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1 // Copyright 2018 The SwiftShader Authors. All Rights Reserved.
2 //
3 // Licensed under the Apache License, Version 2.0 (the "License");
4 // you may not use this file except in compliance with the License.
5 // You may obtain a copy of the License at
6 //
7 //    http://www.apache.org/licenses/LICENSE-2.0
8 //
9 // Unless required by applicable law or agreed to in writing, software
10 // distributed under the License is distributed on an "AS IS" BASIS,
11 // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
12 // See the License for the specific language governing permissions and
13 // limitations under the License.
14 
15 #include "VkDescriptorSetLayout.hpp"
16 
17 #include "VkBuffer.hpp"
18 #include "VkBufferView.hpp"
19 #include "VkDescriptorSet.hpp"
20 #include "VkImageView.hpp"
21 #include "VkSampler.hpp"
22 
23 #include "Reactor/Reactor.hpp"
24 
25 #include <algorithm>
26 #include <cstddef>
27 #include <cstring>
28 
29 namespace vk {
30 
UsesImmutableSamplers(const VkDescriptorSetLayoutBinding & binding)31 static bool UsesImmutableSamplers(const VkDescriptorSetLayoutBinding &binding)
32 {
33 	return (((binding.descriptorType == VK_DESCRIPTOR_TYPE_SAMPLER) ||
34 	         (binding.descriptorType == VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER)) &&
35 	        (binding.pImmutableSamplers != nullptr));
36 }
37 
DescriptorSetLayout(const VkDescriptorSetLayoutCreateInfo * pCreateInfo,void * mem)38 DescriptorSetLayout::DescriptorSetLayout(const VkDescriptorSetLayoutCreateInfo *pCreateInfo, void *mem)
39     : flags(pCreateInfo->flags)
40     , bindings(reinterpret_cast<Binding *>(mem))
41 {
42 	// The highest binding number determines the size of the direct-indexed array.
43 	bindingsArraySize = 0;
44 	for(uint32_t i = 0; i < pCreateInfo->bindingCount; i++)
45 	{
46 		bindingsArraySize = std::max(bindingsArraySize, pCreateInfo->pBindings[i].binding + 1);
47 	}
48 
49 	uint8_t *immutableSamplersStorage = static_cast<uint8_t *>(mem) + bindingsArraySize * sizeof(Binding);
50 
51 	// pCreateInfo->pBindings[] can have gaps in the binding numbers, so first initialize the entire bindings array.
52 	// "Bindings that are not specified have a descriptorCount and stageFlags of zero, and the value of descriptorType is undefined."
53 	for(uint32_t i = 0; i < bindingsArraySize; i++)
54 	{
55 		bindings[i].descriptorType = VK_DESCRIPTOR_TYPE_SAMPLER;
56 		bindings[i].descriptorCount = 0;
57 		bindings[i].immutableSamplers = nullptr;
58 	}
59 
60 	for(uint32_t i = 0; i < pCreateInfo->bindingCount; i++)
61 	{
62 		const auto &srcBinding = pCreateInfo->pBindings[i];
63 		auto &dstBinding = bindings[srcBinding.binding];
64 
65 		dstBinding.descriptorType = srcBinding.descriptorType;
66 		dstBinding.descriptorCount = srcBinding.descriptorCount;
67 
68 		if(UsesImmutableSamplers(srcBinding))
69 		{
70 			size_t immutableSamplersSize = dstBinding.descriptorCount * sizeof(VkSampler);
71 			dstBinding.immutableSamplers = reinterpret_cast<const vk::Sampler **>(immutableSamplersStorage);
