[Vulkan] Optional functionality usage improvements

Functional changes:
- Enable only actually used features, as drivers may take more optimal
  paths when certain features are disabled.
- Support VK_SAMPLER_ADDRESS_MODE_CLAMP_TO_EDGE.
- Fix the separateStencilMaskRef check doing the opposite.
- Support shaderRoundingModeRTEFloat32.
- Fix vkGetDeviceBufferMemoryRequirements pointer not passed to the Vulkan
  Memory Allocator.

Stylistic changes:
- Move all device extensions, properties and features to one structure,
  especially simplifying portability subset feature checks, and also making
  it easier to request new extension functionality in the future.
- Remove extension suffixes from usage of promoted extensions.
This commit is contained in:
Triang3l
2024-05-04 22:47:14 +03:00
parent f87c6afdeb
commit e9f7a8bd48
16 changed files with 1115 additions and 1027 deletions

View File

@@ -866,9 +866,6 @@ bool VulkanImmediateDrawer::CreateTextureResource(
size_t& pending_upload_index_out) {
const VulkanProvider::DeviceFunctions& dfn = provider_.dfn();
VkDevice device = provider_.device();
const VkPhysicalDevicePortabilitySubsetFeaturesKHR*
device_portability_subset_features =
provider_.device_portability_subset_features();
// Create the image and the descriptor.
@@ -913,8 +910,7 @@ bool VulkanImmediateDrawer::CreateTextureResource(
// data == nullptr is a special case for (1, 1, 1, 1), though the image will
// be cleared to (1, 1, 1, 1) anyway, just a micro-optimization.
VkComponentSwizzle swizzle =
(data || (device_portability_subset_features &&
!device_portability_subset_features->imageViewFormatSwizzle))
(data || !provider_.device_info().imageViewFormatSwizzle)
? VK_COMPONENT_SWIZZLE_IDENTITY
: VK_COMPONENT_SWIZZLE_ONE;
image_view_create_info.components.r = swizzle;

View File

@@ -27,8 +27,7 @@ VmaAllocator CreateVmaAllocator(const VulkanProvider& provider,
const VulkanProvider::DeviceFunctions& dfn = provider.dfn();
const VulkanProvider::InstanceExtensions& instance_extensions =
provider.instance_extensions();
const VulkanProvider::DeviceExtensions& device_extensions =
provider.device_extensions();
const VulkanProvider::DeviceInfo& device_info = provider.device_info();
VmaVulkanFunctions vma_vulkan_functions = {};
VmaAllocatorCreateInfo allocator_create_info = {};
@@ -58,31 +57,33 @@ VmaAllocator CreateVmaAllocator(const VulkanProvider& provider,
vma_vulkan_functions.vkCreateImage = dfn.vkCreateImage;
vma_vulkan_functions.vkDestroyImage = dfn.vkDestroyImage;
vma_vulkan_functions.vkCmdCopyBuffer = dfn.vkCmdCopyBuffer;
if (device_extensions.khr_get_memory_requirements2) {
if (device_info.ext_1_1_VK_KHR_get_memory_requirements2) {
vma_vulkan_functions.vkGetBufferMemoryRequirements2KHR =
dfn.vkGetBufferMemoryRequirements2KHR;
dfn.vkGetBufferMemoryRequirements2;
vma_vulkan_functions.vkGetImageMemoryRequirements2KHR =
dfn.vkGetImageMemoryRequirements2KHR;
if (device_extensions.khr_dedicated_allocation) {
dfn.vkGetImageMemoryRequirements2;
if (device_info.ext_1_1_VK_KHR_dedicated_allocation) {
allocator_create_info.flags |=
VMA_ALLOCATOR_CREATE_KHR_DEDICATED_ALLOCATION_BIT;
}
}
if (device_extensions.khr_bind_memory2) {
vma_vulkan_functions.vkBindBufferMemory2KHR = dfn.vkBindBufferMemory2KHR;
vma_vulkan_functions.vkBindImageMemory2KHR = dfn.vkBindImageMemory2KHR;
if (device_info.ext_1_1_VK_KHR_bind_memory2) {
vma_vulkan_functions.vkBindBufferMemory2KHR = dfn.vkBindBufferMemory2;
vma_vulkan_functions.vkBindImageMemory2KHR = dfn.vkBindImageMemory2;
allocator_create_info.flags |= VMA_ALLOCATOR_CREATE_KHR_BIND_MEMORY2_BIT;
}
if (instance_extensions.khr_get_physical_device_properties2) {
vma_vulkan_functions.vkGetPhysicalDeviceMemoryProperties2KHR =
ifn.vkGetPhysicalDeviceMemoryProperties2KHR;
if (device_extensions.ext_memory_budget) {
ifn.vkGetPhysicalDeviceMemoryProperties2;
if (device_info.ext_VK_EXT_memory_budget) {
allocator_create_info.flags |= VMA_ALLOCATOR_CREATE_EXT_MEMORY_BUDGET_BIT;
}
}
if (device_extensions.khr_maintenance4) {
if (device_info.ext_1_3_VK_KHR_maintenance4) {
vma_vulkan_functions.vkGetDeviceBufferMemoryRequirements =
dfn.vkGetDeviceBufferMemoryRequirements;
vma_vulkan_functions.vkGetDeviceImageMemoryRequirements =
dfn.vkGetDeviceImageMemoryRequirementsKHR;
dfn.vkGetDeviceImageMemoryRequirements;
}
if (externally_synchronized) {
@@ -93,8 +94,7 @@ VmaAllocator CreateVmaAllocator(const VulkanProvider& provider,
allocator_create_info.device = provider.device();
allocator_create_info.pVulkanFunctions = &vma_vulkan_functions;
allocator_create_info.instance = provider.instance();
allocator_create_info.vulkanApiVersion =
provider.device_properties().apiVersion;
allocator_create_info.vulkanApiVersion = device_info.apiVersion;
VmaAllocator allocator;
if (vmaCreateAllocator(&allocator_create_info, &allocator) != VK_SUCCESS) {
XELOGE("Failed to create a Vulkan Memory Allocator instance");

