This reverts commit c8e22a6532.
Reason for revert: broke camera, b/113555199
Bug: 113555199
Change-Id: Iae9b462694d5de0cd99427afead63b567fb4d71d
950 lines
39 KiB
C++
950 lines
39 KiB
C++
/*
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* Copyright (C) 2016 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 "VulkanManager.h"
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#include "DeviceInfo.h"
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#include "Properties.h"
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#include "RenderThread.h"
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#include "renderstate/RenderState.h"
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#include "utils/FatVector.h"
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#include <GrBackendSurface.h>
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#include <GrContext.h>
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#include <GrTypes.h>
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#include <vk/GrVkTypes.h>
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namespace android {
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namespace uirenderer {
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namespace renderthread {
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#define GET_PROC(F) m##F = (PFN_vk##F)vkGetInstanceProcAddr(VK_NULL_HANDLE, "vk" #F)
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#define GET_INST_PROC(F) m##F = (PFN_vk##F)vkGetInstanceProcAddr(mInstance, "vk" #F)
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#define GET_DEV_PROC(F) m##F = (PFN_vk##F)vkGetDeviceProcAddr(mDevice, "vk" #F)
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VulkanManager::VulkanManager(RenderThread& thread) : mRenderThread(thread) {}
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void VulkanManager::destroy() {
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mRenderThread.renderState().onVkContextDestroyed();
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mRenderThread.setGrContext(nullptr);
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if (VK_NULL_HANDLE != mCommandPool) {
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mDestroyCommandPool(mDevice, mCommandPool, nullptr);
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mCommandPool = VK_NULL_HANDLE;
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}
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if (mDevice != VK_NULL_HANDLE) {
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mDeviceWaitIdle(mDevice);
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mDestroyDevice(mDevice, nullptr);
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}
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if (mInstance != VK_NULL_HANDLE) {
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mDestroyInstance(mInstance, nullptr);
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}
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mGraphicsQueue = VK_NULL_HANDLE;
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mPresentQueue = VK_NULL_HANDLE;
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mDevice = VK_NULL_HANDLE;
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mPhysicalDevice = VK_NULL_HANDLE;
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mInstance = VK_NULL_HANDLE;
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}
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bool VulkanManager::setupDevice(VkPhysicalDeviceFeatures& deviceFeatures) {
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VkResult err;
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constexpr VkApplicationInfo app_info = {
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VK_STRUCTURE_TYPE_APPLICATION_INFO, // sType
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nullptr, // pNext
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"android framework", // pApplicationName
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0, // applicationVersion
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"android framework", // pEngineName
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0, // engineVerison
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VK_MAKE_VERSION(1, 0, 0), // apiVersion
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};
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std::vector<const char*> instanceExtensions;
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{
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GET_PROC(EnumerateInstanceExtensionProperties);
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uint32_t extensionCount = 0;
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err = mEnumerateInstanceExtensionProperties(nullptr, &extensionCount, nullptr);
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if (VK_SUCCESS != err) {
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return false;
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}
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std::unique_ptr<VkExtensionProperties[]> extensions(
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new VkExtensionProperties[extensionCount]);
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err = mEnumerateInstanceExtensionProperties(nullptr, &extensionCount, extensions.get());
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if (VK_SUCCESS != err) {
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return false;
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}
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bool hasKHRSurfaceExtension = false;
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bool hasKHRAndroidSurfaceExtension = false;
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for (uint32_t i = 0; i < extensionCount; ++i) {
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instanceExtensions.push_back(extensions[i].extensionName);
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if (!strcmp(extensions[i].extensionName, VK_KHR_SURFACE_EXTENSION_NAME)) {
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hasKHRSurfaceExtension = true;
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}
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if (!strcmp(extensions[i].extensionName,VK_KHR_ANDROID_SURFACE_EXTENSION_NAME)) {
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hasKHRAndroidSurfaceExtension = true;
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}
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}
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if (!hasKHRSurfaceExtension || !hasKHRAndroidSurfaceExtension) {
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this->destroy();
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return false;
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}
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}
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const VkInstanceCreateInfo instance_create = {
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VK_STRUCTURE_TYPE_INSTANCE_CREATE_INFO, // sType
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nullptr, // pNext
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0, // flags
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&app_info, // pApplicationInfo
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0, // enabledLayerNameCount
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nullptr, // ppEnabledLayerNames
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(uint32_t) instanceExtensions.size(), // enabledExtensionNameCount
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instanceExtensions.data(), // ppEnabledExtensionNames
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};
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GET_PROC(CreateInstance);
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err = mCreateInstance(&instance_create, nullptr, &mInstance);
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if (err < 0) {
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this->destroy();
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return false;
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}
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GET_INST_PROC(DestroyInstance);
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GET_INST_PROC(EnumeratePhysicalDevices);
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GET_INST_PROC(GetPhysicalDeviceQueueFamilyProperties);
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GET_INST_PROC(GetPhysicalDeviceFeatures);
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GET_INST_PROC(CreateDevice);
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GET_INST_PROC(EnumerateDeviceExtensionProperties);
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GET_INST_PROC(CreateAndroidSurfaceKHR);
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GET_INST_PROC(DestroySurfaceKHR);
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GET_INST_PROC(GetPhysicalDeviceSurfaceSupportKHR);
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GET_INST_PROC(GetPhysicalDeviceSurfaceCapabilitiesKHR);
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GET_INST_PROC(GetPhysicalDeviceSurfaceFormatsKHR);
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GET_INST_PROC(GetPhysicalDeviceSurfacePresentModesKHR);
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uint32_t gpuCount;
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err = mEnumeratePhysicalDevices(mInstance, &gpuCount, nullptr);
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if (err) {
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this->destroy();
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return false;
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}
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if (!gpuCount) {
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this->destroy();
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return false;
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}
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// Just returning the first physical device instead of getting the whole array. Since there
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// should only be one device on android.
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gpuCount = 1;
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err = mEnumeratePhysicalDevices(mInstance, &gpuCount, &mPhysicalDevice);
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// VK_INCOMPLETE is returned when the count we provide is less than the total device count.
