e3b0a0117a
This change adds refcounting of Res_png_9patch instances, the native data structure used to represent 9-patches. The Dalvik NinePatch class now holds a native pointer instead of a Dalvik byte[]. This pointer is used whenever we need to draw the 9-patch (software or hardware.) Since we are now tracking garbage collection of NinePatch objects libhwui's PatchCache must keep a list of free blocks in the VBO used to store the meshes. This change also removes unnecessary instances tracking from GLES20DisplayList. Bitmaps and 9-patches are refcounted at the native level and do not need to be tracked by the Dalvik layer. Change-Id: Ib8682d573a538aaf1945f8ec5a9bd5da5d16f74b
560 lines
19 KiB
C++
560 lines
19 KiB
C++
/*
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* Copyright (C) 2013 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 <SkCanvas.h>
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#include "Debug.h"
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#include "DisplayList.h"
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#include "DisplayListOp.h"
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#include "DisplayListLogBuffer.h"
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namespace android {
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namespace uirenderer {
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void DisplayList::outputLogBuffer(int fd) {
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DisplayListLogBuffer& logBuffer = DisplayListLogBuffer::getInstance();
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if (logBuffer.isEmpty()) {
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return;
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}
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FILE *file = fdopen(fd, "a");
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fprintf(file, "\nRecent DisplayList operations\n");
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logBuffer.outputCommands(file);
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String8 cachesLog;
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Caches::getInstance().dumpMemoryUsage(cachesLog);
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fprintf(file, "\nCaches:\n%s", cachesLog.string());
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fprintf(file, "\n");
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fflush(file);
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}
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DisplayList::DisplayList(const DisplayListRenderer& recorder) :
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mDestroyed(false), mTransformMatrix(NULL), mTransformCamera(NULL), mTransformMatrix3D(NULL),
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mStaticMatrix(NULL), mAnimationMatrix(NULL) {
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initFromDisplayListRenderer(recorder);
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}
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DisplayList::~DisplayList() {
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mDestroyed = true;
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clearResources();
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}
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void DisplayList::destroyDisplayListDeferred(DisplayList* displayList) {
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if (displayList) {
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DISPLAY_LIST_LOGD("Deferring display list destruction");
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Caches::getInstance().deleteDisplayListDeferred(displayList);
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}
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}
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void DisplayList::clearResources() {
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mDisplayListData = NULL;
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mClipRectOp = NULL;
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mSaveLayerOp = NULL;
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mSaveOp = NULL;
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mRestoreToCountOp = NULL;
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delete mTransformMatrix;
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delete mTransformCamera;
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delete mTransformMatrix3D;
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delete mStaticMatrix;
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delete mAnimationMatrix;
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mTransformMatrix = NULL;
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mTransformCamera = NULL;
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mTransformMatrix3D = NULL;
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mStaticMatrix = NULL;
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mAnimationMatrix = NULL;
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Caches& caches = Caches::getInstance();
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caches.unregisterFunctors(mFunctorCount);
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caches.resourceCache.lock();
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for (size_t i = 0; i < mBitmapResources.size(); i++) {
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caches.resourceCache.decrementRefcountLocked(mBitmapResources.itemAt(i));
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}
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for (size_t i = 0; i < mOwnedBitmapResources.size(); i++) {
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SkBitmap* bitmap = mOwnedBitmapResources.itemAt(i);
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caches.resourceCache.decrementRefcountLocked(bitmap);
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caches.resourceCache.destructorLocked(bitmap);
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}
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for (size_t i = 0; i < mFilterResources.size(); i++) {
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caches.resourceCache.decrementRefcountLocked(mFilterResources.itemAt(i));
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}
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for (size_t i = 0; i < mPatchResources.size(); i++) {
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caches.resourceCache.decrementRefcountLocked(mPatchResources.itemAt(i));
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}
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for (size_t i = 0; i < mShaders.size(); i++) {
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caches.resourceCache.decrementRefcountLocked(mShaders.itemAt(i));
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caches.resourceCache.destructorLocked(mShaders.itemAt(i));
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}
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for (size_t i = 0; i < mSourcePaths.size(); i++) {
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caches.resourceCache.decrementRefcountLocked(mSourcePaths.itemAt(i));
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}
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for (size_t i = 0; i < mLayers.size(); i++) {
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caches.resourceCache.decrementRefcountLocked(mLayers.itemAt(i));
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}
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caches.resourceCache.unlock();
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for (size_t i = 0; i < mPaints.size(); i++) {
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delete mPaints.itemAt(i);
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}
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for (size_t i = 0; i < mRegions.size(); i++) {
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delete mRegions.itemAt(i);
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}
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for (size_t i = 0; i < mPaths.size(); i++) {
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delete mPaths.itemAt(i);
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}
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for (size_t i = 0; i < mMatrices.size(); i++) {
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delete mMatrices.itemAt(i);
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}
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mBitmapResources.clear();
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mOwnedBitmapResources.clear();
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mFilterResources.clear();
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mPatchResources.clear();
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mShaders.clear();
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mSourcePaths.clear();
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mPaints.clear();
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mRegions.clear();
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mPaths.clear();
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mMatrices.clear();
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mLayers.clear();
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}
