mirror of
https://github.com/EduApps-CDG/OpenDX
synced 2024-12-30 09:45:37 +01:00
229 lines
9.5 KiB
C++
229 lines
9.5 KiB
C++
#include "dxvk_image.h"
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namespace dxvk {
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DxvkImage::DxvkImage(
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const Rc<vk::DeviceFn>& vkd,
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const DxvkImageCreateInfo& createInfo,
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DxvkMemoryAllocator& memAlloc,
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VkMemoryPropertyFlags memFlags)
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: m_vkd(vkd), m_info(createInfo), m_memFlags(memFlags) {
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// Copy the compatible view formats to a persistent array
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m_viewFormats.resize(createInfo.viewFormatCount);
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for (uint32_t i = 0; i < createInfo.viewFormatCount; i++)
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m_viewFormats[i] = createInfo.viewFormats[i];
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m_info.viewFormats = m_viewFormats.data();
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// If defined, we should provide a format list, which
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// allows some drivers to enable image compression
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VkImageFormatListCreateInfoKHR formatList;
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formatList.sType = VK_STRUCTURE_TYPE_IMAGE_FORMAT_LIST_CREATE_INFO_KHR;
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formatList.pNext = nullptr;
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formatList.viewFormatCount = createInfo.viewFormatCount;
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formatList.pViewFormats = createInfo.viewFormats;
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VkImageCreateInfo info;
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info.sType = VK_STRUCTURE_TYPE_IMAGE_CREATE_INFO;
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info.pNext = &formatList;
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info.flags = createInfo.flags;
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info.imageType = createInfo.type;
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info.format = createInfo.format;
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info.extent = createInfo.extent;
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info.mipLevels = createInfo.mipLevels;
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info.arrayLayers = createInfo.numLayers;
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info.samples = createInfo.sampleCount;
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info.tiling = createInfo.tiling;
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info.usage = createInfo.usage;
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info.sharingMode = VK_SHARING_MODE_EXCLUSIVE;
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info.queueFamilyIndexCount = 0;
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info.pQueueFamilyIndices = nullptr;
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info.initialLayout = VK_IMAGE_LAYOUT_UNDEFINED;
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if (m_vkd->vkCreateImage(m_vkd->device(),
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&info, nullptr, &m_image) != VK_SUCCESS) {
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throw DxvkError(str::format(
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"DxvkImage: Failed to create image:",
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"\n Type: ", info.imageType,
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"\n Format: ", info.format,
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"\n Extent: ", "(", info.extent.width,
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",", info.extent.height,
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",", info.extent.depth, ")",
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"\n Mip levels: ", info.mipLevels,
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"\n Array layers: ", info.arrayLayers,
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"\n Samples: ", info.samples,
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"\n Usage: ", info.usage,
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"\n Tiling: ", info.tiling));
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}
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// Get memory requirements for the image. We may enforce strict
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// alignment on non-linear images in order not to violate the
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// bufferImageGranularity limit, which may be greater than the
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// required resource memory alignment on some GPUs.
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VkMemoryDedicatedRequirementsKHR dedicatedRequirements;
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dedicatedRequirements.sType = VK_STRUCTURE_TYPE_MEMORY_DEDICATED_REQUIREMENTS_KHR;
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dedicatedRequirements.pNext = VK_NULL_HANDLE;
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dedicatedRequirements.prefersDedicatedAllocation = VK_FALSE;
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dedicatedRequirements.requiresDedicatedAllocation = VK_FALSE;
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VkMemoryRequirements2KHR memReq;
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memReq.sType = VK_STRUCTURE_TYPE_MEMORY_REQUIREMENTS_2_KHR;
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memReq.pNext = &dedicatedRequirements;
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VkImageMemoryRequirementsInfo2KHR memReqInfo;
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memReqInfo.sType = VK_STRUCTURE_TYPE_IMAGE_MEMORY_REQUIREMENTS_INFO_2_KHR;
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memReqInfo.image = m_image;
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memReqInfo.pNext = VK_NULL_HANDLE;
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VkMemoryDedicatedAllocateInfoKHR dedMemoryAllocInfo;
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dedMemoryAllocInfo.sType = VK_STRUCTURE_TYPE_MEMORY_DEDICATED_ALLOCATE_INFO_KHR;
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dedMemoryAllocInfo.pNext = VK_NULL_HANDLE;
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dedMemoryAllocInfo.buffer = VK_NULL_HANDLE;
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dedMemoryAllocInfo.image = m_image;
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m_vkd->vkGetImageMemoryRequirements2KHR(
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m_vkd->device(), &memReqInfo, &memReq);
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if (info.tiling != VK_IMAGE_TILING_LINEAR) {
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memReq.memoryRequirements.size = align(memReq.memoryRequirements.size, memAlloc.bufferImageGranularity());
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memReq.memoryRequirements.alignment = align(memReq.memoryRequirements.alignment , memAlloc.bufferImageGranularity());
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}
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bool useDedicated = dedicatedRequirements.prefersDedicatedAllocation;
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m_memory = memAlloc.alloc(&memReq.memoryRequirements,
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useDedicated ? &dedMemoryAllocInfo : nullptr, memFlags);
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// Try to bind the allocated memory slice to the image
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if (m_vkd->vkBindImageMemory(m_vkd->device(),
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m_image, m_memory.memory(), m_memory.offset()) != VK_SUCCESS)
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throw DxvkError("DxvkImage::DxvkImage: Failed to bind device memory");
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}
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DxvkImage::DxvkImage(
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const Rc<vk::DeviceFn>& vkd,
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const DxvkImageCreateInfo& info,
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VkImage image)
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: m_vkd(vkd), m_info(info), m_image(image) {
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}
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DxvkImage::~DxvkImage() {
