Merge "Remove the load_keys function"
This commit is contained in:
commit
64ceace44f
3 changed files with 9 additions and 326 deletions
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@ -238,8 +238,9 @@ class VerifierTest : public testing::TestWithParam<std::vector<std::string>> {
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}
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for (auto it = ++args.cbegin(); it != args.cend(); ++it) {
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std::string public_key_file = from_testdata_base("testkey_" + *it + ".txt");
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ASSERT_TRUE(load_keys(public_key_file.c_str(), certs));
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std::string public_key_file = from_testdata_base("testkey_" + *it + ".x509.pem");
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certs.emplace_back(0, Certificate::KEY_TYPE_RSA, nullptr, nullptr);
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LoadKeyFromFile(public_key_file, &certs.back());
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}
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}
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@ -253,70 +254,10 @@ class VerifierSuccessTest : public VerifierTest {
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class VerifierFailureTest : public VerifierTest {
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};
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TEST(VerifierTest, load_keys_multiple_keys) {
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std::string testkey_v4;
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ASSERT_TRUE(android::base::ReadFileToString(from_testdata_base("testkey_v4.txt"), &testkey_v4));
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std::string testkey_v3;
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ASSERT_TRUE(android::base::ReadFileToString(from_testdata_base("testkey_v3.txt"), &testkey_v3));
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std::string keys = testkey_v4 + "," + testkey_v3 + "," + testkey_v4;
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TemporaryFile key_file1;
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ASSERT_TRUE(android::base::WriteStringToFile(keys, key_file1.path));
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std::vector<Certificate> certs;
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ASSERT_TRUE(load_keys(key_file1.path, certs));
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ASSERT_EQ(3U, certs.size());
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}
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TEST(VerifierTest, load_keys_invalid_keys) {
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std::vector<Certificate> certs;
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ASSERT_FALSE(load_keys("/doesntexist", certs));
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// Empty file.
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TemporaryFile key_file1;
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ASSERT_FALSE(load_keys(key_file1.path, certs));
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// Invalid contents.
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ASSERT_TRUE(android::base::WriteStringToFile("invalid", key_file1.path));
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ASSERT_FALSE(load_keys(key_file1.path, certs));
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std::string testkey_v4;
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ASSERT_TRUE(android::base::ReadFileToString(from_testdata_base("testkey_v4.txt"), &testkey_v4));
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// Invalid key version: "v4 ..." => "v6 ...".
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std::string invalid_key2(testkey_v4);
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invalid_key2[1] = '6';
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TemporaryFile key_file2;
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ASSERT_TRUE(android::base::WriteStringToFile(invalid_key2, key_file2.path));
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ASSERT_FALSE(load_keys(key_file2.path, certs));
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// Invalid key content: inserted extra bytes ",2209831334".
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std::string invalid_key3(testkey_v4);
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invalid_key3.insert(invalid_key2.size() - 2, ",2209831334");
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TemporaryFile key_file3;
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ASSERT_TRUE(android::base::WriteStringToFile(invalid_key3, key_file3.path));
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ASSERT_FALSE(load_keys(key_file3.path, certs));
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// Invalid key: the last key must not end with an extra ','.
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std::string invalid_key4 = testkey_v4 + ",";
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TemporaryFile key_file4;
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ASSERT_TRUE(android::base::WriteStringToFile(invalid_key4, key_file4.path));
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ASSERT_FALSE(load_keys(key_file4.path, certs));
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// Invalid key separator.
