Coverage Report

Created: 2025-07-01 06:23

/src/irssi/subprojects/openssl-1.1.1l/ssl/ssl_lib.c
Line
Count
Source (jump to first uncovered line)
1
/*
2
 * Copyright 1995-2021 The OpenSSL Project Authors. All Rights Reserved.
3
 * Copyright (c) 2002, Oracle and/or its affiliates. All rights reserved
4
 * Copyright 2005 Nokia. All rights reserved.
5
 *
6
 * Licensed under the OpenSSL license (the "License").  You may not use
7
 * this file except in compliance with the License.  You can obtain a copy
8
 * in the file LICENSE in the source distribution or at
9
 * https://www.openssl.org/source/license.html
10
 */
11
12
#include <stdio.h>
13
#include "ssl_local.h"
14
#include <openssl/objects.h>
15
#include <openssl/x509v3.h>
16
#include <openssl/rand.h>
17
#include <openssl/rand_drbg.h>
18
#include <openssl/ocsp.h>
19
#include <openssl/dh.h>
20
#include <openssl/engine.h>
21
#include <openssl/async.h>
22
#include <openssl/ct.h>
23
#include "internal/cryptlib.h"
24
#include "internal/refcount.h"
25
26
const char SSL_version_str[] = OPENSSL_VERSION_TEXT;
27
28
static int ssl_undefined_function_1(SSL *ssl, SSL3_RECORD *r, size_t s, int t)
29
0
{
30
0
    (void)r;
31
0
    (void)s;
32
0
    (void)t;
33
0
    return ssl_undefined_function(ssl);
34
0
}
35
36
static int ssl_undefined_function_2(SSL *ssl, SSL3_RECORD *r, unsigned char *s,
37
                                    int t)
38
0
{
39
0
    (void)r;
40
0
    (void)s;
41
0
    (void)t;
42
0
    return ssl_undefined_function(ssl);
43
0
}
44
45
static int ssl_undefined_function_3(SSL *ssl, unsigned char *r,
46
                                    unsigned char *s, size_t t, size_t *u)
47
0
{
48
0
    (void)r;
49
0
    (void)s;
50
0
    (void)t;
51
0
    (void)u;
52
0
    return ssl_undefined_function(ssl);
53
0
}
54
55
static int ssl_undefined_function_4(SSL *ssl, int r)
56
0
{
57
0
    (void)r;
58
0
    return ssl_undefined_function(ssl);
59
0
}
60
61
static size_t ssl_undefined_function_5(SSL *ssl, const char *r, size_t s,
62
                                       unsigned char *t)
63
0
{
64
0
    (void)r;
65
0
    (void)s;
66
0
    (void)t;
67
0
    return ssl_undefined_function(ssl);
68
0
}
69
70
static int ssl_undefined_function_6(int r)
71
0
{
72
0
    (void)r;
73
0
    return ssl_undefined_function(NULL);
74
0
}
75
76
static int ssl_undefined_function_7(SSL *ssl, unsigned char *r, size_t s,
77
                                    const char *t, size_t u,
78
                                    const unsigned char *v, size_t w, int x)
79
0
{
80
0
    (void)r;
81
0
    (void)s;
82
0
    (void)t;
83
0
    (void)u;
84
0
    (void)v;
85
0
    (void)w;
86
0
    (void)x;
87
0
    return ssl_undefined_function(ssl);
88
0
}
89
90
SSL3_ENC_METHOD ssl3_undef_enc_method = {
91
    ssl_undefined_function_1,
92
    ssl_undefined_function_2,
93
    ssl_undefined_function,
94
    ssl_undefined_function_3,
95
    ssl_undefined_function_4,
96
    ssl_undefined_function_5,
97
    NULL,                       /* client_finished_label */
98
    0,                          /* client_finished_label_len */
99
    NULL,                       /* server_finished_label */
100
    0,                          /* server_finished_label_len */
101
    ssl_undefined_function_6,
102
    ssl_undefined_function_7,
103
};
104
105
struct ssl_async_args {
106
    SSL *s;
107
    void *buf;
108
    size_t num;
109
    enum { READFUNC, WRITEFUNC, OTHERFUNC } type;
110
    union {
111
        int (*func_read) (SSL *, void *, size_t, size_t *);
112
        int (*func_write) (SSL *, const void *, size_t, size_t *);
113
        int (*func_other) (SSL *);
114
    } f;
115
};
116
117
static const struct {
118
    uint8_t mtype;
119
    uint8_t ord;
120
    int nid;
121
} dane_mds[] = {
122
    {
123
        DANETLS_MATCHING_FULL, 0, NID_undef
124
    },
125
    {
126
        DANETLS_MATCHING_2256, 1, NID_sha256
127
    },
128
    {
129
        DANETLS_MATCHING_2512, 2, NID_sha512
130
    },
131
};
132
133
static int dane_ctx_enable(struct dane_ctx_st *dctx)
134
0
{
135
0
    const EVP_MD **mdevp;
136
0
    uint8_t *mdord;
137
0
    uint8_t mdmax = DANETLS_MATCHING_LAST;
138
0
    int n = ((int)mdmax) + 1;   /* int to handle PrivMatch(255) */
139
0
    size_t i;
140
141
0
    if (dctx->mdevp != NULL)
142
0
        return 1;
143
144
0
    mdevp = OPENSSL_zalloc(n * sizeof(*mdevp));
145
0
    mdord = OPENSSL_zalloc(n * sizeof(*mdord));
146
147
0
    if (mdord == NULL || mdevp == NULL) {
148
0
        OPENSSL_free(mdord);
149
0
        OPENSSL_free(mdevp);
150
0
        SSLerr(SSL_F_DANE_CTX_ENABLE, ERR_R_MALLOC_FAILURE);
151
0
        return 0;
152
0
    }
153
154
    /* Install default entries */
155
0
    for (i = 0; i < OSSL_NELEM(dane_mds); ++i) {
156
0
        const EVP_MD *md;
157
158
0
        if (dane_mds[i].nid == NID_undef ||
159
0
            (md = EVP_get_digestbynid(dane_mds[i].nid)) == NULL)
160
0
            continue;
161
0
        mdevp[dane_mds[i].mtype] = md;
162
0
        mdord[dane_mds[i].mtype] = dane_mds[i].ord;
163
0
    }
164
165
0
    dctx->mdevp = mdevp;
166
0
    dctx->mdord = mdord;
167
0
    dctx->mdmax = mdmax;
168
169
0
    return 1;
170
0
}
171
172
static void dane_ctx_final(struct dane_ctx_st *dctx)
173
0
{
174
0
    OPENSSL_free(dctx->mdevp);
175
0
    dctx->mdevp = NULL;
176
177
0
    OPENSSL_free(dctx->mdord);
178
0
    dctx->mdord = NULL;
179
0
    dctx->mdmax = 0;
180
0
}
181
182
static void tlsa_free(danetls_record *t)
183
0
{
184
0
    if (t == NULL)
185
0
        return;
186
0
    OPENSSL_free(t->data);
187
0
    EVP_PKEY_free(t->spki);
188
0
    OPENSSL_free(t);
189
0
}
190
191
static void dane_final(SSL_DANE *dane)
192
0
{
193
0
    sk_danetls_record_pop_free(dane->trecs, tlsa_free);
194
0
    dane->trecs = NULL;
195
196
0
    sk_X509_pop_free(dane->certs, X509_free);
197
0
    dane->certs = NULL;
198
199
0
    X509_free(dane->mcert);
200
0
    dane->mcert = NULL;
201
0
    dane->mtlsa = NULL;
202
0
    dane->mdpth = -1;
203
0
    dane->pdpth = -1;
204
0
}
205
206
/*
207
 * dane_copy - Copy dane configuration, sans verification state.
208
 */
209
static int ssl_dane_dup(SSL *to, SSL *from)
210
0
{
211
0
    int num;
212
0
    int i;
213
214
0
    if (!DANETLS_ENABLED(&from->dane))
215
0
        return 1;
216
217
0
    num = sk_danetls_record_num(from->dane.trecs);
218
0
    dane_final(&to->dane);
219
0
    to->dane.flags = from->dane.flags;
220
0
    to->dane.dctx = &to->ctx->dane;
221
0
    to->dane.trecs = sk_danetls_record_new_reserve(NULL, num);
222
223
0
    if (to->dane.trecs == NULL) {
224
0
        SSLerr(SSL_F_SSL_DANE_DUP, ERR_R_MALLOC_FAILURE);
225
0
        return 0;
226
0
    }
227
228
0
    for (i = 0; i < num; ++i) {
229
0
        danetls_record *t = sk_danetls_record_value(from->dane.trecs, i);
230
231
0
        if (SSL_dane_tlsa_add(to, t->usage, t->selector, t->mtype,
232
0
                              t->data, t->dlen) <= 0)
233
0
            return 0;
234
0
    }
235
0
    return 1;
236
0
}
237
238
static int dane_mtype_set(struct dane_ctx_st *dctx,
239
                          const EVP_MD *md, uint8_t mtype, uint8_t ord)
240
0
{
241
0
    int i;
242
243
0
    if (mtype == DANETLS_MATCHING_FULL && md != NULL) {
244
0
        SSLerr(SSL_F_DANE_MTYPE_SET, SSL_R_DANE_CANNOT_OVERRIDE_MTYPE_FULL);
245
0
        return 0;
246
0
    }
247
248
0
    if (mtype > dctx->mdmax) {
249
0
        const EVP_MD **mdevp;
250
0
        uint8_t *mdord;
251
0
        int n = ((int)mtype) + 1;
252
253
0
        mdevp = OPENSSL_realloc(dctx->mdevp, n * sizeof(*mdevp));
254
0
        if (mdevp == NULL) {
255
0
            SSLerr(SSL_F_DANE_MTYPE_SET, ERR_R_MALLOC_FAILURE);
256
0
            return -1;
257
0
        }
258
0
        dctx->mdevp = mdevp;
259
260
0
        mdord = OPENSSL_realloc(dctx->mdord, n * sizeof(*mdord));
261
0
        if (mdord == NULL) {
262
0
            SSLerr(SSL_F_DANE_MTYPE_SET, ERR_R_MALLOC_FAILURE);
263
0
            return -1;
264
0
        }
265
0
        dctx->mdord = mdord;
266
267
        /* Zero-fill any gaps */
268
0
        for (i = dctx->mdmax + 1; i < mtype; ++i) {
269
0
            mdevp[i] = NULL;
270
0
            mdord[i] = 0;
271
0
        }
272
273
0
        dctx->mdmax = mtype;
274
0
    }
275
276
0
    dctx->mdevp[mtype] = md;
277
    /* Coerce ordinal of disabled matching types to 0 */
278
0
    dctx->mdord[mtype] = (md == NULL) ? 0 : ord;
279
280
0
    return 1;
281
0
}
282
283
static const EVP_MD *tlsa_md_get(SSL_DANE *dane, uint8_t mtype)
284
0
{
285
0
    if (mtype > dane->dctx->mdmax)
286
0
        return NULL;
287
0
    return dane->dctx->mdevp[mtype];
288
0
}
289
290
static int dane_tlsa_add(SSL_DANE *dane,
291
                         uint8_t usage,
292
                         uint8_t selector,
293
                         uint8_t mtype, unsigned const char *data, size_t dlen)
294
0
{
295
0
    danetls_record *t;
296
0
    const EVP_MD *md = NULL;
297
0
    int ilen = (int)dlen;
298
0
    int i;
299
0
    int num;
300
301
0
    if (dane->trecs == NULL) {
302
0
        SSLerr(SSL_F_DANE_TLSA_ADD, SSL_R_DANE_NOT_ENABLED);
303
0
        return -1;
304
0
    }
305
306
0
    if (ilen < 0 || dlen != (size_t)ilen) {
307
0
        SSLerr(SSL_F_DANE_TLSA_ADD, SSL_R_DANE_TLSA_BAD_DATA_LENGTH);
308
0
        return 0;
309
0
    }
310
311
0
    if (usage > DANETLS_USAGE_LAST) {
312
0
        SSLerr(SSL_F_DANE_TLSA_ADD, SSL_R_DANE_TLSA_BAD_CERTIFICATE_USAGE);
313
0
        return 0;
314
0
    }
315
316
0
    if (selector > DANETLS_SELECTOR_LAST) {
317
0
        SSLerr(SSL_F_DANE_TLSA_ADD, SSL_R_DANE_TLSA_BAD_SELECTOR);
318
0
        return 0;
319
0
    }
320
321
0
    if (mtype != DANETLS_MATCHING_FULL) {
322
0
        md = tlsa_md_get(dane, mtype);
323
0
        if (md == NULL) {
324
0
            SSLerr(SSL_F_DANE_TLSA_ADD, SSL_R_DANE_TLSA_BAD_MATCHING_TYPE);
325
0
            return 0;
326
0
        }
327
0
    }
328
329
0
    if (md != NULL && dlen != (size_t)EVP_MD_size(md)) {
330
0
        SSLerr(SSL_F_DANE_TLSA_ADD, SSL_R_DANE_TLSA_BAD_DIGEST_LENGTH);
331
0
        return 0;
332
0
    }
333
0
    if (!data) {
334
0
        SSLerr(SSL_F_DANE_TLSA_ADD, SSL_R_DANE_TLSA_NULL_DATA);
335
0
        return 0;
336
0
    }
337
338
0
    if ((t = OPENSSL_zalloc(sizeof(*t))) == NULL) {
339
0
        SSLerr(SSL_F_DANE_TLSA_ADD, ERR_R_MALLOC_FAILURE);
340
0
        return -1;
341
0
    }
342
343
0
    t->usage = usage;
344
0
    t->selector = selector;
345
0
    t->mtype = mtype;
346
0
    t->data = OPENSSL_malloc(dlen);
347
0
    if (t->data == NULL) {
348
0
        tlsa_free(t);
349
0
        SSLerr(SSL_F_DANE_TLSA_ADD, ERR_R_MALLOC_FAILURE);
350
0
        return -1;
351
0
    }
352
0
    memcpy(t->data, data, dlen);
353
0
    t->dlen = dlen;
354
355
    /* Validate and cache full certificate or public key */
356
0
    if (mtype == DANETLS_MATCHING_FULL) {
357
0
        const unsigned char *p = data;
358
0
        X509 *cert = NULL;
359
0
        EVP_PKEY *pkey = NULL;
360
361
0
        switch (selector) {
362
0
        case DANETLS_SELECTOR_CERT:
363
0
            if (!d2i_X509(&cert, &p, ilen) || p < data ||
364
0
                dlen != (size_t)(p - data)) {
365
0
                tlsa_free(t);
366
0
                SSLerr(SSL_F_DANE_TLSA_ADD, SSL_R_DANE_TLSA_BAD_CERTIFICATE);
367
0
                return 0;
368
0
            }
369
0
            if (X509_get0_pubkey(cert) == NULL) {
370
0
                tlsa_free(t);
371
0
                SSLerr(SSL_F_DANE_TLSA_ADD, SSL_R_DANE_TLSA_BAD_CERTIFICATE);
372
0
                return 0;
373
0
            }
374
375
0
            if ((DANETLS_USAGE_BIT(usage) & DANETLS_TA_MASK) == 0) {
376
0
                X509_free(cert);
377
0
                break;
378
0
            }
379
380
            /*
381
             * For usage DANE-TA(2), we support authentication via "2 0 0" TLSA
382
             * records that contain full certificates of trust-anchors that are
383
             * not present in the wire chain.  For usage PKIX-TA(0), we augment
384
             * the chain with untrusted Full(0) certificates from DNS, in case
385
             * they are missing from the chain.
386
             */
387
0
            if ((dane->certs == NULL &&
388
0
                 (dane->certs = sk_X509_new_null()) == NULL) ||
389
0
                !sk_X509_push(dane->certs, cert)) {
390
0
                SSLerr(SSL_F_DANE_TLSA_ADD, ERR_R_MALLOC_FAILURE);
391
0
                X509_free(cert);
392
0
                tlsa_free(t);
393
0
                return -1;
394
0
            }
395
0
            break;
396
397
0
        case DANETLS_SELECTOR_SPKI:
398
0
            if (!d2i_PUBKEY(&pkey, &p, ilen) || p < data ||
399
0
                dlen != (size_t)(p - data)) {
400
0
                tlsa_free(t);
401
0
                SSLerr(SSL_F_DANE_TLSA_ADD, SSL_R_DANE_TLSA_BAD_PUBLIC_KEY);
402
0
                return 0;
403
0
            }
404
405
            /*
406
             * For usage DANE-TA(2), we support authentication via "2 1 0" TLSA
407
             * records that contain full bare keys of trust-anchors that are
408
             * not present in the wire chain.
409
             */
410
0
            if (usage == DANETLS_USAGE_DANE_TA)
411
0
                t->spki = pkey;
412
0
            else
413
0
                EVP_PKEY_free(pkey);
414
0
            break;
415
0
        }
416
0
    }
417
418
    /*-
419
     * Find the right insertion point for the new record.
420
     *
421
     * See crypto/x509/x509_vfy.c.  We sort DANE-EE(3) records first, so that
422
     * they can be processed first, as they require no chain building, and no
423
     * expiration or hostname checks.  Because DANE-EE(3) is numerically
424
     * largest, this is accomplished via descending sort by "usage".
425
     *
426
     * We also sort in descending order by matching ordinal to simplify
427
     * the implementation of digest agility in the verification code.
428
     *
429
     * The choice of order for the selector is not significant, so we
430
     * use the same descending order for consistency.
431
     */
432
0
    num = sk_danetls_record_num(dane->trecs);
433
0
    for (i = 0; i < num; ++i) {
434
0
        danetls_record *rec = sk_danetls_record_value(dane->trecs, i);
435
436
0
        if (rec->usage > usage)
437
0
            continue;
438
0
        if (rec->usage < usage)
439
0
            break;
440
0
        if (rec->selector > selector)
441
0
            continue;
442
0
        if (rec->selector < selector)
443
0
            break;
444
0
        if (dane->dctx->mdord[rec->mtype] > dane->dctx->mdord[mtype])
445
0
            continue;
446
0
        break;
447
0
    }
448
449
0
    if (!sk_danetls_record_insert(dane->trecs, t, i)) {
450
0
        tlsa_free(t);
451
0
        SSLerr(SSL_F_DANE_TLSA_ADD, ERR_R_MALLOC_FAILURE);
452
0
        return -1;
453
0
    }
454
0
    dane->umask |= DANETLS_USAGE_BIT(usage);
455
456
0
    return 1;
457
0
}
458
459
/*
460
 * Return 0 if there is only one version configured and it was disabled
461
 * at configure time.  Return 1 otherwise.
462
 */
463
static int ssl_check_allowed_versions(int min_version, int max_version)
464
0
{
465
0
    int minisdtls = 0, maxisdtls = 0;
466
467
    /* Figure out if we're doing DTLS versions or TLS versions */
468
0
    if (min_version == DTLS1_BAD_VER
469
0
        || min_version >> 8 == DTLS1_VERSION_MAJOR)
470
0
        minisdtls = 1;
471
0
    if (max_version == DTLS1_BAD_VER
472
0
        || max_version >> 8 == DTLS1_VERSION_MAJOR)
473
0
        maxisdtls = 1;
474
    /* A wildcard version of 0 could be DTLS or TLS. */
475
0
    if ((minisdtls && !maxisdtls && max_version != 0)
476
0
        || (maxisdtls && !minisdtls && min_version != 0)) {
477
        /* Mixing DTLS and TLS versions will lead to sadness; deny it. */
478
0
        return 0;
479
0
    }
480
481
0
    if (minisdtls || maxisdtls) {
482
        /* Do DTLS version checks. */
483
0
        if (min_version == 0)
484
            /* Ignore DTLS1_BAD_VER */
485
0
            min_version = DTLS1_VERSION;
486
0
        if (max_version == 0)
487
0
            max_version = DTLS1_2_VERSION;
488
#ifdef OPENSSL_NO_DTLS1_2
489
        if (max_version == DTLS1_2_VERSION)
490
            max_version = DTLS1_VERSION;
491
#endif
492
#ifdef OPENSSL_NO_DTLS1
493
        if (min_version == DTLS1_VERSION)
494
            min_version = DTLS1_2_VERSION;
495
#endif
496
        /* Done massaging versions; do the check. */
497
0
        if (0
498
#ifdef OPENSSL_NO_DTLS1
499
            || (DTLS_VERSION_GE(min_version, DTLS1_VERSION)
500
                && DTLS_VERSION_GE(DTLS1_VERSION, max_version))
501
#endif
502
#ifdef OPENSSL_NO_DTLS1_2
503
            || (DTLS_VERSION_GE(min_version, DTLS1_2_VERSION)
504
                && DTLS_VERSION_GE(DTLS1_2_VERSION, max_version))
505
#endif
506
0
            )
507
0
            return 0;
508
0
    } else {
509
        /* Regular TLS version checks. */
510
0
        if (min_version == 0)
511
0
            min_version = SSL3_VERSION;
512
0
        if (max_version == 0)
513
0
            max_version = TLS1_3_VERSION;
514
#ifdef OPENSSL_NO_TLS1_3
515
        if (max_version == TLS1_3_VERSION)
516
            max_version = TLS1_2_VERSION;
517
#endif
518
#ifdef OPENSSL_NO_TLS1_2
519
        if (max_version == TLS1_2_VERSION)
520
            max_version = TLS1_1_VERSION;
521
#endif
522
#ifdef OPENSSL_NO_TLS1_1
523
        if (max_version == TLS1_1_VERSION)
524
            max_version = TLS1_VERSION;
525
#endif
526
#ifdef OPENSSL_NO_TLS1
527
        if (max_version == TLS1_VERSION)
528
            max_version = SSL3_VERSION;
529
#endif
530
0
#ifdef OPENSSL_NO_SSL3
531
0
        if (min_version == SSL3_VERSION)
532
0
            min_version = TLS1_VERSION;
533
0
#endif
534
#ifdef OPENSSL_NO_TLS1
535
        if (min_version == TLS1_VERSION)
536
            min_version = TLS1_1_VERSION;
537
#endif
538
#ifdef OPENSSL_NO_TLS1_1
539
        if (min_version == TLS1_1_VERSION)
540
            min_version = TLS1_2_VERSION;
541
#endif
542
#ifdef OPENSSL_NO_TLS1_2
543
        if (min_version == TLS1_2_VERSION)
544
            min_version = TLS1_3_VERSION;
545
#endif
546
        /* Done massaging versions; do the check. */
547
0
        if (0
548
0
#ifdef OPENSSL_NO_SSL3
549
0
            || (min_version <= SSL3_VERSION && SSL3_VERSION <= max_version)
550
0
#endif
551
#ifdef OPENSSL_NO_TLS1
552
            || (min_version <= TLS1_VERSION && TLS1_VERSION <= max_version)
553
#endif
554
#ifdef OPENSSL_NO_TLS1_1
555
            || (min_version <= TLS1_1_VERSION && TLS1_1_VERSION <= max_version)
556
#endif
557
#ifdef OPENSSL_NO_TLS1_2
558
            || (min_version <= TLS1_2_VERSION && TLS1_2_VERSION <= max_version)
559
#endif
560
#ifdef OPENSSL_NO_TLS1_3
561
            || (min_version <= TLS1_3_VERSION && TLS1_3_VERSION <= max_version)
562
#endif
563
0
            )
564
0
            return 0;
565
0
    }
566
0
    return 1;
567
0
}
568
569
static void clear_ciphers(SSL *s)
570
0
{
571
    /* clear the current cipher */
572
0
    ssl_clear_cipher_ctx(s);
573
0
    ssl_clear_hash_ctx(&s->read_hash);
574
0
    ssl_clear_hash_ctx(&s->write_hash);
575
0
}
576
577
int SSL_clear(SSL *s)
578
0
{
579
0
    if (s->method == NULL) {
580
0
        SSLerr(SSL_F_SSL_CLEAR, SSL_R_NO_METHOD_SPECIFIED);
581
0
        return 0;
582
0
    }
583
584
0
    if (ssl_clear_bad_session(s)) {
585
0
        SSL_SESSION_free(s->session);
586
0
        s->session = NULL;
587
0
    }
588
0
    SSL_SESSION_free(s->psksession);
589
0
    s->psksession = NULL;
590
0
    OPENSSL_free(s->psksession_id);
591
0
    s->psksession_id = NULL;
592
0
    s->psksession_id_len = 0;
593
0
    s->hello_retry_request = 0;
594
0
    s->sent_tickets = 0;
595
596
0
    s->error = 0;
597
0
    s->hit = 0;
598
0
    s->shutdown = 0;
599
600
0
    if (s->renegotiate) {
601
0
        SSLerr(SSL_F_SSL_CLEAR, ERR_R_INTERNAL_ERROR);
602
0
        return 0;
603
0
    }
604
605
0
    ossl_statem_clear(s);
606
607
0
    s->version = s->method->version;
608
0
    s->client_version = s->version;
609
0
    s->rwstate = SSL_NOTHING;
610
611
0
    BUF_MEM_free(s->init_buf);
612
0
    s->init_buf = NULL;
613
0
    clear_ciphers(s);
614
0
    s->first_packet = 0;
615
616
0
    s->key_update = SSL_KEY_UPDATE_NONE;
617
618
0
    EVP_MD_CTX_free(s->pha_dgst);
619
0
    s->pha_dgst = NULL;
620
621
    /* Reset DANE verification result state */
622
0
    s->dane.mdpth = -1;
623
0
    s->dane.pdpth = -1;
624
0
    X509_free(s->dane.mcert);
625
0
    s->dane.mcert = NULL;
626
0
    s->dane.mtlsa = NULL;
627
628
    /* Clear the verification result peername */
629
0
    X509_VERIFY_PARAM_move_peername(s->param, NULL);
630
631
    /* Clear any shared connection state */
632
0
    OPENSSL_free(s->shared_sigalgs);
633
0
    s->shared_sigalgs = NULL;
634
0
    s->shared_sigalgslen = 0;
635
636
    /*
637
     * Check to see if we were changed into a different method, if so, revert
638
     * back.
639
     */
640
0
    if (s->method != s->ctx->method) {
641
0
        s->method->ssl_free(s);
642
0
        s->method = s->ctx->method;
643
0
        if (!s->method->ssl_new(s))
644
0
            return 0;
645
0
    } else {
646
0
        if (!s->method->ssl_clear(s))
647
0
            return 0;
648
0
    }
649
650
0
    RECORD_LAYER_clear(&s->rlayer);
651
652
0
    return 1;
653
0
}
654
655
/** Used to change an SSL_CTXs default SSL method type */
656
int SSL_CTX_set_ssl_version(SSL_CTX *ctx, const SSL_METHOD *meth)
657
0
{
658
0
    STACK_OF(SSL_CIPHER) *sk;
659
660
0
    ctx->method = meth;
661
662
0
    if (!SSL_CTX_set_ciphersuites(ctx, TLS_DEFAULT_CIPHERSUITES)) {
663
0
        SSLerr(SSL_F_SSL_CTX_SET_SSL_VERSION, SSL_R_SSL_LIBRARY_HAS_NO_CIPHERS);
664
0
        return 0;
665
0
    }
666
0
    sk = ssl_create_cipher_list(ctx->method,
667
0
                                ctx->tls13_ciphersuites,
668
0
                                &(ctx->cipher_list),
669
0
                                &(ctx->cipher_list_by_id),
670
0
                                SSL_DEFAULT_CIPHER_LIST, ctx->cert);
671
0
    if ((sk == NULL) || (sk_SSL_CIPHER_num(sk) <= 0)) {
672
0
        SSLerr(SSL_F_SSL_CTX_SET_SSL_VERSION, SSL_R_SSL_LIBRARY_HAS_NO_CIPHERS);
673
0
        return 0;
674
0
    }
675
0
    return 1;
676
0
}
677
678
SSL *SSL_new(SSL_CTX *ctx)
679
0
{
680
0
    SSL *s;
681
682
0
    if (ctx == NULL) {
683
0
        SSLerr(SSL_F_SSL_NEW, SSL_R_NULL_SSL_CTX);
684
0
        return NULL;
685
0
    }
686
0
    if (ctx->method == NULL) {
687
0
        SSLerr(SSL_F_SSL_NEW, SSL_R_SSL_CTX_HAS_NO_DEFAULT_SSL_VERSION);
688
0
        return NULL;
689
0
    }
690
691
0
    s = OPENSSL_zalloc(sizeof(*s));
692
0
    if (s == NULL)
693
0
        goto err;
694
695
0
    s->references = 1;
696
0
    s->lock = CRYPTO_THREAD_lock_new();
697
0
    if (s->lock == NULL) {
698
0
        OPENSSL_free(s);
699
0
        s = NULL;
700
0
        goto err;
701
0
    }
702
703
0
    RECORD_LAYER_init(&s->rlayer, s);
704
705
0
    s->options = ctx->options;
706
0
    s->dane.flags = ctx->dane.flags;
707
0
    s->min_proto_version = ctx->min_proto_version;
708
0
    s->max_proto_version = ctx->max_proto_version;
709
0
    s->mode = ctx->mode;
710
0
    s->max_cert_list = ctx->max_cert_list;
711
0
    s->max_early_data = ctx->max_early_data;
712
0
    s->recv_max_early_data = ctx->recv_max_early_data;
713
0
    s->num_tickets = ctx->num_tickets;
714
0
    s->pha_enabled = ctx->pha_enabled;
715
716
    /* Shallow copy of the ciphersuites stack */
717
0
    s->tls13_ciphersuites = sk_SSL_CIPHER_dup(ctx->tls13_ciphersuites);
718
0
    if (s->tls13_ciphersuites == NULL)
719
0
        goto err;
720
721
    /*
722
     * Earlier library versions used to copy the pointer to the CERT, not
723
     * its contents; only when setting new parameters for the per-SSL
724
     * copy, ssl_cert_new would be called (and the direct reference to
725
     * the per-SSL_CTX settings would be lost, but those still were
726
     * indirectly accessed for various purposes, and for that reason they
727
     * used to be known as s->ctx->default_cert). Now we don't look at the
728
     * SSL_CTX's CERT after having duplicated it once.
