sfizz/tests/SIMDHelpersT.cpp

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// SPDX-License-Identifier: BSD-2-Clause
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// 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
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#include "sfizz/SIMDHelpers.h"
#include "sfizz/Panning.h"
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#include "catch2/catch.hpp"
#include <absl/algorithm/container.h>
#include <absl/types/span.h>
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#include <algorithm>
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#include <array>
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#include <iostream>
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using namespace Catch::literals;
constexpr int smallBufferSize { 3 };
constexpr int bigBufferSize { 4095 };
constexpr int medBufferSize { 127 };
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constexpr float fillValue { 1.3f };
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template <class Type>
inline bool approxEqualMargin(absl::Span<const Type> lhs, absl::Span<const Type> rhs, Type eps = 1e-3)
{
if (lhs.size() != rhs.size())
return false;
for (size_t i = 0; i < rhs.size(); ++i)
if (rhs[i] != Approx(lhs[i]).margin(eps)) {
std::cerr << lhs[i] << " != " << rhs[i] << " at index " << i << '\n';
return false;
}
return true;
}
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template <class Type>
inline bool approxEqual(absl::Span<const Type> lhs, absl::Span<const Type> rhs, Type eps = 1e-3)
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{
if (lhs.size() != rhs.size())
return false;
for (size_t i = 0; i < rhs.size(); ++i)
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if (rhs[i] != Approx(lhs[i]).epsilon(eps)) {
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std::cerr << lhs[i] << " != " << rhs[i] << " at index " << i << '\n';
return false;
}
return true;
}
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TEST_CASE("[Helpers] Interleaved read")
{
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std::array<float, 16> input { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f, 3.0f, 13.0f, 4.0f, 14.0f, 5.0f, 15.0f, 6.0f, 16.0f, 7.0f, 17.0f };
std::array<float, 16> expected { 0.0f, 1.0f, 2.0f, 3.0f, 4.0f, 5.0f, 6.0f, 7.0f, 10.0f, 11.0f, 12.0f, 13.0f, 14.0f, 15.0f, 16.0f, 17.0f };
std::array<float, 8> leftOutput;
std::array<float, 8> rightOutput;
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::readInterleaved, false);
sfz::readInterleaved(input, absl::MakeSpan(leftOutput), absl::MakeSpan(rightOutput));
std::array<float, 16> real;
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auto realIdx = 0;
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for (auto value : leftOutput)
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real[realIdx++] = value;
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for (auto value : rightOutput)
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real[realIdx++] = value;
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REQUIRE(real == expected);
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}
TEST_CASE("[Helpers] Interleaved read unaligned end")
{
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std::array<float, 20> input { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f, 3.0f, 13.0f, 4.0f, 14.0f, 5.0f, 15.0f, 6.0f, 16.0f, 7.0f, 17.0f, 8.0f, 18.0f, 9.0f, 19.0f };
std::array<float, 20> expected { 0.0f, 1.0f, 2.0f, 3.0f, 4.0f, 5.0f, 6.0f, 7.0f, 8.0f, 9.0f, 10.0f, 11.0f, 12.0f, 13.0f, 14.0f, 15.0f, 16.0f, 17.0f, 18.0f, 19.0f };
std::array<float, 10> leftOutput;
std::array<float, 10> rightOutput;
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::readInterleaved, false);
sfz::readInterleaved(input, absl::MakeSpan(leftOutput), absl::MakeSpan(rightOutput));
std::array<float, 20> real;
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auto realIdx = 0;
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for (auto value : leftOutput)
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real[realIdx++] = value;
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for (auto value : rightOutput)
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real[realIdx++] = value;
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REQUIRE(real == expected);
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}
TEST_CASE("[Helpers] Small interleaved read unaligned end")
{
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std::array<float, 6> input { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f };
std::array<float, 6> expected { 0.0f, 1.0f, 2.0f, 10.0f, 11.0f, 12.0f };
std::array<float, 3> leftOutput;
std::array<float, 3> rightOutput;
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::readInterleaved, false);
sfz::readInterleaved(input, absl::MakeSpan(leftOutput), absl::MakeSpan(rightOutput));
std::array<float, 6> real;
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auto realIdx = 0;
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for (auto value : leftOutput)
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real[realIdx++] = value;
