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RendererVk.cpp
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RendererVk.cpp
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//
// Copyright 2016 The ANGLE Project Authors. All rights reserved.
// Use of this source code is governed by a BSD-style license that can be
// found in the LICENSE file.
//
// RendererVk.cpp:
// Implements the class methods for RendererVk.
//
#include "libANGLE/renderer/vulkan/RendererVk.h"
// Placing this first seems to solve an intellisense bug.
#include "libANGLE/renderer/vulkan/vk_utils.h"
#include <EGL/eglext.h>
#include "common/debug.h"
#include "common/platform.h"
#include "common/system_utils.h"
#include "libANGLE/Context.h"
#include "libANGLE/Display.h"
#include "libANGLE/renderer/driver_utils.h"
#include "libANGLE/renderer/vulkan/CommandGraph.h"
#include "libANGLE/renderer/vulkan/CompilerVk.h"
#include "libANGLE/renderer/vulkan/ContextVk.h"
#include "libANGLE/renderer/vulkan/DisplayVk.h"
#include "libANGLE/renderer/vulkan/FramebufferVk.h"
#include "libANGLE/renderer/vulkan/GlslangWrapper.h"
#include "libANGLE/renderer/vulkan/ProgramVk.h"
#include "libANGLE/renderer/vulkan/VertexArrayVk.h"
#include "libANGLE/renderer/vulkan/vk_caps_utils.h"
#include "libANGLE/renderer/vulkan/vk_format_utils.h"
#include "libANGLE/trace.h"
#include "platform/Platform.h"
// Consts
namespace
{
const uint32_t kMockVendorID = 0xba5eba11;
const uint32_t kMockDeviceID = 0xf005ba11;
constexpr char kMockDeviceName[] = "Vulkan Mock Device";
constexpr VkFormatFeatureFlags kInvalidFormatFeatureFlags = static_cast<VkFormatFeatureFlags>(-1);
} // anonymous namespace
namespace rx
{
namespace
{
// Update the pipeline cache every this many swaps (if 60fps, this means every 10 minutes)
constexpr uint32_t kPipelineCacheVkUpdatePeriod = 10 * 60 * 60;
// Wait a maximum of 10s. If that times out, we declare it a failure.
constexpr uint64_t kMaxFenceWaitTimeNs = 10'000'000'000llu;
// Per the Vulkan specification, as long as Vulkan 1.1+ is returned by vkEnumerateInstanceVersion,
// ANGLE must indicate the highest version of Vulkan functionality that it uses. The Vulkan
// validation layers will issue messages for any core functionality that requires a higher version.
// This value must be increased whenever ANGLE starts using functionality from a newer core
// version of Vulkan.
constexpr uint32_t kPreferredVulkanAPIVersion = VK_API_VERSION_1_1;
bool ShouldEnableMockICD(const egl::AttributeMap &attribs)
{
#if !defined(ANGLE_PLATFORM_ANDROID)
// Mock ICD does not currently run on Android
return (attribs.get(EGL_PLATFORM_ANGLE_DEVICE_TYPE_ANGLE,
EGL_PLATFORM_ANGLE_DEVICE_TYPE_HARDWARE_ANGLE) ==
EGL_PLATFORM_ANGLE_DEVICE_TYPE_NULL_ANGLE);
#else
return false;
#endif // !defined(ANGLE_PLATFORM_ANDROID)
}
bool StrLess(const char *a, const char *b)
{
return strcmp(a, b) < 0;
}
bool ExtensionFound(const char *needle, const RendererVk::ExtensionNameList &haystack)
{
// NOTE: The list must be sorted.
return std::binary_search(haystack.begin(), haystack.end(), needle, StrLess);
}
VkResult VerifyExtensionsPresent(const RendererVk::ExtensionNameList &haystack,
const RendererVk::ExtensionNameList &needles)
{
// NOTE: The lists must be sorted.
