Coverage Report

Created: 2026-08-31 06:56

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/openssl/crypto/x509/x509_vfy.c
Line
Count
Source
1
/*
2
 * Copyright 1995-2026 The OpenSSL Project Authors. All Rights Reserved.
3
 *
4
 * Licensed under the Apache License 2.0 (the "License").  You may not use
5
 * this file except in compliance with the License.  You can obtain a copy
6
 * in the file LICENSE in the source distribution or at
7
 * https://www.openssl.org/source/license.html
8
 */
9
10
#define OPENSSL_SUPPRESS_DEPRECATED
11
#include "internal/deprecated.h"
12
13
#include <stdio.h>
14
#include <time.h>
15
#include <errno.h>
16
#include <limits.h>
17
18
#include "crypto/ctype.h"
19
#include "internal/cryptlib.h"
20
#include <openssl/crypto.h>
21
#include <openssl/buffer.h>
22
#include <openssl/evp.h>
23
#include <openssl/asn1.h>
24
#include <openssl/x509.h>
25
#include <openssl/x509v3.h>
26
#include <openssl/ocsp.h>
27
#include <openssl/objects.h>
28
#include <openssl/posix_time.h>
29
#include <openssl/core_names.h>
30
#include "internal/dane.h"
31
#include "crypto/x509.h"
32
#include "x509_local.h"
33
34
/* CRL score values */
35
36
0
#define CRL_SCORE_NOCRITICAL 0x100 /* No unhandled critical extensions */
37
0
#define CRL_SCORE_SCOPE 0x080 /* certificate is within CRL scope */
38
0
#define CRL_SCORE_TIME 0x040 /* CRL times valid */
39
0
#define CRL_SCORE_ISSUER_NAME 0x020 /* Issuer name matches certificate */
40
#define CRL_SCORE_VALID /* If this score or above CRL is probably valid */ \
41
0
    (CRL_SCORE_NOCRITICAL | CRL_SCORE_TIME | CRL_SCORE_SCOPE)
42
0
#define CRL_SCORE_ISSUER_CERT 0x018 /* CRL issuer is certificate issuer */
43
0
#define CRL_SCORE_SAME_PATH 0x008 /* CRL issuer is on certificate path */
44
0
#define CRL_SCORE_AKID 0x004 /* CRL issuer matches CRL AKID */
45
0
#define CRL_SCORE_TIME_DELTA 0x002 /* Have a delta CRL with valid times */
46
47
static int x509_verify_x509(X509_STORE_CTX *ctx);
48
static int x509_verify_rpk(X509_STORE_CTX *ctx);
49
static int build_chain(X509_STORE_CTX *ctx);
50
static int verify_chain(X509_STORE_CTX *ctx);
51
static int verify_rpk(X509_STORE_CTX *ctx);
52
static int dane_verify(X509_STORE_CTX *ctx);
53
static int dane_verify_rpk(X509_STORE_CTX *ctx);
54
static int null_callback(int ok, X509_STORE_CTX *e);
55
static int check_issued(X509_STORE_CTX *ctx, const X509 *x, const X509 *issuer);
56
static int check_extensions(X509_STORE_CTX *ctx);
57
static int check_name_constraints(X509_STORE_CTX *ctx);
58
static int check_id(X509_STORE_CTX *ctx);
59
static int check_trust(X509_STORE_CTX *ctx, int num_untrusted);
60
static int check_revocation(X509_STORE_CTX *ctx);
61
static int revocation_check_end(X509_STORE_CTX *ctx, int check_all);
62
#ifndef OPENSSL_NO_OCSP
63
static int check_cert_ocsp_resp(X509_STORE_CTX *ctx);
64
#endif
65
static int check_cert_crl(X509_STORE_CTX *ctx);
66
static int check_policy(X509_STORE_CTX *ctx);
67
static int check_dane_issuer(X509_STORE_CTX *ctx, int depth);
68
static int check_cert_key_level(X509_STORE_CTX *ctx, X509 *cert);
69
static int check_key_level(X509_STORE_CTX *ctx, EVP_PKEY *pkey);
70
static int check_sig_level(X509_STORE_CTX *ctx, X509 *cert);
71
static int check_curve(X509 *cert);
72
73
static int get_crl_score(X509_STORE_CTX *ctx, X509 **pissuer,
74
    unsigned int *preasons, X509_CRL *crl, X509 *x);
75
static int get_crl_delta(X509_STORE_CTX *ctx,
76
    X509_CRL **pcrl, X509_CRL **pdcrl, X509 *x);
77
static void get_delta_sk(X509_STORE_CTX *ctx, X509_CRL **dcrl,
78
    int *pcrl_score, X509_CRL *base,
79
    STACK_OF(X509_CRL) *crls);
80
static void crl_akid_check(X509_STORE_CTX *ctx, X509_CRL *crl, X509 **pissuer,
81
    int *pcrl_score);
82
static int matching_crl_issuer_and_akid(const X509_CRL *crl,
83
    const X509 *issuer, const X509_NAME *crl_issuer_name);
84
static int crl_crldp_check(X509 *x, X509_CRL *crl, int crl_score,
85
    unsigned int *preasons);
86
static int check_crl_path(X509_STORE_CTX *ctx, X509 *x);
87
static int check_crl_chain(X509_STORE_CTX *ctx,
88
    STACK_OF(X509) *cert_path,
89
    STACK_OF(X509) *crl_path);
90
91
static int internal_verify(X509_STORE_CTX *ctx);
92
93
static int null_callback(int ok, X509_STORE_CTX *e)
94
0
{
95
0
    return ok;
96
0
}
97
98
/*-
99
 * Return 1 if given cert is considered self-signed, 0 if not, or -1 on error.
100
 * This actually verifies self-signedness only if requested.
101
 * It calls ossl_x509v3_cache_extensions()
102
 * to match issuer and subject names (i.e., the cert being self-issued) and any
103
 * present authority key identifier to match the subject key identifier, etc.
104
 */
105
int X509_self_signed(const X509 *cert, int verify_signature)
106
0
{
107
0
    EVP_PKEY *pkey;
108
109
0
    if ((pkey = X509_get0_pubkey(cert)) == NULL) { /* handles cert == NULL */
110
0
        ERR_raise(ERR_LIB_X509, X509_R_UNABLE_TO_GET_CERTS_PUBLIC_KEY);
111
0
        return -1;
112
0
    }
113
0
    if (!ossl_x509v3_cache_extensions((X509 *)cert))
114
0
        return -1;
115
0
    if ((cert->ex_flags & EXFLAG_SS) == 0)
116
0
        return 0;
117
0
    if (!verify_signature)
118
0
        return 1;
119
0
    return X509_verify(cert, pkey);
120
0
}
121
122
/*
123
 * Given a certificate, try and find an exact match in the store.
124
 * Returns 1 on success, 0 on not found, -1 on internal error.
125
 */
126
static int lookup_cert_match(X509 **result, X509_STORE_CTX *ctx, X509 *x)
127
0
{
128
0
    STACK_OF(X509) *certs;
129
0
    X509 *xtmp = NULL;
130
0
    int i, ret;
131
132
0
    *result = NULL;
133
    /* Lookup all certs with matching subject name */
134
0
    ERR_set_mark();
135
0
    certs = ctx->lookup_certs(ctx, X509_get_subject_name(x));
136
0
    ERR_pop_to_mark();
137
0
    if (certs == NULL)
138
0
        return -1;
139
140
    /* Look for exact match */
141
0
    for (i = 0; i < sk_X509_num(certs); i++) {
142
0
        xtmp = sk_X509_value(certs, i);
143
0
        if (X509_cmp(xtmp, x) == 0)
144
0
            break;
145
0
        xtmp = NULL;
146
0
    }
147
0
    ret = xtmp != NULL;
148
0
    if (ret) {
149
0
        if (!X509_up_ref(xtmp))
150
0
            ret = -1;
151
0
        else
152
0
            *result = xtmp;
153
0
    }
154
0
    OSSL_STACK_OF_X509_free(certs);
155
0
    return ret;
156
0
}
157
158
/*-
159
 * Inform the verify callback of an error.
160
 * The error code is set to |err| if |err| is not X509_V_OK, else
161
 * |ctx->error| is left unchanged (under the assumption it is set elsewhere).
162
 * The error depth is |depth| if >= 0, else it defaults to |ctx->error_depth|.
163
 * The error cert is |x| if not NULL, else the cert in |ctx->chain| at |depth|.
164
 *
165
 * Returns 0 to abort verification with an error, non-zero to continue.
166
 */
167
static int verify_cb_cert(X509_STORE_CTX *ctx, const X509 *x, int depth, int err)
168
0
{
169
0
    if (depth < 0)
170
0
        depth = ctx->error_depth;
171
0
    else
172
0
        ctx->error_depth = depth;
173
0
    ctx->current_cert = x != NULL ? (X509 *)x : sk_X509_value(ctx->chain, depth);
174
0
    if (err != X509_V_OK)
175
0
        ctx->error = err;
176
0
    return ctx->verify_cb(0, ctx);
177
0
}
178
179
#define CB_FAIL_IF(cond, ctx, cert, depth, err)               \
180
0
    if ((cond) && verify_cb_cert(ctx, cert, depth, err) == 0) \
181
0
    return 0
182
183
/*-
184
 * Inform the verify callback of an error, CRL-specific variant.  Here, the
185
 * error depth and certificate are already set, we just specify the error
186
 * number.
187
 *
188
 * Returns 0 to abort verification with an error, non-zero to continue.
189
 */
190
static int verify_cb_crl(X509_STORE_CTX *ctx, int err)
191
0
{
192
0
    ctx->error = err;
193
0
    return ctx->verify_cb(0, ctx);
194
0
}
195
196
#ifndef OPENSSL_NO_OCSP
197
/*
198
 * Inform the verify callback of an error, OCSP-specific variant.
199
 * It is called also on OCSP response errors, if the
200
 * X509_V_FLAG_OCSP_RESP_CHECK flag is set.
201
 * Here, the error depth and certificate are already set, we just specify
202
 * the error number.
203
 *
204
 * Returns 0 to abort verification with an error, non-zero to continue.
205
 */
206
static int verify_cb_ocsp(X509_STORE_CTX *ctx, int err)
207
0
{
208
0
    ctx->error = err;
209
0
    return ctx->verify_cb(0, ctx);
210
0
}
211
#endif
212
213
/* Sadly, returns 0 also on internal error in ctx->verify_cb(). */
214
static int check_auth_level(X509_STORE_CTX *ctx)
215
0
{
216
0
    int i;
217
0
    int num = sk_X509_num(ctx->chain);
218
219
0
    if (ctx->param->auth_level <= 0)
220
0
        return 1;
221
222
0
    for (i = 0; i < num; ++i) {
223
0
        X509 *cert = sk_X509_value(ctx->chain, i);
224
225
        /*
226
         * We've already checked the security of the leaf key, so here we only
227
         * check the security of issuer keys.
228
         */
229
0
        CB_FAIL_IF(i > 0 && !check_cert_key_level(ctx, cert),
230
0
            ctx, cert, i, X509_V_ERR_CA_KEY_TOO_SMALL);
231
        /*
232
         * We also check the signature algorithm security of all certificates
233
         * except those of the trust anchor at index num-1.
234
         */
235
0
        CB_FAIL_IF(i < num - 1 && !check_sig_level(ctx, cert),
236
0
            ctx, cert, i, X509_V_ERR_CA_MD_TOO_WEAK);
237
0
    }
238
0
    return 1;
239
0
}
240
241
/*-
242
 * Returns -1 on internal error.
243
 * Sadly, returns 0 also on internal error in ctx->verify_cb().
244
 */
245
static int verify_rpk(X509_STORE_CTX *ctx)
246
0
{
247
    /* Not much to verify on a RPK */
248
0
    if (ctx->verify != NULL)
249
0
        return ctx->verify(ctx);
250
251
0
    return !!ctx->verify_cb(ctx->error == X509_V_OK, ctx);
252
0
}
253
254
/*-
255
 * Returns -1 on internal error.
256
 * Sadly, returns 0 also on internal error in ctx->verify_cb().
257
 */
258
static int verify_chain(X509_STORE_CTX *ctx)
259
0
{
260
0
    int err;
261
0
    int ok;
262
263
0
    if ((ok = build_chain(ctx)) <= 0
264
0
        || (ok = check_extensions(ctx)) <= 0
265
0
        || (ok = check_auth_level(ctx)) <= 0
266
0
        || (ok = check_id(ctx)) <= 0
267
0
        || (ok = X509_get_pubkey_parameters(NULL, ctx->chain) ? 1 : -1) <= 0
268
0
        || (ok = ctx->check_revocation(ctx)) <= 0)
269
0
        return ok;
270
271
0
    err = X509_chain_check_suiteb(&ctx->error_depth, NULL, ctx->chain,
272
0
        ctx->param->flags);
273
0
    CB_FAIL_IF(err != X509_V_OK, ctx, NULL, ctx->error_depth, err);
274
275
    /* Verify chain signatures and expiration times */
276
0
    ok = ctx->verify != NULL ? ctx->verify(ctx) : internal_verify(ctx);
277
0
    if (ok <= 0)
278
0
        return ok;
279
280
0
    if ((ok = check_name_constraints(ctx)) <= 0)
281
0
        return ok;
282
283
0
#ifndef OPENSSL_NO_RFC3779
284
    /* RFC 3779 path validation, now that CRL check has been done */
285
0
    if ((ok = X509v3_asid_validate_path(ctx)) <= 0)
286
0
        return ok;
287
0
    if ((ok = X509v3_addr_validate_path(ctx)) <= 0)
288
0
        return ok;
289
0
#endif
290
291
    /* If we get this far evaluate policies */
292
0
    if ((ctx->param->flags & X509_V_FLAG_POLICY_CHECK) != 0)
293
0
        ok = ctx->check_policy(ctx);
294
0
    return ok;
295
0
}
296
297
int X509_STORE_CTX_verify(X509_STORE_CTX *ctx)
298
0
{
299
0
    if (ctx == NULL) {
300
0
        ERR_raise(ERR_LIB_X509, ERR_R_PASSED_NULL_PARAMETER);
301
0
        return -1;
302
0
    }
303
0
    if (ctx->rpk != NULL)
304
0
        return x509_verify_rpk(ctx);
305
0
    if (ctx->cert == NULL && sk_X509_num(ctx->untrusted) >= 1)
306
0
        ctx->cert = sk_X509_value(ctx->untrusted, 0);
307
0
    return x509_verify_x509(ctx);
308
0
}
309
310
int X509_verify_cert(X509_STORE_CTX *ctx)
311
0
{
312
0
    if (ctx == NULL) {
313
0
        ERR_raise(ERR_LIB_X509, ERR_R_PASSED_NULL_PARAMETER);
314
0
        return -1;
315
0
    }
316
0
    return (ctx->rpk != NULL) ? x509_verify_rpk(ctx) : x509_verify_x509(ctx);
317
0
}
318
319
/*-
320
 * Returns -1 on internal error.
321
 * Sadly, returns 0 also on internal error in ctx->verify_cb().
322
 */
323
static int x509_verify_rpk(X509_STORE_CTX *ctx)
324
0
{
325
0
    int ret;
326
327
    /* If the peer's public key is too weak, we can stop early. */
328
0
    if (!check_key_level(ctx, ctx->rpk)
329
0
        && verify_cb_cert(ctx, NULL, 0, X509_V_ERR_EE_KEY_TOO_SMALL) == 0)
330
0
        return 0;
331
332
    /* Barring any data to verify the RPK, simply report it as untrusted */
333
0
    ctx->error = X509_V_ERR_RPK_UNTRUSTED;
334
335
0
    ret = DANETLS_ENABLED(ctx->dane) ? dane_verify_rpk(ctx) : verify_rpk(ctx);
336
337
    /*
338
     * Safety-net.  If we are returning an error, we must also set ctx->error,
339
     * so that the chain is not considered verified should the error be ignored
340
     * (e.g. TLS with SSL_VERIFY_NONE).
341
     */
342
0
    if (ret <= 0 && ctx->error == X509_V_OK)
343
0
        ctx->error = X509_V_ERR_UNSPECIFIED;
344
0
    return ret;
345
0
}
346
347
/*-
348
 * Returns -1 on internal error.
349
 * Sadly, returns 0 also on internal error in ctx->verify_cb().
350
 */
351
static int x509_verify_x509(X509_STORE_CTX *ctx)
352
0
{
353
0
    int ret;
354
355
0
    if (ctx->cert == NULL) {
356
0
        ERR_raise(ERR_LIB_X509, X509_R_NO_CERT_SET_FOR_US_TO_VERIFY);
357
0
        ctx->error = X509_V_ERR_INVALID_CALL;
358
0
        return -1;
359
0
    }
360
361
0
    if (ctx->chain != NULL) {
362
        /*
363
         * This X509_STORE_CTX has already been used to verify a cert. We
364
         * cannot do another one.
365
         */
366
0
        ERR_raise(ERR_LIB_X509, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
367
0
        ctx->error = X509_V_ERR_INVALID_CALL;
368
0
        return -1;
369
0
    }
370
371
0
    if (!ossl_x509_add_cert_new(&ctx->chain, ctx->cert, X509_ADD_FLAG_UP_REF)) {
372
0
        ctx->error = X509_V_ERR_OUT_OF_MEM;
373
0
        return -1;
374
0
    }
375
0
    ctx->num_untrusted = 1;
376
377
    /* If the peer's public key is too weak, we can stop early. */
378
0
    CB_FAIL_IF(!check_cert_key_level(ctx, ctx->cert),
379
0
        ctx, ctx->cert, 0, X509_V_ERR_EE_KEY_TOO_SMALL);
380
381
0
    ret = DANETLS_ENABLED(ctx->dane) ? dane_verify(ctx) : verify_chain(ctx);
382
383
    /*
384
     * Safety-net.  If we are returning an error, we must also set ctx->error,
385
     * so that the chain is not considered verified should the error be ignored
386
     * (e.g. TLS with SSL_VERIFY_NONE).
387
     */
388
0
    if (ret <= 0 && ctx->error == X509_V_OK)
389
0
        ctx->error = X509_V_ERR_UNSPECIFIED;
390
0
    return ret;
391
0
}
392
393
static int sk_X509_contains(STACK_OF(X509) *sk, X509 *cert)
394
0
{
395
0
    int i, n = sk_X509_num(sk);
396
397
0
    for (i = 0; i < n; i++)
398
0
        if (X509_cmp(sk_X509_value(sk, i), cert) == 0)
399
0
            return 1;
400
0
    return 0;
401
0
}
402
403
/*-
404
 * Find in |sk| an issuer cert of cert |x| accepted by |ctx->check_issued|.
405
 * If no_dup, the issuer must not yet be in |ctx->chain|, yet allowing the
406
 *     exception that |x| is self-issued and |ctx->chain| has just one element.
407
 * Prefer the first match with suitable validity period or latest expiration.
408
 */
409
/*
410
 * Note: so far, we do not check during chain building
411
 * whether any key usage extension stands against a candidate issuer cert.
412
 * Likely it would be good if build_chain() sets |check_signing_allowed|.
413
 * Yet if |sk| is a list of trusted certs, as with X509_STORE_CTX_set0_trusted_stack(),
414
 * better not set |check_signing_allowed|.
415
 * Maybe not touch X509_STORE_CTX_get1_issuer(), for API backward compatibility.
416
 */
417
static X509 *get0_best_issuer_sk(X509_STORE_CTX *ctx, int check_signing_allowed,
418
    int no_dup, STACK_OF(X509) *sk, const X509 *x)
419
0
{
420
0
    int i;
421
0
    X509 *candidate, *issuer = NULL;
422
423
0
    for (i = 0; i < sk_X509_num(sk); i++) {
424
0
        candidate = sk_X509_value(sk, i);
425
0
        if (no_dup
426
0
            && !((x->ex_flags & EXFLAG_SI) != 0 && sk_X509_num(ctx->chain) == 1)
427
0
            && sk_X509_contains(ctx->chain, candidate))
428
0
            continue;
429
0
        if (ctx->check_issued(ctx, x, candidate)) {
430
0
            if (check_signing_allowed
431
                /* yet better not check key usage for trust anchors */
432
0
                && ossl_x509_signing_allowed(candidate, x) != X509_V_OK)
433
0
                continue;
434
0
            if (ossl_x509_check_cert_time(ctx, candidate, -1))
435
0
                return candidate;
436
            /*
437
             * Leave in *issuer the first match that has the latest expiration
438
             * date so we return nearest match if no certificate time is OK.
439
             */
440
0
            if (issuer == NULL
441
0
                || ASN1_TIME_compare(X509_get0_notAfter(candidate),
442
0
                       X509_get0_notAfter(issuer))
443
0
                    > 0)
444
0
                issuer = candidate;
445
0
        }
446
0
    }
447
0
    return issuer;
448
0
}
449
450
/*-
451
 * Try to get issuer cert from |ctx->store| accepted by |ctx->check_issued|.
452
 * Prefer the first match with suitable validity period or latest expiration.
453
 *
454
 * Return values are:
455
 *  1 lookup successful.
456
 *  0 certificate not found.
457
 * -1 some other error.
458
 */
459
int X509_STORE_CTX_get1_issuer(X509 **issuer, X509_STORE_CTX *ctx, const X509 *x)
460
0
{
461
0
    const X509_NAME *xn = X509_get_issuer_name(x);
462
0
    X509_OBJECT *obj = X509_OBJECT_new();
463
0
    STACK_OF(X509) *certs;
464
0
    int ret;
465
466
0
    *issuer = NULL;
467
0
    if (obj == NULL)
468
0
        return -1;
469
0
    ret = ossl_x509_store_ctx_get_by_subject(ctx, X509_LU_X509, xn, obj);
470
0
    if (ret != 1)
471
0
        goto end;
472
473
    /* quick happy path: certificate matches and is currently valid */
474
0
    if (ctx->check_issued(ctx, x, obj->data.x509)) {
475
0
        if (ossl_x509_check_cert_time(ctx, obj->data.x509, -1)) {
476
0
            *issuer = obj->data.x509;
477
            /* |*issuer| has taken over the cert reference from |obj| */
478
0
            obj->type = X509_LU_NONE;
479
0
            goto end;
480
0
        }
481
0
    }
482
483
0
    ret = -1;
484
0
    if ((certs = X509_STORE_CTX_get1_certs(ctx, xn)) == NULL)
485
0
        goto end;
486
0
    *issuer = get0_best_issuer_sk(ctx, 0, 0 /* allow duplicates */, certs, x);
487
0
    ret = 0;
488
0
    if (*issuer != NULL)
489
0
        ret = X509_up_ref(*issuer) ? 1 : -1;
490
0
    OSSL_STACK_OF_X509_free(certs);
491
0
end:
492
0
    X509_OBJECT_free(obj);
493
0
    return ret;
494
0
}
495
496
/* Check that the given certificate |x| is issued by the certificate |issuer| */
497
static int check_issued(ossl_unused X509_STORE_CTX *ctx, const X509 *x, const X509 *issuer)
498
0
{
499
0
    int err = ossl_x509_likely_issued(issuer, x);
500
501
0
    if (err == X509_V_OK)
502
0
        return 1;
503
    /*
504
     * SUBJECT_ISSUER_MISMATCH just means 'x' is clearly not issued by 'issuer'.
505
     * Every other error code likely indicates a real error.
506
     */
507
0
    return 0;
508
0
}
509
510
/*-
511
 * Alternative get_issuer method: look up from a STACK_OF(X509) in other_ctx.
512
 * Returns -1 on internal error.
513
 */
514
static int get1_best_issuer_other_sk(X509 **issuer, X509_STORE_CTX *ctx, const X509 *x)
515
0
{
516
0
    *issuer = get0_best_issuer_sk(ctx, 0, 1 /* no_dup */, ctx->other_ctx, x);
517
0
    if (*issuer == NULL)
518
0
        return 0;
519
0
    return X509_up_ref(*issuer) ? 1 : -1;
520
0
}
521
522
/*-
523
 * Alternative lookup method: look from a STACK stored in other_ctx.
524
 * Returns NULL on internal/fatal error, empty stack if not found.