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if (err && VK_INCOMPLETE != err) {
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this->destroy();
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return false;
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}
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// query to get the initial queue props size
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uint32_t queueCount;
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mGetPhysicalDeviceQueueFamilyProperties(mPhysicalDevice, &queueCount, nullptr);
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if (!queueCount) {
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this->destroy();
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return false;
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}
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// now get the actual queue props
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std::unique_ptr<VkQueueFamilyProperties[]> queueProps(new VkQueueFamilyProperties[queueCount]);
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mGetPhysicalDeviceQueueFamilyProperties(mPhysicalDevice, &queueCount, queueProps.get());
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// iterate to find the graphics queue
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mGraphicsQueueIndex = queueCount;
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for (uint32_t i = 0; i < queueCount; i++) {
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if (queueProps[i].queueFlags & VK_QUEUE_GRAPHICS_BIT) {
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mGraphicsQueueIndex = i;
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break;
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}
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}
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if (mGraphicsQueueIndex == queueCount) {
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this->destroy();
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return false;
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}
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// All physical devices and queue families on Android must be capable of
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// presentation with any native window. So just use the first one.
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mPresentQueueIndex = 0;
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std::vector<const char*> deviceExtensions;
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{
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uint32_t extensionCount = 0;
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err = mEnumerateDeviceExtensionProperties(mPhysicalDevice, nullptr, &extensionCount,
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nullptr);
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if (VK_SUCCESS != err) {
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this->destroy();
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return false;
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}
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std::unique_ptr<VkExtensionProperties[]> extensions(
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new VkExtensionProperties[extensionCount]);
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err = mEnumerateDeviceExtensionProperties(mPhysicalDevice, nullptr, &extensionCount,
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extensions.get());
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if (VK_SUCCESS != err) {
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this->destroy();
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return false;
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}
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bool hasKHRSwapchainExtension = false;
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for (uint32_t i = 0; i < extensionCount; ++i) {
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deviceExtensions.push_back(extensions[i].extensionName);
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if (!strcmp(extensions[i].extensionName, VK_KHR_SWAPCHAIN_EXTENSION_NAME)) {
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hasKHRSwapchainExtension = true;
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}
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}
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if (!hasKHRSwapchainExtension) {
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this->destroy();
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return false;
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}
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}
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// query to get the physical device properties
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mGetPhysicalDeviceFeatures(mPhysicalDevice, &deviceFeatures);
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// this looks like it would slow things down,
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// and we can't depend on it on all platforms
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deviceFeatures.robustBufferAccess = VK_FALSE;
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float queuePriorities[1] = { 0.0 };
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const VkDeviceQueueCreateInfo queueInfo[2] = {
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{
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VK_STRUCTURE_TYPE_DEVICE_QUEUE_CREATE_INFO, // sType
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nullptr, // pNext
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0, // VkDeviceQueueCreateFlags
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mGraphicsQueueIndex, // queueFamilyIndex
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1, // queueCount
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queuePriorities, // pQueuePriorities
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},
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{
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VK_STRUCTURE_TYPE_DEVICE_QUEUE_CREATE_INFO, // sType
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nullptr, // pNext
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0, // VkDeviceQueueCreateFlags
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mPresentQueueIndex, // queueFamilyIndex
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1, // queueCount
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queuePriorities, // pQueuePriorities
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}
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};
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uint32_t queueInfoCount = (mPresentQueueIndex != mGraphicsQueueIndex) ? 2 : 1;
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const VkDeviceCreateInfo deviceInfo = {
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VK_STRUCTURE_TYPE_DEVICE_CREATE_INFO, // sType
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nullptr, // pNext
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0, // VkDeviceCreateFlags
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queueInfoCount, // queueCreateInfoCount
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queueInfo, // pQueueCreateInfos
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0, // layerCount
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nullptr, // ppEnabledLayerNames
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(uint32_t) deviceExtensions.size(), // extensionCount
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deviceExtensions.data(), // ppEnabledExtensionNames
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&deviceFeatures // ppEnabledFeatures
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};
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err = mCreateDevice(mPhysicalDevice, &deviceInfo, nullptr, &mDevice);
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if (err) {
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this->destroy();
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return false;
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}
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GET_DEV_PROC(GetDeviceQueue);
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GET_DEV_PROC(DeviceWaitIdle);
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GET_DEV_PROC(DestroyDevice);
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GET_DEV_PROC(CreateSwapchainKHR);
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GET_DEV_PROC(DestroySwapchainKHR);
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GET_DEV_PROC(GetSwapchainImagesKHR);
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GET_DEV_PROC(AcquireNextImageKHR);
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GET_DEV_PROC(QueuePresentKHR);
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GET_DEV_PROC(CreateCommandPool);
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GET_DEV_PROC(DestroyCommandPool);
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GET_DEV_PROC(AllocateCommandBuffers);
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GET_DEV_PROC(FreeCommandBuffers);
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GET_DEV_PROC(ResetCommandBuffer);
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GET_DEV_PROC(BeginCommandBuffer);
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GET_DEV_PROC(EndCommandBuffer);
