s3-net: Add encoding=<CP> to 'net printing migrate'.
[Samba.git] / libcli / auth / smbencrypt.c
blobe0326d4c9ee2972089b3c0421f0922b7b7687e0c
1 /*
2 Unix SMB/CIFS implementation.
3 SMB parameters and setup
4 Copyright (C) Andrew Tridgell 1992-1998
5 Modified by Jeremy Allison 1995.
6 Copyright (C) Jeremy Allison 1995-2000.
7 Copyright (C) Luke Kennethc Casson Leighton 1996-2000.
8 Copyright (C) Andrew Bartlett <abartlet@samba.org> 2002-2003
10 This program is free software; you can redistribute it and/or modify
11 it under the terms of the GNU General Public License as published by
12 the Free Software Foundation; either version 3 of the License, or
13 (at your option) any later version.
15 This program 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 the
18 GNU General Public License for more details.
20 You should have received a copy of the GNU General Public License
21 along with this program. If not, see <http://www.gnu.org/licenses/>.
24 #include "includes.h"
25 #include "system/time.h"
26 #include "../libcli/auth/msrpc_parse.h"
27 #include "../lib/crypto/crypto.h"
28 #include "../libcli/auth/libcli_auth.h"
29 #include "../librpc/gen_ndr/ntlmssp.h"
31 void SMBencrypt_hash(const uint8_t lm_hash[16], const uint8_t *c8, uint8_t p24[24])
33 uint8_t p21[21];
35 memset(p21,'\0',21);
36 memcpy(p21, lm_hash, 16);
38 SMBOWFencrypt(p21, c8, p24);
40 #ifdef DEBUG_PASSWORD
41 DEBUG(100,("SMBencrypt_hash: lm#, challenge, response\n"));
42 dump_data(100, p21, 16);
43 dump_data(100, c8, 8);
44 dump_data(100, p24, 24);
45 #endif
49 This implements the X/Open SMB password encryption
50 It takes a password ('unix' string), a 8 byte "crypt key"
51 and puts 24 bytes of encrypted password into p24
53 Returns False if password must have been truncated to create LM hash
56 bool SMBencrypt(const char *passwd, const uint8_t *c8, uint8_t p24[24])
58 bool ret;
59 uint8_t lm_hash[16];
61 ret = E_deshash(passwd, lm_hash);
62 SMBencrypt_hash(lm_hash, c8, p24);
63 return ret;
66 /**
67 * Creates the MD4 Hash of the users password in NT UNICODE.
68 * @param passwd password in 'unix' charset.
69 * @param p16 return password hashed with md4, caller allocated 16 byte buffer
72 bool E_md4hash(const char *passwd, uint8_t p16[16])
74 size_t len;
75 smb_ucs2_t *wpwd;
76 bool ret;
78 ret = push_ucs2_talloc(NULL, &wpwd, passwd, &len);
79 if (!ret || len < 2) {
80 /* We don't want to return fixed data, as most callers
81 * don't check */
82 mdfour(p16, (const uint8_t *)passwd, strlen(passwd));
83 return false;
86 len -= 2;
87 mdfour(p16, (const uint8_t *)wpwd, len);
89 talloc_free(wpwd);
90 return true;
93 /**
94 * Creates the MD5 Hash of a combination of 16 byte salt and 16 byte NT hash.
95 * @param 16 byte salt.
96 * @param 16 byte NT hash.
97 * @param 16 byte return hashed with md5, caller allocated 16 byte buffer
100 void E_md5hash(const uint8_t salt[16], const uint8_t nthash[16], uint8_t hash_out[16])
102 MD5_CTX tctx;
103 MD5Init(&tctx);
104 MD5Update(&tctx, salt, 16);
105 MD5Update(&tctx, nthash, 16);
106 MD5Final(hash_out, &tctx);
110 * Creates the DES forward-only Hash of the users password in DOS ASCII charset
111 * @param passwd password in 'unix' charset.
