#include "sa.h"
#include "client_test_helpers.h"
#include "sa_key_unwrap_common.h"
#include "gtest/gtest.h"
using namespace client_test_helpers;
namespace {
TEST_P(SaKeyUnwrapRsaTest, failsNullKey) {
auto cipher_algorithm = GetParam();
std::vector<uint8_t> const clear_key = random(SYM_128_KEY_SIZE);
std::shared_ptr<sa_key> wrapping_key;
std::vector<uint8_t> clear_wrapping_key;
std::shared_ptr<void> wrapping_parameters;
std::vector<uint8_t> wrapped_key;
sa_status status = wrap_key(wrapping_key, clear_wrapping_key, wrapped_key, wrapping_parameters,
RSA_2048_BYTE_LENGTH, clear_key, cipher_algorithm, SA_DIGEST_ALGORITHM_SHA1, SA_DIGEST_ALGORITHM_SHA1,
0);
if (status == SA_STATUS_OPERATION_NOT_SUPPORTED)
GTEST_SKIP() << "key type, key size, or curve not supported";
ASSERT_EQ(status, SA_STATUS_OK);
sa_rights rights;
sa_rights_set_allow_all(&rights);
status = sa_key_unwrap(nullptr, &rights, SA_KEY_TYPE_SYMMETRIC, nullptr, cipher_algorithm,
wrapping_parameters.get(), *wrapping_key, wrapped_key.data(), wrapped_key.size());
ASSERT_EQ(status, SA_STATUS_NULL_PARAMETER);
}
TEST_P(SaKeyUnwrapRsaTest, failsNullRights) {
auto cipher_algorithm = GetParam();
std::vector<uint8_t> const clear_key = random(SYM_128_KEY_SIZE);
std::shared_ptr<sa_key> wrapping_key;
std::vector<uint8_t> clear_wrapping_key;
std::shared_ptr<void> wrapping_parameters;
std::vector<uint8_t> wrapped_key;
sa_status status = wrap_key(wrapping_key, clear_wrapping_key, wrapped_key, wrapping_parameters,
RSA_2048_BYTE_LENGTH, clear_key, cipher_algorithm, SA_DIGEST_ALGORITHM_SHA1, SA_DIGEST_ALGORITHM_SHA1,
0);
if (status == SA_STATUS_OPERATION_NOT_SUPPORTED)
GTEST_SKIP() << "key type, key size, or curve not supported";
ASSERT_EQ(status, SA_STATUS_OK);
auto unwrapped_key = create_uninitialized_sa_key();
ASSERT_NE(unwrapped_key, nullptr);
status = sa_key_unwrap(unwrapped_key.get(), nullptr, SA_KEY_TYPE_SYMMETRIC, nullptr, cipher_algorithm,
wrapping_parameters.get(), *wrapping_key, wrapped_key.data(), wrapped_key.size());
ASSERT_EQ(status, SA_STATUS_NULL_PARAMETER);
}
TEST_P(SaKeyUnwrapRsaTest, failsNotSymmetric) {
auto cipher_algorithm = GetParam();
std::vector<uint8_t> const clear_key = random(SYM_128_KEY_SIZE);
std::shared_ptr<sa_key> wrapping_key;
std::vector<uint8_t> clear_wrapping_key;
std::shared_ptr<void> wrapping_parameters;
std::vector<uint8_t> wrapped_key;
sa_status status = wrap_key(wrapping_key, clear_wrapping_key, wrapped_key, wrapping_parameters,
RSA_2048_BYTE_LENGTH, clear_key, cipher_algorithm, SA_DIGEST_ALGORITHM_SHA1, SA_DIGEST_ALGORITHM_SHA1,
0);
if (status == SA_STATUS_OPERATION_NOT_SUPPORTED)
GTEST_SKIP() << "key type, key size, or curve not supported";
ASSERT_EQ(status, SA_STATUS_OK);
sa_rights rights;
sa_rights_set_allow_all(&rights);
auto unwrapped_key = create_uninitialized_sa_key();
