// 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 "Buffer.h" static void Dummy(benchmark::State& state) { sfz::Buffer output(state.range(0)); std::random_device rd { }; std::mt19937 gen { rd() }; std::uniform_real_distribution dist { 1, 2 }; for (auto _ : state) { auto value = dist(gen); benchmark::DoNotOptimize(value); } } static void LinearScalar(benchmark::State& state) { sfz::Buffer output(state.range(0)); std::random_device rd { }; std::mt19937 gen { rd() }; std::uniform_real_distribution dist { 1, 2 }; for (auto _ : state) { auto value = dist(gen); sfz::setSIMDOpStatus(sfz::SIMDOps::linearRamp, false); sfz::linearRamp(absl::MakeSpan(output), 0.0f, value); } } static void LinearSIMD(benchmark::State& state) { sfz::Buffer output(state.range(0)); std::random_device rd { }; std::mt19937 gen { rd() }; std::uniform_real_distribution dist { 1, 2 }; for (auto _ : state) { auto value = dist(gen); sfz::setSIMDOpStatus(sfz::SIMDOps::linearRamp, true); sfz::linearRamp(absl::MakeSpan(output), 0.0f, value); } } static void LinearScalarUnaligned(benchmark::State& state) { sfz::Buffer output(state.range(0)); std::random_device rd { }; std::mt19937 gen { rd() }; std::uniform_real_distribution dist { 1, 2 }; for (auto _ : state) { auto value = dist(gen); sfz::setSIMDOpStatus(sfz::SIMDOps::linearRamp, false); sfz::linearRamp(absl::MakeSpan(output).subspan(1), 0.0f, value); } } static void LinearSIMDUnaligned(benchmark::State& state) { sfz::Buffer output(state.range(0)); std::random_device rd { }; std::mt19937 gen { rd() }; std::uniform_real_distribution dist { 1, 2 }; for (auto _ : state) { auto value = dist(gen); sfz::setSIMDOpStatus(sfz::SIMDOps::linearRamp, true); sfz::linearRamp(absl::MakeSpan(output).subspan(1), 0.0f, value); } } static void MulScalar(benchmark::State& state) { sfz::Buffer output(state.range(0)); std::random_device rd { }; std::mt19937 gen { rd() }; std::uniform_real_distribution dist { 1, 2 }; for (auto _ : state) { auto value = dist(gen); sfz::setSIMDOpStatus(sfz::SIMDOps::multiplicativeRamp, false); sfz::multiplicativeRamp(absl::MakeSpan(output), 1.0f, value); } } static void MulSIMD(benchmark::State& state) { sfz::Buffer output(state.range(0)); std::random_device rd { }; std::mt19937 gen { rd() }; std::uniform_real_distribution dist { 1, 2 }; for (auto _ : state) { auto value = dist(gen); sfz::setSIMDOpStatus(sfz::SIMDOps::multiplicativeRamp, true); sfz::multiplicativeRamp(absl::MakeSpan(output), 1.0f, value); } } static void MulScalarUnaligned(benchmark::State& state) { sfz::Buffer output(state.range(0)); std::random_device rd { }; std::mt19937 gen { rd() }; std::uniform_real_distribution dist { 1, 2 }; for (auto _ : state) { auto value = dist(gen); sfz::setSIMDOpStatus(sfz::SIMDOps::multiplicativeRamp, false); sfz::multiplicativeRamp(absl::MakeSpan(output).subspan(1), 1.0f, value); } } static void MulSIMDUnaligned(benchmark::State& state) { sfz::Buffer output(state.range(0)); std::random_device rd { }; std::mt19937 gen { rd() }; std::uniform_real_distribution dist { 1, 2 }; for (auto _ : state) { auto value = dist(gen); sfz::setSIMDOpStatus(sfz::SIMDOps::multiplicativeRamp, true); sfz::multiplicativeRamp(absl::MakeSpan(output).subspan(1), 1.0f, value); } } // Register the function as a benchmark BENCHMARK(Dummy)->RangeMultiplier(4)->Range((1 << 2), (1 << 12)); BENCHMARK(LinearScalar)->RangeMultiplier(4)->Range((1 << 2), (1 << 12)); BENCHMARK(LinearSIMD)->RangeMultiplier(4)->Range((1 << 2), (1 << 12)); BENCHMARK(LinearScalarUnaligned)->RangeMultiplier(4)->Range((1 << 2), (1 << 12)); BENCHMARK(LinearSIMDUnaligned)->RangeMultiplier(4)->Range((1 << 2), (1 << 12)); BENCHMARK(MulScalar)->RangeMultiplier(4)->Range((1 << 2), (1 << 12)); BENCHMARK(MulSIMD)->RangeMultiplier(4)->Range((1 << 2), (1 << 12)); BENCHMARK(MulScalarUnaligned)->RangeMultiplier(4)->Range((1 << 2), (1 << 12)); BENCHMARK(MulSIMDUnaligned)->RangeMultiplier(4)->Range((1 << 2), (1 << 12)); BENCHMARK_MAIN();