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@@ -1,463 +0,0 @@
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-// Copyright 2018 Google LLC
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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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-// https://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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-
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-#include "src/decoder/endpoint_codec.h"
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-#include "src/decoder/intermediate_astc_block.h"
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-#include "src/decoder/test/image_utils.h"
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-
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-#include <random>
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-#include <string>
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-#include <utility>
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-#include <vector>
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-
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-#include <gtest/gtest.h>
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-#include <gmock/gmock.h>
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-
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-namespace astc_codec {
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-
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-namespace {
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-
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-using ::testing::AllOf;
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-using ::testing::AnyOf;
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-using ::testing::Each;
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-using ::testing::Eq;
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-using ::testing::Ge;
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-using ::testing::Le;
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-using ::testing::Ne;
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-using ::testing::Pointwise;
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-using ::testing::SizeIs;
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-using ::testing::Pair;
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-
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-constexpr std::array<EndpointEncodingMode, 6> kEndpointEncodingModes = {{
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- EndpointEncodingMode::kDirectLuma,
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- EndpointEncodingMode::kDirectLumaAlpha,
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- EndpointEncodingMode::kBaseScaleRGB,
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- EndpointEncodingMode::kBaseScaleRGBA,
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- EndpointEncodingMode::kDirectRGB,
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- EndpointEncodingMode::kDirectRGBA }};
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-
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-const std::array<std::pair<RgbaColor, RgbaColor>, 3> kBlueContractPairs = {{
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- std::make_pair(RgbaColor{{ 22, 18, 30, 59 }},
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- RgbaColor{{ 162, 148, 155, 59 }}),
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- std::make_pair(RgbaColor{{ 22, 30, 27, 36 }},
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- RgbaColor{{ 228, 221, 207, 36 }}),
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- std::make_pair(RgbaColor{{ 54, 60, 55, 255 }},
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- RgbaColor{{ 23, 30, 27, 255 }})
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- }};
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-
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-// Used to directly initialize std::pairs of colors with initializer lists
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-// e.g. MakeColors({{ r, g, b, a }}, {{ r, g, b, a }});
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-std::pair<RgbaColor, RgbaColor> MakeColors(RgbaColor&& a, RgbaColor&& b) {
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- return std::make_pair(a, b);
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-}
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-
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-// Returns |high| and |low| as they would be decoded using the quantization
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-// factor |quant| for the ColorEndpointMode |mode|.
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-std::pair<RgbaColor, RgbaColor> TestColors(
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- RgbaColor low, RgbaColor high, int quant, EndpointEncodingMode mode) {
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- ColorEndpointMode astc_mode;
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- std::vector<int> encoded;
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- const bool needs_swap =
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- EncodeColorsForMode(low, high, quant, mode, &astc_mode, &encoded);
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-
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- RgbaColor decoded_low, decoded_high;
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- DecodeColorsForMode(encoded, quant, astc_mode, &decoded_low, &decoded_high);
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-
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- if (needs_swap) {
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- return std::make_pair(decoded_high, decoded_low);
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- } else {
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- return std::make_pair(decoded_low, decoded_high);
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- }
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-}
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-
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-// Returns true if the argument tuple entries only differ by at most x.
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-MATCHER_P(IsCloseTo, x, "") {
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- const auto& a = ::testing::get<0>(arg);
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- const auto& b = ::testing::get<1>(arg);
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- return (a > b) ? ((a - b) <= x) : ((b - a) <= x);
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-}
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-
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-// Test to make sure that the range of values that we get as they are
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-// quantized remains within what we pass as |quant|.
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-TEST(EndpointCodecTest, QuantRanges) {
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- const RgbaColor low {{ 0, 0, 0, 0 }};
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- const RgbaColor high {{ 255, 255, 255, 255 }};
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-
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- std::vector<int> result;
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- for (const auto& mode : kEndpointEncodingModes) {
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- for (int i = 5; i < 256; ++i) {
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- ColorEndpointMode astc_mode;
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- const bool needs_swap =
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- EncodeColorsForMode(low, high, i, mode, &astc_mode, &result);
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- EXPECT_EQ(result.size(), NumValuesForEncodingMode(mode)) << i;
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- EXPECT_EQ(result.size(), NumColorValuesForEndpointMode(astc_mode)) << i;
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-
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- // ASTC mode shouldn't use base/offset when endpoints are so far apart.