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GET_DEV_PROC(CmdPipelineBarrier);
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GET_DEV_PROC(GetDeviceQueue);
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GET_DEV_PROC(QueueSubmit);
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GET_DEV_PROC(QueueWaitIdle);
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GET_DEV_PROC(DeviceWaitIdle);
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GET_DEV_PROC(CreateSemaphore);
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GET_DEV_PROC(DestroySemaphore);
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GET_DEV_PROC(CreateFence);
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GET_DEV_PROC(DestroyFence);
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GET_DEV_PROC(WaitForFences);
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GET_DEV_PROC(ResetFences);
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return true;
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}
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void VulkanManager::initialize() {
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if (mDevice != VK_NULL_HANDLE) {
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return;
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}
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std::vector<const char*> instanceExtensions;
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std::vector<const char*> deviceExtensions;
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VkPhysicalDeviceFeatures deviceFeatures;
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LOG_ALWAYS_FATAL_IF(!this->setupDevice(deviceFeatures));
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mGetDeviceQueue(mDevice, mGraphicsQueueIndex, 0, &mGraphicsQueue);
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uint32_t extensionFlags = kKHR_surface_GrVkExtensionFlag |
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kKHR_android_surface_GrVkExtensionFlag |
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kKHR_swapchain_GrVkExtensionFlag;
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uint32_t featureFlags = 0;
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if (deviceFeatures.geometryShader) {
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featureFlags |= kGeometryShader_GrVkFeatureFlag;
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}
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if (deviceFeatures.dualSrcBlend) {
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featureFlags |= kDualSrcBlend_GrVkFeatureFlag;
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}
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if (deviceFeatures.sampleRateShading) {
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featureFlags |= kSampleRateShading_GrVkFeatureFlag;
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}
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auto getProc = [] (const char* proc_name, VkInstance instance, VkDevice device) {
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if (device != VK_NULL_HANDLE) {
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return vkGetDeviceProcAddr(device, proc_name);
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}
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return vkGetInstanceProcAddr(instance, proc_name);
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};
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GrVkBackendContext backendContext;
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backendContext.fInstance = mInstance;
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backendContext.fPhysicalDevice = mPhysicalDevice;
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backendContext.fDevice = mDevice;
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backendContext.fQueue = mGraphicsQueue;
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backendContext.fGraphicsQueueIndex = mGraphicsQueueIndex;
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backendContext.fMinAPIVersion = VK_MAKE_VERSION(1, 0, 0);
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backendContext.fExtensions = extensionFlags;
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backendContext.fFeatures = featureFlags;
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backendContext.fGetProc = std::move(getProc);
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backendContext.fOwnsInstanceAndDevice = false;
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// create the command pool for the command buffers
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if (VK_NULL_HANDLE == mCommandPool) {
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VkCommandPoolCreateInfo commandPoolInfo;
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memset(&commandPoolInfo, 0, sizeof(VkCommandPoolCreateInfo));
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commandPoolInfo.sType = VK_STRUCTURE_TYPE_COMMAND_POOL_CREATE_INFO;
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// this needs to be on the render queue
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commandPoolInfo.queueFamilyIndex = mGraphicsQueueIndex;
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commandPoolInfo.flags = VK_COMMAND_POOL_CREATE_RESET_COMMAND_BUFFER_BIT;
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SkDEBUGCODE(VkResult res =) mCreateCommandPool(mDevice, &commandPoolInfo, nullptr,
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&mCommandPool);
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SkASSERT(VK_SUCCESS == res);
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}
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mGetDeviceQueue(mDevice, mPresentQueueIndex, 0, &mPresentQueue);
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GrContextOptions options;
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options.fDisableDistanceFieldPaths = true;
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mRenderThread.cacheManager().configureContext(&options);
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sk_sp<GrContext> grContext(GrContext::MakeVulkan(backendContext, options));
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LOG_ALWAYS_FATAL_IF(!grContext.get());
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mRenderThread.setGrContext(grContext);
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DeviceInfo::initialize(mRenderThread.getGrContext()->maxRenderTargetSize());
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if (Properties::enablePartialUpdates && Properties::useBufferAge) {
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mSwapBehavior = SwapBehavior::BufferAge;
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}
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mRenderThread.renderState().onVkContextCreated();
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}
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// Returns the next BackbufferInfo to use for the next draw. The function will make sure all
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// previous uses have finished before returning.
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VulkanSurface::BackbufferInfo* VulkanManager::getAvailableBackbuffer(VulkanSurface* surface) {
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SkASSERT(surface->mBackbuffers);
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++surface->mCurrentBackbufferIndex;
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if (surface->mCurrentBackbufferIndex > surface->mImageCount) {
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surface->mCurrentBackbufferIndex = 0;
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}
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VulkanSurface::BackbufferInfo* backbuffer =
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surface->mBackbuffers + surface->mCurrentBackbufferIndex;
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// Before we reuse a backbuffer, make sure its fences have all signaled so that we can safely
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// reuse its commands buffers.
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VkResult res = mWaitForFences(mDevice, 2, backbuffer->mUsageFences, true, UINT64_MAX);
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if (res != VK_SUCCESS) {
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return nullptr;
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}
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return backbuffer;
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}
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SkSurface* VulkanManager::getBackbufferSurface(VulkanSurface* surface) {
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VulkanSurface::BackbufferInfo* backbuffer = getAvailableBackbuffer(surface);
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SkASSERT(backbuffer);
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VkResult res;
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res = mResetFences(mDevice, 2, backbuffer->mUsageFences);
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SkASSERT(VK_SUCCESS == res);
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// The acquire will signal the attached mAcquireSemaphore. We use this to know the image has
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// finished presenting and that it is safe to begin sending new commands to the returned image.
