mirror of
https://boringssl.googlesource.com/boringssl
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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>
1648 lines
57 KiB
C++
1648 lines
57 KiB
C++
// Copyright 2015-2016 The OpenSSL Project Authors. All Rights Reserved.
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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/evp.h>
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#include <stdint.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <map>
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#include <optional>
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#include <string>
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#include <string_view>
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#include <utility>
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#include <vector>
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#include <gtest/gtest.h>
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#include <openssl/bn.h>
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#include <openssl/bytestring.h>
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#include <openssl/crypto.h>
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#include <openssl/dh.h>
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#include <openssl/digest.h>
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#include <openssl/dsa.h>
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#include <openssl/ec.h>
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#include <openssl/err.h>
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#include <openssl/mlkem.h>
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#include <openssl/obj.h>
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#include <openssl/rsa.h>
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#include <openssl/xwing.h>
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#include "../test/der_trailing_data.h"
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#include "../test/file_test.h"
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#include "../test/test_util.h"
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#include "../test/wycheproof_util.h"
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BSSL_NAMESPACE_BEGIN
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namespace {
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// evp_test dispatches between multiple test types. PublicKey and PrivateKey
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// tests take a key name parameter and key information. If the test is
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// successful, the key is saved under that key name. Decrypt, Sign, and Verify
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// tests take a previously imported key name as parameter and test their
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// respective operations.
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const EVP_MD *GetDigest(std::string_view name) {
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if (name == "MD5") {
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return EVP_md5();
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} else if (name == "SHA1") {
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return EVP_sha1();
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} else if (name == "SHA224") {
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return EVP_sha224();
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} else if (name == "SHA256") {
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return EVP_sha256();
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} else if (name == "SHA384") {
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return EVP_sha384();
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} else if (name == "SHA512") {
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return EVP_sha512();
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}
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ADD_FAILURE() << "Unknown digest: " << name;
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return nullptr;
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}
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std::optional<int> GetRSAPadding(std::string_view name) {
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if (name == "PKCS1") {
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return RSA_PKCS1_PADDING;
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}
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if (name == "PSS") {
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return RSA_PKCS1_PSS_PADDING;
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}
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if (name == "OAEP") {
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return RSA_PKCS1_OAEP_PADDING;
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}
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if (name == "None") {
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return RSA_NO_PADDING;
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}
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ADD_FAILURE() << "Unknown RSA padding mode: " << name;
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return std::nullopt;
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}
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struct AlgorithmInfo {
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const EVP_PKEY_ALG *alg;
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const EVP_KEM *kem;
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int pkey_id;
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bool is_default;
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};
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const std::map<std::string, AlgorithmInfo> kAllAlgorithms = {
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{"RSA",
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{EVP_pkey_rsa(),
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/*kem=*/nullptr, EVP_PKEY_RSA, true}},
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{"RSA-PSS-SHA-256",
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{EVP_pkey_rsa_pss_sha256(), /*kem=*/nullptr, EVP_PKEY_RSA_PSS, false}},
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{"RSA-PSS-SHA-384",
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{EVP_pkey_rsa_pss_sha384(), /*kem=*/nullptr, EVP_PKEY_RSA_PSS, false}},
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{"RSA-PSS-SHA-512",
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{EVP_pkey_rsa_pss_sha512(), /*kem=*/nullptr, EVP_PKEY_RSA_PSS, false}},
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{"EC-P-224", {EVP_pkey_ec_p224(), /*kem=*/nullptr, EVP_PKEY_EC, true}},
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{"EC-P-256", {EVP_pkey_ec_p256(), /*kem=*/nullptr, EVP_PKEY_EC, true}},
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{"EC-P-384", {EVP_pkey_ec_p384(), /*kem=*/nullptr, EVP_PKEY_EC, true}},
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{"EC-P-521", {EVP_pkey_ec_p521(), /*kem=*/nullptr, EVP_PKEY_EC, true}},
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{"X25519", {EVP_pkey_x25519(), /*kem=*/nullptr, EVP_PKEY_X25519, true}},
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{"Ed25519", {EVP_pkey_ed25519(), /*kem=*/nullptr, EVP_PKEY_ED25519, true}},
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{"DSA", {EVP_pkey_dsa(), /*kem=*/nullptr, EVP_PKEY_DSA, true}},
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{"ML-DSA-44",
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{EVP_pkey_ml_dsa_44(), /*kem=*/nullptr, EVP_PKEY_ML_DSA_44, true}},
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{"ML-DSA-65",
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{EVP_pkey_ml_dsa_65(), /*kem=*/nullptr, EVP_PKEY_ML_DSA_65, true}},
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{"ML-DSA-87",
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{EVP_pkey_ml_dsa_87(), /*kem=*/nullptr, EVP_PKEY_ML_DSA_87, true}},
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{"ML-KEM-768",
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{EVP_pkey_ml_kem_768(), EVP_kem_ml_kem_768(), EVP_PKEY_ML_KEM_768, true}},
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{"ML-KEM-1024",
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{EVP_pkey_ml_kem_1024(), EVP_kem_ml_kem_1024(), EVP_PKEY_ML_KEM_1024,
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true}},
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{"X-Wing", {EVP_pkey_xwing(), EVP_kem_xwing(), EVP_PKEY_XWING, false}},
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};
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using KeyMap = std::map<std::string, bssl::UniquePtr<EVP_PKEY>>;
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enum class KeyRole { kPublic, kPrivate };
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void CheckRSAParam(FileTest *t, std::string_view attr_name,
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const EVP_PKEY *pkey,
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const BIGNUM *(*rsa_getter)(const RSA *)) {
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SCOPED_TRACE(attr_name);
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if (t->HasAttribute(attr_name)) {
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bssl::UniquePtr<BIGNUM> want =
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HexToBIGNUM(t->GetAttributeOrDie(attr_name).c_str());
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ASSERT_TRUE(want);
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const RSA *rsa = EVP_PKEY_get0_RSA(pkey);
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ASSERT_TRUE(rsa);
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const BIGNUM *got = rsa_getter(rsa);
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ASSERT_TRUE(got);
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EXPECT_EQ(BN_cmp(want.get(), got), 0)
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<< "wanted: " << BIGNUMToHex(want.get())
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<< "\ngot: " << BIGNUMToHex(got);
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}
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// We have many test RSA keys so, for now, don't require that all RSA keys
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// list out these parameters. That is, the absence of an RSA parameter does
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// not currently assert that we omit them.
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}
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bool CheckRawKey(FileTest *t, std::string_view attr_name, const EVP_PKEY *pkey,
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int (*getter)(const EVP_PKEY *pkey, uint8_t *out,
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size_t *out_len)) {
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if (!t->HasAttribute(attr_name)) {
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size_t len;
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EXPECT_FALSE(getter(pkey, nullptr, &len));
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return true;
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}
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std::vector<uint8_t> expected;
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if (!t->GetBytes(&expected, attr_name)) {
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return false;
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}
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std::vector<uint8_t> raw;
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size_t len;
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if (!getter(pkey, nullptr, &len)) {
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return false;
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}
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const size_t expected_len = len;
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raw.resize(len);
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if (!getter(pkey, raw.data(), &len)) {
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return false;
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}
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EXPECT_EQ(len, expected_len);
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raw.resize(len);
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EXPECT_EQ(Bytes(raw), Bytes(expected));
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// Short buffers should be rejected.
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raw.resize(expected_len - 1);
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len = raw.size();
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EXPECT_FALSE(getter(pkey, raw.data(), &len));
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// Long buffer should be accepted and the proper length written out.
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raw.resize(expected_len + 1);
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len = raw.size();
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EXPECT_TRUE(getter(pkey, raw.data(), &len));
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EXPECT_EQ(len, expected_len);
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raw.resize(len);
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EXPECT_EQ(Bytes(raw), Bytes(expected));
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return true;
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}
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bool ImportRawKey(FileTest *t, KeyMap *key_map, KeyRole key_role,
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bool use_seed) {
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auto parse_func = key_role == KeyRole::kPublic
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? &EVP_PKEY_from_raw_public_key
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: (use_seed ? &EVP_PKEY_from_private_seed
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: &EVP_PKEY_from_raw_private_key);
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auto getter = key_role == KeyRole::kPublic
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? &EVP_PKEY_get_raw_public_key
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: (use_seed ? &EVP_PKEY_get_private_seed
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: &EVP_PKEY_get_raw_private_key);
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std::string alg_name;
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if (!t->GetAttribute(&alg_name, "Algorithm")) {
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return false;
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}
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const auto it = kAllAlgorithms.find(alg_name);
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if (it == kAllAlgorithms.end()) {
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ADD_FAILURE() << "Unknown algorithm: " << alg_name;
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return false;
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}
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const AlgorithmInfo &alg_info = it->second;
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std::vector<uint8_t> input;
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if (!t->GetBytes(&input, "Input")) {
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return false;
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}
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UniquePtr<EVP_PKEY> pkey(
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parse_func(alg_info.alg, input.data(), input.size()));
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if (pkey == nullptr) {
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return false;
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}
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if (!CheckRawKey(t, "Input", pkey.get(), getter)) {
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return false;
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}
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// Ensure the other raw getters are consistent with the input.
