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311 lines
12 KiB
311 lines
12 KiB
/*
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* Copyright (C) 2020 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 "SerializedFlushToState.h"
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#include <map>
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#include <android-base/logging.h>
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#include <android-base/stringprintf.h>
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#include <android-base/strings.h>
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#include <gtest/gtest.h>
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using android::base::Join;
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using android::base::StringPrintf;
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constexpr size_t kChunkSize = 3 * 4096;
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class SerializedFlushToStateTest : public testing::Test {
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protected:
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void SetUp() override {
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// This test spams many unneeded INFO logs, so we suppress them.
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old_log_severity_ = android::base::SetMinimumLogSeverity(android::base::WARNING);
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}
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void TearDown() override { android::base::SetMinimumLogSeverity(old_log_severity_); }
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std::string TestReport(const std::vector<uint64_t>& expected, const std::vector<uint64_t>& read)
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REQUIRES(logd_lock) {
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auto sequence_to_log_id = [&](uint64_t sequence) -> int {
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for (const auto& [log_id, sequences] : sequence_numbers_per_buffer_) {
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if (std::find(sequences.begin(), sequences.end(), sequence) != sequences.end()) {
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return log_id;
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}
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}
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return -1;
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};
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std::map<int, std::vector<uint64_t>> missing_sequences;
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std::vector<uint64_t> missing_expected;
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std::set_difference(expected.begin(), expected.end(), read.begin(), read.end(),
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std::back_inserter(missing_expected));
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for (uint64_t sequence : missing_expected) {
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int log_id = sequence_to_log_id(sequence);
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missing_sequences[log_id].emplace_back(sequence);
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}
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std::map<int, std::vector<uint64_t>> extra_sequences;
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std::vector<uint64_t> extra_read;
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std::set_difference(read.begin(), read.end(), expected.begin(), expected.end(),
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std::back_inserter(extra_read));
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for (uint64_t sequence : extra_read) {
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int log_id = sequence_to_log_id(sequence);
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extra_sequences[log_id].emplace_back(sequence);
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}
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std::vector<std::string> errors;
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for (const auto& [log_id, sequences] : missing_sequences) {
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errors.emplace_back(
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StringPrintf("Log id %d missing %zu sequences", log_id, sequences.size()));
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}
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for (const auto& [log_id, sequences] : extra_sequences) {
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errors.emplace_back(
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StringPrintf("Log id %d has extra %zu sequences", log_id, sequences.size()));
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}
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return Join(errors, ", ");
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}
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// Read sequence numbers in order from SerializedFlushToState for every mask combination and all
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// sequence numbers from 0 through the highest logged sequence number + 1.
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// This assumes that all of the logs have already been written.
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void TestAllReading() REQUIRES(logd_lock) {
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uint64_t max_sequence = sequence_ + 1;
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uint32_t max_mask = (1 << LOG_ID_MAX) - 1;
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for (uint64_t sequence = 0; sequence < max_sequence; ++sequence) {
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for (uint32_t mask = 0; mask < max_mask; ++mask) {
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auto state = SerializedFlushToState{sequence, mask, log_chunks_};
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TestReading(sequence, mask, state);
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}
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}
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}
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// Similar to TestAllReading() except that it doesn't assume any logs are in the buffer, instead
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// it calls write_logs() in a loop for sequence/mask combination. It clears log_chunks_ and
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// sequence_numbers_per_buffer_ between calls, such that only the sequence numbers written in
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// the previous call to write_logs() are expected.