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res = mAcquireNextImageKHR(mDevice, surface->mSwapchain, UINT64_MAX,
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backbuffer->mAcquireSemaphore, VK_NULL_HANDLE,
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&backbuffer->mImageIndex);
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if (VK_ERROR_SURFACE_LOST_KHR == res) {
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// need to figure out how to create a new vkSurface without the platformData*
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// maybe use attach somehow? but need a Window
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return nullptr;
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}
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if (VK_ERROR_OUT_OF_DATE_KHR == res) {
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// tear swapchain down and try again
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if (!createSwapchain(surface)) {
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return nullptr;
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}
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backbuffer = getAvailableBackbuffer(surface);
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res = mResetFences(mDevice, 2, backbuffer->mUsageFences);
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SkASSERT(VK_SUCCESS == res);
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// acquire the image
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res = mAcquireNextImageKHR(mDevice, surface->mSwapchain, UINT64_MAX,
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backbuffer->mAcquireSemaphore, VK_NULL_HANDLE,
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&backbuffer->mImageIndex);
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if (VK_SUCCESS != res) {
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return nullptr;
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}
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}
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// set up layout transfer from initial to color attachment
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VkImageLayout layout = surface->mImageInfos[backbuffer->mImageIndex].mImageLayout;
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SkASSERT(VK_IMAGE_LAYOUT_UNDEFINED == layout || VK_IMAGE_LAYOUT_PRESENT_SRC_KHR == layout);
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VkPipelineStageFlags srcStageMask = (VK_IMAGE_LAYOUT_UNDEFINED == layout)
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? VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT
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: VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT;
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VkPipelineStageFlags dstStageMask = VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT;
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VkAccessFlags srcAccessMask =
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(VK_IMAGE_LAYOUT_UNDEFINED == layout) ? 0 : VK_ACCESS_MEMORY_READ_BIT;
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VkAccessFlags dstAccessMask = VK_ACCESS_COLOR_ATTACHMENT_WRITE_BIT;
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VkImageMemoryBarrier imageMemoryBarrier = {
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VK_STRUCTURE_TYPE_IMAGE_MEMORY_BARRIER, // sType
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NULL, // pNext
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srcAccessMask, // outputMask
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dstAccessMask, // inputMask
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layout, // oldLayout
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VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL, // newLayout
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mPresentQueueIndex, // srcQueueFamilyIndex
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mGraphicsQueueIndex, // dstQueueFamilyIndex
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surface->mImages[backbuffer->mImageIndex], // image
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{VK_IMAGE_ASPECT_COLOR_BIT, 0, 1, 0, 1} // subresourceRange
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};
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mResetCommandBuffer(backbuffer->mTransitionCmdBuffers[0], 0);
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VkCommandBufferBeginInfo info;
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memset(&info, 0, sizeof(VkCommandBufferBeginInfo));
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info.sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_BEGIN_INFO;
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info.flags = 0;
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mBeginCommandBuffer(backbuffer->mTransitionCmdBuffers[0], &info);
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mCmdPipelineBarrier(backbuffer->mTransitionCmdBuffers[0], srcStageMask, dstStageMask, 0, 0,
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nullptr, 0, nullptr, 1, &imageMemoryBarrier);
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mEndCommandBuffer(backbuffer->mTransitionCmdBuffers[0]);
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VkPipelineStageFlags waitDstStageFlags = VK_PIPELINE_STAGE_COLOR_ATTACHMENT_OUTPUT_BIT;
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// insert the layout transfer into the queue and wait on the acquire
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VkSubmitInfo submitInfo;
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memset(&submitInfo, 0, sizeof(VkSubmitInfo));
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submitInfo.sType = VK_STRUCTURE_TYPE_SUBMIT_INFO;
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submitInfo.waitSemaphoreCount = 1;
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// Wait to make sure aquire semaphore set above has signaled.
|
|
submitInfo.pWaitSemaphores = &backbuffer->mAcquireSemaphore;
|
|
submitInfo.pWaitDstStageMask = &waitDstStageFlags;
|
|
submitInfo.commandBufferCount = 1;
|
|
submitInfo.pCommandBuffers = &backbuffer->mTransitionCmdBuffers[0];
|
|
submitInfo.signalSemaphoreCount = 0;
|
|
|
|
// Attach first fence to submission here so we can track when the command buffer finishes.
|
|
mQueueSubmit(mGraphicsQueue, 1, &submitInfo, backbuffer->mUsageFences[0]);
|
|
|
|
// We need to notify Skia that we changed the layout of the wrapped VkImage
|
|
sk_sp<SkSurface> skSurface = surface->mImageInfos[backbuffer->mImageIndex].mSurface;
|
|
GrBackendRenderTarget backendRT = skSurface->getBackendRenderTarget(
|
|
SkSurface::kFlushRead_BackendHandleAccess);
|
|
if (!backendRT.isValid()) {
|
|
SkASSERT(backendRT.isValid());
|
|
return nullptr;
|
|
}
|
|
backendRT.setVkImageLayout(VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL);
|
|
|
|
surface->mBackbuffer = std::move(skSurface);
|
|
return surface->mBackbuffer.get();
|
|
}
|
|
|
|
void VulkanManager::destroyBuffers(VulkanSurface* surface) {
|
|
if (surface->mBackbuffers) {
|
|
for (uint32_t i = 0; i < surface->mImageCount + 1; ++i) {
|
|
mWaitForFences(mDevice, 2, surface->mBackbuffers[i].mUsageFences, true, UINT64_MAX);
|
|
surface->mBackbuffers[i].mImageIndex = -1;
|
|
mDestroySemaphore(mDevice, surface->mBackbuffers[i].mAcquireSemaphore, nullptr);
|
|
mDestroySemaphore(mDevice, surface->mBackbuffers[i].mRenderSemaphore, nullptr);
|
|
mFreeCommandBuffers(mDevice, mCommandPool, 2,
|
|
surface->mBackbuffers[i].mTransitionCmdBuffers);
|
|
mDestroyFence(mDevice, surface->mBackbuffers[i].mUsageFences[0], 0);
|
|
mDestroyFence(mDevice, surface->mBackbuffers[i].mUsageFences[1], 0);
|
|
}
|
|
}
|
|
|
|
delete[] surface->mBackbuffers;
|
|
surface->mBackbuffers = nullptr;
|
|
delete[] surface->mImageInfos;
|
|
surface->mImageInfos = nullptr;
|
|
delete[] surface->mImages;
|
|
surface->mImages = nullptr;
|
|
}
|
|
|
|
void VulkanManager::destroySurface(VulkanSurface* surface) {
|
|
// Make sure all submit commands have finished before starting to destroy objects.