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void DisplayList::reset() {
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clearResources();
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init();
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}
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void DisplayList::initFromDisplayListRenderer(const DisplayListRenderer& recorder, bool reusing) {
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if (reusing) {
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// re-using display list - clear out previous allocations
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clearResources();
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}
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init();
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mDisplayListData = recorder.getDisplayListData();
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mSize = mDisplayListData->allocator.usedSize();
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if (mSize == 0) {
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return;
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}
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// allocate reusable ops for state-deferral
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LinearAllocator& alloc = mDisplayListData->allocator;
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mClipRectOp = new (alloc) ClipRectOp();
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mSaveLayerOp = new (alloc) SaveLayerOp();
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mSaveOp = new (alloc) SaveOp();
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mRestoreToCountOp = new (alloc) RestoreToCountOp();
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if (CC_UNLIKELY(!mSaveOp)) { // temporary debug logging
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ALOGW("Error: %s's SaveOp not allocated, size %d", getName(), mSize);
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CRASH();
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}
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mFunctorCount = recorder.getFunctorCount();
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Caches& caches = Caches::getInstance();
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caches.registerFunctors(mFunctorCount);
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caches.resourceCache.lock();
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const Vector<SkBitmap*>& bitmapResources = recorder.getBitmapResources();
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for (size_t i = 0; i < bitmapResources.size(); i++) {
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SkBitmap* resource = bitmapResources.itemAt(i);
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mBitmapResources.add(resource);
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caches.resourceCache.incrementRefcountLocked(resource);
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}
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const Vector<SkBitmap*> &ownedBitmapResources = recorder.getOwnedBitmapResources();
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for (size_t i = 0; i < ownedBitmapResources.size(); i++) {
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SkBitmap* resource = ownedBitmapResources.itemAt(i);
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mOwnedBitmapResources.add(resource);
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caches.resourceCache.incrementRefcountLocked(resource);
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}
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const Vector<SkiaColorFilter*>& filterResources = recorder.getFilterResources();
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for (size_t i = 0; i < filterResources.size(); i++) {
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SkiaColorFilter* resource = filterResources.itemAt(i);
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mFilterResources.add(resource);
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caches.resourceCache.incrementRefcountLocked(resource);
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}
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const Vector<Res_png_9patch*>& patchResources = recorder.getPatchResources();
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for (size_t i = 0; i < patchResources.size(); i++) {
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Res_png_9patch* resource = patchResources.itemAt(i);
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mPatchResources.add(resource);
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caches.resourceCache.incrementRefcountLocked(resource);
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}
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const Vector<SkiaShader*>& shaders = recorder.getShaders();
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for (size_t i = 0; i < shaders.size(); i++) {
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SkiaShader* resource = shaders.itemAt(i);
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mShaders.add(resource);
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caches.resourceCache.incrementRefcountLocked(resource);
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}
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const SortedVector<SkPath*>& sourcePaths = recorder.getSourcePaths();
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for (size_t i = 0; i < sourcePaths.size(); i++) {
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mSourcePaths.add(sourcePaths.itemAt(i));
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caches.resourceCache.incrementRefcountLocked(sourcePaths.itemAt(i));
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}
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const Vector<Layer*>& layers = recorder.getLayers();
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for (size_t i = 0; i < layers.size(); i++) {
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mLayers.add(layers.itemAt(i));
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caches.resourceCache.incrementRefcountLocked(layers.itemAt(i));
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}
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caches.resourceCache.unlock();
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mPaints.appendVector(recorder.getPaints());
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mRegions.appendVector(recorder.getRegions());
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mPaths.appendVector(recorder.getPaths());
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mMatrices.appendVector(recorder.getMatrices());
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}
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void DisplayList::init() {
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mSize = 0;
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mIsRenderable = true;
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mFunctorCount = 0;
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mLeft = 0;
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mTop = 0;
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mRight = 0;
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mBottom = 0;
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mClipToBounds = true;
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mAlpha = 1;
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mHasOverlappingRendering = true;
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mTranslationX = 0;
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mTranslationY = 0;
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mRotation = 0;
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mRotationX = 0;
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mRotationY= 0;
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mScaleX = 1;
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mScaleY = 1;
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mPivotX = 0;
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mPivotY = 0;
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mCameraDistance = 0;
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mMatrixDirty = false;
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mMatrixFlags = 0;
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mPrevWidth = -1;
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mPrevHeight = -1;
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mWidth = 0;
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mHeight = 0;
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mPivotExplicitlySet = false;
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mCaching = false;
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}
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size_t DisplayList::getSize() {
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return mSize;
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}
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/**
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* This function is a simplified version of replay(), where we simply retrieve and log the
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* display list. This function should remain in sync with the replay() function.
