1 /*
2 * Copyright 2004-2023 The OpenSSL Project Authors. All Rights Reserved.
3 * Copyright (c) 2004, EdelKey Project. All Rights Reserved.
4 *
5 * Licensed under the Apache License 2.0 (the "License"). You may not use
6 * this file except in compliance with the License. You can obtain a copy
7 * in the file LICENSE in the source distribution or at
8 * https://www.openssl.org/source/license.html
9 *
10 * Originally written by Christophe Renou and Peter Sylvester,
11 * for the EdelKey project.
12 */
13
14 /* All the SRP APIs in this file are deprecated */
15 #define OPENSSL_SUPPRESS_DEPRECATED
16
17 #ifndef OPENSSL_NO_SRP
18 #include "internal/cryptlib.h"
19 #include "crypto/evp.h"
20 #include <openssl/sha.h>
21 #include <openssl/srp.h>
22 #include <openssl/evp.h>
23 #include <openssl/buffer.h>
24 #include <openssl/rand.h>
25 #include <openssl/txt_db.h>
26 #include <openssl/err.h>
27
28 #define SRP_RANDOM_SALT_LEN 20
29 #define MAX_LEN 2500
30
31 /*
32 * Note that SRP uses its own variant of base 64 encoding. A different base64
33 * alphabet is used and no padding '=' characters are added. Instead we pad to
34 * the front with 0 bytes and subsequently strip off leading encoded padding.
35 * This variant is used for compatibility with other SRP implementations -
36 * notably libsrp, but also others. It is also required for backwards
37 * compatibility in order to load verifier files from other OpenSSL versions.
38 */
39
40 /*
41 * Convert a base64 string into raw byte array representation.
42 * Returns the length of the decoded data, or -1 on error.
43 */
t_fromb64(unsigned char * a,size_t alen,const char * src)44 static int t_fromb64(unsigned char *a, size_t alen, const char *src)
45 {
46 EVP_ENCODE_CTX *ctx;
47 int outl = 0, outl2 = 0;
48 size_t size, padsize;
49 const unsigned char *pad = (const unsigned char *)"00";
50
51 while (*src == ' ' || *src == '\t' || *src == '\n')
52 ++src;
53 size = strlen(src);
54 padsize = 4 - (size & 3);
55 padsize &= 3;
56
57 /* Four bytes in src become three bytes output. */
58 if (size > INT_MAX || ((size + padsize) / 4) * 3 > alen)
59 return -1;
60
61 ctx = EVP_ENCODE_CTX_new();
62 if (ctx == NULL)
63 return -1;
64
65 /*
66 * This should never occur because 1 byte of data always requires 2 bytes of
67 * encoding, i.e.
68 * 0 bytes unencoded = 0 bytes encoded
69 * 1 byte unencoded = 2 bytes encoded
70 * 2 bytes unencoded = 3 bytes encoded
71 * 3 bytes unencoded = 4 bytes encoded
72 * 4 bytes unencoded = 6 bytes encoded
73 * etc
74 */
75 if (padsize == 3) {
76 outl = -1;
77 goto err;
78 }
79
80 /* Valid padsize values are now 0, 1 or 2 */
81
82 EVP_DecodeInit(ctx);
83 evp_encode_ctx_set_flags(ctx, EVP_ENCODE_CTX_USE_SRP_ALPHABET);
84
85 /* Add any encoded padding that is required */
86 if (padsize != 0
87 && EVP_DecodeUpdate(ctx, a, &outl, pad, padsize) < 0) {
88 outl = -1;
89 goto err;
90 }
91 if (EVP_DecodeUpdate(ctx, a, &outl2, (const unsigned char *)src, size) < 0) {
92 outl = -1;
93 goto err;
94 }
95 outl += outl2;
96 EVP_DecodeFinal(ctx, a + outl, &outl2);
97 outl += outl2;
98
99 /* Strip off the leading padding */
100 if (padsize != 0) {
101 if ((int)padsize >= outl) {
102 outl = -1;
103 goto err;
104 }
105
106 /*
107 * If we added 1 byte of padding prior to encoding then we have 2 bytes
108 * of "real" data which gets spread across 4 encoded bytes like this:
109 * (6 bits pad)(2 bits pad | 4 bits data)(6 bits data)(6 bits data)
110 * So 1 byte of pre-encoding padding results in 1 full byte of encoded
111 * padding.
