cifsencrypt.c 21 KB

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  1. /*
  2. * fs/cifs/cifsencrypt.c
  3. *
  4. * Copyright (C) International Business Machines Corp., 2005,2006
  5. * Author(s): Steve French (sfrench@us.ibm.com)
  6. *
  7. * This library is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU Lesser General Public License as published
  9. * by the Free Software Foundation; either version 2.1 of the License, or
  10. * (at your option) any later version.
  11. *
  12. * This library is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See
  15. * the GNU Lesser General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU Lesser General Public License
  18. * along with this library; if not, write to the Free Software
  19. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  20. */
  21. #include <linux/fs.h>
  22. #include <linux/slab.h>
  23. #include "cifspdu.h"
  24. #include "cifsglob.h"
  25. #include "cifs_debug.h"
  26. #include "cifs_unicode.h"
  27. #include "cifsproto.h"
  28. #include "ntlmssp.h"
  29. #include <linux/ctype.h>
  30. #include <linux/random.h>
  31. /*
  32. * Calculate and return the CIFS signature based on the mac key and SMB PDU.
  33. * The 16 byte signature must be allocated by the caller. Note we only use the
  34. * 1st eight bytes and that the smb header signature field on input contains
  35. * the sequence number before this function is called. Also, this function
  36. * should be called with the server->srv_mutex held.
  37. */
  38. static int cifs_calc_signature(const struct kvec *iov, int n_vec,
  39. struct TCP_Server_Info *server, char *signature)
  40. {
  41. int i;
  42. int rc;
  43. if (iov == NULL || signature == NULL || server == NULL)
  44. return -EINVAL;
  45. if (!server->secmech.sdescmd5) {
  46. cERROR(1, "%s: Can't generate signature\n", __func__);
  47. return -1;
  48. }
  49. rc = crypto_shash_init(&server->secmech.sdescmd5->shash);
  50. if (rc) {
  51. cERROR(1, "%s: Could not init md5\n", __func__);
  52. return rc;
  53. }
  54. rc = crypto_shash_update(&server->secmech.sdescmd5->shash,
  55. server->session_key.response, server->session_key.len);
  56. if (rc) {
  57. cERROR(1, "%s: Could not update with response\n", __func__);
  58. return rc;
  59. }
  60. for (i = 0; i < n_vec; i++) {
  61. if (iov[i].iov_len == 0)
  62. continue;
  63. if (iov[i].iov_base == NULL) {
  64. cERROR(1, "null iovec entry");
  65. return -EIO;
  66. }
  67. /* The first entry includes a length field (which does not get
  68. signed that occupies the first 4 bytes before the header */
  69. if (i == 0) {
  70. if (iov[0].iov_len <= 8) /* cmd field at offset 9 */
  71. break; /* nothing to sign or corrupt header */
  72. rc =
  73. crypto_shash_update(&server->secmech.sdescmd5->shash,
  74. iov[i].iov_base + 4, iov[i].iov_len - 4);
  75. } else {
  76. rc =
  77. crypto_shash_update(&server->secmech.sdescmd5->shash,
  78. iov[i].iov_base, iov[i].iov_len);
  79. }
  80. if (rc) {
  81. cERROR(1, "%s: Could not update with payload\n",
  82. __func__);
  83. return rc;
  84. }
  85. }
  86. rc = crypto_shash_final(&server->secmech.sdescmd5->shash, signature);
  87. if (rc)
  88. cERROR(1, "%s: Could not generate md5 hash\n", __func__);
  89. return rc;
  90. }
  91. /* must be called with server->srv_mutex held */
  92. int cifs_sign_smb2(struct kvec *iov, int n_vec, struct TCP_Server_Info *server,
  93. __u32 *pexpected_response_sequence_number)
  94. {
  95. int rc = 0;
  96. char smb_signature[20];
  97. struct smb_hdr *cifs_pdu = (struct smb_hdr *)iov[0].iov_base;
  98. if ((cifs_pdu == NULL) || (server == NULL))
  99. return -EINVAL;
  100. if (!(cifs_pdu->Flags2 & SMBFLG2_SECURITY_SIGNATURE) ||
  101. server->tcpStatus == CifsNeedNegotiate)