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@@ -208,7 +208,7 @@ VulkanPresenter::~VulkanPresenter() {
}
Surface::TypeFlags VulkanPresenter::GetSupportedSurfaceTypes() const {
if (!provider_.device_extensions().khr_swapchain) {
if (!provider_.device_info().ext_VK_KHR_swapchain) {
return 0;
}
return GetSurfaceTypesSupportedByInstance(provider_.instance_extensions());

File diff suppressed because it is too large Load Diff

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@@ -57,6 +57,160 @@ namespace vulkan {
class VulkanProvider : public GraphicsProvider {
public:
struct DeviceInfo {
// "ext_1_X"-prefixed extension fields are set to true not only if the
// extension itself is actually exposed, but also if it was promoted to the
// device's API version. Therefore, merely the field being set to true
// doesn't imply that all the required features in the extension are
// supported - actual properties and features must be checked rather than
// the extension itself where they matter.
// Vulkan 1.0.
uint32_t memory_types_device_local;
uint32_t memory_types_host_visible;
uint32_t memory_types_host_coherent;
uint32_t memory_types_host_cached;
uint32_t apiVersion;
uint32_t maxImageDimension2D;
uint32_t maxImageDimension3D;
uint32_t maxImageDimensionCube;
uint32_t maxImageArrayLayers;
uint32_t maxStorageBufferRange;
uint32_t maxSamplerAllocationCount;
uint32_t maxPerStageDescriptorSamplers;
uint32_t maxPerStageDescriptorStorageBuffers;
uint32_t maxPerStageDescriptorSampledImages;
uint32_t maxPerStageResources;
uint32_t maxVertexOutputComponents;
uint32_t maxTessellationEvaluationOutputComponents;
uint32_t maxGeometryInputComponents;
uint32_t maxGeometryOutputComponents;
uint32_t maxGeometryTotalOutputComponents;
uint32_t maxFragmentInputComponents;
uint32_t maxFragmentCombinedOutputResources;
float maxSamplerAnisotropy;
uint32_t maxViewportDimensions[2];
float viewportBoundsRange[2];
VkDeviceSize minUniformBufferOffsetAlignment;
VkDeviceSize minStorageBufferOffsetAlignment;
uint32_t maxFramebufferWidth;
uint32_t maxFramebufferHeight;
VkSampleCountFlags framebufferColorSampleCounts;
VkSampleCountFlags framebufferDepthSampleCounts;
VkSampleCountFlags framebufferStencilSampleCounts;
VkSampleCountFlags framebufferNoAttachmentsSampleCounts;
VkSampleCountFlags sampledImageColorSampleCounts;
VkSampleCountFlags sampledImageIntegerSampleCounts;
VkSampleCountFlags sampledImageDepthSampleCounts;
VkSampleCountFlags sampledImageStencilSampleCounts;
VkSampleCountFlags standardSampleLocations;
VkDeviceSize optimalBufferCopyOffsetAlignment;
VkDeviceSize optimalBufferCopyRowPitchAlignment;
VkDeviceSize nonCoherentAtomSize;
bool fullDrawIndexUint32;
bool independentBlend;
bool geometryShader;
bool tessellationShader;
bool sampleRateShading;
bool depthClamp;
bool fillModeNonSolid;
bool samplerAnisotropy;
bool vertexPipelineStoresAndAtomics;
bool fragmentStoresAndAtomics;
bool shaderClipDistance;
bool shaderCullDistance;
bool sparseBinding;
bool sparseResidencyBuffer;
// VK_KHR_swapchain (#2).
bool ext_VK_KHR_swapchain;
// VK_KHR_sampler_mirror_clamp_to_edge (#15, Vulkan 1.2).
bool ext_1_2_VK_KHR_sampler_mirror_clamp_to_edge;
bool samplerMirrorClampToEdge;
// VK_KHR_dedicated_allocation (#128, Vulkan 1.1).
bool ext_1_1_VK_KHR_dedicated_allocation;
// VK_EXT_shader_stencil_export (#141).
bool ext_VK_EXT_shader_stencil_export;
// VK_KHR_get_memory_requirements2 (#147, Vulkan 1.1).
bool ext_1_1_VK_KHR_get_memory_requirements2;
// VK_KHR_image_format_list (#148, Vulkan 1.2).
bool ext_1_2_VK_KHR_image_format_list;