112 * @param p16 return password hashed with DES, caller allocated 16 byte buffer
113 * @return false if password was > 14 characters, and therefore may be incorrect, otherwise true
114 * @note p16 is filled in regardless
117 bool E_deshash(const char *passwd, uint8_t p16[16])
119 bool ret = true;
120 char dospwd[256];
121 ZERO_STRUCT(dospwd);
123 /* Password must be converted to DOS charset - null terminated, uppercase. */
124 push_string(dospwd, passwd, sizeof(dospwd), STR_ASCII|STR_UPPER|STR_TERMINATE);
126 /* Only the first 14 chars are considered, password need not be null terminated. */
127 E_P16((const uint8_t *)dospwd, p16);
129 if (strlen(dospwd) > 14) {
130 ret = false;
133 ZERO_STRUCT(dospwd);
135 return ret;
139 * Creates the MD4 and DES (LM) Hash of the users password.
140 * MD4 is of the NT Unicode, DES is of the DOS UPPERCASE password.
141 * @param passwd password in 'unix' charset.
142 * @param nt_p16 return password hashed with md4, caller allocated 16 byte buffer
143 * @param p16 return password hashed with des, caller allocated 16 byte buffer
146 /* Does both the NT and LM owfs of a user's password */
147 void nt_lm_owf_gen(const char *pwd, uint8_t nt_p16[16], uint8_t p16[16])
149 /* Calculate the MD4 hash (NT compatible) of the password */
150 memset(nt_p16, '\0', 16);
151 E_md4hash(pwd, nt_p16);
153 #ifdef DEBUG_PASSWORD
154 DEBUG(100,("nt_lm_owf_gen: pwd, nt#\n"));
155 dump_data(120, (const uint8_t *)pwd, strlen(pwd));
156 dump_data(100, nt_p16, 16);
157 #endif
159 E_deshash(pwd, (uint8_t *)p16);
161 #ifdef DEBUG_PASSWORD
162 DEBUG(100,("nt_lm_owf_gen: pwd, lm#\n"));
163 dump_data(120, (const uint8_t *)pwd, strlen(pwd));
164 dump_data(100, p16, 16);
165 #endif
168 /* Does both the NTLMv2 owfs of a user's password */
169 bool ntv2_owf_gen(const uint8_t owf[16],
170 const char *user_in, const char *domain_in,
171 uint8_t kr_buf[16])
173 smb_ucs2_t *user;
174 smb_ucs2_t *domain;
175 size_t user_byte_len;
176 size_t domain_byte_len;
177 bool ret;
179 HMACMD5Context ctx;
180 TALLOC_CTX *mem_ctx = talloc_init("ntv2_owf_gen for %s\\%s", domain_in, user_in);
182 if (!mem_ctx) {
183 return false;
186 if (!user_in) {
187 user_in = "";
190 if (!domain_in) {
191 domain_in = "";
194 user_in = strupper_talloc(mem_ctx, user_in);
195 if (user_in == NULL) {
196 talloc_free(mem_ctx);
197 return false;
200 ret = push_ucs2_talloc(mem_ctx, &user, user_in, &user_byte_len );
201 if (!ret) {
202 DEBUG(0, ("push_uss2_talloc() for user failed)\n"));
203 talloc_free(mem_ctx);
204 return false;
207 ret = push_ucs2_talloc(mem_ctx, &domain, domain_in, &domain_byte_len);
208 if (!ret) {
209 DEBUG(0, ("push_ucs2_talloc() for domain failed\n"));
210 talloc_free(mem_ctx);
211 return false;
214 SMB_ASSERT(user_byte_len >= 2);
215 SMB_ASSERT(domain_byte_len >= 2);
217 /* We don't want null termination */
218 user_byte_len = user_byte_len - 2;
219 domain_byte_len = domain_byte_len - 2;
221 hmac_md5_init_limK_to_64(owf, 16, &ctx);
222 hmac_md5_update((uint8_t *)user, user_byte_len, &ctx);
223 hmac_md5_update((uint8_t *)domain, domain_byte_len, &ctx);
224 hmac_md5_final(kr_buf, &ctx);
