mirror of
https://boringssl.googlesource.com/boringssl
synced 2026-07-21 14:43:51 +00:00
bd6f41c308
... and then run clang-format on the changed files to reflow any comment blocks that exceeded line lengths. (Which generated a bunch of noise formatting changes, but probably that reduces noise in future CLs.) No semantic change to the code. Change-Id: I455da9faaaedda3e751ac91b5eb43cbc662d68a6 Reviewed-on: https://boringssl-review.googlesource.com/c/boringssl/+/97367 Reviewed-by: David Benjamin <davidben@google.com> Commit-Queue: Adam Langley <agl@google.com> Auto-Submit: Adam Langley <agl@google.com>
528 lines
15 KiB
C++
528 lines
15 KiB
C++
// Copyright 2017 The BoringSSL Authors
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// https://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#include <openssl/pkcs7.h>
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#include <assert.h>
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#include <limits.h>
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#include <openssl/asn1.h>
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#include <openssl/bytestring.h>
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#include <openssl/cms.h>
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#include <openssl/digest.h>
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#include <openssl/err.h>
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#include <openssl/evp.h>
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#include <openssl/mem.h>
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#include <openssl/obj.h>
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#include <openssl/pem.h>
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#include <openssl/pool.h>
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#include <openssl/stack.h>
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#include <openssl/x509.h>
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#include "../asn1/internal.h"
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#include "../internal.h"
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#include "../mem_internal.h"
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#include "../x509/internal.h"
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#include "internal.h"
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using namespace bssl;
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int PKCS7_get_certificates(STACK_OF(X509) *out_certs, CBS *cbs) {
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int ret = 0;
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const size_t initial_certs_len = sk_X509_num(out_certs);
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STACK_OF(CRYPTO_BUFFER) *raw = sk_CRYPTO_BUFFER_new_null();
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if (raw == nullptr || !PKCS7_get_raw_certificates(raw, cbs, nullptr)) {
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goto err;
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}
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for (size_t i = 0; i < sk_CRYPTO_BUFFER_num(raw); i++) {
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CRYPTO_BUFFER *buf = sk_CRYPTO_BUFFER_value(raw, i);
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X509 *x509 = X509_parse_from_buffer(buf);
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if (x509 == nullptr || !sk_X509_push(out_certs, x509)) {
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X509_free(x509);
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goto err;
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}
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}
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ret = 1;
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err:
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sk_CRYPTO_BUFFER_pop_free(raw, CRYPTO_BUFFER_free);
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if (!ret) {
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while (sk_X509_num(out_certs) != initial_certs_len) {
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X509 *x509 = sk_X509_pop(out_certs);
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X509_free(x509);
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}
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}
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return ret;
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}
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int PKCS7_get_CRLs(STACK_OF(X509_CRL) *out_crls, CBS *cbs) {
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CBS signed_data, crls;
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uint8_t *der_bytes = nullptr;
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int ret = 0, has_crls;
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const size_t initial_crls_len = sk_X509_CRL_num(out_crls);
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// See https://tools.ietf.org/html/rfc2315#section-9.1
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if (!pkcs7_parse_header(&der_bytes, &signed_data, cbs) ||
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// Even if only CRLs are included, there may be an empty certificates
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// block. OpenSSL does this, for example.
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!CBS_get_optional_asn1(
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&signed_data, nullptr, nullptr,
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CBS_ASN1_CONTEXT_SPECIFIC | CBS_ASN1_CONSTRUCTED | 0) ||
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!CBS_get_optional_asn1(
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&signed_data, &crls, &has_crls,
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CBS_ASN1_CONTEXT_SPECIFIC | CBS_ASN1_CONSTRUCTED | 1)) {
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goto err;
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}
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if (!has_crls) {
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CBS_init(&crls, nullptr, 0);
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}
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while (CBS_len(&crls) > 0) {
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CBS crl_data;
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X509_CRL *crl;
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const uint8_t *inp;
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if (!CBS_get_asn1_element(&crls, &crl_data, CBS_ASN1_SEQUENCE)) {
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goto err;
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}
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if (CBS_len(&crl_data) > LONG_MAX) {
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goto err;
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}
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inp = CBS_data(&crl_data);
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crl = d2i_X509_CRL(nullptr, &inp, (long)CBS_len(&crl_data));
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if (!crl) {
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goto err;
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}
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assert(inp == CBS_data(&crl_data) + CBS_len(&crl_data));
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if (sk_X509_CRL_push(out_crls, crl) == 0) {
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X509_CRL_free(crl);
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goto err;
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}
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}
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ret = 1;
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err:
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OPENSSL_free(der_bytes);
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if (!ret) {
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while (sk_X509_CRL_num(out_crls) != initial_crls_len) {
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X509_CRL_free(sk_X509_CRL_pop(out_crls));
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}
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}
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return ret;
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}
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int PKCS7_get_PEM_certificates(STACK_OF(X509) *out_certs, BIO *pem_bio) {
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uint8_t *data;
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long len;
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int ret;
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// Even though we pass PEM_STRING_PKCS7 as the expected PEM type here, PEM
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// internally will actually allow several other values too, including
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// "CERTIFICATE".