// VK_KHR_sampler_ycbcr_conversion (#157, Vulkan 1.1).
bool ext_1_1_VK_KHR_sampler_ycbcr_conversion;
// VK_KHR_bind_memory2 (#158, Vulkan 1.1).
bool ext_1_1_VK_KHR_bind_memory2;
// VK_KHR_portability_subset (#164).
bool ext_VK_KHR_portability_subset;
bool constantAlphaColorBlendFactors;
bool imageViewFormatReinterpretation;
bool imageViewFormatSwizzle;
bool pointPolygons;
bool separateStencilMaskRef;
bool shaderSampleRateInterpolationFunctions;
bool triangleFans;
// VK_KHR_shader_float_controls (#198, Vulkan 1.2).
bool ext_1_2_VK_KHR_shader_float_controls;
bool shaderSignedZeroInfNanPreserveFloat32;
bool shaderDenormFlushToZeroFloat32;
bool shaderRoundingModeRTEFloat32;
// VK_KHR_spirv_1_4 (#237, Vulkan 1.2).
bool ext_1_2_VK_KHR_spirv_1_4;
// VK_EXT_memory_budget (#238).
bool ext_VK_EXT_memory_budget;
// VK_EXT_fragment_shader_interlock (#252).
bool ext_VK_EXT_fragment_shader_interlock;
bool fragmentShaderSampleInterlock;
bool fragmentShaderPixelInterlock;
// VK_EXT_shader_demote_to_helper_invocation (#277, Vulkan 1.3).
bool ext_1_3_VK_EXT_shader_demote_to_helper_invocation;
bool shaderDemoteToHelperInvocation;
// VK_KHR_maintenance4 (#414, Vulkan 1.3).
bool ext_1_3_VK_KHR_maintenance4;
// VK_EXT_non_seamless_cube_map (#423).
bool ext_VK_EXT_non_seamless_cube_map;
bool nonSeamlessCubeMap;
};
~VulkanProvider();
static std::unique_ptr<VulkanProvider> Create(bool is_surface_required);
@@ -106,7 +260,7 @@ class VulkanProvider : public GraphicsProvider {
struct InstanceFunctions {
#define XE_UI_VULKAN_FUNCTION(name) PFN_##name name;
#define XE_UI_VULKAN_FUNCTION_PROMOTED(extension_name, core_name) \
PFN_##extension_name extension_name;
PFN_##core_name core_name;
#include "xenia/ui/vulkan/functions/instance_1_0.inc"
#include "xenia/ui/vulkan/functions/instance_ext_debug_utils.inc"
#include "xenia/ui/vulkan/functions/instance_khr_get_physical_device_properties2.inc"
@@ -124,61 +278,9 @@ class VulkanProvider : public GraphicsProvider {
const InstanceFunctions& ifn() const { return ifn_; }
VkPhysicalDevice physical_device() const { return physical_device_; }
const VkPhysicalDeviceProperties& device_properties() const {
return device_properties_;
}
const VkPhysicalDeviceFeatures& device_features() const {
return device_features_;
}
struct DeviceExtensions {
bool ext_fragment_shader_interlock;
bool ext_memory_budget;
// Core since 1.3.0.
bool ext_shader_demote_to_helper_invocation;
bool ext_shader_stencil_export;
// Core since 1.1.0.
bool khr_bind_memory2;
// Core since 1.1.0.
bool khr_dedicated_allocation;
// Core since 1.1.0.
bool khr_get_memory_requirements2;
// Core since 1.2.0.
bool khr_image_format_list;
// Core since 1.3.0.
bool khr_maintenance4;
// Requires the VK_KHR_get_physical_device_properties2 instance extension.
bool khr_portability_subset;
// Core since 1.1.0.
bool khr_sampler_ycbcr_conversion;
// Core since 1.2.0.
bool khr_shader_float_controls;
// Core since 1.2.0.
bool khr_spirv_1_4;
bool khr_swapchain;
};
const DeviceExtensions& device_extensions() const {
return device_extensions_;
}
// Returns nullptr if the device is fully compliant with Vulkan 1.0.
const VkPhysicalDevicePortabilitySubsetFeaturesKHR*
device_portability_subset_features() const {
if (!device_extensions_.khr_portability_subset) {
return nullptr;
}
return &device_portability_subset_features_;
}
uint32_t memory_types_device_local() const {
return memory_types_device_local_;
}
uint32_t memory_types_host_visible() const {
return memory_types_host_visible_;
}
uint32_t memory_types_host_coherent() const {
return memory_types_host_coherent_;