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for (auto value : rightOutput)
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real[realIdx++] = value;
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REQUIRE(real == expected);
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}
TEST_CASE("[Helpers] Interleaved read -- SIMD")
{
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std::array<float, 16> input = { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f, 3.0f, 13.0f, 4.0f, 14.0f, 5.0f, 15.0f, 6.0f, 16.0f, 7.0f, 17.0f };
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std::array<float, 16> expected = { 0.0f, 1.0f, 2.0f, 3.0f, 4.0f, 5.0f, 6.0f, 7.0f, 10.0f, 11.0f, 12.0f, 13.0f, 14.0f, 15.0f, 16.0f, 17.0f };
std::array<float, 8> leftOutput;
std::array<float, 8> rightOutput;
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::readInterleaved, true);
sfz::readInterleaved(input, absl::MakeSpan(leftOutput), absl::MakeSpan(rightOutput));
std::array<float, 16> real;
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auto realIdx = 0;
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for (auto value : leftOutput)
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real[realIdx++] = value;
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for (auto value : rightOutput)
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real[realIdx++] = value;
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REQUIRE(real == expected);
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}
TEST_CASE("[Helpers] Interleaved read unaligned end -- SIMD")
{
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std::array<float, 20> input = { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f, 3.0f, 13.0f, 4.0f, 14.0f, 5.0f, 15.0f, 6.0f, 16.0f, 7.0f, 17.0f, 8.0f, 18.0f, 9.0f, 19.0f };
std::array<float, 20> expected = { 0.0f, 1.0f, 2.0f, 3.0f, 4.0f, 5.0f, 6.0f, 7.0f, 8.0f, 9.0f, 10.0f, 11.0f, 12.0f, 13.0f, 14.0f, 15.0f, 16.0f, 17.0f, 18.0f, 19.0f };
std::array<float, 10> leftOutput;
std::array<float, 10> rightOutput;
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::readInterleaved, true);
sfz::readInterleaved(input, absl::MakeSpan(leftOutput), absl::MakeSpan(rightOutput));
std::array<float, 20> real;
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auto realIdx = 0;
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for (auto value : leftOutput)
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real[realIdx++] = value;
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for (auto value : rightOutput)
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real[realIdx++] = value;
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REQUIRE(real == expected);
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}
TEST_CASE("[Helpers] Small interleaved read unaligned end -- SIMD")
{
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std::array<float, 6> input { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f };
std::array<float, 6> expected { 0.0f, 1.0f, 2.0f, 10.0f, 11.0f, 12.0f };
std::array<float, 3> leftOutput;
std::array<float, 3> rightOutput;
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::readInterleaved, true);
sfz::readInterleaved(input, absl::MakeSpan(leftOutput), absl::MakeSpan(rightOutput));
std::array<float, 6> real;
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auto realIdx = 0;
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for (auto value : leftOutput)
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real[realIdx++] = value;
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for (auto value : rightOutput)
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real[realIdx++] = value;
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REQUIRE(real == expected);
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}
TEST_CASE("[Helpers] Interleaved read SIMD vs Scalar")
{
std::array<float, medBufferSize * 2> input;
std::array<float, medBufferSize> leftOutputScalar;
std::array<float, medBufferSize> rightOutputScalar;
std::array<float, medBufferSize> leftOutputSIMD;
std::array<float, medBufferSize> rightOutputSIMD;
std::iota(input.begin(), input.end(), 0.0f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::readInterleaved, false);
sfz::readInterleaved(input, absl::MakeSpan(leftOutputScalar), absl::MakeSpan(rightOutputScalar));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::readInterleaved, true);
sfz::readInterleaved(input, absl::MakeSpan(leftOutputSIMD), absl::MakeSpan(rightOutputSIMD));
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REQUIRE(leftOutputScalar == leftOutputSIMD);
REQUIRE(rightOutputScalar == rightOutputSIMD);
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}
TEST_CASE("[Helpers] Interleaved write")
{
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std::array<float, 8> leftInput {
0.0f,
1.0f,
2.0f,
3.0f,
4.0f,
5.0f,
6.0f,
7.0f,
};
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std::array<float, 8> rightInput { 10.0f, 11.0f, 12.0f, 13.0f, 14.0f, 15.0f, 16.0f, 17.0f };
std::array<float, 16> output;