112 * If we added 2 bytes of padding prior to encoding this gets encoded
113 * as:
114 * (6 bits pad)(6 bits pad)(4 bits pad | 2 bits data)(6 bits data)
115 * So 2 bytes of pre-encoding padding results in 2 full bytes of encoded
116 * padding, i.e. we have to strip the same number of bytes of padding
117 * from the encoded data as we added to the pre-encoded data.
118 */
119 memmove(a, a + padsize, outl - padsize);
120 outl -= padsize;
121 }
122
123 err:
124 EVP_ENCODE_CTX_free(ctx);
125
126 return outl;
127 }
128
129 /*
130 * Convert a raw byte string into a null-terminated base64 ASCII string.
131 * Returns 1 on success or 0 on error.
132 */
t_tob64(char * dst,const unsigned char * src,int size)133 static int t_tob64(char *dst, const unsigned char *src, int size)
134 {
135 EVP_ENCODE_CTX *ctx = EVP_ENCODE_CTX_new();
136 int outl = 0, outl2 = 0;
137 unsigned char pad[2] = { 0, 0 };
138 size_t leadz = 0;
139
140 if (ctx == NULL)
141 return 0;
142
143 EVP_EncodeInit(ctx);
144 evp_encode_ctx_set_flags(ctx, EVP_ENCODE_CTX_NO_NEWLINES | EVP_ENCODE_CTX_USE_SRP_ALPHABET);
145
146 /*
147 * We pad at the front with zero bytes until the length is a multiple of 3
148 * so that EVP_EncodeUpdate/EVP_EncodeFinal does not add any of its own "="
149 * padding
150 */
151 leadz = 3 - (size % 3);
152 if (leadz != 3
153 && !EVP_EncodeUpdate(ctx, (unsigned char *)dst, &outl, pad,
154 leadz)) {
155 EVP_ENCODE_CTX_free(ctx);
156 return 0;
157 }
158
159 if (!EVP_EncodeUpdate(ctx, (unsigned char *)dst + outl, &outl2, src,
160 size)) {
161 EVP_ENCODE_CTX_free(ctx);
162 return 0;
163 }
164 outl += outl2;
165 EVP_EncodeFinal(ctx, (unsigned char *)dst + outl, &outl2);
166 outl += outl2;
167
168 /* Strip the encoded padding at the front */
169 if (leadz != 3) {
170 memmove(dst, dst + leadz, outl - leadz);
171 dst[outl - leadz] = '\0';
172 }
173
174 EVP_ENCODE_CTX_free(ctx);
175 return 1;
176 }
177
SRP_user_pwd_free(SRP_user_pwd * user_pwd)178 void SRP_user_pwd_free(SRP_user_pwd *user_pwd)
179 {
180 if (user_pwd == NULL)
181 return;
182 BN_free(user_pwd->s);
183 BN_clear_free(user_pwd->v);
184 OPENSSL_free(user_pwd->id);
185 OPENSSL_free(user_pwd->info);
186 OPENSSL_free(user_pwd);
187 }
188
SRP_user_pwd_new(void)189 SRP_user_pwd *SRP_user_pwd_new(void)
190 {
191 SRP_user_pwd *ret;
192
193 if ((ret = OPENSSL_malloc(sizeof(*ret))) == NULL)
194 return NULL;
195 ret->N = NULL;
196 ret->g = NULL;
197 ret->s = NULL;
198 ret->v = NULL;
199 ret->id = NULL;
200 ret->info = NULL;
201 return ret;
202 }
203
SRP_user_pwd_set_gN(SRP_user_pwd * vinfo,const BIGNUM * g,const BIGNUM * N)204 void SRP_user_pwd_set_gN(SRP_user_pwd *vinfo, const BIGNUM *g,
