. }
  302. secret = sctp_auth_asoc_set_secret(ep_key, first_vector, last_vector,
  303. gfp);
  304. out:
  305. kfree(local_key_vector);
  306. kfree(peer_key_vector);
  307. return secret;
  308. }
  309. /*
  310. * Populate the association overlay list with the list
  311. * from the endpoint.
  312. */
  313. int sctp_auth_asoc_copy_shkeys(const struct sctp_endpoint *ep,
  314. struct sctp_association *asoc,
  315. gfp_t gfp)
  316. {
  317. struct sctp_shared_key *sh_key;
  318. struct sctp_shared_key *new;
  319. BUG_ON(!list_empty(&asoc->endpoint_shared_keys));
  320. key_for_each(sh_key, &ep->endpoint_shared_keys) {
  321. new = sctp_auth_shkey_create(sh_key->key_id, gfp);
  322. if (!new)
  323. goto nomem;
  324. new->key = sh_key->key;
  325. sctp_auth_key_hold(new->key);
  326. list_add(&new->key_list, &asoc->endpoint_shared_keys);
  327. }
  328. return 0;
  329. nomem:
  330. sctp_auth_destroy_keys(&asoc->endpoint_shared_keys);
  331. return -ENOMEM;
  332. }
  333. /* Public interface to creat the association shared key.
  334. * See code above for the algorithm.
  335. */
  336. int sctp_auth_asoc_init_active_key(struct sctp_association *asoc, gfp_t gfp)
  337. {
  338. struct sctp_auth_bytes *secret;
  339. struct sctp_shared_key *ep_key;
  340. /* If we don't support AUTH, or peer is not capable
  341. * we don't need to do anything.
  342. */
  343. if (!sctp_auth_enable || !asoc->peer.auth_capable)
  344. return 0;
  345. /* If the key_id is non-zero and we couldn't find an
  346. * endpoint pair shared key, we can't compute the
  347. * secret.
  348. * For key_id 0, endpoint pair shared key is a NULL key.
  349. */
  350. ep_key = sctp_auth_get_shkey(asoc, asoc->active_key_id);
  351. BUG_ON(!ep_key);
  352. secret = sctp_auth_asoc_create_secret(asoc, ep_key, gfp);
  353. if (!secret)
  354. return -ENOMEM;
  355. sctp_auth_key_put(asoc->asoc_shared_key);
  356. asoc->asoc_shared_key = secret;
  357. return 0;
  358. }
  359. /* Find the endpoint pair shared key based on the key_id */
  360. struct sctp_shared_key *sctp_auth_get_shkey(
  361. const struct sctp_association *asoc,
  362. __u16 key_id)
  363. {
  364. struct sctp_shared_key *key;
  365. /* First search associations set of endpoint pair shared keys */
  366. key_for_each(key, &asoc->endpoint_shared_keys) {
  367. if (key->key_id == key_id)
  368. return key;
  369. }
  370. return NULL;
  371. }
  372. /*
  373. * Initialize all the possible digest transforms that we can use. Right now
  374. * now, the supported digests are SHA1 and SHA256. We do this here once
  375. * because of the restrictiong that transforms may only be allocated in
  376. * user context. This forces us to pre-allocated all possible transforms
  377. * at the endpoint init time.
  378. */
  379. int sctp_auth_init_hmacs(struct sctp_endpoint *ep, gfp_t gfp)
  380. {
  381. struct crypto_hash *tfm = NULL;
  382. __u16 id;
  383. /* if the transforms are already allocted, we are done */
  384. if (!sctp_auth_enable) {
  385. ep->auth_hmacs = NULL;
  386. return 0;
  387. }
  388. if (ep->auth_hmacs)
  389. return 0;
  390. /* Allocated the array of pointers to transorms */
  391. ep->auth_hmacs = kzalloc(
  392. sizeof(struct crypto_hash *) * SCTP_AUTH_NUM_HMACS,
  393. gfp);
  394. if (!ep->auth_hmacs)
  395. return -ENOMEM;
  396. for (id = 0; id < SCTP_AUTH_NUM_HMACS; id++) {
  397. /* See is we support the id. Supported IDs have name and
  398. * length fields set, so that we can allocated and use
  399. * them. We can safely just check for name, for without the
  400. * name, we can't allocate the TFM.