|
|
if (VK_NULL_HANDLE != mPresentQueue) {
|
|
mQueueWaitIdle(mPresentQueue);
|
|
}
|
|
mDeviceWaitIdle(mDevice);
|
|
|
|
destroyBuffers(surface);
|
|
|
|
if (VK_NULL_HANDLE != surface->mSwapchain) {
|
|
mDestroySwapchainKHR(mDevice, surface->mSwapchain, nullptr);
|
|
surface->mSwapchain = VK_NULL_HANDLE;
|
|
}
|
|
|
|
if (VK_NULL_HANDLE != surface->mVkSurface) {
|
|
mDestroySurfaceKHR(mInstance, surface->mVkSurface, nullptr);
|
|
surface->mVkSurface = VK_NULL_HANDLE;
|
|
}
|
|
delete surface;
|
|
}
|
|
|
|
void VulkanManager::createBuffers(VulkanSurface* surface, VkFormat format, VkExtent2D extent) {
|
|
mGetSwapchainImagesKHR(mDevice, surface->mSwapchain, &surface->mImageCount, nullptr);
|
|
SkASSERT(surface->mImageCount);
|
|
surface->mImages = new VkImage[surface->mImageCount];
|
|
mGetSwapchainImagesKHR(mDevice, surface->mSwapchain, &surface->mImageCount, surface->mImages);
|
|
|
|
SkSurfaceProps props(0, kUnknown_SkPixelGeometry);
|
|
|
|
// set up initial image layouts and create surfaces
|
|
surface->mImageInfos = new VulkanSurface::ImageInfo[surface->mImageCount];
|
|
for (uint32_t i = 0; i < surface->mImageCount; ++i) {
|
|
GrVkImageInfo info;
|
|
info.fImage = surface->mImages[i];
|
|
info.fAlloc = GrVkAlloc();
|
|
info.fImageLayout = VK_IMAGE_LAYOUT_UNDEFINED;
|
|
info.fImageTiling = VK_IMAGE_TILING_OPTIMAL;
|
|
info.fFormat = format;
|
|
info.fLevelCount = 1;
|
|
|
|
GrBackendRenderTarget backendRT(extent.width, extent.height, 0, 0, info);
|
|
|
|
VulkanSurface::ImageInfo& imageInfo = surface->mImageInfos[i];
|
|
imageInfo.mSurface = SkSurface::MakeFromBackendRenderTarget(
|
|
mRenderThread.getGrContext(), backendRT, kTopLeft_GrSurfaceOrigin,
|
|
kRGBA_8888_SkColorType, nullptr, &props);
|
|
}
|
|
|
|
SkASSERT(mCommandPool != VK_NULL_HANDLE);
|
|
|
|
// set up the backbuffers
|
|
VkSemaphoreCreateInfo semaphoreInfo;
|
|
memset(&semaphoreInfo, 0, sizeof(VkSemaphoreCreateInfo));
|
|
semaphoreInfo.sType = VK_STRUCTURE_TYPE_SEMAPHORE_CREATE_INFO;
|
|
semaphoreInfo.pNext = nullptr;
|
|
semaphoreInfo.flags = 0;
|
|
VkCommandBufferAllocateInfo commandBuffersInfo;
|
|
memset(&commandBuffersInfo, 0, sizeof(VkCommandBufferAllocateInfo));
|
|
commandBuffersInfo.sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_ALLOCATE_INFO;
|
|
commandBuffersInfo.pNext = nullptr;
|
|
commandBuffersInfo.commandPool = mCommandPool;
|
|
commandBuffersInfo.level = VK_COMMAND_BUFFER_LEVEL_PRIMARY;
|
|
commandBuffersInfo.commandBufferCount = 2;
|
|
VkFenceCreateInfo fenceInfo;
|
|
memset(&fenceInfo, 0, sizeof(VkFenceCreateInfo));
|
|
fenceInfo.sType = VK_STRUCTURE_TYPE_FENCE_CREATE_INFO;
|
|
fenceInfo.pNext = nullptr;
|
|
fenceInfo.flags = VK_FENCE_CREATE_SIGNALED_BIT;
|
|
|
|
// we create one additional backbuffer structure here, because we want to
|
|
// give the command buffers they contain a chance to finish before we cycle back
|
|
surface->mBackbuffers = new VulkanSurface::BackbufferInfo[surface->mImageCount + 1];
|
|
for (uint32_t i = 0; i < surface->mImageCount + 1; ++i) {
|
|
SkDEBUGCODE(VkResult res);
|
|
surface->mBackbuffers[i].mImageIndex = -1;
|
|
SkDEBUGCODE(res =) mCreateSemaphore(mDevice, &semaphoreInfo, nullptr,
|
|
&surface->mBackbuffers[i].mAcquireSemaphore);
|
|
SkDEBUGCODE(res =) mCreateSemaphore(mDevice, &semaphoreInfo, nullptr,
|
|
&surface->mBackbuffers[i].mRenderSemaphore);
|
|
SkDEBUGCODE(res =) mAllocateCommandBuffers(mDevice, &commandBuffersInfo,
|
|
surface->mBackbuffers[i].mTransitionCmdBuffers);
|
|
SkDEBUGCODE(res =) mCreateFence(mDevice, &fenceInfo, nullptr,
|
|
&surface->mBackbuffers[i].mUsageFences[0]);
|
|
SkDEBUGCODE(res =) mCreateFence(mDevice, &fenceInfo, nullptr,
|
|
&surface->mBackbuffers[i].mUsageFences[1]);
|
|
SkASSERT(VK_SUCCESS == res);
|
|
}
|
|
surface->mCurrentBackbufferIndex = surface->mImageCount;
|
|
}
|
|
|
|
bool VulkanManager::createSwapchain(VulkanSurface* surface) {
|
|
// check for capabilities
|
|
VkSurfaceCapabilitiesKHR caps;
|
|
VkResult res = mGetPhysicalDeviceSurfaceCapabilitiesKHR(mPhysicalDevice,
|
|
surface->mVkSurface, &caps);
|
|
if (VK_SUCCESS != res) {
|
|
return false;
|
|
}
|
|
|
|
uint32_t surfaceFormatCount;
|
|
res = mGetPhysicalDeviceSurfaceFormatsKHR(mPhysicalDevice, surface->mVkSurface,
|
|
&surfaceFormatCount, nullptr);
|
|
if (VK_SUCCESS != res) {
|
|
return false;
|
|
}
|
|
|
|
FatVector<VkSurfaceFormatKHR, 4> surfaceFormats(surfaceFormatCount);
|
|
res = mGetPhysicalDeviceSurfaceFormatsKHR(mPhysicalDevice, surface->mVkSurface,
|
|
&surfaceFormatCount, surfaceFormats.data());
|
|
if (VK_SUCCESS != res) {
|
|
return false;
|
|
}
|
|
|
|
uint32_t presentModeCount;
|
|
res = mGetPhysicalDeviceSurfacePresentModesKHR(mPhysicalDevice,
|
|
surface->mVkSurface, &presentModeCount, nullptr);
|
|
if (VK_SUCCESS != res) {
|
|
return false;
|
|
}
|
|
|
|
FatVector<VkPresentModeKHR, VK_PRESENT_MODE_RANGE_SIZE_KHR> presentModes(presentModeCount);
|
|
res = mGetPhysicalDeviceSurfacePresentModesKHR(mPhysicalDevice,
|
|
surface->mVkSurface, &presentModeCount,
|
|
presentModes.data());
|
|
if (VK_SUCCESS != res) {
|
|
return false;
|
|
}
|
|
|
|
VkExtent2D extent = caps.currentExtent;
|
|
// clamp width; to handle currentExtent of -1 and protect us from broken hints
|
|
if (extent.width < caps.minImageExtent.width) {
|
|
extent.width = caps.minImageExtent.width;
|
|
}
|
|
SkASSERT(extent.width <= caps.maxImageExtent.width);
|
|
// clamp height
|
|
if (extent.height < caps.minImageExtent.height) {
|
|
extent.height = caps.minImageExtent.height;
|
|
}
|
|
SkASSERT(extent.height <= caps.maxImageExtent.height);
|
|
|
|
uint32_t imageCount = caps.minImageCount + 2;
|
|
if (caps.maxImageCount > 0 && imageCount > caps.maxImageCount) {
|
|
// Application must settle for fewer images than desired:
|
|
imageCount = caps.maxImageCount;
|
|
}
|
|
|
|
// Currently Skia requires the images to be color attchments and support all transfer
|
|
// operations.