205 const BIGNUM *N)
206 {
207 vinfo->N = N;
208 vinfo->g = g;
209 }
210
SRP_user_pwd_set1_ids(SRP_user_pwd * vinfo,const char * id,const char * info)211 int SRP_user_pwd_set1_ids(SRP_user_pwd *vinfo, const char *id,
212 const char *info)
213 {
214 OPENSSL_free(vinfo->id);
215 OPENSSL_free(vinfo->info);
216 vinfo->id = NULL;
217 vinfo->info = NULL;
218 if (id != NULL && NULL == (vinfo->id = OPENSSL_strdup(id)))
219 return 0;
220 return (info == NULL || NULL != (vinfo->info = OPENSSL_strdup(info)));
221 }
222
SRP_user_pwd_set_sv(SRP_user_pwd * vinfo,const char * s,const char * v)223 static int SRP_user_pwd_set_sv(SRP_user_pwd *vinfo, const char *s,
224 const char *v)
225 {
226 unsigned char tmp[MAX_LEN];
227 int len;
228
229 vinfo->v = NULL;
230 vinfo->s = NULL;
231
232 len = t_fromb64(tmp, sizeof(tmp), v);
233 if (len < 0)
234 return 0;
235 if (NULL == (vinfo->v = BN_bin2bn(tmp, len, NULL)))
236 return 0;
237 len = t_fromb64(tmp, sizeof(tmp), s);
238 if (len < 0)
239 goto err;
240 vinfo->s = BN_bin2bn(tmp, len, NULL);
241 if (vinfo->s == NULL)
242 goto err;
243 return 1;
244 err:
245 BN_free(vinfo->v);
246 vinfo->v = NULL;
247 return 0;
248 }
249
SRP_user_pwd_set0_sv(SRP_user_pwd * vinfo,BIGNUM * s,BIGNUM * v)250 int SRP_user_pwd_set0_sv(SRP_user_pwd *vinfo, BIGNUM *s, BIGNUM *v)
251 {
252 BN_free(vinfo->s);
253 BN_clear_free(vinfo->v);
254 vinfo->v = v;
255 vinfo->s = s;
256 return (vinfo->s != NULL && vinfo->v != NULL);
257 }
258
srp_user_pwd_dup(SRP_user_pwd * src)259 static SRP_user_pwd *srp_user_pwd_dup(SRP_user_pwd *src)
260 {
261 SRP_user_pwd *ret;
262
263 if (src == NULL)
264 return NULL;
265 if ((ret = SRP_user_pwd_new()) == NULL)
266 return NULL;
267
268 SRP_user_pwd_set_gN(ret, src->g, src->N);
269 if (!SRP_user_pwd_set1_ids(ret, src->id, src->info)
270 || !SRP_user_pwd_set0_sv(ret, BN_dup(src->s), BN_dup(src->v))) {
271 SRP_user_pwd_free(ret);
272 return NULL;
273 }
274 return ret;
275 }
276
SRP_VBASE_new(char * seed_key)277 SRP_VBASE *SRP_VBASE_new(char *seed_key)
278 {
279 SRP_VBASE *vb = OPENSSL_malloc(sizeof(*vb));
280
281 if (vb == NULL)
282 return NULL;
283 if ((vb->users_pwd = sk_SRP_user_pwd_new_null()) == NULL
284 || (vb->gN_cache = sk_SRP_gN_cache_new_null()) == NULL) {
285 sk_SRP_user_pwd_free(vb->users_pwd);
286 OPENSSL_free(vb);
287 return NULL;
288 }
289 vb->default_g = NULL;
290 vb->default_N = NULL;
291 vb->seed_key = NULL;
292 if ((seed_key != NULL) && (vb->seed_key = OPENSSL_strdup(seed_key)) == NULL) {
293 sk_SRP_user_pwd_free(vb->users_pwd);