if (std::includes(haystack.begin(), haystack.end(), needles.begin(), needles.end(), StrLess))
{
return VK_SUCCESS;
}
for (const char *needle : needles)
{
if (!ExtensionFound(needle, haystack))
{
ERR() << "Extension not supported: " << needle;
}
}
return VK_ERROR_EXTENSION_NOT_PRESENT;
}
// Array of Validation error/warning messages that will be ignored, should include bugID
constexpr const char *kSkippedMessages[] = {
// http://anglebug.com/2866
"UNASSIGNED-CoreValidation-Shader-OutputNotConsumed",
// http://anglebug.com/2796
"UNASSIGNED-CoreValidation-Shader-PointSizeMissing",
};
// Suppress validation errors that are known
// return "true" if given code/prefix/message is known, else return "false"
bool IsIgnoredDebugMessage(const char *message)
{
if (!message)
{
return false;
}
for (const char *msg : kSkippedMessages)
{
if (strstr(message, msg) != nullptr)
{
return true;
}
}
return false;
}
const char *GetVkObjectTypeName(VkObjectType type)
{
switch (type)
{
case VK_OBJECT_TYPE_UNKNOWN:
return "Unknown";
case VK_OBJECT_TYPE_INSTANCE:
return "Instance";
case VK_OBJECT_TYPE_PHYSICAL_DEVICE:
return "Physical Device";
case VK_OBJECT_TYPE_DEVICE:
return "Device";
case VK_OBJECT_TYPE_QUEUE:
return "Queue";
case VK_OBJECT_TYPE_SEMAPHORE:
return "Semaphore";
case VK_OBJECT_TYPE_COMMAND_BUFFER:
return "Command Buffer";
case VK_OBJECT_TYPE_FENCE:
return "Fence";
case VK_OBJECT_TYPE_DEVICE_MEMORY:
return "Device Memory";
case VK_OBJECT_TYPE_BUFFER:
return "Buffer";
case VK_OBJECT_TYPE_IMAGE:
return "Image";
case VK_OBJECT_TYPE_EVENT:
return "Event";
case VK_OBJECT_TYPE_QUERY_POOL:
return "Query Pool";
case VK_OBJECT_TYPE_BUFFER_VIEW:
return "Buffer View";
case VK_OBJECT_TYPE_IMAGE_VIEW:
return "Image View";
case VK_OBJECT_TYPE_SHADER_MODULE:
return "Shader Module";
case VK_OBJECT_TYPE_PIPELINE_CACHE:
return "Pipeline Cache";
case VK_OBJECT_TYPE_PIPELINE_LAYOUT:
return "Pipeline Layout";
case VK_OBJECT_TYPE_RENDER_PASS:
return "Render Pass";
case VK_OBJECT_TYPE_PIPELINE:
return "Pipeline";
case VK_OBJECT_TYPE_DESCRIPTOR_SET_LAYOUT:
return "Descriptor Set Layout";
case VK_OBJECT_TYPE_SAMPLER:
return "Sampler";
case VK_OBJECT_TYPE_DESCRIPTOR_POOL:
return "Descriptor Pool";
case VK_OBJECT_TYPE_DESCRIPTOR_SET:
return "Descriptor Set";
case VK_OBJECT_TYPE_FRAMEBUFFER:
return "Framebuffer";
case VK_OBJECT_TYPE_COMMAND_POOL:
return "Command Pool";
case VK_OBJECT_TYPE_SAMPLER_YCBCR_CONVERSION:
return "Sampler YCbCr Conversion";
case VK_OBJECT_TYPE_DESCRIPTOR_UPDATE_TEMPLATE:
return "Descriptor Update Template";
case VK_OBJECT_TYPE_SURFACE_KHR:
return "Surface";
case VK_OBJECT_TYPE_SWAPCHAIN_KHR:
return "Swapchain";
case VK_OBJECT_TYPE_DISPLAY_KHR:
return "Display";
case VK_OBJECT_TYPE_DISPLAY_MODE_KHR:
return "Display Mode";
case VK_OBJECT_TYPE_DEBUG_REPORT_CALLBACK_EXT:
return "Debug Report Callback";
case VK_OBJECT_TYPE_OBJECT_TABLE_NVX:
return "Object Table";
case VK_OBJECT_TYPE_INDIRECT_COMMANDS_LAYOUT_NVX:
return "Indirect Commands Layout";
case VK_OBJECT_TYPE_DEBUG_UTILS_MESSENGER_EXT:
return "Debug Utils Messenger";
case VK_OBJECT_TYPE_VALIDATION_CACHE_EXT:
return "Validation Cache";
case VK_OBJECT_TYPE_ACCELERATION_STRUCTURE_NV:
return "Acceleration Structure";
default:
return "<Unrecognized>";
}
}
VKAPI_ATTR VkBool32 VKAPI_CALL
DebugUtilsMessenger(VkDebugUtilsMessageSeverityFlagBitsEXT messageSeverity,
VkDebugUtilsMessageTypeFlagsEXT messageTypes,
const VkDebugUtilsMessengerCallbackDataEXT *callbackData,
void *userData)
{
// See if it's an issue we are aware of and don't want to be spammed about.
if (IsIgnoredDebugMessage(callbackData->pMessageIdName))
{
return VK_FALSE;
}
std::ostringstream log;
if (callbackData->pMessageIdName)
{
log << "[ " << callbackData->pMessageIdName << " ] ";
}
log << callbackData->pMessage << std::endl;
// Aesthetic value based on length of the function name, line number, etc.
constexpr size_t kStartIndent = 28;
// Output the debug marker hierarchy under which this error has occured.
size_t indent = kStartIndent;
if (callbackData->queueLabelCount > 0)
{
log << std::string(indent++, ' ') << "<Queue Label Hierarchy:>" << std::endl;
for (uint32_t i = 0; i < callbackData->queueLabelCount; ++i)
{
log << std::string(indent++, ' ') << callbackData->pQueueLabels[i].pLabelName
<< std::endl;
}
}
if (callbackData->cmdBufLabelCount > 0)
{
log << std::string(indent++, ' ') << "<Command Buffer Label Hierarchy:>" << std::endl;
for (uint32_t i = 0; i < callbackData->cmdBufLabelCount; ++i)
{
log << std::string(indent++, ' ') << callbackData->pCmdBufLabels[i].pLabelName
<< std::endl;
}
}
// Output the objects involved in this error message.