|
|
VkImageUsageFlags usageFlags = VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT |
|
|
VK_IMAGE_USAGE_TRANSFER_SRC_BIT |
|
|
VK_IMAGE_USAGE_TRANSFER_DST_BIT;
|
|
SkASSERT((caps.supportedUsageFlags & usageFlags) == usageFlags);
|
|
SkASSERT(caps.supportedTransforms & caps.currentTransform);
|
|
SkASSERT(caps.supportedCompositeAlpha &
|
|
(VK_COMPOSITE_ALPHA_OPAQUE_BIT_KHR | VK_COMPOSITE_ALPHA_INHERIT_BIT_KHR));
|
|
VkCompositeAlphaFlagBitsKHR composite_alpha =
|
|
(caps.supportedCompositeAlpha & VK_COMPOSITE_ALPHA_INHERIT_BIT_KHR)
|
|
? VK_COMPOSITE_ALPHA_INHERIT_BIT_KHR
|
|
: VK_COMPOSITE_ALPHA_OPAQUE_BIT_KHR;
|
|
|
|
// Pick our surface format. For now, just make sure it matches our sRGB request:
|
|
VkFormat surfaceFormat = VK_FORMAT_UNDEFINED;
|
|
VkColorSpaceKHR colorSpace = VK_COLORSPACE_SRGB_NONLINEAR_KHR;
|
|
|
|
bool wantSRGB = false;
|
|
#ifdef ANDROID_ENABLE_LINEAR_BLENDING
|
|
wantSRGB = true;
|
|
#endif
|
|
for (uint32_t i = 0; i < surfaceFormatCount; ++i) {
|
|
// We are assuming we can get either R8G8B8A8_UNORM or R8G8B8A8_SRGB
|
|
VkFormat desiredFormat = wantSRGB ? VK_FORMAT_R8G8B8A8_SRGB : VK_FORMAT_R8G8B8A8_UNORM;
|
|
if (desiredFormat == surfaceFormats[i].format) {
|
|
surfaceFormat = surfaceFormats[i].format;
|
|
colorSpace = surfaceFormats[i].colorSpace;
|
|
}
|
|
}
|
|
|
|
if (VK_FORMAT_UNDEFINED == surfaceFormat) {
|
|
return false;
|
|
}
|
|
|
|
// If mailbox mode is available, use it, as it is the lowest-latency non-
|
|
// tearing mode. If not, fall back to FIFO which is always available.
|
|
VkPresentModeKHR mode = VK_PRESENT_MODE_FIFO_KHR;
|
|
for (uint32_t i = 0; i < presentModeCount; ++i) {
|
|
// use mailbox
|
|
if (VK_PRESENT_MODE_MAILBOX_KHR == presentModes[i]) {
|
|
mode = presentModes[i];
|
|
break;
|
|
}
|
|
}
|
|
|
|
VkSwapchainCreateInfoKHR swapchainCreateInfo;
|
|
memset(&swapchainCreateInfo, 0, sizeof(VkSwapchainCreateInfoKHR));
|
|
swapchainCreateInfo.sType = VK_STRUCTURE_TYPE_SWAPCHAIN_CREATE_INFO_KHR;
|
|
swapchainCreateInfo.surface = surface->mVkSurface;
|
|
swapchainCreateInfo.minImageCount = imageCount;
|
|
swapchainCreateInfo.imageFormat = surfaceFormat;
|
|
swapchainCreateInfo.imageColorSpace = colorSpace;
|
|
swapchainCreateInfo.imageExtent = extent;
|
|
swapchainCreateInfo.imageArrayLayers = 1;
|
|
swapchainCreateInfo.imageUsage = usageFlags;
|
|
|
|
uint32_t queueFamilies[] = {mGraphicsQueueIndex, mPresentQueueIndex};
|
|
if (mGraphicsQueueIndex != mPresentQueueIndex) {
|
|
swapchainCreateInfo.imageSharingMode = VK_SHARING_MODE_CONCURRENT;
|
|
swapchainCreateInfo.queueFamilyIndexCount = 2;
|
|
swapchainCreateInfo.pQueueFamilyIndices = queueFamilies;
|
|
} else {
|
|
swapchainCreateInfo.imageSharingMode = VK_SHARING_MODE_EXCLUSIVE;
|
|
swapchainCreateInfo.queueFamilyIndexCount = 0;
|
|
swapchainCreateInfo.pQueueFamilyIndices = nullptr;
|
|
}
|
|
|
|
swapchainCreateInfo.preTransform = VK_SURFACE_TRANSFORM_IDENTITY_BIT_KHR;
|
|
swapchainCreateInfo.compositeAlpha = composite_alpha;
|
|
swapchainCreateInfo.presentMode = mode;
|
|
swapchainCreateInfo.clipped = true;
|
|
swapchainCreateInfo.oldSwapchain = surface->mSwapchain;
|
|
|
|
res = mCreateSwapchainKHR(mDevice, &swapchainCreateInfo, nullptr, &surface->mSwapchain);
|
|
if (VK_SUCCESS != res) {
|
|
return false;
|
|
}
|
|
|
|
// destroy the old swapchain
|
|
if (swapchainCreateInfo.oldSwapchain != VK_NULL_HANDLE) {
|
|
mDeviceWaitIdle(mDevice);
|
|
|
|
destroyBuffers(surface);
|
|
|
|
mDestroySwapchainKHR(mDevice, swapchainCreateInfo.oldSwapchain, nullptr);
|
|
}
|
|
|
|
createBuffers(surface, surfaceFormat, extent);
|
|
|
|
return true;
|
|
}
|
|
|
|
VulkanSurface* VulkanManager::createSurface(ANativeWindow* window) {
|
|
initialize();
|
|
|
|
if (!window) {
|
|
return nullptr;
|
|
}
|
|
|
|
VulkanSurface* surface = new VulkanSurface();
|
|
|
|
VkAndroidSurfaceCreateInfoKHR surfaceCreateInfo;
|
|
memset(&surfaceCreateInfo, 0, sizeof(VkAndroidSurfaceCreateInfoKHR));
|
|
surfaceCreateInfo.sType = VK_STRUCTURE_TYPE_ANDROID_SURFACE_CREATE_INFO_KHR;
|
|
