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v3.5.6
  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
 22#include <linux/fs.h>
 23#include <linux/slab.h>
 24#include "cifspdu.h"
 25#include "cifsglob.h"
 26#include "cifs_debug.h"
 27#include "cifs_unicode.h"
 28#include "cifsproto.h"
 29#include "ntlmssp.h"
 30#include <linux/ctype.h>
 31#include <linux/random.h>
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 32
 33/*
 34 * Calculate and return the CIFS signature based on the mac key and SMB PDU.
 35 * The 16 byte signature must be allocated by the caller. Note we only use the
 36 * 1st eight bytes and that the smb header signature field on input contains
 37 * the sequence number before this function is called. Also, this function
 38 * should be called with the server->srv_mutex held.
 39 */
 40static int cifs_calc_signature(const struct kvec *iov, int n_vec,
 41			struct TCP_Server_Info *server, char *signature)
 42{
 43	int i;
 44	int rc;
 45
 46	if (iov == NULL || signature == NULL || server == NULL)
 47		return -EINVAL;
 48
 49	if (!server->secmech.sdescmd5) {
 50		cERROR(1, "%s: Can't generate signature\n", __func__);
 
 51		return -1;
 52	}
 53
 54	rc = crypto_shash_init(&server->secmech.sdescmd5->shash);
 55	if (rc) {
 56		cERROR(1, "%s: Could not init md5\n", __func__);
 57		return rc;
 58	}
 59
 60	rc = crypto_shash_update(&server->secmech.sdescmd5->shash,
 61		server->session_key.response, server->session_key.len);
 62	if (rc) {
 63		cERROR(1, "%s: Could not update with response\n", __func__);
 64		return rc;
 65	}
 66
 67	for (i = 0; i < n_vec; i++) {
 68		if (iov[i].iov_len == 0)
 69			continue;
 70		if (iov[i].iov_base == NULL) {
 71			cERROR(1, "null iovec entry");
 72			return -EIO;
 73		}
 74		/* The first entry includes a length field (which does not get
 75		   signed that occupies the first 4 bytes before the header */
 76		if (i == 0) {
 77			if (iov[0].iov_len <= 8) /* cmd field at offset 9 */
 78				break; /* nothing to sign or corrupt header */
 79			rc =
 80			crypto_shash_update(&server->secmech.sdescmd5->shash,
 81				iov[i].iov_base + 4, iov[i].iov_len - 4);
 82		} else {
 83			rc =
 84			crypto_shash_update(&server->secmech.sdescmd5->shash,
 85				iov[i].iov_base, iov[i].iov_len);
 86		}
 87		if (rc) {
 88			cERROR(1, "%s: Could not update with payload\n",
 89							__func__);
 90			return rc;
 91		}
 92	}
 93
 94	rc = crypto_shash_final(&server->secmech.sdescmd5->shash, signature);
 95	if (rc)
 96		cERROR(1, "%s: Could not generate md5 hash\n", __func__);
 97
 98	return rc;
 99}
100
101/* must be called with server->srv_mutex held */
102int cifs_sign_smb2(struct kvec *iov, int n_vec, struct TCP_Server_Info *server,
103		   __u32 *pexpected_response_sequence_number)
104{
105	int rc = 0;
106	char smb_signature[20];
107	struct smb_hdr *cifs_pdu = (struct smb_hdr *)iov[0].iov_base;
 
 
 
 
108
109	if ((cifs_pdu == NULL) || (server == NULL))
110		return -EINVAL;
111
112	if (!(cifs_pdu->Flags2 & SMBFLG2_SECURITY_SIGNATURE) ||
113	    server->tcpStatus == CifsNeedNegotiate)
114		return rc;
115
116	if (!server->session_estab) {
117		memcpy(cifs_pdu->Signature.SecuritySignature, "BSRSPYL", 8);
118		return rc;
119	}
120
121	cifs_pdu->Signature.Sequence.SequenceNumber =
122				cpu_to_le32(server->sequence_number);
123	cifs_pdu->Signature.Sequence.Reserved = 0;
124
125	*pexpected_response_sequence_number = server->sequence_number++;
126	server->sequence_number++;
127
128	rc = cifs_calc_signature(iov, n_vec, server, smb_signature);
129	if (rc)
130		memset(cifs_pdu->Signature.SecuritySignature, 0, 8);
131	else
132		memcpy(cifs_pdu->Signature.SecuritySignature, smb_signature, 8);
133
134	return rc;
135}
136
 
 
 
 
 
 
 
 
 
137/* must be called with server->srv_mutex held */
138int cifs_sign_smb(struct smb_hdr *cifs_pdu, struct TCP_Server_Info *server,
139		  __u32 *pexpected_response_sequence_number)
140{
141	struct kvec iov;
142
143	iov.iov_base = cifs_pdu;
144	iov.iov_len = be32_to_cpu(cifs_pdu->smb_buf_length) + 4;
 
 
145
146	return cifs_sign_smb2(&iov, 1, server,
147			      pexpected_response_sequence_number);
148}
149
150int cifs_verify_signature(struct kvec *iov, unsigned int nr_iov,
151			  struct TCP_Server_Info *server,
152			  __u32 expected_sequence_number)
153{
154	unsigned int rc;
155	char server_response_sig[8];
156	char what_we_think_sig_should_be[20];
157	struct smb_hdr *cifs_pdu = (struct smb_hdr *)iov[0].iov_base;
 
 
 
 
158
159	if (cifs_pdu == NULL || server == NULL)
160		return -EINVAL;
161
162	if (!server->session_estab)
163		return 0;
164
165	if (cifs_pdu->Command == SMB_COM_LOCKING_ANDX) {
166		struct smb_com_lock_req *pSMB =
167			(struct smb_com_lock_req *)cifs_pdu;
168	    if (pSMB->LockType & LOCKING_ANDX_OPLOCK_RELEASE)
169			return 0;
170	}
171
172	/* BB what if signatures are supposed to be on for session but
173	   server does not send one? BB */
174
175	/* Do not need to verify session setups with signature "BSRSPYL "  */
176	if (memcmp(cifs_pdu->Signature.SecuritySignature, "BSRSPYL ", 8) == 0)
177		cFYI(1, "dummy signature received for smb command 0x%x",
178			cifs_pdu->Command);
179
180	/* save off the origiginal signature so we can modify the smb and check
181		its signature against what the server sent */
182	memcpy(server_response_sig, cifs_pdu->Signature.SecuritySignature, 8);
183
184	cifs_pdu->Signature.Sequence.SequenceNumber =
185					cpu_to_le32(expected_sequence_number);
186	cifs_pdu->Signature.Sequence.Reserved = 0;
187
188	mutex_lock(&server->srv_mutex);
189	rc = cifs_calc_signature(iov, nr_iov, server,
190				 what_we_think_sig_should_be);
191	mutex_unlock(&server->srv_mutex);
192
193	if (rc)
194		return rc;
195
196/*	cifs_dump_mem("what we think it should be: ",
197		      what_we_think_sig_should_be, 16); */
198
199	if (memcmp(server_response_sig, what_we_think_sig_should_be, 8))
200		return -EACCES;
201	else
202		return 0;
203
204}
205
206/* first calculate 24 bytes ntlm response and then 16 byte session key */
207int setup_ntlm_response(struct cifs_ses *ses, const struct nls_table *nls_cp)
208{
209	int rc = 0;
210	unsigned int temp_len = CIFS_SESS_KEY_SIZE + CIFS_AUTH_RESP_SIZE;
211	char temp_key[CIFS_SESS_KEY_SIZE];
212
213	if (!ses)
214		return -EINVAL;
215
216	ses->auth_key.response = kmalloc(temp_len, GFP_KERNEL);
217	if (!ses->auth_key.response) {
218		cERROR(1, "NTLM can't allocate (%u bytes) memory", temp_len);
219		return -ENOMEM;
220	}
221	ses->auth_key.len = temp_len;
222
223	rc = SMBNTencrypt(ses->password, ses->server->cryptkey,
224			ses->auth_key.response + CIFS_SESS_KEY_SIZE, nls_cp);
225	if (rc) {
226		cFYI(1, "%s Can't generate NTLM response, error: %d",
227			__func__, rc);
228		return rc;
229	}
230
231	rc = E_md4hash(ses->password, temp_key, nls_cp);
232	if (rc) {
233		cFYI(1, "%s Can't generate NT hash, error: %d", __func__, rc);
 