525
 */
526
static STACK_OF(X509) *lookup_certs_sk(const X509_STORE_CTX *ctx, const X509_NAME *nm)
527
0
{
528
0
    STACK_OF(X509) *sk = sk_X509_new_null();
529
0
    X509 *x;
530
0
    int i;
531
532
0
    if (sk == NULL)
533
0
        return NULL;
534
0
    for (i = 0; i < sk_X509_num(ctx->other_ctx); i++) {
535
0
        x = sk_X509_value(ctx->other_ctx, i);
536
0
        if (X509_NAME_cmp(nm, X509_get_subject_name(x)) == 0) {
537
0
            if (!X509_add_cert(sk, x, X509_ADD_FLAG_UP_REF)) {
538
0
                OSSL_STACK_OF_X509_free(sk);
539
0
                return NULL;
540
0
            }
541
0
        }
542
0
    }
543
0
    return sk;
544
0
}
545
546
/*
547
 * Check EE or CA certificate purpose.  For trusted certificates explicit local
548
 * auxiliary trust can be used to override EKU-restrictions.
549
 * Sadly, returns 0 also on internal error in ctx->verify_cb().
550
 */
551
static int check_purpose(X509_STORE_CTX *ctx, X509 *x, int purpose, int depth,
552
    int must_be_ca)
553
0
{
554
0
    int tr_ok = X509_TRUST_UNTRUSTED;
555
556
    /*
557
     * For trusted certificates we want to see whether any auxiliary trust
558
     * settings trump the purpose constraints.
559
     *
560
     * This is complicated by the fact that the trust ordinals in
561
     * ctx->param->trust are entirely independent of the purpose ordinals in
562
     * ctx->param->purpose!
563
     *
564
     * What connects them is their mutual initialization via calls from
565
     * X509_STORE_CTX_set_default() into X509_VERIFY_PARAM_lookup() which sets
566
     * related values of both param->trust and param->purpose.  It is however
567
     * typically possible to infer associated trust values from a purpose value
568
     * via the X509_PURPOSE API.
569
     *
570
     * Therefore, we can only check for trust overrides when the purpose we're
571
     * checking is the same as ctx->param->purpose and ctx->param->trust is
572
     * also set.
573
     */
574
0
    if (depth >= ctx->num_untrusted && purpose == ctx->param->purpose)
575
0
        tr_ok = X509_check_trust(x, ctx->param->trust, X509_TRUST_NO_SS_COMPAT);
576
577
0
    switch (tr_ok) {
578
0
    case X509_TRUST_TRUSTED:
579
0
        return 1;
580
0
    case X509_TRUST_REJECTED:
581
0
        break;
582
0
    default: /* can only be X509_TRUST_UNTRUSTED */
583
0
        switch (X509_check_purpose(x, purpose, must_be_ca > 0)) {
584
0
        case 1:
585
0
            return 1;
586
0
        case 0:
587
0
            break;
588
0
        default:
589
0
            if ((ctx->param->flags & X509_V_FLAG_X509_STRICT) == 0)
590
0
                return 1;
591
0
        }
592
0
        break;
593
0
    }
594
595
0
    return verify_cb_cert(ctx, x, depth, X509_V_ERR_INVALID_PURPOSE);
596
0
}
597
598
/*-
599
 * Check extensions of a cert chain for consistency with the supplied purpose.
600
 * Sadly, returns 0 also on internal error in ctx->verify_cb().
601
 */
602
static int check_extensions(X509_STORE_CTX *ctx)
603
0
{
604
0
    int i, must_be_ca, plen = 0;
605
0
    X509 *x;
606
0
    int ret, proxy_path_length = 0;
607
0
    int purpose, allow_proxy_certs, num = sk_X509_num(ctx->chain);
608
609
    /*-
610
     *  must_be_ca can have 1 of 3 values:
611
     * -1: we accept both CA and non-CA certificates, to allow direct
612
     *     use of self-signed certificates (which are marked as CA).
613
     * 0:  we only accept non-CA certificates.  This is currently not
614
     *     used, but the possibility is present for future extensions.
615
     * 1:  we only accept CA certificates.  This is currently used for
616
     *     all certificates in the chain except the leaf certificate.
617
     */
618
0
    must_be_ca = -1;
619
620
    /* CRL path validation */
621
0
    if (ctx->parent != NULL) {
622
0
        allow_proxy_certs = 0;
623
0
        purpose = X509_PURPOSE_CRL_SIGN;
624
0
    } else {
625
0
        allow_proxy_certs = (ctx->param->flags & X509_V_FLAG_ALLOW_PROXY_CERTS) != 0;
626
0
        purpose = ctx->param->purpose;
627
0
    }
628
629
0
    for (i = 0; i < num; i++) {
630
0
        x = sk_X509_value(ctx->chain, i);
631
        /* RFC 5280, 4.2: a given extension MUST NOT appear more than once */
632
0
        CB_FAIL_IF((x->ex_flags & EXFLAG_DUPLICATE) != 0,
633
0
            ctx, x, i, X509_V_ERR_DUPLICATE_EXTENSION);
634
0
        CB_FAIL_IF((ctx->param->flags & X509_V_FLAG_IGNORE_CRITICAL) == 0
635
0
                && (x->ex_flags & EXFLAG_CRITICAL) != 0,
636
0
            ctx, x, i, X509_V_ERR_UNHANDLED_CRITICAL_EXTENSION);
637
0
        CB_FAIL_IF(!allow_proxy_certs && (x->ex_flags & EXFLAG_PROXY) != 0,
638
0
            ctx, x, i, X509_V_ERR_PROXY_CERTIFICATES_NOT_ALLOWED);
639
0
        ret = X509_check_ca(x);
640
0
        switch (must_be_ca) {
641
0
        case -1:
642
0
            CB_FAIL_IF((ctx->param->flags & X509_V_FLAG_X509_STRICT) != 0
643
0
                    && ret != 1 && ret != 0,
644
0
                ctx, x, i, X509_V_ERR_INVALID_CA);
645
0
            break;
646
0
        case 0:
647
0
            CB_FAIL_IF(ret != 0, ctx, x, i, X509_V_ERR_INVALID_NON_CA);
648
0
            break;
649
0
        default:
650
            /* X509_V_FLAG_X509_STRICT is implicit for intermediate CAs */
651
0
            CB_FAIL_IF(ret == 0
652
0
                    || ((i + 1 < num
653
0
                            || (ctx->param->flags & X509_V_FLAG_X509_STRICT) != 0)
654
0
                        && ret != 1),
655
0
                ctx, x, i, X509_V_ERR_INVALID_CA);
656
0
            break;
657
0
        }
658
0
        if (num > 1) {
659
            /* Check for presence of explicit elliptic curve parameters */
660
0
            ret = check_curve(x);
661
0
            CB_FAIL_IF(ret < 0, ctx, x, i, X509_V_ERR_UNSPECIFIED);
662
0
            CB_FAIL_IF(ret == 0, ctx, x, i, X509_V_ERR_EC_KEY_EXPLICIT_PARAMS);
663
0
        }
664
        /*
665
         * Do the following set of checks only if strict checking is requested
666
         * and not for self-issued (including self-signed) EE (non-CA) certs
667
         * because RFC 5280 does not apply to them according RFC 6818 section 2.
668
         */
669
0
        if ((ctx->param->flags & X509_V_FLAG_X509_STRICT) != 0
670
0
            && num > 1) { /*
671
                           * this should imply
672
                           * !(i == 0 && (x->ex_flags & EXFLAG_CA) == 0
673
                           *          && (x->ex_flags & EXFLAG_SI) != 0)
674
                           */
675
            /* Check Basic Constraints according to RFC 5280 section 4.2.1.9 */
676
0
            if (x->ex_pathlen != -1) {
677
0
                CB_FAIL_IF((x->ex_flags & EXFLAG_CA) == 0,
678
0
                    ctx, x, i, X509_V_ERR_PATHLEN_INVALID_FOR_NON_CA);
679
0
                CB_FAIL_IF((x->ex_kusage & KU_KEY_CERT_SIGN) == 0, ctx,
680
0
                    x, i, X509_V_ERR_PATHLEN_WITHOUT_KU_KEY_CERT_SIGN);
681
0
            }
682
            /* Check Key Usage according to RFC 5280 section 4.2.1.3 */
683
0
            if ((x->ex_flags & EXFLAG_CA) != 0) {
684
0
                CB_FAIL_IF((x->ex_flags & EXFLAG_KUSAGE) == 0,
685
0
                    ctx, x, i, X509_V_ERR_CA_CERT_MISSING_KEY_USAGE);
686
0
            } else {
687
0
                CB_FAIL_IF((x->ex_kusage & KU_KEY_CERT_SIGN) != 0, ctx, x, i,
688
0
                    X509_V_ERR_KU_KEY_CERT_SIGN_INVALID_FOR_NON_CA);
689
0
            }
690
            /* Check issuer is non-empty acc. to RFC 5280 section 4.1.2.4 */
691
0
            CB_FAIL_IF(X509_NAME_entry_count(X509_get_issuer_name(x)) == 0,
692
0
                ctx, x, i, X509_V_ERR_ISSUER_NAME_EMPTY);
693
            /* Check subject is non-empty acc. to RFC 5280 section 4.1.2.6 */
694
0
            CB_FAIL_IF(((x->ex_flags & EXFLAG_CA) != 0
695
0
                           || (x->ex_kusage & KU_CRL_SIGN) != 0
696
0
                           || x->altname == NULL)
697
0
                    && X509_NAME_entry_count(X509_get_subject_name(x)) == 0,
698
0
                ctx, x, i, X509_V_ERR_SUBJECT_NAME_EMPTY);
699
            /* Check SAN is non-empty according to RFC 5280 section 4.2.1.6 */
700
0
            CB_FAIL_IF(x->altname != NULL
701
0
                    && sk_GENERAL_NAME_num(x->altname) <= 0,
702
0
                ctx, x, i, X509_V_ERR_EMPTY_SUBJECT_ALT_NAME);
703
            /* Check sig alg consistency acc. to RFC 5280 section 4.1.1.2 */
704
0
            CB_FAIL_IF(X509_ALGOR_cmp(&x->sig_alg, &x->cert_info.signature) != 0,
705
0
                ctx, x, i, X509_V_ERR_SIGNATURE_ALGORITHM_INCONSISTENCY);
706
0
            if (X509_get_version(x) >= X509_VERSION_3) {
707
                /* Check AKID presence acc. to RFC 5280 section 4.2.1.1 */
708
                /*
709
                 * This means not last cert in chain, taken as generated by
710
                 * conforming CAs and not self-signed.
711
                 */
712
0
                unsigned int check_akid = (i + 1 < num)
713
0
                    && ((x->ex_flags & EXFLAG_SS) == 0);
714
0
                CB_FAIL_IF(check_akid != 0 && x->akid == NULL,
715
0
                    ctx, x, i, X509_V_ERR_MISSING_AUTHORITY_KEY_IDENTIFIER);
716
0
                CB_FAIL_IF(check_akid != 0 && x->akid != NULL
717
0
                        && x->akid->keyid == NULL && x->akid->issuer == NULL
718
0
                        && x->akid->serial == NULL,
719
0
                    ctx, x, i, X509_V_ERR_EMPTY_AUTHORITY_KEY_IDENTIFIER);
720
                /*
721
                 * The authorityCertIssuer and authorityCertSerialNumber fields
722
                 * are paired and MUST either both be present or both be absent.
723
                 *
724
                 * Issuer without serial is ambiguous, and serial without issuer
725
                 * is meaningless, leading to unresolvable and misleading issuer
726
                 * identification.
727
                 */
728
0
                CB_FAIL_IF(x->akid != NULL
729
0
                        && (x->akid->issuer == NULL) != (x->akid->serial == NULL),
730
0
                    ctx, x, i, X509_V_ERR_AKID_ISSUER_SERIAL_NOT_PAIRED);
731
                /* Check SKID presence acc. to RFC 5280 section 4.2.1.2 */
732
0
                CB_FAIL_IF((x->ex_flags & EXFLAG_CA) != 0 && x->skid == NULL,
733
0
                    ctx, x, i, X509_V_ERR_MISSING_SUBJECT_KEY_IDENTIFIER);
734
0
            } else {
735
0
                CB_FAIL_IF(sk_X509_EXTENSION_num(X509_get0_extensions(x)) > 0,
736
0
                    ctx, x, i, X509_V_ERR_EXTENSIONS_REQUIRE_VERSION_3);
737
0
            }
738
0
        }
739
740
        /* check_purpose() makes the callback as needed */
741
0
        if (purpose >= X509_PURPOSE_MIN && !check_purpose(ctx, x, purpose, i, must_be_ca))
742
0
            return 0;
743
        /* Check path length */
744
0
        CB_FAIL_IF(i > 1 && x->ex_pathlen != -1
745
0
                && plen > x->ex_pathlen + proxy_path_length,
746
0
            ctx, x, i, X509_V_ERR_PATH_LENGTH_EXCEEDED);
747
        /* Increment path length if not a self-issued intermediate CA */
748
0
        if (i > 0 && (x->ex_flags & EXFLAG_SI) == 0)
749
0
            plen++;
750
        /*
751
         * If this certificate is a proxy certificate, the next certificate
752
         * must be another proxy certificate or a EE certificate.  If not,
753
         * the next certificate must be a CA certificate.
754
         */
755
0
        if (x->ex_flags & EXFLAG_PROXY) {
756
            /*
757
             * RFC3820, 4.1.3 (b)(1) stipulates that if pCPathLengthConstraint
758
             * is less than max_path_length, the former should be copied to
759
             * the latter, and 4.1.4 (a) stipulates that max_path_length
760
             * should be verified to be larger than zero and decrement it.
761
             *
762
             * Because we're checking the certs in the reverse order, we start
763
             * with verifying that proxy_path_length isn't larger than pcPLC,
764
             * and copy the latter to the former if it is, and finally,
765
             * increment proxy_path_length.
766
             */
767
0
            if (x->ex_pcpathlen != -1) {
768
0
                CB_FAIL_IF(proxy_path_length > x->ex_pcpathlen,
769
0
                    ctx, x, i, X509_V_ERR_PROXY_PATH_LENGTH_EXCEEDED);
770
0
                proxy_path_length = x->ex_pcpathlen;
771
0
            }
772
0
            proxy_path_length++;
773
0
            must_be_ca = 0;
774
0
        } else {
775
0
            must_be_ca = 1;
776
0
        }
777
0
    }
778
0
    return 1;
779
0
}
780
781
/*-
782
 * Returns -1 on internal error.
783
 * Sadly, returns 0 also on internal error in ctx->verify_cb().
784
 */
785
static int check_name_constraints(X509_STORE_CTX *ctx)
786
0
{
787
0
    int i;
788
789
    /* Check name constraints for all certificates */
790
0
    for (i = sk_X509_num(ctx->chain) - 1; i >= 0; i--) {
791
0
        const X509 *x = sk_X509_value(ctx->chain, i);
792
0
        int j;
793
794
        /* Ignore self-issued certs unless last in chain */
795
0
        if (i != 0 && (x->ex_flags & EXFLAG_SI) != 0)
796
0
            continue;
797
798
        /*
799
         * Proxy certificates policy has an extra constraint, where the
800
         * certificate subject MUST be the issuer with a single CN entry
801
         * added.
802
         * (RFC 3820: 3.4, 4.1.3 (a)(4))
803
         */
804
0
        if ((x->ex_flags & EXFLAG_PROXY) != 0) {
805
0
            const X509_NAME *tmpsubject = X509_get_subject_name(x);
806
0
            const X509_NAME *tmpissuer = X509_get_issuer_name(x);
807
0
            X509_NAME *tmpsubject2;
808
0
            X509_NAME_ENTRY *tmpentry = NULL;
809
0
            int last_nid = 0;
810
0
            int err = X509_V_OK;
811
0
            int last_loc = X509_NAME_entry_count(tmpsubject) - 1;
812
813
            /* Check that there are at least two RDNs */
814
0
            if (last_loc < 1) {
815
0
                err = X509_V_ERR_PROXY_SUBJECT_NAME_VIOLATION;
816
0
                goto proxy_name_done;
817
0
            }
818
819
            /*
820
             * Check that there is exactly one more RDN in subject as
821
             * there is in issuer.
822
             */
823
0
            if (X509_NAME_entry_count(tmpsubject)
824
0
                != X509_NAME_entry_count(tmpissuer) + 1) {
825
0
                err = X509_V_ERR_PROXY_SUBJECT_NAME_VIOLATION;
826
0
                goto proxy_name_done;
827
0
            }
828
829
            /*
830
             * Check that the last subject component isn't part of a
831
             * multi-valued RDN
832
             */
833
0
            if (X509_NAME_ENTRY_set(X509_NAME_get_entry(tmpsubject, last_loc))
834
0
                == X509_NAME_ENTRY_set(X509_NAME_get_entry(tmpsubject,
835
0
                    last_loc - 1))) {
836
0
                err = X509_V_ERR_PROXY_SUBJECT_NAME_VIOLATION;
837
0
                goto proxy_name_done;
838
0
            }
839
840
            /*
841
             * Check that the last subject RDN is a commonName, and that
842
             * all the previous RDNs match the issuer exactly
843
             */
844
0
            tmpsubject2 = X509_NAME_dup(tmpsubject);
845
0
            if (tmpsubject2 == NULL) {
846
0
                ERR_raise(ERR_LIB_X509, ERR_R_ASN1_LIB);
847
0
                ctx->error = X509_V_ERR_OUT_OF_MEM;
848
0
                return -1;
849
0
            }
850
851
0
            tmpentry = X509_NAME_delete_entry(tmpsubject2, last_loc);
852
0
            last_nid = OBJ_obj2nid(X509_NAME_ENTRY_get_object(tmpentry));
853
854
0
            if (last_nid != NID_commonName
855
0
                || X509_NAME_cmp(tmpsubject2, tmpissuer) != 0) {
856
0
                err = X509_V_ERR_PROXY_SUBJECT_NAME_VIOLATION;
857
0
            }
858
859
0
            X509_NAME_ENTRY_free(tmpentry);
860
0
            X509_NAME_free(tmpsubject2);
861
862
0
        proxy_name_done:
863
0
            CB_FAIL_IF(err != X509_V_OK, ctx, x, i, err);
864
0
        }
865
866
        /*
867
         * Check against constraints for all certificates higher in chain
868
         * including trust anchor. Trust anchor not strictly speaking needed
869
         * but if it includes constraints it is to be assumed it expects them
870
         * to be obeyed.
871
         */
872
0
        for (j = sk_X509_num(ctx->chain) - 1; j > i; j--) {
873
0
            NAME_CONSTRAINTS *nc = sk_X509_value(ctx->chain, j)->nc;
874
875
0
            if (nc) {
876
0
                int rv = NAME_CONSTRAINTS_check(x, nc);
877
878
                /*
879
                 * Apply DNS name constraints to the EE subject commonName
880
                 * only when the commonName may be used for host name checks,
881
                 * mirroring do_x509_check(): only when the caller opted in
882
                 * with X509_CHECK_FLAG_ALWAYS_CHECK_SUBJECT, and never when
883
                 * X509_CHECK_FLAG_NEVER_CHECK_SUBJECT is set.
884
                 */
885
0
                if (rv == X509_V_OK && i == 0
886
0
                    && (ctx->param->hostflags
887
0
                           & X509_CHECK_FLAG_NEVER_CHECK_SUBJECT)
888
0
                        == 0
889
0
                    && (ctx->param->hostflags
890
0
                           & X509_CHECK_FLAG_ALWAYS_CHECK_SUBJECT)
891
0
                        != 0)
892
0
                    rv = NAME_CONSTRAINTS_check_CN(x, nc);
893
894
0
                switch (rv) {
895
0
                case X509_V_OK:
896
0
                    break;
897
0
                case X509_V_ERR_OUT_OF_MEM:
898
0
                    return -1;
899
0
                default:
900
0
                    CB_FAIL_IF(1, ctx, x, i, rv);
901
0
                    break;
902
0
                }
903
0
            }
904
0
        }
905
0
    }
906
0
    return 1;
907
0
}
908
909
static int check_id_error(X509_STORE_CTX *ctx, int errcode)
910
0
{
911
0
    return verify_cb_cert(ctx, ctx->cert, 0, errcode);
912
0
}
913
914
static int check_hosts(X509 *x, X509_VERIFY_PARAM *vpm)
915
0
{
916
0
    const uint8_t *name;
917
0
    int n = sk_X509_BUFFER_num(vpm->hosts);
918
919
0
    if (vpm->peername != NULL) {
920
0
        OPENSSL_free(vpm->peername);
921
0
        vpm->peername = NULL;
922
0
    }
923
0
    for (int i = 0; i < n; ++i) {
924
0
        size_t len = sk_X509_BUFFER_value(vpm->hosts, i)->len;
925
0
        name = sk_X509_BUFFER_value(vpm->hosts, i)->data;
926
0
        if (ossl_x509_check_host(x, (const char *)name, len, vpm->hostflags,
927
0
                &vpm->peername)
928
0
            > 0)
929
0
            return 1;
930
0
    }
931
0
    return n <= 0;
932
0
}
933
934
static int check_email(X509 *x, X509_VERIFY_PARAM *vpm)
935
0
{
936
0
    const uint8_t *name;
937
0
    int nasc = sk_X509_BUFFER_num(vpm->rfc822s);
938
0
    int nutf = sk_X509_BUFFER_num(vpm->smtputf8s);
939
940
0
    for (int i = 0; i < nasc; ++i) {
941
0
        size_t len = sk_X509_BUFFER_value(vpm->rfc822s, i)->len;
942
0
        name = sk_X509_BUFFER_value(vpm->rfc822s, i)->data;
943
0
        if (ossl_x509_check_rfc822(x, (const char *)name, len, vpm->hostflags))
944
0
            return 1;
945
0
    }
946
0
    for (int i = 0; i < nutf; ++i) {
947
0
        size_t len = sk_X509_BUFFER_value(vpm->smtputf8s, i)->len;
948
0
        name = sk_X509_BUFFER_value(vpm->smtputf8s, i)->data;
949
0
        if (ossl_x509_check_smtputf8(x, (const char *)name, len, vpm->hostflags))
950
0
            return 1;
951
0
    }
952
0
    return nasc <= 0 && nutf <= 0;
953
0
}
954
955
static int check_ips(X509 *x, X509_VERIFY_PARAM *vpm)
956
0
{
957
0
    const uint8_t *name;
958
0
    int n = sk_X509_BUFFER_num(vpm->ips);
959
960
0
    for (int i = 0; i < n; ++i) {
961
0
        size_t len = sk_X509_BUFFER_value(vpm->ips, i)->len;
962
0
        name = sk_X509_BUFFER_value(vpm->ips, i)->data;
963
0
        if (ossl_x509_check_ip(x, name, len, vpm->hostflags) > 0)
964
0
            return 1;
965
0
    }
966
0
    return n <= 0;
967
0
}
968
969
static int check_id(X509_STORE_CTX *ctx)
970
0
{
971
0
    X509_VERIFY_PARAM *vpm = ctx->param;
972
0
    X509 *x = ctx->cert;
973
974
0
    if (vpm->hosts != NULL && check_hosts(x, vpm) <= 0) {
975
0
        if (!check_id_error(ctx, X509_V_ERR_HOSTNAME_MISMATCH))
976
0
            return 0;
977
0
    }
978
979
0
    if (!check_email(x, vpm)) {
980
0
        if (!check_id_error(ctx, X509_V_ERR_EMAIL_MISMATCH))
981
0
            return 0;
982
0
    }
983
984
0
    if (vpm->ips != NULL && check_ips(x, vpm) <= 0) {
985
0
        if (!check_id_error(ctx, X509_V_ERR_IP_ADDRESS_MISMATCH))
986
0
            return 0;
987
0
    }
988
0
    return 1;
989
0
}
990
991
/*
992
 * Returns 1 is an ASN1 time is valid for an RFC5280 certificate, 0 otherwise
993
 */
994
static int validate_certificate_time(const ASN1_TIME *ctm)
995
0
{
996
0
    static const size_t utctime_length = sizeof("YYMMDDHHMMSSZ") - 1;
997
0
    static const size_t generalizedtime_length = sizeof("YYYYMMDDHHMMSSZ") - 1;
998
0
    int i;
999
#ifdef CHARSET_EBCDIC
1000
    const char upper_z = 0x5A;
1001
#else
1002
0
    const char upper_z = 'Z';
1003
0
#endif
1004
1005
    /*-
1006
     * Note that ASN.1 allows much more slack in the time format than RFC5280.
