Allow user names longer than 32 bytes
[GitHub/mt8127/android_kernel_alcatel_ttab.git] / fs / cifs / sess.c
1 /*
2 * fs/cifs/sess.c
3 *
4 * SMB/CIFS session setup handling routines
5 *
6 * Copyright (c) International Business Machines Corp., 2006, 2009
7 * Author(s): Steve French (sfrench@us.ibm.com)
8 *
9 * This library is free software; you can redistribute it and/or modify
10 * it under the terms of the GNU Lesser General Public License as published
11 * by the Free Software Foundation; either version 2.1 of the License, or
12 * (at your option) any later version.
13 *
14 * This library is distributed in the hope that it will be useful,
15 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See
17 * the GNU Lesser General Public License for more details.
18 *
19 * You should have received a copy of the GNU Lesser General Public License
20 * along with this library; if not, write to the Free Software
21 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
22 */
23
24 #include "cifspdu.h"
25 #include "cifsglob.h"
26 #include "cifsproto.h"
27 #include "cifs_unicode.h"
28 #include "cifs_debug.h"
29 #include "ntlmssp.h"
30 #include "nterr.h"
31 #include <linux/utsname.h>
32 #include <linux/slab.h>
33 #include "cifs_spnego.h"
34
35 /*
36 * Checks if this is the first smb session to be reconnected after
37 * the socket has been reestablished (so we know whether to use vc 0).
38 * Called while holding the cifs_tcp_ses_lock, so do not block
39 */
40 static bool is_first_ses_reconnect(struct cifsSesInfo *ses)
41 {
42 struct list_head *tmp;
43 struct cifsSesInfo *tmp_ses;
44
45 list_for_each(tmp, &ses->server->smb_ses_list) {
46 tmp_ses = list_entry(tmp, struct cifsSesInfo,
47 smb_ses_list);
48 if (tmp_ses->need_reconnect == false)
49 return false;
50 }
51 /* could not find a session that was already connected,
52 this must be the first one we are reconnecting */
53 return true;
54 }
55
56 /*
57 * vc number 0 is treated specially by some servers, and should be the
58 * first one we request. After that we can use vcnumbers up to maxvcs,
59 * one for each smb session (some Windows versions set maxvcs incorrectly
60 * so maxvc=1 can be ignored). If we have too many vcs, we can reuse
61 * any vc but zero (some servers reset the connection on vcnum zero)
62 *
63 */
64 static __le16 get_next_vcnum(struct cifsSesInfo *ses)
65 {
66 __u16 vcnum = 0;
67 struct list_head *tmp;
68 struct cifsSesInfo *tmp_ses;
69 __u16 max_vcs = ses->server->max_vcs;
70 __u16 i;
71 int free_vc_found = 0;
72
73 /* Quoting the MS-SMB specification: "Windows-based SMB servers set this
74 field to one but do not enforce this limit, which allows an SMB client
75 to establish more virtual circuits than allowed by this value ... but
76 other server implementations can enforce this limit." */
77 if (max_vcs < 2)
78 max_vcs = 0xFFFF;
79
80 spin_lock(&cifs_tcp_ses_lock);
81 if ((ses->need_reconnect) && is_first_ses_reconnect(ses))
82 goto get_vc_num_exit; /* vcnum will be zero */
83 for (i = ses->server->srv_count - 1; i < max_vcs; i++) {
84 if (i == 0) /* this is the only connection, use vc 0 */
85 break;
86
87 free_vc_found = 1;
88
89 list_for_each(tmp, &ses->server->smb_ses_list) {
90 tmp_ses = list_entry(tmp, struct cifsSesInfo,
91 smb_ses_list);
92 if (tmp_ses->vcnum == i) {
93 free_vc_found = 0;
94 break; /* found duplicate, try next vcnum */
95 }
96 }
97 if (free_vc_found)
98 break; /* we found a vcnumber that will work - use it */
99 }
100
101 if (i == 0)
102 vcnum = 0; /* for most common case, ie if one smb session, use
103 vc zero. Also for case when no free vcnum, zero
104 is safest to send (some clients only send zero) */
105 else if (free_vc_found == 0)
106 vcnum = 1; /* we can not reuse vc=0 safely, since some servers
107 reset all uids on that, but 1 is ok. */
108 else
109 vcnum = i;
110 ses->vcnum = vcnum;
111 get_vc_num_exit:
112 spin_unlock(&cifs_tcp_ses_lock);
113
114 return cpu_to_le16(vcnum);
115 }
116
117 static __u32 cifs_ssetup_hdr(struct cifsSesInfo *ses, SESSION_SETUP_ANDX *pSMB)
118 {
119 __u32 capabilities = 0;
120
121 /* init fields common to all four types of SessSetup */
122 /* Note that offsets for first seven fields in req struct are same */
123 /* in CIFS Specs so does not matter which of 3 forms of struct */
124 /* that we use in next few lines */
125 /* Note that header is initialized to zero in header_assemble */
126 pSMB->req.AndXCommand = 0xFF;
127 pSMB->req.MaxBufferSize = cpu_to_le16(ses->server->maxBuf);
128 pSMB->req.MaxMpxCount = cpu_to_le16(ses->server->maxReq);
129 pSMB->req.VcNumber = get_next_vcnum(ses);
130
131 /* Now no need to set SMBFLG_CASELESS or obsolete CANONICAL PATH */