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std::array<float, 16> expected { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f, 3.0f, 13.0f, 4.0f, 14.0f, 5.0f, 15.0f, 6.0f, 16.0f, 7.0f, 17.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::writeInterleaved, false);
sfz::writeInterleaved(leftInput, rightInput, absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
TEST_CASE("[Helpers] Interleaved write unaligned end")
{
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std::array<float, 10> leftInput { 0.0f, 1.0f, 2.0f, 3.0f, 4.0f, 5.0f, 6.0f, 7.0f, 8.0f, 9.0f };
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std::array<float, 10> rightInput { 10.0f, 11.0f, 12.0f, 13.0f, 14.0f, 15.0f, 16.0f, 17.0f, 18.0f, 19.0f };
std::array<float, 20> output;
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std::array<float, 20> expected { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f, 3.0f, 13.0f, 4.0f, 14.0f, 5.0f, 15.0f, 6.0f, 16.0f, 7.0f, 17.0f, 8.0f, 18.0f, 9.0f, 19.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::writeInterleaved, false);
sfz::writeInterleaved(leftInput, rightInput, absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
TEST_CASE("[Helpers] Small interleaved write unaligned end")
{
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std::array<float, 3> leftInput { 0.0f, 1.0f, 2.0f };
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std::array<float, 3> rightInput { 10.0f, 11.0f, 12.0f };
std::array<float, 6> output;
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std::array<float, 6> expected { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::writeInterleaved, false);
sfz::writeInterleaved(leftInput, rightInput, absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
TEST_CASE("[Helpers] Interleaved write -- SIMD")
{
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std::array<float, 8> leftInput {
0.0f,
1.0f,
2.0f,
3.0f,
4.0f,
5.0f,
6.0f,
7.0f,
};
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std::array<float, 8> rightInput { 10.0f, 11.0f, 12.0f, 13.0f, 14.0f, 15.0f, 16.0f, 17.0f };
std::array<float, 16> output;
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std::array<float, 16> expected { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f, 3.0f, 13.0f, 4.0f, 14.0f, 5.0f, 15.0f, 6.0f, 16.0f, 7.0f, 17.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::writeInterleaved, true);
sfz::writeInterleaved(leftInput, rightInput, absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
TEST_CASE("[Helpers] Interleaved write unaligned end -- SIMD")
{
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std::array<float, 10> leftInput { 0.0f, 1.0f, 2.0f, 3.0f, 4.0f, 5.0f, 6.0f, 7.0f, 8.0f, 9.0f };
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std::array<float, 10> rightInput { 10.0f, 11.0f, 12.0f, 13.0f, 14.0f, 15.0f, 16.0f, 17.0f, 18.0f, 19.0f };
std::array<float, 20> output;
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std::array<float, 20> expected = { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f, 3.0f, 13.0f, 4.0f, 14.0f, 5.0f, 15.0f, 6.0f, 16.0f, 7.0f, 17.0f, 8.0f, 18.0f, 9.0f, 19.0f };
sfz::writeInterleaved(leftInput, rightInput, absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
TEST_CASE("[Helpers] Small interleaved write unaligned end -- SIMD")
{
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std::array<float, 3> leftInput { 0.0f, 1.0f, 2.0f };
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std::array<float, 3> rightInput { 10.0f, 11.0f, 12.0f };
std::array<float, 6> output;
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std::array<float, 6> expected { 0.0f, 10.0f, 1.0f, 11.0f, 2.0f, 12.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::writeInterleaved, true);
sfz::writeInterleaved(leftInput, rightInput, absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
TEST_CASE("[Helpers] Interleaved write SIMD vs Scalar")
{
std::array<float, medBufferSize> leftInput;
std::array<float, medBufferSize> rightInput;
std::array<float, medBufferSize * 2> outputScalar;
std::array<float, medBufferSize * 2> outputSIMD;
std::iota(leftInput.begin(), leftInput.end(), 0.0f);
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std::iota(rightInput.begin(), rightInput.end(), static_cast<float>(medBufferSize));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::writeInterleaved, false);
sfz::writeInterleaved(leftInput, rightInput, absl::MakeSpan(outputScalar));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::writeInterleaved, true);
sfz::writeInterleaved(leftInput, rightInput, absl::MakeSpan(outputSIMD));
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REQUIRE(outputScalar == outputSIMD);
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}
TEST_CASE("[Helpers] Gain, single")
{
std::array<float, 65> input;
std::array<float, 65> expected;
absl::c_fill(input, 1.0f);
absl::c_fill(expected, fillValue);
SECTION("Scalar")
{
std::array<float, 65> output;
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::gain1, false);
sfz::applyGain1<float>(fillValue, input, absl::MakeSpan(output));
REQUIRE(output == expected);
}
SECTION("SIMD")
{
std::array<float, 65> output;
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::gain1, true);
sfz::applyGain1<float>(fillValue, input, absl::MakeSpan(output));
