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https://chromium.googlesource.com/libyuv/libyuv
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Declare functions as static. Declare functions in a header. Include the header that declares the functions. Delete undeclared and unused functions ScaleFilterRows_NEON() and ScaleRowUp2_16_NEON(). Delete unused function ScaleY() in psnr_main.cc. Change-Id: I182ec30611df83c61ffd01bbab595cd61fb5f1e5 Reviewed-on: https://chromium-review.googlesource.com/c/libyuv/libyuv/+/5778601 Commit-Queue: Wan-Teh Chang <wtc@google.com> Reviewed-by: Frank Barchard <fbarchard@chromium.org>
466 lines
16 KiB
C++
466 lines
16 KiB
C++
/*
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* Copyright 2023 The LibYuv Project Authors. All rights reserved.
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*
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* Use of this source code is governed by a BSD-style license
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* that can be found in the LICENSE file in the root of the source
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* tree. An additional intellectual property rights grant can be found
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* in the file PATENTS. All contributing project authors may
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* be found in the AUTHORS file in the root of the source tree.
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*/
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#include <stdlib.h>
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#include <time.h>
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#include "../unit_test/unit_test.h"
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#include "libyuv/cpu_id.h"
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#include "libyuv/scale.h"
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#ifdef ENABLE_ROW_TESTS
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#include "libyuv/scale_row.h" // For ScaleRowDown2Box_Odd_C
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#endif
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#define STRINGIZE(line) #line
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#define FILELINESTR(file, line) file ":" STRINGIZE(line)
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#if defined(__riscv) && !defined(__clang__)
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#define DISABLE_SLOW_TESTS
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#undef ENABLE_FULL_TESTS
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#undef ENABLE_ROW_TESTS
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#define LEAN_TESTS
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#endif
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#if !defined(DISABLE_SLOW_TESTS) || defined(__x86_64__) || defined(__i386__)
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// SLOW TESTS are those that are unoptimized C code.
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// FULL TESTS are optimized but test many variations of the same code.
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#define ENABLE_FULL_TESTS
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#endif
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namespace libyuv {
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#ifdef ENABLE_ROW_TESTS
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#ifdef HAS_SCALEROWDOWN2_SSSE3
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TEST_F(LibYUVScaleTest, TestScaleRowDown2Box_Odd_SSSE3) {
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SIMD_ALIGNED(uint8_t orig_pixels[128 * 2]);
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SIMD_ALIGNED(uint8_t dst_pixels_opt[64]);
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SIMD_ALIGNED(uint8_t dst_pixels_c[64]);
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memset(orig_pixels, 0, sizeof(orig_pixels));
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memset(dst_pixels_opt, 0, sizeof(dst_pixels_opt));
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memset(dst_pixels_c, 0, sizeof(dst_pixels_c));
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int has_ssse3 = TestCpuFlag(kCpuHasSSSE3);
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if (!has_ssse3) {
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printf("Warning SSSE3 not detected; Skipping test.\n");
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} else {
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// TL.
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orig_pixels[0] = 255u;
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orig_pixels[1] = 0u;
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orig_pixels[128 + 0] = 0u;
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orig_pixels[128 + 1] = 0u;
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// TR.
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orig_pixels[2] = 0u;
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orig_pixels[3] = 100u;
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orig_pixels[128 + 2] = 0u;
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orig_pixels[128 + 3] = 0u;
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// BL.
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orig_pixels[4] = 0u;
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orig_pixels[5] = 0u;
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orig_pixels[128 + 4] = 50u;
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orig_pixels[128 + 5] = 0u;
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// BR.
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orig_pixels[6] = 0u;
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orig_pixels[7] = 0u;
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orig_pixels[128 + 6] = 0u;
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orig_pixels[128 + 7] = 20u;
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// Odd.
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orig_pixels[126] = 4u;
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orig_pixels[127] = 255u;
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orig_pixels[128 + 126] = 16u;
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orig_pixels[128 + 127] = 255u;
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// Test regular half size.
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ScaleRowDown2Box_C(orig_pixels, 128, dst_pixels_c, 64);
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EXPECT_EQ(64u, dst_pixels_c[0]);
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EXPECT_EQ(25u, dst_pixels_c[1]);
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EXPECT_EQ(13u, dst_pixels_c[2]);
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EXPECT_EQ(5u, dst_pixels_c[3]);
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EXPECT_EQ(0u, dst_pixels_c[4]);
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EXPECT_EQ(133u, dst_pixels_c[63]);
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// Test Odd width version - Last pixel is just 1 horizontal pixel.