132
133 /* BB verify whether signing required on neg or just on auth frame
134 (and NTLM case) */
135
136 capabilities = CAP_LARGE_FILES | CAP_NT_SMBS | CAP_LEVEL_II_OPLOCKS |
137 CAP_LARGE_WRITE_X | CAP_LARGE_READ_X;
138
139 if (ses->server->secMode &
140 (SECMODE_SIGN_REQUIRED | SECMODE_SIGN_ENABLED))
141 pSMB->req.hdr.Flags2 |= SMBFLG2_SECURITY_SIGNATURE;
142
143 if (ses->capabilities & CAP_UNICODE) {
144 pSMB->req.hdr.Flags2 |= SMBFLG2_UNICODE;
145 capabilities |= CAP_UNICODE;
146 }
147 if (ses->capabilities & CAP_STATUS32) {
148 pSMB->req.hdr.Flags2 |= SMBFLG2_ERR_STATUS;
149 capabilities |= CAP_STATUS32;
150 }
151 if (ses->capabilities & CAP_DFS) {
152 pSMB->req.hdr.Flags2 |= SMBFLG2_DFS;
153 capabilities |= CAP_DFS;
154 }
155 if (ses->capabilities & CAP_UNIX)
156 capabilities |= CAP_UNIX;
157
158 return capabilities;
159 }
160
161 static void
162 unicode_oslm_strings(char **pbcc_area, const struct nls_table *nls_cp)
163 {
164 char *bcc_ptr = *pbcc_area;
165 int bytes_ret = 0;
166
167 /* Copy OS version */
168 bytes_ret = cifs_strtoUCS((__le16 *)bcc_ptr, "Linux version ", 32,
169 nls_cp);
170 bcc_ptr += 2 * bytes_ret;
171 bytes_ret = cifs_strtoUCS((__le16 *) bcc_ptr, init_utsname()->release,
172 32, nls_cp);
173 bcc_ptr += 2 * bytes_ret;
174 bcc_ptr += 2; /* trailing null */
175
176 bytes_ret = cifs_strtoUCS((__le16 *) bcc_ptr, CIFS_NETWORK_OPSYS,
177 32, nls_cp);
178 bcc_ptr += 2 * bytes_ret;
179 bcc_ptr += 2; /* trailing null */
180
181 *pbcc_area = bcc_ptr;
182 }
183
184 static void unicode_domain_string(char **pbcc_area, struct cifsSesInfo *ses,
185 const struct nls_table *nls_cp)
186 {
187 char *bcc_ptr = *pbcc_area;
188 int bytes_ret = 0;
189
190 /* copy domain */
191 if (ses->domainName == NULL) {
192 /* Sending null domain better than using a bogus domain name (as
193 we did briefly in 2.6.18) since server will use its default */
194 *bcc_ptr = 0;
195 *(bcc_ptr+1) = 0;
196 bytes_ret = 0;
197 } else
198 bytes_ret = cifs_strtoUCS((__le16 *) bcc_ptr, ses->domainName,
199 256, nls_cp);
200 bcc_ptr += 2 * bytes_ret;
201 bcc_ptr += 2; /* account for null terminator */
202
203 *pbcc_area = bcc_ptr;
204 }
205
206
207 static void unicode_ssetup_strings(char **pbcc_area, struct cifsSesInfo *ses,
208 const struct nls_table *nls_cp)
209 {
210 char *bcc_ptr = *pbcc_area;
211 int bytes_ret = 0;
212
213 /* BB FIXME add check that strings total less
214 than 335 or will need to send them as arrays */
215
216 /* unicode strings, must be word aligned before the call */
217 /* if ((long) bcc_ptr % 2) {
218 *bcc_ptr = 0;
219 bcc_ptr++;
220 } */
221 /* copy user */
222 if (ses->user_name == NULL) {
223 /* null user mount */
224 *bcc_ptr = 0;
225 *(bcc_ptr+1) = 0;
226 } else {
227 bytes_ret = cifs_strtoUCS((__le16 *) bcc_ptr, ses->user_name,
228 MAX_USERNAME_SIZE, nls_cp);
229 }
230 bcc_ptr += 2 * bytes_ret;
231 bcc_ptr += 2; /* account for null termination */
232
233 unicode_domain_string(&bcc_ptr, ses, nls_cp);
234 unicode_oslm_strings(&bcc_ptr, nls_cp);
235
236 *pbcc_area = bcc_ptr;
237 }
238
239 static void ascii_ssetup_strings(char **pbcc_area, struct cifsSesInfo *ses,
240 const struct nls_table *nls_cp)
241 {
242 char *bcc_ptr = *pbcc_area;
243
244 /* copy user */
245 /* BB what about null user mounts - check that we do this BB */
246 /* copy user */
247 if (ses->user_name != NULL)
248 strncpy(bcc_ptr, ses->user_name, MAX_USERNAME_SIZE);
249 /* else null user mount */
250
251 bcc_ptr += strnlen(ses->user_name, MAX_USERNAME_SIZE);
252 *bcc_ptr = 0;
253 bcc_ptr++; /* account for null termination */
254
255 /* copy domain */
256
257 if (ses->domainName != NULL) {
258 strncpy(bcc_ptr, ses->domainName, 256);
259 bcc_ptr += strnlen(ses->domainName, 256);
260 } /* else we will send a null domain name
261 so the server will default to its own domain */
262 *bcc_ptr = 0;
263 bcc_ptr++;
264
265 /* BB check for overflow here */
266
267 strcpy(bcc_ptr, "Linux version ");
268 bcc_ptr += strlen("Linux version ");
269 strcpy(bcc_ptr, init_utsname()->release);
270 bcc_ptr += strlen(init_utsname()->release) + 1;
271
272 strcpy(bcc_ptr, CIFS_NETWORK_OPSYS);
273 bcc_ptr += strlen(CIFS_NETWORK_OPSYS) + 1;
274
275 *pbcc_area = bcc_ptr;
276 }
277
278 static void
279 decode_unicode_ssetup(char **pbcc_area, __u16 bleft, struct cifsSesInfo *ses,
280 const struct nls_table *nls_cp)
281 {
282 int len;
283 char *data = *pbcc_area;
284
285 cFYI(1, "bleft %d", bleft);
286
287 /*
288 * Windows servers do not always double null terminate their final
289 * Unicode string. Check to see if there are an uneven number of bytes
290 * left. If so, then add an extra NULL pad byte to the end of the
291 * response.