}
uint32_t memory_types_host_cached() const {
return memory_types_host_cached_;
}
const DeviceInfo& device_info() const { return device_info_; }
struct QueueFamily {
uint32_t queue_first_index = 0;
uint32_t queue_count = 0;
@@ -196,18 +298,6 @@ class VulkanProvider : public GraphicsProvider {
uint32_t queue_family_sparse_binding() const {
return queue_family_sparse_binding_;
}
const VkPhysicalDeviceFloatControlsPropertiesKHR&
device_float_controls_properties() const {
return device_float_controls_properties_;
}
const VkPhysicalDeviceFragmentShaderInterlockFeaturesEXT&
device_fragment_shader_interlock_features() const {
return device_fragment_shader_interlock_features_;
}
const VkPhysicalDeviceShaderDemoteToHelperInvocationFeaturesEXT&
device_shader_demote_to_helper_invocation_features() const {
return device_shader_demote_to_helper_invocation_features_;
}
struct Queue {
VkQueue queue = VK_NULL_HANDLE;
@@ -235,7 +325,7 @@ class VulkanProvider : public GraphicsProvider {
struct DeviceFunctions {
#define XE_UI_VULKAN_FUNCTION(name) PFN_##name name;
#define XE_UI_VULKAN_FUNCTION_PROMOTED(extension_name, core_name) \
PFN_##extension_name extension_name;
PFN_##core_name core_name;
#include "xenia/ui/vulkan/functions/device_1_0.inc"
#include "xenia/ui/vulkan/functions/device_khr_bind_memory2.inc"
#include "xenia/ui/vulkan/functions/device_khr_get_memory_requirements2.inc"
@@ -261,10 +351,6 @@ class VulkanProvider : public GraphicsProvider {
ifn_.vkSetDebugUtilsObjectNameEXT(device_, &name_info);
}
bool IsSparseBindingSupported() const {
return queue_family_sparse_binding_ != UINT32_MAX;
}
// Samplers that may be useful for host needs. Only these samplers should be
// used in host, non-emulation contexts, because the total number of samplers
// is heavily limited (4000) on Nvidia GPUs - the rest of samplers are
@@ -298,6 +384,12 @@ class VulkanProvider : public GraphicsProvider {
const VkDebugUtilsMessengerCallbackDataEXT* callback_data,
void* user_data);
// For the current `physical_device_`, sets up the members obtained from the
// physical device info, and tries to create a device and get the needed
// queues.
// The call is successful if `device_` is not VK_NULL_HANDLE as a result.
void TryCreateDevice();
bool is_surface_required_;
RenderdocApi renderdoc_api_;
@@ -313,30 +405,21 @@ class VulkanProvider : public GraphicsProvider {
InstanceExtensions instance_extensions_;
VkInstance instance_ = VK_NULL_HANDLE;
InstanceFunctions ifn_;
VkDebugUtilsMessengerEXT debug_messenger_ = VK_NULL_HANDLE;
bool debug_names_used_ = false;
VkPhysicalDevice physical_device_ = VK_NULL_HANDLE;
VkPhysicalDeviceProperties device_properties_;
VkPhysicalDeviceFeatures device_features_;
DeviceExtensions device_extensions_;
VkPhysicalDevicePortabilitySubsetFeaturesKHR
device_portability_subset_features_;
uint32_t memory_types_device_local_;
uint32_t memory_types_host_visible_;
uint32_t memory_types_host_coherent_;
uint32_t memory_types_host_cached_;
DeviceInfo device_info_ = {};
std::vector<QueueFamily> queue_families_;
uint32_t queue_family_graphics_compute_;
uint32_t queue_family_sparse_binding_;
VkPhysicalDeviceFloatControlsPropertiesKHR device_float_controls_properties_;
VkPhysicalDeviceFragmentShaderInterlockFeaturesEXT
device_fragment_shader_interlock_features_;
VkPhysicalDeviceShaderDemoteToHelperInvocationFeaturesEXT
device_shader_demote_to_helper_invocation_features_;
VkDevice device_ = VK_NULL_HANDLE;
DeviceFunctions dfn_ = {};
// Queues contain a mutex, can't use std::vector.
std::unique_ptr<Queue[]> queues_;