294 sk_SRP_gN_cache_free(vb->gN_cache);
295 OPENSSL_free(vb);
296 return NULL;
297 }
298 return vb;
299 }
300
SRP_VBASE_free(SRP_VBASE * vb)301 void SRP_VBASE_free(SRP_VBASE *vb)
302 {
303 if (!vb)
304 return;
305 sk_SRP_user_pwd_pop_free(vb->users_pwd, SRP_user_pwd_free);
306 sk_SRP_gN_cache_free(vb->gN_cache);
307 OPENSSL_free(vb->seed_key);
308 OPENSSL_free(vb);
309 }
310
SRP_gN_new_init(const char * ch)311 static SRP_gN_cache *SRP_gN_new_init(const char *ch)
312 {
313 unsigned char tmp[MAX_LEN];
314 int len;
315 SRP_gN_cache *newgN = OPENSSL_malloc(sizeof(*newgN));
316
317 if (newgN == NULL)
318 return NULL;
319
320 len = t_fromb64(tmp, sizeof(tmp), ch);
321 if (len < 0)
322 goto err;
323
324 if ((newgN->b64_bn = OPENSSL_strdup(ch)) == NULL)
325 goto err;
326
327 if ((newgN->bn = BN_bin2bn(tmp, len, NULL)))
328 return newgN;
329
330 OPENSSL_free(newgN->b64_bn);
331 err:
332 OPENSSL_free(newgN);
333 return NULL;
334 }
335
SRP_gN_free(SRP_gN_cache * gN_cache)336 static void SRP_gN_free(SRP_gN_cache *gN_cache)
337 {
338 if (gN_cache == NULL)
339 return;
340 OPENSSL_free(gN_cache->b64_bn);
341 BN_free(gN_cache->bn);
342 OPENSSL_free(gN_cache);
343 }
344
SRP_get_gN_by_id(const char * id,STACK_OF (SRP_gN)* gN_tab)345 static SRP_gN *SRP_get_gN_by_id(const char *id, STACK_OF(SRP_gN) *gN_tab)
346 {
347 int i;
348
349 SRP_gN *gN;
350 if (gN_tab != NULL) {
351 for (i = 0; i < sk_SRP_gN_num(gN_tab); i++) {
352 gN = sk_SRP_gN_value(gN_tab, i);
353 if (gN && (id == NULL || strcmp(gN->id, id) == 0))
354 return gN;
355 }
356 }
357
358 return SRP_get_default_gN(id);
359 }
360
SRP_gN_place_bn(STACK_OF (SRP_gN_cache)* gN_cache,char * ch)361 static BIGNUM *SRP_gN_place_bn(STACK_OF(SRP_gN_cache) *gN_cache, char *ch)
362 {
363 int i;
364 if (gN_cache == NULL)
365 return NULL;
366
367 /* search if we have already one... */
368 for (i = 0; i < sk_SRP_gN_cache_num(gN_cache); i++) {
369 SRP_gN_cache *cache = sk_SRP_gN_cache_value(gN_cache, i);
370 if (strcmp(cache->b64_bn, ch) == 0)
371 return cache->bn;
372 }
373 { /* it is the first time that we find it */
374 SRP_gN_cache *newgN = SRP_gN_new_init(ch);
375 if (newgN) {
376 if (sk_SRP_gN_cache_insert(gN_cache, newgN, 0) > 0)
377 return newgN->bn;
378 SRP_gN_free(newgN);
379 }
380 }
381 return NULL;
382 }
383
384 /*
385 * This function parses the verifier file generated by the srp app.
386 * The format for each entry is:
387 * V base64(verifier) base64(salt) username gNid userinfo(optional)
388 * or
389 * I base64(N) base64(g)
390 * Note that base64 is the SRP variant of base64 encoding described
391 * in t_fromb64().