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- EXPECT_THAT(astc_mode, Ne(ColorEndpointMode::kLDRRGBBaseOffset));
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- EXPECT_THAT(astc_mode, Ne(ColorEndpointMode::kLDRRGBABaseOffset));
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-
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- EXPECT_THAT(result, Each(AllOf(Ge(0), Le(i))))
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- << "Mode: " << static_cast<int>(mode);
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- // We don't care if we need to swap the weights in this test
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- EXPECT_TRUE(needs_swap || !needs_swap);
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- }
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- }
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-}
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-
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-// Test to make sure that each mode that directly encodes colors can effectively
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-// encode both black and white
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-TEST(EndpointCodecTest, ExtremeDirectEncodings) {
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- const RgbaColor kWhite {{ 255, 255, 255, 255 }};
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- const RgbaColor kBlack {{ 0, 0, 0, 255 }};
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-
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- std::vector<int> encoded;
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- for (const auto& mode : kEndpointEncodingModes) {
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- for (int i = 5; i < 256; ++i) {
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- const auto expected = std::make_pair(kWhite, kBlack);
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- EXPECT_EQ(TestColors(kWhite, kBlack, i, mode), expected)
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- << "Range: " << i << ", Mode: " << static_cast<int>(mode);
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- }
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- }
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-}
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-
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-// According to the spec, this is used for colors close to gray. The values
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-// chosen here were according to the spec.
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-TEST(EndpointCodecTest, UsesBlueContract) {
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- std::vector<int> vals = { 132, 127, 116, 112, 183, 180, 31, 22 };
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- EXPECT_TRUE(UsesBlueContract(255, ColorEndpointMode::kLDRRGBDirect, vals));
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- EXPECT_TRUE(UsesBlueContract(255, ColorEndpointMode::kLDRRGBADirect, vals));
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-
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- // For the offset modes the only way to trigger the blue contract mode is if
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- // we force the subtraction in the decoding procedure (See section C.2.14 of
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- // the spec), so we need to set the 7th bit to 1 for all of the odd-numbered
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- // values
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- vals[1] &= 0xBF;
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- vals[3] &= 0xBF;
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- vals[5] &= 0xBF;
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- vals[7] &= 0xBF;
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-
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- EXPECT_FALSE(
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- UsesBlueContract(255, ColorEndpointMode::kLDRRGBBaseOffset, vals));
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- EXPECT_FALSE(
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- UsesBlueContract(255, ColorEndpointMode::kLDRRGBABaseOffset, vals));
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-
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- vals[1] |= 0x40;
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- vals[3] |= 0x40;
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- vals[5] |= 0x40;
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- vals[7] |= 0x40;
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-
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- EXPECT_TRUE(
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- UsesBlueContract(255, ColorEndpointMode::kLDRRGBBaseOffset, vals));
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- EXPECT_TRUE(
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- UsesBlueContract(255, ColorEndpointMode::kLDRRGBABaseOffset, vals));
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-
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- // All other LDR endpoint modes should return no blue contract
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- for (int max_val : { 255, 127, 11 }) {
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- for (auto mode : { ColorEndpointMode::kLDRLumaDirect,
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- ColorEndpointMode::kLDRLumaBaseOffset,
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- ColorEndpointMode::kLDRLumaAlphaDirect,
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- ColorEndpointMode::kLDRLumaAlphaBaseOffset,
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- ColorEndpointMode::kLDRRGBBaseScale,
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- ColorEndpointMode::kLDRRGBBaseScaleTwoA }) {
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- EXPECT_FALSE(UsesBlueContract(max_val, mode, vals));
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- }
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- }
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-}
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-
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-// Make sure that encoding and decoding for the direct luminance mode works.