72 			immutableSamplersStorage += immutableSamplersSize;
73 
74 			for(uint32_t i = 0; i < dstBinding.descriptorCount; i++)
75 			{
76 				dstBinding.immutableSamplers[i] = vk::Cast(srcBinding.pImmutableSamplers[i]);
77 			}
78 		}
79 	}
80 
81 	uint32_t offset = 0;
82 	for(uint32_t i = 0; i < bindingsArraySize; i++)
83 	{
84 		bindings[i].offset = offset;
85 		offset += bindings[i].descriptorCount * GetDescriptorSize(bindings[i].descriptorType);
86 	}
87 
88 	ASSERT_MSG(offset == getDescriptorSetDataSize(), "offset: %d, size: %d", int(offset), int(getDescriptorSetDataSize()));
89 }
90 
destroy(const VkAllocationCallbacks * pAllocator)91 void DescriptorSetLayout::destroy(const VkAllocationCallbacks *pAllocator)
92 {
93 	vk::deallocate(bindings, pAllocator);  // This allocation also contains pImmutableSamplers
94 }
95 
ComputeRequiredAllocationSize(const VkDescriptorSetLayoutCreateInfo * pCreateInfo)96 size_t DescriptorSetLayout::ComputeRequiredAllocationSize(const VkDescriptorSetLayoutCreateInfo *pCreateInfo)
97 {
98 	uint32_t bindingsArraySize = 0;
99 	uint32_t immutableSamplerCount = 0;
100 	for(uint32_t i = 0; i < pCreateInfo->bindingCount; i++)
101 	{
102 		bindingsArraySize = std::max(bindingsArraySize, pCreateInfo->pBindings[i].binding + 1);
103 
104 		if(UsesImmutableSamplers(pCreateInfo->pBindings[i]))
105 		{
106 			immutableSamplerCount += pCreateInfo->pBindings[i].descriptorCount;
107 		}
108 	}
109 
110 	return bindingsArraySize * sizeof(Binding) +
111 	       immutableSamplerCount * sizeof(VkSampler);
112 }
113 
GetDescriptorSize(VkDescriptorType type)114 uint32_t DescriptorSetLayout::GetDescriptorSize(VkDescriptorType type)
115 {
116 	switch(type)
117 	{
118 		case VK_DESCRIPTOR_TYPE_SAMPLER:
119 		case VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER:
120 		case VK_DESCRIPTOR_TYPE_SAMPLED_IMAGE:
121 		case VK_DESCRIPTOR_TYPE_UNIFORM_TEXEL_BUFFER:
122 			return static_cast<uint32_t>(sizeof(SampledImageDescriptor));
123 		case VK_DESCRIPTOR_TYPE_STORAGE_IMAGE:
124 		case VK_DESCRIPTOR_TYPE_STORAGE_TEXEL_BUFFER:
125 		case VK_DESCRIPTOR_TYPE_INPUT_ATTACHMENT:
126 			return static_cast<uint32_t>(sizeof(StorageImageDescriptor));
127 		case VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER:
128 		case VK_DESCRIPTOR_TYPE_STORAGE_BUFFER:
129 		case VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER_DYNAMIC:
130 		case VK_DESCRIPTOR_TYPE_STORAGE_BUFFER_DYNAMIC:
131 			return static_cast<uint32_t>(sizeof(BufferDescriptor));
132 		default:
133 			UNSUPPORTED("Unsupported Descriptor Type: %d", int(type));
134 			return 0;
135 	}
136 }
137 
IsDescriptorDynamic(VkDescriptorType type)138 bool DescriptorSetLayout::IsDescriptorDynamic(VkDescriptorType type)
139 {
140 	return type == VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER_DYNAMIC ||
141 	       type == VK_DESCRIPTOR_TYPE_STORAGE_BUFFER_DYNAMIC;
142 }
143 
getDescriptorSetAllocationSize() const144 size_t DescriptorSetLayout::getDescriptorSetAllocationSize() const
145 {
146 	// vk::DescriptorSet has a header with a pointer to the layout.
