Coverage Report

Created: 2026-05-24 07:14

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/openssl34/ssl/statem/statem_lib.c
Line
Count
Source
1
/*
2
 * Copyright 1995-2026 The OpenSSL Project Authors. All Rights Reserved.
3
 * Copyright (c) 2002, Oracle and/or its affiliates. All rights reserved
4
 *
5
 * Licensed under the Apache License 2.0 (the "License").  You may not use
6
 * this file except in compliance with the License.  You can obtain a copy
7
 * in the file LICENSE in the source distribution or at
8
 * https://www.openssl.org/source/license.html
9
 */
10
11
#include <limits.h>
12
#include <string.h>
13
#include <stdio.h>
14
#include "../ssl_local.h"
15
#include "statem_local.h"
16
#include "internal/cryptlib.h"
17
#include <openssl/buffer.h>
18
#include <openssl/objects.h>
19
#include <openssl/evp.h>
20
#include <openssl/rsa.h>
21
#include <openssl/x509.h>
22
#include <openssl/trace.h>
23
#include <openssl/encoder.h>
24
25
/*
26
 * Map error codes to TLS/SSL alart types.
27
 */
28
typedef struct x509err2alert_st {
29
    int x509err;
30
    int alert;
31
} X509ERR2ALERT;
32
33
/* Fixed value used in the ServerHello random field to identify an HRR */
34
const unsigned char hrrrandom[] = {
35
    0xcf, 0x21, 0xad, 0x74, 0xe5, 0x9a, 0x61, 0x11, 0xbe, 0x1d, 0x8c, 0x02,
36
    0x1e, 0x65, 0xb8, 0x91, 0xc2, 0xa2, 0x11, 0x16, 0x7a, 0xbb, 0x8c, 0x5e,
37
    0x07, 0x9e, 0x09, 0xe2, 0xc8, 0xa8, 0x33, 0x9c
38
};
39
40
int ossl_statem_set_mutator(SSL *s,
41
    ossl_statem_mutate_handshake_cb mutate_handshake_cb,
42
    ossl_statem_finish_mutate_handshake_cb finish_mutate_handshake_cb,
43
    void *mutatearg)
44
0
{
45
0
    SSL_CONNECTION *sc = SSL_CONNECTION_FROM_SSL(s);
46
47
0
    if (sc == NULL)
48
0
        return 0;
49
50
0
    sc->statem.mutate_handshake_cb = mutate_handshake_cb;
51
0
    sc->statem.mutatearg = mutatearg;
52
0
    sc->statem.finish_mutate_handshake_cb = finish_mutate_handshake_cb;
53
54
0
    return 1;
55
0
}
56
57
/*
58
 * send s->init_buf in records of type 'type' (SSL3_RT_HANDSHAKE or
59
 * SSL3_RT_CHANGE_CIPHER_SPEC)
60
 */
61
int ssl3_do_write(SSL_CONNECTION *s, uint8_t type)
62
186k
{
63
186k
    int ret;
64
186k
    size_t written = 0;
65
186k
    SSL *ssl = SSL_CONNECTION_GET_SSL(s);
66
186k
    SSL *ussl = SSL_CONNECTION_GET_USER_SSL(s);
67
68
    /*
69
     * If we're running the test suite then we may need to mutate the message
70
     * we've been asked to write. Does not happen in normal operation.
71
     */
72
186k
    if (s->statem.mutate_handshake_cb != NULL
73
0
        && !s->statem.write_in_progress
74
0
        && type == SSL3_RT_HANDSHAKE
75
0
        && s->init_num >= SSL3_HM_HEADER_LENGTH) {
76
0
        unsigned char *msg;
77
0
        size_t msglen;
78
79
0
        if (!s->statem.mutate_handshake_cb((unsigned char *)s->init_buf->data,
80
0
                s->init_num,
81
0
                &msg, &msglen,
82
0
                s->statem.mutatearg))
83
0
            return -1;
84
0
        if (msglen < SSL3_HM_HEADER_LENGTH
85
0
            || !BUF_MEM_grow(s->init_buf, msglen))
86
0
            return -1;
87
0
        memcpy(s->init_buf->data, msg, msglen);
88
0
        s->init_num = msglen;
89
0
        s->init_msg = s->init_buf->data + SSL3_HM_HEADER_LENGTH;
90
0
        s->statem.finish_mutate_handshake_cb(s->statem.mutatearg);
91
0
        s->statem.write_in_progress = 1;
92
0
    }
93
94
186k
    ret = ssl3_write_bytes(ssl, type, &s->init_buf->data[s->init_off],
95
186k
        s->init_num, &written);
96
186k
    if (ret <= 0)
97
0
        return -1;
98
186k
    if (type == SSL3_RT_HANDSHAKE)
99
        /*
100
         * should not be done for 'Hello Request's, but in that case we'll
101
         * ignore the result anyway
102
         * TLS1.3 KeyUpdate and NewSessionTicket do not need to be added
103
         */
104
172k
        if (!SSL_CONNECTION_IS_TLS13(s)
105
26.1k
            || (s->statem.hand_state != TLS_ST_SW_SESSION_TICKET
106
26.1k
                && s->statem.hand_state != TLS_ST_CW_KEY_UPDATE
107
26.1k
                && s->statem.hand_state != TLS_ST_SW_KEY_UPDATE))
108
172k
            if (!ssl3_finish_mac(s,
109
172k
                    (unsigned char *)&s->init_buf->data[s->init_off],
110
172k
                    written))
111
0
                return -1;
112
186k
    if (written == s->init_num) {
113
186k
        s->statem.write_in_progress = 0;
114
186k
        if (s->msg_callback)
115
0
            s->msg_callback(1, s->version, type, s->init_buf->data,
116
0
                (size_t)(s->init_off + s->init_num), ussl,
117
0
                s->msg_callback_arg);
118
186k
        return 1;
119
186k
    }
120
0
    s->init_off += written;
121
0
    s->init_num -= written;
122
0
    return 0;
123
186k
}
124
125
int tls_close_construct_packet(SSL_CONNECTION *s, WPACKET *pkt, int htype)
126
206k
{
127
206k
    size_t msglen;
128
129
206k
    if ((htype != SSL3_MT_CHANGE_CIPHER_SPEC && !WPACKET_close(pkt))
130
206k
        || !WPACKET_get_length(pkt, &msglen)
131
206k
        || msglen > INT_MAX)
132
0
        return 0;
133
206k
    s->init_num = (int)msglen;
134
206k
    s->init_off = 0;
135
136
206k
    return 1;
137
206k
}
138
139
int tls_setup_handshake(SSL_CONNECTION *s)
140
225k
{
141
225k
    int ver_min, ver_max, ok;
142
225k
    SSL *ssl = SSL_CONNECTION_GET_SSL(s);
143
225k
    SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
144
145
225k
    if (!ssl3_init_finished_mac(s)) {
146
        /* SSLfatal() already called */
147
0
        return 0;
148
0
    }
149
150
    /* Reset any extension flags */
151
225k
    memset(s->ext.extflags, 0, sizeof(s->ext.extflags));
152
153
225k
    if (ssl_get_min_max_version(s, &ver_min, &ver_max, NULL) != 0) {
154
0
        SSLfatal(s, SSL_AD_PROTOCOL_VERSION, SSL_R_NO_PROTOCOLS_AVAILABLE);
155
0
        return 0;
156
0
    }
157
158
    /* Sanity check that we have MD5-SHA1 if we need it */
159
225k
    if (sctx->ssl_digest_methods[SSL_MD_MD5_SHA1_IDX] == NULL) {
160
0
        int negotiated_minversion;
161
0
        int md5sha1_needed_maxversion = SSL_CONNECTION_IS_DTLS(s)
162
0
            ? DTLS1_VERSION
163
0
            : TLS1_1_VERSION;
164
165
        /* We don't have MD5-SHA1 - do we need it? */
166
0
        if (ssl_version_cmp(s, ver_max, md5sha1_needed_maxversion) <= 0) {
167
0
            SSLfatal_data(s, SSL_AD_HANDSHAKE_FAILURE,
168
0
                SSL_R_NO_SUITABLE_DIGEST_ALGORITHM,
169
0
                "The max supported SSL/TLS version needs the"
170
0
                " MD5-SHA1 digest but it is not available"
171
0
                " in the loaded providers. Use (D)TLSv1.2 or"
172
0
                " above, or load different providers");
173
0
            return 0;
174
0
        }
175
176
0
        ok = 1;
177
178
        /* Don't allow TLSv1.1 or below to be negotiated */
179
0
        negotiated_minversion = SSL_CONNECTION_IS_DTLS(s) ? DTLS1_2_VERSION : TLS1_2_VERSION;
180
0
        if (ssl_version_cmp(s, ver_min, negotiated_minversion) < 0)
181
0
            ok = SSL_set_min_proto_version(ssl, negotiated_minversion);
182
0
        if (!ok) {
183
            /* Shouldn't happen */
184
0
            SSLfatal(s, SSL_AD_HANDSHAKE_FAILURE, ERR_R_INTERNAL_ERROR);
185
0
            return 0;
186
0
        }
187
0
    }
188
189
225k
    ok = 0;
190
225k
    if (s->server) {
191
108k
        STACK_OF(SSL_CIPHER) *ciphers = SSL_get_ciphers(ssl);
192
108k
        int i;
193
194
        /*
195
         * Sanity check that the maximum version we accept has ciphers
196
         * enabled. For clients we do this check during construction of the
197
         * ClientHello.
198
         */
199
444k
        for (i = 0; i < sk_SSL_CIPHER_num(ciphers); i++) {
200
444k
            const SSL_CIPHER *c = sk_SSL_CIPHER_value(ciphers, i);
201
444k
            int cipher_minprotover = SSL_CONNECTION_IS_DTLS(s)
202
444k
                ? c->min_dtls
203
444k
                : c->min_tls;
204
444k
            int cipher_maxprotover = SSL_CONNECTION_IS_DTLS(s)
205
444k
                ? c->max_dtls
206
444k
                : c->max_tls;
207
208
444k
            if (ssl_version_cmp(s, ver_max, cipher_minprotover) >= 0
209
108k
                && ssl_version_cmp(s, ver_max, cipher_maxprotover) <= 0) {
210
108k
                ok = 1;
211
108k
                break;
212
108k
            }
213
444k
        }
214
108k
        if (!ok) {
215
0
            SSLfatal_data(s, SSL_AD_HANDSHAKE_FAILURE,
216
0
                SSL_R_NO_CIPHERS_AVAILABLE,
217
0
                "No ciphers enabled for max supported "
218
0
                "SSL/TLS version");
219
0
            return 0;
220
0
        }
221
108k
        if (SSL_IS_FIRST_HANDSHAKE(s)) {
222
            /* N.B. s->session_ctx == s->ctx here */
223
47.4k
            ssl_tsan_counter(s->session_ctx, &s->session_ctx->stats.sess_accept);
224
61.5k
        } else {
225
            /* N.B. s->ctx may not equal s->session_ctx */
226
61.5k
            ssl_tsan_counter(sctx, &sctx->stats.sess_accept_renegotiate);
227
228
61.5k
            s->s3.tmp.cert_request = 0;
229
61.5k
        }
230
116k
    } else {
231
116k
        if (SSL_IS_FIRST_HANDSHAKE(s))
232
115k
            ssl_tsan_counter(s->session_ctx, &s->session_ctx->stats.sess_connect);
233
1.27k
        else
234
1.27k
            ssl_tsan_counter(s->session_ctx,
235
1.27k
                &s->session_ctx->stats.sess_connect_renegotiate);
236
237
        /* mark client_random uninitialized */
238
116k
        memset(s->s3.client_random, 0, sizeof(s->s3.client_random));
239
116k
        s->hit = 0;
240
241
116k
        s->s3.tmp.cert_req = 0;
242
243
116k
        if (SSL_CONNECTION_IS_DTLS(s))
244
27.7k
            s->statem.use_timer = 1;
245
116k
    }
246
247
225k
    return 1;
248
225k
}
249
250
/*
251
 * Size of the to-be-signed TLS13 data, without the hash size itself:
252
 * 64 bytes of value 32, 33 context bytes, 1 byte separator
253
 */
254
79.8k
#define TLS13_TBS_START_SIZE 64
255
39.9k
#define TLS13_TBS_PREAMBLE_SIZE (TLS13_TBS_START_SIZE + 33 + 1)
256
257
static int get_cert_verify_tbs_data(SSL_CONNECTION *s, unsigned char *tls13tbs,
258
    void **hdata, size_t *hdatalen)
259
19.9k
{
260
    /* ASCII: "TLS 1.3, server CertificateVerify", in hex for EBCDIC compatibility */
261
19.9k
    static const char servercontext[] = "\x54\x4c\x53\x20\x31\x2e\x33\x2c\x20\x73\x65\x72"
262
19.9k
                                        "\x76\x65\x72\x20\x43\x65\x72\x74\x69\x66\x69\x63\x61\x74\x65\x56\x65\x72\x69\x66\x79";
263
    /* ASCII: "TLS 1.3, client CertificateVerify", in hex for EBCDIC compatibility */
264
19.9k
    static const char clientcontext[] = "\x54\x4c\x53\x20\x31\x2e\x33\x2c\x20\x63\x6c\x69"
265
19.9k
                                        "\x65\x6e\x74\x20\x43\x65\x72\x74\x69\x66\x69\x63\x61\x74\x65\x56\x65\x72\x69\x66\x79";
266
267
19.9k
    if (SSL_CONNECTION_IS_TLS13(s)) {
268
19.9k
        size_t hashlen;
269
270
        /* Set the first 64 bytes of to-be-signed data to octet 32 */
271
19.9k
        memset(tls13tbs, 32, TLS13_TBS_START_SIZE);
272
        /* This copies the 33 bytes of context plus the 0 separator byte */
273
19.9k
        if (s->statem.hand_state == TLS_ST_CR_CERT_VRFY
274
2.95k
            || s->statem.hand_state == TLS_ST_SW_CERT_VRFY)
275
19.9k
            strcpy((char *)tls13tbs + TLS13_TBS_START_SIZE, servercontext);
276
0
        else
277
0
            strcpy((char *)tls13tbs + TLS13_TBS_START_SIZE, clientcontext);
278
279
        /*
280
         * If we're currently reading then we need to use the saved handshake
281
         * hash value. We can't use the current handshake hash state because
282
         * that includes the CertVerify itself.
283
         */
284
19.9k
        if (s->statem.hand_state == TLS_ST_CR_CERT_VRFY
285
17.0k
            || s->statem.hand_state == TLS_ST_SR_CERT_VRFY) {
286
17.0k
            memcpy(tls13tbs + TLS13_TBS_PREAMBLE_SIZE, s->cert_verify_hash,
287
17.0k
                s->cert_verify_hash_len);
288
17.0k
            hashlen = s->cert_verify_hash_len;
289
17.0k
        } else if (!ssl_handshake_hash(s, tls13tbs + TLS13_TBS_PREAMBLE_SIZE,
290
2.95k
                       EVP_MAX_MD_SIZE, &hashlen)) {
291
            /* SSLfatal() already called */
292
0
            return 0;
293
0
        }
294
295
19.9k
        *hdata = tls13tbs;
296
19.9k
        *hdatalen = TLS13_TBS_PREAMBLE_SIZE + hashlen;
297
19.9k
    } else {
298
0
        size_t retlen;
299
0
        long retlen_l;
300
301
0
        retlen = retlen_l = BIO_get_mem_data(s->s3.handshake_buffer, hdata);
302
0
        if (retlen_l <= 0) {
303
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
304
0
            return 0;
305
0
        }
306
0
        *hdatalen = retlen;
307
0
    }
308
309
19.9k
    return 1;
310
19.9k
}
311
312
CON_FUNC_RETURN tls_construct_cert_verify(SSL_CONNECTION *s, WPACKET *pkt)
313
2.36k
{
314
2.36k
    EVP_PKEY *pkey = NULL;
315
2.36k
    const EVP_MD *md = NULL;
316
2.36k
    EVP_MD_CTX *mctx = NULL;
317
2.36k
    EVP_PKEY_CTX *pctx = NULL;
318
2.36k
    size_t hdatalen = 0, siglen = 0;
319
2.36k
    void *hdata;
320
2.36k
    unsigned char *sig = NULL;
321
2.36k
    unsigned char tls13tbs[TLS13_TBS_PREAMBLE_SIZE + EVP_MAX_MD_SIZE];
322
2.36k
    const SIGALG_LOOKUP *lu = s->s3.tmp.sigalg;
323
2.36k
    SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
324
325
2.36k
    if (lu == NULL || s->s3.tmp.cert == NULL) {
326
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
327
0
        goto err;
328
0
    }
329
2.36k
    pkey = s->s3.tmp.cert->privatekey;
330
331
2.36k
    if (pkey == NULL || !tls1_lookup_md(sctx, lu, &md)) {
332
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
333
0
        goto err;
334
0
    }
335
336
2.36k
    mctx = EVP_MD_CTX_new();
337
2.36k
    if (mctx == NULL) {
338
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_EVP_LIB);
339
0
        goto err;
340
0
    }
341
342
    /* Get the data to be signed */
343
2.36k
    if (!get_cert_verify_tbs_data(s, tls13tbs, &hdata, &hdatalen)) {
344
        /* SSLfatal() already called */
345
0
        goto err;
346
0
    }
347
348
2.36k
    if (SSL_USE_SIGALGS(s) && !WPACKET_put_bytes_u16(pkt, lu->sigalg)) {
349
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
350
0
        goto err;
351
0
    }
352
353
2.36k
    if (EVP_DigestSignInit_ex(mctx, &pctx,
354
2.36k
            md == NULL ? NULL : EVP_MD_get0_name(md),
355
2.36k
            sctx->libctx, sctx->propq, pkey,
356
2.36k
            NULL)
357
2.36k
        <= 0) {
358
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_EVP_LIB);
359
0
        goto err;
360
0
    }
361
362
2.36k
    if (lu->sig == EVP_PKEY_RSA_PSS) {
363
208
        if (EVP_PKEY_CTX_set_rsa_padding(pctx, RSA_PKCS1_PSS_PADDING) <= 0
364
208
            || EVP_PKEY_CTX_set_rsa_pss_saltlen(pctx,
365
208
                   RSA_PSS_SALTLEN_DIGEST)
366
208
                <= 0) {
367
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_EVP_LIB);
368
0
            goto err;
369
0
        }
370
208
    }
371
2.36k
    if (s->version == SSL3_VERSION) {
372
        /*
373
         * Here we use EVP_DigestSignUpdate followed by EVP_DigestSignFinal
374
         * in order to add the EVP_CTRL_SSL3_MASTER_SECRET call between them.