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if (!PEM_bytes_read_bio(&data, &len, nullptr /* PEM type output */,
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PEM_STRING_PKCS7, pem_bio,
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nullptr /* password callback */,
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nullptr /* password callback argument */)) {
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return 0;
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}
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CBS cbs;
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CBS_init(&cbs, data, len);
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ret = PKCS7_get_certificates(out_certs, &cbs);
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OPENSSL_free(data);
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return ret;
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}
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int PKCS7_get_PEM_CRLs(STACK_OF(X509_CRL) *out_crls, BIO *pem_bio) {
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uint8_t *data;
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long len;
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int ret;
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// Even though we pass PEM_STRING_PKCS7 as the expected PEM type here, PEM
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// internally will actually allow several other values too, including
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// "CERTIFICATE".
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if (!PEM_bytes_read_bio(&data, &len, nullptr /* PEM type output */,
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PEM_STRING_PKCS7, pem_bio,
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nullptr /* password callback */,
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nullptr /* password callback argument */)) {
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return 0;
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}
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CBS cbs;
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CBS_init(&cbs, data, len);
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ret = PKCS7_get_CRLs(out_crls, &cbs);
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OPENSSL_free(data);
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return ret;
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}
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static int pkcs7_bundle_certificates_cb(CBB *out, void *arg) {
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auto *certs = static_cast<const STACK_OF(X509) *>(arg);
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size_t i;
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CBB certificates;
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// See https://tools.ietf.org/html/rfc2315#section-9.1
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if (!CBB_add_asn1(out, &certificates,
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CBS_ASN1_CONTEXT_SPECIFIC | CBS_ASN1_CONSTRUCTED | 0)) {
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return 0;
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}
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for (i = 0; i < sk_X509_num(certs); i++) {
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X509 *x509 = sk_X509_value(certs, i);
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uint8_t *buf;
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int len = i2d_X509(x509, nullptr);
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if (len < 0 || !CBB_add_space(&certificates, &buf, len) ||
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i2d_X509(x509, &buf) < 0) {
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return 0;
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}
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}
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// `certificates` is an implicitly-tagged SET OF.
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return CBB_flush_asn1_set_of(&certificates) && CBB_flush(out);
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}
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int PKCS7_bundle_certificates(CBB *out, const STACK_OF(X509) *certs) {
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return pkcs7_add_signed_data(
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out, /*signed_data_version=*/1,
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/*digest_algos_cb=*/nullptr, pkcs7_bundle_certificates_cb,
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/*signer_infos_cb=*/nullptr, const_cast<STACK_OF(X509) *>(certs));
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}
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static int pkcs7_bundle_crls_cb(CBB *out, void *arg) {
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auto *crls = static_cast<const STACK_OF(X509_CRL) *>(arg);
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size_t i;
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CBB crl_data;
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// See https://tools.ietf.org/html/rfc2315#section-9.1
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if (!CBB_add_asn1(out, &crl_data,
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CBS_ASN1_CONTEXT_SPECIFIC | CBS_ASN1_CONSTRUCTED | 1)) {
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return 0;
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}
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for (i = 0; i < sk_X509_CRL_num(crls); i++) {
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X509_CRL *crl = sk_X509_CRL_value(crls, i);
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uint8_t *buf;
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int len = i2d_X509_CRL(crl, nullptr);
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if (len < 0 || !CBB_add_space(&crl_data, &buf, len) ||
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i2d_X509_CRL(crl, &buf) < 0) {
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return 0;
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}
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}
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// `crl_data` is an implicitly-tagged SET OF.