REQUIRE(output == expected);
}
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}
TEST_CASE("[Helpers] Gain, single and inplace")
{
std::array<float, 65> expected;
std::array<float, 65> buffer;
absl::c_fill(expected, fillValue);
SECTION("Scalar")
{
absl::c_fill(buffer, 1.0f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::gain1, false);
sfz::applyGain1<float>(fillValue, buffer, absl::MakeSpan(buffer));
REQUIRE(buffer == expected);
}
SECTION("SIMD")
{
absl::c_fill(buffer, 1.0f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::gain1, false);
sfz::applyGain1<float>(fillValue, buffer, absl::MakeSpan(buffer));
REQUIRE(buffer == expected);
}
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}
TEST_CASE("[Helpers] Gain, spans")
{
std::array<float, 65> input;
std::array<float, 65> gain;
std::array<float, 65> expected;
absl::c_fill(input, 1.0f);
absl::c_iota(gain, 1.0f);
absl::c_iota(expected, 1.0f);
SECTION("Scalar")
{
std::array<float, 65> output;
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::gain, false);
sfz::applyGain<float>(gain, input, absl::MakeSpan(output));
REQUIRE(output == expected);
}
SECTION("SIMD")
{
std::array<float, 65> output;
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::gain, true);
sfz::applyGain<float>(gain, input, absl::MakeSpan(output));
REQUIRE(output == expected);
}
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}
TEST_CASE("[Helpers] Gain, spans and inplace")
{
std::array<float, 65> buffer;
std::array<float, 65> gain;
std::array<float, 65> expected;
absl::c_iota(gain, 1.0f);
absl::c_iota(expected, 1.0f);
SECTION("Scalar")
{
absl::c_fill(buffer, 1.0f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::gain, false);
sfz::applyGain<float>(gain, buffer, absl::MakeSpan(buffer));
REQUIRE(buffer == expected);
}
SECTION("SIMD")
{
absl::c_fill(buffer, 1.0f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::gain, false);
sfz::applyGain<float>(gain, buffer, absl::MakeSpan(buffer));
REQUIRE(buffer == expected);
}
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}
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TEST_CASE("[Helpers] Linear Ramp")
{
const float start { 0.0f };
const float v { fillValue };
std::array<float, 6> output;
std::array<float, 6> expected { start, start + v, start + v + v, start + v + v + v, start + v + v + v + v, start + v + v + v + v + v };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::linearRamp, false);
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sfz::linearRamp<float>(absl::MakeSpan(output), start, v);
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REQUIRE(output == expected);
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}
TEST_CASE("[Helpers] Linear Ramp (SIMD)")
{
const float start { 0.0f };
const float v { fillValue };
std::array<float, 6> output;
std::array<float, 6> expected { start, start + v, start + v + v, start + v + v + v, start + v + v + v + v, start + v + v + v + v + v };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::linearRamp, true);
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sfz::linearRamp<float>(absl::MakeSpan(output), start, v);
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REQUIRE(approxEqual<float>(output, expected));
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}
TEST_CASE("[Helpers] Linear Ramp (SIMD vs scalar)")
{
const float start { 0.0f };
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::linearRamp, false);
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sfz::linearRamp<float>(absl::MakeSpan(outputScalar), start, fillValue);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::linearRamp, true);
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sfz::linearRamp<float>(absl::MakeSpan(outputSIMD), start, fillValue);
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REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
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}
TEST_CASE("[Helpers] Linear Ramp unaligned (SIMD vs scalar)")
{
const float start { 0.0f };
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::linearRamp, false);
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sfz::linearRamp<float>(absl::MakeSpan(outputScalar).subspan(1), start, fillValue);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::linearRamp, true);
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sfz::linearRamp<float>(absl::MakeSpan(outputSIMD).subspan(1), start, fillValue);
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REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
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}
TEST_CASE("[Helpers] Multiplicative Ramp")
{
const float start { 1.0f };
const float v { fillValue };
std::array<float, 6> output;
std::array<float, 6> expected { start, start * v, start * v * v, start * v * v * v, start * v * v * v * v, start * v * v * v * v * v };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplicativeRamp, false);
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sfz::multiplicativeRamp<float>(absl::MakeSpan(output), start, v);
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REQUIRE(approxEqual<float>(output, expected));
