Files
MicrOBU/obu-firmware/external/vanetza-idf/vanetza/security/backend_openssl.cpp
T
Ashin Walpola d107534eb2 Keep vanetza-idf in obu-firmware, so a plain clone builds the firmware
obu-firmware builds against the vanetza-idf C-ITS library, which until now
came from the colleague's microbu-esp32c5 tree beside the repository and was
not tracked here, so a clone of this repository could not build the firmware
it ships. The library alone is now part of obu-firmware, as
obu-firmware/external/vanetza-idf: their external/vanetza-idf at commit
cf4b99f, unchanged (9775 files; see its PROVENANCE.md). CMake takes it from
there by default; -DVANETZA_IDF_DIR still points the build elsewhere.

The rest of the colleague's tree (their own VAM firmware, PKI tooling,
station-link Python tools, the V2X2MAP bridge) stays out of this repository
and gitignored; nothing is pushed to their repository. NOTES.md, docs/06,
TODO.md and the pcap verifier's usage line point at the new location.
2026-09-24 10:56:05 +02:00

371 lines
11 KiB
C++

#include <vanetza/security/backend_openssl.hpp>
#include <vanetza/security/key_type.hpp>
#include <vanetza/security/openssl_wrapper.hpp>
#include <vanetza/security/v2/public_key.hpp>
#include <vanetza/security/v2/signature.hpp>
#include <openssl/bn.h>
#include <openssl/ec.h>
#include <openssl/ecdsa.h>
#include <openssl/obj_mac.h>
#include <openssl/sha.h>
#include <cassert>
namespace vanetza
{
namespace security
{
namespace
{
int openssl_nid(KeyType key)
{
int nid;
switch (key) {
case KeyType::NistP256:
nid = NID_X9_62_prime256v1;
break;
case KeyType::BrainpoolP256r1:
nid = NID_brainpoolP256r1;
break;
case KeyType::BrainpoolP384r1:
nid = NID_brainpoolP384r1;
break;
default:
nid = NID_undef;
break;
}
return nid;
}
} // namespace
BackendOpenSsl::BackendOpenSsl()
{
OPENSSL_init_crypto(OPENSSL_INIT_LOAD_CRYPTO_STRINGS, nullptr);
}
EcdsaSignature BackendOpenSsl::sign_data(const ecdsa256::PrivateKey& key, const ByteBuffer& data)
{
auto priv_key = internal_private_key(key);
auto digest = calculate_sha256_digest(data);
// sign message data represented by the digest
openssl::Signature signature { ECDSA_do_sign(digest.data(), digest.size(), priv_key) };
const BIGNUM* sig_r = nullptr;
const BIGNUM* sig_s = nullptr;
ECDSA_SIG_get0(signature, &sig_r, &sig_s);
EcdsaSignature ecdsa_signature;
X_Coordinate_Only coordinate;
if (sig_r && sig_s) {
const size_t len = field_size(v2::PublicKeyAlgorithm::ECDSA_NISTP256_With_SHA256);
const auto num_bytes_s = BN_num_bytes(sig_s);
assert(len >= static_cast<size_t>(num_bytes_s));
ecdsa_signature.s.resize(len, 0x00);
BN_bn2bin(sig_s, ecdsa_signature.s.data() + len - num_bytes_s);
const auto num_bytes_r = BN_num_bytes(sig_r);
assert(len >= static_cast<size_t>(num_bytes_r));
coordinate.x.resize(len, 0x00);
BN_bn2bin(sig_r, coordinate.x.data() + len - num_bytes_r);
} else {
throw openssl::Exception();
}
ecdsa_signature.R = std::move(coordinate);
return ecdsa_signature;
}
Signature BackendOpenSsl::sign_digest(const PrivateKey& key, const ByteBuffer& digest)
{
// sign message data represented by the digest
auto priv_key = internal_private_key(key);
openssl::Signature signature { ECDSA_do_sign(digest.data(), digest.size(), priv_key) };
const BIGNUM* sig_r = nullptr;
const BIGNUM* sig_s = nullptr;
ECDSA_SIG_get0(signature, &sig_r, &sig_s);
Signature ecdsa_signature;
ecdsa_signature.type = key.type;
if (sig_r && sig_s) {
const size_t len = key_length(key.type);
const auto num_bytes_s = BN_num_bytes(sig_s);
assert(len >= static_cast<size_t>(num_bytes_s));
ecdsa_signature.s.resize(len, 0x00);
BN_bn2bin(sig_s, ecdsa_signature.s.data() + len - num_bytes_s);