147 	return sw::align<alignof(DescriptorSet)>(OFFSET(DescriptorSet, data) + getDescriptorSetDataSize());
148 }
149 
getDescriptorSetDataSize() const150 size_t DescriptorSetLayout::getDescriptorSetDataSize() const
151 {
152 	size_t size = 0;
153 	for(uint32_t i = 0; i < bindingsArraySize; i++)
154 	{
155 		size += bindings[i].descriptorCount * GetDescriptorSize(bindings[i].descriptorType);
156 	}
157 
158 	return size;
159 }
160 
initialize(DescriptorSet * descriptorSet)161 void DescriptorSetLayout::initialize(DescriptorSet *descriptorSet)
162 {
163 	ASSERT(descriptorSet->header.layout == nullptr);
164 
165 	// Use a pointer to this descriptor set layout as the descriptor set's header
166 	descriptorSet->header.layout = this;
167 	uint8_t *mem = descriptorSet->data;
168 
169 	for(uint32_t i = 0; i < bindingsArraySize; i++)
170 	{
171 		size_t descriptorSize = GetDescriptorSize(bindings[i].descriptorType);
172 
173 		if(bindings[i].immutableSamplers)
174 		{
175 			for(uint32_t j = 0; j < bindings[i].descriptorCount; j++)
176 			{
177 				SampledImageDescriptor *imageSamplerDescriptor = reinterpret_cast<SampledImageDescriptor *>(mem);
178 				imageSamplerDescriptor->updateSampler(bindings[i].immutableSamplers[j]);
179 				mem += descriptorSize;
180 			}
181 		}
182 		else
183 		{
184 			mem += bindings[i].descriptorCount * descriptorSize;
185 		}
186 	}
187 }
188 
getBindingOffset(uint32_t bindingNumber) const189 uint32_t DescriptorSetLayout::getBindingOffset(uint32_t bindingNumber) const
190 {
191 	ASSERT(bindingNumber < bindingsArraySize);
192 	return bindings[bindingNumber].offset;
193 }
194 
getDescriptorCount(uint32_t bindingNumber) const195 uint32_t DescriptorSetLayout::getDescriptorCount(uint32_t bindingNumber) const
196 {
197 	ASSERT(bindingNumber < bindingsArraySize);
198 	return bindings[bindingNumber].descriptorCount;
199 }
200 
getDynamicDescriptorCount() const201 uint32_t DescriptorSetLayout::getDynamicDescriptorCount() const
202 {
203 	uint32_t count = 0;
204 	for(size_t i = 0; i < bindingsArraySize; i++)
205 	{
206 		if(IsDescriptorDynamic(bindings[i].descriptorType))
207 		{
208 			count += bindings[i].descriptorCount;
209 		}
210 	}
211 
212 	return count;
213 }
214 
getDynamicOffsetIndex(uint32_t bindingNumber) const215 uint32_t DescriptorSetLayout::getDynamicOffsetIndex(uint32_t bindingNumber) const
216 {
217 	ASSERT(bindingNumber < bindingsArraySize);
218 	ASSERT(IsDescriptorDynamic(bindings[bindingNumber].descriptorType));
219 
220 	uint32_t index = 0;
221 	for(uint32_t i = 0; i < bindingNumber; i++)
222 	{
223 		if(IsDescriptorDynamic(bindings[i].descriptorType))
224 		{
225 			index += bindings[i].descriptorCount;
226 		}
227 	}
228 
229 	return index;
230 }
231 
getDescriptorType(uint32_t bindingNumber) const232 VkDescriptorType DescriptorSetLayout::getDescriptorType(uint32_t bindingNumber) const
233 {
234 	ASSERT(bindingNumber < bindingsArraySize);
235 	return bindings[bindingNumber].descriptorType;
236 }
237 
getDescriptorPointer(DescriptorSet * descriptorSet,uint32_t bindingNumber,uint32_t arrayElement,uint32_t count,size_t * typeSize) const238 uint8_t *DescriptorSetLayout::getDescriptorPointer(DescriptorSet *descriptorSet, uint32_t bindingNumber, uint32_t arrayElement, uint32_t count, size_t *typeSize) const
239 {
240 	ASSERT(bindingNumber < bindingsArraySize);
241 	*typeSize = GetDescriptorSize(bindings[bindingNumber].descriptorType);
242 	size_t byteOffset = bindings[bindingNumber].offset + (*typeSize * arrayElement);
243 	ASSERT(((*typeSize * count) + byteOffset) <= getDescriptorSetDataSize());  // Make sure the operation will not go out of bounds
244 
245 	return &descriptorSet->data[byteOffset];
246 }
247 
updateSampler(const vk::Sampler * newSampler)248 void SampledImageDescriptor::updateSampler(const vk::Sampler *newSampler)
249 {
250 	memcpy(reinterpret_cast<void *>(&sampler), newSampler, sizeof(sampler));
251 }
252 
WriteDescriptorSet(Device * device,DescriptorSet * dstSet,VkDescriptorUpdateTemplateEntry const & entry,char const * src)253 void DescriptorSetLayout::WriteDescriptorSet(Device *device, DescriptorSet *dstSet, VkDescriptorUpdateTemplateEntry const &entry, char const *src)
254 {
255 	DescriptorSetLayout *dstLayout = dstSet->header.layout;
256 	auto &binding = dstLayout->bindings[entry.dstBinding];
257 	ASSERT(dstLayout);
258 	ASSERT(binding.descriptorType == entry.descriptorType);
259 
260 	size_t typeSize = 0;
261 	uint8_t *memToWrite = dstLayout->getDescriptorPointer(dstSet, entry.dstBinding, entry.dstArrayElement, entry.descriptorCount, &typeSize);