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}
TEST_CASE("[Helpers] Multiplicative Ramp (SIMD)")
{
const float start { 1.0f };
const float v { fillValue };
std::array<float, 6> output;
std::array<float, 6> expected { start, start * v, start * v * v, start * v * v * v, start * v * v * v * v, start * v * v * v * v * v };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplicativeRamp, true);
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sfz::multiplicativeRamp<float>(absl::MakeSpan(output), start, v);
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REQUIRE(approxEqual<float>(output, expected));
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}
TEST_CASE("[Helpers] Multiplicative Ramp (SIMD vs scalar)")
{
const float start { 1.0f };
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplicativeRamp, false);
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sfz::multiplicativeRamp<float>(absl::MakeSpan(outputScalar), start, fillValue);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplicativeRamp, true);
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sfz::multiplicativeRamp<float>(absl::MakeSpan(outputSIMD), start, fillValue);
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REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
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}
TEST_CASE("[Helpers] Multiplicative Ramp unaligned (SIMD vs scalar)")
{
const float start { 1.0f };
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplicativeRamp, false);
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sfz::multiplicativeRamp<float>(absl::MakeSpan(outputScalar).subspan(1), start, fillValue);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplicativeRamp, true);
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sfz::multiplicativeRamp<float>(absl::MakeSpan(outputSIMD).subspan(1), start, fillValue);
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REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
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}
TEST_CASE("[Helpers] Add")
{
std::array<float, 5> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f };
std::array<float, 5> output { 1.0f, 1.0f, 1.0f, 1.0f, 1.0f };
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std::array<float, 5> expected { 2.0f, 3.0f, 4.0f, 5.0f, 6.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::add, false);
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sfz::add<float>(input, absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
TEST_CASE("[Helpers] Add (SIMD)")
{
std::array<float, 5> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f };
std::array<float, 5> output { 1.0f, 1.0f, 1.0f, 1.0f, 1.0f };
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std::array<float, 5> expected { 2.0f, 3.0f, 4.0f, 5.0f, 6.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::add, true);
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sfz::add<float>(input, absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
TEST_CASE("[Helpers] Add (SIMD vs scalar)")
{
std::vector<float> input(bigBufferSize);
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
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absl::c_iota(input, 0.0f);
absl::c_fill(outputScalar, 0.0f);
absl::c_fill(outputSIMD, 0.0f);
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sfz::setSIMDOpStatus<float>(sfz::SIMDOps::add, false);
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sfz::add<float>(input, absl::MakeSpan(outputScalar));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::add, true);
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sfz::add<float>(input, absl::MakeSpan(outputSIMD));
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REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
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}
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TEST_CASE("[Helpers] MultiplyAdd (Scalar)")
{
std::array<float, 5> gain { 0.0f, 0.1f, 0.2f, 0.3f, 0.4f };
std::array<float, 5> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f };
std::array<float, 5> output { 5.0f, 4.0f, 3.0f, 2.0f, 1.0f };
std::array<float, 5> expected { 5.0f, 4.2f, 3.6f, 3.2f, 3.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplyAdd, false);
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sfz::multiplyAdd<float>(gain, input, absl::MakeSpan(output));
REQUIRE(output == expected);
}
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TEST_CASE("[Helpers] MultiplyAdd (SIMD)")
{
std::array<float, 5> gain { 0.0f, 0.1f, 0.2f, 0.3f, 0.4f };
std::array<float, 5> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f };
std::array<float, 5> output { 5.0f, 4.0f, 3.0f, 2.0f, 1.0f };
std::array<float, 5> expected { 5.0f, 4.2f, 3.6f, 3.2f, 3.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplyAdd, true);
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sfz::multiplyAdd<float>(gain, input, absl::MakeSpan(output));
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REQUIRE(output == expected);
}
TEST_CASE("[Helpers] MultiplyAdd (SIMD vs scalar)")
{
std::vector<float> gain(bigBufferSize);
std::vector<float> input(bigBufferSize);
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