const auto num_bytes_r = BN_num_bytes(sig_r);
assert(len >= static_cast<size_t>(num_bytes_r));
ecdsa_signature.r.resize(len, 0x00);
BN_bn2bin(sig_r, ecdsa_signature.r.data() + len - num_bytes_r);
} else {
throw openssl::Exception();
}
return ecdsa_signature;
}
bool BackendOpenSsl::verify_data(const ecdsa256::PublicKey& key, const ByteBuffer& data, const EcdsaSignature& sig)
{
try {
auto digest = calculate_sha256_digest(data);
auto pub = internal_public_key(key);
openssl::Signature signature(sig);
return (ECDSA_do_verify(digest.data(), digest.size(), signature, pub) == 1);
} catch (const openssl::Exception&) {
return false;
}
}
bool BackendOpenSsl::verify_digest(const PublicKey& gpub, const ByteBuffer& digest, const Signature& gsig)
{
if (gpub.type != gsig.type) {
return false;
}
try {
openssl::Key pub = internal_public_key(gpub);
openssl::Signature sig { gsig };
return ECDSA_do_verify(digest.data(), digest.size(), sig, pub) == 1;
} catch (const openssl::Exception&) {
return false;
}
}
boost::optional<Uncompressed> BackendOpenSsl::decompress_point(const EccPoint& ecc_point)
{
struct DecompressionVisitor : public boost::static_visitor<bool>
{
bool operator()(const X_Coordinate_Only&)
{
return false;
}
bool operator()(const Compressed_Lsb_Y_0& p)
{
return decompress(p.x, 0);
}
bool operator()(const Compressed_Lsb_Y_1& p)
{
return decompress(p.x, 1);
}
bool operator()(const Uncompressed& p)
{
result = p;
return true;
}
bool decompress(const ByteBuffer& x, int y_bit)
{
try {
openssl::BigNumberContext ctx;
openssl::BigNumber x_coordinate(x);
openssl::Group group(NID_X9_62_prime256v1);
openssl::Point point(group);
openssl::BigNumber y_coordinate;
result.x = x;
result.y.resize(result.x.size());
EC_POINT_set_compressed_coordinates(group, point, x_coordinate, y_bit, ctx);
EC_POINT_get_affine_coordinates(group, point, nullptr, y_coordinate, ctx);
return (BN_bn2binpad(y_coordinate, result.y.data(), result.y.size()) != -1);
} catch (const openssl::Exception&) {
return false;
}
}
Uncompressed result;
};
DecompressionVisitor visitor;
if (boost::apply_visitor(visitor, ecc_point)) {
return visitor.result;
} else {
return boost::none;
}
}
ByteBuffer BackendOpenSsl::calculate_hash(HashAlgorithm algo, const ByteBuffer& data)
{
ByteBuffer result;
if (algo == HashAlgorithm::SHA256) {
auto digest = calculate_sha256_digest(data);
result.assign(digest.begin(), digest.end());
} else if (algo == HashAlgorithm::SHA384) {
auto digest = calculate_sha384_digest(data);
result.assign(digest.begin(), digest.end());
}
return result;
}
std::array<uint8_t, 32> BackendOpenSsl::calculate_sha256_digest(const ByteBuffer& data) const
{
static_assert(SHA256_DIGEST_LENGTH == 32, "Unexpected length of SHA256 digest");
std::array<uint8_t, 32> digest;
SHA256_CTX ctx;
SHA256_Init(&ctx);
SHA256_Update(&ctx, data.data(), data.size());
SHA256_Final(digest.data(), &ctx);
return digest;
}
std::array<uint8_t, 48> BackendOpenSsl::calculate_sha384_digest(const ByteBuffer& data) const
{
static_assert(SHA384_DIGEST_LENGTH == 48, "Unexpected length of SHA384 digest");
std::array<uint8_t, 48> digest;
SHA384(data.data(), data.size(), digest.data());
return digest;
}
openssl::Key BackendOpenSsl::internal_private_key(const ecdsa256::PrivateKey& generic) const
{
openssl::Key key(NID_X9_62_prime256v1);
openssl::BigNumber prv(generic.key);
EC_KEY_set_private_key(key, prv);
// OpenSSL requires public key, so we recreate it from private key
openssl::BigNumberContext ctx;
const EC_GROUP* group = EC_KEY_get0_group(key);
openssl::Point pub(group);
openssl::check(EC_POINT_mul(group, pub, prv, nullptr, nullptr, ctx));