729
     */
730
0
    s->cert = ssl_cert_dup(ctx->cert);
731
0
    if (s->cert == NULL)
732
0
        goto err;
733
734
0
    RECORD_LAYER_set_read_ahead(&s->rlayer, ctx->read_ahead);
735
0
    s->msg_callback = ctx->msg_callback;
736
0
    s->msg_callback_arg = ctx->msg_callback_arg;
737
0
    s->verify_mode = ctx->verify_mode;
738
0
    s->not_resumable_session_cb = ctx->not_resumable_session_cb;
739
0
    s->record_padding_cb = ctx->record_padding_cb;
740
0
    s->record_padding_arg = ctx->record_padding_arg;
741
0
    s->block_padding = ctx->block_padding;
742
0
    s->sid_ctx_length = ctx->sid_ctx_length;
743
0
    if (!ossl_assert(s->sid_ctx_length <= sizeof(s->sid_ctx)))
744
0
        goto err;
745
0
    memcpy(&s->sid_ctx, &ctx->sid_ctx, sizeof(s->sid_ctx));
746
0
    s->verify_callback = ctx->default_verify_callback;
747
0
    s->generate_session_id = ctx->generate_session_id;
748
749
0
    s->param = X509_VERIFY_PARAM_new();
750
0
    if (s->param == NULL)
751
0
        goto err;
752
0
    X509_VERIFY_PARAM_inherit(s->param, ctx->param);
753
0
    s->quiet_shutdown = ctx->quiet_shutdown;
754
755
0
    s->ext.max_fragment_len_mode = ctx->ext.max_fragment_len_mode;
756
0
    s->max_send_fragment = ctx->max_send_fragment;
757
0
    s->split_send_fragment = ctx->split_send_fragment;
758
0
    s->max_pipelines = ctx->max_pipelines;
759
0
    if (s->max_pipelines > 1)
760
0
        RECORD_LAYER_set_read_ahead(&s->rlayer, 1);
761
0
    if (ctx->default_read_buf_len > 0)
762
0
        SSL_set_default_read_buffer_len(s, ctx->default_read_buf_len);
763
764
0
    SSL_CTX_up_ref(ctx);
765
0
    s->ctx = ctx;
766
0
    s->ext.debug_cb = 0;
767
0
    s->ext.debug_arg = NULL;
768
0
    s->ext.ticket_expected = 0;
769
0
    s->ext.status_type = ctx->ext.status_type;
770
0
    s->ext.status_expected = 0;
771
0
    s->ext.ocsp.ids = NULL;
772
0
    s->ext.ocsp.exts = NULL;
773
0
    s->ext.ocsp.resp = NULL;
774
0
    s->ext.ocsp.resp_len = 0;
775
0
    SSL_CTX_up_ref(ctx);
776
0
    s->session_ctx = ctx;
777
0
#ifndef OPENSSL_NO_EC
778
0
    if (ctx->ext.ecpointformats) {
779
0
        s->ext.ecpointformats =
780
0
            OPENSSL_memdup(ctx->ext.ecpointformats,
781
0
                           ctx->ext.ecpointformats_len);
782
0
        if (!s->ext.ecpointformats) {
783
0
            s->ext.ecpointformats_len = 0;
784
0
            goto err;
785
0
        }
786
0
        s->ext.ecpointformats_len =
787
0
            ctx->ext.ecpointformats_len;
788
0
    }
789
0
    if (ctx->ext.supportedgroups) {
790
0
        s->ext.supportedgroups =
791
0
            OPENSSL_memdup(ctx->ext.supportedgroups,
792
0
                           ctx->ext.supportedgroups_len
793
0
                                * sizeof(*ctx->ext.supportedgroups));
794
0
        if (!s->ext.supportedgroups) {
795
0
            s->ext.supportedgroups_len = 0;
796
0
            goto err;
797
0
        }
798
0
        s->ext.supportedgroups_len = ctx->ext.supportedgroups_len;
799
0
    }
800
0
#endif
801
0
#ifndef OPENSSL_NO_NEXTPROTONEG
802
0
    s->ext.npn = NULL;
803
0
#endif
804
805
0
    if (s->ctx->ext.alpn) {
806
0
        s->ext.alpn = OPENSSL_malloc(s->ctx->ext.alpn_len);
807
0
        if (s->ext.alpn == NULL) {
808
0
            s->ext.alpn_len = 0;
809
0
            goto err;
810
0
        }
811
0
        memcpy(s->ext.alpn, s->ctx->ext.alpn, s->ctx->ext.alpn_len);
812
0
        s->ext.alpn_len = s->ctx->ext.alpn_len;
813
0
    }
814
815
0
    s->verified_chain = NULL;
816
0
    s->verify_result = X509_V_OK;
817
818
0
    s->default_passwd_callback = ctx->default_passwd_callback;
819
0
    s->default_passwd_callback_userdata = ctx->default_passwd_callback_userdata;
820
821
0
    s->method = ctx->method;
822
823
0
    s->key_update = SSL_KEY_UPDATE_NONE;
824
825
0
    s->allow_early_data_cb = ctx->allow_early_data_cb;
826
0
    s->allow_early_data_cb_data = ctx->allow_early_data_cb_data;
827
828
0
    if (!s->method->ssl_new(s))
829
0
        goto err;
830
831
0
    s->server = (ctx->method->ssl_accept == ssl_undefined_function) ? 0 : 1;
832
833
0
    if (!SSL_clear(s))
834
0
        goto err;
835
836
0
    if (!CRYPTO_new_ex_data(CRYPTO_EX_INDEX_SSL, s, &s->ex_data))
837
0
        goto err;
838
839
0
#ifndef OPENSSL_NO_PSK
840
0
    s->psk_client_callback = ctx->psk_client_callback;
841
0
    s->psk_server_callback = ctx->psk_server_callback;
842
0
#endif
843
0
    s->psk_find_session_cb = ctx->psk_find_session_cb;
844
0
    s->psk_use_session_cb = ctx->psk_use_session_cb;
845
846
0
    s->job = NULL;
847
848
0
#ifndef OPENSSL_NO_CT
849
0
    if (!SSL_set_ct_validation_callback(s, ctx->ct_validation_callback,
850
0
                                        ctx->ct_validation_callback_arg))
851
0
        goto err;
852
0
#endif
853
854
0
    return s;
855
0
 err:
856
0
    SSL_free(s);
857
0
    SSLerr(SSL_F_SSL_NEW, ERR_R_MALLOC_FAILURE);
858
0
    return NULL;
859
0
}
860
861
int SSL_is_dtls(const SSL *s)
862
0
{
863
0
    return SSL_IS_DTLS(s) ? 1 : 0;
864
0
}
865
866
int SSL_up_ref(SSL *s)
867
0
{
868
0
    int i;
869
870
0
    if (CRYPTO_UP_REF(&s->references, &i, s->lock) <= 0)
871
0
        return 0;
872
873
0
    REF_PRINT_COUNT("SSL", s);
874
0
    REF_ASSERT_ISNT(i < 2);
875
0
    return ((i > 1) ? 1 : 0);
876
0
}
877
878
int SSL_CTX_set_session_id_context(SSL_CTX *ctx, const unsigned char *sid_ctx,
879
                                   unsigned int sid_ctx_len)
880
0
{
881
0
    if (sid_ctx_len > SSL_MAX_SID_CTX_LENGTH) {
882
0
        SSLerr(SSL_F_SSL_CTX_SET_SESSION_ID_CONTEXT,
883
0
               SSL_R_SSL_SESSION_ID_CONTEXT_TOO_LONG);
884
0
        return 0;
885
0
    }
886
0
    ctx->sid_ctx_length = sid_ctx_len;
887
0
    memcpy(ctx->sid_ctx, sid_ctx, sid_ctx_len);
888
889
0
    return 1;
890
0
}
891
892
int SSL_set_session_id_context(SSL *ssl, const unsigned char *sid_ctx,
893
                               unsigned int sid_ctx_len)
894
0
{
895
0
    if (sid_ctx_len > SSL_MAX_SID_CTX_LENGTH) {
896
0
        SSLerr(SSL_F_SSL_SET_SESSION_ID_CONTEXT,
897
0
               SSL_R_SSL_SESSION_ID_CONTEXT_TOO_LONG);
898
0
        return 0;
899
0
    }
900
0
    ssl->sid_ctx_length = sid_ctx_len;
901
0
    memcpy(ssl->sid_ctx, sid_ctx, sid_ctx_len);
902
903
0
    return 1;
904
0
}
905
906
int SSL_CTX_set_generate_session_id(SSL_CTX *ctx, GEN_SESSION_CB cb)
907
0
{
908
0
    CRYPTO_THREAD_write_lock(ctx->lock);
909
0
    ctx->generate_session_id = cb;
910
0
    CRYPTO_THREAD_unlock(ctx->lock);
911
0
    return 1;
912
0
}
913
914
int SSL_set_generate_session_id(SSL *ssl, GEN_SESSION_CB cb)
915
0
{
916
0
    CRYPTO_THREAD_write_lock(ssl->lock);
917
0
    ssl->generate_session_id = cb;
918
0
    CRYPTO_THREAD_unlock(ssl->lock);
919
0
    return 1;
920
0
}
921
922
int SSL_has_matching_session_id(const SSL *ssl, const unsigned char *id,
923
                                unsigned int id_len)
924
0
{
925
    /*
926
     * A quick examination of SSL_SESSION_hash and SSL_SESSION_cmp shows how
927
     * we can "construct" a session to give us the desired check - i.e. to
928
     * find if there's a session in the hash table that would conflict with
929
     * any new session built out of this id/id_len and the ssl_version in use
930
     * by this SSL.
931
     */
932
0
    SSL_SESSION r, *p;
933
934
0
    if (id_len > sizeof(r.session_id))
935
0
        return 0;
936
937
0
    r.ssl_version = ssl->version;
938
0
    r.session_id_length = id_len;
939
0
    memcpy(r.session_id, id, id_len);
940
941
0
    CRYPTO_THREAD_read_lock(ssl->session_ctx->lock);
942
0
    p = lh_SSL_SESSION_retrieve(ssl->session_ctx->sessions, &r);
943
0
    CRYPTO_THREAD_unlock(ssl->session_ctx->lock);
944
0
    return (p != NULL);
945
0
}
946
947
int SSL_CTX_set_purpose(SSL_CTX *s, int purpose)
948
0
{
949
0
    return X509_VERIFY_PARAM_set_purpose(s->param, purpose);
950
0
}
951
952
int SSL_set_purpose(SSL *s, int purpose)
953
0
{
954
0
    return X509_VERIFY_PARAM_set_purpose(s->param, purpose);
955
0
}
956
957
int SSL_CTX_set_trust(SSL_CTX *s, int trust)
958
0
{
959
0
    return X509_VERIFY_PARAM_set_trust(s->param, trust);
960
0
}
961
962
int SSL_set_trust(SSL *s, int trust)
963
0
{
964
0
    return X509_VERIFY_PARAM_set_trust(s->param, trust);
965
0
}
966
967
int SSL_set1_host(SSL *s, const char *hostname)
968
0
{
969
0
    return X509_VERIFY_PARAM_set1_host(s->param, hostname, 0);
970
0
}
971
972
int SSL_add1_host(SSL *s, const char *hostname)
973
0
{
974
0
    return X509_VERIFY_PARAM_add1_host(s->param, hostname, 0);
975
0
}
976
977
void SSL_set_hostflags(SSL *s, unsigned int flags)
978
0
{
979
0
    X509_VERIFY_PARAM_set_hostflags(s->param, flags);
980
0
}
981
982
const char *SSL_get0_peername(SSL *s)
983
0
{
984
0
    return X509_VERIFY_PARAM_get0_peername(s->param);
985
0
}
986
987
int SSL_CTX_dane_enable(SSL_CTX *ctx)
988
0
{
989
0
    return dane_ctx_enable(&ctx->dane);
990
0
}
991
992
unsigned long SSL_CTX_dane_set_flags(SSL_CTX *ctx, unsigned long flags)
993
0
{
994
0
    unsigned long orig = ctx->dane.flags;
995
996
0
    ctx->dane.flags |= flags;
997
0
    return orig;
998
0
}
999
1000
unsigned long SSL_CTX_dane_clear_flags(SSL_CTX *ctx, unsigned long flags)
1001
0
{
1002
0
    unsigned long orig = ctx->dane.flags;
1003
1004
0
    ctx->dane.flags &= ~flags;
1005
0
    return orig;
1006
0
}
1007
1008
int SSL_dane_enable(SSL *s, const char *basedomain)
1009
0
{
1010
0
    SSL_DANE *dane = &s->dane;
1011
1012
0
    if (s->ctx->dane.mdmax == 0) {
1013
0
        SSLerr(SSL_F_SSL_DANE_ENABLE, SSL_R_CONTEXT_NOT_DANE_ENABLED);
1014
0
        return 0;
1015
0
    }
1016
0
    if (dane->trecs != NULL) {
1017
0
        SSLerr(SSL_F_SSL_DANE_ENABLE, SSL_R_DANE_ALREADY_ENABLED);
1018
0
        return 0;
1019
0
    }
1020
1021
    /*
1022
     * Default SNI name.  This rejects empty names, while set1_host below
1023
     * accepts them and disables host name checks.  To avoid side-effects with
1024
     * invalid input, set the SNI name first.
1025
     */
1026
0
    if (s->ext.hostname == NULL) {
1027
0
        if (!SSL_set_tlsext_host_name(s, basedomain)) {
1028
0
            SSLerr(SSL_F_SSL_DANE_ENABLE, SSL_R_ERROR_SETTING_TLSA_BASE_DOMAIN);
1029
0
            return -1;
1030
0
        }
1031
0
    }
1032
1033
    /* Primary RFC6125 reference identifier */
1034
0
    if (!X509_VERIFY_PARAM_set1_host(s->param, basedomain, 0)) {
1035
0
        SSLerr(SSL_F_SSL_DANE_ENABLE, SSL_R_ERROR_SETTING_TLSA_BASE_DOMAIN);
1036
0
        return -1;
1037
0
    }
1038
1039
0
    dane->mdpth = -1;
1040
0
    dane->pdpth = -1;
1041
0
    dane->dctx = &s->ctx->dane;
1042
0
    dane->trecs = sk_danetls_record_new_null();
1043
1044
0
    if (dane->trecs == NULL) {
1045
0
        SSLerr(SSL_F_SSL_DANE_ENABLE, ERR_R_MALLOC_FAILURE);
1046
0
        return -1;
1047
0
    }
1048
0
    return 1;
1049
0
}
1050
1051
unsigned long SSL_dane_set_flags(SSL *ssl, unsigned long flags)
1052
0
{
1053
0
    unsigned long orig = ssl->dane.flags;
1054
1055
0
    ssl->dane.flags |= flags;
1056
0
    return orig;
1057
0
}
1058
1059
unsigned long SSL_dane_clear_flags(SSL *ssl, unsigned long flags)
1060
0
{
1061
0
    unsigned long orig = ssl->dane.flags;
1062
1063
0
    ssl->dane.flags &= ~flags;
1064
0
    return orig;
1065
0
}
1066
1067
int SSL_get0_dane_authority(SSL *s, X509 **mcert, EVP_PKEY **mspki)
1068
0
{
1069
0
    SSL_DANE *dane = &s->dane;
1070
1071
0
    if (!DANETLS_ENABLED(dane) || s->verify_result != X509_V_OK)
1072
0
        return -1;
1073
0
    if (dane->mtlsa) {
1074
0
        if (mcert)
1075
0
            *mcert = dane->mcert;
1076
0
        if (mspki)
1077
0
            *mspki = (dane->mcert == NULL) ? dane->mtlsa->spki : NULL;
1078
0
    }
1079
0
    return dane->mdpth;
1080
0
}
1081
1082
int SSL_get0_dane_tlsa(SSL *s, uint8_t *usage, uint8_t *selector,
1083
                       uint8_t *mtype, unsigned const char **data, size_t *dlen)
1084
0
{
1085
0
    SSL_DANE *dane = &s->dane;
1086
1087
0
    if (!DANETLS_ENABLED(dane) || s->verify_result != X509_V_OK)
1088
0
        return -1;
1089
0
    if (dane->mtlsa) {
1090
0
        if (usage)
1091
0
            *usage = dane->mtlsa->usage;
1092
0
        if (selector)
1093
0
            *selector = dane->mtlsa->selector;
1094
0
        if (mtype)
1095
0
            *mtype = dane->mtlsa->mtype;
1096
0
        if (data)
1097
0
            *data = dane->mtlsa->data;
1098
0
        if (dlen)
1099
0
            *dlen = dane->mtlsa->dlen;
1100
0
    }
1101
0
    return dane->mdpth;
1102
0
}
1103
1104
SSL_DANE *SSL_get0_dane(SSL *s)
1105
0
{
1106
0
    return &s->dane;
1107
0
}
1108
1109
int SSL_dane_tlsa_add(SSL *s, uint8_t usage, uint8_t selector,
1110
                      uint8_t mtype, unsigned const char *data, size_t dlen)
1111
0
{
1112
0
    return dane_tlsa_add(&s->dane, usage, selector, mtype, data, dlen);
1113
0
}
1114
1115
int SSL_CTX_dane_mtype_set(SSL_CTX *ctx, const EVP_MD *md, uint8_t mtype,
1116
                           uint8_t ord)
1117
0
{
1118
0
    return dane_mtype_set(&ctx->dane, md, mtype, ord);
1119
0
}
1120
1121
int SSL_CTX_set1_param(SSL_CTX *ctx, X509_VERIFY_PARAM *vpm)
1122
0
{
1123
0
    return X509_VERIFY_PARAM_set1(ctx->param, vpm);
1124
0
}
1125
1126
int SSL_set1_param(SSL *ssl, X509_VERIFY_PARAM *vpm)
1127
0
{
1128
0
    return X509_VERIFY_PARAM_set1(ssl->param, vpm);
1129
0
}
1130
1131
X509_VERIFY_PARAM *SSL_CTX_get0_param(SSL_CTX *ctx)
1132
0
{
1133
0
    return ctx->param;
1134
0
}
1135
1136
X509_VERIFY_PARAM *SSL_get0_param(SSL *ssl)
1137
0
{
1138
0
    return ssl->param;
1139
0
}
1140
1141
void SSL_certs_clear(SSL *s)
1142
0
{
1143
0
    ssl_cert_clear_certs(s->cert);
1144
0
}
1145
1146
void SSL_free(SSL *s)
1147
0
{
1148
0
    int i;
1149
1150
0
    if (s == NULL)
1151
0
        return;
1152
0
    CRYPTO_DOWN_REF(&s->references, &i, s->lock);
1153
0
    REF_PRINT_COUNT("SSL", s);
1154
0
    if (i > 0)
1155
0
        return;
1156
0
    REF_ASSERT_ISNT(i < 0);
1157
1158
0
    X509_VERIFY_PARAM_free(s->param);
1159
0
    dane_final(&s->dane);
1160
0
    CRYPTO_free_ex_data(CRYPTO_EX_INDEX_SSL, s, &s->ex_data);
1161
1162
    /* Ignore return value */
1163
0
    ssl_free_wbio_buffer(s);
1164
1165
0
    BIO_free_all(s->wbio);
1166
0
    BIO_free_all(s->rbio);
1167
1168
0
    BUF_MEM_free(s->init_buf);
1169
1170
    /* add extra stuff */
1171
0
    sk_SSL_CIPHER_free(s->cipher_list);
1172
0
    sk_SSL_CIPHER_free(s->cipher_list_by_id);
1173
0
    sk_SSL_CIPHER_free(s->tls13_ciphersuites);
1174
0
    sk_SSL_CIPHER_free(s->peer_ciphers);
1175
1176
    /* Make the next call work :-) */
1177
0
    if (s->session != NULL) {
1178
0
        ssl_clear_bad_session(s);
1179
0
        SSL_SESSION_free(s->session);
1180
0
    }
1181
0
    SSL_SESSION_free(s->psksession);
1182
0
    OPENSSL_free(s->psksession_id);
1183
1184
0
    clear_ciphers(s);
1185
1186
0
    ssl_cert_free(s->cert);
1187
0
    OPENSSL_free(s->shared_sigalgs);
1188
    /* Free up if allocated */
1189
1190
0
    OPENSSL_free(s->ext.hostname);
1191
0
    SSL_CTX_free(s->session_ctx);
1192
0
#ifndef OPENSSL_NO_EC
1193
0
    OPENSSL_free(s->ext.ecpointformats);
1194
0
    OPENSSL_free(s->ext.peer_ecpointformats);
1195
0
    OPENSSL_free(s->ext.supportedgroups);
1196
0
    OPENSSL_free(s->ext.peer_supportedgroups);
1197
0
#endif                          /* OPENSSL_NO_EC */
1198
0
    sk_X509_EXTENSION_pop_free(s->ext.ocsp.exts, X509_EXTENSION_free);
1199
0
#ifndef OPENSSL_NO_OCSP
1200
0
    sk_OCSP_RESPID_pop_free(s->ext.ocsp.ids, OCSP_RESPID_free);
1201
0
#endif
1202
0
#ifndef OPENSSL_NO_CT
1203
0
    SCT_LIST_free(s->scts);
1204
0
    OPENSSL_free(s->ext.scts);
1205
0
#endif
1206
0
    OPENSSL_free(s->ext.ocsp.resp);
1207
0
    OPENSSL_free(s->ext.alpn);
1208
0
    OPENSSL_free(s->ext.tls13_cookie);
1209
0
    if (s->clienthello != NULL)
1210
0
        OPENSSL_free(s->clienthello->pre_proc_exts);
1211
0
    OPENSSL_free(s->clienthello);
1212
0
    OPENSSL_free(s->pha_context);
1213
0
    EVP_MD_CTX_free(s->pha_dgst);
1214
1215
0
    sk_X509_NAME_pop_free(s->ca_names, X509_NAME_free);
1216
0
    sk_X509_NAME_pop_free(s->client_ca_names, X509_NAME_free);
1217
1218
0
    sk_X509_pop_free(s->verified_chain, X509_free);
1219
1220
0
    if (s->method != NULL)
1221
0
        s->method->ssl_free(s);
1222
1223
0
    RECORD_LAYER_release(&s->rlayer);
1224
1225
0
    SSL_CTX_free(s->ctx);
1226
1227
0
    ASYNC_WAIT_CTX_free(s->waitctx);
1228
1229
0
#if !defined(OPENSSL_NO_NEXTPROTONEG)
1230
0
    OPENSSL_free(s->ext.npn);
1231
0
#endif
1232
1233
0
#ifndef OPENSSL_NO_SRTP
1234
0
    sk_SRTP_PROTECTION_PROFILE_free(s->srtp_profiles);
1235
0
#endif
1236
1237
0
    CRYPTO_THREAD_lock_free(s->lock);
1238
1239
0
    OPENSSL_free(s);
1240
0
}
1241
1242
void SSL_set0_rbio(SSL *s, BIO *rbio)
1243
0
{
1244
0
    BIO_free_all(s->rbio);
1245
0
    s->rbio = rbio;
1246
0
}
1247
1248
void SSL_set0_wbio(SSL *s, BIO *wbio)
1249
0
{
1250
    /*
1251
     * If the output buffering BIO is still in place, remove it
1252
     */
1253
0
    if (s->bbio != NULL)
1254
0
        s->wbio = BIO_pop(s->wbio);
1255
1256
0
    BIO_free_all(s->wbio);
1257
0
    s->wbio = wbio;
1258
1259
    /* Re-attach |bbio| to the new |wbio|. */
1260
0
    if (s->bbio != NULL)
1261
0
        s->wbio = BIO_push(s->bbio, s->wbio);
1262
0
}
1263
1264
void SSL_set_bio(SSL *s, BIO *rbio, BIO *wbio)
1265
0
{
1266
    /*
1267
     * For historical reasons, this function has many different cases in
1268
     * ownership handling.
1269
     */
1270
1271
    /* If nothing has changed, do nothing */
1272
0
    if (rbio == SSL_get_rbio(s) && wbio == SSL_get_wbio(s))
1273
0
        return;
1274
1275
    /*
1276
     * If the two arguments are equal then one fewer reference is granted by the
1277
     * caller than we want to take
1278
     */
1279
0
    if (rbio != NULL && rbio == wbio)
1280
0
        BIO_up_ref(rbio);
1281
1282
    /*
1283
     * If only the wbio is changed only adopt one reference.
1284
     */
1285
0
    if (rbio == SSL_get_rbio(s)) {
1286
0
        SSL_set0_wbio(s, wbio);
1287
0
        return;
1288
0
    }
1289
    /*
1290
     * There is an asymmetry here for historical reasons. If only the rbio is
1291
     * changed AND the rbio and wbio were originally different, then we only
1292
     * adopt one reference.
1293
     */
1294
0
    if (wbio == SSL_get_wbio(s) && SSL_get_rbio(s) != SSL_get_wbio(s)) {
1295
0
        SSL_set0_rbio(s, rbio);
1296
0
        return;
1297
0
    }
1298
1299
    /* Otherwise, adopt both references. */
1300
0
    SSL_set0_rbio(s, rbio);
1301
0
    SSL_set0_wbio(s, wbio);
1302
0
}
1303
1304
BIO *SSL_get_rbio(const SSL *s)
1305
0
{
1306
0
    return s->rbio;
1307
0
}
1308
1309
BIO *SSL_get_wbio(const SSL *s)
1310
0
{
1311
0
    if (s->bbio != NULL) {
1312
        /*
1313
         * If |bbio| is active, the true caller-configured BIO is its
1314
         * |next_bio|.
1315
         */
1316
0
        return BIO_next(s->bbio);
1317
0
    }
1318
0
    return s->wbio;
1319
0
}
1320
1321
int SSL_get_fd(const SSL *s)
1322
0
{
1323
0
    return SSL_get_rfd(s);
1324
0
}
1325
1326
int SSL_get_rfd(const SSL *s)
1327
0
{
1328
0
    int ret = -1;
1329
0
    BIO *b, *r;
1330
1331
0
    b = SSL_get_rbio(s);
1332
0
    r = BIO_find_type(b, BIO_TYPE_DESCRIPTOR);
1333
0
    if (r != NULL)
1334
0
        BIO_get_fd(r, &ret);
1335
0
    return ret;
1336
0
}
1337
1338
int SSL_get_wfd(const SSL *s)
1339
0
{
1340
0
    int ret = -1;
1341
0
    BIO *b, *r;
1342
1343
0
    b = SSL_get_wbio(s);
1344
0
    r = BIO_find_type(b, BIO_TYPE_DESCRIPTOR);
1345
0
    if (r != NULL)
1346
0
        BIO_get_fd(r, &ret);
1347
0
    return ret;
1348
0
}
1349
1350
#ifndef OPENSSL_NO_SOCK
1351
int SSL_set_fd(SSL *s, int fd)
1352
0
{
1353
0
    int ret = 0;
1354
0
    BIO *bio = NULL;
1355
1356
0
    bio = BIO_new(BIO_s_socket());
1357
1358
0
    if (bio == NULL) {
1359
0
        SSLerr(SSL_F_SSL_SET_FD, ERR_R_BUF_LIB);
1360
0
        goto err;
1361
0
    }
1362
0
    BIO_set_fd(bio, fd, BIO_NOCLOSE);
1363
0
    SSL_set_bio(s, bio, bio);
1364
0
    ret = 1;
1365
0
 err:
1366
0
    return ret;
1367
0
}
1368
1369
int SSL_set_wfd(SSL *s, int fd)
1370
0
{
1371
0
    BIO *rbio = SSL_get_rbio(s);
1372
1373
0
    if (rbio == NULL || BIO_method_type(rbio) != BIO_TYPE_SOCKET
1374
0
        || (int)BIO_get_fd(rbio, NULL) != fd) {
1375
0
        BIO *bio = BIO_new(BIO_s_socket());
1376
1377
0
        if (bio == NULL) {
1378
0
            SSLerr(SSL_F_SSL_SET_WFD, ERR_R_BUF_LIB);
1379
0
            return 0;
1380
0
        }
1381
0
        BIO_set_fd(bio, fd, BIO_NOCLOSE);
1382
0
        SSL_set0_wbio(s, bio);
1383
0
    } else {
1384
0
        BIO_up_ref(rbio);
1385
0
        SSL_set0_wbio(s, rbio);
1386
0
    }
1387
0
    return 1;
1388
0
}
1389
1390
int SSL_set_rfd(SSL *s, int fd)
1391
0
{
1392
0
    BIO *wbio = SSL_get_wbio(s);
1393
1394
0
    if (wbio == NULL || BIO_method_type(wbio) != BIO_TYPE_SOCKET
1395
0
        || ((int)BIO_get_fd(wbio, NULL) != fd)) {
1396
0
        BIO *bio = BIO_new(BIO_s_socket());
1397
1398
0
        if (bio == NULL) {
1399
0
            SSLerr(SSL_F_SSL_SET_RFD, ERR_R_BUF_LIB);
1400
0
            return 0;
1401
0
        }
1402
0
        BIO_set_fd(bio, fd, BIO_NOCLOSE);
1403
0
        SSL_set0_rbio(s, bio);
1404
0
    } else {
1405
0
        BIO_up_ref(wbio);
1406
0
        SSL_set0_rbio(s, wbio);
1407
0
    }
1408
1409
0
    return 1;
1410
0
}
1411
#endif
1412
1413
/* return length of latest Finished message we sent, copy to 'buf' */
1414
size_t SSL_get_finished(const SSL *s, void *buf, size_t count)
1415
0
{
1416
0
    size_t ret = 0;
1417
1418
0
    if (s->s3 != NULL) {
1419
0
        ret = s->s3->tmp.finish_md_len;
1420
0
        if (count > ret)
1421
0
            count = ret;
1422
0
        memcpy(buf, s->s3->tmp.finish_md, count);
1423
0
    }
1424
0
    return ret;
1425
0
}
1426
1427
/* return length of latest Finished message we expected, copy to 'buf' */
1428
size_t SSL_get_peer_finished(const SSL *s, void *buf, size_t count)
1429
0
{
1430
0
    size_t ret = 0;
1431
1432
0
    if (s->s3 != NULL) {
1433
0
        ret = s->s3->tmp.peer_finish_md_len;
1434
0
        if (count > ret)
1435
0
            count = ret;
1436
0
        memcpy(buf, s->s3->tmp.peer_finish_md, count);
1437
0
    }
1438
0
    return ret;
1439
0
}
1440
1441
int SSL_get_verify_mode(const SSL *s)
1442
0
{
1443
0
    return s->verify_mode;
1444
0
}
1445
1446
int SSL_get_verify_depth(const SSL *s)
1447
0
{
1448
0
    return X509_VERIFY_PARAM_get_depth(s->param);
1449
0
}
1450
1451
0
int (*SSL_get_verify_callback(const SSL *s)) (int, X509_STORE_CTX *) {
1452
0
    return s->verify_callback;
1453
0
}
1454
1455
int SSL_CTX_get_verify_mode(const SSL_CTX *ctx)
1456
0
{
1457
0
    return ctx->verify_mode;
1458
0
}
1459
1460
int SSL_CTX_get_verify_depth(const SSL_CTX *ctx)
1461
0
{
1462
0
    return X509_VERIFY_PARAM_get_depth(ctx->param);
1463
0
}
1464
1465
0
int (*SSL_CTX_get_verify_callback(const SSL_CTX *ctx)) (int, X509_STORE_CTX *) {
1466
0
    return ctx->default_verify_callback;
1467
0
}
1468
1469
void SSL_set_verify(SSL *s, int mode,
1470
                    int (*callback) (int ok, X509_STORE_CTX *ctx))
1471
0
{
1472
0
    s->verify_mode = mode;
1473
0
    if (callback != NULL)
1474
0
        s->verify_callback = callback;
1475
0
}
1476
1477
void SSL_set_verify_depth(SSL *s, int depth)
1478
0
{
1479
0
    X509_VERIFY_PARAM_set_depth(s->param, depth);
1480
0
}
1481
1482
void SSL_set_read_ahead(SSL *s, int yes)
1483
0
{
1484
0
    RECORD_LAYER_set_read_ahead(&s->rlayer, yes);
1485
0
}
1486
1487
int SSL_get_read_ahead(const SSL *s)
1488
0
{
1489
0
    return RECORD_LAYER_get_read_ahead(&s->rlayer);
1490
0
}
1491
1492
int SSL_pending(const SSL *s)
1493
0
{
1494
0
    size_t pending = s->method->ssl_pending(s);
1495
1496
    /*
1497
     * SSL_pending cannot work properly if read-ahead is enabled
1498
     * (SSL_[CTX_]ctrl(..., SSL_CTRL_SET_READ_AHEAD, 1, NULL)), and it is
1499
     * impossible to fix since SSL_pending cannot report errors that may be
1500
     * observed while scanning the new data. (Note that SSL_pending() is
1501
     * often used as a boolean value, so we'd better not return -1.)