absl::c_iota(gain, 0.0f);
absl::c_iota(input, 0.0f);
absl::c_iota(outputScalar, 0.0f);
absl::c_iota(outputSIMD, 0.0f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplyAdd, false);
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sfz::multiplyAdd<float>(gain, input, absl::MakeSpan(outputScalar));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplyAdd, true);
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sfz::multiplyAdd<float>(gain, input, absl::MakeSpan(outputSIMD));
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REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
}
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TEST_CASE("[Helpers] MultiplyAdd fixed gain (Scalar)")
{
float gain = 0.3f;
std::array<float, 5> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f };
std::array<float, 5> output { 5.0f, 4.0f, 3.0f, 2.0f, 1.0f };
std::array<float, 5> expected { 5.3f, 4.6f, 3.9f, 3.2f, 2.5f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplyAdd1, false);
sfz::multiplyAdd1<float>(gain, input, absl::MakeSpan(output));
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REQUIRE(output == expected);
}
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TEST_CASE("[Helpers] MultiplyAdd fixed gain (SIMD)")
{
float gain = 0.3f;
std::array<float, 5> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f };
std::array<float, 5> output { 5.0f, 4.0f, 3.0f, 2.0f, 1.0f };
std::array<float, 5> expected { 5.3f, 4.6f, 3.9f, 3.2f, 2.5f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplyAdd1, true);
sfz::multiplyAdd1<float>(gain, input, absl::MakeSpan(output));
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REQUIRE(output == expected);
}
TEST_CASE("[Helpers] MultiplyAdd fixed gain (SIMD vs scalar)")
{
float gain = 0.3f;
std::vector<float> input(bigBufferSize);
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
absl::c_iota(input, 0.0f);
absl::c_iota(outputScalar, 0.0f);
absl::c_iota(outputSIMD, 0.0f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplyAdd1, false);
sfz::multiplyAdd1<float>(gain, input, absl::MakeSpan(outputScalar));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::multiplyAdd1, true);
sfz::multiplyAdd1<float>(gain, input, absl::MakeSpan(outputSIMD));
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REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
}
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TEST_CASE("[Helpers] Subtract")
{
std::array<float, 5> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f };
std::array<float, 5> output { 1.0f, 1.0f, 1.0f, 1.0f, 1.0f };
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std::array<float, 5> expected { 0.0f, -1.0f, -2.0f, -3.0f, -4.0f };
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sfz::subtract<float>(input, absl::MakeSpan(output));
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REQUIRE(output == expected);
}
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TEST_CASE("[Helpers] Subtract 2")
{
std::array<float, 5> output { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f };
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std::array<float, 5> expected { 0.0f, 1.0f, 2.0f, 3.0f, 4.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::subtract1, false);
sfz::subtract1<float>(1.0f, absl::MakeSpan(output));
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REQUIRE(output == expected);
}
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TEST_CASE("[Helpers] Subtract (SIMD)")
{
std::array<float, 5> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f };
std::array<float, 5> output { 1.0f, 1.0f, 1.0f, 1.0f, 1.0f };
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std::array<float, 5> expected { 0.0f, -1.0f, -2.0f, -3.0f, -4.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::subtract, true);
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sfz::subtract<float>(input, absl::MakeSpan(output));
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REQUIRE(output == expected);
}
TEST_CASE("[Helpers] Subtract (SIMD vs scalar)")
{
std::vector<float> input(bigBufferSize);
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
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absl::c_iota(input, 0.0f);
absl::c_fill(outputScalar, 0.0f);
absl::c_fill(outputSIMD, 0.0f);
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sfz::setSIMDOpStatus<float>(sfz::SIMDOps::subtract, false);
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sfz::subtract<float>(input, absl::MakeSpan(outputScalar));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::subtract, true);
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sfz::subtract<float>(input, absl::MakeSpan(outputSIMD));
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REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
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}
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TEST_CASE("[Helpers] Subtract 2 (SIMD vs scalar)")
{
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
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absl::c_iota(outputScalar, 0.0f);
absl::c_iota(outputSIMD, 0.0f);