EC_KEY_set_public_key(key, pub);
openssl::check(EC_KEY_check_key(key));
return key;
}
openssl::Key BackendOpenSsl::internal_private_key(const PrivateKey& generic) const
{
openssl::Key key(openssl_nid(generic.type));
openssl::BigNumber prv(generic.key);
EC_KEY_set_private_key(key, prv);
// OpenSSL requires public key, so we recreate it from private key
openssl::BigNumberContext ctx;
const EC_GROUP* group = EC_KEY_get0_group(key);
openssl::Point pub(group);
openssl::check(EC_POINT_mul(group, pub, prv, nullptr, nullptr, ctx));
EC_KEY_set_public_key(key, pub);
openssl::check(EC_KEY_check_key(key));
return key;
}
openssl::Key BackendOpenSsl::internal_public_key(const ecdsa256::PublicKey& generic) const
{
openssl::Key key(NID_X9_62_prime256v1);
openssl::BigNumber x(generic.x);
openssl::BigNumber y(generic.y);
EC_KEY_set_public_key_affine_coordinates(key, x, y);
openssl::check(EC_KEY_check_key(key));
return key;
}
openssl::Key BackendOpenSsl::internal_public_key(const PublicKey& generic) const
{
openssl::Key key(openssl_nid(generic.type));
openssl::Point point = internal_ec_point(generic);
EC_KEY_set_public_key(key, point);
openssl::check(EC_KEY_check_key(key));
return key;
}
ecdsa256::KeyPair BackendOpenSsl::generate_key_pair()
{
ecdsa256::KeyPair key_pair;
openssl::Key key(NID_X9_62_prime256v1);
openssl::check(EC_KEY_generate_key(key));
const BIGNUM* priv_bn = EC_KEY_get0_private_key(key);
const EC_POINT* pub_point = EC_KEY_get0_public_key(key);
const EC_GROUP* group = EC_KEY_get0_group(key);
// extract private key
key_pair.private_key.key.fill(0);
auto priv_bytes = BN_num_bytes(priv_bn);
BN_bn2bin(priv_bn, key_pair.private_key.key.data() + key_pair.private_key.key.size() - priv_bytes);
// extract public key coordinates
openssl::BigNumber x;
openssl::BigNumber y;
openssl::BigNumberContext ctx;
EC_POINT_get_affine_coordinates(group, pub_point, x, y, ctx);
BN_bn2binpad(x, key_pair.public_key.x.data(), key_pair.public_key.x.size());
BN_bn2binpad(y, key_pair.public_key.y.data(), key_pair.public_key.y.size());
return key_pair;
}
openssl::Point BackendOpenSsl::internal_ec_point(const PublicKey& generic) const
{
openssl::Group group { openssl_nid(generic.type) };
openssl::Point point { group };
openssl::BigNumberContext bn_ctx;
switch (generic.compression)
{
case KeyCompression::NoCompression:
EC_POINT_set_affine_coordinates(group, point,
openssl::BigNumber { generic.x }, openssl::BigNumber {generic.y },
bn_ctx);
break;
case KeyCompression::Y0:
EC_POINT_set_compressed_coordinates(group, point, openssl::BigNumber { generic.x }, 0, bn_ctx);
break;
case KeyCompression::Y1:
EC_POINT_set_compressed_coordinates(group, point, openssl::BigNumber { generic.x }, 1, bn_ctx);
break;
default:
// no-op
break;
}
return point;
}
namespace openssl
{
PublicKey derive_public_key(const PrivateKey& private_key)
{
Key ec_key(openssl_nid(private_key.type));
BigNumber prv(private_key.key);
EC_KEY_set_private_key(ec_key, prv);
const EC_GROUP* group = EC_KEY_get0_group(ec_key);
Point pub(group);
BigNumberContext ctx;
check(EC_POINT_mul(group, pub, prv, nullptr, nullptr, ctx));
BigNumber x;
BigNumber y;
EC_POINT_get_affine_coordinates(group, pub, x, y, ctx);
PublicKey public_key;
public_key.type = private_key.type;
public_key.compression = KeyCompression::NoCompression;
public_key.x.resize(key_length(private_key.type));
public_key.y.resize(key_length(private_key.type));
BN_bn2binpad(x, public_key.x.data(), public_key.x.size());
BN_bn2binpad(y, public_key.y.data(), public_key.y.size());
return public_key;
}
} // namespace openssl
} // namespace security
} // namespace vanetza