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      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 #include "internal/deprecated.h"
     11 
     12 #include <stdio.h>
     13 #include <time.h>
     14 #include <errno.h>
     15 #include <limits.h>
     16 
     17 #include "crypto/ctype.h"
     18 #include "internal/cryptlib.h"
     19 #include <openssl/crypto.h>
     20 #include <openssl/buffer.h>
     21 #include <openssl/evp.h>
     22 #include <openssl/asn1.h>
     23 #include <openssl/x509.h>
     24 #include <openssl/x509v3.h>
     25 #include <openssl/objects.h>
     26 #include <openssl/core_names.h>
     27 #include "internal/dane.h"
     28 #include "crypto/x509.h"
     29 #include "x509_local.h"
     30 
     31 /* CRL score values */
     32 
     33 #define CRL_SCORE_NOCRITICAL 0x100 /* No unhandled critical extensions */
     34 #define CRL_SCORE_SCOPE 0x080 /* certificate is within CRL scope */
     35 #define CRL_SCORE_TIME 0x040 /* CRL times valid */
     36 #define CRL_SCORE_ISSUER_NAME 0x020 /* Issuer name matches certificate */
     37 #define CRL_SCORE_VALID /* If this score or above CRL is probably valid */ \
     38     (CRL_SCORE_NOCRITICAL | CRL_SCORE_TIME | CRL_SCORE_SCOPE)
     39 #define CRL_SCORE_ISSUER_CERT 0x018 /* CRL issuer is certificate issuer */
     40 #define CRL_SCORE_SAME_PATH 0x008 /* CRL issuer is on certificate path */
     41 #define CRL_SCORE_AKID 0x004 /* CRL issuer matches CRL AKID */
     42 #define CRL_SCORE_TIME_DELTA 0x002 /* Have a delta CRL with valid times */
     43 
     44 static int x509_verify_x509(X509_STORE_CTX *ctx);
     45 static int x509_verify_rpk(X509_STORE_CTX *ctx);
     46 static int build_chain(X509_STORE_CTX *ctx);
     47 static int verify_chain(X509_STORE_CTX *ctx);
     48 static int verify_rpk(X509_STORE_CTX *ctx);
     49 static int dane_verify(X509_STORE_CTX *ctx);
     50 static int dane_verify_rpk(X509_STORE_CTX *ctx);
     51 static int null_callback(int ok, X509_STORE_CTX *e);
     52 static int check_issued(X509_STORE_CTX *ctx, X509 *x, X509 *issuer);
     53 static int check_extensions(X509_STORE_CTX *ctx);
     54 static int check_name_constraints(X509_STORE_CTX *ctx);
     55 static int check_id(X509_STORE_CTX *ctx);
     56 static int check_trust(X509_STORE_CTX *ctx, int num_untrusted);
     57 static int check_revocation(X509_STORE_CTX *ctx);
     58 static int check_cert(X509_STORE_CTX *ctx);
     59 static int check_policy(X509_STORE_CTX *ctx);
     60 static int check_dane_issuer(X509_STORE_CTX *ctx, int depth);
     61 static int check_cert_key_level(X509_STORE_CTX *ctx, X509 *cert);
     62 static int check_key_level(X509_STORE_CTX *ctx, EVP_PKEY *pkey);
     63 static int check_sig_level(X509_STORE_CTX *ctx, X509 *cert);
     64 static int check_curve(X509 *cert);
     65 
     66 static int get_crl_score(X509_STORE_CTX *ctx, X509 **pissuer,
     67     unsigned int *preasons, X509_CRL *crl, X509 *x);
     68 static int get_crl_delta(X509_STORE_CTX *ctx,
     69     X509_CRL **pcrl, X509_CRL **pdcrl, X509 *x);
     70 static void get_delta_sk(X509_STORE_CTX *ctx, X509_CRL **dcrl,
     71     int *pcrl_score, X509_CRL *base,
     72     STACK_OF(X509_CRL) *crls);
     73 static void crl_akid_check(X509_STORE_CTX *ctx, X509_CRL *crl, X509 **pissuer,
     74     int *pcrl_score);
     75 static int crl_crldp_check(X509 *x, X509_CRL *crl, int crl_score,
     76     unsigned int *preasons);
     77 static int check_crl_path(X509_STORE_CTX *ctx, X509 *x);
     78 static int check_crl_chain(X509_STORE_CTX *ctx,
     79     STACK_OF(X509) *cert_path,
     80     STACK_OF(X509) *crl_path);
     81 
     82 static int internal_verify(X509_STORE_CTX *ctx);
     83 
     84 static int null_callback(int ok, X509_STORE_CTX *e)
     85 {
     86     return ok;
     87 }
     88 
     89 /*-
     90  * Return 1 if given cert is considered self-signed, 0 if not, or -1 on error.
     91  * This actually verifies self-signedness only if requested.
     92  * It calls ossl_x509v3_cache_extensions()
     93  * to match issuer and subject names (i.e., the cert being self-issued) and any
     94  * present authority key identifier to match the subject key identifier, etc.
     95  */
     96 int X509_self_signed(X509 *cert, int verify_signature)
     97 {
     98     EVP_PKEY *pkey;
     99 
    100     if ((pkey = X509_get0_pubkey(cert)) == NULL) { /* handles cert == NULL */
    101         ERR_raise(ERR_LIB_X509, X509_R_UNABLE_TO_GET_CERTS_PUBLIC_KEY);
    102         return -1;
    103     }
    104     if (!ossl_x509v3_cache_extensions(cert))
    105         return -1;
    106     if ((cert->ex_flags & EXFLAG_SS) == 0)
    107         return 0;
    108     if (!verify_signature)
    109         return 1;
    110     return X509_verify(cert, pkey);
    111 }
    112 
    113 /*
    114  * Given a certificate, try and find an exact match in the store.
    115  * Returns 1 on success, 0 on not found, -1 on internal error.
    116  */
    117 static int lookup_cert_match(X509 **result, X509_STORE_CTX *ctx, X509 *x)
    118 {
    119     STACK_OF(X509) *certs;
    120     X509 *xtmp = NULL;
    121     int i, ret;
    122 
    123     *result = NULL;
    124     /* Lookup all certs with matching subject name */
    125     ERR_set_mark();
    126     certs = ctx->lookup_certs(ctx, X509_get_subject_name(x));
    127     ERR_pop_to_mark();
    128     if (certs == NULL)
    129         return -1;
    130 
    131     /* Look for exact match */
    132     for (i = 0; i < sk_X509_num(certs); i++) {
    133         xtmp = sk_X509_value(certs, i);
    134         if (X509_cmp(xtmp, x) == 0)
    135             break;
    136         xtmp = NULL;
    137     }
    138     ret = xtmp != NULL;
    139     if (ret) {
    140         if (!X509_up_ref(xtmp))
    141             ret = -1;
    142         else
    143             *result = xtmp;
    144     }
    145     OSSL_STACK_OF_X509_free(certs);
    146     return ret;
    147 }
    148 
    149 /*-
    150  * Inform the verify callback of an error.
    151  * The error code is set to |err| if |err| is not X509_V_OK, else
    152  * |ctx->error| is left unchanged (under the assumption it is set elsewhere).
    153  * The error depth is |depth| if >= 0, else it defaults to |ctx->error_depth|.
    154  * The error cert is |x| if not NULL, else the cert in |ctx->chain| at |depth|.
    155  *
    156  * Returns 0 to abort verification with an error, non-zero to continue.
    157  */
    158 static int verify_cb_cert(X509_STORE_CTX *ctx, X509 *x, int depth, int err)
    159 {
    160     if (depth < 0)
    161         depth = ctx->error_depth;
    162     else
    163         ctx->error_depth = depth;
    164     ctx->current_cert = x != NULL ? x : sk_X509_value(ctx->chain, depth);
    165     if (err != X509_V_OK)
    166         ctx->error = err;
    167     return ctx->verify_cb(0, ctx);
    168 }
    169 
    170 #define CB_FAIL_IF(cond, ctx, cert, depth, err)               \
    171     if ((cond) && verify_cb_cert(ctx, cert, depth, err) == 0) \
    172     return 0
    173 
    174 /*-
    175  * Inform the verify callback of an error, CRL-specific variant.  Here, the
    176  * error depth and certificate are already set, we just specify the error
    177  * number.
    178  *
    179  * Returns 0 to abort verification with an error, non-zero to continue.
    180  */
    181 static int verify_cb_crl(X509_STORE_CTX *ctx, int err)
    182 {
    183     ctx->error = err;
    184     return ctx->verify_cb(0, ctx);
    185 }
    186 
    187 /* Sadly, returns 0 also on internal error in ctx->verify_cb(). */
    188 static int check_auth_level(X509_STORE_CTX *ctx)
    189 {
    190     int i;
    191     int num = sk_X509_num(ctx->chain);
    192 
    193     if (ctx->param->auth_level <= 0)
    194         return 1;
    195 
    196     for (i = 0; i < num; ++i) {
    197         X509 *cert = sk_X509_value(ctx->chain, i);
    198 
    199         /*
    200          * We've already checked the security of the leaf key, so here we only
    201          * check the security of issuer keys.
    202          */
    203         CB_FAIL_IF(i > 0 && !check_cert_key_level(ctx, cert),
    204             ctx, cert, i, X509_V_ERR_CA_KEY_TOO_SMALL);
    205         /*
    206          * We also check the signature algorithm security of all certificates
    207          * except those of the trust anchor at index num-1.
    208          */
    209         CB_FAIL_IF(i < num - 1 && !check_sig_level(ctx, cert),
    210             ctx, cert, i, X509_V_ERR_CA_MD_TOO_WEAK);
    211     }
    212     return 1;
    213 }
    214 
    215 /*-
    216  * Returns -1 on internal error.
    217  * Sadly, returns 0 also on internal error in ctx->verify_cb().
    218  */
    219 static int verify_rpk(X509_STORE_CTX *ctx)
    220 {
    221     /* Not much to verify on a RPK */
    222     if (ctx->verify != NULL)
    223         return ctx->verify(ctx);
    224 
    225     return !!ctx->verify_cb(ctx->error == X509_V_OK, ctx);
    226 }
    227 
    228 /*-
    229  * Returns -1 on internal error.
    230  * Sadly, returns 0 also on internal error in ctx->verify_cb().
    231  */
    232 static int verify_chain(X509_STORE_CTX *ctx)
    233 {
    234     int err;
    235     int ok;
    236 
    237     if ((ok = build_chain(ctx)) <= 0
    238         || (ok = check_extensions(ctx)) <= 0
    239         || (ok = check_auth_level(ctx)) <= 0
    240         || (ok = check_id(ctx)) <= 0
    241         || (ok = X509_get_pubkey_parameters(NULL, ctx->chain) ? 1 : -1) <= 0
    242         || (ok = ctx->check_revocation(ctx)) <= 0)
    243         return ok;
    244 
    245     err = X509_chain_check_suiteb(&ctx->error_depth, NULL, ctx->chain,
    246         ctx->param->flags);
    247     CB_FAIL_IF(err != X509_V_OK, ctx, NULL, ctx->error_depth, err);
    248 
    249     /* Verify chain signatures and expiration times */
    250     ok = ctx->verify != NULL ? ctx->verify(ctx) : internal_verify(ctx);
    251     if (ok <= 0)
    252         return ok;
    253 
    254     if ((ok = check_name_constraints(ctx)) <= 0)
    255         return ok;
    256 
    257 #ifndef OPENSSL_NO_RFC3779
    258     /* RFC 3779 path validation, now that CRL check has been done */
    259     if ((ok = X509v3_asid_validate_path(ctx)) <= 0)
    260         return ok;
    261     if ((ok = X509v3_addr_validate_path(ctx)) <= 0)
    262         return ok;
    263 #endif
    264 
    265     /* If we get this far evaluate policies */
    266     if ((ctx->param->flags & X509_V_FLAG_POLICY_CHECK) != 0)
    267         ok = ctx->check_policy(ctx);
    268     return ok;
    269 }
    270 
    271 int X509_STORE_CTX_verify(X509_STORE_CTX *ctx)
    272 {
    273     if (ctx == NULL) {
    274         ERR_raise(ERR_LIB_X509, ERR_R_PASSED_NULL_PARAMETER);
    275         return -1;
    276     }
    277     if (ctx->rpk != NULL)
    278         return x509_verify_rpk(ctx);
    279     if (ctx->cert == NULL && sk_X509_num(ctx->untrusted) >= 1)
    280         ctx->cert = sk_X509_value(ctx->untrusted, 0);
    281     return x509_verify_x509(ctx);
    282 }
    283 
    284 int X509_verify_cert(X509_STORE_CTX *ctx)
    285 {
    286     if (ctx == NULL) {
    287         ERR_raise(ERR_LIB_X509, ERR_R_PASSED_NULL_PARAMETER);
    288         return -1;
    289     }
    290     return (ctx->rpk != NULL) ? x509_verify_rpk(ctx) : x509_verify_x509(ctx);
    291 }
    292 
    293 /*-
    294  * Returns -1 on internal error.
    295  * Sadly, returns 0 also on internal error in ctx->verify_cb().
    296  */
    297 static int x509_verify_rpk(X509_STORE_CTX *ctx)
    298 {
    299     int ret;
    300 
    301     /* If the peer's public key is too weak, we can stop early. */
    302     if (!check_key_level(ctx, ctx->rpk)
    303         && verify_cb_cert(ctx, NULL, 0, X509_V_ERR_EE_KEY_TOO_SMALL) == 0)
    304         return 0;
    305 
    306     /* Barring any data to verify the RPK, simply report it as untrusted */
    307     ctx->error = X509_V_ERR_RPK_UNTRUSTED;
    308 
    309     ret = DANETLS_ENABLED(ctx->dane) ? dane_verify_rpk(ctx) : verify_rpk(ctx);
    310 
    311     /*
    312      * Safety-net.  If we are returning an error, we must also set ctx->error,
    313      * so that the chain is not considered verified should the error be ignored
    314      * (e.g. TLS with SSL_VERIFY_NONE).
    315      */
    316     if (ret <= 0 && ctx->error == X509_V_OK)
    317         ctx->error = X509_V_ERR_UNSPECIFIED;
    318     return ret;
    319 }
    320 
    321 /*-
    322  * Returns -1 on internal error.
    323  * Sadly, returns 0 also on internal error in ctx->verify_cb().
    324  */
    325 static int x509_verify_x509(X509_STORE_CTX *ctx)
    326 {
    327     int ret;
    328 
    329     if (ctx->cert == NULL) {
    330         ERR_raise(ERR_LIB_X509, X509_R_NO_CERT_SET_FOR_US_TO_VERIFY);
    331         ctx->error = X509_V_ERR_INVALID_CALL;
    332         return -1;
    333     }
    334 
    335     if (ctx->chain != NULL) {
    336         /*
    337          * This X509_STORE_CTX has already been used to verify a cert. We
    338          * cannot do another one.
    339          */
    340         ERR_raise(ERR_LIB_X509, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
    341         ctx->error = X509_V_ERR_INVALID_CALL;
    342         return -1;
    343     }
    344 
    345     if (!ossl_x509_add_cert_new(&ctx->chain, ctx->cert, X509_ADD_FLAG_UP_REF)) {
    346         ctx->error = X509_V_ERR_OUT_OF_MEM;
    347         return -1;
    348     }
    349     ctx->num_untrusted = 1;
    350 
    351     /* If the peer's public key is too weak, we can stop early. */
    352     CB_FAIL_IF(!check_cert_key_level(ctx, ctx->cert),
    353         ctx, ctx->cert, 0, X509_V_ERR_EE_KEY_TOO_SMALL);
    354 
    355     ret = DANETLS_ENABLED(ctx->dane) ? dane_verify(ctx) : verify_chain(ctx);
    356 
    357     /*
    358      * Safety-net.  If we are returning an error, we must also set ctx->error,
    359      * so that the chain is not considered verified should the error be ignored
    360      * (e.g. TLS with SSL_VERIFY_NONE).
    361      */
    362     if (ret <= 0 && ctx->error == X509_V_OK)
    363         ctx->error = X509_V_ERR_UNSPECIFIED;
    364     return ret;
    365 }
    366 
    367 static int sk_X509_contains(STACK_OF(X509) *sk, X509 *cert)
    368 {
    369     int i, n = sk_X509_num(sk);
    370 
    371     for (i = 0; i < n; i++)
    372         if (X509_cmp(sk_X509_value(sk, i), cert) == 0)
    373             return 1;
    374     return 0;
    375 }
    376 
    377 /*-
    378  * Find in |sk| an issuer cert of cert |x| accepted by |ctx->check_issued|.
    379  * If no_dup, the issuer must not yet be in |ctx->chain|, yet allowing the
    380  *     exception that |x| is self-issued and |ctx->chain| has just one element.
    381  * Prefer the first match with suitable validity period or latest expiration.
    382  */
    383 /*
    384  * Note: so far, we do not check during chain building
    385  * whether any key usage extension stands against a candidate issuer cert.
    386  * Likely it would be good if build_chain() sets |check_signing_allowed|.
    387  * Yet if |sk| is a list of trusted certs, as with X509_STORE_CTX_set0_trusted_stack(),
    388  * better not set |check_signing_allowed|.
    389  * Maybe not touch X509_STORE_CTX_get1_issuer(), for API backward compatibility.
    390  */
    391 static X509 *get0_best_issuer_sk(X509_STORE_CTX *ctx, int check_signing_allowed,
    392     int no_dup, STACK_OF(X509) *sk, X509 *x)
    393 {
    394     int i;
    395     X509 *candidate, *issuer = NULL;
    396 
    397     for (i = 0; i < sk_X509_num(sk); i++) {
    398         candidate = sk_X509_value(sk, i);
    399         if (no_dup
    400             && !((x->ex_flags & EXFLAG_SI) != 0 && sk_X509_num(ctx->chain) == 1)
    401             && sk_X509_contains(ctx->chain, candidate))
    402             continue;
    403         if (ctx->check_issued(ctx, x, candidate)) {
    404             if (check_signing_allowed
    405                 /* yet better not check key usage for trust anchors */
    406                 && ossl_x509_signing_allowed(candidate, x) != X509_V_OK)
    407                 continue;
    408             if (ossl_x509_check_cert_time(ctx, candidate, -1))
    409                 return candidate;
    410             /*
    411              * Leave in *issuer the first match that has the latest expiration
    412              * date so we return nearest match if no certificate time is OK.
    413              */
    414             if (issuer == NULL
    415                 || ASN1_TIME_compare(X509_get0_notAfter(candidate),
    416                        X509_get0_notAfter(issuer))
    417                     > 0)
    418                 issuer = candidate;
    419         }
    420     }
    421     return issuer;
    422 }
    423 
    424 /*-
    425  * Try to get issuer cert from |ctx->store| accepted by |ctx->check_issued|.
    426  * Prefer the first match with suitable validity period or latest expiration.
    427  *
    428  * Return values are:
    429  *  1 lookup successful.
    430  *  0 certificate not found.
    431  * -1 some other error.
    432  */
    433 int X509_STORE_CTX_get1_issuer(X509 **issuer, X509_STORE_CTX *ctx, X509 *x)
    434 {
    435     const X509_NAME *xn = X509_get_issuer_name(x);
    436     X509_OBJECT *obj = X509_OBJECT_new();
    437     STACK_OF(X509) *certs;
    438     int ret;
    439 
    440     *issuer = NULL;
    441     if (obj == NULL)
    442         return -1;
    443     ret = ossl_x509_store_ctx_get_by_subject(ctx, X509_LU_X509, xn, obj);
    444     if (ret != 1)
    445         goto end;
    446 
    447     /* quick happy path: certificate matches and is currently valid */
    448     if (ctx->check_issued(ctx, x, obj->data.x509)) {
    449         if (ossl_x509_check_cert_time(ctx, obj->data.x509, -1)) {
    450             *issuer = obj->data.x509;
    451             /* |*issuer| has taken over the cert reference from |obj| */
    452             obj->type = X509_LU_NONE;
    453             goto end;
    454         }
    455     }
    456 
    457     ret = -1;
    458     if ((certs = X509_STORE_CTX_get1_certs(ctx, xn)) == NULL)
    459         goto end;
    460     *issuer = get0_best_issuer_sk(ctx, 0, 0 /* allow duplicates */, certs, x);
    461     ret = 0;
    462     if (*issuer != NULL)
    463         ret = X509_up_ref(*issuer) ? 1 : -1;
    464     OSSL_STACK_OF_X509_free(certs);
    465 end:
    466     X509_OBJECT_free(obj);
    467     return ret;
    468 }
    469 
    470 /* Check that the given certificate |x| is issued by the certificate |issuer| */
    471 static int check_issued(ossl_unused X509_STORE_CTX *ctx, X509 *x, X509 *issuer)
    472 {
    473     int err = ossl_x509_likely_issued(issuer, x);
    474 
    475     if (err == X509_V_OK)
    476         return 1;
    477     /*
    478      * SUBJECT_ISSUER_MISMATCH just means 'x' is clearly not issued by 'issuer'.