  102. return rc;
  103. if (!server->session_estab) {
  104. memcpy(cifs_pdu->Signature.SecuritySignature, "BSRSPYL", 8);
  105. return rc;
  106. }
  107. cifs_pdu->Signature.Sequence.SequenceNumber =
  108. cpu_to_le32(server->sequence_number);
  109. cifs_pdu->Signature.Sequence.Reserved = 0;
  110. *pexpected_response_sequence_number = server->sequence_number++;
  111. server->sequence_number++;
  112. rc = cifs_calc_signature(iov, n_vec, server, smb_signature);
  113. if (rc)
  114. memset(cifs_pdu->Signature.SecuritySignature, 0, 8);
  115. else
  116. memcpy(cifs_pdu->Signature.SecuritySignature, smb_signature, 8);
  117. return rc;
  118. }
  119. /* must be called with server->srv_mutex held */
  120. int cifs_sign_smb(struct smb_hdr *cifs_pdu, struct TCP_Server_Info *server,
  121. __u32 *pexpected_response_sequence_number)
  122. {
  123. struct kvec iov;
  124. iov.iov_base = cifs_pdu;
  125. iov.iov_len = be32_to_cpu(cifs_pdu->smb_buf_length) + 4;
  126. return cifs_sign_smb2(&iov, 1, server,
  127. pexpected_response_sequence_number);
  128. }
  129. int cifs_verify_signature(struct kvec *iov, unsigned int nr_iov,
  130. struct TCP_Server_Info *server,
  131. __u32 expected_sequence_number)
  132. {
  133. unsigned int rc;
  134. char server_response_sig[8];
  135. char what_we_think_sig_should_be[20];
  136. struct smb_hdr *cifs_pdu = (struct smb_hdr *)iov[0].iov_base;
  137. if (cifs_pdu == NULL || server == NULL)
  138. return -EINVAL;
  139. if (!server->session_estab)
  140. return 0;
  141. if (cifs_pdu->Command == SMB_COM_LOCKING_ANDX) {
  142. struct smb_com_lock_req *pSMB =
  143. (struct smb_com_lock_req *)cifs_pdu;
  144. if (pSMB->LockType & LOCKING_ANDX_OPLOCK_RELEASE)
  145. return 0;
  146. }
  147. /* BB what if signatures are supposed to be on for session but
  148. server does not send one? BB */
  149. /* Do not need to verify session setups with signature "BSRSPYL " */
  150. if (memcmp(cifs_pdu->Signature.SecuritySignature, "BSRSPYL ", 8) == 0)
  151. cFYI(1, "dummy signature received for smb command 0x%x",
  152. cifs_pdu->Command);
  153. /* save off the origiginal signature so we can modify the smb and check
  154. its signature against what the server sent */
  155. memcpy(server_response_sig, cifs_pdu->Signature.SecuritySignature, 8);
  156. cifs_pdu->Signature.Sequence.SequenceNumber =
  157. cpu_to_le32(expected_sequence_number);
  158. cifs_pdu->Signature.Sequence.Reserved = 0;
  159. mutex_lock(&server->srv_mutex);
  160. rc = cifs_calc_signature(iov, nr_iov, server,
  161. what_we_think_sig_should_be);
  162. mutex_unlock(&server->srv_mutex);
  163. if (rc)
  164. return rc;
  165. /* cifs_dump_mem("what we think it should be: ",
  166. what_we_think_sig_should_be, 16); */
  167. if (memcmp(server_response_sig, what_we_think_sig_should_be, 8))
  168. return -EACCES;
  169. else
  170. return 0;
  171. }
  172. /* first calculate 24 bytes ntlm response and then 16 byte session key */
  173. int setup_ntlm_response(struct cifs_ses *ses, const struct nls_table *nls_cp)
  174. {
  175. int rc = 0;
  176. unsigned int temp_len = CIFS_SESS_KEY_SIZE + CIFS_AUTH_RESP_SIZE;
  177. char temp_key[CIFS_SESS_KEY_SIZE];
  178. if (!ses)
  179. return -EINVAL;
  180. ses->auth_key.response = kmalloc(temp_len, GFP_KERNEL);
  181. if (!ses->auth_key.response) {
  182. cERROR(1, "NTLM can't allocate (%u bytes) memory", temp_len);
  183. return -ENOMEM;
  184. }
  185. ses->auth_key.len = temp_len;
  186. rc = SMBNTencrypt(ses->password, ses->server->cryptkey,
  187. ses->auth_key.response + CIFS_SESS_KEY_SIZE, nls_cp);
  188. if (rc) {
  189. cFYI(1, "%s Can't generate NTLM response, error: %d",
  190. __func__, rc);
  191. return rc;
  192. }