1502
     *
1503
     * SSL_pending also cannot work properly if the value >INT_MAX. In that case
1504
     * we just return INT_MAX.
1505
     */
1506
0
    return pending < INT_MAX ? (int)pending : INT_MAX;
1507
0
}
1508
1509
int SSL_has_pending(const SSL *s)
1510
0
{
1511
    /*
1512
     * Similar to SSL_pending() but returns a 1 to indicate that we have
1513
     * unprocessed data available or 0 otherwise (as opposed to the number of
1514
     * bytes available). Unlike SSL_pending() this will take into account
1515
     * read_ahead data. A 1 return simply indicates that we have unprocessed
1516
     * data. That data may not result in any application data, or we may fail
1517
     * to parse the records for some reason.
1518
     */
1519
0
    if (RECORD_LAYER_processed_read_pending(&s->rlayer))
1520
0
        return 1;
1521
1522
0
    return RECORD_LAYER_read_pending(&s->rlayer);
1523
0
}
1524
1525
X509 *SSL_get_peer_certificate(const SSL *s)
1526
0
{
1527
0
    X509 *r;
1528
1529
0
    if ((s == NULL) || (s->session == NULL))
1530
0
        r = NULL;
1531
0
    else
1532
0
        r = s->session->peer;
1533
1534
0
    if (r == NULL)
1535
0
        return r;
1536
1537
0
    X509_up_ref(r);
1538
1539
0
    return r;
1540
0
}
1541
1542
STACK_OF(X509) *SSL_get_peer_cert_chain(const SSL *s)
1543
0
{
1544
0
    STACK_OF(X509) *r;
1545
1546
0
    if ((s == NULL) || (s->session == NULL))
1547
0
        r = NULL;
1548
0
    else
1549
0
        r = s->session->peer_chain;
1550
1551
    /*
1552
     * If we are a client, cert_chain includes the peer's own certificate; if
1553
     * we are a server, it does not.
1554
     */
1555
1556
0
    return r;
1557
0
}
1558
1559
/*
1560
 * Now in theory, since the calling process own 't' it should be safe to
1561
 * modify.  We need to be able to read f without being hassled
1562
 */
1563
int SSL_copy_session_id(SSL *t, const SSL *f)
1564
0
{
1565
0
    int i;
1566
    /* Do we need to to SSL locking? */
1567
0
    if (!SSL_set_session(t, SSL_get_session(f))) {
1568
0
        return 0;
1569
0
    }
1570
1571
    /*
1572
     * what if we are setup for one protocol version but want to talk another
1573
     */
1574
0
    if (t->method != f->method) {
1575
0
        t->method->ssl_free(t);
1576
0
        t->method = f->method;
1577
0
        if (t->method->ssl_new(t) == 0)
1578
0
            return 0;
1579
0
    }
1580
1581
0
    CRYPTO_UP_REF(&f->cert->references, &i, f->cert->lock);
1582
0
    ssl_cert_free(t->cert);
1583
0
    t->cert = f->cert;
1584
0
    if (!SSL_set_session_id_context(t, f->sid_ctx, (int)f->sid_ctx_length)) {
1585
0
        return 0;
1586
0
    }
1587
1588
0
    return 1;
1589
0
}
1590
1591
/* Fix this so it checks all the valid key/cert options */
1592
int SSL_CTX_check_private_key(const SSL_CTX *ctx)
1593
0
{
1594
0
    if ((ctx == NULL) || (ctx->cert->key->x509 == NULL)) {
1595
0
        SSLerr(SSL_F_SSL_CTX_CHECK_PRIVATE_KEY, SSL_R_NO_CERTIFICATE_ASSIGNED);
1596
0
        return 0;
1597
0
    }
1598
0
    if (ctx->cert->key->privatekey == NULL) {
1599
0
        SSLerr(SSL_F_SSL_CTX_CHECK_PRIVATE_KEY, SSL_R_NO_PRIVATE_KEY_ASSIGNED);
1600
0
        return 0;
1601
0
    }
1602
0
    return X509_check_private_key
1603
0
            (ctx->cert->key->x509, ctx->cert->key->privatekey);
1604
0
}
1605
1606
/* Fix this function so that it takes an optional type parameter */
1607
int SSL_check_private_key(const SSL *ssl)
1608
0
{
1609
0
    if (ssl == NULL) {
1610
0
        SSLerr(SSL_F_SSL_CHECK_PRIVATE_KEY, ERR_R_PASSED_NULL_PARAMETER);
1611
0
        return 0;
1612
0
    }
1613
0
    if (ssl->cert->key->x509 == NULL) {
1614
0
        SSLerr(SSL_F_SSL_CHECK_PRIVATE_KEY, SSL_R_NO_CERTIFICATE_ASSIGNED);
1615
0
        return 0;
1616
0
    }
1617
0
    if (ssl->cert->key->privatekey == NULL) {
1618
0
        SSLerr(SSL_F_SSL_CHECK_PRIVATE_KEY, SSL_R_NO_PRIVATE_KEY_ASSIGNED);
1619
0
        return 0;
1620
0
    }
1621
0
    return X509_check_private_key(ssl->cert->key->x509,
1622
0
                                   ssl->cert->key->privatekey);
1623
0
}
1624
1625
int SSL_waiting_for_async(SSL *s)
1626
0
{
1627
0
    if (s->job)
1628
0
        return 1;
1629
1630
0
    return 0;
1631
0
}
1632
1633
int SSL_get_all_async_fds(SSL *s, OSSL_ASYNC_FD *fds, size_t *numfds)
1634
0
{
1635
0
    ASYNC_WAIT_CTX *ctx = s->waitctx;
1636
1637
0
    if (ctx == NULL)
1638
0
        return 0;
1639
0
    return ASYNC_WAIT_CTX_get_all_fds(ctx, fds, numfds);
1640
0
}
1641
1642
int SSL_get_changed_async_fds(SSL *s, OSSL_ASYNC_FD *addfd, size_t *numaddfds,
1643
                              OSSL_ASYNC_FD *delfd, size_t *numdelfds)
1644
0
{
1645
0
    ASYNC_WAIT_CTX *ctx = s->waitctx;
1646
1647
0
    if (ctx == NULL)
1648
0
        return 0;
1649
0
    return ASYNC_WAIT_CTX_get_changed_fds(ctx, addfd, numaddfds, delfd,
1650
0
                                          numdelfds);
1651
0
}
1652
1653
int SSL_accept(SSL *s)
1654
0
{
1655
0
    if (s->handshake_func == NULL) {
1656
        /* Not properly initialized yet */
1657
0
        SSL_set_accept_state(s);
1658
0
    }
1659
1660
0
    return SSL_do_handshake(s);
1661
0
}
1662
1663
int SSL_connect(SSL *s)
1664
0
{
1665
0
    if (s->handshake_func == NULL) {
1666
        /* Not properly initialized yet */
1667
0
        SSL_set_connect_state(s);
1668
0
    }
1669
1670
0
    return SSL_do_handshake(s);
1671
0
}
1672
1673
long SSL_get_default_timeout(const SSL *s)
1674
0
{
1675
0
    return s->method->get_timeout();
1676
0
}
1677
1678
static int ssl_start_async_job(SSL *s, struct ssl_async_args *args,
1679
                               int (*func) (void *))
1680
0
{
1681
0
    int ret;
1682
0
    if (s->waitctx == NULL) {
1683
0
        s->waitctx = ASYNC_WAIT_CTX_new();
1684
0
        if (s->waitctx == NULL)
1685
0
            return -1;
1686
0
    }
1687
0
    switch (ASYNC_start_job(&s->job, s->waitctx, &ret, func, args,
1688
0
                            sizeof(struct ssl_async_args))) {
1689
0
    case ASYNC_ERR:
1690
0
        s->rwstate = SSL_NOTHING;
1691
0
        SSLerr(SSL_F_SSL_START_ASYNC_JOB, SSL_R_FAILED_TO_INIT_ASYNC);
1692
0
        return -1;
1693
0
    case ASYNC_PAUSE:
1694
0
        s->rwstate = SSL_ASYNC_PAUSED;
1695
0
        return -1;
1696
0
    case ASYNC_NO_JOBS:
1697
0
        s->rwstate = SSL_ASYNC_NO_JOBS;
1698
0
        return -1;
1699
0
    case ASYNC_FINISH:
1700
0
        s->job = NULL;
1701
0
        return ret;
1702
0
    default:
1703
0
        s->rwstate = SSL_NOTHING;
1704
0
        SSLerr(SSL_F_SSL_START_ASYNC_JOB, ERR_R_INTERNAL_ERROR);
1705
        /* Shouldn't happen */
1706
0
        return -1;
1707
0
    }
1708
0
}
1709
1710
static int ssl_io_intern(void *vargs)
1711
0
{
1712
0
    struct ssl_async_args *args;
1713
0
    SSL *s;
1714
0
    void *buf;
1715
0
    size_t num;
1716
1717
0
    args = (struct ssl_async_args *)vargs;
1718
0
    s = args->s;
1719
0
    buf = args->buf;
1720
0
    num = args->num;
1721
0
    switch (args->type) {
1722
0
    case READFUNC:
1723
0
        return args->f.func_read(s, buf, num, &s->asyncrw);
1724
0
    case WRITEFUNC:
1725
0
        return args->f.func_write(s, buf, num, &s->asyncrw);
1726
0
    case OTHERFUNC:
1727
0
        return args->f.func_other(s);
1728
0
    }
1729
0
    return -1;
1730
0
}
1731
1732
int ssl_read_internal(SSL *s, void *buf, size_t num, size_t *readbytes)
1733
0
{
1734
0
    if (s->handshake_func == NULL) {
1735
0
        SSLerr(SSL_F_SSL_READ_INTERNAL, SSL_R_UNINITIALIZED);
1736
0
        return -1;
1737
0
    }
1738
1739
0
    if (s->shutdown & SSL_RECEIVED_SHUTDOWN) {
1740
0
        s->rwstate = SSL_NOTHING;
1741
0
        return 0;
1742
0
    }
1743
1744
0
    if (s->early_data_state == SSL_EARLY_DATA_CONNECT_RETRY
1745
0
                || s->early_data_state == SSL_EARLY_DATA_ACCEPT_RETRY) {
1746
0
        SSLerr(SSL_F_SSL_READ_INTERNAL, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
1747
0
        return 0;
1748
0
    }
1749
    /*
1750
     * If we are a client and haven't received the ServerHello etc then we
1751
     * better do that
1752
     */
1753
0
    ossl_statem_check_finish_init(s, 0);
1754
1755
0
    if ((s->mode & SSL_MODE_ASYNC) && ASYNC_get_current_job() == NULL) {
1756
0
        struct ssl_async_args args;
1757
0
        int ret;
1758
1759
0
        args.s = s;
1760
0
        args.buf = buf;
1761
0
        args.num = num;
1762
0
        args.type = READFUNC;
1763
0
        args.f.func_read = s->method->ssl_read;
1764
1765
0
        ret = ssl_start_async_job(s, &args, ssl_io_intern);
1766
0
        *readbytes = s->asyncrw;
1767
0
        return ret;
1768
0
    } else {
1769
0
        return s->method->ssl_read(s, buf, num, readbytes);
1770
0
    }
1771
0
}
1772
1773
int SSL_read(SSL *s, void *buf, int num)
1774
0
{
1775
0
    int ret;
1776
0
    size_t readbytes;
1777
1778
0
    if (num < 0) {
1779
0
        SSLerr(SSL_F_SSL_READ, SSL_R_BAD_LENGTH);
1780
0
        return -1;
1781
0
    }
1782
1783
0
    ret = ssl_read_internal(s, buf, (size_t)num, &readbytes);
1784
1785
    /*
1786
     * The cast is safe here because ret should be <= INT_MAX because num is
1787
     * <= INT_MAX
1788
     */
1789
0
    if (ret > 0)
1790
0
        ret = (int)readbytes;
1791
1792
0
    return ret;
1793
0
}
1794
1795
int SSL_read_ex(SSL *s, void *buf, size_t num, size_t *readbytes)
1796
0
{
1797
0
    int ret = ssl_read_internal(s, buf, num, readbytes);
1798
1799
0
    if (ret < 0)
1800
0
        ret = 0;
1801
0
    return ret;
1802
0
}
1803
1804
int SSL_read_early_data(SSL *s, void *buf, size_t num, size_t *readbytes)
1805
0
{
1806
0
    int ret;
1807
1808
0
    if (!s->server) {
1809
0
        SSLerr(SSL_F_SSL_READ_EARLY_DATA, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
1810
0
        return SSL_READ_EARLY_DATA_ERROR;
1811
0
    }
1812
1813
0
    switch (s->early_data_state) {
1814
0
    case SSL_EARLY_DATA_NONE:
1815
0
        if (!SSL_in_before(s)) {
1816
0
            SSLerr(SSL_F_SSL_READ_EARLY_DATA,
1817
0
                   ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
1818
0
            return SSL_READ_EARLY_DATA_ERROR;
1819
0
        }
1820
        /* fall through */
1821
1822
0
    case SSL_EARLY_DATA_ACCEPT_RETRY:
1823
0
        s->early_data_state = SSL_EARLY_DATA_ACCEPTING;
1824
0
        ret = SSL_accept(s);
1825
0
        if (ret <= 0) {
1826
            /* NBIO or error */
1827
0
            s->early_data_state = SSL_EARLY_DATA_ACCEPT_RETRY;
1828
0
            return SSL_READ_EARLY_DATA_ERROR;
1829
0
        }
1830
        /* fall through */
1831
1832
0
    case SSL_EARLY_DATA_READ_RETRY:
1833
0
        if (s->ext.early_data == SSL_EARLY_DATA_ACCEPTED) {
1834
0
            s->early_data_state = SSL_EARLY_DATA_READING;
1835
0
            ret = SSL_read_ex(s, buf, num, readbytes);
1836
            /*
1837
             * State machine will update early_data_state to
1838
             * SSL_EARLY_DATA_FINISHED_READING if we get an EndOfEarlyData
1839
             * message
1840
             */
1841
0
            if (ret > 0 || (ret <= 0 && s->early_data_state
1842
0
                                        != SSL_EARLY_DATA_FINISHED_READING)) {
1843
0
                s->early_data_state = SSL_EARLY_DATA_READ_RETRY;
1844
0
                return ret > 0 ? SSL_READ_EARLY_DATA_SUCCESS
1845
0
                               : SSL_READ_EARLY_DATA_ERROR;
1846
0
            }
1847
0
        } else {
1848
0
            s->early_data_state = SSL_EARLY_DATA_FINISHED_READING;
1849
0
        }
1850
0
        *readbytes = 0;
1851
0
        return SSL_READ_EARLY_DATA_FINISH;
1852
1853
0
    default:
1854
0
        SSLerr(SSL_F_SSL_READ_EARLY_DATA, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
1855
0
        return SSL_READ_EARLY_DATA_ERROR;
1856
0
    }
1857
0
}
1858
1859
int SSL_get_early_data_status(const SSL *s)
1860
0
{
1861
0
    return s->ext.early_data;
1862
0
}
1863
1864
static int ssl_peek_internal(SSL *s, void *buf, size_t num, size_t *readbytes)
1865
0
{
1866
0
    if (s->handshake_func == NULL) {
1867
0
        SSLerr(SSL_F_SSL_PEEK_INTERNAL, SSL_R_UNINITIALIZED);
1868
0
        return -1;
1869
0
    }
1870
1871
0
    if (s->shutdown & SSL_RECEIVED_SHUTDOWN) {
1872
0
        return 0;
1873
0
    }
1874
0
    if ((s->mode & SSL_MODE_ASYNC) && ASYNC_get_current_job() == NULL) {
1875
0
        struct ssl_async_args args;
1876
0
        int ret;
1877
1878
0
        args.s = s;
1879
0
        args.buf = buf;
1880
0
        args.num = num;
1881
0
        args.type = READFUNC;
1882
0
        args.f.func_read = s->method->ssl_peek;
1883
1884
0
        ret = ssl_start_async_job(s, &args, ssl_io_intern);
1885
0
        *readbytes = s->asyncrw;
1886
0
        return ret;
1887
0
    } else {
1888
0
        return s->method->ssl_peek(s, buf, num, readbytes);
1889
0
    }
1890
0
}
1891
1892
int SSL_peek(SSL *s, void *buf, int num)
1893
0
{
1894
0
    int ret;
1895
0
    size_t readbytes;
1896
1897
0
    if (num < 0) {
1898
0
        SSLerr(SSL_F_SSL_PEEK, SSL_R_BAD_LENGTH);
1899
0
        return -1;
1900
0
    }
1901
1902
0
    ret = ssl_peek_internal(s, buf, (size_t)num, &readbytes);
1903
1904
    /*
1905
     * The cast is safe here because ret should be <= INT_MAX because num is
1906
     * <= INT_MAX
1907
     */
1908
0
    if (ret > 0)
1909
0
        ret = (int)readbytes;
1910
1911
0
    return ret;
1912
0
}
1913
1914
1915
int SSL_peek_ex(SSL *s, void *buf, size_t num, size_t *readbytes)
1916
0
{
1917
0
    int ret = ssl_peek_internal(s, buf, num, readbytes);
1918
1919
0
    if (ret < 0)
1920
0
        ret = 0;
1921
0
    return ret;
1922
0
}
1923
1924
int ssl_write_internal(SSL *s, const void *buf, size_t num, size_t *written)
1925
0
{
1926
0
    if (s->handshake_func == NULL) {
1927
0
        SSLerr(SSL_F_SSL_WRITE_INTERNAL, SSL_R_UNINITIALIZED);
1928
0
        return -1;
1929
0
    }
1930
1931
0
    if (s->shutdown & SSL_SENT_SHUTDOWN) {
1932
0
        s->rwstate = SSL_NOTHING;
1933
0
        SSLerr(SSL_F_SSL_WRITE_INTERNAL, SSL_R_PROTOCOL_IS_SHUTDOWN);
1934
0
        return -1;
1935
0
    }
1936
1937
0
    if (s->early_data_state == SSL_EARLY_DATA_CONNECT_RETRY
1938
0
                || s->early_data_state == SSL_EARLY_DATA_ACCEPT_RETRY
1939
0
                || s->early_data_state == SSL_EARLY_DATA_READ_RETRY) {
1940
0
        SSLerr(SSL_F_SSL_WRITE_INTERNAL, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
1941
0
        return 0;
1942
0
    }
1943
    /* If we are a client and haven't sent the Finished we better do that */
1944
0
    ossl_statem_check_finish_init(s, 1);
1945
1946
0
    if ((s->mode & SSL_MODE_ASYNC) && ASYNC_get_current_job() == NULL) {
1947
0
        int ret;
1948
0
        struct ssl_async_args args;
1949
1950
0
        args.s = s;
1951
0
        args.buf = (void *)buf;
1952
0
        args.num = num;
1953
0
        args.type = WRITEFUNC;
1954
0
        args.f.func_write = s->method->ssl_write;
1955
1956
0
        ret = ssl_start_async_job(s, &args, ssl_io_intern);
1957
0
        *written = s->asyncrw;
1958
0
        return ret;
1959
0
    } else {
1960
0
        return s->method->ssl_write(s, buf, num, written);
1961
0
    }
1962
0
}
1963
1964
int SSL_write(SSL *s, const void *buf, int num)
1965
0
{
1966
0
    int ret;
1967
0
    size_t written;
1968
1969
0
    if (num < 0) {
1970
0
        SSLerr(SSL_F_SSL_WRITE, SSL_R_BAD_LENGTH);
1971
0
        return -1;
1972
0
    }
1973
1974
0
    ret = ssl_write_internal(s, buf, (size_t)num, &written);
1975
1976
    /*
1977
     * The cast is safe here because ret should be <= INT_MAX because num is
1978
     * <= INT_MAX
1979
     */
1980
0
    if (ret > 0)
1981
0
        ret = (int)written;
1982
1983
0
    return ret;
1984
0
}
1985
1986
int SSL_write_ex(SSL *s, const void *buf, size_t num, size_t *written)
1987
0
{
1988
0
    int ret = ssl_write_internal(s, buf, num, written);
1989
1990
0
    if (ret < 0)
1991
0
        ret = 0;
1992
0
    return ret;
1993
0
}
1994
1995
int SSL_write_early_data(SSL *s, const void *buf, size_t num, size_t *written)
1996
0
{
1997
0
    int ret, early_data_state;
1998
0
    size_t writtmp;
1999
0
    uint32_t partialwrite;
2000
2001
0
    switch (s->early_data_state) {
2002
0
    case SSL_EARLY_DATA_NONE:
2003
0
        if (s->server
2004
0
                || !SSL_in_before(s)
2005
0
                || ((s->session == NULL || s->session->ext.max_early_data == 0)
2006
0
                     && (s->psk_use_session_cb == NULL))) {
2007
0
            SSLerr(SSL_F_SSL_WRITE_EARLY_DATA,
2008
0
                   ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
2009
0
            return 0;
2010
0
        }
2011
        /* fall through */
2012
2013
0
    case SSL_EARLY_DATA_CONNECT_RETRY:
2014
0
        s->early_data_state = SSL_EARLY_DATA_CONNECTING;
2015
0
        ret = SSL_connect(s);
2016
0
        if (ret <= 0) {
2017
            /* NBIO or error */
2018
0
            s->early_data_state = SSL_EARLY_DATA_CONNECT_RETRY;
2019
0
            return 0;
2020
0
        }
2021
        /* fall through */
2022
2023
0
    case SSL_EARLY_DATA_WRITE_RETRY:
2024
0
        s->early_data_state = SSL_EARLY_DATA_WRITING;
2025
        /*
2026
         * We disable partial write for early data because we don't keep track
2027
         * of how many bytes we've written between the SSL_write_ex() call and
2028
         * the flush if the flush needs to be retried)
2029
         */
2030
0
        partialwrite = s->mode & SSL_MODE_ENABLE_PARTIAL_WRITE;
2031
0
        s->mode &= ~SSL_MODE_ENABLE_PARTIAL_WRITE;
2032
0
        ret = SSL_write_ex(s, buf, num, &writtmp);
2033
0
        s->mode |= partialwrite;
2034
0
        if (!ret) {
2035
0
            s->early_data_state = SSL_EARLY_DATA_WRITE_RETRY;
2036
0
            return ret;
2037
0
        }
2038
0
        s->early_data_state = SSL_EARLY_DATA_WRITE_FLUSH;
2039
        /* fall through */
2040
2041
0
    case SSL_EARLY_DATA_WRITE_FLUSH:
2042
        /* The buffering BIO is still in place so we need to flush it */
2043
0
        if (statem_flush(s) != 1)
2044
0
            return 0;
2045
0
        *written = num;
2046
0
        s->early_data_state = SSL_EARLY_DATA_WRITE_RETRY;
2047
0
        return 1;
2048
2049
0
    case SSL_EARLY_DATA_FINISHED_READING:
2050
0
    case SSL_EARLY_DATA_READ_RETRY:
2051
0
        early_data_state = s->early_data_state;
2052
        /* We are a server writing to an unauthenticated client */
2053
0
        s->early_data_state = SSL_EARLY_DATA_UNAUTH_WRITING;
2054
0
        ret = SSL_write_ex(s, buf, num, written);
2055
        /* The buffering BIO is still in place */
2056
0
        if (ret)
2057
0
            (void)BIO_flush(s->wbio);
2058
0
        s->early_data_state = early_data_state;
2059
0
        return ret;
2060
2061
0
    default:
2062
0
        SSLerr(SSL_F_SSL_WRITE_EARLY_DATA, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
2063
0
        return 0;
2064
0
    }
2065
0
}
2066
2067
int SSL_shutdown(SSL *s)
2068
0
{
2069
    /*
2070
     * Note that this function behaves differently from what one might
2071
     * expect.  Return values are 0 for no success (yet), 1 for success; but
2072
     * calling it once is usually not enough, even if blocking I/O is used
2073
     * (see ssl3_shutdown).
2074
     */
2075
2076
0
    if (s->handshake_func == NULL) {
2077
0
        SSLerr(SSL_F_SSL_SHUTDOWN, SSL_R_UNINITIALIZED);
2078
0
        return -1;
2079
0
    }
2080
2081
0
    if (!SSL_in_init(s)) {
2082
0
        if ((s->mode & SSL_MODE_ASYNC) && ASYNC_get_current_job() == NULL) {
2083
0
            struct ssl_async_args args;
2084
2085
0
            args.s = s;
2086
0
            args.type = OTHERFUNC;
2087
0
            args.f.func_other = s->method->ssl_shutdown;
2088
2089
0
            return ssl_start_async_job(s, &args, ssl_io_intern);
2090
0
        } else {
2091
0
            return s->method->ssl_shutdown(s);
2092
0
        }
2093
0
    } else {
2094
0
        SSLerr(SSL_F_SSL_SHUTDOWN, SSL_R_SHUTDOWN_WHILE_IN_INIT);
2095
0
        return -1;
2096
0
    }
2097
0
}
2098
2099
int SSL_key_update(SSL *s, int updatetype)
2100
0
{
2101
    /*
2102
     * TODO(TLS1.3): How will applications know whether TLSv1.3 has been
2103
     * negotiated, and that it is appropriate to call SSL_key_update() instead
2104
     * of SSL_renegotiate().
