// SPDX-License-Identifier: BSD-2-Clause // This code is part of the sfizz library and is licensed under a BSD 2-clause // license. You should have receive a LICENSE.md file along with the code. // If not, contact the sfizz maintainers at https://github.com/sfztools/sfizz #include "SIMDHelpers.h" #include #include #include #include #include #include class GainSingle : public benchmark::Fixture { public: void SetUp(const ::benchmark::State& state) { std::random_device rd { }; std::mt19937 gen { rd() }; std::uniform_real_distribution dist { 0, 1 }; input = std::vector(state.range(0)); output = std::vector(state.range(0)); gain = dist(gen); std::generate(input.begin(), input.end(), [&]() { return dist(gen); }); } void TearDown(const ::benchmark::State& /* state */) { } float gain; std::vector input; std::vector output; }; class GainArray : public benchmark::Fixture { public: void SetUp(const ::benchmark::State& state) { std::random_device rd { }; std::mt19937 gen { rd() }; std::uniform_real_distribution dist { 0, 1 }; input = std::vector(state.range(0)); output = std::vector(state.range(0)); gain = std::vector(state.range(0)); std::generate(gain.begin(), gain.end(), [&]() { return dist(gen); }); std::generate(input.begin(), input.end(), [&]() { return dist(gen); }); } void TearDown(const ::benchmark::State& /* state */) { } std::vector gain; std::vector input; std::vector output; }; BENCHMARK_DEFINE_F(GainSingle, Straight)(benchmark::State& state) { for (auto _ : state) { for (int i = 0; i < state.range(0); ++i) output[i] = gain * input[i]; } } BENCHMARK_DEFINE_F(GainSingle, Scalar)(benchmark::State& state) { for (auto _ : state) { sfz::setSIMDOpStatus(sfz::SIMDOps::gain1, false); sfz::applyGain1(gain, input, absl::MakeSpan(output)); } } BENCHMARK_DEFINE_F(GainSingle, SIMD)(benchmark::State& state) { for (auto _ : state) { sfz::setSIMDOpStatus(sfz::SIMDOps::gain1, true); sfz::applyGain1(gain, input, absl::MakeSpan(output)); } } BENCHMARK_DEFINE_F(GainArray, Straight)(benchmark::State& state) { for (auto _ : state) { for (int i = 0; i < state.range(0); ++i) output[i] = gain[i] * input[i]; } } BENCHMARK_DEFINE_F(GainArray, Scalar)(benchmark::State& state) { for (auto _ : state) { sfz::setSIMDOpStatus(sfz::SIMDOps::gain, false); sfz::applyGain(gain, input, absl::MakeSpan(output)); } } BENCHMARK_DEFINE_F(GainArray, SIMD)(benchmark::State& state) { for (auto _ : state) { sfz::setSIMDOpStatus(sfz::SIMDOps::gain, true); sfz::applyGain(gain, input, absl::MakeSpan(output)); } } BENCHMARK_DEFINE_F(GainArray, Scalar_Unaligned)(benchmark::State& state) { for (auto _ : state) { sfz::setSIMDOpStatus(sfz::SIMDOps::gain, false); sfz::applyGain(absl::MakeSpan(gain).subspan(1), absl::MakeSpan(input).subspan(1), absl::MakeSpan(output).subspan(1)); } } BENCHMARK_DEFINE_F(GainArray, SIMD_Unaligned)(benchmark::State& state) { for (auto _ : state) { sfz::setSIMDOpStatus(sfz::SIMDOps::gain, true); sfz::applyGain(absl::MakeSpan(gain).subspan(1), absl::MakeSpan(input).subspan(1), absl::MakeSpan(output).subspan(1)); } } BENCHMARK_REGISTER_F(GainSingle, Straight)->RangeMultiplier(4)->Range(1 << 2, 1 << 12); BENCHMARK_REGISTER_F(GainSingle, Scalar)->RangeMultiplier(4)->Range(1 << 2, 1 << 12); BENCHMARK_REGISTER_F(GainSingle, SIMD)->RangeMultiplier(4)->Range(1 << 2, 1 << 12); BENCHMARK_REGISTER_F(GainArray, Straight)->RangeMultiplier(4)->Range(1 << 2, 1 << 12); BENCHMARK_REGISTER_F(GainArray, Scalar)->RangeMultiplier(4)->Range(1 << 2, 1 << 12); BENCHMARK_REGISTER_F(GainArray, SIMD)->RangeMultiplier(4)->Range(1 << 2, 1 << 12); BENCHMARK_REGISTER_F(GainArray, Scalar_Unaligned)->RangeMultiplier(4)->Range(1 << 2, 1 << 12); BENCHMARK_REGISTER_F(GainArray, SIMD_Unaligned)->RangeMultiplier(4)->Range(1 << 2, 1 << 12); BENCHMARK_MAIN();