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-TEST(EndpointCodecTest, LumaDirect) {
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- const auto mode = EndpointEncodingMode::kDirectLuma;
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-
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- // With a 255 quantizer, all greys should be exact.
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- for (int i = 0; i < 255; ++i) {
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- for (int j = 0; j < 255; ++j) {
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- EXPECT_EQ(TestColors({{ i, i, i, 255 }}, {{ j, j, j, 255 }}, 255, mode),
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- MakeColors({{ i, i, i, 255 }}, {{ j, j, j, 255 }}));
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- }
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- }
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-
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- // If we have almost grey, then they should encode to grey.
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- EXPECT_EQ(TestColors({{ 247, 248, 246, 255 }}, {{ 2, 3, 1, 255 }}, 255, mode),
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- MakeColors({{ 247, 247, 247, 255 }}, {{ 2, 2, 2, 255 }}));
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-
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- EXPECT_EQ(TestColors({{ 80, 80, 50, 255 }}, {{ 99, 255, 6, 255 }}, 255, mode),
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- MakeColors({{ 70, 70, 70, 255 }}, {{ 120, 120, 120, 255 }}));
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-
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- // If we have almost greys and a really small quantizer, it should be white
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- // and black (literally).
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- EXPECT_EQ(TestColors({{ 247, 248, 246, 255 }}, {{ 2, 3, 1, 255 }}, 15, mode),
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- MakeColors({{ 255, 255, 255, 255 }}, {{ 0, 0, 0, 255 }}));
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-
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- // The average of 64, 127, and 192 is 127.666..., so it should round to
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- // 130 instead of 125.
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- EXPECT_EQ(TestColors({{ 64, 127, 192, 255 }}, {{ 0, 0, 0, 255 }}, 63, mode),
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- MakeColors({{ 130, 130, 130, 255 }}, {{ 0, 0, 0, 255 }}));
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-
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- // If we have almost grey, then they should encode to grey -- similar to
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- // direct encoding since the encoded colors differ by < 63.
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- EXPECT_EQ(TestColors({{ 80, 80, 50, 255 }}, {{ 99, 255, 6, 255 }}, 255, mode),
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- MakeColors({{ 70, 70, 70, 255 }}, {{ 120, 120, 120, 255 }}));
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-
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- // Low precision colors should still encode pretty well with base/offset.
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- EXPECT_EQ(TestColors({{ 35, 36, 38, 255 }}, {{ 42, 43, 40, 255 }}, 47, mode),
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- MakeColors({{ 38, 38, 38, 255 }}, {{ 43, 43, 43, 255 }}));
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-
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- EXPECT_EQ(TestColors({{ 39, 42, 40, 255 }}, {{ 18, 20, 21, 255 }}, 39, mode),
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- MakeColors({{ 39, 39, 39, 255 }}, {{ 19, 19, 19, 255 }}));
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-}
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-
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-// Test encoding and decoding for the base-offset luminance mode.
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-TEST(EndpointCodecTest, LumaAlphaDirect) {
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- const auto mode = EndpointEncodingMode::kDirectLumaAlpha;
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-
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- // With a 255 quantizer, all greys should be exact.
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- for (int i = 0; i < 255; ++i) {
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- for (int j = 0; j < 255; ++j) {
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- EXPECT_EQ(TestColors({{ i, i, i, j }}, {{ j, j, j, i }}, 255, mode),
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- MakeColors({{ i, i, i, j }}, {{ j, j, j, i }}));
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- }
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- }
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-
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- // If we have almost grey, then they should encode to grey.
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- EXPECT_EQ(TestColors({{ 247, 248, 246, 250 }}, {{ 2, 3, 1, 172 }}, 255, mode),
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- MakeColors({{ 247, 247, 247, 250 }}, {{ 2, 2, 2, 172 }}));
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-
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- EXPECT_EQ(TestColors({{ 80, 80, 50, 0 }}, {{ 99, 255, 6, 255 }}, 255, mode),
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- MakeColors({{ 70, 70, 70, 0 }}, {{ 120, 120, 120, 255 }}));
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-
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- // If we have almost greys and a really small quantizer, it should be white
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- // and black (literally).