262 
263 	ASSERT(reinterpret_cast<intptr_t>(memToWrite) % 16 == 0);  // Each descriptor must be 16-byte aligned.
264 
265 	if(entry.descriptorType == VK_DESCRIPTOR_TYPE_SAMPLER)
266 	{
267 		SampledImageDescriptor *sampledImage = reinterpret_cast<SampledImageDescriptor *>(memToWrite);
268 
269 		for(uint32_t i = 0; i < entry.descriptorCount; i++)
270 		{
271 			auto update = reinterpret_cast<VkDescriptorImageInfo const *>(src + entry.offset + entry.stride * i);
272 			// "All consecutive bindings updated via a single VkWriteDescriptorSet structure, except those with a
273 			//  descriptorCount of zero, must all either use immutable samplers or must all not use immutable samplers."
274 			if(!binding.immutableSamplers)
275 			{
276 				sampledImage[i].updateSampler(vk::Cast(update->sampler));
277 			}
278 			sampledImage[i].device = device;
279 		}
280 	}
281 	else if(entry.descriptorType == VK_DESCRIPTOR_TYPE_UNIFORM_TEXEL_BUFFER)
282 	{
283 		SampledImageDescriptor *sampledImage = reinterpret_cast<SampledImageDescriptor *>(memToWrite);
284 
285 		for(uint32_t i = 0; i < entry.descriptorCount; i++)
286 		{
287 			auto update = reinterpret_cast<VkBufferView const *>(src + entry.offset + entry.stride * i);
288 			auto bufferView = vk::Cast(*update);
289 
290 			sampledImage[i].type = VK_IMAGE_VIEW_TYPE_1D;
291 			sampledImage[i].imageViewId = bufferView->id;
292 			constexpr VkComponentMapping identityMapping = { VK_COMPONENT_SWIZZLE_R, VK_COMPONENT_SWIZZLE_G, VK_COMPONENT_SWIZZLE_B, VK_COMPONENT_SWIZZLE_A };
293 			sampledImage[i].swizzle = ResolveComponentMapping(identityMapping, bufferView->getFormat());
294 			sampledImage[i].format = bufferView->getFormat();
295 
296 			auto numElements = bufferView->getElementCount();
297 			sampledImage[i].width = numElements;
298 			sampledImage[i].height = 1;
299 			sampledImage[i].depth = 1;
300 			sampledImage[i].mipLevels = 1;
301 			sampledImage[i].sampleCount = 1;
302 			sampledImage[i].texture.widthWidthHeightHeight = sw::float4(static_cast<float>(numElements), static_cast<float>(numElements), 1, 1);
303 			sampledImage[i].texture.width = sw::float4(static_cast<float>(numElements));
304 			sampledImage[i].texture.height = sw::float4(1);
305 			sampledImage[i].texture.depth = sw::float4(1);
306 			sampledImage[i].device = device;
307 
308 			sw::Mipmap &mipmap = sampledImage[i].texture.mipmap[0];
309 			mipmap.buffer = bufferView->getPointer();
310 			mipmap.width[0] = mipmap.width[1] = mipmap.width[2] = mipmap.width[3] = numElements;
311 			mipmap.height[0] = mipmap.height[1] = mipmap.height[2] = mipmap.height[3] = 1;
312 			mipmap.depth[0] = mipmap.depth[1] = mipmap.depth[2] = mipmap.depth[3] = 1;
313 			mipmap.pitchP.x = mipmap.pitchP.y = mipmap.pitchP.z = mipmap.pitchP.w = numElements;
314 			mipmap.sliceP.x = mipmap.sliceP.y = mipmap.sliceP.z = mipmap.sliceP.w = 0;
315 			mipmap.onePitchP[0] = mipmap.onePitchP[2] = 1;
316 			mipmap.onePitchP[1] = mipmap.onePitchP[3] = 0;
317 		}
318 	}
319 	else if(entry.descriptorType == VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER ||
320 	        entry.descriptorType == VK_DESCRIPTOR_TYPE_SAMPLED_IMAGE)
321 	{
322 		SampledImageDescriptor *sampledImage = reinterpret_cast<SampledImageDescriptor *>(memToWrite);
323 
324 		for(uint32_t i = 0; i < entry.descriptorCount; i++)
325 		{
326 			auto *update = reinterpret_cast<VkDescriptorImageInfo const *>(src + entry.offset + entry.stride * i);
327 
328 			vk::ImageView *imageView = vk::Cast(update->imageView);
329 			Format format = imageView->getFormat(ImageView::SAMPLING);
330 
331 			sw::Texture *texture = &sampledImage[i].texture;
332 
333 			if(entry.descriptorType == VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER)
334 			{
335 				// "All consecutive bindings updated via a single VkWriteDescriptorSet structure, except those with a
336 				//  descriptorCount of zero, must all either use immutable samplers or must all not use immutable samplers."