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if ((t->HasAttribute("RawPrivate") &&
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!CheckRawKey(t, "RawPrivate", pkey.get(),
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EVP_PKEY_get_raw_private_key)) ||
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(t->HasAttribute("RawPublic") &&
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!CheckRawKey(t, "RawPublic", pkey.get(), EVP_PKEY_get_raw_public_key)) ||
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(t->HasAttribute("PrivateSeed") &&
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!CheckRawKey(t, "PrivateSeed", pkey.get(), EVP_PKEY_get_private_seed))) {
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return false;
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}
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// Save the key for future tests.
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const std::string &key_name = t->GetParameter();
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EXPECT_EQ(0u, key_map->count(key_name)) << "Duplicate key: " << key_name;
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(*key_map)[key_name] = std::move(pkey);
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return true;
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}
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bool ImportKey(FileTest *t, KeyMap *key_map, KeyRole key_role) {
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std::string format_name = key_role == KeyRole::kPublic ? "spki" : "pkcs8";
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auto parse_func = key_role == KeyRole::kPublic
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? &EVP_PKEY_from_subject_public_key_info
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: &EVP_PKEY_from_private_key_info;
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auto parse_default_func = key_role == KeyRole::kPublic
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? &EVP_parse_public_key
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: &EVP_parse_private_key;
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auto marshal_func = key_role == KeyRole::kPublic ? &EVP_marshal_public_key
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: &EVP_marshal_private_key;
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// This test will first import the key from all available methods, then check
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// that all properties on all keys match.
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std::vector<std::pair<std::string, bssl::UniquePtr<EVP_PKEY>>> keys;
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// Parse from SPKI or PKCS#8.
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std::vector<uint8_t> input;
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if (!t->GetBytes(&input, "Input")) {
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return false;
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}
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// First, parse the key with all algorithms active. Check this before
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// specifying an individual algorithm, so that error cases do not need to
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// specify an Algorithm key.
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std::vector<const EVP_PKEY_ALG *> algs;
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for (const auto &[name, info] : kAllAlgorithms) {
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algs.push_back(info.alg);
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}
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bssl::UniquePtr<EVP_PKEY> new_key(
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parse_func(input.data(), input.size(), algs.data(), algs.size()));
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if (new_key == nullptr) {
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return false;
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}
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keys.emplace_back(format_name + " - all algs", std::move(new_key));
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// Test that the parsers reject trailing data.
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bool ok = TestDERTrailingData(
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input, [&](bssl::Span<const uint8_t> rewritten, size_t n) {
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// We currently intentionally ignore trailing data in the outermost
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// PKCS#8 PrivateKeyInfo element because we don't parse the attributes.
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if (n == 0 && key_role == KeyRole::kPrivate) {
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return;
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}
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SCOPED_TRACE(n);
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bssl::UniquePtr<EVP_PKEY> parsed(parse_func(
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rewritten.data(), rewritten.size(), algs.data(), algs.size()));
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EXPECT_FALSE(parsed);
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});
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EXPECT_TRUE(ok);
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// Parse with just the specific algorithm.
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std::string alg_name;
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if (!t->GetAttribute(&alg_name, "Algorithm")) {
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return false;
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}
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auto it = kAllAlgorithms.find(alg_name);
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if (it == kAllAlgorithms.end()) {
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ADD_FAILURE() << "Unknown algorithm: " << alg_name;
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return false;
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}
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const AlgorithmInfo &alg_info = it->second;
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new_key.reset(parse_func(input.data(), input.size(), &alg_info.alg, 1));
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if (new_key == nullptr) {
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return false;
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}
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keys.emplace_back(format_name + " - " + alg_name + " only",
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std::move(new_key));
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// Parsing with all other algorithms should fail. This currently assumes each
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// key can only be parsed by one algorithm. Make the field a list of
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// algorithms if this ever changes.
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algs.clear();
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for (const auto &[name, info] : kAllAlgorithms) {
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if (name != alg_name) {
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algs.push_back(info.alg);
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}
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}
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new_key.reset(
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parse_func(input.data(), input.size(), algs.data(), algs.size()));
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EXPECT_FALSE(new_key);
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ERR_clear_error();
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// Parse with the default parser.
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CBS cbs(input);
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new_key.reset(parse_default_func(&cbs));
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if (alg_info.is_default) {
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if (new_key == nullptr) {
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return false;
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}
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keys.emplace_back(format_name + " - default algorithms",
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std::move(new_key));
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} else {
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EXPECT_FALSE(new_key);
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ERR_clear_error();
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}
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// Import as a raw key.
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if (key_role == KeyRole::kPublic && t->HasAttribute("RawPublic")) {
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std::vector<uint8_t> raw;
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if (!t->GetBytes(&raw, "RawPublic")) {
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return false;
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}
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new_key.reset(
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EVP_PKEY_from_raw_public_key(alg_info.alg, raw.data(), raw.size()));
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if (new_key == nullptr) {
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return false;
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}
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keys.emplace_back("raw public", std::move(new_key));
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}
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if (key_role == KeyRole::kPrivate && t->HasAttribute("RawPrivate")) {
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std::vector<uint8_t> raw;
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if (!t->GetBytes(&raw, "RawPrivate")) {
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return false;
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}
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new_key.reset(
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EVP_PKEY_from_raw_private_key(alg_info.alg, raw.data(), raw.size()));
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if (new_key == nullptr) {
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return false;
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}
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keys.emplace_back("raw private", std::move(new_key));
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}
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if (key_role == KeyRole::kPrivate && t->HasAttribute("PrivateSeed")) {
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std::vector<uint8_t> raw;
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if (!t->GetBytes(&raw, "PrivateSeed")) {
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return false;
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}
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new_key.reset(
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EVP_PKEY_from_private_seed(alg_info.alg, raw.data(), raw.size()));
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if (new_key == nullptr) {
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return false;
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}
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keys.emplace_back("private seed", std::move(new_key));
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}
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// Import RSA key from parameters.
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if (alg_info.pkey_id == EVP_PKEY_RSA) {
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if (key_role == KeyRole::kPublic && t->HasAttribute("RSAParamN") &&
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t->HasAttribute("RSAParamE")) {
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bssl::UniquePtr<BIGNUM> n =
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HexToBIGNUM(t->GetAttributeOrDie("RSAParamN").c_str());
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bssl::UniquePtr<BIGNUM> e =
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HexToBIGNUM(t->GetAttributeOrDie("RSAParamE").c_str());
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if (n == nullptr || e == nullptr) {
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return false;
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}
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bssl::UniquePtr<RSA> rsa(RSA_new_public_key(n.get(), e.get()));
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new_key.reset(EVP_PKEY_new());
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if (rsa == nullptr || new_key == nullptr ||
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!EVP_PKEY_set1_RSA(new_key.get(), rsa.get())) {
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return false;
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}
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keys.emplace_back("RSA public params", std::move(new_key));
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}
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if (key_role == KeyRole::kPrivate && t->HasAttribute("RSAParamN") &&
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t->HasAttribute("RSAParamE") && t->HasAttribute("RSAParamD") &&
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t->HasAttribute("RSAParamP") && t->HasAttribute("RSAParamQ") &&
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t->HasAttribute("RSAParamDMP1") && t->HasAttribute("RSAParamDMQ1") &&
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t->HasAttribute("RSAParamIQMP")) {
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bssl::UniquePtr<BIGNUM> n =
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HexToBIGNUM(t->GetAttributeOrDie("RSAParamN").c_str());
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bssl::UniquePtr<BIGNUM> e =
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HexToBIGNUM(t->GetAttributeOrDie("RSAParamE").c_str());
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bssl::UniquePtr<BIGNUM> d =
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HexToBIGNUM(t->GetAttributeOrDie("RSAParamD").c_str());
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bssl::UniquePtr<BIGNUM> p =
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HexToBIGNUM(t->GetAttributeOrDie("RSAParamP").c_str());
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bssl::UniquePtr<BIGNUM> q =
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HexToBIGNUM(t->GetAttributeOrDie("RSAParamQ").c_str());
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bssl::UniquePtr<BIGNUM> dmp1 =
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HexToBIGNUM(t->GetAttributeOrDie("RSAParamDMP1").c_str());
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bssl::UniquePtr<BIGNUM> dmq1 =
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HexToBIGNUM(t->GetAttributeOrDie("RSAParamDMQ1").c_str());
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bssl::UniquePtr<BIGNUM> iqmp =
|
|
HexToBIGNUM(t->GetAttributeOrDie("RSAParamIQMP").c_str());
|
|
if (n == nullptr || e == nullptr) {
|
|
return false;
|
|
}
|
|
bssl::UniquePtr<RSA> rsa(RSA_new_private_key(n.get(), e.get(), d.get(),
|
|
p.get(), q.get(), dmp1.get(),
|
|
dmq1.get(), iqmp.get()));
|
|
new_key.reset(EVP_PKEY_new());
|
|
if (rsa == nullptr || new_key == nullptr ||
|
|
!EVP_PKEY_set1_RSA(new_key.get(), rsa.get())) {
|
|
return false;
|
|
}
|
|
keys.emplace_back("RSA private params", std::move(new_key));
|
|
}
|
|
}
|
|
|
|
// Check properties of the keys.
|
|
for (const auto &[name, pkey] : keys) {
|
|
SCOPED_TRACE(name);
|
|
|
|
EXPECT_EQ(alg_info.pkey_id, EVP_PKEY_id(pkey.get()));
|
|
|
|
// In almost all cases, a non-empty key must have a public key. The only
|
|
// exception is a private RSA key with (n, d) params only, which is tested
|
|
// not here but elsewhere.