    479      * Every other error code likely indicates a real error.
    480      */
    481     return 0;
    482 }
    483 
    484 /*-
    485  * Alternative get_issuer method: look up from a STACK_OF(X509) in other_ctx.
    486  * Returns -1 on internal error.
    487  */
    488 static int get1_best_issuer_other_sk(X509 **issuer, X509_STORE_CTX *ctx, X509 *x)
    489 {
    490     *issuer = get0_best_issuer_sk(ctx, 0, 1 /* no_dup */, ctx->other_ctx, x);
    491     if (*issuer == NULL)
    492         return 0;
    493     return X509_up_ref(*issuer) ? 1 : -1;
    494 }
    495 
    496 /*-
    497  * Alternative lookup method: look from a STACK stored in other_ctx.
    498  * Returns NULL on internal/fatal error, empty stack if not found.
    499  */
    500 static STACK_OF(X509) *lookup_certs_sk(X509_STORE_CTX *ctx, const X509_NAME *nm)
    501 {
    502     STACK_OF(X509) *sk = sk_X509_new_null();
    503     X509 *x;
    504     int i;
    505 
    506     if (sk == NULL)
    507         return NULL;
    508     for (i = 0; i < sk_X509_num(ctx->other_ctx); i++) {
    509         x = sk_X509_value(ctx->other_ctx, i);
    510         if (X509_NAME_cmp(nm, X509_get_subject_name(x)) == 0) {
    511             if (!X509_add_cert(sk, x, X509_ADD_FLAG_UP_REF)) {
    512                 OSSL_STACK_OF_X509_free(sk);
    513                 ctx->error = X509_V_ERR_OUT_OF_MEM;
    514                 return NULL;
    515             }
    516         }
    517     }
    518     return sk;
    519 }
    520 
    521 /*
    522  * Check EE or CA certificate purpose.  For trusted certificates explicit local
    523  * auxiliary trust can be used to override EKU-restrictions.
    524  * Sadly, returns 0 also on internal error in ctx->verify_cb().
    525  */
    526 static int check_purpose(X509_STORE_CTX *ctx, X509 *x, int purpose, int depth,
    527     int must_be_ca)
    528 {
    529     int tr_ok = X509_TRUST_UNTRUSTED;
    530 
    531     /*
    532      * For trusted certificates we want to see whether any auxiliary trust
    533      * settings trump the purpose constraints.
    534      *
    535      * This is complicated by the fact that the trust ordinals in
    536      * ctx->param->trust are entirely independent of the purpose ordinals in
    537      * ctx->param->purpose!
    538      *
    539      * What connects them is their mutual initialization via calls from
    540      * X509_STORE_CTX_set_default() into X509_VERIFY_PARAM_lookup() which sets
    541      * related values of both param->trust and param->purpose.  It is however
    542      * typically possible to infer associated trust values from a purpose value
    543      * via the X509_PURPOSE API.
    544      *
    545      * Therefore, we can only check for trust overrides when the purpose we're
    546      * checking is the same as ctx->param->purpose and ctx->param->trust is
    547      * also set.
    548      */
    549     if (depth >= ctx->num_untrusted && purpose == ctx->param->purpose)
    550         tr_ok = X509_check_trust(x, ctx->param->trust, X509_TRUST_NO_SS_COMPAT);
    551 
    552     switch (tr_ok) {
    553     case X509_TRUST_TRUSTED:
    554         return 1;
    555     case X509_TRUST_REJECTED:
    556         break;
    557     default: /* can only be X509_TRUST_UNTRUSTED */
    558         switch (X509_check_purpose(x, purpose, must_be_ca > 0)) {
    559         case 1:
    560             return 1;
    561         case 0:
    562             break;
    563         default:
    564             if ((ctx->param->flags & X509_V_FLAG_X509_STRICT) == 0)
    565                 return 1;
    566         }
    567         break;
    568     }
    569 
    570     return verify_cb_cert(ctx, x, depth, X509_V_ERR_INVALID_PURPOSE);
    571 }
    572 
    573 /*-
    574  * Check extensions of a cert chain for consistency with the supplied purpose.
    575  * Sadly, returns 0 also on internal error in ctx->verify_cb().
    576  */
    577 static int check_extensions(X509_STORE_CTX *ctx)
    578 {
    579     int i, must_be_ca, plen = 0;
    580     X509 *x;
    581     int ret, proxy_path_length = 0;
    582     int purpose, allow_proxy_certs, num = sk_X509_num(ctx->chain);
    583 
    584     /*-
    585      *  must_be_ca can have 1 of 3 values:
    586      * -1: we accept both CA and non-CA certificates, to allow direct
    587      *     use of self-signed certificates (which are marked as CA).
    588      * 0:  we only accept non-CA certificates.  This is currently not
    589      *     used, but the possibility is present for future extensions.
    590      * 1:  we only accept CA certificates.  This is currently used for
    591      *     all certificates in the chain except the leaf certificate.
    592      */
    593     must_be_ca = -1;
    594 
    595     /* CRL path validation */
    596     if (ctx->parent != NULL) {
    597         allow_proxy_certs = 0;
    598         purpose = X509_PURPOSE_CRL_SIGN;
    599     } else {
    600         allow_proxy_certs = (ctx->param->flags & X509_V_FLAG_ALLOW_PROXY_CERTS) != 0;
    601         purpose = ctx->param->purpose;
    602     }
    603 
    604     for (i = 0; i < num; i++) {
    605         x = sk_X509_value(ctx->chain, i);
    606         CB_FAIL_IF((ctx->param->flags & X509_V_FLAG_IGNORE_CRITICAL) == 0
    607                 && (x->ex_flags & EXFLAG_CRITICAL) != 0,
    608             ctx, x, i, X509_V_ERR_UNHANDLED_CRITICAL_EXTENSION);
    609         CB_FAIL_IF(!allow_proxy_certs && (x->ex_flags & EXFLAG_PROXY) != 0,
    610             ctx, x, i, X509_V_ERR_PROXY_CERTIFICATES_NOT_ALLOWED);
    611         ret = X509_check_ca(x);
    612         switch (must_be_ca) {
    613         case -1:
    614             CB_FAIL_IF((ctx->param->flags & X509_V_FLAG_X509_STRICT) != 0
    615                     && ret != 1 && ret != 0,
    616                 ctx, x, i, X509_V_ERR_INVALID_CA);
    617             break;
    618         case 0:
    619             CB_FAIL_IF(ret != 0, ctx, x, i, X509_V_ERR_INVALID_NON_CA);
    620             break;
    621         default:
    622             /* X509_V_FLAG_X509_STRICT is implicit for intermediate CAs */
    623             CB_FAIL_IF(ret == 0
    624                     || ((i + 1 < num
    625                             || (ctx->param->flags & X509_V_FLAG_X509_STRICT) != 0)
    626                         && ret != 1),
    627                 ctx, x, i, X509_V_ERR_INVALID_CA);
    628             break;
    629         }
    630         if (num > 1) {
    631             /* Check for presence of explicit elliptic curve parameters */
    632             ret = check_curve(x);
    633             CB_FAIL_IF(ret < 0, ctx, x, i, X509_V_ERR_UNSPECIFIED);
    634             CB_FAIL_IF(ret == 0, ctx, x, i, X509_V_ERR_EC_KEY_EXPLICIT_PARAMS);
    635         }
    636         /*
    637          * Do the following set of checks only if strict checking is requested
    638          * and not for self-issued (including self-signed) EE (non-CA) certs
    639          * because RFC 5280 does not apply to them according RFC 6818 section 2.
    640          */
    641         if ((ctx->param->flags & X509_V_FLAG_X509_STRICT) != 0
    642             && num > 1) { /*
    643                            * this should imply
    644                            * !(i == 0 && (x->ex_flags & EXFLAG_CA) == 0
    645                            *          && (x->ex_flags & EXFLAG_SI) != 0)
    646                            */
    647             /* Check Basic Constraints according to RFC 5280 section 4.2.1.9 */
    648             if (x->ex_pathlen != -1) {
    649                 CB_FAIL_IF((x->ex_flags & EXFLAG_CA) == 0,
    650                     ctx, x, i, X509_V_ERR_PATHLEN_INVALID_FOR_NON_CA);
    651                 CB_FAIL_IF((x->ex_kusage & KU_KEY_CERT_SIGN) == 0, ctx,
    652                     x, i, X509_V_ERR_PATHLEN_WITHOUT_KU_KEY_CERT_SIGN);
    653             }
    654             CB_FAIL_IF((x->ex_flags & EXFLAG_CA) != 0
    655                     && (x->ex_flags & EXFLAG_BCONS) != 0
    656                     && (x->ex_flags & EXFLAG_BCONS_CRITICAL) == 0,
    657                 ctx, x, i, X509_V_ERR_CA_BCONS_NOT_CRITICAL);
    658             /* Check Key Usage according to RFC 5280 section 4.2.1.3 */
    659             if ((x->ex_flags & EXFLAG_CA) != 0) {
    660                 CB_FAIL_IF((x->ex_flags & EXFLAG_KUSAGE) == 0,
    661                     ctx, x, i, X509_V_ERR_CA_CERT_MISSING_KEY_USAGE);
    662             } else {
    663                 CB_FAIL_IF((x->ex_kusage & KU_KEY_CERT_SIGN) != 0, ctx, x, i,
    664                     X509_V_ERR_KU_KEY_CERT_SIGN_INVALID_FOR_NON_CA);
    665             }
    666             /* Check issuer is non-empty acc. to RFC 5280 section 4.1.2.4 */
    667             CB_FAIL_IF(X509_NAME_entry_count(X509_get_issuer_name(x)) == 0,
    668                 ctx, x, i, X509_V_ERR_ISSUER_NAME_EMPTY);
    669             /* Check subject is non-empty acc. to RFC 5280 section 4.1.2.6 */
    670             CB_FAIL_IF(((x->ex_flags & EXFLAG_CA) != 0
    671                            || (x->ex_kusage & KU_CRL_SIGN) != 0
    672                            || x->altname == NULL)
    673                     && X509_NAME_entry_count(X509_get_subject_name(x)) == 0,
    674                 ctx, x, i, X509_V_ERR_SUBJECT_NAME_EMPTY);
    675             CB_FAIL_IF(X509_NAME_entry_count(X509_get_subject_name(x)) == 0
    676                     && x->altname != NULL
    677                     && (x->ex_flags & EXFLAG_SAN_CRITICAL) == 0,
    678                 ctx, x, i, X509_V_ERR_EMPTY_SUBJECT_SAN_NOT_CRITICAL);
    679             /* Check SAN is non-empty according to RFC 5280 section 4.2.1.6 */
    680             CB_FAIL_IF(x->altname != NULL
    681                     && sk_GENERAL_NAME_num(x->altname) <= 0,
    682                 ctx, x, i, X509_V_ERR_EMPTY_SUBJECT_ALT_NAME);
    683             /* Check sig alg consistency acc. to RFC 5280 section 4.1.1.2 */
    684             CB_FAIL_IF(X509_ALGOR_cmp(&x->sig_alg, &x->cert_info.signature) != 0,
    685                 ctx, x, i, X509_V_ERR_SIGNATURE_ALGORITHM_INCONSISTENCY);
    686             CB_FAIL_IF(x->akid != NULL
    687                     && (x->ex_flags & EXFLAG_AKID_CRITICAL) != 0,
    688                 ctx, x, i, X509_V_ERR_AUTHORITY_KEY_IDENTIFIER_CRITICAL);
    689             CB_FAIL_IF(x->skid != NULL
    690                     && (x->ex_flags & EXFLAG_SKID_CRITICAL) != 0,
    691                 ctx, x, i, X509_V_ERR_SUBJECT_KEY_IDENTIFIER_CRITICAL);
    692             if (X509_get_version(x) >= X509_VERSION_3) {
    693                 /* Check AKID presence acc. to RFC 5280 section 4.2.1.1 */
    694                 CB_FAIL_IF(i + 1 < num /*
    695                                         * this means not last cert in chain,
    696                                         * taken as "generated by conforming CAs"
    697                                         */
    698                         && (x->akid == NULL || x->akid->keyid == NULL),
    699                     ctx,
    700                     x, i, X509_V_ERR_MISSING_AUTHORITY_KEY_IDENTIFIER);
    701                 /* Check SKID presence acc. to RFC 5280 section 4.2.1.2 */
    702                 CB_FAIL_IF((x->ex_flags & EXFLAG_CA) != 0 && x->skid == NULL,
    703                     ctx, x, i, X509_V_ERR_MISSING_SUBJECT_KEY_IDENTIFIER);
    704             } else {
    705                 CB_FAIL_IF(sk_X509_EXTENSION_num(X509_get0_extensions(x)) > 0,
    706                     ctx, x, i, X509_V_ERR_EXTENSIONS_REQUIRE_VERSION_3);
    707             }
    708         }
    709 
    710         /* check_purpose() makes the callback as needed */
    711         if (purpose >= X509_PURPOSE_MIN && !check_purpose(ctx, x, purpose, i, must_be_ca))
    712             return 0;
    713         /* Check path length */
    714         CB_FAIL_IF(i > 1 && x->ex_pathlen != -1
    715                 && plen > x->ex_pathlen + proxy_path_length,
    716             ctx, x, i, X509_V_ERR_PATH_LENGTH_EXCEEDED);
    717         /* Increment path length if not a self-issued intermediate CA */
    718         if (i > 0 && (x->ex_flags & EXFLAG_SI) == 0)
    719             plen++;
    720         /*
    721          * If this certificate is a proxy certificate, the next certificate
    722          * must be another proxy certificate or a EE certificate.  If not,
    723          * the next certificate must be a CA certificate.
    724          */
    725         if (x->ex_flags & EXFLAG_PROXY) {
    726             /*
    727              * RFC3820, 4.1.3 (b)(1) stipulates that if pCPathLengthConstraint
    728              * is less than max_path_length, the former should be copied to
    729              * the latter, and 4.1.4 (a) stipulates that max_path_length
    730              * should be verified to be larger than zero and decrement it.
    731              *
    732              * Because we're checking the certs in the reverse order, we start
    733              * with verifying that proxy_path_length isn't larger than pcPLC,
    734              * and copy the latter to the former if it is, and finally,
    735              * increment proxy_path_length.
    736              */
    737             if (x->ex_pcpathlen != -1) {
    738                 CB_FAIL_IF(proxy_path_length > x->ex_pcpathlen,
    739                     ctx, x, i, X509_V_ERR_PROXY_PATH_LENGTH_EXCEEDED);
    740                 proxy_path_length = x->ex_pcpathlen;
    741             }
    742             proxy_path_length++;
    743             must_be_ca = 0;
    744         } else {
    745             must_be_ca = 1;
    746         }
    747     }
    748     return 1;
    749 }
    750 
    751 static int has_san_id(X509 *x, int gtype)
    752 {
    753     int i;
    754     int ret = 0;
    755     GENERAL_NAMES *gs = X509_get_ext_d2i(x, NID_subject_alt_name, NULL, NULL);
    756 
    757     if (gs == NULL)
    758         return 0;
    759 
    760     for (i = 0; i < sk_GENERAL_NAME_num(gs); i++) {
    761         GENERAL_NAME *g = sk_GENERAL_NAME_value(gs, i);
    762 
    763         if (g->type == gtype) {
    764             ret = 1;
    765             break;
    766         }
    767     }
    768     GENERAL_NAMES_free(gs);
    769     return ret;
    770 }
    771 
    772 /*-
    773  * Returns -1 on internal error.
    774  * Sadly, returns 0 also on internal error in ctx->verify_cb().
    775  */
    776 static int check_name_constraints(X509_STORE_CTX *ctx)
    777 {
    778     int i;
    779 
    780     /* Check name constraints for all certificates */
    781     for (i = sk_X509_num(ctx->chain) - 1; i >= 0; i--) {
    782         X509 *x = sk_X509_value(ctx->chain, i);
    783         int j;
    784 
    785         /* Ignore self-issued certs unless last in chain */
    786         if (i != 0 && (x->ex_flags & EXFLAG_SI) != 0)
    787             continue;
    788 
    789         /*
    790          * Proxy certificates policy has an extra constraint, where the
    791          * certificate subject MUST be the issuer with a single CN entry
    792          * added.
    793          * (RFC 3820: 3.4, 4.1.3 (a)(4))
    794          */
    795         if ((x->ex_flags & EXFLAG_PROXY) != 0) {
    796             X509_NAME *tmpsubject = X509_get_subject_name(x);
    797             X509_NAME *tmpissuer = X509_get_issuer_name(x);
    798             X509_NAME_ENTRY *tmpentry = NULL;
    799             int last_nid = 0;
    800             int err = X509_V_OK;
    801             int last_loc = X509_NAME_entry_count(tmpsubject) - 1;
    802 
    803             /* Check that there are at least two RDNs */
    804             if (last_loc < 1) {
    805                 err = X509_V_ERR_PROXY_SUBJECT_NAME_VIOLATION;
    806                 goto proxy_name_done;
    807             }
    808 
    809             /*
    810              * Check that there is exactly one more RDN in subject as
    811              * there is in issuer.
    812              */
    813             if (X509_NAME_entry_count(tmpsubject)
    814                 != X509_NAME_entry_count(tmpissuer) + 1) {
    815                 err = X509_V_ERR_PROXY_SUBJECT_NAME_VIOLATION;
    816                 goto proxy_name_done;
    817             }
    818 
    819             /*
    820              * Check that the last subject component isn't part of a
    821              * multi-valued RDN
    822              */
    823             if (X509_NAME_ENTRY_set(X509_NAME_get_entry(tmpsubject, last_loc))
    824                 == X509_NAME_ENTRY_set(X509_NAME_get_entry(tmpsubject,
    825                     last_loc - 1))) {
    826                 err = X509_V_ERR_PROXY_SUBJECT_NAME_VIOLATION;
    827                 goto proxy_name_done;
    828             }
    829 
    830             /*
    831              * Check that the last subject RDN is a commonName, and that
    832              * all the previous RDNs match the issuer exactly
    833              */
    834             tmpsubject = X509_NAME_dup(tmpsubject);
    835             if (tmpsubject == NULL) {
    836                 ERR_raise(ERR_LIB_X509, ERR_R_ASN1_LIB);
    837                 ctx->error = X509_V_ERR_OUT_OF_MEM;
    838                 return -1;
    839             }
    840 
    841             tmpentry = X509_NAME_delete_entry(tmpsubject, last_loc);
    842             last_nid = OBJ_obj2nid(X509_NAME_ENTRY_get_object(tmpentry));
    843 
    844             if (last_nid != NID_commonName
    845                 || X509_NAME_cmp(tmpsubject, tmpissuer) != 0) {
    846                 err = X509_V_ERR_PROXY_SUBJECT_NAME_VIOLATION;
    847             }
    848 
    849             X509_NAME_ENTRY_free(tmpentry);
    850             X509_NAME_free(tmpsubject);
    851 
    852         proxy_name_done:
    853             CB_FAIL_IF(err != X509_V_OK, ctx, x, i, err);
    854         }
    855 
    856         /*
    857          * Check against constraints for all certificates higher in chain
    858          * including trust anchor. Trust anchor not strictly speaking needed
    859          * but if it includes constraints it is to be assumed it expects them
    860          * to be obeyed.