337 				if(!binding.immutableSamplers)
338 				{
339 					sampledImage[i].updateSampler(vk::Cast(update->sampler));
340 				}
341 			}
342 
343 			const auto &extent = imageView->getMipLevelExtent(0);
344 
345 			sampledImage[i].imageViewId = imageView->id;
346 			sampledImage[i].width = extent.width;
347 			sampledImage[i].height = extent.height;
348 			sampledImage[i].depth = imageView->getDepthOrLayerCount(0);
349 			sampledImage[i].mipLevels = imageView->getSubresourceRange().levelCount;
350 			sampledImage[i].sampleCount = imageView->getSampleCount();
351 			sampledImage[i].type = imageView->getType();
352 			sampledImage[i].swizzle = imageView->getComponentMapping();
353 			sampledImage[i].format = format;
354 			sampledImage[i].device = device;
355 			sampledImage[i].memoryOwner = imageView;
356 
357 			auto &subresourceRange = imageView->getSubresourceRange();
358 
359 			if(format.isYcbcrFormat())
360 			{
361 				ASSERT(subresourceRange.levelCount == 1);
362 
363 				// YCbCr images can only have one level, so we can store parameters for the
364 				// different planes in the descriptor's mipmap levels instead.
365 
366 				const int level = 0;
367 				VkOffset3D offset = { 0, 0, 0 };
368 				texture->mipmap[0].buffer = imageView->getOffsetPointer(offset, VK_IMAGE_ASPECT_PLANE_0_BIT, level, 0, ImageView::SAMPLING);
369 				texture->mipmap[1].buffer = imageView->getOffsetPointer(offset, VK_IMAGE_ASPECT_PLANE_1_BIT, level, 0, ImageView::SAMPLING);
370 				if(format.getAspects() & VK_IMAGE_ASPECT_PLANE_2_BIT)
371 				{
372 					texture->mipmap[2].buffer = imageView->getOffsetPointer(offset, VK_IMAGE_ASPECT_PLANE_2_BIT, level, 0, ImageView::SAMPLING);
373 				}
374 
375 				VkExtent2D extent = imageView->getMipLevelExtent(0);
376 
377 				int width = extent.width;
378 				int height = extent.height;
379 				int pitchP0 = imageView->rowPitchBytes(VK_IMAGE_ASPECT_PLANE_0_BIT, level, ImageView::SAMPLING) /
380 				              imageView->getFormat(VK_IMAGE_ASPECT_PLANE_0_BIT).bytes();
381 
382 				// Write plane 0 parameters to mipmap level 0.
383 				WriteTextureLevelInfo(texture, 0, width, height, 1, pitchP0, 0, 0, 0);
384 
385 				// Plane 2, if present, has equal parameters to plane 1, so we use mipmap level 1 for both.
386 				int pitchP1 = imageView->rowPitchBytes(VK_IMAGE_ASPECT_PLANE_1_BIT, level, ImageView::SAMPLING) /
387 				              imageView->getFormat(VK_IMAGE_ASPECT_PLANE_1_BIT).bytes();
388 
389 				WriteTextureLevelInfo(texture, 1, width / 2, height / 2, 1, pitchP1, 0, 0, 0);
390 			}
391 			else
392 			{
393 				for(int mipmapLevel = 0; mipmapLevel < sw::MIPMAP_LEVELS; mipmapLevel++)
394 				{
395 					int level = sw::clamp(mipmapLevel, 0, (int)subresourceRange.levelCount - 1);  // Level within the image view
396 
397 					VkImageAspectFlagBits aspect = static_cast<VkImageAspectFlagBits>(imageView->getSubresourceRange().aspectMask);
398 					sw::Mipmap &mipmap = texture->mipmap[mipmapLevel];
399 
400 					if((imageView->getType() == VK_IMAGE_VIEW_TYPE_CUBE) ||
401 					   (imageView->getType() == VK_IMAGE_VIEW_TYPE_CUBE_ARRAY))
402 					{
403 						// Obtain the pointer to the corner of the level including the border, for seamless sampling.