  401. */
  402. if (!sctp_hmac_list[id].hmac_name)
  403. continue;
  404. /* If this TFM has been allocated, we are all set */
  405. if (ep->auth_hmacs[id])
  406. continue;
  407. /* Allocate the ID */
  408. tfm = crypto_alloc_hash(sctp_hmac_list[id].hmac_name, 0,
  409. CRYPTO_ALG_ASYNC);
  410. if (IS_ERR(tfm))
  411. goto out_err;
  412. ep->auth_hmacs[id] = tfm;
  413. }
  414. return 0;
  415. out_err:
  416. /* Clean up any successful allocations */
  417. sctp_auth_destroy_hmacs(ep->auth_hmacs);
  418. return -ENOMEM;
  419. }
  420. /* Destroy the hmac tfm array */
  421. void sctp_auth_destroy_hmacs(struct crypto_hash *auth_hmacs[])
  422. {
  423. int i;
  424. if (!auth_hmacs)
  425. return;
  426. for (i = 0; i < SCTP_AUTH_NUM_HMACS; i++)
  427. {
  428. if (auth_hmacs[i])
  429. crypto_free_hash(auth_hmacs[i]);
  430. }
  431. kfree(auth_hmacs);
  432. }
  433. struct sctp_hmac *sctp_auth_get_hmac(__u16 hmac_id)
  434. {
  435. return &sctp_hmac_list[hmac_id];
  436. }
  437. /* Get an hmac description information that we can use to build
  438. * the AUTH chunk
  439. */
  440. struct sctp_hmac *sctp_auth_asoc_get_hmac(const struct sctp_association *asoc)
  441. {
  442. struct sctp_hmac_algo_param *hmacs;
  443. __u16 n_elt;
  444. __u16 id = 0;
  445. int i;
  446. /* If we have a default entry, use it */
  447. if (asoc->default_hmac_id)
  448. return &sctp_hmac_list[asoc->default_hmac_id];
  449. /* Since we do not have a default entry, find the first entry
  450. * we support and return that. Do not cache that id.
  451. */
  452. hmacs = asoc->peer.peer_hmacs;
  453. if (!hmacs)
  454. return NULL;
  455. n_elt = (ntohs(hmacs->param_hdr.length) - sizeof(sctp_paramhdr_t)) >> 1;
  456. for (i = 0; i < n_elt; i++) {
  457. id = ntohs(hmacs->hmac_ids[i]);
  458. /* Check the id is in the supported range */
  459. if (id > SCTP_AUTH_HMAC_ID_MAX)
  460. continue;
  461. /* See is we support the id. Supported IDs have name and
  462. * length fields set, so that we can allocated and use
  463. * them. We can safely just check for name, for without the
  464. * name, we can't allocate the TFM.
  465. */
  466. if (!sctp_hmac_list[id].hmac_name)
  467. continue;
  468. break;
  469. }
  470. if (id == 0)
  471. return NULL;
  472. return &sctp_hmac_list[id];
  473. }
  474. static int __sctp_auth_find_hmacid(__be16 *hmacs, int n_elts, __be16 hmac_id)
  475. {
  476. int found = 0;
  477. int i;
  478. for (i = 0; i < n_elts; i++) {
  479. if (hmac_id == hmacs[i]) {
  480. found = 1;
  481. break;
  482. }
  483. }
  484. return found;
  485. }
  486. /* See if the HMAC_ID is one that we claim as supported */
  487. int sctp_auth_asoc_verify_hmac_id(const struct sctp_association *asoc,
  488. __be16 hmac_id)
  489. {
  490. struct sctp_hmac_algo_param *hmacs;
  491. __u16 n_elt;
  492. if (!asoc)
  493. return 0;
  494. hmacs = (struct sctp_hmac_algo_param *)asoc->c.auth_hmacs;
  495. n_elt = (ntohs(hmacs->param_hdr.length) - sizeof(sctp_paramhdr_t)) >> 1;
  496. return __sctp_auth_find_hmacid(hmacs->hmac_ids, n_elt, hmac_id);
  497. }
  498. /* Cache the default HMAC id. This to follow this text from SCTP-AUTH:
  499. * Section 6.1:
  500. * The receiver of a HMAC-ALGO parameter SHOULD use the first listed
  501. * algorithm it supports.