234		return rc;
235	}
236
237	rc = mdfour(ses->auth_key.response, temp_key, CIFS_SESS_KEY_SIZE);
238	if (rc)
239		cFYI(1, "%s Can't generate NTLM session key, error: %d",
240			__func__, rc);
241
242	return rc;
243}
244
245#ifdef CONFIG_CIFS_WEAK_PW_HASH
246int calc_lanman_hash(const char *password, const char *cryptkey, bool encrypt,
247			char *lnm_session_key)
248{
249	int i;
250	int rc;
251	char password_with_pad[CIFS_ENCPWD_SIZE];
 
 
 
 
 
252
253	memset(password_with_pad, 0, CIFS_ENCPWD_SIZE);
254	if (password)
255		strncpy(password_with_pad, password, CIFS_ENCPWD_SIZE);
256
257	if (!encrypt && global_secflags & CIFSSEC_MAY_PLNTXT) {
258		memset(lnm_session_key, 0, CIFS_SESS_KEY_SIZE);
259		memcpy(lnm_session_key, password_with_pad,
260			CIFS_ENCPWD_SIZE);
261		return 0;
262	}
263
264	/* calculate old style session key */
265	/* calling toupper is less broken than repeatedly
266	calling nls_toupper would be since that will never
267	work for UTF8, but neither handles multibyte code pages
268	but the only alternative would be converting to UCS-16 (Unicode)
269	(using a routine something like UniStrupr) then
270	uppercasing and then converting back from Unicode - which
271	would only worth doing it if we knew it were utf8. Basically
272	utf8 and other multibyte codepages each need their own strupper
273	function since a byte at a time will ont work. */
274
275	for (i = 0; i < CIFS_ENCPWD_SIZE; i++)
276		password_with_pad[i] = toupper(password_with_pad[i]);
277
278	rc = SMBencrypt(password_with_pad, cryptkey, lnm_session_key);
279
280	return rc;
281}
282#endif /* CIFS_WEAK_PW_HASH */
283
284/* Build a proper attribute value/target info pairs blob.
285 * Fill in netbios and dns domain name and workstation name
286 * and client time (total five av pairs and + one end of fields indicator.
287 * Allocate domain name which gets freed when session struct is deallocated.
288 */
289static int
290build_avpair_blob(struct cifs_ses *ses, const struct nls_table *nls_cp)
291{
292	unsigned int dlen;
293	unsigned int size = 2 * sizeof(struct ntlmssp2_name);
294	char *defdmname = "WORKGROUP";
295	unsigned char *blobptr;
296	struct ntlmssp2_name *attrptr;
297
298	if (!ses->domainName) {
299		ses->domainName = kstrdup(defdmname, GFP_KERNEL);
300		if (!ses->domainName)
301			return -ENOMEM;
302	}
303
304	dlen = strlen(ses->domainName);
305
306	/*
307	 * The length of this blob is two times the size of a
308	 * structure (av pair) which holds name/size
309	 * ( for NTLMSSP_AV_NB_DOMAIN_NAME followed by NTLMSSP_AV_EOL ) +
310	 * unicode length of a netbios domain name
311	 */
312	ses->auth_key.len = size + 2 * dlen;
313	ses->auth_key.response = kzalloc(ses->auth_key.len, GFP_KERNEL);
314	if (!ses->auth_key.response) {
315		ses->auth_key.len = 0;
316		cERROR(1, "Challenge target info allocation failure");
317		return -ENOMEM;
318	}
319
320	blobptr = ses->auth_key.response;
321	attrptr = (struct ntlmssp2_name *) blobptr;
322
323	/*
324	 * As defined in MS-NTLM 3.3.2, just this av pair field
325	 * is sufficient as part of the temp
326	 */
327	attrptr->type = cpu_to_le16(NTLMSSP_AV_NB_DOMAIN_NAME);
328	attrptr->length = cpu_to_le16(2 * dlen);
329	blobptr = (unsigned char *)attrptr + sizeof(struct ntlmssp2_name);
330	cifs_strtoUTF16((__le16 *)blobptr, ses->domainName, dlen, nls_cp);
331
332	return 0;
333}
334
335/* Server has provided av pairs/target info in the type 2 challenge
336 * packet and we have plucked it and stored within smb session.
337 * We parse that blob here to find netbios domain name to be used
338 * as part of ntlmv2 authentication (in Target String), if not already
339 * specified on the command line.
340 * If this function returns without any error but without fetching
341 * domain name, authentication may fail against some server but
342 * may not fail against other (those who are not very particular
343 * about target string i.e. for some, just user name might suffice.
344 */
345static int
346find_domain_name(struct cifs_ses *ses, const struct nls_table *nls_cp)
347{
348	unsigned int attrsize;
349	unsigned int type;
350	unsigned int onesize = sizeof(struct ntlmssp2_name);
351	unsigned char *blobptr;
352	unsigned char *blobend;
353	struct ntlmssp2_name *attrptr;
354
355	if (!ses->auth_key.len || !ses->auth_key.response)
356		return 0;
357
358	blobptr = ses->auth_key.response;
359	blobend = blobptr + ses->auth_key.len;
360
361	while (blobptr + onesize < blobend) {
362		attrptr = (struct ntlmssp2_name *) blobptr;
363		type = le16_to_cpu(attrptr->type);
364		if (type == NTLMSSP_AV_EOL)
365			break;
366		blobptr += 2; /* advance attr type */
367		attrsize = le16_to_cpu(attrptr->length);
368		blobptr += 2; /* advance attr size */
369		if (blobptr + attrsize > blobend)
370			break;
371		if (type == NTLMSSP_AV_NB_DOMAIN_NAME) {
372			if (!attrsize)
373				break;
374			if (!ses->domainName) {
375				ses->domainName =
376					kmalloc(attrsize + 1, GFP_KERNEL);
377				if (!ses->domainName)
378						return -ENOMEM;
379				cifs_from_utf16(ses->domainName,
380					(__le16 *)blobptr, attrsize, attrsize,
381					nls_cp, false);
382				break;
383			}
384		}
385		blobptr += attrsize; /* advance attr  value */
386	}
387
388	return 0;
389}
390
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
391static int calc_ntlmv2_hash(struct cifs_ses *ses, char *ntlmv2_hash,
392			    const struct nls_table *nls_cp)
393{
394	int rc = 0;
395	int len;
396	char nt_hash[CIFS_NTHASH_SIZE];
397	wchar_t *user;
398	wchar_t *domain;
399	wchar_t *server;
400
401	if (!ses->server->secmech.sdeschmacmd5) {
402		cERROR(1, "calc_ntlmv2_hash: can't generate ntlmv2 hash\n");
403		return -1;
404	}
405
406	/* calculate md4 hash of password */
407	E_md4hash(ses->password, nt_hash, nls_cp);
408
409	rc = crypto_shash_setkey(ses->server->secmech.hmacmd5, nt_hash,
410				CIFS_NTHASH_SIZE);
411	if (rc) {
412		cERROR(1, "%s: Could not set NT Hash as a key", __func__);
413		return rc;
414	}
415
416	rc = crypto_shash_init(&ses->server->secmech.sdeschmacmd5->shash);
417	if (rc) {
418		cERROR(1, "calc_ntlmv2_hash: could not init hmacmd5\n");
419		return rc;
420	}
421
422	/* convert ses->user_name to unicode and uppercase */
423	len = ses->user_name ? strlen(ses->user_name) : 0;
424	user = kmalloc(2 + (len * 2), GFP_KERNEL);
425	if (user == NULL) {
426		cERROR(1, "calc_ntlmv2_hash: user mem alloc failure\n");
427		rc = -ENOMEM;
428		return rc;
429	}
430
431	if (len) {
432		len = cifs_strtoUTF16((__le16 *)user, ses->user_name, len, nls_cp);
433		UniStrupr(user);
434	} else {
435		memset(user, '\0', 2);
436	}
437
438	rc = crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
439				(char *)user, 2 * len);
440	kfree(user);
441	if (rc) {
442		cERROR(1, "%s: Could not update with user\n", __func__);
443		return rc;
444	}
445
446	/* convert ses->domainName to unicode and uppercase */
447	if (ses->domainName) {
448		len = strlen(ses->domainName);
449
450		domain = kmalloc(2 + (len * 2), GFP_KERNEL);
451		if (domain == NULL) {
452			cERROR(1, "calc_ntlmv2_hash: domain mem alloc failure");
453			rc = -ENOMEM;
454			return rc;
455		}
456		len = cifs_strtoUTF16((__le16 *)domain, ses->domainName, len,
457				      nls_cp);
458		rc =
459		crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
460					(char *)domain, 2 * len);
461		kfree(domain);
462		if (rc) {
463			cERROR(1, "%s: Could not update with domain\n",
464								__func__);
465			return rc;
466		}
467	} else if (ses->serverName) {
 