|
|
EXPECT_EQ(EVP_PKEY_has_public(pkey.get()), 1);
|
|
EXPECT_EQ(EVP_PKEY_has_private(pkey.get()), key_role == KeyRole::kPrivate);
|
|
|
|
if (t->HasAttribute("Bits")) {
|
|
EXPECT_EQ(EVP_PKEY_bits(pkey.get()),
|
|
atoi(t->GetAttributeOrDie("Bits").c_str()));
|
|
}
|
|
|
|
if (t->HasAttribute("ECCurve")) {
|
|
EXPECT_EQ(OBJ_nid2sn(EVP_PKEY_get_ec_curve_nid(pkey.get())),
|
|
t->GetAttributeOrDie("ECCurve"));
|
|
} else {
|
|
EXPECT_EQ(EVP_PKEY_get_ec_curve_nid(pkey.get()), NID_undef);
|
|
}
|
|
|
|
CheckRSAParam(t, "RSAParamN", pkey.get(), RSA_get0_n);
|
|
CheckRSAParam(t, "RSAParamE", pkey.get(), RSA_get0_e);
|
|
CheckRSAParam(t, "RSAParamD", pkey.get(), RSA_get0_d);
|
|
CheckRSAParam(t, "RSAParamP", pkey.get(), RSA_get0_p);
|
|
CheckRSAParam(t, "RSAParamQ", pkey.get(), RSA_get0_q);
|
|
CheckRSAParam(t, "RSAParamDMP1", pkey.get(), RSA_get0_dmp1);
|
|
CheckRSAParam(t, "RSAParamDMQ1", pkey.get(), RSA_get0_dmq1);
|
|
CheckRSAParam(t, "RSAParamIQMP", pkey.get(), RSA_get0_iqmp);
|
|
|
|
// All keys must compare equal.
|
|
EXPECT_EQ(EVP_PKEY_eq(pkey.get(), keys.front().second.get()), 1);
|
|
|
|
// The key must re-encode correctly.
|
|
bssl::ScopedCBB cbb;
|
|
if (!CBB_init(cbb.get(), 0) || !marshal_func(cbb.get(), pkey.get())) {
|
|
return false;
|
|
}
|
|
std::vector<uint8_t> output = input;
|
|
if (t->HasAttribute("Output") && !t->GetBytes(&output, "Output")) {
|
|
return false;
|
|
}
|
|
EXPECT_EQ(Bytes(output), Bytes(CBB_data(cbb.get()), CBB_len(cbb.get())))
|
|
<< "Re-encoding the key did not match.";
|
|
|
|
if (!CheckRawKey(t, "RawPrivate", pkey.get(),
|
|
EVP_PKEY_get_raw_private_key) ||
|
|
!CheckRawKey(t, "RawPublic", pkey.get(), EVP_PKEY_get_raw_public_key) ||
|
|
!CheckRawKey(t, "PrivateSeed", pkey.get(), EVP_PKEY_get_private_seed)) {
|
|
return false;
|
|
}
|
|
|
|
// Test copying the public part of the key.
|
|
UniquePtr<EVP_PKEY> public_copy(EVP_PKEY_copy_public(pkey.get()));
|
|
EXPECT_TRUE(public_copy);
|
|
EXPECT_TRUE(EVP_PKEY_has_public(public_copy.get()));
|
|
EXPECT_FALSE(EVP_PKEY_has_private(public_copy.get()));
|
|
EXPECT_EQ(EVP_PKEY_eq(public_copy.get(), pkey.get()), 1);
|
|
EXPECT_EQ(EVP_PKEY_parameters_eq(public_copy.get(), pkey.get()), 1);
|
|
// Check that the copied public key serializes the same.
|
|
bssl::ScopedCBB cbb_public, cbb_public_copy;
|
|
if (!CBB_init(cbb_public.get(), 0) ||
|
|
!EVP_marshal_public_key(cbb_public.get(), pkey.get()) ||
|
|
!CBB_init(cbb_public_copy.get(), 0) ||
|
|
!EVP_marshal_public_key(cbb_public_copy.get(), public_copy.get())) {
|
|
return false;
|
|
}
|
|
EXPECT_EQ(
|
|
Bytes(CBB_data(cbb_public.get()), CBB_len(cbb_public.get())),
|
|
Bytes(CBB_data(cbb_public_copy.get()), CBB_len(cbb_public_copy.get())))
|
|
<< "Public copy of the key did not match.";
|
|
}
|
|
|
|
// Save the key for future tests.
|
|
const std::string &key_name = t->GetParameter();
|
|
EXPECT_EQ(0u, key_map->count(key_name)) << "Duplicate key: " << key_name;
|
|
(*key_map)[key_name] = std::move(keys.front().second);
|
|
return true;
|
|
}
|
|
|
|
bool GetOptionalBignum(FileTest *t, bssl::UniquePtr<BIGNUM> *out,
|
|
const std::string &key) {
|
|
if (!t->HasAttribute(key)) {
|
|
*out = nullptr;
|
|
return true;
|
|
}
|
|
|
|
std::vector<uint8_t> bytes;
|
|
if (!t->GetBytes(&bytes, key)) {
|
|
return false;
|
|
}
|
|
|
|
out->reset(BN_bin2bn(bytes.data(), bytes.size(), nullptr));
|
|
return *out != nullptr;
|
|
}
|
|
|
|
bool ImportDHKey(FileTest *t, KeyMap *key_map) {
|
|
bssl::UniquePtr<BIGNUM> p, q, g, pub_key, priv_key;
|
|
if (!GetOptionalBignum(t, &p, "P") || //
|
|
!GetOptionalBignum(t, &q, "Q") || //
|
|
!GetOptionalBignum(t, &g, "G") ||
|
|
!GetOptionalBignum(t, &pub_key, "Public") ||
|
|
!GetOptionalBignum(t, &priv_key, "Private")) {
|
|
return false;
|
|
}
|
|
|
|
bssl::UniquePtr<DH> dh(DH_new());
|
|
if (dh == nullptr || !DH_set0_pqg(dh.get(), p.get(), q.get(), g.get())) {
|
|
return false;
|
|
}
|
|
// `DH_set0_pqg` takes ownership on success.
|
|
p.release();
|
|
q.release();
|
|
g.release();
|
|
|
|
if (!DH_set0_key(dh.get(), pub_key.get(), priv_key.get())) {
|
|
return false;
|
|
}
|
|
// `DH_set0_key` takes ownership on success.
|
|
pub_key.release();
|
|
priv_key.release();
|
|
|
|
bssl::UniquePtr<EVP_PKEY> pkey(EVP_PKEY_new());
|
|
if (pkey == nullptr || !EVP_PKEY_set1_DH(pkey.get(), dh.get())) {
|
|
return false;
|
|
}
|
|
|
|
// Save the key for future tests.
|
|
const std::string &key_name = t->GetParameter();
|
|
EXPECT_EQ(0u, key_map->count(key_name)) << "Duplicate key: " << key_name;
|
|
(*key_map)[key_name] = std::move(pkey);
|
|
return true;
|
|
}
|
|
|
|
// SetupContext configures `ctx` based on attributes in `t`, with the exception
|
|
// of the signing digest which must be configured externally.
|
|
bool SetupContext(FileTest *t, const KeyMap *key_map, EVP_PKEY_CTX *ctx) {
|
|
if (t->HasAttribute("RSAPadding")) {
|
|
auto padding = GetRSAPadding(t->GetAttributeOrDie("RSAPadding"));
|
|
if (!padding || !EVP_PKEY_CTX_set_rsa_padding(ctx, *padding)) {
|
|
return false;
|
|
}
|
|
}
|
|
if (t->HasAttribute("PSSSaltLength") &&
|
|
!EVP_PKEY_CTX_set_rsa_pss_saltlen(
|
|
ctx, atoi(t->GetAttributeOrDie("PSSSaltLength").c_str()))) {
|
|
return false;
|
|
}
|
|
if (t->HasAttribute("MGF1Digest")) {
|
|
const EVP_MD *digest = GetDigest(t->GetAttributeOrDie("MGF1Digest"));
|
|
if (digest == nullptr || !EVP_PKEY_CTX_set_rsa_mgf1_md(ctx, digest)) {
|
|
return false;
|
|
}
|
|
}
|
|
if (t->HasAttribute("OAEPDigest")) {
|
|
const EVP_MD *digest = GetDigest(t->GetAttributeOrDie("OAEPDigest"));
|
|
if (digest == nullptr || !EVP_PKEY_CTX_set_rsa_oaep_md(ctx, digest)) {
|
|
return false;
|
|
}
|
|
}
|
|
if (t->HasAttribute("OAEPLabel")) {
|
|
std::vector<uint8_t> label;
|
|
if (!t->GetBytes(&label, "OAEPLabel")) {
|
|
return false;
|
|
}
|
|
// For historical reasons, `EVP_PKEY_CTX_set0_rsa_oaep_label` expects to be
|
|
// take ownership of the input.