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// This is a bit of a hack to determine whether
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// the image is implementation-handled or not
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if (m_memory.memory() != VK_NULL_HANDLE)
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m_vkd->vkDestroyImage(m_vkd->device(), m_image, nullptr);
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}
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DxvkImageView::DxvkImageView(
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const Rc<vk::DeviceFn>& vkd,
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const Rc<DxvkImage>& image,
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const DxvkImageViewCreateInfo& info)
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: m_vkd(vkd), m_image(image), m_info(info) {
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// Since applications tend to bind views
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for (uint32_t i = 0; i < ViewCount; i++)
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m_views[i] = VK_NULL_HANDLE;
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switch (info.type) {
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case VK_IMAGE_VIEW_TYPE_1D:
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case VK_IMAGE_VIEW_TYPE_1D_ARRAY: {
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this->createView(VK_IMAGE_VIEW_TYPE_1D, 1);
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this->createView(VK_IMAGE_VIEW_TYPE_1D_ARRAY, info.numLayers);
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} break;
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case VK_IMAGE_VIEW_TYPE_2D:
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case VK_IMAGE_VIEW_TYPE_2D_ARRAY:
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case VK_IMAGE_VIEW_TYPE_CUBE:
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case VK_IMAGE_VIEW_TYPE_CUBE_ARRAY: {
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this->createView(VK_IMAGE_VIEW_TYPE_2D, 1);
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this->createView(VK_IMAGE_VIEW_TYPE_2D_ARRAY, info.numLayers);
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if (m_image->info().flags & VK_IMAGE_CREATE_CUBE_COMPATIBLE_BIT) {
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uint32_t cubeCount = info.numLayers / 6;
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if (cubeCount > 0) {
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this->createView(VK_IMAGE_VIEW_TYPE_CUBE, 6);
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this->createView(VK_IMAGE_VIEW_TYPE_CUBE_ARRAY, 6 * cubeCount);
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}
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}
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} break;
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case VK_IMAGE_VIEW_TYPE_3D: {
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this->createView(VK_IMAGE_VIEW_TYPE_3D, 1);
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if (m_image->info().flags & VK_IMAGE_CREATE_2D_ARRAY_COMPATIBLE_BIT_KHR && info.numLevels == 1) {
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this->createView(VK_IMAGE_VIEW_TYPE_2D, 1);
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this->createView(VK_IMAGE_VIEW_TYPE_2D_ARRAY, m_image->mipLevelExtent(info.minLevel).depth);
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}
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} break;
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default:
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throw DxvkError(str::format("DxvkImageView: Invalid view type: ", info.type));
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}
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}
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DxvkImageView::~DxvkImageView() {
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for (uint32_t i = 0; i < ViewCount; i++)
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m_vkd->vkDestroyImageView(m_vkd->device(), m_views[i], nullptr);
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}
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void DxvkImageView::createView(VkImageViewType type, uint32_t numLayers) {
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VkImageSubresourceRange subresourceRange;
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subresourceRange.aspectMask = m_info.aspect;
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subresourceRange.baseMipLevel = m_info.minLevel;
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subresourceRange.levelCount = m_info.numLevels;
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subresourceRange.baseArrayLayer = m_info.minLayer;
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subresourceRange.layerCount = numLayers;
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VkImageViewUsageCreateInfoKHR viewUsage;
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viewUsage.sType = VK_STRUCTURE_TYPE_IMAGE_VIEW_USAGE_CREATE_INFO_KHR;
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viewUsage.pNext = nullptr;
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viewUsage.usage = m_info.usage;
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VkImageViewCreateInfo viewInfo;
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viewInfo.sType = VK_STRUCTURE_TYPE_IMAGE_VIEW_CREATE_INFO;
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viewInfo.pNext = &viewUsage;
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viewInfo.flags = 0;
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viewInfo.image = m_image->handle();
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viewInfo.viewType = type;
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viewInfo.format = m_info.format;
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viewInfo.components = m_info.swizzle;
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viewInfo.subresourceRange = subresourceRange;
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if (m_info.usage == VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT) {
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viewInfo.components = {
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VK_COMPONENT_SWIZZLE_IDENTITY, VK_COMPONENT_SWIZZLE_IDENTITY,
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VK_COMPONENT_SWIZZLE_IDENTITY, VK_COMPONENT_SWIZZLE_IDENTITY };
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}
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if (m_vkd->vkCreateImageView(m_vkd->device(),
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&viewInfo, nullptr, &m_views[type]) != VK_SUCCESS) {
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throw DxvkError(str::format(
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"DxvkImageView: Failed to create image view:"
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"\n View type: ", viewInfo.viewType,
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"\n View format: ", viewInfo.format,
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"\n Subresources: ",
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"\n Aspect mask: ", std::hex, viewInfo.subresourceRange.aspectMask,
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"\n Mip levels: ", viewInfo.subresourceRange.baseMipLevel, " - ",
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viewInfo.subresourceRange.levelCount,
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"\n Array layers: ", viewInfo.subresourceRange.baseArrayLayer, " - ",
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viewInfo.subresourceRange.layerCount,
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"\n Image properties:",
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"\n Type: ", m_image->info().type,
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"\n Format: ", m_image->info().format,
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"\n Extent: ", "(", m_image->info().extent.width,
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",", m_image->info().extent.height,
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",", m_image->info().extent.depth, ")",
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"\n Mip levels: ", m_image->info().mipLevels,
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"\n Array layers: ", m_image->info().numLayers,
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"\n Samples: ", m_image->info().sampleCount,
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"\n Usage: ", std::hex, m_image->info().usage,
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"\n Tiling: ", m_image->info().tiling));
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}
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}
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} |