ASSERT_NE(unwrapped_key, nullptr);
status = sa_key_unwrap(unwrapped_key.get(), &rights, SA_KEY_TYPE_RSA, nullptr, cipher_algorithm,
wrapping_parameters.get(), *wrapping_key, nullptr, 0);
ASSERT_EQ(status, SA_STATUS_NULL_PARAMETER);
}
TEST_P(SaKeyUnwrapRsaTest, failsNullIn) {
auto cipher_algorithm = GetParam();
std::vector<uint8_t> const clear_key = random(SYM_128_KEY_SIZE);
std::shared_ptr<sa_key> wrapping_key;
std::vector<uint8_t> clear_wrapping_key;
std::shared_ptr<void> wrapping_parameters;
std::vector<uint8_t> wrapped_key;
sa_status status = wrap_key(wrapping_key, clear_wrapping_key, wrapped_key, wrapping_parameters,
RSA_2048_BYTE_LENGTH, clear_key, cipher_algorithm, SA_DIGEST_ALGORITHM_SHA1, SA_DIGEST_ALGORITHM_SHA1,
0);
if (status == SA_STATUS_OPERATION_NOT_SUPPORTED)
GTEST_SKIP() << "key type, key size, or curve not supported";
ASSERT_EQ(status, SA_STATUS_OK);
sa_rights rights;
sa_rights_set_allow_all(&rights);
auto unwrapped_key = create_uninitialized_sa_key();
ASSERT_NE(unwrapped_key, nullptr);
status = sa_key_unwrap(unwrapped_key.get(), &rights, SA_KEY_TYPE_SYMMETRIC, nullptr, cipher_algorithm,
wrapping_parameters.get(), *wrapping_key, nullptr, 0);
ASSERT_EQ(status, SA_STATUS_NULL_PARAMETER);
}
TEST_P(SaKeyUnwrapRsaTest, failsUnknownWrappingKey) {
auto cipher_algorithm = GetParam();
std::vector<uint8_t> const clear_key = random(SYM_128_KEY_SIZE);
std::shared_ptr<sa_key> wrapping_key;
std::vector<uint8_t> clear_wrapping_key;
std::shared_ptr<void> wrapping_parameters;
std::vector<uint8_t> wrapped_key;
sa_status status = wrap_key(wrapping_key, clear_wrapping_key, wrapped_key, wrapping_parameters,
RSA_2048_BYTE_LENGTH, clear_key, cipher_algorithm, SA_DIGEST_ALGORITHM_SHA1, SA_DIGEST_ALGORITHM_SHA1,
0);
if (status == SA_STATUS_OPERATION_NOT_SUPPORTED)
GTEST_SKIP() << "key type, key size, or curve not supported";
ASSERT_EQ(status, SA_STATUS_OK);
sa_rights rights;
sa_rights_set_allow_all(&rights);
auto unwrapped_key = create_uninitialized_sa_key();
ASSERT_NE(unwrapped_key, nullptr);
status = sa_key_unwrap(unwrapped_key.get(), &rights, SA_KEY_TYPE_SYMMETRIC, nullptr, cipher_algorithm,
wrapping_parameters.get(), INVALID_HANDLE, wrapped_key.data(), wrapped_key.size());
ASSERT_EQ(status, SA_STATUS_INVALID_PARAMETER);
}
TEST_P(SaKeyUnwrapRsaTest, failsWrappingKeyDisallowsUnwrap) {
auto cipher_algorithm = GetParam();
std::vector<uint8_t> wrapped_key = random(AES_BLOCK_SIZE);
sa_rights wrapping_key_rights;
sa_rights_set_allow_all(&wrapping_key_rights);
SA_USAGE_BIT_CLEAR(wrapping_key_rights.usage_flags, SA_USAGE_FLAG_UNWRAP);
std::vector<uint8_t> const clear_wrapping_key = get_rsa_private_key(RSA_2048_BYTE_LENGTH);
std::shared_ptr<sa_key> const wrapping_key = create_sa_key_rsa(&wrapping_key_rights, clear_wrapping_key);