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std::string invalid_key5 = testkey_v4 + ";" + testkey_v4;
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TemporaryFile key_file5;
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ASSERT_TRUE(android::base::WriteStringToFile(invalid_key5, key_file5.path));
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ASSERT_FALSE(load_keys(key_file5.path, certs));
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}
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TEST(VerifierTest, BadPackage_AlteredFooter) {
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std::string testkey_v3;
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ASSERT_TRUE(android::base::ReadFileToString(from_testdata_base("testkey_v3.txt"), &testkey_v3));
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TemporaryFile key_file1;
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ASSERT_TRUE(android::base::WriteStringToFile(testkey_v3, key_file1.path));
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std::vector<Certificate> certs;
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ASSERT_TRUE(load_keys(key_file1.path, certs));
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certs.emplace_back(0, Certificate::KEY_TYPE_RSA, nullptr, nullptr);
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LoadKeyFromFile(from_testdata_base("testkey_v3.x509.pem"), &certs.back());
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std::string package;
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ASSERT_TRUE(android::base::ReadFileToString(from_testdata_base("otasigned_v3.zip"), &package));
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@ -330,12 +271,9 @@ TEST(VerifierTest, BadPackage_AlteredFooter) {
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}
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TEST(VerifierTest, BadPackage_AlteredContent) {
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std::string testkey_v3;
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ASSERT_TRUE(android::base::ReadFileToString(from_testdata_base("testkey_v3.txt"), &testkey_v3));
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TemporaryFile key_file1;
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ASSERT_TRUE(android::base::WriteStringToFile(testkey_v3, key_file1.path));
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std::vector<Certificate> certs;
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ASSERT_TRUE(load_keys(key_file1.path, certs));
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certs.emplace_back(0, Certificate::KEY_TYPE_RSA, nullptr, nullptr);
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LoadKeyFromFile(from_testdata_base("testkey_v3.x509.pem"), &certs.back());
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std::string package;
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ASSERT_TRUE(android::base::ReadFileToString(from_testdata_base("otasigned_v3.zip"), &package));
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@ -356,13 +294,9 @@ TEST(VerifierTest, BadPackage_AlteredContent) {
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}
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TEST(VerifierTest, BadPackage_SignatureStartOutOfBounds) {
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std::string testkey_v3;
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ASSERT_TRUE(android::base::ReadFileToString(from_testdata_base("testkey_v3.txt"), &testkey_v3));
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TemporaryFile key_file;
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ASSERT_TRUE(android::base::WriteStringToFile(testkey_v3, key_file.path));
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std::vector<Certificate> certs;
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ASSERT_TRUE(load_keys(key_file.path, certs));
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certs.emplace_back(0, Certificate::KEY_TYPE_RSA, nullptr, nullptr);
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LoadKeyFromFile(from_testdata_base("testkey_v3.x509.pem"), &certs.back());
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// Signature start is 65535 (0xffff) while comment size is 0 (Bug: 31914369).
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std::string package = "\x50\x4b\x05\x06"s + std::string(12, '\0') + "\xff\xff\xff\xff\x00\x00"s;
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249
verifier.cpp
249
verifier.cpp
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@ -308,144 +308,6 @@ int verify_file(const unsigned char* addr, size_t length, const std::vector<Cert
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return VERIFY_FAILURE;
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}
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std::unique_ptr<RSA, RSADeleter> parse_rsa_key(FILE* file, uint32_t exponent) {
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// Read key length in words and n0inv. n0inv is a precomputed montgomery
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// parameter derived from the modulus and can be used to speed up
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// verification. n0inv is 32 bits wide here, assuming the verification logic
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// uses 32 bit arithmetic. However, BoringSSL may use a word size of 64 bits
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// internally, in which case we don't have a valid n0inv. Thus, we just
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// ignore the montgomery parameters and have BoringSSL recompute them
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// internally. If/When the speedup from using the montgomery parameters
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// becomes relevant, we can add more sophisticated code here to obtain a
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// 64-bit n0inv and initialize the montgomery parameters in the key object.
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uint32_t key_len_words = 0;
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uint32_t n0inv = 0;
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if (fscanf(file, " %i , 0x%x", &key_len_words, &n0inv) != 2) {
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return nullptr;
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}
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if (key_len_words > 8192 / 32) {
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LOG(ERROR) << "key length (" << key_len_words << ") too large";
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return nullptr;
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}
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// Read the modulus.
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std::unique_ptr<uint32_t[]> modulus(new uint32_t[key_len_words]);
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if (fscanf(file, " , { %u", &modulus[0]) != 1) {
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return nullptr;
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}
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for (uint32_t i = 1; i < key_len_words; ++i) {
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if (fscanf(file, " , %u", &modulus[i]) != 1) {
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return nullptr;
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}
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}
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// Cconvert from little-endian array of little-endian words to big-endian
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// byte array suitable as input for BN_bin2bn.