468		len = strlen(ses->serverName);
469
470		server = kmalloc(2 + (len * 2), GFP_KERNEL);
471		if (server == NULL) {
472			cERROR(1, "calc_ntlmv2_hash: server mem alloc failure");
473			rc = -ENOMEM;
474			return rc;
475		}
476		len = cifs_strtoUTF16((__le16 *)server, ses->serverName, len,
477					nls_cp);
478		rc =
479		crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
480					(char *)server, 2 * len);
481		kfree(server);
482		if (rc) {
483			cERROR(1, "%s: Could not update with server\n",
484								__func__);
485			return rc;
486		}
487	}
488
489	rc = crypto_shash_final(&ses->server->secmech.sdeschmacmd5->shash,
490					ntlmv2_hash);
491	if (rc)
492		cERROR(1, "%s: Could not generate md5 hash\n", __func__);
493
494	return rc;
495}
496
497static int
498CalcNTLMv2_response(const struct cifs_ses *ses, char *ntlmv2_hash)
499{
500	int rc;
501	unsigned int offset = CIFS_SESS_KEY_SIZE + 8;
 
 
 
 
 
 
502
503	if (!ses->server->secmech.sdeschmacmd5) {
504		cERROR(1, "calc_ntlmv2_hash: can't generate ntlmv2 hash\n");
505		return -1;
506	}
507
508	rc = crypto_shash_setkey(ses->server->secmech.hmacmd5,
509				ntlmv2_hash, CIFS_HMAC_MD5_HASH_SIZE);
510	if (rc) {
511		cERROR(1, "%s: Could not set NTLMV2 Hash as a key", __func__);
 
512		return rc;
513	}
514
515	rc = crypto_shash_init(&ses->server->secmech.sdeschmacmd5->shash);
516	if (rc) {
517		cERROR(1, "CalcNTLMv2_response: could not init hmacmd5");
518		return rc;
519	}
520
521	if (ses->server->secType == RawNTLMSSP)
522		memcpy(ses->auth_key.response + offset,
523			ses->ntlmssp->cryptkey, CIFS_SERVER_CHALLENGE_SIZE);
524	else
525		memcpy(ses->auth_key.response + offset,
526			ses->server->cryptkey, CIFS_SERVER_CHALLENGE_SIZE);
527	rc = crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
528		ses->auth_key.response + offset, ses->auth_key.len - offset);
529	if (rc) {
530		cERROR(1, "%s: Could not update with response\n", __func__);
531		return rc;
532	}
533
 
534	rc = crypto_shash_final(&ses->server->secmech.sdeschmacmd5->shash,
535		ses->auth_key.response + CIFS_SESS_KEY_SIZE);
536	if (rc)
537		cERROR(1, "%s: Could not generate md5 hash\n", __func__);
538
539	return rc;
540}
541
542
543int
544setup_ntlmv2_rsp(struct cifs_ses *ses, const struct nls_table *nls_cp)
545{
546	int rc;
547	int baselen;
548	unsigned int tilen;
549	struct ntlmv2_resp *buf;
550	char ntlmv2_hash[16];
551	unsigned char *tiblob = NULL; /* target info blob */
 
552
553	if (ses->server->secType == RawNTLMSSP) {
554		if (!ses->domainName) {
555			rc = find_domain_name(ses, nls_cp);
556			if (rc) {
557				cERROR(1, "error %d finding domain name", rc);
558				goto setup_ntlmv2_rsp_ret;
 
 
 
 
 
559			}
560		}
561	} else {
562		rc = build_avpair_blob(ses, nls_cp);
563		if (rc) {
564			cERROR(1, "error %d building av pair blob", rc);
565			goto setup_ntlmv2_rsp_ret;
566		}
567	}
568
 
 
 
 
 
 
569	baselen = CIFS_SESS_KEY_SIZE + sizeof(struct ntlmv2_resp);
570	tilen = ses->auth_key.len;
571	tiblob = ses->auth_key.response;
572
573	ses->auth_key.response = kmalloc(baselen + tilen, GFP_KERNEL);
574	if (!ses->auth_key.response) {
575		rc = ENOMEM;
576		ses->auth_key.len = 0;
577		cERROR(1, "%s: Can't allocate auth blob", __func__);
578		goto setup_ntlmv2_rsp_ret;
579	}
580	ses->auth_key.len += baselen;
581
582	buf = (struct ntlmv2_resp *)
583			(ses->auth_key.response + CIFS_SESS_KEY_SIZE);
584	buf->blob_signature = cpu_to_le32(0x00000101);
585	buf->reserved = 0;
586	buf->time = cpu_to_le64(cifs_UnixTimeToNT(CURRENT_TIME));
587	get_random_bytes(&buf->client_chal, sizeof(buf->client_chal));
588	buf->reserved2 = 0;
 
589
590	memcpy(ses->auth_key.response + baselen, tiblob, tilen);
591
 
 
 
 
 
 
 
 
 
592	/* calculate ntlmv2_hash */
593	rc = calc_ntlmv2_hash(ses, ntlmv2_hash, nls_cp);
594	if (rc) {
595		cERROR(1, "could not get v2 hash rc %d", rc);
596		goto setup_ntlmv2_rsp_ret;
597	}
598
599	/* calculate first part of the client response (CR1) */
600	rc = CalcNTLMv2_response(ses, ntlmv2_hash);
601	if (rc) {
602		cERROR(1, "Could not calculate CR1  rc: %d", rc);
603		goto setup_ntlmv2_rsp_ret;
604	}
605
606	/* now calculate the session key for NTLMv2 */
607	rc = crypto_shash_setkey(ses->server->secmech.hmacmd5,
608		ntlmv2_hash, CIFS_HMAC_MD5_HASH_SIZE);
609	if (rc) {
610		cERROR(1, "%s: Could not set NTLMV2 Hash as a key", __func__);
611		goto setup_ntlmv2_rsp_ret;
 
