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343 lines
12 KiB
C++
343 lines
12 KiB
C++
/*
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* Copyright (c) 2018, Alliance for Open Media. All rights reserved
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*
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* This source code is subject to the terms of the BSD 2 Clause License and
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* the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
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* was not distributed with this source code in the LICENSE file, you can
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* obtain it at www.aomedia.org/license/software. If the Alliance for Open
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* Media Patent License 1.0 was not distributed with this source code in the
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* PATENTS file, you can obtain it at www.aomedia.org/license/patent.
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*/
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#include <stdbool.h>
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#include "aom_mem/aom_mem.h"
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#include "av1/encoder/rdopt.h"
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#include "test/util.h"
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#include "third_party/googletest/src/googletest/include/gtest/gtest.h"
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namespace {
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using ::testing::get;
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using ::testing::tuple;
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static int get_pix(uint8_t *buf, int i, bool high_bd) {
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if (high_bd) {
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return *CONVERT_TO_SHORTPTR(buf + i);
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} else {
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return buf[i];
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}
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}
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/** Get the (i, j) value from the input; if i or j is outside of the width
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* or height, the nearest pixel value is returned.
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*/
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static int get_nearest_pix(const int *buf, int w, int h, int i, int j) {
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int offset = AOMMAX(AOMMIN(i, w - 1), 0) + w * AOMMAX(AOMMIN(j, h - 1), 0);
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return buf[offset];
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}
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/** Given the image data, creates a new image with padded values, so an
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* 8-tap filter can be convolved. The padded value is the same as the closest
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* value in the image. Returns a pointer to the start of the image in the
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* padded data. Must be freed with free_pad_8tap. The output will be either
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* 8-bit or 16-bit, depending on the high bit-depth (high_bd) field.
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*/
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static uint8_t *pad_8tap_convolve(const int *data, int w, int h, bool high_bd) {
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// SIMD optimizations require the width to be a multiple of 8 and the height
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// to be multiples of 4.
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assert(w % 8 == 0);
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assert(h % 4 == 0);
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// For an 8-tap filter, we need to pad with 3 lines on top and on the left,
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// and 4 lines on the right and bottom, for 7 extra lines.
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const int pad_w = w + 7;
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const int pad_h = h + 7;
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uint8_t *dst;
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if (high_bd) {
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dst =
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CONVERT_TO_BYTEPTR(aom_memalign(32, sizeof(uint16_t) * pad_w * pad_h));
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} else {
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dst = (uint8_t *)aom_memalign(32, sizeof(uint8_t) * pad_w * pad_h);
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}
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for (int j = 0; j < pad_h; ++j) {
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for (int i = 0; i < pad_w; ++i) {
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const int v = get_nearest_pix(data, w, h, i - 3, j - 3);
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if (high_bd) {
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*CONVERT_TO_SHORTPTR(dst + i + j * pad_w) = v;
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} else {
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dst[i + j * pad_w] = v;
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}
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}
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}
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return dst + (w + 7) * 3 + 3;
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}
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static int stride_8tap(int width) { return width + 7; }
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static void free_pad_8tap(uint8_t *padded, int width, bool high_bd) {
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if (high_bd) {
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aom_free(CONVERT_TO_SHORTPTR(padded - (width + 7) * 3 - 3));
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} else {
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aom_free(padded - (width + 7) * 3 - 3);
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}
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}
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static uint8_t *malloc_bd(int num_entries, bool high_bd) {
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const int bytes_per_entry = high_bd ? sizeof(uint16_t) : sizeof(uint8_t);
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uint8_t *buf = (uint8_t *)aom_memalign(32, bytes_per_entry * num_entries);
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if (high_bd) {
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return CONVERT_TO_BYTEPTR(buf);
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} else {
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return buf;
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}
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}
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static void free_bd(uint8_t *p, bool high_bd) {
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if (high_bd) {
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aom_free(CONVERT_TO_SHORTPTR(p));
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} else {
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aom_free(p);
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}
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}
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class EdgeDetectBrightnessTest :
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// Parameters are (brightness, width, height, high bit depth representation,
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// bit depth).
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public ::testing::TestWithParam<tuple<int, int, int, bool, int> > {
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protected:
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void SetUp() override {
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// Allocate a (width by height) array of luma values in orig_.
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// padded_ will be filled by the pad() call, which adds a border around
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// the orig_. The output_ array has enough space for the computation.