1007
     * In RFC5280, the representation is fixed:
1008
     * UTCTime: YYMMDDHHMMSSZ
1009
     * GeneralizedTime: YYYYMMDDHHMMSSZ
1010
     *
1011
     * We do NOT currently enforce the following RFC 5280 requirement:
1012
     * "CAs conforming to this profile MUST always encode certificate
1013
     *  validity dates through the year 2049 as UTCTime; certificate validity
1014
     *  dates in 2050 or later MUST be encoded as GeneralizedTime."
1015
     */
1016
0
    switch (ctm->type) {
1017
0
    case V_ASN1_UTCTIME:
1018
0
        if (ctm->length != (int)(utctime_length))
1019
0
            return 0;
1020
0
        break;
1021
0
    case V_ASN1_GENERALIZEDTIME:
1022
0
        if (ctm->length != (int)(generalizedtime_length))
1023
0
            return 0;
1024
0
        break;
1025
0
    default:
1026
0
        return 0;
1027
0
    }
1028
1029
    /**
1030
     * Verify the format: the ASN.1 functions we use below allow a more
1031
     * flexible format than what's mandated by RFC 5280.
1032
     * Digit and date ranges will be verified in the conversion methods.
1033
     */
1034
0
    for (i = 0; i < ctm->length - 1; i++) {
1035
0
        if (!ossl_ascii_isdigit(ctm->data[i]))
1036
0
            return 0;
1037
0
    }
1038
0
    if (ctm->data[ctm->length - 1] != upper_z)
1039
0
        return 0;
1040
1041
0
    return 1;
1042
0
}
1043
1044
/* Validate and convert certificate time to a posix time */
1045
static int certificate_time_to_posix(const ASN1_TIME *ctm, int64_t *out_time)
1046
0
{
1047
0
    struct tm stm;
1048
1049
0
    if (!validate_certificate_time(ctm))
1050
0
        return 0;
1051
1052
0
    if (!ASN1_TIME_to_tm(ctm, &stm))
1053
0
        return 0;
1054
1055
0
    if (!OPENSSL_tm_to_posix(&stm, out_time))
1056
0
        return 0;
1057
1058
0
    return 1;
1059
0
}
1060
1061
/* Returns -1 on internal error */
1062
static int check_trust(X509_STORE_CTX *ctx, int num_untrusted)
1063
0
{
1064
0
    int i, res;
1065
0
    X509 *x = NULL;
1066
0
    X509 *mx;
1067
0
    SSL_DANE *dane = ctx->dane;
1068
0
    int num = sk_X509_num(ctx->chain);
1069
0
    int trust;
1070
1071
    /*
1072
     * Check for a DANE issuer at depth 1 or greater, if it is a DANE-TA(2)
1073
     * match, we're done, otherwise we'll merely record the match depth.
1074
     */
1075
0
    if (DANETLS_HAS_TA(dane) && num_untrusted > 0 && num_untrusted < num) {
1076
0
        trust = check_dane_issuer(ctx, num_untrusted);
1077
0
        if (trust != X509_TRUST_UNTRUSTED)
1078
0
            return trust;
1079
0
    }
1080
1081
    /*
1082
     * Check trusted certificates in chain at depth num_untrusted and up.
1083
     * Note, that depths 0..num_untrusted-1 may also contain trusted
1084
     * certificates, but the caller is expected to have already checked those,
1085
     * and wants to incrementally check just any added since.
1086
     */
1087
0
    for (i = num_untrusted; i < num; i++) {
1088
0
        x = sk_X509_value(ctx->chain, i);
1089
0
        trust = X509_check_trust(x, ctx->param->trust, 0);
1090
        /* If explicitly trusted (so not neutral nor rejected) return trusted */
1091
0
        if (trust == X509_TRUST_TRUSTED)
1092
0
            goto trusted;
1093
0
        if (trust == X509_TRUST_REJECTED)
1094
0
            goto rejected;
1095
0
    }
1096
1097
    /*
1098
     * If we are looking at a trusted certificate, and accept partial chains,
1099
     * the chain is PKIX trusted.
1100
     */
1101
0
    if (num_untrusted < num) {
1102
0
        if ((ctx->param->flags & X509_V_FLAG_PARTIAL_CHAIN) != 0)
1103
0
            goto trusted;
1104
0
        return X509_TRUST_UNTRUSTED;
1105
0
    }
1106
1107
0
    if (num_untrusted == num
1108
0
        && (ctx->param->flags & X509_V_FLAG_PARTIAL_CHAIN) != 0) {
1109
        /*
1110
         * Last-resort call with no new trusted certificates, check the leaf
1111
         * for a direct trust store match.
1112
         */
1113
0
        i = 0;
1114
0
        x = sk_X509_value(ctx->chain, i);
1115
0
        res = lookup_cert_match(&mx, ctx, x);
1116
0
        if (res < 0)
1117
0
            return res;
1118
0
        if (res == 0)
1119
0
            return X509_TRUST_UNTRUSTED;
1120
1121
        /*
1122
         * Check explicit auxiliary trust/reject settings.  If none are set,
1123
         * we'll accept X509_TRUST_UNTRUSTED when not self-signed.
1124
         */
1125
0
        trust = X509_check_trust(mx, ctx->param->trust, 0);
1126
0
        if (trust == X509_TRUST_REJECTED) {
1127
0
            X509_free(mx);
1128
0
            goto rejected;
1129
0
        }
1130
1131
        /* Replace leaf with trusted match */
1132
0
        (void)sk_X509_set(ctx->chain, 0, mx);
1133
0
        X509_free(x);
1134
0
        ctx->num_untrusted = 0;
1135
0
        goto trusted;
1136
0
    }
1137
1138
    /*
1139
     * If no trusted certs in chain at all return untrusted and allow
1140
     * standard (no issuer cert) etc errors to be indicated.
1141
     */
1142
0
    return X509_TRUST_UNTRUSTED;
1143
1144
0
rejected:
1145
0
    return verify_cb_cert(ctx, x, i, X509_V_ERR_CERT_REJECTED) == 0
1146
0
        ? X509_TRUST_REJECTED
1147
0
        : X509_TRUST_UNTRUSTED;
1148
1149
0
trusted:
1150
0
    if (!DANETLS_ENABLED(dane))
1151
0
        return X509_TRUST_TRUSTED;
1152
0
    if (dane->pdpth < 0)
1153
0
        dane->pdpth = num_untrusted;
1154
    /* With DANE, PKIX alone is not trusted until we have both */
1155
0
    if (dane->mdpth >= 0)
1156
0
        return X509_TRUST_TRUSTED;
1157
0
    return X509_TRUST_UNTRUSTED;
1158
0
}
1159
1160
/*
1161
 * Return the last chain depth whose revocation status should be checked.
1162
 * With X509_V_FLAG_*_CHECK_ALL and X509_V_FLAG_PARTIAL_CHAIN, revocation
1163
 * checking stops before the first trusted certificate in the chain.
1164
 */
1165
static int revocation_check_end(X509_STORE_CTX *ctx, int check_all)
1166
0
{
1167
0
    if (!check_all)
1168
0
        return 0;
1169
0
    return (ctx->param->flags & X509_V_FLAG_PARTIAL_CHAIN) == 0
1170
0
        ? sk_X509_num(ctx->chain) - 1
1171
0
        : ctx->num_untrusted - 1;
1172
0
}
1173
1174
/* Sadly, returns 0 also on internal error. */
1175
static int check_revocation(X509_STORE_CTX *ctx)
1176
0
{
1177
0
    int i = 0, last = 0, ok = 0;
1178
0
    int crl_check_enabled = (ctx->param->flags & X509_V_FLAG_CRL_CHECK) != 0;
1179
0
    int crl_check_all_enabled = crl_check_enabled && (ctx->param->flags & X509_V_FLAG_CRL_CHECK_ALL) != 0;
1180
0
    int ocsp_check_enabled = (ctx->param->flags & X509_V_FLAG_OCSP_RESP_CHECK) != 0;
1181
0
    int ocsp_check_all_enabled = ocsp_check_enabled && (ctx->param->flags & X509_V_FLAG_OCSP_RESP_CHECK_ALL) != 0;
1182
1183
0
    if (!crl_check_enabled && !ocsp_check_enabled)
1184
0
        return 1;
1185
1186
0
    if (ocsp_check_enabled) {
1187
0
#ifndef OPENSSL_NO_OCSP
1188
        /*
1189
         * certificate status checking with OCSP
1190
         */
1191
0
        if (!ocsp_check_all_enabled && !crl_check_all_enabled
1192
0
            && ctx->parent != NULL)
1193
0
            return 1; /* If checking CRL paths this isn't the EE certificate */
1194
0
        last = revocation_check_end(ctx, ocsp_check_all_enabled);
1195
1196
0
        for (i = 0; i <= last; i++) {
1197
0
            ctx->error_depth = i;
1198
0
            ctx->current_cert = sk_X509_value(ctx->chain, i);
1199
1200
            /* skip if cert is apparently self-signed */
1201
0
            if (ctx->current_cert->ex_flags & EXFLAG_SS)
1202
0
                continue;
1203
1204
            /* the issuer certificate is the next in the chain */
1205
0
            ctx->current_issuer = sk_X509_value(ctx->chain, i + 1);
1206
0
            if (ctx->current_issuer == NULL) {
1207
                /*
1208
                 * No issuer exists at i+1 — this is the partial-chain
1209
                 * trust anchor. OCSP requires an issuer to build the
1210
                 * CertID, so skip OCSP checking for this certificate.
1211
                 */
1212
0
                if ((ctx->param->flags & X509_V_FLAG_PARTIAL_CHAIN) != 0)
1213
0
                    continue;
1214
0
                return verify_cb_ocsp(ctx, X509_V_ERR_OCSP_VERIFY_FAILED);
1215
0
            }
1216
1217
0
            ok = check_cert_ocsp_resp(ctx);
1218
1219
            /*
1220
             * In the case the certificate status is REVOKED, the verification
1221
             * can stop here.
1222
             */
1223
0
            if (ok == V_OCSP_CERTSTATUS_REVOKED) {
1224
0
                return verify_cb_ocsp(ctx, ctx->error != 0 ? ctx->error : X509_V_ERR_OCSP_VERIFY_FAILED);
1225
0
            }
1226
1227
            /*
1228
             * In the case the certificate status is GOOD, continue with the next
1229
             * certificate.
1230
             */
1231
0
            if (ok == V_OCSP_CERTSTATUS_GOOD)
1232
0
                continue;
1233
1234
            /*
1235
             * As stated in RFC 6961 section 2.2:
1236
             * If OCSP is not enabled or the client receives a "ocsp_response_list"
1237
             * that does not contain a response for one or more of the certificates
1238
             * in the completed certificate chain, the client SHOULD attempt to
1239
             * validate the certificate using an alternative retrieval method,
1240
             * such as downloading the relevant CRL;
1241
             */
1242
0
            if (crl_check_all_enabled || (crl_check_enabled && i == 0)) {
1243
0
                ok = check_cert_crl(ctx);
1244
0
                if (!ok)
1245
0
                    return ok;
1246
0
            } else {
1247
0
                ok = verify_cb_ocsp(ctx, X509_V_ERR_OCSP_VERIFY_FAILED);
1248
0
                if (!ok)
1249
0
                    return ok;
1250
0
            }
1251
0
        }
1252
0
#endif
1253
0
    }
1254
1255
0
    if (crl_check_enabled && !ocsp_check_all_enabled) {
1256
        /* certificate status check with CRLs */
1257
0
        if (!crl_check_all_enabled && ctx->parent != NULL)
1258
0
            return 1; /* If checking CRL paths this isn't the EE certificate */
1259
0
        last = revocation_check_end(ctx, crl_check_all_enabled);
1260
1261
        /*
1262
         * in the case that OCSP is only enabled for the server certificate
1263
         * and CRL for the complete chain, the rest of the chain has to be
1264
         * checked here
1265
         */
1266
0
        if (ocsp_check_enabled && crl_check_all_enabled)
1267
0
            i = 1;
1268
0
        else
1269
0
            i = 0;
1270
0
        for (; i <= last; i++) {
1271
0
            ctx->error_depth = i;
1272
0
            ok = check_cert_crl(ctx);
1273
0
            if (!ok)
1274
0
                return ok;
1275
0
        }
1276
0
    }
1277
1278
0
    return 1;
1279
0
}
1280
1281
#ifndef OPENSSL_NO_OCSP
1282
static int check_cert_ocsp_resp(X509_STORE_CTX *ctx)
1283
0
{
1284
0
    int cert_status, crl_reason;
1285
0
    int i;
1286
0
    OCSP_RESPONSE *resp = NULL;
1287
0
    OCSP_BASICRESP *bs = NULL;
1288
0
    OCSP_SINGLERESP *sr = NULL;
1289
0
    OCSP_CERTID *sr_cert_id = NULL;
1290
0
    ASN1_GENERALIZEDTIME *rev, *thisupd, *nextupd;
1291
0
    ASN1_OBJECT *cert_id_md_oid;
1292
0
    EVP_MD *cert_id_md = NULL;
1293
0
    OCSP_CERTID *cert_id = NULL;
1294
0
    int ret = V_OCSP_CERTSTATUS_UNKNOWN;
1295
0
    int num;
1296
1297
0
    num = sk_OCSP_RESPONSE_num(ctx->ocsp_resp);
1298
1299
0
    if (num < 0 || num <= ctx->error_depth)
1300
0
        return X509_V_ERR_OCSP_NO_RESPONSE;
1301
1302
0
    if ((resp = sk_OCSP_RESPONSE_value(ctx->ocsp_resp, ctx->error_depth)) == NULL
1303
0
        || (bs = OCSP_response_get1_basic(resp)) == NULL)
1304
0
        return X509_V_ERR_OCSP_NO_RESPONSE;
1305
1306
    /*
1307
     * OCSP_response_get1_basic() returns an owning reference, so once bs is
1308
     * non-NULL it must be released via the end: cleanup label. Route an empty
1309
     * BasicResponse (no single responses) through end: rather than returning
1310
     * directly, otherwise bs leaks.
1311
     */
1312
0
    if ((num = OCSP_resp_count(bs)) < 1) {
1313
0
        ret = X509_V_ERR_OCSP_NO_RESPONSE;
1314
0
        goto end;
1315
0
    }
1316
1317
0
    if (OCSP_response_status(resp) != OCSP_RESPONSE_STATUS_SUCCESSFUL) {
1318
0
        OCSP_BASICRESP_free(bs);
1319
0
        bs = NULL;
1320
0
        ret = X509_V_ERR_OCSP_RESP_INVALID;
1321
0
        goto end;
1322
0
    }
1323
1324
0
    if (OCSP_basic_verify(bs, ctx->chain, ctx->store, 0) <= 0) {
1325
0
        ret = X509_V_ERR_OCSP_SIGNATURE_FAILURE;
1326
0
        goto end;
1327
0
    }
1328
1329
    /* find the right single response in the OCSP response */
1330
0
    for (i = 0; i < num; i++) {
1331
0
        sr = OCSP_resp_get0(bs, i);
1332
1333
        /* determine the md algorithm which was used to create cert id */
1334
0
        sr_cert_id = (OCSP_CERTID *)OCSP_SINGLERESP_get0_id(sr);
1335
0
        OCSP_id_get0_info(NULL, &cert_id_md_oid, NULL, NULL, sr_cert_id);
1336
0
        if (cert_id_md_oid != NULL) {
1337
0
            char md_name[80];
1338
1339
0
            if (i2t_ASN1_OBJECT(md_name, sizeof(md_name), cert_id_md_oid) > 0)
1340
0
                cert_id_md = EVP_MD_fetch(ctx->libctx, md_name, ctx->propq);
1341
0
        }
1342
1343
        /* search the stack for the requested OCSP response */
1344
0
        cert_id = OCSP_cert_to_id(cert_id_md, ctx->current_cert, ctx->current_issuer);
1345
0
        EVP_MD_free(cert_id_md);
1346
0
        cert_id_md = NULL;
1347
0
        if (cert_id == NULL) {
1348
0
            ret = X509_V_ERR_OCSP_RESP_INVALID;
1349
0
            goto end;
1350
0
        }
1351
1352
0
        if (!OCSP_id_cmp(cert_id, sr_cert_id))
1353
0
            break;
1354
1355
0
        OCSP_CERTID_free(cert_id);
1356
0
        cert_id = NULL;
1357
0
    }
1358
1359
0
    if (cert_id == NULL) {
1360
0
        ret = X509_V_ERR_OCSP_NO_RESPONSE;
1361
0
        goto end;
1362
0
    }
1363
1364
0
    if (OCSP_resp_find_status(bs, cert_id, &cert_status, &crl_reason, &rev,
1365
0
            &thisupd, &nextupd)
1366
0
        <= 0) {
1367
0
        ret = X509_V_ERR_OCSP_RESP_INVALID;
1368
0
        goto end;
1369
0
    }
1370
1371
0
    if (cert_status == V_OCSP_CERTSTATUS_GOOD) {
1372
        /*
1373
         * Note:
1374
         * A OCSP stapling result will be accepted up to 5 minutes
1375
         * after it expired!
1376
         */
1377
0
        if (!OCSP_check_validity(thisupd, nextupd, 300L, -1L))
1378
0
            ret = X509_V_ERR_OCSP_HAS_EXPIRED;
1379
0
        else
1380
0
            ret = V_OCSP_CERTSTATUS_GOOD;
1381
0
    } else {
1382
0
        ret = cert_status;
1383
0
    }
1384
1385
0
end:
1386
0
    OCSP_CERTID_free(cert_id);
1387
0
    OCSP_BASICRESP_free(bs);
1388
0
    return ret;
1389
0
}
1390
#endif
1391
1392
/* Sadly, returns 0 also on internal error. */
1393
static int check_cert_crl(X509_STORE_CTX *ctx)
1394
0
{
1395
0
    X509_CRL *crl = NULL, *dcrl = NULL;
1396
0
    int ok = 0;
1397
0
    int cnum = ctx->error_depth;
1398
0
    X509 *x = sk_X509_value(ctx->chain, cnum);
1399
1400
0
    ctx->current_cert = x;
1401
0
    ctx->current_issuer = NULL;
1402
0
    ctx->current_crl_score = 0;
1403
0
    ctx->current_reasons = 0;
1404
1405
    /* skip if cert is apparently self-signed */
1406
0
    if (ctx->current_cert->ex_flags & EXFLAG_SS)
1407
0
        return 1;
1408
0
    if ((x->ex_flags & EXFLAG_PROXY) != 0)
1409
0
        return 1;
1410
1411
0
    while (ctx->current_reasons != CRLDP_ALL_REASONS) {
1412
0
        unsigned int last_reasons = ctx->current_reasons;
1413
1414
        /* Try to retrieve relevant CRL */
1415
0
        if (ctx->get_crl != NULL) {
1416
0
            X509 *crl_issuer = NULL;
1417
0
            unsigned int reasons = 0;
1418
1419
0
            ok = ctx->get_crl(ctx, &crl, x);
1420
0
            if (crl != NULL) {
1421
0
                ctx->current_crl_score = get_crl_score(ctx, &crl_issuer,
1422
0
                    &reasons, crl, x);
1423
0
                ctx->current_issuer = crl_issuer;
1424
0
                ctx->current_reasons = reasons;
1425
0
            }
1426
0
        } else {
1427
0
            ok = get_crl_delta(ctx, &crl, &dcrl, x);
1428
0
        }
1429
        /* If error looking up CRL, nothing we can do except notify callback */
1430
0
        if (!ok) {
1431
0
            ok = verify_cb_crl(ctx, X509_V_ERR_UNABLE_TO_GET_CRL);
1432
0
            goto done;
1433
0
        }
1434
1435
0
        ok = ctx->check_crl(ctx, crl);
1436
0
        if (!ok)
1437
0
            goto done;
1438
1439
0
        if (dcrl != NULL) {
1440
0
            ok = ctx->check_crl(ctx, dcrl);
1441
0
            if (!ok)
1442
0
                goto done;
1443
0
            ok = ctx->cert_crl(ctx, dcrl, x);
1444
0
            if (!ok)
1445
0
                goto done;
1446
0
        } else {
1447
0
            ok = 1;
1448
0
        }
1449
1450
        /* Don't look in full CRL if delta reason is removefromCRL */
1451
0
        if (ok != 2) {
1452
0
            ok = ctx->cert_crl(ctx, crl, x);
1453
0
            if (!ok)
1454
0
                goto done;
1455
0
        }
1456
1457
0
        ctx->current_crl = NULL;
1458
0
        X509_CRL_free(crl);
1459
0
        X509_CRL_free(dcrl);
1460
0
        crl = NULL;
1461
0
        dcrl = NULL;
1462
        /*
1463
         * If reasons not updated we won't get anywhere by another iteration,
1464
         * so exit loop.
1465
         */
1466
0
        if (last_reasons == ctx->current_reasons) {
1467
0
            ok = verify_cb_crl(ctx, X509_V_ERR_UNABLE_TO_GET_CRL);
1468
0
            goto done;
1469
0
        }
1470
0
    }
1471
0
done:
1472
0
    X509_CRL_free(crl);
1473
0
    X509_CRL_free(dcrl);
1474
1475
0
    ctx->current_crl = NULL;
1476
0
    return ok;
1477
0
}
1478
1479
/*
1480
 * returns 1 and sets verification time if time should be checked.
1481
 * returns 0 if time should not be checked.
1482
 */
1483
static int get_verification_time(const X509_VERIFY_PARAM *vpm,
1484
    int64_t *verification_time)
1485
0
{
1486
0
    if (vpm != NULL && (vpm->flags & X509_V_FLAG_USE_CHECK_TIME) != 0)
1487
0
        *verification_time = vpm->check_time;
1488
0
    else
1489
0
        *verification_time = (int64_t)time(NULL);
1490
1491
0
    return vpm == NULL || (vpm->flags & X509_V_FLAG_NO_CHECK_TIME) == 0;
1492
0
}
1493
1494
/* Check CRL times against values in X509_STORE_CTX */
1495
int ossl_x509_check_crl_time(X509_STORE_CTX *ctx, X509_CRL *crl, int notify)
1496
0
{
1497
0
    int64_t verification_time, last_update, next_update;
1498
0
    int err;
1499
1500
0
    if (!get_verification_time(ctx->param, &verification_time))
1501
0
        return 1;
1502
1503
0
    if (!certificate_time_to_posix(X509_CRL_get0_lastUpdate(crl),
1504
0
            &last_update)) {
1505
0
        err = X509_V_ERR_ERROR_IN_CRL_LAST_UPDATE_FIELD;
1506
0
        if (!notify || !verify_cb_crl(ctx, err))
1507
0
            return 0;
1508
0
    } else if (verification_time < last_update) {
1509
0
        err = X509_V_ERR_CRL_NOT_YET_VALID;
1510
0
        if (!notify || !verify_cb_crl(ctx, err))
1511
0
            return 0;
1512
0
    }
1513
1514
0
    if (X509_CRL_get0_nextUpdate(crl)) {
1515
0
        if (!certificate_time_to_posix(X509_CRL_get0_nextUpdate(crl),
1516
0
                &next_update)) {
1517
0
            err = X509_V_ERR_ERROR_IN_CRL_NEXT_UPDATE_FIELD;
1518
0
            if (!notify || !verify_cb_crl(ctx, err))
1519
0
                return 0;
1520
0
        } else if (verification_time > next_update
1521
            /* Ignore expiration of base CRL is delta is valid */
1522
0
            && (ctx->current_crl_score & CRL_SCORE_TIME_DELTA) == 0) {
1523
0
            err = X509_V_ERR_CRL_HAS_EXPIRED;
1524
0
            if (!notify || !verify_cb_crl(ctx, err))
1525
0
                return 0;
1526
0
        }
1527
0
    }
1528
1529
0
    return 1;
1530
0
}
1531
1532
static int get_crl_sk(X509_STORE_CTX *ctx, X509_CRL **pcrl, X509_CRL **pdcrl,
1533
    X509 **pissuer, int *pscore, unsigned int *preasons,
1534
    STACK_OF(X509_CRL) *crls)
1535
0
{
1536
0
    int i, crl_score, best_score = *pscore;
1537
0
    unsigned int reasons, best_reasons = 0;
1538
0
    X509 *x = ctx->current_cert;
1539
0
    X509_CRL *crl, *best_crl = NULL;
1540
0
    X509 *crl_issuer = NULL, *best_crl_issuer = NULL;
1541
1542
0
    for (i = 0; i < sk_X509_CRL_num(crls); i++) {
1543
0
        crl = sk_X509_CRL_value(crls, i);
1544
0
        reasons = *preasons;
1545
0
        crl_score = get_crl_score(ctx, &crl_issuer, &reasons, crl, x);
1546
0
        if (crl_score < best_score || crl_score == 0)
1547
0
            continue;
1548
        /* If current CRL is equivalent use it if it is newer */
1549
0
        if (crl_score == best_score && best_crl != NULL) {
1550
0
            int day, sec;
1551
1552
0
            if (ASN1_TIME_diff(&day, &sec, X509_CRL_get0_lastUpdate(best_crl),
1553
0
                    X509_CRL_get0_lastUpdate(crl))
1554
0
                == 0)
1555
0
                continue;
1556
            /*
1557
             * ASN1_TIME_diff never returns inconsistent signs for |day|
1558
             * and |sec|.