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@@ -138,13 +138,13 @@ VulkanUploadBufferPool::CreatePageImplementation() {
memory_allocate_info.pNext = nullptr;
memory_allocate_info.allocationSize = allocation_size_;
memory_allocate_info.memoryTypeIndex = memory_type_;
VkMemoryDedicatedAllocateInfoKHR memory_dedicated_allocate_info;
if (provider_.device_extensions().khr_dedicated_allocation) {
VkMemoryDedicatedAllocateInfo memory_dedicated_allocate_info;
if (provider_.device_info().ext_1_1_VK_KHR_dedicated_allocation) {
memory_allocate_info_last->pNext = &memory_dedicated_allocate_info;
memory_allocate_info_last = reinterpret_cast<VkMemoryAllocateInfo*>(
&memory_dedicated_allocate_info);
memory_dedicated_allocate_info.sType =
VK_STRUCTURE_TYPE_MEMORY_DEDICATED_ALLOCATE_INFO_KHR;
VK_STRUCTURE_TYPE_MEMORY_DEDICATED_ALLOCATE_INFO;
memory_dedicated_allocate_info.pNext = nullptr;
memory_dedicated_allocate_info.image = VK_NULL_HANDLE;
memory_dedicated_allocate_info.buffer = buffer;

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@@ -27,8 +27,8 @@ void FlushMappedMemoryRange(const VulkanProvider& provider,
assert_false(size != VK_WHOLE_SIZE && memory_size == VK_WHOLE_SIZE);
assert_true(memory_size == VK_WHOLE_SIZE || offset <= memory_size);
assert_true(memory_size == VK_WHOLE_SIZE || size <= memory_size - offset);
if (!size ||
(provider.memory_types_host_coherent() & (uint32_t(1) << memory_type))) {
if (!size || (provider.device_info().memory_types_host_coherent &
(uint32_t(1) << memory_type))) {
return;
}
VkMappedMemoryRange range;
@@ -38,7 +38,7 @@ void FlushMappedMemoryRange(const VulkanProvider& provider,
range.offset = offset;
range.size = size;
VkDeviceSize non_coherent_atom_size =
provider.device_properties().limits.nonCoherentAtomSize;
provider.device_info().nonCoherentAtomSize;
// On some Android implementations, nonCoherentAtomSize is 0, not 1.
if (non_coherent_atom_size > 1) {
range.offset = offset / non_coherent_atom_size * non_coherent_atom_size;
@@ -89,13 +89,13 @@ bool CreateDedicatedAllocationBuffer(
memory_allocate_info.pNext = nullptr;
memory_allocate_info.allocationSize = memory_requirements.size;
memory_allocate_info.memoryTypeIndex = memory_type;
VkMemoryDedicatedAllocateInfoKHR memory_dedicated_allocate_info;
if (provider.device_extensions().khr_dedicated_allocation) {
VkMemoryDedicatedAllocateInfo memory_dedicated_allocate_info;
if (provider.device_info().ext_1_1_VK_KHR_dedicated_allocation) {
memory_allocate_info_last->pNext = &memory_dedicated_allocate_info;
memory_allocate_info_last = reinterpret_cast<VkMemoryAllocateInfo*>(
&memory_dedicated_allocate_info);
memory_dedicated_allocate_info.sType =
VK_STRUCTURE_TYPE_MEMORY_DEDICATED_ALLOCATE_INFO_KHR;
VK_STRUCTURE_TYPE_MEMORY_DEDICATED_ALLOCATE_INFO;
memory_dedicated_allocate_info.pNext = nullptr;
memory_dedicated_allocate_info.image = VK_NULL_HANDLE;
memory_dedicated_allocate_info.buffer = buffer;
@@ -154,13 +154,13 @@ bool CreateDedicatedAllocationImage(const VulkanProvider& provider,
memory_allocate_info.pNext = nullptr;
memory_allocate_info.allocationSize = memory_requirements.size;
memory_allocate_info.memoryTypeIndex = memory_type;
VkMemoryDedicatedAllocateInfoKHR memory_dedicated_allocate_info;
if (provider.device_extensions().khr_dedicated_allocation) {
VkMemoryDedicatedAllocateInfo memory_dedicated_allocate_info;
if (provider.device_info().ext_1_1_VK_KHR_dedicated_allocation) {
memory_allocate_info_last->pNext = &memory_dedicated_allocate_info;
memory_allocate_info_last = reinterpret_cast<VkMemoryAllocateInfo*>(
&memory_dedicated_allocate_info);
memory_dedicated_allocate_info.sType =
VK_STRUCTURE_TYPE_MEMORY_DEDICATED_ALLOCATE_INFO_KHR;
VK_STRUCTURE_TYPE_MEMORY_DEDICATED_ALLOCATE_INFO;
memory_dedicated_allocate_info.pNext = nullptr;
memory_dedicated_allocate_info.image = image;
memory_dedicated_allocate_info.buffer = VK_NULL_HANDLE;