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- EXPECT_EQ(TestColors({{ 247, 248, 246, 253 }}, {{ 2, 3, 1, 3 }}, 15, mode),
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- MakeColors({{ 255, 255, 255, 255 }}, {{ 0, 0, 0, 0 }}));
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-
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- // The average of 64, 127, and 192 is 127.666..., so it should round to
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- // 130 instead of 125. The alpha in this case is independent.
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- EXPECT_EQ(TestColors({{ 64, 127, 192, 127 }}, {{ 0, 0, 0, 20 }}, 63, mode),
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- MakeColors({{ 130, 130, 130, 125 }}, {{ 0, 0, 0, 20 }}));
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-}
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-
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-// Test encoding for the direct RGB mode.
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-TEST(EndpointCodecTest, RGBDirect) {
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- const auto mode = EndpointEncodingMode::kDirectRGB;
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-
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- // Colors should be encoded exactly with a 255 quantizer.
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- std::mt19937 random(0xdeadbeef);
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- std::uniform_int_distribution<int> byte_distribution(0, 255);
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-
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- for (int i = 0; i < 100; ++i) {
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- RgbaColor low, high;
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- for (auto& x : high) { x = byte_distribution(random); }
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- for (auto& x : low) { x = byte_distribution(random); }
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- high[3] = low[3] = 255; // RGB Direct mode has opaque alpha.
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-
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- EXPECT_EQ(TestColors(low, high, 255, mode), std::make_pair(low, high))
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- << "Random iter: " << i;
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- }
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-
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- // For each of the following tests, order of endpoints shouldn't have any
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- // bearing on the quantization properties, so we should be able to switch
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- // endpoints as we see fit and have them generate the same flipped encoded
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- // pairs.
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-
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- EXPECT_EQ(TestColors({{ 64, 127, 192, 255 }}, {{ 0, 0, 0, 255 }}, 63, mode),
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- MakeColors({{ 65, 125, 190, 255 }}, {{ 0, 0, 0, 255 }}));
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-
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- EXPECT_EQ(TestColors({{ 0, 0, 0, 255 }}, {{ 64, 127, 192, 255 }}, 63, mode),
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- MakeColors({{ 0, 0, 0, 255 }}, {{ 65, 125, 190, 255 }}));
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-
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- EXPECT_EQ(TestColors({{ 1, 2, 94, 255 }}, {{ 168, 255, 13, 255 }}, 7, mode),
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- MakeColors({{ 0, 0, 109, 255 }}, {{ 182, 255, 0, 255 }}));
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-
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- // Colors close to grey will likely need a blue contract.
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- EXPECT_EQ(TestColors(kBlueContractPairs[0].first,
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- kBlueContractPairs[0].second, 31, mode),
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- MakeColors({{ 24, 20, 33, 255 }}, {{ 160, 148, 156, 255 }}));
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-
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- EXPECT_EQ(TestColors(kBlueContractPairs[0].second,
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- kBlueContractPairs[0].first, 31, mode),
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- MakeColors({{ 160, 148, 156, 255 }}, {{ 24, 20, 33, 255 }}));
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-
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- EXPECT_EQ(TestColors(kBlueContractPairs[1].first,
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- kBlueContractPairs[1].second, 7, mode),
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- MakeColors({{ 18, 36, 36, 255 }}, {{ 237, 219, 219, 255 }}));
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-
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- EXPECT_EQ(TestColors(kBlueContractPairs[1].second,
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- kBlueContractPairs[1].first, 7, mode),
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- MakeColors({{ 237, 219, 219, 255 }}, {{ 18, 36, 36, 255 }}));
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-
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- // Colors close to grey (and each other) will likely need a blue contract AND
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- // use the offset mode for encoding
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- EXPECT_EQ(TestColors(kBlueContractPairs[2].first,
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- kBlueContractPairs[2].second, 31, mode),
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- MakeColors({{ 53, 59, 53, 255 }}, {{ 24, 30, 26, 255 }}));
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-
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- EXPECT_EQ(TestColors(kBlueContractPairs[2].second,
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- kBlueContractPairs[2].first, 31, mode),
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- MakeColors({{ 24, 30, 26, 255 }}, {{ 53, 59, 53, 255 }}));
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-
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- // Colors close to each other, but not to grey will likely only use the offset
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- // mode and not the blue-contract modes.
