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331 lines
12 KiB
331 lines
12 KiB
// Copyright (c) Facebook, Inc. and its affiliates.
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// All rights reserved.
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//
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// Copyright 2019 Google LLC
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//
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// This source code is licensed under the BSD-style license found in the
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// LICENSE file in the root directory of this source tree.
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#pragma once
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#include <gtest/gtest.h>
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#include <algorithm>
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#include <cassert>
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#include <cstddef>
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#include <cstdlib>
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#include <functional>
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#include <limits>
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#include <random>
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#include <vector>
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#include <xnnpack.h>
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#include <xnnpack/params-init.h>
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#include <xnnpack/params.h>
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class MaxPoolMicrokernelTester {
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public:
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enum class Variant {
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Native,
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Scalar,
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};
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inline MaxPoolMicrokernelTester& output_pixels(size_t output_pixels) {
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assert(output_pixels != 0);
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this->output_pixels_ = output_pixels;
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return *this;
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}
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inline size_t output_pixels() const {
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return this->output_pixels_;
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}
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inline MaxPoolMicrokernelTester& step(size_t step) {
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assert(step != 0);
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this->step_ = step;
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return *this;
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}
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inline size_t step() const {
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return this->step_;
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}
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inline MaxPoolMicrokernelTester& input_offset(size_t input_offset) {
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assert(input_offset != 0);
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this->input_offset_ = input_offset;
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return *this;
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}
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inline size_t input_offset() const {
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return this->input_offset_;
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}
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inline MaxPoolMicrokernelTester& pooling_elements(size_t pooling_elements) {
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assert(pooling_elements != 0);
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this->pooling_elements_ = pooling_elements;
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return *this;
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}
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inline size_t pooling_elements() const {
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return this->pooling_elements_;
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}
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inline size_t packed_pooling_elements() const {
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if (pooling_elements() <= primary_pooling_tile()) {
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return primary_pooling_tile();
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} else {
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return (pooling_elements() - primary_pooling_tile()) % incremental_pooling_tile() == 0 ? pooling_elements() : ((pooling_elements() - primary_pooling_tile()) / incremental_pooling_tile() + 1) * incremental_pooling_tile() + primary_pooling_tile();
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}
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}
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inline MaxPoolMicrokernelTester& pooling_tile(size_t primary_tile, size_t incremental_tile) {
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assert(primary_tile != 0);
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this->primary_pooling_tile_ = primary_tile;
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this->incremental_pooling_tile_ = incremental_tile;
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return *this;
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}
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inline MaxPoolMicrokernelTester& primary_pooling_tile(size_t primary_pooling_tile) {
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assert(primary_pooling_tile != 0);
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this->primary_pooling_tile_ = primary_pooling_tile;
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return *this;
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}
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inline size_t primary_pooling_tile() const {
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return this->primary_pooling_tile_;
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}
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inline MaxPoolMicrokernelTester& incremental_pooling_tile(size_t incremental_pooling_tile) {
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assert(incremental_pooling_tile != 0);
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this->incremental_pooling_tile_ = incremental_pooling_tile;
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return *this;
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}
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inline size_t incremental_pooling_tile() const {
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return this->incremental_pooling_tile_;
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}
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inline MaxPoolMicrokernelTester& channels(size_t channels) {
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assert(channels != 0);
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this->channels_ = channels;
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return *this;
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}
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inline size_t channels() const {
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return this->channels_;
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}
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inline MaxPoolMicrokernelTester& output_stride(size_t output_stride) {
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assert(output_stride != 0);
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this->output_stride_ = output_stride;
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return *this;
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}
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inline size_t output_stride() const {
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if (this->output_stride_ == 0) {
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return channels();
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} else {
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assert(this->output_stride_ >= channels());
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return this->output_stride_;
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}
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}
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inline MaxPoolMicrokernelTester& qmin(uint8_t qmin) {
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this->qmin_ = qmin;
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return *this;
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}
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inline uint8_t qmin() const {
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return this->qmin_;
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}
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inline MaxPoolMicrokernelTester& qmax(uint8_t qmax) {
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this->qmax_ = qmax;
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return *this;
