raze/source/common/rendering/vulkan/system/vk_device.cpp
Christoph Oelckers 84173ee09b - backend update from GZDoom.
The main bulk of this is the new start screen code. To make this work in Raze some more work on the startup procedure is needed.
What this does provide is support for the DOS end-of-game text screens in Duke and SW on non-Windows systems.
2022-06-06 11:45:34 +02:00

578 lines
19 KiB
C++

/*
** Vulkan backend
** Copyright (c) 2016-2020 Magnus Norddahl
**
** This software is provided 'as-is', without any express or implied
** warranty. In no event will the authors be held liable for any damages
** arising from the use of this software.
**
** Permission is granted to anyone to use this software for any purpose,
** including commercial applications, and to alter it and redistribute it
** freely, subject to the following restrictions:
**
** 1. The origin of this software must not be misrepresented; you must not
** claim that you wrote the original software. If you use this software
** in a product, an acknowledgment in the product documentation would be
** appreciated but is not required.
** 2. Altered source versions must be plainly marked as such, and must not be
** misrepresented as being the original software.
** 3. This notice may not be removed or altered from any source distribution.
**
*/
#include "volk/volk.h"
#ifdef _WIN32
#undef max
#undef min
#endif
#include <inttypes.h>
#include <vector>
#include <array>
#include <set>
#include <string>
#include <algorithm>
#include "vk_device.h"
#include "vk_swapchain.h"
#include "vk_objects.h"
#include "c_cvars.h"
#include "c_dispatch.h"
#include "i_system.h"
#include "version.h"
#include "engineerrors.h"
#include "v_text.h"
bool I_GetVulkanPlatformExtensions(unsigned int *count, const char **names);
bool I_CreateVulkanSurface(VkInstance instance, VkSurfaceKHR *surface);
FString JitCaptureStackTrace(int framesToSkip, bool includeNativeFrames);
// Physical device info
static std::vector<VulkanPhysicalDevice> AvailableDevices;
static std::vector<VulkanCompatibleDevice> SupportedDevices;
CUSTOM_CVAR(Bool, vk_debug, false, CVAR_ARCHIVE | CVAR_GLOBALCONFIG | CVAR_NOINITCALL)
{
Printf("This won't take effect until " GAMENAME " is restarted.\n");
}
CVAR(Bool, vk_debug_callstack, true, CVAR_ARCHIVE | CVAR_GLOBALCONFIG)
CUSTOM_CVAR(Int, vk_device, 0, CVAR_ARCHIVE | CVAR_GLOBALCONFIG | CVAR_NOINITCALL)
{
Printf("This won't take effect until " GAMENAME " is restarted.\n");
}
CCMD(vk_listdevices)
{
for (size_t i = 0; i < SupportedDevices.size(); i++)
{
Printf("#%d - %s\n", (int)i, SupportedDevices[i].device->Properties.deviceName);
}
}
VulkanDevice::VulkanDevice()
{
try
{
InitVolk();
CreateInstance();
CreateSurface();
SelectPhysicalDevice();
SelectFeatures();
CreateDevice();
CreateAllocator();
}
catch (...)