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return CBB_flush_asn1_set_of(&crl_data) && CBB_flush(out);
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}
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int PKCS7_bundle_CRLs(CBB *out, const STACK_OF(X509_CRL) *crls) {
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return pkcs7_add_signed_data(
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out, /*signed_data_version=*/1,
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/*digest_algos_cb=*/nullptr, pkcs7_bundle_crls_cb,
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/*signer_infos_cb=*/nullptr, const_cast<STACK_OF(X509_CRL) *>(crls));
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}
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static PKCS7 *pkcs7_new(CBS *cbs) {
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CBS copy = *cbs, copy2 = *cbs;
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PKCS7 *ret = New<PKCS7>();
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if (ret == nullptr) {
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return nullptr;
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}
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ret->type = OBJ_nid2obj(NID_pkcs7_signed);
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ret->d.sign = New<PKCS7_SIGNED>();
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if (ret->d.sign == nullptr) {
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goto err;
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}
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ret->d.sign->cert = sk_X509_new_null();
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ret->d.sign->crl = sk_X509_CRL_new_null();
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if (ret->d.sign->cert == nullptr || ret->d.sign->crl == nullptr ||
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!PKCS7_get_certificates(ret->d.sign->cert, ©) ||
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!PKCS7_get_CRLs(ret->d.sign->crl, cbs)) {
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goto err;
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}
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if (sk_X509_num(ret->d.sign->cert) == 0) {
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sk_X509_free(ret->d.sign->cert);
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ret->d.sign->cert = nullptr;
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}
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if (sk_X509_CRL_num(ret->d.sign->crl) == 0) {
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sk_X509_CRL_free(ret->d.sign->crl);
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ret->d.sign->crl = nullptr;
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}
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ret->ber_len = CBS_len(©2) - CBS_len(cbs);
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ret->ber_bytes = reinterpret_cast<uint8_t *>(
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OPENSSL_memdup(CBS_data(©2), ret->ber_len));
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if (ret->ber_bytes == nullptr) {
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goto err;
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}
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return ret;
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err:
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PKCS7_free(ret);
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return nullptr;
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}
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PKCS7 *d2i_PKCS7(PKCS7 **out, const uint8_t **inp, size_t len) {
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CBS cbs;
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CBS_init(&cbs, *inp, len);
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PKCS7 *ret = pkcs7_new(&cbs);
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if (ret == nullptr) {
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return nullptr;
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}
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*inp = CBS_data(&cbs);
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if (out != nullptr) {
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PKCS7_free(*out);
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*out = ret;
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}
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return ret;
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}
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PKCS7 *d2i_PKCS7_bio(BIO *bio, PKCS7 **out) {
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// Use a generous bound, to allow for PKCS#7 files containing large root sets.
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static const size_t kMaxSize = 4 * 1024 * 1024;
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uint8_t *data;
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size_t len;
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if (!BIO_read_asn1(bio, &data, &len, kMaxSize)) {
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return nullptr;
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}
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CBS cbs;
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CBS_init(&cbs, data, len);
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PKCS7 *ret = pkcs7_new(&cbs);
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OPENSSL_free(data);
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if (out != nullptr && ret != nullptr) {
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PKCS7_free(*out);
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*out = ret;
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}
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return ret;
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}
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int i2d_PKCS7(const PKCS7 *p7, uint8_t **out) {
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if (p7->ber_len > INT_MAX) {
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OPENSSL_PUT_ERROR(PKCS8, ERR_R_OVERFLOW);
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return -1;
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}
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if (out == nullptr) {
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return (int)p7->ber_len;
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}
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if (*out == nullptr) {
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*out =
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reinterpret_cast<uint8_t *>(OPENSSL_memdup(p7->ber_bytes, p7->ber_len));
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if (*out == nullptr) {
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return -1;
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}
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} else {
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OPENSSL_memcpy(*out, p7->ber_bytes, p7->ber_len);
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*out += p7->ber_len;
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}
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return (int)p7->ber_len;
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}
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int i2d_PKCS7_bio(BIO *bio, const PKCS7 *p7) {
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return BIO_write_all(bio, p7->ber_bytes, p7->ber_len);
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}
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void PKCS7_free(PKCS7 *p7) {
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if (p7 == nullptr) {
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return;
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}
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OPENSSL_free(p7->ber_bytes);
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ASN1_OBJECT_free(p7->type);
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// We only supported signed data.