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sfz::setSIMDOpStatus<float>(sfz::SIMDOps::subtract1, false);
sfz::subtract1<float>(1.2f, absl::MakeSpan(outputScalar));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::subtract1, true);
sfz::subtract1<float>(1.2f, absl::MakeSpan(outputSIMD));
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REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
}
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TEST_CASE("[Helpers] copy")
{
std::array<float, 5> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f };
std::array<float, 5> output { 1.0f, 1.0f, 1.0f, 1.0f, 1.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::copy, false);
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sfz::copy<float>(input, absl::MakeSpan(output));
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REQUIRE(output == input);
}
TEST_CASE("[Helpers] copy (SIMD)")
{
std::array<float, 5> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f };
std::array<float, 5> output { 1.0f, 1.0f, 1.0f, 1.0f, 1.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::copy, true);
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sfz::copy<float>(input, absl::MakeSpan(output));
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REQUIRE(output == input);
}
TEST_CASE("[Helpers] copy (SIMD vs scalar)")
{
std::vector<float> input(bigBufferSize);
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
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absl::c_iota(input, 0.0f);
absl::c_fill(outputScalar, 0.0f);
absl::c_fill(outputSIMD, 0.0f);
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sfz::setSIMDOpStatus<float>(sfz::SIMDOps::copy, false);
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sfz::copy<float>(input, absl::MakeSpan(outputScalar));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::copy, true);
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sfz::copy<float>(input, absl::MakeSpan(outputSIMD));
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REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
}
TEST_CASE("[Helpers] Mean")
{
std::array<float, 10> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f, 6.0f, 7.0f, 8.0f, 9.0f, 10.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::mean, false);
REQUIRE(sfz::mean<float>(input) == 5.5f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::mean, true);
REQUIRE(sfz::mean<float>(input) == 5.5f);
}
TEST_CASE("[Helpers] Mean (SIMD vs scalar)")
{
std::vector<float> input(bigBufferSize);
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absl::c_iota(input, 0.0f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::mean, false);
auto scalarResult = sfz::mean<float>(input);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::mean, true);
auto simdResult = sfz::mean<float>(input);
REQUIRE( scalarResult == Approx(simdResult).margin(1e-3) );
}
TEST_CASE("[Helpers] Mean Squared")
{
std::array<float, 10> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f, 6.0f, 7.0f, 8.0f, 9.0f, 10.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::sumSquares, false);
REQUIRE(sfz::meanSquared<float>(input) == 38.5f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::sumSquares, true);
REQUIRE(sfz::meanSquared<float>(input) == 38.5f);
}
TEST_CASE("[Helpers] Mean Squared (SIMD vs scalar)")
{
std::vector<float> input(medBufferSize);
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absl::c_iota(input, 0.0f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::sumSquares, false);
auto scalarResult = sfz::meanSquared<float>(input);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::sumSquares, true);
auto simdResult = sfz::meanSquared<float>(input);
REQUIRE( scalarResult == Approx(simdResult).margin(1e-3) );
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}
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TEST_CASE("[Helpers] Cumulative sum")
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{
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std::array<float, 6> input { 1.1f, 1.2f, 1.3f, 1.4f, 1.5f, 1.6f }; // 1.1 2.3 3.6 5.0f 6.5 8.1
std::array<float, 6> output;
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std::array<float, 6> expected { 1.1f, 2.3f, 3.6f, 5.0f, 6.5f, 8.1f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::cumsum, false);
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sfz::cumsum<float>(input, absl::MakeSpan(output));
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REQUIRE(approxEqual<float>(output, expected));
}
TEST_CASE("[Helpers] Cumulative sum (SIMD vs Scalar)")
{
std::vector<float> input(bigBufferSize);
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::linearRamp, true);
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sfz::linearRamp<float>(absl::MakeSpan(input), 0.0f, 0.1f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::cumsum, false);
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sfz::cumsum<float>(input, absl::MakeSpan(outputScalar));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::cumsum, true);
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sfz::cumsum<float>(input, absl::MakeSpan(outputSIMD));
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REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
