vktestbinding.cpp revision f5c61951493d13d4fda80bce2d36fab7b6f449aa
1// VK tests 2// 3// Copyright (C) 2014 LunarG, Inc. 4// 5// Permission is hereby granted, free of charge, to any person obtaining a 6// copy of this software and associated documentation files (the "Software"), 7// to deal in the Software without restriction, including without limitation 8// the rights to use, copy, modify, merge, publish, distribute, sublicense, 9// and/or sell copies of the Software, and to permit persons to whom the 10// Software is furnished to do so, subject to the following conditions: 11// 12// The above copyright notice and this permission notice shall be included 13// in all copies or substantial portions of the Software. 14// 15// THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 16// IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 17// FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL 18// THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER 19// LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING 20// FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER 21// DEALINGS IN THE SOFTWARE. 22 23#include <iostream> 24#include <string.h> // memset(), memcmp() 25#include <assert.h> 26#include "vktestbinding.h" 27 28namespace { 29 30#define DERIVED_OBJECT_TYPE_INIT(create_func, dev, vk_object_type, ...) \ 31 do { \ 32 obj_type obj; \ 33 dev_ = &dev; \ 34 if (EXPECT(create_func(dev.obj(), __VA_ARGS__, &obj) == VK_SUCCESS)) \ 35 base_type::init(obj, vk_object_type); \ 36 } while (0) 37 38#define STRINGIFY(x) #x 39#define EXPECT(expr) ((expr) ? true : expect_failure(STRINGIFY(expr), __FILE__, __LINE__, __FUNCTION__)) 40 41 42vk_testing::ErrorCallback error_callback; 43 44bool expect_failure(const char *expr, const char *file, unsigned int line, const char *function) 45{ 46 if (error_callback) { 47 error_callback(expr, file, line, function); 48 } else { 49 std::cerr << file << ":" << line << ": " << function << 50 ": Expectation `" << expr << "' failed.\n"; 51 } 52 53 return false; 54} 55 56template<class T, class S> 57std::vector<T> make_objects(const std::vector<S> &v) 58{ 59 std::vector<T> objs; 60 objs.reserve(v.size()); 61 for (typename std::vector<S>::const_iterator it = v.begin(); it != v.end(); it++) 62 objs.push_back((*it)->obj()); 63 return objs; 64} 65 66template<typename T> 67std::vector<T> get_memory_reqs(VkDevice device, VkObjectType obj_type, VkObject obj, size_t min_elems) 68{ 69 std::vector<T> info; 70 71 info.resize((min_elems > 0)?min_elems:1); 72 if (!EXPECT(vkGetObjectMemoryRequirements(device, obj_type, obj, &info[0]) == VK_SUCCESS)) 73 info.clear(); 74 75 if (info.size() < min_elems) 76 info.resize(min_elems); 77 78 return info; 79} 80} // namespace 81 82namespace vk_testing { 83 84void set_error_callback(ErrorCallback callback) 85{ 86 error_callback = callback; 87} 88 89VkPhysicalDeviceProperties PhysicalGpu::properties() const 90{ 91 VkPhysicalDeviceProperties info; 92 93 EXPECT(vkGetPhysicalDeviceProperties(gpu_, &info) == VK_SUCCESS); 94 95 return info; 96} 97 98VkPhysicalDevicePerformance PhysicalGpu::performance() const 99{ 100 VkPhysicalDevicePerformance info; 101 102 EXPECT(vkGetPhysicalDevicePerformance(gpu_, &info) == VK_SUCCESS); 103 104 return info; 105} 106 107std::vector<VkPhysicalDeviceQueueProperties> PhysicalGpu::queue_properties() const 108{ 109 std::vector<VkPhysicalDeviceQueueProperties> info; 110 uint32_t count; 111 112 if (EXPECT(vkGetPhysicalDeviceQueueCount(gpu_, &count) == VK_SUCCESS)) { 113 info.resize(count); 114 if (!EXPECT(vkGetPhysicalDeviceQueueProperties(gpu_, count, &info[0]) == VK_SUCCESS)) 115 info.clear(); 116 } 117 118 return info; 