    861          */
    862         for (j = sk_X509_num(ctx->chain) - 1; j > i; j--) {
    863             NAME_CONSTRAINTS *nc = sk_X509_value(ctx->chain, j)->nc;
    864 
    865             if (nc) {
    866                 int rv = NAME_CONSTRAINTS_check(x, nc);
    867                 int ret = 1;
    868 
    869                 /* If EE certificate check commonName too */
    870                 if (rv == X509_V_OK && i == 0
    871                     && (ctx->param->hostflags
    872                            & X509_CHECK_FLAG_NEVER_CHECK_SUBJECT)
    873                         == 0
    874                     && ((ctx->param->hostflags
    875                             & X509_CHECK_FLAG_ALWAYS_CHECK_SUBJECT)
    876                             != 0
    877                         || (ret = has_san_id(x, GEN_DNS)) == 0))
    878                     rv = NAME_CONSTRAINTS_check_CN(x, nc);
    879                 if (ret < 0)
    880                     return ret;
    881 
    882                 switch (rv) {
    883                 case X509_V_OK:
    884                     break;
    885                 case X509_V_ERR_OUT_OF_MEM:
    886                     return -1;
    887                 default:
    888                     CB_FAIL_IF(1, ctx, x, i, rv);
    889                     break;
    890                 }
    891             }
    892         }
    893     }
    894     return 1;
    895 }
    896 
    897 static int check_id_error(X509_STORE_CTX *ctx, int errcode)
    898 {
    899     return verify_cb_cert(ctx, ctx->cert, 0, errcode);
    900 }
    901 
    902 static int check_hosts(X509 *x, X509_VERIFY_PARAM *vpm)
    903 {
    904     int i;
    905     int n = sk_OPENSSL_STRING_num(vpm->hosts);
    906     char *name;
    907 
    908     if (vpm->peername != NULL) {
    909         OPENSSL_free(vpm->peername);
    910         vpm->peername = NULL;
    911     }
    912     for (i = 0; i < n; ++i) {
    913         name = sk_OPENSSL_STRING_value(vpm->hosts, i);
    914         if (X509_check_host(x, name, 0, vpm->hostflags, &vpm->peername) > 0)
    915             return 1;
    916     }
    917     return n == 0;
    918 }
    919 
    920 static int check_id(X509_STORE_CTX *ctx)
    921 {
    922     X509_VERIFY_PARAM *vpm = ctx->param;
    923     X509 *x = ctx->cert;
    924 
    925     if (vpm->hosts != NULL && check_hosts(x, vpm) <= 0) {
    926         if (!check_id_error(ctx, X509_V_ERR_HOSTNAME_MISMATCH))
    927             return 0;
    928     }
    929     if (vpm->email != NULL
    930         && X509_check_email(x, vpm->email, vpm->emaillen, 0) <= 0) {
    931         if (!check_id_error(ctx, X509_V_ERR_EMAIL_MISMATCH))
    932             return 0;
    933     }
    934     if (vpm->ip != NULL && X509_check_ip(x, vpm->ip, vpm->iplen, 0) <= 0) {
    935         if (!check_id_error(ctx, X509_V_ERR_IP_ADDRESS_MISMATCH))
    936             return 0;
    937     }
    938     return 1;
    939 }
    940 
    941 /* Returns -1 on internal error */
    942 static int check_trust(X509_STORE_CTX *ctx, int num_untrusted)
    943 {
    944     int i, res;
    945     X509 *x = NULL;
    946     X509 *mx;
    947     SSL_DANE *dane = ctx->dane;
    948     int num = sk_X509_num(ctx->chain);
    949     int trust;
    950 
    951     /*
    952      * Check for a DANE issuer at depth 1 or greater, if it is a DANE-TA(2)
    953      * match, we're done, otherwise we'll merely record the match depth.
    954      */
    955     if (DANETLS_HAS_TA(dane) && num_untrusted > 0 && num_untrusted < num) {
    956         trust = check_dane_issuer(ctx, num_untrusted);
    957         if (trust != X509_TRUST_UNTRUSTED)
    958             return trust;
    959     }
    960 
    961     /*
    962      * Check trusted certificates in chain at depth num_untrusted and up.
    963      * Note, that depths 0..num_untrusted-1 may also contain trusted
    964      * certificates, but the caller is expected to have already checked those,
    965      * and wants to incrementally check just any added since.
    966      */
    967     for (i = num_untrusted; i < num; i++) {
    968         x = sk_X509_value(ctx->chain, i);
    969         trust = X509_check_trust(x, ctx->param->trust, 0);
    970         /* If explicitly trusted (so not neutral nor rejected) return trusted */
    971         if (trust == X509_TRUST_TRUSTED)
    972             goto trusted;
    973         if (trust == X509_TRUST_REJECTED)
    974             goto rejected;
    975     }
    976 
    977     /*
    978      * If we are looking at a trusted certificate, and accept partial chains,
    979      * the chain is PKIX trusted.
    980      */
    981     if (num_untrusted < num) {
    982         if ((ctx->param->flags & X509_V_FLAG_PARTIAL_CHAIN) != 0)
    983             goto trusted;
    984         return X509_TRUST_UNTRUSTED;
    985     }
    986 
    987     if (num_untrusted == num
    988         && (ctx->param->flags & X509_V_FLAG_PARTIAL_CHAIN) != 0) {
    989         /*
    990          * Last-resort call with no new trusted certificates, check the leaf
    991          * for a direct trust store match.
    992          */
    993         i = 0;
    994         x = sk_X509_value(ctx->chain, i);
    995         res = lookup_cert_match(&mx, ctx, x);
    996         if (res < 0)
    997             return res;
    998         if (res == 0)
    999             return X509_TRUST_UNTRUSTED;
   1000 
   1001         /*
   1002          * Check explicit auxiliary trust/reject settings.  If none are set,
   1003          * we'll accept X509_TRUST_UNTRUSTED when not self-signed.
   1004          */
   1005         trust = X509_check_trust(mx, ctx->param->trust, 0);
   1006         if (trust == X509_TRUST_REJECTED) {
   1007             X509_free(mx);
   1008             goto rejected;
   1009         }
   1010 
   1011         /* Replace leaf with trusted match */
   1012         (void)sk_X509_set(ctx->chain, 0, mx);
   1013         X509_free(x);
   1014         ctx->num_untrusted = 0;
   1015         goto trusted;
   1016     }
   1017 
   1018     /*
   1019      * If no trusted certs in chain at all return untrusted and allow
   1020      * standard (no issuer cert) etc errors to be indicated.
   1021      */
   1022     return X509_TRUST_UNTRUSTED;
   1023 
   1024 rejected:
   1025     return verify_cb_cert(ctx, x, i, X509_V_ERR_CERT_REJECTED) == 0
   1026         ? X509_TRUST_REJECTED
   1027         : X509_TRUST_UNTRUSTED;
   1028 
   1029 trusted:
   1030     if (!DANETLS_ENABLED(dane))
   1031         return X509_TRUST_TRUSTED;
   1032     if (dane->pdpth < 0)
   1033         dane->pdpth = num_untrusted;
   1034     /* With DANE, PKIX alone is not trusted until we have both */
   1035     if (dane->mdpth >= 0)
   1036         return X509_TRUST_TRUSTED;
   1037     return X509_TRUST_UNTRUSTED;
   1038 }
   1039 
   1040 /* Sadly, returns 0 also on internal error. */
   1041 static int check_revocation(X509_STORE_CTX *ctx)
   1042 {
   1043     int i = 0, last = 0, ok = 0;
   1044 
   1045     if ((ctx->param->flags & X509_V_FLAG_CRL_CHECK) == 0)
   1046         return 1;
   1047     if ((ctx->param->flags & X509_V_FLAG_CRL_CHECK_ALL) != 0) {
   1048         last = sk_X509_num(ctx->chain) - 1;
   1049     } else {
   1050         /* If checking CRL paths this isn't the EE certificate */
   1051         if (ctx->parent != NULL)
   1052             return 1;
   1053         last = 0;
   1054     }
   1055     for (i = 0; i <= last; i++) {
   1056         ctx->error_depth = i;
   1057         ok = check_cert(ctx);
   1058         if (!ok)
   1059             return ok;
   1060     }
   1061     return 1;
   1062 }
   1063 
   1064 /* Sadly, returns 0 also on internal error. */
   1065 static int check_cert(X509_STORE_CTX *ctx)
   1066 {
   1067     X509_CRL *crl = NULL, *dcrl = NULL;
   1068     int ok = 0;
   1069     int cnum = ctx->error_depth;
   1070     X509 *x = sk_X509_value(ctx->chain, cnum);
   1071 
   1072     ctx->current_cert = x;
   1073     ctx->current_issuer = NULL;
   1074     ctx->current_crl_score = 0;
   1075     ctx->current_reasons = 0;
   1076 
   1077     if ((x->ex_flags & EXFLAG_PROXY) != 0)
   1078         return 1;
   1079 
   1080     while (ctx->current_reasons != CRLDP_ALL_REASONS) {
   1081         unsigned int last_reasons = ctx->current_reasons;
   1082 
   1083         /* Try to retrieve relevant CRL */
   1084         if (ctx->get_crl != NULL) {
   1085             X509 *crl_issuer = NULL;
   1086             unsigned int reasons = 0;
   1087 
   1088             ok = ctx->get_crl(ctx, &crl, x);
   1089             if (crl != NULL) {
   1090                 ctx->current_crl_score = get_crl_score(ctx, &crl_issuer,
   1091                     &reasons, crl, x);
   1092                 ctx->current_issuer = crl_issuer;
   1093                 ctx->current_reasons = reasons;
   1094             }
   1095         } else {
   1096             ok = get_crl_delta(ctx, &crl, &dcrl, x);
   1097         }
   1098         /* If error looking up CRL, nothing we can do except notify callback */
   1099         if (!ok) {
   1100             ok = verify_cb_crl(ctx, X509_V_ERR_UNABLE_TO_GET_CRL);
   1101             goto done;
   1102         }
   1103         ctx->current_crl = crl;
   1104         ok = ctx->check_crl(ctx, crl);
   1105         if (!ok)
   1106             goto done;
   1107 
   1108         if (dcrl != NULL) {
   1109             ok = ctx->check_crl(ctx, dcrl);
   1110             if (!ok)
   1111                 goto done;
   1112             ok = ctx->cert_crl(ctx, dcrl, x);
   1113             if (!ok)
   1114                 goto done;
   1115         } else {
   1116             ok = 1;
   1117         }
   1118 
   1119         /* Don't look in full CRL if delta reason is removefromCRL */
   1120         if (ok != 2) {
   1121             ok = ctx->cert_crl(ctx, crl, x);
   1122             if (!ok)
   1123                 goto done;
   1124         }
   1125 
   1126         ctx->current_crl = NULL;
   1127         X509_CRL_free(crl);
   1128         X509_CRL_free(dcrl);
   1129         crl = NULL;
   1130         dcrl = NULL;
   1131         /*
   1132          * If reasons not updated we won't get anywhere by another iteration,
   1133          * so exit loop.
   1134          */
   1135         if (last_reasons == ctx->current_reasons) {
   1136             ok = verify_cb_crl(ctx, X509_V_ERR_UNABLE_TO_GET_CRL);
   1137             goto done;
   1138         }
   1139     }
   1140 done:
   1141     X509_CRL_free(crl);
   1142     X509_CRL_free(dcrl);
   1143 
   1144     ctx->current_crl = NULL;
   1145     return ok;
   1146 }
   1147 
   1148 /* Check CRL times against values in X509_STORE_CTX */
   1149 static int check_crl_time(X509_STORE_CTX *ctx, X509_CRL *crl, int notify)
   1150 {
   1151     time_t *ptime;
   1152     int i;
   1153 
   1154     if ((ctx->param->flags & X509_V_FLAG_USE_CHECK_TIME) != 0)
   1155         ptime = &ctx->param->check_time;
   1156     else if ((ctx->param->flags & X509_V_FLAG_NO_CHECK_TIME) != 0)
   1157         return 1;
   1158     else
   1159         ptime = NULL;
   1160     if (notify)
   1161         ctx->current_crl = crl;
   1162 
   1163     i = X509_cmp_time(X509_CRL_get0_lastUpdate(crl), ptime);
   1164     if (i == 0) {
   1165         if (!notify)
   1166             return 0;
   1167         if (!verify_cb_crl(ctx, X509_V_ERR_ERROR_IN_CRL_LAST_UPDATE_FIELD))
   1168             return 0;
   1169     }
   1170 
   1171     if (i > 0) {
   1172         if (!notify)
   1173             return 0;
   1174         if (!verify_cb_crl(ctx, X509_V_ERR_CRL_NOT_YET_VALID))
   1175             return 0;
   1176     }
   1177 
   1178     if (X509_CRL_get0_nextUpdate(crl)) {
   1179         i = X509_cmp_time(X509_CRL_get0_nextUpdate(crl), ptime);
   1180 
   1181         if (i == 0) {
   1182             if (!notify)
   1183                 return 0;
   1184             if (!verify_cb_crl(ctx, X509_V_ERR_ERROR_IN_CRL_NEXT_UPDATE_FIELD))
   1185                 return 0;
   1186         }
   1187         /* Ignore expiration of base CRL is delta is valid */
   1188         if (i < 0 && (ctx->current_crl_score & CRL_SCORE_TIME_DELTA) == 0) {
   1189             if (!notify || !verify_cb_crl(ctx, X509_V_ERR_CRL_HAS_EXPIRED))
   1190                 return 0;
   1191         }
   1192     }
   1193 
   1194     if (notify)
   1195         ctx->current_crl = NULL;
   1196 
   1197     return 1;
   1198 }
   1199 
   1200 static int get_crl_sk(X509_STORE_CTX *ctx, X509_CRL **pcrl, X509_CRL **pdcrl,
   1201     X509 **pissuer, int *pscore, unsigned int *preasons,
   1202     STACK_OF(X509_CRL) *crls)
   1203 {
   1204     int i, crl_score, best_score = *pscore;
   1205     unsigned int reasons, best_reasons = 0;
   1206     X509 *x = ctx->current_cert;
   1207     X509_CRL *crl, *best_crl = NULL;
   1208     X509 *crl_issuer = NULL, *best_crl_issuer = NULL;
   1209 
   1210     for (i = 0; i < sk_X509_CRL_num(crls); i++) {
   1211         crl = sk_X509_CRL_value(crls, i);
   1212         reasons = *preasons;
   1213         crl_score = get_crl_score(ctx, &crl_issuer, &reasons, crl, x);
   1214         if (crl_score < best_score || crl_score == 0)
   1215             continue;
   1216         /* If current CRL is equivalent use it if it is newer */
   1217         if (crl_score == best_score && best_crl != NULL) {
   1218             int day, sec;
   1219 
   1220             if (ASN1_TIME_diff(&day, &sec, X509_CRL_get0_lastUpdate(best_crl),
   1221                     X509_CRL_get0_lastUpdate(crl))
   1222                 == 0)
   1223                 continue;
   1224             /*
   1225              * ASN1_TIME_diff never returns inconsistent signs for |day|
   1226              * and |sec|.
   1227              */
   1228             if (day <= 0 && sec <= 0)
   1229                 continue;
   1230         }
   1231         best_crl = crl;
   1232         best_crl_issuer = crl_issuer;
   1233         best_score = crl_score;
   1234         best_reasons = reasons;
   1235     }
   1236 
   1237     if (best_crl != NULL) {
   1238         if (!X509_CRL_up_ref(best_crl))
   1239             return 0;
   1240         X509_CRL_free(*pcrl);
   1241         *pcrl = best_crl;
   1242         *pissuer = best_crl_issuer;
   1243         *pscore = best_score;
   1244         *preasons = best_reasons;
   1245         X509_CRL_free(*pdcrl);
   1246         *pdcrl = NULL;
   1247         get_delta_sk(ctx, pdcrl, pscore, best_crl, crls);
   1248     }
   1249 
   1250     if (best_score >= CRL_SCORE_VALID)
   1251         return 1;
   1252 
   1253     return 0;
   1254 }
   1255 
   1256 /*
   1257  * Compare two CRL extensions for delta checking purposes. They should be
   1258  * both present or both absent. If both present all fields must be identical.
   1259  */
   1260 static int crl_extension_match(X509_CRL *a, X509_CRL *b, int nid)
   1261 {
   1262     ASN1_OCTET_STRING *exta = NULL, *extb = NULL;
   1263     int i = X509_CRL_get_ext_by_NID(a, nid, -1);
   1264 
   1265     if (i >= 0) {
   1266         /* Can't have multiple occurrences */
   1267         if (X509_CRL_get_ext_by_NID(a, nid, i) != -1)
   1268             return 0;
   1269         exta = X509_EXTENSION_get_data(X509_CRL_get_ext(a, i));
   1270     }
   1271 
   1272     i = X509_CRL_get_ext_by_NID(b, nid, -1);
   1273     if (i >= 0) {
   1274         if (X509_CRL_get_ext_by_NID(b, nid, i) != -1)
   1275             return 0;
   1276         extb = X509_EXTENSION_get_data(X509_CRL_get_ext(b, i));
   1277     }
   1278 
   1279     if (exta == NULL && extb == NULL)
   1280         return 1;
   1281 
   1282     if (exta == NULL || extb == NULL)
   1283         return 0;
   1284 
   1285     return ASN1_OCTET_STRING_cmp(exta, extb) == 0;
   1286 }
   1287 
   1288 /* See if a base and delta are compatible */
   1289 static int check_delta_base(X509_CRL *delta, X509_CRL *base)
   1290 {
   1291     /* Delta CRL must be a delta */
   1292     if (delta->base_crl_number == NULL)
   1293         return 0;
   1294     /* Base must have a CRL number */
   1295     if (base->crl_number == NULL)
   1296         return 0;
   1297     /* Issuer names must match */
   1298     if (X509_NAME_cmp(X509_CRL_get_issuer(base),
   1299             X509_CRL_get_issuer(delta))
   1300         != 0)
   1301         return 0;
   1302     /* AKID and IDP must match */
   1303     if (!crl_extension_match(delta, base, NID_authority_key_identifier))
   1304         return 0;
   1305     if (!crl_extension_match(delta, base, NID_issuing_distribution_point))
   1306         return 0;
   1307     /* Delta CRL base number must not exceed Full CRL number. */
   1308     if (ASN1_INTEGER_cmp(delta->base_crl_number, base->crl_number) > 0)
   1309         return 0;
   1310     /* Delta CRL number must exceed full CRL number */
   1311     if (delta->crl_number == NULL)
   1312         return 0;
   1313     return ASN1_INTEGER_cmp(delta->crl_number, base->crl_number) > 0;
   1314 }
   1315 
   1316 /*
   1317  * For a given base CRL find a delta... maybe extend to delta scoring or
   1318  * retrieve a chain of deltas...
   1319  */
   1320 static void get_delta_sk(X509_STORE_CTX *ctx, X509_CRL **dcrl, int *pscore,
   1321     X509_CRL *base, STACK_OF(X509_CRL) *crls)
   1322 {
   1323     X509_CRL *delta;
   1324     int i;
   1325 
   1326     if ((ctx->param->flags & X509_V_FLAG_USE_DELTAS) == 0)
   1327         return;
   1328     if (((ctx->current_cert->ex_flags | base->flags) & EXFLAG_FRESHEST) == 0)
   1329         return;
   1330     for (i = 0; i < sk_X509_CRL_num(crls); i++) {
   1331         delta = sk_X509_CRL_value(crls, i);
   1332         if (check_delta_base(delta, base)) {
   1333             if (!X509_CRL_up_ref(delta)) {
   1334                 *dcrl = NULL;
   1335                 return;
   1336             }
   1337 
   1338             *dcrl = delta;
   1339 
   1340             if (check_crl_time(ctx, delta, 0))
   1341                 *pscore |= CRL_SCORE_TIME_DELTA;
   1342 
   1343             return;
   1344         }
   1345     }
   1346     *dcrl = NULL;
   1347 }
   1348 
   1349 /*
   1350  * For a given CRL return how suitable it is for the supplied certificate
   1351  * 'x'. The return value is a mask of several criteria. If the issuer is not
   1352  * the certificate issuer this is returned in *pissuer. The reasons mask is
   1353  * also used to determine if the CRL is suitable: if no new reasons the CRL
   1354  * is rejected, otherwise reasons is updated.