612	}
613
614	rc = crypto_shash_init(&ses->server->secmech.sdeschmacmd5->shash);
615	if (rc) {
616		cERROR(1, "%s: Could not init hmacmd5\n", __func__);
617		goto setup_ntlmv2_rsp_ret;
618	}
619
620	rc = crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
621		ses->auth_key.response + CIFS_SESS_KEY_SIZE,
622		CIFS_HMAC_MD5_HASH_SIZE);
623	if (rc) {
624		cERROR(1, "%s: Could not update with response\n", __func__);
625		goto setup_ntlmv2_rsp_ret;
626	}
627
628	rc = crypto_shash_final(&ses->server->secmech.sdeschmacmd5->shash,
629		ses->auth_key.response);
630	if (rc)
631		cERROR(1, "%s: Could not generate md5 hash\n", __func__);
632
 
 
633setup_ntlmv2_rsp_ret:
634	kfree(tiblob);
635
636	return rc;
637}
638
639int
640calc_seckey(struct cifs_ses *ses)
641{
642	int rc;
643	struct crypto_blkcipher *tfm_arc4;
644	struct scatterlist sgin, sgout;
645	struct blkcipher_desc desc;
646	unsigned char sec_key[CIFS_SESS_KEY_SIZE]; /* a nonce */
 
647
648	get_random_bytes(sec_key, CIFS_SESS_KEY_SIZE);
 
649
650	tfm_arc4 = crypto_alloc_blkcipher("ecb(arc4)", 0, CRYPTO_ALG_ASYNC);
651	if (IS_ERR(tfm_arc4)) {
652		rc = PTR_ERR(tfm_arc4);
653		cERROR(1, "could not allocate crypto API arc4\n");
654		return rc;
655	}
656
657	desc.tfm = tfm_arc4;
658
659	rc = crypto_blkcipher_setkey(tfm_arc4, ses->auth_key.response,
660					CIFS_SESS_KEY_SIZE);
661	if (rc) {
662		cERROR(1, "%s: Could not set response as a key", __func__);
663		return rc;
664	}
665
666	sg_init_one(&sgin, sec_key, CIFS_SESS_KEY_SIZE);
667	sg_init_one(&sgout, ses->ntlmssp->ciphertext, CIFS_CPHTXT_SIZE);
668
669	rc = crypto_blkcipher_encrypt(&desc, &sgout, &sgin, CIFS_CPHTXT_SIZE);
670	if (rc) {
671		cERROR(1, "could not encrypt session key rc: %d\n", rc);
672		crypto_free_blkcipher(tfm_arc4);
673		return rc;
674	}
675
676	/* make secondary_key/nonce as session key */
677	memcpy(ses->auth_key.response, sec_key, CIFS_SESS_KEY_SIZE);
678	/* and make len as that of session key only */
679	ses->auth_key.len = CIFS_SESS_KEY_SIZE;
680
681	crypto_free_blkcipher(tfm_arc4);
682
683	return rc;
684}
685
686void
687cifs_crypto_shash_release(struct TCP_Server_Info *server)
688{
689	if (server->secmech.md5)
690		crypto_free_shash(server->secmech.md5);
691
692	if (server->secmech.hmacmd5)
693		crypto_free_shash(server->secmech.hmacmd5);
694
695	kfree(server->secmech.sdeschmacmd5);
696
697	kfree(server->secmech.sdescmd5);
698}
 
 
699
700int
701cifs_crypto_shash_allocate(struct TCP_Server_Info *server)
702{
703	int rc;
704	unsigned int size;
705
706	server->secmech.hmacmd5 = crypto_alloc_shash("hmac(md5)", 0, 0);
707	if (IS_ERR(server->secmech.hmacmd5)) {
708		cERROR(1, "could not allocate crypto hmacmd5\n");
709		return PTR_ERR(server->secmech.hmacmd5);
710	}
711
712	server->secmech.md5 = crypto_alloc_shash("md5", 0, 0);
713	if (IS_ERR(server->secmech.md5)) {
714		cERROR(1, "could not allocate crypto md5\n");
715		rc = PTR_ERR(server->secmech.md5);
716		goto crypto_allocate_md5_fail;
717	}
718
719	size = sizeof(struct shash_desc) +
720			crypto_shash_descsize(server->secmech.hmacmd5);
721	server->secmech.sdeschmacmd5 = kmalloc(size, GFP_KERNEL);
722	if (!server->secmech.sdeschmacmd5) {
723		cERROR(1, "cifs_crypto_shash_allocate: can't alloc hmacmd5\n");
724		rc = -ENOMEM;
725		goto crypto_allocate_hmacmd5_sdesc_fail;
726	}
727	server->secmech.sdeschmacmd5->shash.tfm = server->secmech.hmacmd5;
728	server->secmech.sdeschmacmd5->shash.flags = 0x0;
729
 
 
 
 
730
731	size = sizeof(struct shash_desc) +
732			crypto_shash_descsize(server->secmech.md5);
733	server->secmech.sdescmd5 = kmalloc(size, GFP_KERNEL);
734	if (!server->secmech.sdescmd5) {
735		cERROR(1, "cifs_crypto_shash_allocate: can't alloc md5\n");
736		rc = -ENOMEM;
737		goto crypto_allocate_md5_sdesc_fail;
738	}
739	server->secmech.sdescmd5->shash.tfm = server->secmech.md5;
740	server->secmech.sdescmd5->shash.flags = 0x0;
741
742	return 0;
 
 
 
743
744crypto_allocate_md5_sdesc_fail:
 
 
 
745	kfree(server->secmech.sdeschmacmd5);
746
747crypto_allocate_hmacmd5_sdesc_fail:
748	crypto_free_shash(server->secmech.md5);
749
750crypto_allocate_md5_fail:
751	crypto_free_shash(server->secmech.hmacmd5);
752
753	return rc;
754}
v5.4
  1/*
  2 *   fs/cifs/cifsencrypt.c
  3 *
  4 *   Encryption and hashing operations relating to NTLM, NTLMv2.  See MS-NLMP
  5 *   for more detailed information
  6 *
  7 *   Copyright (C) International Business Machines  Corp., 2005,2013
  8 *   Author(s): Steve French (sfrench@us.ibm.com)
  9 *
 10 *   This library is free software; you can redistribute it and/or modify
 11 *   it under the terms of the GNU Lesser General Public License as published
 12 *   by the Free Software Foundation; either version 2.1 of the License, or
 13 *   (at your option) any later version.
 14 *
 15 *   This library is distributed in the hope that it will be useful,
 16 *   but WITHOUT ANY WARRANTY; without even the implied warranty of
 17 *   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See
 18 *   the GNU Lesser General Public License for more details.
 19 *
 20 *   You should have received a copy of the GNU Lesser General Public License
 21 *   along with this library; if not, write to the Free Software
 22 *   Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
 23 */
 24
 25#include <linux/fs.h>
 26#include <linux/slab.h>
 27#include "cifspdu.h"
 28#include "cifsglob.h"
 29#include "cifs_debug.h"
 30#include "cifs_unicode.h"
 31#include "cifsproto.h"
 32#include "ntlmssp.h"
 33#include <linux/ctype.h>
 34#include <linux/random.h>
 35#include <linux/highmem.h>
 36#include <linux/fips.h>
 37#include <crypto/arc4.h>
 38#include <crypto/aead.h>
 39
 40int __cifs_calc_signature(struct smb_rqst *rqst,
 41			struct TCP_Server_Info *server, char *signature,
 42			struct shash_desc *shash)
 43{
 44	int i;
 45	int rc;
 46	struct kvec *iov = rqst->rq_iov;
 47	int n_vec = rqst->rq_nvec;
 48	int is_smb2 = server->vals->header_preamble_size == 0;
 49
 50	/* iov[0] is actual data and not the rfc1002 length for SMB2+ */
 51	if (is_smb2) {
 52		if (iov[0].iov_len <= 4)
 53			return -EIO;
 54		i = 0;
 55	} else {
 56		if (n_vec < 2 || iov[0].iov_len != 4)
 57			return -EIO;
 58		i = 1; /* skip rfc1002 length */
 59	}
 60
 61	for (; i < n_vec; i++) {
 62		if (iov[i].iov_len == 0)
 63			continue;
 64		if (iov[i].iov_base == NULL) {
 65			cifs_dbg(VFS, "null iovec entry\n");
 66			return -EIO;
 67		}
 68
 69		rc = crypto_shash_update(shash,
 70					 iov[i].iov_base, iov[i].iov_len);
 71		if (rc) {
 72			cifs_dbg(VFS, "%s: Could not update with payload\n",
 73				 __func__);
 74			return rc;
 75		}
 76	}
 77
 78	/* now hash over the rq_pages array */
 79	for (i = 0; i < rqst->rq_npages; i++) {
 80		void *kaddr;
 81		unsigned int len, offset;
 82
 83		rqst_page_get_length(rqst, i, &len, &offset);
 84
 85		kaddr = (char *) kmap(rqst->rq_pages[i]) + offset;
 86
 87		rc = crypto_shash_update(shash, kaddr, len);
 88		if (rc) {
 89			cifs_dbg(VFS, "%s: Could not update with payload\n",
 90				 __func__);
 91			kunmap(rqst->rq_pages[i]);
 92			return rc;
 93		}
 94
 95		kunmap(rqst->rq_pages[i]);
 96	}
 97
 98	rc = crypto_shash_final(shash, signature);
 99	if (rc)
100		cifs_dbg(VFS, "%s: Could not generate hash\n", __func__);
101
102	return rc;
103}
104
105/*
106 * Calculate and return the CIFS signature based on the mac key and SMB PDU.
107 * The 16 byte signature must be allocated by the caller. Note we only use the
108 * 1st eight bytes and that the smb header signature field on input contains
109 * the sequence number before this function is called. Also, this function
110 * should be called with the server->srv_mutex held.
111 */
112static int cifs_calc_signature(struct smb_rqst *rqst,
113			struct TCP_Server_Info *server, char *signature)
114{
 