292 *
293 * See section 2.7.2 in "Implementing CIFS" for details
294 */
295 if (bleft % 2) {
296 data[bleft] = 0;
297 ++bleft;
298 }
299
300 kfree(ses->serverOS);
301 ses->serverOS = cifs_strndup_from_ucs(data, bleft, true, nls_cp);
302 cFYI(1, "serverOS=%s", ses->serverOS);
303 len = (UniStrnlen((wchar_t *) data, bleft / 2) * 2) + 2;
304 data += len;
305 bleft -= len;
306 if (bleft <= 0)
307 return;
308
309 kfree(ses->serverNOS);
310 ses->serverNOS = cifs_strndup_from_ucs(data, bleft, true, nls_cp);
311 cFYI(1, "serverNOS=%s", ses->serverNOS);
312 len = (UniStrnlen((wchar_t *) data, bleft / 2) * 2) + 2;
313 data += len;
314 bleft -= len;
315 if (bleft <= 0)
316 return;
317
318 kfree(ses->serverDomain);
319 ses->serverDomain = cifs_strndup_from_ucs(data, bleft, true, nls_cp);
320 cFYI(1, "serverDomain=%s", ses->serverDomain);
321
322 return;
323 }
324
325 static int decode_ascii_ssetup(char **pbcc_area, __u16 bleft,
326 struct cifsSesInfo *ses,
327 const struct nls_table *nls_cp)
328 {
329 int rc = 0;
330 int len;
331 char *bcc_ptr = *pbcc_area;
332
333 cFYI(1, "decode sessetup ascii. bleft %d", bleft);
334
335 len = strnlen(bcc_ptr, bleft);
336 if (len >= bleft)
337 return rc;
338
339 kfree(ses->serverOS);
340
341 ses->serverOS = kzalloc(len + 1, GFP_KERNEL);
342 if (ses->serverOS)
343 strncpy(ses->serverOS, bcc_ptr, len);
344 if (strncmp(ses->serverOS, "OS/2", 4) == 0) {
345 cFYI(1, "OS/2 server");
346 ses->flags |= CIFS_SES_OS2;
347 }
348
349 bcc_ptr += len + 1;
350 bleft -= len + 1;
351
352 len = strnlen(bcc_ptr, bleft);
353 if (len >= bleft)
354 return rc;
355
356 kfree(ses->serverNOS);
357
358 ses->serverNOS = kzalloc(len + 1, GFP_KERNEL);
359 if (ses->serverNOS)
360 strncpy(ses->serverNOS, bcc_ptr, len);
361
362 bcc_ptr += len + 1;
363 bleft -= len + 1;
364
365 len = strnlen(bcc_ptr, bleft);
366 if (len > bleft)
367 return rc;
368
369 /* No domain field in LANMAN case. Domain is
370 returned by old servers in the SMB negprot response */
371 /* BB For newer servers which do not support Unicode,
372 but thus do return domain here we could add parsing
373 for it later, but it is not very important */
374 cFYI(1, "ascii: bytes left %d", bleft);
375
376 return rc;
377 }
378
379 static int decode_ntlmssp_challenge(char *bcc_ptr, int blob_len,
380 struct cifsSesInfo *ses)
381 {
382 unsigned int tioffset; /* challenge message target info area */
383 unsigned int tilen; /* challenge message target info area length */
384
385 CHALLENGE_MESSAGE *pblob = (CHALLENGE_MESSAGE *)bcc_ptr;
386
387 if (blob_len < sizeof(CHALLENGE_MESSAGE)) {
388 cERROR(1, "challenge blob len %d too small", blob_len);
389 return -EINVAL;
390 }
391
392 if (memcmp(pblob->Signature, "NTLMSSP", 8)) {
393 cERROR(1, "blob signature incorrect %s", pblob->Signature);
394 return -EINVAL;
395 }
396 if (pblob->MessageType != NtLmChallenge) {
397 cERROR(1, "Incorrect message type %d", pblob->MessageType);
398 return -EINVAL;
399 }
400
401 memcpy(ses->ntlmssp->cryptkey, pblob->Challenge, CIFS_CRYPTO_KEY_SIZE);
402 /* BB we could decode pblob->NegotiateFlags; some may be useful */
403 /* In particular we can examine sign flags */
404 /* BB spec says that if AvId field of MsvAvTimestamp is populated then
405 we must set the MIC field of the AUTHENTICATE_MESSAGE */
406 ses->ntlmssp->server_flags = le32_to_cpu(pblob->NegotiateFlags);
407 tioffset = cpu_to_le16(pblob->TargetInfoArray.BufferOffset);
