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| #include "absl/random/distributions.h" |
|
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| #include <cfloat> |
| #include <cmath> |
| #include <cstdint> |
| #include <random> |
| #include <vector> |
|
|
| #include "gtest/gtest.h" |
| #include "absl/random/internal/distribution_test_util.h" |
| #include "absl/random/random.h" |
|
|
| namespace { |
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| constexpr int kSize = 400000; |
|
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| class RandomDistributionsTest : public testing::Test {}; |
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|
| struct Invalid {}; |
|
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| template <typename A, typename B> |
| auto InferredUniformReturnT(int) |
| -> decltype(absl::Uniform(std::declval<absl::InsecureBitGen&>(), |
| std::declval<A>(), std::declval<B>())); |
|
|
| template <typename, typename> |
| Invalid InferredUniformReturnT(...); |
|
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| template <typename TagType, typename A, typename B> |
| auto InferredTaggedUniformReturnT(int) |
| -> decltype(absl::Uniform(std::declval<TagType>(), |
| std::declval<absl::InsecureBitGen&>(), |
| std::declval<A>(), std::declval<B>())); |
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| template <typename, typename, typename> |
| Invalid InferredTaggedUniformReturnT(...); |
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| template <typename A, typename B, typename Expect> |
| void CheckArgsInferType() { |
| static_assert( |
| absl::conjunction< |
| std::is_same<Expect, decltype(InferredUniformReturnT<A, B>(0))>, |
| std::is_same<Expect, |
| decltype(InferredUniformReturnT<B, A>(0))>>::value, |
| ""); |
| static_assert( |
| absl::conjunction< |
| std::is_same<Expect, decltype(InferredTaggedUniformReturnT< |
| absl::IntervalOpenOpenTag, A, B>(0))>, |
| std::is_same<Expect, |
| decltype(InferredTaggedUniformReturnT< |
| absl::IntervalOpenOpenTag, B, A>(0))>>::value, |
| ""); |
| } |
|
|
| template <typename A, typename B, typename ExplicitRet> |
| auto ExplicitUniformReturnT(int) -> decltype( |
| absl::Uniform<ExplicitRet>(*std::declval<absl::InsecureBitGen*>(), |
| std::declval<A>(), std::declval<B>())); |
|
|
| template <typename, typename, typename ExplicitRet> |
| Invalid ExplicitUniformReturnT(...); |
|
|
| template <typename TagType, typename A, typename B, typename ExplicitRet> |
| auto ExplicitTaggedUniformReturnT(int) -> decltype(absl::Uniform<ExplicitRet>( |
| std::declval<TagType>(), *std::declval<absl::InsecureBitGen*>(), |
| std::declval<A>(), std::declval<B>())); |
|
|
| template <typename, typename, typename, typename ExplicitRet> |
| Invalid ExplicitTaggedUniformReturnT(...); |
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| |
| |
| template <typename A, typename B, typename Expect> |
| void CheckArgsReturnExpectedType() { |
| static_assert( |
| absl::conjunction< |
| std::is_same<Expect, |
| decltype(ExplicitUniformReturnT<A, B, Expect>(0))>, |
| std::is_same<Expect, decltype(ExplicitUniformReturnT<B, A, Expect>( |
| 0))>>::value, |
| ""); |
| static_assert( |
| absl::conjunction< |
| std::is_same<Expect, |
| decltype(ExplicitTaggedUniformReturnT< |
| absl::IntervalOpenOpenTag, A, B, Expect>(0))>, |
| std::is_same<Expect, decltype(ExplicitTaggedUniformReturnT< |
| absl::IntervalOpenOpenTag, B, A, |
| Expect>(0))>>::value, |
| ""); |
| } |
|
|
| TEST_F(RandomDistributionsTest, UniformTypeInference) { |
| |
| CheckArgsInferType<uint16_t, uint16_t, uint16_t>(); |
| CheckArgsInferType<uint32_t, uint32_t, uint32_t>(); |
| CheckArgsInferType<uint64_t, uint64_t, uint64_t>(); |
| CheckArgsInferType<int16_t, int16_t, int16_t>(); |
| CheckArgsInferType<int32_t, int32_t, int32_t>(); |