392 */
393
SRP_VBASE_init(SRP_VBASE * vb,char * verifier_file)394 int SRP_VBASE_init(SRP_VBASE *vb, char *verifier_file)
395 {
396 int error_code = SRP_ERR_MEMORY;
397 STACK_OF(SRP_gN) *SRP_gN_tab = sk_SRP_gN_new_null();
398 char *last_index = NULL;
399 int i;
400 char **pp;
401
402 SRP_gN *gN = NULL;
403 SRP_user_pwd *user_pwd = NULL;
404
405 TXT_DB *tmpdb = NULL;
406 BIO *in = BIO_new(BIO_s_file());
407
408 if (SRP_gN_tab == NULL)
409 goto err;
410
411 error_code = SRP_ERR_OPEN_FILE;
412
413 if (verifier_file == NULL) {
414 ERR_raise(ERR_LIB_X509, ERR_R_PASSED_NULL_PARAMETER);
415 goto err;
416 }
417
418 if (in == NULL || BIO_read_filename(in, verifier_file) <= 0)
419 goto err;
420
421 error_code = SRP_ERR_VBASE_INCOMPLETE_FILE;
422
423 if ((tmpdb = TXT_DB_read(in, DB_NUMBER)) == NULL)
424 goto err;
425
426 error_code = SRP_ERR_MEMORY;
427
428 if (vb->seed_key) {
429 last_index = SRP_get_default_gN(NULL)->id;
430 }
431 for (i = 0; i < sk_OPENSSL_PSTRING_num(tmpdb->data); i++) {
432 pp = sk_OPENSSL_PSTRING_value(tmpdb->data, i);
433 if (pp[DB_srptype][0] == DB_SRP_INDEX) {
434 /*
435 * we add this couple in the internal Stack
436 */
437
438 if ((gN = OPENSSL_malloc(sizeof(*gN))) == NULL)
439 goto err;
440
441 if ((gN->id = OPENSSL_strdup(pp[DB_srpid])) == NULL
442 || (gN->N = SRP_gN_place_bn(vb->gN_cache, pp[DB_srpverifier]))
443 == NULL
444 || (gN->g = SRP_gN_place_bn(vb->gN_cache, pp[DB_srpsalt]))
445 == NULL
446 || sk_SRP_gN_insert(SRP_gN_tab, gN, 0) == 0)
447 goto err;
448
449 gN = NULL;
450
451 if (vb->seed_key != NULL) {
452 last_index = pp[DB_srpid];
453 }
454 } else if (pp[DB_srptype][0] == DB_SRP_VALID) {
455 /* it is a user .... */
456 const SRP_gN *lgN;
457
458 if ((lgN = SRP_get_gN_by_id(pp[DB_srpgN], SRP_gN_tab)) != NULL) {
459 error_code = SRP_ERR_MEMORY;
460 if ((user_pwd = SRP_user_pwd_new()) == NULL)
461 goto err;
462
463 SRP_user_pwd_set_gN(user_pwd, lgN->g, lgN->N);
464 if (!SRP_user_pwd_set1_ids(user_pwd, pp[DB_srpid], pp[DB_srpinfo]))
465 goto err;
466
467 error_code = SRP_ERR_VBASE_BN_LIB;
468 if (!SRP_user_pwd_set_sv(user_pwd, pp[DB_srpsalt], pp[DB_srpverifier]))
469 goto err;
470
471 if (sk_SRP_user_pwd_insert(vb->users_pwd, user_pwd, 0) == 0)
472 goto err;
473 user_pwd = NULL; /* abandon responsibility */
474 }
475 }
476 }
477
478 if (last_index != NULL) {
479 /* this means that we want to simulate a default user */
480
481 if (((gN = SRP_get_gN_by_id(last_index, SRP_gN_tab)) == NULL)) {
482 error_code = SRP_ERR_VBASE_BN_LIB;
483 goto err;
484 }
485 vb->default_g = gN->g;
486 vb->default_N = gN->N;
487 gN = NULL;
488 }
489 error_code = SRP_NO_ERROR;
490
491 err:
492 /*
493 * there may be still some leaks to fix, if this fails, the application
