489 lines
17 KiB
C++
489 lines
17 KiB
C++
/*
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* Copyright (C) 2014 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 "DeferredLayerUpdater.h"
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#include "GlLayer.h"
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#include "VkLayer.h"
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#include <GpuMemoryTracker.h>
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#include "renderstate/RenderState.h"
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#include "renderthread/CanvasContext.h"
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#include "renderthread/EglManager.h"
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#include "utils/GLUtils.h"
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#include <algorithm>
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#include <ui/ColorSpace.h>
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namespace android {
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namespace uirenderer {
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RenderState::RenderState(renderthread::RenderThread& thread)
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: mRenderThread(thread)
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, mViewportWidth(0)
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, mViewportHeight(0)
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, mFramebuffer(0) {
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mThreadId = pthread_self();
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}
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RenderState::~RenderState() {
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LOG_ALWAYS_FATAL_IF(mBlend || mMeshState || mScissor || mStencil,
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"State object lifecycle not managed correctly");
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}
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void RenderState::onGLContextCreated() {
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LOG_ALWAYS_FATAL_IF(mBlend || mMeshState || mScissor || mStencil,
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"State object lifecycle not managed correctly");
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GpuMemoryTracker::onGpuContextCreated();
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mBlend = new Blend();
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mMeshState = new MeshState();
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mScissor = new Scissor();
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mStencil = new Stencil();
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// Deferred because creation needs GL context for texture limits
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if (!mLayerPool) {
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mLayerPool = new OffscreenBufferPool();
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}
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// This is delayed because the first access of Caches makes GL calls
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if (!mCaches) {
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mCaches = &Caches::createInstance(*this);
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}
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mCaches->init();
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}
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static void layerLostGlContext(Layer* layer) {
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LOG_ALWAYS_FATAL_IF(layer->getApi() != Layer::Api::OpenGL,
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"layerLostGlContext on non GL layer");
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static_cast<GlLayer*>(layer)->onGlContextLost();
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}
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void RenderState::onGLContextDestroyed() {
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mLayerPool->clear();
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// TODO: reset all cached state in state objects
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std::for_each(mActiveLayers.begin(), mActiveLayers.end(), layerLostGlContext);
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mCaches->terminate();
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delete mBlend;
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mBlend = nullptr;
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delete mMeshState;
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mMeshState = nullptr;
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delete mScissor;
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mScissor = nullptr;
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delete mStencil;
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mStencil = nullptr;
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destroyLayersInUpdater();
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GpuMemoryTracker::onGpuContextDestroyed();
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}
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void RenderState::onVkContextCreated() {
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LOG_ALWAYS_FATAL_IF(mBlend || mMeshState || mScissor || mStencil,
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"State object lifecycle not managed correctly");
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GpuMemoryTracker::onGpuContextCreated();
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}
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static void layerDestroyedVkContext(Layer* layer) {
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LOG_ALWAYS_FATAL_IF(layer->getApi() != Layer::Api::Vulkan,
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"layerLostVkContext on non Vulkan layer");
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static_cast<VkLayer*>(layer)->onVkContextDestroyed();
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}
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void RenderState::onVkContextDestroyed() {
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mLayerPool->clear();
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std::for_each(mActiveLayers.begin(), mActiveLayers.end(), layerDestroyedVkContext);
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GpuMemoryTracker::onGpuContextDestroyed();
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}
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GrContext* RenderState::getGrContext() const {
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return mRenderThread.getGrContext();
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}
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void RenderState::flush(Caches::FlushMode mode) {
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switch (mode) {
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case Caches::FlushMode::Full:
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// fall through
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case Caches::FlushMode::Moderate:
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// fall through
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case Caches::FlushMode::Layers:
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if (mLayerPool) mLayerPool->clear();
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break;
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}
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if (mCaches) mCaches->flush(mode);
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}
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void RenderState::onBitmapDestroyed(uint32_t pixelRefId) {
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if (mCaches && mCaches->textureCache.destroyTexture(pixelRefId)) {
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glFlush();
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GL_CHECKPOINT(MODERATE);
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}
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}
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void RenderState::setViewport(GLsizei width, GLsizei height) {
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mViewportWidth = width;
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mViewportHeight = height;
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glViewport(0, 0, mViewportWidth, mViewportHeight);
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}
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void RenderState::getViewport(GLsizei* outWidth, GLsizei* outHeight) {
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*outWidth = mViewportWidth;
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*outHeight = mViewportHeight;
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}
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void RenderState::bindFramebuffer(GLuint fbo) {
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if (mFramebuffer != fbo) {
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mFramebuffer = fbo;
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glBindFramebuffer(GL_FRAMEBUFFER, mFramebuffer);
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}
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}
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GLuint RenderState::createFramebuffer() {
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GLuint ret;
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glGenFramebuffers(1, &ret);
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return ret;
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}
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void RenderState::deleteFramebuffer(GLuint fbo) {
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if (mFramebuffer == fbo) {
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// GL defines that deleting the currently bound FBO rebinds FBO 0.