|
|
bssl::UniquePtr<uint8_t> buf(reinterpret_cast<uint8_t *>(
|
|
OPENSSL_memdup(label.data(), label.size())));
|
|
if (!buf ||
|
|
!EVP_PKEY_CTX_set0_rsa_oaep_label(ctx, buf.get(), label.size())) {
|
|
return false;
|
|
}
|
|
buf.release();
|
|
}
|
|
if (t->HasAttribute("DerivePeer")) {
|
|
std::string derive_peer = t->GetAttributeOrDie("DerivePeer");
|
|
auto it = key_map->find(derive_peer);
|
|
if (it == key_map->end()) {
|
|
ADD_FAILURE() << "Could not find key " << derive_peer;
|
|
return false;
|
|
}
|
|
EVP_PKEY *derive_peer_key = it->second.get();
|
|
if (!EVP_PKEY_derive_set_peer(ctx, derive_peer_key)) {
|
|
return false;
|
|
}
|
|
}
|
|
if (t->HasAttribute("DiffieHellmanPad") && !EVP_PKEY_CTX_set_dh_pad(ctx, 1)) {
|
|
return false;
|
|
}
|
|
if (t->HasAttribute("Context")) {
|
|
std::vector<uint8_t> context;
|
|
if (!t->GetBytes(&context, "Context") ||
|
|
!EVP_PKEY_CTX_set1_signature_context_string(ctx, context.data(),
|
|
context.size())) {
|
|
return false;
|
|
}
|
|
}
|
|
return true;
|
|
}
|
|
|
|
bool MaybeReplaceWithCopy(bssl::UniquePtr<EVP_PKEY_CTX> *ctx, bool copy_ctx) {
|
|
if (!copy_ctx) {
|
|
return true;
|
|
}
|
|
bssl::UniquePtr<EVP_PKEY_CTX> copy(EVP_PKEY_CTX_dup(ctx->get()));
|
|
if (!copy) {
|
|
return false;
|
|
}
|
|
*ctx = std::move(copy);
|
|
return true;
|
|
}
|
|
|
|
bool MaybeReplaceWithCopy(bssl::UniquePtr<EVP_MD_CTX> *ctx, EVP_PKEY_CTX **pctx,
|
|
bool copy_ctx) {
|
|
if (!copy_ctx) {
|
|
return true;
|
|
}
|
|
bssl::UniquePtr<EVP_MD_CTX> copy(EVP_MD_CTX_new());
|
|
if (ctx == nullptr || !EVP_MD_CTX_copy_ex(copy.get(), ctx->get())) {
|
|
return false;
|
|
}
|
|
*ctx = std::move(copy);
|
|
*pctx = EVP_MD_CTX_pkey_ctx(ctx->get());
|
|
return true;
|
|
}
|
|
|
|
bool TestDerive(FileTest *t, const KeyMap *key_map, EVP_PKEY *key,
|
|
bool copy_ctx) {
|
|
bssl::UniquePtr<EVP_PKEY_CTX> ctx(EVP_PKEY_CTX_new(key, nullptr));
|
|
if (!ctx || //
|
|
!EVP_PKEY_derive_init(ctx.get()) ||
|
|
!MaybeReplaceWithCopy(&ctx, copy_ctx) ||
|
|
!SetupContext(t, key_map, ctx.get()) ||
|
|
!MaybeReplaceWithCopy(&ctx, copy_ctx)) {
|
|
return false;
|
|
}
|
|
|
|
size_t len;
|
|
std::vector<uint8_t> actual, output;
|
|
if (!EVP_PKEY_derive(ctx.get(), nullptr, &len)) {
|
|
return false;
|
|
}
|
|
actual.resize(len);
|
|
if (!EVP_PKEY_derive(ctx.get(), actual.data(), &len)) {
|
|
return false;
|
|
}
|
|
actual.resize(len);
|
|
|
|
// Defer looking up the attribute so Error works properly.
|
|
if (!t->GetBytes(&output, "Output")) {
|
|
return false;
|
|
}
|
|
EXPECT_EQ(Bytes(output), Bytes(actual));
|
|
|
|
// Test when the buffer is too large.
|
|
actual.resize(len + 1);
|
|
len = actual.size();
|
|
if (!EVP_PKEY_derive(ctx.get(), actual.data(), &len)) {
|
|
return false;
|
|
}
|
|
actual.resize(len);
|
|
EXPECT_EQ(Bytes(output), Bytes(actual));
|
|
|
|
// Test when the buffer is too small.
|
|
actual.resize(len - 1);
|
|
len = actual.size();
|
|
if (t->HasAttribute("SmallBufferTruncates")) {
|
|
if (!EVP_PKEY_derive(ctx.get(), actual.data(), &len)) {
|
|
return false;
|
|
}
|
|
actual.resize(len);
|
|
EXPECT_EQ(Bytes(output.data(), len), Bytes(actual));
|
|
} else {
|
|
EXPECT_FALSE(EVP_PKEY_derive(ctx.get(), actual.data(), &len));
|
|
ERR_clear_error();
|
|
}
|
|
return true;
|
|
}
|
|
|
|
// Tests encapsulation and/or decapsulation. If performing both, this checks
|
|
// that the output of encapsulation is successfully decapsulated to the same
|
|
// shared secret value. If only performing decapsulation, this reads ciphertext
|
|
// input from the test vectors file and checks the decapsulation result against
|
|
// known output. If only performing encapsulation, this only checks that the
|
|
// operation succeeds.
|
|
bool TestKem(FileTest *t, EVP_PKEY *pkey, bool copy_ctx, bool encapsulate,
|
|
bool decapsulate) {
|
|
std::string alg_name;
|
|
if (!t->GetAttribute(&alg_name, "Algorithm")) {
|
|
ADD_FAILURE() << "Algorithm not specified.";
|
|
return false;
|
|
}
|
|
auto it = kAllAlgorithms.find(alg_name);
|
|
if (it == kAllAlgorithms.end()) {
|
|
ADD_FAILURE() << "Unknown algorithm: " << alg_name;
|
|
return false;
|
|
}
|
|
const AlgorithmInfo &alg_info = it->second;
|
|
if (alg_info.alg == nullptr || alg_info.kem == nullptr) {
|
|
ADD_FAILURE() << "Method not defined: " << alg_name;
|
|
return false;
|
|
}
|
|
|
|
size_t expected_ciphertext_len;
|
|
size_t expected_secret_len;
|
|
if (alg_info.kem == EVP_kem_ml_kem_768()) {
|
|
expected_ciphertext_len = MLKEM768_CIPHERTEXT_BYTES;
|
|
expected_secret_len = MLKEM_SHARED_SECRET_BYTES;
|
|
} else if (alg_info.kem == EVP_kem_ml_kem_1024()) {
|
|
expected_ciphertext_len = MLKEM1024_CIPHERTEXT_BYTES;
|
|
expected_secret_len = MLKEM_SHARED_SECRET_BYTES;
|
|
} else if (alg_info.kem == EVP_kem_xwing()) {
|
|
expected_ciphertext_len = XWING_CIPHERTEXT_BYTES;
|
|
expected_secret_len = XWING_SHARED_SECRET_BYTES;
|
|
} else {
|
|
ADD_FAILURE() << "KEM not found: " << alg_name;
|
|
return false;
|
|
}
|
|
|
|
bssl::UniquePtr<EVP_PKEY_CTX> ctx;
|
|
std::vector<uint8_t> ciphertext, secret, decapsulated_secret;
|
|
size_t ciphertext_size, secret_size;
|
|
|
|
const auto resize_output_buffers =
|
|
[&](std::optional<size_t> new_ciphertext_len,
|
|
std::optional<size_t> new_secret_len,
|
|
bool resize_decap_buffer_only = false) {
|
|
if (new_ciphertext_len) {
|
|
ciphertext_size = *new_ciphertext_len;
|
|
ciphertext.resize(ciphertext_size);
|
|
}
|
|
if (new_secret_len) {
|
|
secret_size = *new_secret_len;
|
|
if (!resize_decap_buffer_only) {
|
|
secret.resize(secret_size);
|
|
}
|
|
decapsulated_secret.resize(secret_size);
|
|
}
|
|
};
|
|
|
|
const auto reset_test_state = [&]() {
|
|
ctx.reset(EVP_PKEY_CTX_new(pkey, nullptr));
|
|
resize_output_buffers(0, 0);
|
|
|
|
// Read values from the test vector file.
|
|
if (decapsulate && !encapsulate) {
|
|
if (!t->GetBytes(&ciphertext, "Input")) {
|
|
ADD_FAILURE() << "Input not found.";
|
|
}
|
|
if (!t->HasAttribute("DecapsulateFail") &&
|
|
!t->GetBytes(&secret, "Output")) {
|
|
ADD_FAILURE() << "Output not found.";
|
|
}
|
|
}
|
|
};
|
|
|
|
reset_test_state();
|
|
|
|
// Perform encapsulation.
|
|
if (encapsulate) {
|
|
if (!ctx || //
|
|
!EVP_PKEY_encapsulate_init(ctx.get(), nullptr) ||
|
|
!MaybeReplaceWithCopy(&ctx, copy_ctx)) {
|
|
return false;
|
|
}
|
|
|
|
// Test the mode that writes the output size.
|
|
EXPECT_EQ(EVP_PKEY_encapsulate(ctx.get(), nullptr, &ciphertext_size,
|
|
nullptr, &secret_size),
|
|
1);
|
|
EXPECT_EQ(ciphertext_size, expected_ciphertext_len);
|
|
EXPECT_EQ(secret_size, expected_secret_len);
|
|
|
|
// If insufficient space is supplied, the function will fail.