408 tilen = cpu_to_le16(pblob->TargetInfoArray.Length);
409 if (tilen) {
410 ses->auth_key.response = kmalloc(tilen, GFP_KERNEL);
411 if (!ses->auth_key.response) {
412 cERROR(1, "Challenge target info allocation failure");
413 return -ENOMEM;
414 }
415 memcpy(ses->auth_key.response, bcc_ptr + tioffset, tilen);
416 ses->auth_key.len = tilen;
417 }
418
419 return 0;
420 }
421
422 /* BB Move to ntlmssp.c eventually */
423
424 /* We do not malloc the blob, it is passed in pbuffer, because
425 it is fixed size, and small, making this approach cleaner */
426 static void build_ntlmssp_negotiate_blob(unsigned char *pbuffer,
427 struct cifsSesInfo *ses)
428 {
429 NEGOTIATE_MESSAGE *sec_blob = (NEGOTIATE_MESSAGE *)pbuffer;
430 __u32 flags;
431
432 memset(pbuffer, 0, sizeof(NEGOTIATE_MESSAGE));
433 memcpy(sec_blob->Signature, NTLMSSP_SIGNATURE, 8);
434 sec_blob->MessageType = NtLmNegotiate;
435
436 /* BB is NTLMV2 session security format easier to use here? */
437 flags = NTLMSSP_NEGOTIATE_56 | NTLMSSP_REQUEST_TARGET |
438 NTLMSSP_NEGOTIATE_128 | NTLMSSP_NEGOTIATE_UNICODE |
439 NTLMSSP_NEGOTIATE_NTLM | NTLMSSP_NEGOTIATE_EXTENDED_SEC;
440 if (ses->server->secMode &
441 (SECMODE_SIGN_REQUIRED | SECMODE_SIGN_ENABLED)) {
442 flags |= NTLMSSP_NEGOTIATE_SIGN;
443 if (!ses->server->session_estab)
444 flags |= NTLMSSP_NEGOTIATE_KEY_XCH |
445 NTLMSSP_NEGOTIATE_EXTENDED_SEC;
446 }
447
448 sec_blob->NegotiateFlags = cpu_to_le32(flags);
449
450 sec_blob->WorkstationName.BufferOffset = 0;
451 sec_blob->WorkstationName.Length = 0;
452 sec_blob->WorkstationName.MaximumLength = 0;
453
454 /* Domain name is sent on the Challenge not Negotiate NTLMSSP request */
455 sec_blob->DomainName.BufferOffset = 0;
456 sec_blob->DomainName.Length = 0;
457 sec_blob->DomainName.MaximumLength = 0;
458 }
459
460 /* We do not malloc the blob, it is passed in pbuffer, because its
461 maximum possible size is fixed and small, making this approach cleaner.
462 This function returns the length of the data in the blob */
463 static int build_ntlmssp_auth_blob(unsigned char *pbuffer,
464 u16 *buflen,
465 struct cifsSesInfo *ses,
466 const struct nls_table *nls_cp)
467 {
468 int rc;
469 AUTHENTICATE_MESSAGE *sec_blob = (AUTHENTICATE_MESSAGE *)pbuffer;
470 __u32 flags;
471 unsigned char *tmp;
472
473 memcpy(sec_blob->Signature, NTLMSSP_SIGNATURE, 8);
474 sec_blob->MessageType = NtLmAuthenticate;
475
476 flags = NTLMSSP_NEGOTIATE_56 |
477 NTLMSSP_REQUEST_TARGET | NTLMSSP_NEGOTIATE_TARGET_INFO |
478 NTLMSSP_NEGOTIATE_128 | NTLMSSP_NEGOTIATE_UNICODE |
479 NTLMSSP_NEGOTIATE_NTLM | NTLMSSP_NEGOTIATE_EXTENDED_SEC;
480 if (ses->server->secMode &
481 (SECMODE_SIGN_REQUIRED | SECMODE_SIGN_ENABLED))
482 flags |= NTLMSSP_NEGOTIATE_SIGN;
483 if (ses->server->secMode & SECMODE_SIGN_REQUIRED)
484 flags |= NTLMSSP_NEGOTIATE_ALWAYS_SIGN;
485
486 tmp = pbuffer + sizeof(AUTHENTICATE_MESSAGE);
487 sec_blob->NegotiateFlags = cpu_to_le32(flags);
488
489 sec_blob->LmChallengeResponse.BufferOffset =
490 cpu_to_le32(sizeof(AUTHENTICATE_MESSAGE));
491 sec_blob->LmChallengeResponse.Length = 0;
492 sec_blob->LmChallengeResponse.MaximumLength = 0;
493
494 sec_blob->NtChallengeResponse.BufferOffset = cpu_to_le32(tmp - pbuffer);
495 rc = setup_ntlmv2_rsp(ses, nls_cp);
496 if (rc) {
497 cERROR(1, "Error %d during NTLMSSP authentication", rc);
498 goto setup_ntlmv2_ret;
499 }
500 memcpy(tmp, ses->auth_key.response + CIFS_SESS_KEY_SIZE,
501 ses->auth_key.len - CIFS_SESS_KEY_SIZE);