   1355  */
   1356 static int get_crl_score(X509_STORE_CTX *ctx, X509 **pissuer,
   1357     unsigned int *preasons, X509_CRL *crl, X509 *x)
   1358 {
   1359     int crl_score = 0;
   1360     unsigned int tmp_reasons = *preasons, crl_reasons;
   1361 
   1362     /* First see if we can reject CRL straight away */
   1363 
   1364     /* Invalid IDP cannot be processed */
   1365     if ((crl->idp_flags & IDP_INVALID) != 0)
   1366         return 0;
   1367     /* Reason codes or indirect CRLs need extended CRL support */
   1368     if ((ctx->param->flags & X509_V_FLAG_EXTENDED_CRL_SUPPORT) == 0) {
   1369         if (crl->idp_flags & (IDP_INDIRECT | IDP_REASONS))
   1370             return 0;
   1371     } else if ((crl->idp_flags & IDP_REASONS) != 0) {
   1372         /* If no new reasons reject */
   1373         if ((crl->idp_reasons & ~tmp_reasons) == 0)
   1374             return 0;
   1375     }
   1376     /* Don't process deltas at this stage */
   1377     else if (crl->base_crl_number != NULL)
   1378         return 0;
   1379     /* If issuer name doesn't match certificate need indirect CRL */
   1380     if (X509_NAME_cmp(X509_get_issuer_name(x), X509_CRL_get_issuer(crl)) != 0) {
   1381         if ((crl->idp_flags & IDP_INDIRECT) == 0)
   1382             return 0;
   1383     } else {
   1384         crl_score |= CRL_SCORE_ISSUER_NAME;
   1385     }
   1386 
   1387     if ((crl->flags & EXFLAG_CRITICAL) == 0)
   1388         crl_score |= CRL_SCORE_NOCRITICAL;
   1389 
   1390     /* Check expiration */
   1391     if (check_crl_time(ctx, crl, 0))
   1392         crl_score |= CRL_SCORE_TIME;
   1393 
   1394     /* Check authority key ID and locate certificate issuer */
   1395     crl_akid_check(ctx, crl, pissuer, &crl_score);
   1396 
   1397     /* If we can't locate certificate issuer at this point forget it */
   1398     if ((crl_score & CRL_SCORE_AKID) == 0)
   1399         return 0;
   1400 
   1401     /* Check cert for matching CRL distribution points */
   1402     if (crl_crldp_check(x, crl, crl_score, &crl_reasons)) {
   1403         /* If no new reasons reject */
   1404         if ((crl_reasons & ~tmp_reasons) == 0)
   1405             return 0;
   1406         tmp_reasons |= crl_reasons;
   1407         crl_score |= CRL_SCORE_SCOPE;
   1408     }
   1409 
   1410     *preasons = tmp_reasons;
   1411 
   1412     return crl_score;
   1413 }
   1414 
   1415 static void crl_akid_check(X509_STORE_CTX *ctx, X509_CRL *crl,
   1416     X509 **pissuer, int *pcrl_score)
   1417 {
   1418     X509 *crl_issuer = NULL;
   1419     const X509_NAME *cnm = X509_CRL_get_issuer(crl);
   1420     int cidx = ctx->error_depth;
   1421     int i;
   1422 
   1423     if (cidx != sk_X509_num(ctx->chain) - 1)
   1424         cidx++;
   1425 
   1426     crl_issuer = sk_X509_value(ctx->chain, cidx);
   1427 
   1428     if (X509_check_akid(crl_issuer, crl->akid) == X509_V_OK) {
   1429         if (*pcrl_score & CRL_SCORE_ISSUER_NAME) {
   1430             *pcrl_score |= CRL_SCORE_AKID | CRL_SCORE_ISSUER_CERT;
   1431             *pissuer = crl_issuer;
   1432             return;
   1433         }
   1434     }
   1435 
   1436     for (cidx++; cidx < sk_X509_num(ctx->chain); cidx++) {
   1437         crl_issuer = sk_X509_value(ctx->chain, cidx);
   1438         if (X509_NAME_cmp(X509_get_subject_name(crl_issuer), cnm))
   1439             continue;
   1440         if (X509_check_akid(crl_issuer, crl->akid) == X509_V_OK) {
   1441             *pcrl_score |= CRL_SCORE_AKID | CRL_SCORE_SAME_PATH;
   1442             *pissuer = crl_issuer;
   1443             return;
   1444         }
   1445     }
   1446 
   1447     /* Anything else needs extended CRL support */
   1448     if ((ctx->param->flags & X509_V_FLAG_EXTENDED_CRL_SUPPORT) == 0)
   1449         return;
   1450 
   1451     /*
   1452      * Otherwise the CRL issuer is not on the path. Look for it in the set of
   1453      * untrusted certificates.
   1454      */
   1455     for (i = 0; i < sk_X509_num(ctx->untrusted); i++) {
   1456         crl_issuer = sk_X509_value(ctx->untrusted, i);
   1457         if (X509_NAME_cmp(X509_get_subject_name(crl_issuer), cnm) != 0)
   1458             continue;
   1459         if (X509_check_akid(crl_issuer, crl->akid) == X509_V_OK) {
   1460             *pissuer = crl_issuer;
   1461             *pcrl_score |= CRL_SCORE_AKID;
   1462             return;
   1463         }
   1464     }
   1465 }
   1466 
   1467 /*
   1468  * Check the path of a CRL issuer certificate. This creates a new
   1469  * X509_STORE_CTX and populates it with most of the parameters from the
   1470  * parent. This could be optimised somewhat since a lot of path checking will
   1471  * be duplicated by the parent, but this will rarely be used in practice.
   1472  */
   1473 static int check_crl_path(X509_STORE_CTX *ctx, X509 *x)
   1474 {
   1475     X509_STORE_CTX crl_ctx = { 0 };
   1476     int ret;
   1477 
   1478     /* Don't allow recursive CRL path validation */
   1479     if (ctx->parent != NULL)
   1480         return 0;
   1481     if (!X509_STORE_CTX_init(&crl_ctx, ctx->store, x, ctx->untrusted))
   1482         return -1;
   1483 
   1484     crl_ctx.crls = ctx->crls;
   1485     /* Copy verify params across */
   1486     X509_STORE_CTX_set0_param(&crl_ctx, ctx->param);
   1487 
   1488     crl_ctx.parent = ctx;
   1489     crl_ctx.verify_cb = ctx->verify_cb;
   1490 
   1491     /* Verify CRL issuer */
   1492     ret = X509_verify_cert(&crl_ctx);
   1493     if (ret <= 0)
   1494         goto err;
   1495 
   1496     /* Check chain is acceptable */
   1497     ret = check_crl_chain(ctx, ctx->chain, crl_ctx.chain);
   1498 err:
   1499     X509_STORE_CTX_cleanup(&crl_ctx);
   1500     return ret;
   1501 }
   1502 
   1503 /*
   1504  * RFC3280 says nothing about the relationship between CRL path and
   1505  * certificate path, which could lead to situations where a certificate could
   1506  * be revoked or validated by a CA not authorized to do so. RFC5280 is more
   1507  * strict and states that the two paths must end in the same trust anchor,
   1508  * though some discussions remain... until this is resolved we use the
   1509  * RFC5280 version
   1510  */
   1511 static int check_crl_chain(X509_STORE_CTX *ctx,
   1512     STACK_OF(X509) *cert_path,
   1513     STACK_OF(X509) *crl_path)
   1514 {
   1515     X509 *cert_ta = sk_X509_value(cert_path, sk_X509_num(cert_path) - 1);
   1516     X509 *crl_ta = sk_X509_value(crl_path, sk_X509_num(crl_path) - 1);
   1517 
   1518     return X509_cmp(cert_ta, crl_ta) == 0;
   1519 }
   1520 
   1521 /*-
   1522  * Check for match between two dist point names: three separate cases.
   1523  * 1. Both are relative names and compare X509_NAME types.
   1524  * 2. One full, one relative. Compare X509_NAME to GENERAL_NAMES.
   1525  * 3. Both are full names and compare two GENERAL_NAMES.
   1526  * 4. One is NULL: automatic match.
   1527  */
   1528 static int idp_check_dp(DIST_POINT_NAME *a, DIST_POINT_NAME *b)
   1529 {
   1530     X509_NAME *nm = NULL;
   1531     GENERAL_NAMES *gens = NULL;
   1532     GENERAL_NAME *gena, *genb;
   1533     int i, j;
   1534 
   1535     if (a == NULL || b == NULL)
   1536         return 1;
   1537     if (a->type == 1) {
   1538         if (a->dpname == NULL)
   1539             return 0;
   1540         /* Case 1: two X509_NAME */
   1541         if (b->type == 1) {
   1542             if (b->dpname == NULL)
   1543                 return 0;
   1544             return X509_NAME_cmp(a->dpname, b->dpname) == 0;
   1545         }
   1546         /* Case 2: set name and GENERAL_NAMES appropriately */
   1547         nm = a->dpname;
   1548         gens = b->name.fullname;
   1549     } else if (b->type == 1) {
   1550         if (b->dpname == NULL)
   1551             return 0;
   1552         /* Case 2: set name and GENERAL_NAMES appropriately */
   1553         gens = a->name.fullname;
   1554         nm = b->dpname;
   1555     }
   1556 
   1557     /* Handle case 2 with one GENERAL_NAMES and one X509_NAME */
   1558     if (nm != NULL) {
   1559         for (i = 0; i < sk_GENERAL_NAME_num(gens); i++) {
   1560             gena = sk_GENERAL_NAME_value(gens, i);
   1561             if (gena->type != GEN_DIRNAME)
   1562                 continue;
   1563             if (X509_NAME_cmp(nm, gena->d.directoryName) == 0)
   1564                 return 1;
   1565         }
   1566         return 0;
   1567     }
   1568 
   1569     /* Else case 3: two GENERAL_NAMES */
   1570 
   1571     for (i = 0; i < sk_GENERAL_NAME_num(a->name.fullname); i++) {
   1572         gena = sk_GENERAL_NAME_value(a->name.fullname, i);
   1573         for (j = 0; j < sk_GENERAL_NAME_num(b->name.fullname); j++) {
   1574             genb = sk_GENERAL_NAME_value(b->name.fullname, j);
   1575             if (GENERAL_NAME_cmp(gena, genb) == 0)
   1576                 return 1;
   1577         }
   1578     }
   1579 
   1580     return 0;
   1581 }
   1582 
   1583 static int crldp_check_crlissuer(DIST_POINT *dp, X509_CRL *crl, int crl_score)
   1584 {
   1585     int i;
   1586     const X509_NAME *nm = X509_CRL_get_issuer(crl);
   1587 
   1588     /* If no CRLissuer return is successful iff don't need a match */
   1589     if (dp->CRLissuer == NULL)
   1590         return (crl_score & CRL_SCORE_ISSUER_NAME) != 0;
   1591     for (i = 0; i < sk_GENERAL_NAME_num(dp->CRLissuer); i++) {
   1592         GENERAL_NAME *gen = sk_GENERAL_NAME_value(dp->CRLissuer, i);
   1593 
   1594         if (gen->type != GEN_DIRNAME)
   1595             continue;
   1596         if (X509_NAME_cmp(gen->d.directoryName, nm) == 0)
   1597             return 1;
   1598     }
   1599     return 0;
   1600 }
   1601 
   1602 /* Check CRLDP and IDP */
   1603 static int crl_crldp_check(X509 *x, X509_CRL *crl, int crl_score,
   1604     unsigned int *preasons)
   1605 {
   1606     int i;
   1607 
   1608     if ((crl->idp_flags & IDP_ONLYATTR) != 0)
   1609         return 0;
   1610     if ((x->ex_flags & EXFLAG_CA) != 0) {
   1611         if ((crl->idp_flags & IDP_ONLYUSER) != 0)
   1612             return 0;
   1613     } else {
   1614         if ((crl->idp_flags & IDP_ONLYCA) != 0)
   1615             return 0;
   1616     }
   1617     *preasons = crl->idp_reasons;
   1618     for (i = 0; i < sk_DIST_POINT_num(x->crldp); i++) {
   1619         DIST_POINT *dp = sk_DIST_POINT_value(x->crldp, i);
   1620 
   1621         if (crldp_check_crlissuer(dp, crl, crl_score)) {
   1622             if (crl->idp == NULL
   1623                 || idp_check_dp(dp->distpoint, crl->idp->distpoint)) {
   1624                 *preasons &= dp->dp_reasons;
   1625                 return 1;
   1626             }
   1627         }
   1628     }
   1629     return (crl->idp == NULL || crl->idp->distpoint == NULL)
   1630         && (crl_score & CRL_SCORE_ISSUER_NAME) != 0;
   1631 }
   1632 
   1633 /*
   1634  * Retrieve CRL corresponding to current certificate. If deltas enabled try
   1635  * to find a delta CRL too
   1636  */
   1637 static int get_crl_delta(X509_STORE_CTX *ctx,
   1638     X509_CRL **pcrl, X509_CRL **pdcrl, X509 *x)
   1639 {
   1640     int ok;
   1641     X509 *issuer = NULL;
   1642     int crl_score = 0;
   1643     unsigned int reasons;
   1644     X509_CRL *crl = NULL, *dcrl = NULL;
   1645     STACK_OF(X509_CRL) *skcrl;
   1646     const X509_NAME *nm = X509_get_issuer_name(x);
   1647 
   1648     reasons = ctx->current_reasons;
   1649     ok = get_crl_sk(ctx, &crl, &dcrl,
   1650         &issuer, &crl_score, &reasons, ctx->crls);
   1651     if (ok)
   1652         goto done;
   1653 
   1654     /* Lookup CRLs from store */
   1655     skcrl = ctx->lookup_crls(ctx, nm);
   1656 
   1657     /* If no CRLs found and a near match from get_crl_sk use that */
   1658     if (skcrl == NULL && crl != NULL)
   1659         goto done;
   1660 
   1661     get_crl_sk(ctx, &crl, &dcrl, &issuer, &crl_score, &reasons, skcrl);
   1662 
   1663     sk_X509_CRL_pop_free(skcrl, X509_CRL_free);
   1664 
   1665 done:
   1666     /* If we got any kind of CRL use it and return success */
   1667     if (crl != NULL) {
   1668         ctx->current_issuer = issuer;
   1669         ctx->current_crl_score = crl_score;
   1670         ctx->current_reasons = reasons;
   1671         *pcrl = crl;
   1672         *pdcrl = dcrl;
   1673         return 1;
   1674     }
   1675     return 0;
   1676 }
   1677 
   1678 /* Check CRL validity */
   1679 static int check_crl(X509_STORE_CTX *ctx, X509_CRL *crl)
   1680 {
   1681     X509 *issuer = NULL;
   1682     EVP_PKEY *ikey = NULL;
   1683     int cnum = ctx->error_depth;
   1684     int chnum = sk_X509_num(ctx->chain) - 1;
   1685 
   1686     /* If we have an alternative CRL issuer cert use that */
   1687     if (ctx->current_issuer != NULL) {
   1688         issuer = ctx->current_issuer;
   1689         /*
   1690          * Else find CRL issuer: if not last certificate then issuer is next
   1691          * certificate in chain.
   1692          */
   1693     } else if (cnum < chnum) {
   1694         issuer = sk_X509_value(ctx->chain, cnum + 1);
   1695     } else {
   1696         issuer = sk_X509_value(ctx->chain, chnum);
   1697         if (!ossl_assert(issuer != NULL))
   1698             return 0;
   1699         /* If not self-issued, can't check signature */
   1700         if (!ctx->check_issued(ctx, issuer, issuer) && !verify_cb_crl(ctx, X509_V_ERR_UNABLE_TO_GET_CRL_ISSUER))
   1701             return 0;
   1702     }
   1703 
   1704     if (issuer == NULL)
   1705         return 1;
   1706 
   1707     /*
   1708      * Skip most tests for deltas because they have already been done
   1709      */
   1710     if (crl->base_crl_number == NULL) {
   1711         /* Check for cRLSign bit if keyUsage present */
   1712         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))
   1713             return 0;
   1714 
   1715         if ((ctx->current_crl_score & CRL_SCORE_SCOPE) == 0 && !verify_cb_crl(ctx, X509_V_ERR_DIFFERENT_CRL_SCOPE))
   1716             return 0;
   1717 
   1718         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))
   1719             return 0;
   1720 
   1721         if ((crl->idp_flags & IDP_INVALID) != 0 && !verify_cb_crl(ctx, X509_V_ERR_INVALID_EXTENSION))
   1722             return 0;
   1723     }
   1724 
   1725     if ((ctx->current_crl_score & CRL_SCORE_TIME) == 0 && !check_crl_time(ctx, crl, 1))
   1726         return 0;
   1727 
   1728     /* Attempt to get issuer certificate public key */
   1729     ikey = X509_get0_pubkey(issuer);
   1730     if (ikey == NULL && !verify_cb_crl(ctx, X509_V_ERR_UNABLE_TO_DECODE_ISSUER_PUBLIC_KEY))
   1731         return 0;
   1732 
   1733     if (ikey != NULL) {
   1734         int rv = X509_CRL_check_suiteb(crl, ikey, ctx->param->flags);
   1735 
   1736         if (rv != X509_V_OK && !verify_cb_crl(ctx, rv))
   1737             return 0;
   1738         /* Verify CRL signature */
   1739         if (X509_CRL_verify(crl, ikey) <= 0 && !verify_cb_crl(ctx, X509_V_ERR_CRL_SIGNATURE_FAILURE))
   1740             return 0;
   1741     }
   1742     return 1;
   1743 }
   1744 
   1745 /* Check certificate against CRL */
   1746 static int cert_crl(X509_STORE_CTX *ctx, X509_CRL *crl, X509 *x)
   1747 {
   1748     X509_REVOKED *rev;
   1749 
   1750     /*
   1751      * The rules changed for this... previously if a CRL contained unhandled
   1752      * critical extensions it could still be used to indicate a certificate
   1753      * was revoked. This has since been changed since critical extensions can
   1754      * change the meaning of CRL entries.
   1755      */
   1756     if ((ctx->param->flags & X509_V_FLAG_IGNORE_CRITICAL) == 0
   1757         && (crl->flags & EXFLAG_CRITICAL) != 0 && !verify_cb_crl(ctx, X509_V_ERR_UNHANDLED_CRITICAL_CRL_EXTENSION))
   1758         return 0;
   1759     /*
   1760      * Look for serial number of certificate in CRL.  If found, make sure
   1761      * reason is not removeFromCRL.
   1762      */
   1763     if (X509_CRL_get0_by_cert(crl, &rev, x)) {
   1764         if (rev->reason == CRL_REASON_REMOVE_FROM_CRL)
   1765             return 2;
   1766         if (!verify_cb_crl(ctx, X509_V_ERR_CERT_REVOKED))
   1767             return 0;
   1768     }
   1769 
   1770     return 1;
   1771 }
   1772 
   1773 /* Sadly, returns 0 also on internal error in ctx->verify_cb(). */
   1774 static int check_policy(X509_STORE_CTX *ctx)
   1775 {
   1776     int ret;
   1777 
   1778     if (ctx->parent)
   1779         return 1;
   1780     /*
   1781      * With DANE, the trust anchor might be a bare public key, not a
   1782      * certificate!  In that case our chain does not have the trust anchor
   1783      * certificate as a top-most element.  This comports well with RFC5280
   1784      * chain verification, since there too, the trust anchor is not part of the
   1785      * chain to be verified.  In particular, X509_policy_check() does not look
   1786      * at the TA cert, but assumes that it is present as the top-most chain
   1787      * element.  We therefore temporarily push a NULL cert onto the chain if it
   1788      * was verified via a bare public key, and pop it off right after the
   1789      * X509_policy_check() call.
   1790      */
   1791     if (ctx->bare_ta_signed && !sk_X509_push(ctx->chain, NULL)) {
   1792         ERR_raise(ERR_LIB_X509, ERR_R_CRYPTO_LIB);
   1793         goto memerr;
   1794     }
   1795     ret = X509_policy_check(&ctx->tree, &ctx->explicit_policy, ctx->chain,
   1796         ctx->param->policies, ctx->param->flags);
   1797     if (ctx->bare_ta_signed)
   1798         (void)sk_X509_pop(ctx->chain);
   1799 
   1800     if (ret == X509_PCY_TREE_INTERNAL) {
   1801         ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
   1802         goto memerr;
   1803     }
   1804     /* Invalid or inconsistent extensions */
   1805     if (ret == X509_PCY_TREE_INVALID) {
   1806         int i, cbcalled = 0;
   1807 
   1808         /* Locate certificates with bad extensions and notify callback. */
   1809         for (i = 0; i < sk_X509_num(ctx->chain); i++) {
   1810             X509 *x = sk_X509_value(ctx->chain, i);
   1811 
   1812             if ((x->ex_flags & EXFLAG_INVALID_POLICY) != 0)
   1813                 cbcalled = 1;
   1814             CB_FAIL_IF((x->ex_flags & EXFLAG_INVALID_POLICY) != 0,
   1815                 ctx, x, i, X509_V_ERR_INVALID_POLICY_EXTENSION);
   1816         }
   1817         if (!cbcalled) {
   1818             /* Should not be able to get here */
   1819             ERR_raise(ERR_LIB_X509, ERR_R_INTERNAL_ERROR);
   1820             return 0;
   1821         }
   1822         /* The callback ignored the error so we return success */
   1823         return 1;
   1824     }
   1825     if (ret == X509_PCY_TREE_FAILURE) {
   1826         ctx->current_cert = NULL;
   1827         ctx->error = X509_V_ERR_NO_EXPLICIT_POLICY;
   1828         return ctx->verify_cb(0, ctx);
   1829     }
   1830     if (ret != X509_PCY_TREE_VALID) {
   1831         ERR_raise(ERR_LIB_X509, ERR_R_INTERNAL_ERROR);
   1832         return 0;
   1833     }
   1834 
   1835     if ((ctx->param->flags & X509_V_FLAG_NOTIFY_POLICY) != 0) {
   1836         ctx->current_cert = NULL;
   1837         /*
   1838          * Verification errors need to be "sticky", a callback may have allowed
   1839          * an SSL handshake to continue despite an error, and we must then
   1840          * remain in an error state.  Therefore, we MUST NOT clear earlier
   1841          * verification errors by setting the error to X509_V_OK.
   1842          */
   1843         if (!ctx->verify_cb(2, ctx))
   1844             return 0;
   1845     }
   1846 
   1847     return 1;
   1848 
   1849 memerr:
   1850     ctx->error = X509_V_ERR_OUT_OF_MEM;
   1851     return -1;
   1852 }
   1853 
   1854 /*-
   1855  * Check certificate validity times.
   1856  * If depth >= 0, invoke verification callbacks on error, otherwise just return
   1857  * the validation status.