375
         */
376
0
        if (EVP_DigestSignUpdate(mctx, hdata, hdatalen) <= 0
377
0
            || EVP_MD_CTX_ctrl(mctx, EVP_CTRL_SSL3_MASTER_SECRET,
378
0
                   (int)s->session->master_key_length,
379
0
                   s->session->master_key)
380
0
                <= 0
381
0
            || EVP_DigestSignFinal(mctx, NULL, &siglen) <= 0) {
382
383
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_EVP_LIB);
384
0
            goto err;
385
0
        }
386
0
        sig = OPENSSL_malloc(siglen);
387
0
        if (sig == NULL
388
0
            || EVP_DigestSignFinal(mctx, sig, &siglen) <= 0) {
389
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_EVP_LIB);
390
0
            goto err;
391
0
        }
392
2.36k
    } else {
393
        /*
394
         * Here we *must* use EVP_DigestSign() because Ed25519/Ed448 does not
395
         * support streaming via EVP_DigestSignUpdate/EVP_DigestSignFinal
396
         */
397
2.36k
        if (EVP_DigestSign(mctx, NULL, &siglen, hdata, hdatalen) <= 0) {
398
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_EVP_LIB);
399
0
            goto err;
400
0
        }
401
2.36k
        sig = OPENSSL_malloc(siglen);
402
2.36k
        if (sig == NULL
403
2.36k
            || EVP_DigestSign(mctx, sig, &siglen, hdata, hdatalen) <= 0) {
404
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_EVP_LIB);
405
0
            goto err;
406
0
        }
407
2.36k
    }
408
409
2.36k
#ifndef OPENSSL_NO_GOST
410
2.36k
    {
411
2.36k
        int pktype = lu->sig;
412
413
2.36k
        if (pktype == NID_id_GostR3410_2001
414
2.36k
            || pktype == NID_id_GostR3410_2012_256
415
2.36k
            || pktype == NID_id_GostR3410_2012_512)
416
0
            BUF_reverse(sig, NULL, siglen);
417
2.36k
    }
418
2.36k
#endif
419
420
2.36k
    if (!WPACKET_sub_memcpy_u16(pkt, sig, siglen)) {
421
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
422
0
        goto err;
423
0
    }
424
425
    /* Digest cached records and discard handshake buffer */
426
2.36k
    if (!ssl3_digest_cached_records(s, 0)) {
427
        /* SSLfatal() already called */
428
0
        goto err;
429
0
    }
430
431
2.36k
    OPENSSL_free(sig);
432
2.36k
    EVP_MD_CTX_free(mctx);
433
2.36k
    return CON_FUNC_SUCCESS;
434
0
err:
435
0
    OPENSSL_free(sig);
436
0
    EVP_MD_CTX_free(mctx);
437
0
    return CON_FUNC_ERROR;
438
2.36k
}
439
440
MSG_PROCESS_RETURN tls_process_cert_verify(SSL_CONNECTION *s, PACKET *pkt)
441
14.2k
{
442
14.2k
    EVP_PKEY *pkey = NULL;
443
14.2k
    const unsigned char *data;
444
14.2k
#ifndef OPENSSL_NO_GOST
445
14.2k
    unsigned char *gost_data = NULL;
446
14.2k
#endif
447
14.2k
    MSG_PROCESS_RETURN ret = MSG_PROCESS_ERROR;
448
14.2k
    int j;
449
14.2k
    unsigned int len;
450
14.2k
    const EVP_MD *md = NULL;
451
14.2k
    size_t hdatalen = 0;
452
14.2k
    void *hdata;
453
14.2k
    unsigned char tls13tbs[TLS13_TBS_PREAMBLE_SIZE + EVP_MAX_MD_SIZE];
454
14.2k
    EVP_MD_CTX *mctx = EVP_MD_CTX_new();
455
14.2k
    EVP_PKEY_CTX *pctx = NULL;
456
14.2k
    SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
457
458
14.2k
    if (mctx == NULL) {
459
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_EVP_LIB);
460
0
        goto err;
461
0
    }
462
463
14.2k
    pkey = tls_get_peer_pkey(s);
464
14.2k
    if (pkey == NULL) {
465
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
466
0
        goto err;
467
0
    }
468
469
14.2k
    if (ssl_cert_lookup_by_pkey(pkey, NULL, sctx) == NULL) {
470
0
        SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER,
471
0
            SSL_R_SIGNATURE_FOR_NON_SIGNING_CERTIFICATE);
472
0
        goto err;
473
0
    }
474
475
14.2k
    if (SSL_USE_SIGALGS(s)) {
476
14.2k
        unsigned int sigalg;
477
478
14.2k
        if (!PACKET_get_net_2(pkt, &sigalg)) {
479
38
            SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_R_BAD_PACKET);
480
38
            goto err;
481
38
        }
482
14.2k
        if (tls12_check_peer_sigalg(s, sigalg, pkey) <= 0) {
483
            /* SSLfatal() already called */
484
75
            goto err;
485
75
        }
486
14.2k
    } else if (!tls1_set_peer_legacy_sigalg(s, pkey)) {
487
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR,
488
0
            SSL_R_LEGACY_SIGALG_DISALLOWED_OR_UNSUPPORTED);
489
0
        goto err;
490
0
    }
491
492
14.1k
    if (!tls1_lookup_md(sctx, s->s3.tmp.peer_sigalg, &md)) {
493
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
494
0
        goto err;
495
0
    }
496
497
14.1k
    if (SSL_USE_SIGALGS(s))
498
14.1k
        OSSL_TRACE1(TLS, "USING TLSv1.2 HASH %s\n",
499
14.1k
            md == NULL ? "n/a" : EVP_MD_get0_name(md));
500
501
    /* Check for broken implementations of GOST ciphersuites */
502
    /*
503
     * If key is GOST and len is exactly 64 or 128, it is signature without
504
     * length field (CryptoPro implementations at least till TLS 1.2)
505
     */
506
14.1k
#ifndef OPENSSL_NO_GOST
507
14.1k
    if (!SSL_USE_SIGALGS(s)
508
0
        && ((PACKET_remaining(pkt) == 64
509
0
                && (EVP_PKEY_get_id(pkey) == NID_id_GostR3410_2001
510
0
                    || EVP_PKEY_get_id(pkey) == NID_id_GostR3410_2012_256))
511
0
            || (PACKET_remaining(pkt) == 128
512
0
                && EVP_PKEY_get_id(pkey) == NID_id_GostR3410_2012_512))) {
513
0
        len = PACKET_remaining(pkt);
514
0
    } else
515
14.1k
#endif
516
14.1k
        if (!PACKET_get_net_2(pkt, &len)) {
517
7
        SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_R_LENGTH_MISMATCH);
518
7
        goto err;
519
7
    }
520
521
14.1k
    if (!PACKET_get_bytes(pkt, &data, len)) {
522
24
        SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_R_LENGTH_MISMATCH);
523
24
        goto err;
524
24
    }
525
14.0k
    if (PACKET_remaining(pkt) != 0) {
526
27
        SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_R_LENGTH_MISMATCH);
527
27
        goto err;
528
27
    }
529
530
14.0k
    if (!get_cert_verify_tbs_data(s, tls13tbs, &hdata, &hdatalen)) {
531
        /* SSLfatal() already called */
532
0
        goto err;
533
0
    }
534
535
14.0k
    OSSL_TRACE1(TLS, "Using client verify alg %s\n",
536
14.0k
        md == NULL ? "n/a" : EVP_MD_get0_name(md));
537
538
14.0k
    if (EVP_DigestVerifyInit_ex(mctx, &pctx,
539
14.0k
            md == NULL ? NULL : EVP_MD_get0_name(md),
540
14.0k
            sctx->libctx, sctx->propq, pkey,
541
14.0k
            NULL)
542
14.0k
        <= 0) {
543
12
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_EVP_LIB);
544
12
        goto err;
545
12
    }
546
14.0k
#ifndef OPENSSL_NO_GOST
547
14.0k
    {
548
14.0k
        int pktype = EVP_PKEY_get_id(pkey);
549
14.0k
        if (pktype == NID_id_GostR3410_2001
550
14.0k
            || pktype == NID_id_GostR3410_2012_256
551
14.0k
            || pktype == NID_id_GostR3410_2012_512) {
552
0
            if ((gost_data = OPENSSL_malloc(len)) == NULL)
553
0
                goto err;
554
0
            BUF_reverse(gost_data, data, len);
555
0
            data = gost_data;
556
0
        }
557
14.0k
    }
558
14.0k
#endif
559
560
14.0k
    if (SSL_USE_PSS(s)) {
561
14.0k
        if (EVP_PKEY_CTX_set_rsa_padding(pctx, RSA_PKCS1_PSS_PADDING) <= 0
562
14.0k
            || EVP_PKEY_CTX_set_rsa_pss_saltlen(pctx,
563
14.0k
                   RSA_PSS_SALTLEN_DIGEST)
564
14.0k
                <= 0) {
565
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_EVP_LIB);
566
0
            goto err;
567
0
        }
568
14.0k
    }
569
14.0k
    if (s->version == SSL3_VERSION) {
570
0
        if (EVP_DigestVerifyUpdate(mctx, hdata, hdatalen) <= 0
571
0
            || EVP_MD_CTX_ctrl(mctx, EVP_CTRL_SSL3_MASTER_SECRET,
572
0
                   (int)s->session->master_key_length,
573
0
                   s->session->master_key)
574
0
                <= 0) {
575
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_EVP_LIB);
576
0
            goto err;
577
0
        }
578
0
        if (EVP_DigestVerifyFinal(mctx, data, len) <= 0) {
579
0
            SSLfatal(s, SSL_AD_DECRYPT_ERROR, SSL_R_BAD_SIGNATURE);
580
0
            goto err;
581
0
        }
582
14.0k
    } else {
583
14.0k
        j = EVP_DigestVerify(mctx, data, len, hdata, hdatalen);
584
14.0k
#ifdef FUZZING_BUILD_MODE_UNSAFE_FOR_PRODUCTION
585
        /* Ignore bad signatures when fuzzing */
586
14.0k
        if (SSL_IS_QUIC_HANDSHAKE(s))
587
14.0k
            j = 1;
588
14.0k
#endif
589
14.0k
        if (j <= 0) {
590
0
            SSLfatal(s, SSL_AD_DECRYPT_ERROR, SSL_R_BAD_SIGNATURE);
591
0
            goto err;
592
0
        }
593
14.0k
    }
594
595
    /*
596
     * In TLSv1.3 on the client side we make sure we prepare the client
597
     * certificate after the CertVerify instead of when we get the
598
     * CertificateRequest. This is because in TLSv1.3 the CertificateRequest
599
     * comes *before* the Certificate message. In TLSv1.2 it comes after. We
600
     * want to make sure that SSL_get1_peer_certificate() will return the actual
601
     * server certificate from the client_cert_cb callback.
602
     */
603
14.0k
    if (!s->server && SSL_CONNECTION_IS_TLS13(s) && s->s3.tmp.cert_req == 1)
604
0
        ret = MSG_PROCESS_CONTINUE_PROCESSING;
605
14.0k
    else
606
14.0k
        ret = MSG_PROCESS_CONTINUE_READING;
607
14.2k
err:
608
14.2k
    BIO_free(s->s3.handshake_buffer);
609
14.2k
    s->s3.handshake_buffer = NULL;
610
14.2k
    EVP_MD_CTX_free(mctx);
611
14.2k
#ifndef OPENSSL_NO_GOST
612
14.2k
    OPENSSL_free(gost_data);
613
14.2k
#endif
614
14.2k
    return ret;
615
14.0k
}
616
617
CON_FUNC_RETURN tls_construct_finished(SSL_CONNECTION *s, WPACKET *pkt)
618
14.9k
{
619
14.9k
    size_t finish_md_len;
620
14.9k
    const char *sender;
621
14.9k
    size_t slen;
622
14.9k
    SSL *ssl = SSL_CONNECTION_GET_SSL(s);
623
624
    /* This is a real handshake so make sure we clean it up at the end */
625
14.9k
    if (!s->server && s->post_handshake_auth != SSL_PHA_REQUESTED)
626
13.3k
        s->statem.cleanuphand = 1;
627
628
    /*
629
     * If we attempted to write early data or we're in middlebox compat mode
630
     * then we deferred changing the handshake write keys to the last possible
631
     * moment. If we didn't already do this when we sent the client certificate
632
     * then we need to do it now.
633
     */
634
14.9k
    if (SSL_CONNECTION_IS_TLS13(s)
635
6.93k
        && !s->server
636
6.00k
        && (s->early_data_state != SSL_EARLY_DATA_NONE
637
6.00k
            || (s->options & SSL_OP_ENABLE_MIDDLEBOX_COMPAT) != 0)
638
0
        && s->s3.tmp.cert_req == 0
639
0
        && (!ssl->method->ssl3_enc->change_cipher_state(s,
640
0
            SSL3_CC_HANDSHAKE | SSL3_CHANGE_CIPHER_CLIENT_WRITE))) {
641
0
        ;
642
        /* SSLfatal() already called */
643
0
        return CON_FUNC_ERROR;
644
0
    }
645
646
14.9k
    if (s->server) {
647
1.55k
        sender = ssl->method->ssl3_enc->server_finished_label;
648
1.55k
        slen = ssl->method->ssl3_enc->server_finished_label_len;
649
13.3k
    } else {
650
13.3k
        sender = ssl->method->ssl3_enc->client_finished_label;
651
13.3k
        slen = ssl->method->ssl3_enc->client_finished_label_len;
652
13.3k
    }
653
654
14.9k
    finish_md_len = ssl->method->ssl3_enc->final_finish_mac(s,
655
14.9k
        sender, slen,
656
14.9k
        s->s3.tmp.finish_md);
657
14.9k
    if (finish_md_len == 0) {
658
        /* SSLfatal() already called */
659
0
        return CON_FUNC_ERROR;
660
0
    }
661
662
14.9k
    s->s3.tmp.finish_md_len = finish_md_len;
663
664
14.9k
    if (!WPACKET_memcpy(pkt, s->s3.tmp.finish_md, finish_md_len)) {
665
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
666
0
        return CON_FUNC_ERROR;
667
0
    }
668
669
    /*
670
     * Log the master secret, if logging is enabled. We don't log it for
671
     * TLSv1.3: there's a different key schedule for that.
672
     */
673
14.9k
    if (!SSL_CONNECTION_IS_TLS13(s)
674
7.98k
        && !ssl_log_secret(s, MASTER_SECRET_LABEL, s->session->master_key,
675
7.98k
            s->session->master_key_length)) {
676
        /* SSLfatal() already called */
677
0
        return CON_FUNC_ERROR;
678
0
    }
679
680
    /*
681
     * Copy the finished so we can use it for renegotiation checks
682
     */
683
14.9k
    if (!ossl_assert(finish_md_len <= EVP_MAX_MD_SIZE)) {
684
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
685
0
        return CON_FUNC_ERROR;
686
0
    }
687
14.9k
    if (!s->server) {
688
13.3k
        memcpy(s->s3.previous_client_finished, s->s3.tmp.finish_md,
689
13.3k
            finish_md_len);
690
13.3k
        s->s3.previous_client_finished_len = finish_md_len;
691
13.3k
    } else {
692
1.55k
        memcpy(s->s3.previous_server_finished, s->s3.tmp.finish_md,
693
1.55k
            finish_md_len);
694
1.55k
        s->s3.previous_server_finished_len = finish_md_len;
695
1.55k
    }
696
697
14.9k
    return CON_FUNC_SUCCESS;
698
14.9k
}
699
700
CON_FUNC_RETURN tls_construct_key_update(SSL_CONNECTION *s, WPACKET *pkt)
701
0
{
702
0
    if (!WPACKET_put_bytes_u8(pkt, s->key_update)) {
703
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
704
0
        return CON_FUNC_ERROR;
705
0
    }
706
707
0
    s->key_update = SSL_KEY_UPDATE_NONE;
708
0
    return CON_FUNC_SUCCESS;
709
0
}
710
711
MSG_PROCESS_RETURN tls_process_key_update(SSL_CONNECTION *s, PACKET *pkt)
712
0
{
713
0
    unsigned int updatetype;
714
715
    /*
716
     * A KeyUpdate message signals a key change so the end of the message must
717
     * be on a record boundary.
718
     */
719
0
    if (RECORD_LAYER_processed_read_pending(&s->rlayer)) {
720
0
        SSLfatal(s, SSL_AD_UNEXPECTED_MESSAGE, SSL_R_NOT_ON_RECORD_BOUNDARY);
721
0
        return MSG_PROCESS_ERROR;
722
0
    }
723
724
0
    if (!PACKET_get_1(pkt, &updatetype)
725
0
        || PACKET_remaining(pkt) != 0) {
726
0
        SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_R_BAD_KEY_UPDATE);
727
0
        return MSG_PROCESS_ERROR;
728
0
    }
729
730
    /*
731
     * There are only two defined key update types. Fail if we get a value we
732
     * didn't recognise.