115	int rc;
116
117	if (!rqst->rq_iov || !signature || !server)
118		return -EINVAL;
119
120	rc = cifs_alloc_hash("md5", &server->secmech.md5,
121			     &server->secmech.sdescmd5);
122	if (rc)
123		return -1;
 
124
125	rc = crypto_shash_init(&server->secmech.sdescmd5->shash);
126	if (rc) {
127		cifs_dbg(VFS, "%s: Could not init md5\n", __func__);
128		return rc;
129	}
130
131	rc = crypto_shash_update(&server->secmech.sdescmd5->shash,
132		server->session_key.response, server->session_key.len);
133	if (rc) {
134		cifs_dbg(VFS, "%s: Could not update with response\n", __func__);
135		return rc;
136	}
137
138	return __cifs_calc_signature(rqst, server, signature,
139				     &server->secmech.sdescmd5->shash);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
140}
141
142/* must be called with server->srv_mutex held */
143int cifs_sign_rqst(struct smb_rqst *rqst, struct TCP_Server_Info *server,
144		   __u32 *pexpected_response_sequence_number)
145{
146	int rc = 0;
147	char smb_signature[20];
148	struct smb_hdr *cifs_pdu = (struct smb_hdr *)rqst->rq_iov[0].iov_base;
149
150	if (rqst->rq_iov[0].iov_len != 4 ||
151	    rqst->rq_iov[0].iov_base + 4 != rqst->rq_iov[1].iov_base)
152		return -EIO;
153
154	if ((cifs_pdu == NULL) || (server == NULL))
155		return -EINVAL;
156
157	if (!(cifs_pdu->Flags2 & SMBFLG2_SECURITY_SIGNATURE) ||
158	    server->tcpStatus == CifsNeedNegotiate)
159		return rc;
160
161	if (!server->session_estab) {
162		memcpy(cifs_pdu->Signature.SecuritySignature, "BSRSPYL", 8);
163		return rc;
164	}
165
166	cifs_pdu->Signature.Sequence.SequenceNumber =
167				cpu_to_le32(server->sequence_number);
168	cifs_pdu->Signature.Sequence.Reserved = 0;
169
170	*pexpected_response_sequence_number = ++server->sequence_number;
171	++server->sequence_number;
172
173	rc = cifs_calc_signature(rqst, server, smb_signature);
174	if (rc)
175		memset(cifs_pdu->Signature.SecuritySignature, 0, 8);
176	else
177		memcpy(cifs_pdu->Signature.SecuritySignature, smb_signature, 8);
178
179	return rc;
180}
181
182int cifs_sign_smbv(struct kvec *iov, int n_vec, struct TCP_Server_Info *server,
183		   __u32 *pexpected_response_sequence)
184{
185	struct smb_rqst rqst = { .rq_iov = iov,
186				 .rq_nvec = n_vec };
187
188	return cifs_sign_rqst(&rqst, server, pexpected_response_sequence);
189}
190
191/* must be called with server->srv_mutex held */
192int cifs_sign_smb(struct smb_hdr *cifs_pdu, struct TCP_Server_Info *server,
193		  __u32 *pexpected_response_sequence_number)
194{
195	struct kvec iov[2];
196
197	iov[0].iov_base = cifs_pdu;
198	iov[0].iov_len = 4;
199	iov[1].iov_base = (char *)cifs_pdu + 4;
200	iov[1].iov_len = be32_to_cpu(cifs_pdu->smb_buf_length);
201
202	return cifs_sign_smbv(iov, 2, server,
203			      pexpected_response_sequence_number);
204}
205
206int cifs_verify_signature(struct smb_rqst *rqst,
207			  struct TCP_Server_Info *server,
208			  __u32 expected_sequence_number)
209{
210	unsigned int rc;
211	char server_response_sig[8];
212	char what_we_think_sig_should_be[20];
213	struct smb_hdr *cifs_pdu = (struct smb_hdr *)rqst->rq_iov[0].iov_base;
214
215	if (rqst->rq_iov[0].iov_len != 4 ||
216	    rqst->rq_iov[0].iov_base + 4 != rqst->rq_iov[1].iov_base)
217		return -EIO;
218
219	if (cifs_pdu == NULL || server == NULL)
220		return -EINVAL;
221
222	if (!server->session_estab)
223		return 0;
224
225	if (cifs_pdu->Command == SMB_COM_LOCKING_ANDX) {
226		struct smb_com_lock_req *pSMB =
227			(struct smb_com_lock_req *)cifs_pdu;
228		if (pSMB->LockType & LOCKING_ANDX_OPLOCK_RELEASE)
229			return 0;
230	}
231
232	/* BB what if signatures are supposed to be on for session but
233	   server does not send one? BB */
234
235	/* Do not need to verify session setups with signature "BSRSPYL "  */
236	if (memcmp(cifs_pdu->Signature.SecuritySignature, "BSRSPYL ", 8) == 0)
237		cifs_dbg(FYI, "dummy signature received for smb command 0x%x\n",
238			 cifs_pdu->Command);
239
240	/* save off the origiginal signature so we can modify the smb and check
241		its signature against what the server sent */
242	memcpy(server_response_sig, cifs_pdu->Signature.SecuritySignature, 8);
243
244	cifs_pdu->Signature.Sequence.SequenceNumber =
245					cpu_to_le32(expected_sequence_number);
246	cifs_pdu->Signature.Sequence.Reserved = 0;
247
248	mutex_lock(&server->srv_mutex);
249	rc = cifs_calc_signature(rqst, server, what_we_think_sig_should_be);
 