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- EXPECT_EQ(TestColors({{ 22, 148, 30, 59 }}, {{ 162, 18, 155, 59 }}, 31, mode),
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- MakeColors({{ 24, 148, 33, 255 }}, {{ 165, 16, 156, 255 }}));
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-
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- EXPECT_EQ(TestColors({{ 162, 18, 155, 59 }}, {{ 22, 148, 30, 59 }}, 31, mode),
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- MakeColors({{ 165, 16, 156, 255 }}, {{ 24, 148, 33, 255 }}));
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-}
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-
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-// Make sure that certain endpoint pairs result in the blue-contract path as
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-// we'd expect, such that we can make sure that we're hitting all of the encode
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-// paths.
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-TEST(EndpointCodecTest, RGBDirectMakesBlueContract) {
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- constexpr int kEndpointRange = 31;
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- for (const auto& endpoint_pair : kBlueContractPairs) {
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- ColorEndpointMode astc_mode;
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- std::vector<int> vals;
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- bool needs_swap = EncodeColorsForMode(
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- endpoint_pair.first, endpoint_pair.second,
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- kEndpointRange, EndpointEncodingMode::kDirectRGB, &astc_mode, &vals);
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- (void)(needs_swap); // Don't really care.
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-
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- EXPECT_TRUE(UsesBlueContract(kEndpointRange, astc_mode, vals));
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- }
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-}
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-
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-// Make sure that encoding and decoding for the RGB base-scale mode works.
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-TEST(EndpointCodecTest, RGBBaseScale) {
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- const auto mode = EndpointEncodingMode::kBaseScaleRGB;
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- const auto close_to = [](RgbaColor c, int x) {
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- return Pointwise(IsCloseTo(x), c);
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- };
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-
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- // Identical colors should be encoded with a 255 scale factor. Since ASTC
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- // decodes the scaled color by doing (x * s) >> 8, the decoded color will be
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- // multiplied by 255/256. This might cause rounding errors sometimes, so we
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- // check that every channel only deviates by 1.
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- std::mt19937 random(0xdeadbeef);
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- std::uniform_int_distribution<int> byte_distribution(0, 255);
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-
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- for (int i = 0; i < 100; ++i) {
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- RgbaColor color{{byte_distribution(random), byte_distribution(random),
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- byte_distribution(random), 255}};
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- const auto test_result = TestColors(color, color, 255, mode);
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- EXPECT_THAT(test_result, Pair(close_to(color, 1), close_to(color, 1)));
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- }
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-
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- // Make sure that if we want to scale by e.g. 1/4 then we can do that exactly:
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- const RgbaColor low = {{ 20, 4, 40, 255 }};
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- const RgbaColor high = {{ 80, 16, 160, 255 }};
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- EXPECT_THAT(TestColors(low, high, 255, mode),
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- Pair(close_to(low, 0), close_to(high, 0)));
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-
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- // And if we quantize it, then we get roughly the same thing. The scale factor
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- // should be representable with most quantization levels. The problem is that
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- // if we're off on the 'high' color, then we will be off on the 'low' color.
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- EXPECT_THAT(TestColors(low, high, 127, mode),
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- Pair(close_to(low, 1), close_to(high, 1)));
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-
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- EXPECT_THAT(TestColors(low, high, 63, mode),
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- Pair(close_to(low, 1), close_to(high, 2)));
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-
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- EXPECT_THAT(TestColors(low, high, 31, mode),
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- Pair(close_to(low, 1), close_to(high, 4)));
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-
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- EXPECT_THAT(TestColors(low, high, 15, mode),
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- Pair(close_to(low, 2), close_to(high, 8)));
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-}
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-
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-// Make sure that encoding and decoding for the RGB base-offset mode works.