733
     */
734
0
    if (updatetype != SSL_KEY_UPDATE_NOT_REQUESTED
735
0
        && updatetype != SSL_KEY_UPDATE_REQUESTED) {
736
0
        SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER, SSL_R_BAD_KEY_UPDATE);
737
0
        return MSG_PROCESS_ERROR;
738
0
    }
739
740
    /*
741
     * If we get a request for us to update our sending keys too then, we need
742
     * to additionally send a KeyUpdate message. However that message should
743
     * not also request an update (otherwise we get into an infinite loop).
744
     */
745
0
    if (updatetype == SSL_KEY_UPDATE_REQUESTED)
746
0
        s->key_update = SSL_KEY_UPDATE_NOT_REQUESTED;
747
748
0
    if (!tls13_update_key(s, 0)) {
749
        /* SSLfatal() already called */
750
0
        return MSG_PROCESS_ERROR;
751
0
    }
752
753
0
    return MSG_PROCESS_FINISHED_READING;
754
0
}
755
756
/*
757
 * ssl3_take_mac calculates the Finished MAC for the handshakes messages seen
758
 * to far.
759
 */
760
int ssl3_take_mac(SSL_CONNECTION *s)
761
16.7k
{
762
16.7k
    const char *sender;
763
16.7k
    size_t slen;
764
16.7k
    SSL *ssl = SSL_CONNECTION_GET_SSL(s);
765
766
16.7k
    if (!s->server) {
767
15.1k
        sender = ssl->method->ssl3_enc->server_finished_label;
768
15.1k
        slen = ssl->method->ssl3_enc->server_finished_label_len;
769
15.1k
    } else {
770
1.61k
        sender = ssl->method->ssl3_enc->client_finished_label;
771
1.61k
        slen = ssl->method->ssl3_enc->client_finished_label_len;
772
1.61k
    }
773
774
16.7k
    s->s3.tmp.peer_finish_md_len = ssl->method->ssl3_enc->final_finish_mac(s, sender, slen,
775
16.7k
        s->s3.tmp.peer_finish_md);
776
777
16.7k
    if (s->s3.tmp.peer_finish_md_len == 0) {
778
        /* SSLfatal() already called */
779
0
        return 0;
780
0
    }
781
782
16.7k
    return 1;
783
16.7k
}
784
785
MSG_PROCESS_RETURN tls_process_change_cipher_spec(SSL_CONNECTION *s,
786
    PACKET *pkt)
787
19.8k
{
788
19.8k
    size_t remain;
789
790
19.8k
    remain = PACKET_remaining(pkt);
791
    /*
792
     * 'Change Cipher Spec' is just a single byte, which should already have
793
     * been consumed by ssl_get_message() so there should be no bytes left,
794
     * unless we're using DTLS1_BAD_VER, which has an extra 2 bytes
795
     */
796
19.8k
    if (SSL_CONNECTION_IS_DTLS(s)) {
797
11.7k
        if ((s->version == DTLS1_BAD_VER
798
0
                && remain != DTLS1_CCS_HEADER_LENGTH + 1)
799
11.7k
            || (s->version != DTLS1_BAD_VER
800
11.7k
                && remain != DTLS1_CCS_HEADER_LENGTH - 1)) {
801
8
            SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_R_BAD_CHANGE_CIPHER_SPEC);
802
8
            return MSG_PROCESS_ERROR;
803
8
        }
804
11.7k
    } else {
805
8.11k
        if (remain != 0) {
806
0
            SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_R_BAD_CHANGE_CIPHER_SPEC);
807
0
            return MSG_PROCESS_ERROR;
808
0
        }
809
8.11k
    }
810
811
    /* Check we have a cipher to change to */
812
19.8k
    if (s->s3.tmp.new_cipher == NULL) {
813
0
        SSLfatal(s, SSL_AD_UNEXPECTED_MESSAGE, SSL_R_CCS_RECEIVED_EARLY);
814
0
        return MSG_PROCESS_ERROR;
815
0
    }
816
817
19.8k
    s->s3.change_cipher_spec = 1;
818
19.8k
    if (!ssl3_do_change_cipher_spec(s)) {
819
7
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
820
7
        return MSG_PROCESS_ERROR;
821
7
    }
822
823
19.8k
    if (SSL_CONNECTION_IS_DTLS(s)) {
824
11.7k
        if (s->version == DTLS1_BAD_VER)
825
0
            s->d1->handshake_read_seq++;
826
827
#ifndef OPENSSL_NO_SCTP
828
        /*
829
         * Remember that a CCS has been received, so that an old key of
830
         * SCTP-Auth can be deleted when a CCS is sent. Will be ignored if no
831
         * SCTP is used
832
         */
833
        BIO_ctrl(SSL_get_wbio(SSL_CONNECTION_GET_SSL(s)),
834
            BIO_CTRL_DGRAM_SCTP_AUTH_CCS_RCVD, 1, NULL);
835
#endif
836
11.7k
    }
837
838
19.8k
    return MSG_PROCESS_CONTINUE_READING;
839
19.8k
}
840
841
MSG_PROCESS_RETURN tls_process_finished(SSL_CONNECTION *s, PACKET *pkt)
842
7.24k
{
843
7.24k
    size_t md_len;
844
7.24k
    SSL *ssl = SSL_CONNECTION_GET_SSL(s);
845
7.24k
    int was_first = SSL_IS_FIRST_HANDSHAKE(s);
846
7.24k
    int ok;
847
848
    /* This is a real handshake so make sure we clean it up at the end */
849
7.24k
    if (s->server) {
850
        /*
851
         * To get this far we must have read encrypted data from the client. We
852
         * no longer tolerate unencrypted alerts. This is ignored if less than
853
         * TLSv1.3
854
         */
855
570
        if (s->rlayer.rrlmethod->set_plain_alerts != NULL)
856
570
            s->rlayer.rrlmethod->set_plain_alerts(s->rlayer.rrl, 0);
857
570
        if (s->post_handshake_auth != SSL_PHA_REQUESTED)
858
570
            s->statem.cleanuphand = 1;
859
570
        if (SSL_CONNECTION_IS_TLS13(s)
860
0
            && !tls13_save_handshake_digest_for_pha(s)) {
861
            /* SSLfatal() already called */
862
0
            return MSG_PROCESS_ERROR;
863
0
        }
864
570
    }
865
866
    /*
867
     * In TLSv1.3 a Finished message signals a key change so the end of the
868
     * message must be on a record boundary.
869
     */
870
7.24k
    if (SSL_CONNECTION_IS_TLS13(s)
871
6.05k
        && RECORD_LAYER_processed_read_pending(&s->rlayer)) {
872
4
        SSLfatal(s, SSL_AD_UNEXPECTED_MESSAGE, SSL_R_NOT_ON_RECORD_BOUNDARY);
873
4
        return MSG_PROCESS_ERROR;
874
4
    }
875
876
    /* If this occurs, we have missed a message */
877
7.24k
    if (!SSL_CONNECTION_IS_TLS13(s) && !s->s3.change_cipher_spec) {
878
0
        SSLfatal(s, SSL_AD_UNEXPECTED_MESSAGE, SSL_R_GOT_A_FIN_BEFORE_A_CCS);
879
0
        return MSG_PROCESS_ERROR;
880
0
    }
881
7.24k
    s->s3.change_cipher_spec = 0;
882
883
7.24k
    md_len = s->s3.tmp.peer_finish_md_len;
884
885
7.24k
    if (md_len != PACKET_remaining(pkt)) {
886
64
        SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_R_BAD_DIGEST_LENGTH);
887
64
        return MSG_PROCESS_ERROR;
888
64
    }
889
890
7.17k
    ok = CRYPTO_memcmp(PACKET_data(pkt), s->s3.tmp.peer_finish_md,
891
7.17k
        md_len);
892
7.17k
#ifdef FUZZING_BUILD_MODE_UNSAFE_FOR_PRODUCTION
893
7.17k
    if (ok != 0) {
894
7.16k
        if ((PACKET_data(pkt)[0] ^ s->s3.tmp.peer_finish_md[0]) != 0xFF) {
895
7.14k
            ok = 0;
896
7.14k
        }
897
7.16k
    }
898
7.17k
#endif
899
7.17k
    if (ok != 0) {
900
20
        SSLfatal(s, SSL_AD_DECRYPT_ERROR, SSL_R_DIGEST_CHECK_FAILED);
901
20
        return MSG_PROCESS_ERROR;
902
20
    }
903
904
    /*
905
     * Copy the finished so we can use it for renegotiation checks
906
     */
907
7.15k
    if (!ossl_assert(md_len <= EVP_MAX_MD_SIZE)) {
908
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
909
0
        return MSG_PROCESS_ERROR;
910
0
    }
911
7.15k
    if (s->server) {
912
554
        memcpy(s->s3.previous_client_finished, s->s3.tmp.peer_finish_md,
913
554
            md_len);
914
554
        s->s3.previous_client_finished_len = md_len;
915
6.60k
    } else {
916
6.60k
        memcpy(s->s3.previous_server_finished, s->s3.tmp.peer_finish_md,
917
6.60k
            md_len);
918
6.60k
        s->s3.previous_server_finished_len = md_len;
919
6.60k
    }
920
921
    /*
922
     * In TLS1.3 we also have to change cipher state and do any final processing
923
     * of the initial server flight (if we are a client)
924
     */
925
7.15k
    if (SSL_CONNECTION_IS_TLS13(s)) {
926
6.01k
        if (s->server) {
927
0
            if (s->post_handshake_auth != SSL_PHA_REQUESTED && !ssl->method->ssl3_enc->change_cipher_state(s, SSL3_CC_APPLICATION | SSL3_CHANGE_CIPHER_SERVER_READ)) {
928
                /* SSLfatal() already called */
929
0
                return MSG_PROCESS_ERROR;
930
0
            }
931
6.01k
        } else {
932
            /* TLS 1.3 gets the secret size from the handshake md */
933
6.01k
            size_t dummy;
934
6.01k
            if (!ssl->method->ssl3_enc->generate_master_secret(s,
935
6.01k
                    s->master_secret, s->handshake_secret, 0,
936
6.01k
                    &dummy)) {
937
                /* SSLfatal() already called */
938
0
                return MSG_PROCESS_ERROR;
939
0
            }
940
6.01k
            if (!ssl->method->ssl3_enc->change_cipher_state(s,
941
6.01k
                    SSL3_CC_APPLICATION | SSL3_CHANGE_CIPHER_CLIENT_READ)) {
942
                /* SSLfatal() already called */
943
4
                return MSG_PROCESS_ERROR;
944
4
            }
945
6.00k
            if (!tls_process_initial_server_flight(s)) {
946
                /* SSLfatal() already called */
947
0
                return MSG_PROCESS_ERROR;
948
0
            }
949
6.00k
        }
950
6.01k
    }
951
952
7.15k
    if (was_first
953
6.56k
        && !SSL_IS_FIRST_HANDSHAKE(s)
954
0
        && s->rlayer.rrlmethod->set_first_handshake != NULL)
955
0
        s->rlayer.rrlmethod->set_first_handshake(s->rlayer.rrl, 0);
956
957
7.15k
    return MSG_PROCESS_FINISHED_READING;
958
7.15k
}
959
960
CON_FUNC_RETURN tls_construct_change_cipher_spec(SSL_CONNECTION *s, WPACKET *pkt)
961
15.1k
{
962
15.1k
    if (!WPACKET_put_bytes_u8(pkt, SSL3_MT_CCS)) {
963
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
964
0
        return CON_FUNC_ERROR;
965
0
    }
966
967
15.1k
    return CON_FUNC_SUCCESS;
968
15.1k
}
969
970
/* Add a certificate to the WPACKET */
971
static int ssl_add_cert_to_wpacket(SSL_CONNECTION *s, WPACKET *pkt,
972
    X509 *x, int chain, int for_comp)
973
24.8k
{
974
24.8k
    int len;
975
24.8k
    unsigned char *outbytes;
976
24.8k
    int context = SSL_EXT_TLS1_3_CERTIFICATE;
977
978
24.8k
    if (for_comp)
979
0
        context |= SSL_EXT_TLS1_3_CERTIFICATE_COMPRESSION;
980
981
24.8k
    len = i2d_X509(x, NULL);
982
24.8k
    if (len < 0) {
983
0
        if (!for_comp)
984
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_BUF_LIB);
985
0
        return 0;
986
0
    }
987
24.8k
    if (!WPACKET_sub_allocate_bytes_u24(pkt, len, &outbytes)
988
24.8k
        || i2d_X509(x, &outbytes) != len) {
989
0
        if (!for_comp)
990
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
991
0
        return 0;
992
0
    }
993
994
24.8k
    if ((SSL_CONNECTION_IS_TLS13(s) || for_comp)
995
2.45k
        && !tls_construct_extensions(s, pkt, context, x, chain)) {
996
        /* SSLfatal() already called */
997
0
        return 0;
998
0
    }
999
1000
24.8k
    return 1;
1001
24.8k
}
1002
1003
/* Add certificate chain to provided WPACKET */
1004
static int ssl_add_cert_chain(SSL_CONNECTION *s, WPACKET *pkt, CERT_PKEY *cpk, int for_comp)
1005
24.8k
{
1006
24.8k
    int i, chain_count;
1007
24.8k
    X509 *x;
1008
24.8k
    STACK_OF(X509) *extra_certs;
1009
24.8k
    STACK_OF(X509) *chain = NULL;
1010
24.8k
    X509_STORE *chain_store;
1011
24.8k
    SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
1012
1013
24.8k
    if (cpk == NULL || cpk->x509 == NULL)
1014
39
        return 1;
1015
1016
24.8k
    x = cpk->x509;
1017
1018
    /*
1019
     * If we have a certificate specific chain use it, else use parent ctx.
1020
     */
1021
24.8k
    if (cpk->chain != NULL)
1022
0
        extra_certs = cpk->chain;
1023
24.8k
    else
1024
24.8k
        extra_certs = sctx->extra_certs;
1025
1026
24.8k
    if ((s->mode & SSL_MODE_NO_AUTO_CHAIN) || extra_certs)
1027
0
        chain_store = NULL;
1028
24.8k
    else if (s->cert->chain_store)
1029
0
        chain_store = s->cert->chain_store;
1030
24.8k
    else
1031
24.8k
        chain_store = sctx->cert_store;
1032
1033
24.8k
    if (chain_store != NULL) {
1034
24.8k
        X509_STORE_CTX *xs_ctx = X509_STORE_CTX_new_ex(sctx->libctx,
1035
24.8k
            sctx->propq);
1036
1037
24.8k
        if (xs_ctx == NULL) {
1038
0
            if (!for_comp)
1039
0
                SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_X509_LIB);
1040
0
            return 0;
1041
0
        }
1042
24.8k
        if (!X509_STORE_CTX_init(xs_ctx, chain_store, x, NULL)) {
1043
0
            X509_STORE_CTX_free(xs_ctx);
1044
0
            if (!for_comp)
1045
0
                SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_X509_LIB);
1046
0
            return 0;
1047
0
        }
1048
        /*
1049
         * It is valid for the chain not to be complete (because normally we
1050
         * don't include the root cert in the chain). Therefore we deliberately
1051
         * ignore the error return from this call. We're not actually verifying
1052
         * the cert - we're just building as much of the chain as we can
1053
         */
1054
24.8k
        (void)X509_verify_cert(xs_ctx);
1055
        /* Don't leave errors in the queue */
1056
24.8k
        ERR_clear_error();
1057
24.8k
        chain = X509_STORE_CTX_get0_chain(xs_ctx);
1058
24.8k
        i = ssl_security_cert_chain(s, chain, NULL, 0);
1059
24.8k
        if (i != 1) {
1060
#if 0
1061
            /* Dummy error calls so mkerr generates them */
1062
            ERR_raise(ERR_LIB_SSL, SSL_R_EE_KEY_TOO_SMALL);
1063
            ERR_raise(ERR_LIB_SSL, SSL_R_CA_KEY_TOO_SMALL);
1064
            ERR_raise(ERR_LIB_SSL, SSL_R_CA_MD_TOO_WEAK);
1065
#endif
1066
0
            X509_STORE_CTX_free(xs_ctx);
1067
0
            if (!for_comp)
1068
0
                SSLfatal(s, SSL_AD_INTERNAL_ERROR, i);
1069
0
            return 0;
1070
0
        }
1071
24.8k
        chain_count = sk_X509_num(chain);
1072
49.6k
        for (i = 0; i < chain_count; i++) {
1073
24.8k
            x = sk_X509_value(chain, i);
1074
1075
24.8k
            if (!ssl_add_cert_to_wpacket(s, pkt, x, i, for_comp)) {
1076
                /* SSLfatal() already called */
1077
0
                X509_STORE_CTX_free(xs_ctx);
1078
0
                return 0;
1079
0
            }
1080
24.8k
        }
1081
24.8k
        X509_STORE_CTX_free(xs_ctx);
1082
24.8k
    } else {
1083
0
        i = ssl_security_cert_chain(s, extra_certs, x, 0);
1084
0
        if (i != 1) {
1085
0
            if (!for_comp)
1086
0
                SSLfatal(s, SSL_AD_INTERNAL_ERROR, i);
1087
0
            return 0;
1088
0
        }
1089
0
        if (!ssl_add_cert_to_wpacket(s, pkt, x, 0, for_comp)) {
1090
            /* SSLfatal() already called */
1091
0
            return 0;
1092
0
        }
1093
0
        for (i = 0; i < sk_X509_num(extra_certs); i++) {
1094
0
            x = sk_X509_value(extra_certs, i);
1095
0
            if (!ssl_add_cert_to_wpacket(s, pkt, x, i + 1, for_comp)) {
1096
                /* SSLfatal() already called */
1097
0
                return 0;
1098
0
            }
1099
0
        }
1100
0
    }
1101
24.8k
    return 1;
1102
24.8k
}
1103
1104
EVP_PKEY *tls_get_peer_pkey(const SSL_CONNECTION *sc)
1105
41.6k
{
1106
41.6k
    if (sc->session->peer_rpk != NULL)
1107
0
        return sc->session->peer_rpk;
1108
41.6k
    if (sc->session->peer != NULL)
1109
41.6k
        return X509_get0_pubkey(sc->session->peer);
1110
0
    return NULL;
1111
41.6k
}
1112
1113
int tls_process_rpk(SSL_CONNECTION *sc, PACKET *pkt, EVP_PKEY **peer_rpk)
1114
0
{
1115
0
    EVP_PKEY *pkey = NULL;
1116
0
    int ret = 0;
1117
0
    RAW_EXTENSION *rawexts = NULL;
1118
0
    PACKET extensions;
1119
0
    PACKET context;
1120
0
    unsigned long cert_len = 0, spki_len = 0;
1121
0
    const unsigned char *spki, *spkistart;
1122
0
    SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(sc);
1123
1124
    /*-
1125
     * ----------------------------
1126
     * TLS 1.3 Certificate message:
1127
     * ----------------------------
1128
     * https://datatracker.ietf.org/doc/html/rfc8446#section-4.4.2
1129
     *
1130
     *   enum {
1131
     *       X509(0),
1132
     *       RawPublicKey(2),
1133
     *       (255)
1134
     *   } CertificateType;
1135
     *
1136
     *   struct {
1137
     *       select (certificate_type) {
1138
     *           case RawPublicKey:
1139
     *             // From RFC 7250 ASN.1_subjectPublicKeyInfo
1140
     *             opaque ASN1_subjectPublicKeyInfo<1..2^24-1>;
1141
     *
1142
     *           case X509:
1143
     *             opaque cert_data<1..2^24-1>;
1144
     *       };
1145
     *       Extension extensions<0..2^16-1>;
1146
     *   } CertificateEntry;
1147
     *
1148
     *   struct {
1149
     *       opaque certificate_request_context<0..2^8-1>;
1150
     *       CertificateEntry certificate_list<0..2^24-1>;
1151
     *   } Certificate;
1152
     *
1153
     * The client MUST send a Certificate message if and only if the server
1154
     * has requested client authentication via a CertificateRequest message
1155
     * (Section 4.3.2).  If the server requests client authentication but no
1156
     * suitable certificate is available, the client MUST send a Certificate
1157
     * message containing no certificates (i.e., with the "certificate_list"
1158
     * field having length 0).