119} 120 121VkPhysicalDeviceMemoryProperties PhysicalGpu::memory_properties() const 122{ 123 VkPhysicalDeviceMemoryProperties info; 124 125 EXPECT(vkGetPhysicalDeviceMemoryProperties(gpu_, &info) == VK_SUCCESS); 126 127 128 return info; 129} 130 131/* 132 * Return list of Global layers available 133 */ 134std::vector<VkLayerProperties> GetGlobalLayers() 135{ 136 VkResult err; 137 std::vector<VkLayerProperties> layers; 138 uint32_t layer_count; 139 140 do { 141 layer_count = 0; 142 err = vkGetGlobalLayerProperties(&layer_count, NULL); 143 144 if (err == VK_SUCCESS) { 145 layers.reserve(layer_count); 146 err = vkGetGlobalLayerProperties(&layer_count, &layers[0]); 147 } 148 } while (err == VK_INCOMPLETE); 149 150 assert(err == VK_SUCCESS); 151 152 return layers; 153} 154 155/* 156 * Return list of Global extensions provided by the ICD / Loader 157 */ 158std::vector<VkExtensionProperties> GetGlobalExtensions() 159{ 160 return GetGlobalExtensions(NULL); 161} 162 163/* 164 * Return list of Global extensions provided by the specified layer 165 * If pLayerName is NULL, will return extensions implemented by the loader / ICDs 166 */ 167std::vector<VkExtensionProperties> GetGlobalExtensions(const char *pLayerName) 168{ 169 std::vector<VkExtensionProperties> exts; 170 uint32_t ext_count; 171 VkResult err; 172 173 do { 174 ext_count = 0; 175 err = vkGetGlobalExtensionProperties(pLayerName, &ext_count, NULL); 176 177 if (err == VK_SUCCESS) { 178 exts.reserve(ext_count); 179 err = vkGetGlobalExtensionProperties(pLayerName, &ext_count, &exts[0]); 180 } 181 } while (err == VK_INCOMPLETE); 182 183 assert(err == VK_SUCCESS); 184 185 return exts; 186} 187 188/* 189 * Return list of PhysicalDevice extensions provided by the ICD / Loader 190 */ 191std::vector<VkExtensionProperties> PhysicalGpu::extensions() const 192{ 193 return extensions(NULL); 194} 195 196/* 197 * Return list of PhysicalDevice extensions provided by the specified layer 198 * If pLayerName is NULL, will return extensions for ICD / loader. 199 */ 200std::vector<VkExtensionProperties> PhysicalGpu::extensions(const char *pLayerName) const 201{ 202 std::vector<VkExtensionProperties> exts; 203 VkResult err; 204 205 do { 206 uint32_t extCount = 0; 207 err = vkGetPhysicalDeviceExtensionProperties(obj(), pLayerName, &extCount, NULL); 208 209 if (err == VK_SUCCESS) { 210 exts.reserve(extCount); 211 err = vkGetPhysicalDeviceExtensionProperties(obj(), pLayerName, &extCount, &exts[0]); 212 } 213 } while (err == VK_INCOMPLETE); 214 215 assert(err == VK_SUCCESS); 216 217 return exts; 218} 219 220VkResult PhysicalGpu::set_memory_type(const uint32_t type_bits, VkMemoryAllocInfo *info, const VkFlags properties) const 221{ 222 uint32_t type_mask = type_bits; 223 // Search memtypes to find first index with those properties 224 for (uint32_t i = 0; i < 32; i++) { 225 if ((type_mask & 1) == 1) { 226 // Type is available, does it match user properties? 227 if ((memory_properties_.memoryTypes[i].propertyFlags & properties) == properties) { 228 info->memoryTypeIndex = i; 229 return VK_SUCCESS; 230 } 231 } 232 type_mask >>= 1; 233 } 234 // No memory types matched, return failure 235 return VK_UNSUPPORTED; 236} 237 238/* 239 * Return list of PhysicalDevice layers 240 */ 241std::vector<VkLayerProperties> PhysicalGpu::layers() const 242{ 243 std::vector<VkLayerProperties> layer_props; 244 VkResult err; 245 246 do { 247 uint32_t layer_count = 0; 248 err = vkGetPhysicalDeviceLayerProperties(obj(), &layer_count, NULL); 249 250 if (err == VK_SUCCESS) { 251 layer_props.reserve(layer_count); 252 err = vkGetPhysicalDeviceLayerProperties(obj(), &layer_count, &layer_props[0]); 253 } 254 } while (err == VK_INCOMPLETE); 255 256 assert(err == VK_SUCCESS); 257 258 return layer_props; 259} 260 261void BaseObject::init(VkObject obj, VkObjectType type, bool own) 262{ 263 EXPECT(!initialized()); 264 reinit(obj, type, own); 265} 266 267void BaseObject::reinit(VkObject obj, VkObjectType type, bool own) 268{ 269 obj_ = obj; 270 object_type_ = type; 271 own_obj_ = own; 272} 273 274uint32_t Object::memory_allocation_count() const 275{ 276 return 1; 277} 278 279std::vector<VkMemoryRequirements> Object::memory_requirements() const 280{ 281 uint32_t num_allocations = 1; 282 std::vector<VkMemoryRequirements> info = 283 get_memory_reqs<VkMemoryRequirements>(dev_->obj(), type(), obj(), 0); 284 EXPECT(info.size() == num_allocations); 285 if (info.size() == 1 && !info[0].size) 286 info.clear(); 287 288 return info; 289} 290 291void Object::init(VkObject obj, VkObjectType object_type, bool own) 292{ 293 BaseObject::init(obj, object_type, own); 294 mem_alloc_count_ = memory_allocation_count(); 295} 296 297void Object::reinit(VkObject obj, VkObjectType object_type, bool own) 298{ 299 cleanup(); 300 BaseObject::reinit(obj, object_type, own); 301 mem_alloc_count_ = memory_allocation_count(); 302} 303 304void Object::cleanup() 305{ 306 if (!initialized()) 307 return; 308 309 if (own()) 310 EXPECT(vkDestroyObject(dev_->obj(), type(), obj()) == VK_SUCCESS); 311 312 if (internal_mems_) { 313 delete[] internal_mems_; 314 internal_mems_ = NULL; 315 primary_mem_ = NULL; 316 } 317 318 mem_alloc_count_ = 0; 319} 320 321void Object::bind_memory(const GpuMemory &mem, VkDeviceSize mem_offset) 322{ 323 bound = true; 324 EXPECT(vkBindObjectMemory(dev_->obj(), type(), obj(), mem.obj(), mem_offset) == VK_SUCCESS); 325} 326 327void Object::alloc_memory() 328{ 329 if (!EXPECT(!internal_mems_) || !mem_alloc_count_) 330 return; 331 332 internal_mems_ = new GpuMemory[mem_alloc_count_]; 333 334 const std::vector<VkMemoryRequirements> mem_reqs = memory_requirements(); 335 VkMemoryAllocInfo info, *next_info = NULL; 336 337 for (int i = 0; i < mem_reqs.size(); i++) { 338 info = GpuMemory::alloc_info(mem_reqs[i], next_info); 339 dev_->gpu().set_memory_type(mem_reqs[i].memoryTypeBits, &info, 0); 340 primary_mem_ = &internal_mems_[i]; 341 internal_mems_[i].init(*dev_, info); 342 bind_memory(internal_mems_[i], 0); 343 } 344} 345 346void Object::alloc_memory(VkMemoryPropertyFlags &reqs) 347{ 348 if (!EXPECT(!internal_mems_) || !mem_alloc_count_) 349 return; 350 351 internal_mems_ = new GpuMemory[mem_alloc_count_]; 352 353 std::vector<VkMemoryRequirements> mem_reqs = memory_requirements(); 354 VkMemoryAllocInfo info, *next_info = NULL; 355 356 for (int i = 0; i < mem_reqs.size(); i++) { 357 info = GpuMemory::alloc_info(mem_reqs[i], next_info); 358 dev_->gpu().set_memory_type(mem_reqs[i].memoryTypeBits, &info, reqs); 359 primary_mem_ = &internal_mems_[i]; 360 internal_mems_[i].init(*dev_, info); 361 bind_memory(internal_mems_[i], 0); 362 } 363} 364 365void Object::alloc_memory(const std::vector<VkDeviceMemory> &mems) 366{ 367 if (!EXPECT(!internal_mems_) || !mem_alloc_count_) 368 return; 369 370 internal_mems_ = new GpuMemory[mem_alloc_count_]; 371 372 const std::vector<VkMemoryRequirements> mem_reqs = memory_requirements(); 373 if (!EXPECT(mem_reqs.size() == mems.size())) 374 return; 375 376 for (int i = 0; i < mem_reqs.size(); i++) { 377 primary_mem_ = &internal_mems_[i]; 378 379 internal_mems_[i].init(*dev_, mems[i]); 380 bind_memory(internal_mems_[i], 0); 381 } 382} 383 384std::vector<VkDeviceMemory> Object::memories() const 385{ 386 std::vector<VkDeviceMemory> mems; 387 if (internal_mems_) { 388 mems.reserve(mem_alloc_count_); 389 for (uint32_t i = 0; i < mem_alloc_count_; i++) 390 mems.push_back(internal_mems_[i].obj()); 391 } 392 393 return mems; 394} 395 396Device::~Device() 397{ 398 if (!initialized()) 399 return; 400 401 for (int i = 0; i < QUEUE_COUNT; i++) { 402 for (std::vector<Queue *>::iterator it = queues_[i].begin(); it != queues_[i].end(); it++) 403 delete *it; 404 queues_[i].clear(); 405 } 406 407 EXPECT(vkDestroyDevice(obj()) == VK_SUCCESS); 408} 409 410void Device::init(std::vector<const char *> &extensions) 411{ 412 // request all queues 413 const std::vector<VkPhysicalDeviceQueueProperties> queue_props = gpu_.queue_properties(); 414 std::vector<VkDeviceQueueCreateInfo> queue_info; 415 queue_info.reserve(queue_props.size()); 416 for (int i = 0; i < queue_props.size(); i++) { 417 VkDeviceQueueCreateInfo qi = {}; 418 qi.queueNodeIndex = i; 419 qi.queueCount = queue_props[i].queueCount; 420 if (queue_props[i].queueFlags & VK_QUEUE_GRAPHICS_BIT) { 421 graphics_queue_node_index_ = i; 422 } 423 queue_info.push_back(qi); 424 } 425 426 VkDeviceCreateInfo dev_info = {}; 427 dev_info.sType = VK_STRUCTURE_TYPE_DEVICE_CREATE_INFO; 428 dev_info.pNext = NULL; 429 dev_info.queueRecordCount = queue_info.size(); 430 dev_info.pRequestedQueues = &queue_info[0]; 431 dev_info.extensionCount = extensions.size(); 432 dev_info.ppEnabledExtensionNames = &extensions[0]; 433 dev_info.flags = 0; 434 435 init(dev_info); 436} 437 438void Device::init(const VkDeviceCreateInfo &info) 439{ 440 VkDevice obj; 441 if (EXPECT(vkCreateDevice(gpu_.obj(), &info, &obj) == VK_SUCCESS)) { 442 base_type::init(obj, VK_OBJECT_TYPE_DEVICE); 443 } 444 445 init_queues(); 446 init_formats(); 447} 448 449void Device::init_queues() 450{ 451 VkResult err; 452 uint32_t queue_node_count; 453 454 err = vkGetPhysicalDeviceQueueCount(gpu_.obj(), &queue_node_count); 455 EXPECT(err == VK_SUCCESS); 456 EXPECT(queue_node_count >= 1); 457 458 VkPhysicalDeviceQueueProperties* queue_props = new VkPhysicalDeviceQueueProperties[queue_node_count]; 459 460 err = vkGetPhysicalDeviceQueueProperties(gpu_.obj(), queue_node_count, queue_props); 461 EXPECT(err == VK_SUCCESS); 462 463 for (uint32_t i = 0; i < queue_node_count; i++) { 464 VkQueue queue; 465 466 for (uint32_t j = 0; j < queue_props[i].queueCount; j++) { 467 // TODO: Need to add support for separate MEMMGR and work queues, including synchronization 468 err = vkGetDeviceQueue(obj(), i, j, &queue); 469 EXPECT(err == VK_SUCCESS); 470 471 if (queue_props[i].queueFlags & VK_QUEUE_GRAPHICS_BIT) { 472 queues_[GRAPHICS].push_back(new Queue(queue)); 473 } 474 475 if (queue_props[i].queueFlags & VK_QUEUE_COMPUTE_BIT) { 476 queues_[COMPUTE].push_back(new Queue(queue)); 477 } 478 479 if (queue_props[i].queueFlags & VK_QUEUE_DMA_BIT) { 480 queues_[DMA].push_back(new Queue(queue)); 481 } 482 } 483 } 484 485 delete[] queue_props; 486 487 EXPECT(!queues_[GRAPHICS].empty() || !queues_[COMPUTE].empty()); 488} 489 490void Device::init_formats() 491{ 492 for (int f = VK_FORMAT_BEGIN_RANGE; f <= VK_FORMAT_END_RANGE; f++) { 493 const VkFormat fmt = static_cast<VkFormat>(f); 494 const VkFormatProperties props = format_properties(fmt); 495 496 if (props.linearTilingFeatures) { 497 const Format tmp = { fmt, VK_IMAGE_TILING_LINEAR, props.linearTilingFeatures }; 498 formats_.push_back(tmp); 499 } 500 501 if (props.optimalTilingFeatures) { 502 const Format tmp = { fmt, VK_IMAGE_TILING_OPTIMAL, props.optimalTilingFeatures }; 503 formats_.push_back(tmp); 504 } 505 } 506 507 EXPECT(!formats_.empty()); 508} 509 510VkFormatProperties Device::format_properties(VkFormat format) 511{ 512 VkFormatProperties data; 513 if (!EXPECT(vkGetPhysicalDeviceFormatInfo(gpu().obj(), format, &data) == VK_SUCCESS)) 