119 lines
3.4 KiB
C++
119 lines
3.4 KiB
C++
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/*
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* Copyright 2011 The WebRTC Project Authors. All rights reserved.
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*
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* Use of this source code is governed by a BSD-style license
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* that can be found in the LICENSE file in the root of the source
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* tree. An additional intellectual property rights grant can be found
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* in the file PATENTS. All contributing project authors may
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* be found in the AUTHORS file in the root of the source tree.
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*/
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#include "webrtc/base/gunit.h"
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#include "webrtc/base/rollingaccumulator.h"
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namespace rtc {
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namespace {
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const double kLearningRate = 0.5;
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} // namespace
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TEST(RollingAccumulatorTest, ZeroSamples) {
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RollingAccumulator<int> accum(10);
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EXPECT_EQ(0U, accum.count());
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EXPECT_DOUBLE_EQ(0.0, accum.ComputeMean());
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EXPECT_DOUBLE_EQ(0.0, accum.ComputeVariance());
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EXPECT_EQ(0, accum.ComputeMin());
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EXPECT_EQ(0, accum.ComputeMax());
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}
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TEST(RollingAccumulatorTest, SomeSamples) {
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RollingAccumulator<int> accum(10);
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for (int i = 0; i < 4; ++i) {
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accum.AddSample(i);
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}
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EXPECT_EQ(4U, accum.count());
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EXPECT_EQ(6, accum.ComputeSum());
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EXPECT_DOUBLE_EQ(1.5, accum.ComputeMean());
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EXPECT_NEAR(2.26666, accum.ComputeWeightedMean(kLearningRate), 0.01);
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EXPECT_DOUBLE_EQ(1.25, accum.ComputeVariance());
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EXPECT_EQ(0, accum.ComputeMin());
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EXPECT_EQ(3, accum.ComputeMax());
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}
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TEST(RollingAccumulatorTest, RollingSamples) {
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RollingAccumulator<int> accum(10);
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for (int i = 0; i < 12; ++i) {
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accum.AddSample(i);
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}
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EXPECT_EQ(10U, accum.count());
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EXPECT_EQ(65, accum.ComputeSum());
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EXPECT_DOUBLE_EQ(6.5, accum.ComputeMean());
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EXPECT_NEAR(10.0, accum.ComputeWeightedMean(kLearningRate), 0.01);
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EXPECT_NEAR(9.0, accum.ComputeVariance(), 1.0);
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EXPECT_EQ(2, accum.ComputeMin());
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EXPECT_EQ(11, accum.ComputeMax());
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}
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TEST(RollingAccumulatorTest, ResetSamples) {
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RollingAccumulator<int> accum(10);
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for (int i = 0; i < 10; ++i) {
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accum.AddSample(100);
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}
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EXPECT_EQ(10U, accum.count());
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EXPECT_DOUBLE_EQ(100.0, accum.ComputeMean());
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EXPECT_EQ(100, accum.ComputeMin());
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EXPECT_EQ(100, accum.ComputeMax());
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accum.Reset();
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EXPECT_EQ(0U, accum.count());
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for (int i = 0; i < 5; ++i) {
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accum.AddSample(i);
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}
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EXPECT_EQ(5U, accum.count());
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EXPECT_EQ(10, accum.ComputeSum());
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EXPECT_DOUBLE_EQ(2.0, accum.ComputeMean());
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EXPECT_EQ(0, accum.ComputeMin());
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EXPECT_EQ(4, accum.ComputeMax());
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}
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TEST(RollingAccumulatorTest, RollingSamplesDouble) {
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RollingAccumulator<double> accum(10);
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for (int i = 0; i < 23; ++i) {
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accum.AddSample(5 * i);
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}
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EXPECT_EQ(10u, accum.count());
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EXPECT_DOUBLE_EQ(875.0, accum.ComputeSum());
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EXPECT_DOUBLE_EQ(87.5, accum.ComputeMean());
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EXPECT_NEAR(105.049, accum.ComputeWeightedMean(kLearningRate), 0.1);
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EXPECT_NEAR(229.166667, accum.ComputeVariance(), 25);
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EXPECT_DOUBLE_EQ(65.0, accum.ComputeMin());
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EXPECT_DOUBLE_EQ(110.0, accum.ComputeMax());
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}
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TEST(RollingAccumulatorTest, ComputeWeightedMeanCornerCases) {
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RollingAccumulator<int> accum(10);
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EXPECT_DOUBLE_EQ(0.0, accum.ComputeWeightedMean(kLearningRate));
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EXPECT_DOUBLE_EQ(0.0, accum.ComputeWeightedMean(0.0));
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EXPECT_DOUBLE_EQ(0.0, accum.ComputeWeightedMean(1.1));
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for (int i = 0; i < 8; ++i) {
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accum.AddSample(i);
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}
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EXPECT_DOUBLE_EQ(3.5, accum.ComputeMean());
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EXPECT_DOUBLE_EQ(3.5, accum.ComputeWeightedMean(0));
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EXPECT_DOUBLE_EQ(3.5, accum.ComputeWeightedMean(1.1));
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EXPECT_NEAR(6.0, accum.ComputeWeightedMean(kLearningRate), 0.1);
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}
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} // namespace rtc
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