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// Reflect this in our cached value.
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mFramebuffer = 0;
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}
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glDeleteFramebuffers(1, &fbo);
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}
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void RenderState::invokeFunctor(Functor* functor, DrawGlInfo::Mode mode, DrawGlInfo* info) {
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if (mode == DrawGlInfo::kModeProcessNoContext) {
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// If there's no context we don't need to interrupt as there's
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// no gl state to save/restore
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(*functor)(mode, info);
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} else {
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interruptForFunctorInvoke();
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(*functor)(mode, info);
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resumeFromFunctorInvoke();
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}
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}
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void RenderState::interruptForFunctorInvoke() {
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mCaches->setProgram(nullptr);
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mCaches->textureState().resetActiveTexture();
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meshState().unbindMeshBuffer();
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meshState().unbindIndicesBuffer();
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meshState().resetVertexPointers();
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meshState().disableTexCoordsVertexArray();
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debugOverdraw(false, false);
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// TODO: We need a way to know whether the functor is sRGB aware (b/32072673)
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if (mCaches->extensions().hasLinearBlending() &&
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mCaches->extensions().hasSRGBWriteControl()) {
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glDisable(GL_FRAMEBUFFER_SRGB_EXT);
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}
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}
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void RenderState::resumeFromFunctorInvoke() {
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if (mCaches->extensions().hasLinearBlending() &&
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mCaches->extensions().hasSRGBWriteControl()) {
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glEnable(GL_FRAMEBUFFER_SRGB_EXT);
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}
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glViewport(0, 0, mViewportWidth, mViewportHeight);
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glBindFramebuffer(GL_FRAMEBUFFER, mFramebuffer);
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debugOverdraw(false, false);
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glClearColor(0.0f, 0.0f, 0.0f, 0.0f);
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scissor().invalidate();
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blend().invalidate();
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mCaches->textureState().activateTexture(0);
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mCaches->textureState().resetBoundTextures();
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}
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void RenderState::debugOverdraw(bool enable, bool clear) {
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if (Properties::debugOverdraw && mFramebuffer == 0) {
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if (clear) {
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scissor().setEnabled(false);
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stencil().clear();
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}
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if (enable) {
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stencil().enableDebugWrite();
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} else {
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stencil().disable();
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}
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}
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}
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static void destroyLayerInUpdater(DeferredLayerUpdater* layerUpdater) {
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layerUpdater->destroyLayer();
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}
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void RenderState::destroyLayersInUpdater() {
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std::for_each(mActiveLayerUpdaters.begin(), mActiveLayerUpdaters.end(), destroyLayerInUpdater);
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}
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class DecStrongTask : public renderthread::RenderTask {
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public:
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explicit DecStrongTask(VirtualLightRefBase* object) : mObject(object) {}
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virtual void run() override {
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mObject->decStrong(nullptr);
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mObject = nullptr;
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delete this;
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}
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private:
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VirtualLightRefBase* mObject;
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};
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void RenderState::postDecStrong(VirtualLightRefBase* object) {
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if (pthread_equal(mThreadId, pthread_self())) {
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object->decStrong(nullptr);
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} else {
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mRenderThread.queue(new DecStrongTask(object));
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}
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}
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///////////////////////////////////////////////////////////////////////////////
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// Render
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///////////////////////////////////////////////////////////////////////////////
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void RenderState::render(const Glop& glop, const Matrix4& orthoMatrix,
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bool overrideDisableBlending) {
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const Glop::Mesh& mesh = glop.mesh;
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const Glop::Mesh::Vertices& vertices = mesh.vertices;
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const Glop::Mesh::Indices& indices = mesh.indices;
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const Glop::Fill& fill = glop.fill;
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GL_CHECKPOINT(MODERATE);
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// ---------------------------------------------
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// ---------- Program + uniform setup ----------
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// ---------------------------------------------
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mCaches->setProgram(fill.program);
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if (fill.colorEnabled) {
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fill.program->setColor(fill.color);