| CheckArgsInferType<int64_t, int64_t, int64_t>(); |
| CheckArgsInferType<float, float, float>(); |
| CheckArgsInferType<double, double, double>(); |
|
|
| |
| CheckArgsReturnExpectedType<int16_t, int16_t, int32_t>(); |
| CheckArgsReturnExpectedType<uint16_t, uint16_t, int32_t>(); |
| CheckArgsReturnExpectedType<int16_t, int16_t, int64_t>(); |
| CheckArgsReturnExpectedType<int16_t, int32_t, int64_t>(); |
| CheckArgsReturnExpectedType<int16_t, int32_t, double>(); |
| CheckArgsReturnExpectedType<float, float, double>(); |
| CheckArgsReturnExpectedType<int, int, int16_t>(); |
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| |
| CheckArgsInferType<uint16_t, uint32_t, uint32_t>(); |
| CheckArgsInferType<uint16_t, uint64_t, uint64_t>(); |
| CheckArgsInferType<uint16_t, int32_t, int32_t>(); |
| CheckArgsInferType<uint16_t, int64_t, int64_t>(); |
| CheckArgsInferType<uint16_t, float, float>(); |
| CheckArgsInferType<uint16_t, double, double>(); |
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| |
| CheckArgsInferType<int16_t, int32_t, int32_t>(); |
| CheckArgsInferType<int16_t, int64_t, int64_t>(); |
| CheckArgsInferType<int16_t, float, float>(); |
| CheckArgsInferType<int16_t, double, double>(); |
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| |
| |
| CheckArgsInferType<uint16_t, int16_t, Invalid>(); |
| CheckArgsInferType<int16_t, uint32_t, Invalid>(); |
| CheckArgsInferType<int16_t, uint64_t, Invalid>(); |
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| |
| CheckArgsInferType<uint32_t, uint64_t, uint64_t>(); |
| CheckArgsInferType<uint32_t, int64_t, int64_t>(); |
| CheckArgsInferType<uint32_t, double, double>(); |
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|
| |
| CheckArgsInferType<int32_t, int64_t, int64_t>(); |
| CheckArgsInferType<int32_t, double, double>(); |
|
|
| |
| CheckArgsInferType<uint32_t, int32_t, Invalid>(); |
| CheckArgsInferType<int32_t, uint64_t, Invalid>(); |
| CheckArgsInferType<int32_t, float, Invalid>(); |
| CheckArgsInferType<uint32_t, float, Invalid>(); |
|
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| |
| CheckArgsInferType<uint64_t, int64_t, Invalid>(); |
| CheckArgsInferType<int64_t, float, Invalid>(); |
| CheckArgsInferType<int64_t, double, Invalid>(); |
|
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| |
| CheckArgsInferType<float, double, double>(); |
| } |
|
|
| TEST_F(RandomDistributionsTest, UniformExamples) { |
| |
| absl::InsecureBitGen gen; |
| EXPECT_NE(1, absl::Uniform(gen, static_cast<uint16_t>(0), 1.0f)); |
| EXPECT_NE(1, absl::Uniform(gen, 0, 1.0)); |
| EXPECT_NE(1, absl::Uniform(absl::IntervalOpenOpen, gen, |
| static_cast<uint16_t>(0), 1.0f)); |
| EXPECT_NE(1, absl::Uniform(absl::IntervalOpenOpen, gen, 0, 1.0)); |
| EXPECT_NE(1, absl::Uniform(absl::IntervalOpenOpen, gen, -1, 1.0)); |
| EXPECT_NE(1, absl::Uniform<double>(absl::IntervalOpenOpen, gen, -1, 1)); |
| EXPECT_NE(1, absl::Uniform<float>(absl::IntervalOpenOpen, gen, 0, 1)); |
| EXPECT_NE(1, absl::Uniform<float>(gen, 0, 1)); |
| } |
|
|
| TEST_F(RandomDistributionsTest, UniformNoBounds) { |
| absl::InsecureBitGen gen; |
|
|
| absl::Uniform<uint8_t>(gen); |
| absl::Uniform<uint16_t>(gen); |
| absl::Uniform<uint32_t>(gen); |
| absl::Uniform<uint64_t>(gen); |
| absl::Uniform<absl::uint128>(gen); |
| } |
|
|
| TEST_F(RandomDistributionsTest, UniformNonsenseRanges) { |
| |
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| #if (defined(__i386__) || defined(_M_IX86)) && FLT_EVAL_METHOD != 0 |
| |
| |
| |
| GTEST_SKIP() |
| << "Skipping the test because we detected x87 floating-point semantics"; |
| #endif |
|
|
| absl::InsecureBitGen gen; |
|
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| |
| EXPECT_EQ(0, absl::Uniform<uint64_t>(gen, 0, 0)); |