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const int brightness = GET_PARAM(0);
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const int width = GET_PARAM(1);
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const int height = GET_PARAM(2);
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const bool high_bd = GET_PARAM(3);
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// Create the padded image of uniform brightness.
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int *orig = (int *)malloc(width * height * sizeof(int));
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for (int i = 0; i < width * height; ++i) {
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orig[i] = brightness;
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}
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input_ = pad_8tap_convolve(orig, width, height, high_bd);
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free(orig);
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output_ = malloc_bd(width * height, high_bd);
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}
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void TearDown() override {
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const int width = GET_PARAM(1);
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const bool high_bd = GET_PARAM(3);
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free_pad_8tap(input_, width, high_bd);
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free_bd(output_, high_bd);
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}
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// Skip the tests where brightness exceeds the bit-depth; we run into this
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// issue because of gtest's limitation on valid combinations of test
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// parameters. Also skip the tests where bit depth is greater than 8, but
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// high bit depth representation is not set.
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bool should_skip() const {
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const int brightness = GET_PARAM(0);
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const int bd = GET_PARAM(4);
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if (brightness >= (1 << bd)) {
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return true;
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}
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const bool high_bd = GET_PARAM(3);
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if (bd > 8 && !high_bd) {
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return true;
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}
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return false;
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}
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uint8_t *input_;
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uint8_t *output_;
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};
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TEST_P(EdgeDetectBrightnessTest, BlurUniformBrightness) {
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// Some combination of parameters are non-sensical, due to limitations
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// of the testing framework. Ignore these.
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if (should_skip()) {
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return;
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}
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// For varying levels of brightness, the algorithm should
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// produce the same output.
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const int brightness = GET_PARAM(0);
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const int width = GET_PARAM(1);
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const int height = GET_PARAM(2);
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const bool high_bd = GET_PARAM(3);
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const int bd = GET_PARAM(4);
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gaussian_blur(input_, stride_8tap(width), width, height, output_, high_bd,
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bd);
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for (int i = 0; i < width * height; ++i) {
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ASSERT_EQ(brightness, get_pix(output_, i, high_bd));
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}
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}
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// No edges on a uniformly bright image.
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TEST_P(EdgeDetectBrightnessTest, DetectUniformBrightness) {
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if (should_skip()) {
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return;
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}
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const int width = GET_PARAM(1);
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const int height = GET_PARAM(2);
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const bool high_bd = GET_PARAM(3);
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const int bd = GET_PARAM(4);
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ASSERT_EQ(
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0, av1_edge_exists(input_, stride_8tap(width), width, height, high_bd, bd)
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.magnitude);
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}
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INSTANTIATE_TEST_CASE_P(ImageBrightnessTests, EdgeDetectBrightnessTest,
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::testing::Combine(
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// Brightness
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::testing::Values(0, 1, 2, 127, 128, 129, 254, 255,
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256, 511, 512, 1023, 1024, 2048,
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4095),
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// Width
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::testing::Values(8, 16, 32),
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// Height
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::testing::Values(4, 8, 12, 32),
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// High bit depth representation
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::testing::Bool(),
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// Bit depth
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::testing::Values(8, 10, 12)));
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class EdgeDetectImageTest :
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// Parameters are (width, height, high bit depth representation, bit depth).
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public ::testing::TestWithParam<tuple<int, int, bool, int> > {
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protected:
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// Skip the tests where bit depth is greater than 8, but high bit depth
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// representation is not set (limitation of testing framework).
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bool should_skip() const {
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const bool high_bd = GET_PARAM(2);
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const int bd = GET_PARAM(3);
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return bd > 8 && !high_bd;
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}
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};
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// Generate images with black on one side and white on the other.
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TEST_P(EdgeDetectImageTest, BlackWhite) {
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// Some combination of parameters are non-sensical, due to limitations
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// of the testing framework. Ignore these.
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if (should_skip()) {
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return;
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}
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const int width = GET_PARAM(0);
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const int height = GET_PARAM(1);
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const bool high_bd = GET_PARAM(2);
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const int bd = GET_PARAM(3);
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const int white = (1 << bd) - 1;
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int *orig = (int *)malloc(width * height * sizeof(int));
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for (int j = 0; j < height; ++j) {
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for (int i = 0; i < width; ++i) {
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if (i < width / 2) {
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orig[i + j * width] = 0;
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} else {
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orig[i + j * width] = white;
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}
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}
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}
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uint8_t *padded = pad_8tap_convolve(orig, width, height, high_bd);
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free(orig);
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// Value should be between 556 and 560.