250	mutex_unlock(&server->srv_mutex);
251
252	if (rc)
253		return rc;
254
255/*	cifs_dump_mem("what we think it should be: ",
256		      what_we_think_sig_should_be, 16); */
257
258	if (memcmp(server_response_sig, what_we_think_sig_should_be, 8))
259		return -EACCES;
260	else
261		return 0;
262
263}
264
265/* first calculate 24 bytes ntlm response and then 16 byte session key */
266int setup_ntlm_response(struct cifs_ses *ses, const struct nls_table *nls_cp)
267{
268	int rc = 0;
269	unsigned int temp_len = CIFS_SESS_KEY_SIZE + CIFS_AUTH_RESP_SIZE;
270	char temp_key[CIFS_SESS_KEY_SIZE];
271
272	if (!ses)
273		return -EINVAL;
274
275	ses->auth_key.response = kmalloc(temp_len, GFP_KERNEL);
276	if (!ses->auth_key.response)
 
277		return -ENOMEM;
278
279	ses->auth_key.len = temp_len;
280
281	rc = SMBNTencrypt(ses->password, ses->server->cryptkey,
282			ses->auth_key.response + CIFS_SESS_KEY_SIZE, nls_cp);
283	if (rc) {
284		cifs_dbg(FYI, "%s Can't generate NTLM response, error: %d\n",
285			 __func__, rc);
286		return rc;
287	}
288
289	rc = E_md4hash(ses->password, temp_key, nls_cp);
290	if (rc) {
291		cifs_dbg(FYI, "%s Can't generate NT hash, error: %d\n",
292			 __func__, rc);
293		return rc;
294	}
295
296	rc = mdfour(ses->auth_key.response, temp_key, CIFS_SESS_KEY_SIZE);
297	if (rc)
298		cifs_dbg(FYI, "%s Can't generate NTLM session key, error: %d\n",
299			 __func__, rc);
300
301	return rc;
302}
303
304#ifdef CONFIG_CIFS_WEAK_PW_HASH
305int calc_lanman_hash(const char *password, const char *cryptkey, bool encrypt,
306			char *lnm_session_key)
307{
308	int i, len;
309	int rc;
310	char password_with_pad[CIFS_ENCPWD_SIZE] = {0};
311
312	if (password) {
313		for (len = 0; len < CIFS_ENCPWD_SIZE; len++)
314			if (!password[len])
315				break;
316
317		memcpy(password_with_pad, password, len);
318	}
 
319
320	if (!encrypt && global_secflags & CIFSSEC_MAY_PLNTXT) {
 
321		memcpy(lnm_session_key, password_with_pad,
322			CIFS_ENCPWD_SIZE);
323		return 0;
324	}
325
326	/* calculate old style session key */
327	/* calling toupper is less broken than repeatedly
328	calling nls_toupper would be since that will never
329	work for UTF8, but neither handles multibyte code pages
330	but the only alternative would be converting to UCS-16 (Unicode)
331	(using a routine something like UniStrupr) then
332	uppercasing and then converting back from Unicode - which
333	would only worth doing it if we knew it were utf8. Basically
334	utf8 and other multibyte codepages each need their own strupper
335	function since a byte at a time will ont work. */
336
337	for (i = 0; i < CIFS_ENCPWD_SIZE; i++)
338		password_with_pad[i] = toupper(password_with_pad[i]);
339
340	rc = SMBencrypt(password_with_pad, cryptkey, lnm_session_key);
341
342	return rc;
343}
344#endif /* CIFS_WEAK_PW_HASH */
345
346/* Build a proper attribute value/target info pairs blob.
347 * Fill in netbios and dns domain name and workstation name
348 * and client time (total five av pairs and + one end of fields indicator.
349 * Allocate domain name which gets freed when session struct is deallocated.
350 */
351static int
352build_avpair_blob(struct cifs_ses *ses, const struct nls_table *nls_cp)
353{
354	unsigned int dlen;
355	unsigned int size = 2 * sizeof(struct ntlmssp2_name);
356	char *defdmname = "WORKGROUP";
357	unsigned char *blobptr;
358	struct ntlmssp2_name *attrptr;
359
360	if (!ses->domainName) {
361		ses->domainName = kstrdup(defdmname, GFP_KERNEL);
362		if (!ses->domainName)
363			return -ENOMEM;
364	}
365
366	dlen = strlen(ses->domainName);
367
368	/*
369	 * The length of this blob is two times the size of a
370	 * structure (av pair) which holds name/size
371	 * ( for NTLMSSP_AV_NB_DOMAIN_NAME followed by NTLMSSP_AV_EOL ) +
372	 * unicode length of a netbios domain name
373	 */
374	ses->auth_key.len = size + 2 * dlen;
375	ses->auth_key.response = kzalloc(ses->auth_key.len, GFP_KERNEL);
376	if (!ses->auth_key.response) {
377		ses->auth_key.len = 0;
 