226 #ifdef DEBUG_PASSWORD
227 DEBUG(100, ("ntv2_owf_gen: user, domain, owfkey, kr\n"));
228 dump_data(100, (uint8_t *)user, user_byte_len);
229 dump_data(100, (uint8_t *)domain, domain_byte_len);
230 dump_data(100, owf, 16);
231 dump_data(100, kr_buf, 16);
232 #endif
234 talloc_free(mem_ctx);
235 return true;
238 /* Does the des encryption from the NT or LM MD4 hash. */
239 void SMBOWFencrypt(const uint8_t passwd[16], const uint8_t *c8, uint8_t p24[24])
241 uint8_t p21[21];
243 ZERO_STRUCT(p21);
245 memcpy(p21, passwd, 16);
246 E_P24(p21, c8, p24);
249 /* Does the des encryption. */
251 void SMBNTencrypt_hash(const uint8_t nt_hash[16], uint8_t *c8, uint8_t *p24)
253 uint8_t p21[21];
255 memset(p21,'\0',21);
256 memcpy(p21, nt_hash, 16);
257 SMBOWFencrypt(p21, c8, p24);
259 #ifdef DEBUG_PASSWORD
260 DEBUG(100,("SMBNTencrypt: nt#, challenge, response\n"));
261 dump_data(100, p21, 16);
262 dump_data(100, c8, 8);
263 dump_data(100, p24, 24);
264 #endif
267 /* Does the NT MD4 hash then des encryption. Plaintext version of the above. */
269 void SMBNTencrypt(const char *passwd, uint8_t *c8, uint8_t *p24)
271 uint8_t nt_hash[16];
272 E_md4hash(passwd, nt_hash);
273 SMBNTencrypt_hash(nt_hash, c8, p24);
277 /* Does the md5 encryption from the Key Response for NTLMv2. */
278 void SMBOWFencrypt_ntv2(const uint8_t kr[16],
279 const DATA_BLOB *srv_chal,
280 const DATA_BLOB *smbcli_chal,
281 uint8_t resp_buf[16])
283 HMACMD5Context ctx;
285 hmac_md5_init_limK_to_64(kr, 16, &ctx);
286 hmac_md5_update(srv_chal->data, srv_chal->length, &ctx);
287 hmac_md5_update(smbcli_chal->data, smbcli_chal->length, &ctx);
288 hmac_md5_final(resp_buf, &ctx);
290 #ifdef DEBUG_PASSWORD
291 DEBUG(100, ("SMBOWFencrypt_ntv2: srv_chal, smbcli_chal, resp_buf\n"));
292 dump_data(100, srv_chal->data, srv_chal->length);
293 dump_data(100, smbcli_chal->data, smbcli_chal->length);
294 dump_data(100, resp_buf, 16);
295 #endif
298 void SMBsesskeygen_ntv2(const uint8_t kr[16],
299 const uint8_t * nt_resp, uint8_t sess_key[16])
301 /* a very nice, 128 bit, variable session key */
303 HMACMD5Context ctx;
305 hmac_md5_init_limK_to_64(kr, 16, &ctx);
306 hmac_md5_update(nt_resp, 16, &ctx);
307 hmac_md5_final((uint8_t *)sess_key, &ctx);
309 #ifdef DEBUG_PASSWORD
310 DEBUG(100, ("SMBsesskeygen_ntv2:\n"));
311 dump_data(100, sess_key, 16);
312 #endif
315 void SMBsesskeygen_ntv1(const uint8_t kr[16], uint8_t sess_key[16])
317 /* yes, this session key does not change - yes, this
318 is a problem - but it is 128 bits */
320 mdfour((uint8_t *)sess_key, kr, 16);
322 #ifdef DEBUG_PASSWORD
323 DEBUG(100, ("SMBsesskeygen_ntv1:\n"));
324 dump_data(100, sess_key, 16);
325 #endif
328 void SMBsesskeygen_lm_sess_key(const uint8_t lm_hash[16],
329 const uint8_t lm_resp[24], /* only uses 8 */
330 uint8_t sess_key[16])
332 /* Calculate the LM session key (effective length 40 bits,
333 but changes with each session) */
334 uint8_t p24[24];
335 uint8_t partial_lm_hash[14];
337 memcpy(partial_lm_hash, lm_hash, 8);
338 memset(partial_lm_hash + 8, 0xbd, 6);
340 des_crypt56(p24, lm_resp, partial_lm_hash, 1);