   1858  *
   1859  * Return 1 on success, 0 otherwise.
   1860  * Sadly, returns 0 also on internal error in ctx->verify_cb().
   1861  */
   1862 int ossl_x509_check_cert_time(X509_STORE_CTX *ctx, X509 *x, int depth)
   1863 {
   1864     time_t *ptime;
   1865     int i;
   1866 
   1867     if ((ctx->param->flags & X509_V_FLAG_USE_CHECK_TIME) != 0)
   1868         ptime = &ctx->param->check_time;
   1869     else if ((ctx->param->flags & X509_V_FLAG_NO_CHECK_TIME) != 0)
   1870         return 1;
   1871     else
   1872         ptime = NULL;
   1873 
   1874     i = X509_cmp_time(X509_get0_notBefore(x), ptime);
   1875     if (i >= 0 && depth < 0)
   1876         return 0;
   1877     CB_FAIL_IF(i == 0, ctx, x, depth, X509_V_ERR_ERROR_IN_CERT_NOT_BEFORE_FIELD);
   1878     CB_FAIL_IF(i > 0, ctx, x, depth, X509_V_ERR_CERT_NOT_YET_VALID);
   1879 
   1880     i = X509_cmp_time(X509_get0_notAfter(x), ptime);
   1881     if (i <= 0 && depth < 0)
   1882         return 0;
   1883     CB_FAIL_IF(i == 0, ctx, x, depth, X509_V_ERR_ERROR_IN_CERT_NOT_AFTER_FIELD);
   1884     CB_FAIL_IF(i < 0, ctx, x, depth, X509_V_ERR_CERT_HAS_EXPIRED);
   1885     return 1;
   1886 }
   1887 
   1888 /*
   1889  * Verify the issuer signatures and cert times of ctx->chain.
   1890  * Sadly, returns 0 also on internal error in ctx->verify_cb().
   1891  */
   1892 static int internal_verify(X509_STORE_CTX *ctx)
   1893 {
   1894     int n;
   1895     X509 *xi;
   1896     X509 *xs;
   1897 
   1898     /* For RPK: just do the verify callback */
   1899     if (ctx->rpk != NULL) {
   1900         if (!ctx->verify_cb(ctx->error == X509_V_OK, ctx))
   1901             return 0;
   1902         return 1;
   1903     }
   1904     n = sk_X509_num(ctx->chain) - 1;
   1905     xi = sk_X509_value(ctx->chain, n);
   1906     xs = xi;
   1907 
   1908     ctx->error_depth = n;
   1909     if (ctx->bare_ta_signed) {
   1910         /*
   1911          * With DANE-verified bare public key TA signatures,
   1912          * on the top certificate we check only the timestamps.
   1913          * We report the issuer as NULL because all we have is a bare key.
   1914          */
   1915         xi = NULL;
   1916     } else if (ossl_x509_likely_issued(xi, xi) != X509_V_OK
   1917         /* exceptional case: last cert in the chain is not self-issued */
   1918         && ((ctx->param->flags & X509_V_FLAG_PARTIAL_CHAIN) == 0)) {
   1919         if (n > 0) {
   1920             n--;
   1921             ctx->error_depth = n;
   1922             xs = sk_X509_value(ctx->chain, n);
   1923         } else {
   1924             CB_FAIL_IF(1, ctx, xi, 0,
   1925                 X509_V_ERR_UNABLE_TO_VERIFY_LEAF_SIGNATURE);
   1926         }
   1927         /*
   1928          * The below code will certainly not do a
   1929          * self-signature check on xi because it is not self-issued.
   1930          */
   1931     }
   1932 
   1933     /*
   1934      * Do not clear error (by ctx->error = X509_V_OK), it must be "sticky",
   1935      * only the user's callback is allowed to reset errors (at its own peril).
   1936      */
   1937     while (n >= 0) {
   1938         /*-
   1939          * For each iteration of this loop:
   1940          * n is the subject depth
   1941          * xs is the subject cert, for which the signature is to be checked
   1942          * xi is NULL for DANE-verified bare public key TA signatures
   1943          *       else the supposed issuer cert containing the public key to use
   1944          * Initially xs == xi if the last cert in the chain is self-issued.
   1945          */
   1946         /*
   1947          * Do signature check for self-signed certificates only if explicitly
   1948          * asked for because it does not add any security and just wastes time.
   1949          */
   1950         if (xi != NULL
   1951             && (xs != xi
   1952                 || ((ctx->param->flags & X509_V_FLAG_CHECK_SS_SIGNATURE) != 0
   1953                     && (xi->ex_flags & EXFLAG_SS) != 0))) {
   1954             EVP_PKEY *pkey;
   1955             /*
   1956              * If the issuer's public key is not available or its key usage
   1957              * does not support issuing the subject cert, report the issuer
   1958              * cert and its depth (rather than n, the depth of the subject).
   1959              */
   1960             int issuer_depth = n + (xs == xi ? 0 : 1);
   1961             /*
   1962              * According to https://tools.ietf.org/html/rfc5280#section-6.1.4
   1963              * step (n) we must check any given key usage extension in a CA cert
   1964              * when preparing the verification of a certificate issued by it.
   1965              * According to https://tools.ietf.org/html/rfc5280#section-4.2.1.3
   1966              * we must not verify a certificate signature if the key usage of
   1967              * the CA certificate that issued the certificate prohibits signing.
   1968              * In case the 'issuing' certificate is the last in the chain and is
   1969              * not a CA certificate but a 'self-issued' end-entity cert (i.e.,
   1970              * xs == xi && !(xi->ex_flags & EXFLAG_CA)) RFC 5280 does not apply
   1971              * (see https://tools.ietf.org/html/rfc6818#section-2) and thus
   1972              * we are free to ignore any key usage restrictions on such certs.
   1973              */
   1974             int ret = xs == xi && (xi->ex_flags & EXFLAG_CA) == 0
   1975                 ? X509_V_OK
   1976                 : ossl_x509_signing_allowed(xi, xs);
   1977 
   1978             CB_FAIL_IF(ret != X509_V_OK, ctx, xi, issuer_depth, ret);
   1979             if ((pkey = X509_get0_pubkey(xi)) == NULL) {
   1980                 CB_FAIL_IF(1, ctx, xi, issuer_depth,
   1981                     X509_V_ERR_UNABLE_TO_DECODE_ISSUER_PUBLIC_KEY);
   1982             } else {
   1983                 CB_FAIL_IF(X509_verify(xs, pkey) <= 0,
   1984                     ctx, xs, n, X509_V_ERR_CERT_SIGNATURE_FAILURE);
   1985             }
   1986         }
   1987 
   1988         /* In addition to RFC 5280 requirements do also for trust anchor cert */
   1989         /* Calls verify callback as needed */
   1990         if (!ossl_x509_check_cert_time(ctx, xs, n))
   1991             return 0;
   1992 
   1993         /*
   1994          * Signal success at this depth.  However, the previous error (if any)
   1995          * is retained.
   1996          */
   1997         ctx->current_issuer = xi;
   1998         ctx->current_cert = xs;
   1999         ctx->error_depth = n;
   2000         if (!ctx->verify_cb(1, ctx))
   2001             return 0;
   2002 
   2003         if (--n >= 0) {
   2004             xi = xs;
   2005             xs = sk_X509_value(ctx->chain, n);
   2006         }
   2007     }
   2008     return 1;
   2009 }
   2010 
   2011 int X509_cmp_current_time(const ASN1_TIME *ctm)
   2012 {
   2013     return X509_cmp_time(ctm, NULL);
   2014 }
   2015 
   2016 /* returns 0 on error, otherwise 1 if ctm > cmp_time, else -1 */
   2017 int X509_cmp_time(const ASN1_TIME *ctm, time_t *cmp_time)
   2018 {
   2019     static const size_t utctime_length = sizeof("YYMMDDHHMMSSZ") - 1;
   2020     static const size_t generalizedtime_length = sizeof("YYYYMMDDHHMMSSZ") - 1;
   2021     ASN1_TIME *asn1_cmp_time = NULL;
   2022     int i, day, sec, ret = 0;
   2023 #ifdef CHARSET_EBCDIC
   2024     const char upper_z = 0x5A;
   2025 #else
   2026     const char upper_z = 'Z';
   2027 #endif
   2028 
   2029     /*-
   2030      * Note that ASN.1 allows much more slack in the time format than RFC5280.
   2031      * In RFC5280, the representation is fixed:
   2032      * UTCTime: YYMMDDHHMMSSZ
   2033      * GeneralizedTime: YYYYMMDDHHMMSSZ
   2034      *
   2035      * We do NOT currently enforce the following RFC 5280 requirement:
   2036      * "CAs conforming to this profile MUST always encode certificate
   2037      *  validity dates through the year 2049 as UTCTime; certificate validity
   2038      *  dates in 2050 or later MUST be encoded as GeneralizedTime."
   2039      */
   2040     switch (ctm->type) {
   2041     case V_ASN1_UTCTIME:
   2042         if (ctm->length != (int)(utctime_length))
   2043             return 0;
   2044         break;
   2045     case V_ASN1_GENERALIZEDTIME:
   2046         if (ctm->length != (int)(generalizedtime_length))
   2047             return 0;
   2048         break;
   2049     default:
   2050         return 0;
   2051     }
   2052 
   2053     /**
   2054      * Verify the format: the ASN.1 functions we use below allow a more
   2055      * flexible format than what's mandated by RFC 5280.
   2056      * Digit and date ranges will be verified in the conversion methods.
   2057      */
   2058     for (i = 0; i < ctm->length - 1; i++) {
   2059         if (!ossl_ascii_isdigit(ctm->data[i]))
   2060             return 0;
   2061     }
   2062     if (ctm->data[ctm->length - 1] != upper_z)
   2063         return 0;
   2064 
   2065     /*
   2066      * There is ASN1_UTCTIME_cmp_time_t but no
   2067      * ASN1_GENERALIZEDTIME_cmp_time_t or ASN1_TIME_cmp_time_t,
   2068      * so we go through ASN.1
   2069      */
   2070     asn1_cmp_time = X509_time_adj(NULL, 0, cmp_time);
   2071     if (asn1_cmp_time == NULL)
   2072         goto err;
   2073     if (ASN1_TIME_diff(&day, &sec, ctm, asn1_cmp_time) == 0)
   2074         goto err;
   2075 
   2076     /*
   2077      * X509_cmp_time comparison is <=.
   2078      * The return value 0 is reserved for errors.
   2079      */
   2080     ret = (day >= 0 && sec >= 0) ? -1 : 1;
   2081 
   2082 err:
   2083     ASN1_TIME_free(asn1_cmp_time);
   2084     return ret;
   2085 }
   2086 
   2087 /*
   2088  * Return 0 if time should not be checked or reference time is in range,
   2089  * or else 1 if it is past the end, or -1 if it is before the start
   2090  */
   2091 int X509_cmp_timeframe(const X509_VERIFY_PARAM *vpm,
   2092     const ASN1_TIME *start, const ASN1_TIME *end)
   2093 {
   2094     time_t ref_time;
   2095     time_t *time = NULL;
   2096     unsigned long flags = vpm == NULL ? 0 : X509_VERIFY_PARAM_get_flags(vpm);
   2097 
   2098     if ((flags & X509_V_FLAG_USE_CHECK_TIME) != 0) {
   2099         ref_time = X509_VERIFY_PARAM_get_time(vpm);
   2100         time = &ref_time;
   2101     } else if ((flags & X509_V_FLAG_NO_CHECK_TIME) != 0) {
   2102         return 0; /* this means ok */
   2103     } /* else reference time is the current time */
   2104 
   2105     if (end != NULL && X509_cmp_time(end, time) < 0)
   2106         return 1;
   2107     if (start != NULL && X509_cmp_time(start, time) > 0)
   2108         return -1;
   2109     return 0;
   2110 }
   2111 
   2112 ASN1_TIME *X509_gmtime_adj(ASN1_TIME *s, long adj)
   2113 {
   2114     return X509_time_adj(s, adj, NULL);
   2115 }
   2116 
   2117 ASN1_TIME *X509_time_adj(ASN1_TIME *s, long offset_sec, time_t *in_tm)
   2118 {
   2119     return X509_time_adj_ex(s, 0, offset_sec, in_tm);
   2120 }
   2121 
   2122 ASN1_TIME *X509_time_adj_ex(ASN1_TIME *s,
   2123     int offset_day, long offset_sec, time_t *in_tm)
   2124 {
   2125     time_t t;
   2126 
   2127     if (in_tm)
   2128         t = *in_tm;
   2129     else
   2130         time(&t);
   2131 
   2132     if (s != NULL && (s->flags & ASN1_STRING_FLAG_MSTRING) == 0) {
   2133         if (s->type == V_ASN1_UTCTIME)
   2134             return ASN1_UTCTIME_adj(s, t, offset_day, offset_sec);
   2135         if (s->type == V_ASN1_GENERALIZEDTIME)
   2136             return ASN1_GENERALIZEDTIME_adj(s, t, offset_day, offset_sec);
   2137     }
   2138     return ASN1_TIME_adj(s, t, offset_day, offset_sec);
   2139 }
   2140 
   2141 /* Copy any missing public key parameters up the chain towards pkey */
   2142 int X509_get_pubkey_parameters(EVP_PKEY *pkey, STACK_OF(X509) *chain)
   2143 {
   2144     EVP_PKEY *ktmp = NULL, *ktmp2;
   2145     int i, j;
   2146 
   2147     if (pkey != NULL && !EVP_PKEY_missing_parameters(pkey))
   2148         return 1;
   2149 
   2150     for (i = 0; i < sk_X509_num(chain); i++) {
   2151         ktmp = X509_get0_pubkey(sk_X509_value(chain, i));
   2152         if (ktmp == NULL) {
   2153             ERR_raise(ERR_LIB_X509, X509_R_UNABLE_TO_GET_CERTS_PUBLIC_KEY);
   2154             return 0;
   2155         }
   2156         if (!EVP_PKEY_missing_parameters(ktmp))
   2157             break;
   2158         ktmp = NULL;
   2159     }
   2160     if (ktmp == NULL) {
   2161         ERR_raise(ERR_LIB_X509, X509_R_UNABLE_TO_FIND_PARAMETERS_IN_CHAIN);
   2162         return 0;
   2163     }
   2164 
   2165     /* first, populate the other certs */
   2166     for (j = i - 1; j >= 0; j--) {
   2167         ktmp2 = X509_get0_pubkey(sk_X509_value(chain, j));
   2168         if (!EVP_PKEY_copy_parameters(ktmp2, ktmp))
   2169             return 0;
   2170     }
   2171 
   2172     if (pkey != NULL)
   2173         return EVP_PKEY_copy_parameters(pkey, ktmp);
   2174     return 1;
   2175 }
   2176 
   2177 /*
   2178  * Make a delta CRL as the difference between two full CRLs.
   2179  * Sadly, returns NULL also on internal error.
   2180  */
   2181 X509_CRL *X509_CRL_diff(X509_CRL *base, X509_CRL *newer,
   2182     EVP_PKEY *skey, const EVP_MD *md, unsigned int flags)
   2183 {
   2184     X509_CRL *crl = NULL;
   2185     int i;
   2186     STACK_OF(X509_REVOKED) *revs = NULL;
   2187 
   2188     /* CRLs can't be delta already */
   2189     if (base->base_crl_number != NULL || newer->base_crl_number != NULL) {
   2190         ERR_raise(ERR_LIB_X509, X509_R_CRL_ALREADY_DELTA);
   2191         return NULL;
   2192     }
   2193     /* Base and new CRL must have a CRL number */
   2194     if (base->crl_number == NULL || newer->crl_number == NULL) {
   2195         ERR_raise(ERR_LIB_X509, X509_R_NO_CRL_NUMBER);
   2196         return NULL;
   2197     }
   2198     /* Issuer names must match */
   2199     if (X509_NAME_cmp(X509_CRL_get_issuer(base),
   2200             X509_CRL_get_issuer(newer))
   2201         != 0) {
   2202         ERR_raise(ERR_LIB_X509, X509_R_ISSUER_MISMATCH);
   2203         return NULL;
   2204     }
   2205     /* AKID and IDP must match */
   2206     if (!crl_extension_match(base, newer, NID_authority_key_identifier)) {
   2207         ERR_raise(ERR_LIB_X509, X509_R_AKID_MISMATCH);
   2208         return NULL;
   2209     }
   2210     if (!crl_extension_match(base, newer, NID_issuing_distribution_point)) {
   2211         ERR_raise(ERR_LIB_X509, X509_R_IDP_MISMATCH);
   2212         return NULL;
   2213     }
   2214     /* Newer CRL number must exceed full CRL number */
   2215     if (ASN1_INTEGER_cmp(newer->crl_number, base->crl_number) <= 0) {
   2216         ERR_raise(ERR_LIB_X509, X509_R_NEWER_CRL_NOT_NEWER);
   2217         return NULL;
   2218     }
   2219     /* CRLs must verify */
   2220     if (skey != NULL && (X509_CRL_verify(base, skey) <= 0 || X509_CRL_verify(newer, skey) <= 0)) {
   2221         ERR_raise(ERR_LIB_X509, X509_R_CRL_VERIFY_FAILURE);
   2222         return NULL;
   2223     }
   2224     /* Create new CRL */
   2225     crl = X509_CRL_new_ex(base->libctx, base->propq);
   2226     if (crl == NULL || !X509_CRL_set_version(crl, X509_CRL_VERSION_2)) {
   2227         ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
   2228         goto err;
   2229     }
   2230     /* Set issuer name */
   2231     if (!X509_CRL_set_issuer_name(crl, X509_CRL_get_issuer(newer))) {
   2232         ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
   2233         goto err;
   2234     }
   2235 
   2236     if (!X509_CRL_set1_lastUpdate(crl, X509_CRL_get0_lastUpdate(newer))) {
   2237         ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
   2238         goto err;
   2239     }
   2240     if (!X509_CRL_set1_nextUpdate(crl, X509_CRL_get0_nextUpdate(newer))) {
   2241         ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
   2242         goto err;
   2243     }
   2244 
   2245     /* Set base CRL number: must be critical */
   2246     if (X509_CRL_add1_ext_i2d(crl, NID_delta_crl, base->crl_number, 1, 0) <= 0) {
   2247         ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
   2248         goto err;
   2249     }
   2250 
   2251     /*
   2252      * Copy extensions across from newest CRL to delta: this will set CRL
   2253      * number to correct value too.
   2254      */
   2255     for (i = 0; i < X509_CRL_get_ext_count(newer); i++) {
   2256         X509_EXTENSION *ext = X509_CRL_get_ext(newer, i);
   2257 
   2258         if (!X509_CRL_add_ext(crl, ext, -1)) {
   2259             ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
   2260             goto err;
   2261         }
   2262     }
   2263 
   2264     /* Go through revoked entries, copying as needed */
   2265     revs = X509_CRL_get_REVOKED(newer);
   2266 
   2267     for (i = 0; i < sk_X509_REVOKED_num(revs); i++) {
   2268         X509_REVOKED *rvn, *rvtmp;
   2269 
   2270         rvn = sk_X509_REVOKED_value(revs, i);
   2271         /*
   2272          * Add only if not also in base.
   2273          * Need something cleverer here for some more complex CRLs covering
   2274          * multiple CAs.