|
|
resize_output_buffers(ciphertext_size - 1, secret_size - 1);
|
|
EXPECT_EQ(
|
|
EVP_PKEY_encapsulate(ctx.get(), ciphertext.data(), &ciphertext_size,
|
|
secret.data(), &secret_size),
|
|
0);
|
|
EXPECT_TRUE(
|
|
ErrorEquals(ERR_get_error(), ERR_LIB_EVP, EVP_R_BUFFER_TOO_SMALL));
|
|
ERR_clear_error();
|
|
|
|
// Test the mode that actually performs the operation.
|
|
resize_output_buffers(expected_ciphertext_len + 1, expected_secret_len + 1);
|
|
EXPECT_EQ(
|
|
EVP_PKEY_encapsulate(ctx.get(), ciphertext.data(), &ciphertext_size,
|
|
secret.data(), &secret_size),
|
|
1);
|
|
// The correct output sizes are written out.
|
|
EXPECT_EQ(ciphertext_size, expected_ciphertext_len);
|
|
EXPECT_EQ(secret_size, expected_secret_len);
|
|
resize_output_buffers(ciphertext_size, secret_size);
|
|
}
|
|
|
|
const auto check_decapsulate_result = [&](int result) {
|
|
if (t->HasAttribute("DecapsulateFail")) {
|
|
EXPECT_EQ(result, 0);
|
|
return;
|
|
}
|
|
EXPECT_EQ(result, 1);
|
|
// The correct output size was written out.
|
|
EXPECT_EQ(secret_size, expected_secret_len);
|
|
decapsulated_secret.resize(secret_size);
|
|
EXPECT_EQ(secret, decapsulated_secret);
|
|
};
|
|
|
|
// Perform decapsulation.
|
|
if (decapsulate) {
|
|
ctx.reset(EVP_PKEY_CTX_new(pkey, nullptr));
|
|
if (!ctx || //
|
|
!EVP_PKEY_decapsulate_init(ctx.get(), nullptr) ||
|
|
!MaybeReplaceWithCopy(&ctx, copy_ctx)) {
|
|
return false;
|
|
}
|
|
|
|
// Test the mode that writes the output size.
|
|
secret_size = 0;
|
|
EXPECT_EQ(EVP_PKEY_decapsulate(ctx.get(), nullptr, &secret_size,
|
|
ciphertext.data(), ciphertext.size()),
|
|
1);
|
|
EXPECT_EQ(secret_size, expected_secret_len);
|
|
|
|
// If insufficient space is supplied, the function will fail.
|
|
resize_output_buffers(std::nullopt, secret_size - 1, true);
|
|
EXPECT_EQ(EVP_PKEY_decapsulate(ctx.get(), decapsulated_secret.data(),
|
|
&secret_size, ciphertext.data(),
|
|
ciphertext.size()),
|
|
0);
|
|
EXPECT_TRUE(
|
|
ErrorEquals(ERR_get_error(), ERR_LIB_EVP, EVP_R_BUFFER_TOO_SMALL));
|
|
ERR_clear_error();
|
|
|
|
// Test the mode that actually performs the operation.
|
|
resize_output_buffers(std::nullopt, secret_size + 1, true);
|
|
check_decapsulate_result(EVP_PKEY_decapsulate(
|
|
ctx.get(), decapsulated_secret.data(), &secret_size, ciphertext.data(),
|
|
ciphertext.size()));
|
|
}
|
|
|
|
// Repeat everything the EVP_KEM way, which is simpler.
|
|
reset_test_state();
|
|
|
|
EXPECT_EQ(EVP_KEM_ciphertext_len(alg_info.kem), expected_ciphertext_len);
|
|
EXPECT_EQ(EVP_KEM_secret_len(alg_info.kem), expected_secret_len);
|
|
|
|
if (encapsulate) {
|
|
ciphertext.resize(ciphertext_size);
|
|
|
|
// Passing the wrong sizes fails (even if larger than required).
|
|
resize_output_buffers(expected_ciphertext_len - 1, expected_secret_len);
|
|
EXPECT_EQ(EVP_KEM_encap(alg_info.kem, ciphertext.data(), ciphertext.size(),
|
|
secret.data(), secret.size(), pkey),
|
|
0);
|
|
EXPECT_TRUE(ErrorEquals(ERR_get_error(), ERR_LIB_EVP,
|
|
EVP_R_INVALID_CIPHERTEXT_LENGTH));
|
|
ERR_clear_error();
|
|
resize_output_buffers(expected_ciphertext_len + 1, expected_secret_len);
|
|
EXPECT_EQ(EVP_KEM_encap(alg_info.kem, ciphertext.data(), ciphertext.size(),
|
|
secret.data(), secret.size(), pkey),
|
|
0);
|
|
EXPECT_TRUE(ErrorEquals(ERR_get_error(), ERR_LIB_EVP,
|
|
EVP_R_INVALID_CIPHERTEXT_LENGTH));
|
|
ERR_clear_error();
|
|
resize_output_buffers(expected_ciphertext_len, expected_secret_len - 1);
|
|
EXPECT_EQ(EVP_KEM_encap(alg_info.kem, ciphertext.data(), ciphertext.size(),
|
|
secret.data(), secret.size(), pkey),
|
|
0);
|
|
EXPECT_TRUE(
|
|
ErrorEquals(ERR_get_error(), ERR_LIB_EVP, EVP_R_INVALID_SECRET_LENGTH));
|
|
ERR_clear_error();
|
|
resize_output_buffers(expected_ciphertext_len, expected_secret_len + 1);
|
|
EXPECT_EQ(EVP_KEM_encap(alg_info.kem, ciphertext.data(), ciphertext.size(),
|
|
secret.data(), secret.size(), pkey),
|
|
0);
|
|
EXPECT_TRUE(
|
|
ErrorEquals(ERR_get_error(), ERR_LIB_EVP, EVP_R_INVALID_SECRET_LENGTH));
|
|
ERR_clear_error();
|
|
|
|
// Only the correct sizes are accepted.
|
|
resize_output_buffers(expected_ciphertext_len, expected_secret_len);
|
|
EXPECT_EQ(EVP_KEM_encap(alg_info.kem, ciphertext.data(), ciphertext.size(),
|
|
secret.data(), secret.size(), pkey),
|
|
1);
|
|
}
|
|
|
|
if (decapsulate) {
|
|
// Passing the wrong sizes fails (even if larger than required).
|
|
resize_output_buffers(std::nullopt, expected_secret_len - 1, true);
|
|
EXPECT_EQ(EVP_KEM_decap(alg_info.kem, decapsulated_secret.data(),
|
|
decapsulated_secret.size(), ciphertext.data(),
|
|
ciphertext.size(), pkey),
|
|
0);
|
|
EXPECT_TRUE(
|
|
ErrorEquals(ERR_get_error(), ERR_LIB_EVP, EVP_R_INVALID_SECRET_LENGTH));
|
|
ERR_clear_error();
|
|
resize_output_buffers(std::nullopt, expected_secret_len + 1, true);
|
|
EXPECT_EQ(EVP_KEM_decap(alg_info.kem, decapsulated_secret.data(),
|
|
decapsulated_secret.size(), ciphertext.data(),
|
|
ciphertext.size(), pkey),
|
|
0);
|
|
EXPECT_TRUE(
|
|
ErrorEquals(ERR_get_error(), ERR_LIB_EVP, EVP_R_INVALID_SECRET_LENGTH));
|
|
ERR_clear_error();
|
|
|
|
resize_output_buffers(std::nullopt, expected_secret_len, true);
|
|
check_decapsulate_result(EVP_KEM_decap(
|
|
alg_info.kem, decapsulated_secret.data(), decapsulated_secret.size(),
|
|
ciphertext.data(), ciphertext.size(), pkey));
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
bool TestEVPOperation(FileTest *t, const KeyMap *key_map, bool copy_ctx) {
|
|
SCOPED_TRACE(copy_ctx);
|
|
// Load the key.
|
|
const std::string &key_name = t->GetParameter();
|
|
auto it = key_map->find(key_name);
|
|
if (it == key_map->end()) {
|
|
ADD_FAILURE() << "Could not find key " << key_name;
|
|
return false;
|
|
}
|
|
EVP_PKEY *key = it->second.get();
|
|
|
|
int (*key_op_init)(EVP_PKEY_CTX *ctx) = nullptr;
|
|
int (*key_op)(EVP_PKEY_CTX *ctx, uint8_t *out, size_t *out_len,
|
|
const uint8_t *in, size_t in_len) = nullptr;
|
|
int (*md_op_init)(EVP_MD_CTX *ctx, EVP_PKEY_CTX **pctx, const EVP_MD *type,
|
|
ENGINE *e, EVP_PKEY *pkey) = nullptr;
|
|
bool is_verify = false;
|
|
if (t->GetType() == "Decrypt") {
|
|
key_op_init = EVP_PKEY_decrypt_init;
|
|
key_op = EVP_PKEY_decrypt;
|
|
} else if (t->GetType() == "Sign") {
|
|
key_op_init = EVP_PKEY_sign_init;
|
|
key_op = EVP_PKEY_sign;
|
|
} else if (t->GetType() == "Verify") {
|
|
key_op_init = EVP_PKEY_verify_init;
|
|
is_verify = true;
|
|
} else if (t->GetType() == "SignMessage") {
|
|
md_op_init = EVP_DigestSignInit;
|
|
} else if (t->GetType() == "VerifyMessage") {
|
|
md_op_init = EVP_DigestVerifyInit;
|
|
is_verify = true;
|
|
} else if (t->GetType() == "Encrypt") {
|
|
key_op_init = EVP_PKEY_encrypt_init;
|
|
key_op = EVP_PKEY_encrypt;
|
|
} else if (t->GetType() == "Derive") {
|
|
return TestDerive(t, key_map, key, copy_ctx);
|
|
} else if (t->GetType() == "Encapsulate") {
|
|
return TestKem(t, key, copy_ctx, true, false);
|
|
} else if (t->GetType() == "EncapsulateDecapsulate") {
|
|
return TestKem(t, key, copy_ctx, true, true);
|
|
} else if (t->GetType() == "Decapsulate") {
|
|
return TestKem(t, key, copy_ctx, false, true);
|
|
} else {
|
|
ADD_FAILURE() << "Unknown test " << t->GetType();
|
|
return false;
|
|
}
|
|
|
|
const EVP_MD *digest = nullptr;
|
|
if (t->HasAttribute("Digest")) {
|
|
digest = GetDigest(t->GetAttributeOrDie("Digest"));
|
|
if (digest == nullptr) {
|
|
return false;
|
|
}
|
|
}
|
|
|
|
// For verify tests, the "output" is the signature. Read it now so that, for
|
|
// tests which expect a failure in SetupContext, the attribute is still
|
|
// consumed.