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if (p7->d.sign != nullptr) {
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sk_X509_pop_free(p7->d.sign->cert, X509_free);
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sk_X509_CRL_pop_free(p7->d.sign->crl, X509_CRL_free);
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Delete(p7->d.sign);
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}
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Delete(p7);
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}
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// We only support signed data, so these getters are no-ops.
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int PKCS7_type_is_data(const PKCS7 *p7) { return 0; }
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int PKCS7_type_is_digest(const PKCS7 *p7) { return 0; }
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int PKCS7_type_is_encrypted(const PKCS7 *p7) { return 0; }
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int PKCS7_type_is_enveloped(const PKCS7 *p7) { return 0; }
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int PKCS7_type_is_signed(const PKCS7 *p7) { return 1; }
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int PKCS7_type_is_signedAndEnveloped(const PKCS7 *p7) { return 0; }
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static bool digest_sign_update(EVP_MD_CTX *ctx, BIO *data) {
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for (;;) {
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uint8_t buf[4096];
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const int n = BIO_read(data, buf, sizeof(buf));
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if (n == 0) {
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return true;
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} else if (n < 0 || !EVP_DigestSignUpdate(ctx, buf, n)) {
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return false;
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}
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}
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}
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namespace {
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struct signer_info_data {
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X509 *sign_cert = nullptr;
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ScopedEVP_MD_CTX sign_ctx;
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bool use_key_id = false;
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};
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} // namespace
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static int write_signer_digest_algos(CBB *digest_algos_set, void *arg) {
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auto *si_data = static_cast<struct signer_info_data *>(arg);
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// https://www.rfc-editor.org/rfc/rfc5754.html#section-2
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// "Implementations MUST generate SHA2 AlgorithmIdentifiers with absent
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// parameters."
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return EVP_marshal_digest_algorithm_no_params(
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digest_algos_set, EVP_MD_CTX_get0_md(si_data->sign_ctx.get()));
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}
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// write_signer_info writes the SignerInfo structure from
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// https://www.rfc-editor.org/rfc/rfc2315.html#section-9.2 and
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// https://www.rfc-editor.org/rfc/rfc5652.html#section-5.3 to `out`. It returns
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// one on success or zero on error.
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static int write_signer_info(CBB *out, void *arg) {
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auto *si_data = static_cast<struct signer_info_data *>(arg);
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uint64_t version = si_data->use_key_id ? 3u : 1u;
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CBB seq, child, signing_algo, null, signature;
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if (!CBB_add_asn1(out, &seq, CBS_ASN1_SEQUENCE) ||
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!CBB_add_asn1_uint64(&seq, version)) {
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return 0;
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}
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// Output the SignerIdentifier.
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if (si_data->use_key_id) {
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const ASN1_OCTET_STRING *skid =
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X509_get0_subject_key_id(si_data->sign_cert);
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if (skid == nullptr) {
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OPENSSL_PUT_ERROR(CMS, CMS_R_CERTIFICATE_HAS_NO_KEYID);
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return 0;
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}
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// subjectKeyIdentifier is implicitly-tagged.
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if (!CBB_add_asn1_element(&seq, CBS_ASN1_CONTEXT_SPECIFIC | 0,
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ASN1_STRING_get0_data(skid),
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ASN1_STRING_length(skid))) {
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return 0;
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}
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} else {
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if (!CBB_add_asn1(&seq, &child, CBS_ASN1_SEQUENCE) ||
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!x509_marshal_name(&child, X509_get_issuer_name(si_data->sign_cert)) ||
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!asn1_marshal_integer(&child,
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X509_get0_serialNumber(si_data->sign_cert),
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/*tag=*/0)) {
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return 0;
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}
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}
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// Output the digest and signature algorithm. This cannot use X.509 signature
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// algorithms because CMS incorrectly decomposes signature algorithms into a
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// combination of digesting and "encrypting" the digest, then uses the plain
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// rsaEncryption OID instead of the hash-specific RSA OIDs. For now, we only
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// support RSA.