if (callbackData->objectCount > 0)
{
for (uint32_t i = 0; i < callbackData->objectCount; ++i)
{
const char *objectName = callbackData->pObjects[i].pObjectName;
const char *objectType = GetVkObjectTypeName(callbackData->pObjects[i].objectType);
uint64_t objectHandle = callbackData->pObjects[i].objectHandle;
log << std::string(indent, ' ') << "Object: ";
if (objectHandle == 0)
{
log << "VK_NULL_HANDLE";
}
else
{
log << "0x" << std::hex << objectHandle << std::dec;
}
log << " (type = " << objectType << "(" << callbackData->pObjects[i].objectType << "))";
if (objectName)
{
log << " [" << objectName << "]";
}
log << std::endl;
}
}
bool isError = (messageSeverity & VK_DEBUG_UTILS_MESSAGE_SEVERITY_ERROR_BIT_EXT) != 0;
std::string msg = log.str();
if (isError)
{
ERR() << msg;
}
else
{
WARN() << msg;
}
return VK_FALSE;
}
VKAPI_ATTR VkBool32 VKAPI_CALL DebugReportCallback(VkDebugReportFlagsEXT flags,
VkDebugReportObjectTypeEXT objectType,
uint64_t object,
size_t location,
int32_t messageCode,
const char *layerPrefix,
const char *message,
void *userData)
{
if (IsIgnoredDebugMessage(message))
{
return VK_FALSE;
}
if ((flags & VK_DEBUG_REPORT_ERROR_BIT_EXT) != 0)
{
ERR() << message;
#if !defined(NDEBUG)
// Abort the call in Debug builds.
return VK_TRUE;
#endif
}
else if ((flags & VK_DEBUG_REPORT_WARNING_BIT_EXT) != 0)
{
WARN() << message;
}
else
{
// Uncomment this if you want Vulkan spam.
// WARN() << message;
}
return VK_FALSE;
}
// If we're loading the validation layers, we could be running from any random directory.
// Change to the executable directory so we can find the layers, then change back to the
// previous directory to be safe we don't disrupt the application.
class ScopedVkLoaderEnvironment : angle::NonCopyable
{
public:
ScopedVkLoaderEnvironment(bool enableValidationLayers, bool enableMockICD)
: mEnableValidationLayers(enableValidationLayers),
mEnableMockICD(enableMockICD),
mChangedCWD(false),
mChangedICDPath(false)
{
// Changing CWD and setting environment variables makes no sense on Android,
// since this code is a part of Java application there.
// Android Vulkan loader doesn't need this either.
#if !defined(ANGLE_PLATFORM_ANDROID) && !defined(ANGLE_PLATFORM_FUCHSIA)
if (enableMockICD)
{
// Override environment variable to use built Mock ICD
// ANGLE_VK_ICD_JSON gets set to the built mock ICD in BUILD.gn
mPreviousICDPath = angle::GetEnvironmentVar(g_VkICDPathEnv);
mChangedICDPath = angle::SetEnvironmentVar(g_VkICDPathEnv, ANGLE_VK_ICD_JSON);
if (!mChangedICDPath)
{
ERR() << "Error setting Path for Mock/Null Driver.";
mEnableMockICD = false;
}
}
if (mEnableValidationLayers || mEnableMockICD)
{
const auto &cwd = angle::GetCWD();
if (!cwd.valid())
{
ERR() << "Error getting CWD for Vulkan layers init.";
mEnableValidationLayers = false;
mEnableMockICD = false;
}
else
{
mPreviousCWD = cwd.value();
std::string exeDir = angle::GetExecutableDirectory();
mChangedCWD = angle::SetCWD(exeDir.c_str());
if (!mChangedCWD)
{
ERR() << "Error setting CWD for Vulkan layers init.";
mEnableValidationLayers = false;
mEnableMockICD = false;
}
}
}
// Override environment variable to use the ANGLE layers.
if (mEnableValidationLayers)
{
if (!angle::PrependPathToEnvironmentVar(g_VkLoaderLayersPathEnv, ANGLE_VK_DATA_DIR))
{
ERR() << "Error setting environment for Vulkan layers init.";
mEnableValidationLayers = false;
}
}
#endif // !defined(ANGLE_PLATFORM_ANDROID)
}
~ScopedVkLoaderEnvironment()
{
if (mChangedCWD)
{
#if !defined(ANGLE_PLATFORM_ANDROID)
ASSERT(mPreviousCWD.valid());
angle::SetCWD(mPreviousCWD.value().c_str());
#endif // !defined(ANGLE_PLATFORM_ANDROID)
}
if (mChangedICDPath)
{
if (mPreviousICDPath.value().empty())
{
angle::UnsetEnvironmentVar(g_VkICDPathEnv);
}
else
{
angle::SetEnvironmentVar(g_VkICDPathEnv, mPreviousICDPath.value().c_str());
}
}
}
bool canEnableValidationLayers() const { return mEnableValidationLayers; }
bool canEnableMockICD() const { return mEnableMockICD; }
private:
bool mEnableValidationLayers;
bool mEnableMockICD;
bool mChangedCWD;
Optional<std::string> mPreviousCWD;
bool mChangedICDPath;
Optional<std::string> mPreviousICDPath;
};
void ChoosePhysicalDevice(const std::vector<VkPhysicalDevice> &physicalDevices,
bool preferMockICD,
VkPhysicalDevice *physicalDeviceOut,
VkPhysicalDeviceProperties *physicalDevicePropertiesOut)
{
ASSERT(!physicalDevices.empty());
if (preferMockICD)
{
for (const VkPhysicalDevice &physicalDevice : physicalDevices)
{
vkGetPhysicalDeviceProperties(physicalDevice, physicalDevicePropertiesOut);
if ((kMockVendorID == physicalDevicePropertiesOut->vendorID) &&
(kMockDeviceID == physicalDevicePropertiesOut->deviceID) &&
(strcmp(kMockDeviceName, physicalDevicePropertiesOut->deviceName) == 0))
{
*physicalDeviceOut = physicalDevice;
return;
}
}
WARN() << "Vulkan Mock Driver was requested but Mock Device was not found. Using default "
"physicalDevice instead.";
}
// Fall back to first device.