1159
     *
1160
     * ----------------------------
1161
     * TLS 1.2 Certificate message:
1162
     * ----------------------------
1163
     * https://datatracker.ietf.org/doc/html/rfc7250#section-3
1164
     *
1165
     *   opaque ASN.1Cert<1..2^24-1>;
1166
     *
1167
     *   struct {
1168
     *       select(certificate_type){
1169
     *
1170
     *            // certificate type defined in this document.
1171
     *            case RawPublicKey:
1172
     *              opaque ASN.1_subjectPublicKeyInfo<1..2^24-1>;
1173
     *
1174
     *           // X.509 certificate defined in RFC 5246
1175
     *           case X.509:
1176
     *             ASN.1Cert certificate_list<0..2^24-1>;
1177
     *
1178
     *           // Additional certificate type based on
1179
     *           // "TLS Certificate Types" subregistry
1180
     *       };
1181
     *   } Certificate;
1182
     *
1183
     * -------------
1184
     * Consequently:
1185
     * -------------
1186
     * After the (TLS 1.3 only) context octet string (1 byte length + data) the
1187
     * Certificate message has a 3-byte length that is zero in the client to
1188
     * server message when the client has no RPK to send.  In that case, there
1189
     * are no (TLS 1.3 only) per-certificate extensions either, because the
1190
     * [CertificateEntry] list is empty.
1191
     *
1192
     * In the server to client direction, or when the client had an RPK to send,
1193
     * the TLS 1.3 message just prepends the length of the RPK+extensions,
1194
     * while TLS <= 1.2 sends just the RPK (octet-string).
1195
     *
1196
     * The context must be zero-length in the server to client direction, and
1197
     * must match the value recorded in the certificate request in the client
1198
     * to server direction.
1199
     */
1200
0
    if (SSL_CONNECTION_IS_TLS13(sc)) {
1201
0
        if (!PACKET_get_length_prefixed_1(pkt, &context)) {
1202
0
            SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_INVALID_CONTEXT);
1203
0
            goto err;
1204
0
        }
1205
0
        if (sc->server) {
1206
0
            if (sc->pha_context == NULL) {
1207
0
                if (PACKET_remaining(&context) != 0) {
1208
0
                    SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_INVALID_CONTEXT);
1209
0
                    goto err;
1210
0
                }
1211
0
            } else {
1212
0
                if (!PACKET_equal(&context, sc->pha_context, sc->pha_context_len)) {
1213
0
                    SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_INVALID_CONTEXT);
1214
0
                    goto err;
1215
0
                }
1216
0
            }
1217
0
        } else {
1218
0
            if (PACKET_remaining(&context) != 0) {
1219
0
                SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_INVALID_CONTEXT);
1220
0
                goto err;
1221
0
            }
1222
0
        }
1223
0
    }
1224
1225
0
    if (!PACKET_get_net_3(pkt, &cert_len)
1226
0
        || PACKET_remaining(pkt) != cert_len) {
1227
0
        SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_LENGTH_MISMATCH);
1228
0
        goto err;
1229
0
    }
1230
1231
    /*
1232
     * The list length may be zero when there is no RPK.  In the case of TLS
1233
     * 1.2 this is actually the RPK length, which cannot be zero as specified,
1234
     * but that breaks the ability of the client to decline client auth. We
1235
     * overload the 0 RPK length to mean "no RPK".  This interpretation is
1236
     * also used some other (reference?) implementations, but is not supported
1237
     * by the verbatim RFC7250 text.
1238
     */
1239
0
    if (cert_len == 0)
1240
0
        return 1;
1241
1242
0
    if (SSL_CONNECTION_IS_TLS13(sc)) {
1243
        /*
1244
         * With TLS 1.3, a non-empty explicit-length RPK octet-string followed
1245
         * by a possibly empty extension block.
1246
         */
1247
0
        if (!PACKET_get_net_3(pkt, &spki_len)) {
1248
0
            SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_LENGTH_MISMATCH);
1249
0
            goto err;
1250
0
        }
1251
0
        if (spki_len == 0) {
1252
            /* empty RPK */
1253
0
            SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_EMPTY_RAW_PUBLIC_KEY);
1254
0
            goto err;
1255
0
        }
1256
0
    } else {
1257
0
        spki_len = cert_len;
1258
0
    }
1259
1260
0
    if (!PACKET_get_bytes(pkt, &spki, spki_len)) {
1261
0
        SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_LENGTH_MISMATCH);
1262
0
        goto err;
1263
0
    }
1264
0
    spkistart = spki;
1265
0
    if ((pkey = d2i_PUBKEY_ex(NULL, &spki, spki_len, sctx->libctx, sctx->propq)) == NULL
1266
0
        || spki != (spkistart + spki_len)) {
1267
0
        SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_LENGTH_MISMATCH);
1268
0
        goto err;
1269
0
    }
1270
0
    if (EVP_PKEY_missing_parameters(pkey)) {
1271
0
        SSLfatal(sc, SSL_AD_INTERNAL_ERROR,
1272
0
            SSL_R_UNABLE_TO_FIND_PUBLIC_KEY_PARAMETERS);
1273
0
        goto err;
1274
0
    }
1275
1276
    /* Process the Extensions block */
1277
0
    if (SSL_CONNECTION_IS_TLS13(sc)) {
1278
0
        if (PACKET_remaining(pkt) != (cert_len - 3 - spki_len)) {
1279
0
            SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_BAD_LENGTH);
1280
0
            goto err;
1281
0
        }
1282
0
        if (!PACKET_as_length_prefixed_2(pkt, &extensions)
1283
0
            || PACKET_remaining(pkt) != 0) {
1284
0
            SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_LENGTH_MISMATCH);
1285
0
            goto err;
1286
0
        }
1287
0
        if (!tls_collect_extensions(sc, &extensions, SSL_EXT_TLS1_3_RAW_PUBLIC_KEY,
1288
0
                &rawexts, NULL, 1)) {
1289
            /* SSLfatal already called */
1290
0
            goto err;
1291
0
        }
1292
        /* chain index is always zero and fin always 1 for RPK */
1293
0
        if (!tls_parse_all_extensions(sc, SSL_EXT_TLS1_3_RAW_PUBLIC_KEY,
1294
0
                rawexts, NULL, 0, 1)) {
1295
            /* SSLfatal already called */
1296
0
            goto err;
1297
0
        }
1298
0
    }
1299
0
    ret = 1;
1300
0
    if (peer_rpk != NULL) {
1301
0
        *peer_rpk = pkey;
1302
0
        pkey = NULL;
1303
0
    }
1304
1305
0
err:
1306
0
    OPENSSL_free(rawexts);
1307
0
    EVP_PKEY_free(pkey);
1308
0
    return ret;
1309
0
}
1310
1311
unsigned long tls_output_rpk(SSL_CONNECTION *sc, WPACKET *pkt, CERT_PKEY *cpk)
1312
0
{
1313
0
    int pdata_len = 0;
1314
0
    unsigned char *pdata = NULL;
1315
0
    X509_PUBKEY *xpk = NULL;
1316
0
    unsigned long ret = 0;
1317
0
    X509 *x509 = NULL;
1318
1319
0
    if (cpk != NULL && cpk->x509 != NULL) {
1320
0
        x509 = cpk->x509;
1321
        /* Get the RPK from the certificate */
1322
0
        xpk = X509_get_X509_PUBKEY(cpk->x509);
1323
0
        if (xpk == NULL) {
1324
0
            SSLfatal(sc, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
1325
0
            goto err;
1326
0
        }
1327
0
        pdata_len = i2d_X509_PUBKEY(xpk, &pdata);
1328
0
    } else if (cpk != NULL && cpk->privatekey != NULL) {
1329
        /* Get the RPK from the private key */
1330
0
        pdata_len = i2d_PUBKEY(cpk->privatekey, &pdata);
1331
0
    } else {
1332
        /* The server RPK is not optional */
1333
0
        if (sc->server) {
1334
0
            SSLfatal(sc, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
1335
0
            goto err;
1336
0
        }
1337
        /* The client can send a zero length certificate list */
1338
0
        if (!WPACKET_sub_memcpy_u24(pkt, pdata, pdata_len)) {
1339
0
            SSLfatal(sc, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
1340
0
            goto err;
1341
0
        }
1342
0
        return 1;
1343
0
    }
1344
1345
0
    if (pdata_len <= 0) {
1346
0
        SSLfatal(sc, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
1347
0
        goto err;
1348
0
    }
1349
1350
    /*
1351
     * TLSv1.2 is _just_ the raw public key
1352
     * TLSv1.3 includes extensions, so there's a length wrapper
1353
     */
1354
0
    if (SSL_CONNECTION_IS_TLS13(sc)) {
1355
0
        if (!WPACKET_start_sub_packet_u24(pkt)) {
1356
0
            SSLfatal(sc, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
1357
0
            goto err;
1358
0
        }
1359
0
    }
1360
1361
0
    if (!WPACKET_sub_memcpy_u24(pkt, pdata, pdata_len)) {
1362
0
        SSLfatal(sc, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
1363
0
        goto err;
1364
0
    }
1365
1366
0
    if (SSL_CONNECTION_IS_TLS13(sc)) {
1367
        /*
1368
         * Only send extensions relevant to raw public keys. Until such
1369
         * extensions are defined, this will be an empty set of extensions.
1370
         * |x509| may be NULL, which raw public-key extensions need to handle.
1371
         */
1372
0
        if (!tls_construct_extensions(sc, pkt, SSL_EXT_TLS1_3_RAW_PUBLIC_KEY,
1373
0
                x509, 0)) {
1374
            /* SSLfatal() already called */
1375
0
            goto err;
1376
0
        }
1377
0
        if (!WPACKET_close(pkt)) {
1378
0
            SSLfatal(sc, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
1379
0
            goto err;
1380
0
        }
1381
0
    }
1382
1383
0
    ret = 1;
1384
0
err:
1385
0
    OPENSSL_free(pdata);
1386
0
    return ret;
1387
0
}
1388
1389
unsigned long ssl3_output_cert_chain(SSL_CONNECTION *s, WPACKET *pkt,
1390
    CERT_PKEY *cpk, int for_comp)
1391
24.8k
{
1392
24.8k
    if (!WPACKET_start_sub_packet_u24(pkt)) {
1393
0
        if (!for_comp)
1394
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
1395
0
        return 0;
1396
0
    }
1397
1398
24.8k
    if (!ssl_add_cert_chain(s, pkt, cpk, for_comp))
1399
0
        return 0;
1400
1401
24.8k
    if (!WPACKET_close(pkt)) {
1402
0
        if (!for_comp)
1403
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
1404
0
        return 0;
1405
0
    }
1406
1407
24.8k
    return 1;
1408
24.8k
}
1409
1410
/*
1411
 * Tidy up after the end of a handshake. In the case of SCTP this may result
1412
 * in NBIO events. If |clearbufs| is set then init_buf and the wbio buffer is
1413
 * freed up as well.
1414
 */
1415
WORK_STATE tls_finish_handshake(SSL_CONNECTION *s, ossl_unused WORK_STATE wst,
1416
    int clearbufs, int stop)
1417
81.0k
{
1418
81.0k
    void (*cb)(const SSL *ssl, int type, int val) = NULL;
1419
81.0k
    int cleanuphand = s->statem.cleanuphand;
1420
81.0k
    SSL *ssl = SSL_CONNECTION_GET_USER_SSL(s);
1421
81.0k
    SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
1422
1423
81.0k
    if (clearbufs) {
1424
81.0k
        if (!SSL_CONNECTION_IS_DTLS(s)
1425
#ifndef OPENSSL_NO_SCTP
1426
            /*
1427
             * RFC6083: SCTP provides a reliable and in-sequence transport service for DTLS
1428
             * messages that require it. Therefore, DTLS procedures for retransmissions
1429
             * MUST NOT be used.
1430
             * Hence the init_buf can be cleared when DTLS over SCTP as transport is used.
1431
             */
1432
            || BIO_dgram_is_sctp(SSL_get_wbio(SSL_CONNECTION_GET_SSL(s)))
1433
#endif
1434
81.0k
        ) {
1435
            /*
1436
             * We don't do this in DTLS over UDP because we may still need the init_buf
1437
             * in case there are any unexpected retransmits
1438
             */
1439
81.0k
            BUF_MEM_free(s->init_buf);
1440
81.0k
            s->init_buf = NULL;
1441
81.0k
        }
1442
1443
81.0k
        if (!ssl_free_wbio_buffer(s)) {
1444
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
1445
0
            return WORK_ERROR;
1446
0
        }
1447
81.0k
        s->init_num = 0;
1448
81.0k
    }
1449
1450
81.0k
    if (SSL_CONNECTION_IS_TLS13(s) && !s->server
1451
15.5k
        && s->post_handshake_auth == SSL_PHA_REQUESTED)
1452
0
        s->post_handshake_auth = SSL_PHA_EXT_SENT;
1453
1454
    /*
1455
     * Only set if there was a Finished message and this isn't after a TLSv1.3
1456
     * post handshake exchange
1457
     */
1458
81.0k
    if (cleanuphand) {
1459
        /* skipped if we just sent a HelloRequest */
1460
16.5k
        s->renegotiate = 0;
1461
16.5k
        s->new_session = 0;
1462
16.5k
        s->statem.cleanuphand = 0;
1463
16.5k
        s->ext.ticket_expected = 0;
1464
1465
16.5k
        ssl3_cleanup_key_block(s);
1466
1467
16.5k
        if (s->server) {
1468
            /*
1469
             * In TLSv1.3 we update the cache as part of constructing the
1470
             * NewSessionTicket
1471
             */
1472
1.57k
            if (!SSL_CONNECTION_IS_TLS13(s))
1473
1.57k
                ssl_update_cache(s, SSL_SESS_CACHE_SERVER);
1474
1475
            /* N.B. s->ctx may not equal s->session_ctx */
1476
1.57k
            ssl_tsan_counter(sctx, &sctx->stats.sess_accept_good);
1477
1.57k
            s->handshake_func = ossl_statem_accept;
1478
14.9k
        } else {
1479
14.9k
            if (SSL_CONNECTION_IS_TLS13(s)) {
1480
                /*
1481
                 * We encourage applications to only use TLSv1.3 tickets once,
1482
                 * so we remove this one from the cache.