|
|
std::vector<uint8_t> input, actual, output;
|
|
if (!t->GetBytes(&input, "Input") ||
|
|
(is_verify && !t->GetBytes(&output, "Output"))) {
|
|
return false;
|
|
}
|
|
|
|
if (md_op_init) {
|
|
bssl::UniquePtr<EVP_MD_CTX> ctx(EVP_MD_CTX_new());
|
|
EVP_PKEY_CTX *pctx;
|
|
if (ctx == nullptr || //
|
|
!md_op_init(ctx.get(), &pctx, digest, nullptr, key) ||
|
|
!MaybeReplaceWithCopy(&ctx, &pctx, copy_ctx) ||
|
|
!SetupContext(t, key_map, pctx) ||
|
|
!MaybeReplaceWithCopy(&ctx, &pctx, copy_ctx)) {
|
|
return false;
|
|
}
|
|
|
|
if (is_verify) {
|
|
return EVP_DigestVerify(ctx.get(), output.data(), output.size(),
|
|
input.data(), input.size());
|
|
}
|
|
|
|
size_t len;
|
|
if (!EVP_DigestSign(ctx.get(), nullptr, &len, input.data(), input.size())) {
|
|
return false;
|
|
}
|
|
actual.resize(len);
|
|
if (!EVP_DigestSign(ctx.get(), actual.data(), &len, input.data(),
|
|
input.size())) {
|
|
return false;
|
|
}
|
|
actual.resize(len);
|
|
|
|
if (t->HasAttribute("CheckVerify")) {
|
|
// Some signature schemes are non-deterministic, so we check by verifying.
|
|
bssl::UniquePtr<EVP_MD_CTX> verify_ctx(EVP_MD_CTX_new());
|
|
EVP_PKEY_CTX *verify_pctx;
|
|
if (verify_ctx == nullptr ||
|
|
!EVP_DigestVerifyInit(verify_ctx.get(), &verify_pctx, digest, nullptr,
|
|
key) ||
|
|
!MaybeReplaceWithCopy(&verify_ctx, &verify_pctx, copy_ctx) ||
|
|
!SetupContext(t, key_map, verify_pctx) ||
|
|
!MaybeReplaceWithCopy(&verify_ctx, &verify_pctx, copy_ctx)) {
|
|
return false;
|
|
}
|
|
EXPECT_TRUE(EVP_DigestVerify(verify_ctx.get(), actual.data(),
|
|
actual.size(), input.data(), input.size()))
|
|
<< "Could not verify result.";
|
|
return true;
|
|
}
|
|
|
|
if (!t->GetBytes(&output, "Output")) {
|
|
return false;
|
|
}
|
|
EXPECT_EQ(Bytes(output), Bytes(actual));
|
|
return true;
|
|
}
|
|
|
|
bssl::UniquePtr<EVP_PKEY_CTX> ctx(EVP_PKEY_CTX_new(key, nullptr));
|
|
if (!ctx || !key_op_init(ctx.get()) ||
|
|
!MaybeReplaceWithCopy(&ctx, copy_ctx) ||
|
|
(digest != nullptr &&
|
|
!EVP_PKEY_CTX_set_signature_md(ctx.get(), digest)) ||
|
|
!SetupContext(t, key_map, ctx.get()) ||
|
|
!MaybeReplaceWithCopy(&ctx, copy_ctx)) {
|
|
return false;
|
|
}
|
|
|
|
if (is_verify) {
|
|
return EVP_PKEY_verify(ctx.get(), output.data(), output.size(),
|
|
input.data(), input.size());
|
|
}
|
|
|
|
size_t len;
|
|
if (!key_op(ctx.get(), nullptr, &len, input.data(), input.size())) {
|
|
return false;
|
|
}
|
|
actual.resize(len);
|
|
if (!key_op(ctx.get(), actual.data(), &len, input.data(), input.size())) {
|
|
return false;
|
|
}
|
|
|
|
if (t->HasAttribute("CheckDecrypt")) {
|
|
// Encryption is non-deterministic, so we check by decrypting.
|
|
size_t plaintext_len;
|
|
bssl::UniquePtr<EVP_PKEY_CTX> decrypt_ctx(EVP_PKEY_CTX_new(key, nullptr));
|
|
if (!decrypt_ctx || //
|
|
!EVP_PKEY_decrypt_init(decrypt_ctx.get()) ||
|
|
!MaybeReplaceWithCopy(&decrypt_ctx, copy_ctx) ||
|
|
(digest != nullptr &&
|
|
!EVP_PKEY_CTX_set_signature_md(decrypt_ctx.get(), digest)) ||
|
|
!SetupContext(t, key_map, decrypt_ctx.get()) ||
|
|
!MaybeReplaceWithCopy(&decrypt_ctx, copy_ctx) ||
|
|
!EVP_PKEY_decrypt(decrypt_ctx.get(), nullptr, &plaintext_len,
|
|
actual.data(), actual.size())) {
|
|
return false;
|
|
}
|
|
output.resize(plaintext_len);
|
|
if (!EVP_PKEY_decrypt(decrypt_ctx.get(), output.data(), &plaintext_len,
|
|
actual.data(), actual.size())) {
|
|
ADD_FAILURE() << "Could not decrypt result.";
|
|
return false;
|
|
}
|
|
output.resize(plaintext_len);
|
|
EXPECT_EQ(Bytes(input), Bytes(output)) << "Decrypted result mismatch.";
|
|
} else if (t->HasAttribute("CheckVerify")) {
|
|
// Some signature schemes are non-deterministic, so we check by verifying.
|
|
bssl::UniquePtr<EVP_PKEY_CTX> verify_ctx(EVP_PKEY_CTX_new(key, nullptr));
|
|
if (!verify_ctx || //
|
|
!EVP_PKEY_verify_init(verify_ctx.get()) ||
|
|
!MaybeReplaceWithCopy(&verify_ctx, copy_ctx) ||
|
|
(digest != nullptr &&
|
|
!EVP_PKEY_CTX_set_signature_md(verify_ctx.get(), digest)) ||
|
|
!SetupContext(t, key_map, verify_ctx.get()) ||
|
|
!MaybeReplaceWithCopy(&verify_ctx, copy_ctx)) {
|
|
return false;
|
|
}
|
|
if (t->HasAttribute("VerifyPSSSaltLength")) {
|
|
if (!EVP_PKEY_CTX_set_rsa_pss_saltlen(
|
|
verify_ctx.get(),
|
|
atoi(t->GetAttributeOrDie("VerifyPSSSaltLength").c_str()))) {
|
|
return false;
|
|
}
|
|
}
|
|
EXPECT_TRUE(EVP_PKEY_verify(verify_ctx.get(), actual.data(), actual.size(),
|
|
input.data(), input.size()))
|
|
<< "Could not verify result.";
|
|
} else {
|
|
// By default, check by comparing the result against Output.
|
|
if (!t->GetBytes(&output, "Output")) {
|
|
return false;
|
|
}
|
|
actual.resize(len);
|
|
EXPECT_EQ(Bytes(output), Bytes(actual));
|
|
}
|
|
return true;
|
|
}
|
|
|
|
bool TestEVP(FileTest *t, KeyMap *key_map) {
|
|
if (t->GetType() == "PrivateKey") {
|
|
return ImportKey(t, key_map, KeyRole::kPrivate);
|
|
}
|
|
|
|
if (t->GetType() == "PrivateKeyFromSeed") {
|
|
return ImportRawKey(t, key_map, KeyRole::kPrivate, /*use_seed=*/true);
|
|
}
|
|
|
|
if (t->GetType() == "PublicKey") {
|
|
return ImportKey(t, key_map, KeyRole::kPublic);
|
|
}
|
|
|
|
if (t->GetType() == "PublicKeyFromRaw") {
|
|
return ImportRawKey(t, key_map, KeyRole::kPublic, /*use_seed=*/false);
|
|
}
|
|
|
|
if (t->GetType() == "DHKey") {
|
|
return ImportDHKey(t, key_map);
|
|
}
|
|
|
|
// Run the test twice, once copying the context and once normally.