*physicalDeviceOut = physicalDevices[0];
vkGetPhysicalDeviceProperties(*physicalDeviceOut, physicalDevicePropertiesOut);
}
angle::Result WaitFences(vk::Context *context,
std::vector<vk::Shared<vk::Fence>> *fences,
bool block)
{
uint64_t timeout = block ? kMaxFenceWaitTimeNs : 0;
// Iterate backwards over the fences, removing them from the list in constant time when they are
// complete.
while (!fences->empty())
{
VkResult result = fences->back().get().wait(context->getDevice(), timeout);
if (result == VK_TIMEOUT)
{
return angle::Result::Continue;
}
ANGLE_VK_TRY(context, result);
context->getRenderer()->resetSharedFence(&fences->back());
fences->pop_back();
}
return angle::Result::Continue;
}
} // anonymous namespace
// RendererVk implementation.
RendererVk::RendererVk()
: mDisplay(nullptr),
mCapsInitialized(false),
mFeaturesInitialized(false),
mInstance(VK_NULL_HANDLE),
mEnableValidationLayers(false),
mEnableMockICD(false),
mDebugUtilsMessenger(VK_NULL_HANDLE),
mDebugReportCallback(VK_NULL_HANDLE),
mPhysicalDevice(VK_NULL_HANDLE),
mQueue(VK_NULL_HANDLE),
mCurrentQueueFamilyIndex(std::numeric_limits<uint32_t>::max()),
mMaxVertexAttribDivisor(1),
mDevice(VK_NULL_HANDLE),
mDeviceLost(false),
mPipelineCacheVkUpdateTimeout(kPipelineCacheVkUpdatePeriod)
{
VkFormatProperties invalid = {0, 0, kInvalidFormatFeatureFlags};
mFormatProperties.fill(invalid);
}
RendererVk::~RendererVk()
{
ASSERT(mFencedGarbage.empty());
}
void RendererVk::onDestroy(vk::Context *context)
{
(void)cleanupGarbage(context, true);
mFenceRecycler.destroy(mDevice);
mPipelineLayoutCache.destroy(mDevice);
mDescriptorSetLayoutCache.destroy(mDevice);
mPipelineCache.destroy(mDevice);
GlslangWrapper::Release();
if (mDevice)
{
vkDestroyDevice(mDevice, nullptr);
mDevice = VK_NULL_HANDLE;
}
if (mDebugUtilsMessenger)
{
ASSERT(mInstance && vkDestroyDebugUtilsMessengerEXT);
vkDestroyDebugUtilsMessengerEXT(mInstance, mDebugUtilsMessenger, nullptr);
ASSERT(mDebugReportCallback == VK_NULL_HANDLE);
}
else if (mDebugReportCallback)
{
ASSERT(mInstance && vkDestroyDebugReportCallbackEXT);
vkDestroyDebugReportCallbackEXT(mInstance, mDebugReportCallback, nullptr);
}
if (mInstance)
{
vkDestroyInstance(mInstance, nullptr);
mInstance = VK_NULL_HANDLE;
}
mMemoryProperties.destroy();
mPhysicalDevice = VK_NULL_HANDLE;
}
void RendererVk::notifyDeviceLost()
{
mDeviceLost = true;
mDisplay->notifyDeviceLost();
}
bool RendererVk::isDeviceLost() const
{
return mDeviceLost;
}
angle::Result RendererVk::initialize(DisplayVk *displayVk,
egl::Display *display,
const char *wsiExtension,
const char *wsiLayer)
{
mDisplay = display;
const egl::AttributeMap &attribs = mDisplay->getAttributeMap();
ScopedVkLoaderEnvironment scopedEnvironment(ShouldUseDebugLayers(attribs),
ShouldEnableMockICD(attribs));
mEnableValidationLayers = scopedEnvironment.canEnableValidationLayers();
mEnableMockICD = scopedEnvironment.canEnableMockICD();
// Gather global layer properties.