1483
                 */
1484
13.3k
                if ((s->session_ctx->session_cache_mode
1485
13.3k
                        & SSL_SESS_CACHE_CLIENT)
1486
13.3k
                    != 0)
1487
0
                    SSL_CTX_remove_session(s->session_ctx, s->session);
1488
13.3k
            } else {
1489
                /*
1490
                 * In TLSv1.3 we update the cache as part of processing the
1491
                 * NewSessionTicket
1492
                 */
1493
1.59k
                ssl_update_cache(s, SSL_SESS_CACHE_CLIENT);
1494
1.59k
            }
1495
14.9k
            if (s->hit)
1496
0
                ssl_tsan_counter(s->session_ctx,
1497
0
                    &s->session_ctx->stats.sess_hit);
1498
1499
14.9k
            s->handshake_func = ossl_statem_connect;
1500
14.9k
            ssl_tsan_counter(s->session_ctx,
1501
14.9k
                &s->session_ctx->stats.sess_connect_good);
1502
14.9k
        }
1503
1504
16.5k
        if (SSL_CONNECTION_IS_DTLS(s)) {
1505
            /* done with handshaking */
1506
0
            s->d1->handshake_read_seq = 0;
1507
0
            s->d1->handshake_write_seq = 0;
1508
0
            s->d1->next_handshake_write_seq = 0;
1509
0
            dtls1_clear_received_buffer(s);
1510
0
        }
1511
16.5k
    }
1512
1513
81.0k
    if (s->info_callback != NULL)
1514
0
        cb = s->info_callback;
1515
81.0k
    else if (sctx->info_callback != NULL)
1516
0
        cb = sctx->info_callback;
1517
1518
    /* The callback may expect us to not be in init at handshake done */
1519
81.0k
    ossl_statem_set_in_init(s, 0);
1520
1521
81.0k
    if (cb != NULL) {
1522
0
        if (cleanuphand
1523
0
            || !SSL_CONNECTION_IS_TLS13(s)
1524
0
            || SSL_IS_FIRST_HANDSHAKE(s))
1525
0
            cb(ssl, SSL_CB_HANDSHAKE_DONE, 1);
1526
0
    }
1527
1528
81.0k
    if (!stop) {
1529
        /* If we've got more work to do we go back into init */
1530
0
        ossl_statem_set_in_init(s, 1);
1531
0
        return WORK_FINISHED_CONTINUE;
1532
0
    }
1533
1534
81.0k
    return WORK_FINISHED_STOP;
1535
81.0k
}
1536
1537
int tls_get_message_header(SSL_CONNECTION *s, int *mt)
1538
47.4M
{
1539
    /* s->init_num < SSL3_HM_HEADER_LENGTH */
1540
47.4M
    int skip_message, i;
1541
47.4M
    uint8_t recvd_type;
1542
47.4M
    unsigned char *p;
1543
47.4M
    size_t l, readbytes;
1544
47.4M
    SSL *ssl = SSL_CONNECTION_GET_SSL(s);
1545
47.4M
    SSL *ussl = SSL_CONNECTION_GET_USER_SSL(s);
1546
1547
47.4M
    p = (unsigned char *)s->init_buf->data;
1548
1549
47.5M
    do {
1550
47.7M
        while (s->init_num < SSL3_HM_HEADER_LENGTH) {
1551
47.5M
            i = ssl->method->ssl_read_bytes(ssl, SSL3_RT_HANDSHAKE, &recvd_type,
1552
47.5M
                &p[s->init_num],
1553
47.5M
                SSL3_HM_HEADER_LENGTH - s->init_num,
1554
47.5M
                0, &readbytes);
1555
47.5M
            if (i <= 0) {
1556
47.2M
                s->rwstate = SSL_READING;
1557
47.2M
                return 0;
1558
47.2M
            }
1559
268k
            if (recvd_type == SSL3_RT_CHANGE_CIPHER_SPEC) {
1560
                /*
1561
                 * A ChangeCipherSpec must be a single byte and may not occur
1562
                 * in the middle of a handshake message.
1563
                 */
1564
6.76k
                if (s->init_num != 0 || readbytes != 1 || p[0] != SSL3_MT_CCS) {
1565
77
                    SSLfatal(s, SSL_AD_UNEXPECTED_MESSAGE,
1566
77
                        SSL_R_BAD_CHANGE_CIPHER_SPEC);
1567
77
                    return 0;
1568
77
                }
1569
6.68k
                if (s->statem.hand_state == TLS_ST_BEFORE
1570
5
                    && (s->s3.flags & TLS1_FLAGS_STATELESS) != 0) {
1571
                    /*
1572
                     * We are stateless and we received a CCS. Probably this is
1573
                     * from a client between the first and second ClientHellos.
1574
                     * We should ignore this, but return an error because we do
1575
                     * not return success until we see the second ClientHello
1576
                     * with a valid cookie.
1577
                     */
1578
0
                    return 0;
1579
0
                }
1580
6.68k
                s->s3.tmp.message_type = *mt = SSL3_MT_CHANGE_CIPHER_SPEC;
1581
6.68k
                s->init_num = readbytes - 1;
1582
6.68k
                s->init_msg = s->init_buf->data;
1583
6.68k
                s->s3.tmp.message_size = readbytes;
1584
6.68k
                return 1;
1585
261k
            } else if (recvd_type != SSL3_RT_HANDSHAKE) {
1586
0
                SSLfatal(s, SSL_AD_UNEXPECTED_MESSAGE,
1587
0
                    SSL_R_CCS_RECEIVED_EARLY);
1588
0
                return 0;
1589
0
            }
1590
261k
            s->init_num += readbytes;
1591
261k
        }
1592
1593
253k
        skip_message = 0;
1594
253k
        if (!s->server)
1595
187k
            if (s->statem.hand_state != TLS_ST_OK
1596
180k
                && p[0] == SSL3_MT_HELLO_REQUEST)
1597
                /*
1598
                 * The server may always send 'Hello Request' messages --
1599
                 * we are doing a handshake anyway now, so ignore them if
1600
                 * their format is correct. Does not count for 'Finished'
1601
                 * MAC.
1602
                 */
1603
15.6k
                if (p[1] == 0 && p[2] == 0 && p[3] == 0) {
1604
13.5k
                    s->init_num = 0;
1605
13.5k
                    skip_message = 1;
1606
1607
13.5k
                    if (s->msg_callback)
1608
0
                        s->msg_callback(0, s->version, SSL3_RT_HANDSHAKE,
1609
0
                            p, SSL3_HM_HEADER_LENGTH, ussl,
1610
0
                            s->msg_callback_arg);
1611
13.5k
                }
1612
253k
    } while (skip_message);
1613
    /* s->init_num == SSL3_HM_HEADER_LENGTH */
1614
1615
239k
    *mt = *p;
1616
239k
    s->s3.tmp.message_type = *(p++);
1617
1618
239k
    if (RECORD_LAYER_is_sslv2_record(&s->rlayer)) {
1619
        /*
1620
         * Only happens with SSLv3+ in an SSLv2 backward compatible
1621
         * ClientHello
1622
         *
1623
         * Total message size is the remaining record bytes to read
1624
         * plus the SSL3_HM_HEADER_LENGTH bytes that we already read
1625
         */
1626
4.98k
        l = s->rlayer.tlsrecs[0].length + SSL3_HM_HEADER_LENGTH;
1627
4.98k
        s->s3.tmp.message_size = l;
1628
1629
4.98k
        s->init_msg = s->init_buf->data;
1630
4.98k
        s->init_num = SSL3_HM_HEADER_LENGTH;
1631
234k
    } else {
1632
234k
        n2l3(p, l);
1633
        /* BUF_MEM_grow takes an 'int' parameter */
1634
234k
        if (l > (INT_MAX - SSL3_HM_HEADER_LENGTH)) {
1635
0
            SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER,
1636
0
                SSL_R_EXCESSIVE_MESSAGE_SIZE);
1637
0
            return 0;
1638
0
        }
1639
234k
        s->s3.tmp.message_size = l;
1640
1641
234k
        s->init_msg = s->init_buf->data + SSL3_HM_HEADER_LENGTH;
1642
234k
        s->init_num = 0;
1643
234k
    }
1644
1645
239k
    return 1;
1646
239k
}
1647
1648
static int grow_init_buf(SSL_CONNECTION *s, size_t size)
1649
14.3M
{
1650
1651
14.3M
    size_t msg_offset = (char *)s->init_msg - s->init_buf->data;
1652
1653
14.3M
    if (!BUF_MEM_grow_clean(s->init_buf, size))
1654
0
        return 0;
1655
1656
14.3M
    if (size < msg_offset)
1657
0
        return 0;
1658
1659
14.3M
    s->init_msg = s->init_buf->data + msg_offset;
1660
1661
14.3M
    return 1;
1662
14.3M
}
1663
1664
int tls_get_message_body(SSL_CONNECTION *s, size_t *len)
1665
10.3M
{
1666
10.3M
    size_t toread, readbytes;
1667
10.3M
    unsigned char *p;
1668
10.3M
    int i;
1669
10.3M
    SSL *ssl = SSL_CONNECTION_GET_SSL(s);
1670
10.3M
    SSL *ussl = SSL_CONNECTION_GET_USER_SSL(s);
1671
1672
10.3M
    if (s->s3.tmp.message_type == SSL3_MT_CHANGE_CIPHER_SPEC) {
1673
        /* We've already read everything in */
1674
5.20k
        *len = (unsigned long)s->init_num;
1675
5.20k
        return 1;
1676
5.20k
    }
1677
1678
10.3M
    toread = s->s3.tmp.message_size - s->init_num;
1679
10.6M
    while (toread > 0) {
1680
10.4M
        size_t chunk = toread > SSL3_RT_MAX_PLAIN_LENGTH ? SSL3_RT_MAX_PLAIN_LENGTH : toread;
1681
1682
        /*
1683
         * We incrementally allocate the buffer to guard against the peer
1684
         * claiming a very large message size and then not sending it.
1685
         */
1686
10.4M
        if (!grow_init_buf(s, s->init_num + chunk + SSL3_HM_HEADER_LENGTH)) {
1687
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_BUF_LIB);
1688
0
            return 0;
1689
0
        }
1690
1691
        /* init_msg location can change after grow_init_buf */
1692
10.4M
        p = s->init_msg;
1693
10.4M
        i = ssl->method->ssl_read_bytes(ssl, SSL3_RT_HANDSHAKE, NULL,
1694
10.4M
            &p[s->init_num], chunk, 0, &readbytes);
1695
10.4M
        if (i <= 0) {
1696
10.2M
            s->rwstate = SSL_READING;
1697
10.2M
            *len = 0;
1698
10.2M
            return 0;
1699
10.2M
        }
1700
232k
        s->init_num += readbytes;
1701
232k
        toread -= readbytes;
1702
232k
    }
1703
1704
    /*
1705
     * If receiving Finished, record MAC of prior handshake messages for
1706
     * Finished verification.
1707
     */
1708
179k
    if (*(s->init_buf->data) == SSL3_MT_FINISHED && !ssl3_take_mac(s)) {
1709
        /* SSLfatal() already called */
1710
0
        *len = 0;
1711
0
        return 0;
1712
0
    }
1713
1714
    /* Feed this message into MAC computation. */
1715
179k
    if (RECORD_LAYER_is_sslv2_record(&s->rlayer)) {
1716
3.95k
        if (!ssl3_finish_mac(s, (unsigned char *)s->init_buf->data,
1717
3.95k
                s->init_num)) {
1718
            /* SSLfatal() already called */
1719
0
            *len = 0;
1720
0
            return 0;
1721
0
        }
1722
3.95k
        if (s->msg_callback)
1723
0
            s->msg_callback(0, SSL2_VERSION, 0, s->init_buf->data,
1724
0
                (size_t)s->init_num, ussl, s->msg_callback_arg);
1725
175k
    } else {
1726
        /*
1727
         * We defer feeding in the HRR until later. We'll do it as part of
1728
         * processing the message
1729
         * The TLsv1.3 handshake transcript stops at the ClientFinished
1730
         * message.
1731
         */
1732
175k
#define SERVER_HELLO_RANDOM_OFFSET (SSL3_HM_HEADER_LENGTH + 2)
1733
        /* KeyUpdate and NewSessionTicket do not need to be added */
1734
175k
        if (!SSL_CONNECTION_IS_TLS13(s)
1735
46.3k
            || (s->s3.tmp.message_type != SSL3_MT_NEWSESSION_TICKET
1736
173k
                && s->s3.tmp.message_type != SSL3_MT_KEY_UPDATE)) {
1737
173k
            if (s->s3.tmp.message_type != SSL3_MT_SERVER_HELLO
1738
41.6k
                || s->init_num < SERVER_HELLO_RANDOM_OFFSET + SSL3_RANDOM_SIZE
1739
41.3k
                || memcmp(hrrrandom,
1740
41.3k
                       s->init_buf->data + SERVER_HELLO_RANDOM_OFFSET,
1741
41.3k
                       SSL3_RANDOM_SIZE)
1742
173k
                    != 0) {
1743
173k
                if (!ssl3_finish_mac(s, (unsigned char *)s->init_buf->data,
1744
173k
                        s->init_num + SSL3_HM_HEADER_LENGTH)) {
1745
                    /* SSLfatal() already called */
1746
0
                    *len = 0;
1747
0
                    return 0;
1748
0
                }
1749
173k
            }
1750
173k
        }
1751
175k
        if (s->msg_callback)
1752
0
            s->msg_callback(0, s->version, SSL3_RT_HANDSHAKE, s->init_buf->data,
1753
0
                (size_t)s->init_num + SSL3_HM_HEADER_LENGTH, ussl,
1754
0
                s->msg_callback_arg);
1755
175k
    }
1756
1757
179k
    *len = s->init_num;
1758
179k
    return 1;
1759
179k
}
1760
1761
static const X509ERR2ALERT x509table[] = {
1762
    { X509_V_ERR_APPLICATION_VERIFICATION, SSL_AD_HANDSHAKE_FAILURE },
1763
    { X509_V_ERR_CA_KEY_TOO_SMALL, SSL_AD_BAD_CERTIFICATE },
1764
    { X509_V_ERR_EC_KEY_EXPLICIT_PARAMS, SSL_AD_BAD_CERTIFICATE },
1765
    { X509_V_ERR_CA_MD_TOO_WEAK, SSL_AD_BAD_CERTIFICATE },
1766
    { X509_V_ERR_CERT_CHAIN_TOO_LONG, SSL_AD_UNKNOWN_CA },
1767
    { X509_V_ERR_CERT_HAS_EXPIRED, SSL_AD_CERTIFICATE_EXPIRED },
1768
    { X509_V_ERR_CERT_NOT_YET_VALID, SSL_AD_BAD_CERTIFICATE },
1769
    { X509_V_ERR_CERT_REJECTED, SSL_AD_BAD_CERTIFICATE },
1770
    { X509_V_ERR_CERT_REVOKED, SSL_AD_CERTIFICATE_REVOKED },
1771
    { X509_V_ERR_CERT_SIGNATURE_FAILURE, SSL_AD_DECRYPT_ERROR },
1772
    { X509_V_ERR_CERT_UNTRUSTED, SSL_AD_BAD_CERTIFICATE },
1773
    { X509_V_ERR_CRL_HAS_EXPIRED, SSL_AD_CERTIFICATE_EXPIRED },
1774
    { X509_V_ERR_CRL_NOT_YET_VALID, SSL_AD_BAD_CERTIFICATE },
1775
    { X509_V_ERR_CRL_SIGNATURE_FAILURE, SSL_AD_DECRYPT_ERROR },
1776
    { X509_V_ERR_DANE_NO_MATCH, SSL_AD_BAD_CERTIFICATE },
1777
    { X509_V_ERR_DEPTH_ZERO_SELF_SIGNED_CERT, SSL_AD_UNKNOWN_CA },
1778
    { X509_V_ERR_EE_KEY_TOO_SMALL, SSL_AD_BAD_CERTIFICATE },
1779
    { X509_V_ERR_EMAIL_MISMATCH, SSL_AD_BAD_CERTIFICATE },
1780
    { X509_V_ERR_ERROR_IN_CERT_NOT_AFTER_FIELD, SSL_AD_BAD_CERTIFICATE },
1781
    { X509_V_ERR_ERROR_IN_CERT_NOT_BEFORE_FIELD, SSL_AD_BAD_CERTIFICATE },
1782
    { X509_V_ERR_ERROR_IN_CRL_LAST_UPDATE_FIELD, SSL_AD_BAD_CERTIFICATE },
1783
    { X509_V_ERR_ERROR_IN_CRL_NEXT_UPDATE_FIELD, SSL_AD_BAD_CERTIFICATE },
1784
    { X509_V_ERR_HOSTNAME_MISMATCH, SSL_AD_BAD_CERTIFICATE },
1785
    { X509_V_ERR_INVALID_CA, SSL_AD_UNKNOWN_CA },
1786
    { X509_V_ERR_INVALID_CALL, SSL_AD_INTERNAL_ERROR },
1787
    { X509_V_ERR_INVALID_PURPOSE, SSL_AD_UNSUPPORTED_CERTIFICATE },
1788
    { X509_V_ERR_IP_ADDRESS_MISMATCH, SSL_AD_BAD_CERTIFICATE },
1789
    { X509_V_ERR_OUT_OF_MEM, SSL_AD_INTERNAL_ERROR },
1790
    { X509_V_ERR_PATH_LENGTH_EXCEEDED, SSL_AD_UNKNOWN_CA },
1791
    { X509_V_ERR_SELF_SIGNED_CERT_IN_CHAIN, SSL_AD_UNKNOWN_CA },
1792
    { X509_V_ERR_STORE_LOOKUP, SSL_AD_INTERNAL_ERROR },
1793
    { X509_V_ERR_UNABLE_TO_DECODE_ISSUER_PUBLIC_KEY, SSL_AD_BAD_CERTIFICATE },
1794
    { X509_V_ERR_UNABLE_TO_DECRYPT_CERT_SIGNATURE, SSL_AD_BAD_CERTIFICATE },
1795
    { X509_V_ERR_UNABLE_TO_DECRYPT_CRL_SIGNATURE, SSL_AD_BAD_CERTIFICATE },
1796
    { X509_V_ERR_UNABLE_TO_GET_CRL, SSL_AD_UNKNOWN_CA },
1797
    { X509_V_ERR_UNABLE_TO_GET_CRL_ISSUER, SSL_AD_UNKNOWN_CA },
1798
    { X509_V_ERR_UNABLE_TO_GET_ISSUER_CERT, SSL_AD_UNKNOWN_CA },
1799
    { X509_V_ERR_UNABLE_TO_GET_ISSUER_CERT_LOCALLY, SSL_AD_UNKNOWN_CA },
1800
    { X509_V_ERR_UNABLE_TO_VERIFY_LEAF_SIGNATURE, SSL_AD_UNKNOWN_CA },
1801
    { X509_V_ERR_UNSPECIFIED, SSL_AD_INTERNAL_ERROR },
1802
1803
    /* Last entry; return this if we don't find the value above. */
1804
    { X509_V_OK, SSL_AD_CERTIFICATE_UNKNOWN }
1805
};
1806
1807
int ssl_x509err2alert(int x509err)
1808
0
{
1809
0
    const X509ERR2ALERT *tp;
1810
1811
0
    for (tp = x509table; tp->x509err != X509_V_OK; ++tp)
1812
0
        if (tp->x509err == x509err)
1813
0
            break;
1814
0
    return tp->alert;
1815
0
}
1816
1817
int ssl_allow_compression(SSL_CONNECTION *s)
1818
180k
{
1819
180k
    if (s->options & SSL_OP_NO_COMPRESSION)
1820
180k
        return 0;
1821
0
    return ssl_security(s, SSL_SECOP_COMPRESSION, 0, 0, NULL);
1822
180k
}
1823
1824
/*
1825
 * SSL/TLS/DTLS version comparison
1826
 *
1827
 * Returns
1828
 *      0 if versiona is equal to versionb
1829
 *      1 if versiona is greater than versionb
1830
 *     -1 if versiona is less than versionb
1831
 */
1832
int ssl_version_cmp(const SSL_CONNECTION *s, int versiona, int versionb)
1833
49.7M
{
1834
49.7M
    int dtls = SSL_CONNECTION_IS_DTLS(s);
1835
1836
49.7M
    if (versiona == versionb)
1837
9.93M
        return 0;
1838
39.8M
    if (!dtls)
1839
25.9M
        return versiona < versionb ? -1 : 1;
1840
13.8M
    return DTLS_VERSION_LT(versiona, versionb) ? -1 : 1;
1841
39.8M
}
1842
1843
typedef struct {
1844
    int version;
1845
    const SSL_METHOD *(*cmeth)(void);
1846
    const SSL_METHOD *(*smeth)(void);
1847
} version_info;
1848
1849
#if TLS_MAX_VERSION_INTERNAL != TLS1_3_VERSION
1850
#error Code needs update for TLS_method() support beyond TLS1_3_VERSION.