{
ReleaseResources();
throw;
}
}
VulkanDevice::~VulkanDevice()
{
ReleaseResources();
}
void VulkanDevice::SelectFeatures()
{
UsedDeviceFeatures.samplerAnisotropy = PhysicalDevice.Features.samplerAnisotropy;
UsedDeviceFeatures.fragmentStoresAndAtomics = PhysicalDevice.Features.fragmentStoresAndAtomics;
UsedDeviceFeatures.depthClamp = PhysicalDevice.Features.depthClamp;
UsedDeviceFeatures.shaderClipDistance = PhysicalDevice.Features.shaderClipDistance;
}
bool VulkanDevice::CheckRequiredFeatures(const VkPhysicalDeviceFeatures &f)
{
return
f.samplerAnisotropy == VK_TRUE &&
f.fragmentStoresAndAtomics == VK_TRUE;
}
void VulkanDevice::SelectPhysicalDevice()
{
AvailableDevices = GetPhysicalDevices(instance);
if (AvailableDevices.empty())
VulkanError("No Vulkan devices found. Either the graphics card has no vulkan support or the driver is too old.");
for (size_t idx = 0; idx < AvailableDevices.size(); idx++)
{
const auto &info = AvailableDevices[idx];
if (!CheckRequiredFeatures(info.Features))
continue;
std::set<std::string> requiredExtensionSearch(EnabledDeviceExtensions.begin(), EnabledDeviceExtensions.end());
for (const auto &ext : info.Extensions)
requiredExtensionSearch.erase(ext.extensionName);
if (!requiredExtensionSearch.empty())
continue;
VulkanCompatibleDevice dev;
dev.device = &AvailableDevices[idx];
// Figure out what can present
for (int i = 0; i < (int)info.QueueFamilies.size(); i++)
{
VkBool32 presentSupport = false;
VkResult result = vkGetPhysicalDeviceSurfaceSupportKHR(info.Device, i, surface, &presentSupport);
if (result == VK_SUCCESS && info.QueueFamilies[i].queueCount > 0 && presentSupport)
{
dev.presentFamily = i;
break;
}
}
// The vulkan spec states that graphics and compute queues can always do transfer.
// Furthermore the spec states that graphics queues always can do compute.
// Last, the spec makes it OPTIONAL whether the VK_QUEUE_TRANSFER_BIT is set for such queues, but they MUST support transfer.
//
// In short: pick the first graphics queue family for everything.
for (int i = 0; i < (int)info.QueueFamilies.size(); i++)
{
const auto &queueFamily = info.QueueFamilies[i];
if (queueFamily.queueCount > 0 && (queueFamily.queueFlags & VK_QUEUE_GRAPHICS_BIT))
{
dev.graphicsFamily = i;
dev.graphicsTimeQueries = queueFamily.timestampValidBits != 0;
break;
}
}
if (dev.graphicsFamily != -1 && dev.presentFamily != -1)
{
SupportedDevices.push_back(dev);
}
}
if (SupportedDevices.empty())
VulkanError("No Vulkan device supports the minimum requirements of this application");
// The device order returned by Vulkan can be anything. Prefer discrete > integrated > virtual gpu > cpu > other
std::stable_sort(SupportedDevices.begin(), SupportedDevices.end(), [&](const auto &a, const auto b) {
// Sort by GPU type first. This will ensure the "best" device is most likely to map to vk_device 0
static const int typeSort[] = { 4, 1, 0, 2, 3 };
int sortA = a.device->Properties.deviceType < 5 ? typeSort[a.device->Properties.deviceType] : (int)a.device->Properties.deviceType;
int sortB = b.device->Properties.deviceType < 5 ? typeSort[b.device->Properties.deviceType] : (int)b.device->Properties.deviceType;