  193. rc = E_md4hash(ses->password, temp_key, nls_cp);
  194. if (rc) {
  195. cFYI(1, "%s Can't generate NT hash, error: %d", __func__, rc);
  196. return rc;
  197. }
  198. rc = mdfour(ses->auth_key.response, temp_key, CIFS_SESS_KEY_SIZE);
  199. if (rc)
  200. cFYI(1, "%s Can't generate NTLM session key, error: %d",
  201. __func__, rc);
  202. return rc;
  203. }
  204. #ifdef CONFIG_CIFS_WEAK_PW_HASH
  205. int calc_lanman_hash(const char *password, const char *cryptkey, bool encrypt,
  206. char *lnm_session_key)
  207. {
  208. int i;
  209. int rc;
  210. char password_with_pad[CIFS_ENCPWD_SIZE];
  211. memset(password_with_pad, 0, CIFS_ENCPWD_SIZE);
  212. if (password)
  213. strncpy(password_with_pad, password, CIFS_ENCPWD_SIZE);
  214. if (!encrypt && global_secflags & CIFSSEC_MAY_PLNTXT) {
  215. memset(lnm_session_key, 0, CIFS_SESS_KEY_SIZE);
  216. memcpy(lnm_session_key, password_with_pad,
  217. CIFS_ENCPWD_SIZE);
  218. return 0;
  219. }
  220. /* calculate old style session key */
  221. /* calling toupper is less broken than repeatedly
  222. calling nls_toupper would be since that will never
  223. work for UTF8, but neither handles multibyte code pages
  224. but the only alternative would be converting to UCS-16 (Unicode)
  225. (using a routine something like UniStrupr) then
  226. uppercasing and then converting back from Unicode - which
  227. would only worth doing it if we knew it were utf8. Basically
  228. utf8 and other multibyte codepages each need their own strupper
  229. function since a byte at a time will ont work. */
  230. for (i = 0; i < CIFS_ENCPWD_SIZE; i++)
  231. password_with_pad[i] = toupper(password_with_pad[i]);
  232. rc = SMBencrypt(password_with_pad, cryptkey, lnm_session_key);
  233. return rc;
  234. }
  235. #endif /* CIFS_WEAK_PW_HASH */
  236. /* Build a proper attribute value/target info pairs blob.
  237. * Fill in netbios and dns domain name and workstation name
  238. * and client time (total five av pairs and + one end of fields indicator.
  239. * Allocate domain name which gets freed when session struct is deallocated.
  240. */
  241. static int
  242. build_avpair_blob(struct cifs_ses *ses, const struct nls_table *nls_cp)
  243. {
  244. unsigned int dlen;
  245. unsigned int size = 2 * sizeof(struct ntlmssp2_name);
  246. char *defdmname = "WORKGROUP";
  247. unsigned char *blobptr;
  248. struct ntlmssp2_name *attrptr;
  249. if (!ses->domainName) {
  250. ses->domainName = kstrdup(defdmname, GFP_KERNEL);
  251. if (!ses->domainName)
  252. return -ENOMEM;
  253. }
  254. dlen = strlen(ses->domainName);
  255. /*
  256. * The length of this blob is two times the size of a
  257. * structure (av pair) which holds name/size
  258. * ( for NTLMSSP_AV_NB_DOMAIN_NAME followed by NTLMSSP_AV_EOL ) +
  259. * unicode length of a netbios domain name
  260. */
  261. ses->auth_key.len = size + 2 * dlen;
  262. ses->auth_key.response = kzalloc(ses->auth_key.len, GFP_KERNEL);
  263. if (!ses->auth_key.response) {
  264. ses->auth_key.len = 0;
  265. cERROR(1, "Challenge target info allocation failure");
  266. return -ENOMEM;
  267. }
  268. blobptr = ses->auth_key.response;
  269. attrptr = (struct ntlmssp2_name *) blobptr;
  270. /*
  271. * As defined in MS-NTLM 3.3.2, just this av pair field
  272. * is sufficient as part of the temp
  273. */
  274. attrptr->type = cpu_to_le16(NTLMSSP_AV_NB_DOMAIN_NAME);
  275. attrptr->length = cpu_to_le16(2 * dlen);
  276. blobptr = (unsigned char *)attrptr + sizeof(struct ntlmssp2_name);
  277. cifs_strtoUTF16((__le16 *)blobptr, ses->domainName, dlen, nls_cp);
  278. return 0;
  279. }
  280. /* Server has provided av pairs/target info in the type 2 challenge
  281. * packet and we have plucked it and stored within smb session.