341 des_crypt56(p24+8, lm_resp, partial_lm_hash + 7, 1);
343 memcpy(sess_key, p24, 16);
345 #ifdef DEBUG_PASSWORD
346 DEBUG(100, ("SMBsesskeygen_lm_sess_key: \n"));
347 dump_data(100, sess_key, 16);
348 #endif
351 DATA_BLOB NTLMv2_generate_names_blob(TALLOC_CTX *mem_ctx,
352 const char *hostname,
353 const char *domain)
355 DATA_BLOB names_blob = data_blob_talloc(mem_ctx, NULL, 0);
357 /* Deliberately ignore return here.. */
358 (void)msrpc_gen(mem_ctx, &names_blob,
359 "aaa",
360 MsvAvNbDomainName, domain,
361 MsvAvNbComputerName, hostname,
362 MsvAvEOL, "");
363 return names_blob;
366 static DATA_BLOB NTLMv2_generate_client_data(TALLOC_CTX *mem_ctx, const DATA_BLOB *names_blob)
368 uint8_t client_chal[8];
369 DATA_BLOB response = data_blob(NULL, 0);
370 uint8_t long_date[8];
371 NTTIME nttime;
373 unix_to_nt_time(&nttime, time(NULL));
375 generate_random_buffer(client_chal, sizeof(client_chal));
377 push_nttime(long_date, 0, nttime);
379 /* See http://www.ubiqx.org/cifs/SMB.html#SMB.8.5 */
381 /* Deliberately ignore return here.. */
382 (void)msrpc_gen(mem_ctx, &response, "ddbbdb",
383 0x00000101, /* Header */
384 0, /* 'Reserved' */
385 long_date, 8, /* Timestamp */
386 client_chal, 8, /* client challenge */
387 0, /* Unknown */
388 names_blob->data, names_blob->length); /* End of name list */
390 return response;
393 static DATA_BLOB NTLMv2_generate_response(TALLOC_CTX *out_mem_ctx,
394 const uint8_t ntlm_v2_hash[16],
395 const DATA_BLOB *server_chal,
396 const DATA_BLOB *names_blob)
398 uint8_t ntlmv2_response[16];
399 DATA_BLOB ntlmv2_client_data;
400 DATA_BLOB final_response;
402 TALLOC_CTX *mem_ctx = talloc_named(out_mem_ctx, 0,
403 "NTLMv2_generate_response internal context");
405 if (!mem_ctx) {
406 return data_blob(NULL, 0);
409 /* NTLMv2 */
410 /* generate some data to pass into the response function - including
411 the hostname and domain name of the server */
412 ntlmv2_client_data = NTLMv2_generate_client_data(mem_ctx, names_blob);
414 /* Given that data, and the challenge from the server, generate a response */
415 SMBOWFencrypt_ntv2(ntlm_v2_hash, server_chal, &ntlmv2_client_data, ntlmv2_response);
417 final_response = data_blob_talloc(out_mem_ctx, NULL, sizeof(ntlmv2_response) + ntlmv2_client_data.length);
419 memcpy(final_response.data, ntlmv2_response, sizeof(ntlmv2_response));
421 memcpy(final_response.data+sizeof(ntlmv2_response),
422 ntlmv2_client_data.data, ntlmv2_client_data.length);
424 talloc_free(mem_ctx);
426 return final_response;
429 static DATA_BLOB LMv2_generate_response(TALLOC_CTX *mem_ctx,
430 const uint8_t ntlm_v2_hash[16],
431 const DATA_BLOB *server_chal)
433 uint8_t lmv2_response[16];
434 DATA_BLOB lmv2_client_data = data_blob_talloc(mem_ctx, NULL, 8);
435 DATA_BLOB final_response = data_blob_talloc(mem_ctx, NULL,24);
437 /* LMv2 */
438 /* client-supplied random data */
439 generate_random_buffer(lmv2_client_data.data, lmv2_client_data.length);
441 /* Given that data, and the challenge from the server, generate a response */
442 SMBOWFencrypt_ntv2(ntlm_v2_hash, server_chal, &lmv2_client_data, lmv2_response);