uint32_t instanceLayerCount = 0;
ANGLE_VK_TRY(displayVk, vkEnumerateInstanceLayerProperties(&instanceLayerCount, nullptr));
std::vector<VkLayerProperties> instanceLayerProps(instanceLayerCount);
if (instanceLayerCount > 0)
{
ANGLE_VK_TRY(displayVk, vkEnumerateInstanceLayerProperties(&instanceLayerCount,
instanceLayerProps.data()));
}
VulkanLayerVector enabledInstanceLayerNames;
if (mEnableValidationLayers)
{
bool layersRequested =
(attribs.get(EGL_PLATFORM_ANGLE_DEBUG_LAYERS_ENABLED_ANGLE, EGL_DONT_CARE) == EGL_TRUE);
mEnableValidationLayers = GetAvailableValidationLayers(instanceLayerProps, layersRequested,
&enabledInstanceLayerNames);
}
if (wsiLayer)
{
enabledInstanceLayerNames.push_back(wsiLayer);
}
// Enumerate instance extensions that are provided by the vulkan
// implementation and implicit layers.
uint32_t instanceExtensionCount = 0;
ANGLE_VK_TRY(displayVk,
vkEnumerateInstanceExtensionProperties(nullptr, &instanceExtensionCount, nullptr));
std::vector<VkExtensionProperties> instanceExtensionProps(instanceExtensionCount);
if (instanceExtensionCount > 0)
{
ANGLE_VK_TRY(displayVk,
vkEnumerateInstanceExtensionProperties(nullptr, &instanceExtensionCount,
instanceExtensionProps.data()));
}
// Enumerate instance extensions that are provided by explicit layers.
for (const char *layerName : enabledInstanceLayerNames)
{
uint32_t previousExtensionCount = instanceExtensionProps.size();
uint32_t instanceLayerExtensionCount = 0;
ANGLE_VK_TRY(displayVk, vkEnumerateInstanceExtensionProperties(
layerName, &instanceLayerExtensionCount, nullptr));
instanceExtensionProps.resize(previousExtensionCount + instanceLayerExtensionCount);
ANGLE_VK_TRY(displayVk, vkEnumerateInstanceExtensionProperties(
layerName, &instanceLayerExtensionCount,
instanceExtensionProps.data() + previousExtensionCount));
}
ExtensionNameList instanceExtensionNames;
if (!instanceExtensionProps.empty())
{
for (const VkExtensionProperties &i : instanceExtensionProps)
{
instanceExtensionNames.push_back(i.extensionName);
}
std::sort(instanceExtensionNames.begin(), instanceExtensionNames.end(), StrLess);
}
ExtensionNameList enabledInstanceExtensions;
enabledInstanceExtensions.push_back(VK_KHR_SURFACE_EXTENSION_NAME);
enabledInstanceExtensions.push_back(wsiExtension);
bool enableDebugUtils =
mEnableValidationLayers &&
ExtensionFound(VK_EXT_DEBUG_UTILS_EXTENSION_NAME, instanceExtensionNames);
bool enableDebugReport =
mEnableValidationLayers && !enableDebugUtils &&
ExtensionFound(VK_EXT_DEBUG_REPORT_EXTENSION_NAME, instanceExtensionNames);
if (enableDebugUtils)
{
enabledInstanceExtensions.push_back(VK_EXT_DEBUG_UTILS_EXTENSION_NAME);
}
else if (enableDebugReport)
{
enabledInstanceExtensions.push_back(VK_EXT_DEBUG_REPORT_EXTENSION_NAME);
}
// Verify the required extensions are in the extension names set. Fail if not.
std::sort(enabledInstanceExtensions.begin(), enabledInstanceExtensions.end(), StrLess);
ANGLE_VK_TRY(displayVk,
VerifyExtensionsPresent(instanceExtensionNames, enabledInstanceExtensions));
// Enable VK_KHR_get_physical_device_properties_2 if available.
if (ExtensionFound(VK_KHR_GET_PHYSICAL_DEVICE_PROPERTIES_2_EXTENSION_NAME,
instanceExtensionNames))
{
enabledInstanceExtensions.push_back(VK_KHR_GET_PHYSICAL_DEVICE_PROPERTIES_2_EXTENSION_NAME);
}
VkApplicationInfo applicationInfo = {};
applicationInfo.sType = VK_STRUCTURE_TYPE_APPLICATION_INFO;
applicationInfo.pApplicationName = "ANGLE";
applicationInfo.applicationVersion = 1;
applicationInfo.pEngineName = "ANGLE";
applicationInfo.engineVersion = 1;
auto enumerateInstanceVersion = reinterpret_cast<PFN_vkEnumerateInstanceVersion>(
vkGetInstanceProcAddr(mInstance, "vkEnumerateInstanceVersion"));
if (!enumerateInstanceVersion)
{
applicationInfo.apiVersion = VK_API_VERSION_1_0;
}
else
{
uint32_t apiVersion = VK_API_VERSION_1_0;
ANGLE_VK_TRY(displayVk, enumerateInstanceVersion(&apiVersion));
if ((VK_VERSION_MAJOR(apiVersion) > 1) || (VK_VERSION_MINOR(apiVersion) >= 1))
{
// This is the highest version of core Vulkan functionality that ANGLE uses.
applicationInfo.apiVersion = kPreferredVulkanAPIVersion;
}
else
{
// Since only 1.0 instance-level functionality is available, this must set to 1.0.