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ScaleRowDown2Box_Odd_C(orig_pixels, 128, dst_pixels_c, 64);
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EXPECT_EQ(64u, dst_pixels_c[0]);
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EXPECT_EQ(25u, dst_pixels_c[1]);
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EXPECT_EQ(13u, dst_pixels_c[2]);
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EXPECT_EQ(5u, dst_pixels_c[3]);
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EXPECT_EQ(0u, dst_pixels_c[4]);
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EXPECT_EQ(10u, dst_pixels_c[63]);
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// Test one pixel less, should skip the last pixel.
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memset(dst_pixels_c, 0, sizeof(dst_pixels_c));
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ScaleRowDown2Box_Odd_C(orig_pixels, 128, dst_pixels_c, 63);
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EXPECT_EQ(64u, dst_pixels_c[0]);
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EXPECT_EQ(25u, dst_pixels_c[1]);
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EXPECT_EQ(13u, dst_pixels_c[2]);
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EXPECT_EQ(5u, dst_pixels_c[3]);
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EXPECT_EQ(0u, dst_pixels_c[4]);
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EXPECT_EQ(0u, dst_pixels_c[63]);
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// Test regular half size SSSE3.
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ScaleRowDown2Box_SSSE3(orig_pixels, 128, dst_pixels_opt, 64);
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EXPECT_EQ(64u, dst_pixels_opt[0]);
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EXPECT_EQ(25u, dst_pixels_opt[1]);
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EXPECT_EQ(13u, dst_pixels_opt[2]);
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EXPECT_EQ(5u, dst_pixels_opt[3]);
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EXPECT_EQ(0u, dst_pixels_opt[4]);
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EXPECT_EQ(133u, dst_pixels_opt[63]);
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// Compare C and SSSE3 match.
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ScaleRowDown2Box_Odd_C(orig_pixels, 128, dst_pixels_c, 64);
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ScaleRowDown2Box_Odd_SSSE3(orig_pixels, 128, dst_pixels_opt, 64);
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for (int i = 0; i < 64; ++i) {
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EXPECT_EQ(dst_pixels_c[i], dst_pixels_opt[i]);
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}
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}
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}
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#endif // HAS_SCALEROWDOWN2_SSSE3
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TEST_F(LibYUVScaleTest, TestScaleRowDown2Box_16) {
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SIMD_ALIGNED(uint16_t orig_pixels[2560 * 2]);
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SIMD_ALIGNED(uint16_t dst_pixels_c[1280]);
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SIMD_ALIGNED(uint16_t dst_pixels_opt[1280]);
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memset(orig_pixels, 0, sizeof(orig_pixels));
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memset(dst_pixels_c, 1, sizeof(dst_pixels_c));
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memset(dst_pixels_opt, 2, sizeof(dst_pixels_opt));
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for (int i = 0; i < 2560 * 2; ++i) {
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orig_pixels[i] = i;
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}
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ScaleRowDown2Box_16_C(&orig_pixels[0], 2560, &dst_pixels_c[0], 1280);
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for (int i = 0; i < benchmark_pixels_div1280_; ++i) {
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#if !defined(LIBYUV_DISABLE_NEON) && defined(__aarch64__)
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int has_neon = TestCpuFlag(kCpuHasNEON);
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if (has_neon) {
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ScaleRowDown2Box_16_NEON(&orig_pixels[0], 2560, &dst_pixels_opt[0], 1280);
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} else {
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ScaleRowDown2Box_16_C(&orig_pixels[0], 2560, &dst_pixels_opt[0], 1280);
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}
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#else
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ScaleRowDown2Box_16_C(&orig_pixels[0], 2560, &dst_pixels_opt[0], 1280);
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#endif
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}
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for (int i = 0; i < 1280; ++i) {
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EXPECT_EQ(dst_pixels_c[i], dst_pixels_opt[i]);
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}
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EXPECT_EQ(dst_pixels_c[0], (0 + 1 + 2560 + 2561 + 2) / 4);
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EXPECT_EQ(dst_pixels_c[1279], 3839);
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}
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#endif // ENABLE_ROW_TESTS
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// Test scaling plane with 8 bit C vs 12 bit C and return maximum pixel
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// difference.
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// 0 = exact.