   2275          */
   2276         if (!X509_CRL_get0_by_serial(base, &rvtmp, &rvn->serialNumber)) {
   2277             rvtmp = X509_REVOKED_dup(rvn);
   2278             if (rvtmp == NULL) {
   2279                 ERR_raise(ERR_LIB_X509, ERR_R_ASN1_LIB);
   2280                 goto err;
   2281             }
   2282             if (!X509_CRL_add0_revoked(crl, rvtmp)) {
   2283                 X509_REVOKED_free(rvtmp);
   2284                 ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
   2285                 goto err;
   2286             }
   2287         }
   2288     }
   2289 
   2290     if (skey != NULL && md != NULL && !X509_CRL_sign(crl, skey, md)) {
   2291         ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
   2292         goto err;
   2293     }
   2294 
   2295     return crl;
   2296 
   2297 err:
   2298     X509_CRL_free(crl);
   2299     return NULL;
   2300 }
   2301 
   2302 int X509_STORE_CTX_set_ex_data(X509_STORE_CTX *ctx, int idx, void *data)
   2303 {
   2304     return CRYPTO_set_ex_data(&ctx->ex_data, idx, data);
   2305 }
   2306 
   2307 void *X509_STORE_CTX_get_ex_data(const X509_STORE_CTX *ctx, int idx)
   2308 {
   2309     return CRYPTO_get_ex_data(&ctx->ex_data, idx);
   2310 }
   2311 
   2312 int X509_STORE_CTX_get_error(const X509_STORE_CTX *ctx)
   2313 {
   2314     return ctx->error;
   2315 }
   2316 
   2317 void X509_STORE_CTX_set_error(X509_STORE_CTX *ctx, int err)
   2318 {
   2319     ctx->error = err;
   2320 }
   2321 
   2322 int X509_STORE_CTX_get_error_depth(const X509_STORE_CTX *ctx)
   2323 {
   2324     return ctx->error_depth;
   2325 }
   2326 
   2327 void X509_STORE_CTX_set_error_depth(X509_STORE_CTX *ctx, int depth)
   2328 {
   2329     ctx->error_depth = depth;
   2330 }
   2331 
   2332 X509 *X509_STORE_CTX_get_current_cert(const X509_STORE_CTX *ctx)
   2333 {
   2334     return ctx->current_cert;
   2335 }
   2336 
   2337 void X509_STORE_CTX_set_current_cert(X509_STORE_CTX *ctx, X509 *x)
   2338 {
   2339     ctx->current_cert = x;
   2340 }
   2341 
   2342 STACK_OF(X509) *X509_STORE_CTX_get0_chain(const X509_STORE_CTX *ctx)
   2343 {
   2344     return ctx->chain;
   2345 }
   2346 
   2347 STACK_OF(X509) *X509_STORE_CTX_get1_chain(const X509_STORE_CTX *ctx)
   2348 {
   2349     if (ctx->chain == NULL)
   2350         return NULL;
   2351     return X509_chain_up_ref(ctx->chain);
   2352 }
   2353 
   2354 X509 *X509_STORE_CTX_get0_current_issuer(const X509_STORE_CTX *ctx)
   2355 {
   2356     return ctx->current_issuer;
   2357 }
   2358 
   2359 X509_CRL *X509_STORE_CTX_get0_current_crl(const X509_STORE_CTX *ctx)
   2360 {
   2361     return ctx->current_crl;
   2362 }
   2363 
   2364 X509_STORE_CTX *X509_STORE_CTX_get0_parent_ctx(const X509_STORE_CTX *ctx)
   2365 {
   2366     return ctx->parent;
   2367 }
   2368 
   2369 void X509_STORE_CTX_set_cert(X509_STORE_CTX *ctx, X509 *x)
   2370 {
   2371     ctx->cert = x;
   2372 }
   2373 
   2374 void X509_STORE_CTX_set0_rpk(X509_STORE_CTX *ctx, EVP_PKEY *rpk)
   2375 {
   2376     ctx->rpk = rpk;
   2377 }
   2378 
   2379 void X509_STORE_CTX_set0_crls(X509_STORE_CTX *ctx, STACK_OF(X509_CRL) *sk)
   2380 {
   2381     ctx->crls = sk;
   2382 }
   2383 
   2384 int X509_STORE_CTX_set_purpose(X509_STORE_CTX *ctx, int purpose)
   2385 {
   2386     /*
   2387      * XXX: Why isn't this function always used to set the associated trust?
   2388      * Should there even be a VPM->trust field at all?  Or should the trust
   2389      * always be inferred from the purpose by X509_STORE_CTX_init().
   2390      */
   2391     return X509_STORE_CTX_purpose_inherit(ctx, 0, purpose, 0);
   2392 }
   2393 
   2394 int X509_STORE_CTX_set_trust(X509_STORE_CTX *ctx, int trust)
   2395 {
   2396     /*
   2397      * XXX: See above, this function would only be needed when the default
   2398      * trust for the purpose needs an override in a corner case.
   2399      */
   2400     return X509_STORE_CTX_purpose_inherit(ctx, 0, 0, trust);
   2401 }
   2402 
   2403 /*
   2404  * This function is used to set the X509_STORE_CTX purpose and trust values.
   2405  * This is intended to be used when another structure has its own trust and
   2406  * purpose values which (if set) will be inherited by the ctx. If they aren't
   2407  * set then we will usually have a default purpose in mind which should then
   2408  * be used to set the trust value. An example of this is SSL use: an SSL
   2409  * structure will have its own purpose and trust settings which the
   2410  * application can set: if they aren't set then we use the default of SSL
   2411  * client/server.
   2412  */
   2413 int X509_STORE_CTX_purpose_inherit(X509_STORE_CTX *ctx, int def_purpose,
   2414     int purpose, int trust)
   2415 {
   2416     int idx;
   2417 
   2418     /* If purpose not set use default */
   2419     if (purpose == 0)
   2420         purpose = def_purpose;
   2421     /*
   2422      * If purpose is set but we don't have a default then set the default to
   2423      * the current purpose
   2424      */
   2425     else if (def_purpose == 0)
   2426         def_purpose = purpose;
   2427     /* If we have a purpose then check it is valid */
   2428     if (purpose != 0) {
   2429         X509_PURPOSE *ptmp;
   2430 
   2431         idx = X509_PURPOSE_get_by_id(purpose);
   2432         if (idx == -1) {
   2433             ERR_raise(ERR_LIB_X509, X509_R_UNKNOWN_PURPOSE_ID);
   2434             return 0;
   2435         }
   2436         ptmp = X509_PURPOSE_get0(idx);
   2437         if (ptmp->trust == X509_TRUST_DEFAULT) {
   2438             idx = X509_PURPOSE_get_by_id(def_purpose);
   2439             if (idx == -1) {
   2440                 ERR_raise(ERR_LIB_X509, X509_R_UNKNOWN_PURPOSE_ID);
   2441                 return 0;
   2442             }
   2443             ptmp = X509_PURPOSE_get0(idx);
   2444         }
   2445         /* If trust not set then get from purpose default */
   2446         if (trust == 0)
   2447             trust = ptmp->trust;
   2448     }
   2449     if (trust != 0) {
   2450         idx = X509_TRUST_get_by_id(trust);
   2451         if (idx == -1) {
   2452             ERR_raise(ERR_LIB_X509, X509_R_UNKNOWN_TRUST_ID);
   2453             return 0;
   2454         }
   2455     }
   2456 
   2457     if (ctx->param->purpose == 0 && purpose != 0)
   2458         ctx->param->purpose = purpose;
   2459     if (ctx->param->trust == 0 && trust != 0)
   2460         ctx->param->trust = trust;
   2461     return 1;
   2462 }
   2463 
   2464 X509_STORE_CTX *X509_STORE_CTX_new_ex(OSSL_LIB_CTX *libctx, const char *propq)
   2465 {
   2466     X509_STORE_CTX *ctx = OPENSSL_zalloc(sizeof(*ctx));
   2467 
   2468     if (ctx == NULL)
   2469         return NULL;
   2470 
   2471     ctx->libctx = libctx;
   2472     if (propq != NULL) {
   2473         ctx->propq = OPENSSL_strdup(propq);
   2474         if (ctx->propq == NULL) {
   2475             OPENSSL_free(ctx);
   2476             return NULL;
   2477         }
   2478     }
   2479 
   2480     return ctx;
   2481 }
   2482 
   2483 X509_STORE_CTX *X509_STORE_CTX_new(void)
   2484 {
   2485     return X509_STORE_CTX_new_ex(NULL, NULL);
   2486 }
   2487 
   2488 void X509_STORE_CTX_free(X509_STORE_CTX *ctx)
   2489 {
   2490     if (ctx == NULL)
   2491         return;
   2492 
   2493     X509_STORE_CTX_cleanup(ctx);
   2494 
   2495     /* libctx and propq survive X509_STORE_CTX_cleanup() */
   2496     OPENSSL_free(ctx->propq);
   2497     OPENSSL_free(ctx);
   2498 }
   2499 
   2500 int X509_STORE_CTX_init_rpk(X509_STORE_CTX *ctx, X509_STORE *store, EVP_PKEY *rpk)
   2501 {
   2502     if (!X509_STORE_CTX_init(ctx, store, NULL, NULL))
   2503         return 0;
   2504     ctx->rpk = rpk;
   2505     return 1;
   2506 }
   2507 
   2508 int X509_STORE_CTX_init(X509_STORE_CTX *ctx, X509_STORE *store, X509 *x509,
   2509     STACK_OF(X509) *chain)
   2510 {
   2511     if (ctx == NULL) {
   2512         ERR_raise(ERR_LIB_X509, ERR_R_PASSED_NULL_PARAMETER);
   2513         return 0;
   2514     }
   2515     X509_STORE_CTX_cleanup(ctx);
   2516 
   2517     ctx->store = store;
   2518     ctx->cert = x509;
   2519     ctx->untrusted = chain;
   2520     ctx->crls = NULL;
   2521     ctx->num_untrusted = 0;
   2522     ctx->other_ctx = NULL;
   2523     ctx->valid = 0;
   2524     ctx->chain = NULL;
   2525     ctx->error = X509_V_OK;
   2526     ctx->explicit_policy = 0;
   2527     ctx->error_depth = 0;
   2528     ctx->current_cert = NULL;
   2529     ctx->current_issuer = NULL;
   2530     ctx->current_crl = NULL;
   2531     ctx->current_crl_score = 0;
   2532     ctx->current_reasons = 0;
   2533     ctx->tree = NULL;
   2534     ctx->parent = NULL;
   2535     ctx->dane = NULL;
   2536     ctx->bare_ta_signed = 0;
   2537     ctx->rpk = NULL;
   2538     /* Zero ex_data to make sure we're cleanup-safe */
   2539     memset(&ctx->ex_data, 0, sizeof(ctx->ex_data));
   2540 
   2541     /* store->cleanup is always 0 in OpenSSL, if set must be idempotent */
   2542     if (store != NULL)
   2543         ctx->cleanup = store->cleanup;
   2544     else
   2545         ctx->cleanup = NULL;
   2546 
   2547     if (store != NULL && store->check_issued != NULL)
   2548         ctx->check_issued = store->check_issued;
   2549     else
   2550         ctx->check_issued = check_issued;
   2551 
   2552     if (store != NULL && store->get_issuer != NULL)
   2553         ctx->get_issuer = store->get_issuer;
   2554     else
   2555         ctx->get_issuer = X509_STORE_CTX_get1_issuer;
   2556 
   2557     if (store != NULL && store->verify_cb != NULL)
   2558         ctx->verify_cb = store->verify_cb;
   2559     else
   2560         ctx->verify_cb = null_callback;
   2561 
   2562     if (store != NULL && store->verify != NULL)
   2563         ctx->verify = store->verify;
   2564     else
   2565         ctx->verify = internal_verify;
   2566 
   2567     if (store != NULL && store->check_revocation != NULL)
   2568         ctx->check_revocation = store->check_revocation;
   2569     else
   2570         ctx->check_revocation = check_revocation;
   2571 
   2572     if (store != NULL && store->get_crl != NULL)
   2573         ctx->get_crl = store->get_crl;
   2574     else
   2575         ctx->get_crl = NULL;
   2576 
   2577     if (store != NULL && store->check_crl != NULL)
   2578         ctx->check_crl = store->check_crl;
   2579     else
   2580         ctx->check_crl = check_crl;
   2581 
   2582     if (store != NULL && store->cert_crl != NULL)
   2583         ctx->cert_crl = store->cert_crl;
   2584     else
   2585         ctx->cert_crl = cert_crl;
   2586 
   2587     if (store != NULL && store->check_policy != NULL)
   2588         ctx->check_policy = store->check_policy;
   2589     else
   2590         ctx->check_policy = check_policy;
   2591 
   2592     if (store != NULL && store->lookup_certs != NULL)
   2593         ctx->lookup_certs = store->lookup_certs;
   2594     else
   2595         ctx->lookup_certs = X509_STORE_CTX_get1_certs;
   2596 
   2597     if (store != NULL && store->lookup_crls != NULL)
   2598         ctx->lookup_crls = store->lookup_crls;
   2599     else
   2600         ctx->lookup_crls = X509_STORE_CTX_get1_crls;
   2601 
   2602     ctx->param = X509_VERIFY_PARAM_new();
   2603     if (ctx->param == NULL) {
   2604         ERR_raise(ERR_LIB_X509, ERR_R_ASN1_LIB);
   2605         goto err;
   2606     }
   2607 
   2608     /* Inherit callbacks and flags from X509_STORE if not set use defaults. */
   2609     if (store == NULL)
   2610         ctx->param->inh_flags |= X509_VP_FLAG_DEFAULT | X509_VP_FLAG_ONCE;
   2611     else if (X509_VERIFY_PARAM_inherit(ctx->param, store->param) == 0)
   2612         goto err;
   2613 
   2614     if (!X509_STORE_CTX_set_default(ctx, "default"))
   2615         goto err;
   2616 
   2617     /*
   2618      * XXX: For now, continue to inherit trust from VPM, but infer from the
   2619      * purpose if this still yields the default value.
   2620      */
   2621     if (ctx->param->trust == X509_TRUST_DEFAULT) {
   2622         int idx = X509_PURPOSE_get_by_id(ctx->param->purpose);
   2623         X509_PURPOSE *xp = X509_PURPOSE_get0(idx);
   2624 
   2625         if (xp != NULL)
   2626             ctx->param->trust = X509_PURPOSE_get_trust(xp);
   2627     }
   2628 
   2629     if (CRYPTO_new_ex_data(CRYPTO_EX_INDEX_X509_STORE_CTX, ctx,
   2630             &ctx->ex_data))
   2631         return 1;
   2632     ERR_raise(ERR_LIB_X509, ERR_R_CRYPTO_LIB);
   2633 
   2634 err:
   2635     /*
   2636      * On error clean up allocated storage, if the store context was not
   2637      * allocated with X509_STORE_CTX_new() this is our last chance to do so.
   2638      */
   2639     X509_STORE_CTX_cleanup(ctx);
   2640     return 0;
   2641 }
   2642 
   2643 /*
   2644  * Set alternative get_issuer method: just from a STACK of trusted certificates.
   2645  * This avoids the complexity of X509_STORE where it is not needed.
   2646  */
   2647 void X509_STORE_CTX_set0_trusted_stack(X509_STORE_CTX *ctx, STACK_OF(X509) *sk)
   2648 {
   2649     ctx->other_ctx = sk;
   2650     ctx->get_issuer = get1_best_issuer_other_sk;
   2651     ctx->lookup_certs = lookup_certs_sk;
   2652 }
   2653 
   2654 void X509_STORE_CTX_cleanup(X509_STORE_CTX *ctx)
   2655 {
   2656     /*
   2657      * We need to be idempotent because, unfortunately, free() also calls
   2658      * cleanup(), so the natural call sequence new(), init(), cleanup(), free()
   2659      * calls cleanup() for the same object twice!  Thus we must zero the
   2660      * pointers below after they're freed!
   2661      */
   2662     /* Seems to always be NULL in OpenSSL, do this at most once. */
   2663     if (ctx->cleanup != NULL) {
   2664         ctx->cleanup(ctx);
   2665         ctx->cleanup = NULL;
   2666     }
   2667     if (ctx->param != NULL) {
   2668         if (ctx->parent == NULL)
   2669             X509_VERIFY_PARAM_free(ctx->param);
   2670         ctx->param = NULL;
   2671     }
   2672     X509_policy_tree_free(ctx->tree);
   2673     ctx->tree = NULL;
   2674     OSSL_STACK_OF_X509_free(ctx->chain);
   2675     ctx->chain = NULL;
   2676     CRYPTO_free_ex_data(CRYPTO_EX_INDEX_X509_STORE_CTX, ctx, &(ctx->ex_data));
   2677     memset(&ctx->ex_data, 0, sizeof(ctx->ex_data));
   2678 }
   2679 
   2680 void X509_STORE_CTX_set_depth(X509_STORE_CTX *ctx, int depth)
   2681 {
   2682     X509_VERIFY_PARAM_set_depth(ctx->param, depth);
   2683 }
   2684 
   2685 void X509_STORE_CTX_set_flags(X509_STORE_CTX *ctx, unsigned long flags)
   2686 {
   2687     X509_VERIFY_PARAM_set_flags(ctx->param, flags);
   2688 }
   2689 
   2690 void X509_STORE_CTX_set_time(X509_STORE_CTX *ctx, unsigned long flags,
   2691     time_t t)
   2692 {
   2693     X509_VERIFY_PARAM_set_time(ctx->param, t);
   2694 }
   2695 
   2696 void X509_STORE_CTX_set_current_reasons(X509_STORE_CTX *ctx,
   2697     unsigned int current_reasons)
   2698 {
   2699     ctx->current_reasons = current_reasons;
   2700 }
   2701 
   2702 X509 *X509_STORE_CTX_get0_cert(const X509_STORE_CTX *ctx)
   2703 {
   2704     return ctx->cert;
   2705 }
   2706 
   2707 EVP_PKEY *X509_STORE_CTX_get0_rpk(const X509_STORE_CTX *ctx)
   2708 {
   2709     return ctx->rpk;
   2710 }
   2711 
   2712 STACK_OF(X509) *X509_STORE_CTX_get0_untrusted(const X509_STORE_CTX *ctx)
   2713 {
   2714     return ctx->untrusted;
   2715 }
   2716 
   2717 void X509_STORE_CTX_set0_untrusted(X509_STORE_CTX *ctx, STACK_OF(X509) *sk)
   2718 {
   2719     ctx->untrusted = sk;
   2720 }
   2721 
   2722 void X509_STORE_CTX_set0_verified_chain(X509_STORE_CTX *ctx, STACK_OF(X509) *sk)
   2723 {
   2724     OSSL_STACK_OF_X509_free(ctx->chain);
   2725     ctx->chain = sk;
   2726 }
   2727 
   2728 void X509_STORE_CTX_set_verify_cb(X509_STORE_CTX *ctx,
   2729     X509_STORE_CTX_verify_cb verify_cb)
   2730 {
   2731     ctx->verify_cb = verify_cb;
   2732 }
   2733 
   2734 X509_STORE_CTX_verify_cb X509_STORE_CTX_get_verify_cb(const X509_STORE_CTX *ctx)
   2735 {
   2736     return ctx->verify_cb;
   2737 }
   2738 
   2739 void X509_STORE_CTX_set_verify(X509_STORE_CTX *ctx,
   2740     X509_STORE_CTX_verify_fn verify)
   2741 {
   2742     ctx->verify = verify;
   2743 }
   2744 
   2745 X509_STORE_CTX_verify_fn X509_STORE_CTX_get_verify(const X509_STORE_CTX *ctx)
   2746 {
   2747     return ctx->verify;
   2748 }
   2749 
   2750 X509_STORE_CTX_get_issuer_fn
   2751 X509_STORE_CTX_get_get_issuer(const X509_STORE_CTX *ctx)
   2752 {
   2753     return ctx->get_issuer;
   2754 }
   2755 
   2756 X509_STORE_CTX_check_issued_fn
   2757 X509_STORE_CTX_get_check_issued(const X509_STORE_CTX *ctx)
   2758 {
   2759     return ctx->check_issued;
   2760 }
   2761 
   2762 X509_STORE_CTX_check_revocation_fn
   2763 X509_STORE_CTX_get_check_revocation(const X509_STORE_CTX *ctx)
   2764 {
   2765     return ctx->check_revocation;
   2766 }
   2767 
   2768 X509_STORE_CTX_get_crl_fn X509_STORE_CTX_get_get_crl(const X509_STORE_CTX *ctx)
   2769 {
   2770     return ctx->get_crl;
   2771 }
   2772 
   2773 void X509_STORE_CTX_set_get_crl(X509_STORE_CTX *ctx,
   2774     X509_STORE_CTX_get_crl_fn get_crl)
   2775 {
   2776     ctx->get_crl = get_crl;
   2777 }
   2778 
   2779 X509_STORE_CTX_check_crl_fn
   2780 X509_STORE_CTX_get_check_crl(const X509_STORE_CTX *ctx)
   2781 {
   2782     return ctx->check_crl;
   2783 }
   2784 
   2785 X509_STORE_CTX_cert_crl_fn
   2786 X509_STORE_CTX_get_cert_crl(const X509_STORE_CTX *ctx)
   2787 {
   2788     return ctx->cert_crl;
   2789 }
   2790 
   2791 X509_STORE_CTX_check_policy_fn
   2792 X509_STORE_CTX_get_check_policy(const X509_STORE_CTX *ctx)
   2793 {
   2794     return ctx->check_policy;
   2795 }
   2796 
   2797 X509_STORE_CTX_lookup_certs_fn
   2798 X509_STORE_CTX_get_lookup_certs(const X509_STORE_CTX *ctx)
   2799 {
   2800     return ctx->lookup_certs;
   2801 }
   2802 
   2803 X509_STORE_CTX_lookup_crls_fn
   2804 X509_STORE_CTX_get_lookup_crls(const X509_STORE_CTX *ctx)
   2805 {
   2806     return ctx->lookup_crls;
   2807 }
   2808 
   2809 X509_STORE_CTX_cleanup_fn X509_STORE_CTX_get_cleanup(const X509_STORE_CTX *ctx)
   2810 {
   2811     return ctx->cleanup;
   2812 }
   2813 
   2814 X509_POLICY_TREE *X509_STORE_CTX_get0_policy_tree(const X509_STORE_CTX *ctx)
   2815 {
   2816     return ctx->tree;
   2817 }
   2818 
   2819 int X509_STORE_CTX_get_explicit_policy(const X509_STORE_CTX *ctx)
   2820 {
   2821     return ctx->explicit_policy;
   2822 }
   2823 
   2824 int X509_STORE_CTX_get_num_untrusted(const X509_STORE_CTX *ctx)
   2825 {
   2826     return ctx->num_untrusted;
   2827 }
   2828 
   2829 int X509_STORE_CTX_set_default(X509_STORE_CTX *ctx, const char *name)
   2830 {
   2831     const X509_VERIFY_PARAM *param;
   2832 
   2833     param = X509_VERIFY_PARAM_lookup(name);
   2834     if (param == NULL) {
   2835         ERR_raise_data(ERR_LIB_X509, X509_R_UNKNOWN_PURPOSE_ID, "name=%s", name);
   2836         return 0;
   2837     }
   2838     return X509_VERIFY_PARAM_inherit(ctx->param, param);
   2839 }
   2840 
   2841 X509_VERIFY_PARAM *X509_STORE_CTX_get0_param(const X509_STORE_CTX *ctx)
   2842 {
   2843     return ctx->param;
   2844 }
   2845 
   2846 void X509_STORE_CTX_set0_param(X509_STORE_CTX *ctx, X509_VERIFY_PARAM *param)
   2847 {
   2848     X509_VERIFY_PARAM_free(ctx->param);
   2849     ctx->param = param;
   2850 }
   2851 
   2852 void X509_STORE_CTX_set0_dane(X509_STORE_CTX *ctx, SSL_DANE *dane)
   2853 {
   2854     ctx->dane = dane;
   2855 }
   2856 
   2857 static unsigned char *dane_i2d(X509 *cert, uint8_t selector,
   2858     unsigned int *i2dlen)
   2859 {
   2860     unsigned char *buf = NULL;
   2861     int len;
   2862 
   2863     /*
   2864      * Extract ASN.1 DER form of certificate or public key.