1851
#endif
1852
1853
/* Must be in order high to low */
1854
static const version_info tls_version_table[] = {
1855
#ifndef OPENSSL_NO_TLS1_3
1856
    { TLS1_3_VERSION, tlsv1_3_client_method, tlsv1_3_server_method },
1857
#else
1858
    { TLS1_3_VERSION, NULL, NULL },
1859
#endif
1860
#ifndef OPENSSL_NO_TLS1_2
1861
    { TLS1_2_VERSION, tlsv1_2_client_method, tlsv1_2_server_method },
1862
#else
1863
    { TLS1_2_VERSION, NULL, NULL },
1864
#endif
1865
#ifndef OPENSSL_NO_TLS1_1
1866
    { TLS1_1_VERSION, tlsv1_1_client_method, tlsv1_1_server_method },
1867
#else
1868
    { TLS1_1_VERSION, NULL, NULL },
1869
#endif
1870
#ifndef OPENSSL_NO_TLS1
1871
    { TLS1_VERSION, tlsv1_client_method, tlsv1_server_method },
1872
#else
1873
    { TLS1_VERSION, NULL, NULL },
1874
#endif
1875
#ifndef OPENSSL_NO_SSL3
1876
    { SSL3_VERSION, sslv3_client_method, sslv3_server_method },
1877
#else
1878
    { SSL3_VERSION, NULL, NULL },
1879
#endif
1880
    { 0, NULL, NULL },
1881
};
1882
1883
#if DTLS_MAX_VERSION_INTERNAL != DTLS1_2_VERSION
1884
#error Code needs update for DTLS_method() support beyond DTLS1_2_VERSION.
1885
#endif
1886
1887
/* Must be in order high to low */
1888
static const version_info dtls_version_table[] = {
1889
#ifndef OPENSSL_NO_DTLS1_2
1890
    { DTLS1_2_VERSION, dtlsv1_2_client_method, dtlsv1_2_server_method },
1891
#else
1892
    { DTLS1_2_VERSION, NULL, NULL },
1893
#endif
1894
#ifndef OPENSSL_NO_DTLS1
1895
    { DTLS1_VERSION, dtlsv1_client_method, dtlsv1_server_method },
1896
    { DTLS1_BAD_VER, dtls_bad_ver_client_method, NULL },
1897
#else
1898
    { DTLS1_VERSION, NULL, NULL },
1899
    { DTLS1_BAD_VER, NULL, NULL },
1900
#endif
1901
    { 0, NULL, NULL },
1902
};
1903
1904
/*
1905
 * ssl_method_error - Check whether an SSL_METHOD is enabled.
1906
 *
1907
 * @s: The SSL handle for the candidate method
1908
 * @method: the intended method.
1909
 *
1910
 * Returns 0 on success, or an SSL error reason on failure.
1911
 */
1912
static int ssl_method_error(const SSL_CONNECTION *s, const SSL_METHOD *method)
1913
4.87M
{
1914
4.87M
    int version = method->version;
1915
1916
4.87M
    if ((s->min_proto_version != 0 && ssl_version_cmp(s, version, s->min_proto_version) < 0) || ssl_security(s, SSL_SECOP_VERSION, 0, version, NULL) == 0)
1917
1.53M
        return SSL_R_VERSION_TOO_LOW;
1918
1919
3.33M
    if (s->max_proto_version != 0 && ssl_version_cmp(s, version, s->max_proto_version) > 0)
1920
0
        return SSL_R_VERSION_TOO_HIGH;
1921
1922
3.33M
    if ((s->options & method->mask) != 0)
1923
0
        return SSL_R_UNSUPPORTED_PROTOCOL;
1924
3.33M
    if ((method->flags & SSL_METHOD_NO_SUITEB) != 0 && tls1_suiteb(s))
1925
0
        return SSL_R_AT_LEAST_TLS_1_2_NEEDED_IN_SUITEB_MODE;
1926
1927
3.33M
    return 0;
1928
3.33M
}
1929
1930
/*
1931
 * Only called by servers. Returns 1 if the server has a TLSv1.3 capable
1932
 * certificate type, or has PSK or a certificate callback configured, or has
1933
 * a servername callback configure. Otherwise returns 0.
1934
 */
1935
static int is_tls13_capable(const SSL_CONNECTION *s)
1936
21.1k
{
1937
21.1k
    size_t i;
1938
21.1k
    int curve;
1939
21.1k
    SSL_CTX *sctx = SSL_CONNECTION_GET_CTX(s);
1940
1941
21.1k
    if (!ossl_assert(sctx != NULL) || !ossl_assert(s->session_ctx != NULL))
1942
0
        return 0;
1943
1944
    /*
1945
     * A servername callback can change the available certs, so if a servername
1946
     * cb is set then we just assume TLSv1.3 will be ok
1947
     */
1948
21.1k
    if (sctx->ext.servername_cb != NULL
1949
21.1k
        || s->session_ctx->ext.servername_cb != NULL)
1950
0
        return 1;
1951
1952
21.1k
#ifndef OPENSSL_NO_PSK
1953
21.1k
    if (s->psk_server_callback != NULL)
1954
0
        return 1;
1955
21.1k
#endif
1956
1957
21.1k
    if (s->psk_find_session_cb != NULL || s->cert->cert_cb != NULL)
1958
0
        return 1;
1959
1960
    /* All provider-based sig algs are required to support at least TLS1.3 */
1961
21.1k
    for (i = 0; i < s->ssl_pkey_num; i++) {
1962
        /* Skip over certs disallowed for TLSv1.3 */
1963
21.1k
        switch (i) {
1964
0
        case SSL_PKEY_DSA_SIGN:
1965
0
        case SSL_PKEY_GOST01:
1966
0
        case SSL_PKEY_GOST12_256:
1967
0
        case SSL_PKEY_GOST12_512:
1968
0
            continue;
1969
21.1k
        default:
1970
21.1k
            break;
1971
21.1k
        }
1972
21.1k
        if (!ssl_has_cert(s, i))
1973
0
            continue;
1974
21.1k
        if (i != SSL_PKEY_ECC)
1975
21.1k
            return 1;
1976
        /*
1977
         * Prior to TLSv1.3 sig algs allowed any curve to be used. TLSv1.3 is
1978
         * more restrictive so check that our sig algs are consistent with this
1979
         * EC cert. See section 4.2.3 of RFC8446.
1980
         */
1981
0
        curve = ssl_get_EC_curve_nid(s->cert->pkeys[SSL_PKEY_ECC].privatekey);
1982
0
        if (tls_check_sigalg_curve(s, curve))
1983
0
            return 1;
1984
0
    }
1985
1986
0
    return 0;
1987
21.1k
}
1988
1989
/*
1990
 * ssl_version_supported - Check that the specified `version` is supported by
1991
 * `SSL *` instance
1992
 *
1993
 * @s: The SSL handle for the candidate method
1994
 * @version: Protocol version to test against
1995
 *
1996
 * Returns 1 when supported, otherwise 0
1997
 */
1998
int ssl_version_supported(const SSL_CONNECTION *s, int version,
1999
    const SSL_METHOD **meth)
2000
44.1k
{
2001
44.1k
    const version_info *vent;
2002
44.1k
    const version_info *table;
2003
2004
44.1k
    switch (SSL_CONNECTION_GET_SSL(s)->method->version) {
2005
4.82k
    default:
2006
        /* Version should match method version for non-ANY method */
2007
4.82k
        return ssl_version_cmp(s, version, s->version) == 0;
2008
36.0k
    case TLS_ANY_VERSION:
2009
36.0k
        table = tls_version_table;
2010
36.0k
        break;
2011
3.30k
    case DTLS_ANY_VERSION:
2012
3.30k
        table = dtls_version_table;
2013
3.30k
        break;
2014
44.1k
    }
2015
2016
39.3k
    for (vent = table;
2017
53.5k
        vent->version != 0 && ssl_version_cmp(s, version, vent->version) <= 0;
2018
42.1k
        ++vent) {
2019
42.1k
        const SSL_METHOD *(*thismeth)(void) = s->server ? vent->smeth
2020
42.1k
                                                        : vent->cmeth;
2021
2022
42.1k
        if (thismeth != NULL
2023
41.1k
            && ssl_version_cmp(s, version, vent->version) == 0
2024
28.0k
            && ssl_method_error(s, thismeth()) == 0
2025
28.0k
            && (!s->server
2026
24.3k
                || version != TLS1_3_VERSION
2027
28.0k
                || is_tls13_capable(s))) {
2028
28.0k
            if (meth != NULL)
2029
7.88k
                *meth = thismeth();
2030
28.0k
            return 1;
2031
28.0k
        }
2032
42.1k
    }
2033
11.3k
    return 0;
2034
39.3k
}
2035
2036
/*
2037
 * ssl_check_version_downgrade - In response to RFC7507 SCSV version
2038
 * fallback indication from a client check whether we're using the highest
2039
 * supported protocol version.
2040
 *
2041
 * @s server SSL handle.
2042
 *
2043
 * Returns 1 when using the highest enabled version, 0 otherwise.
2044
 */
2045
int ssl_check_version_downgrade(SSL_CONNECTION *s)
2046
3.38k
{
2047
3.38k
    const version_info *vent;
2048
3.38k
    const version_info *table;
2049
3.38k
    SSL *ssl = SSL_CONNECTION_GET_SSL(s);
2050
2051
    /*
2052
     * Check that the current protocol is the highest enabled version
2053
     * (according to ssl->defltmethod, as version negotiation may have changed
2054
     * s->method).
2055
     */
2056
3.38k
    if (s->version == ssl->defltmeth->version)
2057
0
        return 1;
2058
2059
    /*
2060
     * Apparently we're using a version-flexible SSL_METHOD (not at its
2061
     * highest protocol version).
2062
     */
2063
3.38k
    if (ssl->defltmeth->version == TLS_method()->version)
2064
614
        table = tls_version_table;
2065
2.77k
    else if (ssl->defltmeth->version == DTLS_method()->version)
2066
2.77k
        table = dtls_version_table;
2067
0
    else {
2068
        /* Unexpected state; fail closed. */
2069
0
        return 0;
2070
0
    }
2071
2072
3.38k
    for (vent = table; vent->version != 0; ++vent) {
2073
3.38k
        if (vent->smeth != NULL && ssl_method_error(s, vent->smeth()) == 0)
2074
3.38k
            return s->version == vent->version;
2075
3.38k
    }
2076
0
    return 0;
2077
3.38k
}
2078
2079
/*
2080
 * ssl_set_version_bound - set an upper or lower bound on the supported (D)TLS
2081
 * protocols, provided the initial (D)TLS method is version-flexible.  This
2082
 * function sanity-checks the proposed value and makes sure the method is
2083
 * version-flexible, then sets the limit if all is well.
2084
 *
2085
 * @method_version: The version of the current SSL_METHOD.
2086
 * @version: the intended limit.
2087
 * @bound: pointer to limit to be updated.
2088
 *
2089
 * Returns 1 on success, 0 on failure.
2090
 */
2091
int ssl_set_version_bound(int method_version, int version, int *bound)
2092
132k
{
2093
132k
    int valid_tls;
2094
132k
    int valid_dtls;
2095
2096
132k
    if (version == 0) {
2097
89.6k
        *bound = version;
2098
89.6k
        return 1;
2099
89.6k
    }
2100
2101
42.4k
    valid_tls = version >= SSL3_VERSION && version <= TLS_MAX_VERSION_INTERNAL;
2102
42.4k
    valid_dtls =
2103
        /* We support client side pre-standardisation version of DTLS */
2104
42.4k
        (version == DTLS1_BAD_VER)
2105
42.4k
        || (DTLS_VERSION_LE(version, DTLS_MAX_VERSION_INTERNAL)
2106
0
            && DTLS_VERSION_GE(version, DTLS1_VERSION));
2107
2108
42.4k
    if (!valid_tls && !valid_dtls)
2109
0
        return 0;
2110
2111
    /*-
2112
     * Restrict TLS methods to TLS protocol versions.
2113
     * Restrict DTLS methods to DTLS protocol versions.
2114
     * Note, DTLS version numbers are decreasing, use comparison macros.
2115
     *
2116
     * Note that for both lower-bounds we use explicit versions, not
2117
     * (D)TLS_MIN_VERSION.  This is because we don't want to break user
2118
     * configurations.  If the MIN (supported) version ever rises, the user's
2119
     * "floor" remains valid even if no longer available.  We don't expect the
2120
     * MAX ceiling to ever get lower, so making that variable makes sense.
2121
     *
2122
     * We ignore attempts to set bounds on version-inflexible methods,
2123
     * returning success.
2124
     */
2125
42.4k
    switch (method_version) {
2126
0
    default:
2127
0
        break;
2128
2129
42.4k
    case TLS_ANY_VERSION:
2130
42.4k
        if (valid_tls)
2131
42.4k
            *bound = version;
2132
42.4k
        break;
2133
2134
0
    case DTLS_ANY_VERSION:
2135
0
        if (valid_dtls)
2136
0
            *bound = version;
2137
0
        break;
2138
42.4k
    }
2139
42.4k
    return 1;
2140
42.4k
}
2141
2142
static void check_for_downgrade(SSL_CONNECTION *s, int vers, DOWNGRADE *dgrd)
2143
41.5k
{
2144
41.5k
    if (vers == TLS1_2_VERSION
2145
15.5k
        && ssl_version_supported(s, TLS1_3_VERSION, NULL)) {
2146
15.5k
        *dgrd = DOWNGRADE_TO_1_2;
2147
25.9k
    } else if (!SSL_CONNECTION_IS_DTLS(s)
2148
9.56k
        && vers < TLS1_2_VERSION
2149
        /*
2150
         * We need to ensure that a server that disables TLSv1.2
2151
         * (creating a hole between TLSv1.3 and TLSv1.1) can still
2152
         * complete handshakes with clients that support TLSv1.2 and
2153
         * below. Therefore we do not enable the sentinel if TLSv1.3 is
2154
         * enabled and TLSv1.2 is not.
2155
         */
2156
3.96k
        && ssl_version_supported(s, TLS1_2_VERSION, NULL)) {
2157
3.96k
        *dgrd = DOWNGRADE_TO_1_1;
2158
22.0k
    } else {
2159
22.0k
        *dgrd = DOWNGRADE_NONE;
2160
22.0k
    }
2161
41.5k
}
2162
2163
/*
2164
 * ssl_choose_server_version - Choose server (D)TLS version.  Called when the
2165
 * client HELLO is received to select the final server protocol version and
2166
 * the version specific method.
2167
 *
2168
 * @s: server SSL handle.
2169
 *
2170
 * Returns 0 on success or an SSL error reason number on failure.
2171
 */
2172
int ssl_choose_server_version(SSL_CONNECTION *s, CLIENTHELLO_MSG *hello,
2173
    DOWNGRADE *dgrd)
2174
30.7k
{
2175
    /*-
2176
     * With version-flexible methods we have an initial state with:
2177
     *
2178
     *   s->method->version == (D)TLS_ANY_VERSION,
2179
     *   s->version == (D)TLS_MAX_VERSION_INTERNAL.
2180
     *
2181
     * So we detect version-flexible methods via the method version, not the
2182
     * handle version.