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}
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fill.program->set(orthoMatrix,
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glop.transform.modelView,
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glop.transform.meshTransform(),
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glop.transform.transformFlags & TransformFlags::OffsetByFudgeFactor);
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// Color filter uniforms
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if (fill.filterMode == ProgramDescription::ColorFilterMode::Blend) {
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const FloatColor& color = fill.filter.color;
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glUniform4f(mCaches->program().getUniform("colorBlend"),
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color.r, color.g, color.b, color.a);
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} else if (fill.filterMode == ProgramDescription::ColorFilterMode::Matrix) {
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glUniformMatrix4fv(mCaches->program().getUniform("colorMatrix"), 1, GL_FALSE,
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fill.filter.matrix.matrix);
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glUniform4fv(mCaches->program().getUniform("colorMatrixVector"), 1,
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fill.filter.matrix.vector);
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}
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// Round rect clipping uniforms
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if (glop.roundRectClipState) {
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// TODO: avoid query, and cache values (or RRCS ptr) in program
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const RoundRectClipState* state = glop.roundRectClipState;
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const Rect& innerRect = state->innerRect;
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// add half pixel to round out integer rect space to cover pixel centers
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float roundedOutRadius = state->radius + 0.5f;
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// Divide by the radius to simplify the calculations in the fragment shader
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// roundRectPos is also passed from vertex shader relative to top/left & radius
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glUniform4f(fill.program->getUniform("roundRectInnerRectLTWH"),
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innerRect.left / roundedOutRadius, innerRect.top / roundedOutRadius,
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(innerRect.right - innerRect.left) / roundedOutRadius,
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(innerRect.bottom - innerRect.top) / roundedOutRadius);
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glUniformMatrix4fv(fill.program->getUniform("roundRectInvTransform"),
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1, GL_FALSE, &state->matrix.data[0]);
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glUniform1f(fill.program->getUniform("roundRectRadius"),
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roundedOutRadius);
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}
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GL_CHECKPOINT(MODERATE);
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// --------------------------------
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// ---------- Mesh setup ----------
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// --------------------------------
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// vertices
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meshState().bindMeshBuffer(vertices.bufferObject);
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meshState().bindPositionVertexPointer(vertices.position, vertices.stride);
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// indices
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meshState().bindIndicesBuffer(indices.bufferObject);
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// texture
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if (fill.texture.texture != nullptr) {
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const Glop::Fill::TextureData& texture = fill.texture;
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// texture always takes slot 0, shader samplers increment from there
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mCaches->textureState().activateTexture(0);
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mCaches->textureState().bindTexture(texture.texture->target(), texture.texture->id());
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if (texture.clamp != GL_INVALID_ENUM) {
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texture.texture->setWrap(texture.clamp, false, false);
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}
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if (texture.filter != GL_INVALID_ENUM) {
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texture.texture->setFilter(texture.filter, false, false);
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}
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if (texture.textureTransform) {
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glUniformMatrix4fv(fill.program->getUniform("mainTextureTransform"), 1,
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GL_FALSE, &texture.textureTransform->data[0]);
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}
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}
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// vertex attributes (tex coord, color, alpha)
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if (vertices.attribFlags & VertexAttribFlags::TextureCoord) {
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meshState().enableTexCoordsVertexArray();
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meshState().bindTexCoordsVertexPointer(vertices.texCoord, vertices.stride);
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} else {
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meshState().disableTexCoordsVertexArray();
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}
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int colorLocation = -1;
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if (vertices.attribFlags & VertexAttribFlags::Color) {
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colorLocation = fill.program->getAttrib("colors");
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glEnableVertexAttribArray(colorLocation);
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glVertexAttribPointer(colorLocation, 4, GL_FLOAT, GL_FALSE, vertices.stride, vertices.color);
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}
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int alphaLocation = -1;
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if (vertices.attribFlags & VertexAttribFlags::Alpha) {
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// NOTE: alpha vertex position is computed assuming no VBO
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const void* alphaCoords = ((const GLbyte*) vertices.position) + kVertexAlphaOffset;
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alphaLocation = fill.program->getAttrib("vtxAlpha");
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glEnableVertexAttribArray(alphaLocation);
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glVertexAttribPointer(alphaLocation, 1, GL_FLOAT, GL_FALSE, vertices.stride, alphaCoords);
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}
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// Shader uniforms
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SkiaShader::apply(*mCaches, fill.skiaShaderData, mViewportWidth, mViewportHeight);
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GL_CHECKPOINT(MODERATE);
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Texture* texture = (fill.skiaShaderData.skiaShaderType & kBitmap_SkiaShaderType) ?