| EXPECT_EQ(1, absl::Uniform<uint64_t>(gen, 1, 0)); |
| EXPECT_EQ(0, absl::Uniform<uint64_t>(absl::IntervalOpenOpen, gen, 0, 0)); |
| EXPECT_EQ(1, absl::Uniform<uint64_t>(absl::IntervalOpenOpen, gen, 1, 0)); |
|
|
| constexpr auto m = (std::numeric_limits<uint64_t>::max)(); |
|
|
| EXPECT_EQ(m, absl::Uniform(gen, m, m)); |
| EXPECT_EQ(m, absl::Uniform(gen, m, m - 1)); |
| EXPECT_EQ(m - 1, absl::Uniform(gen, m - 1, m)); |
| EXPECT_EQ(m, absl::Uniform(absl::IntervalOpenOpen, gen, m, m)); |
| EXPECT_EQ(m, absl::Uniform(absl::IntervalOpenOpen, gen, m, m - 1)); |
| EXPECT_EQ(m - 1, absl::Uniform(absl::IntervalOpenOpen, gen, m - 1, m)); |
|
|
| |
| EXPECT_EQ(0, absl::Uniform<int64_t>(gen, 0, 0)); |
| EXPECT_EQ(1, absl::Uniform<int64_t>(gen, 1, 0)); |
| EXPECT_EQ(0, absl::Uniform<int64_t>(absl::IntervalOpenOpen, gen, 0, 0)); |
| EXPECT_EQ(1, absl::Uniform<int64_t>(absl::IntervalOpenOpen, gen, 1, 0)); |
|
|
| constexpr auto l = (std::numeric_limits<int64_t>::min)(); |
| constexpr auto r = (std::numeric_limits<int64_t>::max)(); |
|
|
| EXPECT_EQ(l, absl::Uniform(gen, l, l)); |
| EXPECT_EQ(r, absl::Uniform(gen, r, r)); |
| EXPECT_EQ(r, absl::Uniform(gen, r, r - 1)); |
| EXPECT_EQ(r - 1, absl::Uniform(gen, r - 1, r)); |
| EXPECT_EQ(l, absl::Uniform(absl::IntervalOpenOpen, gen, l, l)); |
| EXPECT_EQ(r, absl::Uniform(absl::IntervalOpenOpen, gen, r, r)); |
| EXPECT_EQ(r, absl::Uniform(absl::IntervalOpenOpen, gen, r, r - 1)); |
| EXPECT_EQ(r - 1, absl::Uniform(absl::IntervalOpenOpen, gen, r - 1, r)); |
|
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| |
| const double e = std::nextafter(1.0, 2.0); |
| const double f = std::nextafter(1.0, 0.0); |
| const double g = std::numeric_limits<double>::denorm_min(); |
|
|
| EXPECT_EQ(1.0, absl::Uniform(gen, 1.0, e)); |
| EXPECT_EQ(1.0, absl::Uniform(gen, 1.0, f)); |
| EXPECT_EQ(0.0, absl::Uniform(gen, 0.0, g)); |
|
|
| EXPECT_EQ(e, absl::Uniform(absl::IntervalOpenOpen, gen, 1.0, e)); |
| EXPECT_EQ(f, absl::Uniform(absl::IntervalOpenOpen, gen, 1.0, f)); |
| EXPECT_EQ(g, absl::Uniform(absl::IntervalOpenOpen, gen, 0.0, g)); |
| } |
|
|
| |
| TEST_F(RandomDistributionsTest, UniformReal) { |
| std::vector<double> values(kSize); |
|
|
| absl::InsecureBitGen gen; |
| for (int i = 0; i < kSize; i++) { |
| values[i] = absl::Uniform(gen, 0, 1.0); |
| } |
|
|
| const auto moments = |
| absl::random_internal::ComputeDistributionMoments(values); |
| EXPECT_NEAR(0.5, moments.mean, 0.02); |
| EXPECT_NEAR(1 / 12.0, moments.variance, 0.02); |
| EXPECT_NEAR(0.0, moments.skewness, 0.02); |
| EXPECT_NEAR(9 / 5.0, moments.kurtosis, 0.02); |
| } |
|
|
| TEST_F(RandomDistributionsTest, UniformInt) { |
| std::vector<double> values(kSize); |
|
|
| absl::InsecureBitGen gen; |
| for (int i = 0; i < kSize; i++) { |
| const int64_t kMax = 1000000000000ll; |
| int64_t j = absl::Uniform(absl::IntervalClosedClosed, gen, 0, kMax); |
| |
| values[i] = static_cast<double>(j) / static_cast<double>(kMax); |
| } |
|
|
| const auto moments = |
| absl::random_internal::ComputeDistributionMoments(values); |
| EXPECT_NEAR(0.5, moments.mean, 0.02); |
| EXPECT_NEAR(1 / 12.0, moments.variance, 0.02); |
| EXPECT_NEAR(0.0, moments.skewness, 0.02); |
| EXPECT_NEAR(9 / 5.0, moments.kurtosis, 0.02); |
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| } |
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| TEST_F(RandomDistributionsTest, Exponential) { |
| std::vector<double> values(kSize); |
|
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| absl::InsecureBitGen gen; |
| for (int i = 0; i < kSize; i++) { |
| values[i] = absl::Exponential<double>(gen); |
| } |
|
|
| const auto moments = |
| absl::random_internal::ComputeDistributionMoments(values); |
| EXPECT_NEAR(1.0, moments.mean, 0.02); |
| EXPECT_NEAR(1.0, moments.variance, 0.025); |