2183
     */
2184
30.7k
    SSL *ssl = SSL_CONNECTION_GET_SSL(s);
2185
30.7k
    int server_version = ssl->method->version;
2186
30.7k
    int client_version = hello->legacy_version;
2187
30.7k
    const version_info *vent;
2188
30.7k
    const version_info *table;
2189
30.7k
    int disabled = 0;
2190
30.7k
    RAW_EXTENSION *suppversions;
2191
2192
30.7k
    s->client_version = client_version;
2193
2194
30.7k
    switch (server_version) {
2195
219
    default:
2196
219
        if (!SSL_CONNECTION_IS_TLS13(s)) {
2197
0
            if (ssl_version_cmp(s, client_version, s->version) < 0)
2198
0
                return SSL_R_WRONG_SSL_VERSION;
2199
0
            *dgrd = DOWNGRADE_NONE;
2200
            /*
2201
             * If this SSL handle is not from a version flexible method we don't
2202
             * (and never did) check min/max FIPS or Suite B constraints.  Hope
2203
             * that's OK.  It is up to the caller to not choose fixed protocol
2204
             * versions they don't want.  If not, then easy to fix, just return
2205
             * ssl_method_error(s, s->method)
2206
             */
2207
0
            return 0;
2208
0
        }
2209
        /*
2210
         * Fall through if we are TLSv1.3 already (this means we must be after
2211
         * a HelloRetryRequest
2212
         */
2213
        /* fall thru */
2214
17.5k
    case TLS_ANY_VERSION:
2215
17.5k
        table = tls_version_table;
2216
17.5k
        break;
2217
13.1k
    case DTLS_ANY_VERSION:
2218
13.1k
        table = dtls_version_table;
2219
13.1k
        break;
2220
30.7k
    }
2221
2222
30.7k
    suppversions = &hello->pre_proc_exts[TLSEXT_IDX_supported_versions];
2223
2224
    /* If we did an HRR then supported versions is mandatory */
2225
30.7k
    if (!suppversions->present && s->hello_retry_request != SSL_HRR_NONE)
2226
5
        return SSL_R_UNSUPPORTED_PROTOCOL;
2227
2228
30.7k
    if (suppversions->present && !SSL_CONNECTION_IS_DTLS(s)) {
2229
4.02k
        unsigned int candidate_vers = 0;
2230
4.02k
        unsigned int best_vers = 0;
2231
4.02k
        const SSL_METHOD *best_method = NULL;
2232
4.02k
        PACKET versionslist;
2233
2234
4.02k
        suppversions->parsed = 1;
2235
2236
4.02k
        if (!PACKET_as_length_prefixed_1(&suppversions->data, &versionslist)) {
2237
            /* Trailing or invalid data? */
2238
45
            return SSL_R_LENGTH_MISMATCH;
2239
45
        }
2240
2241
        /*
2242
         * The TLSv1.3 spec says the client MUST set this to TLS1_2_VERSION.
2243
         * The spec only requires servers to check that it isn't SSLv3:
2244
         * "Any endpoint receiving a Hello message with
2245
         * ClientHello.legacy_version or ServerHello.legacy_version set to
2246
         * 0x0300 MUST abort the handshake with a "protocol_version" alert."
2247
         * We are slightly stricter and require that it isn't SSLv3 or lower.
2248
         * We tolerate TLSv1 and TLSv1.1.
2249
         */
2250
3.98k
        if (client_version <= SSL3_VERSION)
2251
23
            return SSL_R_BAD_LEGACY_VERSION;
2252
2253
27.6k
        while (PACKET_get_net_2(&versionslist, &candidate_vers)) {
2254
23.7k
            if (ssl_version_cmp(s, candidate_vers, best_vers) <= 0)
2255
6.82k
                continue;
2256
16.8k
            if (ssl_version_supported(s, candidate_vers, &best_method))
2257
6.48k
                best_vers = candidate_vers;
2258
16.8k
        }
2259
3.95k
        if (PACKET_remaining(&versionslist) != 0) {
2260
            /* Trailing data? */
2261
137
            return SSL_R_LENGTH_MISMATCH;
2262
137
        }
2263
2264
3.82k
        if (best_vers > 0) {
2265
3.72k
            if (s->hello_retry_request != SSL_HRR_NONE) {
2266
                /*
2267
                 * This is after a HelloRetryRequest so we better check that we
2268
                 * negotiated TLSv1.3
2269
                 */
2270
164
                if (best_vers != TLS1_3_VERSION)
2271
0
                    return SSL_R_UNSUPPORTED_PROTOCOL;
2272
164
                return 0;
2273
164
            }
2274
3.55k
            check_for_downgrade(s, best_vers, dgrd);
2275
3.55k
            s->version = best_vers;
2276
3.55k
            ssl->method = best_method;
2277
3.55k
            if (!ssl_set_record_protocol_version(s, best_vers))
2278
0
                return ERR_R_INTERNAL_ERROR;
2279
2280
3.55k
            return 0;
2281
3.55k
        }
2282
100
        return SSL_R_UNSUPPORTED_PROTOCOL;
2283
3.82k
    }
2284
2285
    /*
2286
     * If the supported versions extension isn't present, then the highest
2287
     * version we can negotiate is TLSv1.2
2288
     */
2289
26.7k
    if (ssl_version_cmp(s, client_version, TLS1_3_VERSION) >= 0)
2290
10.7k
        client_version = TLS1_2_VERSION;
2291
2292
    /*
2293
     * No supported versions extension, so we just use the version supplied in
2294
     * the ClientHello.
2295
     */
2296
48.6k
    for (vent = table; vent->version != 0; ++vent) {
2297
48.5k
        const SSL_METHOD *method;
2298
2299
48.5k
        if (vent->smeth == NULL || ssl_version_cmp(s, client_version, vent->version) < 0)
2300
21.9k
            continue;
2301
26.6k
        method = vent->smeth();
2302
26.6k
        if (ssl_method_error(s, method) == 0) {
2303
26.6k
            check_for_downgrade(s, vent->version, dgrd);
2304
26.6k
            s->version = vent->version;
2305
26.6k
            ssl->method = method;
2306
26.6k
            if (!ssl_set_record_protocol_version(s, s->version))
2307
0
                return ERR_R_INTERNAL_ERROR;
2308
2309
26.6k
            return 0;
2310
26.6k
        }
2311
0
        disabled = 1;
2312
0
    }
2313
117
    return disabled ? SSL_R_UNSUPPORTED_PROTOCOL : SSL_R_VERSION_TOO_LOW;
2314
26.7k
}
2315
2316
/*
2317
 * ssl_choose_client_version - Choose client (D)TLS version.  Called when the
2318
 * server HELLO is received to select the final client protocol version and
2319
 * the version specific method.
2320
 *
2321
 * @s: client SSL handle.
2322
 * @version: The proposed version from the server's HELLO.
2323
 * @extensions: The extensions received
2324
 *
2325
 * Returns 1 on success or 0 on error.
2326
 */
2327
int ssl_choose_client_version(SSL_CONNECTION *s, int version,
2328
    RAW_EXTENSION *extensions)
2329
77.8k
{
2330
77.8k
    const version_info *vent;
2331
77.8k
    const version_info *table;
2332
77.8k
    int ret, ver_min, ver_max, real_max, origv;
2333
77.8k
    SSL *ssl = SSL_CONNECTION_GET_SSL(s);
2334
2335
77.8k
    origv = s->version;
2336
77.8k
    s->version = version;
2337
2338
    /* This will overwrite s->version if the extension is present */
2339
77.8k
    if (!tls_parse_extension(s, TLSEXT_IDX_supported_versions,
2340
77.8k
            SSL_EXT_TLS1_2_SERVER_HELLO
2341
77.8k
                | SSL_EXT_TLS1_3_SERVER_HELLO,
2342
77.8k
            extensions,
2343
77.8k
            NULL, 0)) {
2344
282
        s->version = origv;
2345
282
        return 0;
2346
282
    }
2347
2348
77.5k
    if (s->hello_retry_request != SSL_HRR_NONE
2349
143
        && s->version != TLS1_3_VERSION) {
2350
51
        s->version = origv;
2351
51
        SSLfatal(s, SSL_AD_PROTOCOL_VERSION, SSL_R_WRONG_SSL_VERSION);
2352
51
        return 0;
2353
51
    }
2354
2355
77.4k
    switch (ssl->method->version) {
2356
277
    default:
2357
277
        if (s->version != ssl->method->version) {
2358
108
            s->version = origv;
2359
108
            SSLfatal(s, SSL_AD_PROTOCOL_VERSION, SSL_R_WRONG_SSL_VERSION);
2360
108
            return 0;
2361
108
        }
2362
        /*
2363
         * If this SSL handle is not from a version flexible method we don't
2364
         * (and never did) check min/max, FIPS or Suite B constraints.  Hope
2365
         * that's OK.  It is up to the caller to not choose fixed protocol
2366
         * versions they don't want.  If not, then easy to fix, just return
2367
         * ssl_method_error(s, s->method)
2368
         */
2369
169
        if (!ssl_set_record_protocol_version(s, s->version)) {
2370
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
2371
0
            return 0;
2372
0
        }
2373
169
        return 1;
2374
56.6k
    case TLS_ANY_VERSION:
2375
56.6k
        table = tls_version_table;
2376
56.6k
        break;
2377
20.5k
    case DTLS_ANY_VERSION:
2378
20.5k
        table = dtls_version_table;
2379
20.5k
        break;
2380
77.4k
    }
2381
2382
77.2k
    ret = ssl_get_min_max_version(s, &ver_min, &ver_max, &real_max);
2383
77.2k
    if (ret != 0) {
2384
0
        s->version = origv;
2385
0
        SSLfatal(s, SSL_AD_PROTOCOL_VERSION, ret);
2386
0
        return 0;
2387
0
    }
2388
77.2k
    if (ssl_version_cmp(s, s->version, ver_min) < 0
2389
77.1k
        || ssl_version_cmp(s, s->version, ver_max) > 0) {
2390
510
        s->version = origv;
2391
510
        SSLfatal(s, SSL_AD_PROTOCOL_VERSION, SSL_R_UNSUPPORTED_PROTOCOL);
2392
510
        return 0;
2393
510
    }
2394
2395
76.6k
    if ((s->mode & SSL_MODE_SEND_FALLBACK_SCSV) == 0)
2396
76.6k
        real_max = ver_max;
2397
2398
    /* Check for downgrades */
2399
    /* TODO(DTLSv1.3): Update this code for DTLSv1.3 */
2400
76.6k
    if (!SSL_CONNECTION_IS_DTLS(s) && real_max > s->version) {
2401
        /* Signal applies to all versions */
2402
29.6k
        if (memcmp(tls11downgrade,
2403
29.6k
                s->s3.server_random + SSL3_RANDOM_SIZE
2404
29.6k
                    - sizeof(tls11downgrade),
2405
29.6k
                sizeof(tls11downgrade))
2406
29.6k
            == 0) {
2407
6
            s->version = origv;
2408
6
            SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER,
2409
6
                SSL_R_INAPPROPRIATE_FALLBACK);
2410
6
            return 0;
2411
6
        }
2412
        /* Only when accepting TLS1.3 */
2413
29.6k
        if (real_max == TLS1_3_VERSION
2414
29.6k
            && memcmp(tls12downgrade,
2415
29.6k
                   s->s3.server_random + SSL3_RANDOM_SIZE
2416
29.6k
                       - sizeof(tls12downgrade),
2417
29.6k
                   sizeof(tls12downgrade))
2418
29.6k
                == 0) {
2419
5
            s->version = origv;
2420
5
            SSLfatal(s, SSL_AD_ILLEGAL_PARAMETER,
2421
5
                SSL_R_INAPPROPRIATE_FALLBACK);
2422
5
            return 0;
2423
5
        }
2424
29.6k
    }
2425
2426
131k
    for (vent = table; vent->version != 0; ++vent) {
2427
131k
        if (vent->cmeth == NULL || s->version != vent->version)
2428
55.2k
            continue;
2429
2430
76.6k
        ssl->method = vent->cmeth();
2431
76.6k
        if (!ssl_set_record_protocol_version(s, s->version)) {
2432
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
2433
0
            return 0;
2434
0
        }
2435
76.6k
        return 1;
2436
76.6k
    }
2437
2438
10
    s->version = origv;
2439
10
    SSLfatal(s, SSL_AD_PROTOCOL_VERSION, SSL_R_UNSUPPORTED_PROTOCOL);
2440
10
    return 0;
2441
76.6k
}
2442
2443
/*
2444
 * ssl_get_min_max_version - get minimum and maximum protocol version
2445
 * @s: The SSL connection
2446
 * @min_version: The minimum supported version
2447
 * @max_version: The maximum supported version
2448
 * @real_max:    The highest version below the lowest compile time version hole
2449
 *               where that hole lies above at least one run-time enabled
2450
 *               protocol.
2451
 *
2452
 * Work out what version we should be using for the initial ClientHello if the
2453
 * version is initially (D)TLS_ANY_VERSION.  We apply any explicit SSL_OP_NO_xxx
2454
 * options, the MinProtocol and MaxProtocol configuration commands, any Suite B
2455
 * constraints and any floor imposed by the security level here,
2456
 * so we don't advertise the wrong protocol version to only reject the outcome later.
2457
 *
2458
 * Computing the right floor matters.  If, e.g., TLS 1.0 and 1.2 are enabled,
2459
 * TLS 1.1 is disabled, but the security level, Suite-B  and/or MinProtocol
2460
 * only allow TLS 1.2, we want to advertise TLS1.2, *not* TLS1.
2461
 *
2462
 * Returns 0 on success or an SSL error reason number on failure.  On failure
2463
 * min_version and max_version will also be set to 0.
2464
 */
2465
int ssl_get_min_max_version(const SSL_CONNECTION *s, int *min_version,
2466
    int *max_version, int *real_max)
2467
1.35M
{
2468
1.35M
    int version, tmp_real_max;
2469
1.35M
    int hole;
2470
1.35M
    const SSL_METHOD *method;
2471
1.35M
    const version_info *table;
2472
1.35M
    const version_info *vent;
2473
1.35M
    const SSL *ssl = SSL_CONNECTION_GET_SSL(s);
2474
2475
1.35M
    switch (ssl->method->version) {
2476
77.9k
    default:
2477
        /*
2478
         * If this SSL handle is not from a version flexible method we don't
2479
         * (and never did) check min/max FIPS or Suite B constraints.  Hope
2480
         * that's OK.  It is up to the caller to not choose fixed protocol
2481
         * versions they don't want.  If not, then easy to fix, just return
2482
         * ssl_method_error(s, s->method)
2483
         */
2484
77.9k
        *min_version = *max_version = s->version;
2485
        /*
2486
         * Providing a real_max only makes sense where we're using a version
2487
         * flexible method.
2488
         */
2489
77.9k
        if (!ossl_assert(real_max == NULL))
2490
0
            return ERR_R_INTERNAL_ERROR;
2491
77.9k
        return 0;
2492
977k
    case TLS_ANY_VERSION:
2493
977k
        table = tls_version_table;
2494
977k
        break;
2495
298k
    case DTLS_ANY_VERSION:
2496
298k
        table = dtls_version_table;
2497
298k
        break;
2498
1.35M
    }
2499
2500
    /*
2501
     * SSL_OP_NO_X disables all protocols above X *if* there are some protocols
2502
     * below X enabled. This is required in order to maintain the "version
2503
     * capability" vector contiguous. Any versions with a NULL client method
2504
     * (protocol version client is disabled at compile-time) is also a "hole".
2505
     *
2506
     * Our initial state is hole == 1, version == 0.  That is, versions above
2507
     * the first version in the method table are disabled (a "hole" above
2508
     * the valid protocol entries) and we don't have a selected version yet.
2509
     *
2510
     * Whenever "hole == 1", and we hit an enabled method, its version becomes
2511
     * the selected version.  We're no longer in a hole, so "hole" becomes 0.
2512
     *
2513
     * If "hole == 0" and we hit an enabled method, we support a contiguous
2514
     * range of at least two methods.  If we hit a disabled method,
2515
     * then hole becomes true again, but nothing else changes yet,
2516
     * because all the remaining methods may be disabled too.
2517
     * If we again hit an enabled method after the new hole, it becomes
2518
     * selected, as we start from scratch.
2519
     */
2520
1.27M
    *min_version = version = 0;
2521
1.27M
    hole = 1;
2522
1.27M
    if (real_max != NULL)
2523
83.0k
        *real_max = 0;
2524
1.27M
    tmp_real_max = 0;
2525
6.86M
    for (vent = table; vent->version != 0; ++vent) {
2526
        /*
2527
         * A table entry with a NULL client method is still a hole in the
2528
         * "version capability" vector.
2529
         */
2530
5.58M
        if (vent->cmeth == NULL) {
2531
781k
            hole = 1;
2532
781k
            tmp_real_max = 0;
2533
781k
            continue;
2534
781k
        }
2535
4.80M
        method = vent->cmeth();
2536
2537
4.80M
        if (hole == 1 && tmp_real_max == 0)
2538
1.27M
            tmp_real_max = vent->version;
2539
2540
4.80M
        if (ssl_method_error(s, method) != 0) {
2541
1.53M
            hole = 1;
2542
3.26M
        } else if (!hole) {
2543
1.99M
            *min_version = method->version;
2544
1.99M
        } else {
2545
1.27M
            if (real_max != NULL && tmp_real_max != 0)
2546
83.0k
                *real_max = tmp_real_max;
2547
1.27M
            version = method->version;
2548
1.27M
            *min_version = version;
2549
1.27M
            hole = 0;
2550
1.27M
        }
2551
4.80M
    }
2552
2553
1.27M
    *max_version = version;
2554
2555
    /* Fail if everything is disabled */
2556
1.27M
    if (version == 0)
2557
0
        return SSL_R_NO_PROTOCOLS_AVAILABLE;
2558
2559
1.27M
    return 0;
2560
1.27M
}
2561
2562
/*
2563
 * ssl_set_client_hello_version - Work out what version we should be using for
2564
 * the initial ClientHello.legacy_version field.