514 memset(&data, 0, sizeof(data)); 515 516 return data; 517} 518 519void Device::wait() 520{ 521 EXPECT(vkDeviceWaitIdle(obj()) == VK_SUCCESS); 522} 523 524VkResult Device::wait(const std::vector<const Fence *> &fences, bool wait_all, uint64_t timeout) 525{ 526 const std::vector<VkFence> fence_objs = make_objects<VkFence>(fences); 527 VkResult err = vkWaitForFences(obj(), fence_objs.size(), &fence_objs[0], wait_all, timeout); 528 EXPECT(err == VK_SUCCESS || err == VK_TIMEOUT); 529 530 return err; 531} 532 533VkResult Device::update_descriptor_sets(const std::vector<VkWriteDescriptorSet> &writes, const std::vector<VkCopyDescriptorSet> &copies) 534{ 535 return vkUpdateDescriptorSets(obj(), writes.size(), &writes[0], copies.size(), &copies[0]); 536} 537 538void Queue::submit(const std::vector<const CmdBuffer *> &cmds, Fence &fence) 539{ 540 const std::vector<VkCmdBuffer> cmd_objs = make_objects<VkCmdBuffer>(cmds); 541 EXPECT(vkQueueSubmit(obj(), cmd_objs.size(), &cmd_objs[0], fence.obj()) == VK_SUCCESS); 542} 543 544void Queue::submit(const CmdBuffer &cmd, Fence &fence) 545{ 546 submit(std::vector<const CmdBuffer*>(1, &cmd), fence); 547} 548 549void Queue::submit(const CmdBuffer &cmd) 550{ 551 Fence fence; 552 submit(cmd, fence); 553} 554 555void Queue::wait() 556{ 557 EXPECT(vkQueueWaitIdle(obj()) == VK_SUCCESS); 558} 559 560void Queue::signal_semaphore(Semaphore &sem) 561{ 562 EXPECT(vkQueueSignalSemaphore(obj(), sem.obj()) == VK_SUCCESS); 563} 564 565void Queue::wait_semaphore(Semaphore &sem) 566{ 567 EXPECT(vkQueueWaitSemaphore(obj(), sem.obj()) == VK_SUCCESS); 568} 569 570GpuMemory::~GpuMemory() 571{ 572 if (initialized() && own()) 573 EXPECT(vkFreeMemory(dev_->obj(), obj()) == VK_SUCCESS); 574} 575 576void GpuMemory::init(const Device &dev, const VkMemoryAllocInfo &info) 577{ 578 DERIVED_OBJECT_TYPE_INIT(vkAllocMemory, dev, VK_OBJECT_TYPE_DEVICE_MEMORY, &info); 579} 580 581void GpuMemory::init(const Device &dev, VkDeviceMemory mem) 582{ 583 dev_ = &dev; 584 BaseObject::init(mem, VK_OBJECT_TYPE_DEVICE_MEMORY, false); 585} 586 587const void *GpuMemory::map(VkFlags flags) const 588{ 589 void *data; 590 if (!EXPECT(vkMapMemory(dev_->obj(), obj(), 0 ,0, flags, &data) == VK_SUCCESS)) 591 data = NULL; 592 593 return data; 594} 595 596void *GpuMemory::map(VkFlags flags) 597{ 598 void *data; 599 if (!EXPECT(vkMapMemory(dev_->obj(), obj(), 0, 0, flags, &data) == VK_SUCCESS)) 600 data = NULL; 601 602 return data; 603} 604 605void GpuMemory::unmap() const 606{ 607 EXPECT(vkUnmapMemory(dev_->obj(), obj()) == VK_SUCCESS); 608} 609 610void Fence::init(const Device &dev, const VkFenceCreateInfo &info) 611{ 612 DERIVED_OBJECT_TYPE_INIT(vkCreateFence, dev, VK_OBJECT_TYPE_FENCE, &info); 613 alloc_memory(); 614} 615 616void Semaphore::init(const Device &dev, const VkSemaphoreCreateInfo &info) 617{ 618 DERIVED_OBJECT_TYPE_INIT(vkCreateSemaphore, dev, VK_OBJECT_TYPE_SEMAPHORE, &info); 619 alloc_memory(); 620} 621 622void Event::init(const Device &dev, const VkEventCreateInfo &info) 623{ 624 DERIVED_OBJECT_TYPE_INIT(vkCreateEvent, dev, VK_OBJECT_TYPE_EVENT, &info); 625 alloc_memory(); 626} 627 628void Event::set() 629{ 630 EXPECT(vkSetEvent(dev_->obj(), obj()) == VK_SUCCESS); 631} 632 633void Event::reset() 634{ 635 EXPECT(vkResetEvent(dev_->obj(), obj()) == VK_SUCCESS); 636} 637 638void QueryPool::init(const Device &dev, const VkQueryPoolCreateInfo &info) 639{ 640 DERIVED_OBJECT_TYPE_INIT(vkCreateQueryPool, dev, VK_OBJECT_TYPE_QUERY_POOL, &info); 641 alloc_memory(); 642} 643 644VkResult QueryPool::results(uint32_t start, uint32_t count, size_t size, void *data) 645{ 646 size_t tmp = size; 647 VkResult err = vkGetQueryPoolResults(dev_->obj(), obj(), start, count, &tmp, data, 0); 648 if (err == VK_SUCCESS) { 649 if (!EXPECT(tmp == size)) 650 memset(data, 0, size); 651 } else { 652 EXPECT(err == VK_NOT_READY); 653 } 654 655 return err; 656} 657 658void Buffer::init(const Device &dev, const VkBufferCreateInfo &info) 659{ 660 init_no_mem(dev, info); 661 alloc_memory(); 662} 663 664void Buffer::init(const Device &dev, const VkBufferCreateInfo &info, VkMemoryPropertyFlags &reqs) 665{ 666 init_no_mem(dev, info); 667 alloc_memory(reqs); 668} 669 670void Buffer::init_no_mem(const Device &dev, const VkBufferCreateInfo &info) 671{ 672 DERIVED_OBJECT_TYPE_INIT(vkCreateBuffer, dev, VK_OBJECT_TYPE_BUFFER, &info); 673 create_info_ = info; 674} 675 676void Buffer::bind_memory(VkDeviceSize offset, VkDeviceSize size, 677 const GpuMemory &mem, VkDeviceSize mem_offset) 678{ 679 VkQueue queue = dev_->graphics_queues()[0]->obj(); 680 EXPECT(vkQueueBindSparseBufferMemory(queue, obj(), offset, size, mem.obj(), mem_offset) == VK_SUCCESS); 681} 682 683void BufferView::init(const Device &dev, const VkBufferViewCreateInfo &info) 684{ 685 DERIVED_OBJECT_TYPE_INIT(vkCreateBufferView, dev, VK_OBJECT_TYPE_BUFFER_VIEW, &info); 686 alloc_memory(); 687} 688 689void Image::init(const Device &dev, const VkImageCreateInfo &info) 690{ 691 init_no_mem(dev, info); 692 alloc_memory(); 693} 694 695void Image::init(const Device &dev, const VkImageCreateInfo &info, VkMemoryPropertyFlags &reqs) 696{ 697 init_no_mem(dev, info); 698 alloc_memory(reqs); 699} 700 701void Image::init_no_mem(const Device &dev, const VkImageCreateInfo &info) 702{ 703 DERIVED_OBJECT_TYPE_INIT(vkCreateImage, dev, VK_OBJECT_TYPE_IMAGE, &info); 704 init_info(dev, info); 705} 706 707void Image::init_info(const Device &dev, const VkImageCreateInfo &info) 708{ 709 create_info_ = info; 710 711 for (std::vector<Device::Format>::const_iterator it = dev.formats().begin(); it != dev.formats().end(); it++) { 712 if (memcmp(&it->format, &create_info_.format, sizeof(it->format)) == 0 && it->tiling == create_info_.tiling) { 713 format_features_ = it->features; 714 break; 715 } 716 } 717} 718 719void Image::bind_memory(const Device &dev, const VkImageMemoryBindInfo &info, 720 const GpuMemory &mem, VkDeviceSize mem_offset) 721{ 722 VkQueue queue = dev.graphics_queues()[0]->obj(); 723 EXPECT(vkQueueBindSparseImageMemory(queue, obj(), &info, mem.obj(), mem_offset) == VK_SUCCESS); 724} 725 726VkSubresourceLayout Image::subresource_layout(const VkImageSubresource &subres) const 727{ 728 VkSubresourceLayout data; 729 size_t size = sizeof(data); 730 if (!EXPECT(vkGetImageSubresourceLayout(dev_->obj(), obj(), &subres, &data) == VK_SUCCESS && size == sizeof(data))) 731 memset(&data, 0, sizeof(data)); 732 733 return data; 734} 735 736bool Image::transparent() const 737{ 738 return (create_info_.tiling == VK_IMAGE_TILING_LINEAR && 739 create_info_.samples == 1 && 740 !(create_info_.usage & (VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT | 741 VK_IMAGE_USAGE_DEPTH_STENCIL_BIT))); 742} 743 744void ImageView::init(const Device &dev, const VkImageViewCreateInfo &info) 745{ 746 DERIVED_OBJECT_TYPE_INIT(vkCreateImageView, dev, VK_OBJECT_TYPE_IMAGE_VIEW, &info); 747 alloc_memory(); 748} 749 750void ColorAttachmentView::init(const Device &dev, const VkColorAttachmentViewCreateInfo &info) 751{ 752 DERIVED_OBJECT_TYPE_INIT(vkCreateColorAttachmentView, dev, VK_OBJECT_TYPE_COLOR_ATTACHMENT_VIEW, &info); 753 alloc_memory(); 754} 755 756void DepthStencilView::init(const Device &dev, const VkDepthStencilViewCreateInfo &info) 757{ 758 DERIVED_OBJECT_TYPE_INIT(vkCreateDepthStencilView, dev, VK_OBJECT_TYPE_DEPTH_STENCIL_VIEW, &info); 