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void TestAllReadingWithFutureMessages(const std::function<bool(int)>& write_logs)
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REQUIRES(logd_lock) {
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uint64_t max_sequence = sequence_ + 1;
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uint32_t max_mask = (1 << LOG_ID_MAX) - 1;
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for (uint64_t sequence = 1; sequence < max_sequence; ++sequence) {
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for (uint32_t mask = 1; mask < max_mask; ++mask) {
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log_id_for_each(i) { log_chunks_[i].clear(); }
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auto state = SerializedFlushToState{sequence, mask, log_chunks_};
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int loop_count = 0;
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while (write_logs(loop_count++)) {
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TestReading(sequence, mask, state);
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sequence_numbers_per_buffer_.clear();
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}
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}
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}
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}
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void TestReading(uint64_t start, LogMask log_mask, SerializedFlushToState& state)
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REQUIRES(logd_lock) {
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std::vector<uint64_t> expected_sequence;
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log_id_for_each(i) {
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if (((1 << i) & log_mask) == 0) {
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continue;
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}
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for (const auto& sequence : sequence_numbers_per_buffer_[i]) {
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if (sequence >= start) {
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expected_sequence.emplace_back(sequence);
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}
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}
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}
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std::sort(expected_sequence.begin(), expected_sequence.end());
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std::vector<uint64_t> read_sequence;
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while (state.HasUnreadLogs()) {
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auto top = state.PopNextUnreadLog();
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read_sequence.emplace_back(top.entry->sequence());
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}
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EXPECT_TRUE(std::is_sorted(read_sequence.begin(), read_sequence.end()));
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EXPECT_EQ(expected_sequence.size(), read_sequence.size());
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EXPECT_EQ(expected_sequence, read_sequence)
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<< "start: " << start << " log_mask: " << log_mask << " "
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<< TestReport(expected_sequence, read_sequence);
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}
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// Add a chunk with the given messages to the a given log buffer. Keep track of the sequence
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// numbers for future validation. Optionally mark the block as having finished writing.
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void AddChunkWithMessages(bool finish_writing, int buffer,
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const std::vector<std::string>& messages) REQUIRES(logd_lock) {
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auto chunk = SerializedLogChunk{kChunkSize};
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for (const auto& message : messages) {
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auto sequence = sequence_++;
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sequence_numbers_per_buffer_[buffer].emplace_back(sequence);
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ASSERT_TRUE(chunk.CanLog(message.size() + 1));
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chunk.Log(sequence, log_time(), 0, 1, 1, message.c_str(), message.size() + 1);
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}
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if (finish_writing) {
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chunk.FinishWriting();
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}
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log_chunks_[buffer].emplace_back(std::move(chunk));
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}
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android::base::LogSeverity old_log_severity_;
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std::map<int, std::vector<uint64_t>> sequence_numbers_per_buffer_;
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std::list<SerializedLogChunk> log_chunks_[LOG_ID_MAX];
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uint64_t sequence_ = 1;
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};
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// 0: multiple chunks, with variable number of entries, with/without finishing writing
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// 1: 1 chunk with 1 log and finished writing
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// 2: 1 chunk with 1 log and not finished writing
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// 3: 1 chunk with 0 logs and not finished writing
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// 4: 1 chunk with 0 logs and finished writing (impossible, but SerializedFlushToState handles it)
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// 5-7: 0 chunks
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TEST_F(SerializedFlushToStateTest, smoke) {
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auto lock = std::lock_guard{logd_lock};
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AddChunkWithMessages(true, 0, {"1st", "2nd"});
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AddChunkWithMessages(true, 1, {"3rd"});
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AddChunkWithMessages(false, 0, {"4th"});
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AddChunkWithMessages(true, 0, {"4th", "5th", "more", "even", "more", "go", "here"});
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AddChunkWithMessages(false, 2, {"6th"});
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AddChunkWithMessages(true, 0, {"7th"});
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AddChunkWithMessages(false, 3, {});
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AddChunkWithMessages(true, 4, {});
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TestAllReading();
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}
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TEST_F(SerializedFlushToStateTest, random) {
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auto lock = std::lock_guard{logd_lock};
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srand(1);
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for (int count = 0; count < 20; ++count) {
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unsigned int num_messages = 1 + rand() % 15;
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auto messages = std::vector<std::string>{num_messages, "same message"};
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bool compress = rand() % 2;
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int buf = rand() % LOG_ID_MAX;
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AddChunkWithMessages(compress, buf, messages);
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}
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TestAllReading();
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}
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// Same start as smoke, but we selectively write logs to the buffers and ensure they're read.
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TEST_F(SerializedFlushToStateTest, future_writes) {
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auto lock = std::lock_guard{logd_lock};
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auto write_logs = [&](int loop_count) REQUIRES(logd_lock) {
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switch (loop_count) {
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case 0:
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// Initial writes.
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AddChunkWithMessages(true, 0, {"1st", "2nd"});
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AddChunkWithMessages(true, 1, {"3rd"});
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AddChunkWithMessages(false, 0, {"4th"});
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AddChunkWithMessages(true, 0, {"4th", "5th", "more", "even", "more", "go", "here"});
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AddChunkWithMessages(false, 2, {"6th"});
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AddChunkWithMessages(true, 0, {"7th"});
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AddChunkWithMessages(false, 3, {});
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AddChunkWithMessages(true, 4, {});
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break;
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case 1:
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// Smoke test, add a simple chunk.