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static int TestPlaneFilter_16(int src_width,
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int src_height,
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int dst_width,
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int dst_height,
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FilterMode f,
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int benchmark_iterations,
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int disable_cpu_flags,
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int benchmark_cpu_info) {
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if (!SizeValid(src_width, src_height, dst_width, dst_height)) {
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return 0;
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}
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int i;
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int64_t src_y_plane_size = (Abs(src_width)) * (Abs(src_height));
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int src_stride_y = Abs(src_width);
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int dst_y_plane_size = dst_width * dst_height;
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int dst_stride_y = dst_width;
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align_buffer_page_end(src_y, src_y_plane_size);
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align_buffer_page_end(src_y_16, src_y_plane_size * 2);
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align_buffer_page_end(dst_y_8, dst_y_plane_size);
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align_buffer_page_end(dst_y_16, dst_y_plane_size * 2);
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uint16_t* p_src_y_16 = reinterpret_cast<uint16_t*>(src_y_16);
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uint16_t* p_dst_y_16 = reinterpret_cast<uint16_t*>(dst_y_16);
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MemRandomize(src_y, src_y_plane_size);
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memset(dst_y_8, 0, dst_y_plane_size);
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memset(dst_y_16, 1, dst_y_plane_size * 2);
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for (i = 0; i < src_y_plane_size; ++i) {
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p_src_y_16[i] = src_y[i] & 255;
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}
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MaskCpuFlags(disable_cpu_flags); // Disable all CPU optimization.
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ScalePlane(src_y, src_stride_y, src_width, src_height, dst_y_8, dst_stride_y,
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dst_width, dst_height, f);
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MaskCpuFlags(benchmark_cpu_info); // Enable all CPU optimization.
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for (i = 0; i < benchmark_iterations; ++i) {
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ScalePlane_16(p_src_y_16, src_stride_y, src_width, src_height, p_dst_y_16,
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dst_stride_y, dst_width, dst_height, f);
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}
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// Expect an exact match.
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int max_diff = 0;
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for (i = 0; i < dst_y_plane_size; ++i) {
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int abs_diff = Abs(dst_y_8[i] - p_dst_y_16[i]);
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if (abs_diff > max_diff) {
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max_diff = abs_diff;
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}
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}
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free_aligned_buffer_page_end(dst_y_8);
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free_aligned_buffer_page_end(dst_y_16);
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free_aligned_buffer_page_end(src_y);
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free_aligned_buffer_page_end(src_y_16);
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return max_diff;
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}
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// The following adjustments in dimensions ensure the scale factor will be
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// exactly achieved.
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// 2 is chroma subsample.
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#define DX(x, nom, denom) static_cast<int>(((Abs(x) / nom + 1) / 2) * nom * 2)
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#define SX(x, nom, denom) static_cast<int>(((x / nom + 1) / 2) * denom * 2)
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#define TEST_FACTOR1(name, filter, nom, denom, max_diff) \
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TEST_F(LibYUVScaleTest, DISABLED_##ScalePlaneDownBy##name##_##filter##_16) { \
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int diff = TestPlaneFilter_16( \
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SX(benchmark_width_, nom, denom), SX(benchmark_height_, nom, denom), \
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DX(benchmark_width_, nom, denom), DX(benchmark_height_, nom, denom), \
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kFilter##filter, benchmark_iterations_, disable_cpu_flags_, \
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benchmark_cpu_info_); \
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EXPECT_LE(diff, max_diff); \
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}
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// Test a scale factor with all 4 filters. Expect unfiltered to be exact, but
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// filtering is different fixed point implementations for SSSE3, Neon and C.
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#define TEST_FACTOR(name, nom, denom, boxdiff) \
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TEST_FACTOR1(name, None, nom, denom, 0) \
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TEST_FACTOR1(name, Linear, nom, denom, boxdiff) \
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TEST_FACTOR1(name, Bilinear, nom, denom, boxdiff) \
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TEST_FACTOR1(name, Box, nom, denom, boxdiff)
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TEST_FACTOR(2, 1, 2, 0)
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TEST_FACTOR(4, 1, 4, 0)
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// TEST_FACTOR(8, 1, 8, 0) Disable for benchmark performance. Takes 90 seconds.