ASSERT_NE(wrapping_key, nullptr);
if (*wrapping_key == UNSUPPORTED_KEY)
GTEST_SKIP() << "key type, key size, or curve not supported";
sa_rights rights;
sa_rights_set_allow_all(&rights);
auto unwrapped_key = create_uninitialized_sa_key();
ASSERT_NE(unwrapped_key, nullptr);
void* parameters = nullptr;
sa_unwrap_parameters_rsa_oaep parameters_rsa_oaep;
if (cipher_algorithm == SA_CIPHER_ALGORITHM_RSA_OAEP) {
parameters_rsa_oaep = {SA_DIGEST_ALGORITHM_SHA1, SA_DIGEST_ALGORITHM_SHA1, nullptr, 0};
parameters = ¶meters_rsa_oaep;
}
sa_status const status = sa_key_unwrap(unwrapped_key.get(), &rights, SA_KEY_TYPE_SYMMETRIC, nullptr,
cipher_algorithm, parameters, *wrapping_key, wrapped_key.data(), wrapped_key.size());
ASSERT_EQ(status, SA_STATUS_OPERATION_NOT_ALLOWED);
}
TEST_P(SaKeyUnwrapRsaTest, failsWrappingKeyOutsideValidTimeBefore) {
auto cipher_algorithm = GetParam();
std::vector<uint8_t> wrapped_key = random(AES_BLOCK_SIZE);
sa_rights wrapping_key_rights;
sa_rights_set_allow_all(&wrapping_key_rights);
wrapping_key_rights.not_before = time(nullptr) + 60;
std::vector<uint8_t> const clear_wrapping_key = get_rsa_private_key(RSA_2048_BYTE_LENGTH);
std::shared_ptr<sa_key> const wrapping_key = create_sa_key_rsa(&wrapping_key_rights, clear_wrapping_key);
ASSERT_NE(wrapping_key, nullptr);
if (*wrapping_key == UNSUPPORTED_KEY)
GTEST_SKIP() << "key type, key size, or curve not supported";
sa_rights rights;
sa_rights_set_allow_all(&rights);
auto unwrapped_key = create_uninitialized_sa_key();
ASSERT_NE(unwrapped_key, nullptr);
void* parameters = nullptr;
sa_unwrap_parameters_rsa_oaep parameters_rsa_oaep;
if (cipher_algorithm == SA_CIPHER_ALGORITHM_RSA_OAEP) {
parameters_rsa_oaep = {SA_DIGEST_ALGORITHM_SHA1, SA_DIGEST_ALGORITHM_SHA1, nullptr, 0};
parameters = ¶meters_rsa_oaep;
}
sa_status const status = sa_key_unwrap(unwrapped_key.get(), &rights, SA_KEY_TYPE_SYMMETRIC, nullptr,
cipher_algorithm, parameters, *wrapping_key, wrapped_key.data(), wrapped_key.size());
ASSERT_EQ(status, SA_STATUS_OPERATION_NOT_ALLOWED);
}
TEST_P(SaKeyUnwrapRsaTest, failsWrappingKeyOutsideValidTimeAfter) {
auto cipher_algorithm = GetParam();
std::vector<uint8_t> wrapped_key = random(AES_BLOCK_SIZE);
sa_rights wrapping_key_rights;
sa_rights_set_allow_all(&wrapping_key_rights);
wrapping_key_rights.not_on_or_after = time(nullptr) - 60;
std::vector<uint8_t> const clear_wrapping_key = get_rsa_private_key(RSA_2048_BYTE_LENGTH);
std::shared_ptr<sa_key> const wrapping_key = create_sa_key_rsa(&wrapping_key_rights, clear_wrapping_key);
ASSERT_NE(wrapping_key, nullptr);
if (*wrapping_key == UNSUPPORTED_KEY)
GTEST_SKIP() << "key type, key size, or curve not supported";
sa_rights rights;
sa_rights_set_allow_all(&rights);
auto unwrapped_key = create_uninitialized_sa_key();