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EVP_PKEY *pkey = EVP_PKEY_CTX_get0_pkey(si_data->sign_ctx->pctx);
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if (EVP_PKEY_id(pkey) != EVP_PKEY_RSA) {
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OPENSSL_PUT_ERROR(PKCS7, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
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return 0;
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}
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|
if (!EVP_marshal_digest_algorithm_no_params(
|
|
&seq, EVP_MD_CTX_get0_md(si_data->sign_ctx.get())) ||
|
|
!CBB_add_asn1(&seq, &signing_algo, CBS_ASN1_SEQUENCE) ||
|
|
!OBJ_nid2cbb(&signing_algo, NID_rsaEncryption) ||
|
|
!CBB_add_asn1(&signing_algo, &null, CBS_ASN1_NULL)) {
|
|
return 0;
|
|
}
|
|
|
|
// Output the signature.
|
|
uint8_t *ptr;
|
|
size_t sig_len;
|
|
if (!EVP_DigestSignFinal(si_data->sign_ctx.get(), nullptr, &sig_len) ||
|
|
!CBB_add_asn1(&seq, &signature, CBS_ASN1_OCTETSTRING) ||
|
|
!CBB_reserve(&signature, &ptr, sig_len) ||
|
|
!EVP_DigestSignFinal(si_data->sign_ctx.get(), ptr, &sig_len) ||
|
|
!CBB_did_write(&signature, sig_len) || //
|
|
!CBB_flush(out)) {
|
|
return 0;
|
|
}
|
|
|
|
return 1;
|
|
}
|
|
|
|
int bssl::pkcs7_add_external_signature(CBB *out, X509 *sign_cert, EVP_PKEY *key,
|
|
const EVP_MD *md, BIO *data,
|
|
bool use_key_id) {
|
|
signer_info_data si_data;
|
|
si_data.use_key_id = use_key_id;
|
|
si_data.sign_cert = sign_cert;
|
|
|
|
// Set up the signature.
|
|
if (!EVP_DigestSignInit(si_data.sign_ctx.get(), nullptr, md, nullptr, key) ||
|
|
!digest_sign_update(si_data.sign_ctx.get(), data)) {
|
|
return 0;
|
|
}
|
|
|
|
// See RFC 5652, Section 5.1. When no certificates are present, the version
|
|
// comes from the highest SignerInfo version, which will be 3 (CMS) for a key
|
|
// ID, and 1 (CMS or PKCS#7) for issuer and serial.
|
|
uint64_t signed_data_version = use_key_id ? 3u : 1u;
|
|
return pkcs7_add_signed_data(
|
|
out, signed_data_version, write_signer_digest_algos,
|
|
/*cert_crl_cb=*/nullptr, write_signer_info, &si_data);
|
|
}
|
|
|
|
PKCS7 *PKCS7_sign(X509 *sign_cert, EVP_PKEY *pkey, STACK_OF(X509) *certs,
|
|
BIO *data, int flags) {
|
|
ScopedCBB cbb;
|
|
if (!CBB_init(cbb.get(), 2048)) {
|
|
return nullptr;
|
|
}
|
|
|
|
if (sign_cert == nullptr && pkey == nullptr && flags == PKCS7_DETACHED) {
|
|
// Caller just wants to bundle certificates.
|
|
if (!PKCS7_bundle_certificates(cbb.get(), certs)) {
|
|
return nullptr;
|
|
}
|
|
} else if (sign_cert != nullptr && pkey != nullptr && certs == nullptr &&
|
|
data != nullptr &&
|
|
flags == (PKCS7_NOATTR | PKCS7_BINARY | PKCS7_NOCERTS |
|
|
PKCS7_DETACHED)) {
|
|
// In OpenSSL, this API signs with some default hash. That default has been
|
|
// SHA-256 since 2015.
|
|
if (!pkcs7_add_external_signature(cbb.get(), sign_cert, pkey, EVP_sha256(),
|
|
data, /*use_key_id=*/false)) {
|
|
return nullptr;
|
|
}
|
|
} else {
|
|
OPENSSL_PUT_ERROR(PKCS7, ERR_R_SHOULD_NOT_HAVE_BEEN_CALLED);
|
|
return nullptr;
|
|
}
|
|
|
|
CBS cbs;
|
|
CBS_init(&cbs, CBB_data(cbb.get()), CBB_len(cbb.get()));
|
|
return pkcs7_new(&cbs);
|
|
}
|