  282. * We parse that blob here to find netbios domain name to be used
  283. * as part of ntlmv2 authentication (in Target String), if not already
  284. * specified on the command line.
  285. * If this function returns without any error but without fetching
  286. * domain name, authentication may fail against some server but
  287. * may not fail against other (those who are not very particular
  288. * about target string i.e. for some, just user name might suffice.
  289. */
  290. static int
  291. find_domain_name(struct cifs_ses *ses, const struct nls_table *nls_cp)
  292. {
  293. unsigned int attrsize;
  294. unsigned int type;
  295. unsigned int onesize = sizeof(struct ntlmssp2_name);
  296. unsigned char *blobptr;
  297. unsigned char *blobend;
  298. struct ntlmssp2_name *attrptr;
  299. if (!ses->auth_key.len || !ses->auth_key.response)
  300. return 0;
  301. blobptr = ses->auth_key.response;
  302. blobend = blobptr + ses->auth_key.len;
  303. while (blobptr + onesize < blobend) {
  304. attrptr = (struct ntlmssp2_name *) blobptr;
  305. type = le16_to_cpu(attrptr->type);
  306. if (type == NTLMSSP_AV_EOL)
  307. break;
  308. blobptr += 2; /* advance attr type */
  309. attrsize = le16_to_cpu(attrptr->length);
  310. blobptr += 2; /* advance attr size */
  311. if (blobptr + attrsize > blobend)
  312. break;
  313. if (type == NTLMSSP_AV_NB_DOMAIN_NAME) {
  314. if (!attrsize)
  315. break;
  316. if (!ses->domainName) {
  317. ses->domainName =
  318. kmalloc(attrsize + 1, GFP_KERNEL);
  319. if (!ses->domainName)
  320. return -ENOMEM;
  321. cifs_from_utf16(ses->domainName,
  322. (__le16 *)blobptr, attrsize, attrsize,
  323. nls_cp, false);
  324. break;
  325. }
  326. }
  327. blobptr += attrsize; /* advance attr value */
  328. }
  329. return 0;
  330. }
  331. static int calc_ntlmv2_hash(struct cifs_ses *ses, char *ntlmv2_hash,
  332. const struct nls_table *nls_cp)
  333. {
  334. int rc = 0;
  335. int len;
  336. char nt_hash[CIFS_NTHASH_SIZE];
  337. wchar_t *user;
  338. wchar_t *domain;
  339. wchar_t *server;
  340. if (!ses->server->secmech.sdeschmacmd5) {
  341. cERROR(1, "calc_ntlmv2_hash: can't generate ntlmv2 hash\n");
  342. return -1;
  343. }
  344. /* calculate md4 hash of password */
  345. E_md4hash(ses->password, nt_hash, nls_cp);
  346. rc = crypto_shash_setkey(ses->server->secmech.hmacmd5, nt_hash,
  347. CIFS_NTHASH_SIZE);
  348. if (rc) {
  349. cERROR(1, "%s: Could not set NT Hash as a key", __func__);
  350. return rc;
  351. }
  352. rc = crypto_shash_init(&ses->server->secmech.sdeschmacmd5->shash);
  353. if (rc) {
  354. cERROR(1, "calc_ntlmv2_hash: could not init hmacmd5\n");
  355. return rc;
  356. }
  357. /* convert ses->user_name to unicode and uppercase */
  358. len = ses->user_name ? strlen(ses->user_name) : 0;
  359. user = kmalloc(2 + (len * 2), GFP_KERNEL);
  360. if (user == NULL) {
  361. cERROR(1, "calc_ntlmv2_hash: user mem alloc failure\n");
  362. rc = -ENOMEM;
  363. return rc;
  364. }
  365. if (len) {
  366. len = cifs_strtoUTF16((__le16 *)user, ses->user_name, len, nls_cp);
  367. UniStrupr(user);
  368. } else {
  369. memset(user, '\0', 2);
  370. }
  371. rc = crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