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TEST_FACTOR(3by4, 3, 4, 1)
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TEST_FACTOR(3by8, 3, 8, 1)
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TEST_FACTOR(3, 1, 3, 0)
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#undef TEST_FACTOR1
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#undef TEST_FACTOR
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#undef SX
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#undef DX
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TEST_F(LibYUVScaleTest, PlaneTest3x) {
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const int kSrcStride = 480;
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const int kDstStride = 160;
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const int kSize = kSrcStride * 3;
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align_buffer_page_end(orig_pixels, kSize);
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for (int i = 0; i < 480 * 3; ++i) {
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orig_pixels[i] = i;
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}
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align_buffer_page_end(dest_pixels, kDstStride);
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int iterations160 = (benchmark_width_ * benchmark_height_ + (160 - 1)) / 160 *
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benchmark_iterations_;
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for (int i = 0; i < iterations160; ++i) {
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ScalePlane(orig_pixels, kSrcStride, 480, 3, dest_pixels, kDstStride, 160, 1,
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kFilterBilinear);
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}
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EXPECT_EQ(225, dest_pixels[0]);
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ScalePlane(orig_pixels, kSrcStride, 480, 3, dest_pixels, kDstStride, 160, 1,
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kFilterNone);
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EXPECT_EQ(225, dest_pixels[0]);
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free_aligned_buffer_page_end(dest_pixels);
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free_aligned_buffer_page_end(orig_pixels);
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}
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TEST_F(LibYUVScaleTest, PlaneTest4x) {
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const int kSrcStride = 640;
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const int kDstStride = 160;
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const int kSize = kSrcStride * 4;
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align_buffer_page_end(orig_pixels, kSize);
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for (int i = 0; i < 640 * 4; ++i) {
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orig_pixels[i] = i;
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}
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align_buffer_page_end(dest_pixels, kDstStride);
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int iterations160 = (benchmark_width_ * benchmark_height_ + (160 - 1)) / 160 *
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benchmark_iterations_;
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for (int i = 0; i < iterations160; ++i) {
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ScalePlane(orig_pixels, kSrcStride, 640, 4, dest_pixels, kDstStride, 160, 1,
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kFilterBilinear);
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}
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EXPECT_EQ(66, dest_pixels[0]);
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ScalePlane(orig_pixels, kSrcStride, 640, 4, dest_pixels, kDstStride, 160, 1,
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kFilterNone);
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EXPECT_EQ(2, dest_pixels[0]); // expect the 3rd pixel of the 3rd row
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free_aligned_buffer_page_end(dest_pixels);
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free_aligned_buffer_page_end(orig_pixels);
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}
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// Intent is to test 200x50 to 50x200 but width and height can be parameters.
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TEST_F(LibYUVScaleTest, PlaneTestRotate_None) {
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const int kSize = benchmark_width_ * benchmark_height_;
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align_buffer_page_end(orig_pixels, kSize);
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for (int i = 0; i < kSize; ++i) {
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orig_pixels[i] = i;
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}
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align_buffer_page_end(dest_opt_pixels, kSize);
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align_buffer_page_end(dest_c_pixels, kSize);
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MaskCpuFlags(disable_cpu_flags_); // Disable all CPU optimization.
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ScalePlane(orig_pixels, benchmark_width_, benchmark_width_, benchmark_height_,
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dest_c_pixels, benchmark_height_, benchmark_height_,
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benchmark_width_, kFilterNone);
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MaskCpuFlags(benchmark_cpu_info_); // Enable all CPU optimization.
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for (int i = 0; i < benchmark_iterations_; ++i) {
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ScalePlane(orig_pixels, benchmark_width_, benchmark_width_,
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benchmark_height_, dest_opt_pixels, benchmark_height_,
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benchmark_height_, benchmark_width_, kFilterNone);
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}
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for (int i = 0; i < kSize; ++i) {
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EXPECT_EQ(dest_c_pixels[i], dest_opt_pixels[i]);
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}
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free_aligned_buffer_page_end(dest_c_pixels);
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free_aligned_buffer_page_end(dest_opt_pixels);
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free_aligned_buffer_page_end(orig_pixels);
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}
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TEST_F(LibYUVScaleTest, PlaneTestRotate_Bilinear) {
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const int kSize = benchmark_width_ * benchmark_height_;
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align_buffer_page_end(orig_pixels, kSize);
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for (int i = 0; i < kSize; ++i) {
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orig_pixels[i] = i;
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}
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align_buffer_page_end(dest_opt_pixels, kSize);
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align_buffer_page_end(dest_c_pixels, kSize);
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MaskCpuFlags(disable_cpu_flags_); // Disable all CPU optimization.
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ScalePlane(orig_pixels, benchmark_width_, benchmark_width_, benchmark_height_,
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dest_c_pixels, benchmark_height_, benchmark_height_,
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benchmark_width_, kFilterBilinear);
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MaskCpuFlags(benchmark_cpu_info_); // Enable all CPU optimization.
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for (int i = 0; i < benchmark_iterations_; ++i) {
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ScalePlane(orig_pixels, benchmark_width_, benchmark_width_,
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benchmark_height_, dest_opt_pixels, benchmark_height_,
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benchmark_height_, benchmark_width_, kFilterBilinear);
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}
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for (int i = 0; i < kSize; ++i) {
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EXPECT_EQ(dest_c_pixels[i], dest_opt_pixels[i]);
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}
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free_aligned_buffer_page_end(dest_c_pixels);
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free_aligned_buffer_page_end(dest_opt_pixels);
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free_aligned_buffer_page_end(orig_pixels);
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}
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// Intent is to test 200x50 to 50x200 but width and height can be parameters.