494 * terminates most likely
495 */
496
497 if (gN != NULL) {
498 OPENSSL_free(gN->id);
499 OPENSSL_free(gN);
500 }
501
502 SRP_user_pwd_free(user_pwd);
503
504 TXT_DB_free(tmpdb);
505 BIO_free_all(in);
506
507 sk_SRP_gN_free(SRP_gN_tab);
508
509 return error_code;
510 }
511
find_user(SRP_VBASE * vb,char * username)512 static SRP_user_pwd *find_user(SRP_VBASE *vb, char *username)
513 {
514 int i;
515 SRP_user_pwd *user;
516
517 if (vb == NULL)
518 return NULL;
519
520 for (i = 0; i < sk_SRP_user_pwd_num(vb->users_pwd); i++) {
521 user = sk_SRP_user_pwd_value(vb->users_pwd, i);
522 if (strcmp(user->id, username) == 0)
523 return user;
524 }
525
526 return NULL;
527 }
528
SRP_VBASE_add0_user(SRP_VBASE * vb,SRP_user_pwd * user_pwd)529 int SRP_VBASE_add0_user(SRP_VBASE *vb, SRP_user_pwd *user_pwd)
530 {
531 if (sk_SRP_user_pwd_push(vb->users_pwd, user_pwd) <= 0)
532 return 0;
533 return 1;
534 }
535
536 #ifndef OPENSSL_NO_DEPRECATED_1_1_0
537 /*
538 * DEPRECATED: use SRP_VBASE_get1_by_user instead.
539 * This method ignores the configured seed and fails for an unknown user.
540 * Ownership of the returned pointer is not released to the caller.
541 * In other words, caller must not free the result.
542 */
SRP_VBASE_get_by_user(SRP_VBASE * vb,char * username)543 SRP_user_pwd *SRP_VBASE_get_by_user(SRP_VBASE *vb, char *username)
544 {
545 return find_user(vb, username);
546 }
547 #endif
548
549 /*
550 * Ownership of the returned pointer is released to the caller.
551 * In other words, caller must free the result once done.
552 */
SRP_VBASE_get1_by_user(SRP_VBASE * vb,char * username)553 SRP_user_pwd *SRP_VBASE_get1_by_user(SRP_VBASE *vb, char *username)
554 {
555 SRP_user_pwd *user;
556 unsigned char digv[SHA_DIGEST_LENGTH];
557 unsigned char digs[SHA_DIGEST_LENGTH];
558 EVP_MD_CTX *ctxt = NULL;
559 EVP_MD *md = NULL;
560
561 if (vb == NULL)
562 return NULL;
563
564 if ((user = find_user(vb, username)) != NULL)
565 return srp_user_pwd_dup(user);
566
567 if ((vb->seed_key == NULL) || (vb->default_g == NULL) || (vb->default_N == NULL))
568 return NULL;
569
570 /* if the user is unknown we set parameters as well if we have a seed_key */
571
572 if ((user = SRP_user_pwd_new()) == NULL)
573 return NULL;
574
575 SRP_user_pwd_set_gN(user, vb->default_g, vb->default_N);
576
577 if (!SRP_user_pwd_set1_ids(user, username, NULL))
578 goto err;
579
580 if (RAND_priv_bytes(digv, SHA_DIGEST_LENGTH) <= 0)
581 goto err;
582 md = EVP_MD_fetch(NULL, SN_sha1, NULL);
583 if (md == NULL)
584 goto err;
585 ctxt = EVP_MD_CTX_new();
586 if (ctxt == NULL
587 || !EVP_DigestInit_ex(ctxt, md, NULL)
588 || !EVP_DigestUpdate(ctxt, vb->seed_key, strlen(vb->seed_key))
589 || !EVP_DigestUpdate(ctxt, username, strlen(username))
