Test: No code changes, just ran through clang-format Change-Id: Id23aa4ec7eebc0446fe3a30260f33e7fd455bb8c
163 lines
6.3 KiB
C++
163 lines
6.3 KiB
C++
/*
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* Copyright (C) 2017 The Android Open Source Project
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include <gtest/gtest.h>
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#include <GrRectanizer.h>
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#include "pipeline/skia/VectorDrawableAtlas.h"
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#include "tests/common/TestUtils.h"
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using namespace android;
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using namespace android::uirenderer;
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using namespace android::uirenderer::renderthread;
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using namespace android::uirenderer::skiapipeline;
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RENDERTHREAD_SKIA_PIPELINE_TEST(VectorDrawableAtlas, addGetRemove) {
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VectorDrawableAtlas atlas(100 * 100);
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atlas.prepareForDraw(renderThread.getGrContext());
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// create 150 rects 10x10, which won't fit in the atlas (atlas can fit no more than 100 rects)
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const int MAX_RECTS = 150;
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AtlasEntry VDRects[MAX_RECTS];
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sk_sp<SkSurface> atlasSurface;
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// check we are able to allocate new rects
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// check that rects in the atlas do not intersect
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for (uint32_t i = 0; i < MAX_RECTS; i++) {
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VDRects[i] = atlas.requestNewEntry(10, 10, renderThread.getGrContext());
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if (0 == i) {
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atlasSurface = VDRects[0].surface;
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}
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ASSERT_TRUE(VDRects[i].key != INVALID_ATLAS_KEY);
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ASSERT_TRUE(VDRects[i].surface.get() != nullptr);
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ASSERT_TRUE(VDRects[i].rect.width() == 10 && VDRects[i].rect.height() == 10);
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// nothing in the atlas should intersect
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if (atlasSurface.get() == VDRects[i].surface.get()) {
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for (uint32_t j = 0; j < i; j++) {
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if (atlasSurface.get() == VDRects[j].surface.get()) {
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ASSERT_FALSE(VDRects[i].rect.intersect(VDRects[j].rect));
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}
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}
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}
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}
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// first 1/3 rects should all be in the same surface
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for (uint32_t i = 1; i < MAX_RECTS / 3; i++) {
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ASSERT_NE(VDRects[i].key, VDRects[0].key);
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ASSERT_EQ(VDRects[i].surface.get(), atlasSurface.get());
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}
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// first rect is using atlas and last is a standalone surface
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ASSERT_NE(VDRects[0].surface.get(), VDRects[MAX_RECTS - 1].surface.get());
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// check getEntry returns the same surfaces that we had created
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for (uint32_t i = 0; i < MAX_RECTS; i++) {
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auto VDRect = atlas.getEntry(VDRects[i].key);
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ASSERT_TRUE(VDRect.key != INVALID_ATLAS_KEY);
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ASSERT_EQ(VDRects[i].key, VDRect.key);
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ASSERT_EQ(VDRects[i].surface.get(), VDRect.surface.get());
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ASSERT_EQ(VDRects[i].rect, VDRect.rect);
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atlas.releaseEntry(VDRect.key);
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}
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// check that any new rects will be allocated in the atlas, even that rectanizer is full.
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// rects in the atlas should not intersect.
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for (uint32_t i = 0; i < MAX_RECTS / 3; i++) {
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VDRects[i] = atlas.requestNewEntry(10, 10, renderThread.getGrContext());
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ASSERT_TRUE(VDRects[i].key != INVALID_ATLAS_KEY);
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ASSERT_EQ(VDRects[i].surface.get(), atlasSurface.get());
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ASSERT_TRUE(VDRects[i].rect.width() == 10 && VDRects[i].rect.height() == 10);
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for (uint32_t j = 0; j < i; j++) {
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ASSERT_FALSE(VDRects[i].rect.intersect(VDRects[j].rect));
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}
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}
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}
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RENDERTHREAD_SKIA_PIPELINE_TEST(VectorDrawableAtlas, disallowSharedSurface) {
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VectorDrawableAtlas atlas(100 * 100);
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// don't allow to use a shared surface
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atlas.setStorageMode(VectorDrawableAtlas::StorageMode::disallowSharedSurface);
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atlas.prepareForDraw(renderThread.getGrContext());
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// create 150 rects 10x10, which won't fit in the atlas (atlas can fit no more than 100 rects)
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const int MAX_RECTS = 150;
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AtlasEntry VDRects[MAX_RECTS];
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// check we are able to allocate new rects
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// check that rects in the atlas use unique surfaces
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for (uint32_t i = 0; i < MAX_RECTS; i++) {
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VDRects[i] = atlas.requestNewEntry(10, 10, renderThread.getGrContext());
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ASSERT_TRUE(VDRects[i].key != INVALID_ATLAS_KEY);
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ASSERT_TRUE(VDRects[i].surface.get() != nullptr);
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ASSERT_TRUE(VDRects[i].rect.width() == 10 && VDRects[i].rect.height() == 10);
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// nothing in the atlas should use the same surface
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for (uint32_t j = 0; j < i; j++) {
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ASSERT_NE(VDRects[i].surface.get(), VDRects[j].surface.get());
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}
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}
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}
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RENDERTHREAD_SKIA_PIPELINE_TEST(VectorDrawableAtlas, repack) {
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VectorDrawableAtlas atlas(100 * 100);
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ASSERT_FALSE(atlas.isFragmented());
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atlas.prepareForDraw(renderThread.getGrContext());
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ASSERT_FALSE(atlas.isFragmented());
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// create 150 rects 10x10, which won't fit in the atlas (atlas can fit no more than 100 rects)
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const int MAX_RECTS = 150;
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AtlasEntry VDRects[MAX_RECTS];
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sk_sp<SkSurface> atlasSurface;
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// fill the atlas with check we are able to allocate new rects
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for (uint32_t i = 0; i < MAX_RECTS; i++) {
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VDRects[i] = atlas.requestNewEntry(10, 10, renderThread.getGrContext());
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if (0 == i) {
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atlasSurface = VDRects[0].surface;
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}
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ASSERT_TRUE(VDRects[i].key != INVALID_ATLAS_KEY);
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}
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ASSERT_FALSE(atlas.isFragmented());
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// first 1/3 rects should all be in the same surface
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for (uint32_t i = 1; i < MAX_RECTS / 3; i++) {
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ASSERT_NE(VDRects[i].key, VDRects[0].key);
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ASSERT_EQ(VDRects[i].surface.get(), atlasSurface.get());
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}
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// release all entries
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for (uint32_t i = 0; i < MAX_RECTS; i++) {
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auto VDRect = atlas.getEntry(VDRects[i].key);
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ASSERT_TRUE(VDRect.key != INVALID_ATLAS_KEY);
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atlas.releaseEntry(VDRect.key);
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}
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ASSERT_FALSE(atlas.isFragmented());
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// allocate 4x4 rects, which will fragment the atlas badly, because each entry occupies a 10x10
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// area
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for (uint32_t i = 0; i < 4 * MAX_RECTS; i++) {
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AtlasEntry entry = atlas.requestNewEntry(4, 4, renderThread.getGrContext());
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ASSERT_TRUE(entry.key != INVALID_ATLAS_KEY);
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}
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ASSERT_TRUE(atlas.isFragmented());
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atlas.repackIfNeeded(renderThread.getGrContext());
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ASSERT_FALSE(atlas.isFragmented());
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} |