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hai007 2fadd51c28 Automated Code Change
PiperOrigin-RevId: 934687878
2026-06-18 20:14:28 -07:00

190 lines
5.9 KiB
C++

// Copyright 2020 Google LLC
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// https://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.
#include "internal/crypto_cros/aead.h"
#include <stddef.h>
#include <stdint.h>
#include <optional>
#include <string>
#include <vector>
#ifdef NEARBY_CHROMIUM
#include "internal/platform/logging.h"
#elif defined(NEARBY_SWIFTPM)
#include "internal/platform/logging.h"
#else
#include "absl/log/check.h" // nogncheck
#endif
#include "absl/types/span.h"
#include "internal/crypto_cros/nearby_base.h"
#include "internal/crypto_cros/openssl_util.h"
#include <openssl/aead.h>
namespace nearby::crypto {
Aead::Aead(AeadAlgorithm algorithm) {
EnsureOpenSSLInit();
switch (algorithm) {
case AES_128_CTR_HMAC_SHA256:
aead_ = EVP_aead_aes_128_ctr_hmac_sha256();
break;
case AES_256_GCM:
aead_ = EVP_aead_aes_256_gcm();
break;
case AES_256_GCM_SIV:
aead_ = EVP_aead_aes_256_gcm_siv();
break;
case CHACHA20_POLY1305:
aead_ = EVP_aead_chacha20_poly1305();
break;
}
}
Aead::~Aead() = default;
void Aead::Init(absl::Span<const uint8_t> key) {
DCHECK(!key_);
DCHECK_EQ(KeyLength(), key.size());
key_ = key;
}
static absl::Span<const uint8_t> ToSpan(absl::string_view sp) {
return nearbybase::as_bytes(absl::MakeSpan(sp));
}
void Aead::Init(const std::string* key) { Init(ToSpan(*key)); }
std::vector<uint8_t> Aead::Seal(
absl::Span<const uint8_t> plaintext, absl::Span<const uint8_t> nonce,
absl::Span<const uint8_t> additional_data) const {
const size_t max_output_length =
EVP_AEAD_max_overhead(aead_) + plaintext.size();
CHECK(max_output_length >= plaintext.size());
std::vector<uint8_t> ret;
ret.resize(max_output_length);
size_t output_length;
CHECK(Seal(plaintext, nonce, additional_data, ret.data(), &output_length,
max_output_length));
ret.resize(output_length);
return ret;
}
bool Aead::Seal(absl::string_view plaintext, absl::string_view nonce,
absl::string_view additional_data,
std::string* ciphertext) const {
const size_t max_output_length =
EVP_AEAD_max_overhead(aead_) + plaintext.size();
CHECK(max_output_length + 1 >= plaintext.size());
uint8_t* out_ptr = reinterpret_cast<uint8_t*>(
nearbybase::WriteInto(ciphertext, max_output_length + 1));
size_t output_length;
if (!Seal(ToSpan(plaintext), ToSpan(nonce), ToSpan(additional_data), out_ptr,
&output_length, max_output_length)) {
ciphertext->clear();
return false;
}
ciphertext->resize(output_length);
return true;
}
std::optional<std::vector<uint8_t>> Aead::Open(
absl::Span<const uint8_t> ciphertext, absl::Span<const uint8_t> nonce,
absl::Span<const uint8_t> additional_data) const {
const size_t max_output_length = ciphertext.size();
std::vector<uint8_t> ret;
ret.resize(max_output_length);
size_t output_length;
if (!Open(ciphertext, nonce, additional_data, ret.data(), &output_length,
max_output_length)) {
return std::nullopt;
}
ret.resize(output_length);
return ret;
}
bool Aead::Open(absl::string_view ciphertext, absl::string_view nonce,
absl::string_view additional_data,
std::string* plaintext) const {
const size_t max_output_length = ciphertext.size();
CHECK(max_output_length + 1 > max_output_length);
uint8_t* out_ptr = reinterpret_cast<uint8_t*>(
nearbybase::WriteInto(plaintext, max_output_length + 1));
size_t output_length;
if (!Open(ToSpan(ciphertext), ToSpan(nonce), ToSpan(additional_data), out_ptr,
&output_length, max_output_length)) {
plaintext->clear();
return false;
}
plaintext->resize(output_length);
return true;
}
size_t Aead::KeyLength() const { return EVP_AEAD_key_length(aead_); }
size_t Aead::NonceLength() const { return EVP_AEAD_nonce_length(aead_); }
bool Aead::Seal(absl::Span<const uint8_t> plaintext,
absl::Span<const uint8_t> nonce,
absl::Span<const uint8_t> additional_data, uint8_t* out,
size_t* output_length, size_t max_output_length) const {
DCHECK(key_);
DCHECK_EQ(NonceLength(), nonce.size());
bssl::ScopedEVP_AEAD_CTX ctx;
if (!EVP_AEAD_CTX_init(ctx.get(), aead_, key_->data(), key_->size(),
EVP_AEAD_DEFAULT_TAG_LENGTH, nullptr) ||
!EVP_AEAD_CTX_seal(ctx.get(), out, output_length, max_output_length,
nonce.data(), nonce.size(), plaintext.data(),
plaintext.size(), additional_data.data(),
additional_data.size())) {
return false;
}
DCHECK_LE(*output_length, max_output_length);
return true;
}
bool Aead::Open(absl::Span<const uint8_t> plaintext,
absl::Span<const uint8_t> nonce,
absl::Span<const uint8_t> additional_data, uint8_t* out,
size_t* output_length, size_t max_output_length) const {
DCHECK(key_);
DCHECK_EQ(NonceLength(), nonce.size());
bssl::ScopedEVP_AEAD_CTX ctx;
if (!EVP_AEAD_CTX_init(ctx.get(), aead_, key_->data(), key_->size(),
EVP_AEAD_DEFAULT_TAG_LENGTH, nullptr) ||
!EVP_AEAD_CTX_open(ctx.get(), out, output_length, max_output_length,
nonce.data(), nonce.size(), plaintext.data(),
plaintext.size(), additional_data.data(),
additional_data.size())) {
return false;
}
DCHECK_LE(*output_length, max_output_length);
return true;
}
} // namespace nearby::crypto