443 memcpy(final_response.data, lmv2_response, sizeof(lmv2_response));
445 /* after the first 16 bytes is the random data we generated above,
446 so the server can verify us with it */
447 memcpy(final_response.data+sizeof(lmv2_response),
448 lmv2_client_data.data, lmv2_client_data.length);
450 data_blob_free(&lmv2_client_data);
452 return final_response;
455 bool SMBNTLMv2encrypt_hash(TALLOC_CTX *mem_ctx,
456 const char *user, const char *domain, const uint8_t nt_hash[16],
457 const DATA_BLOB *server_chal,
458 const DATA_BLOB *names_blob,
459 DATA_BLOB *lm_response, DATA_BLOB *nt_response,
460 DATA_BLOB *lm_session_key, DATA_BLOB *user_session_key)
462 uint8_t ntlm_v2_hash[16];
464 /* We don't use the NT# directly. Instead we use it mashed up with
465 the username and domain.
466 This prevents username swapping during the auth exchange
468 if (!ntv2_owf_gen(nt_hash, user, domain, ntlm_v2_hash)) {
469 return false;
472 if (nt_response) {
473 *nt_response = NTLMv2_generate_response(mem_ctx,
474 ntlm_v2_hash, server_chal,
475 names_blob);
476 if (user_session_key) {
477 *user_session_key = data_blob_talloc(mem_ctx, NULL, 16);
479 /* The NTLMv2 calculations also provide a session key, for signing etc later */
480 /* use only the first 16 bytes of nt_response for session key */
481 SMBsesskeygen_ntv2(ntlm_v2_hash, nt_response->data, user_session_key->data);
485 /* LMv2 */
487 if (lm_response) {
488 *lm_response = LMv2_generate_response(mem_ctx,
489 ntlm_v2_hash, server_chal);
490 if (lm_session_key) {
491 *lm_session_key = data_blob_talloc(mem_ctx, NULL, 16);
493 /* The NTLMv2 calculations also provide a session key, for signing etc later */
494 /* use only the first 16 bytes of lm_response for session key */
495 SMBsesskeygen_ntv2(ntlm_v2_hash, lm_response->data, lm_session_key->data);
499 return true;
502 bool SMBNTLMv2encrypt(TALLOC_CTX *mem_ctx,
503 const char *user, const char *domain,
504 const char *password,
505 const DATA_BLOB *server_chal,
506 const DATA_BLOB *names_blob,
507 DATA_BLOB *lm_response, DATA_BLOB *nt_response,
508 DATA_BLOB *lm_session_key, DATA_BLOB *user_session_key)
510 uint8_t nt_hash[16];
511 E_md4hash(password, nt_hash);
513 return SMBNTLMv2encrypt_hash(mem_ctx,
514 user, domain, nt_hash, server_chal, names_blob,
515 lm_response, nt_response, lm_session_key, user_session_key);
518 /***********************************************************
519 encode a password buffer with a unicode password. The buffer
520 is filled with random data to make it harder to attack.
521 ************************************************************/
522 bool encode_pw_buffer(uint8_t buffer[516], const char *password, int string_flags)
524 uint8_t new_pw[512];
525 ssize_t new_pw_len;
527 /* the incoming buffer can be any alignment. */
528 string_flags |= STR_NOALIGN;
530 new_pw_len = push_string(new_pw,
531 password,
532 sizeof(new_pw), string_flags);
533 if (new_pw_len == -1) {
534 return false;
537 memcpy(&buffer[512 - new_pw_len], new_pw, new_pw_len);
539 generate_random_buffer(buffer, 512 - new_pw_len);
542 * The length of the new password is in the last 4 bytes of
543 * the data buffer.
