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327 lines
8.3 KiB
327 lines
8.3 KiB
/*
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* Copyright (C) 2016 The Android Open Source Project
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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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* http://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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*/
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#include <nvram/messages/io.h>
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extern "C" {
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#include <string.h>
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}
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#include <nvram/messages/compiler.h>
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namespace nvram {
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namespace {
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template <typename T>
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T min(T x, T y) {
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return x < y ? x : y;
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}
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template <typename T>
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T max(T x, T y) {
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return x > y ? x : y;
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}
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// Encodes |value| in varint format and writes the result to |stream|.
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bool EncodeVarint(OutputStreamBuffer* stream, uint64_t value) {
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do {
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uint8_t byte = (value & 0x7f) | (((value >> 7) == 0) ? 0x00 : 0x80);
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if (!stream->WriteByte(byte)) {
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return false;
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}
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value >>= 7;
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} while (value != 0);
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return true;
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}
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// Read a varint-encoded number from stream, decode it and store the result in
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// |value|.
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bool DecodeVarint(InputStreamBuffer* stream_buffer, uint64_t* value) {
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// Maximum number of bytes required to encode an |uint64_t| as varint. Each
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// byte in a varint has 7 payload bytes, so encoding 64 bits yields at most 10
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// bytes.
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static constexpr int kMaxVarintBytes = 10;
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*value = 0;
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for (int i = 0; i < kMaxVarintBytes; ++i) {
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uint8_t byte = 0;
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if (!stream_buffer->ReadByte(&byte)) {
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return false;
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}
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*value |= static_cast<uint64_t>(byte & 0x7f) << (i * 7);
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if ((byte & 0x80) == 0) {
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return true;
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}
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}
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return false;
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}
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} // namespace
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InputStreamBuffer::InputStreamBuffer(const void* data, size_t size)
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: InputStreamBuffer(data, static_cast<const uint8_t*>(data) + size) {}
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InputStreamBuffer::InputStreamBuffer(const void* start, const void* end)
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: pos_(static_cast<const uint8_t*>(start)),
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end_(static_cast<const uint8_t*>(end)) {
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NVRAM_CHECK(pos_ <= end_);
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}
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bool InputStreamBuffer::Done() {
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return pos_ >= end_ && !Advance();
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}
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bool InputStreamBuffer::Read(void* data, size_t size) {
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uint8_t* buffer = static_cast<uint8_t*>(data);
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NVRAM_CHECK(pos_ <= end_);
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while (size > static_cast<size_t>(end_ - pos_)) {
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memcpy(buffer, pos_, end_ - pos_);
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buffer += end_ - pos_;
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size -= end_ - pos_;
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pos_ = end_;
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if (!Advance()) {
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return false;
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}
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NVRAM_CHECK(pos_ < end_);
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}
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memcpy(buffer, pos_, size);
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pos_ += size;
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return true;
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}
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bool InputStreamBuffer::ReadByte(uint8_t* byte) {
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if (pos_ >= end_) {
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if (!Advance()) {
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return false;
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}
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NVRAM_CHECK(pos_ < end_);
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}
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*byte = *pos_;
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++pos_;
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return true;
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}
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bool InputStreamBuffer::Skip(size_t size) {
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NVRAM_CHECK(pos_ <= end_);
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while (size > static_cast<size_t>(end_ - pos_)) {
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size -= end_ - pos_;
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pos_ = end_;
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if (!Advance()) {
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return false;
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}
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NVRAM_CHECK(pos_ < end_);
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}
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pos_ += size;
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return true;
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}
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bool InputStreamBuffer::Advance() {
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return false;
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}
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NestedInputStreamBuffer::NestedInputStreamBuffer(InputStreamBuffer* delegate,
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size_t size)
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: InputStreamBuffer(delegate->pos_, ClampEnd(delegate, size)),
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delegate_(delegate),
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remaining_(size) {}
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bool NestedInputStreamBuffer::Advance() {
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remaining_ -= end_ - delegate_->pos_;
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if (remaining_ == 0) {
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delegate_->pos_ = end_;
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return false;
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}
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bool status = delegate_->Advance();
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pos_ = delegate_->pos_;
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end_ = ClampEnd(delegate_, remaining_);
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return status;
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}
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// static
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const uint8_t* NestedInputStreamBuffer::ClampEnd(InputStreamBuffer* delegate,
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size_t size) {
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NVRAM_CHECK(delegate->pos_ <= delegate->end_);
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return size < static_cast<size_t>(delegate->end_ - delegate->pos_)
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? delegate->pos_ + size
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: delegate->end_;
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}
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OutputStreamBuffer::OutputStreamBuffer(void* data, size_t size)
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: OutputStreamBuffer(data, static_cast<uint8_t*>(data) + size) {}
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OutputStreamBuffer::OutputStreamBuffer(void* start, void* end)
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: pos_(static_cast<uint8_t*>(start)), end_(static_cast<uint8_t*>(end)) {
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NVRAM_CHECK(pos_ <= end_);