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-// Since we don't have a decoder, this is currently only a test that should work
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-// based on reasoning about what's written in the spec.
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-// TODO(krajcevski): Write an encoder.
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-TEST(EndpointCodecTest, RGBBaseOffset) {
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- const auto test_colors = [](const RgbaColor& low, const RgbaColor& high) {
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- const RgbaColor diff = {{ high[0] - low[0], high[1] - low[1],
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- high[2] - low[2], high[3] - low[3] }};
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-
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- std::vector<int> vals;
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- for (int i = 0; i < 3; ++i) {
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- // If the base is "large", then it grabs it's most significant bit from
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- // the offset value. Hence, we need to save it here.
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- const bool is_large = low[i] >= 128;
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- vals.push_back((low[i] * 2) & 0xFF);
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- vals.push_back(diff[i] * 2);
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-
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- // Give the "large" bases their bits back.
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- if (is_large) {
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- vals.back() |= 0x80;
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- }
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- }
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-
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- RgbaColor dec_low, dec_high;
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- DecodeColorsForMode(vals, 255, ColorEndpointMode::kLDRRGBBaseOffset,
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- &dec_low, &dec_high);
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-
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- EXPECT_THAT(std::make_pair(dec_low, dec_high), Pair(Eq(low), Eq(high)));
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- };
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-
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- // Test the "direct encoding" path.
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- test_colors({{ 80, 16, 112, 255 }}, {{ 87, 18, 132, 255 }});
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- test_colors({{ 80, 74, 82, 255 }}, {{ 90, 92, 110, 255 }});
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- test_colors({{ 0, 0, 0, 255 }}, {{ 2, 2, 2, 255 }});
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-
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- // Identical endpoints should always encode exactly, provided they satisfy the
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- // requirements for the base encoding.
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- std::mt19937 random(0xdeadbeef);
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- std::uniform_int_distribution<int> byte_distribution(0, 255);
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- for (int i = 0; i < 100; ++i) {
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- RgbaColor color{{byte_distribution(random), byte_distribution(random),
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- byte_distribution(random), 255}};
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- if ((color[0] | color[1] | color[2]) & 1) {
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- continue;
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- }
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- test_colors(color, color);
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- }
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-
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- // TODO(google): Test the "blue contract" path.
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|
-}
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-
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-// Make sure that we can decode colors that are given to us straight out of the
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-// ASTC codec.
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-TEST(EndpointCodecTest, DecodeCheckerboard) {
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- const RgbaColor kWhite {{ 255, 255, 255, 255 }};
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- const RgbaColor kBlack {{ 0, 0, 0, 255 }};
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-
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- const std::string astc = LoadASTCFile("checkerboard");
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- for (int i = 0; i < astc.size(); i += 16) {
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- base::UInt128 block;
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- memcpy(&block, &astc[i], sizeof(block));
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-
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- const auto intermediate = UnpackIntermediateBlock(PhysicalASTCBlock(block));
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- ASSERT_TRUE(intermediate) << "Block is void extent???";
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-
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- const auto block_data = &intermediate.value();
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- ASSERT_THAT(block_data->endpoints, SizeIs(Eq(1)));
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-
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- const int color_range = EndpointRangeForBlock(*block_data);
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|
- const auto& endpoints = block_data->endpoints[0];
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-
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- RgbaColor low, high;
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|
- DecodeColorsForMode(endpoints.colors, color_range, endpoints.mode,
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|
|
- &low, &high);
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-
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|
|
- // Expect that the endpoints are black and white, but either order.
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|
|
- EXPECT_THAT(std::make_pair(low, high),
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|
|
- AnyOf(
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|
- Pair(Eq(kWhite), Eq(kBlack)),
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|
|
- Pair(Eq(kBlack), Eq(kWhite))));
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|
|
- }
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|
|
-}
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-
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-} // namespace
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-
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-} // namespace astc_codec
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