  372. (char *)user, 2 * len);
  373. kfree(user);
  374. if (rc) {
  375. cERROR(1, "%s: Could not update with user\n", __func__);
  376. return rc;
  377. }
  378. /* convert ses->domainName to unicode and uppercase */
  379. if (ses->domainName) {
  380. len = strlen(ses->domainName);
  381. domain = kmalloc(2 + (len * 2), GFP_KERNEL);
  382. if (domain == NULL) {
  383. cERROR(1, "calc_ntlmv2_hash: domain mem alloc failure");
  384. rc = -ENOMEM;
  385. return rc;
  386. }
  387. len = cifs_strtoUTF16((__le16 *)domain, ses->domainName, len,
  388. nls_cp);
  389. rc =
  390. crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
  391. (char *)domain, 2 * len);
  392. kfree(domain);
  393. if (rc) {
  394. cERROR(1, "%s: Could not update with domain\n",
  395. __func__);
  396. return rc;
  397. }
  398. } else if (ses->serverName) {
  399. len = strlen(ses->serverName);
  400. server = kmalloc(2 + (len * 2), GFP_KERNEL);
  401. if (server == NULL) {
  402. cERROR(1, "calc_ntlmv2_hash: server mem alloc failure");
  403. rc = -ENOMEM;
  404. return rc;
  405. }
  406. len = cifs_strtoUTF16((__le16 *)server, ses->serverName, len,
  407. nls_cp);
  408. rc =
  409. crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
  410. (char *)server, 2 * len);
  411. kfree(server);
  412. if (rc) {
  413. cERROR(1, "%s: Could not update with server\n",
  414. __func__);
  415. return rc;
  416. }
  417. }
  418. rc = crypto_shash_final(&ses->server->secmech.sdeschmacmd5->shash,
  419. ntlmv2_hash);
  420. if (rc)
  421. cERROR(1, "%s: Could not generate md5 hash\n", __func__);
  422. return rc;
  423. }
  424. static int
  425. CalcNTLMv2_response(const struct cifs_ses *ses, char *ntlmv2_hash)
  426. {
  427. int rc;
  428. unsigned int offset = CIFS_SESS_KEY_SIZE + 8;
  429. if (!ses->server->secmech.sdeschmacmd5) {
  430. cERROR(1, "calc_ntlmv2_hash: can't generate ntlmv2 hash\n");
  431. return -1;
  432. }
  433. rc = crypto_shash_setkey(ses->server->secmech.hmacmd5,
  434. ntlmv2_hash, CIFS_HMAC_MD5_HASH_SIZE);
  435. if (rc) {
  436. cERROR(1, "%s: Could not set NTLMV2 Hash as a key", __func__);
  437. return rc;
  438. }
  439. rc = crypto_shash_init(&ses->server->secmech.sdeschmacmd5->shash);
  440. if (rc) {
  441. cERROR(1, "CalcNTLMv2_response: could not init hmacmd5");
  442. return rc;
  443. }
  444. if (ses->server->secType == RawNTLMSSP)
  445. memcpy(ses->auth_key.response + offset,
  446. ses->ntlmssp->cryptkey, CIFS_SERVER_CHALLENGE_SIZE);
  447. else
  448. memcpy(ses->auth_key.response + offset,
  449. ses->server->cryptkey, CIFS_SERVER_CHALLENGE_SIZE);
  450. rc = crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
  451. ses->auth_key.response + offset, ses->auth_key.len - offset);
  452. if (rc) {
  453. cERROR(1, "%s: Could not update with response\n", __func__);
  454. return rc;
  455. }
  456. rc = crypto_shash_final(&ses->server->secmech.sdeschmacmd5->shash,
  457. ses->auth_key.response + CIFS_SESS_KEY_SIZE);
  458. if (rc)
  459. cERROR(1, "%s: Could not generate md5 hash\n", __func__);
  460. return rc;
  461. }
  462. int
  463. setup_ntlmv2_rsp(struct cifs_ses *ses, const struct nls_table *nls_cp)
  464. {
  465. int rc;
  466. int baselen;