590 || !EVP_DigestFinal_ex(ctxt, digs, NULL))
591 goto err;
592 EVP_MD_CTX_free(ctxt);
593 ctxt = NULL;
594 EVP_MD_free(md);
595 md = NULL;
596 if (SRP_user_pwd_set0_sv(user,
597 BN_bin2bn(digs, SHA_DIGEST_LENGTH, NULL),
598 BN_bin2bn(digv, SHA_DIGEST_LENGTH, NULL)))
599 return user;
600
601 err:
602 EVP_MD_free(md);
603 EVP_MD_CTX_free(ctxt);
604 SRP_user_pwd_free(user);
605 return NULL;
606 }
607
608 /*
609 * create a verifier (*salt,*verifier,g and N are in base64)
610 */
SRP_create_verifier_ex(const char * user,const char * pass,char ** salt,char ** verifier,const char * N,const char * g,OSSL_LIB_CTX * libctx,const char * propq)611 char *SRP_create_verifier_ex(const char *user, const char *pass, char **salt,
612 char **verifier, const char *N, const char *g,
613 OSSL_LIB_CTX *libctx, const char *propq)
614 {
615 int len;
616 char *result = NULL, *vf = NULL;
617 const BIGNUM *N_bn = NULL, *g_bn = NULL;
618 BIGNUM *N_bn_alloc = NULL, *g_bn_alloc = NULL, *s = NULL, *v = NULL;
619 unsigned char tmp[MAX_LEN];
620 unsigned char tmp2[MAX_LEN];
621 char *defgNid = NULL;
622 int vfsize = 0;
623
624 if ((user == NULL) || (pass == NULL) || (salt == NULL) || (verifier == NULL))
625 goto err;
626
627 if (N) {
628 if ((len = t_fromb64(tmp, sizeof(tmp), N)) <= 0)
629 goto err;
630 N_bn_alloc = BN_bin2bn(tmp, len, NULL);
631 if (N_bn_alloc == NULL)
632 goto err;
633 N_bn = N_bn_alloc;
634 if ((len = t_fromb64(tmp, sizeof(tmp), g)) <= 0)
635 goto err;
636 g_bn_alloc = BN_bin2bn(tmp, len, NULL);
637 if (g_bn_alloc == NULL)
638 goto err;
639 g_bn = g_bn_alloc;
640 defgNid = "*";
641 } else {
642 SRP_gN *gN = SRP_get_default_gN(g);
643 if (gN == NULL)
644 goto err;
645 N_bn = gN->N;
646 g_bn = gN->g;
647 defgNid = gN->id;
648 }
649
650 if (*salt == NULL) {
651 if (RAND_bytes_ex(libctx, tmp2, SRP_RANDOM_SALT_LEN, 0) <= 0)
652 goto err;
653
654 s = BN_bin2bn(tmp2, SRP_RANDOM_SALT_LEN, NULL);
655 } else {
656 if ((len = t_fromb64(tmp2, sizeof(tmp2), *salt)) <= 0)
657 goto err;
658 s = BN_bin2bn(tmp2, len, NULL);
659 }
660 if (s == NULL)
661 goto err;
662
663 if (!SRP_create_verifier_BN_ex(user, pass, &s, &v, N_bn, g_bn, libctx,
664 propq))
665 goto err;
666
667 if (BN_bn2bin(v, tmp) < 0)
668 goto err;
669 vfsize = BN_num_bytes(v) * 2;
670 if (((vf = OPENSSL_malloc(vfsize)) == NULL))
671 goto err;
672 if (!t_tob64(vf, tmp, BN_num_bytes(v)))
673 goto err;
674
675 if (*salt == NULL) {
676 char *tmp_salt;
677
678 if ((tmp_salt = OPENSSL_malloc(SRP_RANDOM_SALT_LEN * 2)) == NULL) {
679 goto err;
680 }
681 if (!t_tob64(tmp_salt, tmp2, SRP_RANDOM_SALT_LEN)) {
682 OPENSSL_free(tmp_salt);
683 goto err;
684 }
685 *salt = tmp_salt;
686 }
687
688 *verifier = vf;
689 vf = NULL;
690 result = defgNid;
691
692 err:
693 BN_free(N_bn_alloc);
694 BN_free(g_bn_alloc);
695 OPENSSL_clear_free(vf, vfsize);
696 BN_clear_free(s);
697 BN_clear_free(v);
698 return result;
699 }
700
SRP_create_verifier(const char * user,const char * pass,char ** salt,char ** verifier,const char * N,const char * g)701 char *SRP_create_verifier(const char *user, const char *pass, char **salt,
702 char **verifier, const char *N, const char *g)
703 {
704 return SRP_create_verifier_ex(user, pass, salt, verifier, N, g, NULL, NULL);
705 }
706
707 /*
708 * create a verifier (*salt,*verifier,g and N are BIGNUMs). If *salt != NULL
709 * then the provided salt will be used. On successful exit *verifier will point
710 * to a newly allocated BIGNUM containing the verifier and (if a salt was not
711 * provided) *salt will be populated with a newly allocated BIGNUM containing a
712 * random salt.
713 * The caller is responsible for freeing the allocated *salt and *verifier
714 * BIGNUMS.
715 */
SRP_create_verifier_BN_ex(const char * user,const char * pass,BIGNUM ** salt,BIGNUM ** verifier,const BIGNUM * N,const BIGNUM * g,OSSL_LIB_CTX * libctx,const char * propq)716 int SRP_create_verifier_BN_ex(const char *user, const char *pass, BIGNUM **salt,
717 BIGNUM **verifier, const BIGNUM *N,
718 const BIGNUM *g, OSSL_LIB_CTX *libctx,
719 const char *propq)
720 {
721 int result = 0;
722 BIGNUM *x = NULL;
723 BN_CTX *bn_ctx = BN_CTX_new_ex(libctx);
724 unsigned char tmp2[MAX_LEN];
725 BIGNUM *salttmp = NULL, *verif;
726
727 if ((user == NULL) || (pass == NULL) || (salt == NULL) || (verifier == NULL) || (N == NULL) || (g == NULL) || (bn_ctx == NULL))
728 goto err;
729
730 if (*salt == NULL) {
731 if (RAND_bytes_ex(libctx, tmp2, SRP_RANDOM_SALT_LEN, 0) <= 0)
732 goto err;
733
734 salttmp = BN_bin2bn(tmp2, SRP_RANDOM_SALT_LEN, NULL);
735 if (salttmp == NULL)
736 goto err;
737 } else {
738 salttmp = *salt;
739 }
740
741 x = SRP_Calc_x_ex(salttmp, user, pass, libctx, propq);
742 if (x == NULL)
743 goto err;
744
745 verif = BN_new();
746 if (verif == NULL)
747 goto err;
748
749 if (!BN_mod_exp(verif, g, x, N, bn_ctx)) {
750 BN_clear_free(verif);
751 goto err;
752 }
753
754 result = 1;
755 *salt = salttmp;
756 *verifier = verif;
757
758 err:
759 if (salt != NULL && *salt != salttmp)
760 BN_clear_free(salttmp);
761 BN_clear_free(x);
762 BN_CTX_free(bn_ctx);
763 return result;
764 }
765
SRP_create_verifier_BN(const char * user,const char * pass,BIGNUM ** salt,BIGNUM ** verifier,const BIGNUM * N,const BIGNUM * g)766 int SRP_create_verifier_BN(const char *user, const char *pass, BIGNUM **salt,
767 BIGNUM **verifier, const BIGNUM *N,
768 const BIGNUM *g)
769 {
770 return SRP_create_verifier_BN_ex(user, pass, salt, verifier, N, g, NULL,
771 NULL);
772 }
773 #endif
774