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TEST_F(LibYUVScaleTest, PlaneTestRotate_Box) {
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const int kSize = benchmark_width_ * benchmark_height_;
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align_buffer_page_end(orig_pixels, kSize);
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for (int i = 0; i < kSize; ++i) {
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orig_pixels[i] = i;
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}
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align_buffer_page_end(dest_opt_pixels, kSize);
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align_buffer_page_end(dest_c_pixels, kSize);
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MaskCpuFlags(disable_cpu_flags_); // Disable all CPU optimization.
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ScalePlane(orig_pixels, benchmark_width_, benchmark_width_, benchmark_height_,
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dest_c_pixels, benchmark_height_, benchmark_height_,
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benchmark_width_, kFilterBox);
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MaskCpuFlags(benchmark_cpu_info_); // Enable all CPU optimization.
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for (int i = 0; i < benchmark_iterations_; ++i) {
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ScalePlane(orig_pixels, benchmark_width_, benchmark_width_,
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benchmark_height_, dest_opt_pixels, benchmark_height_,
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benchmark_height_, benchmark_width_, kFilterBox);
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}
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for (int i = 0; i < kSize; ++i) {
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EXPECT_EQ(dest_c_pixels[i], dest_opt_pixels[i]);
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}
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free_aligned_buffer_page_end(dest_c_pixels);
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free_aligned_buffer_page_end(dest_opt_pixels);
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free_aligned_buffer_page_end(orig_pixels);
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}
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|
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TEST_F(LibYUVScaleTest, PlaneTest1_Box) {
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align_buffer_page_end(orig_pixels, 3);
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align_buffer_page_end(dst_pixels, 3);
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|
|
|
// Pad the 1x1 byte image with invalid values before and after in case libyuv
|
|
// reads outside the memory boundaries.
|
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orig_pixels[0] = 0;
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orig_pixels[1] = 1; // scale this pixel
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orig_pixels[2] = 2;
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dst_pixels[0] = 3;
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dst_pixels[1] = 3;
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dst_pixels[2] = 3;
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|
|
|
libyuv::ScalePlane(orig_pixels + 1, /* src_stride= */ 1, /* src_width= */ 1,
|
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/* src_height= */ 1, dst_pixels, /* dst_stride= */ 1,
|
|
/* dst_width= */ 1, /* dst_height= */ 2,
|
|
libyuv::kFilterBox);
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|
|
|
EXPECT_EQ(dst_pixels[0], 1);
|
|
EXPECT_EQ(dst_pixels[1], 1);
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|
EXPECT_EQ(dst_pixels[2], 3);
|
|
|
|
free_aligned_buffer_page_end(dst_pixels);
|
|
free_aligned_buffer_page_end(orig_pixels);
|
|
}
|
|
|
|
TEST_F(LibYUVScaleTest, PlaneTest1_16_Box) {
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|
align_buffer_page_end(orig_pixels_alloc, 3 * 2);
|
|
align_buffer_page_end(dst_pixels_alloc, 3 * 2);
|
|
uint16_t* orig_pixels = (uint16_t*)orig_pixels_alloc;
|
|
uint16_t* dst_pixels = (uint16_t*)dst_pixels_alloc;
|
|
|
|
// Pad the 1x1 byte image with invalid values before and after in case libyuv
|
|
// reads outside the memory boundaries.
|
|
orig_pixels[0] = 0;
|
|
orig_pixels[1] = 1; // scale this pixel
|
|
orig_pixels[2] = 2;
|
|
dst_pixels[0] = 3;
|
|
dst_pixels[1] = 3;
|
|
dst_pixels[2] = 3;
|
|
|
|
libyuv::ScalePlane_16(
|
|
orig_pixels + 1, /* src_stride= */ 1, /* src_width= */ 1,
|
|
/* src_height= */ 1, dst_pixels, /* dst_stride= */ 1,
|
|
/* dst_width= */ 1, /* dst_height= */ 2, libyuv::kFilterNone);
|
|
|
|
EXPECT_EQ(dst_pixels[0], 1);
|
|
EXPECT_EQ(dst_pixels[1], 1);
|
|
EXPECT_EQ(dst_pixels[2], 3);
|
|
|
|
free_aligned_buffer_page_end(dst_pixels_alloc);
|
|
free_aligned_buffer_page_end(orig_pixels_alloc);
|
|
}
|
|
} // namespace libyuv
|