surfaceCreateInfo.pNext = nullptr;
|
|
surfaceCreateInfo.flags = 0;
|
|
surfaceCreateInfo.window = window;
|
|
|
|
VkResult res = mCreateAndroidSurfaceKHR(mInstance, &surfaceCreateInfo, nullptr,
|
|
&surface->mVkSurface);
|
|
if (VK_SUCCESS != res) {
|
|
delete surface;
|
|
return nullptr;
|
|
}
|
|
|
|
SkDEBUGCODE(VkBool32 supported; res = mGetPhysicalDeviceSurfaceSupportKHR(
|
|
mPhysicalDevice, mPresentQueueIndex, surface->mVkSurface, &supported);
|
|
// All physical devices and queue families on Android must be capable of
|
|
// presentation with any native window.
|
|
SkASSERT(VK_SUCCESS == res && supported););
|
|
|
|
if (!createSwapchain(surface)) {
|
|
destroySurface(surface);
|
|
return nullptr;
|
|
}
|
|
|
|
return surface;
|
|
}
|
|
|
|
// Helper to know which src stage flags we need to set when transitioning to the present layout
|
|
static VkPipelineStageFlags layoutToPipelineStageFlags(const VkImageLayout layout) {
|
|
if (VK_IMAGE_LAYOUT_GENERAL == layout) {
|
|
return VK_PIPELINE_STAGE_ALL_COMMANDS_BIT;
|
|
} else if (VK_IMAGE_LAYOUT_TRANSFER_SRC_OPTIMAL == layout ||
|
|
VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL == layout) {
|
|
return VK_PIPELINE_STAGE_TRANSFER_BIT;
|
|
} else if (VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL == layout ||
|
|
VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL == layout ||
|
|
VK_IMAGE_LAYOUT_DEPTH_STENCIL_READ_ONLY_OPTIMAL == layout ||
|
|
VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL == layout) {
|
|
return VK_PIPELINE_STAGE_ALL_GRAPHICS_BIT;
|
|
} else if (VK_IMAGE_LAYOUT_PREINITIALIZED == layout) {
|
|
return VK_PIPELINE_STAGE_HOST_BIT;
|
|
}
|
|
|
|
SkASSERT(VK_IMAGE_LAYOUT_UNDEFINED == layout);
|
|
return VK_PIPELINE_STAGE_TOP_OF_PIPE_BIT;
|
|
}
|
|
|
|
// Helper to know which src access mask we need to set when transitioning to the present layout
|
|
static VkAccessFlags layoutToSrcAccessMask(const VkImageLayout layout) {
|
|
VkAccessFlags flags = 0;
|
|
if (VK_IMAGE_LAYOUT_GENERAL == layout) {
|
|
flags = VK_ACCESS_COLOR_ATTACHMENT_WRITE_BIT |
|
|
VK_ACCESS_DEPTH_STENCIL_ATTACHMENT_WRITE_BIT | VK_ACCESS_TRANSFER_WRITE_BIT |
|
|
VK_ACCESS_TRANSFER_READ_BIT | VK_ACCESS_SHADER_READ_BIT | VK_ACCESS_HOST_WRITE_BIT |
|
|
VK_ACCESS_HOST_READ_BIT;
|
|
} else if (VK_IMAGE_LAYOUT_PREINITIALIZED == layout) {
|
|
flags = VK_ACCESS_HOST_WRITE_BIT;
|
|
} else if (VK_IMAGE_LAYOUT_COLOR_ATTACHMENT_OPTIMAL == layout) {
|
|
flags = VK_ACCESS_COLOR_ATTACHMENT_WRITE_BIT;
|
|
} else if (VK_IMAGE_LAYOUT_DEPTH_STENCIL_ATTACHMENT_OPTIMAL == layout) {
|
|
flags = VK_ACCESS_DEPTH_STENCIL_ATTACHMENT_WRITE_BIT;
|
|
} else if (VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL == layout) {
|
|
flags = VK_ACCESS_TRANSFER_WRITE_BIT;
|
|
} else if (VK_IMAGE_LAYOUT_TRANSFER_SRC_OPTIMAL == layout) {
|
|
flags = VK_ACCESS_TRANSFER_READ_BIT;
|
|
} else if (VK_IMAGE_LAYOUT_SHADER_READ_ONLY_OPTIMAL == layout) {
|
|
flags = VK_ACCESS_SHADER_READ_BIT;
|
|
}
|
|
return flags;
|
|
}
|
|
|
|
void VulkanManager::swapBuffers(VulkanSurface* surface) {
|
|
if (CC_UNLIKELY(Properties::waitForGpuCompletion)) {
|
|
ATRACE_NAME("Finishing GPU work");
|
|
mDeviceWaitIdle(mDevice);
|
|
}
|
|
|
|
SkASSERT(surface->mBackbuffers);
|
|
VulkanSurface::BackbufferInfo* backbuffer =
|
|
surface->mBackbuffers + surface->mCurrentBackbufferIndex;
|
|
|
|
SkSurface* skSurface = surface->mImageInfos[backbuffer->mImageIndex].mSurface.get();
|
|
GrBackendRenderTarget backendRT = skSurface->getBackendRenderTarget(
|
|
SkSurface::kFlushRead_BackendHandleAccess);
|
|
SkASSERT(backendRT.isValid());
|
|
|
|
GrVkImageInfo imageInfo;
|
|
SkAssertResult(backendRT.getVkImageInfo(&imageInfo));
|
|
|
|
// Check to make sure we never change the actually wrapped image
|
|
SkASSERT(imageInfo.fImage == surface->mImages[backbuffer->mImageIndex]);
|
|
|
|
// We need to transition the image to VK_IMAGE_LAYOUT_PRESENT_SRC_KHR and make sure that all
|
|
// previous work is complete for before presenting. So we first add the necessary barrier here.