759 alloc_memory(); 760} 761 762void ShaderModule::init(const Device &dev, const VkShaderModuleCreateInfo &info) 763{ 764 DERIVED_OBJECT_TYPE_INIT(vkCreateShaderModule, dev, VK_OBJECT_TYPE_SHADER_MODULE, &info); 765} 766 767VkResult ShaderModule::init_try(const Device &dev, const VkShaderModuleCreateInfo &info) 768{ 769 /* 770 * Note: Cannot use DERIVED_OBJECT_TYPE_INIT as we need the 771 * return code. 772 */ 773 VkShaderModule sh; 774 dev_ = &dev; 775 VkResult err = vkCreateShaderModule(dev.obj(), &info, &sh); 776 if (err == VK_SUCCESS) 777 Object::init(sh, VK_OBJECT_TYPE_SHADER_MODULE); 778 779 return err; 780} 781 782void Shader::init(const Device &dev, const VkShaderCreateInfo &info) 783{ 784 DERIVED_OBJECT_TYPE_INIT(vkCreateShader, dev, VK_OBJECT_TYPE_SHADER, &info); 785} 786 787VkResult Shader::init_try(const Device &dev, const VkShaderCreateInfo &info) 788{ 789 /* 790 * Note: Cannot use DERIVED_OBJECT_TYPE_INIT as we need the 791 * return code. 792 */ 793 VkShader sh; 794 dev_ = &dev; 795 VkResult err = vkCreateShader(dev.obj(), &info, &sh); 796 if (err == VK_SUCCESS) 797 Object::init(sh, VK_OBJECT_TYPE_SHADER); 798 799 return err; 800} 801 802void Pipeline::init(const Device &dev, const VkGraphicsPipelineCreateInfo &info) 803{ 804 DERIVED_OBJECT_TYPE_INIT(vkCreateGraphicsPipeline, dev, VK_OBJECT_TYPE_PIPELINE, &info); 805 alloc_memory(); 806} 807 808VkResult Pipeline::init_try(const Device &dev, const VkGraphicsPipelineCreateInfo &info) 809{ 810 VkPipeline pipe; 811 dev_ = &dev; 812 VkResult err = vkCreateGraphicsPipeline(dev.obj(), &info, &pipe); 813 if (err == VK_SUCCESS) { 814 Object::init(pipe, VK_OBJECT_TYPE_PIPELINE); 815 alloc_memory(); 816 } 817 818 return err; 819} 820 821void Pipeline::init( 822 const Device &dev, 823 const VkGraphicsPipelineCreateInfo &info, 824 const VkPipeline basePipeline) 825{ 826 DERIVED_OBJECT_TYPE_INIT(vkCreateGraphicsPipelineDerivative, dev, VK_OBJECT_TYPE_PIPELINE, &info, basePipeline); 827 alloc_memory(); 828} 829 830void Pipeline::init(const Device &dev, const VkComputePipelineCreateInfo &info) 831{ 832 DERIVED_OBJECT_TYPE_INIT(vkCreateComputePipeline, dev, VK_OBJECT_TYPE_PIPELINE, &info); 833 alloc_memory(); 834} 835 836void Pipeline::init(const Device&dev, size_t size, const void *data) 837{ 838 DERIVED_OBJECT_TYPE_INIT(vkLoadPipeline, dev, VK_OBJECT_TYPE_PIPELINE, size, data); 839 alloc_memory(); 840} 841 842void Pipeline::init( 843 const Device&dev, 844 size_t size, 845 const void *data, 846 const VkPipeline basePipeline) 847{ 848 DERIVED_OBJECT_TYPE_INIT(vkLoadPipelineDerivative, dev, VK_OBJECT_TYPE_PIPELINE, size, data, basePipeline); 849 alloc_memory(); 850} 851 852size_t Pipeline::store(size_t size, void *data) 853{ 854 if (!EXPECT(vkStorePipeline(dev_->obj(), obj(), &size, data) == VK_SUCCESS)) 855 size = 0; 856 857 return size; 858} 859 860void Sampler::init(const Device &dev, const VkSamplerCreateInfo &info) 861{ 862 DERIVED_OBJECT_TYPE_INIT(vkCreateSampler, dev, VK_OBJECT_TYPE_SAMPLER, &info); 863 alloc_memory(); 864} 865 866void DescriptorSetLayout::init(const Device &dev, const VkDescriptorSetLayoutCreateInfo &info) 867{ 868 DERIVED_OBJECT_TYPE_INIT(vkCreateDescriptorSetLayout, dev, VK_OBJECT_TYPE_DESCRIPTOR_SET_LAYOUT, &info); 869 alloc_memory(); 870} 871 872void PipelineLayout::init(const Device &dev, VkPipelineLayoutCreateInfo &info, const std::vector<const DescriptorSetLayout *> &layouts) 873{ 874 const std::vector<VkDescriptorSetLayout> layout_objs = make_objects<VkDescriptorSetLayout>(layouts); 875 info.pSetLayouts = &layout_objs[0]; 876 877 DERIVED_OBJECT_TYPE_INIT(vkCreatePipelineLayout, dev, VK_OBJECT_TYPE_PIPELINE_LAYOUT, &info); 