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}
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inline uint8_t qmax() const {
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return this->qmax_;
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}
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inline MaxPoolMicrokernelTester& iterations(size_t iterations) {
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this->iterations_ = iterations;
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return *this;
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}
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inline size_t iterations() const {
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return this->iterations_;
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}
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void Test(xnn_u8_maxpool_ukernel_function maxpool, Variant variant = Variant::Native) const {
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std::random_device random_device;
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auto rng = std::mt19937(random_device());
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auto u8rng = std::bind(std::uniform_int_distribution<uint32_t>(0, std::numeric_limits<uint8_t>::max()), rng);
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std::vector<const uint8_t*> indirect_input((output_pixels() - 1) * step() + packed_pooling_elements());
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std::vector<uint8_t> input(XNN_EXTRA_BYTES / sizeof(uint8_t) +
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indirect_input.size() * channels());
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std::vector<uint8_t> output(XNN_EXTRA_BYTES / sizeof(uint8_t) +
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(output_pixels() - 1) * output_stride() + channels());
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std::vector<uint8_t> output_ref(output_pixels() * channels());
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for (size_t iteration = 0; iteration < iterations(); iteration++) {
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do {
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std::generate(input.begin(), input.end(), std::ref(u8rng));
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} while (input.size() > 1 && *std::max_element(input.cbegin(), input.cend()) == *std::min_element(input.cbegin(), input.cend()));
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std::fill(output.begin(), output.end(), 0xA5);
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for (size_t i = 0; i < (output_pixels() - 1) * step() + pooling_elements(); i++) {
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indirect_input[i] = input.data() + i * channels() - input_offset();
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}
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std::shuffle(indirect_input.begin(),
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indirect_input.begin() + (output_pixels() - 1) * step() + pooling_elements(), rng);
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// Prepare parameters.
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xnn_u8_minmax_params params = { };
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switch (variant) {
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case Variant::Native:
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params = xnn_init_u8_minmax_params(qmin(), qmax());
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break;
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case Variant::Scalar:
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params = xnn_init_scalar_u8_minmax_params(qmin(), qmax());
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break;
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}
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// Compute reference results.
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for (size_t x = 0; x < output_pixels(); x++) {
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for (size_t c = 0; c < channels(); c++) {
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uint8_t max_value = 0;
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for (size_t p = 0; p < pooling_elements(); p++) {
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max_value = std::max(max_value, indirect_input[x * step() + p][c + input_offset()]);
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}
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max_value = std::min(max_value, qmax());
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max_value = std::max(max_value, qmin());
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output_ref[x * channels() + c] = max_value;
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}
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}
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// Call optimized micro-kernel.
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maxpool(output_pixels(), pooling_elements(), channels(),
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indirect_input.data(), input_offset() * sizeof(uint8_t), output.data(),
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(step() - packed_pooling_elements()) * sizeof(void*),
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(output_stride() - channels()) * sizeof(uint8_t),
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¶ms);
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// Verify results.
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for (size_t x = 0; x < output_pixels(); x++) {
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for (size_t c = 0; c < channels(); c++) {
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ASSERT_GE(uint32_t(output[x * output_stride() + c]), uint32_t(qmin()))
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<< "at pixel " << x << " / " << output_pixels() << ", channel " << c << " / " << channels()
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<< ", pooling elements = " << pooling_elements() << ", step = " << step()
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<< ", input offset = " << input_offset();
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ASSERT_LE(uint32_t(output[x * output_stride() + c]), uint32_t(qmax()))
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<< "at pixel " << x << " / " << output_pixels() << ", channel " << c << " / " << channels()
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<< ", pooling elements = " << pooling_elements() << ", step = " << step()
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<< ", input offset = " << input_offset();
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ASSERT_EQ(uint32_t(output_ref[x * channels() + c]), uint32_t(output[x * output_stride() + c]))
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<< "at pixel " << x << " / " << output_pixels() << ", channel " << c << " / " << channels()
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<< ", pooling elements = " << pooling_elements() << ", step = " << step()
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<< ", input offset = " << input_offset();
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}
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}
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}
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}
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void Test(xnn_f32_maxpool_ukernel_function maxpool, Variant variant = Variant::Native) const {
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std::random_device random_device;
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auto rng = std::mt19937(random_device());
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auto f32rng = std::bind(std::uniform_real_distribution<float>(0.0f, 1.0f), rng);
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std::vector<const float*> indirect_input((output_pixels() - 1) * step() + packed_pooling_elements());
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std::vector<float> input(XNN_EXTRA_BYTES / sizeof(float) +
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((output_pixels() - 1) * step() + pooling_elements()) * channels());
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std::vector<float> output(XNN_EXTRA_BYTES / sizeof(float) +
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(output_pixels() - 1) * output_stride() + channels());
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std::vector<float> output_ref(output_pixels() * channels());
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for (size_t iteration = 0; iteration < iterations(); iteration++) {
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std::generate(input.begin(), input.end(), std::ref(f32rng));
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std::fill(output.begin(), output.end(), nanf(""));
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for (size_t i = 0; i < (output_pixels() - 1) * step() + pooling_elements(); i++) {
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indirect_input[i] = input.data() + i * channels() - input_offset();
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}
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std::shuffle(indirect_input.begin(),
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indirect_input.begin() + (output_pixels() - 1) * step() + pooling_elements(), rng);
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// Compute reference results, without clamping.