ASSERT_NE(unwrapped_key, nullptr);
void* parameters = nullptr;
sa_unwrap_parameters_rsa_oaep parameters_rsa_oaep;
if (cipher_algorithm == SA_CIPHER_ALGORITHM_RSA_OAEP) {
parameters_rsa_oaep = {SA_DIGEST_ALGORITHM_SHA1, SA_DIGEST_ALGORITHM_SHA1, nullptr, 0};
parameters = ¶meters_rsa_oaep;
}
sa_status const status = sa_key_unwrap(unwrapped_key.get(), &rights, SA_KEY_TYPE_SYMMETRIC, nullptr,
cipher_algorithm, parameters, *wrapping_key, wrapped_key.data(), wrapped_key.size());
ASSERT_EQ(status, SA_STATUS_OPERATION_NOT_ALLOWED);
}
TEST_P(SaKeyUnwrapRsaTest, failsWrappingKeyNotRsa) {
auto curve = SA_ELLIPTIC_CURVE_NIST_P256;
auto cipher_algorithm = GetParam();
std::vector<uint8_t> wrapped_key = random(AES_BLOCK_SIZE);
sa_rights rights;
sa_rights_set_allow_all(&rights);
std::vector<uint8_t> const clear_wrapping_key = ec_generate_key_bytes(curve);
std::shared_ptr<sa_key> const wrapping_key = create_sa_key_ec(&rights, curve, clear_wrapping_key);
ASSERT_NE(wrapping_key, nullptr);
if (*wrapping_key == UNSUPPORTED_KEY)
GTEST_SKIP() << "key type, key size, or curve not supported";
auto unwrapped_key = create_uninitialized_sa_key();
ASSERT_NE(unwrapped_key, nullptr);
void* parameters = nullptr;
sa_unwrap_parameters_rsa_oaep parameters_rsa_oaep;
if (cipher_algorithm == SA_CIPHER_ALGORITHM_RSA_OAEP) {
parameters_rsa_oaep = {SA_DIGEST_ALGORITHM_SHA1, SA_DIGEST_ALGORITHM_SHA1, nullptr, 0};
parameters = ¶meters_rsa_oaep;
}
sa_status const status = sa_key_unwrap(unwrapped_key.get(), &rights, SA_KEY_TYPE_SYMMETRIC, nullptr,
cipher_algorithm, parameters, *wrapping_key, wrapped_key.data(), wrapped_key.size());
ASSERT_EQ(status, SA_STATUS_INVALID_KEY_TYPE);
}
TEST_P(SaKeyUnwrapRsaTest, failInvalidInLength) {
auto cipher_algorithm = GetParam();
std::vector<uint8_t> wrapped_key = random(static_cast<size_t>(AES_BLOCK_SIZE) * 2);
sa_rights rights;
sa_rights_set_allow_all(&rights);
std::vector<uint8_t> const clear_wrapping_key = get_rsa_private_key(RSA_2048_BYTE_LENGTH);
std::shared_ptr<sa_key> const wrapping_key = create_sa_key_rsa(&rights, clear_wrapping_key);
ASSERT_NE(wrapping_key, nullptr);
if (*wrapping_key == UNSUPPORTED_KEY)
GTEST_SKIP() << "key type, key size, or curve not supported";
auto unwrapped_key = create_uninitialized_sa_key();
ASSERT_NE(unwrapped_key, nullptr);
void* parameters = nullptr;
sa_unwrap_parameters_rsa_oaep parameters_rsa_oaep;
if (cipher_algorithm == SA_CIPHER_ALGORITHM_RSA_OAEP) {
parameters_rsa_oaep = {SA_DIGEST_ALGORITHM_SHA1, SA_DIGEST_ALGORITHM_SHA1, nullptr, 0};
parameters = ¶meters_rsa_oaep;
}
sa_status const status = sa_key_unwrap(unwrapped_key.get(), &rights, SA_KEY_TYPE_SYMMETRIC, nullptr,
cipher_algorithm, parameters, *wrapping_key, wrapped_key.data(), wrapped_key.size());
ASSERT_EQ(status, SA_STATUS_INVALID_PARAMETER);
}
}