1559
             */
1560
0
            if (day <= 0 && sec <= 0)
1561
0
                continue;
1562
0
        }
1563
0
        best_crl = crl;
1564
0
        best_crl_issuer = crl_issuer;
1565
0
        best_score = crl_score;
1566
0
        best_reasons = reasons;
1567
0
    }
1568
1569
0
    if (best_crl != NULL) {
1570
0
        if (!X509_CRL_up_ref(best_crl))
1571
0
            return 0;
1572
0
        X509_CRL_free(*pcrl);
1573
0
        *pcrl = best_crl;
1574
0
        *pissuer = best_crl_issuer;
1575
0
        *pscore = best_score;
1576
0
        *preasons = best_reasons;
1577
0
        X509_CRL_free(*pdcrl);
1578
0
        *pdcrl = NULL;
1579
0
        get_delta_sk(ctx, pdcrl, pscore, best_crl, crls);
1580
0
    }
1581
1582
0
    if (best_score >= CRL_SCORE_VALID)
1583
0
        return 1;
1584
1585
0
    return 0;
1586
0
}
1587
1588
/*
1589
 * Compare two CRL extensions for delta checking purposes. They should be
1590
 * both present or both absent. If both present all fields must be identical.
1591
 */
1592
static int crl_extension_match(X509_CRL *a, X509_CRL *b, int nid)
1593
0
{
1594
0
    const ASN1_OCTET_STRING *exta = NULL, *extb = NULL;
1595
0
    int i = X509_CRL_get_ext_by_NID(a, nid, -1);
1596
1597
0
    if (i >= 0) {
1598
        /* Can't have multiple occurrences */
1599
0
        if (X509_CRL_get_ext_by_NID(a, nid, i) != -1)
1600
0
            return 0;
1601
0
        exta = X509_EXTENSION_get_data(X509_CRL_get_ext(a, i));
1602
0
    }
1603
1604
0
    i = X509_CRL_get_ext_by_NID(b, nid, -1);
1605
0
    if (i >= 0) {
1606
0
        if (X509_CRL_get_ext_by_NID(b, nid, i) != -1)
1607
0
            return 0;
1608
0
        extb = X509_EXTENSION_get_data(X509_CRL_get_ext(b, i));
1609
0
    }
1610
1611
0
    if (exta == NULL && extb == NULL)
1612
0
        return 1;
1613
1614
0
    if (exta == NULL || extb == NULL)
1615
0
        return 0;
1616
1617
0
    return ASN1_OCTET_STRING_cmp(exta, extb) == 0;
1618
0
}
1619
1620
/* See if a base and delta are compatible */
1621
static int check_delta_base(X509_CRL *delta, X509_CRL *base)
1622
0
{
1623
    /* Delta CRL must be a delta */
1624
0
    if (delta->base_crl_number == NULL)
1625
0
        return 0;
1626
    /* Base must have a CRL number */
1627
0
    if (base->crl_number == NULL)
1628
0
        return 0;
1629
    /* Issuer names must match */
1630
0
    if (X509_NAME_cmp(X509_CRL_get_issuer(base),
1631
0
            X509_CRL_get_issuer(delta))
1632
0
        != 0)
1633
0
        return 0;
1634
    /* AKID and IDP must match */
1635
0
    if (!crl_extension_match(delta, base, NID_authority_key_identifier))
1636
0
        return 0;
1637
0
    if (!crl_extension_match(delta, base, NID_issuing_distribution_point))
1638
0
        return 0;
1639
    /* Delta CRL base number must not exceed Full CRL number. */
1640
0
    if (ASN1_INTEGER_cmp(delta->base_crl_number, base->crl_number) > 0)
1641
0
        return 0;
1642
    /* Delta CRL number must exceed full CRL number */
1643
0
    if (delta->crl_number == NULL)
1644
0
        return 0;
1645
0
    return ASN1_INTEGER_cmp(delta->crl_number, base->crl_number) > 0;
1646
0
}
1647
1648
/*
1649
 * For a given base CRL find a delta... maybe extend to delta scoring or
1650
 * retrieve a chain of deltas...
1651
 */
1652
static void get_delta_sk(X509_STORE_CTX *ctx, X509_CRL **dcrl, int *pscore,
1653
    X509_CRL *base, STACK_OF(X509_CRL) *crls)
1654
0
{
1655
0
    X509_CRL *delta;
1656
0
    int i;
1657
1658
0
    if ((ctx->param->flags & X509_V_FLAG_USE_DELTAS) == 0)
1659
0
        return;
1660
0
    if (((ctx->current_cert->ex_flags | base->flags) & EXFLAG_FRESHEST) == 0)
1661
0
        return;
1662
0
    for (i = 0; i < sk_X509_CRL_num(crls); i++) {
1663
0
        delta = sk_X509_CRL_value(crls, i);
1664
0
        if (check_delta_base(delta, base)) {
1665
0
            if (!X509_CRL_up_ref(delta)) {
1666
0
                *dcrl = NULL;
1667
0
                return;
1668
0
            }
1669
1670
0
            *dcrl = delta;
1671
1672
0
            if (ossl_x509_check_crl_time(ctx, delta, 0))
1673
0
                *pscore |= CRL_SCORE_TIME_DELTA;
1674
1675
0
            return;
1676
0
        }
1677
0
    }
1678
0
    *dcrl = NULL;
1679
0
}
1680
1681
/*
1682
 * For a given CRL return how suitable it is for the supplied certificate
1683
 * 'x'. The return value is a mask of several criteria. If the issuer is not
1684
 * the certificate issuer this is returned in *pissuer. The reasons mask is
1685
 * also used to determine if the CRL is suitable: if no new reasons the CRL
1686
 * is rejected, otherwise reasons is updated.
1687
 */
1688
static int get_crl_score(X509_STORE_CTX *ctx, X509 **pissuer,
1689
    unsigned int *preasons, X509_CRL *crl, X509 *x)
1690
0
{
1691
0
    int crl_score = 0;
1692
0
    unsigned int tmp_reasons = *preasons, crl_reasons;
1693
1694
    /* First see if we can reject CRL straight away */
1695
1696
    /* Invalid IDP cannot be processed */
1697
0
    if ((crl->idp_flags & IDP_INVALID) != 0)
1698
0
        return 0;
1699
    /*
1700
     * Reject delta CRLs unconditionally here. They are considered by
1701
     * get_delta_sk() after a base CRL is selected.
1702
     */
1703
0
    if (crl->base_crl_number != NULL)
1704
0
        return 0;
1705
    /* Reason codes or indirect CRLs need extended CRL support */
1706
0
    if ((ctx->param->flags & X509_V_FLAG_EXTENDED_CRL_SUPPORT) == 0) {
1707
0
        if (crl->idp_flags & (IDP_INDIRECT | IDP_REASONS))
1708
0
            return 0;
1709
0
    } else if ((crl->idp_flags & IDP_REASONS) != 0) {
1710
        /* If no new reasons reject */
1711
0
        if ((crl->idp_reasons & ~tmp_reasons) == 0)
1712
0
            return 0;
1713
0
    }
1714
    /* If issuer name doesn't match certificate need indirect CRL */
1715
0
    if (X509_NAME_cmp(X509_get_issuer_name(x), X509_CRL_get_issuer(crl)) != 0) {
1716
0
        if ((crl->idp_flags & IDP_INDIRECT) == 0)
1717
0
            return 0;
1718
0
    } else {
1719
0
        crl_score |= CRL_SCORE_ISSUER_NAME;
1720
0
    }
1721
1722
0
    if ((crl->flags & EXFLAG_CRITICAL) == 0)
1723
0
        crl_score |= CRL_SCORE_NOCRITICAL;
1724
1725
    /* Check expiration */
1726
0
    if (ossl_x509_check_crl_time(ctx, crl, 0))
1727
0
        crl_score |= CRL_SCORE_TIME;
1728
1729
    /* Check authority key ID and locate certificate issuer */
1730
0
    crl_akid_check(ctx, crl, pissuer, &crl_score);
1731
1732
    /* If we can't locate certificate issuer at this point forget it */
1733
0
    if ((crl_score & CRL_SCORE_AKID) == 0)
1734
0
        return 0;
1735
1736
    /* Check cert for matching CRL distribution points */
1737
0
    if (crl_crldp_check(x, crl, crl_score, &crl_reasons)) {
1738
        /* If no new reasons reject */
1739
0
        if ((crl_reasons & ~tmp_reasons) == 0)
1740
0
            return 0;
1741
0
        tmp_reasons |= crl_reasons;
1742
0
        crl_score |= CRL_SCORE_SCOPE;
1743
0
    }
1744
1745
0
    *preasons = tmp_reasons;
1746
0
    return crl_score;
1747
0
}
1748
1749
static void crl_akid_check(X509_STORE_CTX *ctx, X509_CRL *crl,
1750
    X509 **pissuer, int *pcrl_score)
1751
0
{
1752
0
    X509 *crl_issuer = NULL;
1753
0
    const X509_NAME *cnm = X509_CRL_get_issuer(crl);
1754
0
    int cidx = ctx->error_depth;
1755
0
    int i;
1756
1757
0
    if (cidx != sk_X509_num(ctx->chain) - 1)
1758
0
        cidx++;
1759
1760
0
    crl_issuer = sk_X509_value(ctx->chain, cidx);
1761
1762
0
    if (matching_crl_issuer_and_akid(crl, crl_issuer, cnm)) {
1763
0
        if (*pcrl_score & CRL_SCORE_ISSUER_NAME) {
1764
0
            *pcrl_score |= CRL_SCORE_AKID | CRL_SCORE_ISSUER_CERT;
1765
0
            *pissuer = crl_issuer;
1766
0
            return;
1767
0
        }
1768
0
    }
1769
1770
0
    for (cidx++; cidx < sk_X509_num(ctx->chain); cidx++) {
1771
0
        crl_issuer = sk_X509_value(ctx->chain, cidx);
1772
0
        if (matching_crl_issuer_and_akid(crl, crl_issuer, cnm)) {
1773
0
            *pcrl_score |= CRL_SCORE_AKID | CRL_SCORE_SAME_PATH;
1774
0
            *pissuer = crl_issuer;
1775
0
            return;
1776
0
        }
1777
0
    }
1778
1779
    /* Anything else needs extended CRL support */
1780
0
    if ((ctx->param->flags & X509_V_FLAG_EXTENDED_CRL_SUPPORT) == 0)
1781
0
        return;
1782
1783
    /*
1784
     * Otherwise the CRL issuer is not on the path. Look for it in the set of
1785
     * untrusted certificates.
1786
     */
1787
0
    for (i = 0; i < sk_X509_num(ctx->untrusted); i++) {
1788
0
        crl_issuer = sk_X509_value(ctx->untrusted, i);
1789
0
        if (matching_crl_issuer_and_akid(crl, crl_issuer, cnm)) {
1790
0
            *pissuer = crl_issuer;
1791
0
            *pcrl_score |= CRL_SCORE_AKID;
1792
0
            return;
1793
0
        }
1794
0
    }
1795
0
}
1796
1797
static int matching_crl_issuer_and_akid(const X509_CRL *crl,
1798
    const X509 *issuer, const X509_NAME *crl_issuer_name)
1799
0
{
1800
0
    if (issuer == NULL)
1801
0
        return 0;
1802
0
    if (X509_NAME_cmp(X509_get_subject_name(issuer), crl_issuer_name) != 0)
1803
0
        return 0;
1804
0
    return X509_check_akid(issuer, crl->akid) == X509_V_OK;
1805
0
}
1806
1807
/*
1808
 * Check the path of a CRL issuer certificate. This creates a new
1809
 * X509_STORE_CTX and populates it with most of the parameters from the
1810
 * parent. This could be optimised somewhat since a lot of path checking will
1811
 * be duplicated by the parent, but this will rarely be used in practice.
1812
 */
1813
static int check_crl_path(X509_STORE_CTX *ctx, X509 *x)
1814
0
{
1815
0
    X509_STORE_CTX crl_ctx = { 0 };
1816
0
    int ret;
1817
1818
    /* Don't allow recursive CRL path validation */
1819
0
    if (ctx->parent != NULL)
1820
0
        return 0;
1821
0
    if (!X509_STORE_CTX_init(&crl_ctx, ctx->store, x, ctx->untrusted))
1822
0
        return -1;
1823
1824
0
    crl_ctx.crls = ctx->crls;
1825
    /* Copy verify params across */
1826
0
    X509_STORE_CTX_set0_param(&crl_ctx, ctx->param);
1827
1828
0
    crl_ctx.parent = ctx;
1829
0
    crl_ctx.verify_cb = ctx->verify_cb;
1830
1831
    /* Verify CRL issuer */
1832
0
    ret = X509_verify_cert(&crl_ctx);
1833
0
    if (ret <= 0)
1834
0
        goto err;
1835
1836
    /* Check chain is acceptable */
1837
0
    ret = check_crl_chain(ctx, ctx->chain, crl_ctx.chain);
1838
0
err:
1839
0
    X509_STORE_CTX_cleanup(&crl_ctx);
1840
0
    return ret;
1841
0
}
1842
1843
/*
1844
 * RFC3280 says nothing about the relationship between CRL path and
1845
 * certificate path, which could lead to situations where a certificate could
1846
 * be revoked or validated by a CA not authorized to do so. RFC5280 is more
1847
 * strict and states that the two paths must end in the same trust anchor,
1848
 * though some discussions remain... until this is resolved we use the
1849
 * RFC5280 version
1850
 */
1851
static int check_crl_chain(X509_STORE_CTX *ctx,
1852
    STACK_OF(X509) *cert_path,
1853
    STACK_OF(X509) *crl_path)
1854
0
{
1855
0
    X509 *cert_ta = sk_X509_value(cert_path, sk_X509_num(cert_path) - 1);
1856
0
    X509 *crl_ta = sk_X509_value(crl_path, sk_X509_num(crl_path) - 1);
1857
1858
0
    return X509_cmp(cert_ta, crl_ta) == 0;
1859
0
}
1860
1861
/*-
1862
 * Check for match between two dist point names: three separate cases.
1863
 * 1. Both are relative names and compare X509_NAME types.
1864
 * 2. One full, one relative. Compare X509_NAME to GENERAL_NAMES.
1865
 * 3. Both are full names and compare two GENERAL_NAMES.
1866
 * 4. One is NULL: automatic match.
1867
 */
1868
static int idp_check_dp(DIST_POINT_NAME *a, DIST_POINT_NAME *b)
1869
0
{
1870
0
    X509_NAME *nm = NULL;
1871
0
    GENERAL_NAMES *gens = NULL;
1872
0
    GENERAL_NAME *gena, *genb;
1873
0
    int i, j;
1874
1875
0
    if (a == NULL || b == NULL)
1876
0
        return 1;
1877
0
    if (a->type == 1) {
1878
0
        if (a->dpname == NULL)
1879
0
            return 0;
1880
        /* Case 1: two X509_NAME */
1881
0
        if (b->type == 1) {
1882
0
            if (b->dpname == NULL)
1883
0
                return 0;
1884
0
            return X509_NAME_cmp(a->dpname, b->dpname) == 0;
1885
0
        }
1886
        /* Case 2: set name and GENERAL_NAMES appropriately */
1887
0
        nm = a->dpname;
1888
0
        gens = b->name.fullname;
1889
0
    } else if (b->type == 1) {
1890
0
        if (b->dpname == NULL)
1891
0
            return 0;
1892
        /* Case 2: set name and GENERAL_NAMES appropriately */
1893
0
        gens = a->name.fullname;
1894
0
        nm = b->dpname;
1895
0
    }
1896
1897
    /* Handle case 2 with one GENERAL_NAMES and one X509_NAME */
1898
0
    if (nm != NULL) {
1899
0
        for (i = 0; i < sk_GENERAL_NAME_num(gens); i++) {
1900
0
            gena = sk_GENERAL_NAME_value(gens, i);
1901
0
            if (gena->type != GEN_DIRNAME)
1902
0
                continue;
1903
0
            if (X509_NAME_cmp(nm, gena->d.directoryName) == 0)
1904
0
                return 1;
1905
0
        }
1906
0
        return 0;
1907
0
    }
1908
1909
    /* Else case 3: two GENERAL_NAMES */
1910
1911
0
    for (i = 0; i < sk_GENERAL_NAME_num(a->name.fullname); i++) {
1912
0
        gena = sk_GENERAL_NAME_value(a->name.fullname, i);
1913
0
        for (j = 0; j < sk_GENERAL_NAME_num(b->name.fullname); j++) {
1914
0
            genb = sk_GENERAL_NAME_value(b->name.fullname, j);
1915
0
            if (GENERAL_NAME_cmp(gena, genb) == 0)
1916
0
                return 1;
1917
0
        }
1918
0
    }
1919
1920
0
    return 0;
1921
0
}
1922
1923
static int crldp_check_crlissuer(DIST_POINT *dp, X509_CRL *crl, int crl_score)
1924
0
{
1925
0
    int i;
1926
0
    const X509_NAME *nm = X509_CRL_get_issuer(crl);
1927
1928
    /* If no CRLissuer return is successful iff don't need a match */
1929
0
    if (dp->CRLissuer == NULL)
1930
0
        return (crl_score & CRL_SCORE_ISSUER_NAME) != 0;
1931
0
    for (i = 0; i < sk_GENERAL_NAME_num(dp->CRLissuer); i++) {
1932
0
        GENERAL_NAME *gen = sk_GENERAL_NAME_value(dp->CRLissuer, i);
1933
1934
0
        if (gen->type != GEN_DIRNAME)
1935
0
            continue;
1936
0
        if (X509_NAME_cmp(gen->d.directoryName, nm) == 0)
1937
0
            return 1;
1938
0
    }
1939
0
    return 0;
1940
0
}
1941
1942
/* Check CRLDP and IDP */
1943
static int crl_crldp_check(X509 *x, X509_CRL *crl, int crl_score,
1944
    unsigned int *preasons)
1945
0
{
1946
0
    int i;
1947
1948
0
    if ((crl->idp_flags & IDP_ONLYATTR) != 0)
1949
0
        return 0;
1950
0
    if ((x->ex_flags & EXFLAG_CA) != 0) {
1951
0
        if ((crl->idp_flags & IDP_ONLYUSER) != 0)
1952
0
            return 0;
1953
0
    } else {
1954
0
        if ((crl->idp_flags & IDP_ONLYCA) != 0)
1955
0
            return 0;
1956
0
    }
1957
0
    *preasons = crl->idp_reasons;
1958
0
    for (i = 0; i < sk_DIST_POINT_num(x->crldp); i++) {
1959
0
        DIST_POINT *dp = sk_DIST_POINT_value(x->crldp, i);
1960
1961
0
        if (crldp_check_crlissuer(dp, crl, crl_score)) {
1962
0
            if (crl->idp == NULL
1963
0
                || idp_check_dp(dp->distpoint, crl->idp->distpoint)) {
1964
0
                *preasons &= dp->dp_reasons;
1965
0
                return 1;
1966
0
            }
1967
0
        }
1968
0
    }
1969
0
    return (crl->idp == NULL || crl->idp->distpoint == NULL)
1970
0
        && (crl_score & CRL_SCORE_ISSUER_NAME) != 0;
1971
0
}
1972
1973
/*
1974
 * Retrieve CRL corresponding to current certificate. If deltas enabled try
1975
 * to find a delta CRL too
1976
 */
1977
static int get_crl_delta(X509_STORE_CTX *ctx,
1978
    X509_CRL **pcrl, X509_CRL **pdcrl, X509 *x)
1979
0
{
1980
0
    int ok;
1981
0
    X509 *issuer = NULL;
1982
0
    int crl_score = 0;
1983
0
    unsigned int reasons;
1984
0
    X509_CRL *crl = NULL, *dcrl = NULL;
1985
0
    STACK_OF(X509_CRL) *skcrl;
1986
0
    const X509_NAME *nm = X509_get_issuer_name(x);
1987
1988
0
    reasons = ctx->current_reasons;
1989
0
    ok = get_crl_sk(ctx, &crl, &dcrl,
1990
0
        &issuer, &crl_score, &reasons, ctx->crls);
1991
0
    if (ok)
1992
0
        goto done;
1993
1994
    /* Lookup CRLs from store */
1995
0
    skcrl = ctx->lookup_crls(ctx, nm);
1996
1997
    /* If no CRLs found and a near match from get_crl_sk use that */
1998
0
    if (skcrl == NULL && crl != NULL)
1999
0
        goto done;
2000
2001
0
    get_crl_sk(ctx, &crl, &dcrl, &issuer, &crl_score, &reasons, skcrl);
2002
2003
0
    sk_X509_CRL_pop_free(skcrl, X509_CRL_free);
2004
2005
0
done:
2006
    /* If we got any kind of CRL use it and return success */
2007
0
    if (crl != NULL) {
2008
0
        ctx->current_issuer = issuer;
2009
0
        ctx->current_crl_score = crl_score;
2010
0
        ctx->current_reasons = reasons;
2011
0
        *pcrl = crl;
2012
0
        *pdcrl = dcrl;
2013
0
        return 1;
2014
0
    }
2015
0
    return 0;
2016
0
}
2017
2018
/* Check CRL validity */
2019
static int check_crl(X509_STORE_CTX *ctx, X509_CRL *crl)
2020
0
{
2021
0
    X509 *issuer = NULL;
2022
0
    EVP_PKEY *ikey = NULL;
2023
0
    int cnum = ctx->error_depth;
2024
0
    int chnum = sk_X509_num(ctx->chain) - 1;
2025
2026
0
    ctx->current_crl = crl;
2027
2028
    /* If we have an alternative CRL issuer cert use that */
2029
0
    if (ctx->current_issuer != NULL) {
2030
0
        issuer = ctx->current_issuer;
2031
        /*
2032
         * Else find CRL issuer: if not last certificate then issuer is next
2033
         * certificate in chain.