545 SIVAL(buffer, 512, new_pw_len);
546 ZERO_STRUCT(new_pw);
547 return true;
551 /***********************************************************
552 decode a password buffer
553 *new_pw_len is the length in bytes of the possibly mulitbyte
554 returned password including termination.
555 ************************************************************/
557 bool decode_pw_buffer(TALLOC_CTX *ctx,
558 uint8_t in_buffer[516],
559 char **pp_new_pwrd,
560 size_t *new_pw_len,
561 charset_t string_charset)
563 int byte_len=0;
565 *pp_new_pwrd = NULL;
566 *new_pw_len = 0;
569 Warning !!! : This function is called from some rpc call.
570 The password IN the buffer may be a UNICODE string.
571 The password IN new_pwrd is an ASCII string
572 If you reuse that code somewhere else check first.
575 /* The length of the new password is in the last 4 bytes of the data buffer. */
577 byte_len = IVAL(in_buffer, 512);
579 #ifdef DEBUG_PASSWORD
580 dump_data(100, in_buffer, 516);
581 #endif
583 /* Password cannot be longer than the size of the password buffer */
584 if ( (byte_len < 0) || (byte_len > 512)) {
585 DEBUG(0, ("decode_pw_buffer: incorrect password length (%d).\n", byte_len));
586 DEBUG(0, ("decode_pw_buffer: check that 'encrypt passwords = yes'\n"));
587 return false;
590 /* decode into the return buffer. */
591 if (!convert_string_talloc(ctx, string_charset, CH_UNIX,
592 &in_buffer[512 - byte_len],
593 byte_len,
594 (void *)pp_new_pwrd,
595 new_pw_len,
596 false)) {
597 DEBUG(0, ("decode_pw_buffer: failed to convert incoming password\n"));
598 return false;
601 #ifdef DEBUG_PASSWORD
602 DEBUG(100,("decode_pw_buffer: new_pwrd: "));
603 dump_data(100, (uint8_t *)*pp_new_pwrd, *new_pw_len);
604 DEBUG(100,("multibyte len:%lu\n", (unsigned long int)*new_pw_len));
605 DEBUG(100,("original char len:%d\n", byte_len/2));
606 #endif
608 return true;
611 /***********************************************************
612 Decode an arc4 encrypted password change buffer.
613 ************************************************************/
615 void encode_or_decode_arc4_passwd_buffer(unsigned char pw_buf[532], const DATA_BLOB *psession_key)
617 MD5_CTX tctx;
618 unsigned char key_out[16];
620 /* Confounder is last 16 bytes. */
622 MD5Init(&tctx);
623 MD5Update(&tctx, &pw_buf[516], 16);
624 MD5Update(&tctx, psession_key->data, psession_key->length);
625 MD5Final(key_out, &tctx);
626 /* arc4 with key_out. */
627 arcfour_crypt(pw_buf, key_out, 516);
630 /***********************************************************
631 encode a password buffer with an already unicode password. The
632 rest of the buffer is filled with random data to make it harder to attack.
633 ************************************************************/
634 bool set_pw_in_buffer(uint8_t buffer[516], DATA_BLOB *password)
636 if (password->length > 512) {
637 return false;
640 memcpy(&buffer[512 - password->length], password->data, password->length);
642 generate_random_buffer(buffer, 512 - password->length);
645 * The length of the new password is in the last 4 bytes of
646 * the data buffer.