  467. unsigned int tilen;
  468. struct ntlmv2_resp *buf;
  469. char ntlmv2_hash[16];
  470. unsigned char *tiblob = NULL; /* target info blob */
  471. if (ses->server->secType == RawNTLMSSP) {
  472. if (!ses->domainName) {
  473. rc = find_domain_name(ses, nls_cp);
  474. if (rc) {
  475. cERROR(1, "error %d finding domain name", rc);
  476. goto setup_ntlmv2_rsp_ret;
  477. }
  478. }
  479. } else {
  480. rc = build_avpair_blob(ses, nls_cp);
  481. if (rc) {
  482. cERROR(1, "error %d building av pair blob", rc);
  483. goto setup_ntlmv2_rsp_ret;
  484. }
  485. }
  486. baselen = CIFS_SESS_KEY_SIZE + sizeof(struct ntlmv2_resp);
  487. tilen = ses->auth_key.len;
  488. tiblob = ses->auth_key.response;
  489. ses->auth_key.response = kmalloc(baselen + tilen, GFP_KERNEL);
  490. if (!ses->auth_key.response) {
  491. rc = ENOMEM;
  492. ses->auth_key.len = 0;
  493. cERROR(1, "%s: Can't allocate auth blob", __func__);
  494. goto setup_ntlmv2_rsp_ret;
  495. }
  496. ses->auth_key.len += baselen;
  497. buf = (struct ntlmv2_resp *)
  498. (ses->auth_key.response + CIFS_SESS_KEY_SIZE);
  499. buf->blob_signature = cpu_to_le32(0x00000101);
  500. buf->reserved = 0;
  501. buf->time = cpu_to_le64(cifs_UnixTimeToNT(CURRENT_TIME));
  502. get_random_bytes(&buf->client_chal, sizeof(buf->client_chal));
  503. buf->reserved2 = 0;
  504. memcpy(ses->auth_key.response + baselen, tiblob, tilen);
  505. /* calculate ntlmv2_hash */
  506. rc = calc_ntlmv2_hash(ses, ntlmv2_hash, nls_cp);
  507. if (rc) {
  508. cERROR(1, "could not get v2 hash rc %d", rc);
  509. goto setup_ntlmv2_rsp_ret;
  510. }
  511. /* calculate first part of the client response (CR1) */
  512. rc = CalcNTLMv2_response(ses, ntlmv2_hash);
  513. if (rc) {
  514. cERROR(1, "Could not calculate CR1 rc: %d", rc);
  515. goto setup_ntlmv2_rsp_ret;
  516. }
  517. /* now calculate the session key for NTLMv2 */
  518. rc = crypto_shash_setkey(ses->server->secmech.hmacmd5,
  519. ntlmv2_hash, CIFS_HMAC_MD5_HASH_SIZE);
  520. if (rc) {
  521. cERROR(1, "%s: Could not set NTLMV2 Hash as a key", __func__);
  522. goto setup_ntlmv2_rsp_ret;
  523. }
  524. rc = crypto_shash_init(&ses->server->secmech.sdeschmacmd5->shash);
  525. if (rc) {
  526. cERROR(1, "%s: Could not init hmacmd5\n", __func__);
  527. goto setup_ntlmv2_rsp_ret;
  528. }
  529. rc = crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
  530. ses->auth_key.response + CIFS_SESS_KEY_SIZE,
  531. CIFS_HMAC_MD5_HASH_SIZE);
  532. if (rc) {
  533. cERROR(1, "%s: Could not update with response\n", __func__);
  534. goto setup_ntlmv2_rsp_ret;
  535. }
  536. rc = crypto_shash_final(&ses->server->secmech.sdeschmacmd5->shash,
  537. ses->auth_key.response);
  538. if (rc)
  539. cERROR(1, "%s: Could not generate md5 hash\n", __func__);
  540. setup_ntlmv2_rsp_ret:
  541. kfree(tiblob);
  542. return rc;
  543. }
  544. int
  545. calc_seckey(struct cifs_ses *ses)
  546. {
  547. int rc;
  548. struct crypto_blkcipher *tfm_arc4;
  549. struct scatterlist sgin, sgout;
  550. struct blkcipher_desc desc;
  551. unsigned char sec_key[CIFS_SESS_KEY_SIZE]; /* a nonce */
  552. get_random_bytes(sec_key, CIFS_SESS_KEY_SIZE);
  553. tfm_arc4 = crypto_alloc_blkcipher("ecb(arc4)", 0, CRYPTO_ALG_ASYNC);