378		return -ENOMEM;
379	}
380
381	blobptr = ses->auth_key.response;
382	attrptr = (struct ntlmssp2_name *) blobptr;
383
384	/*
385	 * As defined in MS-NTLM 3.3.2, just this av pair field
386	 * is sufficient as part of the temp
387	 */
388	attrptr->type = cpu_to_le16(NTLMSSP_AV_NB_DOMAIN_NAME);
389	attrptr->length = cpu_to_le16(2 * dlen);
390	blobptr = (unsigned char *)attrptr + sizeof(struct ntlmssp2_name);
391	cifs_strtoUTF16((__le16 *)blobptr, ses->domainName, dlen, nls_cp);
392
393	return 0;
394}
395
396/* Server has provided av pairs/target info in the type 2 challenge
397 * packet and we have plucked it and stored within smb session.
398 * We parse that blob here to find netbios domain name to be used
399 * as part of ntlmv2 authentication (in Target String), if not already
400 * specified on the command line.
401 * If this function returns without any error but without fetching
402 * domain name, authentication may fail against some server but
403 * may not fail against other (those who are not very particular
404 * about target string i.e. for some, just user name might suffice.
405 */
406static int
407find_domain_name(struct cifs_ses *ses, const struct nls_table *nls_cp)
408{
409	unsigned int attrsize;
410	unsigned int type;
411	unsigned int onesize = sizeof(struct ntlmssp2_name);
412	unsigned char *blobptr;
413	unsigned char *blobend;
414	struct ntlmssp2_name *attrptr;
415
416	if (!ses->auth_key.len || !ses->auth_key.response)
417		return 0;
418
419	blobptr = ses->auth_key.response;
420	blobend = blobptr + ses->auth_key.len;
421
422	while (blobptr + onesize < blobend) {
423		attrptr = (struct ntlmssp2_name *) blobptr;
424		type = le16_to_cpu(attrptr->type);
425		if (type == NTLMSSP_AV_EOL)
426			break;
427		blobptr += 2; /* advance attr type */
428		attrsize = le16_to_cpu(attrptr->length);
429		blobptr += 2; /* advance attr size */
430		if (blobptr + attrsize > blobend)
431			break;
432		if (type == NTLMSSP_AV_NB_DOMAIN_NAME) {
433			if (!attrsize || attrsize >= CIFS_MAX_DOMAINNAME_LEN)
434				break;
435			if (!ses->domainName) {
436				ses->domainName =
437					kmalloc(attrsize + 1, GFP_KERNEL);
438				if (!ses->domainName)
439						return -ENOMEM;
440				cifs_from_utf16(ses->domainName,
441					(__le16 *)blobptr, attrsize, attrsize,
442					nls_cp, NO_MAP_UNI_RSVD);
443				break;
444			}
445		}
446		blobptr += attrsize; /* advance attr  value */
447	}
448
449	return 0;
450}
451
452/* Server has provided av pairs/target info in the type 2 challenge
453 * packet and we have plucked it and stored within smb session.
454 * We parse that blob here to find the server given timestamp
455 * as part of ntlmv2 authentication (or local current time as
456 * default in case of failure)
457 */
458static __le64
459find_timestamp(struct cifs_ses *ses)
460{
461	unsigned int attrsize;
462	unsigned int type;
463	unsigned int onesize = sizeof(struct ntlmssp2_name);
464	unsigned char *blobptr;
465	unsigned char *blobend;
466	struct ntlmssp2_name *attrptr;
467	struct timespec64 ts;
468
469	if (!ses->auth_key.len || !ses->auth_key.response)
470		return 0;
471
472	blobptr = ses->auth_key.response;
473	blobend = blobptr + ses->auth_key.len;
474
475	while (blobptr + onesize < blobend) {
476		attrptr = (struct ntlmssp2_name *) blobptr;
477		type = le16_to_cpu(attrptr->type);
478		if (type == NTLMSSP_AV_EOL)
479			break;
480		blobptr += 2; /* advance attr type */
481		attrsize = le16_to_cpu(attrptr->length);
482		blobptr += 2; /* advance attr size */
483		if (blobptr + attrsize > blobend)
484			break;
485		if (type == NTLMSSP_AV_TIMESTAMP) {
486			if (attrsize == sizeof(u64))
487				return *((__le64 *)blobptr);
488		}
489		blobptr += attrsize; /* advance attr value */
490	}
491
492	ktime_get_real_ts64(&ts);
493	return cpu_to_le64(cifs_UnixTimeToNT(ts));
494}
495
496static int calc_ntlmv2_hash(struct cifs_ses *ses, char *ntlmv2_hash,
497			    const struct nls_table *nls_cp)
498{
499	int rc = 0;
500	int len;
501	char nt_hash[CIFS_NTHASH_SIZE];
502	__le16 *user;
503	wchar_t *domain;
504	wchar_t *server;
505
506	if (!ses->server->secmech.sdeschmacmd5) {
507		cifs_dbg(VFS, "%s: can't generate ntlmv2 hash\n", __func__);
508		return -1;
509	}
510
511	/* calculate md4 hash of password */
512	E_md4hash(ses->password, nt_hash, nls_cp);
513
514	rc = crypto_shash_setkey(ses->server->secmech.hmacmd5, nt_hash,
515				CIFS_NTHASH_SIZE);
516	if (rc) {
517		cifs_dbg(VFS, "%s: Could not set NT Hash as a key\n", __func__);
518		return rc;
519	}
520
521	rc = crypto_shash_init(&ses->server->secmech.sdeschmacmd5->shash);
522	if (rc) {
523		cifs_dbg(VFS, "%s: could not init hmacmd5\n", __func__);
524		return rc;
525	}
526
527	/* convert ses->user_name to unicode */
528	len = ses->user_name ? strlen(ses->user_name) : 0;
529	user = kmalloc(2 + (len * 2), GFP_KERNEL);
530	if (user == NULL) {
 
531		rc = -ENOMEM;
532		return rc;
533	}
534
535	if (len) {
536		len = cifs_strtoUTF16(user, ses->user_name, len, nls_cp);
537		UniStrupr(user);
538	} else {
539		memset(user, '\0', 2);
540	}
541
542	rc = crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
543				(char *)user, 2 * len);
544	kfree(user);
545	if (rc) {
546		cifs_dbg(VFS, "%s: Could not update with user\n", __func__);
547		return rc;
548	}
549
550	/* convert ses->domainName to unicode and uppercase */
551	if (ses->domainName) {
552		len = strlen(ses->domainName);
553
554		domain = kmalloc(2 + (len * 2), GFP_KERNEL);
555		if (domain == NULL) {
 
556			rc = -ENOMEM;
557			return rc;
558		}
559		len = cifs_strtoUTF16((__le16 *)domain, ses->domainName, len,
560				      nls_cp);
561		rc =
562		crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
563					(char *)domain, 2 * len);
564		kfree(domain);
565		if (rc) {
566			cifs_dbg(VFS, "%s: Could not update with domain\n",
567				 __func__);
568			return rc;
569		}
570	} else {
571		/* We use ses->serverName if no domain name available */
572		len = strlen(ses->serverName);
573
574		server = kmalloc(2 + (len * 2), GFP_KERNEL);
575		if (server == NULL) {
 
576			rc = -ENOMEM;
577			return rc;
578		}
579		len = cifs_strtoUTF16((__le16 *)server, ses->serverName, len,
580					nls_cp);
581		rc =
582		crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
583					(char *)server, 2 * len);
584		kfree(server);
585		if (rc) {
586			cifs_dbg(VFS, "%s: Could not update with server\n",
587				 __func__);
588			return rc;
589		}
590	}
591
592	rc = crypto_shash_final(&ses->server->secmech.sdeschmacmd5->shash,
593					ntlmv2_hash);
594	if (rc)
595		cifs_dbg(VFS, "%s: Could not generate md5 hash\n", __func__);
596
597	return rc;
598}
599
600static int
601CalcNTLMv2_response(const struct cifs_ses *ses, char *ntlmv2_hash)
602{
603	int rc;
604	struct ntlmv2_resp *ntlmv2 = (struct ntlmv2_resp *)
605	    (ses->auth_key.response + CIFS_SESS_KEY_SIZE);
606	unsigned int hash_len;
607
608	/* The MD5 hash starts at challenge_key.key */
609	hash_len = ses->auth_key.len - (CIFS_SESS_KEY_SIZE +
610		offsetof(struct ntlmv2_resp, challenge.key[0]));
611
612	if (!ses->server->secmech.sdeschmacmd5) {
613		cifs_dbg(VFS, "%s: can't generate ntlmv2 hash\n", __func__);
614		return -1;
615	}
616
617	rc = crypto_shash_setkey(ses->server->secmech.hmacmd5,
618				 ntlmv2_hash, CIFS_HMAC_MD5_HASH_SIZE);
619	if (rc) {
620		cifs_dbg(VFS, "%s: Could not set NTLMV2 Hash as a key\n",
621			 __func__);
622		return rc;
623	}
624
625	rc = crypto_shash_init(&ses->server->secmech.sdeschmacmd5->shash);
626	if (rc) {
627		cifs_dbg(VFS, "%s: could not init hmacmd5\n", __func__);
628		return rc;
629	}
630
631	if (ses->server->negflavor == CIFS_NEGFLAVOR_EXTENDED)
632		memcpy(ntlmv2->challenge.key,
633		       ses->ntlmssp->cryptkey, CIFS_SERVER_CHALLENGE_SIZE);
634	else
635		memcpy(ntlmv2->challenge.key,
636		       ses->server->cryptkey, CIFS_SERVER_CHALLENGE_SIZE);
637	rc = crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
638				 ntlmv2->challenge.key, hash_len);
639	if (rc) {
640		cifs_dbg(VFS, "%s: Could not update with response\n", __func__);
641		return rc;
642	}
643
644	/* Note that the MD5 digest over writes anon.challenge_key.key */
645	rc = crypto_shash_final(&ses->server->secmech.sdeschmacmd5->shash,
646				ntlmv2->ntlmv2_hash);
647	if (rc)
648		cifs_dbg(VFS, "%s: Could not generate md5 hash\n", __func__);
649
650	return rc;
651}
652
 