2034
         */
2035
0
    } else if (cnum < chnum) {
2036
0
        issuer = sk_X509_value(ctx->chain, cnum + 1);
2037
0
    } else {
2038
0
        issuer = sk_X509_value(ctx->chain, chnum);
2039
0
        if (!ossl_assert(issuer != NULL))
2040
0
            return 0;
2041
        /* If not self-issued, can't check signature */
2042
0
        if (!ctx->check_issued(ctx, issuer, issuer) && !verify_cb_crl(ctx, X509_V_ERR_UNABLE_TO_GET_CRL_ISSUER))
2043
0
            return 0;
2044
0
    }
2045
2046
0
    if (issuer == NULL)
2047
0
        return 1;
2048
2049
    /*
2050
     * Skip most tests for deltas because they have already been done
2051
     */
2052
0
    if (crl->base_crl_number == NULL) {
2053
        /* Check for cRLSign bit if keyUsage present */
2054
0
        if ((issuer->ex_flags & EXFLAG_KUSAGE) != 0 && (issuer->ex_kusage & KU_CRL_SIGN) == 0 && !verify_cb_crl(ctx, X509_V_ERR_KEYUSAGE_NO_CRL_SIGN))
2055
0
            return 0;
2056
2057
0
        if ((ctx->current_crl_score & CRL_SCORE_SCOPE) == 0 && !verify_cb_crl(ctx, X509_V_ERR_DIFFERENT_CRL_SCOPE))
2058
0
            return 0;
2059
2060
0
        if ((ctx->current_crl_score & CRL_SCORE_SAME_PATH) == 0 && check_crl_path(ctx, ctx->current_issuer) <= 0 && !verify_cb_crl(ctx, X509_V_ERR_CRL_PATH_VALIDATION_ERROR))
2061
0
            return 0;
2062
2063
0
        if ((crl->idp_flags & IDP_INVALID) != 0 && !verify_cb_crl(ctx, X509_V_ERR_INVALID_EXTENSION))
2064
0
            return 0;
2065
0
    }
2066
2067
0
    if ((ctx->current_crl_score & CRL_SCORE_TIME) == 0 && !ossl_x509_check_crl_time(ctx, crl, 1))
2068
0
        return 0;
2069
2070
    /* Attempt to get issuer certificate public key */
2071
0
    ikey = X509_get0_pubkey(issuer);
2072
0
    if (ikey == NULL && !verify_cb_crl(ctx, X509_V_ERR_UNABLE_TO_DECODE_ISSUER_PUBLIC_KEY))
2073
0
        return 0;
2074
2075
0
    if (ikey != NULL) {
2076
0
        int rv = X509_CRL_check_suiteb(crl, ikey, ctx->param->flags);
2077
2078
0
        if (rv != X509_V_OK && !verify_cb_crl(ctx, rv))
2079
0
            return 0;
2080
        /* Verify CRL signature */
2081
0
        if (X509_CRL_verify(crl, ikey) <= 0 && !verify_cb_crl(ctx, X509_V_ERR_CRL_SIGNATURE_FAILURE))
2082
0
            return 0;
2083
0
    }
2084
0
    return 1;
2085
0
}
2086
2087
/* Check certificate against CRL */
2088
static int cert_crl(X509_STORE_CTX *ctx, X509_CRL *crl, X509 *x)
2089
0
{
2090
0
    X509_REVOKED *rev;
2091
2092
    /*
2093
     * The rules changed for this... previously if a CRL contained unhandled
2094
     * critical extensions it could still be used to indicate a certificate
2095
     * was revoked. This has since been changed since critical extensions can
2096
     * change the meaning of CRL entries.
2097
     */
2098
0
    if ((ctx->param->flags & X509_V_FLAG_IGNORE_CRITICAL) == 0
2099
0
        && (crl->flags & EXFLAG_CRITICAL) != 0 && !verify_cb_crl(ctx, X509_V_ERR_UNHANDLED_CRITICAL_CRL_EXTENSION))
2100
0
        return 0;
2101
    /*
2102
     * Look for serial number of certificate in CRL.  If found, make sure
2103
     * reason is not removeFromCRL.
2104
     */
2105
0
    if (X509_CRL_get0_by_cert(crl, &rev, x)) {
2106
0
        if (rev->reason == CRL_REASON_REMOVE_FROM_CRL)
2107
0
            return 2;
2108
0
        if (!verify_cb_crl(ctx, X509_V_ERR_CERT_REVOKED))
2109
0
            return 0;
2110
0
    }
2111
2112
0
    return 1;
2113
0
}
2114
2115
/* Sadly, returns 0 also on internal error in ctx->verify_cb(). */
2116
static int check_policy(X509_STORE_CTX *ctx)
2117
0
{
2118
0
    int ret;
2119
2120
0
    if (ctx->parent)
2121
0
        return 1;
2122
    /*
2123
     * With DANE, the trust anchor might be a bare public key, not a
2124
     * certificate!  In that case our chain does not have the trust anchor
2125
     * certificate as a top-most element.  This comports well with RFC5280
2126
     * chain verification, since there too, the trust anchor is not part of the
2127
     * chain to be verified.  In particular, X509_policy_check() does not look
2128
     * at the TA cert, but assumes that it is present as the top-most chain
2129
     * element.  We therefore temporarily push a NULL cert onto the chain if it
2130
     * was verified via a bare public key, and pop it off right after the
2131
     * X509_policy_check() call.
2132
     */
2133
0
    if (ctx->bare_ta_signed && !sk_X509_push(ctx->chain, NULL)) {
2134
0
        ERR_raise(ERR_LIB_X509, ERR_R_CRYPTO_LIB);
2135
0
        goto memerr;
2136
0
    }
2137
0
    ret = X509_policy_check(&ctx->tree, &ctx->explicit_policy, ctx->chain,
2138
0
        ctx->param->policies, ctx->param->flags);
2139
0
    if (ctx->bare_ta_signed)
2140
0
        (void)sk_X509_pop(ctx->chain);
2141
2142
0
    if (ret == X509_PCY_TREE_INTERNAL) {
2143
0
        ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
2144
0
        goto memerr;
2145
0
    }
2146
    /* Invalid or inconsistent extensions */
2147
0
    if (ret == X509_PCY_TREE_INVALID) {
2148
0
        int i, cbcalled = 0;
2149
2150
        /* Locate certificates with bad extensions and notify callback. */
2151
0
        for (i = 0; i < sk_X509_num(ctx->chain); i++) {
2152
0
            X509 *x = sk_X509_value(ctx->chain, i);
2153
2154
0
            if ((x->ex_flags & EXFLAG_INVALID_POLICY) != 0)
2155
0
                cbcalled = 1;
2156
0
            CB_FAIL_IF((x->ex_flags & EXFLAG_INVALID_POLICY) != 0,
2157
0
                ctx, x, i, X509_V_ERR_INVALID_POLICY_EXTENSION);
2158
0
        }
2159
0
        if (!cbcalled) {
2160
            /* Should not be able to get here */
2161
0
            ERR_raise(ERR_LIB_X509, ERR_R_INTERNAL_ERROR);
2162
0
            return 0;
2163
0
        }
2164
        /* The callback ignored the error so we return success */
2165
0
        return 1;
2166
0
    }
2167
0
    if (ret == X509_PCY_TREE_FAILURE) {
2168
0
        ctx->current_cert = NULL;
2169
0
        ctx->error = X509_V_ERR_NO_EXPLICIT_POLICY;
2170
0
        return ctx->verify_cb(0, ctx);
2171
0
    }
2172
0
    if (ret != X509_PCY_TREE_VALID) {
2173
0
        ERR_raise(ERR_LIB_X509, ERR_R_INTERNAL_ERROR);
2174
0
        return 0;
2175
0
    }
2176
2177
0
    if ((ctx->param->flags & X509_V_FLAG_NOTIFY_POLICY) != 0) {
2178
0
        ctx->current_cert = NULL;
2179
        /*
2180
         * Verification errors need to be "sticky", a callback may have allowed
2181
         * an SSL handshake to continue despite an error, and we must then
2182
         * remain in an error state.  Therefore, we MUST NOT clear earlier
2183
         * verification errors by setting the error to X509_V_OK.
2184
         */
2185
0
        if (!ctx->verify_cb(2, ctx))
2186
0
            return 0;
2187
0
    }
2188
2189
0
    return 1;
2190
2191
0
memerr:
2192
0
    ctx->error = X509_V_ERR_OUT_OF_MEM;
2193
0
    return -1;
2194
0
}
2195
2196
/*-
2197
 * Check certificate validity times.
2198
 *
2199
 * Returns 1 if the certificate |x| is temporally valid at the
2200
 * verification time requested by |vpm|, or 0 otherwise. if |error| is
2201
 * non-NULL, |*error| will be set to 0 when the certificate is
2202
 * temporally valid, otherwise it will be set to a non-zero error
2203
 * code.
2204
 */
2205
int X509_check_certificate_times(const X509_VERIFY_PARAM *vpm, const X509 *x,
2206
    int *error)
2207
0
{
2208
0
    int ret = 0, err = 0;
2209
0
    int64_t notafter_seconds, notbefore_seconds, verification_time;
2210
2211
0
    if (!get_verification_time(vpm, &verification_time)) {
2212
0
        ret = 1;
2213
0
        goto done;
2214
0
    }
2215
2216
0
    if (!certificate_time_to_posix(X509_get0_notBefore(x), &notbefore_seconds)) {
2217
0
        err = X509_V_ERR_ERROR_IN_CERT_NOT_BEFORE_FIELD;
2218
0
        goto done;
2219
0
    }
2220
2221
0
    if (verification_time < notbefore_seconds) {
2222
0
        err = X509_V_ERR_CERT_NOT_YET_VALID;
2223
0
        goto done;
2224
0
    }
2225
2226
0
    if (!certificate_time_to_posix(X509_get0_notAfter(x), &notafter_seconds)) {
2227
0
        err = X509_V_ERR_ERROR_IN_CERT_NOT_AFTER_FIELD;
2228
0
        goto done;
2229
0
    }
2230
2231
    /*
2232
     * RFC 5280 4.1.2.5:
2233
     * To indicate that a certificate has no well-defined expiration date,
2234
     * the notAfter SHOULD be assigned the GeneralizedTime value of
2235
     * 99991231235959Z. This is INT64_C(253402300799) in epoch seconds.
2236
     */
2237
0
    if (notafter_seconds == INT64_C(253402300799)) {
2238
0
        ret = 1;
2239
0
        goto done;
2240
0
    }
2241
2242
0
    if (verification_time > notafter_seconds) {
2243
0
        err = X509_V_ERR_CERT_HAS_EXPIRED;
2244
0
        goto done;
2245
0
    }
2246
2247
0
    ret = 1;
2248
2249
0
done:
2250
0
    if (error != NULL)
2251
0
        *error = err;
2252
2253
0
    return ret;
2254
0
}
2255
2256
/*-
2257
 * Check certificate validity times.
2258
 * If depth >= 0, invoke verification callbacks on error, otherwise just return
2259
 * the validation status.
2260
 *
2261
 * Return 1 on success, 0 otherwise.
2262
 * Sadly, returns 0 also on internal error in ctx->verify_cb().
2263
 */
2264
int ossl_x509_check_cert_time(X509_STORE_CTX *ctx, X509 *x, int depth)
2265
0
{
2266
0
    const X509_VERIFY_PARAM *vpm = ctx->param;
2267
0
    int64_t notafter_seconds, notbefore_seconds, verification_time;
2268
0
    int err;
2269
2270
0
    if (!get_verification_time(vpm, &verification_time))
2271
0
        return 1;
2272
2273
0
    if (!certificate_time_to_posix(X509_get0_notBefore(x), &notbefore_seconds)) {
2274
0
        err = X509_V_ERR_ERROR_IN_CERT_NOT_BEFORE_FIELD;
2275
0
        if (depth < 0 || verify_cb_cert(ctx, x, depth, err) == 0)
2276
0
            return 0;
2277
0
    } else if (verification_time < notbefore_seconds) {
2278
0
        err = X509_V_ERR_CERT_NOT_YET_VALID;
2279
0
        if (depth < 0 || verify_cb_cert(ctx, x, depth, err) == 0)
2280
0
            return 0;
2281
0
    }
2282
2283
0
    if (!certificate_time_to_posix(X509_get0_notAfter(x), &notafter_seconds)) {
2284
0
        err = X509_V_ERR_ERROR_IN_CERT_NOT_AFTER_FIELD;
2285
0
        if (depth < 0 || verify_cb_cert(ctx, x, depth, err) == 0)
2286
0
            return 0;
2287
0
    } else {
2288
        /*
2289
         * RFC 5280 4.1.2.5:
2290
         * To indicate that a certificate has no well-defined expiration date,
2291
         * the notAfter SHOULD be assigned the GeneralizedTime value of
2292
         * 99991231235959Z. This is INT64_C(253402300799) in epoch seconds.
2293
         */
2294
0
        if (notafter_seconds == INT64_C(253402300799))
2295
0
            return 1;
2296
0
        if (verification_time > notafter_seconds) {
2297
0
            err = X509_V_ERR_CERT_HAS_EXPIRED;
2298
0
            if (depth < 0 || verify_cb_cert(ctx, x, depth, err) == 0)
2299
0
                return 0;
2300
0
        }
2301
0
    }
2302
2303
0
    return 1;
2304
0
}
2305
2306
/*
2307
 * Verify the issuer signatures and cert times of ctx->chain.
2308
 * Sadly, returns 0 also on internal error in ctx->verify_cb().
2309
 */
2310
static int internal_verify(X509_STORE_CTX *ctx)
2311
0
{
2312
0
    int n;
2313
0
    X509 *xi;
2314
0
    X509 *xs;
2315
2316
    /* For RPK: just do the verify callback */
2317
0
    if (ctx->rpk != NULL) {
2318
0
        if (!ctx->verify_cb(ctx->error == X509_V_OK, ctx))
2319
0
            return 0;
2320
0
        return 1;
2321
0
    }
2322
0
    n = sk_X509_num(ctx->chain) - 1;
2323
0
    xi = sk_X509_value(ctx->chain, n);
2324
0
    xs = xi;
2325
2326
0
    ctx->error_depth = n;
2327
0
    if (ctx->bare_ta_signed) {
2328
        /*
2329
         * With DANE-verified bare public key TA signatures,
2330
         * on the top certificate we check only the timestamps.
2331
         * We report the issuer as NULL because all we have is a bare key.
2332
         */
2333
0
        xi = NULL;
2334
0
    } else if (ossl_x509_likely_issued(xi, xi) != X509_V_OK
2335
        /* exceptional case: last cert in the chain is not self-issued */
2336
0
        && ((ctx->param->flags & X509_V_FLAG_PARTIAL_CHAIN) == 0)) {
2337
0
        if (n > 0) {
2338
0
            n--;
2339
0
            ctx->error_depth = n;
2340
0
            xs = sk_X509_value(ctx->chain, n);
2341
0
        } else {
2342
0
            CB_FAIL_IF(1, ctx, xi, 0,
2343
0
                X509_V_ERR_UNABLE_TO_VERIFY_LEAF_SIGNATURE);
2344
0
        }
2345
        /*
2346
         * The below code will certainly not do a
2347
         * self-signature check on xi because it is not self-issued.
2348
         */
2349
0
    }
2350
2351
    /*
2352
     * Do not clear error (by ctx->error = X509_V_OK), it must be "sticky",
2353
     * only the user's callback is allowed to reset errors (at its own peril).
2354
     */
2355
0
    while (n >= 0) {
2356
        /*-
2357
         * For each iteration of this loop:
2358
         * n is the subject depth
2359
         * xs is the subject cert, for which the signature is to be checked
2360
         * xi is NULL for DANE-verified bare public key TA signatures
2361
         *       else the supposed issuer cert containing the public key to use
2362
         * Initially xs == xi if the last cert in the chain is self-issued.
2363
         */
2364
        /*
2365
         * Do signature check for self-signed certificates only if explicitly
2366
         * asked for because it does not add any security and just wastes time.
2367
         */
2368
0
        if (xi != NULL
2369
0
            && (xs != xi
2370
0
                || ((ctx->param->flags & X509_V_FLAG_CHECK_SS_SIGNATURE) != 0
2371
0
                    && (xi->ex_flags & EXFLAG_SS) != 0))) {
2372
0
            EVP_PKEY *pkey;
2373
            /*
2374
             * If the issuer's public key is not available or its key usage
2375
             * does not support issuing the subject cert, report the issuer
2376
             * cert and its depth (rather than n, the depth of the subject).
2377
             */
2378
0
            int issuer_depth = n + (xs == xi ? 0 : 1);
2379
            /*
2380
             * According to https://tools.ietf.org/html/rfc5280#section-6.1.4
2381
             * step (n) we must check any given key usage extension in a CA cert
2382
             * when preparing the verification of a certificate issued by it.
2383
             * According to https://tools.ietf.org/html/rfc5280#section-4.2.1.3
2384
             * we must not verify a certificate signature if the key usage of
2385
             * the CA certificate that issued the certificate prohibits signing.
2386
             * In case the 'issuing' certificate is the last in the chain and is
2387
             * not a CA certificate but a 'self-issued' end-entity cert (i.e.,
2388
             * xs == xi && !(xi->ex_flags & EXFLAG_CA)) RFC 5280 does not apply
2389
             * (see https://tools.ietf.org/html/rfc6818#section-2) and thus
2390
             * we are free to ignore any key usage restrictions on such certs.
2391
             */
2392
0
            int ret = xs == xi && (xi->ex_flags & EXFLAG_CA) == 0
2393
0
                ? X509_V_OK
2394
0
                : ossl_x509_signing_allowed(xi, xs);
2395
2396
0
            CB_FAIL_IF(ret != X509_V_OK, ctx, xi, issuer_depth, ret);
2397
0
            if ((pkey = X509_get0_pubkey(xi)) == NULL) {
2398
0
                CB_FAIL_IF(1, ctx, xi, issuer_depth,
2399
0
                    X509_V_ERR_UNABLE_TO_DECODE_ISSUER_PUBLIC_KEY);
2400
0
            } else {
2401
0
                CB_FAIL_IF(X509_verify(xs, pkey) <= 0,
2402
0
                    ctx, xs, n, X509_V_ERR_CERT_SIGNATURE_FAILURE);
2403
0
            }
2404
0
        }
2405
2406
        /* In addition to RFC 5280 requirements do also for trust anchor cert */
2407
        /* Calls verify callback as needed */
2408
0
        if (!ossl_x509_check_cert_time(ctx, xs, n))
2409
0
            return 0;
2410
2411
        /*
2412
         * Signal success at this depth.  However, the previous error (if any)
2413
         * is retained.
2414
         */
2415
0
        ctx->current_issuer = xi;
2416
0
        ctx->current_cert = xs;
2417
0
        ctx->error_depth = n;
2418
0
        if (!ctx->verify_cb(1, ctx))
2419
0
            return 0;
2420
2421
0
        if (--n >= 0) {
2422
0
            xi = xs;
2423
0
            xs = sk_X509_value(ctx->chain, n);
2424
0
        }
2425
0
    }
2426
0
    return 1;
2427
0
}
2428
2429
#if !defined(OPENSSL_NO_DEPRECATED_4_0)
2430
int X509_cmp_current_time(const ASN1_TIME *ctm)
2431
0
{
2432
0
    return X509_cmp_time(ctm, NULL);
2433
0
}
2434
2435
/* returns 0 on error, otherwise 1 if ctm > cmp_time, else -1 */
2436
int X509_cmp_time(const ASN1_TIME *ctm, const time_t *cmp_time)
2437
0
{
2438
0
    int64_t cert_time, posix_time = cmp_time == NULL ? (int64_t)time(NULL) : (int64_t)*cmp_time;
2439
2440
0
    if (!certificate_time_to_posix(ctm, &cert_time))
2441
0
        return 0;
2442
2443
0
    if (cert_time > posix_time)
2444
0
        return 1;
2445
2446
    /* It's tradition, that makes it OK. Hyrum's law bites forever */
2447
0
    return -1;
2448
0
}
2449
2450
/*
2451
 * Return 0 if time should not be checked or reference time is in range,
2452
 * or else 1 if it is past the end, or -1 if it is before the start
2453
 * treats invalid start and end as times infinitely in the past or
2454
 * future, respectively. Do not use on untrusted input (meaning
2455
 * do not use this when validating certificates for actual use)
2456
 */
2457
int X509_cmp_timeframe(const X509_VERIFY_PARAM *vpm,
2458
    const ASN1_TIME *start, const ASN1_TIME *end)
2459
0
{
2460
0
    unsigned long flags = vpm == NULL ? 0 : X509_VERIFY_PARAM_get_flags(vpm);
2461
0
    time_t ref_time;
2462
0
    time_t *time = NULL;
2463
2464
0
    if ((flags & X509_V_FLAG_USE_CHECK_TIME) != 0) {
2465
0
        ref_time = X509_VERIFY_PARAM_get_time(vpm);
2466
0
        time = &ref_time;
2467
0
    } else if ((flags & X509_V_FLAG_NO_CHECK_TIME) != 0) {
2468
0
        return 0; /* this means ok */
2469
0
    } /* else reference time is the current time */
2470
2471
    /*
2472
     * XXX this is public API so we have the entertaining property
2473
     * that invalid asn1 times for |start| or |end| are effectively
2474
     * treated as infinitely in the past or future, due to the use
2475
     * X509_cmp_time, and the 0 return for an invalid time.
2476
     *
2477
     * Treating NULL as infinite a bit off but probably mostly harmless
2478
     * in practice because X509_get0_notBefore and friends do not
2479
     * return NULL. However, if you can end up using a cert with an
2480
     * invalid time that whatever signed it did not validate it in a
2481
     * compatible way with us, You can end up with infinite validity
2482
     * when you did not expect it. Depending on how you got the
2483
     * certificate and what you are doing based upon this decision
2484
     * this could have undesirable consequences.
2485
     *
2486
     * (invalid) (invalid) -> 0;
2487
     * start (invalid) -> returns 0 if start if after time
2488
     * (invalid) end -> returns 0 if end is before time
2489
     *
2490
     * So for better or worse we keep this the way it is and update
2491
     * the documentation accordingly.
2492
     */
2493
0
    if (end != NULL && X509_cmp_time(end, time) < 0)
2494
0
        return 1;
2495
0
    if (start != NULL && X509_cmp_time(start, time) > 0)
2496
0
        return -1;
2497
0
    return 0;
2498
0
}
2499
#endif /* !defined(OPENSSL_NO_DEPRECATED_4_0) */
2500
2501
ASN1_TIME *X509_gmtime_adj(ASN1_TIME *s, long adj)
2502
0
{
2503
0
    return X509_time_adj(s, adj, NULL);
2504
0
}
2505
2506
ASN1_TIME *X509_time_adj(ASN1_TIME *s, long offset_sec, const time_t *in_tm)
2507
0
{
2508
0
    return X509_time_adj_ex(s, 0, offset_sec, in_tm);
2509
0
}
2510
2511
ASN1_TIME *X509_time_adj_ex(ASN1_TIME *s,
2512
    int offset_day, long offset_sec, const time_t *in_tm)
2513
0
{
2514
0
    time_t t;
2515
2516
0
    if (in_tm)
2517
0
        t = *in_tm;
2518
0
    else
2519
0
        time(&t);
2520
2521
0
    if (s != NULL && (s->flags & ASN1_STRING_FLAG_MSTRING) == 0) {
2522
0
        if (s->type == V_ASN1_UTCTIME)
2523
0
            return ASN1_UTCTIME_adj(s, t, offset_day, offset_sec);
2524
0
        if (s->type == V_ASN1_GENERALIZEDTIME)
2525
0
            return ASN1_GENERALIZEDTIME_adj(s, t, offset_day, offset_sec);
2526
0
    }
2527
0
    return ASN1_TIME_adj(s, t, offset_day, offset_sec);
2528
0
}
2529
2530
/* Copy any missing public key parameters up the chain towards pkey */
2531
int X509_get_pubkey_parameters(EVP_PKEY *pkey, const STACK_OF(X509) *chain)
2532
0
{
2533
0
    EVP_PKEY *ktmp = NULL, *ktmp2;
2534
0
    int i, j;
2535
2536
0
    if (pkey != NULL && !EVP_PKEY_missing_parameters(pkey))
2537
0
        return 1;
2538
2539
0
    for (i = 0; i < sk_X509_num(chain); i++) {
2540
0
        ktmp = X509_get0_pubkey(sk_X509_value(chain, i));
2541
0
        if (ktmp == NULL) {
2542
0
            ERR_raise(ERR_LIB_X509, X509_R_UNABLE_TO_GET_CERTS_PUBLIC_KEY);
2543
0
            return 0;
2544
0
        }
2545
0
        if (!EVP_PKEY_missing_parameters(ktmp))
2546
0
            break;
2547
0
        ktmp = NULL;
2548
0
    }
2549
0
    if (ktmp == NULL) {
2550
0
        ERR_raise(ERR_LIB_X509, X509_R_UNABLE_TO_FIND_PARAMETERS_IN_CHAIN);
2551
0
        return 0;
2552
0
    }
2553
2554
    /* first, populate the other certs */
2555
0
    for (j = i - 1; j >= 0; j--) {
2556
0
        ktmp2 = X509_get0_pubkey(sk_X509_value(chain, j));
2557
0
        if (!EVP_PKEY_copy_parameters(ktmp2, ktmp))
2558
0
            return 0;
2559
0
    }
2560
2561
0
    if (pkey != NULL)
2562
0
        return EVP_PKEY_copy_parameters(pkey, ktmp);
2563
0
    return 1;
2564
0
}
2565
2566
/*
2567
 * Make a delta CRL as the difference between two full CRLs.