2105
     */
2106
0
    if (!SSL_IS_TLS13(s)) {
2107
0
        SSLerr(SSL_F_SSL_KEY_UPDATE, SSL_R_WRONG_SSL_VERSION);
2108
0
        return 0;
2109
0
    }
2110
2111
0
    if (updatetype != SSL_KEY_UPDATE_NOT_REQUESTED
2112
0
            && updatetype != SSL_KEY_UPDATE_REQUESTED) {
2113
0
        SSLerr(SSL_F_SSL_KEY_UPDATE, SSL_R_INVALID_KEY_UPDATE_TYPE);
2114
0
        return 0;
2115
0
    }
2116
2117
0
    if (!SSL_is_init_finished(s)) {
2118
0
        SSLerr(SSL_F_SSL_KEY_UPDATE, SSL_R_STILL_IN_INIT);
2119
0
        return 0;
2120
0
    }
2121
2122
0
    if (RECORD_LAYER_write_pending(&s->rlayer)) {
2123
0
        SSLerr(SSL_F_SSL_KEY_UPDATE, SSL_R_BAD_WRITE_RETRY);
2124
0
        return 0;
2125
0
    }
2126
2127
0
    ossl_statem_set_in_init(s, 1);
2128
0
    s->key_update = updatetype;
2129
0
    return 1;
2130
0
}
2131
2132
int SSL_get_key_update_type(const SSL *s)
2133
0
{
2134
0
    return s->key_update;
2135
0
}
2136
2137
int SSL_renegotiate(SSL *s)
2138
0
{
2139
0
    if (SSL_IS_TLS13(s)) {
2140
0
        SSLerr(SSL_F_SSL_RENEGOTIATE, SSL_R_WRONG_SSL_VERSION);
2141
0
        return 0;
2142
0
    }
2143
2144
0
    if ((s->options & SSL_OP_NO_RENEGOTIATION)) {
2145
0
        SSLerr(SSL_F_SSL_RENEGOTIATE, SSL_R_NO_RENEGOTIATION);
2146
0
        return 0;
2147
0
    }
2148
2149
0
    s->renegotiate = 1;
2150
0
    s->new_session = 1;
2151
2152
0
    return s->method->ssl_renegotiate(s);
2153
0
}
2154
2155
int SSL_renegotiate_abbreviated(SSL *s)
2156
0
{
2157
0
    if (SSL_IS_TLS13(s)) {
2158
0
        SSLerr(SSL_F_SSL_RENEGOTIATE_ABBREVIATED, SSL_R_WRONG_SSL_VERSION);
2159
0
        return 0;
2160
0
    }
2161
2162
0
    if ((s->options & SSL_OP_NO_RENEGOTIATION)) {
2163
0
        SSLerr(SSL_F_SSL_RENEGOTIATE_ABBREVIATED, SSL_R_NO_RENEGOTIATION);
2164
0
        return 0;
2165
0
    }
2166
2167
0
    s->renegotiate = 1;
2168
0
    s->new_session = 0;
2169
2170
0
    return s->method->ssl_renegotiate(s);
2171
0
}
2172
2173
int SSL_renegotiate_pending(const SSL *s)
2174
0
{
2175
    /*
2176
     * becomes true when negotiation is requested; false again once a
2177
     * handshake has finished
2178
     */
2179
0
    return (s->renegotiate != 0);
2180
0
}
2181
2182
long SSL_ctrl(SSL *s, int cmd, long larg, void *parg)
2183
0
{
2184
0
    long l;
2185
2186
0
    switch (cmd) {
2187
0
    case SSL_CTRL_GET_READ_AHEAD:
2188
0
        return RECORD_LAYER_get_read_ahead(&s->rlayer);
2189
0
    case SSL_CTRL_SET_READ_AHEAD:
2190
0
        l = RECORD_LAYER_get_read_ahead(&s->rlayer);
2191
0
        RECORD_LAYER_set_read_ahead(&s->rlayer, larg);
2192
0
        return l;
2193
2194
0
    case SSL_CTRL_SET_MSG_CALLBACK_ARG:
2195
0
        s->msg_callback_arg = parg;
2196
0
        return 1;
2197
2198
0
    case SSL_CTRL_MODE:
2199
0
        return (s->mode |= larg);
2200
0
    case SSL_CTRL_CLEAR_MODE:
2201
0
        return (s->mode &= ~larg);
2202
0
    case SSL_CTRL_GET_MAX_CERT_LIST:
2203
0
        return (long)s->max_cert_list;
2204
0
    case SSL_CTRL_SET_MAX_CERT_LIST:
2205
0
        if (larg < 0)
2206
0
            return 0;
2207
0
        l = (long)s->max_cert_list;
2208
0
        s->max_cert_list = (size_t)larg;
2209
0
        return l;
2210
0
    case SSL_CTRL_SET_MAX_SEND_FRAGMENT:
2211
0
        if (larg < 512 || larg > SSL3_RT_MAX_PLAIN_LENGTH)
2212
0
            return 0;
2213
0
        s->max_send_fragment = larg;
2214
0
        if (s->max_send_fragment < s->split_send_fragment)
2215
0
            s->split_send_fragment = s->max_send_fragment;
2216
0
        return 1;
2217
0
    case SSL_CTRL_SET_SPLIT_SEND_FRAGMENT:
2218
0
        if ((size_t)larg > s->max_send_fragment || larg == 0)
2219
0
            return 0;
2220
0
        s->split_send_fragment = larg;
2221
0
        return 1;
2222
0
    case SSL_CTRL_SET_MAX_PIPELINES:
2223
0
        if (larg < 1 || larg > SSL_MAX_PIPELINES)
2224
0
            return 0;
2225
0
        s->max_pipelines = larg;
2226
0
        if (larg > 1)
2227
0
            RECORD_LAYER_set_read_ahead(&s->rlayer, 1);
2228
0
        return 1;
2229
0
    case SSL_CTRL_GET_RI_SUPPORT:
2230
0
        if (s->s3)
2231
0
            return s->s3->send_connection_binding;
2232
0
        else
2233
0
            return 0;
2234
0
    case SSL_CTRL_CERT_FLAGS:
2235
0
        return (s->cert->cert_flags |= larg);
2236
0
    case SSL_CTRL_CLEAR_CERT_FLAGS:
2237
0
        return (s->cert->cert_flags &= ~larg);
2238
2239
0
    case SSL_CTRL_GET_RAW_CIPHERLIST:
2240
0
        if (parg) {
2241
0
            if (s->s3->tmp.ciphers_raw == NULL)
2242
0
                return 0;
2243
0
            *(unsigned char **)parg = s->s3->tmp.ciphers_raw;
2244
0
            return (int)s->s3->tmp.ciphers_rawlen;
2245
0
        } else {
2246
0
            return TLS_CIPHER_LEN;
2247
0
        }
2248
0
    case SSL_CTRL_GET_EXTMS_SUPPORT:
2249
0
        if (!s->session || SSL_in_init(s) || ossl_statem_get_in_handshake(s))
2250
0
            return -1;
2251
0
        if (s->session->flags & SSL_SESS_FLAG_EXTMS)
2252
0
            return 1;
2253
0
        else
2254
0
            return 0;
2255
0
    case SSL_CTRL_SET_MIN_PROTO_VERSION:
2256
0
        return ssl_check_allowed_versions(larg, s->max_proto_version)
2257
0
               && ssl_set_version_bound(s->ctx->method->version, (int)larg,
2258
0
                                        &s->min_proto_version);
2259
0
    case SSL_CTRL_GET_MIN_PROTO_VERSION:
2260
0
        return s->min_proto_version;
2261
0
    case SSL_CTRL_SET_MAX_PROTO_VERSION:
2262
0
        return ssl_check_allowed_versions(s->min_proto_version, larg)
2263
0
               && ssl_set_version_bound(s->ctx->method->version, (int)larg,
2264
0
                                        &s->max_proto_version);
2265
0
    case SSL_CTRL_GET_MAX_PROTO_VERSION:
2266
0
        return s->max_proto_version;
2267
0
    default:
2268
0
        return s->method->ssl_ctrl(s, cmd, larg, parg);
2269
0
    }
2270
0
}
2271
2272
long SSL_callback_ctrl(SSL *s, int cmd, void (*fp) (void))
2273
0
{
2274
0
    switch (cmd) {
2275
0
    case SSL_CTRL_SET_MSG_CALLBACK:
2276
0
        s->msg_callback = (void (*)
2277
0
                           (int write_p, int version, int content_type,
2278
0
                            const void *buf, size_t len, SSL *ssl,
2279
0
                            void *arg))(fp);
2280
0
        return 1;
2281
2282
0
    default:
2283
0
        return s->method->ssl_callback_ctrl(s, cmd, fp);
2284
0
    }
2285
0
}
2286
2287
LHASH_OF(SSL_SESSION) *SSL_CTX_sessions(SSL_CTX *ctx)
2288
0
{
2289
0
    return ctx->sessions;
2290
0
}
2291
2292
long SSL_CTX_ctrl(SSL_CTX *ctx, int cmd, long larg, void *parg)
2293
0
{
2294
0
    long l;
2295
    /* For some cases with ctx == NULL perform syntax checks */
2296
0
    if (ctx == NULL) {
2297
0
        switch (cmd) {
2298
0
#ifndef OPENSSL_NO_EC
2299
0
        case SSL_CTRL_SET_GROUPS_LIST:
2300
0
            return tls1_set_groups_list(NULL, NULL, parg);
2301
0
#endif
2302
0
        case SSL_CTRL_SET_SIGALGS_LIST:
2303
0
        case SSL_CTRL_SET_CLIENT_SIGALGS_LIST:
2304
0
            return tls1_set_sigalgs_list(NULL, parg, 0);
2305
0
        default:
2306
0
            return 0;
2307
0
        }
2308
0
    }
2309
2310
0
    switch (cmd) {
2311
0
    case SSL_CTRL_GET_READ_AHEAD:
2312
0
        return ctx->read_ahead;
2313
0
    case SSL_CTRL_SET_READ_AHEAD:
2314
0
        l = ctx->read_ahead;
2315
0
        ctx->read_ahead = larg;
2316
0
        return l;
2317
2318
0
    case SSL_CTRL_SET_MSG_CALLBACK_ARG:
2319
0
        ctx->msg_callback_arg = parg;
2320
0
        return 1;
2321
2322
0
    case SSL_CTRL_GET_MAX_CERT_LIST:
2323
0
        return (long)ctx->max_cert_list;
2324
0
    case SSL_CTRL_SET_MAX_CERT_LIST:
2325
0
        if (larg < 0)
2326
0
            return 0;
2327
0
        l = (long)ctx->max_cert_list;
2328
0
        ctx->max_cert_list = (size_t)larg;
2329
0
        return l;
2330
2331
0
    case SSL_CTRL_SET_SESS_CACHE_SIZE:
2332
0
        if (larg < 0)
2333
0
            return 0;
2334
0
        l = (long)ctx->session_cache_size;
2335
0
        ctx->session_cache_size = (size_t)larg;
2336
0
        return l;
2337
0
    case SSL_CTRL_GET_SESS_CACHE_SIZE:
2338
0
        return (long)ctx->session_cache_size;
2339
0
    case SSL_CTRL_SET_SESS_CACHE_MODE:
2340
0
        l = ctx->session_cache_mode;
2341
0
        ctx->session_cache_mode = larg;
2342
0
        return l;
2343
0
    case SSL_CTRL_GET_SESS_CACHE_MODE:
2344
0
        return ctx->session_cache_mode;
2345
2346
0
    case SSL_CTRL_SESS_NUMBER:
2347
0
        return lh_SSL_SESSION_num_items(ctx->sessions);
2348
0
    case SSL_CTRL_SESS_CONNECT:
2349
0
        return tsan_load(&ctx->stats.sess_connect);
2350
0
    case SSL_CTRL_SESS_CONNECT_GOOD:
2351
0
        return tsan_load(&ctx->stats.sess_connect_good);
2352
0
    case SSL_CTRL_SESS_CONNECT_RENEGOTIATE:
2353
0
        return tsan_load(&ctx->stats.sess_connect_renegotiate);
2354
0
    case SSL_CTRL_SESS_ACCEPT:
2355
0
        return tsan_load(&ctx->stats.sess_accept);
2356
0
    case SSL_CTRL_SESS_ACCEPT_GOOD:
2357
0
        return tsan_load(&ctx->stats.sess_accept_good);
2358
0
    case SSL_CTRL_SESS_ACCEPT_RENEGOTIATE:
2359
0
        return tsan_load(&ctx->stats.sess_accept_renegotiate);
2360
0
    case SSL_CTRL_SESS_HIT:
2361
0
        return tsan_load(&ctx->stats.sess_hit);
2362
0
    case SSL_CTRL_SESS_CB_HIT:
2363
0
        return tsan_load(&ctx->stats.sess_cb_hit);
2364
0
    case SSL_CTRL_SESS_MISSES:
2365
0
        return tsan_load(&ctx->stats.sess_miss);
2366
0
    case SSL_CTRL_SESS_TIMEOUTS:
2367
0
        return tsan_load(&ctx->stats.sess_timeout);
2368
0
    case SSL_CTRL_SESS_CACHE_FULL:
2369
0
        return tsan_load(&ctx->stats.sess_cache_full);
2370
0
    case SSL_CTRL_MODE:
2371
0
        return (ctx->mode |= larg);
2372
0
    case SSL_CTRL_CLEAR_MODE:
2373
0
        return (ctx->mode &= ~larg);
2374
0
    case SSL_CTRL_SET_MAX_SEND_FRAGMENT:
2375
0
        if (larg < 512 || larg > SSL3_RT_MAX_PLAIN_LENGTH)
2376
0
            return 0;
2377
0
        ctx->max_send_fragment = larg;
2378
0
        if (ctx->max_send_fragment < ctx->split_send_fragment)
2379
0
            ctx->split_send_fragment = ctx->max_send_fragment;
2380
0
        return 1;
2381
0
    case SSL_CTRL_SET_SPLIT_SEND_FRAGMENT:
2382
0
        if ((size_t)larg > ctx->max_send_fragment || larg == 0)
2383
0
            return 0;
2384
0
        ctx->split_send_fragment = larg;
2385
0
        return 1;
2386
0
    case SSL_CTRL_SET_MAX_PIPELINES:
2387
0
        if (larg < 1 || larg > SSL_MAX_PIPELINES)
2388
0
            return 0;
2389
0
        ctx->max_pipelines = larg;
2390
0
        return 1;
2391
0
    case SSL_CTRL_CERT_FLAGS:
2392
0
        return (ctx->cert->cert_flags |= larg);
2393
0
    case SSL_CTRL_CLEAR_CERT_FLAGS:
2394
0
        return (ctx->cert->cert_flags &= ~larg);
2395
0
    case SSL_CTRL_SET_MIN_PROTO_VERSION:
2396
0
        return ssl_check_allowed_versions(larg, ctx->max_proto_version)
2397
0
               && ssl_set_version_bound(ctx->method->version, (int)larg,
2398
0
                                        &ctx->min_proto_version);
2399
0
    case SSL_CTRL_GET_MIN_PROTO_VERSION:
2400
0
        return ctx->min_proto_version;
2401
0
    case SSL_CTRL_SET_MAX_PROTO_VERSION:
2402
0
        return ssl_check_allowed_versions(ctx->min_proto_version, larg)
2403
0
               && ssl_set_version_bound(ctx->method->version, (int)larg,
2404
0
                                        &ctx->max_proto_version);
2405
0
    case SSL_CTRL_GET_MAX_PROTO_VERSION:
2406
0
        return ctx->max_proto_version;
2407
0
    default:
2408
0
        return ctx->method->ssl_ctx_ctrl(ctx, cmd, larg, parg);
2409
0
    }
2410
0
}
2411
2412
long SSL_CTX_callback_ctrl(SSL_CTX *ctx, int cmd, void (*fp) (void))
2413
0
{
2414
0
    switch (cmd) {
2415
0
    case SSL_CTRL_SET_MSG_CALLBACK:
2416
0
        ctx->msg_callback = (void (*)
2417
0
                             (int write_p, int version, int content_type,
2418
0
                              const void *buf, size_t len, SSL *ssl,
2419
0
                              void *arg))(fp);
2420
0
        return 1;
2421
2422
0
    default:
2423
0
        return ctx->method->ssl_ctx_callback_ctrl(ctx, cmd, fp);
2424
0
    }
2425
0
}
2426
2427
int ssl_cipher_id_cmp(const SSL_CIPHER *a, const SSL_CIPHER *b)
2428
0
{
2429
0
    if (a->id > b->id)
2430
0
        return 1;
2431
0
    if (a->id < b->id)
2432
0
        return -1;
2433
0
    return 0;
2434
0
}
2435
2436
int ssl_cipher_ptr_id_cmp(const SSL_CIPHER *const *ap,
2437
                          const SSL_CIPHER *const *bp)
2438
0
{
2439
0
    if ((*ap)->id > (*bp)->id)
2440
0
        return 1;
2441
0
    if ((*ap)->id < (*bp)->id)
2442
0
        return -1;
2443
0
    return 0;
2444
0
}
2445
2446
/** return a STACK of the ciphers available for the SSL and in order of
2447
 * preference */
2448
STACK_OF(SSL_CIPHER) *SSL_get_ciphers(const SSL *s)
2449
0
{
2450
0
    if (s != NULL) {
2451
0
        if (s->cipher_list != NULL) {
2452
0
            return s->cipher_list;
2453
0
        } else if ((s->ctx != NULL) && (s->ctx->cipher_list != NULL)) {
2454
0
            return s->ctx->cipher_list;
2455
0
        }
2456
0
    }
2457
0
    return NULL;
2458
0
}
2459
2460
STACK_OF(SSL_CIPHER) *SSL_get_client_ciphers(const SSL *s)
2461
0
{
2462
0
    if ((s == NULL) || !s->server)
2463
0
        return NULL;
2464
0
    return s->peer_ciphers;
2465
0
}
2466
2467
STACK_OF(SSL_CIPHER) *SSL_get1_supported_ciphers(SSL *s)
2468
0
{
2469
0
    STACK_OF(SSL_CIPHER) *sk = NULL, *ciphers;
2470
0
    int i;
2471
2472
0
    ciphers = SSL_get_ciphers(s);
2473
0
    if (!ciphers)
2474
0
        return NULL;
2475
0
    if (!ssl_set_client_disabled(s))
2476
0
        return NULL;
2477
0
    for (i = 0; i < sk_SSL_CIPHER_num(ciphers); i++) {
2478
0
        const SSL_CIPHER *c = sk_SSL_CIPHER_value(ciphers, i);
2479
0
        if (!ssl_cipher_disabled(s, c, SSL_SECOP_CIPHER_SUPPORTED, 0)) {
2480
0
            if (!sk)
2481
0
                sk = sk_SSL_CIPHER_new_null();
2482
0
            if (!sk)
2483
0
                return NULL;
2484
0
            if (!sk_SSL_CIPHER_push(sk, c)) {
2485
0
                sk_SSL_CIPHER_free(sk);
2486
0
                return NULL;
2487
0
            }
2488
0
        }
2489
0
    }
2490
0
    return sk;
2491
0
}
2492
2493
/** return a STACK of the ciphers available for the SSL and in order of
2494
 * algorithm id */
2495
STACK_OF(SSL_CIPHER) *ssl_get_ciphers_by_id(SSL *s)
2496
0
{
2497
0
    if (s != NULL) {
2498
0
        if (s->cipher_list_by_id != NULL) {
2499
0
            return s->cipher_list_by_id;
2500
0
        } else if ((s->ctx != NULL) && (s->ctx->cipher_list_by_id != NULL)) {
2501
0
            return s->ctx->cipher_list_by_id;
2502
0
        }
2503
0
    }
2504
0
    return NULL;
2505
0
}
2506
2507
/** The old interface to get the same thing as SSL_get_ciphers() */
2508
const char *SSL_get_cipher_list(const SSL *s, int n)
2509
0
{
2510
0
    const SSL_CIPHER *c;
2511
0
    STACK_OF(SSL_CIPHER) *sk;
2512
2513
0
    if (s == NULL)
2514
0
        return NULL;
2515
0
    sk = SSL_get_ciphers(s);
2516
0
    if ((sk == NULL) || (sk_SSL_CIPHER_num(sk) <= n))
2517
0
        return NULL;
2518
0
    c = sk_SSL_CIPHER_value(sk, n);
2519
0
    if (c == NULL)
2520
0
        return NULL;
2521
0
    return c->name;
2522
0
}
2523
2524
/** return a STACK of the ciphers available for the SSL_CTX and in order of
2525
 * preference */
2526
STACK_OF(SSL_CIPHER) *SSL_CTX_get_ciphers(const SSL_CTX *ctx)
2527
0
{
2528
0
    if (ctx != NULL)
2529
0
        return ctx->cipher_list;
2530
0
    return NULL;
2531
0
}
2532
2533
/*
2534
 * Distinguish between ciphers controlled by set_ciphersuite() and
2535
 * set_cipher_list() when counting.
2536
 */
2537
static int cipher_list_tls12_num(STACK_OF(SSL_CIPHER) *sk)
2538
0
{
2539
0
    int i, num = 0;
2540
0
    const SSL_CIPHER *c;
2541
2542
0
    if (sk == NULL)
2543
0
        return 0;
2544
0
    for (i = 0; i < sk_SSL_CIPHER_num(sk); ++i) {
2545
0
        c = sk_SSL_CIPHER_value(sk, i);
2546
0
        if (c->min_tls >= TLS1_3_VERSION)
2547
0
            continue;
2548
0
        num++;
2549
0
    }
2550
0
    return num;
2551
0
}
2552
2553
/** specify the ciphers to be used by default by the SSL_CTX */
2554
int SSL_CTX_set_cipher_list(SSL_CTX *ctx, const char *str)
2555
0
{
2556
0
    STACK_OF(SSL_CIPHER) *sk;
2557
2558
0
    sk = ssl_create_cipher_list(ctx->method, ctx->tls13_ciphersuites,
2559
0
                                &ctx->cipher_list, &ctx->cipher_list_by_id, str,
2560
0
                                ctx->cert);
2561
    /*
2562
     * ssl_create_cipher_list may return an empty stack if it was unable to
2563
     * find a cipher matching the given rule string (for example if the rule
2564
     * string specifies a cipher which has been disabled). This is not an
2565
     * error as far as ssl_create_cipher_list is concerned, and hence
2566
     * ctx->cipher_list and ctx->cipher_list_by_id has been updated.
2567
     */
2568
0
    if (sk == NULL)
2569
0
        return 0;
2570
0
    else if (cipher_list_tls12_num(sk) == 0) {
2571
0
        SSLerr(SSL_F_SSL_CTX_SET_CIPHER_LIST, SSL_R_NO_CIPHER_MATCH);
2572
0
        return 0;
2573
0
    }
2574
0
    return 1;
2575
0
}
2576
2577
/** specify the ciphers to be used by the SSL */
2578
int SSL_set_cipher_list(SSL *s, const char *str)
2579
0
{
2580
0
    STACK_OF(SSL_CIPHER) *sk;
2581
2582
0
    sk = ssl_create_cipher_list(s->ctx->method, s->tls13_ciphersuites,
2583
0
                                &s->cipher_list, &s->cipher_list_by_id, str,
2584
0
                                s->cert);
2585
    /* see comment in SSL_CTX_set_cipher_list */
2586
0
    if (sk == NULL)
2587
0
        return 0;
2588
0
    else if (cipher_list_tls12_num(sk) == 0) {
2589
0
        SSLerr(SSL_F_SSL_SET_CIPHER_LIST, SSL_R_NO_CIPHER_MATCH);
2590
0
        return 0;
2591
0
    }
2592
0
    return 1;
2593
0
}
2594
2595
char *SSL_get_shared_ciphers(const SSL *s, char *buf, int size)
2596
0
{
2597
0
    char *p;
2598
0
    STACK_OF(SSL_CIPHER) *clntsk, *srvrsk;
2599
0
    const SSL_CIPHER *c;
2600
0
    int i;
2601
2602
0
    if (!s->server
2603
0
            || s->peer_ciphers == NULL
2604
0
            || size < 2)
2605
0
        return NULL;
2606
2607
0
    p = buf;
2608
0
    clntsk = s->peer_ciphers;
2609
0
    srvrsk = SSL_get_ciphers(s);
2610
0
    if (clntsk == NULL || srvrsk == NULL)
2611
0
        return NULL;
2612
2613
0
    if (sk_SSL_CIPHER_num(clntsk) == 0 || sk_SSL_CIPHER_num(srvrsk) == 0)
2614
0
        return NULL;
2615
2616
0
    for (i = 0; i < sk_SSL_CIPHER_num(clntsk); i++) {
2617
0
        int n;
2618
2619
0
        c = sk_SSL_CIPHER_value(clntsk, i);
2620
0
        if (sk_SSL_CIPHER_find(srvrsk, c) < 0)
2621
0
            continue;
2622
2623
0
        n = strlen(c->name);
2624
0
        if (n + 1 > size) {
2625
0
            if (p != buf)
2626
0
                --p;
2627
0
            *p = '\0';
2628
0
            return buf;
2629
0
        }
2630
0
        strcpy(p, c->name);
2631
0
        p += n;
2632
0
        *(p++) = ':';
2633
0
        size -= n + 1;
2634
0
    }
2635
0
    p[-1] = '\0';
2636
0
    return buf;
2637
0
}
2638
2639
/**
2640
 * Return the requested servername (SNI) value. Note that the behaviour varies
2641
 * depending on:
2642
 * - whether this is called by the client or the server,
2643
 * - if we are before or during/after the handshake,
2644
 * - if a resumption or normal handshake is being attempted/has occurred
2645
 * - whether we have negotiated TLSv1.2 (or below) or TLSv1.3
2646
 * 
2647
 * Note that only the host_name type is defined (RFC 3546).
2648
 */
2649
const char *SSL_get_servername(const SSL *s, const int type)
2650
0
{
2651
    /*
2652
     * If we don't know if we are the client or the server yet then we assume
2653
     * client.
2654
     */
2655
0
    int server = s->handshake_func == NULL ? 0 : s->server;
2656
0
    if (type != TLSEXT_NAMETYPE_host_name)
2657
0
        return NULL;
2658
2659
0
    if (server) {
2660
        /**
2661
         * Server side
2662
         * In TLSv1.3 on the server SNI is not associated with the session
2663
         * but in TLSv1.2 or below it is.
2664
         *
2665
         * Before the handshake:
2666
         *  - return NULL
2667
         *
2668
         * During/after the handshake (TLSv1.2 or below resumption occurred):
2669
         * - If a servername was accepted by the server in the original
2670
         *   handshake then it will return that servername, or NULL otherwise.
2671
         *
2672
         * During/after the handshake (TLSv1.2 or below resumption did not occur):
2673
         * - The function will return the servername requested by the client in
2674
         *   this handshake or NULL if none was requested.
2675
         */
2676
0
         if (s->hit && !SSL_IS_TLS13(s))
2677
0
            return s->session->ext.hostname;
2678
0
    } else {
2679
        /**
2680
         * Client side
2681
         *
2682
         * Before the handshake:
2683
         *  - If a servername has been set via a call to
2684
         *    SSL_set_tlsext_host_name() then it will return that servername
2685
         *  - If one has not been set, but a TLSv1.2 resumption is being
2686
         *    attempted and the session from the original handshake had a
2687
         *    servername accepted by the server then it will return that
2688
         *    servername
2689
         *  - Otherwise it returns NULL
2690
         *
2691
         * During/after the handshake (TLSv1.2 or below resumption occurred):
2692
         * - If the session from the original handshake had a servername accepted
2693
         *   by the server then it will return that servername.
2694
         * - Otherwise it returns the servername set via
2695
         *   SSL_set_tlsext_host_name() (or NULL if it was not called).
2696
         *
2697
         * During/after the handshake (TLSv1.2 or below resumption did not occur):
2698
         * - It will return the servername set via SSL_set_tlsext_host_name()
2699
         *   (or NULL if it was not called).
2700
         */
2701
0
        if (SSL_in_before(s)) {
2702
0
            if (s->ext.hostname == NULL
2703
0
                    && s->session != NULL
2704
0
                    && s->session->ssl_version != TLS1_3_VERSION)
2705
0
                return s->session->ext.hostname;
2706
0
        } else {
2707
0
            if (!SSL_IS_TLS13(s) && s->hit && s->session->ext.hostname != NULL)
2708
0
                return s->session->ext.hostname;
2709
0
        }
2710
0
    }
2711
2712
0
    return s->ext.hostname;
2713
0
}
2714
2715
int SSL_get_servername_type(const SSL *s)
2716
0
{
2717
0
    if (SSL_get_servername(s, TLSEXT_NAMETYPE_host_name) != NULL)
2718
0
        return TLSEXT_NAMETYPE_host_name;
2719
0
    return -1;
2720
0
}
2721
2722
/*
2723
 * SSL_select_next_proto implements the standard protocol selection. It is
2724
 * expected that this function is called from the callback set by
2725
 * SSL_CTX_set_next_proto_select_cb. The protocol data is assumed to be a
2726
 * vector of 8-bit, length prefixed byte strings. The length byte itself is
2727
 * not included in the length. A byte string of length 0 is invalid. No byte
2728
 * string may be truncated. The current, but experimental algorithm for
2729
 * selecting the protocol is: 1) If the server doesn't support NPN then this
2730
 * is indicated to the callback. In this case, the client application has to
2731
 * abort the connection or have a default application level protocol. 2) If
2732
 * the server supports NPN, but advertises an empty list then the client
2733
 * selects the first protocol in its list, but indicates via the API that this
2734
 * fallback case was enacted. 3) Otherwise, the client finds the first
2735
 * protocol in the server's list that it supports and selects this protocol.
2736
 * This is because it's assumed that the server has better information about
2737
 * which protocol a client should use. 4) If the client doesn't support any
2738
 * of the server's advertised protocols, then this is treated the same as
2739
 * case 2. It returns either OPENSSL_NPN_NEGOTIATED if a common protocol was
2740
 * found, or OPENSSL_NPN_NO_OVERLAP if the fallback case was reached.
2741
 */
2742
int SSL_select_next_proto(unsigned char **out, unsigned char *outlen,
2743
                          const unsigned char *server,
2744
                          unsigned int server_len,
2745
                          const unsigned char *client, unsigned int client_len)
2746
0
{
2747
0
    unsigned int i, j;
2748
0
    const unsigned char *result;
2749
0
    int status = OPENSSL_NPN_UNSUPPORTED;
2750
2751
    /*
2752
     * For each protocol in server preference order, see if we support it.
2753
     */
2754
0
    for (i = 0; i < server_len;) {
2755
0
        for (j = 0; j < client_len;) {
2756
0
            if (server[i] == client[j] &&
2757
0
                memcmp(&server[i + 1], &client[j + 1], server[i]) == 0) {
2758
                /* We found a match */
2759
0
                result = &server[i];
2760
0
                status = OPENSSL_NPN_NEGOTIATED;
2761
0
                goto found;
2762
0
            }
2763
0
            j += client[j];
2764
0
            j++;
2765
0
        }
2766
0
        i += server[i];
2767
0
        i++;
2768
0
    }
2769
2770
    /* There's no overlap between our protocols and the server's list. */
2771
0
    result = client;
2772
0
    status = OPENSSL_NPN_NO_OVERLAP;
2773
2774
0
 found:
2775
0
    *out = (unsigned char *)result + 1;
2776
0
    *outlen = result[0];
2777
0
    return status;
2778
0
}
2779
2780
#ifndef OPENSSL_NO_NEXTPROTONEG
2781
/*
2782
 * SSL_get0_next_proto_negotiated sets *data and *len to point to the
2783
 * client's requested protocol for this connection and returns 0. If the
2784
 * client didn't request any protocol, then *data is set to NULL. Note that
2785
 * the client can request any protocol it chooses. The value returned from
2786
 * this function need not be a member of the list of supported protocols
2787
 * provided by the callback.
2788
 */
2789
void SSL_get0_next_proto_negotiated(const SSL *s, const unsigned char **data,
2790
                                    unsigned *len)
2791
0
{
2792
0
    *data = s->ext.npn;
2793
0
    if (!*data) {
2794
0
        *len = 0;
2795
0
    } else {
2796
0
        *len = (unsigned int)s->ext.npn_len;
2797
0
    }
2798
0
}
2799
2800
/*
2801
 * SSL_CTX_set_npn_advertised_cb sets a callback that is called when
2802
 * a TLS server needs a list of supported protocols for Next Protocol
2803
 * Negotiation. The returned list must be in wire format.  The list is
2804
 * returned by setting |out| to point to it and |outlen| to its length. This
2805
 * memory will not be modified, but one should assume that the SSL* keeps a
2806
 * reference to it. The callback should return SSL_TLSEXT_ERR_OK if it
2807
 * wishes to advertise. Otherwise, no such extension will be included in the
2808
 * ServerHello.
2809
 */
2810
void SSL_CTX_set_npn_advertised_cb(SSL_CTX *ctx,
2811
                                   SSL_CTX_npn_advertised_cb_func cb,
2812
                                   void *arg)
2813
0
{
2814
0
    ctx->ext.npn_advertised_cb = cb;
2815
0
    ctx->ext.npn_advertised_cb_arg = arg;
2816
0
}
2817
2818
/*
2819
 * SSL_CTX_set_next_proto_select_cb sets a callback that is called when a
2820
 * client needs to select a protocol from the server's provided list. |out|
2821
 * must be set to point to the selected protocol (which may be within |in|).
2822
 * The length of the protocol name must be written into |outlen|. The
2823
 * server's advertised protocols are provided in |in| and |inlen|. The
2824
 * callback can assume that |in| is syntactically valid. The client must
2825
 * select a protocol. It is fatal to the connection if this callback returns
2826
 * a value other than SSL_TLSEXT_ERR_OK.
2827
 */
2828
void SSL_CTX_set_npn_select_cb(SSL_CTX *ctx,
2829
                               SSL_CTX_npn_select_cb_func cb,
2830
                               void *arg)
2831
0
{
2832
0
    ctx->ext.npn_select_cb = cb;
2833
0
    ctx->ext.npn_select_cb_arg = arg;
2834
0
}
2835
#endif
2836
2837
static int alpn_value_ok(const unsigned char *protos, unsigned int protos_len)
2838
0
{
2839
0
    unsigned int idx;
2840
2841
0
    if (protos_len < 2 || protos == NULL)
2842
0
        return 0;
2843
2844
0
    for (idx = 0; idx < protos_len; idx += protos[idx] + 1) {
2845
0
        if (protos[idx] == 0)
2846
0
            return 0;
2847
0
    }
2848
0
    return idx == protos_len;
2849
0
}
2850
/*
2851
 * SSL_CTX_set_alpn_protos sets the ALPN protocol list on |ctx| to |protos|.
2852
 * |protos| must be in wire-format (i.e. a series of non-empty, 8-bit
2853
 * length-prefixed strings). Returns 0 on success.