   2865      */
   2866     switch (selector) {
   2867     case DANETLS_SELECTOR_CERT:
   2868         len = i2d_X509(cert, &buf);
   2869         break;
   2870     case DANETLS_SELECTOR_SPKI:
   2871         len = i2d_X509_PUBKEY(X509_get_X509_PUBKEY(cert), &buf);
   2872         break;
   2873     default:
   2874         ERR_raise(ERR_LIB_X509, X509_R_BAD_SELECTOR);
   2875         return NULL;
   2876     }
   2877 
   2878     if (len < 0 || buf == NULL) {
   2879         ERR_raise(ERR_LIB_X509, ERR_R_ASN1_LIB);
   2880         return NULL;
   2881     }
   2882 
   2883     *i2dlen = (unsigned int)len;
   2884     return buf;
   2885 }
   2886 
   2887 #define DANETLS_NONE 256 /* impossible uint8_t */
   2888 
   2889 /* Returns -1 on internal error */
   2890 static int dane_match_cert(X509_STORE_CTX *ctx, X509 *cert, int depth)
   2891 {
   2892     SSL_DANE *dane = ctx->dane;
   2893     unsigned usage = DANETLS_NONE;
   2894     unsigned selector = DANETLS_NONE;
   2895     unsigned ordinal = DANETLS_NONE;
   2896     unsigned mtype = DANETLS_NONE;
   2897     unsigned char *i2dbuf = NULL;
   2898     unsigned int i2dlen = 0;
   2899     unsigned char mdbuf[EVP_MAX_MD_SIZE];
   2900     unsigned char *cmpbuf = NULL;
   2901     unsigned int cmplen = 0;
   2902     int i;
   2903     int recnum;
   2904     int matched = 0;
   2905     danetls_record *t = NULL;
   2906     uint32_t mask;
   2907 
   2908     mask = (depth == 0) ? DANETLS_EE_MASK : DANETLS_TA_MASK;
   2909 
   2910     /* The trust store is not applicable with DANE-TA(2) */
   2911     if (depth >= ctx->num_untrusted)
   2912         mask &= DANETLS_PKIX_MASK;
   2913 
   2914     /*
   2915      * If we've previously matched a PKIX-?? record, no need to test any
   2916      * further PKIX-?? records, it remains to just build the PKIX chain.
   2917      * Had the match been a DANE-?? record, we'd be done already.
   2918      */
   2919     if (dane->mdpth >= 0)
   2920         mask &= ~DANETLS_PKIX_MASK;
   2921 
   2922     /*-
   2923      * https://tools.ietf.org/html/rfc7671#section-5.1
   2924      * https://tools.ietf.org/html/rfc7671#section-5.2
   2925      * https://tools.ietf.org/html/rfc7671#section-5.3
   2926      * https://tools.ietf.org/html/rfc7671#section-5.4
   2927      *
   2928      * We handle DANE-EE(3) records first as they require no chain building
   2929      * and no expiration or hostname checks.  We also process digests with
   2930      * higher ordinals first and ignore lower priorities except Full(0) which
   2931      * is always processed (last).  If none match, we then process PKIX-EE(1).
   2932      *
   2933      * NOTE: This relies on DANE usages sorting before the corresponding PKIX
   2934      * usages in SSL_dane_tlsa_add(), and also on descending sorting of digest
   2935      * priorities.  See twin comment in ssl/ssl_lib.c.
   2936      *
   2937      * We expect that most TLSA RRsets will have just a single usage, so we
   2938      * don't go out of our way to cache multiple selector-specific i2d buffers
   2939      * across usages, but if the selector happens to remain the same as switch
   2940      * usages, that's OK.  Thus, a set of "3 1 1", "3 0 1", "1 1 1", "1 0 1",
   2941      * records would result in us generating each of the certificate and public
   2942      * key DER forms twice, but more typically we'd just see multiple "3 1 1"
   2943      * or multiple "3 0 1" records.
   2944      *
   2945      * As soon as we find a match at any given depth, we stop, because either
   2946      * we've matched a DANE-?? record and the peer is authenticated, or, after
   2947      * exhausting all DANE-?? records, we've matched a PKIX-?? record, which is
   2948      * sufficient for DANE, and what remains to do is ordinary PKIX validation.
   2949      */
   2950     recnum = (dane->umask & mask) != 0 ? sk_danetls_record_num(dane->trecs) : 0;
   2951     for (i = 0; matched == 0 && i < recnum; ++i) {
   2952         t = sk_danetls_record_value(dane->trecs, i);
   2953         if ((DANETLS_USAGE_BIT(t->usage) & mask) == 0)
   2954             continue;
   2955         if (t->usage != usage) {
   2956             usage = t->usage;
   2957 
   2958             /* Reset digest agility for each usage/selector pair */
   2959             mtype = DANETLS_NONE;
   2960             ordinal = dane->dctx->mdord[t->mtype];
   2961         }
   2962         if (t->selector != selector) {
   2963             selector = t->selector;
   2964 
   2965             /* Update per-selector state */
   2966             OPENSSL_free(i2dbuf);
   2967             i2dbuf = dane_i2d(cert, selector, &i2dlen);
   2968             if (i2dbuf == NULL)
   2969                 return -1;
   2970 
   2971             /* Reset digest agility for each usage/selector pair */
   2972             mtype = DANETLS_NONE;
   2973             ordinal = dane->dctx->mdord[t->mtype];
   2974         } else if (t->mtype != DANETLS_MATCHING_FULL) {
   2975             /*-
   2976              * Digest agility:
   2977              *
   2978              *     <https://tools.ietf.org/html/rfc7671#section-9>
   2979              *
   2980              * For a fixed selector, after processing all records with the
   2981              * highest mtype ordinal, ignore all mtypes with lower ordinals
   2982              * other than "Full".
   2983              */
   2984             if (dane->dctx->mdord[t->mtype] < ordinal)
   2985                 continue;
   2986         }
   2987 
   2988         /*
   2989          * Each time we hit a (new selector or) mtype, re-compute the relevant
   2990          * digest, more complex caching is not worth the code space.
   2991          */
   2992         if (t->mtype != mtype) {
   2993             const EVP_MD *md = dane->dctx->mdevp[mtype = t->mtype];
   2994 
   2995             cmpbuf = i2dbuf;
   2996             cmplen = i2dlen;
   2997 
   2998             if (md != NULL) {
   2999                 cmpbuf = mdbuf;
   3000                 if (!EVP_Digest(i2dbuf, i2dlen, cmpbuf, &cmplen, md, 0)) {
   3001                     matched = -1;
   3002                     break;
   3003                 }
   3004             }
   3005         }
   3006 
   3007         /*
   3008          * Squirrel away the certificate and depth if we have a match.  Any
   3009          * DANE match is dispositive, but with PKIX we still need to build a
   3010          * full chain.
   3011          */
   3012         if (cmplen == t->dlen && memcmp(cmpbuf, t->data, cmplen) == 0) {
   3013             if (DANETLS_USAGE_BIT(usage) & DANETLS_DANE_MASK)
   3014                 matched = 1;
   3015             if (matched || dane->mdpth < 0) {
   3016                 if (!X509_up_ref(cert)) {
   3017                     matched = -1;
   3018                     break;
   3019                 }
   3020 
   3021                 X509_free(dane->mcert);
   3022                 dane->mcert = cert;
   3023                 dane->mdpth = depth;
   3024                 dane->mtlsa = t;
   3025             }
   3026             break;
   3027         }
   3028     }
   3029 
   3030     /* Clear the one-element DER cache */
   3031     OPENSSL_free(i2dbuf);
   3032     return matched;
   3033 }
   3034 
   3035 /* Returns -1 on internal error */
   3036 static int check_dane_issuer(X509_STORE_CTX *ctx, int depth)
   3037 {
   3038     SSL_DANE *dane = ctx->dane;
   3039     int matched = 0;
   3040     X509 *cert;
   3041 
   3042     if (!DANETLS_HAS_TA(dane) || depth == 0)
   3043         return X509_TRUST_UNTRUSTED;
   3044 
   3045     /*
   3046      * Record any DANE trust anchor matches, for the first depth to test, if
   3047      * there's one at that depth. (This'll be false for length 1 chains looking
   3048      * for an exact match for the leaf certificate).
   3049      */
   3050     cert = sk_X509_value(ctx->chain, depth);
   3051     if (cert != NULL && (matched = dane_match_cert(ctx, cert, depth)) < 0)
   3052         return matched;
   3053     if (matched > 0) {
   3054         ctx->num_untrusted = depth - 1;
   3055         return X509_TRUST_TRUSTED;
   3056     }
   3057 
   3058     return X509_TRUST_UNTRUSTED;
   3059 }
   3060 
   3061 static int check_dane_pkeys(X509_STORE_CTX *ctx)
   3062 {
   3063     SSL_DANE *dane = ctx->dane;
   3064     danetls_record *t;
   3065     int num = ctx->num_untrusted;
   3066     X509 *cert = sk_X509_value(ctx->chain, num - 1);
   3067     int recnum = sk_danetls_record_num(dane->trecs);
   3068     int i;
   3069 
   3070     for (i = 0; i < recnum; ++i) {
   3071         t = sk_danetls_record_value(dane->trecs, i);
   3072         if (t->usage != DANETLS_USAGE_DANE_TA || t->selector != DANETLS_SELECTOR_SPKI || t->mtype != DANETLS_MATCHING_FULL || X509_verify(cert, t->spki) <= 0)
   3073             continue;
   3074 
   3075         /* Clear any PKIX-?? matches that failed to extend to a full chain */
   3076         X509_free(dane->mcert);
   3077         dane->mcert = NULL;
   3078 
   3079         /* Record match via a bare TA public key */
   3080         ctx->bare_ta_signed = 1;
   3081         dane->mdpth = num - 1;
   3082         dane->mtlsa = t;
   3083 
   3084         /* Prune any excess chain certificates */
   3085         num = sk_X509_num(ctx->chain);
   3086         for (; num > ctx->num_untrusted; --num)
   3087             X509_free(sk_X509_pop(ctx->chain));
   3088 
   3089         return X509_TRUST_TRUSTED;
   3090     }
   3091 
   3092     return X509_TRUST_UNTRUSTED;
   3093 }
   3094 
   3095 /*
   3096  * Only DANE-EE and SPKI are supported
   3097  * Returns -1 on internal error
   3098  */
   3099 static int dane_match_rpk(X509_STORE_CTX *ctx, EVP_PKEY *rpk)
   3100 {
   3101     SSL_DANE *dane = ctx->dane;
   3102     danetls_record *t = NULL;
   3103     int mtype = DANETLS_MATCHING_FULL;
   3104     unsigned char *i2dbuf = NULL;
   3105     unsigned int i2dlen = 0;
   3106     unsigned char mdbuf[EVP_MAX_MD_SIZE];
   3107     unsigned char *cmpbuf;
   3108     unsigned int cmplen = 0;
   3109     int len;
   3110     int recnum = sk_danetls_record_num(dane->trecs);
   3111     int i;
   3112     int matched = 0;
   3113 
   3114     /* Calculate ASN.1 DER of RPK */
   3115     if ((len = i2d_PUBKEY(rpk, &i2dbuf)) <= 0)
   3116         return -1;
   3117     cmplen = i2dlen = (unsigned int)len;
   3118     cmpbuf = i2dbuf;
   3119 
   3120     for (i = 0; i < recnum; i++) {
   3121         t = sk_danetls_record_value(dane->trecs, i);
   3122         if (t->usage != DANETLS_USAGE_DANE_EE || t->selector != DANETLS_SELECTOR_SPKI)
   3123             continue;
   3124 
   3125         /* Calculate hash - keep only one around */
   3126         if (t->mtype != mtype) {
   3127             const EVP_MD *md = dane->dctx->mdevp[mtype = t->mtype];
   3128 
   3129             cmpbuf = i2dbuf;
   3130             cmplen = i2dlen;
   3131 
   3132             if (md != NULL) {
   3133                 cmpbuf = mdbuf;
   3134                 if (!EVP_Digest(i2dbuf, i2dlen, cmpbuf, &cmplen, md, 0)) {
   3135                     matched = -1;
   3136                     break;
   3137                 }
   3138             }
   3139         }
   3140         if (cmplen == t->dlen && memcmp(cmpbuf, t->data, cmplen) == 0) {
   3141             matched = 1;
   3142             dane->mdpth = 0;
   3143             dane->mtlsa = t;
   3144             break;
   3145         }
   3146     }
   3147     OPENSSL_free(i2dbuf);
   3148     return matched;
   3149 }
   3150 
   3151 static void dane_reset(SSL_DANE *dane)
   3152 {
   3153     /* Reset state to verify another chain, or clear after failure. */
   3154     X509_free(dane->mcert);
   3155     dane->mcert = NULL;
   3156     dane->mtlsa = NULL;
   3157     dane->mdpth = -1;
   3158     dane->pdpth = -1;
   3159 }
   3160 
   3161 /* Sadly, returns 0 also on internal error in ctx->verify_cb(). */
   3162 static int check_leaf_suiteb(X509_STORE_CTX *ctx, X509 *cert)
   3163 {
   3164     int err = X509_chain_check_suiteb(NULL, cert, NULL, ctx->param->flags);
   3165 
   3166     CB_FAIL_IF(err != X509_V_OK, ctx, cert, 0, err);
   3167     return 1;
   3168 }
   3169 
   3170 /* Returns -1 on internal error */
   3171 static int dane_verify_rpk(X509_STORE_CTX *ctx)
   3172 {
   3173     SSL_DANE *dane = ctx->dane;
   3174     int matched;
   3175 
   3176     dane_reset(dane);
   3177 
   3178     /*
   3179      * Look for a DANE record for RPK
   3180      * If error, return -1
   3181      * If found, call ctx->verify_cb(1, ctx)
   3182      * If not found call ctx->verify_cb(0, ctx)
   3183      */
   3184     matched = dane_match_rpk(ctx, ctx->rpk);
   3185     ctx->error_depth = 0;
   3186 
   3187     if (matched < 0) {
   3188         ctx->error = X509_V_ERR_UNSPECIFIED;
   3189         return -1;
   3190     }
   3191 
   3192     if (matched > 0)
   3193         ctx->error = X509_V_OK;
   3194     else
   3195         ctx->error = X509_V_ERR_DANE_NO_MATCH;
   3196 
   3197     return verify_rpk(ctx);
   3198 }
   3199 
   3200 /* Returns -1 on internal error */
   3201 static int dane_verify(X509_STORE_CTX *ctx)
   3202 {
   3203     X509 *cert = ctx->cert;
   3204     SSL_DANE *dane = ctx->dane;
   3205     int matched;
   3206     int done;
   3207 
   3208     dane_reset(dane);
   3209 
   3210     /*-
   3211      * When testing the leaf certificate, if we match a DANE-EE(3) record,
   3212      * dane_match() returns 1 and we're done.  If however we match a PKIX-EE(1)
   3213      * record, the match depth and matching TLSA record are recorded, but the
   3214      * return value is 0, because we still need to find a PKIX trust anchor.
   3215      * Therefore, when DANE authentication is enabled (required), we're done
   3216      * if:
   3217      *   + matched < 0, internal error.
   3218      *   + matched == 1, we matched a DANE-EE(3) record
   3219      *   + matched == 0, mdepth < 0 (no PKIX-EE match) and there are no
   3220      *     DANE-TA(2) or PKIX-TA(0) to test.
   3221      */
   3222     matched = dane_match_cert(ctx, ctx->cert, 0);
   3223     done = matched != 0 || (!DANETLS_HAS_TA(dane) && dane->mdpth < 0);
   3224 
   3225     if (done && !X509_get_pubkey_parameters(NULL, ctx->chain))
   3226         return -1;
   3227 
   3228     if (matched > 0) {
   3229         /* Callback invoked as needed */
   3230         if (!check_leaf_suiteb(ctx, cert))
   3231             return 0;
   3232         /* Callback invoked as needed */
   3233         if ((dane->flags & DANE_FLAG_NO_DANE_EE_NAMECHECKS) == 0 && !check_id(ctx))
   3234             return 0;
   3235         /* Bypass internal_verify(), issue depth 0 success callback */
   3236         ctx->error_depth = 0;
   3237         ctx->current_cert = cert;
   3238         return ctx->verify_cb(1, ctx);
   3239     }
   3240 
   3241     if (matched < 0) {
   3242         ctx->error_depth = 0;
   3243         ctx->current_cert = cert;
   3244         ctx->error = X509_V_ERR_OUT_OF_MEM;
   3245         return -1;
   3246     }
   3247 
   3248     if (done) {
   3249         /* Fail early, TA-based success is not possible */
   3250         if (!check_leaf_suiteb(ctx, cert))
   3251             return 0;
   3252         return verify_cb_cert(ctx, cert, 0, X509_V_ERR_DANE_NO_MATCH);
   3253     }
   3254 
   3255     /*
   3256      * Chain verification for usages 0/1/2.  TLSA record matching of depth > 0
   3257      * certificates happens in-line with building the rest of the chain.
   3258      */
   3259     return verify_chain(ctx);
   3260 }
   3261 
   3262 /*
   3263  * Get trusted issuer, without duplicate suppression
   3264  * Returns -1 on internal error.
   3265  */
   3266 static int get1_trusted_issuer(X509 **issuer, X509_STORE_CTX *ctx, X509 *cert)
   3267 {
   3268     STACK_OF(X509) *saved_chain = ctx->chain;
   3269     int ok;
   3270 
   3271     ctx->chain = NULL;
   3272     ok = ctx->get_issuer(issuer, ctx, cert);
   3273     ctx->chain = saved_chain;
   3274 
   3275     return ok;
   3276 }
   3277 
   3278 /*-
   3279  * Returns -1 on internal error.
   3280  * Sadly, returns 0 also on internal error in ctx->verify_cb().
   3281  */
   3282 static int build_chain(X509_STORE_CTX *ctx)
   3283 {
   3284     SSL_DANE *dane = ctx->dane;
   3285     int num = sk_X509_num(ctx->chain);
   3286     STACK_OF(X509) *sk_untrusted = NULL;
   3287     unsigned int search;
   3288     int may_trusted = 0;
   3289     int may_alternate = 0;
   3290     int trust = X509_TRUST_UNTRUSTED;
   3291     int alt_untrusted = 0;
   3292     int max_depth;
   3293     int ok = 0;
   3294     int i;
   3295 
   3296     /* Our chain starts with a single untrusted element. */
   3297     if (!ossl_assert(num == 1 && ctx->num_untrusted == num))
   3298         goto int_err;
   3299 
   3300 #define S_DOUNTRUSTED (1 << 0) /* Search untrusted chain */
   3301 #define S_DOTRUSTED (1 << 1) /* Search trusted store */
   3302 #define S_DOALTERNATE (1 << 2) /* Retry with pruned alternate chain */
   3303     /*
   3304      * Set up search policy, untrusted if possible, trusted-first if enabled,
   3305      * which is the default.