2568
 * Sadly, returns NULL also on internal error.
2569
 */
2570
X509_CRL *X509_CRL_diff(X509_CRL *base, X509_CRL *newer,
2571
    EVP_PKEY *skey, const EVP_MD *md, unsigned int flags)
2572
0
{
2573
0
    X509_CRL *crl = NULL;
2574
0
    int i;
2575
0
    STACK_OF(X509_REVOKED) *revs = NULL;
2576
2577
    /* CRLs can't be delta already */
2578
0
    if (base->base_crl_number != NULL || newer->base_crl_number != NULL) {
2579
0
        ERR_raise(ERR_LIB_X509, X509_R_CRL_ALREADY_DELTA);
2580
0
        return NULL;
2581
0
    }
2582
    /* Base and new CRL must have a CRL number */
2583
0
    if (base->crl_number == NULL || newer->crl_number == NULL) {
2584
0
        ERR_raise(ERR_LIB_X509, X509_R_NO_CRL_NUMBER);
2585
0
        return NULL;
2586
0
    }
2587
    /* Issuer names must match */
2588
0
    if (X509_NAME_cmp(X509_CRL_get_issuer(base),
2589
0
            X509_CRL_get_issuer(newer))
2590
0
        != 0) {
2591
0
        ERR_raise(ERR_LIB_X509, X509_R_ISSUER_MISMATCH);
2592
0
        return NULL;
2593
0
    }
2594
    /* AKID and IDP must match */
2595
0
    if (!crl_extension_match(base, newer, NID_authority_key_identifier)) {
2596
0
        ERR_raise(ERR_LIB_X509, X509_R_AKID_MISMATCH);
2597
0
        return NULL;
2598
0
    }
2599
0
    if (!crl_extension_match(base, newer, NID_issuing_distribution_point)) {
2600
0
        ERR_raise(ERR_LIB_X509, X509_R_IDP_MISMATCH);
2601
0
        return NULL;
2602
0
    }
2603
    /* Newer CRL number must exceed full CRL number */
2604
0
    if (ASN1_INTEGER_cmp(newer->crl_number, base->crl_number) <= 0) {
2605
0
        ERR_raise(ERR_LIB_X509, X509_R_NEWER_CRL_NOT_NEWER);
2606
0
        return NULL;
2607
0
    }
2608
    /* CRLs must verify */
2609
0
    if (skey != NULL && (X509_CRL_verify(base, skey) <= 0 || X509_CRL_verify(newer, skey) <= 0)) {
2610
0
        ERR_raise(ERR_LIB_X509, X509_R_CRL_VERIFY_FAILURE);
2611
0
        return NULL;
2612
0
    }
2613
    /* Create new CRL */
2614
0
    crl = X509_CRL_new_ex(base->libctx, base->propq);
2615
0
    if (crl == NULL || !X509_CRL_set_version(crl, X509_CRL_VERSION_2)) {
2616
0
        ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
2617
0
        goto err;
2618
0
    }
2619
    /* Set issuer name */
2620
0
    if (!X509_CRL_set_issuer_name(crl, X509_CRL_get_issuer(newer))) {
2621
0
        ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
2622
0
        goto err;
2623
0
    }
2624
2625
0
    if (!X509_CRL_set1_lastUpdate(crl, X509_CRL_get0_lastUpdate(newer))) {
2626
0
        ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
2627
0
        goto err;
2628
0
    }
2629
0
    if (!X509_CRL_set1_nextUpdate(crl, X509_CRL_get0_nextUpdate(newer))) {
2630
0
        ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
2631
0
        goto err;
2632
0
    }
2633
2634
    /* Set base CRL number: must be critical */
2635
0
    if (X509_CRL_add1_ext_i2d(crl, NID_delta_crl, base->crl_number, 1, 0) <= 0) {
2636
0
        ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
2637
0
        goto err;
2638
0
    }
2639
2640
    /*
2641
     * Copy extensions across from newest CRL to delta: this will set CRL
2642
     * number to correct value too.
2643
     */
2644
0
    for (i = 0; i < X509_CRL_get_ext_count(newer); i++) {
2645
0
        const X509_EXTENSION *ext = X509_CRL_get_ext(newer, i);
2646
0
        if (!X509_CRL_add_ext(crl, ext, -1)) {
2647
0
            ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
2648
0
            goto err;
2649
0
        }
2650
0
    }
2651
2652
    /* Go through revoked entries, copying as needed */
2653
0
    revs = X509_CRL_get_REVOKED(newer);
2654
2655
0
    for (i = 0; i < sk_X509_REVOKED_num(revs); i++) {
2656
0
        X509_REVOKED *rvn, *rvtmp;
2657
2658
0
        rvn = sk_X509_REVOKED_value(revs, i);
2659
        /*
2660
         * Add only if not also in base.
2661
         * Need something cleverer here for some more complex CRLs covering
2662
         * multiple CAs.
2663
         */
2664
0
        if (!X509_CRL_get0_by_serial(base, &rvtmp, &rvn->serialNumber)) {
2665
0
            rvtmp = X509_REVOKED_dup(rvn);
2666
0
            if (rvtmp == NULL) {
2667
0
                ERR_raise(ERR_LIB_X509, ERR_R_ASN1_LIB);
2668
0
                goto err;
2669
0
            }
2670
0
            if (!X509_CRL_add0_revoked(crl, rvtmp)) {
2671
0
                X509_REVOKED_free(rvtmp);
2672
0
                ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
2673
0
                goto err;
2674
0
            }
2675
0
        }
2676
0
    }
2677
2678
0
    if (skey != NULL && md != NULL && !X509_CRL_sign(crl, skey, md)) {
2679
0
        ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
2680
0
        goto err;
2681
0
    }
2682
2683
0
    return crl;
2684
2685
0
err:
2686
0
    X509_CRL_free(crl);
2687
0
    return NULL;
2688
0
}
2689
2690
int X509_STORE_CTX_set_ex_data(X509_STORE_CTX *ctx, int idx, void *data)
2691
0
{
2692
0
    return CRYPTO_set_ex_data(&ctx->ex_data, idx, data);
2693
0
}
2694
2695
void *X509_STORE_CTX_get_ex_data(const X509_STORE_CTX *ctx, int idx)
2696
0
{
2697
0
    return CRYPTO_get_ex_data(&ctx->ex_data, idx);
2698
0
}
2699
2700
int X509_STORE_CTX_get_error(const X509_STORE_CTX *ctx)
2701
0
{
2702
0
    return ctx->error;
2703
0
}
2704
2705
void X509_STORE_CTX_set_error(X509_STORE_CTX *ctx, int err)
2706
0
{
2707
0
    ctx->error = err;
2708
0
}
2709
2710
int X509_STORE_CTX_get_error_depth(const X509_STORE_CTX *ctx)
2711
0
{
2712
0
    return ctx->error_depth;
2713
0
}
2714
2715
void X509_STORE_CTX_set_error_depth(X509_STORE_CTX *ctx, int depth)
2716
0
{
2717
0
    ctx->error_depth = depth;
2718
0
}
2719
2720
X509 *X509_STORE_CTX_get_current_cert(const X509_STORE_CTX *ctx)
2721
0
{
2722
0
    return ctx->current_cert;
2723
0
}
2724
2725
void X509_STORE_CTX_set_current_cert(X509_STORE_CTX *ctx, X509 *x)
2726
0
{
2727
0
    ctx->current_cert = x;
2728
0
}
2729
2730
STACK_OF(X509) *X509_STORE_CTX_get0_chain(const X509_STORE_CTX *ctx)
2731
0
{
2732
0
    return ctx->chain;
2733
0
}
2734
2735
STACK_OF(X509) *X509_STORE_CTX_get1_chain(const X509_STORE_CTX *ctx)
2736
0
{
2737
0
    if (ctx->chain == NULL)
2738
0
        return NULL;
2739
0
    return X509_chain_up_ref(ctx->chain);
2740
0
}
2741
2742
X509 *X509_STORE_CTX_get0_current_issuer(const X509_STORE_CTX *ctx)
2743
0
{
2744
0
    return ctx->current_issuer;
2745
0
}
2746
2747
X509_CRL *X509_STORE_CTX_get0_current_crl(const X509_STORE_CTX *ctx)
2748
0
{
2749
0
    return ctx->current_crl;
2750
0
}
2751
2752
X509_STORE_CTX *X509_STORE_CTX_get0_parent_ctx(const X509_STORE_CTX *ctx)
2753
0
{
2754
0
    return ctx->parent;
2755
0
}
2756
2757
void X509_STORE_CTX_set_cert(X509_STORE_CTX *ctx, X509 *x)
2758
0
{
2759
0
    ctx->cert = x;
2760
0
}
2761
2762
void X509_STORE_CTX_set0_rpk(X509_STORE_CTX *ctx, EVP_PKEY *rpk)
2763
0
{
2764
0
    ctx->rpk = rpk;
2765
0
}
2766
2767
void X509_STORE_CTX_set0_crls(X509_STORE_CTX *ctx, STACK_OF(X509_CRL) *sk)
2768
0
{
2769
0
    ctx->crls = sk;
2770
0
}
2771
2772
#ifndef OPENSSL_NO_OCSP
2773
void X509_STORE_CTX_set_ocsp_resp(X509_STORE_CTX *ctx, STACK_OF(OCSP_RESPONSE) *sk)
2774
0
{
2775
0
    ctx->ocsp_resp = sk;
2776
0
}
2777
#endif
2778
2779
int X509_STORE_CTX_set_purpose(X509_STORE_CTX *ctx, int purpose)
2780
0
{
2781
    /*
2782
     * XXX: Why isn't this function always used to set the associated trust?
2783
     * Should there even be a VPM->trust field at all?  Or should the trust
2784
     * always be inferred from the purpose by X509_STORE_CTX_init().
2785
     */
2786
0
    return X509_STORE_CTX_purpose_inherit(ctx, 0, purpose, 0);
2787
0
}
2788
2789
int X509_STORE_CTX_set_trust(X509_STORE_CTX *ctx, int trust)
2790
0
{
2791
    /*
2792
     * XXX: See above, this function would only be needed when the default
2793
     * trust for the purpose needs an override in a corner case.
2794
     */
2795
0
    return X509_STORE_CTX_purpose_inherit(ctx, 0, 0, trust);
2796
0
}
2797
2798
/*
2799
 * Use this function to set the X509_STORE_CTX purpose and/or trust id values.
2800
 * The |def_purpose| argument is used if the given purpose value is 0.
2801
 * The |purpose| is unchanged if also the def_purpose argument is 0.
2802
 * The |trust| is unchanged if the given trust value is X509_TRUST_DEFAULT.
2803
 * This is intended to be used when another structure has its own trust and
2804
 * purpose values, which (if set) will be inherited by the |ctx|. If they aren't
2805
 * set then we will usually have a default purpose in mind, which should then
2806
 * be used to set the trust id. An example of this is SSL use: an SSL
2807
 * structure will have its own purpose and trust settings, which the
2808
 * application can set: if they aren't set then we use the default of SSL
2809
 * client/server.
2810
 */
2811
int X509_STORE_CTX_purpose_inherit(X509_STORE_CTX *ctx, int def_purpose,
2812
    int purpose, int trust)
2813
0
{
2814
0
    int idx;
2815
2816
    /* If purpose not set use default */
2817
0
    if (purpose == 0)
2818
0
        purpose = def_purpose;
2819
    /*
2820
     * If purpose is set but we don't have a default then set the default to
2821
     * the current purpose
2822
     */
2823
0
    else if (def_purpose == 0)
2824
0
        def_purpose = purpose;
2825
    /* If we have a purpose then check it is valid */
2826
0
    if (purpose != 0) {
2827
0
        X509_PURPOSE *ptmp;
2828
2829
0
        idx = X509_PURPOSE_get_by_id(purpose);
2830
0
        if (idx == -1) {
2831
0
            ERR_raise(ERR_LIB_X509, X509_R_UNKNOWN_PURPOSE_ID);
2832
0
            return 0;
2833
0
        }
2834
0
        ptmp = X509_PURPOSE_get0(idx);
2835
0
        if (ptmp->trust == X509_TRUST_DEFAULT) {
2836
0
            idx = X509_PURPOSE_get_by_id(def_purpose);
2837
0
            if (idx == -1) {
2838
0
                ERR_raise(ERR_LIB_X509, X509_R_UNKNOWN_PURPOSE_ID);
2839
0
                return 0;
2840
0
            }
2841
0
            ptmp = X509_PURPOSE_get0(idx);
2842
0
        }
2843
        /* If trust not set then get from purpose default */
2844
0
        if (trust == X509_TRUST_DEFAULT)
2845
0
            trust = ptmp->trust;
2846
0
    }
2847
0
    if (trust != X509_TRUST_DEFAULT) {
2848
0
        idx = X509_TRUST_get_by_id(trust);
2849
0
        if (idx == -1) {
2850
0
            ERR_raise(ERR_LIB_X509, X509_R_UNKNOWN_TRUST_ID);
2851
0
            return 0;
2852
0
        }
2853
0
    }
2854
2855
0
    if (ctx->param->purpose == 0 && purpose != 0)
2856
0
        ctx->param->purpose = purpose;
2857
0
    if (ctx->param->trust == X509_TRUST_DEFAULT && trust != X509_TRUST_DEFAULT)
2858
0
        ctx->param->trust = trust;
2859
0
    return 1;
2860
0
}
2861
2862
X509_STORE_CTX *X509_STORE_CTX_new_ex(OSSL_LIB_CTX *libctx, const char *propq)
2863
0
{
2864
0
    X509_STORE_CTX *ctx = OPENSSL_zalloc(sizeof(*ctx));
2865
2866
0
    if (ctx == NULL)
2867
0
        return NULL;
2868
2869
0
    ctx->libctx = libctx;
2870
0
    if (propq != NULL) {
2871
0
        ctx->propq = OPENSSL_strdup(propq);
2872
0
        if (ctx->propq == NULL) {
2873
0
            OPENSSL_free(ctx);
2874
0
            return NULL;
2875
0
        }
2876
0
    }
2877
2878
0
    return ctx;
2879
0
}
2880
2881
X509_STORE_CTX *X509_STORE_CTX_new(void)
2882
0
{
2883
0
    return X509_STORE_CTX_new_ex(NULL, NULL);
2884
0
}
2885
2886
void X509_STORE_CTX_free(X509_STORE_CTX *ctx)
2887
0
{
2888
0
    if (ctx == NULL)
2889
0
        return;
2890
2891
0
    X509_STORE_CTX_cleanup(ctx);
2892
2893
    /* libctx and propq survive X509_STORE_CTX_cleanup() */
2894
0
    OPENSSL_free(ctx->propq);
2895
0
    OPENSSL_free(ctx);
2896
0
}
2897
2898
int X509_STORE_CTX_init_rpk(X509_STORE_CTX *ctx, X509_STORE *store, EVP_PKEY *rpk)
2899
0
{
2900
0
    if (!X509_STORE_CTX_init(ctx, store, NULL, NULL))
2901
0
        return 0;
2902
0
    ctx->rpk = rpk;
2903
0
    return 1;
2904
0
}
2905
2906
int X509_STORE_CTX_init(X509_STORE_CTX *ctx, X509_STORE *store, const X509 *x509,
2907
    STACK_OF(X509) *chain)
2908
0
{
2909
0
    if (ctx == NULL) {
2910
0
        ERR_raise(ERR_LIB_X509, ERR_R_PASSED_NULL_PARAMETER);
2911
0
        return 0;
2912
0
    }
2913
0
    X509_STORE_CTX_cleanup(ctx);
2914
2915
0
    ctx->store = store;
2916
0
    ctx->cert = (X509 *)x509; /* XXX casts away const */
2917
0
    ctx->untrusted = chain;
2918
0
    ctx->crls = NULL;
2919
0
    ctx->num_untrusted = 0;
2920
0
    ctx->other_ctx = NULL;
2921
0
    ctx->valid = 0;
2922
0
    ctx->chain = NULL;
2923
0
    ctx->error = X509_V_OK;
2924
0
    ctx->explicit_policy = 0;
2925
0
    ctx->error_depth = 0;
2926
0
    ctx->current_cert = NULL;
2927
0
    ctx->current_issuer = NULL;
2928
0
    ctx->current_crl = NULL;
2929
0
    ctx->current_crl_score = 0;
2930
0
    ctx->current_reasons = 0;
2931
0
    ctx->tree = NULL;
2932
0
    ctx->parent = NULL;
2933
0
    ctx->dane = NULL;
2934
0
    ctx->bare_ta_signed = 0;
2935
0
    ctx->rpk = NULL;
2936
    /* Zero ex_data to make sure we're cleanup-safe */
2937
0
    memset(&ctx->ex_data, 0, sizeof(ctx->ex_data));
2938
0
    ctx->ocsp_resp = NULL;
2939
2940
    /* store->cleanup is always 0 in OpenSSL, if set must be idempotent */
2941
0
    if (store != NULL)
2942
0
        ctx->cleanup = store->cleanup;
2943
0
    else
2944
0
        ctx->cleanup = NULL;
2945
2946
0
    if (store != NULL && store->check_issued != NULL)
2947
0
        ctx->check_issued = store->check_issued;
2948
0
    else
2949
0
        ctx->check_issued = check_issued;
2950
2951
0
    if (store != NULL && store->get_issuer != NULL)
2952
0
        ctx->get_issuer = store->get_issuer;
2953
0
    else
2954
0
        ctx->get_issuer = X509_STORE_CTX_get1_issuer;
2955
2956
0
    if (store != NULL && store->verify_cb != NULL)
2957
0
        ctx->verify_cb = store->verify_cb;
2958
0
    else
2959
0
        ctx->verify_cb = null_callback;
2960
2961
0
    if (store != NULL && store->verify != NULL)
2962
0
        ctx->verify = store->verify;
2963
0
    else
2964
0
        ctx->verify = internal_verify;
2965
2966
0
    if (store != NULL && store->check_revocation != NULL)
2967
0
        ctx->check_revocation = store->check_revocation;
2968
0
    else
2969
0
        ctx->check_revocation = check_revocation;
2970
2971
0
    if (store != NULL && store->get_crl != NULL)
2972
0
        ctx->get_crl = store->get_crl;
2973
0
    else
2974
0
        ctx->get_crl = NULL;
2975
2976
0
    if (store != NULL && store->check_crl != NULL)
2977
0
        ctx->check_crl = store->check_crl;
2978
0
    else
2979
0
        ctx->check_crl = check_crl;
2980
2981
0
    if (store != NULL && store->cert_crl != NULL)
2982
0
        ctx->cert_crl = store->cert_crl;
2983
0
    else
2984
0
        ctx->cert_crl = cert_crl;
2985
2986
0
    if (store != NULL && store->check_policy != NULL)
2987
0
        ctx->check_policy = store->check_policy;
2988
0
    else
2989
0
        ctx->check_policy = check_policy;
2990
2991
0
    if (store != NULL && store->lookup_certs != NULL)
2992
0
        ctx->lookup_certs = store->lookup_certs;
2993
0
    else
2994
0
        ctx->lookup_certs = X509_STORE_CTX_get1_certs;
2995
2996
0
    if (store != NULL && store->lookup_crls != NULL)
2997
0
        ctx->lookup_crls = store->lookup_crls;
2998
0
    else
2999
0
        ctx->lookup_crls = X509_STORE_CTX_get1_crls;
3000
3001
0
    ctx->param = X509_VERIFY_PARAM_new();
3002
0
    if (ctx->param == NULL) {
3003
0
        ERR_raise(ERR_LIB_X509, ERR_R_ASN1_LIB);
3004
0
        goto err;
3005
0
    }
3006
3007
    /* Inherit callbacks and flags from X509_STORE if not set use defaults. */
3008
0
    if (store == NULL)
3009
0
        ctx->param->inh_flags |= X509_VP_FLAG_DEFAULT | X509_VP_FLAG_ONCE;
3010
0
    else if (X509_VERIFY_PARAM_inherit(ctx->param, store->param) == 0)
3011
0
        goto err;
3012
3013
0
    if (!X509_STORE_CTX_set_default(ctx, "default"))
3014
0
        goto err;
3015
3016
    /*
3017
     * XXX: For now, continue to inherit trust from VPM, but infer from the
3018
     * purpose if this still yields the default value.
3019
     */
3020
0
    if (ctx->param->trust == X509_TRUST_DEFAULT) {
3021
0
        int idx = X509_PURPOSE_get_by_id(ctx->param->purpose);
3022
0
        X509_PURPOSE *xp = X509_PURPOSE_get0(idx);
3023
3024
0
        if (xp != NULL)
3025
0
            ctx->param->trust = X509_PURPOSE_get_trust(xp);
3026
0
    }
3027
3028
0
    if (CRYPTO_new_ex_data(CRYPTO_EX_INDEX_X509_STORE_CTX, ctx,
3029
0
            &ctx->ex_data))
3030
0
        return 1;
3031
0
    ERR_raise(ERR_LIB_X509, ERR_R_CRYPTO_LIB);
3032
3033
0
err:
3034
    /*
3035
     * On error clean up allocated storage, if the store context was not
3036
     * allocated with X509_STORE_CTX_new() this is our last chance to do so.
3037
     */
3038
0
    X509_STORE_CTX_cleanup(ctx);
3039
0
    return 0;
3040
0
}
3041
3042
/*
3043
 * Set alternative get_issuer method: just from a STACK of trusted certificates.
3044
 * This avoids the complexity of X509_STORE where it is not needed.
3045
 */
3046
void X509_STORE_CTX_set0_trusted_stack(X509_STORE_CTX *ctx, STACK_OF(X509) *sk)
3047
0
{
3048
0
    ctx->other_ctx = sk;
3049
0
    ctx->get_issuer = get1_best_issuer_other_sk;
3050
0
    ctx->lookup_certs = lookup_certs_sk;
3051
0
}
3052
3053
void X509_STORE_CTX_cleanup(X509_STORE_CTX *ctx)
3054
0
{
3055
    /*
3056
     * We need to be idempotent because, unfortunately, free() also calls
3057
     * cleanup(), so the natural call sequence new(), init(), cleanup(), free()
3058
     * calls cleanup() for the same object twice!  Thus we must zero the
3059
     * pointers below after they're freed!