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@@ -50,7 +50,7 @@ enum class MemoryPurpose {
inline VkDeviceSize GetMappableMemorySize(const VulkanProvider& provider,
VkDeviceSize size) {
VkDeviceSize non_coherent_atom_size =
provider.device_properties().limits.nonCoherentAtomSize;
provider.device_info().nonCoherentAtomSize;
// On some Android implementations, nonCoherentAtomSize is 0, not 1.
if (non_coherent_atom_size > 1) {
size = xe::round_up(size, non_coherent_atom_size, false);
@@ -61,8 +61,8 @@ inline VkDeviceSize GetMappableMemorySize(const VulkanProvider& provider,
inline uint32_t ChooseHostMemoryType(const VulkanProvider& provider,
uint32_t supported_types,
bool is_readback) {
supported_types &= provider.memory_types_host_visible();
uint32_t host_cached = provider.memory_types_host_cached();
supported_types &= provider.device_info().memory_types_host_visible;
uint32_t host_cached = provider.device_info().memory_types_host_cached;
uint32_t memory_type;
// For upload, uncached is preferred so writes do not pollute the CPU cache.
// For readback, cached is preferred so multiple CPU reads are fast.
@@ -107,12 +107,12 @@ void FlushMappedMemoryRange(const VulkanProvider& provider,
VkDeviceSize size = VK_WHOLE_SIZE);
inline VkExtent2D GetMax2DFramebufferExtent(const VulkanProvider& provider) {
const VkPhysicalDeviceLimits& limits = provider.device_properties().limits;
const VulkanProvider::DeviceInfo& device_info = provider.device_info();
VkExtent2D max_extent;
max_extent.width =
std::min(limits.maxFramebufferWidth, limits.maxImageDimension2D);
max_extent.height =
std::min(limits.maxFramebufferHeight, limits.maxImageDimension2D);
max_extent.width = std::min(device_info.maxFramebufferWidth,
device_info.maxImageDimension2D);
max_extent.height = std::min(device_info.maxFramebufferHeight,
device_info.maxImageDimension2D);
return max_extent;
}