applicationInfo.apiVersion = VK_API_VERSION_1_0;
}
}
VkInstanceCreateInfo instanceInfo = {};
instanceInfo.sType = VK_STRUCTURE_TYPE_INSTANCE_CREATE_INFO;
instanceInfo.flags = 0;
instanceInfo.pApplicationInfo = &applicationInfo;
// Enable requested layers and extensions.
instanceInfo.enabledExtensionCount = static_cast<uint32_t>(enabledInstanceExtensions.size());
instanceInfo.ppEnabledExtensionNames =
enabledInstanceExtensions.empty() ? nullptr : enabledInstanceExtensions.data();
instanceInfo.enabledLayerCount = enabledInstanceLayerNames.size();
instanceInfo.ppEnabledLayerNames = enabledInstanceLayerNames.data();
ANGLE_VK_TRY(displayVk, vkCreateInstance(&instanceInfo, nullptr, &mInstance));
if (enableDebugUtils)
{
// Try to use the newer EXT_debug_utils if it exists.
InitDebugUtilsEXTFunctions(mInstance);
// Create the messenger callback.
VkDebugUtilsMessengerCreateInfoEXT messengerInfo = {};
constexpr VkDebugUtilsMessageSeverityFlagsEXT kSeveritiesToLog =
VK_DEBUG_UTILS_MESSAGE_SEVERITY_ERROR_BIT_EXT |
VK_DEBUG_UTILS_MESSAGE_SEVERITY_WARNING_BIT_EXT;
constexpr VkDebugUtilsMessageTypeFlagsEXT kMessagesToLog =
VK_DEBUG_UTILS_MESSAGE_TYPE_GENERAL_BIT_EXT |
VK_DEBUG_UTILS_MESSAGE_TYPE_VALIDATION_BIT_EXT |
VK_DEBUG_UTILS_MESSAGE_TYPE_PERFORMANCE_BIT_EXT;
messengerInfo.sType = VK_STRUCTURE_TYPE_DEBUG_UTILS_MESSENGER_CREATE_INFO_EXT;
messengerInfo.messageSeverity = kSeveritiesToLog;
messengerInfo.messageType = kMessagesToLog;
messengerInfo.pfnUserCallback = &DebugUtilsMessenger;
messengerInfo.pUserData = this;
ANGLE_VK_TRY(displayVk, vkCreateDebugUtilsMessengerEXT(mInstance, &messengerInfo, nullptr,
&mDebugUtilsMessenger));
}
else if (enableDebugReport)
{
// Fallback to EXT_debug_report.
InitDebugReportEXTFunctions(mInstance);
VkDebugReportCallbackCreateInfoEXT debugReportInfo = {};
debugReportInfo.sType = VK_STRUCTURE_TYPE_DEBUG_REPORT_CREATE_INFO_EXT;
debugReportInfo.flags = VK_DEBUG_REPORT_ERROR_BIT_EXT | VK_DEBUG_REPORT_WARNING_BIT_EXT;
debugReportInfo.pfnCallback = &DebugReportCallback;
debugReportInfo.pUserData = this;
ANGLE_VK_TRY(displayVk, vkCreateDebugReportCallbackEXT(mInstance, &debugReportInfo, nullptr,
&mDebugReportCallback));
}
if (std::find(enabledInstanceExtensions.begin(), enabledInstanceExtensions.end(),
VK_KHR_GET_PHYSICAL_DEVICE_PROPERTIES_2_EXTENSION_NAME) !=
enabledInstanceExtensions.end())
{
InitGetPhysicalDeviceProperties2KHRFunctions(mInstance);
ASSERT(vkGetPhysicalDeviceProperties2KHR);
}
uint32_t physicalDeviceCount = 0;
ANGLE_VK_TRY(displayVk, vkEnumeratePhysicalDevices(mInstance, &physicalDeviceCount, nullptr));
ANGLE_VK_CHECK(displayVk, physicalDeviceCount > 0, VK_ERROR_INITIALIZATION_FAILED);
// TODO(jmadill): Handle multiple physical devices. For now, use the first device.
std::vector<VkPhysicalDevice> physicalDevices(physicalDeviceCount);
ANGLE_VK_TRY(displayVk, vkEnumeratePhysicalDevices(mInstance, &physicalDeviceCount,
physicalDevices.data()));
ChoosePhysicalDevice(physicalDevices, mEnableMockICD, &mPhysicalDevice,
&mPhysicalDeviceProperties);
vkGetPhysicalDeviceFeatures(mPhysicalDevice, &mPhysicalDeviceFeatures);
// Ensure we can find a graphics queue family.