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AddChunkWithMessages(true, 0, {"1st", "2nd"});
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break;
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case 2:
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// Add chunks to all but one of the logs.
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AddChunkWithMessages(true, 0, {"1st", "2nd"});
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AddChunkWithMessages(true, 1, {"1st", "2nd"});
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AddChunkWithMessages(true, 2, {"1st", "2nd"});
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AddChunkWithMessages(true, 3, {"1st", "2nd"});
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AddChunkWithMessages(true, 4, {"1st", "2nd"});
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AddChunkWithMessages(true, 5, {"1st", "2nd"});
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AddChunkWithMessages(true, 6, {"1st", "2nd"});
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break;
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case 3:
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// Finally add chunks to all logs.
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AddChunkWithMessages(true, 0, {"1st", "2nd"});
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AddChunkWithMessages(true, 1, {"1st", "2nd"});
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AddChunkWithMessages(true, 2, {"1st", "2nd"});
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AddChunkWithMessages(true, 3, {"1st", "2nd"});
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AddChunkWithMessages(true, 4, {"1st", "2nd"});
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AddChunkWithMessages(true, 5, {"1st", "2nd"});
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AddChunkWithMessages(true, 6, {"1st", "2nd"});
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AddChunkWithMessages(true, 7, {"1st", "2nd"});
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break;
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default:
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return false;
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}
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return true;
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};
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TestAllReadingWithFutureMessages(write_logs);
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}
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TEST_F(SerializedFlushToStateTest, no_dangling_references) {
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auto lock = std::lock_guard{logd_lock};
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AddChunkWithMessages(true, 0, {"1st", "2nd"});
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AddChunkWithMessages(true, 0, {"3rd", "4th"});
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auto state = SerializedFlushToState{1, kLogMaskAll, log_chunks_};
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ASSERT_EQ(log_chunks_[0].size(), 2U);
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auto first_chunk = log_chunks_[0].begin();
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auto second_chunk = std::next(first_chunk);
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ASSERT_TRUE(state.HasUnreadLogs());
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auto first_log = state.PopNextUnreadLog();
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EXPECT_STREQ(first_log.entry->msg(), "1st");
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EXPECT_EQ(first_chunk->reader_ref_count(), 1U);
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EXPECT_EQ(second_chunk->reader_ref_count(), 0U);
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ASSERT_TRUE(state.HasUnreadLogs());
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auto second_log = state.PopNextUnreadLog();
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EXPECT_STREQ(second_log.entry->msg(), "2nd");
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EXPECT_EQ(first_chunk->reader_ref_count(), 1U);
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EXPECT_EQ(second_chunk->reader_ref_count(), 0U);
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ASSERT_TRUE(state.HasUnreadLogs());
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auto third_log = state.PopNextUnreadLog();
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EXPECT_STREQ(third_log.entry->msg(), "3rd");
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EXPECT_EQ(first_chunk->reader_ref_count(), 0U);
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EXPECT_EQ(second_chunk->reader_ref_count(), 1U);
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ASSERT_TRUE(state.HasUnreadLogs());
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auto fourth_log = state.PopNextUnreadLog();
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EXPECT_STREQ(fourth_log.entry->msg(), "4th");
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EXPECT_EQ(first_chunk->reader_ref_count(), 0U);
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EXPECT_EQ(second_chunk->reader_ref_count(), 1U);
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EXPECT_FALSE(state.HasUnreadLogs());
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}
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TEST(SerializedFlushToState, Prune) {
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auto lock = std::lock_guard{logd_lock};
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auto chunk = SerializedLogChunk{kChunkSize};
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chunk.Log(1, log_time(), 0, 1, 1, "abc", 3);
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chunk.Log(2, log_time(), 0, 1, 1, "abc", 3);
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chunk.Log(3, log_time(), 0, 1, 1, "abc", 3);
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chunk.FinishWriting();
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std::list<SerializedLogChunk> log_chunks[LOG_ID_MAX];
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log_chunks[LOG_ID_MAIN].emplace_back(std::move(chunk));
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auto state = SerializedFlushToState{1, kLogMaskAll, log_chunks};
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ASSERT_TRUE(state.HasUnreadLogs());
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state.Prune(LOG_ID_MAIN);
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}
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