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*/
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void DisplayList::output(uint32_t level) {
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ALOGD("%*sStart display list (%p, %s, render=%d)", (level - 1) * 2, "", this,
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mName.string(), isRenderable());
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ALOGD("%*s%s %d", level * 2, "", "Save",
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SkCanvas::kMatrix_SaveFlag | SkCanvas::kClip_SaveFlag);
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outputViewProperties(level);
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int flags = DisplayListOp::kOpLogFlag_Recurse;
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for (unsigned int i = 0; i < mDisplayListData->displayListOps.size(); i++) {
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mDisplayListData->displayListOps[i]->output(level, flags);
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}
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ALOGD("%*sDone (%p, %s)", (level - 1) * 2, "", this, mName.string());
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}
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float DisplayList::getPivotX() {
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updateMatrix();
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return mPivotX;
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}
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float DisplayList::getPivotY() {
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updateMatrix();
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return mPivotY;
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}
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void DisplayList::updateMatrix() {
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if (mMatrixDirty) {
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if (!mTransformMatrix) {
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mTransformMatrix = new SkMatrix();
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}
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if (mMatrixFlags == 0 || mMatrixFlags == TRANSLATION) {
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mTransformMatrix->reset();
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} else {
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if (!mPivotExplicitlySet) {
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if (mWidth != mPrevWidth || mHeight != mPrevHeight) {
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mPrevWidth = mWidth;
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mPrevHeight = mHeight;
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mPivotX = mPrevWidth / 2.0f;
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mPivotY = mPrevHeight / 2.0f;
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}
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}
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if ((mMatrixFlags & ROTATION_3D) == 0) {
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mTransformMatrix->setTranslate(mTranslationX, mTranslationY);
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mTransformMatrix->preRotate(mRotation, mPivotX, mPivotY);
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mTransformMatrix->preScale(mScaleX, mScaleY, mPivotX, mPivotY);
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} else {
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if (!mTransformCamera) {
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mTransformCamera = new Sk3DView();
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mTransformMatrix3D = new SkMatrix();
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}
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mTransformMatrix->reset();
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mTransformCamera->save();
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mTransformMatrix->preScale(mScaleX, mScaleY, mPivotX, mPivotY);
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mTransformCamera->rotateX(mRotationX);
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mTransformCamera->rotateY(mRotationY);
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mTransformCamera->rotateZ(-mRotation);
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mTransformCamera->getMatrix(mTransformMatrix3D);
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mTransformMatrix3D->preTranslate(-mPivotX, -mPivotY);
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mTransformMatrix3D->postTranslate(mPivotX + mTranslationX,
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mPivotY + mTranslationY);
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mTransformMatrix->postConcat(*mTransformMatrix3D);
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mTransformCamera->restore();
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}
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}
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mMatrixDirty = false;
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}
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}
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void DisplayList::outputViewProperties(const int level) {
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updateMatrix();
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if (mLeft != 0 || mTop != 0) {
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ALOGD("%*sTranslate (left, top) %d, %d", level * 2, "", mLeft, mTop);
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}
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if (mStaticMatrix) {
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ALOGD("%*sConcatMatrix (static) %p: " MATRIX_STRING,
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level * 2, "", mStaticMatrix, MATRIX_ARGS(mStaticMatrix));
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}
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if (mAnimationMatrix) {
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ALOGD("%*sConcatMatrix (animation) %p: " MATRIX_STRING,
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level * 2, "", mAnimationMatrix, MATRIX_ARGS(mStaticMatrix));
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}
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if (mMatrixFlags != 0) {
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if (mMatrixFlags == TRANSLATION) {