502 tmp += ses->auth_key.len - CIFS_SESS_KEY_SIZE;
503
504 sec_blob->NtChallengeResponse.Length =
505 cpu_to_le16(ses->auth_key.len - CIFS_SESS_KEY_SIZE);
506 sec_blob->NtChallengeResponse.MaximumLength =
507 cpu_to_le16(ses->auth_key.len - CIFS_SESS_KEY_SIZE);
508
509 if (ses->domainName == NULL) {
510 sec_blob->DomainName.BufferOffset = cpu_to_le32(tmp - pbuffer);
511 sec_blob->DomainName.Length = 0;
512 sec_blob->DomainName.MaximumLength = 0;
513 tmp += 2;
514 } else {
515 int len;
516 len = cifs_strtoUCS((__le16 *)tmp, ses->domainName,
517 MAX_USERNAME_SIZE, nls_cp);
518 len *= 2; /* unicode is 2 bytes each */
519 sec_blob->DomainName.BufferOffset = cpu_to_le32(tmp - pbuffer);
520 sec_blob->DomainName.Length = cpu_to_le16(len);
521 sec_blob->DomainName.MaximumLength = cpu_to_le16(len);
522 tmp += len;
523 }
524
525 if (ses->user_name == NULL) {
526 sec_blob->UserName.BufferOffset = cpu_to_le32(tmp - pbuffer);
527 sec_blob->UserName.Length = 0;
528 sec_blob->UserName.MaximumLength = 0;
529 tmp += 2;
530 } else {
531 int len;
532 len = cifs_strtoUCS((__le16 *)tmp, ses->user_name,
533 MAX_USERNAME_SIZE, nls_cp);
534 len *= 2; /* unicode is 2 bytes each */
535 sec_blob->UserName.BufferOffset = cpu_to_le32(tmp - pbuffer);
536 sec_blob->UserName.Length = cpu_to_le16(len);
537 sec_blob->UserName.MaximumLength = cpu_to_le16(len);
538 tmp += len;
539 }
540
541 sec_blob->WorkstationName.BufferOffset = cpu_to_le32(tmp - pbuffer);
542 sec_blob->WorkstationName.Length = 0;
543 sec_blob->WorkstationName.MaximumLength = 0;
544 tmp += 2;
545
546 if (((ses->ntlmssp->server_flags & NTLMSSP_NEGOTIATE_KEY_XCH) ||
547 (ses->ntlmssp->server_flags & NTLMSSP_NEGOTIATE_EXTENDED_SEC))
548 && !calc_seckey(ses)) {
549 memcpy(tmp, ses->ntlmssp->ciphertext, CIFS_CPHTXT_SIZE);
550 sec_blob->SessionKey.BufferOffset = cpu_to_le32(tmp - pbuffer);
551 sec_blob->SessionKey.Length = cpu_to_le16(CIFS_CPHTXT_SIZE);
552 sec_blob->SessionKey.MaximumLength =
553 cpu_to_le16(CIFS_CPHTXT_SIZE);
554 tmp += CIFS_CPHTXT_SIZE;
555 } else {
556 sec_blob->SessionKey.BufferOffset = cpu_to_le32(tmp - pbuffer);
557 sec_blob->SessionKey.Length = 0;
558 sec_blob->SessionKey.MaximumLength = 0;
559 }
560
561 setup_ntlmv2_ret:
562 *buflen = tmp - pbuffer;
563 return rc;
564 }
565
566 int
567 CIFS_SessSetup(unsigned int xid, struct cifsSesInfo *ses,
568 const struct nls_table *nls_cp)
569 {
570 int rc = 0;
571 int wct;
572 struct smb_hdr *smb_buf;
573 char *bcc_ptr;
574 char *str_area;
575 SESSION_SETUP_ANDX *pSMB;
576 __u32 capabilities;
577 __u16 count;
578 int resp_buf_type;
579 struct kvec iov[3];
580 enum securityEnum type;
581 __u16 action, bytes_remaining;
582 struct key *spnego_key = NULL;
583 __le32 phase = NtLmNegotiate; /* NTLMSSP, if needed, is multistage */
584 u16 blob_len;
585 char *ntlmsspblob = NULL;
586
587 if (ses == NULL)
588 return -EINVAL;
589
590 type = ses->server->secType;
591 cFYI(1, "sess setup type %d", type);
592 if (type == RawNTLMSSP) {
593 /* if memory allocation is successful, caller of this function
594 * frees it.
595 */
596 ses->ntlmssp = kmalloc(sizeof(struct ntlmssp_auth), GFP_KERNEL);
597 if (!ses->ntlmssp)
598 return -ENOMEM;
599 }
600
601 ssetup_ntlmssp_authenticate:
602 if (phase == NtLmChallenge)
603 phase = NtLmAuthenticate; /* if ntlmssp, now final phase */
604
605 if (type == LANMAN) {
606 #ifndef CONFIG_CIFS_WEAK_PW_HASH
607 /* LANMAN and plaintext are less secure and off by default.
