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349 lines
13 KiB
349 lines
13 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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#define LOG_TAG "connect_benchmark" |
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/* |
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* See README.md for general notes. |
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* |
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* This set of benchmarks measures the throughput of connect() calls on a single thread for IPv4 and |
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* IPv6 under the following scenarios: |
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* |
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* - FWmark disabled (::ANDROID_NO_USE_FWMARK_CLIENT). |
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* |
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* The control case for other high load benchmarks. Essentially just testing performance of |
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* the kernel connect call. In real world use fwmark should stay on in order for traffic to |
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* be routed properly. |
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* |
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* - FWmark enabled only for metrics (::ANDROID_FWMARK_METRICS_ONLY). |
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* |
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* The default mode up to and including 7.1. Every time connect() is called on an AF_INET or |
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* AF_INET6 socket, netdclient sends a synchronous message to fwmarkserver to get the socket |
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* marked. Only the fields that are useful for marking or for metrics are sent in this mode; |
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* other fields are set to null for the RPC and ignored. |
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* |
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* - FWmark enabled for all events. |
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* |
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* The default mode starting from 7.1.2. As well as the normal connect() reporting, extra |
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* fields are filled in to log the IP and port of the connection. |
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* |
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* A second synchronous message is sent to fwmarkserver after the connection completes, to |
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* record latency. This message is forwarded to the system server over a oneway binder call. |
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* |
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* Realtime timed tests |
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* ==================== |
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* |
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* The tests named *_high_load record the following useful information: |
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* |
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* - real_time: the mean roundtrip time for one connect() call under load |
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* |
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* - iterations: the number of times the test was run within the timelimit --- approximately |
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* MinTime / real_time |
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* |
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* Manually timed tests |
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* ==================== |
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* |
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* All other sets of tests apart from *_high_load run with manual timing. The purpose of these is to |
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* measure 90th-percentile latency for connect() calls compared to mean latency. |
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* |
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* (TODO: ideally this should be against median latency, but google-benchmark only supports one |
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* custom 'label' output for graphing. Stddev isn't appropriate because the latency |
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* distribution is usually spiky, not in a nice neat normal-like distribution.) |
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* |
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* The manually timed tests record the following useful information: |
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* |
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* - real_time: the average time taken to complete a test run. Unlike the real_time used in high |
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* load tests, this is calculated from before-and-after values of the realtime clock |
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* over many iterations so may be less accurate than the under-load times. |
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* |
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* - iterations: the number of times the test was run within the timelimit --- approximately |
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* MinTime / real_time, although as explained, may not be as meaningful because of |
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* overhead from timing. |
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* |
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* - label: a manually-recorded time giving the 90th-percentile value of real_time over all |
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* individual runs. Should be compared to real_time. |
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* |
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*/ |
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#include <arpa/inet.h> |
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#include <cutils/sockets.h> |
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#include <errno.h> |
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#include <netinet/in.h> |
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#include <time.h> |
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#include <map> |
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#include <functional> |
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#include <thread> |
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#include <android-base/stringprintf.h> |
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#include <benchmark/benchmark.h> |
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#include <log/log.h> |
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#include <utils/StrongPointer.h> |
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#include "FwmarkClient.h" |
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#include "SockDiag.h" |
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#include "Stopwatch.h" |
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#include "android/net/metrics/INetdEventListener.h" |
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using android::base::StringPrintf; |
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using android::net::metrics::INetdEventListener; |
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static int bindAndListen(int s) { |
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sockaddr_in6 sin6 = { .sin6_family = AF_INET6 }; |
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if (bind(s, (sockaddr*) &sin6, sizeof(sin6)) == 0) { |
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if (listen(s, 1)) { |
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return -1; |
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} |
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sockaddr_in sin = {}; |
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socklen_t len = sizeof(sin); |
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if (getsockname(s, (sockaddr*) &sin, &len)) { |
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return -1; |
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} |
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return ntohs(sin.sin_port); |
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} else { |
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return -1; |
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} |
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} |
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static void ipv4_loopback(benchmark::State& state, const bool waitBetweenRuns) { |