|
|
VkImageLayout layout = imageInfo.fImageLayout;
|
|
VkPipelineStageFlags srcStageMask = layoutToPipelineStageFlags(layout);
|
|
VkPipelineStageFlags dstStageMask = VK_PIPELINE_STAGE_BOTTOM_OF_PIPE_BIT;
|
|
VkAccessFlags srcAccessMask = layoutToSrcAccessMask(layout);
|
|
VkAccessFlags dstAccessMask = VK_ACCESS_MEMORY_READ_BIT;
|
|
|
|
VkImageMemoryBarrier imageMemoryBarrier = {
|
|
VK_STRUCTURE_TYPE_IMAGE_MEMORY_BARRIER, // sType
|
|
NULL, // pNext
|
|
srcAccessMask, // outputMask
|
|
dstAccessMask, // inputMask
|
|
layout, // oldLayout
|
|
VK_IMAGE_LAYOUT_PRESENT_SRC_KHR, // newLayout
|
|
mGraphicsQueueIndex, // srcQueueFamilyIndex
|
|
mPresentQueueIndex, // dstQueueFamilyIndex
|
|
surface->mImages[backbuffer->mImageIndex], // image
|
|
{VK_IMAGE_ASPECT_COLOR_BIT, 0, 1, 0, 1} // subresourceRange
|
|
};
|
|
|
|
mResetCommandBuffer(backbuffer->mTransitionCmdBuffers[1], 0);
|
|
VkCommandBufferBeginInfo info;
|
|
memset(&info, 0, sizeof(VkCommandBufferBeginInfo));
|
|
info.sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_BEGIN_INFO;
|
|
info.flags = 0;
|
|
mBeginCommandBuffer(backbuffer->mTransitionCmdBuffers[1], &info);
|
|
mCmdPipelineBarrier(backbuffer->mTransitionCmdBuffers[1], srcStageMask, dstStageMask, 0, 0,
|
|
nullptr, 0, nullptr, 1, &imageMemoryBarrier);
|
|
mEndCommandBuffer(backbuffer->mTransitionCmdBuffers[1]);
|
|
|
|
surface->mImageInfos[backbuffer->mImageIndex].mImageLayout = VK_IMAGE_LAYOUT_PRESENT_SRC_KHR;
|
|
|
|
// insert the layout transfer into the queue and wait on the acquire
|
|
VkSubmitInfo submitInfo;
|
|
memset(&submitInfo, 0, sizeof(VkSubmitInfo));
|
|
submitInfo.sType = VK_STRUCTURE_TYPE_SUBMIT_INFO;
|
|
submitInfo.waitSemaphoreCount = 0;
|
|
submitInfo.pWaitDstStageMask = 0;
|
|
submitInfo.commandBufferCount = 1;
|
|
submitInfo.pCommandBuffers = &backbuffer->mTransitionCmdBuffers[1];
|
|
submitInfo.signalSemaphoreCount = 1;
|
|
// When this command buffer finishes we will signal this semaphore so that we know it is now
|
|
// safe to present the image to the screen.
|
|
submitInfo.pSignalSemaphores = &backbuffer->mRenderSemaphore;
|
|
|
|
// Attach second fence to submission here so we can track when the command buffer finishes.
|
|
mQueueSubmit(mGraphicsQueue, 1, &submitInfo, backbuffer->mUsageFences[1]);
|
|
|
|
// Submit present operation to present queue. We use a semaphore here to make sure all rendering
|
|
// to the image is complete and that the layout has been change to present on the graphics
|
|
// queue.
|
|
const VkPresentInfoKHR presentInfo = {
|
|
VK_STRUCTURE_TYPE_PRESENT_INFO_KHR, // sType
|
|
NULL, // pNext
|
|
1, // waitSemaphoreCount
|
|
&backbuffer->mRenderSemaphore, // pWaitSemaphores
|
|
1, // swapchainCount
|
|
&surface->mSwapchain, // pSwapchains
|
|
&backbuffer->mImageIndex, // pImageIndices
|
|
NULL // pResults
|
|
};
|
|
|
|
mQueuePresentKHR(mPresentQueue, &presentInfo);
|
|
|
|
surface->mBackbuffer.reset();
|
|
surface->mImageInfos[backbuffer->mImageIndex].mLastUsed = surface->mCurrentTime;
|
|
surface->mImageInfos[backbuffer->mImageIndex].mInvalid = false;
|
|
surface->mCurrentTime++;
|
|
}
|
|
|
|
int VulkanManager::getAge(VulkanSurface* surface) {
|
|
SkASSERT(surface->mBackbuffers);
|
|
VulkanSurface::BackbufferInfo* backbuffer =
|
|
surface->mBackbuffers + surface->mCurrentBackbufferIndex;
|
|
if (mSwapBehavior == SwapBehavior::Discard ||
|
|
surface->mImageInfos[backbuffer->mImageIndex].mInvalid) {
|
|
return 0;
|
|
}
|
|
uint16_t lastUsed = surface->mImageInfos[backbuffer->mImageIndex].mLastUsed;
|
|
return surface->mCurrentTime - lastUsed;
|
|
}
|
|
|
|
} /* namespace renderthread */
|
|
} /* namespace uirenderer */
|
|
} /* namespace android */
|