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ALOGD("%*sTranslate %f, %f", level * 2, "", mTranslationX, mTranslationY);
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} else {
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ALOGD("%*sConcatMatrix %p: " MATRIX_STRING,
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level * 2, "", mTransformMatrix, MATRIX_ARGS(mTransformMatrix));
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}
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}
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bool clipToBoundsNeeded = mClipToBounds;
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if (mAlpha < 1) {
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if (mCaching) {
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ALOGD("%*sSetOverrideLayerAlpha %.2f", level * 2, "", mAlpha);
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clipToBoundsNeeded = false; // clipping done by layer
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} else if (!mHasOverlappingRendering) {
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ALOGD("%*sScaleAlpha %.2f", level * 2, "", mAlpha);
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} else {
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int flags = SkCanvas::kHasAlphaLayer_SaveFlag;
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if (clipToBoundsNeeded) {
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flags |= SkCanvas::kClipToLayer_SaveFlag;
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clipToBoundsNeeded = false; // clipping done by save layer
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}
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ALOGD("%*sSaveLayerAlpha %.2f, %.2f, %.2f, %.2f, %d, 0x%x", level * 2, "",
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(float) 0, (float) 0, (float) mRight - mLeft, (float) mBottom - mTop,
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(int)(mAlpha * 255), flags);
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}
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}
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if (clipToBoundsNeeded) {
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ALOGD("%*sClipRect %.2f, %.2f, %.2f, %.2f", level * 2, "", 0.0f, 0.0f,
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(float) mRight - mLeft, (float) mBottom - mTop);
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}
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}
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/*
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* For property operations, we pass a savecount of 0, since the operations aren't part of the
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* displaylist, and thus don't have to compensate for the record-time/playback-time discrepancy in
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* base saveCount (i.e., how RestoreToCount uses saveCount + mCount)
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*/
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#define PROPERTY_SAVECOUNT 0
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template <class T>
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void DisplayList::setViewProperties(OpenGLRenderer& renderer, T& handler,
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const int level) {
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#if DEBUG_DISPLAY_LIST
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outputViewProperties(level);
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#endif
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updateMatrix();
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if (mLeft != 0 || mTop != 0) {
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renderer.translate(mLeft, mTop);
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}
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if (mStaticMatrix) {
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renderer.concatMatrix(mStaticMatrix);
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} else if (mAnimationMatrix) {
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renderer.concatMatrix(mAnimationMatrix);
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}
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if (mMatrixFlags != 0) {
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if (mMatrixFlags == TRANSLATION) {
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renderer.translate(mTranslationX, mTranslationY);
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} else {
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renderer.concatMatrix(mTransformMatrix);
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}
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}
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bool clipToBoundsNeeded = mClipToBounds;
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if (mAlpha < 1) {
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if (mCaching) {
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renderer.setOverrideLayerAlpha(mAlpha);
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clipToBoundsNeeded = false; // clipping done by layer
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} else if (!mHasOverlappingRendering) {
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renderer.scaleAlpha(mAlpha);
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} else {
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// TODO: should be able to store the size of a DL at record time and not
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// have to pass it into this call. In fact, this information might be in the
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// location/size info that we store with the new native transform data.
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int saveFlags = SkCanvas::kHasAlphaLayer_SaveFlag;
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if (clipToBoundsNeeded) {
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saveFlags |= SkCanvas::kClipToLayer_SaveFlag;
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clipToBoundsNeeded = false; // clipping done by saveLayer
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}
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handler(mSaveLayerOp->reinit(0, 0, mRight - mLeft, mBottom - mTop,