2854
 */
2855
int SSL_CTX_set_alpn_protos(SSL_CTX *ctx, const unsigned char *protos,
2856
                            unsigned int protos_len)
2857
0
{
2858
0
    unsigned char *alpn;
2859
2860
0
    if (protos_len == 0 || protos == NULL) {
2861
0
        OPENSSL_free(ctx->ext.alpn);
2862
0
        ctx->ext.alpn = NULL;
2863
0
        ctx->ext.alpn_len = 0;
2864
0
        return 0;
2865
0
    }
2866
    /* Not valid per RFC */
2867
0
    if (!alpn_value_ok(protos, protos_len))
2868
0
        return 1;
2869
2870
0
    alpn = OPENSSL_memdup(protos, protos_len);
2871
0
    if (alpn == NULL) {
2872
0
        SSLerr(SSL_F_SSL_CTX_SET_ALPN_PROTOS, ERR_R_MALLOC_FAILURE);
2873
0
        return 1;
2874
0
    }
2875
0
    OPENSSL_free(ctx->ext.alpn);
2876
0
    ctx->ext.alpn = alpn;
2877
0
    ctx->ext.alpn_len = protos_len;
2878
2879
0
    return 0;
2880
0
}
2881
2882
/*
2883
 * SSL_set_alpn_protos sets the ALPN protocol list on |ssl| to |protos|.
2884
 * |protos| must be in wire-format (i.e. a series of non-empty, 8-bit
2885
 * length-prefixed strings). Returns 0 on success.
2886
 */
2887
int SSL_set_alpn_protos(SSL *ssl, const unsigned char *protos,
2888
                        unsigned int protos_len)
2889
0
{
2890
0
    unsigned char *alpn;
2891
2892
0
    if (protos_len == 0 || protos == NULL) {
2893
0
        OPENSSL_free(ssl->ext.alpn);
2894
0
        ssl->ext.alpn = NULL;
2895
0
        ssl->ext.alpn_len = 0;
2896
0
        return 0;
2897
0
    }
2898
    /* Not valid per RFC */
2899
0
    if (!alpn_value_ok(protos, protos_len))
2900
0
        return 1;
2901
2902
0
    alpn = OPENSSL_memdup(protos, protos_len);
2903
0
    if (alpn == NULL) {
2904
0
        SSLerr(SSL_F_SSL_SET_ALPN_PROTOS, ERR_R_MALLOC_FAILURE);
2905
0
        return 1;
2906
0
    }
2907
0
    OPENSSL_free(ssl->ext.alpn);
2908
0
    ssl->ext.alpn = alpn;
2909
0
    ssl->ext.alpn_len = protos_len;
2910
2911
0
    return 0;
2912
0
}
2913
2914
/*
2915
 * SSL_CTX_set_alpn_select_cb sets a callback function on |ctx| that is
2916
 * called during ClientHello processing in order to select an ALPN protocol
2917
 * from the client's list of offered protocols.
2918
 */
2919
void SSL_CTX_set_alpn_select_cb(SSL_CTX *ctx,
2920
                                SSL_CTX_alpn_select_cb_func cb,
2921
                                void *arg)
2922
0
{
2923
0
    ctx->ext.alpn_select_cb = cb;
2924
0
    ctx->ext.alpn_select_cb_arg = arg;
2925
0
}
2926
2927
/*
2928
 * SSL_get0_alpn_selected gets the selected ALPN protocol (if any) from |ssl|.
2929
 * On return it sets |*data| to point to |*len| bytes of protocol name
2930
 * (not including the leading length-prefix byte). If the server didn't
2931
 * respond with a negotiated protocol then |*len| will be zero.
2932
 */
2933
void SSL_get0_alpn_selected(const SSL *ssl, const unsigned char **data,
2934
                            unsigned int *len)
2935
0
{
2936
0
    *data = NULL;
2937
0
    if (ssl->s3)
2938
0
        *data = ssl->s3->alpn_selected;
2939
0
    if (*data == NULL)
2940
0
        *len = 0;
2941
0
    else
2942
0
        *len = (unsigned int)ssl->s3->alpn_selected_len;
2943
0
}
2944
2945
int SSL_export_keying_material(SSL *s, unsigned char *out, size_t olen,
2946
                               const char *label, size_t llen,
2947
                               const unsigned char *context, size_t contextlen,
2948
                               int use_context)
2949
0
{
2950
0
    if (s->session == NULL
2951
0
        || (s->version < TLS1_VERSION && s->version != DTLS1_BAD_VER))
2952
0
        return -1;
2953
2954
0
    return s->method->ssl3_enc->export_keying_material(s, out, olen, label,
2955
0
                                                       llen, context,
2956
0
                                                       contextlen, use_context);
2957
0
}
2958
2959
int SSL_export_keying_material_early(SSL *s, unsigned char *out, size_t olen,
2960
                                     const char *label, size_t llen,
2961
                                     const unsigned char *context,
2962
                                     size_t contextlen)
2963
0
{
2964
0
    if (s->version != TLS1_3_VERSION)
2965
0
        return 0;
2966
2967
0
    return tls13_export_keying_material_early(s, out, olen, label, llen,
2968
0
                                              context, contextlen);
2969
0
}
2970
2971
static unsigned long ssl_session_hash(const SSL_SESSION *a)
2972
0
{
2973
0
    const unsigned char *session_id = a->session_id;
2974
0
    unsigned long l;
2975
0
    unsigned char tmp_storage[4];
2976
2977
0
    if (a->session_id_length < sizeof(tmp_storage)) {
2978
0
        memset(tmp_storage, 0, sizeof(tmp_storage));
2979
0
        memcpy(tmp_storage, a->session_id, a->session_id_length);
2980
0
        session_id = tmp_storage;
2981
0
    }
2982
2983
0
    l = (unsigned long)
2984
0
        ((unsigned long)session_id[0]) |
2985
0
        ((unsigned long)session_id[1] << 8L) |
2986
0
        ((unsigned long)session_id[2] << 16L) |
2987
0
        ((unsigned long)session_id[3] << 24L);
2988
0
    return l;
2989
0
}
2990
2991
/*
2992
 * NB: If this function (or indeed the hash function which uses a sort of
2993
 * coarser function than this one) is changed, ensure
2994
 * SSL_CTX_has_matching_session_id() is checked accordingly. It relies on
2995
 * being able to construct an SSL_SESSION that will collide with any existing
2996
 * session with a matching session ID.
2997
 */
2998
static int ssl_session_cmp(const SSL_SESSION *a, const SSL_SESSION *b)
2999
0
{
3000
0
    if (a->ssl_version != b->ssl_version)
3001
0
        return 1;
3002
0
    if (a->session_id_length != b->session_id_length)
3003
0
        return 1;
3004
0
    return memcmp(a->session_id, b->session_id, a->session_id_length);
3005
0
}
3006
3007
/*
3008
 * These wrapper functions should remain rather than redeclaring
3009
 * SSL_SESSION_hash and SSL_SESSION_cmp for void* types and casting each
3010
 * variable. The reason is that the functions aren't static, they're exposed
3011
 * via ssl.h.
3012
 */
3013
3014
SSL_CTX *SSL_CTX_new(const SSL_METHOD *meth)
3015
0
{
3016
0
    SSL_CTX *ret = NULL;
3017
3018
0
    if (meth == NULL) {
3019
0
        SSLerr(SSL_F_SSL_CTX_NEW, SSL_R_NULL_SSL_METHOD_PASSED);
3020
0
        return NULL;
3021
0
    }
3022
3023
0
    if (!OPENSSL_init_ssl(OPENSSL_INIT_LOAD_SSL_STRINGS, NULL))
3024
0
        return NULL;
3025
3026
0
    if (SSL_get_ex_data_X509_STORE_CTX_idx() < 0) {
3027
0
        SSLerr(SSL_F_SSL_CTX_NEW, SSL_R_X509_VERIFICATION_SETUP_PROBLEMS);
3028
0
        goto err;
3029
0
    }
3030
0
    ret = OPENSSL_zalloc(sizeof(*ret));
3031
0
    if (ret == NULL)
3032
0
        goto err;
3033
3034
0
    ret->method = meth;
3035
0
    ret->min_proto_version = 0;
3036
0
    ret->max_proto_version = 0;
3037
0
    ret->mode = SSL_MODE_AUTO_RETRY;
3038
0
    ret->session_cache_mode = SSL_SESS_CACHE_SERVER;
3039
0
    ret->session_cache_size = SSL_SESSION_CACHE_MAX_SIZE_DEFAULT;
3040
    /* We take the system default. */
3041
0
    ret->session_timeout = meth->get_timeout();
3042
0
    ret->references = 1;
3043
0
    ret->lock = CRYPTO_THREAD_lock_new();
3044
0
    if (ret->lock == NULL) {
3045
0
        SSLerr(SSL_F_SSL_CTX_NEW, ERR_R_MALLOC_FAILURE);
3046
0
        OPENSSL_free(ret);
3047
0
        return NULL;
3048
0
    }
3049
0
    ret->max_cert_list = SSL_MAX_CERT_LIST_DEFAULT;
3050
0
    ret->verify_mode = SSL_VERIFY_NONE;
3051
0
    if ((ret->cert = ssl_cert_new()) == NULL)
3052
0
        goto err;
3053
3054
0
    ret->sessions = lh_SSL_SESSION_new(ssl_session_hash, ssl_session_cmp);
3055
0
    if (ret->sessions == NULL)
3056
0
        goto err;
3057
0
    ret->cert_store = X509_STORE_new();
3058
0
    if (ret->cert_store == NULL)
3059
0
        goto err;
3060
0
#ifndef OPENSSL_NO_CT
3061
0
    ret->ctlog_store = CTLOG_STORE_new();
3062
0
    if (ret->ctlog_store == NULL)
3063
0
        goto err;
3064
0
#endif
3065
3066
0
    if (!SSL_CTX_set_ciphersuites(ret, TLS_DEFAULT_CIPHERSUITES))
3067
0
        goto err;
3068
3069
0
    if (!ssl_create_cipher_list(ret->method,
3070
0
                                ret->tls13_ciphersuites,
3071
0
                                &ret->cipher_list, &ret->cipher_list_by_id,
3072
0
                                SSL_DEFAULT_CIPHER_LIST, ret->cert)
3073
0
        || sk_SSL_CIPHER_num(ret->cipher_list) <= 0) {
3074
0
        SSLerr(SSL_F_SSL_CTX_NEW, SSL_R_LIBRARY_HAS_NO_CIPHERS);
3075
0
        goto err2;
3076
0
    }
3077
3078
0
    ret->param = X509_VERIFY_PARAM_new();
3079
0
    if (ret->param == NULL)
3080
0
        goto err;
3081
3082
0
    if ((ret->md5 = EVP_get_digestbyname("ssl3-md5")) == NULL) {
3083
0
        SSLerr(SSL_F_SSL_CTX_NEW, SSL_R_UNABLE_TO_LOAD_SSL3_MD5_ROUTINES);
3084
0
        goto err2;
3085
0
    }
3086
0
    if ((ret->sha1 = EVP_get_digestbyname("ssl3-sha1")) == NULL) {
3087
0
        SSLerr(SSL_F_SSL_CTX_NEW, SSL_R_UNABLE_TO_LOAD_SSL3_SHA1_ROUTINES);
3088
0
        goto err2;
3089
0
    }
3090
3091
0
    if ((ret->ca_names = sk_X509_NAME_new_null()) == NULL)
3092
0
        goto err;
3093
3094
0
    if ((ret->client_ca_names = sk_X509_NAME_new_null()) == NULL)
3095
0
        goto err;
3096
3097
0
    if (!CRYPTO_new_ex_data(CRYPTO_EX_INDEX_SSL_CTX, ret, &ret->ex_data))
3098
0
        goto err;
3099
3100
0
    if ((ret->ext.secure = OPENSSL_secure_zalloc(sizeof(*ret->ext.secure))) == NULL)
3101
0
        goto err;
3102
3103
    /* No compression for DTLS */
3104
0
    if (!(meth->ssl3_enc->enc_flags & SSL_ENC_FLAG_DTLS))
3105
0
        ret->comp_methods = SSL_COMP_get_compression_methods();
3106
3107
0
    ret->max_send_fragment = SSL3_RT_MAX_PLAIN_LENGTH;
3108
0
    ret->split_send_fragment = SSL3_RT_MAX_PLAIN_LENGTH;
3109
3110
    /* Setup RFC5077 ticket keys */
3111
0
    if ((RAND_bytes(ret->ext.tick_key_name,
3112
0
                    sizeof(ret->ext.tick_key_name)) <= 0)
3113
0
        || (RAND_priv_bytes(ret->ext.secure->tick_hmac_key,
3114
0
                       sizeof(ret->ext.secure->tick_hmac_key)) <= 0)
3115
0
        || (RAND_priv_bytes(ret->ext.secure->tick_aes_key,
3116
0
                       sizeof(ret->ext.secure->tick_aes_key)) <= 0))
3117
0
        ret->options |= SSL_OP_NO_TICKET;
3118
3119
0
    if (RAND_priv_bytes(ret->ext.cookie_hmac_key,
3120
0
                   sizeof(ret->ext.cookie_hmac_key)) <= 0)
3121
0
        goto err;
3122
3123
0
#ifndef OPENSSL_NO_SRP
3124
0
    if (!SSL_CTX_SRP_CTX_init(ret))
3125
0
        goto err;
3126
0
#endif
3127
0
#ifndef OPENSSL_NO_ENGINE
3128
# ifdef OPENSSL_SSL_CLIENT_ENGINE_AUTO
3129
#  define eng_strx(x)     #x
3130
#  define eng_str(x)      eng_strx(x)
3131
    /* Use specific client engine automatically... ignore errors */
3132
    {
3133
        ENGINE *eng;
3134
        eng = ENGINE_by_id(eng_str(OPENSSL_SSL_CLIENT_ENGINE_AUTO));
3135
        if (!eng) {
3136
            ERR_clear_error();
3137
            ENGINE_load_builtin_engines();
3138
            eng = ENGINE_by_id(eng_str(OPENSSL_SSL_CLIENT_ENGINE_AUTO));
3139
        }
3140
        if (!eng || !SSL_CTX_set_client_cert_engine(ret, eng))
3141
            ERR_clear_error();
3142
    }
3143
# endif
3144
0
#endif
3145
    /*
3146
     * Default is to connect to non-RI servers. When RI is more widely
3147
     * deployed might change this.
3148
     */
3149
0
    ret->options |= SSL_OP_LEGACY_SERVER_CONNECT;
3150
    /*
3151
     * Disable compression by default to prevent CRIME. Applications can
3152
     * re-enable compression by configuring
3153
     * SSL_CTX_clear_options(ctx, SSL_OP_NO_COMPRESSION);
3154
     * or by using the SSL_CONF library. Similarly we also enable TLSv1.3
3155
     * middlebox compatibility by default. This may be disabled by default in
3156
     * a later OpenSSL version.
3157
     */
3158
0
    ret->options |= SSL_OP_NO_COMPRESSION | SSL_OP_ENABLE_MIDDLEBOX_COMPAT;
3159
3160
0
    ret->ext.status_type = TLSEXT_STATUSTYPE_nothing;
3161
3162
    /*
3163
     * We cannot usefully set a default max_early_data here (which gets
3164
     * propagated in SSL_new(), for the following reason: setting the
3165
     * SSL field causes tls_construct_stoc_early_data() to tell the
3166
     * client that early data will be accepted when constructing a TLS 1.3
3167
     * session ticket, and the client will accordingly send us early data
3168
     * when using that ticket (if the client has early data to send).
3169
     * However, in order for the early data to actually be consumed by
3170
     * the application, the application must also have calls to
3171
     * SSL_read_early_data(); otherwise we'll just skip past the early data
3172
     * and ignore it.  So, since the application must add calls to
3173
     * SSL_read_early_data(), we also require them to add
3174
     * calls to SSL_CTX_set_max_early_data() in order to use early data,
3175
     * eliminating the bandwidth-wasting early data in the case described
3176
     * above.
3177
     */
3178
0
    ret->max_early_data = 0;
3179
3180
    /*
3181
     * Default recv_max_early_data is a fully loaded single record. Could be
3182
     * split across multiple records in practice. We set this differently to
3183
     * max_early_data so that, in the default case, we do not advertise any
3184
     * support for early_data, but if a client were to send us some (e.g.
3185
     * because of an old, stale ticket) then we will tolerate it and skip over
3186
     * it.
3187
     */
3188
0
    ret->recv_max_early_data = SSL3_RT_MAX_PLAIN_LENGTH;
3189
3190
    /* By default we send two session tickets automatically in TLSv1.3 */
3191
0
    ret->num_tickets = 2;
3192
3193
0
    ssl_ctx_system_config(ret);
3194
3195
0
    return ret;
3196
0
 err:
3197
0
    SSLerr(SSL_F_SSL_CTX_NEW, ERR_R_MALLOC_FAILURE);
3198
0
 err2:
3199
0
    SSL_CTX_free(ret);
3200
0
    return NULL;
3201
0
}
3202
3203
int SSL_CTX_up_ref(SSL_CTX *ctx)
3204
0
{
3205
0
    int i;
3206
3207
0
    if (CRYPTO_UP_REF(&ctx->references, &i, ctx->lock) <= 0)
3208
0
        return 0;
3209
3210
0
    REF_PRINT_COUNT("SSL_CTX", ctx);
3211
0
    REF_ASSERT_ISNT(i < 2);
3212
0
    return ((i > 1) ? 1 : 0);
3213
0
}
3214
3215
void SSL_CTX_free(SSL_CTX *a)
3216
0
{
3217
0
    int i;
3218
3219
0
    if (a == NULL)
3220
0
        return;
3221
3222
0
    CRYPTO_DOWN_REF(&a->references, &i, a->lock);
3223
0
    REF_PRINT_COUNT("SSL_CTX", a);
3224
0
    if (i > 0)
3225
0
        return;
3226
0
    REF_ASSERT_ISNT(i < 0);
3227
3228
0
    X509_VERIFY_PARAM_free(a->param);
3229
0
    dane_ctx_final(&a->dane);
3230
3231
    /*
3232
     * Free internal session cache. However: the remove_cb() may reference
3233
     * the ex_data of SSL_CTX, thus the ex_data store can only be removed
3234
     * after the sessions were flushed.
3235
     * As the ex_data handling routines might also touch the session cache,
3236
     * the most secure solution seems to be: empty (flush) the cache, then
3237
     * free ex_data, then finally free the cache.
3238
     * (See ticket [openssl.org #212].)
3239
     */
3240
0
    if (a->sessions != NULL)
3241
0
        SSL_CTX_flush_sessions(a, 0);
3242
3243
0
    CRYPTO_free_ex_data(CRYPTO_EX_INDEX_SSL_CTX, a, &a->ex_data);
3244
0
    lh_SSL_SESSION_free(a->sessions);
3245
0
    X509_STORE_free(a->cert_store);
3246
0
#ifndef OPENSSL_NO_CT
3247
0
    CTLOG_STORE_free(a->ctlog_store);
3248
0
#endif
3249
0
    sk_SSL_CIPHER_free(a->cipher_list);
3250
0
    sk_SSL_CIPHER_free(a->cipher_list_by_id);
3251
0
    sk_SSL_CIPHER_free(a->tls13_ciphersuites);
3252
0
    ssl_cert_free(a->cert);
3253
0
    sk_X509_NAME_pop_free(a->ca_names, X509_NAME_free);
3254
0
    sk_X509_NAME_pop_free(a->client_ca_names, X509_NAME_free);
3255
0
    sk_X509_pop_free(a->extra_certs, X509_free);
3256
0
    a->comp_methods = NULL;
3257
0
#ifndef OPENSSL_NO_SRTP
3258
0
    sk_SRTP_PROTECTION_PROFILE_free(a->srtp_profiles);
3259
0
#endif
3260
0
#ifndef OPENSSL_NO_SRP
3261
0
    SSL_CTX_SRP_CTX_free(a);
3262
0
#endif
3263
0
#ifndef OPENSSL_NO_ENGINE
3264
0
    ENGINE_finish(a->client_cert_engine);
3265
0
#endif
3266
3267
0
#ifndef OPENSSL_NO_EC
3268
0
    OPENSSL_free(a->ext.ecpointformats);
3269
0
    OPENSSL_free(a->ext.supportedgroups);
3270
0
#endif
3271
0
    OPENSSL_free(a->ext.alpn);
3272
0
    OPENSSL_secure_free(a->ext.secure);
3273
3274
0
    CRYPTO_THREAD_lock_free(a->lock);
3275
3276
0
    OPENSSL_free(a);
3277
0
}
3278
3279
void SSL_CTX_set_default_passwd_cb(SSL_CTX *ctx, pem_password_cb *cb)
3280
0
{
3281
0
    ctx->default_passwd_callback = cb;
3282
0
}
3283
3284
void SSL_CTX_set_default_passwd_cb_userdata(SSL_CTX *ctx, void *u)
3285
0
{
3286
0
    ctx->default_passwd_callback_userdata = u;
3287
0
}
3288
3289
pem_password_cb *SSL_CTX_get_default_passwd_cb(SSL_CTX *ctx)
3290
0
{
3291
0
    return ctx->default_passwd_callback;
3292
0
}
3293
3294
void *SSL_CTX_get_default_passwd_cb_userdata(SSL_CTX *ctx)
3295
0
{
3296
0
    return ctx->default_passwd_callback_userdata;
3297
0
}
3298
3299
void SSL_set_default_passwd_cb(SSL *s, pem_password_cb *cb)
3300
0
{
3301
0
    s->default_passwd_callback = cb;
3302
0
}
3303
3304
void SSL_set_default_passwd_cb_userdata(SSL *s, void *u)
3305
0
{
3306
0
    s->default_passwd_callback_userdata = u;
3307
0
}
3308
3309
pem_password_cb *SSL_get_default_passwd_cb(SSL *s)
3310
0
{
3311
0
    return s->default_passwd_callback;
3312
0
}
3313
3314
void *SSL_get_default_passwd_cb_userdata(SSL *s)
3315
0
{
3316
0
    return s->default_passwd_callback_userdata;
3317
0
}
3318
3319
void SSL_CTX_set_cert_verify_callback(SSL_CTX *ctx,
3320
                                      int (*cb) (X509_STORE_CTX *, void *),
3321
                                      void *arg)
3322
0
{
3323
0
    ctx->app_verify_callback = cb;
3324
0
    ctx->app_verify_arg = arg;
3325
0
}
3326
3327
void SSL_CTX_set_verify(SSL_CTX *ctx, int mode,
3328
                        int (*cb) (int, X509_STORE_CTX *))
3329
0
{
3330
0
    ctx->verify_mode = mode;
3331
0
    ctx->default_verify_callback = cb;
3332
0
}
3333
3334
void SSL_CTX_set_verify_depth(SSL_CTX *ctx, int depth)
3335
0
{
3336
0
    X509_VERIFY_PARAM_set_depth(ctx->param, depth);
3337
0
}
3338
3339
void SSL_CTX_set_cert_cb(SSL_CTX *c, int (*cb) (SSL *ssl, void *arg), void *arg)
3340
0
{
3341
0
    ssl_cert_set_cert_cb(c->cert, cb, arg);
3342
0
}
3343
3344
void SSL_set_cert_cb(SSL *s, int (*cb) (SSL *ssl, void *arg), void *arg)
3345
0
{
3346
0
    ssl_cert_set_cert_cb(s->cert, cb, arg);
3347
0
}
3348
3349
void ssl_set_masks(SSL *s)
3350
0
{
3351
0
    CERT *c = s->cert;
3352
0
    uint32_t *pvalid = s->s3->tmp.valid_flags;
3353
0
    int rsa_enc, rsa_sign, dh_tmp, dsa_sign;
3354
0
    unsigned long mask_k, mask_a;
3355
0
#ifndef OPENSSL_NO_EC
3356
0
    int have_ecc_cert, ecdsa_ok;
3357
0
#endif
3358
0
    if (c == NULL)
3359
0
        return;
3360
3361
0
#ifndef OPENSSL_NO_DH
3362
0
    dh_tmp = (c->dh_tmp != NULL || c->dh_tmp_cb != NULL || c->dh_tmp_auto);
3363
#else
3364
    dh_tmp = 0;
3365
#endif
3366
3367
0
    rsa_enc = pvalid[SSL_PKEY_RSA] & CERT_PKEY_VALID;
3368
0
    rsa_sign = pvalid[SSL_PKEY_RSA] & CERT_PKEY_VALID;
3369
0
    dsa_sign = pvalid[SSL_PKEY_DSA_SIGN] & CERT_PKEY_VALID;
3370
0
#ifndef OPENSSL_NO_EC
3371
0
    have_ecc_cert = pvalid[SSL_PKEY_ECC] & CERT_PKEY_VALID;
3372
0
#endif
3373
0
    mask_k = 0;
3374
0
    mask_a = 0;
3375
3376
#ifdef CIPHER_DEBUG
3377
    fprintf(stderr, "dht=%d re=%d rs=%d ds=%d\n",
3378
            dh_tmp, rsa_enc, rsa_sign, dsa_sign);
3379
#endif
3380
3381
0
#ifndef OPENSSL_NO_GOST
3382
0
    if (ssl_has_cert(s, SSL_PKEY_GOST12_512)) {
3383
0
        mask_k |= SSL_kGOST;
3384
0
        mask_a |= SSL_aGOST12;
3385
0
    }
3386
0
    if (ssl_has_cert(s, SSL_PKEY_GOST12_256)) {
3387
0
        mask_k |= SSL_kGOST;
3388
0
        mask_a |= SSL_aGOST12;
3389
0
    }
3390
0
    if (ssl_has_cert(s, SSL_PKEY_GOST01)) {
3391
0
        mask_k |= SSL_kGOST;
3392
0
        mask_a |= SSL_aGOST01;
3393
0
    }
3394
0
#endif
3395
3396
0
    if (rsa_enc)
3397
0
        mask_k |= SSL_kRSA;
3398
3399
0
    if (dh_tmp)
3400
0
        mask_k |= SSL_kDHE;
3401
3402
    /*
3403
     * If we only have an RSA-PSS certificate allow RSA authentication
3404
     * if TLS 1.2 and peer supports it.
3405
     */
3406
3407
0
    if (rsa_enc || rsa_sign || (ssl_has_cert(s, SSL_PKEY_RSA_PSS_SIGN)
3408
0
                && pvalid[SSL_PKEY_RSA_PSS_SIGN] & CERT_PKEY_EXPLICIT_SIGN
3409
0
                && TLS1_get_version(s) == TLS1_2_VERSION))
3410
0
        mask_a |= SSL_aRSA;
3411
3412
0
    if (dsa_sign) {
3413
0
        mask_a |= SSL_aDSS;
3414
0
    }
3415
3416
0
    mask_a |= SSL_aNULL;
3417
3418
    /*
3419
     * An ECC certificate may be usable for ECDH and/or ECDSA cipher suites
3420
     * depending on the key usage extension.
3421
     */
3422
0
#ifndef OPENSSL_NO_EC
3423
0
    if (have_ecc_cert) {
3424
0
        uint32_t ex_kusage;
3425
0
        ex_kusage = X509_get_key_usage(c->pkeys[SSL_PKEY_ECC].x509);
3426
0
        ecdsa_ok = ex_kusage & X509v3_KU_DIGITAL_SIGNATURE;
3427
0
        if (!(pvalid[SSL_PKEY_ECC] & CERT_PKEY_SIGN))
3428
0
            ecdsa_ok = 0;
3429
0
        if (ecdsa_ok)
3430
0
            mask_a |= SSL_aECDSA;
3431
0
    }
3432
    /* Allow Ed25519 for TLS 1.2 if peer supports it */
3433
0
    if (!(mask_a & SSL_aECDSA) && ssl_has_cert(s, SSL_PKEY_ED25519)
3434
0
            && pvalid[SSL_PKEY_ED25519] & CERT_PKEY_EXPLICIT_SIGN
3435
0
            && TLS1_get_version(s) == TLS1_2_VERSION)
3436
0
            mask_a |= SSL_aECDSA;
3437
3438
    /* Allow Ed448 for TLS 1.2 if peer supports it */
3439
0
    if (!(mask_a & SSL_aECDSA) && ssl_has_cert(s, SSL_PKEY_ED448)
3440
0
            && pvalid[SSL_PKEY_ED448] & CERT_PKEY_EXPLICIT_SIGN
3441
0
            && TLS1_get_version(s) == TLS1_2_VERSION)
3442
0
            mask_a |= SSL_aECDSA;
3443
0
#endif
3444
3445
0
#ifndef OPENSSL_NO_EC
3446
0
    mask_k |= SSL_kECDHE;
3447
0
#endif
3448
3449
0
#ifndef OPENSSL_NO_PSK
3450
0
    mask_k |= SSL_kPSK;
3451
0
    mask_a |= SSL_aPSK;
3452
0
    if (mask_k & SSL_kRSA)
3453
0
        mask_k |= SSL_kRSAPSK;
3454
0
    if (mask_k & SSL_kDHE)
3455
0
        mask_k |= SSL_kDHEPSK;
3456
0
    if (mask_k & SSL_kECDHE)
3457
0
        mask_k |= SSL_kECDHEPSK;
3458
0
#endif
3459
3460
0
    s->s3->tmp.mask_k = mask_k;
3461
0
    s->s3->tmp.mask_a = mask_a;
3462
0
}
3463
3464
#ifndef OPENSSL_NO_EC
3465
3466
int ssl_check_srvr_ecc_cert_and_alg(X509 *x, SSL *s)
3467
0
{
3468
0
    if (s->s3->tmp.new_cipher->algorithm_auth & SSL_aECDSA) {
3469
        /* key usage, if present, must allow signing */
3470
0
        if (!(X509_get_key_usage(x) & X509v3_KU_DIGITAL_SIGNATURE)) {
3471
0
            SSLerr(SSL_F_SSL_CHECK_SRVR_ECC_CERT_AND_ALG,
3472
0
                   SSL_R_ECC_CERT_NOT_FOR_SIGNING);
3473
0
            return 0;
3474
0
        }
3475
0
    }
3476
0
    return 1;                   /* all checks are ok */
3477
0
}
3478
3479
#endif
3480
3481
int ssl_get_server_cert_serverinfo(SSL *s, const unsigned char **serverinfo,
3482
                                   size_t *serverinfo_length)
3483
0
{
3484
0
    CERT_PKEY *cpk = s->s3->tmp.cert;
3485
0
    *serverinfo_length = 0;
3486
3487
0
    if (cpk == NULL || cpk->serverinfo == NULL)
3488
0
        return 0;
3489
3490
0
    *serverinfo = cpk->serverinfo;
3491
0
    *serverinfo_length = cpk->serverinfo_length;
3492
0
    return 1;
3493
0
}
3494
3495
void ssl_update_cache(SSL *s, int mode)
3496
0
{
3497
0
    int i;
3498
3499
    /*
3500
     * If the session_id_length is 0, we are not supposed to cache it, and it
3501
     * would be rather hard to do anyway :-)
3502
     */
3503
0
    if (s->session->session_id_length == 0)
3504
0
        return;
3505
3506
    /*
3507
     * If sid_ctx_length is 0 there is no specific application context
3508
     * associated with this session, so when we try to resume it and
3509
     * SSL_VERIFY_PEER is requested to verify the client identity, we have no
3510
     * indication that this is actually a session for the proper application
3511
     * context, and the *handshake* will fail, not just the resumption attempt.