|
|
return TestEVPOperation(t, key_map, /*copy_ctx=*/false) &&
|
|
TestEVPOperation(t, key_map, /*copy_ctx=*/true);
|
|
}
|
|
|
|
void RunEVPTests(const char *path) {
|
|
KeyMap key_map;
|
|
FileTestGTest(path, [&](FileTest *t) {
|
|
bool result = TestEVP(t, &key_map);
|
|
if (t->HasAttribute("Error")) {
|
|
ASSERT_FALSE(result) << "Operation unexpectedly succeeded.";
|
|
uint32_t err = ERR_peek_error();
|
|
EXPECT_EQ(t->GetAttributeOrDie("Error"), ERR_reason_error_string(err));
|
|
} else if (!result) {
|
|
ADD_FAILURE() << "Operation unexpectedly failed.";
|
|
}
|
|
});
|
|
}
|
|
|
|
TEST(EVPTest, GeneralTestVectors) {
|
|
RunEVPTests("crypto/evp/test/evp_tests.txt");
|
|
}
|
|
|
|
TEST(EVPTest, DHTestVectors) { RunEVPTests("crypto/evp/test/dh_tests.txt"); }
|
|
|
|
TEST(EVPTest, ECTestVectors) { RunEVPTests("crypto/evp/test/ec_tests.txt"); }
|
|
|
|
TEST(EVPTest, Ed25519TestVectors) {
|
|
RunEVPTests("crypto/evp/test/ed25519_tests.txt");
|
|
}
|
|
|
|
TEST(EVPTest, MLDSATestVectors) {
|
|
RunEVPTests("crypto/evp/test/mldsa_tests.txt");
|
|
}
|
|
|
|
TEST(EVPTest, MLKEMTestVectors) {
|
|
RunEVPTests("crypto/evp/test/mlkem_tests.txt");
|
|
}
|
|
|
|
TEST(EVPTest, RSATestVectors) { RunEVPTests("crypto/evp/test/rsa_tests.txt"); }
|
|
|
|
TEST(EVPTest, X25519TestVectors) {
|
|
RunEVPTests("crypto/evp/test/x25519_tests.txt");
|
|
}
|
|
|
|
TEST(EVPTest, XWingTestVectors) {
|
|
RunEVPTests("crypto/evp/test/xwing_tests.txt");
|
|
}
|
|
|
|
void RunWycheproofVerifyTest(const char *path, const EVP_PKEY_ALG *alg) {
|
|
SCOPED_TRACE(path);
|
|
FileTestGTest(path, [&](FileTest *t) {
|
|
t->IgnoreAllUnusedInstructions();
|
|
|
|
const EVP_MD *md = nullptr;
|
|
if (t->HasInstruction("sha")) {
|
|
md = GetWycheproofDigest(t, "sha", true);
|
|
ASSERT_TRUE(md);
|
|
}
|
|
|
|
bool is_pss = t->HasInstruction("mgf");
|
|
const EVP_MD *mgf1_md = nullptr;
|
|
int pss_salt_len = RSA_PSS_SALTLEN_DIGEST;
|
|
if (is_pss) {
|
|
ASSERT_EQ("MGF1", t->GetInstructionOrDie("mgf"));
|
|
mgf1_md = GetWycheproofDigest(t, "mgfSha", true);
|
|
|
|
std::string s_len;
|
|
ASSERT_TRUE(t->GetInstruction(&s_len, "sLen"));
|
|
pss_salt_len = atoi(s_len.c_str());
|
|
}
|
|
|
|
std::vector<uint8_t> msg;
|
|
ASSERT_TRUE(t->GetBytes(&msg, "msg"));
|
|
std::vector<uint8_t> sig;
|
|
ASSERT_TRUE(t->GetBytes(&sig, "sig"));
|
|
std::vector<uint8_t> sig_ctx;
|
|
if (t->HasAttribute("ctx")) {
|
|
ASSERT_TRUE(t->GetBytes(&sig_ctx, "ctx"));
|
|
}
|
|
WycheproofResult result;
|
|
ASSERT_TRUE(GetWycheproofResult(t, &result));
|
|
// BoringSSL does not enforce policies on weak keys and leaves it to the
|
|
// caller.
|
|
bool expect_valid =
|
|
result.IsValid({"SmallModulus", "SmallPublicKey", "WeakHash"});
|
|
|
|
std::vector<uint8_t> der;
|
|
ASSERT_TRUE(t->GetInstructionBytes(&der, "publicKeyDer"));
|
|
bssl::UniquePtr<EVP_PKEY> key(
|
|
EVP_PKEY_from_subject_public_key_info(der.data(), der.size(), &alg, 1));
|
|
if (!key) {
|
|
EXPECT_FALSE(expect_valid);
|
|
return;
|
|
}
|
|
|
|
if (EVP_PKEY_id(key.get()) == EVP_PKEY_DSA) {
|
|
// DSA is deprecated and is not usable via EVP.
|
|
DSA *dsa = EVP_PKEY_get0_DSA(key.get());
|
|
uint8_t digest[EVP_MAX_MD_SIZE];
|
|
unsigned digest_len;
|
|
ASSERT_TRUE(
|
|
EVP_Digest(msg.data(), msg.size(), digest, &digest_len, md, nullptr));
|
|
int valid;
|
|
bool sig_ok = DSA_check_signature(&valid, digest, digest_len, sig.data(),
|
|
sig.size(), dsa) &&
|
|
valid;
|
|
EXPECT_EQ(sig_ok, result.IsValid());
|
|
} else {
|
|
bssl::ScopedEVP_MD_CTX ctx;
|
|
EVP_PKEY_CTX *pctx;
|
|
ASSERT_TRUE(
|
|
EVP_DigestVerifyInit(ctx.get(), &pctx, md, nullptr, key.get()));
|
|
if (is_pss) {
|
|
ASSERT_TRUE(EVP_PKEY_CTX_set_rsa_padding(pctx, RSA_PKCS1_PSS_PADDING));
|
|
ASSERT_TRUE(EVP_PKEY_CTX_set_rsa_mgf1_md(pctx, mgf1_md));
|
|
ASSERT_TRUE(EVP_PKEY_CTX_set_rsa_pss_saltlen(pctx, pss_salt_len));
|
|
}
|
|
if (!sig_ctx.empty() && !EVP_PKEY_CTX_set1_signature_context_string(
|
|
pctx, sig_ctx.data(), sig_ctx.size())) {
|
|
EXPECT_FALSE(expect_valid);
|
|
return;
|
|
}
|
|
int ret = EVP_DigestVerify(ctx.get(), sig.data(), sig.size(), msg.data(),
|
|
msg.size());
|
|
EXPECT_EQ(ret, expect_valid ? 1 : 0);
|
|
}
|
|
});
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofDSA) {
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/dsa_2048_224_sha224_test.txt",
|
|
EVP_pkey_dsa());
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofECDSAP224) {
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/ecdsa_secp224r1_sha224_test.txt",
|
|
EVP_pkey_ec_p224());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/ecdsa_secp224r1_sha256_test.txt",
|
|
EVP_pkey_ec_p224());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/ecdsa_secp224r1_sha512_test.txt",
|
|
EVP_pkey_ec_p224());
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofECDSAP256) {
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/ecdsa_secp256r1_sha256_test.txt",
|
|
EVP_pkey_ec_p256());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/ecdsa_secp256r1_sha512_test.txt",
|
|
EVP_pkey_ec_p256());
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofECDSAP384) {
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/ecdsa_secp384r1_sha384_test.txt",
|
|
EVP_pkey_ec_p384());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/ecdsa_secp384r1_sha512_test.txt",
|
|
EVP_pkey_ec_p384());
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofECDSAP521) {
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/ecdsa_secp521r1_sha512_test.txt",
|
|
EVP_pkey_ec_p521());
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofEd25519) {
|
|
RunWycheproofVerifyTest("third_party/wycheproof_testvectors/ed25519_test.txt",
|
|
EVP_pkey_ed25519());
|
|
}
|
|
|
|
// TODO(crbug.com/449751916): We also test these in the low-level ML-DSA code.
|
|
// The EVP-level tests are not yet redundant:
|
|
//
|
|
// * We can't yet run the signing tests with external entropy.
|
|
//
|
|
// When/if we add `EVP_PKEY`-based APIs for those, we may be able to remove the
|
|
// low-level copy.