| EXPECT_NEAR(2.0, moments.skewness, 0.1); |
| EXPECT_LT(5.0, moments.kurtosis); |
| } |
|
|
| TEST_F(RandomDistributionsTest, PoissonDefault) { |
| std::vector<double> values(kSize); |
|
|
| absl::InsecureBitGen gen; |
| for (int i = 0; i < kSize; i++) { |
| values[i] = absl::Poisson<int64_t>(gen); |
| } |
|
|
| const auto moments = |
| absl::random_internal::ComputeDistributionMoments(values); |
| EXPECT_NEAR(1.0, moments.mean, 0.02); |
| EXPECT_NEAR(1.0, moments.variance, 0.02); |
| EXPECT_NEAR(1.0, moments.skewness, 0.025); |
| EXPECT_LT(2.0, moments.kurtosis); |
| } |
|
|
| TEST_F(RandomDistributionsTest, PoissonLarge) { |
| constexpr double kMean = 100000000.0; |
| std::vector<double> values(kSize); |
|
|
| absl::InsecureBitGen gen; |
| for (int i = 0; i < kSize; i++) { |
| values[i] = absl::Poisson<int64_t>(gen, kMean); |
| } |
|
|
| const auto moments = |
| absl::random_internal::ComputeDistributionMoments(values); |
| EXPECT_NEAR(kMean, moments.mean, kMean * 0.015); |
| EXPECT_NEAR(kMean, moments.variance, kMean * 0.015); |
| EXPECT_NEAR(std::sqrt(kMean), moments.skewness, kMean * 0.02); |
| EXPECT_LT(2.0, moments.kurtosis); |
| } |
|
|
| TEST_F(RandomDistributionsTest, Bernoulli) { |
| constexpr double kP = 0.5151515151; |
| std::vector<double> values(kSize); |
|
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| absl::InsecureBitGen gen; |
| for (int i = 0; i < kSize; i++) { |
| values[i] = absl::Bernoulli(gen, kP); |
| } |
|
|
| const auto moments = |
| absl::random_internal::ComputeDistributionMoments(values); |
| EXPECT_NEAR(kP, moments.mean, 0.01); |
| } |
|
|
| TEST_F(RandomDistributionsTest, Beta) { |
| constexpr double kAlpha = 2.0; |
| constexpr double kBeta = 3.0; |
| std::vector<double> values(kSize); |
|
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| absl::InsecureBitGen gen; |
| for (int i = 0; i < kSize; i++) { |
| values[i] = absl::Beta(gen, kAlpha, kBeta); |
| } |
|
|
| const auto moments = |
| absl::random_internal::ComputeDistributionMoments(values); |
| EXPECT_NEAR(0.4, moments.mean, 0.01); |
| } |
|
|
| TEST_F(RandomDistributionsTest, Zipf) { |
| std::vector<double> values(kSize); |
|
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| absl::InsecureBitGen gen; |
| for (int i = 0; i < kSize; i++) { |
| values[i] = absl::Zipf<int64_t>(gen, 100); |
| } |
|
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| |
| |
| |
| const auto moments = |
| absl::random_internal::ComputeDistributionMoments(values); |
| EXPECT_NEAR(6.5944, moments.mean, 2000) << moments; |
| } |
|
|
| TEST_F(RandomDistributionsTest, Gaussian) { |
| std::vector<double> values(kSize); |
|
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| absl::InsecureBitGen gen; |
| for (int i = 0; i < kSize; i++) { |
| values[i] = absl::Gaussian<double>(gen); |
| } |
|
|
| const auto moments = |
| absl::random_internal::ComputeDistributionMoments(values); |
| EXPECT_NEAR(0.0, moments.mean, 0.02); |
| EXPECT_NEAR(1.0, moments.variance, 0.04); |
| EXPECT_NEAR(0, moments.skewness, 0.2); |
| EXPECT_NEAR(3.0, moments.kurtosis, 0.5); |
| } |
|
|
| TEST_F(RandomDistributionsTest, LogUniform) { |
| std::vector<double> values(kSize); |
|
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| absl::InsecureBitGen gen; |
| for (int i = 0; i < kSize; i++) { |
| values[i] = absl::LogUniform<int64_t>(gen, 0, (1 << 10) - 1); |
| } |
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| |
| |
| const double mean = (0 + 1 + 1 + 2 + 3 + 4 + 7 + 8 + 15 + 16 + 31 + 32 + 63 + |
| 64 + 127 + 128 + 255 + 256 + 511 + 512 + 1023) / |
| (2.0 * 11.0); |
|
|
| const auto moments = |
| absl::random_internal::ComputeDistributionMoments(values); |
| EXPECT_NEAR(mean, moments.mean, 2) << moments; |
| } |
|
|
| } |
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