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const int listensocket = socket(AF_INET6, SOCK_STREAM, 0); |
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const int port = bindAndListen(listensocket); |
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if (port == -1) { |
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state.SkipWithError("Unable to bind server socket"); |
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return; |
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} |
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// ALOGW("Listening on port = %d", port); |
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std::vector<uint64_t> latencies(state.max_iterations); |
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uint64_t iterations = 0; |
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while (state.KeepRunning()) { |
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int sock = socket(AF_INET, SOCK_STREAM, 0); |
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if (sock < 0) { |
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state.SkipWithError(StringPrintf("socket() failed with errno=%d", errno).c_str()); |
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break; |
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} |
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const Stopwatch stopwatch; |
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sockaddr_in server = { .sin_family = AF_INET, .sin_port = htons(port) }; |
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if (connect(sock, (sockaddr*) &server, sizeof(server))) { |
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state.SkipWithError(StringPrintf("connect() failed with errno=%d", errno).c_str()); |
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close(sock); |
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break; |
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} |
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if (waitBetweenRuns) { |
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latencies[iterations] = stopwatch.timeTaken() * 1e6L; |
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state.SetIterationTime(latencies[iterations] / 1e9L); |
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std::this_thread::sleep_for(std::chrono::milliseconds(10)); |
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++iterations; |
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} |
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sockaddr_in6 client; |
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socklen_t clientlen = sizeof(client); |
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int accepted = accept(listensocket, (sockaddr *) &client, &clientlen); |
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if (accepted < 0) { |
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state.SkipWithError(StringPrintf("accept() failed with errno=%d", errno).c_str()); |
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close(sock); |
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break; |
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} |
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close(accepted); |
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close(sock); |
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} |
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close(listensocket); |
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// ALOGI("Finished test on port = %d", port); |
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if (iterations > 0) { |
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latencies.resize(iterations); |
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sort(latencies.begin(), latencies.end()); |
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state.SetLabel(StringPrintf("%lld", (long long) latencies[iterations * 9 / 10])); |
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} |
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} |
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static void ipv6_loopback(benchmark::State& state, const bool waitBetweenRuns) { |
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const int listensocket = socket(AF_INET6, SOCK_STREAM, 0); |
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const int port = bindAndListen(listensocket); |
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if (port == -1) { |
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state.SkipWithError("Unable to bind server socket"); |
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return; |
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} |
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// ALOGW("Listening on port = %d", port); |
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std::vector<uint64_t> latencies(state.max_iterations); |
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uint64_t iterations = 0; |
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while (state.KeepRunning()) { |
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int sock = socket(AF_INET6, SOCK_STREAM, 0); |
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if (sock < 0) { |
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state.SkipWithError(StringPrintf("socket() failed with errno=%d", errno).c_str()); |
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break; |
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} |
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const Stopwatch stopwatch; |
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sockaddr_in6 server = { .sin6_family = AF_INET6, .sin6_port = htons(port) }; |
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if (connect(sock, (sockaddr*) &server, sizeof(server))) { |
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state.SkipWithError(StringPrintf("connect() failed with errno=%d", errno).c_str()); |
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close(sock); |
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break; |
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} |
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if (waitBetweenRuns) { |
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latencies[iterations] = stopwatch.timeTaken() * 1e6L; |
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state.SetIterationTime(latencies[iterations] / 1e9L); |
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std::this_thread::sleep_for(std::chrono::milliseconds(10)); |
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++iterations; |
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} |
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sockaddr_in6 client; |
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socklen_t clientlen = sizeof(client); |
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int accepted = accept(listensocket, (sockaddr *) &client, &clientlen); |
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if (accepted < 0) { |
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state.SkipWithError(StringPrintf("accept() failed with errno=%d", errno).c_str()); |
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close(sock); |
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break; |
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} |
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close(accepted); |
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close(sock); |
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} |
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close(listensocket); |
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// ALOGI("Finished test on port = %d", port); |
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if (iterations > 0) { |
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latencies.resize(iterations); |
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sort(latencies.begin(), latencies.end()); |
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state.SetLabel(StringPrintf("%lld", (long long) latencies[iterations * 9 / 10])); |
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} |
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} |
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static void run_at_reporting_level(decltype(ipv4_loopback) benchmarkFunction, |
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::benchmark::State& state, const int reportingLevel, |
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const bool waitBetweenRuns) { |
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// Our master thread (thread_index == 0) will control setup and teardown for other threads. |
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const bool isMaster = (state.thread_index == 0); |
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// Previous values of env variables used by fwmarkclient (only read/written by master thread) |
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const std::string savedSettings[] = { |