  502. */
  503. void sctp_auth_asoc_set_default_hmac(struct sctp_association *asoc,
  504. struct sctp_hmac_algo_param *hmacs)
  505. {
  506. struct sctp_endpoint *ep;
  507. __u16 id;
  508. int i;
  509. int n_params;
  510. /* if the default id is already set, use it */
  511. if (asoc->default_hmac_id)
  512. return;
  513. n_params = (ntohs(hmacs->param_hdr.length)
  514. - sizeof(sctp_paramhdr_t)) >> 1;
  515. ep = asoc->ep;
  516. for (i = 0; i < n_params; i++) {
  517. id = ntohs(hmacs->hmac_ids[i]);
  518. /* Check the id is in the supported range */
  519. if (id > SCTP_AUTH_HMAC_ID_MAX)
  520. continue;
  521. /* If this TFM has been allocated, use this id */
  522. if (ep->auth_hmacs[id]) {
  523. asoc->default_hmac_id = id;
  524. break;
  525. }
  526. }
  527. }
  528. /* Check to see if the given chunk is supposed to be authenticated */
  529. static int __sctp_auth_cid(sctp_cid_t chunk, struct sctp_chunks_param *param)
  530. {
  531. unsigned short len;
  532. int found = 0;
  533. int i;
  534. if (!param || param->param_hdr.length == 0)
  535. return 0;
  536. len = ntohs(param->param_hdr.length) - sizeof(sctp_paramhdr_t);
  537. /* SCTP-AUTH, Section 3.2
  538. * The chunk types for INIT, INIT-ACK, SHUTDOWN-COMPLETE and AUTH
  539. * chunks MUST NOT be listed in the CHUNKS parameter. However, if
  540. * a CHUNKS parameter is received then the types for INIT, INIT-ACK,
  541. * SHUTDOWN-COMPLETE and AUTH chunks MUST be ignored.
  542. */
  543. for (i = 0; !found && i < len; i++) {
  544. switch (param->chunks[i]) {
  545. case SCTP_CID_INIT:
  546. case SCTP_CID_INIT_ACK:
  547. case SCTP_CID_SHUTDOWN_COMPLETE:
  548. case SCTP_CID_AUTH:
  549. break;
  550. default:
  551. if (param->chunks[i] == chunk)
  552. found = 1;
  553. break;
  554. }
  555. }
  556. return found;
  557. }
  558. /* Check if peer requested that this chunk is authenticated */
  559. int sctp_auth_send_cid(sctp_cid_t chunk, const struct sctp_association *asoc)
  560. {
  561. if (!sctp_auth_enable || !asoc || !asoc->peer.auth_capable)
  562. return 0;
  563. return __sctp_auth_cid(chunk, asoc->peer.peer_chunks);
  564. }
  565. /* Check if we requested that peer authenticate this chunk. */
  566. int sctp_auth_recv_cid(sctp_cid_t chunk, const struct sctp_association *asoc)
  567. {
  568. if (!sctp_auth_enable || !asoc)
  569. return 0;
  570. return __sctp_auth_cid(chunk,
  571. (struct sctp_chunks_param *)asoc->c.auth_chunks);
  572. }
  573. /* SCTP-AUTH: Section 6.2:
  574. * The sender MUST calculate the MAC as described in RFC2104 [2] using
  575. * the hash function H as described by the MAC Identifier and the shared
  576. * association key K based on the endpoint pair shared key described by
  577. * the shared key identifier. The 'data' used for the computation of
  578. * the AUTH-chunk is given by the AUTH chunk with its HMAC field set to
  579. * zero (as shown in Figure 6) followed by all chunks that are placed
  580. * after the AUTH chunk in the SCTP packet.