if (sortA != sortB)
return sortA < sortB;
// Then sort by the device's unique ID so that vk_device uses a consistent order
int sortUUID = memcmp(a.device->Properties.pipelineCacheUUID, b.device->Properties.pipelineCacheUUID, VK_UUID_SIZE);
return sortUUID < 0;
});
size_t selected = vk_device;
if (selected >= SupportedDevices.size())
selected = 0;
// Enable optional extensions we are interested in, if they are available on this device
for (const auto &ext : SupportedDevices[selected].device->Extensions)
{
for (const auto &opt : OptionalDeviceExtensions)
{
if (strcmp(ext.extensionName, opt) == 0)
{
EnabledDeviceExtensions.push_back(opt);
}
}
}
PhysicalDevice = *SupportedDevices[selected].device;
graphicsFamily = SupportedDevices[selected].graphicsFamily;
presentFamily = SupportedDevices[selected].presentFamily;
graphicsTimeQueries = SupportedDevices[selected].graphicsTimeQueries;
}
bool VulkanDevice::SupportsDeviceExtension(const char *ext) const
{
return std::find(EnabledDeviceExtensions.begin(), EnabledDeviceExtensions.end(), ext) != EnabledDeviceExtensions.end();
}
void VulkanDevice::CreateAllocator()
{
VmaAllocatorCreateInfo allocinfo = {};
if (SupportsDeviceExtension(VK_KHR_DEDICATED_ALLOCATION_EXTENSION_NAME) && SupportsDeviceExtension(VK_KHR_GET_MEMORY_REQUIREMENTS_2_EXTENSION_NAME))
allocinfo.flags = VMA_ALLOCATOR_CREATE_KHR_DEDICATED_ALLOCATION_BIT;
allocinfo.physicalDevice = PhysicalDevice.Device;
allocinfo.device = device;
allocinfo.instance = instance;
allocinfo.preferredLargeHeapBlockSize = 64 * 1024 * 1024;
if (vmaCreateAllocator(&allocinfo, &allocator) != VK_SUCCESS)
VulkanError("Unable to create allocator");
}
void VulkanDevice::CreateDevice()
{
float queuePriority = 1.0f;
std::vector<VkDeviceQueueCreateInfo> queueCreateInfos;
std::set<int> neededFamilies;
neededFamilies.insert(graphicsFamily);
neededFamilies.insert(presentFamily);
for (int index : neededFamilies)
{
VkDeviceQueueCreateInfo queueCreateInfo = {};
queueCreateInfo.sType = VK_STRUCTURE_TYPE_DEVICE_QUEUE_CREATE_INFO;
queueCreateInfo.queueFamilyIndex = index;
queueCreateInfo.queueCount = 1;
queueCreateInfo.pQueuePriorities = &queuePriority;
queueCreateInfos.push_back(queueCreateInfo);
}
VkDeviceCreateInfo deviceCreateInfo = {};
deviceCreateInfo.sType = VK_STRUCTURE_TYPE_DEVICE_CREATE_INFO;
deviceCreateInfo.queueCreateInfoCount = (uint32_t)queueCreateInfos.size();
deviceCreateInfo.pQueueCreateInfos = queueCreateInfos.data();
deviceCreateInfo.pEnabledFeatures = &UsedDeviceFeatures;
deviceCreateInfo.enabledExtensionCount = (uint32_t)EnabledDeviceExtensions.size();
deviceCreateInfo.ppEnabledExtensionNames = EnabledDeviceExtensions.data();
deviceCreateInfo.enabledLayerCount = 0;
VkResult result = vkCreateDevice(PhysicalDevice.Device, &deviceCreateInfo, nullptr, &device);
CheckVulkanError(result, "Could not create vulkan device");
volkLoadDevice(device);
vkGetDeviceQueue(device, graphicsFamily, 0, &graphicsQueue);
vkGetDeviceQueue(device, presentFamily, 0, &presentQueue);
}
void VulkanDevice::CreateSurface()