653int
654setup_ntlmv2_rsp(struct cifs_ses *ses, const struct nls_table *nls_cp)
655{
656	int rc;
657	int baselen;
658	unsigned int tilen;
659	struct ntlmv2_resp *ntlmv2;
660	char ntlmv2_hash[16];
661	unsigned char *tiblob = NULL; /* target info blob */
662	__le64 rsp_timestamp;
663
664	if (ses->server->negflavor == CIFS_NEGFLAVOR_EXTENDED) {
665		if (!ses->domainName) {
666			if (ses->domainAuto) {
667				rc = find_domain_name(ses, nls_cp);
668				if (rc) {
669					cifs_dbg(VFS, "error %d finding domain name\n",
670						 rc);
671					goto setup_ntlmv2_rsp_ret;
672				}
673			} else {
674				ses->domainName = kstrdup("", GFP_KERNEL);
675			}
676		}
677	} else {
678		rc = build_avpair_blob(ses, nls_cp);
679		if (rc) {
680			cifs_dbg(VFS, "error %d building av pair blob\n", rc);
681			goto setup_ntlmv2_rsp_ret;
682		}
683	}
684
685	/* Must be within 5 minutes of the server (or in range +/-2h
686	 * in case of Mac OS X), so simply carry over server timestamp
687	 * (as Windows 7 does)
688	 */
689	rsp_timestamp = find_timestamp(ses);
690
691	baselen = CIFS_SESS_KEY_SIZE + sizeof(struct ntlmv2_resp);
692	tilen = ses->auth_key.len;
693	tiblob = ses->auth_key.response;
694
695	ses->auth_key.response = kmalloc(baselen + tilen, GFP_KERNEL);
696	if (!ses->auth_key.response) {
697		rc = -ENOMEM;
698		ses->auth_key.len = 0;
 
699		goto setup_ntlmv2_rsp_ret;
700	}
701	ses->auth_key.len += baselen;
702
703	ntlmv2 = (struct ntlmv2_resp *)
704			(ses->auth_key.response + CIFS_SESS_KEY_SIZE);
705	ntlmv2->blob_signature = cpu_to_le32(0x00000101);
706	ntlmv2->reserved = 0;
707	ntlmv2->time = rsp_timestamp;
708
709	get_random_bytes(&ntlmv2->client_chal, sizeof(ntlmv2->client_chal));
710	ntlmv2->reserved2 = 0;
711
712	memcpy(ses->auth_key.response + baselen, tiblob, tilen);
713
714	mutex_lock(&ses->server->srv_mutex);
715
716	rc = cifs_alloc_hash("hmac(md5)",
717			     &ses->server->secmech.hmacmd5,
718			     &ses->server->secmech.sdeschmacmd5);
719	if (rc) {
720		goto unlock;
721	}
722
723	/* calculate ntlmv2_hash */
724	rc = calc_ntlmv2_hash(ses, ntlmv2_hash, nls_cp);
725	if (rc) {
726		cifs_dbg(VFS, "could not get v2 hash rc %d\n", rc);
727		goto unlock;
728	}
729
730	/* calculate first part of the client response (CR1) */
731	rc = CalcNTLMv2_response(ses, ntlmv2_hash);
732	if (rc) {
733		cifs_dbg(VFS, "Could not calculate CR1 rc: %d\n", rc);
734		goto unlock;
735	}
736
737	/* now calculate the session key for NTLMv2 */
738	rc = crypto_shash_setkey(ses->server->secmech.hmacmd5,
739		ntlmv2_hash, CIFS_HMAC_MD5_HASH_SIZE);
740	if (rc) {
741		cifs_dbg(VFS, "%s: Could not set NTLMV2 Hash as a key\n",
742			 __func__);
743		goto unlock;
744	}
745
746	rc = crypto_shash_init(&ses->server->secmech.sdeschmacmd5->shash);
747	if (rc) {
748		cifs_dbg(VFS, "%s: Could not init hmacmd5\n", __func__);
749		goto unlock;
750	}
751
752	rc = crypto_shash_update(&ses->server->secmech.sdeschmacmd5->shash,
753		ntlmv2->ntlmv2_hash,
754		CIFS_HMAC_MD5_HASH_SIZE);
755	if (rc) {
756		cifs_dbg(VFS, "%s: Could not update with response\n", __func__);
757		goto unlock;
758	}
759
760	rc = crypto_shash_final(&ses->server->secmech.sdeschmacmd5->shash,
761		ses->auth_key.response);
762	if (rc)
763		cifs_dbg(VFS, "%s: Could not generate md5 hash\n", __func__);
764
765unlock:
766	mutex_unlock(&ses->server->srv_mutex);
767setup_ntlmv2_rsp_ret:
768	kfree(tiblob);
769
770	return rc;
771}
772
773int
774calc_seckey(struct cifs_ses *ses)
775{
 
 
 
 
776	unsigned char sec_key[CIFS_SESS_KEY_SIZE]; /* a nonce */
777	struct arc4_ctx *ctx_arc4;
778
779	if (fips_enabled)
780		return -ENODEV;
781
782	get_random_bytes(sec_key, CIFS_SESS_KEY_SIZE);
 
 
 
 
 
 
 
783
784	ctx_arc4 = kmalloc(sizeof(*ctx_arc4), GFP_KERNEL);
785	if (!ctx_arc4) {
786		cifs_dbg(VFS, "could not allocate arc4 context\n");
787		return -ENOMEM;
 
788	}
789
790	arc4_setkey(ctx_arc4, ses->auth_key.response, CIFS_SESS_KEY_SIZE);
791	arc4_crypt(ctx_arc4, ses->ntlmssp->ciphertext, sec_key,
792		   CIFS_CPHTXT_SIZE);
 
 
 
 
 
 
793
794	/* make secondary_key/nonce as session key */
795	memcpy(ses->auth_key.response, sec_key, CIFS_SESS_KEY_SIZE);
796	/* and make len as that of session key only */
797	ses->auth_key.len = CIFS_SESS_KEY_SIZE;
798
799	memzero_explicit(sec_key, CIFS_SESS_KEY_SIZE);
800	kzfree(ctx_arc4);
801	return 0;
802}
803
804void
805cifs_crypto_secmech_release(struct TCP_Server_Info *server)
806{
807	if (server->secmech.cmacaes) {
808		crypto_free_shash(server->secmech.cmacaes);
809		server->secmech.cmacaes = NULL;
810	}
 
 
 
811
812	if (server->secmech.hmacsha256) {
813		crypto_free_shash(server->secmech.hmacsha256);
814		server->secmech.hmacsha256 = NULL;
815	}
816
817	if (server->secmech.md5) {
818		crypto_free_shash(server->secmech.md5);
819		server->secmech.md5 = NULL;
820	}
 
821
822	if (server->secmech.sha512) {
823		crypto_free_shash(server->secmech.sha512);
824		server->secmech.sha512 = NULL;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
825	}
 
 
826
827	if (server->secmech.hmacmd5) {
828		crypto_free_shash(server->secmech.hmacmd5);
829		server->secmech.hmacmd5 = NULL;
830	}
831
832	if (server->secmech.ccmaesencrypt) {
833		crypto_free_aead(server->secmech.ccmaesencrypt);
834		server->secmech.ccmaesencrypt = NULL;
 
 
 
 
835	}
 
 
836
837	if (server->secmech.ccmaesdecrypt) {
838		crypto_free_aead(server->secmech.ccmaesdecrypt);
839		server->secmech.ccmaesdecrypt = NULL;
840	}
841
842	kfree(server->secmech.sdesccmacaes);
843	server->secmech.sdesccmacaes = NULL;
844	kfree(server->secmech.sdeschmacsha256);
845	server->secmech.sdeschmacsha256 = NULL;
846	kfree(server->secmech.sdeschmacmd5);
847	server->secmech.sdeschmacmd5 = NULL;
848	kfree(server->secmech.sdescmd5);
849	server->secmech.sdescmd5 = NULL;
850	kfree(server->secmech.sdescsha512);
851	server->secmech.sdescsha512 = NULL;
 
 
 
852}