3060
     */
3061
    /* Seems to always be NULL in OpenSSL, do this at most once. */
3062
0
    if (ctx->cleanup != NULL) {
3063
0
        ctx->cleanup(ctx);
3064
0
        ctx->cleanup = NULL;
3065
0
    }
3066
0
    if (ctx->param != NULL) {
3067
0
        if (ctx->parent == NULL)
3068
0
            X509_VERIFY_PARAM_free(ctx->param);
3069
0
        ctx->param = NULL;
3070
0
    }
3071
0
    X509_policy_tree_free(ctx->tree);
3072
0
    ctx->tree = NULL;
3073
0
    OSSL_STACK_OF_X509_free(ctx->chain);
3074
0
    ctx->chain = NULL;
3075
0
    CRYPTO_free_ex_data(CRYPTO_EX_INDEX_X509_STORE_CTX, ctx, &(ctx->ex_data));
3076
0
    memset(&ctx->ex_data, 0, sizeof(ctx->ex_data));
3077
0
}
3078
3079
void X509_STORE_CTX_set_depth(X509_STORE_CTX *ctx, int depth)
3080
0
{
3081
0
    X509_VERIFY_PARAM_set_depth(ctx->param, depth);
3082
0
}
3083
3084
void X509_STORE_CTX_set_flags(X509_STORE_CTX *ctx, unsigned long flags)
3085
0
{
3086
0
    X509_VERIFY_PARAM_set_flags(ctx->param, flags);
3087
0
}
3088
3089
void X509_STORE_CTX_set_time(X509_STORE_CTX *ctx, unsigned long flags,
3090
    time_t t)
3091
0
{
3092
0
    X509_VERIFY_PARAM_set_time(ctx->param, t);
3093
0
}
3094
3095
void X509_STORE_CTX_set_current_reasons(X509_STORE_CTX *ctx,
3096
    unsigned int current_reasons)
3097
0
{
3098
0
    ctx->current_reasons = current_reasons;
3099
0
}
3100
3101
X509 *X509_STORE_CTX_get0_cert(const X509_STORE_CTX *ctx)
3102
0
{
3103
0
    return ctx->cert;
3104
0
}
3105
3106
EVP_PKEY *X509_STORE_CTX_get0_rpk(const X509_STORE_CTX *ctx)
3107
0
{
3108
0
    return ctx->rpk;
3109
0
}
3110
3111
STACK_OF(X509) *X509_STORE_CTX_get0_untrusted(const X509_STORE_CTX *ctx)
3112
0
{
3113
0
    return ctx->untrusted;
3114
0
}
3115
3116
void X509_STORE_CTX_set0_untrusted(X509_STORE_CTX *ctx, STACK_OF(X509) *sk)
3117
0
{
3118
0
    ctx->untrusted = sk;
3119
0
}
3120
3121
void X509_STORE_CTX_set0_verified_chain(X509_STORE_CTX *ctx, STACK_OF(X509) *sk)
3122
0
{
3123
0
    OSSL_STACK_OF_X509_free(ctx->chain);
3124
0
    ctx->chain = sk;
3125
0
}
3126
3127
void X509_STORE_CTX_set_verify_cb(X509_STORE_CTX *ctx,
3128
    X509_STORE_CTX_verify_cb verify_cb)
3129
0
{
3130
0
    ctx->verify_cb = verify_cb;
3131
0
}
3132
3133
X509_STORE_CTX_verify_cb X509_STORE_CTX_get_verify_cb(const X509_STORE_CTX *ctx)
3134
0
{
3135
0
    return ctx->verify_cb;
3136
0
}
3137
3138
void X509_STORE_CTX_set_verify(X509_STORE_CTX *ctx,
3139
    X509_STORE_CTX_verify_fn verify)
3140
0
{
3141
0
    ctx->verify = verify;
3142
0
}
3143
3144
X509_STORE_CTX_verify_fn X509_STORE_CTX_get_verify(const X509_STORE_CTX *ctx)
3145
0
{
3146
0
    return ctx->verify;
3147
0
}
3148
3149
X509_STORE_CTX_get_issuer_fn
3150
X509_STORE_CTX_get_get_issuer(const X509_STORE_CTX *ctx)
3151
0
{
3152
0
    return ctx->get_issuer;
3153
0
}
3154
3155
X509_STORE_CTX_check_issued_fn
3156
X509_STORE_CTX_get_check_issued(const X509_STORE_CTX *ctx)
3157
0
{
3158
0
    return ctx->check_issued;
3159
0
}
3160
3161
X509_STORE_CTX_check_revocation_fn
3162
X509_STORE_CTX_get_check_revocation(const X509_STORE_CTX *ctx)
3163
0
{
3164
0
    return ctx->check_revocation;
3165
0
}
3166
3167
X509_STORE_CTX_get_crl_fn X509_STORE_CTX_get_get_crl(const X509_STORE_CTX *ctx)
3168
0
{
3169
0
    return ctx->get_crl;
3170
0
}
3171
3172
void X509_STORE_CTX_set_get_crl(X509_STORE_CTX *ctx,
3173
    X509_STORE_CTX_get_crl_fn get_crl)
3174
0
{
3175
0
    ctx->get_crl = get_crl;
3176
0
}
3177
3178
X509_STORE_CTX_check_crl_fn
3179
X509_STORE_CTX_get_check_crl(const X509_STORE_CTX *ctx)
3180
0
{
3181
0
    return ctx->check_crl;
3182
0
}
3183
3184
X509_STORE_CTX_cert_crl_fn
3185
X509_STORE_CTX_get_cert_crl(const X509_STORE_CTX *ctx)
3186
0
{
3187
0
    return ctx->cert_crl;
3188
0
}
3189
3190
X509_STORE_CTX_check_policy_fn
3191
X509_STORE_CTX_get_check_policy(const X509_STORE_CTX *ctx)
3192
0
{
3193
0
    return ctx->check_policy;
3194
0
}
3195
3196
X509_STORE_CTX_lookup_certs_fn
3197
X509_STORE_CTX_get_lookup_certs(const X509_STORE_CTX *ctx)
3198
0
{
3199
0
    return ctx->lookup_certs;
3200
0
}
3201
3202
X509_STORE_CTX_lookup_crls_fn
3203
X509_STORE_CTX_get_lookup_crls(const X509_STORE_CTX *ctx)
3204
0
{
3205
0
    return ctx->lookup_crls;
3206
0
}
3207
3208
X509_STORE_CTX_cleanup_fn X509_STORE_CTX_get_cleanup(const X509_STORE_CTX *ctx)
3209
0
{
3210
0
    return ctx->cleanup;
3211
0
}
3212
3213
X509_POLICY_TREE *X509_STORE_CTX_get0_policy_tree(const X509_STORE_CTX *ctx)
3214
0
{
3215
0
    return ctx->tree;
3216
0
}
3217
3218
int X509_STORE_CTX_get_explicit_policy(const X509_STORE_CTX *ctx)
3219
0
{
3220
0
    return ctx->explicit_policy;
3221
0
}
3222
3223
int X509_STORE_CTX_get_num_untrusted(const X509_STORE_CTX *ctx)
3224
0
{
3225
0
    return ctx->num_untrusted;
3226
0
}
3227
3228
int X509_STORE_CTX_set_default(X509_STORE_CTX *ctx, const char *name)
3229
0
{
3230
0
    const X509_VERIFY_PARAM *param;
3231
3232
0
    param = X509_VERIFY_PARAM_lookup(name);
3233
0
    if (param == NULL) {
3234
0
        ERR_raise_data(ERR_LIB_X509, X509_R_UNKNOWN_PURPOSE_ID, "name=%s", name);
3235
0
        return 0;
3236
0
    }
3237
0
    return X509_VERIFY_PARAM_inherit(ctx->param, param);
3238
0
}
3239
3240
X509_VERIFY_PARAM *X509_STORE_CTX_get0_param(const X509_STORE_CTX *ctx)
3241
0
{
3242
0
    return ctx->param;
3243
0
}
3244
3245
void X509_STORE_CTX_set0_param(X509_STORE_CTX *ctx, X509_VERIFY_PARAM *param)
3246
0
{
3247
0
    X509_VERIFY_PARAM_free(ctx->param);
3248
0
    ctx->param = param;
3249
0
}
3250
3251
void X509_STORE_CTX_set0_dane(X509_STORE_CTX *ctx, SSL_DANE *dane)
3252
0
{
3253
0
    ctx->dane = dane;
3254
0
}
3255
3256
static unsigned char *dane_i2d(X509 *cert, uint8_t selector,
3257
    unsigned int *i2dlen)
3258
0
{
3259
0
    unsigned char *buf = NULL;
3260
0
    int len;
3261
3262
    /*
3263
     * Extract ASN.1 DER form of certificate or public key.
3264
     */
3265
0
    switch (selector) {
3266
0
    case DANETLS_SELECTOR_CERT:
3267
0
        len = i2d_X509(cert, &buf);
3268
0
        break;
3269
0
    case DANETLS_SELECTOR_SPKI:
3270
0
        len = i2d_X509_PUBKEY(X509_get_X509_PUBKEY(cert), &buf);
3271
0
        break;
3272
0
    default:
3273
0
        ERR_raise(ERR_LIB_X509, X509_R_BAD_SELECTOR);
3274
0
        return NULL;
3275
0
    }
3276
3277
0
    if (len < 0 || buf == NULL) {
3278
0
        ERR_raise(ERR_LIB_X509, ERR_R_ASN1_LIB);
3279
0
        return NULL;
3280
0
    }
3281
3282
0
    *i2dlen = (unsigned int)len;
3283
0
    return buf;
3284
0
}
3285
3286
0
#define DANETLS_NONE 256 /* impossible uint8_t */
3287
3288
/* Returns -1 on internal error */
3289
static int dane_match_cert(X509_STORE_CTX *ctx, X509 *cert, int depth)
3290
0
{
3291
0
    SSL_DANE *dane = ctx->dane;
3292
0
    unsigned usage = DANETLS_NONE;
3293
0
    unsigned selector = DANETLS_NONE;
3294
0
    unsigned ordinal = DANETLS_NONE;
3295
0
    unsigned mtype = DANETLS_NONE;
3296
0
    unsigned char *i2dbuf = NULL;
3297
0
    unsigned int i2dlen = 0;
3298
0
    unsigned char mdbuf[EVP_MAX_MD_SIZE];
3299
0
    unsigned char *cmpbuf = NULL;
3300
0
    unsigned int cmplen = 0;
3301
0
    int i;
3302
0
    int recnum;
3303
0
    int matched = 0;
3304
0
    danetls_record *t = NULL;
3305
0
    uint32_t mask;
3306
3307
0
    mask = (depth == 0) ? DANETLS_EE_MASK : DANETLS_TA_MASK;
3308
3309
    /* The trust store is not applicable with DANE-TA(2) */
3310
0
    if (depth >= ctx->num_untrusted)
3311
0
        mask &= DANETLS_PKIX_MASK;
3312
3313
    /*
3314
     * If we've previously matched a PKIX-?? record, no need to test any
3315
     * further PKIX-?? records, it remains to just build the PKIX chain.
3316
     * Had the match been a DANE-?? record, we'd be done already.
3317
     */
3318
0
    if (dane->mdpth >= 0)
3319
0
        mask &= ~DANETLS_PKIX_MASK;
3320
3321
    /*-
3322
     * https://tools.ietf.org/html/rfc7671#section-5.1
3323
     * https://tools.ietf.org/html/rfc7671#section-5.2
3324
     * https://tools.ietf.org/html/rfc7671#section-5.3
3325
     * https://tools.ietf.org/html/rfc7671#section-5.4
3326
     *
3327
     * We handle DANE-EE(3) records first as they require no chain building
3328
     * and no expiration or hostname checks.  We also process digests with
3329
     * higher ordinals first and ignore lower priorities except Full(0) which
3330
     * is always processed (last).  If none match, we then process PKIX-EE(1).
3331
     *
3332
     * NOTE: This relies on DANE usages sorting before the corresponding PKIX
3333
     * usages in SSL_dane_tlsa_add(), and also on descending sorting of digest
3334
     * priorities.  See twin comment in ssl/ssl_lib.c.
3335
     *
3336
     * We expect that most TLSA RRsets will have just a single usage, so we
3337
     * don't go out of our way to cache multiple selector-specific i2d buffers
3338
     * across usages, but if the selector happens to remain the same as switch
3339
     * usages, that's OK.  Thus, a set of "3 1 1", "3 0 1", "1 1 1", "1 0 1",
3340
     * records would result in us generating each of the certificate and public
3341
     * key DER forms twice, but more typically we'd just see multiple "3 1 1"
3342
     * or multiple "3 0 1" records.
3343
     *
3344
     * As soon as we find a match at any given depth, we stop, because either
3345
     * we've matched a DANE-?? record and the peer is authenticated, or, after
3346
     * exhausting all DANE-?? records, we've matched a PKIX-?? record, which is
3347
     * sufficient for DANE, and what remains to do is ordinary PKIX validation.
3348
     */
3349
0
    recnum = (dane->umask & mask) != 0 ? sk_danetls_record_num(dane->trecs) : 0;
3350
0
    for (i = 0; matched == 0 && i < recnum; ++i) {
3351
0
        t = sk_danetls_record_value(dane->trecs, i);
3352
0
        if ((DANETLS_USAGE_BIT(t->usage) & mask) == 0)
3353
0
            continue;
3354
0
        if (t->usage != usage) {
3355
0
            usage = t->usage;
3356
3357
            /* Reset digest agility for each usage/selector pair */
3358
0
            mtype = DANETLS_NONE;
3359
0
            ordinal = dane->dctx->mdord[t->mtype];
3360
0
        }
3361
0
        if (t->selector != selector) {
3362
0
            selector = t->selector;
3363
3364
            /* Update per-selector state */
3365
0
            OPENSSL_free(i2dbuf);
3366
0
            i2dbuf = dane_i2d(cert, selector, &i2dlen);
3367
0
            if (i2dbuf == NULL)
3368
0
                return -1;
3369
3370
            /* Reset digest agility for each usage/selector pair */
3371
0
            mtype = DANETLS_NONE;
3372
0
            ordinal = dane->dctx->mdord[t->mtype];
3373
0
        } else if (t->mtype != DANETLS_MATCHING_FULL) {
3374
            /*-
3375
             * Digest agility:
3376
             *
3377
             *     <https://tools.ietf.org/html/rfc7671#section-9>
3378
             *
3379
             * For a fixed selector, after processing all records with the
3380
             * highest mtype ordinal, ignore all mtypes with lower ordinals
3381
             * other than "Full".
3382
             */
3383
0
            if (dane->dctx->mdord[t->mtype] < ordinal)
3384
0
                continue;
3385
0
        }
3386
3387
        /*
3388
         * Each time we hit a (new selector or) mtype, re-compute the relevant
3389
         * digest, more complex caching is not worth the code space.
3390
         */
3391
0
        if (t->mtype != mtype) {
3392
0
            const EVP_MD *md = dane->dctx->mdevp[mtype = t->mtype];
3393
3394
0
            cmpbuf = i2dbuf;
3395
0
            cmplen = i2dlen;
3396
3397
0
            if (md != NULL) {
3398
0
                cmpbuf = mdbuf;
3399
0
                if (!EVP_Digest(i2dbuf, i2dlen, cmpbuf, &cmplen, md, 0)) {
3400
0
                    matched = -1;
3401
0
                    break;
3402
0
                }
3403
0
            }
3404
0
        }
3405
3406
        /*
3407
         * Squirrel away the certificate and depth if we have a match.  Any
3408
         * DANE match is dispositive, but with PKIX we still need to build a
3409
         * full chain.
3410
         */
3411
0
        if (cmplen == t->dlen && memcmp(cmpbuf, t->data, cmplen) == 0) {
3412
0
            if (DANETLS_USAGE_BIT(usage) & DANETLS_DANE_MASK)
3413
0
                matched = 1;
3414
0
            if (matched || dane->mdpth < 0) {
3415
0
                if (!X509_up_ref(cert)) {
3416
0
                    matched = -1;
3417
0
                    break;
3418
0
                }
3419
3420
0
                X509_free(dane->mcert);
3421
0
                dane->mcert = cert;
3422
0
                dane->mdpth = depth;
3423
0
                dane->mtlsa = t;
3424
0
            }
3425
0
            break;
3426
0
        }
3427
0
    }
3428
3429
    /* Clear the one-element DER cache */
3430
0
    OPENSSL_free(i2dbuf);
3431
0
    return matched;
3432
0
}
3433
3434
/* Returns -1 on internal error */
3435
static int check_dane_issuer(X509_STORE_CTX *ctx, int depth)
3436
0
{
3437
0
    SSL_DANE *dane = ctx->dane;
3438
0
    int matched = 0;
3439
0
    X509 *cert;
3440
3441
0
    if (!DANETLS_HAS_TA(dane) || depth == 0)
3442
0
        return X509_TRUST_UNTRUSTED;
3443
3444
    /*
3445
     * Record any DANE trust anchor matches, for the first depth to test, if
3446
     * there's one at that depth. (This'll be false for length 1 chains looking
3447
     * for an exact match for the leaf certificate).
3448
     */
3449
0
    cert = sk_X509_value(ctx->chain, depth);
3450
0
    if (cert != NULL && (matched = dane_match_cert(ctx, cert, depth)) < 0)
3451
0
        return matched;
3452
0
    if (matched > 0) {
3453
0
        ctx->num_untrusted = depth - 1;
3454
0
        return X509_TRUST_TRUSTED;
3455
0
    }
3456
3457
0
    return X509_TRUST_UNTRUSTED;
3458
0
}
3459
3460
static int check_dane_pkeys(X509_STORE_CTX *ctx)
3461
0
{
3462
0
    SSL_DANE *dane = ctx->dane;
3463
0
    danetls_record *t;
3464
0
    int num = ctx->num_untrusted;
3465
0
    X509 *cert = sk_X509_value(ctx->chain, num - 1);
3466
0
    int recnum = sk_danetls_record_num(dane->trecs);
3467
0
    int i;
3468
3469
0
    for (i = 0; i < recnum; ++i) {
3470
0
        t = sk_danetls_record_value(dane->trecs, i);
3471
0
        if (t->usage != DANETLS_USAGE_DANE_TA || t->selector != DANETLS_SELECTOR_SPKI || t->mtype != DANETLS_MATCHING_FULL || X509_verify(cert, t->spki) <= 0)
3472
0
            continue;
3473
3474
        /* Clear any PKIX-?? matches that failed to extend to a full chain */
3475
0
        X509_free(dane->mcert);
3476
0
        dane->mcert = NULL;
3477
3478
        /* Record match via a bare TA public key */
3479
0
        ctx->bare_ta_signed = 1;
3480
0
        dane->mdpth = num - 1;
3481
0
        dane->mtlsa = t;
3482
3483
        /* Prune any excess chain certificates */
3484
0
        num = sk_X509_num(ctx->chain);
3485
0
        for (; num > ctx->num_untrusted; --num)
3486
0
            X509_free(sk_X509_pop(ctx->chain));
3487
3488
0
        return X509_TRUST_TRUSTED;
3489
0
    }
3490
3491
0
    return X509_TRUST_UNTRUSTED;
3492
0
}
3493
3494
/*
3495
 * Only DANE-EE and SPKI are supported
3496
 * Returns -1 on internal error
3497
 */
3498
static int dane_match_rpk(X509_STORE_CTX *ctx, EVP_PKEY *rpk)
3499
0
{
3500
0
    SSL_DANE *dane = ctx->dane;
3501
0
    danetls_record *t = NULL;
3502
0
    int mtype = DANETLS_MATCHING_FULL;
3503
0
    unsigned char *i2dbuf = NULL;
3504
0
    unsigned int i2dlen = 0;
3505
0
    unsigned char mdbuf[EVP_MAX_MD_SIZE];
3506
0
    unsigned char *cmpbuf;
3507
0
    unsigned int cmplen = 0;
3508
0
    int len;
3509
0
    int recnum = sk_danetls_record_num(dane->trecs);
3510
0
    int i;
3511
0
    int matched = 0;
3512
3513
    /* Calculate ASN.1 DER of RPK */
3514
0
    if ((len = i2d_PUBKEY(rpk, &i2dbuf)) <= 0)
3515
0
        return -1;
3516
0
    cmplen = i2dlen = (unsigned int)len;
3517
0
    cmpbuf = i2dbuf;
3518
3519
0
    for (i = 0; i < recnum; i++) {
3520
0
        t = sk_danetls_record_value(dane->trecs, i);
3521
0
        if (t->usage != DANETLS_USAGE_DANE_EE || t->selector != DANETLS_SELECTOR_SPKI)
3522
0
            continue;
3523
3524
        /* Calculate hash - keep only one around */
3525
0
        if (t->mtype != mtype) {
3526
0
            const EVP_MD *md = dane->dctx->mdevp[mtype = t->mtype];
3527
3528
0
            cmpbuf = i2dbuf;
3529
0
            cmplen = i2dlen;
3530
3531
0
            if (md != NULL) {
3532
0
                cmpbuf = mdbuf;
3533
0
                if (!EVP_Digest(i2dbuf, i2dlen, cmpbuf, &cmplen, md, 0)) {
3534
0
                    matched = -1;
3535
0
                    break;
3536
0
                }
3537
0
            }
3538
0
        }
3539
0
        if (cmplen == t->dlen && memcmp(cmpbuf, t->data, cmplen) == 0) {
3540
0
            matched = 1;
3541
0
            dane->mdpth = 0;
3542
0
            dane->mtlsa = t;
3543
0
            break;
3544
0
        }
3545
0
    }
3546
0
    OPENSSL_free(i2dbuf);
3547
0
    return matched;
3548
0
}
3549
3550
static void dane_reset(SSL_DANE *dane)
3551
0
{
3552
    /* Reset state to verify another chain, or clear after failure. */
3553
0
    X509_free(dane->mcert);
3554
0
    dane->mcert = NULL;
3555
0
    dane->mtlsa = NULL;
3556
0
    dane->mdpth = -1;
3557
0
    dane->pdpth = -1;
3558
0
}
3559
3560
/* Sadly, returns 0 also on internal error in ctx->verify_cb(). */
3561
static int check_leaf_suiteb(X509_STORE_CTX *ctx, X509 *cert)
3562
0
{
3563
0
    int err = X509_chain_check_suiteb(NULL, cert, NULL, ctx->param->flags);
3564
3565
0
    CB_FAIL_IF(err != X509_V_OK, ctx, cert, 0, err);
3566
0
    return 1;
3567
0
}
3568
3569
/* Returns -1 on internal error */
3570
static int dane_verify_rpk(X509_STORE_CTX *ctx)
3571
0
{
3572
0
    SSL_DANE *dane = ctx->dane;
3573
0
    int matched;
3574
3575
0
    dane_reset(dane);
3576
3577
    /*
3578
     * Look for a DANE record for RPK
3579
     * If error, return -1
3580
     * If found, call ctx->verify_cb(1, ctx)
3581
     * If not found call ctx->verify_cb(0, ctx)
3582
     */
3583
0
    matched = dane_match_rpk(ctx, ctx->rpk);
3584
0
    ctx->error_depth = 0;
3585
3586
0
    if (matched < 0) {
3587
0
        ctx->error = X509_V_ERR_UNSPECIFIED;
3588
0
        return -1;
3589
0
    }
3590
3591
0
    if (matched > 0)
3592
0
        ctx->error = X509_V_OK;
3593
0
    else
3594
0
        ctx->error = X509_V_ERR_DANE_NO_MATCH;
3595
3596
0
    return verify_rpk(ctx);
3597
0
}
3598
3599
/* Returns -1 on internal error */
3600
static int dane_verify(X509_STORE_CTX *ctx)
3601
0
{
3602
0
    X509 *cert = ctx->cert;
3603
0
    SSL_DANE *dane = ctx->dane;
3604
0
    int matched;
3605
0
    int done;
3606
3607
0
    dane_reset(dane);
3608
3609
    /*-
3610
     * When testing the leaf certificate, if we match a DANE-EE(3) record,
3611
     * dane_match() returns 1 and we're done.  If however we match a PKIX-EE(1)
3612
     * record, the match depth and matching TLSA record are recorded, but the
3613
     * return value is 0, because we still need to find a PKIX trust anchor.
3614
     * Therefore, when DANE authentication is enabled (required), we're done
3615
     * if:
3616
     *   + matched < 0, internal error.
3617
     *   + matched == 1, we matched a DANE-EE(3) record
3618
     *   + matched == 0, mdepth < 0 (no PKIX-EE match) and there are no
3619
     *     DANE-TA(2) or PKIX-TA(0) to test.
3620
     */
3621
0
    matched = dane_match_cert(ctx, ctx->cert, 0);
3622
0
    done = matched != 0 || (!DANETLS_HAS_TA(dane) && dane->mdpth < 0);
3623
3624
0
    if (done && !X509_get_pubkey_parameters(NULL, ctx->chain))
3625
0
        return -1;
3626
3627
0
    if (matched > 0) {
3628
        /* Callback invoked as needed */
3629
0
        if (!check_leaf_suiteb(ctx, cert))
3630
0
            return 0;
3631
        /* Callback invoked as needed */
3632
0
        if ((dane->flags & DANE_FLAG_NO_DANE_EE_NAMECHECKS) == 0 && !check_id(ctx))
3633
0
            return 0;
3634
        /* Bypass internal_verify(), issue depth 0 success callback */
3635
0
        ctx->error_depth = 0;
3636
0
        ctx->current_cert = cert;
3637
0
        return ctx->verify_cb(1, ctx);
3638
0
    }
3639
3640
0
    if (matched < 0) {
3641
0
        ctx->error_depth = 0;
3642
0
        ctx->current_cert = cert;
3643
0
        ctx->error = X509_V_ERR_OUT_OF_MEM;
3644
0
        return -1;
3645
0
    }
3646
3647
0
    if (done) {
3648
        /* Fail early, TA-based success is not possible */
3649
0
        if (!check_leaf_suiteb(ctx, cert))
3650
0
            return 0;
3651
0
        return verify_cb_cert(ctx, cert, 0, X509_V_ERR_DANE_NO_MATCH);
3652
0
    }
3653
3654
    /*
3655
     * Chain verification for usages 0/1/2.  TLSA record matching of depth > 0
3656
     * certificates happens in-line with building the rest of the chain.