{
if (!I_CreateVulkanSurface(instance, &surface))
{
VulkanError("Could not create vulkan surface");
}
}
void VulkanDevice::CreateInstance()
{
AvailableLayers = GetAvailableLayers();
Extensions = GetExtensions();
EnabledExtensions = GetPlatformExtensions();
std::string debugLayer = "VK_LAYER_KHRONOS_validation";
bool wantDebugLayer = vk_debug;
bool debugLayerFound = false;
if (wantDebugLayer)
{
for (const VkLayerProperties& layer : AvailableLayers)
{
if (layer.layerName == debugLayer)
{
EnabledValidationLayers.push_back(layer.layerName);
EnabledExtensions.push_back(VK_EXT_DEBUG_UTILS_EXTENSION_NAME);
debugLayerFound = true;
break;
}
}
}
// Enable optional instance extensions we are interested in
for (const auto &ext : Extensions)
{
for (const auto &opt : OptionalExtensions)
{
if (strcmp(ext.extensionName, opt) == 0)
{
EnabledExtensions.push_back(opt);
}
}
}
VkApplicationInfo appInfo = {};
appInfo.sType = VK_STRUCTURE_TYPE_APPLICATION_INFO;
appInfo.pApplicationName = "GZDoom";
appInfo.applicationVersion = VK_MAKE_VERSION(VER_MAJOR, VER_MINOR, VER_REVISION);
appInfo.pEngineName = "GZDoom";
appInfo.engineVersion = VK_MAKE_VERSION(ENG_MAJOR, ENG_MINOR, ENG_REVISION);
appInfo.apiVersion = VK_API_VERSION_1_0;
VkInstanceCreateInfo createInfo = {};
createInfo.sType = VK_STRUCTURE_TYPE_INSTANCE_CREATE_INFO;
createInfo.pApplicationInfo = &appInfo;
createInfo.enabledExtensionCount = (uint32_t)EnabledExtensions.size();
createInfo.enabledLayerCount = (uint32_t)EnabledValidationLayers.size();
createInfo.ppEnabledLayerNames = EnabledValidationLayers.data();
createInfo.ppEnabledExtensionNames = EnabledExtensions.data();
VkResult result = vkCreateInstance(&createInfo, nullptr, &instance);
CheckVulkanError(result, "Could not create vulkan instance");
volkLoadInstance(instance);
if (debugLayerFound)
{
VkDebugUtilsMessengerCreateInfoEXT dbgCreateInfo = {};
dbgCreateInfo.sType = VK_STRUCTURE_TYPE_DEBUG_UTILS_MESSENGER_CREATE_INFO_EXT;
dbgCreateInfo.messageSeverity =
//VK_DEBUG_UTILS_MESSAGE_SEVERITY_VERBOSE_BIT_EXT |
//VK_DEBUG_UTILS_MESSAGE_SEVERITY_INFO_BIT_EXT |
VK_DEBUG_UTILS_MESSAGE_SEVERITY_WARNING_BIT_EXT |
VK_DEBUG_UTILS_MESSAGE_SEVERITY_ERROR_BIT_EXT;
dbgCreateInfo.messageType =
VK_DEBUG_UTILS_MESSAGE_TYPE_GENERAL_BIT_EXT |
VK_DEBUG_UTILS_MESSAGE_TYPE_VALIDATION_BIT_EXT |
VK_DEBUG_UTILS_MESSAGE_TYPE_PERFORMANCE_BIT_EXT;
dbgCreateInfo.pfnUserCallback = DebugCallback;
dbgCreateInfo.pUserData = this;
result = vkCreateDebugUtilsMessengerEXT(instance, &dbgCreateInfo, nullptr, &debugMessenger);
CheckVulkanError(result, "vkCreateDebugUtilsMessengerEXT failed");
DebugLayerActive = true;
}
}
VkBool32 VulkanDevice::DebugCallback(VkDebugUtilsMessageSeverityFlagBitsEXT messageSeverity, VkDebugUtilsMessageTypeFlagsEXT messageType, const VkDebugUtilsMessengerCallbackDataEXT* callbackData, void* userData)
{
static std::mutex mtx;
static std::set<FString> seenMessages;
static int totalMessages;
std::unique_lock<std::mutex> lock(mtx);
FString msg = callbackData->pMessage;
// For patent-pending reasons the validation layer apparently can't do this itself..