608 So we make this explicitly be turned on in kconfig (in the
609 build) and turned on at runtime (changed from the default)
610 in proc/fs/cifs or via mount parm. Unfortunately this is
611 needed for old Win (e.g. Win95), some obscure NAS and OS/2 */
612 return -EOPNOTSUPP;
613 #endif
614 wct = 10; /* lanman 2 style sessionsetup */
615 } else if ((type == NTLM) || (type == NTLMv2)) {
616 /* For NTLMv2 failures eventually may need to retry NTLM */
617 wct = 13; /* old style NTLM sessionsetup */
618 } else /* same size: negotiate or auth, NTLMSSP or extended security */
619 wct = 12;
620
621 rc = small_smb_init_no_tc(SMB_COM_SESSION_SETUP_ANDX, wct, ses,
622 (void **)&smb_buf);
623 if (rc)
624 return rc;
625
626 pSMB = (SESSION_SETUP_ANDX *)smb_buf;
627
628 capabilities = cifs_ssetup_hdr(ses, pSMB);
629
630 /* we will send the SMB in three pieces:
631 a fixed length beginning part, an optional
632 SPNEGO blob (which can be zero length), and a
633 last part which will include the strings
634 and rest of bcc area. This allows us to avoid
635 a large buffer 17K allocation */
636 iov[0].iov_base = (char *)pSMB;
637 iov[0].iov_len = smb_buf->smb_buf_length + 4;
638
639 /* setting this here allows the code at the end of the function
640 to free the request buffer if there's an error */
641 resp_buf_type = CIFS_SMALL_BUFFER;
642
643 /* 2000 big enough to fit max user, domain, NOS name etc. */
644 str_area = kmalloc(2000, GFP_KERNEL);
645 if (str_area == NULL) {
646 rc = -ENOMEM;
647 goto ssetup_exit;
648 }
649 bcc_ptr = str_area;
650
651 ses->flags &= ~CIFS_SES_LANMAN;
652
653 iov[1].iov_base = NULL;
654 iov[1].iov_len = 0;
655
656 if (type == LANMAN) {
657 #ifdef CONFIG_CIFS_WEAK_PW_HASH
658 char lnm_session_key[CIFS_AUTH_RESP_SIZE];
659
660 pSMB->req.hdr.Flags2 &= ~SMBFLG2_UNICODE;
661
662 /* no capabilities flags in old lanman negotiation */
663
664 pSMB->old_req.PasswordLength = cpu_to_le16(CIFS_AUTH_RESP_SIZE);
665
666 /* Calculate hash with password and copy into bcc_ptr.
667 * Encryption Key (stored as in cryptkey) gets used if the
668 * security mode bit in Negottiate Protocol response states
669 * to use challenge/response method (i.e. Password bit is 1).
670 */
671
672 calc_lanman_hash(ses->password, ses->server->cryptkey,
673 ses->server->secMode & SECMODE_PW_ENCRYPT ?
674 true : false, lnm_session_key);
675
676 ses->flags |= CIFS_SES_LANMAN;
677 memcpy(bcc_ptr, (char *)lnm_session_key, CIFS_AUTH_RESP_SIZE);
678 bcc_ptr += CIFS_AUTH_RESP_SIZE;
679
680 /* can not sign if LANMAN negotiated so no need
681 to calculate signing key? but what if server
682 changed to do higher than lanman dialect and
683 we reconnected would we ever calc signing_key? */
684
685 cFYI(1, "Negotiating LANMAN setting up strings");
686 /* Unicode not allowed for LANMAN dialects */
687 ascii_ssetup_strings(&bcc_ptr, ses, nls_cp);
688 #endif
689 } else if (type == NTLM) {
690 pSMB->req_no_secext.Capabilities = cpu_to_le32(capabilities);
691 pSMB->req_no_secext.CaseInsensitivePasswordLength =
692 cpu_to_le16(CIFS_AUTH_RESP_SIZE);
693 pSMB->req_no_secext.CaseSensitivePasswordLength =
694 cpu_to_le16(CIFS_AUTH_RESP_SIZE);
695
696 /* calculate ntlm response and session key */
697 rc = setup_ntlm_response(ses);
698 if (rc) {
699 cERROR(1, "Error %d during NTLM authentication", rc);
700 goto ssetup_exit;
701 }
702
703 /* copy ntlm response */
704 memcpy(bcc_ptr, ses->auth_key.response + CIFS_SESS_KEY_SIZE,
705 CIFS_AUTH_RESP_SIZE);
706 bcc_ptr += CIFS_AUTH_RESP_SIZE;
707 memcpy(bcc_ptr, ses->auth_key.response + CIFS_SESS_KEY_SIZE,
708 CIFS_AUTH_RESP_SIZE);
709 bcc_ptr += CIFS_AUTH_RESP_SIZE;
710
711 if (ses->capabilities & CAP_UNICODE) {
712 /* unicode strings must be word aligned */
713 if (iov[0].iov_len % 2) {
714 *bcc_ptr = 0;
715 bcc_ptr++;
716 }
717 unicode_ssetup_strings(&bcc_ptr, ses, nls_cp);
718 } else
719 ascii_ssetup_strings(&bcc_ptr, ses, nls_cp);
720 } else if (type == NTLMv2) {
721 pSMB->req_no_secext.Capabilities = cpu_to_le32(capabilities);
722
723 /* LM2 password would be here if we supported it */
724 pSMB->req_no_secext.CaseInsensitivePasswordLength = 0;
725
726 /* calculate nlmv2 response and session key */
727 rc = setup_ntlmv2_rsp(ses, nls_cp);
728 if (rc) {
729 cERROR(1, "Error %d during NTLMv2 authentication", rc);
730 goto ssetup_exit;
731 }
732 memcpy(bcc_ptr, ses->auth_key.response + CIFS_SESS_KEY_SIZE,
733 ses->auth_key.len - CIFS_SESS_KEY_SIZE);
734 bcc_ptr += ses->auth_key.len - CIFS_SESS_KEY_SIZE;
735
736 /* set case sensitive password length after tilen may get
737 * assigned, tilen is 0 otherwise.