2565
 *
2566
 * @s: client SSL handle.
2567
 *
2568
 * Returns 0 on success or an SSL error reason number on failure.
2569
 */
2570
int ssl_set_client_hello_version(SSL_CONNECTION *s)
2571
143k
{
2572
143k
    int ver_min, ver_max, ret;
2573
2574
    /*
2575
     * In a renegotiation we always send the same client_version that we sent
2576
     * last time, regardless of which version we eventually negotiated.
2577
     */
2578
143k
    if (!SSL_IS_FIRST_HANDSHAKE(s))
2579
1.50k
        return 0;
2580
2581
142k
    ret = ssl_get_min_max_version(s, &ver_min, &ver_max, NULL);
2582
2583
142k
    if (ret != 0)
2584
0
        return ret;
2585
2586
142k
    s->version = ver_max;
2587
2588
142k
    if (SSL_CONNECTION_IS_DTLS(s)) {
2589
37.7k
        if (ver_max == DTLS1_BAD_VER) {
2590
            /*
2591
             * Even though this is technically before version negotiation,
2592
             * because we have asked for DTLS1_BAD_VER we will never negotiate
2593
             * anything else, and this has impacts on the record layer for when
2594
             * we read the ServerHello. So we need to tell the record layer
2595
             * about this immediately.
2596
             */
2597
335
            if (!ssl_set_record_protocol_version(s, ver_max))
2598
0
                return 0;
2599
335
        }
2600
104k
    } else if (ver_max > TLS1_2_VERSION) {
2601
        /* TLS1.3 always uses TLS1.2 in the legacy_version field */
2602
104k
        ver_max = TLS1_2_VERSION;
2603
104k
    }
2604
2605
142k
    s->client_version = ver_max;
2606
142k
    return 0;
2607
142k
}
2608
2609
/*
2610
 * Checks a list of |groups| to determine if the |group_id| is in it. If it is
2611
 * and |checkallow| is 1 then additionally check if the group is allowed to be
2612
 * used. Returns 1 if the group is in the list (and allowed if |checkallow| is
2613
 * 1) or 0 otherwise.
2614
 */
2615
int check_in_list(SSL_CONNECTION *s, uint16_t group_id, const uint16_t *groups,
2616
    size_t num_groups, int checkallow)
2617
5.08k
{
2618
5.08k
    size_t i;
2619
2620
5.08k
    if (groups == NULL || num_groups == 0)
2621
0
        return 0;
2622
2623
14.3k
    for (i = 0; i < num_groups; i++) {
2624
13.3k
        uint16_t group = groups[i];
2625
2626
13.3k
        if (group_id == group
2627
4.06k
            && (!checkallow
2628
4.06k
                || tls_group_allowed(s, group, SSL_SECOP_CURVE_CHECK))) {
2629
4.06k
            return 1;
2630
4.06k
        }
2631
13.3k
    }
2632
2633
1.01k
    return 0;
2634
5.08k
}
2635
2636
/* Replace ClientHello1 in the transcript hash with a synthetic message */
2637
int create_synthetic_message_hash(SSL_CONNECTION *s,
2638
    const unsigned char *hashval,
2639
    size_t hashlen, const unsigned char *hrr,
2640
    size_t hrrlen)
2641
1.21k
{
2642
1.21k
    unsigned char hashvaltmp[EVP_MAX_MD_SIZE];
2643
1.21k
    unsigned char msghdr[SSL3_HM_HEADER_LENGTH];
2644
2645
1.21k
    memset(msghdr, 0, sizeof(msghdr));
2646
2647
1.21k
    if (hashval == NULL) {
2648
1.20k
        hashval = hashvaltmp;
2649
1.20k
        hashlen = 0;
2650
        /* Get the hash of the initial ClientHello */
2651
1.20k
        if (!ssl3_digest_cached_records(s, 0)
2652
1.20k
            || !ssl_handshake_hash(s, hashvaltmp, sizeof(hashvaltmp),
2653
1.20k
                &hashlen)) {
2654
            /* SSLfatal() already called */
2655
0
            return 0;
2656
0
        }
2657
1.20k
    }
2658
2659
    /* Reinitialise the transcript hash */
2660
1.21k
    if (!ssl3_init_finished_mac(s)) {
2661
        /* SSLfatal() already called */
2662
0
        return 0;
2663
0
    }
2664
2665
    /* Inject the synthetic message_hash message */
2666
1.21k
    msghdr[0] = SSL3_MT_MESSAGE_HASH;
2667
1.21k
    msghdr[SSL3_HM_HEADER_LENGTH - 1] = (unsigned char)hashlen;
2668
1.21k
    if (!ssl3_finish_mac(s, msghdr, SSL3_HM_HEADER_LENGTH)
2669
1.21k
        || !ssl3_finish_mac(s, hashval, hashlen)) {
2670
        /* SSLfatal() already called */
2671
0
        return 0;
2672
0
    }
2673
2674
    /*
2675
     * Now re-inject the HRR and current message if appropriate (we just deleted
2676
     * it when we reinitialised the transcript hash above). Only necessary after
2677
     * receiving a ClientHello2 with a cookie.
2678
     */
2679
1.21k
    if (hrr != NULL
2680
0
        && (!ssl3_finish_mac(s, hrr, hrrlen)
2681
0
            || !ssl3_finish_mac(s, (unsigned char *)s->init_buf->data,
2682
0
                s->s3.tmp.message_size
2683
0
                    + SSL3_HM_HEADER_LENGTH))) {
2684
        /* SSLfatal() already called */
2685
0
        return 0;
2686
0
    }
2687
2688
1.21k
    return 1;
2689
1.21k
}
2690
2691
static int ca_dn_cmp(const X509_NAME *const *a, const X509_NAME *const *b)
2692
44
{
2693
44
    return X509_NAME_cmp(*a, *b);
2694
44
}
2695
2696
int parse_ca_names(SSL_CONNECTION *s, PACKET *pkt)
2697
1.20k
{
2698
1.20k
    STACK_OF(X509_NAME) *ca_sk = sk_X509_NAME_new(ca_dn_cmp);
2699
1.20k
    X509_NAME *xn = NULL;
2700
1.20k
    PACKET cadns;
2701
2702
1.20k
    if (ca_sk == NULL) {
2703
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_CRYPTO_LIB);
2704
0
        goto err;
2705
0
    }
2706
    /* get the CA RDNs */
2707
1.20k
    if (!PACKET_get_length_prefixed_2(pkt, &cadns)) {
2708
535
        SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_R_LENGTH_MISMATCH);
2709
535
        goto err;
2710
535
    }
2711
2712
1.13k
    while (PACKET_remaining(&cadns)) {
2713
980
        const unsigned char *namestart, *namebytes;
2714
980
        unsigned int name_len;
2715
2716
980
        if (!PACKET_get_net_2(&cadns, &name_len)
2717
942
            || !PACKET_get_bytes(&cadns, &namebytes, name_len)) {
2718
184
            SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_R_LENGTH_MISMATCH);
2719
184
            goto err;
2720
184
        }
2721
2722
796
        namestart = namebytes;
2723
796
        if ((xn = d2i_X509_NAME(NULL, &namebytes, name_len)) == NULL) {
2724
297
            SSLfatal(s, SSL_AD_DECODE_ERROR, ERR_R_ASN1_LIB);
2725
297
            goto err;
2726
297
        }
2727
499
        if (namebytes != (namestart + name_len)) {
2728
30
            SSLfatal(s, SSL_AD_DECODE_ERROR, SSL_R_CA_DN_LENGTH_MISMATCH);
2729
30
            goto err;
2730
30
        }
2731
2732
469
        if (!sk_X509_NAME_push(ca_sk, xn)) {
2733
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_CRYPTO_LIB);
2734
0
            goto err;
2735
0
        }
2736
469
        xn = NULL;
2737
469
    }
2738
2739
156
    sk_X509_NAME_pop_free(s->s3.tmp.peer_ca_names, X509_NAME_free);
2740
156
    s->s3.tmp.peer_ca_names = ca_sk;
2741
2742
156
    return 1;
2743
2744
1.04k
err:
2745
1.04k
    sk_X509_NAME_pop_free(ca_sk, X509_NAME_free);
2746
1.04k
    X509_NAME_free(xn);
2747
1.04k
    return 0;
2748
667
}
2749
2750
const STACK_OF(X509_NAME) *get_ca_names(SSL_CONNECTION *s)
2751
94.7k
{
2752
94.7k
    const STACK_OF(X509_NAME) *ca_sk = NULL;
2753
94.7k
    SSL *ssl = SSL_CONNECTION_GET_SSL(s);
2754
2755
94.7k
    if (s->server) {
2756
0
        ca_sk = SSL_get_client_CA_list(ssl);
2757
0
        if (ca_sk != NULL && sk_X509_NAME_num(ca_sk) == 0)
2758
0
            ca_sk = NULL;
2759
0
    }
2760
2761
94.7k
    if (ca_sk == NULL)
2762
94.7k
        ca_sk = SSL_get0_CA_list(ssl);
2763
2764
94.7k
    return ca_sk;
2765
94.7k
}
2766
2767
int construct_ca_names(SSL_CONNECTION *s, const STACK_OF(X509_NAME) *ca_sk,
2768
    WPACKET *pkt)
2769
0
{
2770
    /* Start sub-packet for client CA list */
2771
0
    if (!WPACKET_start_sub_packet_u16(pkt)) {
2772
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
2773
0
        return 0;
2774
0
    }
2775
2776
0
    if ((ca_sk != NULL) && !(s->options & SSL_OP_DISABLE_TLSEXT_CA_NAMES)) {
2777
0
        int i;
2778
2779
0
        for (i = 0; i < sk_X509_NAME_num(ca_sk); i++) {
2780
0
            unsigned char *namebytes;
2781
0
            X509_NAME *name = sk_X509_NAME_value(ca_sk, i);
2782
0
            int namelen;
2783
2784
0
            if (name == NULL
2785
0
                || (namelen = i2d_X509_NAME(name, NULL)) < 0
2786
0
                || !WPACKET_sub_allocate_bytes_u16(pkt, namelen,
2787
0
                    &namebytes)
2788
0
                || i2d_X509_NAME(name, &namebytes) != namelen) {
2789
0
                SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
2790
0
                return 0;
2791
0
            }
2792
0
        }
2793
0
    }
2794
2795
0
    if (!WPACKET_close(pkt)) {
2796
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
2797
0
        return 0;
2798
0
    }
2799
2800
0
    return 1;
2801
0
}
2802
2803
/* Create a buffer containing data to be signed for server key exchange */
2804
size_t construct_key_exchange_tbs(SSL_CONNECTION *s, unsigned char **ptbs,
2805
    const void *param, size_t paramlen)
2806
15.6k
{
2807
15.6k
    size_t tbslen = 2 * SSL3_RANDOM_SIZE + paramlen;
2808
15.6k
    unsigned char *tbs = OPENSSL_malloc(tbslen);
2809
2810
15.6k
    if (tbs == NULL) {
2811
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_CRYPTO_LIB);
2812
0
        return 0;
2813
0
    }
2814
15.6k
    memcpy(tbs, s->s3.client_random, SSL3_RANDOM_SIZE);
2815
15.6k
    memcpy(tbs + SSL3_RANDOM_SIZE, s->s3.server_random, SSL3_RANDOM_SIZE);
2816
2817
15.6k
    memcpy(tbs + SSL3_RANDOM_SIZE * 2, param, paramlen);
2818
2819
15.6k
    *ptbs = tbs;
2820
15.6k
    return tbslen;
2821
15.6k
}
2822
2823
/*
2824
 * Saves the current handshake digest for Post-Handshake Auth,
2825
 * Done after ClientFinished is processed, done exactly once
2826
 */
2827
int tls13_save_handshake_digest_for_pha(SSL_CONNECTION *s)
2828
13.3k
{
2829
13.3k
    if (s->pha_dgst == NULL) {
2830
13.3k
        if (!ssl3_digest_cached_records(s, 1))
2831
            /* SSLfatal() already called */
2832
0
            return 0;
2833
2834
13.3k
        s->pha_dgst = EVP_MD_CTX_new();
2835
13.3k
        if (s->pha_dgst == NULL) {
2836
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
2837
0
            return 0;
2838
0
        }
2839
13.3k
        if (!EVP_MD_CTX_copy_ex(s->pha_dgst,
2840
13.3k
                s->s3.handshake_dgst)) {
2841
0
            SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
2842
0
            EVP_MD_CTX_free(s->pha_dgst);
2843
0
            s->pha_dgst = NULL;
2844
0
            return 0;
2845
0
        }
2846
13.3k
    }
2847
13.3k
    return 1;
2848
13.3k
}
2849
2850
/*
2851
 * Restores the Post-Handshake Auth handshake digest
2852
 * Done just before sending/processing the Cert Request
2853
 */
2854
int tls13_restore_handshake_digest_for_pha(SSL_CONNECTION *s)
2855
0
{
2856
0
    if (s->pha_dgst == NULL) {
2857
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
2858
0
        return 0;
2859
0
    }
2860
0
    if (!EVP_MD_CTX_copy_ex(s->s3.handshake_dgst,
2861
0
            s->pha_dgst)) {
2862
0
        SSLfatal(s, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
2863
0
        return 0;
2864
0
    }
2865
0
    return 1;
2866
0
}
2867
2868
#ifndef OPENSSL_NO_COMP_ALG
2869
MSG_PROCESS_RETURN tls13_process_compressed_certificate(SSL_CONNECTION *sc,
2870
    PACKET *pkt,
2871
    PACKET *tmppkt,
2872
    BUF_MEM *buf)
2873
{
2874
    MSG_PROCESS_RETURN ret = MSG_PROCESS_ERROR;
2875
    int comp_alg;
2876
    COMP_METHOD *method = NULL;
2877
    COMP_CTX *comp = NULL;
2878
    size_t expected_length;
2879
    size_t comp_length;
2880
    int i;
2881
    int found = 0;
2882
2883
    if (buf == NULL) {
2884
        SSLfatal(sc, SSL_AD_INTERNAL_ERROR, ERR_R_INTERNAL_ERROR);
2885
        goto err;
2886
    }
2887
    if (!PACKET_get_net_2(pkt, (unsigned int *)&comp_alg)) {
2888
        SSLfatal(sc, SSL_AD_BAD_CERTIFICATE, ERR_R_INTERNAL_ERROR);
2889
        goto err;
2890
    }
2891
    /* If we have a prefs list, make sure the algorithm is in it */
2892
    if (sc->cert_comp_prefs[0] != TLSEXT_comp_cert_none) {
2893
        for (i = 0; sc->cert_comp_prefs[i] != TLSEXT_comp_cert_none; i++) {
2894
            if (sc->cert_comp_prefs[i] == comp_alg) {
2895
                found = 1;
2896
                break;
2897
            }
2898
        }
2899
        if (!found) {
2900
            SSLfatal(sc, SSL_AD_ILLEGAL_PARAMETER, SSL_R_BAD_COMPRESSION_ALGORITHM);
2901
            goto err;
2902
        }
2903
    }
2904
    if (!ossl_comp_has_alg(comp_alg)) {
2905
        SSLfatal(sc, SSL_AD_BAD_CERTIFICATE, SSL_R_BAD_COMPRESSION_ALGORITHM);
2906
        goto err;
2907
    }
2908
    switch (comp_alg) {
2909
    case TLSEXT_comp_cert_zlib:
2910
        method = COMP_zlib_oneshot();
2911
        break;
2912
    case TLSEXT_comp_cert_brotli:
2913
        method = COMP_brotli_oneshot();
2914
        break;
2915
    case TLSEXT_comp_cert_zstd:
2916
        method = COMP_zstd_oneshot();
2917
        break;
2918
    default:
2919
        SSLfatal(sc, SSL_AD_BAD_CERTIFICATE, SSL_R_BAD_COMPRESSION_ALGORITHM);
2920
        goto err;
2921
    }
2922
2923
    if ((comp = COMP_CTX_new(method)) == NULL
2924
        || !PACKET_get_net_3_len(pkt, &expected_length)
2925
        || !PACKET_get_net_3_len(pkt, &comp_length)) {
2926
        SSLfatal(sc, SSL_AD_BAD_CERTIFICATE, SSL_R_BAD_DECOMPRESSION);
2927
        goto err;
2928
    }
2929
2930
    /* Prevent excessive pre-decompression allocation */
2931
    if (expected_length > sc->max_cert_list) {
2932
        SSLfatal(sc, SSL_AD_BAD_CERTIFICATE, SSL_R_EXCESSIVE_MESSAGE_SIZE);
2933
        goto err;
2934
    }
2935
2936
    if (PACKET_remaining(pkt) != comp_length || comp_length == 0) {
2937
        SSLfatal(sc, SSL_AD_DECODE_ERROR, SSL_R_BAD_DECOMPRESSION);
2938
        goto err;
2939
    }
2940
2941
    if (!BUF_MEM_grow(buf, expected_length)
2942
        || !PACKET_buf_init(tmppkt, (unsigned char *)buf->data, expected_length)
2943
        || COMP_expand_block(comp, (unsigned char *)buf->data, expected_length,
2944
               (unsigned char *)PACKET_data(pkt), comp_length)
2945
            != (int)expected_length) {
2946
        SSLfatal(sc, SSL_AD_BAD_CERTIFICATE, SSL_R_BAD_DECOMPRESSION);
2947
        goto err;
2948
    }
2949
    ret = MSG_PROCESS_CONTINUE_PROCESSING;
2950
err:
2951
    COMP_CTX_free(comp);
2952
    return ret;
2953
}
2954
#endif