for (uint32_t i = 0; i < callbackData->objectCount; i++)
{
if (callbackData->pObjects[i].pObjectName)
{
FString hexname;
hexname.Format("0x%" PRIx64, callbackData->pObjects[i].objectHandle);
msg.Substitute(hexname.GetChars(), callbackData->pObjects[i].pObjectName);
}
}
bool found = seenMessages.find(msg) != seenMessages.end();
if (!found)
{
if (totalMessages < 20)
{
totalMessages++;
seenMessages.insert(msg);
const char *typestr;
bool showcallstack = false;
if (messageSeverity & VK_DEBUG_UTILS_MESSAGE_SEVERITY_ERROR_BIT_EXT)
{
typestr = "vulkan error";
showcallstack = true;
}
else if (messageSeverity & VK_DEBUG_UTILS_MESSAGE_SEVERITY_WARNING_BIT_EXT)
{
typestr = "vulkan warning";
}
else if (messageSeverity & VK_DEBUG_UTILS_MESSAGE_SEVERITY_INFO_BIT_EXT)
{
typestr = "vulkan info";
}
else if (messageSeverity & VK_DEBUG_UTILS_MESSAGE_SEVERITY_VERBOSE_BIT_EXT)
{
typestr = "vulkan verbose";
}
else
{
typestr = "vulkan";
}
if (showcallstack)
Printf("\n");
Printf(TEXTCOLOR_RED "[%s] ", typestr);
Printf(TEXTCOLOR_WHITE "%s\n", msg.GetChars());
if (vk_debug_callstack && showcallstack)
{
FString callstack = JitCaptureStackTrace(0, true);
if (!callstack.IsEmpty())
Printf("%s\n", callstack.GetChars());
}
}
}
return VK_FALSE;
}
std::vector<VkLayerProperties> VulkanDevice::GetAvailableLayers()
{
uint32_t layerCount;
VkResult result = vkEnumerateInstanceLayerProperties(&layerCount, nullptr);
std::vector<VkLayerProperties> availableLayers(layerCount);
result = vkEnumerateInstanceLayerProperties(&layerCount, availableLayers.data());
return availableLayers;
}
std::vector<VkExtensionProperties> VulkanDevice::GetExtensions()
{
uint32_t extensionCount = 0;
VkResult result = vkEnumerateInstanceExtensionProperties(nullptr, &extensionCount, nullptr);
std::vector<VkExtensionProperties> extensions(extensionCount);
result = vkEnumerateInstanceExtensionProperties(nullptr, &extensionCount, extensions.data());
return extensions;
}
std::vector<VulkanPhysicalDevice> VulkanDevice::GetPhysicalDevices(VkInstance instance)
{
uint32_t deviceCount = 0;
VkResult result = vkEnumeratePhysicalDevices(instance, &deviceCount, nullptr);
if (result == VK_ERROR_INITIALIZATION_FAILED) // Some drivers return this when a card does not support vulkan
return {};
CheckVulkanError(result, "vkEnumeratePhysicalDevices failed");
if (deviceCount == 0)
return {};
std::vector<VkPhysicalDevice> devices(deviceCount);
result = vkEnumeratePhysicalDevices(instance, &deviceCount, devices.data());
CheckVulkanError(result, "vkEnumeratePhysicalDevices failed (2)");
std::vector<VulkanPhysicalDevice> devinfo(deviceCount);
for (size_t i = 0; i < devices.size(); i++)
{
auto &dev = devinfo[i];
dev.Device = devices[i];
vkGetPhysicalDeviceMemoryProperties(dev.Device, &dev.MemoryProperties);
vkGetPhysicalDeviceProperties(dev.Device, &dev.Properties);
vkGetPhysicalDeviceFeatures(dev.Device, &dev.Features);
uint32_t queueFamilyCount = 0;
vkGetPhysicalDeviceQueueFamilyProperties(dev.Device, &queueFamilyCount, nullptr);
dev.QueueFamilies.resize(queueFamilyCount);
vkGetPhysicalDeviceQueueFamilyProperties(dev.Device, &queueFamilyCount, dev.QueueFamilies.data());
uint32_t deviceExtensionCount = 0;
vkEnumerateDeviceExtensionProperties(dev.Device, nullptr, &deviceExtensionCount, nullptr);
dev.Extensions.resize(deviceExtensionCount);