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std::reverse((uint8_t*)modulus.get(),
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(uint8_t*)(modulus.get() + key_len_words));
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// The next sequence of values is the montgomery parameter R^2. Since we
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// generally don't have a valid |n0inv|, we ignore this (see comment above).
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uint32_t rr_value;
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if (fscanf(file, " } , { %u", &rr_value) != 1) {
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return nullptr;
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}
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for (uint32_t i = 1; i < key_len_words; ++i) {
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if (fscanf(file, " , %u", &rr_value) != 1) {
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return nullptr;
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}
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}
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if (fscanf(file, " } } ") != 0) {
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return nullptr;
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}
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// Initialize the key.
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std::unique_ptr<RSA, RSADeleter> key(RSA_new());
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if (!key) {
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return nullptr;
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}
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key->n = BN_bin2bn((uint8_t*)modulus.get(),
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key_len_words * sizeof(uint32_t), NULL);
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if (!key->n) {
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return nullptr;
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}
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key->e = BN_new();
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if (!key->e || !BN_set_word(key->e, exponent)) {
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return nullptr;
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}
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return key;
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}
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struct BNDeleter {
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void operator()(BIGNUM* bn) const {
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BN_free(bn);
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}
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};
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std::unique_ptr<EC_KEY, ECKEYDeleter> parse_ec_key(FILE* file) {
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uint32_t key_len_bytes = 0;
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if (fscanf(file, " %i", &key_len_bytes) != 1) {
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return nullptr;
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}
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std::unique_ptr<EC_GROUP, void (*)(EC_GROUP*)> group(
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EC_GROUP_new_by_curve_name(NID_X9_62_prime256v1), EC_GROUP_free);
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if (!group) {
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return nullptr;
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}
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// Verify that |key_len| matches the group order.
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if (key_len_bytes != BN_num_bytes(EC_GROUP_get0_order(group.get()))) {
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return nullptr;
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}
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// Read the public key coordinates. Note that the byte order in the file is
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// little-endian, so we convert to big-endian here.
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std::unique_ptr<uint8_t[]> bytes(new uint8_t[key_len_bytes]);
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std::unique_ptr<BIGNUM, BNDeleter> point[2];
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for (int i = 0; i < 2; ++i) {
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unsigned int byte = 0;
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if (fscanf(file, " , { %u", &byte) != 1) {
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return nullptr;
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}
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bytes[key_len_bytes - 1] = byte;
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for (size_t i = 1; i < key_len_bytes; ++i) {
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if (fscanf(file, " , %u", &byte) != 1) {
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return nullptr;
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}
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bytes[key_len_bytes - i - 1] = byte;
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}
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point[i].reset(BN_bin2bn(bytes.get(), key_len_bytes, nullptr));
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if (!point[i]) {
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return nullptr;
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}
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if (fscanf(file, " }") != 0) {
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return nullptr;
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}
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}
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if (fscanf(file, " } ") != 0) {
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return nullptr;
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}
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// Create and initialize the key.
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std::unique_ptr<EC_KEY, ECKEYDeleter> key(EC_KEY_new());
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if (!key || !EC_KEY_set_group(key.get(), group.get()) ||
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!EC_KEY_set_public_key_affine_coordinates(key.get(), point[0].get(),
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point[1].get())) {
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return nullptr;
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}
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return key;
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}
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static std::vector<Certificate> IterateZipEntriesAndSearchForKeys(const ZipArchiveHandle& handle) {
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void* cookie;
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ZipString suffix("x509.pem");
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@ -603,114 +465,3 @@ bool LoadCertificateFromBuffer(const std::vector<uint8_t>& pem_content, Certific
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return true;
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}
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// Reads a file containing one or more public keys as produced by
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// DumpPublicKey: this is an RSAPublicKey struct as it would appear
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// as a C source literal, eg:
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//
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// "{64,0xc926ad21,{1795090719,...,-695002876},{-857949815,...,1175080310}}"
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//
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// For key versions newer than the original 2048-bit e=3 keys
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// supported by Android, the string is preceded by a version
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// identifier, eg:
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//
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// "v2 {64,0xc926ad21,{1795090719,...,-695002876},{-857949815,...,1175080310}}"
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//
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// (Note that the braces and commas in this example are actual
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// characters the parser expects to find in the file; the ellipses
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// indicate more numbers omitted from this example.)