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for (size_t x = 0; x < output_pixels(); x++) {
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for (size_t c = 0; c < channels(); c++) {
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float max_value = -std::numeric_limits<float>::infinity();
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for (size_t p = 0; p < pooling_elements(); p++) {
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max_value = std::max(max_value, indirect_input[x * step() + p][c + input_offset()]);
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}
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output_ref[x * channels() + c] = max_value;
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}
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}
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// Compute clamping parameters.
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const float accumulated_min = *std::min_element(output_ref.cbegin(), output_ref.cend());
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const float accumulated_max = *std::max_element(output_ref.cbegin(), output_ref.cend());
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const float accumulated_range = accumulated_max - accumulated_min;
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const float output_min = accumulated_min + float(qmin()) / 255.0f * accumulated_range;
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const float output_max = accumulated_max - float(255 - qmax()) / 255.0f * accumulated_range;
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// Prepare parameters.
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xnn_f32_minmax_params params = { };
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switch (variant) {
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case Variant::Native:
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params = xnn_init_f32_minmax_params(output_min, output_max);
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break;
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case Variant::Scalar:
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params = xnn_init_scalar_f32_minmax_params(output_min, output_max);
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break;
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}
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// Clamp reference results.
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for (float& output_value : output_ref) {
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output_value = std::max(std::min(output_value, output_max), output_min);
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}
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// Call optimized micro-kernel.
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maxpool(output_pixels(), pooling_elements(), channels(),
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indirect_input.data(), input_offset() * sizeof(float), output.data(),
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(step() - packed_pooling_elements()) * sizeof(void*),
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(output_stride() - channels()) * sizeof(float),
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¶ms);
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// Verify results.
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for (size_t x = 0; x < output_pixels(); x++) {
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for (size_t c = 0; c < channels(); c++) {
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ASSERT_GE(output[x * output_stride() + c], output_min)
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<< "at pixel " << x << " / " << output_pixels() << ", channel " << c << " / " << channels()
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<< ", pooling elements = " << pooling_elements() << ", step = " << step()
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<< ", input offset = " << input_offset();
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ASSERT_LE(output[x * output_stride() + c], output_max)
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<< "at pixel " << x << " / " << output_pixels() << ", channel " << c << " / " << channels()
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<< ", pooling elements = " << pooling_elements() << ", step = " << step()
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<< ", input offset = " << input_offset();
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ASSERT_EQ(output_ref[x * channels() + c], output[x * output_stride() + c])
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<< "at pixel " << x << " / " << output_pixels() << ", channel " << c << " / " << channels()
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<< ", pooling elements = " << pooling_elements() << ", step = " << step()
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<< ", input offset = " << input_offset();
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}
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}
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}
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}
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private:
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size_t output_pixels_{1};
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size_t pooling_elements_{1};
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size_t channels_{1};
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size_t input_offset_{0};
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size_t step_{1};
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size_t primary_pooling_tile_{1};
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size_t incremental_pooling_tile_{1};
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size_t output_stride_{0};
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uint8_t qmin_{0};
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uint8_t qmax_{255};
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size_t iterations_{3};
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};
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