738 */
739 pSMB->req_no_secext.CaseSensitivePasswordLength =
740 cpu_to_le16(ses->auth_key.len - CIFS_SESS_KEY_SIZE);
741
742 if (ses->capabilities & CAP_UNICODE) {
743 if (iov[0].iov_len % 2) {
744 *bcc_ptr = 0;
745 bcc_ptr++;
746 }
747 unicode_ssetup_strings(&bcc_ptr, ses, nls_cp);
748 } else
749 ascii_ssetup_strings(&bcc_ptr, ses, nls_cp);
750 } else if (type == Kerberos) {
751 #ifdef CONFIG_CIFS_UPCALL
752 struct cifs_spnego_msg *msg;
753
754 spnego_key = cifs_get_spnego_key(ses);
755 if (IS_ERR(spnego_key)) {
756 rc = PTR_ERR(spnego_key);
757 spnego_key = NULL;
758 goto ssetup_exit;
759 }
760
761 msg = spnego_key->payload.data;
762 /* check version field to make sure that cifs.upcall is
763 sending us a response in an expected form */
764 if (msg->version != CIFS_SPNEGO_UPCALL_VERSION) {
765 cERROR(1, "incorrect version of cifs.upcall (expected"
766 " %d but got %d)",
767 CIFS_SPNEGO_UPCALL_VERSION, msg->version);
768 rc = -EKEYREJECTED;
769 goto ssetup_exit;
770 }
771
772 ses->auth_key.response = kmalloc(msg->sesskey_len, GFP_KERNEL);
773 if (!ses->auth_key.response) {
774 cERROR(1, "Kerberos can't allocate (%u bytes) memory",
775 msg->sesskey_len);
776 rc = -ENOMEM;
777 goto ssetup_exit;
778 }
779 memcpy(ses->auth_key.response, msg->data, msg->sesskey_len);
780 ses->auth_key.len = msg->sesskey_len;
781
782 pSMB->req.hdr.Flags2 |= SMBFLG2_EXT_SEC;
783 capabilities |= CAP_EXTENDED_SECURITY;
784 pSMB->req.Capabilities = cpu_to_le32(capabilities);
785 iov[1].iov_base = msg->data + msg->sesskey_len;
786 iov[1].iov_len = msg->secblob_len;
787 pSMB->req.SecurityBlobLength = cpu_to_le16(iov[1].iov_len);
788
789 if (ses->capabilities & CAP_UNICODE) {
790 /* unicode strings must be word aligned */
791 if ((iov[0].iov_len + iov[1].iov_len) % 2) {
792 *bcc_ptr = 0;
793 bcc_ptr++;
794 }
795 unicode_oslm_strings(&bcc_ptr, nls_cp);
796 unicode_domain_string(&bcc_ptr, ses, nls_cp);
797 } else
798 /* BB: is this right? */
799 ascii_ssetup_strings(&bcc_ptr, ses, nls_cp);
800 #else /* ! CONFIG_CIFS_UPCALL */
801 cERROR(1, "Kerberos negotiated but upcall support disabled!");
802 rc = -ENOSYS;
803 goto ssetup_exit;
804 #endif /* CONFIG_CIFS_UPCALL */
805 } else if (type == RawNTLMSSP) {
806 if ((pSMB->req.hdr.Flags2 & SMBFLG2_UNICODE) == 0) {
807 cERROR(1, "NTLMSSP requires Unicode support");
808 rc = -ENOSYS;
809 goto ssetup_exit;
810 }
811
812 cFYI(1, "ntlmssp session setup phase %d", phase);
813 pSMB->req.hdr.Flags2 |= SMBFLG2_EXT_SEC;
814 capabilities |= CAP_EXTENDED_SECURITY;
815 pSMB->req.Capabilities |= cpu_to_le32(capabilities);
816 switch(phase) {
817 case NtLmNegotiate:
818 build_ntlmssp_negotiate_blob(
819 pSMB->req.SecurityBlob, ses);
820 iov[1].iov_len = sizeof(NEGOTIATE_MESSAGE);
821 iov[1].iov_base = pSMB->req.SecurityBlob;
822 pSMB->req.SecurityBlobLength =
823 cpu_to_le16(sizeof(NEGOTIATE_MESSAGE));
824 break;
825 case NtLmAuthenticate:
826 /*
827 * 5 is an empirical value, large enough to hold
828 * authenticate message plus max 10 of av paris,
829 * domain, user, workstation names, flags, etc.