uint32_t queueCount = 0;
vkGetPhysicalDeviceQueueFamilyProperties(mPhysicalDevice, &queueCount, nullptr);
ANGLE_VK_CHECK(displayVk, queueCount > 0, VK_ERROR_INITIALIZATION_FAILED);
mQueueFamilyProperties.resize(queueCount);
vkGetPhysicalDeviceQueueFamilyProperties(mPhysicalDevice, &queueCount,
mQueueFamilyProperties.data());
size_t graphicsQueueFamilyCount = false;
uint32_t firstGraphicsQueueFamily = 0;
constexpr VkQueueFlags kGraphicsAndCompute = VK_QUEUE_GRAPHICS_BIT | VK_QUEUE_COMPUTE_BIT;
for (uint32_t familyIndex = 0; familyIndex < queueCount; ++familyIndex)
{
const auto &queueInfo = mQueueFamilyProperties[familyIndex];
if ((queueInfo.queueFlags & kGraphicsAndCompute) == kGraphicsAndCompute)
{
ASSERT(queueInfo.queueCount > 0);
graphicsQueueFamilyCount++;
if (firstGraphicsQueueFamily == 0)
{
firstGraphicsQueueFamily = familyIndex;
}
break;
}
}
ANGLE_VK_CHECK(displayVk, graphicsQueueFamilyCount > 0, VK_ERROR_INITIALIZATION_FAILED);
// If only one queue family, go ahead and initialize the device. If there is more than one
// queue, we'll have to wait until we see a WindowSurface to know which supports present.
if (graphicsQueueFamilyCount == 1)
{
ANGLE_TRY(initializeDevice(displayVk, firstGraphicsQueueFamily));
}
// Store the physical device memory properties so we can find the right memory pools.
mMemoryProperties.init(mPhysicalDevice);
GlslangWrapper::Initialize();
// Initialize the format table.
mFormatTable.initialize(this, &mNativeTextureCaps, &mNativeCaps.compressedTextureFormats);
return angle::Result::Continue;
}
angle::Result RendererVk::initializeDevice(DisplayVk *displayVk, uint32_t queueFamilyIndex)
{
uint32_t deviceLayerCount = 0;
ANGLE_VK_TRY(displayVk,
vkEnumerateDeviceLayerProperties(mPhysicalDevice, &deviceLayerCount, nullptr));
std::vector<VkLayerProperties> deviceLayerProps(deviceLayerCount);
if (deviceLayerCount > 0)
{
ANGLE_VK_TRY(displayVk, vkEnumerateDeviceLayerProperties(mPhysicalDevice, &deviceLayerCount,
deviceLayerProps.data()));
}
VulkanLayerVector enabledDeviceLayerNames;
if (mEnableValidationLayers)
{
mEnableValidationLayers =
GetAvailableValidationLayers(deviceLayerProps, false, &enabledDeviceLayerNames);
}
const char *wsiLayer = displayVk->getWSILayer();
if (wsiLayer)
{
enabledDeviceLayerNames.push_back(wsiLayer);
}
// Enumerate device extensions that are provided by the vulkan
// implementation and implicit layers.
uint32_t deviceExtensionCount = 0;
ANGLE_VK_TRY(displayVk, vkEnumerateDeviceExtensionProperties(mPhysicalDevice, nullptr,
&deviceExtensionCount, nullptr));
std::vector<VkExtensionProperties> deviceExtensionProps(deviceExtensionCount);
if (deviceExtensionCount > 0)
{
ANGLE_VK_TRY(displayVk, vkEnumerateDeviceExtensionProperties(mPhysicalDevice, nullptr,
&deviceExtensionCount,
deviceExtensionProps.data()));
}
// Enumerate device extensions that are provided by explicit layers.
for (const char *layerName : enabledDeviceLayerNames)
{
uint32_t previousExtensionCount = deviceExtensionProps.size();
uint32_t deviceLayerExtensionCount = 0;
ANGLE_VK_TRY(displayVk,
vkEnumerateDeviceExtensionProperties(mPhysicalDevice, layerName,
&deviceLayerExtensionCount, nullptr));
deviceExtensionProps.resize(previousExtensionCount + deviceLayerExtensionCount);
ANGLE_VK_TRY(displayVk, vkEnumerateDeviceExtensionProperties(
mPhysicalDevice, layerName, &deviceLayerExtensionCount,
deviceExtensionProps.data() + previousExtensionCount));
}
ExtensionNameList deviceExtensionNames;
if (!deviceExtensionProps.empty())
{
ASSERT(deviceExtensionNames.size() <= deviceExtensionProps.size());
for (const VkExtensionProperties &prop : deviceExtensionProps)
{
deviceExtensionNames.push_back(prop.extensionName);
}
std::sort(deviceExtensionNames.begin(), deviceExtensionNames.end(), StrLess);
}
ExtensionNameList enabledDeviceExtensions;
enabledDeviceExtensions.push_back(VK_KHR_SWAPCHAIN_EXTENSION_NAME);
initFeatures(deviceExtensionNames);
OverrideFeaturesWithDisplayState(&mFeatures, displayVk->getState());
mFeaturesInitialized = true;
// Selectively enable KHR_MAINTENANCE1 to support viewport flipping.
