mirror of https://github.com/google/gemma.cpp.git
200 lines
7.5 KiB
C++
200 lines
7.5 KiB
C++
// Copyright 2023 Google LLC
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// SPDX-License-Identifier: Apache-2.0
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#ifndef HWY_DISABLED_TARGETS
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// Exclude HWY_SCALAR due to 2x bf16 -> f32.
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#define HWY_DISABLED_TARGETS HWY_SCALAR
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#endif
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#include <stddef.h>
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#include <stdio.h>
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#include <algorithm>
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#include <array>
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#include <cmath>
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#include <memory>
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#include "compression/compress.h"
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#include "hwy/aligned_allocator.h"
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#include "hwy/base.h"
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#include "hwy/contrib/thread_pool/thread_pool.h"
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// clang-format off
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#undef HWY_TARGET_INCLUDE
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#define HWY_TARGET_INCLUDE "ops/gemma_matvec_test.cc" // NOLINT
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// clang-format on
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#include "hwy/foreach_target.h" // IWYU pragma: keep
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#include "hwy/highway.h"
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#include "hwy/tests/test_util-inl.h"
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// After highway.h
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#include "ops/matvec-inl.h"
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#include "ops/ops-inl.h" // MulByConst
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HWY_BEFORE_NAMESPACE();
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namespace gcpp {
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namespace HWY_NAMESPACE {
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template <size_t kOuter, size_t kInner>
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hwy::AlignedFreeUniquePtr<float[]> SimpleMatVecAdd(
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const CompressedArray<float, kOuter * kInner>& mat,
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const hwy::AlignedFreeUniquePtr<float[]>& vec,
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const hwy::AlignedFreeUniquePtr<float[]>& add) {
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hwy::AlignedFreeUniquePtr<float[]> uncompressed_mat =
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hwy::AllocateAligned<float>(kOuter * kInner);
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hwy::AlignedFreeUniquePtr<float[]> out = hwy::AllocateAligned<float>(kOuter);
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HWY_ASSERT(uncompressed_mat && out);
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Decompress(mat, 0, uncompressed_mat.get(), kOuter * kInner);
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MulByConst(mat.scale(), uncompressed_mat.get(), kOuter * kInner);
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for (size_t idx_row = 0; idx_row < kOuter; idx_row++) {
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out[idx_row] = add[idx_row];
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for (size_t idx_col = 0; idx_col < kInner; idx_col++) {
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out[idx_row] +=
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uncompressed_mat[kInner * idx_row + idx_col] * vec[idx_col];
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}
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}
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return out;
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}
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template <typename MatT, size_t kOuter, size_t kInner>
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CompressedArray<MatT, kOuter * kInner> GenerateMat(size_t offset,
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hwy::ThreadPool& pool) {
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gcpp::CompressWorkingSet ws;
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CompressedArray<MatT, kOuter * kInner> mat;
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std::array<float, kOuter * kInner> content;
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const float scale = 1.0f / kInner;
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pool.Run(0, kOuter, [&](const size_t i, size_t /*thread*/) {
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for (size_t j = 0; j < kInner; j++) {
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content[i * kInner + j] =
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static_cast<float>((i * kInner + j + offset) * scale);
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}
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});
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Compress(content, ws, mat, pool);
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mat.set_scale(1.9f); // Arbitrary value, different from 1.
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return mat;
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}
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template <size_t length>
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hwy::AlignedFreeUniquePtr<float[]> GenerateVec(size_t offset) {
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hwy::AlignedFreeUniquePtr<float[]> vec = hwy::AllocateAligned<float>(length);
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HWY_ASSERT(vec);
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for (size_t idx = 0; idx < length; idx++) {
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vec[idx] = static_cast<float>(idx + offset);
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}
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return vec;
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}
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template <size_t length>
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void AssertClose(const hwy::AlignedFreeUniquePtr<float[]>& a,
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const hwy::AlignedFreeUniquePtr<float[]>& b) {
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for (size_t idx = 0; idx < length; idx++) {
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const float rel_abs_delta = std::abs(a[idx] - b[idx]) /
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std::max(std::abs(a[idx]), std::abs(b[idx]));
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EXPECT_LT(rel_abs_delta, 2e-6)
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<< "a[" << idx << "]=" << a[idx] << ", b[" << idx << "]=" << b[idx];
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}
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}
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void TestMatVecAdd() {
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hwy::ThreadPool pool(hwy::ThreadPool::MaxThreads());
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constexpr size_t kOuter = 128 * 3;