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ASSERT_LE(556, av1_edge_exists(padded, stride_8tap(width), width, height,
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high_bd, bd)
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.magnitude);
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ASSERT_GE(560, av1_edge_exists(padded, stride_8tap(width), width, height,
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high_bd, bd)
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.magnitude);
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free_pad_8tap(padded, width, high_bd);
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}
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// Hardcoded blur tests.
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static const int luma[32] = { 241, 147, 7, 90, 184, 103, 28, 186,
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2, 248, 49, 242, 114, 146, 127, 22,
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121, 228, 167, 108, 158, 174, 41, 168,
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214, 99, 184, 109, 114, 247, 117, 119 };
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static const uint8_t expected[] = { 161, 138, 119, 118, 123, 118, 113, 122,
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143, 140, 134, 133, 134, 126, 116, 114,
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147, 149, 145, 142, 143, 138, 126, 118,
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164, 156, 148, 144, 148, 148, 138, 126 };
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static void hardcoded_blur_test_aux(const bool high_bd) {
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const int w = 8;
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const int h = 4;
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for (int bd = 8; bd <= 12; bd += 2) {
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// Skip the tests where bit depth is greater than 8, but high bit depth
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// representation is not set.
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if (bd > 8 && !high_bd) {
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break;
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}
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uint8_t *output = malloc_bd(w * h, high_bd);
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uint8_t *padded = pad_8tap_convolve(luma, w, h, high_bd);
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gaussian_blur(padded, stride_8tap(w), w, h, output, high_bd, bd);
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for (int i = 0; i < w * h; ++i) {
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ASSERT_EQ(expected[i], get_pix(output, i, high_bd));
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}
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free_pad_8tap(padded, w, high_bd);
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free_bd(output, high_bd);
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// If we multiply the inputs by a constant factor, the output should not
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// vary more than 0.5 * factor.
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for (int c = 2; c < (1 << (bd - 8)); ++c) {
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int scaled_luma[32];
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for (int i = 0; i < 32; ++i) {
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scaled_luma[i] = luma[i] * c;
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}
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uint8_t *output = malloc_bd(w * h, high_bd);
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uint8_t *padded = pad_8tap_convolve(scaled_luma, w, h, high_bd);
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gaussian_blur(padded, stride_8tap(w), w, h, output, high_bd, bd);
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for (int i = 0; i < w * h; ++i) {
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ASSERT_GE(c / 2, abs(expected[i] * c - get_pix(output, i, high_bd)));
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}
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free_pad_8tap(padded, w, high_bd);
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free_bd(output, high_bd);
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}
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}
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}
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TEST(EdgeDetectImageTest, HardcodedBlurTest) {
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hardcoded_blur_test_aux(false);
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hardcoded_blur_test_aux(true);
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}
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TEST(EdgeDetectImageTest, SobelTest) {
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// Randomly generated 3x3. Compute Sobel for middle value.
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const uint8_t buf[9] = { 241, 147, 7, 90, 184, 103, 28, 186, 2 };
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const int stride = 3;
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bool high_bd = false;
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sobel_xy result = sobel(buf, stride, 1, 1, high_bd);
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ASSERT_EQ(234, result.x);
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ASSERT_EQ(140, result.y);
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// Verify it works for 8-bit values in a high bit-depth buffer.
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const uint16_t buf8_16[9] = { 241, 147, 7, 90, 184, 103, 28, 186, 2 };
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high_bd = true;
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result = sobel(CONVERT_TO_BYTEPTR(buf8_16), stride, 1, 1, high_bd);
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ASSERT_EQ(234, result.x);
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ASSERT_EQ(140, result.y);
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// Verify it works for high bit-depth values as well.
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const uint16_t buf16[9] = { 241, 147, 7, 90, 184, 2003, 1028, 186, 2 };
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result = sobel(CONVERT_TO_BYTEPTR(buf16), stride, 1, 1, high_bd);
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ASSERT_EQ(-2566, result.x);
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ASSERT_EQ(-860, result.y);
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}
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INSTANTIATE_TEST_CASE_P(EdgeDetectImages, EdgeDetectImageTest,
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::testing::Combine(
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// Width
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::testing::Values(8, 16, 32),
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// Height
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::testing::Values(4, 8, 12, 32),
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// High bit depth representation
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::testing::Bool(),
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// Bit depth
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::testing::Values(8, 10, 12)));
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} // namespace
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