830 */
831 ntlmsspblob = kzalloc(
832 5*sizeof(struct _AUTHENTICATE_MESSAGE),
833 GFP_KERNEL);
834 if (!ntlmsspblob) {
835 cERROR(1, "Can't allocate NTLMSSP blob");
836 rc = -ENOMEM;
837 goto ssetup_exit;
838 }
839
840 rc = build_ntlmssp_auth_blob(ntlmsspblob,
841 &blob_len, ses, nls_cp);
842 if (rc)
843 goto ssetup_exit;
844 iov[1].iov_len = blob_len;
845 iov[1].iov_base = ntlmsspblob;
846 pSMB->req.SecurityBlobLength = cpu_to_le16(blob_len);
847 /*
848 * Make sure that we tell the server that we are using
849 * the uid that it just gave us back on the response
850 * (challenge)
851 */
852 smb_buf->Uid = ses->Suid;
853 break;
854 default:
855 cERROR(1, "invalid phase %d", phase);
856 rc = -ENOSYS;
857 goto ssetup_exit;
858 }
859 /* unicode strings must be word aligned */
860 if ((iov[0].iov_len + iov[1].iov_len) % 2) {
861 *bcc_ptr = 0;
862 bcc_ptr++;
863 }
864 unicode_oslm_strings(&bcc_ptr, nls_cp);
865 } else {
866 cERROR(1, "secType %d not supported!", type);
867 rc = -ENOSYS;
868 goto ssetup_exit;
869 }
870
871 iov[2].iov_base = str_area;
872 iov[2].iov_len = (long) bcc_ptr - (long) str_area;
873
874 count = iov[1].iov_len + iov[2].iov_len;
875 smb_buf->smb_buf_length += count;
876
877 put_bcc_le(count, smb_buf);
878
879 rc = SendReceive2(xid, ses, iov, 3 /* num_iovecs */, &resp_buf_type,
880 CIFS_LOG_ERROR);
881 /* SMB request buf freed in SendReceive2 */
882
883 pSMB = (SESSION_SETUP_ANDX *)iov[0].iov_base;
884 smb_buf = (struct smb_hdr *)iov[0].iov_base;
885
886 if ((type == RawNTLMSSP) && (smb_buf->Status.CifsError ==
887 cpu_to_le32(NT_STATUS_MORE_PROCESSING_REQUIRED))) {
888 if (phase != NtLmNegotiate) {
889 cERROR(1, "Unexpected more processing error");
890 goto ssetup_exit;
891 }
892 /* NTLMSSP Negotiate sent now processing challenge (response) */
893 phase = NtLmChallenge; /* process ntlmssp challenge */
894 rc = 0; /* MORE_PROC rc is not an error here, but expected */
895 }
896 if (rc)
897 goto ssetup_exit;
898
899 if ((smb_buf->WordCount != 3) && (smb_buf->WordCount != 4)) {
900 rc = -EIO;
901 cERROR(1, "bad word count %d", smb_buf->WordCount);
902 goto ssetup_exit;
903 }
904 action = le16_to_cpu(pSMB->resp.Action);
905 if (action & GUEST_LOGIN)
906 cFYI(1, "Guest login"); /* BB mark SesInfo struct? */
907 ses->Suid = smb_buf->Uid; /* UID left in wire format (le) */
908 cFYI(1, "UID = %d ", ses->Suid);
909 /* response can have either 3 or 4 word count - Samba sends 3 */
910 /* and lanman response is 3 */
911 bytes_remaining = get_bcc(smb_buf);
912 bcc_ptr = pByteArea(smb_buf);
913
914 if (smb_buf->WordCount == 4) {
915 blob_len = le16_to_cpu(pSMB->resp.SecurityBlobLength);
916 if (blob_len > bytes_remaining) {
917 cERROR(1, "bad security blob length %d", blob_len);
918 rc = -EINVAL;
919 goto ssetup_exit;
920 }
921 if (phase == NtLmChallenge) {
922 rc = decode_ntlmssp_challenge(bcc_ptr, blob_len, ses);
923 /* now goto beginning for ntlmssp authenticate phase */
924 if (rc)
925 goto ssetup_exit;
926 }
927 bcc_ptr += blob_len;
928 bytes_remaining -= blob_len;
929 }
930
931 /* BB check if Unicode and decode strings */
932 if (smb_buf->Flags2 & SMBFLG2_UNICODE) {
933 /* unicode string area must be word-aligned */
934 if (((unsigned long) bcc_ptr - (unsigned long) smb_buf) % 2) {
935 ++bcc_ptr;
936 --bytes_remaining;
937 }
938 decode_unicode_ssetup(&bcc_ptr, bytes_remaining, ses, nls_cp);
939 } else {
940 rc = decode_ascii_ssetup(&bcc_ptr, bytes_remaining,
941 ses, nls_cp);
942 }
943
944 ssetup_exit:
945 if (spnego_key) {
946 key_revoke(spnego_key);
947 key_put(spnego_key);
948 }
949 kfree(str_area);
950 kfree(ntlmsspblob);
951 ntlmsspblob = NULL;
952 if (resp_buf_type == CIFS_SMALL_BUFFER) {
953 cFYI(1, "ssetup freeing small buf %p", iov[0].iov_base);
954 cifs_small_buf_release(iov[0].iov_base);
955 } else if (resp_buf_type == CIFS_LARGE_BUFFER)
956 cifs_buf_release(iov[0].iov_base);
957
958 /* if ntlmssp, and negotiate succeeded, proceed to authenticate phase */
959 if ((phase == NtLmChallenge) && (rc == 0))
960 goto ssetup_ntlmssp_authenticate;
961
962 return rc;
963 }