3512
     * Do not cache (on the server) these sessions that are not resumable
3513
     * (clients can set SSL_VERIFY_PEER without needing a sid_ctx set).
3514
     */
3515
0
    if (s->server && s->session->sid_ctx_length == 0
3516
0
            && (s->verify_mode & SSL_VERIFY_PEER) != 0)
3517
0
        return;
3518
3519
0
    i = s->session_ctx->session_cache_mode;
3520
0
    if ((i & mode) != 0
3521
0
        && (!s->hit || SSL_IS_TLS13(s))) {
3522
        /*
3523
         * Add the session to the internal cache. In server side TLSv1.3 we
3524
         * normally don't do this because by default it's a full stateless ticket
3525
         * with only a dummy session id so there is no reason to cache it,
3526
         * unless:
3527
         * - we are doing early_data, in which case we cache so that we can
3528
         *   detect replays
3529
         * - the application has set a remove_session_cb so needs to know about
3530
         *   session timeout events
3531
         * - SSL_OP_NO_TICKET is set in which case it is a stateful ticket
3532
         */
3533
0
        if ((i & SSL_SESS_CACHE_NO_INTERNAL_STORE) == 0
3534
0
                && (!SSL_IS_TLS13(s)
3535
0
                    || !s->server
3536
0
                    || (s->max_early_data > 0
3537
0
                        && (s->options & SSL_OP_NO_ANTI_REPLAY) == 0)
3538
0
                    || s->session_ctx->remove_session_cb != NULL
3539
0
                    || (s->options & SSL_OP_NO_TICKET) != 0))
3540
0
            SSL_CTX_add_session(s->session_ctx, s->session);
3541
3542
        /*
3543
         * Add the session to the external cache. We do this even in server side
3544
         * TLSv1.3 without early data because some applications just want to
3545
         * know about the creation of a session and aren't doing a full cache.
3546
         */
3547
0
        if (s->session_ctx->new_session_cb != NULL) {
3548
0
            SSL_SESSION_up_ref(s->session);
3549
0
            if (!s->session_ctx->new_session_cb(s, s->session))
3550
0
                SSL_SESSION_free(s->session);
3551
0
        }
3552
0
    }
3553
3554
    /* auto flush every 255 connections */
3555
0
    if ((!(i & SSL_SESS_CACHE_NO_AUTO_CLEAR)) && ((i & mode) == mode)) {
3556
0
        TSAN_QUALIFIER int *stat;
3557
0
        if (mode & SSL_SESS_CACHE_CLIENT)
3558
0
            stat = &s->session_ctx->stats.sess_connect_good;
3559
0
        else
3560
0
            stat = &s->session_ctx->stats.sess_accept_good;
3561
0
        if ((tsan_load(stat) & 0xff) == 0xff)
3562
0
            SSL_CTX_flush_sessions(s->session_ctx, (unsigned long)time(NULL));
3563
0
    }
3564
0
}
3565
3566
const SSL_METHOD *SSL_CTX_get_ssl_method(const SSL_CTX *ctx)
3567
0
{
3568
0
    return ctx->method;
3569
0
}
3570
3571
const SSL_METHOD *SSL_get_ssl_method(const SSL *s)
3572
0
{
3573
0
    return s->method;
3574
0
}
3575
3576
int SSL_set_ssl_method(SSL *s, const SSL_METHOD *meth)
3577
0
{
3578
0
    int ret = 1;
3579
3580
0
    if (s->method != meth) {
3581
0
        const SSL_METHOD *sm = s->method;
3582
0
        int (*hf) (SSL *) = s->handshake_func;
3583
3584
0
        if (sm->version == meth->version)
3585
0
            s->method = meth;
3586
0
        else {
3587
0
            sm->ssl_free(s);
3588
0
            s->method = meth;
3589
0
            ret = s->method->ssl_new(s);
3590
0
        }
3591
3592
0
        if (hf == sm->ssl_connect)
3593
0
            s->handshake_func = meth->ssl_connect;
3594
0
        else if (hf == sm->ssl_accept)
3595
0
            s->handshake_func = meth->ssl_accept;
3596
0
    }
3597
0
    return ret;
3598
0
}
3599
3600
int SSL_get_error(const SSL *s, int i)
3601
0
{
3602
0
    int reason;
3603
0
    unsigned long l;
3604
0
    BIO *bio;
3605
3606
0
    if (i > 0)
3607
0
        return SSL_ERROR_NONE;
3608
3609
    /*
3610
     * Make things return SSL_ERROR_SYSCALL when doing SSL_do_handshake etc,
3611
     * where we do encode the error
3612
     */
3613
0
    if ((l = ERR_peek_error()) != 0) {
3614
0
        if (ERR_GET_LIB(l) == ERR_LIB_SYS)
3615
0
            return SSL_ERROR_SYSCALL;
3616
0
        else
3617
0
            return SSL_ERROR_SSL;
3618
0
    }
3619
3620
0
    if (SSL_want_read(s)) {
3621
0
        bio = SSL_get_rbio(s);
3622
0
        if (BIO_should_read(bio))
3623
0
            return SSL_ERROR_WANT_READ;
3624
0
        else if (BIO_should_write(bio))
3625
            /*
3626
             * This one doesn't make too much sense ... We never try to write
3627
             * to the rbio, and an application program where rbio and wbio
3628
             * are separate couldn't even know what it should wait for.
3629
             * However if we ever set s->rwstate incorrectly (so that we have
3630
             * SSL_want_read(s) instead of SSL_want_write(s)) and rbio and
3631
             * wbio *are* the same, this test works around that bug; so it
3632
             * might be safer to keep it.
3633
             */
3634
0
            return SSL_ERROR_WANT_WRITE;
3635
0
        else if (BIO_should_io_special(bio)) {
3636
0
            reason = BIO_get_retry_reason(bio);
3637
0
            if (reason == BIO_RR_CONNECT)
3638
0
                return SSL_ERROR_WANT_CONNECT;
3639
0
            else if (reason == BIO_RR_ACCEPT)
3640
0
                return SSL_ERROR_WANT_ACCEPT;
3641
0
            else
3642
0
                return SSL_ERROR_SYSCALL; /* unknown */
3643
0
        }
3644
0
    }
3645
3646
0
    if (SSL_want_write(s)) {
3647
        /* Access wbio directly - in order to use the buffered bio if present */
3648
0
        bio = s->wbio;
3649
0
        if (BIO_should_write(bio))
3650
0
            return SSL_ERROR_WANT_WRITE;
3651
0
        else if (BIO_should_read(bio))
3652
            /*
3653
             * See above (SSL_want_read(s) with BIO_should_write(bio))
3654
             */
3655
0
            return SSL_ERROR_WANT_READ;
3656
0
        else if (BIO_should_io_special(bio)) {
3657
0
            reason = BIO_get_retry_reason(bio);
3658
0
            if (reason == BIO_RR_CONNECT)
3659
0
                return SSL_ERROR_WANT_CONNECT;
3660
0
            else if (reason == BIO_RR_ACCEPT)
3661
0
                return SSL_ERROR_WANT_ACCEPT;
3662
0
            else
3663
0
                return SSL_ERROR_SYSCALL;
3664
0
        }
3665
0
    }
3666
0
    if (SSL_want_x509_lookup(s))
3667
0
        return SSL_ERROR_WANT_X509_LOOKUP;
3668
0
    if (SSL_want_async(s))
3669
0
        return SSL_ERROR_WANT_ASYNC;
3670
0
    if (SSL_want_async_job(s))
3671
0
        return SSL_ERROR_WANT_ASYNC_JOB;
3672
0
    if (SSL_want_client_hello_cb(s))
3673
0
        return SSL_ERROR_WANT_CLIENT_HELLO_CB;
3674
3675
0
    if ((s->shutdown & SSL_RECEIVED_SHUTDOWN) &&
3676
0
        (s->s3->warn_alert == SSL_AD_CLOSE_NOTIFY))
3677
0
        return SSL_ERROR_ZERO_RETURN;
3678
3679
0
    return SSL_ERROR_SYSCALL;
3680
0
}
3681
3682
static int ssl_do_handshake_intern(void *vargs)
3683
0
{
3684
0
    struct ssl_async_args *args;
3685
0
    SSL *s;
3686
3687
0
    args = (struct ssl_async_args *)vargs;
3688
0
    s = args->s;
3689
3690
0
    return s->handshake_func(s);
3691
0
}
3692
3693
int SSL_do_handshake(SSL *s)
3694
0
{
3695
0
    int ret = 1;
3696
3697
0
    if (s->handshake_func == NULL) {
3698
0
        SSLerr(SSL_F_SSL_DO_HANDSHAKE, SSL_R_CONNECTION_TYPE_NOT_SET);
3699
0
        return -1;
3700
0
    }
3701
3702
0
    ossl_statem_check_finish_init(s, -1);
3703
3704
0
    s->method->ssl_renegotiate_check(s, 0);
3705
3706
0
    if (SSL_in_init(s) || SSL_in_before(s)) {
3707
0
        if ((s->mode & SSL_MODE_ASYNC) && ASYNC_get_current_job() == NULL) {
3708
0
            struct ssl_async_args args;
3709
3710
0
            args.s = s;
3711
3712
0
            ret = ssl_start_async_job(s, &args, ssl_do_handshake_intern);
3713
0
        } else {
3714
0
            ret = s->handshake_func(s);
3715
0
        }
3716
0
    }
3717
0
    return ret;
3718
0
}
3719
3720
void SSL_set_accept_state(SSL *s)
3721
0
{
3722
0
    s->server = 1;
3723
0
    s->shutdown = 0;
3724
0
    ossl_statem_clear(s);
3725
0
    s->handshake_func = s->method->ssl_accept;
3726
0
    clear_ciphers(s);
3727
0
}
3728
3729
void SSL_set_connect_state(SSL *s)
3730
0
{
3731
0
    s->server = 0;
3732
0
    s->shutdown = 0;
3733
0
    ossl_statem_clear(s);
3734
0
    s->handshake_func = s->method->ssl_connect;
3735
0
    clear_ciphers(s);
3736
0
}
3737
3738
int ssl_undefined_function(SSL *s)
3739
0
{
3740
0
    SSLerr(SSL_F_SSL_UNDEFINED_FUNCTION, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
3741
0
    return 0;
3742
0
}
3743
3744
int ssl_undefined_void_function(void)
3745
0
{
3746
0
    SSLerr(SSL_F_SSL_UNDEFINED_VOID_FUNCTION,
3747
0
           ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
3748
0
    return 0;
3749
0
}
3750
3751
int ssl_undefined_const_function(const SSL *s)
3752
0
{
3753
0
    return 0;
3754
0
}
3755
3756
const SSL_METHOD *ssl_bad_method(int ver)
3757
0
{
3758
0
    SSLerr(SSL_F_SSL_BAD_METHOD, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
3759
0
    return NULL;
3760
0
}
3761
3762
const char *ssl_protocol_to_string(int version)
3763
0
{
3764
0
    switch(version)
3765
0
    {
3766
0
    case TLS1_3_VERSION:
3767
0
        return "TLSv1.3";
3768
3769
0
    case TLS1_2_VERSION:
3770
0
        return "TLSv1.2";
3771
3772
0
    case TLS1_1_VERSION:
3773
0
        return "TLSv1.1";
3774
3775
0
    case TLS1_VERSION:
3776
0
        return "TLSv1";
3777
3778
0
    case SSL3_VERSION:
3779
0
        return "SSLv3";
3780
3781
0
    case DTLS1_BAD_VER:
3782
0
        return "DTLSv0.9";
3783
3784
0
    case DTLS1_VERSION:
3785
0
        return "DTLSv1";
3786
3787
0
    case DTLS1_2_VERSION:
3788
0
        return "DTLSv1.2";
3789
3790
0
    default:
3791
0
        return "unknown";
3792
0
    }
3793
0
}
3794
3795
const char *SSL_get_version(const SSL *s)
3796
0
{
3797
0
    return ssl_protocol_to_string(s->version);
3798
0
}
3799
3800
static int dup_ca_names(STACK_OF(X509_NAME) **dst, STACK_OF(X509_NAME) *src)
3801
0
{
3802
0
    STACK_OF(X509_NAME) *sk;
3803
0
    X509_NAME *xn;
3804
0
    int i;
3805
3806
0
    if (src == NULL) {
3807
0
        *dst = NULL;
3808
0
        return 1;
3809
0
    }
3810
3811
0
    if ((sk = sk_X509_NAME_new_null()) == NULL)
3812
0
        return 0;
3813
0
    for (i = 0; i < sk_X509_NAME_num(src); i++) {
3814
0
        xn = X509_NAME_dup(sk_X509_NAME_value(src, i));
3815
0
        if (xn == NULL) {
3816
0
            sk_X509_NAME_pop_free(sk, X509_NAME_free);
3817
0
            return 0;
3818
0
        }
3819
0
        if (sk_X509_NAME_insert(sk, xn, i) == 0) {
3820
0
            X509_NAME_free(xn);
3821
0
            sk_X509_NAME_pop_free(sk, X509_NAME_free);
3822
0
            return 0;
3823
0
        }
3824
0
    }
3825
0
    *dst = sk;
3826
3827
0
    return 1;
3828
0
}
3829
3830
SSL *SSL_dup(SSL *s)
3831
0
{
3832
0
    SSL *ret;
3833
0
    int i;
3834
3835
    /* If we're not quiescent, just up_ref! */
3836
0
    if (!SSL_in_init(s) || !SSL_in_before(s)) {
3837
0
        CRYPTO_UP_REF(&s->references, &i, s->lock);
3838
0
        return s;
3839
0
    }
3840
3841
    /*
3842
     * Otherwise, copy configuration state, and session if set.
3843
     */
3844
0
    if ((ret = SSL_new(SSL_get_SSL_CTX(s))) == NULL)
3845
0
        return NULL;
3846
3847
0
    if (s->session != NULL) {
3848
        /*
3849
         * Arranges to share the same session via up_ref.  This "copies"
3850
         * session-id, SSL_METHOD, sid_ctx, and 'cert'
3851
         */
3852
0
        if (!SSL_copy_session_id(ret, s))
3853
0
            goto err;
3854
0
    } else {
3855
        /*
3856
         * No session has been established yet, so we have to expect that
3857
         * s->cert or ret->cert will be changed later -- they should not both
3858
         * point to the same object, and thus we can't use
3859
         * SSL_copy_session_id.
3860
         */
3861
0
        if (!SSL_set_ssl_method(ret, s->method))
3862
0
            goto err;
3863
3864
0
        if (s->cert != NULL) {
3865
0
            ssl_cert_free(ret->cert);
3866
0
            ret->cert = ssl_cert_dup(s->cert);
3867
0
            if (ret->cert == NULL)
3868
0
                goto err;
3869
0
        }
3870
3871
0
        if (!SSL_set_session_id_context(ret, s->sid_ctx,
3872
0
                                        (int)s->sid_ctx_length))
3873
0
            goto err;
3874
0
    }
3875
3876
0
    if (!ssl_dane_dup(ret, s))
3877
0
        goto err;
3878
0
    ret->version = s->version;
3879
0
    ret->options = s->options;
3880
0
    ret->min_proto_version = s->min_proto_version;
3881
0
    ret->max_proto_version = s->max_proto_version;
3882
0
    ret->mode = s->mode;
3883
0
    SSL_set_max_cert_list(ret, SSL_get_max_cert_list(s));
3884
0
    SSL_set_read_ahead(ret, SSL_get_read_ahead(s));
3885
0
    ret->msg_callback = s->msg_callback;
3886
0
    ret->msg_callback_arg = s->msg_callback_arg;
3887
0
    SSL_set_verify(ret, SSL_get_verify_mode(s), SSL_get_verify_callback(s));
3888
0
    SSL_set_verify_depth(ret, SSL_get_verify_depth(s));
3889
0
    ret->generate_session_id = s->generate_session_id;
3890
3891
0
    SSL_set_info_callback(ret, SSL_get_info_callback(s));
3892
3893
    /* copy app data, a little dangerous perhaps */
3894
0
    if (!CRYPTO_dup_ex_data(CRYPTO_EX_INDEX_SSL, &ret->ex_data, &s->ex_data))
3895
0
        goto err;
3896
3897
0
    ret->server = s->server;
3898
0
    if (s->handshake_func) {
3899
0
        if (s->server)
3900
0
            SSL_set_accept_state(ret);
3901
0
        else
3902
0
            SSL_set_connect_state(ret);
3903
0
    }
3904
0
    ret->shutdown = s->shutdown;
3905
0
    ret->hit = s->hit;
3906
3907
0
    ret->default_passwd_callback = s->default_passwd_callback;
3908
0
    ret->default_passwd_callback_userdata = s->default_passwd_callback_userdata;
3909
3910
0
    X509_VERIFY_PARAM_inherit(ret->param, s->param);
3911
3912
    /* dup the cipher_list and cipher_list_by_id stacks */
3913
0
    if (s->cipher_list != NULL) {
3914
0
        if ((ret->cipher_list = sk_SSL_CIPHER_dup(s->cipher_list)) == NULL)
3915
0
            goto err;
3916
0
    }
3917
0
    if (s->cipher_list_by_id != NULL)
3918
0
        if ((ret->cipher_list_by_id = sk_SSL_CIPHER_dup(s->cipher_list_by_id))
3919
0
            == NULL)
3920
0
            goto err;
3921
3922
    /* Dup the client_CA list */
3923
0
    if (!dup_ca_names(&ret->ca_names, s->ca_names)
3924
0
            || !dup_ca_names(&ret->client_ca_names, s->client_ca_names))
3925
0
        goto err;
3926
3927
0
    return ret;
3928
3929
0
 err:
3930
0
    SSL_free(ret);
3931
0
    return NULL;
3932
0
}
3933
3934
void ssl_clear_cipher_ctx(SSL *s)
3935
0
{
3936
0
    if (s->enc_read_ctx != NULL) {
3937
0
        EVP_CIPHER_CTX_free(s->enc_read_ctx);
3938
0
        s->enc_read_ctx = NULL;
3939
0
    }
3940
0
    if (s->enc_write_ctx != NULL) {
3941
0
        EVP_CIPHER_CTX_free(s->enc_write_ctx);
3942
0
        s->enc_write_ctx = NULL;
3943
0
    }
3944
#ifndef OPENSSL_NO_COMP
3945
    COMP_CTX_free(s->expand);
3946
    s->expand = NULL;
3947
    COMP_CTX_free(s->compress);
3948
    s->compress = NULL;
3949
#endif
3950
0
}
3951
3952
X509 *SSL_get_certificate(const SSL *s)
3953
0
{
3954
0
    if (s->cert != NULL)
3955
0
        return s->cert->key->x509;
3956
0
    else
3957
0
        return NULL;
3958
0
}
3959
3960
EVP_PKEY *SSL_get_privatekey(const SSL *s)
3961
0
{
3962
0
    if (s->cert != NULL)
3963
0
        return s->cert->key->privatekey;
3964
0
    else
3965
0
        return NULL;
3966
0
}
3967
3968
X509 *SSL_CTX_get0_certificate(const SSL_CTX *ctx)
3969
0
{
3970
0
    if (ctx->cert != NULL)
3971
0
        return ctx->cert->key->x509;
3972
0
    else
3973
0
        return NULL;
3974
0
}
3975
3976
EVP_PKEY *SSL_CTX_get0_privatekey(const SSL_CTX *ctx)
3977
0
{
3978
0
    if (ctx->cert != NULL)
3979
0
        return ctx->cert->key->privatekey;
3980
0
    else
3981
0
        return NULL;
3982
0
}
3983
3984
const SSL_CIPHER *SSL_get_current_cipher(const SSL *s)
3985
0
{
3986
0
    if ((s->session != NULL) && (s->session->cipher != NULL))
3987
0
        return s->session->cipher;
3988
0
    return NULL;
3989
0
}
3990
3991
const SSL_CIPHER *SSL_get_pending_cipher(const SSL *s)
3992
0
{
3993
0
    return s->s3->tmp.new_cipher;
3994
0
}
3995
3996
const COMP_METHOD *SSL_get_current_compression(const SSL *s)
3997
0
{
3998
#ifndef OPENSSL_NO_COMP
3999
    return s->compress ? COMP_CTX_get_method(s->compress) : NULL;
4000
#else
4001
0
    return NULL;
4002
0
#endif
4003
0
}
4004
4005
const COMP_METHOD *SSL_get_current_expansion(const SSL *s)
4006
0
{
4007
#ifndef OPENSSL_NO_COMP
4008
    return s->expand ? COMP_CTX_get_method(s->expand) : NULL;
4009
#else
4010
0
    return NULL;
4011
0
#endif
4012
0
}
4013
4014
int ssl_init_wbio_buffer(SSL *s)
4015
0
{
4016
0
    BIO *bbio;
4017
4018
0
    if (s->bbio != NULL) {
4019
        /* Already buffered. */
4020
0
        return 1;
4021
0
    }
4022
4023
0
    bbio = BIO_new(BIO_f_buffer());
4024
0
    if (bbio == NULL || !BIO_set_read_buffer_size(bbio, 1)) {
4025
0
        BIO_free(bbio);
4026
0
        SSLerr(SSL_F_SSL_INIT_WBIO_BUFFER, ERR_R_BUF_LIB);
4027
0
        return 0;
4028
0
    }
4029
0
    s->bbio = bbio;
4030
0
    s->wbio = BIO_push(bbio, s->wbio);
4031
4032
0
    return 1;
4033
0
}
4034
4035
int ssl_free_wbio_buffer(SSL *s)
4036
0
{
4037
    /* callers ensure s is never null */
4038
0
    if (s->bbio == NULL)
4039
0
        return 1;
4040
4041
0
    s->wbio = BIO_pop(s->wbio);
4042
0
    BIO_free(s->bbio);
4043
0
    s->bbio = NULL;
4044
4045
0
    return 1;
4046
0
}
4047
4048
void SSL_CTX_set_quiet_shutdown(SSL_CTX *ctx, int mode)
4049
0
{
4050
0
    ctx->quiet_shutdown = mode;
4051
0
}
4052
4053
int SSL_CTX_get_quiet_shutdown(const SSL_CTX *ctx)
4054
0
{
4055
0
    return ctx->quiet_shutdown;
4056
0
}
4057
4058
void SSL_set_quiet_shutdown(SSL *s, int mode)
4059
0
{
4060
0
    s->quiet_shutdown = mode;
4061
0
}
4062
4063
int SSL_get_quiet_shutdown(const SSL *s)
4064
0
{
4065
0
    return s->quiet_shutdown;
4066
0
}
4067
4068
void SSL_set_shutdown(SSL *s, int mode)
4069
0
{
4070
0
    s->shutdown = mode;
4071
0
}
4072
4073
int SSL_get_shutdown(const SSL *s)
4074
0
{
4075
0
    return s->shutdown;
4076
0
}
4077
4078
int SSL_version(const SSL *s)
4079
0
{
4080
0
    return s->version;
4081
0
}
4082
4083
int SSL_client_version(const SSL *s)
4084
0
{
4085
0
    return s->client_version;
4086
0
}
4087
4088
SSL_CTX *SSL_get_SSL_CTX(const SSL *ssl)
4089
0
{
4090
0
    return ssl->ctx;
4091
0
}
4092
4093
SSL_CTX *SSL_set_SSL_CTX(SSL *ssl, SSL_CTX *ctx)
4094
0
{
4095
0
    CERT *new_cert;
4096
0
    if (ssl->ctx == ctx)
4097
0
        return ssl->ctx;
4098
0
    if (ctx == NULL)
4099
0
        ctx = ssl->session_ctx;
4100
0
    new_cert = ssl_cert_dup(ctx->cert);
4101
0
    if (new_cert == NULL) {
4102
0
        return NULL;
4103
0
    }
4104
4105
0
    if (!custom_exts_copy_flags(&new_cert->custext, &ssl->cert->custext)) {
4106
0
        ssl_cert_free(new_cert);
4107
0
        return NULL;
4108
0
    }
4109
4110
0
    ssl_cert_free(ssl->cert);
4111
0
    ssl->cert = new_cert;
4112
4113
    /*
4114
     * Program invariant: |sid_ctx| has fixed size (SSL_MAX_SID_CTX_LENGTH),
4115
     * so setter APIs must prevent invalid lengths from entering the system.
4116
     */
4117
0
    if (!ossl_assert(ssl->sid_ctx_length <= sizeof(ssl->sid_ctx)))
4118
0
        return NULL;
4119
4120
    /*
4121
     * If the session ID context matches that of the parent SSL_CTX,
4122
     * inherit it from the new SSL_CTX as well. If however the context does
4123
     * not match (i.e., it was set per-ssl with SSL_set_session_id_context),
4124
     * leave it unchanged.
4125
     */
4126
0
    if ((ssl->ctx != NULL) &&
4127
0
        (ssl->sid_ctx_length == ssl->ctx->sid_ctx_length) &&
4128
0
        (memcmp(ssl->sid_ctx, ssl->ctx->sid_ctx, ssl->sid_ctx_length) == 0)) {
4129
0
        ssl->sid_ctx_length = ctx->sid_ctx_length;
4130
0
        memcpy(&ssl->sid_ctx, &ctx->sid_ctx, sizeof(ssl->sid_ctx));
4131
0
    }
4132
4133
0
    SSL_CTX_up_ref(ctx);
4134
0
    SSL_CTX_free(ssl->ctx);     /* decrement reference count */
4135
0
    ssl->ctx = ctx;
4136
4137
0
    return ssl->ctx;
4138
0
}
4139
4140
int SSL_CTX_set_default_verify_paths(SSL_CTX *ctx)
4141
0
{
4142
0
    return X509_STORE_set_default_paths(ctx->cert_store);
4143
0
}
4144
4145
int SSL_CTX_set_default_verify_dir(SSL_CTX *ctx)
4146
0
{
4147
0
    X509_LOOKUP *lookup;
4148
4149
0
    lookup = X509_STORE_add_lookup(ctx->cert_store, X509_LOOKUP_hash_dir());
4150
0
    if (lookup == NULL)
4151
0
        return 0;
4152
0
    X509_LOOKUP_add_dir(lookup, NULL, X509_FILETYPE_DEFAULT);
4153
4154
    /* Clear any errors if the default directory does not exist */
4155
0
    ERR_clear_error();
4156
4157
0
    return 1;
4158
0
}
4159
4160
int SSL_CTX_set_default_verify_file(SSL_CTX *ctx)
4161
0
{
4162
0
    X509_LOOKUP *lookup;
4163
4164
0
    lookup = X509_STORE_add_lookup(ctx->cert_store, X509_LOOKUP_file());
4165
0
    if (lookup == NULL)
4166
0
        return 0;
4167
4168
0
    X509_LOOKUP_load_file(lookup, NULL, X509_FILETYPE_DEFAULT);
4169
4170
    /* Clear any errors if the default file does not exist */
4171
0
    ERR_clear_error();
4172
4173
0
    return 1;
4174
0
}
4175
4176
int SSL_CTX_load_verify_locations(SSL_CTX *ctx, const char *CAfile,
4177
                                  const char *CApath)
4178
0
{
4179
0
    return X509_STORE_load_locations(ctx->cert_store, CAfile, CApath);
4180
0
}
4181
4182
void SSL_set_info_callback(SSL *ssl,
4183
                           void (*cb) (const SSL *ssl, int type, int val))
4184
0
{
4185
0
    ssl->info_callback = cb;
4186
0
}
4187
4188
/*
4189
 * One compiler (Diab DCC) doesn't like argument names in returned function
4190
 * pointer.
4191
 */
4192
void (*SSL_get_info_callback(const SSL *ssl)) (const SSL * /* ssl */ ,
4193
                                               int /* type */ ,
4194
0
                                               int /* val */ ) {
4195
0
    return ssl->info_callback;
4196
0
}
4197
4198
void SSL_set_verify_result(SSL *ssl, long arg)
4199
0
{
4200
0
    ssl->verify_result = arg;
4201
0
}
4202
4203
long SSL_get_verify_result(const SSL *ssl)
4204
0
{
4205
0
    return ssl->verify_result;
4206
0
}
4207
4208
size_t SSL_get_client_random(const SSL *ssl, unsigned char *out, size_t outlen)
4209
0
{
4210
0
    if (outlen == 0)
4211
0
        return sizeof(ssl->s3->client_random);
4212
0
    if (outlen > sizeof(ssl->s3->client_random))
4213
0
        outlen = sizeof(ssl->s3->client_random);
4214
0
    memcpy(out, ssl->s3->client_random, outlen);
4215
0
    return outlen;
4216
0
}
4217
4218
size_t SSL_get_server_random(const SSL *ssl, unsigned char *out, size_t outlen)
4219
0
{
4220
0
    if (outlen == 0)
4221
0
        return sizeof(ssl->s3->server_random);
4222
0
    if (outlen > sizeof(ssl->s3->server_random))
4223
0
        outlen = sizeof(ssl->s3->server_random);
4224
0
    memcpy(out, ssl->s3->server_random, outlen);
4225
0
    return outlen;
4226
0
}
4227
4228
size_t SSL_SESSION_get_master_key(const SSL_SESSION *session,
4229
                                  unsigned char *out, size_t outlen)
4230
0
{
4231
0
    if (outlen == 0)
4232
0
        return session->master_key_length;
4233
0
    if (outlen > session->master_key_length)
4234
0
        outlen = session->master_key_length;
4235
0
    memcpy(out, session->master_key, outlen);
4236
0
    return outlen;
4237
0
}
4238
4239
int SSL_SESSION_set1_master_key(SSL_SESSION *sess, const unsigned char *in,
4240
                                size_t len)
4241
0
{
4242
0
    if (len > sizeof(sess->master_key))
4243
0
        return 0;
4244
4245
0
    memcpy(sess->master_key, in, len);
4246
0
    sess->master_key_length = len;
4247
0
    return 1;
4248
0
}
4249
4250
4251
int SSL_set_ex_data(SSL *s, int idx, void *arg)
4252
0
{
4253
0
    return CRYPTO_set_ex_data(&s->ex_data, idx, arg);
4254
0
}
4255
4256
void *SSL_get_ex_data(const SSL *s, int idx)
4257
0
{
4258
0
    return CRYPTO_get_ex_data(&s->ex_data, idx);
4259
0
}
4260
4261
int SSL_CTX_set_ex_data(SSL_CTX *s, int idx, void *arg)
4262
0
{
4263
0
    return CRYPTO_set_ex_data(&s->ex_data, idx, arg);
4264
0
}
4265
4266
void *SSL_CTX_get_ex_data(const SSL_CTX *s, int idx)
4267
0
{
4268
0
    return CRYPTO_get_ex_data(&s->ex_data, idx);
4269
0
}
4270
4271
X509_STORE *SSL_CTX_get_cert_store(const SSL_CTX *ctx)
4272
0
{
4273
0
    return ctx->cert_store;
4274
0
}
4275
4276
void SSL_CTX_set_cert_store(SSL_CTX *ctx, X509_STORE *store)
4277
0
{
4278
0
    X509_STORE_free(ctx->cert_store);
4279
0
    ctx->cert_store = store;
4280
0
}
4281
4282
void SSL_CTX_set1_cert_store(SSL_CTX *ctx, X509_STORE *store)
4283
0
{
4284
0
    if (store != NULL)
4285
0
        X509_STORE_up_ref(store);
4286
0
    SSL_CTX_set_cert_store(ctx, store);
4287
0
}
4288
4289
int SSL_want(const SSL *s)
4290
0
{
4291
0
    return s->rwstate;
4292
0
}
4293
4294
/**
4295
 * \brief Set the callback for generating temporary DH keys.