404 						// This is taken into account in the sampling routine, which can't handle negative texel coordinates.
405 						VkOffset3D offset = { -1, -1, 0 };
406 						mipmap.buffer = imageView->getOffsetPointer(offset, aspect, level, 0, ImageView::SAMPLING);
407 					}
408 					else
409 					{
410 						VkOffset3D offset = { 0, 0, 0 };
411 						mipmap.buffer = imageView->getOffsetPointer(offset, aspect, level, 0, ImageView::SAMPLING);
412 					}
413 
414 					VkExtent2D extent = imageView->getMipLevelExtent(level);
415 
416 					int width = extent.width;
417 					int height = extent.height;
418 					int layerCount = imageView->getSubresourceRange().layerCount;
419 					int depth = imageView->getDepthOrLayerCount(level);
420 					int bytes = format.bytes();
421 					int pitchP = imageView->rowPitchBytes(aspect, level, ImageView::SAMPLING) / bytes;
422 					int sliceP = (layerCount > 1 ? imageView->layerPitchBytes(aspect, ImageView::SAMPLING) : imageView->slicePitchBytes(aspect, level, ImageView::SAMPLING)) / bytes;
423 					int samplePitchP = imageView->getMipLevelSize(aspect, level, ImageView::SAMPLING) / bytes;
424 					int sampleMax = imageView->getSampleCount() - 1;
425 
426 					WriteTextureLevelInfo(texture, mipmapLevel, width, height, depth, pitchP, sliceP, samplePitchP, sampleMax);
427 				}
428 			}
429 		}
430 	}
431 	else if(entry.descriptorType == VK_DESCRIPTOR_TYPE_STORAGE_IMAGE ||
432 	        entry.descriptorType == VK_DESCRIPTOR_TYPE_INPUT_ATTACHMENT)
433 	{
434 		auto storageImage = reinterpret_cast<StorageImageDescriptor *>(memToWrite);
435 		for(uint32_t i = 0; i < entry.descriptorCount; i++)
436 		{
437 			auto *update = reinterpret_cast<VkDescriptorImageInfo const *>(src + entry.offset + entry.stride * i);
438 			auto *imageView = vk::Cast(update->imageView);
439 			const auto &extent = imageView->getMipLevelExtent(0);
440 			auto layerCount = imageView->getSubresourceRange().layerCount;
441 
442 			storageImage[i].ptr = imageView->getOffsetPointer({ 0, 0, 0 }, VK_IMAGE_ASPECT_COLOR_BIT, 0, 0);
443 			storageImage[i].width = extent.width;
444 			storageImage[i].height = extent.height;
445 			storageImage[i].depth = imageView->getDepthOrLayerCount(0);
446 			storageImage[i].rowPitchBytes = imageView->rowPitchBytes(VK_IMAGE_ASPECT_COLOR_BIT, 0);
447 			storageImage[i].samplePitchBytes = imageView->slicePitchBytes(VK_IMAGE_ASPECT_COLOR_BIT, 0);
448 			storageImage[i].slicePitchBytes = layerCount > 1
449 			                                      ? imageView->layerPitchBytes(VK_IMAGE_ASPECT_COLOR_BIT)
450 			                                      : imageView->slicePitchBytes(VK_IMAGE_ASPECT_COLOR_BIT, 0);
451 			storageImage[i].sampleCount = imageView->getSampleCount();
452 			storageImage[i].sizeInBytes = static_cast<int>(imageView->getSizeInBytes());
453 			storageImage[i].memoryOwner = imageView;
454 
455 			if(imageView->getFormat().isStencil())
456 			{
457 				storageImage[i].stencilPtr = imageView->getOffsetPointer({ 0, 0, 0 }, VK_IMAGE_ASPECT_STENCIL_BIT, 0, 0);
458 				storageImage[i].stencilRowPitchBytes = imageView->rowPitchBytes(VK_IMAGE_ASPECT_STENCIL_BIT, 0);
459 				storageImage[i].stencilSamplePitchBytes = imageView->slicePitchBytes(VK_IMAGE_ASPECT_STENCIL_BIT, 0);