  581. */
  582. void sctp_auth_calculate_hmac(const struct sctp_association *asoc,
  583. struct sk_buff *skb,
  584. struct sctp_auth_chunk *auth,
  585. gfp_t gfp)
  586. {
  587. struct scatterlist sg;
  588. struct hash_desc desc;
  589. struct sctp_auth_bytes *asoc_key;
  590. __u16 key_id, hmac_id;
  591. __u8 *digest;
  592. unsigned char *end;
  593. int free_key = 0;
  594. /* Extract the info we need:
  595. * - hmac id
  596. * - key id
  597. */
  598. key_id = ntohs(auth->auth_hdr.shkey_id);
  599. hmac_id = ntohs(auth->auth_hdr.hmac_id);
  600. if (key_id == asoc->active_key_id)
  601. asoc_key = asoc->asoc_shared_key;
  602. else {
  603. struct sctp_shared_key *ep_key;
  604. ep_key = sctp_auth_get_shkey(asoc, key_id);
  605. if (!ep_key)
  606. return;
  607. asoc_key = sctp_auth_asoc_create_secret(asoc, ep_key, gfp);
  608. if (!asoc_key)
  609. return;
  610. free_key = 1;
  611. }
  612. /* set up scatter list */
  613. end = skb_tail_pointer(skb);
  614. sg_init_one(&sg, auth, end - (unsigned char *)auth);
  615. desc.tfm = asoc->ep->auth_hmacs[hmac_id];
  616. desc.flags = 0;
  617. digest = auth->auth_hdr.hmac;
  618. if (crypto_hash_setkey(desc.tfm, &asoc_key->data[0], asoc_key->len))
  619. goto free;
  620. crypto_hash_digest(&desc, &sg, sg.length, digest);
  621. free:
  622. if (free_key)
  623. sctp_auth_key_put(asoc_key);
  624. }
  625. /* API Helpers */
  626. /* Add a chunk to the endpoint authenticated chunk list */
  627. int sctp_auth_ep_add_chunkid(struct sctp_endpoint *ep, __u8 chunk_id)
  628. {
  629. struct sctp_chunks_param *p = ep->auth_chunk_list;
  630. __u16 nchunks;
  631. __u16 param_len;
  632. /* If this chunk is already specified, we are done */
  633. if (__sctp_auth_cid(chunk_id, p))
  634. return 0;
  635. /* Check if we can add this chunk to the array */
  636. param_len = ntohs(p->param_hdr.length);
  637. nchunks = param_len - sizeof(sctp_paramhdr_t);
  638. if (nchunks == SCTP_NUM_CHUNK_TYPES)
  639. return -EINVAL;
  640. p->chunks[nchunks] = chunk_id;
  641. p->param_hdr.length = htons(param_len + 1);
  642. return 0;
  643. }
  644. /* Add hmac identifires to the endpoint list of supported hmac ids */
  645. int sctp_auth_ep_set_hmacs(struct sctp_endpoint *ep,
  646. struct sctp_hmacalgo *hmacs)
  647. {
  648. int has_sha1 = 0;
  649. __u16 id;
  650. int i;
  651. /* Scan the list looking for unsupported id. Also make sure that
  652. * SHA1 is specified.
  653. */
  654. for (i = 0; i < hmacs->shmac_num_idents; i++) {
  655. id = hmacs->shmac_idents[i];
  656. if (id > SCTP_AUTH_HMAC_ID_MAX)
  657. return -EOPNOTSUPP;
  658. if (SCTP_AUTH_HMAC_ID_SHA1 == id)
  659. has_sha1 = 1;
  660. if (!sctp_hmac_list[id].hmac_name)
  661. return -EOPNOTSUPP;
  662. }
  663. if (!has_sha1)
  664. return -EINVAL;
  665. memcpy(ep->auth_hmacs_list->hmac_ids, &hmacs->shmac_idents[0],
  666. hmacs->shmac_num_idents * sizeof(__u16));
  667. ep->auth_hmacs_list->param_hdr.length = htons(sizeof(sctp_paramhdr_t) +
  668. hmacs->shmac_num_idents * sizeof(__u16));
  669. return 0;
  670. }
  671. /* Set a new shared key on either endpoint or association. If the
  672. * the key with a same ID already exists, replace the key (remove the
  673. * old key and add a new one).