vkEnumerateDeviceExtensionProperties(dev.Device, nullptr, &deviceExtensionCount, dev.Extensions.data());
}
return devinfo;
}
std::vector<const char *> VulkanDevice::GetPlatformExtensions()
{
uint32_t extensionCount = 0;
if (!I_GetVulkanPlatformExtensions(&extensionCount, nullptr))
VulkanError("Cannot obtain number of Vulkan extensions");
std::vector<const char *> extensions(extensionCount);
if (!I_GetVulkanPlatformExtensions(&extensionCount, extensions.data()))
VulkanError("Cannot obtain list of Vulkan extensions");
return extensions;
}
void VulkanDevice::InitVolk()
{
if (volkInitialize() != VK_SUCCESS)
{
VulkanError("Unable to find Vulkan");
}
auto iver = volkGetInstanceVersion();
if (iver == 0)
{
VulkanError("Vulkan not supported");
}
}
void VulkanDevice::ReleaseResources()
{
if (device)
vkDeviceWaitIdle(device);
if (allocator)
vmaDestroyAllocator(allocator);
if (device)
vkDestroyDevice(device, nullptr);
device = nullptr;
if (surface)
vkDestroySurfaceKHR(instance, surface, nullptr);
surface = 0;
if (debugMessenger)
vkDestroyDebugUtilsMessengerEXT(instance, debugMessenger, nullptr);
if (instance)
vkDestroyInstance(instance, nullptr);
instance = nullptr;
}
uint32_t VulkanDevice::FindMemoryType(uint32_t typeFilter, VkMemoryPropertyFlags properties)
{
for (uint32_t i = 0; i < PhysicalDevice.MemoryProperties.memoryTypeCount; i++)
{
if ((typeFilter & (1 << i)) && (PhysicalDevice.MemoryProperties.memoryTypes[i].propertyFlags & properties) == properties)
return i;
}
VulkanError("failed to find suitable memory type!");
return 0;
}
FString VkResultToString(VkResult result)
{
switch (result)
{
case VK_SUCCESS: return "success";
case VK_NOT_READY: return "not ready";
case VK_TIMEOUT: return "timeout";
case VK_EVENT_SET: return "event set";
case VK_EVENT_RESET: return "event reset";
case VK_INCOMPLETE: return "incomplete";
case VK_ERROR_OUT_OF_HOST_MEMORY: return "out of host memory";
case VK_ERROR_OUT_OF_DEVICE_MEMORY: return "out of device memory";
case VK_ERROR_INITIALIZATION_FAILED: return "initialization failed";
case VK_ERROR_DEVICE_LOST: return "device lost";
case VK_ERROR_MEMORY_MAP_FAILED: return "memory map failed";
case VK_ERROR_LAYER_NOT_PRESENT: return "layer not present";
case VK_ERROR_EXTENSION_NOT_PRESENT: return "extension not present";
case VK_ERROR_FEATURE_NOT_PRESENT: return "feature not present";
case VK_ERROR_INCOMPATIBLE_DRIVER: return "incompatible driver";
case VK_ERROR_TOO_MANY_OBJECTS: return "too many objects";
case VK_ERROR_FORMAT_NOT_SUPPORTED: return "format not supported";
case VK_ERROR_FRAGMENTED_POOL: return "fragmented pool";
case VK_ERROR_OUT_OF_POOL_MEMORY: return "out of pool memory";
case VK_ERROR_INVALID_EXTERNAL_HANDLE: return "invalid external handle";
case VK_ERROR_SURFACE_LOST_KHR: return "surface lost";
case VK_ERROR_NATIVE_WINDOW_IN_USE_KHR: return "native window in use";
case VK_SUBOPTIMAL_KHR: return "suboptimal";
case VK_ERROR_OUT_OF_DATE_KHR: return "out of date";
case VK_ERROR_INCOMPATIBLE_DISPLAY_KHR: return "incompatible display";
case VK_ERROR_VALIDATION_FAILED_EXT: return "validation failed";
case VK_ERROR_INVALID_SHADER_NV: return "invalid shader";
case VK_ERROR_FRAGMENTATION_EXT: return "fragmentation";
case VK_ERROR_NOT_PERMITTED_EXT: return "not permitted";
default: break;
}
FString res;
res.Format("vkResult %d", (int)result);
return result;
}