460 				storageImage[i].stencilSlicePitchBytes = (imageView->getSubresourceRange().layerCount > 1)
461 				                                             ? imageView->layerPitchBytes(VK_IMAGE_ASPECT_STENCIL_BIT)
462 				                                             : imageView->slicePitchBytes(VK_IMAGE_ASPECT_STENCIL_BIT, 0);
463 			}
464 		}
465 	}
466 	else if(entry.descriptorType == VK_DESCRIPTOR_TYPE_STORAGE_TEXEL_BUFFER)
467 	{
468 		auto *storageImage = reinterpret_cast<StorageImageDescriptor *>(memToWrite);
469 		for(uint32_t i = 0; i < entry.descriptorCount; i++)
470 		{
471 			auto update = reinterpret_cast<VkBufferView const *>(src + entry.offset + entry.stride * i);
472 			auto bufferView = vk::Cast(*update);
473 			storageImage[i].ptr = bufferView->getPointer();
474 			storageImage[i].width = bufferView->getElementCount();
475 			storageImage[i].height = 1;
476 			storageImage[i].depth = 1;
477 			storageImage[i].rowPitchBytes = 0;
478 			storageImage[i].slicePitchBytes = 0;
479 			storageImage[i].samplePitchBytes = 0;
480 			storageImage[i].sampleCount = 1;
481 			storageImage[i].sizeInBytes = bufferView->getRangeInBytes();
482 		}
483 	}
484 	else if(entry.descriptorType == VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER ||
485 	        entry.descriptorType == VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER_DYNAMIC ||
486 	        entry.descriptorType == VK_DESCRIPTOR_TYPE_STORAGE_BUFFER ||
487 	        entry.descriptorType == VK_DESCRIPTOR_TYPE_STORAGE_BUFFER_DYNAMIC)
488 	{
489 		auto *bufferDescriptor = reinterpret_cast<BufferDescriptor *>(memToWrite);
490 		for(uint32_t i = 0; i < entry.descriptorCount; i++)
491 		{
492 			auto update = reinterpret_cast<VkDescriptorBufferInfo const *>(src + entry.offset + entry.stride * i);
493 			auto buffer = vk::Cast(update->buffer);
494 			bufferDescriptor[i].ptr = buffer->getOffsetPointer(update->offset);
495 			bufferDescriptor[i].sizeInBytes = static_cast<int>((update->range == VK_WHOLE_SIZE) ? buffer->getSize() - update->offset : update->range);
496 			bufferDescriptor[i].robustnessSize = static_cast<int>(buffer->getSize() - update->offset);
497 		}
498 	}
499 }
500 
WriteTextureLevelInfo(sw::Texture * texture,int level,int width,int height,int depth,int pitchP,int sliceP,int samplePitchP,int sampleMax)501 void DescriptorSetLayout::WriteTextureLevelInfo(sw::Texture *texture, int level, int width, int height, int depth, int pitchP, int sliceP, int samplePitchP, int sampleMax)
502 {
503 	if(level == 0)
504 	{
505 		texture->widthWidthHeightHeight[0] = static_cast<float>(width);
506 		texture->widthWidthHeightHeight[1] = static_cast<float>(width);
507 		texture->widthWidthHeightHeight[2] = static_cast<float>(height);
508 		texture->widthWidthHeightHeight[3] = static_cast<float>(height);
509 
510 		texture->width = sw::float4(static_cast<float>(width));
511 		texture->height = sw::float4(static_cast<float>(height));
512 		texture->depth = sw::float4(static_cast<float>(depth));
513 	}
514 
515 	sw::Mipmap &mipmap = texture->mipmap[level];
516 
517 	short halfTexelU = 0x8000 / width;
518 	short halfTexelV = 0x8000 / height;
519 	short halfTexelW = 0x8000 / depth;
520 
521 	mipmap.uHalf = sw::short4(halfTexelU);
522 	mipmap.vHalf = sw::short4(halfTexelV);
523 	mipmap.wHalf = sw::short4(halfTexelW);
524 