}
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TEST_CASE("[Helpers] Diff")
{
std::array<float, 6> input { 1.1f, 2.3f, 3.6f, 5.0f, 6.5f, 8.1f };
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std::array<float, 6> output;
std::array<float, 6> expected { 1.1f, 1.2f, 1.3f, 1.4f, 1.5f, 1.6f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::diff, false);
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sfz::diff<float>(input, absl::MakeSpan(output));
REQUIRE(approxEqual<float>(output, expected));
}
TEST_CASE("[Helpers] Diff (SIMD vs Scalar)")
{
std::vector<float> input(bigBufferSize);
std::vector<float> outputScalar(bigBufferSize);
std::vector<float> outputSIMD(bigBufferSize);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::linearRamp, true);
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sfz::linearRamp<float>(absl::MakeSpan(input), 0.0f, 0.1f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::diff, false);
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sfz::diff<float>(input, absl::MakeSpan(outputScalar));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::diff, true);
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sfz::diff<float>(input, absl::MakeSpan(outputSIMD));
REQUIRE(approxEqual<float>(outputScalar, outputSIMD));
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}
TEST_CASE("[Helpers] Pan Scalar")
{
std::array<float, 1> leftValue { 1.0f };
std::array<float, 1> rightValue { 1.0f };
auto left = absl::MakeSpan(leftValue);
auto right = absl::MakeSpan(rightValue);
SECTION("Pan = 0")
{
std::array<float, 1> pan { 0.0f };
sfz::pan(pan, left, right);
REQUIRE(left[0] == Approx(0.70711f).margin(0.001f));
REQUIRE(right[0] == Approx(0.70711f).margin(0.001f));
}
SECTION("Pan = 1")
{
std::array<float, 1> pan { 1.0f };
sfz::pan(pan, left, right);
REQUIRE(left[0] == Approx(0.0f).margin(0.001f));
REQUIRE(right[0] == Approx(1.0f).margin(0.001f));
}
SECTION("Pan = -1")
{
std::array<float, 1> pan { -1.0f };
sfz::pan(pan, left, right);
REQUIRE(left[0] == Approx(1.0f).margin(0.001f));
REQUIRE(right[0] == Approx(0.0f).margin(0.001f));
}
}
TEST_CASE("[Helpers] Width Scalar")
{
std::array<float, 1> leftValue { 1.0f };
std::array<float, 1> rightValue { 1.0f };
auto left = absl::MakeSpan(leftValue);
auto right = absl::MakeSpan(rightValue);
SECTION("width = 1")
{
std::array<float, 1> width { 1.0f };
sfz::width(width, left, right);
REQUIRE(left[0] == Approx(1.0f).margin(0.001f));
REQUIRE(right[0] == Approx(1.0f).margin(0.001f));
}
SECTION("width = 0")
{
std::array<float, 1> width { 0.0f };
sfz::width(width, left, right);
REQUIRE(left[0] == Approx(1.414f).margin(0.001f));
REQUIRE(right[0] == Approx(1.414f).margin(0.001f));
}
SECTION("width = -1")
{
std::array<float, 1> width { -1.0f };
sfz::width(width, left, right);
REQUIRE(left[0] == Approx(1.0f).margin(0.001f));
REQUIRE(right[0] == Approx(1.0f).margin(0.001f));
}
}
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TEST_CASE("[Helpers] clampAll")
{
std::array<float, 10> inputScalar { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f, 6.0f, 7.0f, 8.0f, 9.0f, 10.0f };
std::array<float, 10> inputSIMD;
sfz::copy<float>(inputScalar, absl::MakeSpan(inputSIMD));
std::array<float, 10> expected { 2.5f, 2.5f, 3.0f, 4.0f, 5.0f, 6.0f, 7.0f, 8.0f, 8.0f, 8.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::clampAll, false);
sfz::clampAll<float>(absl::MakeSpan(inputScalar), 2.5f, 8.0f);
REQUIRE( approxEqual<float>(inputScalar, expected) );
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::clampAll, true);
sfz::clampAll<float>(absl::MakeSpan(inputSIMD), 2.5f, 8.0f);
REQUIRE( approxEqual<float>(inputSIMD, expected) );
}
TEST_CASE("[Helpers] clampAll (SIMD vs scalar)")
{
std::vector<float> inputScalar(medBufferSize);
std::vector<float> inputSIMD(medBufferSize);
absl::c_iota(inputScalar, 2.0f);
sfz::copy<float>(inputScalar, absl::MakeSpan(inputSIMD));
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::clampAll, false);
sfz::clampAll<float>(absl::MakeSpan(inputScalar), 10.0f, 50.0f);
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::clampAll, true);
sfz::clampAll<float>(absl::MakeSpan(inputSIMD), 10.0f, 50.0f);
REQUIRE( approxEqual<float>(inputScalar, inputSIMD) );
}
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TEST_CASE("[Helpers] allWithin")
{
std::array<float, 10> input { 1.0f, 2.0f, 3.0f, 4.0f, 5.0f, 6.0f, 7.0f, 8.0f, 9.0f, 10.0f };
sfz::setSIMDOpStatus<float>(sfz::SIMDOps::allWithin, false);
REQUIRE( sfz::allWithin<float>(input, 0.5f, 11.0f) );
REQUIRE( !sfz::allWithin<float>(input, 2.5f, 8.0f) );
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REQUIRE( !sfz::allWithin<float>(input, 0.0f, 5.0f) );
REQUIRE( !sfz::allWithin<float>(input, -1.0f, 7.0f) );
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sfz::setSIMDOpStatus<float>(sfz::SIMDOps::allWithin, true);
REQUIRE( sfz::allWithin<float>(input, 0.5f, 11.0f) );
REQUIRE( !sfz::allWithin<float>(input, 2.5f, 8.0f) );
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REQUIRE( !sfz::allWithin<float>(input, 0.0f, 5.0f) );
REQUIRE( !sfz::allWithin<float>(input, -1.0f, 7.0f) );
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}