878 alloc_memory(); 879} 880 881void DescriptorPool::init(const Device &dev, VkDescriptorPoolUsage usage, 882 uint32_t max_sets, const VkDescriptorPoolCreateInfo &info) 883{ 884 DERIVED_OBJECT_TYPE_INIT(vkCreateDescriptorPool, dev, VK_OBJECT_TYPE_DESCRIPTOR_POOL, usage, max_sets, &info); 885 alloc_memory(); 886} 887 888void DescriptorPool::reset() 889{ 890 EXPECT(vkResetDescriptorPool(dev_->obj(), obj()) == VK_SUCCESS); 891} 892 893std::vector<DescriptorSet *> DescriptorPool::alloc_sets(const Device &dev, VkDescriptorSetUsage usage, const std::vector<const DescriptorSetLayout *> &layouts) 894{ 895 const std::vector<VkDescriptorSetLayout> layout_objs = make_objects<VkDescriptorSetLayout>(layouts); 896 897 std::vector<VkDescriptorSet> set_objs; 898 set_objs.resize(layout_objs.size()); 899 900 uint32_t set_count; 901 VkResult err = vkAllocDescriptorSets(dev_->obj(), obj(), usage, layout_objs.size(), &layout_objs[0], &set_objs[0], &set_count); 902 if (err == VK_SUCCESS) 903 EXPECT(set_count == set_objs.size()); 904 set_objs.resize(set_count); 905 906 std::vector<DescriptorSet *> sets; 907 sets.reserve(set_count); 908 for (std::vector<VkDescriptorSet>::const_iterator it = set_objs.begin(); it != set_objs.end(); it++) { 909 // do descriptor sets need memories bound? 910 DescriptorSet *descriptorSet = new DescriptorSet(dev, *it); 911 sets.push_back(descriptorSet); 912 } 913 return sets; 914} 915 916std::vector<DescriptorSet *> DescriptorPool::alloc_sets(const Device &dev, VkDescriptorSetUsage usage, const DescriptorSetLayout &layout, uint32_t count) 917{ 918 return alloc_sets(dev, usage, std::vector<const DescriptorSetLayout *>(count, &layout)); 919} 920 921DescriptorSet *DescriptorPool::alloc_sets(const Device &dev, VkDescriptorSetUsage usage, const DescriptorSetLayout &layout) 922{ 923 std::vector<DescriptorSet *> set = alloc_sets(dev, usage, layout, 1); 924 return (set.empty()) ? NULL : set[0]; 925} 926 927void DynamicVpStateObject::init(const Device &dev, const VkDynamicVpStateCreateInfo &info) 928{ 929 DERIVED_OBJECT_TYPE_INIT(vkCreateDynamicViewportState, dev, VK_OBJECT_TYPE_DYNAMIC_VP_STATE, &info); 930 alloc_memory(); 931} 932 933void DynamicRsStateObject::init(const Device &dev, const VkDynamicRsStateCreateInfo &info) 934{ 935 DERIVED_OBJECT_TYPE_INIT(vkCreateDynamicRasterState, dev, VK_OBJECT_TYPE_DYNAMIC_RS_STATE, &info); 936 alloc_memory(); 937} 938 939void DynamicCbStateObject::init(const Device &dev, const VkDynamicCbStateCreateInfo &info) 940{ 941 DERIVED_OBJECT_TYPE_INIT(vkCreateDynamicColorBlendState, dev, VK_OBJECT_TYPE_DYNAMIC_CB_STATE, &info); 942 alloc_memory(); 943} 944 945void DynamicDsStateObject::init(const Device &dev, const VkDynamicDsStateCreateInfo &info) 946{ 947 DERIVED_OBJECT_TYPE_INIT(vkCreateDynamicDepthStencilState, dev, VK_OBJECT_TYPE_DYNAMIC_DS_STATE, &info); 948 alloc_memory(); 949} 950 951void CmdBuffer::init(const Device &dev, const VkCmdBufferCreateInfo &info) 952{ 953 DERIVED_OBJECT_TYPE_INIT(vkCreateCommandBuffer, dev, VK_OBJECT_TYPE_COMMAND_BUFFER, &info); 954} 955 956void CmdBuffer::begin(const VkCmdBufferBeginInfo *info) 957{ 958 EXPECT(vkBeginCommandBuffer(obj(), info) == VK_SUCCESS); 959} 960 961void CmdBuffer::begin() 962{ 963 VkCmdBufferBeginInfo info = {}; 964 info.flags = VK_CMD_BUFFER_OPTIMIZE_SMALL_BATCH_BIT | 965 VK_CMD_BUFFER_OPTIMIZE_ONE_TIME_SUBMIT_BIT; 966 info.sType = VK_STRUCTURE_TYPE_CMD_BUFFER_BEGIN_INFO; 967 968 begin(&info); 969} 970 971void CmdBuffer::end() 972{ 973 EXPECT(vkEndCommandBuffer(obj()) == VK_SUCCESS); 974} 975 976void CmdBuffer::reset() 977{ 978 EXPECT(vkResetCommandBuffer(obj()) == VK_SUCCESS); 979} 980 981}; // namespace vk_testing 982