525 	mipmap.width = sw::int4(width);
526 	mipmap.height = sw::int4(height);
527 	mipmap.depth = sw::int4(depth);
528 
529 	mipmap.onePitchP[0] = 1;
530 	mipmap.onePitchP[1] = static_cast<short>(pitchP);
531 	mipmap.onePitchP[2] = 1;
532 	mipmap.onePitchP[3] = static_cast<short>(pitchP);
533 
534 	mipmap.pitchP = sw::int4(pitchP);
535 	mipmap.sliceP = sw::int4(sliceP);
536 	mipmap.samplePitchP = sw::int4(samplePitchP);
537 	mipmap.sampleMax = sw::int4(sampleMax);
538 }
539 
WriteDescriptorSet(Device * device,const VkWriteDescriptorSet & writeDescriptorSet)540 void DescriptorSetLayout::WriteDescriptorSet(Device *device, const VkWriteDescriptorSet &writeDescriptorSet)
541 {
542 	DescriptorSet *dstSet = vk::Cast(writeDescriptorSet.dstSet);
543 	VkDescriptorUpdateTemplateEntry e;
544 	e.descriptorType = writeDescriptorSet.descriptorType;
545 	e.dstBinding = writeDescriptorSet.dstBinding;
546 	e.dstArrayElement = writeDescriptorSet.dstArrayElement;
547 	e.descriptorCount = writeDescriptorSet.descriptorCount;
548 	e.offset = 0;
549 	void const *ptr = nullptr;
550 	switch(writeDescriptorSet.descriptorType)
551 	{
552 		case VK_DESCRIPTOR_TYPE_STORAGE_TEXEL_BUFFER:
553 		case VK_DESCRIPTOR_TYPE_UNIFORM_TEXEL_BUFFER:
554 			ptr = writeDescriptorSet.pTexelBufferView;
555 			e.stride = sizeof(VkBufferView);
556 			break;
557 
558 		case VK_DESCRIPTOR_TYPE_SAMPLER:
559 		case VK_DESCRIPTOR_TYPE_COMBINED_IMAGE_SAMPLER:
560 		case VK_DESCRIPTOR_TYPE_SAMPLED_IMAGE:
561 		case VK_DESCRIPTOR_TYPE_INPUT_ATTACHMENT:
562 		case VK_DESCRIPTOR_TYPE_STORAGE_IMAGE:
563 			ptr = writeDescriptorSet.pImageInfo;
564 			e.stride = sizeof(VkDescriptorImageInfo);
565 			break;
566 
567 		case VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER:
568 		case VK_DESCRIPTOR_TYPE_STORAGE_BUFFER:
569 		case VK_DESCRIPTOR_TYPE_UNIFORM_BUFFER_DYNAMIC:
570 		case VK_DESCRIPTOR_TYPE_STORAGE_BUFFER_DYNAMIC:
571 			ptr = writeDescriptorSet.pBufferInfo;
572 			e.stride = sizeof(VkDescriptorBufferInfo);
573 			break;
574 
575 		default:
576 			UNSUPPORTED("descriptor type %u", writeDescriptorSet.descriptorType);
577 	}
578 
579 	WriteDescriptorSet(device, dstSet, e, reinterpret_cast<char const *>(ptr));
580 }
581 
CopyDescriptorSet(const VkCopyDescriptorSet & descriptorCopies)582 void DescriptorSetLayout::CopyDescriptorSet(const VkCopyDescriptorSet &descriptorCopies)
583 {
584 	DescriptorSet *srcSet = vk::Cast(descriptorCopies.srcSet);
585 	DescriptorSetLayout *srcLayout = srcSet->header.layout;
586 	ASSERT(srcLayout);
587 
588 	DescriptorSet *dstSet = vk::Cast(descriptorCopies.dstSet);
589 	DescriptorSetLayout *dstLayout = dstSet->header.layout;
590 	ASSERT(dstLayout);
591 
592 	size_t srcTypeSize = 0;
593 	uint8_t *memToRead = srcLayout->getDescriptorPointer(srcSet, descriptorCopies.srcBinding, descriptorCopies.srcArrayElement, descriptorCopies.descriptorCount, &srcTypeSize);
594 
595 	size_t dstTypeSize = 0;
596 	uint8_t *memToWrite = dstLayout->getDescriptorPointer(dstSet, descriptorCopies.dstBinding, descriptorCopies.dstArrayElement, descriptorCopies.descriptorCount, &dstTypeSize);
597 
598 	ASSERT(srcTypeSize == dstTypeSize);
599 	size_t writeSize = dstTypeSize * descriptorCopies.descriptorCount;
600 	memcpy(memToWrite, memToRead, writeSize);
601 }
602 
603 }  // namespace vk
604