#include "BenchmarkUtils.hpp" #include "LoggingManager.hpp" #include #include #include #include #include #include #include #include #include struct BenchmarkResult { double elapsedSeconds; double throughputEntries; double logicalThroughputGiB; double physicalThroughputGiB; double writeAmplification; LatencyStats latencyStats; }; BenchmarkResult runQueueCapacityBenchmark(const LoggingConfig &config, int numProducerThreads, int entriesPerProducer, int numSpecificFiles, int producerBatchSize, int payloadSize) { cleanupLogDirectory(config.basePath); std::cout << "Generating batches with pre-determined destinations for all threads..."; std::vector batches = generateBatches(entriesPerProducer, numSpecificFiles, producerBatchSize, payloadSize); std::cout << " Done." << std::endl; size_t totalDataSizeBytes = calculateTotalDataSize(batches, numProducerThreads); double totalDataSizeGiB = static_cast(totalDataSizeBytes) / (1024 * 1024 * 1024); std::cout << "Total data to be written: " << totalDataSizeBytes << " bytes (" << totalDataSizeGiB << " GiB)" << std::endl; LoggingManager loggingManager(config); loggingManager.start(); auto startTime = std::chrono::high_resolution_clock::now(); // Each future now returns a LatencyCollector with thread-local measurements std::vector> futures; for (int i = 0; i < numProducerThreads; i++) { futures.push_back(std::async( std::launch::async, appendLogEntries, std::ref(loggingManager), std::ref(batches))); } // Collect latency measurements from all threads LatencyCollector masterCollector; for (auto &future : futures) { LatencyCollector threadCollector = future.get(); masterCollector.merge(threadCollector); } loggingManager.stop(); auto endTime = std::chrono::high_resolution_clock::now(); std::chrono::duration elapsed = endTime - startTime; size_t finalStorageSize = calculateDirectorySize(config.basePath); double writeAmplification = static_cast(finalStorageSize) / totalDataSizeBytes; double elapsedSeconds = elapsed.count(); const size_t totalEntries = numProducerThreads * entriesPerProducer; double throughputEntries = totalEntries / elapsedSeconds; double logicalThroughputGiB = totalDataSizeGiB / elapsedSeconds; double physicalThroughputGiB = static_cast(finalStorageSize) / (1024.0 * 1024.0 * 1024.0 * elapsedSeconds); // Calculate latency statistics from merged measurements LatencyStats latencyStats = calculateLatencyStats(masterCollector); cleanupLogDirectory(config.basePath); return BenchmarkResult{ elapsedSeconds, throughputEntries, logicalThroughputGiB, physicalThroughputGiB, writeAmplification, latencyStats}; } // Write CSV header void writeCSVHeader(std::ofstream &csvFile) { csvFile << "queue_capacity,elapsed_seconds,throughput_entries_per_sec,logical_throughput_gib_per_sec," << "physical_throughput_gib_per_sec,relative_performance,write_amplification," << "avg_latency_ms,median_latency_ms,max_latency_ms,latency_count\n"; } // Write a single result row to CSV void writeCSVRow(std::ofstream &csvFile, int queueCapacity, const BenchmarkResult &result, double relativePerf) { csvFile << queueCapacity << "," << std::fixed << std::setprecision(6) << result.elapsedSeconds << "," << std::fixed << std::setprecision(2) << result.throughputEntries << "," << std::fixed << std::setprecision(6) << result.logicalThroughputGiB << "," << std::fixed << std::setprecision(6) << result.physicalThroughputGiB << "," << std::fixed << std::setprecision(6) << relativePerf << "," << std::fixed << std::setprecision(8) << result.writeAmplification << "," << std::fixed << std::setprecision(6) << result.latencyStats.avgMs << "," << std::fixed << std::setprecision(6) << result.latencyStats.medianMs << "," << std::fixed << std::setprecision(6) << result.latencyStats.maxMs << "," << result.latencyStats.count << "\n"; } void runQueueCapacityComparison(const LoggingConfig &baseConfig, const std::vector &queueSizes, int numProducerThreads, int entriesPerProducer, int numSpecificFiles, int producerBatchSize, int payloadSize, const std::string &csvFilename = "queue_capacity_benchmark.csv") { std::vector results; // Open CSV file for writing std::ofstream csvFile(csvFilename); if (!csvFile.is_open()) { std::cerr << "Error: Could not open CSV file " << csvFilename << " for writing." << std::endl; return; } writeCSVHeader(csvFile); std::cout << "Running queue capacity benchmark with " << queueSizes.size() << " data points..." << std::endl; std::cout << "Results will be saved to: " << csvFilename << std::endl; for (size_t i = 0; i < queueSizes.size(); i++) { int queueSize = queueSizes[i]; std::cout << "\nProgress: " << (i + 1) << "/" << queueSizes.size() << " - Running benchmark with queue capacity: " << queueSize << "..." << std::endl; LoggingConfig runConfig = baseConfig; runConfig.queueCapacity = queueSize; runConfig.basePath = "./logs/queue_" + std::to_string(queueSize); BenchmarkResult result = runQueueCapacityBenchmark( runConfig, numProducerThreads, entriesPerProducer, numSpecificFiles, producerBatchSize, payloadSize); results.push_back(result); // Calculate relative performance (using first result as baseline) double relativePerf = results.size() > 1 ? result.throughputEntries / results[0].throughputEntries : 1.0; // Write result to CSV immediately writeCSVRow(csvFile, queueSize, result, relativePerf); csvFile.flush(); // Ensure data is written in case of early termination // Print progress summary std::cout << " Completed: " << std::fixed << std::setprecision(2) << result.throughputEntries << " entries/s, " << std::fixed << std::setprecision(3) << result.logicalThroughputGiB << " GiB/s" << std::endl; // Add a small delay between runs std::this_thread::sleep_for(std::chrono::seconds(5)); } csvFile.close(); std::cout << "\nBenchmark completed! Results saved to " << csvFilename << std::endl; std::cout << "\n=========== QUEUE CAPACITY BENCHMARK SUMMARY ===========" << std::endl; std::cout << std::left << std::setw(15) << "Queue Capacity" << std::setw(15) << "Time (sec)" << std::setw(20) << "Throughput (ent/s)" << std::setw(15) << "Logical (GiB/s)" << std::setw(15) << "Physical (GiB/s)" << std::setw(15) << "Write Amp." << std::setw(12) << "Rel. Perf" << std::setw(12) << "Avg Lat(ms)" << std::endl; std::cout << "--------------------------------------------------------------------------------------------------------------------------------" << std::endl; for (size_t i = 0; i < queueSizes.size(); i++) { double relativePerf = results[i].throughputEntries / results[0].throughputEntries; // Relative to smallest queue std::cout << std::left << std::setw(15) << queueSizes[i] << std::setw(15) << std::fixed << std::setprecision(2) << results[i].elapsedSeconds << std::setw(20) << std::fixed << std::setprecision(2) << results[i].throughputEntries << std::setw(15) << std::fixed << std::setprecision(3) << results[i].logicalThroughputGiB << std::setw(15) << std::fixed << std::setprecision(3) << results[i].physicalThroughputGiB << std::setw(15) << std::fixed << std::setprecision(4) << results[i].writeAmplification << std::setw(12) << std::fixed << std::setprecision(2) << relativePerf << std::setw(12) << std::fixed << std::setprecision(3) << results[i].latencyStats.avgMs << std::endl; } std::cout << "================================================================================================================================" << std::endl; } int main() { // system parameters LoggingConfig baseConfig; baseConfig.baseFilename = "default"; baseConfig.maxSegmentSize = 50 * 1024 * 1024; // 50 MB baseConfig.maxAttempts = 5; baseConfig.baseRetryDelay = std::chrono::milliseconds(1); baseConfig.batchSize = 8192; baseConfig.maxExplicitProducers = 32; baseConfig.numWriterThreads = 32; baseConfig.appendTimeout = std::chrono::minutes(2); baseConfig.useEncryption = true; baseConfig.compressionLevel = 9; baseConfig.maxOpenFiles = 512; // benchmark parameters const int numSpecificFiles = 256; const int producerBatchSize = 2048; const int numProducers = 32; const int entriesPerProducer = 2000000; const int payloadSize = 2048; std::vector queueSizes = {8192, 16384, 32768, 65536, 131072, 262144, 524288, 1048576, 2097152, 4194304, 8388608, 16777216, 33554432}; runQueueCapacityComparison(baseConfig, queueSizes, numProducers, entriesPerProducer, numSpecificFiles, producerBatchSize, payloadSize, "queue_capacity_benchmark_results.csv"); return 0; }