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}
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bool OutputStreamBuffer::Done() {
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return pos_ >= end_ && !Advance();
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}
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bool OutputStreamBuffer::Write(const void* data, size_t size) {
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const uint8_t* buffer = static_cast<const uint8_t*>(data);
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NVRAM_CHECK(pos_ <= end_);
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while (size > static_cast<size_t>(end_ - pos_)) {
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memcpy(pos_, buffer, end_ - pos_);
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buffer += end_ - pos_;
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size -= end_ - pos_;
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pos_ = end_;
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if (!Advance()) {
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return false;
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}
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NVRAM_CHECK(pos_ < end_);
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}
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memcpy(pos_, buffer, size);
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pos_ += size;
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return true;
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}
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bool OutputStreamBuffer::WriteByte(uint8_t byte) {
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if (pos_ >= end_) {
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if (!Advance()) {
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return false;
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}
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NVRAM_CHECK(pos_ < end_);
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}
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*pos_ = byte;
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++pos_;
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return true;
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}
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bool OutputStreamBuffer::Advance() {
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return false;
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}
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CountingOutputStreamBuffer::CountingOutputStreamBuffer()
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: OutputStreamBuffer(scratch_space_, kScratchSpaceSize) {}
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bool CountingOutputStreamBuffer::Advance() {
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bytes_written_ += pos_ - scratch_space_;
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pos_ = scratch_space_;
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end_ = scratch_space_ + kScratchSpaceSize;
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return true;
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}
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uint8_t CountingOutputStreamBuffer::scratch_space_[kScratchSpaceSize];
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BlobOutputStreamBuffer::BlobOutputStreamBuffer(Blob* blob)
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: OutputStreamBuffer(blob->data(), blob->size()), blob_(blob) {}
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bool BlobOutputStreamBuffer::Advance() {
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ptrdiff_t offset = pos_ - blob_->data();
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if (!blob_->Resize(max<size_t>(blob_->size() * 2, 32))) {
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return false;
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}
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pos_ = blob_->data() + offset;
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end_ = blob_->data() + blob_->size();
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return true;
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}
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bool BlobOutputStreamBuffer::Truncate() {
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if (!blob_->Resize(pos_ - blob_->data())) {
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return false;
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}
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end_ = blob_->data() + blob_->size();
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pos_ = end_;
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return true;
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}
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ProtoReader::ProtoReader(InputStreamBuffer* stream_buffer)
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: stream_buffer_(stream_buffer) {}
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bool ProtoReader::ReadWireTag() {
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uint64_t wire_tag;
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if (!DecodeVarint(stream_buffer_, &wire_tag)) {
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return false;
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}
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wire_type_ = wire_tag & 0x7;
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field_number_ = wire_tag >> 3;
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switch (wire_type()) {
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case WireType::kLengthDelimited: {
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uint64_t size;
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if (!DecodeVarint(stream_buffer_, &size)) {
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return false;
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}
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field_size_ = static_cast<size_t>(size);
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if (static_cast<uint64_t>(field_size_) != size) {
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return false;
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}
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break;
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}
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case WireType::kFixed64:
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field_size_ = sizeof(uint64_t);
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break;
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case WireType::kFixed32:
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field_size_ = sizeof(uint32_t);
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break;
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case WireType::kVarint:
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case WireType::kStartGroup:
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case WireType::kEndGroup:
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field_size_ = 0;
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break;
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}
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return true;
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}
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bool ProtoReader::ReadVarint(uint64_t* value) {
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NVRAM_CHECK(wire_type() == WireType::kVarint);
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return DecodeVarint(stream_buffer_, value);
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}
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bool ProtoReader::ReadLengthDelimited(void* data, size_t size) {
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NVRAM_CHECK(wire_type() == WireType::kLengthDelimited);
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return stream_buffer_->Read(data, size);
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}
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bool ProtoReader::SkipField() {
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if (wire_type() == WireType::kVarint) {
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uint64_t dummy;
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return DecodeVarint(stream_buffer_, &dummy);
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} else if (field_size_ > 0) {
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return stream_buffer_->Skip(field_size_);
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}
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return true;
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}
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ProtoWriter::ProtoWriter(OutputStreamBuffer* stream_buffer)
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: stream_buffer_(stream_buffer) {}
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bool ProtoWriter::WriteVarint(uint64_t value) {
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return WriteWireTag(WireType::kVarint) &&
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EncodeVarint(stream_buffer_, value);
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}
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bool ProtoWriter::WriteLengthDelimited(const void* data, size_t size) {
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return WriteWireTag(WireType::kLengthDelimited) &&
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EncodeVarint(stream_buffer_, size) &&
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stream_buffer_->Write(data, size);
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}
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bool ProtoWriter::WriteLengthHeader(size_t size) {
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return WriteWireTag(WireType::kLengthDelimited) &&
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EncodeVarint(stream_buffer_, size);
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}
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bool ProtoWriter::WriteWireTag(WireType wire_type) {
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return EncodeVarint(stream_buffer_,
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(field_number_ << 3) | static_cast<uint64_t>(wire_type));
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}
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} // namespace nvram
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