  674. */
  675. int sctp_auth_set_key(struct sctp_endpoint *ep,
  676. struct sctp_association *asoc,
  677. struct sctp_authkey *auth_key)
  678. {
  679. struct sctp_shared_key *cur_key = NULL;
  680. struct sctp_auth_bytes *key;
  681. struct list_head *sh_keys;
  682. int replace = 0;
  683. /* Try to find the given key id to see if
  684. * we are doing a replace, or adding a new key
  685. */
  686. if (asoc)
  687. sh_keys = &asoc->endpoint_shared_keys;
  688. else
  689. sh_keys = &ep->endpoint_shared_keys;
  690. key_for_each(cur_key, sh_keys) {
  691. if (cur_key->key_id == auth_key->sca_keynumber) {
  692. replace = 1;
  693. break;
  694. }
  695. }
  696. /* If we are not replacing a key id, we need to allocate
  697. * a shared key.
  698. */
  699. if (!replace) {
  700. cur_key = sctp_auth_shkey_create(auth_key->sca_keynumber,
  701. GFP_KERNEL);
  702. if (!cur_key)
  703. return -ENOMEM;
  704. }
  705. /* Create a new key data based on the info passed in */
  706. key = sctp_auth_create_key(auth_key->sca_keylength, GFP_KERNEL);
  707. if (!key)
  708. goto nomem;
  709. memcpy(key->data, &auth_key->sca_key[0], auth_key->sca_keylength);
  710. /* If we are replacing, remove the old keys data from the
  711. * key id. If we are adding new key id, add it to the
  712. * list.
  713. */
  714. if (replace)
  715. sctp_auth_key_put(cur_key->key);
  716. else
  717. list_add(&cur_key->key_list, sh_keys);
  718. cur_key->key = key;
  719. sctp_auth_key_hold(key);
  720. return 0;
  721. nomem:
  722. if (!replace)
  723. sctp_auth_shkey_free(cur_key);
  724. return -ENOMEM;
  725. }
  726. int sctp_auth_set_active_key(struct sctp_endpoint *ep,
  727. struct sctp_association *asoc,
  728. __u16 key_id)
  729. {
  730. struct sctp_shared_key *key;
  731. struct list_head *sh_keys;
  732. int found = 0;
  733. /* The key identifier MUST correst to an existing key */
  734. if (asoc)
  735. sh_keys = &asoc->endpoint_shared_keys;
  736. else
  737. sh_keys = &ep->endpoint_shared_keys;
  738. key_for_each(key, sh_keys) {
  739. if (key->key_id == key_id) {
  740. found = 1;
  741. break;
  742. }
  743. }
  744. if (!found)
  745. return -EINVAL;
  746. if (asoc) {
  747. asoc->active_key_id = key_id;
  748. sctp_auth_asoc_init_active_key(asoc, GFP_KERNEL);
  749. } else
  750. ep->active_key_id = key_id;
  751. return 0;
  752. }
  753. int sctp_auth_del_key_id(struct sctp_endpoint *ep,
  754. struct sctp_association *asoc,
  755. __u16 key_id)
  756. {
  757. struct sctp_shared_key *key;
  758. struct list_head *sh_keys;
  759. int found = 0;
  760. /* The key identifier MUST NOT be the current active key
  761. * The key identifier MUST correst to an existing key
  762. */
  763. if (asoc) {
  764. if (asoc->active_key_id == key_id)
  765. return -EINVAL;
  766. sh_keys = &asoc->endpoint_shared_keys;
  767. } else {
  768. if (ep->active_key_id == key_id)
  769. return -EINVAL;
  770. sh_keys = &ep->endpoint_shared_keys;
  771. }
  772. key_for_each(key, sh_keys) {
  773. if (key->key_id == key_id) {
  774. found = 1;
  775. break;
  776. }
  777. }
  778. if (!found)
  779. return -EINVAL;
  780. /* Delete the shared key */
  781. list_del_init(&key->key_list);
  782. sctp_auth_shkey_free(key);
  783. return 0;
  784. }