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constexpr size_t kInner = 128 * 5;
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CompressedArray<float, kOuter * kInner> mat =
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GenerateMat<float, kOuter, kInner>(0, pool);
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hwy::AlignedFreeUniquePtr<float[]> vec = GenerateVec<kInner>(0);
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hwy::AlignedFreeUniquePtr<float[]> add = GenerateVec<kOuter>(0);
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hwy::AlignedFreeUniquePtr<float[]> even_odd =
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hwy::AllocateAligned<float>(kInner * pool.NumWorkers());
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hwy::AlignedFreeUniquePtr<float[]> expected_out =
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SimpleMatVecAdd<kOuter, kInner>(mat, vec, add);
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hwy::AlignedFreeUniquePtr<float[]> actual_out =
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hwy::AllocateAligned<float>(kOuter);
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HWY_ASSERT(vec && add && even_odd && expected_out && actual_out);
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MatVecAdd<kOuter, kInner>(mat, 0, vec.get(), add.get(), even_odd.get(),
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actual_out.get(), pool);
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AssertClose<kOuter>(actual_out, expected_out);
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}
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void TestTwoMatVecAdd() {
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hwy::ThreadPool pool(hwy::ThreadPool::MaxThreads());
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constexpr size_t kOuter = 128 * 3;
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constexpr size_t kInner = 128 * 5;
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CompressedArray<float, kOuter * kInner> mat0 =
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GenerateMat<float, kOuter, kInner>(0, pool);
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CompressedArray<float, kOuter * kInner> mat1 =
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GenerateMat<float, kOuter, kInner>(1, pool);
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hwy::AlignedFreeUniquePtr<float[]> vec = GenerateVec<kInner>(0);
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hwy::AlignedFreeUniquePtr<float[]> add0 = GenerateVec<kOuter>(0);
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hwy::AlignedFreeUniquePtr<float[]> add1 = GenerateVec<kOuter>(1);
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hwy::AlignedFreeUniquePtr<float[]> expected_out0 =
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SimpleMatVecAdd<kOuter, kInner>(mat0, vec, add0);
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hwy::AlignedFreeUniquePtr<float[]> expected_out1 =
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SimpleMatVecAdd<kOuter, kInner>(mat1, vec, add1);
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hwy::AlignedFreeUniquePtr<float[]> actual_out0 =
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hwy::AllocateAligned<float>(kOuter);
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hwy::AlignedFreeUniquePtr<float[]> actual_out1 =
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hwy::AllocateAligned<float>(kOuter);
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HWY_ASSERT(vec && add0 && add1 && expected_out0 && actual_out0 &&
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expected_out1 && actual_out1);
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TwoMatVecAdd<kOuter, kInner>(mat0, mat1, 0, vec.get(), add0.get(), add1.get(),
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actual_out0.get(), actual_out1.get(), pool);
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AssertClose<kOuter>(actual_out0, expected_out0);
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AssertClose<kOuter>(actual_out1, expected_out1);
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}
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void TestTwoOfsMatVecAddLoop() {
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hwy::ThreadPool pool(hwy::ThreadPool::MaxThreads());
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constexpr size_t kOuter = 128 * 3;
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constexpr size_t kInner = 128 * 5;
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CompressedArray<float, kOuter * kInner> mat =
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GenerateMat<float, kOuter, kInner>(0, pool);
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hwy::AlignedFreeUniquePtr<float[]> vec = GenerateVec<kInner>(0);
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hwy::AlignedFreeUniquePtr<float[]> add0 = GenerateVec<kOuter>(0);
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hwy::AlignedFreeUniquePtr<float[]> add1 = GenerateVec<kOuter>(1);
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hwy::AlignedFreeUniquePtr<float[]> expected_out0 =
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SimpleMatVecAdd<kOuter, kInner>(mat, vec, add0);
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hwy::AlignedFreeUniquePtr<float[]> expected_out1 =
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SimpleMatVecAdd<kOuter, kInner>(mat, vec, add1);
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hwy::AlignedFreeUniquePtr<float[]> actual_out0 =
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hwy::AllocateAligned<float>(kOuter);
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hwy::AlignedFreeUniquePtr<float[]> actual_out1 =
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hwy::AllocateAligned<float>(kOuter);
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HWY_ASSERT(vec && add0 && add1 && expected_out0 && actual_out0 &&
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expected_out1 && actual_out1);
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TwoOfsMatVecAddLoop<kOuter, kInner>(mat, 0, 0, vec.get(), add0.get(),
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add1.get(), actual_out0.get(),
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actual_out1.get());
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AssertClose<kOuter>(actual_out0, expected_out0);
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AssertClose<kOuter>(actual_out1, expected_out1);
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}
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// NOLINTNEXTLINE(google-readability-namespace-comments)
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} // namespace HWY_NAMESPACE
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} // namespace gcpp
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HWY_AFTER_NAMESPACE();
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#if HWY_ONCE
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namespace gcpp {
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HWY_BEFORE_TEST(MatVecTest);
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HWY_EXPORT_AND_TEST_P(MatVecTest, TestMatVecAdd);
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HWY_EXPORT_AND_TEST_P(MatVecTest, TestTwoMatVecAdd);
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HWY_EXPORT_AND_TEST_P(MatVecTest, TestTwoOfsMatVecAddLoop);
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HWY_AFTER_TEST();
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} // namespace gcpp
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#endif
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