648 SIVAL(buffer, 512, password->length);
649 return true;
652 /***********************************************************
653 decode a password buffer
654 *new_pw_size is the length in bytes of the extracted unicode password
655 ************************************************************/
656 bool extract_pw_from_buffer(TALLOC_CTX *mem_ctx,
657 uint8_t in_buffer[516], DATA_BLOB *new_pass)
659 int byte_len=0;
661 /* The length of the new password is in the last 4 bytes of the data buffer. */
663 byte_len = IVAL(in_buffer, 512);
665 #ifdef DEBUG_PASSWORD
666 dump_data(100, in_buffer, 516);
667 #endif
669 /* Password cannot be longer than the size of the password buffer */
670 if ( (byte_len < 0) || (byte_len > 512)) {
671 return false;
674 *new_pass = data_blob_talloc(mem_ctx, &in_buffer[512 - byte_len], byte_len);
676 if (!new_pass->data) {
677 return false;
680 return true;
684 /* encode a wkssvc_PasswordBuffer:
686 * similar to samr_CryptPasswordEx. Different: 8byte confounder (instead of
687 * 16byte), confounder in front of the 516 byte buffer (instead of after that
688 * buffer), calling MD5Update() first with session_key and then with confounder
689 * (vice versa in samr) - Guenther */
691 void encode_wkssvc_join_password_buffer(TALLOC_CTX *mem_ctx,
692 const char *pwd,
693 DATA_BLOB *session_key,
694 struct wkssvc_PasswordBuffer **pwd_buf)
696 uint8_t buffer[516];
697 MD5_CTX ctx;
698 struct wkssvc_PasswordBuffer *my_pwd_buf = NULL;
699 DATA_BLOB confounded_session_key;
700 int confounder_len = 8;
701 uint8_t confounder[8];
703 my_pwd_buf = talloc_zero(mem_ctx, struct wkssvc_PasswordBuffer);
704 if (!my_pwd_buf) {
705 return;
708 confounded_session_key = data_blob_talloc(mem_ctx, NULL, 16);
710 encode_pw_buffer(buffer, pwd, STR_UNICODE);
712 generate_random_buffer((uint8_t *)confounder, confounder_len);
714 MD5Init(&ctx);
715 MD5Update(&ctx, session_key->data, session_key->length);
716 MD5Update(&ctx, confounder, confounder_len);
717 MD5Final(confounded_session_key.data, &ctx);
719 arcfour_crypt_blob(buffer, 516, &confounded_session_key);
721 memcpy(&my_pwd_buf->data[0], confounder, confounder_len);
722 memcpy(&my_pwd_buf->data[8], buffer, 516);
724 data_blob_free(&confounded_session_key);
726 *pwd_buf = my_pwd_buf;
729 WERROR decode_wkssvc_join_password_buffer(TALLOC_CTX *mem_ctx,
730 struct wkssvc_PasswordBuffer *pwd_buf,
731 DATA_BLOB *session_key,
732 char **pwd)
734 uint8_t buffer[516];
735 MD5_CTX ctx;
736 size_t pwd_len;
738 DATA_BLOB confounded_session_key;
740 int confounder_len = 8;
741 uint8_t confounder[8];
743 *pwd = NULL;
745 if (!pwd_buf) {
746 return WERR_BAD_PASSWORD;
749 if (session_key->length != 16) {
750 DEBUG(10,("invalid session key\n"));
751 return WERR_BAD_PASSWORD;
754 confounded_session_key = data_blob_talloc(mem_ctx, NULL, 16);
756 memcpy(&confounder, &pwd_buf->data[0], confounder_len);
757 memcpy(&buffer, &pwd_buf->data[8], 516);
759 MD5Init(&ctx);
760 MD5Update(&ctx, session_key->data, session_key->length);
761 MD5Update(&ctx, confounder, confounder_len);
762 MD5Final(confounded_session_key.data, &ctx);
764 arcfour_crypt_blob(buffer, 516, &confounded_session_key);
766 if (!decode_pw_buffer(mem_ctx, buffer, pwd, &pwd_len, CH_UTF16)) {
767 data_blob_free(&confounded_session_key);
768 return WERR_BAD_PASSWORD;
771 data_blob_free(&confounded_session_key);
773 return WERR_OK;