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FwmarkClient::ANDROID_NO_USE_FWMARK_CLIENT, |
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FwmarkClient::ANDROID_FWMARK_METRICS_ONLY |
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}; |
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std::map<std::string, std::string> prevSettings; |
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// SETUP |
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if (isMaster) { |
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for (const auto setting : savedSettings) { |
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const char* prevEnvStr = getenv(setting.c_str()); |
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if (prevEnvStr != nullptr) { |
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prevSettings[setting.c_str()] = prevEnvStr; |
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} |
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} |
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switch (reportingLevel) { |
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case INetdEventListener::REPORTING_LEVEL_NONE: |
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setenv(FwmarkClient::ANDROID_NO_USE_FWMARK_CLIENT, "", 1); |
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break; |
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case INetdEventListener::REPORTING_LEVEL_METRICS: |
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unsetenv(FwmarkClient::ANDROID_NO_USE_FWMARK_CLIENT); |
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setenv(FwmarkClient::ANDROID_FWMARK_METRICS_ONLY, "", 1); |
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break; |
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case INetdEventListener::REPORTING_LEVEL_FULL: |
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unsetenv(FwmarkClient::ANDROID_NO_USE_FWMARK_CLIENT); |
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unsetenv(FwmarkClient::ANDROID_FWMARK_METRICS_ONLY); |
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break; |
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} |
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} |
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// TEST |
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benchmarkFunction(state, waitBetweenRuns); |
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// TEARDOWN |
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if (isMaster) { |
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for (const auto setting : savedSettings) { |
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if (prevSettings.count(setting)) { |
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setenv(setting.c_str(), prevSettings[setting].c_str(), 1); |
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} else { |
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unsetenv(setting.c_str()); |
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} |
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} |
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} |
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} |
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constexpr int MIN_THREADS = 1; |
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constexpr int MAX_THREADS = 1; |
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constexpr double MIN_TIME = 0.5 /* seconds */; |
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static void ipv4_metrics_reporting_no_fwmark(::benchmark::State& state) { |
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run_at_reporting_level(ipv4_loopback, state, INetdEventListener::REPORTING_LEVEL_NONE, true); |
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} |
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BENCHMARK(ipv4_metrics_reporting_no_fwmark)->MinTime(MIN_TIME)->UseManualTime(); |
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// IPv4 metrics under low load |
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static void ipv4_metrics_reporting_no_load(::benchmark::State& state) { |
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run_at_reporting_level(ipv4_loopback, state, INetdEventListener::REPORTING_LEVEL_METRICS, true); |
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} |
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BENCHMARK(ipv4_metrics_reporting_no_load)->MinTime(MIN_TIME)->UseManualTime(); |
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static void ipv4_full_reporting_no_load(::benchmark::State& state) { |
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run_at_reporting_level(ipv4_loopback, state, INetdEventListener::REPORTING_LEVEL_FULL, true); |
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} |
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BENCHMARK(ipv4_full_reporting_no_load)->MinTime(MIN_TIME)->UseManualTime(); |
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// IPv4 benchmarks under high load |
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static void ipv4_metrics_reporting_high_load(::benchmark::State& state) { |
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run_at_reporting_level(ipv4_loopback, state, INetdEventListener::REPORTING_LEVEL_METRICS, |
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false); |
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} |
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BENCHMARK(ipv4_metrics_reporting_high_load) |
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->ThreadRange(MIN_THREADS, MAX_THREADS)->MinTime(MIN_TIME)->UseRealTime(); |
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static void ipv4_full_reporting_high_load(::benchmark::State& state) { |
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run_at_reporting_level(ipv4_loopback, state, INetdEventListener::REPORTING_LEVEL_FULL, false); |
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} |
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BENCHMARK(ipv4_full_reporting_high_load) |
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->ThreadRange(MIN_THREADS, MAX_THREADS)->MinTime(MIN_TIME)->UseRealTime(); |
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// IPv6 raw connect() without using fwmark |
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static void ipv6_metrics_reporting_no_fwmark(::benchmark::State& state) { |
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run_at_reporting_level(ipv6_loopback, state, INetdEventListener::REPORTING_LEVEL_NONE, true); |
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} |
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BENCHMARK(ipv6_metrics_reporting_no_fwmark)->MinTime(MIN_TIME)->UseManualTime(); |
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// IPv6 metrics under low load |
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static void ipv6_metrics_reporting_no_load(::benchmark::State& state) { |
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run_at_reporting_level(ipv6_loopback, state, INetdEventListener::REPORTING_LEVEL_METRICS, true); |
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} |
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BENCHMARK(ipv6_metrics_reporting_no_load)->MinTime(MIN_TIME)->UseManualTime(); |
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static void ipv6_full_reporting_no_load(::benchmark::State& state) { |
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run_at_reporting_level(ipv6_loopback, state, INetdEventListener::REPORTING_LEVEL_FULL, true); |
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} |
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BENCHMARK(ipv6_full_reporting_no_load)->MinTime(MIN_TIME)->UseManualTime(); |
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// IPv6 benchmarks under high load |
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static void ipv6_metrics_reporting_high_load(::benchmark::State& state) { |
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run_at_reporting_level(ipv6_loopback, state, INetdEventListener::REPORTING_LEVEL_METRICS, |
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false); |
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} |
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BENCHMARK(ipv6_metrics_reporting_high_load) |
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->ThreadRange(MIN_THREADS, MAX_THREADS)->MinTime(MIN_TIME)->UseRealTime(); |
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static void ipv6_full_reporting_high_load(::benchmark::State& state) { |
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run_at_reporting_level(ipv6_loopback, state, INetdEventListener::REPORTING_LEVEL_FULL, false); |
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} |
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BENCHMARK(ipv6_full_reporting_high_load) |
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->ThreadRange(MIN_THREADS, MAX_THREADS)->MinTime(MIN_TIME)->UseRealTime();
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