   3306      * If we're doing DANE and not doing PKIX-TA/PKIX-EE, we never look in the
   3307      * trust_store, otherwise we might look there first.  If not trusted-first,
   3308      * and alternate chains are not disabled, try building an alternate chain
   3309      * if no luck with untrusted first.
   3310      */
   3311     search = ctx->untrusted != NULL ? S_DOUNTRUSTED : 0;
   3312     if (DANETLS_HAS_PKIX(dane) || !DANETLS_HAS_DANE(dane)) {
   3313         if (search == 0 || (ctx->param->flags & X509_V_FLAG_TRUSTED_FIRST) != 0)
   3314             search |= S_DOTRUSTED;
   3315         else if (!(ctx->param->flags & X509_V_FLAG_NO_ALT_CHAINS))
   3316             may_alternate = 1;
   3317         may_trusted = 1;
   3318     }
   3319 
   3320     /* Initialize empty untrusted stack. */
   3321     if ((sk_untrusted = sk_X509_new_null()) == NULL) {
   3322         ERR_raise(ERR_LIB_X509, ERR_R_CRYPTO_LIB);
   3323         goto memerr;
   3324     }
   3325 
   3326     /*
   3327      * If we got any "Cert(0) Full(0)" trust anchors from DNS, *prepend* them
   3328      * to our working copy of the untrusted certificate stack.
   3329      */
   3330     if (DANETLS_ENABLED(dane) && dane->certs != NULL
   3331         && !X509_add_certs(sk_untrusted, dane->certs, X509_ADD_FLAG_DEFAULT)) {
   3332         ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
   3333         goto memerr;
   3334     }
   3335 
   3336     /*
   3337      * Shallow-copy the stack of untrusted certificates (with TLS, this is
   3338      * typically the content of the peer's certificate message) so we can make
   3339      * multiple passes over it, while free to remove elements as we go.
   3340      */
   3341     if (!X509_add_certs(sk_untrusted, ctx->untrusted, X509_ADD_FLAG_DEFAULT)) {
   3342         ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB);
   3343         goto memerr;
   3344     }
   3345 
   3346     /*
   3347      * Still absurdly large, but arithmetically safe, a lower hard upper bound
   3348      * might be reasonable.
   3349      */
   3350     if (ctx->param->depth > INT_MAX / 2)
   3351         ctx->param->depth = INT_MAX / 2;
   3352 
   3353     /*
   3354      * Try to extend the chain until we reach an ultimately trusted issuer.
   3355      * Build chains up to one longer the limit, later fail if we hit the limit,
   3356      * with an X509_V_ERR_CERT_CHAIN_TOO_LONG error code.
   3357      */
   3358     max_depth = ctx->param->depth + 1;
   3359 
   3360     while (search != 0) {
   3361         X509 *curr, *issuer = NULL;
   3362 
   3363         num = sk_X509_num(ctx->chain);
   3364         ctx->error_depth = num - 1;
   3365         /*
   3366          * Look in the trust store if enabled for first lookup, or we've run
   3367          * out of untrusted issuers and search here is not disabled.  When we
   3368          * reach the depth limit, we stop extending the chain, if by that point
   3369          * we've not found a trust anchor, any trusted chain would be too long.
   3370          *
   3371          * The error reported to the application verify callback is at the
   3372          * maximal valid depth with the current certificate equal to the last
   3373          * not ultimately-trusted issuer.  For example, with verify_depth = 0,
   3374          * the callback will report errors at depth=1 when the immediate issuer
   3375          * of the leaf certificate is not a trust anchor.  No attempt will be
   3376          * made to locate an issuer for that certificate, since such a chain
   3377          * would be a-priori too long.
   3378          */
   3379         if ((search & S_DOTRUSTED) != 0) {
   3380             i = num;
   3381             if ((search & S_DOALTERNATE) != 0) {
   3382                 /*
   3383                  * As high up the chain as we can, look for an alternative
   3384                  * trusted issuer of an untrusted certificate that currently
   3385                  * has an untrusted issuer.  We use the alt_untrusted variable
   3386                  * to track how far up the chain we find the first match.  It
   3387                  * is only if and when we find a match, that we prune the chain
   3388                  * and reset ctx->num_untrusted to the reduced count of
   3389                  * untrusted certificates.  While we're searching for such a
   3390                  * match (which may never be found), it is neither safe nor
   3391                  * wise to preemptively modify either the chain or
   3392                  * ctx->num_untrusted.
   3393                  *
   3394                  * Note, like ctx->num_untrusted, alt_untrusted is a count of
   3395                  * untrusted certificates, not a "depth".
   3396                  */
   3397                 i = alt_untrusted;
   3398             }
   3399             curr = sk_X509_value(ctx->chain, i - 1);
   3400 
   3401             /* Note: get1_trusted_issuer() must be used even if self-signed. */
   3402             ok = num > max_depth ? 0 : get1_trusted_issuer(&issuer, ctx, curr);
   3403 
   3404             if (ok < 0) {
   3405                 trust = -1;
   3406                 ctx->error = X509_V_ERR_STORE_LOOKUP;
   3407                 break;
   3408             }
   3409 
   3410             if (ok > 0) {
   3411                 int self_signed = X509_self_signed(curr, 0);
   3412 
   3413                 if (self_signed < 0) {
   3414                     X509_free(issuer);
   3415                     goto int_err;
   3416                 }
   3417                 /*
   3418                  * Alternative trusted issuer for a mid-chain untrusted cert?
   3419                  * Pop the untrusted cert's successors and retry.  We might now
   3420                  * be able to complete a valid chain via the trust store.  Note
   3421                  * that despite the current trust store match we might still
   3422                  * fail complete the chain to a suitable trust anchor, in which
   3423                  * case we may prune some more untrusted certificates and try
   3424                  * again.  Thus the S_DOALTERNATE bit may yet be turned on
   3425                  * again with an even shorter untrusted chain!
   3426                  *
   3427                  * If in the process we threw away our matching PKIX-TA trust
   3428                  * anchor, reset DANE trust.  We might find a suitable trusted
   3429                  * certificate among the ones from the trust store.
   3430                  */
   3431                 if ((search & S_DOALTERNATE) != 0) {
   3432                     if (!ossl_assert(num > i && i > 0 && !self_signed)) {
   3433                         X509_free(issuer);
   3434                         goto int_err;
   3435                     }
   3436                     search &= ~S_DOALTERNATE;
   3437                     for (; num > i; --num)
   3438                         X509_free(sk_X509_pop(ctx->chain));
   3439                     ctx->num_untrusted = num;
   3440 
   3441                     if (DANETLS_ENABLED(dane) && dane->mdpth >= ctx->num_untrusted) {
   3442                         dane->mdpth = -1;
   3443                         X509_free(dane->mcert);
   3444                         dane->mcert = NULL;
   3445                     }
   3446                     if (DANETLS_ENABLED(dane) && dane->pdpth >= ctx->num_untrusted)
   3447                         dane->pdpth = -1;
   3448                 }
   3449 
   3450                 if (!self_signed) { /* untrusted not self-signed certificate */
   3451                     /* Grow the chain by trusted issuer */
   3452                     if (!sk_X509_push(ctx->chain, issuer)) {
   3453                         X509_free(issuer);
   3454                         ERR_raise(ERR_LIB_X509, ERR_R_CRYPTO_LIB);
   3455                         goto memerr;
   3456                     }
   3457                     if ((self_signed = X509_self_signed(issuer, 0)) < 0)
   3458                         goto int_err;
   3459                 } else {
   3460                     /*
   3461                      * We have a self-signed untrusted cert that has the same
   3462                      * subject name (and perhaps keyid and/or serial number) as
   3463                      * a trust anchor.  We must have an exact match to avoid
   3464                      * possible impersonation via key substitution etc.
   3465                      */
   3466                     if (X509_cmp(curr, issuer) != 0) {
   3467                         /* Self-signed untrusted mimic. */
   3468                         X509_free(issuer);
   3469                         ok = 0;
   3470                     } else { /* curr "==" issuer */
   3471                         /*
   3472                          * Replace self-signed untrusted certificate
   3473                          * by its trusted matching issuer.
   3474                          */
   3475                         X509_free(curr);
   3476                         ctx->num_untrusted = --num;
   3477                         (void)sk_X509_set(ctx->chain, num, issuer);
   3478                     }
   3479                 }
   3480 
   3481                 /*
   3482                  * We've added a new trusted certificate to the chain, re-check
   3483                  * trust.  If not done, and not self-signed look deeper.
   3484                  * Whether or not we're doing "trusted first", we no longer
   3485                  * look for untrusted certificates from the peer's chain.
   3486                  *
   3487                  * At this point ctx->num_trusted and num must reflect the
   3488                  * correct number of untrusted certificates, since the DANE
   3489                  * logic in check_trust() depends on distinguishing CAs from
   3490                  * "the wire" from CAs from the trust store.  In particular, the
   3491                  * certificate at depth "num" should be the new trusted
   3492                  * certificate with ctx->num_untrusted <= num.
   3493                  */
   3494                 if (ok) {
   3495                     if (!ossl_assert(ctx->num_untrusted <= num))
   3496                         goto int_err;
   3497                     search &= ~S_DOUNTRUSTED;
   3498                     trust = check_trust(ctx, num);
   3499                     if (trust != X509_TRUST_UNTRUSTED)
   3500                         break;
   3501                     if (!self_signed)
   3502                         continue;
   3503                 }
   3504             }
   3505 
   3506             /*
   3507              * No dispositive decision, and either self-signed or no match, if
   3508              * we were doing untrusted-first, and alt-chains are not disabled,
   3509              * do that, by repeatedly losing one untrusted element at a time,
   3510              * and trying to extend the shorted chain.
   3511              */
   3512             if ((search & S_DOUNTRUSTED) == 0) {
   3513                 /* Continue search for a trusted issuer of a shorter chain? */
   3514                 if ((search & S_DOALTERNATE) != 0 && --alt_untrusted > 0)
   3515                     continue;
   3516                 /* Still no luck and no fallbacks left? */
   3517                 if (!may_alternate || (search & S_DOALTERNATE) != 0 || ctx->num_untrusted < 2)
   3518                     break;
   3519                 /* Search for a trusted issuer of a shorter chain */
   3520                 search |= S_DOALTERNATE;
   3521                 alt_untrusted = ctx->num_untrusted - 1;
   3522             }
   3523         }
   3524 
   3525         /*
   3526          * Try to extend chain with peer-provided untrusted certificate
   3527          */
   3528         if ((search & S_DOUNTRUSTED) != 0) {
   3529             num = sk_X509_num(ctx->chain);
   3530             if (!ossl_assert(num == ctx->num_untrusted))
   3531                 goto int_err;
   3532             curr = sk_X509_value(ctx->chain, num - 1);
   3533             issuer = (X509_self_signed(curr, 0) > 0 || num > max_depth) ? NULL : get0_best_issuer_sk(ctx, 0, 1 /* no_dup */, sk_untrusted, curr);
   3534             if (issuer == NULL) {
   3535                 /*
   3536                  * Once we have reached a self-signed cert or num > max_depth
   3537                  * or can't find an issuer in the untrusted list we stop looking
   3538                  * there and start looking only in the trust store if enabled.
   3539                  */
   3540                 search &= ~S_DOUNTRUSTED;
   3541                 if (may_trusted)
   3542                     search |= S_DOTRUSTED;
   3543                 continue;
   3544             }
   3545 
   3546             /* Drop this issuer from future consideration */
   3547             (void)sk_X509_delete_ptr(sk_untrusted, issuer);
   3548 
   3549             /* Grow the chain by untrusted issuer */
   3550             if (!X509_add_cert(ctx->chain, issuer, X509_ADD_FLAG_UP_REF))
   3551                 goto int_err;
   3552 
   3553             ++ctx->num_untrusted;
   3554 
   3555             /* Check for DANE-TA trust of the topmost untrusted certificate. */
   3556             trust = check_dane_issuer(ctx, ctx->num_untrusted - 1);
   3557             if (trust == X509_TRUST_TRUSTED || trust == X509_TRUST_REJECTED)
   3558                 break;
   3559         }
   3560     }
   3561     sk_X509_free(sk_untrusted);
   3562 
   3563     if (trust < 0) /* internal error */
   3564         return trust;
   3565 
   3566     /*
   3567      * Last chance to make a trusted chain, either bare DANE-TA public-key
   3568      * signers, or else direct leaf PKIX trust.
   3569      */
   3570     num = sk_X509_num(ctx->chain);
   3571     if (num <= max_depth) {
   3572         if (trust == X509_TRUST_UNTRUSTED && DANETLS_HAS_DANE_TA(dane))
   3573             trust = check_dane_pkeys(ctx);
   3574         if (trust == X509_TRUST_UNTRUSTED && num == ctx->num_untrusted)
   3575             trust = check_trust(ctx, num);
   3576     }
   3577 
   3578     switch (trust) {
   3579     case X509_TRUST_TRUSTED:
   3580         return 1;
   3581     case X509_TRUST_REJECTED:
   3582         /* Callback already issued */
   3583         return 0;
   3584     case X509_TRUST_UNTRUSTED:
   3585     default:
   3586         switch (ctx->error) {
   3587         case X509_V_ERR_ERROR_IN_CERT_NOT_BEFORE_FIELD:
   3588         case X509_V_ERR_CERT_NOT_YET_VALID:
   3589         case X509_V_ERR_ERROR_IN_CERT_NOT_AFTER_FIELD:
   3590         case X509_V_ERR_CERT_HAS_EXPIRED:
   3591             return 0; /* Callback already done by ossl_x509_check_cert_time() */
   3592         default: /* A preliminary error has become final */
   3593             return verify_cb_cert(ctx, NULL, num - 1, ctx->error);
   3594         case X509_V_OK:
   3595             break;
   3596         }
   3597         CB_FAIL_IF(num > max_depth,
   3598             ctx, NULL, num - 1, X509_V_ERR_CERT_CHAIN_TOO_LONG);
   3599         CB_FAIL_IF(DANETLS_ENABLED(dane)
   3600                 && (!DANETLS_HAS_PKIX(dane) || dane->pdpth >= 0),
   3601             ctx, NULL, num - 1, X509_V_ERR_DANE_NO_MATCH);
   3602         if (X509_self_signed(sk_X509_value(ctx->chain, num - 1), 0) > 0)
   3603             return verify_cb_cert(ctx, NULL, num - 1,
   3604                 num == 1
   3605                     ? X509_V_ERR_DEPTH_ZERO_SELF_SIGNED_CERT
   3606                     : X509_V_ERR_SELF_SIGNED_CERT_IN_CHAIN);
   3607         return verify_cb_cert(ctx, NULL, num - 1,
   3608             ctx->num_untrusted < num
   3609                 ? X509_V_ERR_UNABLE_TO_GET_ISSUER_CERT
   3610                 : X509_V_ERR_UNABLE_TO_GET_ISSUER_CERT_LOCALLY);
   3611     }
   3612 
   3613 int_err:
   3614     ERR_raise(ERR_LIB_X509, ERR_R_INTERNAL_ERROR);
   3615     ctx->error = X509_V_ERR_UNSPECIFIED;
   3616     sk_X509_free(sk_untrusted);
   3617     return -1;
   3618 
   3619 memerr:
   3620     ctx->error = X509_V_ERR_OUT_OF_MEM;
   3621     sk_X509_free(sk_untrusted);
   3622     return -1;
   3623 }
   3624 
   3625 STACK_OF(X509) *X509_build_chain(X509 *target, STACK_OF(X509) *certs,
   3626     X509_STORE *store, int with_self_signed,
   3627     OSSL_LIB_CTX *libctx, const char *propq)
   3628 {
   3629     int finish_chain = store != NULL;
   3630     X509_STORE_CTX *ctx;
   3631     int flags = X509_ADD_FLAG_UP_REF;
   3632     STACK_OF(X509) *result = NULL;
   3633 
   3634     if (target == NULL) {
   3635         ERR_raise(ERR_LIB_X509, ERR_R_PASSED_NULL_PARAMETER);
   3636         return NULL;
   3637     }
   3638 
   3639     if ((ctx = X509_STORE_CTX_new_ex(libctx, propq)) == NULL)
   3640         return NULL;
   3641     if (!X509_STORE_CTX_init(ctx, store, target, finish_chain ? certs : NULL))
   3642         goto err;
   3643     if (!finish_chain)
   3644         X509_STORE_CTX_set0_trusted_stack(ctx, certs);
   3645     if (!ossl_x509_add_cert_new(&ctx->chain, target, X509_ADD_FLAG_UP_REF)) {
   3646         ctx->error = X509_V_ERR_OUT_OF_MEM;
   3647         goto err;
   3648     }
   3649     ctx->num_untrusted = 1;
   3650 
   3651     if (!build_chain(ctx) && finish_chain)
   3652         goto err;
   3653 
   3654     /* result list to store the up_ref'ed certificates */
   3655     if (sk_X509_num(ctx->chain) > 1 && !with_self_signed)
   3656         flags |= X509_ADD_FLAG_NO_SS;
   3657     if (!ossl_x509_add_certs_new(&result, ctx->chain, flags)) {
   3658         sk_X509_free(result);
   3659         result = NULL;
   3660     }
   3661 
   3662 err:
   3663     X509_STORE_CTX_free(ctx);
   3664     return result;
   3665 }
   3666 
   3667 /*
   3668  * note that there's a corresponding minbits_table in ssl/ssl_cert.c
   3669  * in ssl_get_security_level_bits that's used for selection of DH parameters
   3670  */
   3671 static const int minbits_table[] = { 80, 112, 128, 192, 256 };
   3672 static const int NUM_AUTH_LEVELS = OSSL_NELEM(minbits_table);
   3673 
   3674 /*-
   3675  * Check whether the given public key meets the security level of `ctx`.
   3676  * Returns 1 on success, 0 otherwise.
   3677  */
   3678 static int check_key_level(X509_STORE_CTX *ctx, EVP_PKEY *pkey)
   3679 {
   3680     int level = ctx->param->auth_level;
   3681 
   3682     /*
   3683      * At security level zero, return without checking for a supported public
   3684      * key type.  Some engines support key types not understood outside the
   3685      * engine, and we only need to understand the key when enforcing a security
   3686      * floor.
   3687      */
   3688     if (level <= 0)
   3689         return 1;
   3690 
   3691     /* Unsupported or malformed keys are not secure */
   3692     if (pkey == NULL)
   3693         return 0;
   3694 
   3695     if (level > NUM_AUTH_LEVELS)
   3696         level = NUM_AUTH_LEVELS;
   3697 
   3698     return EVP_PKEY_get_security_bits(pkey) >= minbits_table[level - 1];
   3699 }
   3700 
   3701 /*-
   3702  * Check whether the public key of `cert` meets the security level of `ctx`.
   3703  * Returns 1 on success, 0 otherwise.
   3704  */
   3705 static int check_cert_key_level(X509_STORE_CTX *ctx, X509 *cert)
   3706 {
   3707     return check_key_level(ctx, X509_get0_pubkey(cert));
   3708 }
   3709 
   3710 /*-
   3711  * Check whether the public key of ``cert`` does not use explicit params
   3712  * for an elliptic curve.
   3713  *
   3714  * Returns 1 on success, 0 if check fails, -1 for other errors.
   3715  */
   3716 static int check_curve(X509 *cert)
   3717 {
   3718     EVP_PKEY *pkey = X509_get0_pubkey(cert);
   3719     int ret, val;
   3720 
   3721     /* Unsupported or malformed key */
   3722     if (pkey == NULL)
   3723         return -1;
   3724     if (EVP_PKEY_get_id(pkey) != EVP_PKEY_EC)
   3725         return 1;
   3726 
   3727     ret = EVP_PKEY_get_int_param(pkey,
   3728         OSSL_PKEY_PARAM_EC_DECODED_FROM_EXPLICIT_PARAMS,
   3729         &val);
   3730     return ret == 1 ? !val : -1;
   3731 }
   3732 
   3733 /*-
   3734  * Check whether the signature digest algorithm of ``cert`` meets the security
   3735  * level of ``ctx``.  Should not be checked for trust anchors (whether
   3736  * self-signed or otherwise).
   3737  *
   3738  * Returns 1 on success, 0 otherwise.
   3739  */
   3740 static int check_sig_level(X509_STORE_CTX *ctx, X509 *cert)
   3741 {
   3742     int secbits = -1;
   3743     int level = ctx->param->auth_level;
   3744 
   3745     if (level <= 0)
   3746         return 1;
   3747     if (level > NUM_AUTH_LEVELS)
   3748         level = NUM_AUTH_LEVELS;
   3749 
   3750     if (!X509_get_signature_info(cert, NULL, NULL, &secbits, NULL))
   3751         return 0;
   3752 
   3753     return secbits >= minbits_table[level - 1];
   3754 }
   3755