  554. if (IS_ERR(tfm_arc4)) {
  555. rc = PTR_ERR(tfm_arc4);
  556. cERROR(1, "could not allocate crypto API arc4\n");
  557. return rc;
  558. }
  559. desc.tfm = tfm_arc4;
  560. rc = crypto_blkcipher_setkey(tfm_arc4, ses->auth_key.response,
  561. CIFS_SESS_KEY_SIZE);
  562. if (rc) {
  563. cERROR(1, "%s: Could not set response as a key", __func__);
  564. return rc;
  565. }
  566. sg_init_one(&sgin, sec_key, CIFS_SESS_KEY_SIZE);
  567. sg_init_one(&sgout, ses->ntlmssp->ciphertext, CIFS_CPHTXT_SIZE);
  568. rc = crypto_blkcipher_encrypt(&desc, &sgout, &sgin, CIFS_CPHTXT_SIZE);
  569. if (rc) {
  570. cERROR(1, "could not encrypt session key rc: %d\n", rc);
  571. crypto_free_blkcipher(tfm_arc4);
  572. return rc;
  573. }
  574. /* make secondary_key/nonce as session key */
  575. memcpy(ses->auth_key.response, sec_key, CIFS_SESS_KEY_SIZE);
  576. /* and make len as that of session key only */
  577. ses->auth_key.len = CIFS_SESS_KEY_SIZE;
  578. crypto_free_blkcipher(tfm_arc4);
  579. return rc;
  580. }
  581. void
  582. cifs_crypto_shash_release(struct TCP_Server_Info *server)
  583. {
  584. if (server->secmech.md5)
  585. crypto_free_shash(server->secmech.md5);
  586. if (server->secmech.hmacmd5)
  587. crypto_free_shash(server->secmech.hmacmd5);
  588. kfree(server->secmech.sdeschmacmd5);
  589. kfree(server->secmech.sdescmd5);
  590. }
  591. int
  592. cifs_crypto_shash_allocate(struct TCP_Server_Info *server)
  593. {
  594. int rc;
  595. unsigned int size;
  596. server->secmech.hmacmd5 = crypto_alloc_shash("hmac(md5)", 0, 0);
  597. if (IS_ERR(server->secmech.hmacmd5)) {
  598. cERROR(1, "could not allocate crypto hmacmd5\n");
  599. return PTR_ERR(server->secmech.hmacmd5);
  600. }
  601. server->secmech.md5 = crypto_alloc_shash("md5", 0, 0);
  602. if (IS_ERR(server->secmech.md5)) {
  603. cERROR(1, "could not allocate crypto md5\n");
  604. rc = PTR_ERR(server->secmech.md5);
  605. goto crypto_allocate_md5_fail;
  606. }
  607. size = sizeof(struct shash_desc) +
  608. crypto_shash_descsize(server->secmech.hmacmd5);
  609. server->secmech.sdeschmacmd5 = kmalloc(size, GFP_KERNEL);
  610. if (!server->secmech.sdeschmacmd5) {
  611. cERROR(1, "cifs_crypto_shash_allocate: can't alloc hmacmd5\n");
  612. rc = -ENOMEM;
  613. goto crypto_allocate_hmacmd5_sdesc_fail;
  614. }
  615. server->secmech.sdeschmacmd5->shash.tfm = server->secmech.hmacmd5;
  616. server->secmech.sdeschmacmd5->shash.flags = 0x0;
  617. size = sizeof(struct shash_desc) +
  618. crypto_shash_descsize(server->secmech.md5);
  619. server->secmech.sdescmd5 = kmalloc(size, GFP_KERNEL);
  620. if (!server->secmech.sdescmd5) {
  621. cERROR(1, "cifs_crypto_shash_allocate: can't alloc md5\n");
  622. rc = -ENOMEM;
  623. goto crypto_allocate_md5_sdesc_fail;
  624. }
  625. server->secmech.sdescmd5->shash.tfm = server->secmech.md5;
  626. server->secmech.sdescmd5->shash.flags = 0x0;
  627. return 0;
  628. crypto_allocate_md5_sdesc_fail:
  629. kfree(server->secmech.sdeschmacmd5);
  630. crypto_allocate_hmacmd5_sdesc_fail:
  631. crypto_free_shash(server->secmech.md5);
  632. crypto_allocate_md5_fail:
  633. crypto_free_shash(server->secmech.hmacmd5);
  634. return rc;
  635. }