4296
 * \param ctx the SSL context.
4297
 * \param dh the callback
4298
 */
4299
4300
#ifndef OPENSSL_NO_DH
4301
void SSL_CTX_set_tmp_dh_callback(SSL_CTX *ctx,
4302
                                 DH *(*dh) (SSL *ssl, int is_export,
4303
                                            int keylength))
4304
0
{
4305
0
    SSL_CTX_callback_ctrl(ctx, SSL_CTRL_SET_TMP_DH_CB, (void (*)(void))dh);
4306
0
}
4307
4308
void SSL_set_tmp_dh_callback(SSL *ssl, DH *(*dh) (SSL *ssl, int is_export,
4309
                                                  int keylength))
4310
0
{
4311
0
    SSL_callback_ctrl(ssl, SSL_CTRL_SET_TMP_DH_CB, (void (*)(void))dh);
4312
0
}
4313
#endif
4314
4315
#ifndef OPENSSL_NO_PSK
4316
int SSL_CTX_use_psk_identity_hint(SSL_CTX *ctx, const char *identity_hint)
4317
0
{
4318
0
    if (identity_hint != NULL && strlen(identity_hint) > PSK_MAX_IDENTITY_LEN) {
4319
0
        SSLerr(SSL_F_SSL_CTX_USE_PSK_IDENTITY_HINT, SSL_R_DATA_LENGTH_TOO_LONG);
4320
0
        return 0;
4321
0
    }
4322
0
    OPENSSL_free(ctx->cert->psk_identity_hint);
4323
0
    if (identity_hint != NULL) {
4324
0
        ctx->cert->psk_identity_hint = OPENSSL_strdup(identity_hint);
4325
0
        if (ctx->cert->psk_identity_hint == NULL)
4326
0
            return 0;
4327
0
    } else
4328
0
        ctx->cert->psk_identity_hint = NULL;
4329
0
    return 1;
4330
0
}
4331
4332
int SSL_use_psk_identity_hint(SSL *s, const char *identity_hint)
4333
0
{
4334
0
    if (s == NULL)
4335
0
        return 0;
4336
4337
0
    if (identity_hint != NULL && strlen(identity_hint) > PSK_MAX_IDENTITY_LEN) {
4338
0
        SSLerr(SSL_F_SSL_USE_PSK_IDENTITY_HINT, SSL_R_DATA_LENGTH_TOO_LONG);
4339
0
        return 0;
4340
0
    }
4341
0
    OPENSSL_free(s->cert->psk_identity_hint);
4342
0
    if (identity_hint != NULL) {
4343
0
        s->cert->psk_identity_hint = OPENSSL_strdup(identity_hint);
4344
0
        if (s->cert->psk_identity_hint == NULL)
4345
0
            return 0;
4346
0
    } else
4347
0
        s->cert->psk_identity_hint = NULL;
4348
0
    return 1;
4349
0
}
4350
4351
const char *SSL_get_psk_identity_hint(const SSL *s)
4352
0
{
4353
0
    if (s == NULL || s->session == NULL)
4354
0
        return NULL;
4355
0
    return s->session->psk_identity_hint;
4356
0
}
4357
4358
const char *SSL_get_psk_identity(const SSL *s)
4359
0
{
4360
0
    if (s == NULL || s->session == NULL)
4361
0
        return NULL;
4362
0
    return s->session->psk_identity;
4363
0
}
4364
4365
void SSL_set_psk_client_callback(SSL *s, SSL_psk_client_cb_func cb)
4366
0
{
4367
0
    s->psk_client_callback = cb;
4368
0
}
4369
4370
void SSL_CTX_set_psk_client_callback(SSL_CTX *ctx, SSL_psk_client_cb_func cb)
4371
0
{
4372
0
    ctx->psk_client_callback = cb;
4373
0
}
4374
4375
void SSL_set_psk_server_callback(SSL *s, SSL_psk_server_cb_func cb)
4376
0
{
4377
0
    s->psk_server_callback = cb;
4378
0
}
4379
4380
void SSL_CTX_set_psk_server_callback(SSL_CTX *ctx, SSL_psk_server_cb_func cb)
4381
0
{
4382
0
    ctx->psk_server_callback = cb;
4383
0
}
4384
#endif
4385
4386
void SSL_set_psk_find_session_callback(SSL *s, SSL_psk_find_session_cb_func cb)
4387
0
{
4388
0
    s->psk_find_session_cb = cb;
4389
0
}
4390
4391
void SSL_CTX_set_psk_find_session_callback(SSL_CTX *ctx,
4392
                                           SSL_psk_find_session_cb_func cb)
4393
0
{
4394
0
    ctx->psk_find_session_cb = cb;
4395
0
}
4396
4397
void SSL_set_psk_use_session_callback(SSL *s, SSL_psk_use_session_cb_func cb)
4398
0
{
4399
0
    s->psk_use_session_cb = cb;
4400
0
}
4401
4402
void SSL_CTX_set_psk_use_session_callback(SSL_CTX *ctx,
4403
                                           SSL_psk_use_session_cb_func cb)
4404
0
{
4405
0
    ctx->psk_use_session_cb = cb;
4406
0
}
4407
4408
void SSL_CTX_set_msg_callback(SSL_CTX *ctx,
4409
                              void (*cb) (int write_p, int version,
4410
                                          int content_type, const void *buf,
4411
                                          size_t len, SSL *ssl, void *arg))
4412
0
{
4413
0
    SSL_CTX_callback_ctrl(ctx, SSL_CTRL_SET_MSG_CALLBACK, (void (*)(void))cb);
4414
0
}
4415
4416
void SSL_set_msg_callback(SSL *ssl,
4417
                          void (*cb) (int write_p, int version,
4418
                                      int content_type, const void *buf,
4419
                                      size_t len, SSL *ssl, void *arg))
4420
0
{
4421
0
    SSL_callback_ctrl(ssl, SSL_CTRL_SET_MSG_CALLBACK, (void (*)(void))cb);
4422
0
}
4423
4424
void SSL_CTX_set_not_resumable_session_callback(SSL_CTX *ctx,
4425
                                                int (*cb) (SSL *ssl,
4426
                                                           int
4427
                                                           is_forward_secure))
4428
0
{
4429
0
    SSL_CTX_callback_ctrl(ctx, SSL_CTRL_SET_NOT_RESUMABLE_SESS_CB,
4430
0
                          (void (*)(void))cb);
4431
0
}
4432
4433
void SSL_set_not_resumable_session_callback(SSL *ssl,
4434
                                            int (*cb) (SSL *ssl,
4435
                                                       int is_forward_secure))
4436
0
{
4437
0
    SSL_callback_ctrl(ssl, SSL_CTRL_SET_NOT_RESUMABLE_SESS_CB,
4438
0
                      (void (*)(void))cb);
4439
0
}
4440
4441
void SSL_CTX_set_record_padding_callback(SSL_CTX *ctx,
4442
                                         size_t (*cb) (SSL *ssl, int type,
4443
                                                       size_t len, void *arg))
4444
0
{
4445
0
    ctx->record_padding_cb = cb;
4446
0
}
4447
4448
void SSL_CTX_set_record_padding_callback_arg(SSL_CTX *ctx, void *arg)
4449
0
{
4450
0
    ctx->record_padding_arg = arg;
4451
0
}
4452
4453
void *SSL_CTX_get_record_padding_callback_arg(const SSL_CTX *ctx)
4454
0
{
4455
0
    return ctx->record_padding_arg;
4456
0
}
4457
4458
int SSL_CTX_set_block_padding(SSL_CTX *ctx, size_t block_size)
4459
0
{
4460
    /* block size of 0 or 1 is basically no padding */
4461
0
    if (block_size == 1)
4462
0
        ctx->block_padding = 0;
4463
0
    else if (block_size <= SSL3_RT_MAX_PLAIN_LENGTH)
4464
0
        ctx->block_padding = block_size;
4465
0
    else
4466
0
        return 0;
4467
0
    return 1;
4468
0
}
4469
4470
void SSL_set_record_padding_callback(SSL *ssl,
4471
                                     size_t (*cb) (SSL *ssl, int type,
4472
                                                   size_t len, void *arg))
4473
0
{
4474
0
    ssl->record_padding_cb = cb;
4475
0
}
4476
4477
void SSL_set_record_padding_callback_arg(SSL *ssl, void *arg)
4478
0
{
4479
0
    ssl->record_padding_arg = arg;
4480
0
}
4481
4482
void *SSL_get_record_padding_callback_arg(const SSL *ssl)
4483
0
{
4484
0
    return ssl->record_padding_arg;
4485
0
}
4486
4487
int SSL_set_block_padding(SSL *ssl, size_t block_size)
4488
0
{
4489
    /* block size of 0 or 1 is basically no padding */
4490
0
    if (block_size == 1)
4491
0
        ssl->block_padding = 0;
4492
0
    else if (block_size <= SSL3_RT_MAX_PLAIN_LENGTH)
4493
0
        ssl->block_padding = block_size;
4494
0
    else
4495
0
        return 0;
4496
0
    return 1;
4497
0
}
4498
4499
int SSL_set_num_tickets(SSL *s, size_t num_tickets)
4500
0
{
4501
0
    s->num_tickets = num_tickets;
4502
4503
0
    return 1;
4504
0
}
4505
4506
size_t SSL_get_num_tickets(const SSL *s)
4507
0
{
4508
0
    return s->num_tickets;
4509
0
}
4510
4511
int SSL_CTX_set_num_tickets(SSL_CTX *ctx, size_t num_tickets)
4512
0
{
4513
0
    ctx->num_tickets = num_tickets;
4514
4515
0
    return 1;
4516
0
}
4517
4518
size_t SSL_CTX_get_num_tickets(const SSL_CTX *ctx)
4519
0
{
4520
0
    return ctx->num_tickets;
4521
0
}
4522
4523
/*
4524
 * Allocates new EVP_MD_CTX and sets pointer to it into given pointer
4525
 * variable, freeing EVP_MD_CTX previously stored in that variable, if any.
4526
 * If EVP_MD pointer is passed, initializes ctx with this |md|.
4527
 * Returns the newly allocated ctx;
4528
 */
4529
4530
EVP_MD_CTX *ssl_replace_hash(EVP_MD_CTX **hash, const EVP_MD *md)
4531
0
{
4532
0
    ssl_clear_hash_ctx(hash);
4533
0
    *hash = EVP_MD_CTX_new();
4534
0
    if (*hash == NULL || (md && EVP_DigestInit_ex(*hash, md, NULL) <= 0)) {
4535
0
        EVP_MD_CTX_free(*hash);
4536
0
        *hash = NULL;
4537
0
        return NULL;
4538
0
    }
4539
0
    return *hash;
4540
0
}
4541
4542
void ssl_clear_hash_ctx(EVP_MD_CTX **hash)
4543
0
{
4544
4545
0
    EVP_MD_CTX_free(*hash);
4546
0
    *hash = NULL;
4547
0
}
4548
4549
/* Retrieve handshake hashes */
4550
int ssl_handshake_hash(SSL *s, unsigned char *out, size_t outlen,
4551
                       size_t *hashlen)
4552
0
{
4553
0
    EVP_MD_CTX *ctx = NULL;
4554
0
    EVP_MD_CTX *hdgst = s->s3->handshake_dgst;
4555
0
    int hashleni = EVP_MD_CTX_size(hdgst);
4556
0
    int ret = 0;
4557
4558
0
    if (hashleni < 0 || (size_t)hashleni > outlen) {
4559
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, SSL_F_SSL_HANDSHAKE_HASH,
4560
0
                 ERR_R_INTERNAL_ERROR);
4561
0
        goto err;
4562
0
    }
4563
4564
0
    ctx = EVP_MD_CTX_new();
4565
0
    if (ctx == NULL) {
4566
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, SSL_F_SSL_HANDSHAKE_HASH,
4567
0
                 ERR_R_INTERNAL_ERROR);
4568
0
        goto err;
4569
0
    }
4570
4571
0
    if (!EVP_MD_CTX_copy_ex(ctx, hdgst)
4572
0
        || EVP_DigestFinal_ex(ctx, out, NULL) <= 0) {
4573
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, SSL_F_SSL_HANDSHAKE_HASH,
4574
0
                 ERR_R_INTERNAL_ERROR);
4575
0
        goto err;
4576
0
    }
4577
4578
0
    *hashlen = hashleni;
4579
4580
0
    ret = 1;
4581
0
 err:
4582
0
    EVP_MD_CTX_free(ctx);
4583
0
    return ret;
4584
0
}
4585
4586
int SSL_session_reused(const SSL *s)
4587
0
{
4588
0
    return s->hit;
4589
0
}
4590
4591
int SSL_is_server(const SSL *s)
4592
0
{
4593
0
    return s->server;
4594
0
}
4595
4596
#if OPENSSL_API_COMPAT < 0x10100000L
4597
void SSL_set_debug(SSL *s, int debug)
4598
0
{
4599
    /* Old function was do-nothing anyway... */
4600
0
    (void)s;
4601
0
    (void)debug;
4602
0
}
4603
#endif
4604
4605
void SSL_set_security_level(SSL *s, int level)
4606
0
{
4607
0
    s->cert->sec_level = level;
4608
0
}
4609
4610
int SSL_get_security_level(const SSL *s)
4611
0
{
4612
0
    return s->cert->sec_level;
4613
0
}
4614
4615
void SSL_set_security_callback(SSL *s,
4616
                               int (*cb) (const SSL *s, const SSL_CTX *ctx,
4617
                                          int op, int bits, int nid,
4618
                                          void *other, void *ex))
4619
0
{
4620
0
    s->cert->sec_cb = cb;
4621
0
}
4622
4623
int (*SSL_get_security_callback(const SSL *s)) (const SSL *s,
4624
                                                const SSL_CTX *ctx, int op,
4625
                                                int bits, int nid, void *other,
4626
0
                                                void *ex) {
4627
0
    return s->cert->sec_cb;
4628
0
}
4629
4630
void SSL_set0_security_ex_data(SSL *s, void *ex)
4631
0
{
4632
0
    s->cert->sec_ex = ex;
4633
0
}
4634
4635
void *SSL_get0_security_ex_data(const SSL *s)
4636
0
{
4637
0
    return s->cert->sec_ex;
4638
0
}
4639
4640
void SSL_CTX_set_security_level(SSL_CTX *ctx, int level)
4641
0
{
4642
0
    ctx->cert->sec_level = level;
4643
0
}
4644
4645
int SSL_CTX_get_security_level(const SSL_CTX *ctx)
4646
0
{
4647
0
    return ctx->cert->sec_level;
4648
0
}
4649
4650
void SSL_CTX_set_security_callback(SSL_CTX *ctx,
4651
                                   int (*cb) (const SSL *s, const SSL_CTX *ctx,
4652
                                              int op, int bits, int nid,
4653
                                              void *other, void *ex))
4654
0
{
4655
0
    ctx->cert->sec_cb = cb;
4656
0
}
4657
4658
int (*SSL_CTX_get_security_callback(const SSL_CTX *ctx)) (const SSL *s,
4659
                                                          const SSL_CTX *ctx,
4660
                                                          int op, int bits,
4661
                                                          int nid,
4662
                                                          void *other,
4663
0
                                                          void *ex) {
4664
0
    return ctx->cert->sec_cb;
4665
0
}
4666
4667
void SSL_CTX_set0_security_ex_data(SSL_CTX *ctx, void *ex)
4668
0
{
4669
0
    ctx->cert->sec_ex = ex;
4670
0
}
4671
4672
void *SSL_CTX_get0_security_ex_data(const SSL_CTX *ctx)
4673
0
{
4674
0
    return ctx->cert->sec_ex;
4675
0
}
4676
4677
/*
4678
 * Get/Set/Clear options in SSL_CTX or SSL, formerly macros, now functions that
4679
 * can return unsigned long, instead of the generic long return value from the
4680
 * control interface.
4681
 */
4682
unsigned long SSL_CTX_get_options(const SSL_CTX *ctx)
4683
0
{
4684
0
    return ctx->options;
4685
0
}
4686
4687
unsigned long SSL_get_options(const SSL *s)
4688
0
{
4689
0
    return s->options;
4690
0
}
4691
4692
unsigned long SSL_CTX_set_options(SSL_CTX *ctx, unsigned long op)
4693
0
{
4694
0
    return ctx->options |= op;
4695
0
}
4696
4697
unsigned long SSL_set_options(SSL *s, unsigned long op)
4698
0
{
4699
0
    return s->options |= op;
4700
0
}
4701
4702
unsigned long SSL_CTX_clear_options(SSL_CTX *ctx, unsigned long op)
4703
0
{
4704
0
    return ctx->options &= ~op;
4705
0
}
4706
4707
unsigned long SSL_clear_options(SSL *s, unsigned long op)
4708
0
{
4709
0
    return s->options &= ~op;
4710
0
}
4711
4712
STACK_OF(X509) *SSL_get0_verified_chain(const SSL *s)
4713
0
{
4714
0
    return s->verified_chain;
4715
0
}
4716
4717
IMPLEMENT_OBJ_BSEARCH_GLOBAL_CMP_FN(SSL_CIPHER, SSL_CIPHER, ssl_cipher_id);
4718
4719
#ifndef OPENSSL_NO_CT
4720
4721
/*
4722
 * Moves SCTs from the |src| stack to the |dst| stack.
4723
 * The source of each SCT will be set to |origin|.
4724
 * If |dst| points to a NULL pointer, a new stack will be created and owned by
4725
 * the caller.
4726
 * Returns the number of SCTs moved, or a negative integer if an error occurs.
4727
 */
4728
static int ct_move_scts(STACK_OF(SCT) **dst, STACK_OF(SCT) *src,
4729
                        sct_source_t origin)
4730
0
{
4731
0
    int scts_moved = 0;
4732
0
    SCT *sct = NULL;
4733
4734
0
    if (*dst == NULL) {
4735
0
        *dst = sk_SCT_new_null();
4736
0
        if (*dst == NULL) {
4737
0
            SSLerr(SSL_F_CT_MOVE_SCTS, ERR_R_MALLOC_FAILURE);
4738
0
            goto err;
4739
0
        }
4740
0
    }
4741
4742
0
    while ((sct = sk_SCT_pop(src)) != NULL) {
4743
0
        if (SCT_set_source(sct, origin) != 1)
4744
0
            goto err;
4745
4746
0
        if (sk_SCT_push(*dst, sct) <= 0)
4747
0
            goto err;
4748
0
        scts_moved += 1;
4749
0
    }
4750
4751
0
    return scts_moved;
4752
0
 err:
4753
0
    if (sct != NULL)
4754
0
        sk_SCT_push(src, sct);  /* Put the SCT back */
4755
0
    return -1;
4756
0
}
4757
4758
/*
4759
 * Look for data collected during ServerHello and parse if found.
4760
 * Returns the number of SCTs extracted.
4761
 */
4762
static int ct_extract_tls_extension_scts(SSL *s)
4763
0
{
4764
0
    int scts_extracted = 0;
4765
4766
0
    if (s->ext.scts != NULL) {
4767
0
        const unsigned char *p = s->ext.scts;
4768
0
        STACK_OF(SCT) *scts = o2i_SCT_LIST(NULL, &p, s->ext.scts_len);
4769
4770
0
        scts_extracted = ct_move_scts(&s->scts, scts, SCT_SOURCE_TLS_EXTENSION);
4771
4772
0
        SCT_LIST_free(scts);
4773
0
    }
4774
4775
0
    return scts_extracted;
4776
0
}
4777
4778
/*
4779
 * Checks for an OCSP response and then attempts to extract any SCTs found if it
4780
 * contains an SCT X509 extension. They will be stored in |s->scts|.
4781
 * Returns:
4782
 * - The number of SCTs extracted, assuming an OCSP response exists.
4783
 * - 0 if no OCSP response exists or it contains no SCTs.
4784
 * - A negative integer if an error occurs.
4785
 */
4786
static int ct_extract_ocsp_response_scts(SSL *s)
4787
0
{
4788
0
# ifndef OPENSSL_NO_OCSP
4789
0
    int scts_extracted = 0;
4790
0
    const unsigned char *p;
4791
0
    OCSP_BASICRESP *br = NULL;
4792
0
    OCSP_RESPONSE *rsp = NULL;
4793
0
    STACK_OF(SCT) *scts = NULL;
4794
0
    int i;
4795
4796
0
    if (s->ext.ocsp.resp == NULL || s->ext.ocsp.resp_len == 0)
4797
0
        goto err;
4798
4799
0
    p = s->ext.ocsp.resp;
4800
0
    rsp = d2i_OCSP_RESPONSE(NULL, &p, (int)s->ext.ocsp.resp_len);
4801
0
    if (rsp == NULL)
4802
0
        goto err;
4803
4804
0
    br = OCSP_response_get1_basic(rsp);
4805
0
    if (br == NULL)
4806
0
        goto err;
4807
4808
0
    for (i = 0; i < OCSP_resp_count(br); ++i) {
4809
0
        OCSP_SINGLERESP *single = OCSP_resp_get0(br, i);
4810
4811
0
        if (single == NULL)
4812
0
            continue;
4813
4814
0
        scts =
4815
0
            OCSP_SINGLERESP_get1_ext_d2i(single, NID_ct_cert_scts, NULL, NULL);
4816
0
        scts_extracted =
4817
0
            ct_move_scts(&s->scts, scts, SCT_SOURCE_OCSP_STAPLED_RESPONSE);
4818
0
        if (scts_extracted < 0)
4819
0
            goto err;
4820
0
    }
4821
0
 err:
4822
0
    SCT_LIST_free(scts);
4823
0
    OCSP_BASICRESP_free(br);
4824
0
    OCSP_RESPONSE_free(rsp);
4825
0
    return scts_extracted;
4826
# else
4827
    /* Behave as if no OCSP response exists */
4828
    return 0;
4829
# endif
4830
0
}
4831
4832
/*
4833
 * Attempts to extract SCTs from the peer certificate.
4834
 * Return the number of SCTs extracted, or a negative integer if an error
4835
 * occurs.
4836
 */
4837
static int ct_extract_x509v3_extension_scts(SSL *s)
4838
0
{
4839
0
    int scts_extracted = 0;
4840
0
    X509 *cert = s->session != NULL ? s->session->peer : NULL;
4841
4842
0
    if (cert != NULL) {
4843
0
        STACK_OF(SCT) *scts =
4844
0
            X509_get_ext_d2i(cert, NID_ct_precert_scts, NULL, NULL);
4845
4846
0
        scts_extracted =
4847
0
            ct_move_scts(&s->scts, scts, SCT_SOURCE_X509V3_EXTENSION);
4848
4849
0
        SCT_LIST_free(scts);
4850
0
    }
4851
4852
0
    return scts_extracted;
4853
0
}
4854
4855
/*
4856
 * Attempts to find all received SCTs by checking TLS extensions, the OCSP
4857
 * response (if it exists) and X509v3 extensions in the certificate.
4858
 * Returns NULL if an error occurs.
4859
 */
4860
const STACK_OF(SCT) *SSL_get0_peer_scts(SSL *s)
4861
0
{
4862
0
    if (!s->scts_parsed) {
4863
0
        if (ct_extract_tls_extension_scts(s) < 0 ||
4864
0
            ct_extract_ocsp_response_scts(s) < 0 ||
4865
0
            ct_extract_x509v3_extension_scts(s) < 0)
4866
0
            goto err;
4867
4868
0
        s->scts_parsed = 1;
4869
0
    }
4870
0
    return s->scts;
4871
0
 err:
4872
0
    return NULL;
4873
0
}
4874
4875
static int ct_permissive(const CT_POLICY_EVAL_CTX * ctx,
4876
                         const STACK_OF(SCT) *scts, void *unused_arg)
4877
0
{
4878
0
    return 1;
4879
0
}
4880
4881
static int ct_strict(const CT_POLICY_EVAL_CTX * ctx,
4882
                     const STACK_OF(SCT) *scts, void *unused_arg)
4883
0
{
4884
0
    int count = scts != NULL ? sk_SCT_num(scts) : 0;
4885
0
    int i;
4886
4887
0
    for (i = 0; i < count; ++i) {
4888
0
        SCT *sct = sk_SCT_value(scts, i);
4889
0
        int status = SCT_get_validation_status(sct);
4890
4891
0
        if (status == SCT_VALIDATION_STATUS_VALID)
4892
0
            return 1;
4893
0
    }
4894
0
    SSLerr(SSL_F_CT_STRICT, SSL_R_NO_VALID_SCTS);
4895
0
    return 0;
4896
0
}
4897
4898
int SSL_set_ct_validation_callback(SSL *s, ssl_ct_validation_cb callback,
4899
                                   void *arg)
4900
0
{
4901
    /*
4902
     * Since code exists that uses the custom extension handler for CT, look
4903
     * for this and throw an error if they have already registered to use CT.
4904
     */
4905
0
    if (callback != NULL && SSL_CTX_has_client_custom_ext(s->ctx,
4906
0
                                                          TLSEXT_TYPE_signed_certificate_timestamp))
4907
0
    {
4908
0
        SSLerr(SSL_F_SSL_SET_CT_VALIDATION_CALLBACK,
4909
0
               SSL_R_CUSTOM_EXT_HANDLER_ALREADY_INSTALLED);
4910
0
        return 0;
4911
0
    }
4912
4913
0
    if (callback != NULL) {
4914
        /*
4915
         * If we are validating CT, then we MUST accept SCTs served via OCSP
4916
         */
4917
0
        if (!SSL_set_tlsext_status_type(s, TLSEXT_STATUSTYPE_ocsp))
4918
0
            return 0;
4919
0
    }
4920
4921
0
    s->ct_validation_callback = callback;
4922
0
    s->ct_validation_callback_arg = arg;
4923
4924
0
    return 1;
4925
0
}
4926
4927
int SSL_CTX_set_ct_validation_callback(SSL_CTX *ctx,
4928
                                       ssl_ct_validation_cb callback, void *arg)
4929
0
{
4930
    /*
4931
     * Since code exists that uses the custom extension handler for CT, look for
4932
     * this and throw an error if they have already registered to use CT.
4933
     */
4934
0
    if (callback != NULL && SSL_CTX_has_client_custom_ext(ctx,
4935
0
                                                          TLSEXT_TYPE_signed_certificate_timestamp))
4936
0
    {
4937
0
        SSLerr(SSL_F_SSL_CTX_SET_CT_VALIDATION_CALLBACK,
4938
0
               SSL_R_CUSTOM_EXT_HANDLER_ALREADY_INSTALLED);
4939
0
        return 0;
4940
0
    }
4941
4942
0
    ctx->ct_validation_callback = callback;
4943
0
    ctx->ct_validation_callback_arg = arg;
4944
0
    return 1;
4945
0
}
4946
4947
int SSL_ct_is_enabled(const SSL *s)
4948
0
{
4949
0
    return s->ct_validation_callback != NULL;
4950
0
}
4951
4952
int SSL_CTX_ct_is_enabled(const SSL_CTX *ctx)
4953
0
{
4954
0
    return ctx->ct_validation_callback != NULL;
4955
0
}
4956
4957
int ssl_validate_ct(SSL *s)
4958
0
{
4959
0
    int ret = 0;
4960
0
    X509 *cert = s->session != NULL ? s->session->peer : NULL;
4961
0
    X509 *issuer;
4962
0
    SSL_DANE *dane = &s->dane;
4963
0
    CT_POLICY_EVAL_CTX *ctx = NULL;
4964
0
    const STACK_OF(SCT) *scts;
4965
4966
    /*
4967
     * If no callback is set, the peer is anonymous, or its chain is invalid,
4968
     * skip SCT validation - just return success.  Applications that continue
4969
     * handshakes without certificates, with unverified chains, or pinned leaf
4970
     * certificates are outside the scope of the WebPKI and CT.
4971
     *
4972
     * The above exclusions notwithstanding the vast majority of peers will
4973
     * have rather ordinary certificate chains validated by typical
4974
     * applications that perform certificate verification and therefore will
4975
     * process SCTs when enabled.
4976
     */
4977
0
    if (s->ct_validation_callback == NULL || cert == NULL ||
4978
0
        s->verify_result != X509_V_OK ||
4979
0
        s->verified_chain == NULL || sk_X509_num(s->verified_chain) <= 1)
4980
0
        return 1;
4981
4982
    /*
4983
     * CT not applicable for chains validated via DANE-TA(2) or DANE-EE(3)
4984
     * trust-anchors.  See https://tools.ietf.org/html/rfc7671#section-4.2
4985
     */
4986
0
    if (DANETLS_ENABLED(dane) && dane->mtlsa != NULL) {
4987
0
        switch (dane->mtlsa->usage) {
4988
0
        case DANETLS_USAGE_DANE_TA:
4989
0
        case DANETLS_USAGE_DANE_EE:
4990
0
            return 1;
4991
0
        }
4992
0
    }
4993
4994
0
    ctx = CT_POLICY_EVAL_CTX_new();
4995
0
    if (ctx == NULL) {
4996
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, SSL_F_SSL_VALIDATE_CT,
4997
0
                 ERR_R_MALLOC_FAILURE);
4998
0
        goto end;
4999
0
    }
5000
5001
0
    issuer = sk_X509_value(s->verified_chain, 1);
5002
0
    CT_POLICY_EVAL_CTX_set1_cert(ctx, cert);
5003
0
    CT_POLICY_EVAL_CTX_set1_issuer(ctx, issuer);
5004
0
    CT_POLICY_EVAL_CTX_set_shared_CTLOG_STORE(ctx, s->ctx->ctlog_store);
5005
0
    CT_POLICY_EVAL_CTX_set_time(
5006
0
            ctx, (uint64_t)SSL_SESSION_get_time(SSL_get0_session(s)) * 1000);
5007
5008
0
    scts = SSL_get0_peer_scts(s);
5009
5010
    /*
5011
     * This function returns success (> 0) only when all the SCTs are valid, 0
5012
     * when some are invalid, and < 0 on various internal errors (out of
5013
     * memory, etc.).  Having some, or even all, invalid SCTs is not sufficient
5014
     * reason to abort the handshake, that decision is up to the callback.