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mAlpha * 255, SkXfermode::kSrcOver_Mode, saveFlags), PROPERTY_SAVECOUNT,
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mClipToBounds);
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}
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}
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if (clipToBoundsNeeded) {
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handler(mClipRectOp->reinit(0, 0, mRight - mLeft, mBottom - mTop, SkRegion::kIntersect_Op),
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PROPERTY_SAVECOUNT, mClipToBounds);
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}
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}
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class DeferOperationHandler {
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public:
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DeferOperationHandler(DeferStateStruct& deferStruct, int level)
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: mDeferStruct(deferStruct), mLevel(level) {}
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inline void operator()(DisplayListOp* operation, int saveCount, bool clipToBounds) {
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operation->defer(mDeferStruct, saveCount, mLevel, clipToBounds);
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}
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private:
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DeferStateStruct& mDeferStruct;
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const int mLevel;
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};
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void DisplayList::defer(DeferStateStruct& deferStruct, const int level) {
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DeferOperationHandler handler(deferStruct, level);
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iterate<DeferOperationHandler>(deferStruct.mRenderer, handler, level);
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}
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class ReplayOperationHandler {
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public:
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ReplayOperationHandler(ReplayStateStruct& replayStruct, int level)
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: mReplayStruct(replayStruct), mLevel(level) {}
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inline void operator()(DisplayListOp* operation, int saveCount, bool clipToBounds) {
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#if DEBUG_DISPLAY_LIST_OPS_AS_EVENTS
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mReplayStruct.mRenderer.eventMark(operation->name());
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#endif
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operation->replay(mReplayStruct, saveCount, mLevel, clipToBounds);
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}
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private:
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ReplayStateStruct& mReplayStruct;
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const int mLevel;
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};
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void DisplayList::replay(ReplayStateStruct& replayStruct, const int level) {
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ReplayOperationHandler handler(replayStruct, level);
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replayStruct.mRenderer.startMark(mName.string());
|
|
iterate<ReplayOperationHandler>(replayStruct.mRenderer, handler, level);
|
|
replayStruct.mRenderer.endMark();
|
|
|
|
DISPLAY_LIST_LOGD("%*sDone (%p, %s), returning %d", level * 2, "", this, mName.string(),
|
|
replayStruct.mDrawGlStatus);
|
|
}
|
|
|
|
/**
|
|
* This function serves both defer and replay modes, and will organize the displayList's component
|
|
* operations for a single frame:
|
|
*
|
|
* Every 'simple' operation that affects just the matrix and alpha (or other factors of
|
|
* DeferredDisplayState) may be issued directly to the renderer, but complex operations (with custom
|
|
* defer logic) and operations in displayListOps are issued through the 'handler' which handles the
|
|
* defer vs replay logic, per operation
|
|
*/
|
|
template <class T>
|
|
void DisplayList::iterate(OpenGLRenderer& renderer, T& handler, const int level) {
|
|
if (CC_UNLIKELY(mDestroyed)) { // temporary debug logging
|
|
ALOGW("Error: %s is drawing after destruction, size %d", getName(), mSize);
|
|
CRASH();
|
|
}
|
|
if (mSize == 0 || mAlpha <= 0) {
|
|
DISPLAY_LIST_LOGD("%*sEmpty display list (%p, %s)", level * 2, "", this, mName.string());
|
|
return;
|
|
}
|
|
|
|
#if DEBUG_DISPLAY_LIST
|
|
Rect* clipRect = renderer.getClipRect();
|
|
DISPLAY_LIST_LOGD("%*sStart display list (%p, %s), clipRect: %.0f, %.0f, %.0f, %.0f",
|
|
level * 2, "", this, mName.string(), clipRect->left, clipRect->top,
|
|
clipRect->right, clipRect->bottom);
|
|
#endif
|
|
|
|
int restoreTo = renderer.getSaveCount();
|
|
handler(mSaveOp->reinit(SkCanvas::kMatrix_SaveFlag | SkCanvas::kClip_SaveFlag),
|
|
PROPERTY_SAVECOUNT, mClipToBounds);
|
|
|
|
DISPLAY_LIST_LOGD("%*sSave %d %d", (level + 1) * 2, "",
|
|
SkCanvas::kMatrix_SaveFlag | SkCanvas::kClip_SaveFlag, restoreTo);
|
|
|
|
setViewProperties<T>(renderer, handler, level + 1);
|
|
|
|
if (mClipToBounds && renderer.quickRejectNoScissor(0, 0, mWidth, mHeight)) {
|
|
DISPLAY_LIST_LOGD("%*sRestoreToCount %d", (level + 1) * 2, "", restoreTo);
|
|
handler(mRestoreToCountOp->reinit(restoreTo), PROPERTY_SAVECOUNT, mClipToBounds);
|
|
renderer.restoreToCount(restoreTo);
|
|
renderer.setOverrideLayerAlpha(1.0f);
|
|
return;
|
|
}
|
|
|
|
DisplayListLogBuffer& logBuffer = DisplayListLogBuffer::getInstance();
|
|
int saveCount = renderer.getSaveCount() - 1;
|
|
for (unsigned int i = 0; i < mDisplayListData->displayListOps.size(); i++) {
|
|
DisplayListOp *op = mDisplayListData->displayListOps[i];
|
|
|
|
#if DEBUG_DISPLAY_LIST
|
|
op->output(level + 1);
|
|
#endif
|
|
|
|
logBuffer.writeCommand(level, op->name());
|
|
handler(op, saveCount, mClipToBounds);
|
|
}
|
|
|
|
DISPLAY_LIST_LOGD("%*sRestoreToCount %d", (level + 1) * 2, "", restoreTo);
|
|
handler(mRestoreToCountOp->reinit(restoreTo), PROPERTY_SAVECOUNT, mClipToBounds);
|
|
renderer.restoreToCount(restoreTo);
|
|
renderer.setOverrideLayerAlpha(1.0f);
|
|
}
|
|
|
|
}; // namespace uirenderer
|
|
}; // namespace android
|