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//
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// The file may contain multiple keys in this format, separated by
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// commas. The last key must not be followed by a comma.
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//
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// A Certificate is a pair of an RSAPublicKey and a particular hash
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// (we support SHA-1 and SHA-256; we store the hash length to signify
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// which is being used). The hash used is implied by the version number.
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//
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// 1: 2048-bit RSA key with e=3 and SHA-1 hash
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// 2: 2048-bit RSA key with e=65537 and SHA-1 hash
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// 3: 2048-bit RSA key with e=3 and SHA-256 hash
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// 4: 2048-bit RSA key with e=65537 and SHA-256 hash
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// 5: 256-bit EC key using the NIST P-256 curve parameters and SHA-256 hash
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//
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// Returns true on success, and appends the found keys (at least one) to certs.
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// Otherwise returns false if the file failed to parse, or if it contains zero
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// keys. The contents in certs would be unspecified on failure.
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bool load_keys(const char* filename, std::vector<Certificate>& certs) {
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std::unique_ptr<FILE, decltype(&fclose)> f(fopen(filename, "re"), fclose);
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if (!f) {
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PLOG(ERROR) << "error opening " << filename;
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return false;
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}
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while (true) {
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certs.emplace_back(0, Certificate::KEY_TYPE_RSA, nullptr, nullptr);
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Certificate& cert = certs.back();
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uint32_t exponent = 0;
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char start_char;
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if (fscanf(f.get(), " %c", &start_char) != 1) return false;
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if (start_char == '{') {
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// a version 1 key has no version specifier.
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cert.key_type = Certificate::KEY_TYPE_RSA;
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exponent = 3;
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cert.hash_len = SHA_DIGEST_LENGTH;
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} else if (start_char == 'v') {
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int version;
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if (fscanf(f.get(), "%d {", &version) != 1) return false;
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switch (version) {
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case 2:
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cert.key_type = Certificate::KEY_TYPE_RSA;
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exponent = 65537;
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cert.hash_len = SHA_DIGEST_LENGTH;
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break;
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case 3:
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cert.key_type = Certificate::KEY_TYPE_RSA;
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exponent = 3;
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cert.hash_len = SHA256_DIGEST_LENGTH;
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break;
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case 4:
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cert.key_type = Certificate::KEY_TYPE_RSA;
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exponent = 65537;
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cert.hash_len = SHA256_DIGEST_LENGTH;
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break;
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case 5:
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cert.key_type = Certificate::KEY_TYPE_EC;
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cert.hash_len = SHA256_DIGEST_LENGTH;
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break;
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default:
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return false;
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}
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}
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if (cert.key_type == Certificate::KEY_TYPE_RSA) {
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cert.rsa = parse_rsa_key(f.get(), exponent);
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if (!cert.rsa) {
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return false;
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}
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LOG(INFO) << "read key e=" << exponent << " hash=" << cert.hash_len;
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} else if (cert.key_type == Certificate::KEY_TYPE_EC) {
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cert.ec = parse_ec_key(f.get());
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if (!cert.ec) {
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return false;
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}
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} else {
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LOG(ERROR) << "Unknown key type " << cert.key_type;
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return false;
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}
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// if the line ends in a comma, this file has more keys.
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int ch = fgetc(f.get());
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if (ch == ',') {
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// more keys to come.
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continue;
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} else if (ch == EOF) {
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break;
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} else {
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LOG(ERROR) << "unexpected character between keys";
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return false;
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}
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}
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return true;
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}
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@ -70,8 +70,6 @@ struct Certificate {
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int verify_file(const unsigned char* addr, size_t length, const std::vector<Certificate>& keys,
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const std::function<void(float)>& set_progress = nullptr);
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bool load_keys(const char* filename, std::vector<Certificate>& certs);
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// Checks that the RSA key has a modulus of 2048 bits long, and public exponent is 3 or 65537.
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bool CheckRSAKey(const std::unique_ptr<RSA, RSADeleter>& rsa);
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