|
|
|
|
TEST(EVPTest, WycheproofMLDSA44) {
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/mldsa_44_verify_test.txt",
|
|
EVP_pkey_ml_dsa_44());
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofMLDSA65) {
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/mldsa_65_verify_test.txt",
|
|
EVP_pkey_ml_dsa_65());
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofMLDSA87) {
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/mldsa_87_verify_test.txt",
|
|
EVP_pkey_ml_dsa_87());
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofRSAPKCS1) {
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_2048_sha224_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_2048_sha256_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_2048_sha384_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_2048_sha512_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_3072_sha256_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_3072_sha384_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_3072_sha512_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_4096_sha256_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_4096_sha384_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_4096_sha512_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_8192_sha256_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_8192_sha384_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_signature_8192_sha512_test.txt",
|
|
EVP_pkey_rsa());
|
|
}
|
|
|
|
void RunWycheproofSignTest(FileTest *t) {
|
|
t->IgnoreAllUnusedInstructions();
|
|
|
|
std::vector<uint8_t> pkcs8;
|
|
ASSERT_TRUE(t->GetInstructionBytes(&pkcs8, "privateKeyPkcs8"));
|
|
CBS cbs;
|
|
CBS_init(&cbs, pkcs8.data(), pkcs8.size());
|
|
bssl::UniquePtr<EVP_PKEY> key(EVP_parse_private_key(&cbs));
|
|
ASSERT_TRUE(key);
|
|
|
|
const EVP_MD *md = GetWycheproofDigest(t, "sha", true);
|
|
ASSERT_TRUE(md);
|
|
|
|
std::vector<uint8_t> msg, sig;
|
|
ASSERT_TRUE(t->GetBytes(&msg, "msg"));
|
|
ASSERT_TRUE(t->GetBytes(&sig, "sig"));
|
|
WycheproofResult result;
|
|
ASSERT_TRUE(GetWycheproofResult(t, &result));
|
|
|
|
bssl::ScopedEVP_MD_CTX ctx;
|
|
EVP_PKEY_CTX *pctx;
|
|
ASSERT_TRUE(EVP_DigestSignInit(ctx.get(), &pctx, md, nullptr, key.get()));
|
|
std::vector<uint8_t> out(EVP_PKEY_size(key.get()));
|
|
size_t len = out.size();
|
|
int ret = EVP_DigestSign(ctx.get(), out.data(), &len, msg.data(), msg.size());
|
|
// BoringSSL does not enforce policies on weak keys and leaves it to the
|
|
// caller.
|
|
bool is_valid =
|
|
result.IsValid({"SmallModulus", "SmallPublicKey", "WeakHash"});
|
|
EXPECT_EQ(ret, is_valid ? 1 : 0);
|
|
if (is_valid) {
|
|
out.resize(len);
|
|
EXPECT_EQ(Bytes(sig), Bytes(out));
|
|
}
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofRSAPKCS1Sign) {
|
|
FileTestGTest(
|
|
"third_party/wycheproof_testvectors/rsa_pkcs1_1024_sig_gen_test.txt",
|
|
RunWycheproofSignTest);
|
|
FileTestGTest(
|
|
"third_party/wycheproof_testvectors/rsa_pkcs1_1536_sig_gen_test.txt",
|
|
RunWycheproofSignTest);
|
|
FileTestGTest(
|
|
"third_party/wycheproof_testvectors/rsa_pkcs1_2048_sig_gen_test.txt",
|
|
RunWycheproofSignTest);
|
|
FileTestGTest(
|
|
"third_party/wycheproof_testvectors/rsa_pkcs1_3072_sig_gen_test.txt",
|
|
RunWycheproofSignTest);
|
|
FileTestGTest(
|
|
"third_party/wycheproof_testvectors/rsa_pkcs1_4096_sig_gen_test.txt",
|
|
RunWycheproofSignTest);
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofRSAPSS) {
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_pss_2048_sha1_mgf1_20_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_pss_2048_sha256_mgf1_0_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_pss_2048_sha256_mgf1_32_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_pss_3072_sha256_mgf1_32_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_pss_4096_sha256_mgf1_32_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_pss_4096_sha512_mgf1_32_test.txt",
|
|
EVP_pkey_rsa());
|
|
RunWycheproofVerifyTest(
|
|
"third_party/wycheproof_testvectors/rsa_pss_misc_test.txt",
|
|
EVP_pkey_rsa());
|
|
}
|
|
|
|
void RunWycheproofDecryptTest(
|
|
const char *path,
|
|
std::function<void(FileTest *, EVP_PKEY_CTX *)> setup_cb) {
|
|
FileTestGTest(path, [&](FileTest *t) {
|
|
t->IgnoreAllUnusedInstructions();
|
|
|
|
std::vector<uint8_t> pkcs8;
|
|
ASSERT_TRUE(t->GetInstructionBytes(&pkcs8, "privateKeyPkcs8"));
|
|
CBS cbs;
|
|
CBS_init(&cbs, pkcs8.data(), pkcs8.size());
|
|
bssl::UniquePtr<EVP_PKEY> key(EVP_parse_private_key(&cbs));
|
|
ASSERT_TRUE(key);
|
|
|
|
std::vector<uint8_t> ct, msg;
|
|
ASSERT_TRUE(t->GetBytes(&ct, "ct"));
|
|
ASSERT_TRUE(t->GetBytes(&msg, "msg"));
|
|
WycheproofResult result;
|
|
ASSERT_TRUE(GetWycheproofResult(t, &result));
|
|
|
|
bssl::UniquePtr<EVP_PKEY_CTX> ctx(EVP_PKEY_CTX_new(key.get(), nullptr));
|
|
ASSERT_TRUE(ctx);
|
|
ASSERT_TRUE(EVP_PKEY_decrypt_init(ctx.get()));
|
|
ASSERT_NO_FATAL_FAILURE(setup_cb(t, ctx.get()));
|
|
std::vector<uint8_t> out(EVP_PKEY_size(key.get()));
|
|
size_t len = out.size();
|
|
int ret =
|
|
EVP_PKEY_decrypt(ctx.get(), out.data(), &len, ct.data(), ct.size());
|
|
// BoringSSL does not enforce policies on weak keys and leaves it to the
|
|
// caller.
|
|
bool is_valid =
|
|
result.IsValid({"SmallModulus", "Constructed", "EncryptionWithLabel",
|
|
"SmallIntegerCiphertext"});
|
|
EXPECT_EQ(ret, is_valid ? 1 : 0);
|
|
if (is_valid) {
|
|
out.resize(len);
|
|
EXPECT_EQ(Bytes(msg), Bytes(out));
|
|
}
|
|
});
|
|
}
|
|
|
|
void RunWycheproofOAEPTest(const char *path) {
|
|
RunWycheproofDecryptTest(path, [](FileTest *t, EVP_PKEY_CTX *ctx) {
|
|
const EVP_MD *md = GetWycheproofDigest(t, "sha", true);
|
|
ASSERT_TRUE(md);
|
|
const EVP_MD *mgf1_md = GetWycheproofDigest(t, "mgfSha", true);
|
|
ASSERT_TRUE(mgf1_md);
|
|
std::vector<uint8_t> label;
|
|
ASSERT_TRUE(t->GetBytes(&label, "label"));
|
|
|
|
ASSERT_TRUE(EVP_PKEY_CTX_set_rsa_padding(ctx, RSA_PKCS1_OAEP_PADDING));
|
|
ASSERT_TRUE(EVP_PKEY_CTX_set_rsa_oaep_md(ctx, md));
|
|
ASSERT_TRUE(EVP_PKEY_CTX_set_rsa_mgf1_md(ctx, mgf1_md));
|
|
bssl::UniquePtr<uint8_t> label_copy(
|
|
static_cast<uint8_t *>(OPENSSL_memdup(label.data(), label.size())));
|
|
ASSERT_TRUE(label_copy || label.empty());
|
|
ASSERT_TRUE(
|
|
EVP_PKEY_CTX_set0_rsa_oaep_label(ctx, label_copy.get(), label.size()));
|
|
// `EVP_PKEY_CTX_set0_rsa_oaep_label` takes ownership on success.
|
|
label_copy.release();
|
|
});
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofRSAOAEP2048) {
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_2048_sha1_mgf1sha1_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_2048_sha224_mgf1sha1_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_2048_sha224_mgf1sha224_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_2048_sha256_mgf1sha1_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_2048_sha256_mgf1sha256_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_2048_sha384_mgf1sha1_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_2048_sha384_mgf1sha384_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_2048_sha512_mgf1sha1_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_2048_sha512_mgf1sha512_test.txt");
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofRSAOAEP3072) {
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_3072_sha256_mgf1sha1_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_3072_sha256_mgf1sha256_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_3072_sha512_mgf1sha1_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_3072_sha512_mgf1sha512_test.txt");
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofRSAOAEP4096) {
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_4096_sha256_mgf1sha1_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_4096_sha256_mgf1sha256_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_4096_sha512_mgf1sha1_test.txt");
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/"
|
|
"rsa_oaep_4096_sha512_mgf1sha512_test.txt");
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofRSAOAEPMisc) {
|
|
RunWycheproofOAEPTest(
|
|
"third_party/wycheproof_testvectors/rsa_oaep_misc_test.txt");
|
|
}
|
|
|
|
void RunWycheproofPKCS1DecryptTest(const char *path) {
|
|
RunWycheproofDecryptTest(path, [](FileTest *t, EVP_PKEY_CTX *ctx) {
|
|
// No setup needed. PKCS#1 is, sadly, the default.
|
|
});
|
|
}
|
|
|
|
TEST(EVPTest, WycheproofRSAPKCS1Decrypt) {
|
|
RunWycheproofPKCS1DecryptTest(
|
|
"third_party/wycheproof_testvectors/rsa_pkcs1_2048_test.txt");
|
|
RunWycheproofPKCS1DecryptTest(
|
|
"third_party/wycheproof_testvectors/rsa_pkcs1_3072_test.txt");
|
|
RunWycheproofPKCS1DecryptTest(
|
|
"third_party/wycheproof_testvectors/rsa_pkcs1_4096_test.txt");
|
|
}
|
|
} // namespace
|
|
BSSL_NAMESPACE_END
|