3657
     */
3658
0
    return verify_chain(ctx);
3659
0
}
3660
3661
/*
3662
 * Get trusted issuer, without duplicate suppression
3663
 * Returns -1 on internal error.
3664
 */
3665
static int get1_trusted_issuer(X509 **issuer, X509_STORE_CTX *ctx, X509 *cert)
3666
0
{
3667
0
    STACK_OF(X509) *saved_chain = ctx->chain;
3668
0
    int ok;
3669
3670
0
    ctx->chain = NULL;
3671
0
    ok = ctx->get_issuer(issuer, ctx, cert);
3672
0
    ctx->chain = saved_chain;
3673
3674
0
    return ok;
3675
0
}
3676
3677
/*-
3678
 * Returns -1 on internal error.
3679
 * Sadly, returns 0 also on internal error in ctx->verify_cb().
3680
 */
3681
static int build_chain(X509_STORE_CTX *ctx)
3682
0
{
3683
0
    SSL_DANE *dane = ctx->dane;
3684
0
    int num = sk_X509_num(ctx->chain);
3685
0
    STACK_OF(X509) *sk_untrusted = NULL;
3686
0
    unsigned int search;
3687
0
    int may_trusted = 0;
3688
0
    int may_alternate = 0;
3689
0
    int trust = X509_TRUST_UNTRUSTED;
3690
0
    int alt_untrusted = 0;
3691
0
    int max_depth;
3692
0
    int ok = 0;
3693
0
    int i;
3694
3695
    /* Our chain starts with a single untrusted element. */
3696
0
    if (!ossl_assert(num == 1 && ctx->num_untrusted == num))
3697
0
        goto int_err;
3698
3699
0
#define S_DOUNTRUSTED (1 << 0) /* Search untrusted chain */
3700
0
#define S_DOTRUSTED (1 << 1) /* Search trusted store */
3701
0
#define S_DOALTERNATE (1 << 2) /* Retry with pruned alternate chain */
3702
    /*
3703
     * Set up search policy, untrusted if possible, trusted-first if enabled,
3704
     * which is the default.
3705
     * If we're doing DANE and not doing PKIX-TA/PKIX-EE, we never look in the
3706
     * trust_store, otherwise we might look there first.  If not trusted-first,
3707
     * and alternate chains are not disabled, try building an alternate chain
3708
     * if no luck with untrusted first.
3709
     */
3710
0
    search = ctx->untrusted != NULL ? S_DOUNTRUSTED : 0;
3711
0
    if (DANETLS_HAS_PKIX(dane) || !DANETLS_HAS_DANE(dane)) {
3712
0
        if (search == 0 || (ctx->param->flags & X509_V_FLAG_TRUSTED_FIRST) != 0)
3713
0
            search |= S_DOTRUSTED;
3714
0
        else if (!(ctx->param->flags & X509_V_FLAG_NO_ALT_CHAINS))
3715
0
            may_alternate = 1;
3716
0
        may_trusted = 1;
3717
0
    }
3718
3719
    /* Initialize empty untrusted stack. */
3720
0
    if ((sk_untrusted = sk_X509_new_null()) == NULL) {
3721
0
        ERR_raise(ERR_LIB_X509, ERR_R_CRYPTO_LIB);
3722
0
        goto memerr;
3723
0
    }
3724
3725
    /*
3726
     * If we got any "Cert(0) Full(0)" trust anchors from DNS, *prepend* them
3727
     * to our working copy of the untrusted certificate stack.
3728
     */
3729
0
    if (DANETLS_ENABLED(dane) && dane->certs != NULL
3730
0
        && !X509_add_certs(sk_untrusted, dane->certs, X509_ADD_FLAG_DEFAULT)) {
3731
0
        ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
3732
0
        goto memerr;
3733
0
    }
3734
3735
    /*
3736
     * Shallow-copy the stack of untrusted certificates (with TLS, this is
3737
     * typically the content of the peer's certificate message) so we can make
3738
     * multiple passes over it, while free to remove elements as we go.
3739
     */
3740
0
    if (!X509_add_certs(sk_untrusted, ctx->untrusted, X509_ADD_FLAG_DEFAULT)) {
3741
0
        ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
3742
0
        goto memerr;
3743
0
    }
3744
3745
    /*
3746
     * Still absurdly large, but arithmetically safe, a lower hard upper bound
3747
     * might be reasonable.
3748
     */
3749
0
    if (ctx->param->depth > INT_MAX / 2)
3750
0
        ctx->param->depth = INT_MAX / 2;
3751
3752
    /*
3753
     * Try to extend the chain until we reach an ultimately trusted issuer.
3754
     * Build chains up to one longer the limit, later fail if we hit the limit,
3755
     * with an X509_V_ERR_CERT_CHAIN_TOO_LONG error code.
3756
     */
3757
0
    max_depth = ctx->param->depth + 1;
3758
3759
0
    while (search != 0) {
3760
0
        X509 *curr, *issuer = NULL;
3761
3762
0
        num = sk_X509_num(ctx->chain);
3763
0
        ctx->error_depth = num - 1;
3764
        /*
3765
         * Look in the trust store if enabled for first lookup, or we've run
3766
         * out of untrusted issuers and search here is not disabled.  When we
3767
         * reach the depth limit, we stop extending the chain, if by that point
3768
         * we've not found a trust anchor, any trusted chain would be too long.
3769
         *
3770
         * The error reported to the application verify callback is at the
3771
         * maximal valid depth with the current certificate equal to the last
3772
         * not ultimately-trusted issuer.  For example, with verify_depth = 0,
3773
         * the callback will report errors at depth=1 when the immediate issuer
3774
         * of the leaf certificate is not a trust anchor.  No attempt will be
3775
         * made to locate an issuer for that certificate, since such a chain
3776
         * would be a-priori too long.
3777
         */
3778
0
        if ((search & S_DOTRUSTED) != 0) {
3779
0
            i = num;
3780
0
            if ((search & S_DOALTERNATE) != 0) {
3781
                /*
3782
                 * As high up the chain as we can, look for an alternative
3783
                 * trusted issuer of an untrusted certificate that currently
3784
                 * has an untrusted issuer.  We use the alt_untrusted variable
3785
                 * to track how far up the chain we find the first match.  It
3786
                 * is only if and when we find a match, that we prune the chain
3787
                 * and reset ctx->num_untrusted to the reduced count of
3788
                 * untrusted certificates.  While we're searching for such a
3789
                 * match (which may never be found), it is neither safe nor
3790
                 * wise to preemptively modify either the chain or
3791
                 * ctx->num_untrusted.
3792
                 *
3793
                 * Note, like ctx->num_untrusted, alt_untrusted is a count of
3794
                 * untrusted certificates, not a "depth".
3795
                 */
3796
0
                i = alt_untrusted;
3797
0
            }
3798
0
            curr = sk_X509_value(ctx->chain, i - 1);
3799
3800
            /* Note: get1_trusted_issuer() must be used even if self-signed. */
3801
0
            ok = num > max_depth ? 0 : get1_trusted_issuer(&issuer, ctx, curr);
3802
3803
0
            if (ok < 0) {
3804
0
                trust = -1;
3805
0
                ctx->error = X509_V_ERR_STORE_LOOKUP;
3806
0
                break;
3807
0
            }
3808
3809
0
            if (ok > 0) {
3810
0
                int self_signed = X509_self_signed(curr, 0);
3811
3812
0
                if (self_signed < 0) {
3813
0
                    X509_free(issuer);
3814
0
                    goto int_err;
3815
0
                }
3816
                /*
3817
                 * Alternative trusted issuer for a mid-chain untrusted cert?
3818
                 * Pop the untrusted cert's successors and retry.  We might now
3819
                 * be able to complete a valid chain via the trust store.  Note
3820
                 * that despite the current trust store match we might still
3821
                 * fail complete the chain to a suitable trust anchor, in which
3822
                 * case we may prune some more untrusted certificates and try
3823
                 * again.  Thus the S_DOALTERNATE bit may yet be turned on
3824
                 * again with an even shorter untrusted chain!
3825
                 *
3826
                 * If in the process we threw away our matching PKIX-TA trust
3827
                 * anchor, reset DANE trust.  We might find a suitable trusted
3828
                 * certificate among the ones from the trust store.
3829
                 */
3830
0
                if ((search & S_DOALTERNATE) != 0) {
3831
0
                    if (!ossl_assert(num > i && i > 0 && !self_signed)) {
3832
0
                        X509_free(issuer);
3833
0
                        goto int_err;
3834
0
                    }
3835
0
                    search &= ~S_DOALTERNATE;
3836
0
                    for (; num > i; --num)
3837
0
                        X509_free(sk_X509_pop(ctx->chain));
3838
0
                    ctx->num_untrusted = num;
3839
3840
0
                    if (DANETLS_ENABLED(dane) && dane->mdpth >= ctx->num_untrusted) {
3841
0
                        dane->mdpth = -1;
3842
0
                        X509_free(dane->mcert);
3843
0
                        dane->mcert = NULL;
3844
0
                    }
3845
0
                    if (DANETLS_ENABLED(dane) && dane->pdpth >= ctx->num_untrusted)
3846
0
                        dane->pdpth = -1;
3847
0
                }
3848
3849
0
                if (!self_signed) { /* untrusted not self-signed certificate */
3850
                    /* Grow the chain by trusted issuer */
3851
0
                    if (!sk_X509_push(ctx->chain, issuer)) {
3852
0
                        X509_free(issuer);
3853
0
                        ERR_raise(ERR_LIB_X509, ERR_R_CRYPTO_LIB);
3854
0
                        goto memerr;
3855
0
                    }
3856
0
                    if ((self_signed = X509_self_signed(issuer, 0)) < 0)
3857
0
                        goto int_err;
3858
0
                } else {
3859
                    /*
3860
                     * We have a self-signed untrusted cert that has the same
3861
                     * subject name (and perhaps keyid and/or serial number) as
3862
                     * a trust anchor.  We must have an exact match to avoid
3863
                     * possible impersonation via key substitution etc.
3864
                     */
3865
0
                    if (X509_cmp(curr, issuer) != 0) {
3866
                        /* Self-signed untrusted mimic. */
3867
0
                        X509_free(issuer);
3868
0
                        ok = 0;
3869
0
                    } else { /* curr "==" issuer */
3870
                        /*
3871
                         * Replace self-signed untrusted certificate
3872
                         * by its trusted matching issuer.
3873
                         */
3874
0
                        X509_free(curr);
3875
0
                        ctx->num_untrusted = --num;
3876
0
                        (void)sk_X509_set(ctx->chain, num, issuer);
3877
0
                    }
3878
0
                }
3879
3880
                /*
3881
                 * We've added a new trusted certificate to the chain, re-check
3882
                 * trust.  If not done, and not self-signed look deeper.
3883
                 * Whether or not we're doing "trusted first", we no longer
3884
                 * look for untrusted certificates from the peer's chain.
3885
                 *
3886
                 * At this point ctx->num_trusted and num must reflect the
3887
                 * correct number of untrusted certificates, since the DANE
3888
                 * logic in check_trust() depends on distinguishing CAs from
3889
                 * "the wire" from CAs from the trust store.  In particular, the
3890
                 * certificate at depth "num" should be the new trusted
3891
                 * certificate with ctx->num_untrusted <= num.
3892
                 */
3893
0
                if (ok) {
3894
0
                    if (!ossl_assert(ctx->num_untrusted <= num))
3895
0
                        goto int_err;
3896
0
                    search &= ~S_DOUNTRUSTED;
3897
0
                    trust = check_trust(ctx, num);
3898
0
                    if (trust != X509_TRUST_UNTRUSTED)
3899
0
                        break;
3900
0
                    if (!self_signed)
3901
0
                        continue;
3902
0
                }
3903
0
            }
3904
3905
            /*
3906
             * No dispositive decision, and either self-signed or no match, if
3907
             * we were doing untrusted-first, and alt-chains are not disabled,
3908
             * do that, by repeatedly losing one untrusted element at a time,
3909
             * and trying to extend the shorted chain.
3910
             */
3911
0
            if ((search & S_DOUNTRUSTED) == 0) {
3912
                /* Continue search for a trusted issuer of a shorter chain? */
3913
0
                if ((search & S_DOALTERNATE) != 0 && --alt_untrusted > 0)
3914
0
                    continue;
3915
                /* Still no luck and no fallbacks left? */
3916
0
                if (!may_alternate || (search & S_DOALTERNATE) != 0 || ctx->num_untrusted < 2)
3917
0
                    break;
3918
                /* Search for a trusted issuer of a shorter chain */
3919
0
                search |= S_DOALTERNATE;
3920
0
                alt_untrusted = ctx->num_untrusted - 1;
3921
0
            }
3922
0
        }
3923
3924
        /*
3925
         * Try to extend chain with peer-provided untrusted certificate
3926
         */
3927
0
        if ((search & S_DOUNTRUSTED) != 0) {
3928
0
            num = sk_X509_num(ctx->chain);
3929
0
            if (!ossl_assert(num == ctx->num_untrusted))
3930
0
                goto int_err;
3931
0
            curr = sk_X509_value(ctx->chain, num - 1);
3932
0
            issuer = (X509_self_signed(curr, 0) > 0 || num > max_depth) ? NULL : get0_best_issuer_sk(ctx, 0, 1 /* no_dup */, sk_untrusted, curr);
3933
0
            if (issuer == NULL) {
3934
                /*
3935
                 * Once we have reached a self-signed cert or num > max_depth
3936
                 * or can't find an issuer in the untrusted list we stop looking
3937
                 * there and start looking only in the trust store if enabled.
3938
                 */
3939
0
                search &= ~S_DOUNTRUSTED;
3940
0
                if (may_trusted)
3941
0
                    search |= S_DOTRUSTED;
3942
0
                continue;
3943
0
            }
3944
3945
            /* Drop this issuer from future consideration */
3946
0
            (void)sk_X509_delete_ptr(sk_untrusted, issuer);
3947
3948
            /* Grow the chain by untrusted issuer */
3949
0
            if (!X509_add_cert(ctx->chain, issuer, X509_ADD_FLAG_UP_REF))
3950
0
                goto int_err;
3951
3952
0
            ++ctx->num_untrusted;
3953
3954
            /* Check for DANE-TA trust of the topmost untrusted certificate. */
3955
0
            trust = check_dane_issuer(ctx, ctx->num_untrusted - 1);
3956
0
            if (trust == X509_TRUST_TRUSTED || trust == X509_TRUST_REJECTED)
3957
0
                break;
3958
0
        }
3959
0
    }
3960
0
    sk_X509_free(sk_untrusted);
3961
3962
0
    if (trust < 0) /* internal error */
3963
0
        return trust;
3964
3965
    /*
3966
     * Last chance to make a trusted chain, either bare DANE-TA public-key
3967
     * signers, or else direct leaf PKIX trust.
3968
     */
3969
0
    num = sk_X509_num(ctx->chain);
3970
0
    if (num <= max_depth) {
3971
0
        if (trust == X509_TRUST_UNTRUSTED && DANETLS_HAS_DANE_TA(dane))
3972
0
            trust = check_dane_pkeys(ctx);
3973
0
        if (trust == X509_TRUST_UNTRUSTED && num == ctx->num_untrusted)
3974
0
            trust = check_trust(ctx, num);
3975
0
    }
3976
3977
0
    switch (trust) {
3978
0
    case X509_TRUST_TRUSTED:
3979
0
        return 1;
3980
0
    case X509_TRUST_REJECTED:
3981
        /* Callback already issued */
3982
0
        return 0;
3983
0
    case X509_TRUST_UNTRUSTED:
3984
0
    default:
3985
0
        switch (ctx->error) {
3986
0
        case X509_V_ERR_ERROR_IN_CERT_NOT_BEFORE_FIELD:
3987
0
        case X509_V_ERR_CERT_NOT_YET_VALID:
3988
0
        case X509_V_ERR_ERROR_IN_CERT_NOT_AFTER_FIELD:
3989
0
        case X509_V_ERR_CERT_HAS_EXPIRED:
3990
0
            return 0; /* Callback already done by ossl_x509_check_cert_time() */
3991
0
        default: /* A preliminary error has become final */
3992
0
            return verify_cb_cert(ctx, NULL, num - 1, ctx->error);
3993
0
        case X509_V_OK:
3994
0
            break;
3995
0
        }
3996
0
        CB_FAIL_IF(num > max_depth,
3997
0
            ctx, NULL, num - 1, X509_V_ERR_CERT_CHAIN_TOO_LONG);
3998
0
        CB_FAIL_IF(DANETLS_ENABLED(dane)
3999
0
                && (!DANETLS_HAS_PKIX(dane) || dane->pdpth >= 0),
4000
0
            ctx, NULL, num - 1, X509_V_ERR_DANE_NO_MATCH);
4001
0
        if (X509_self_signed(sk_X509_value(ctx->chain, num - 1), 0) > 0)
4002
0
            return verify_cb_cert(ctx, NULL, num - 1,
4003
0
                num == 1
4004
0
                    ? X509_V_ERR_DEPTH_ZERO_SELF_SIGNED_CERT
4005
0
                    : X509_V_ERR_SELF_SIGNED_CERT_IN_CHAIN);
4006
0
        return verify_cb_cert(ctx, NULL, num - 1,
4007
0
            ctx->num_untrusted < num
4008
0
                ? X509_V_ERR_UNABLE_TO_GET_ISSUER_CERT
4009
0
                : X509_V_ERR_UNABLE_TO_GET_ISSUER_CERT_LOCALLY);
4010
0
    }
4011
4012
0
int_err:
4013
0
    ERR_raise(ERR_LIB_X509, ERR_R_INTERNAL_ERROR);
4014
0
    ctx->error = X509_V_ERR_UNSPECIFIED;
4015
0
    sk_X509_free(sk_untrusted);
4016
0
    return -1;
4017
4018
0
memerr:
4019
0
    ctx->error = X509_V_ERR_OUT_OF_MEM;
4020
0
    sk_X509_free(sk_untrusted);
4021
0
    return -1;
4022
0
}
4023
4024
STACK_OF(X509) *X509_build_chain(const X509 *target, STACK_OF(X509) *certs,
4025
    X509_STORE *store, int with_self_signed,
4026
    OSSL_LIB_CTX *libctx, const char *propq)
4027
0
{
4028
0
    int finish_chain = store != NULL;
4029
0
    X509_STORE_CTX *ctx;
4030
0
    int flags = X509_ADD_FLAG_UP_REF;
4031
0
    STACK_OF(X509) *result = NULL;
4032
4033
0
    if (target == NULL) {
4034
0
        ERR_raise(ERR_LIB_X509, ERR_R_PASSED_NULL_PARAMETER);
4035
0
        return NULL;
4036
0
    }
4037
4038
0
    if ((ctx = X509_STORE_CTX_new_ex(libctx, propq)) == NULL)
4039
0
        return NULL;
4040
0
    if (!X509_STORE_CTX_init(ctx, store, target, finish_chain ? certs : NULL))
4041
0
        goto err;
4042
0
    if (!finish_chain)
4043
0
        X509_STORE_CTX_set0_trusted_stack(ctx, certs);
4044
    /* XXX casts away const */
4045
0
    if (!ossl_x509_add_cert_new(&ctx->chain, (X509 *)target, X509_ADD_FLAG_UP_REF)) {
4046
0
        ctx->error = X509_V_ERR_OUT_OF_MEM;
4047
0
        goto err;
4048
0
    }
4049
0
    ctx->num_untrusted = 1;
4050
4051
0
    if (!build_chain(ctx) && finish_chain)
4052
0
        goto err;
4053
4054
    /* result list to store the up_ref'ed certificates */
4055
0
    if (sk_X509_num(ctx->chain) > 1 && !with_self_signed)
4056
0
        flags |= X509_ADD_FLAG_NO_SS;
4057
0
    if (!ossl_x509_add_certs_new(&result, ctx->chain, flags)) {
4058
0
        sk_X509_free(result);
4059
0
        result = NULL;
4060
0
    }
4061
4062
0
err:
4063
0
    X509_STORE_CTX_free(ctx);
4064
0
    return result;
4065
0
}
4066
4067
/*
4068
 * note that there's a corresponding minbits_table in ssl/ssl_cert.c
4069
 * in ssl_get_security_level_bits that's used for selection of DH parameters
4070
 */
4071
static const int minbits_table[] = { 80, 112, 128, 192, 256 };
4072
static const int NUM_AUTH_LEVELS = OSSL_NELEM(minbits_table);
4073
4074
/*-
4075
 * Check whether the given public key meets the security level of `ctx`.
4076
 * Returns 1 on success, 0 otherwise.
4077
 */
4078
static int check_key_level(X509_STORE_CTX *ctx, EVP_PKEY *pkey)
4079
0
{
4080
0
    int level = ctx->param->auth_level;
4081
4082
    /*
4083
     * At security level zero, return without checking for a supported public
4084
     * key type.  Some engines support key types not understood outside the
4085
     * engine, and we only need to understand the key when enforcing a security
4086
     * floor.
4087
     */
4088
0
    if (level <= 0)
4089
0
        return 1;
4090
4091
    /* Unsupported or malformed keys are not secure */
4092
0
    if (pkey == NULL)
4093
0
        return 0;
4094
4095
0
    if (level > NUM_AUTH_LEVELS)
4096
0
        level = NUM_AUTH_LEVELS;
4097
4098
0
    return EVP_PKEY_get_security_bits(pkey) >= minbits_table[level - 1];
4099
0
}
4100
4101
/*-
4102
 * Check whether the public key of `cert` meets the security level of `ctx`.
4103
 * Returns 1 on success, 0 otherwise.
4104
 */
4105
static int check_cert_key_level(X509_STORE_CTX *ctx, X509 *cert)
4106
0
{
4107
0
    return check_key_level(ctx, X509_get0_pubkey(cert));
4108
0
}
4109
4110
/*-
4111
 * Check whether the public key of ``cert`` does not use explicit params
4112
 * for an elliptic curve.
4113
 *
4114
 * Returns 1 on success, 0 if check fails, -1 for other errors.
4115
 */
4116
static int check_curve(X509 *cert)
4117
0
{
4118
0
    EVP_PKEY *pkey = X509_get0_pubkey(cert);
4119
0
    int ret, val;
4120
4121
    /* Unsupported or malformed key */
4122
0
    if (pkey == NULL)
4123
0
        return -1;
4124
0
    if (EVP_PKEY_get_id(pkey) != EVP_PKEY_EC)
4125
0
        return 1;
4126
4127
0
    ret = EVP_PKEY_get_int_param(pkey,
4128
0
        OSSL_PKEY_PARAM_EC_DECODED_FROM_EXPLICIT_PARAMS,
4129
0
        &val);
4130
0
    return ret == 1 ? !val : -1;
4131
0
}
4132
4133
/*-
4134
 * Check whether the signature digest algorithm of ``cert`` meets the security
4135
 * level of ``ctx``.  Should not be checked for trust anchors (whether
4136
 * self-signed or otherwise).
4137
 *
4138
 * Returns 1 on success, 0 otherwise.
4139
 */
4140
static int check_sig_level(X509_STORE_CTX *ctx, X509 *cert)
4141
0
{
4142
0
    int secbits = -1;
4143
0
    int level = ctx->param->auth_level;
4144
4145
0
    if (level <= 0)
4146
0
        return 1;
4147
0
    if (level > NUM_AUTH_LEVELS)
4148
0
        level = NUM_AUTH_LEVELS;
4149
4150
0
    if (!X509_get_signature_info(cert, NULL, NULL, &secbits, NULL))
4151
0
        return 0;
4152
4153
0
    return secbits >= minbits_table[level - 1];
4154
0
}