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fill.skiaShaderData.bitmapData.bitmapTexture : nullptr;
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const AutoTexture autoCleanup(texture);
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// If we have a shader and a base texture, the base texture is assumed to be an alpha mask
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// which means the color space conversion applies to the shader's bitmap
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Texture* colorSpaceTexture = texture != nullptr ? texture : fill.texture.texture;
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if (colorSpaceTexture != nullptr) {
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if (colorSpaceTexture->hasColorSpaceConversion()) {
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const ColorSpaceConnector* connector = colorSpaceTexture->getColorSpaceConnector();
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glUniformMatrix3fv(fill.program->getUniform("colorSpaceMatrix"), 1,
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GL_FALSE, connector->getTransform().asArray());
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}
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TransferFunctionType transferFunction = colorSpaceTexture->getTransferFunctionType();
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if (transferFunction != TransferFunctionType::None) {
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const ColorSpaceConnector* connector = colorSpaceTexture->getColorSpaceConnector();
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const ColorSpace& source = connector->getSource();
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switch (transferFunction) {
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case TransferFunctionType::None:
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break;
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case TransferFunctionType::Full:
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glUniform1fv(fill.program->getUniform("transferFunction"), 7,
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reinterpret_cast<const float*>(&source.getTransferParameters().g));
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break;
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case TransferFunctionType::Limited:
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glUniform1fv(fill.program->getUniform("transferFunction"), 5,
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reinterpret_cast<const float*>(&source.getTransferParameters().g));
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break;
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case TransferFunctionType::Gamma:
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glUniform1f(fill.program->getUniform("transferFunctionGamma"),
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source.getTransferParameters().g);
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break;
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}
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}
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}
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// ------------------------------------
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// ---------- GL state setup ----------
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// ------------------------------------
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if (CC_UNLIKELY(overrideDisableBlending)) {
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blend().setFactors(GL_ZERO, GL_ZERO);
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} else {
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blend().setFactors(glop.blend.src, glop.blend.dst);
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}
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GL_CHECKPOINT(MODERATE);
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// ------------------------------------
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// ---------- Actual drawing ----------
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// ------------------------------------
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if (indices.bufferObject == meshState().getQuadListIBO()) {
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// Since the indexed quad list is of limited length, we loop over
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// the glDrawXXX method while updating the vertex pointer
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GLsizei elementsCount = mesh.elementCount;
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const GLbyte* vertexData = static_cast<const GLbyte*>(vertices.position);
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while (elementsCount > 0) {
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GLsizei drawCount = std::min(elementsCount, (GLsizei) kMaxNumberOfQuads * 6);
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GLsizei vertexCount = (drawCount / 6) * 4;
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meshState().bindPositionVertexPointer(vertexData, vertices.stride);
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if (vertices.attribFlags & VertexAttribFlags::TextureCoord) {
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meshState().bindTexCoordsVertexPointer(
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vertexData + kMeshTextureOffset, vertices.stride);
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}
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if (mCaches->extensions().getMajorGlVersion() >= 3) {
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glDrawRangeElements(mesh.primitiveMode, 0, vertexCount-1, drawCount, GL_UNSIGNED_SHORT, nullptr);
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} else {
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glDrawElements(mesh.primitiveMode, drawCount, GL_UNSIGNED_SHORT, nullptr);
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}
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elementsCount -= drawCount;
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vertexData += vertexCount * vertices.stride;
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}
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} else if (indices.bufferObject || indices.indices) {
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if (mCaches->extensions().getMajorGlVersion() >= 3) {
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// use glDrawRangeElements to reduce CPU overhead (otherwise the driver has to determine the min/max index values)
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glDrawRangeElements(mesh.primitiveMode, 0, mesh.vertexCount-1, mesh.elementCount, GL_UNSIGNED_SHORT, indices.indices);
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} else {
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glDrawElements(mesh.primitiveMode, mesh.elementCount, GL_UNSIGNED_SHORT, indices.indices);
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}
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} else {
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glDrawArrays(mesh.primitiveMode, 0, mesh.elementCount);
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}
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GL_CHECKPOINT(MODERATE);
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// -----------------------------------
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// ---------- Mesh teardown ----------
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// -----------------------------------
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if (vertices.attribFlags & VertexAttribFlags::Alpha) {
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glDisableVertexAttribArray(alphaLocation);
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}
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if (vertices.attribFlags & VertexAttribFlags::Color) {
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glDisableVertexAttribArray(colorLocation);
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}
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GL_CHECKPOINT(MODERATE);
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}
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void RenderState::dump() {
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blend().dump();
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meshState().dump();
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scissor().dump();
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stencil().dump();
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}
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} /* namespace uirenderer */
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} /* namespace android */
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