5015
     * Therefore, we error out only in the unexpected case that the return
5016
     * value is negative.
5017
     *
5018
     * XXX: One might well argue that the return value of this function is an
5019
     * unfortunate design choice.  Its job is only to determine the validation
5020
     * status of each of the provided SCTs.  So long as it correctly separates
5021
     * the wheat from the chaff it should return success.  Failure in this case
5022
     * ought to correspond to an inability to carry out its duties.
5023
     */
5024
0
    if (SCT_LIST_validate(scts, ctx) < 0) {
5025
0
        SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE, SSL_F_SSL_VALIDATE_CT,
5026
0
                 SSL_R_SCT_VERIFICATION_FAILED);
5027
0
        goto end;
5028
0
    }
5029
5030
0
    ret = s->ct_validation_callback(ctx, scts, s->ct_validation_callback_arg);
5031
0
    if (ret < 0)
5032
0
        ret = 0;                /* This function returns 0 on failure */
5033
0
    if (!ret)
5034
0
        SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE, SSL_F_SSL_VALIDATE_CT,
5035
0
                 SSL_R_CALLBACK_FAILED);
5036
5037
0
 end:
5038
0
    CT_POLICY_EVAL_CTX_free(ctx);
5039
    /*
5040
     * With SSL_VERIFY_NONE the session may be cached and re-used despite a
5041
     * failure return code here.  Also the application may wish the complete
5042
     * the handshake, and then disconnect cleanly at a higher layer, after
5043
     * checking the verification status of the completed connection.
5044
     *
5045
     * We therefore force a certificate verification failure which will be
5046
     * visible via SSL_get_verify_result() and cached as part of any resumed
5047
     * session.
5048
     *
5049
     * Note: the permissive callback is for information gathering only, always
5050
     * returns success, and does not affect verification status.  Only the
5051
     * strict callback or a custom application-specified callback can trigger
5052
     * connection failure or record a verification error.
5053
     */
5054
0
    if (ret <= 0)
5055
0
        s->verify_result = X509_V_ERR_NO_VALID_SCTS;
5056
0
    return ret;
5057
0
}
5058
5059
int SSL_CTX_enable_ct(SSL_CTX *ctx, int validation_mode)
5060
0
{
5061
0
    switch (validation_mode) {
5062
0
    default:
5063
0
        SSLerr(SSL_F_SSL_CTX_ENABLE_CT, SSL_R_INVALID_CT_VALIDATION_TYPE);
5064
0
        return 0;
5065
0
    case SSL_CT_VALIDATION_PERMISSIVE:
5066
0
        return SSL_CTX_set_ct_validation_callback(ctx, ct_permissive, NULL);
5067
0
    case SSL_CT_VALIDATION_STRICT:
5068
0
        return SSL_CTX_set_ct_validation_callback(ctx, ct_strict, NULL);
5069
0
    }
5070
0
}
5071
5072
int SSL_enable_ct(SSL *s, int validation_mode)
5073
0
{
5074
0
    switch (validation_mode) {
5075
0
    default:
5076
0
        SSLerr(SSL_F_SSL_ENABLE_CT, SSL_R_INVALID_CT_VALIDATION_TYPE);
5077
0
        return 0;
5078
0
    case SSL_CT_VALIDATION_PERMISSIVE:
5079
0
        return SSL_set_ct_validation_callback(s, ct_permissive, NULL);
5080
0
    case SSL_CT_VALIDATION_STRICT:
5081
0
        return SSL_set_ct_validation_callback(s, ct_strict, NULL);
5082
0
    }
5083
0
}
5084
5085
int SSL_CTX_set_default_ctlog_list_file(SSL_CTX *ctx)
5086
0
{
5087
0
    return CTLOG_STORE_load_default_file(ctx->ctlog_store);
5088
0
}
5089
5090
int SSL_CTX_set_ctlog_list_file(SSL_CTX *ctx, const char *path)
5091
0
{
5092
0
    return CTLOG_STORE_load_file(ctx->ctlog_store, path);
5093
0
}
5094
5095
void SSL_CTX_set0_ctlog_store(SSL_CTX *ctx, CTLOG_STORE * logs)
5096
0
{
5097
0
    CTLOG_STORE_free(ctx->ctlog_store);
5098
0
    ctx->ctlog_store = logs;
5099
0
}
5100
5101
const CTLOG_STORE *SSL_CTX_get0_ctlog_store(const SSL_CTX *ctx)
5102
0
{
5103
0
    return ctx->ctlog_store;
5104
0
}
5105
5106
#endif  /* OPENSSL_NO_CT */
5107
5108
void SSL_CTX_set_client_hello_cb(SSL_CTX *c, SSL_client_hello_cb_fn cb,
5109
                                 void *arg)
5110
0
{
5111
0
    c->client_hello_cb = cb;
5112
0
    c->client_hello_cb_arg = arg;
5113
0
}
5114
5115
int SSL_client_hello_isv2(SSL *s)
5116
0
{
5117
0
    if (s->clienthello == NULL)
5118
0
        return 0;
5119
0
    return s->clienthello->isv2;
5120
0
}
5121
5122
unsigned int SSL_client_hello_get0_legacy_version(SSL *s)
5123
0
{
5124
0
    if (s->clienthello == NULL)
5125
0
        return 0;
5126
0
    return s->clienthello->legacy_version;
5127
0
}
5128
5129
size_t SSL_client_hello_get0_random(SSL *s, const unsigned char **out)
5130
0
{
5131
0
    if (s->clienthello == NULL)
5132
0
        return 0;
5133
0
    if (out != NULL)
5134
0
        *out = s->clienthello->random;
5135
0
    return SSL3_RANDOM_SIZE;
5136
0
}
5137
5138
size_t SSL_client_hello_get0_session_id(SSL *s, const unsigned char **out)
5139
0
{
5140
0
    if (s->clienthello == NULL)
5141
0
        return 0;
5142
0
    if (out != NULL)
5143
0
        *out = s->clienthello->session_id;
5144
0
    return s->clienthello->session_id_len;
5145
0
}
5146
5147
size_t SSL_client_hello_get0_ciphers(SSL *s, const unsigned char **out)
5148
0
{
5149
0
    if (s->clienthello == NULL)
5150
0
        return 0;
5151
0
    if (out != NULL)
5152
0
        *out = PACKET_data(&s->clienthello->ciphersuites);
5153
0
    return PACKET_remaining(&s->clienthello->ciphersuites);
5154
0
}
5155
5156
size_t SSL_client_hello_get0_compression_methods(SSL *s, const unsigned char **out)
5157
0
{
5158
0
    if (s->clienthello == NULL)
5159
0
        return 0;
5160
0
    if (out != NULL)
5161
0
        *out = s->clienthello->compressions;
5162
0
    return s->clienthello->compressions_len;
5163
0
}
5164
5165
int SSL_client_hello_get1_extensions_present(SSL *s, int **out, size_t *outlen)
5166
0
{
5167
0
    RAW_EXTENSION *ext;
5168
0
    int *present;
5169
0
    size_t num = 0, i;
5170
5171
0
    if (s->clienthello == NULL || out == NULL || outlen == NULL)
5172
0
        return 0;
5173
0
    for (i = 0; i < s->clienthello->pre_proc_exts_len; i++) {
5174
0
        ext = s->clienthello->pre_proc_exts + i;
5175
0
        if (ext->present)
5176
0
            num++;
5177
0
    }
5178
0
    if (num == 0) {
5179
0
        *out = NULL;
5180
0
        *outlen = 0;
5181
0
        return 1;
5182
0
    }
5183
0
    if ((present = OPENSSL_malloc(sizeof(*present) * num)) == NULL) {
5184
0
        SSLerr(SSL_F_SSL_CLIENT_HELLO_GET1_EXTENSIONS_PRESENT,
5185
0
               ERR_R_MALLOC_FAILURE);
5186
0
        return 0;
5187
0
    }
5188
0
    for (i = 0; i < s->clienthello->pre_proc_exts_len; i++) {
5189
0
        ext = s->clienthello->pre_proc_exts + i;
5190
0
        if (ext->present) {
5191
0
            if (ext->received_order >= num)
5192
0
                goto err;
5193
0
            present[ext->received_order] = ext->type;
5194
0
        }
5195
0
    }
5196
0
    *out = present;
5197
0
    *outlen = num;
5198
0
    return 1;
5199
0
 err:
5200
0
    OPENSSL_free(present);
5201
0
    return 0;
5202
0
}
5203
5204
int SSL_client_hello_get0_ext(SSL *s, unsigned int type, const unsigned char **out,
5205
                       size_t *outlen)
5206
0
{
5207
0
    size_t i;
5208
0
    RAW_EXTENSION *r;
5209
5210
0
    if (s->clienthello == NULL)
5211
0
        return 0;
5212
0
    for (i = 0; i < s->clienthello->pre_proc_exts_len; ++i) {
5213
0
        r = s->clienthello->pre_proc_exts + i;
5214
0
        if (r->present && r->type == type) {
5215
0
            if (out != NULL)
5216
0
                *out = PACKET_data(&r->data);
5217
0
            if (outlen != NULL)
5218
0
                *outlen = PACKET_remaining(&r->data);
5219
0
            return 1;
5220
0
        }
5221
0
    }
5222
0
    return 0;
5223
0
}
5224
5225
int SSL_free_buffers(SSL *ssl)
5226
0
{
5227
0
    RECORD_LAYER *rl = &ssl->rlayer;
5228
5229
0
    if (RECORD_LAYER_read_pending(rl) || RECORD_LAYER_write_pending(rl))
5230
0
        return 0;
5231
5232
0
    RECORD_LAYER_release(rl);
5233
0
    return 1;
5234
0
}
5235
5236
int SSL_alloc_buffers(SSL *ssl)
5237
0
{
5238
0
    return ssl3_setup_buffers(ssl);
5239
0
}
5240
5241
void SSL_CTX_set_keylog_callback(SSL_CTX *ctx, SSL_CTX_keylog_cb_func cb)
5242
0
{
5243
0
    ctx->keylog_callback = cb;
5244
0
}
5245
5246
SSL_CTX_keylog_cb_func SSL_CTX_get_keylog_callback(const SSL_CTX *ctx)
5247
0
{
5248
0
    return ctx->keylog_callback;
5249
0
}
5250
5251
static int nss_keylog_int(const char *prefix,
5252
                          SSL *ssl,
5253
                          const uint8_t *parameter_1,
5254
                          size_t parameter_1_len,
5255
                          const uint8_t *parameter_2,
5256
                          size_t parameter_2_len)
5257
0
{
5258
0
    char *out = NULL;
5259
0
    char *cursor = NULL;
5260
0
    size_t out_len = 0;
5261
0
    size_t i;
5262
0
    size_t prefix_len;
5263
5264
0
    if (ssl->ctx->keylog_callback == NULL)
5265
0
        return 1;
5266
5267
    /*
5268
     * Our output buffer will contain the following strings, rendered with
5269
     * space characters in between, terminated by a NULL character: first the
5270
     * prefix, then the first parameter, then the second parameter. The
5271
     * meaning of each parameter depends on the specific key material being
5272
     * logged. Note that the first and second parameters are encoded in
5273
     * hexadecimal, so we need a buffer that is twice their lengths.
5274
     */
5275
0
    prefix_len = strlen(prefix);
5276
0
    out_len = prefix_len + (2 * parameter_1_len) + (2 * parameter_2_len) + 3;
5277
0
    if ((out = cursor = OPENSSL_malloc(out_len)) == NULL) {
5278
0
        SSLfatal(ssl, SSL_AD_INTERNAL_ERROR, SSL_F_NSS_KEYLOG_INT,
5279
0
                 ERR_R_MALLOC_FAILURE);
5280
0
        return 0;
5281
0
    }
5282
5283
0
    strcpy(cursor, prefix);
5284
0
    cursor += prefix_len;
5285
0
    *cursor++ = ' ';
5286
5287
0
    for (i = 0; i < parameter_1_len; i++) {
5288
0
        sprintf(cursor, "%02x", parameter_1[i]);
5289
0
        cursor += 2;
5290
0
    }
5291
0
    *cursor++ = ' ';
5292
5293
0
    for (i = 0; i < parameter_2_len; i++) {
5294
0
        sprintf(cursor, "%02x", parameter_2[i]);
5295
0
        cursor += 2;
5296
0
    }
5297
0
    *cursor = '\0';
5298
5299
0
    ssl->ctx->keylog_callback(ssl, (const char *)out);
5300
0
    OPENSSL_clear_free(out, out_len);
5301
0
    return 1;
5302
5303
0
}
5304
5305
int ssl_log_rsa_client_key_exchange(SSL *ssl,
5306
                                    const uint8_t *encrypted_premaster,
5307
                                    size_t encrypted_premaster_len,
5308
                                    const uint8_t *premaster,
5309
                                    size_t premaster_len)
5310
0
{
5311
0
    if (encrypted_premaster_len < 8) {
5312
0
        SSLfatal(ssl, SSL_AD_INTERNAL_ERROR,
5313
0
                 SSL_F_SSL_LOG_RSA_CLIENT_KEY_EXCHANGE, ERR_R_INTERNAL_ERROR);
5314
0
        return 0;
5315
0
    }
5316
5317
    /* We only want the first 8 bytes of the encrypted premaster as a tag. */
5318
0
    return nss_keylog_int("RSA",
5319
0
                          ssl,
5320
0
                          encrypted_premaster,
5321
0
                          8,
5322
0
                          premaster,
5323
0
                          premaster_len);
5324
0
}
5325
5326
int ssl_log_secret(SSL *ssl,
5327
                   const char *label,
5328
                   const uint8_t *secret,
5329
                   size_t secret_len)
5330
0
{
5331
0
    return nss_keylog_int(label,
5332
0
                          ssl,
5333
0
                          ssl->s3->client_random,
5334
0
                          SSL3_RANDOM_SIZE,
5335
0
                          secret,
5336
0
                          secret_len);
5337
0
}
5338
5339
0
#define SSLV2_CIPHER_LEN    3
5340
5341
int ssl_cache_cipherlist(SSL *s, PACKET *cipher_suites, int sslv2format)
5342
0
{
5343
0
    int n;
5344
5345
0
    n = sslv2format ? SSLV2_CIPHER_LEN : TLS_CIPHER_LEN;
5346
5347
0
    if (PACKET_remaining(cipher_suites) == 0) {
5348
0
        SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER, SSL_F_SSL_CACHE_CIPHERLIST,
5349
0
                 SSL_R_NO_CIPHERS_SPECIFIED);
5350
0
        return 0;
5351
0
    }
5352
5353
0
    if (PACKET_remaining(cipher_suites) % n != 0) {
5354
0
        SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_F_SSL_CACHE_CIPHERLIST,
5355
0
                 SSL_R_ERROR_IN_RECEIVED_CIPHER_LIST);
5356
0
        return 0;
5357
0
    }
5358
5359
0
    OPENSSL_free(s->s3->tmp.ciphers_raw);
5360
0
    s->s3->tmp.ciphers_raw = NULL;
5361
0
    s->s3->tmp.ciphers_rawlen = 0;
5362
5363
0
    if (sslv2format) {
5364
0
        size_t numciphers = PACKET_remaining(cipher_suites) / n;
5365
0
        PACKET sslv2ciphers = *cipher_suites;
5366
0
        unsigned int leadbyte;
5367
0
        unsigned char *raw;
5368
5369
        /*
5370
         * We store the raw ciphers list in SSLv3+ format so we need to do some
5371
         * preprocessing to convert the list first. If there are any SSLv2 only
5372
         * ciphersuites with a non-zero leading byte then we are going to
5373
         * slightly over allocate because we won't store those. But that isn't a
5374
         * problem.
5375
         */
5376
0
        raw = OPENSSL_malloc(numciphers * TLS_CIPHER_LEN);
5377
0
        s->s3->tmp.ciphers_raw = raw;
5378
0
        if (raw == NULL) {
5379
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, SSL_F_SSL_CACHE_CIPHERLIST,
5380
0
                     ERR_R_MALLOC_FAILURE);
5381
0
            return 0;
5382
0
        }
5383
0
        for (s->s3->tmp.ciphers_rawlen = 0;
5384
0
             PACKET_remaining(&sslv2ciphers) > 0;
5385
0
             raw += TLS_CIPHER_LEN) {
5386
0
            if (!PACKET_get_1(&sslv2ciphers, &leadbyte)
5387
0
                    || (leadbyte == 0
5388
0
                        && !PACKET_copy_bytes(&sslv2ciphers, raw,
5389
0
                                              TLS_CIPHER_LEN))
5390
0
                    || (leadbyte != 0
5391
0
                        && !PACKET_forward(&sslv2ciphers, TLS_CIPHER_LEN))) {
5392
0
                SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_F_SSL_CACHE_CIPHERLIST,
5393
0
                         SSL_R_BAD_PACKET);
5394
0
                OPENSSL_free(s->s3->tmp.ciphers_raw);
5395
0
                s->s3->tmp.ciphers_raw = NULL;
5396
0
                s->s3->tmp.ciphers_rawlen = 0;
5397
0
                return 0;
5398
0
            }
5399
0
            if (leadbyte == 0)
5400
0
                s->s3->tmp.ciphers_rawlen += TLS_CIPHER_LEN;
5401
0
        }
5402
0
    } else if (!PACKET_memdup(cipher_suites, &s->s3->tmp.ciphers_raw,
5403
0
                           &s->s3->tmp.ciphers_rawlen)) {
5404
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, SSL_F_SSL_CACHE_CIPHERLIST,
5405
0
                 ERR_R_INTERNAL_ERROR);
5406
0
        return 0;
5407
0
    }
5408
0
    return 1;
5409
0
}
5410
5411
int SSL_bytes_to_cipher_list(SSL *s, const unsigned char *bytes, size_t len,
5412
                             int isv2format, STACK_OF(SSL_CIPHER) **sk,
5413
                             STACK_OF(SSL_CIPHER) **scsvs)
5414
0
{
5415
0
    PACKET pkt;
5416
5417
0
    if (!PACKET_buf_init(&pkt, bytes, len))
5418
0
        return 0;
5419
0
    return bytes_to_cipher_list(s, &pkt, sk, scsvs, isv2format, 0);
5420
0
}
5421
5422
int bytes_to_cipher_list(SSL *s, PACKET *cipher_suites,
5423
                         STACK_OF(SSL_CIPHER) **skp,
5424
                         STACK_OF(SSL_CIPHER) **scsvs_out,
5425
                         int sslv2format, int fatal)
5426
0
{
5427
0
    const SSL_CIPHER *c;
5428
0
    STACK_OF(SSL_CIPHER) *sk = NULL;
5429
0
    STACK_OF(SSL_CIPHER) *scsvs = NULL;
5430
0
    int n;
5431
    /* 3 = SSLV2_CIPHER_LEN > TLS_CIPHER_LEN = 2. */
5432
0
    unsigned char cipher[SSLV2_CIPHER_LEN];
5433
5434
0
    n = sslv2format ? SSLV2_CIPHER_LEN : TLS_CIPHER_LEN;
5435
5436
0
    if (PACKET_remaining(cipher_suites) == 0) {
5437
0
        if (fatal)
5438
0
            SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER, SSL_F_BYTES_TO_CIPHER_LIST,
5439
0
                     SSL_R_NO_CIPHERS_SPECIFIED);
5440
0
        else
5441
0
            SSLerr(SSL_F_BYTES_TO_CIPHER_LIST, SSL_R_NO_CIPHERS_SPECIFIED);
5442
0
        return 0;
5443
0
    }
5444
5445
0
    if (PACKET_remaining(cipher_suites) % n != 0) {
5446
0
        if (fatal)
5447
0
            SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_F_BYTES_TO_CIPHER_LIST,
5448
0
                     SSL_R_ERROR_IN_RECEIVED_CIPHER_LIST);
5449
0
        else
5450
0
            SSLerr(SSL_F_BYTES_TO_CIPHER_LIST,
5451
0
                   SSL_R_ERROR_IN_RECEIVED_CIPHER_LIST);
5452
0
        return 0;
5453
0
    }
5454
5455
0
    sk = sk_SSL_CIPHER_new_null();
5456
0
    scsvs = sk_SSL_CIPHER_new_null();
5457
0
    if (sk == NULL || scsvs == NULL) {
5458
0
        if (fatal)
5459
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, SSL_F_BYTES_TO_CIPHER_LIST,
5460
0
                     ERR_R_MALLOC_FAILURE);
5461
0
        else
5462
0
            SSLerr(SSL_F_BYTES_TO_CIPHER_LIST, ERR_R_MALLOC_FAILURE);
5463
0
        goto err;
5464
0
    }
5465
5466
0
    while (PACKET_copy_bytes(cipher_suites, cipher, n)) {
5467
        /*
5468
         * SSLv3 ciphers wrapped in an SSLv2-compatible ClientHello have the
5469
         * first byte set to zero, while true SSLv2 ciphers have a non-zero
5470
         * first byte. We don't support any true SSLv2 ciphers, so skip them.
5471
         */
5472
0
        if (sslv2format && cipher[0] != '\0')
5473
0
            continue;
5474
5475
        /* For SSLv2-compat, ignore leading 0-byte. */
5476
0
        c = ssl_get_cipher_by_char(s, sslv2format ? &cipher[1] : cipher, 1);
5477
0
        if (c != NULL) {
5478
0
            if ((c->valid && !sk_SSL_CIPHER_push(sk, c)) ||
5479
0
                (!c->valid && !sk_SSL_CIPHER_push(scsvs, c))) {
5480
0
                if (fatal)
5481
0
                    SSLfatal(s, SSL_AD_INTERNAL_ERROR,
5482
0
                             SSL_F_BYTES_TO_CIPHER_LIST, ERR_R_MALLOC_FAILURE);
5483
0
                else
5484
0
                    SSLerr(SSL_F_BYTES_TO_CIPHER_LIST, ERR_R_MALLOC_FAILURE);
5485
0
                goto err;
5486
0
            }
5487
0
        }
5488
0
    }
5489
0
    if (PACKET_remaining(cipher_suites) > 0) {
5490
0
        if (fatal)
5491
0
            SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_F_BYTES_TO_CIPHER_LIST,
5492
0
                     SSL_R_BAD_LENGTH);
5493
0
        else
5494
0
            SSLerr(SSL_F_BYTES_TO_CIPHER_LIST, SSL_R_BAD_LENGTH);
5495
0
        goto err;
5496
0
    }
5497
5498
0
    if (skp != NULL)
5499
0
        *skp = sk;
5500
0
    else
5501
0
        sk_SSL_CIPHER_free(sk);
5502
0
    if (scsvs_out != NULL)
5503
0
        *scsvs_out = scsvs;
5504
0
    else
5505
0
        sk_SSL_CIPHER_free(scsvs);
5506
0
    return 1;
5507
0
 err:
5508
0
    sk_SSL_CIPHER_free(sk);
5509
0
    sk_SSL_CIPHER_free(scsvs);
5510
0
    return 0;
5511
0
}
5512
5513
int SSL_CTX_set_max_early_data(SSL_CTX *ctx, uint32_t max_early_data)
5514
0
{
5515
0
    ctx->max_early_data = max_early_data;
5516
5517
0
    return 1;
5518
0
}
5519
5520
uint32_t SSL_CTX_get_max_early_data(const SSL_CTX *ctx)
5521
0
{
5522
0
    return ctx->max_early_data;
5523
0
}
5524
5525
int SSL_set_max_early_data(SSL *s, uint32_t max_early_data)
5526
0
{
5527
0
    s->max_early_data = max_early_data;
5528
5529
0
    return 1;
5530
0
}
5531
5532
uint32_t SSL_get_max_early_data(const SSL *s)
5533
0
{
5534
0
    return s->max_early_data;
5535
0
}
5536
5537
int SSL_CTX_set_recv_max_early_data(SSL_CTX *ctx, uint32_t recv_max_early_data)
5538
0
{
5539
0
    ctx->recv_max_early_data = recv_max_early_data;
5540
5541
0
    return 1;
5542
0
}
5543
5544
uint32_t SSL_CTX_get_recv_max_early_data(const SSL_CTX *ctx)
5545
0
{
5546
0
    return ctx->recv_max_early_data;
5547
0
}
5548
5549
int SSL_set_recv_max_early_data(SSL *s, uint32_t recv_max_early_data)
5550
0
{
5551
0
    s->recv_max_early_data = recv_max_early_data;
5552
5553
0
    return 1;
5554
0
}
5555
5556
uint32_t SSL_get_recv_max_early_data(const SSL *s)
5557
0
{
5558
0
    return s->recv_max_early_data;
5559
0
}
5560
5561
__owur unsigned int ssl_get_max_send_fragment(const SSL *ssl)
5562
0
{
5563
    /* Return any active Max Fragment Len extension */
5564
0
    if (ssl->session != NULL && USE_MAX_FRAGMENT_LENGTH_EXT(ssl->session))
5565
0
        return GET_MAX_FRAGMENT_LENGTH(ssl->session);
5566
5567
    /* return current SSL connection setting */
5568
0
    return ssl->max_send_fragment;
5569
0
}
5570
5571
__owur unsigned int ssl_get_split_send_fragment(const SSL *ssl)
5572
0
{
5573
    /* Return a value regarding an active Max Fragment Len extension */
5574
0
    if (ssl->session != NULL && USE_MAX_FRAGMENT_LENGTH_EXT(ssl->session)
5575
0
        && ssl->split_send_fragment > GET_MAX_FRAGMENT_LENGTH(ssl->session))
5576
0
        return GET_MAX_FRAGMENT_LENGTH(ssl->session);
5577
5578
    /* else limit |split_send_fragment| to current |max_send_fragment| */
5579
0
    if (ssl->split_send_fragment > ssl->max_send_fragment)
5580
0
        return ssl->max_send_fragment;
5581
5582
    /* return current SSL connection setting */
5583
0
    return ssl->split_send_fragment;
5584
0
}
5585
5586
int SSL_stateless(SSL *s)
5587
0
{
5588
0
    int ret;
5589
5590
    /* Ensure there is no state left over from a previous invocation */
5591
0
    if (!SSL_clear(s))
5592
0
        return 0;
5593
5594
0
    ERR_clear_error();
5595
5596
0
    s->s3->flags |= TLS1_FLAGS_STATELESS;
5597
0
    ret = SSL_accept(s);
5598
0
    s->s3->flags &= ~TLS1_FLAGS_STATELESS;
5599
5600
0
    if (ret > 0 && s->ext.cookieok)
5601
0
        return 1;
5602
5603
0
    if (s->hello_retry_request == SSL_HRR_PENDING && !ossl_statem_in_error(s))
5604
0
        return 0;
5605
5606
0
    return -1;
5607
0
}
5608
5609
void SSL_CTX_set_post_handshake_auth(SSL_CTX *ctx, int val)
5610
0
{
5611
0
    ctx->pha_enabled = val;
5612
0
}
5613
5614
void SSL_set_post_handshake_auth(SSL *ssl, int val)
5615
0
{
5616
0
    ssl->pha_enabled = val;
5617
0
}
5618
5619
int SSL_verify_client_post_handshake(SSL *ssl)
5620
0
{
5621
0
    if (!SSL_IS_TLS13(ssl)) {
5622
0
        SSLerr(SSL_F_SSL_VERIFY_CLIENT_POST_HANDSHAKE, SSL_R_WRONG_SSL_VERSION);
5623
0
        return 0;
5624
0
    }
5625
0
    if (!ssl->server) {
5626
0
        SSLerr(SSL_F_SSL_VERIFY_CLIENT_POST_HANDSHAKE, SSL_R_NOT_SERVER);
5627
0
        return 0;
5628
0
    }
5629
5630
0
    if (!SSL_is_init_finished(ssl)) {
5631
0
        SSLerr(SSL_F_SSL_VERIFY_CLIENT_POST_HANDSHAKE, SSL_R_STILL_IN_INIT);
5632
0
        return 0;
5633
0
    }
5634
5635
0
    switch (ssl->post_handshake_auth) {
5636
0
    case SSL_PHA_NONE:
5637
0
        SSLerr(SSL_F_SSL_VERIFY_CLIENT_POST_HANDSHAKE, SSL_R_EXTENSION_NOT_RECEIVED);
5638
0
        return 0;
5639
0
    default:
5640
0
    case SSL_PHA_EXT_SENT:
5641
0
        SSLerr(SSL_F_SSL_VERIFY_CLIENT_POST_HANDSHAKE, ERR_R_INTERNAL_ERROR);
5642
0
        return 0;
5643
0
    case SSL_PHA_EXT_RECEIVED:
5644
0
        break;
5645
0
    case SSL_PHA_REQUEST_PENDING:
5646
0
        SSLerr(SSL_F_SSL_VERIFY_CLIENT_POST_HANDSHAKE, SSL_R_REQUEST_PENDING);
5647
0
        return 0;
5648
0
    case SSL_PHA_REQUESTED:
5649
0
        SSLerr(SSL_F_SSL_VERIFY_CLIENT_POST_HANDSHAKE, SSL_R_REQUEST_SENT);
5650
0
        return 0;
5651
0
    }
5652
5653
0
    ssl->post_handshake_auth = SSL_PHA_REQUEST_PENDING;
5654
5655
    /* checks verify_mode and algorithm_auth */
5656
0
    if (!send_certificate_request(ssl)) {
5657
0
        ssl->post_handshake_auth = SSL_PHA_EXT_RECEIVED; /* restore on error */
5658
0
        SSLerr(SSL_F_SSL_VERIFY_CLIENT_POST_HANDSHAKE, SSL_R_INVALID_CONFIG);
5659
0
        return 0;
5660
0
    }
5661
5662
0
    ossl_statem_set_in_init(ssl, 1);
5663
0
    return 1;
5664
0
}
5665
5666
int SSL_CTX_set_session_ticket_cb(SSL_CTX *ctx,
5667
                                  SSL_CTX_generate_session_ticket_fn gen_cb,
5668
                                  SSL_CTX_decrypt_session_ticket_fn dec_cb,
5669
                                  void *arg)
5670
0
{
5671
0
    ctx->generate_ticket_cb = gen_cb;
5672
0
    ctx->decrypt_ticket_cb = dec_cb;
5673
0
    ctx->ticket_cb_data = arg;
5674
0
    return 1;
5675
0
}
5676
5677
void SSL_CTX_set_allow_early_data_cb(SSL_CTX *ctx,
5678
                                     SSL_allow_early_data_cb_fn cb,
5679
                                     void *arg)
5680
0
{
5681
0
    ctx->allow_early_data_cb = cb;
5682
0
    ctx->allow_early_data_cb_data = arg;
5683
0
}
5684
5685
void SSL_set_allow_early_data_cb(SSL *s,
5686
                                 SSL_allow_early_data_cb_fn cb,
5687
                                 void *arg)
5688
0
{
5689
0
    s->allow_early_data_cb = cb;
5690
0
    s->allow_early_data_cb_data = arg;
5691
0
}