if ((getFeatures().flipViewportY.enabled) &&
(mPhysicalDeviceProperties.apiVersion < VK_MAKE_VERSION(1, 1, 0)))
{
enabledDeviceExtensions.push_back(VK_KHR_MAINTENANCE1_EXTENSION_NAME);
}
if (getFeatures().supportsIncrementalPresent.enabled)
{
enabledDeviceExtensions.push_back(VK_KHR_INCREMENTAL_PRESENT_EXTENSION_NAME);
}
if (getFeatures().supportsAndroidHardwareBuffer.enabled ||
getFeatures().supportsExternalMemoryFd.enabled)
{
enabledDeviceExtensions.push_back(VK_KHR_EXTERNAL_MEMORY_EXTENSION_NAME);
}
#if defined(ANGLE_PLATFORM_ANDROID)
if (getFeatures().supportsAndroidHardwareBuffer.enabled)
{
enabledDeviceExtensions.push_back(VK_EXT_QUEUE_FAMILY_FOREIGN_EXTENSION_NAME);
enabledDeviceExtensions.push_back(
VK_ANDROID_EXTERNAL_MEMORY_ANDROID_HARDWARE_BUFFER_EXTENSION_NAME);
InitExternalMemoryHardwareBufferANDROIDFunctions(mInstance);
}
#else
ASSERT(!getFeatures().supportsAndroidHardwareBuffer.enabled);
#endif
if (getFeatures().supportsExternalMemoryFd.enabled)
{
enabledDeviceExtensions.push_back(VK_KHR_EXTERNAL_MEMORY_FD_EXTENSION_NAME);
}
if (getFeatures().supportsExternalSemaphoreFd.enabled)
{
enabledDeviceExtensions.push_back(VK_KHR_EXTERNAL_SEMAPHORE_EXTENSION_NAME);
InitExternalSemaphoreFdFunctions(mInstance);
}
if (getFeatures().supportsExternalSemaphoreFd.enabled)
{
enabledDeviceExtensions.push_back(VK_KHR_EXTERNAL_SEMAPHORE_FD_EXTENSION_NAME);
}
if (getFeatures().supportsShaderStencilExport.enabled)
{
enabledDeviceExtensions.push_back(VK_EXT_SHADER_STENCIL_EXPORT_EXTENSION_NAME);
}
std::sort(enabledDeviceExtensions.begin(), enabledDeviceExtensions.end(), StrLess);
ANGLE_VK_TRY(displayVk, VerifyExtensionsPresent(deviceExtensionNames, enabledDeviceExtensions));
// Select additional features to be enabled
VkPhysicalDeviceFeatures2KHR enabledFeatures = {};
enabledFeatures.sType = VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_FEATURES_2;
enabledFeatures.features.independentBlend = mPhysicalDeviceFeatures.independentBlend;
enabledFeatures.features.robustBufferAccess = mPhysicalDeviceFeatures.robustBufferAccess;
enabledFeatures.features.samplerAnisotropy = mPhysicalDeviceFeatures.samplerAnisotropy;
enabledFeatures.features.vertexPipelineStoresAndAtomics =
mPhysicalDeviceFeatures.vertexPipelineStoresAndAtomics;
enabledFeatures.features.fragmentStoresAndAtomics =
mPhysicalDeviceFeatures.fragmentStoresAndAtomics;
if (!vk::CommandBuffer::ExecutesInline())
{
enabledFeatures.features.inheritedQueries = mPhysicalDeviceFeatures.inheritedQueries;
}
VkPhysicalDeviceVertexAttributeDivisorFeaturesEXT divisorFeatures = {};
divisorFeatures.sType = VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_VERTEX_ATTRIBUTE_DIVISOR_FEATURES_EXT;
divisorFeatures.vertexAttributeInstanceRateDivisor = true;
float zeroPriority = 0.0f;
VkDeviceQueueCreateInfo queueCreateInfo = {};
queueCreateInfo.sType = VK_STRUCTURE_TYPE_DEVICE_QUEUE_CREATE_INFO;
queueCreateInfo.flags = 0;
queueCreateInfo.queueFamilyIndex = queueFamilyIndex;
queueCreateInfo.queueCount = 1;
queueCreateInfo.pQueuePriorities = &zeroPriority;
// Initialize the device
VkDeviceCreateInfo createInfo = {};
createInfo.sType = VK_STRUCTURE_TYPE_DEVICE_CREATE_INFO;
createInfo.flags = 0;
createInfo.queueCreateInfoCount = 1;
createInfo.pQueueCreateInfos = &queueCreateInfo;
createInfo.enabledLayerCount = enabledDeviceLayerNames.size();
createInfo.ppEnabledLayerNames = enabledDeviceLayerNames.data();
if (vkGetPhysicalDeviceProperties2KHR &&
ExtensionFound(VK_EXT_VERTEX_ATTRIBUTE_DIVISOR_EXTENSION_NAME, deviceExtensionNames))
{
enabledDeviceExtensions.push_back(VK_EXT_VERTEX_ATTRIBUTE_DIVISOR_EXTENSION_NAME);
enabledFeatures.pNext = &divisorFeatures;
VkPhysicalDeviceVertexAttributeDivisorPropertiesEXT divisorProperties = {};
divisorProperties.sType =
VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_VERTEX_ATTRIBUTE_DIVISOR_PROPERTIES_EXT;
VkPhysicalDeviceProperties2 deviceProperties = {};
deviceProperties.sType = VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_PROPERTIES_2;
deviceProperties.pNext = &divisorProperties;
vkGetPhysicalDeviceProperties2KHR(mPhysicalDevice, &deviceProperties);
mMaxVertexAttribDivisor = divisorProperties.maxVertexAttribDivisor;