Add tests for VK_KHR_get_surface_capabilities2
[platform/upstream/VK-GL-CTS.git] / external / vulkancts / modules / vulkan / api / vktApiFeatureInfo.cpp
1 /*-------------------------------------------------------------------------
2  * Vulkan Conformance Tests
3  * ------------------------
4  *
5  * Copyright (c) 2015 Google Inc.
6  *
7  * Licensed under the Apache License, Version 2.0 (the "License");
8  * you may not use this file except in compliance with the License.
9  * You may obtain a copy of the License at
10  *
11  *      http://www.apache.org/licenses/LICENSE-2.0
12  *
13  * Unless required by applicable law or agreed to in writing, software
14  * distributed under the License is distributed on an "AS IS" BASIS,
15  * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
16  * See the License for the specific language governing permissions and
17  * limitations under the License.
18  *
19  *//*!
20  * \file
21  * \brief Api Feature Query tests
22  *//*--------------------------------------------------------------------*/
23
24 #include "vktApiFeatureInfo.hpp"
25
26 #include "vktTestCaseUtil.hpp"
27 #include "vktTestGroupUtil.hpp"
28
29 #include "vkPlatform.hpp"
30 #include "vkStrUtil.hpp"
31 #include "vkRef.hpp"
32 #include "vkDeviceUtil.hpp"
33 #include "vkQueryUtil.hpp"
34 #include "vkImageUtil.hpp"
35 #include "vkApiVersion.hpp"
36
37 #include "tcuTestLog.hpp"
38 #include "tcuFormatUtil.hpp"
39 #include "tcuTextureUtil.hpp"
40 #include "tcuResultCollector.hpp"
41
42 #include "deUniquePtr.hpp"
43 #include "deString.h"
44 #include "deStringUtil.hpp"
45 #include "deSTLUtil.hpp"
46 #include "deMemory.h"
47 #include "deMath.h"
48
49 #include <vector>
50 #include <set>
51 #include <string>
52
53 namespace vkt
54 {
55 namespace api
56 {
57 namespace
58 {
59
60 using namespace vk;
61 using std::vector;
62 using std::set;
63 using std::string;
64 using tcu::TestLog;
65 using tcu::ScopedLogSection;
66
67 enum
68 {
69         GUARD_SIZE                                                              = 0x20,                 //!< Number of bytes to check
70         GUARD_VALUE                                                             = 0xcd,                 //!< Data pattern
71 };
72
73 static const VkDeviceSize MINIMUM_REQUIRED_IMAGE_RESOURCE_SIZE =        (1LLU<<31);     //!< Minimum value for VkImageFormatProperties::maxResourceSize (2GiB)
74
75 enum LimitFormat
76 {
77         LIMIT_FORMAT_SIGNED_INT,
78         LIMIT_FORMAT_UNSIGNED_INT,
79         LIMIT_FORMAT_FLOAT,
80         LIMIT_FORMAT_DEVICE_SIZE,
81         LIMIT_FORMAT_BITMASK,
82
83         LIMIT_FORMAT_LAST
84 };
85
86 enum LimitType
87 {
88         LIMIT_TYPE_MIN,
89         LIMIT_TYPE_MAX,
90         LIMIT_TYPE_NONE,
91
92         LIMIT_TYPE_LAST
93 };
94
95 #define LIMIT(_X_)              DE_OFFSET_OF(VkPhysicalDeviceLimits, _X_), (const char*)(#_X_)
96 #define FEATURE(_X_)    DE_OFFSET_OF(VkPhysicalDeviceFeatures, _X_)
97
98 inline bool isExtensionSupported (const vector<string>& extensionStrings, const string& extensionName)
99 {
100         return de::contains(extensionStrings.begin(), extensionStrings.end(), extensionName);
101 }
102
103 bool validateFeatureLimits(VkPhysicalDeviceProperties* properties, VkPhysicalDeviceFeatures* features, TestLog& log)
104 {
105         bool                                            limitsOk        = true;
106         VkPhysicalDeviceLimits*         limits          = &properties->limits;
107         struct FeatureLimitTable
108         {
109                 deUint32                offset;
110                 const char*             name;
111                 deUint32                uintVal;                        //!< Format is UNSIGNED_INT
112                 deInt32                 intVal;                         //!< Format is SIGNED_INT
113                 deUint64                deviceSizeVal;          //!< Format is DEVICE_SIZE
114                 float                   floatVal;                       //!< Format is FLOAT
115                 LimitFormat             format;
116                 LimitType               type;
117                 deInt32                 unsuppTableNdx;
118         } featureLimitTable[] =   //!< Based on 1.0.28 Vulkan spec
119         {
120                 { LIMIT(maxImageDimension1D),                                                           4096, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
121                 { LIMIT(maxImageDimension2D),                                                           4096, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
122                 { LIMIT(maxImageDimension3D),                                                           256, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
123                 { LIMIT(maxImageDimensionCube),                                                         4096, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
124                 { LIMIT(maxImageArrayLayers),                                                           256, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN   , -1 },
125                 { LIMIT(maxTexelBufferElements),                                                        65536, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
126                 { LIMIT(maxUniformBufferRange),                                                         16384, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
127                 { LIMIT(maxStorageBufferRange),                                                         0, 0, 0, 0, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_NONE, -1 },
128                 { LIMIT(maxPushConstantsSize),                                                          128, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
129                 { LIMIT(maxMemoryAllocationCount),                                                      4096, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
130                 { LIMIT(maxSamplerAllocationCount),                                                     0, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_NONE , -1 },
131                 { LIMIT(bufferImageGranularity),                                                        0, 0, 1, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_MIN, -1 },
132                 { LIMIT(bufferImageGranularity),                                                        0, 0, 131072, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_MAX, -1 },
133                 { LIMIT(sparseAddressSpaceSize),                                                        0, 0, 2UL*1024*1024*1024, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_MIN, -1 },
134                 { LIMIT(maxBoundDescriptorSets),                                                        4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
135                 { LIMIT(maxPerStageDescriptorSamplers),                                         16, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
136                 { LIMIT(maxPerStageDescriptorUniformBuffers),                           12, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
137                 { LIMIT(maxPerStageDescriptorStorageBuffers),                           4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
138                 { LIMIT(maxPerStageDescriptorSampledImages),                            16, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
139                 { LIMIT(maxPerStageDescriptorStorageImages),                            4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
140                 { LIMIT(maxPerStageDescriptorInputAttachments),                         4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
141                 { LIMIT(maxPerStageResources),                                                          0, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_NONE , -1 },
142                 { LIMIT(maxDescriptorSetSamplers),                                                      96, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
143                 { LIMIT(maxDescriptorSetUniformBuffers),                                        72, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
144                 { LIMIT(maxDescriptorSetUniformBuffersDynamic),                         8, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
145                 { LIMIT(maxDescriptorSetStorageBuffers),                                        24, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
146                 { LIMIT(maxDescriptorSetStorageBuffersDynamic),                         4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
147                 { LIMIT(maxDescriptorSetSampledImages),                                         96, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
148                 { LIMIT(maxDescriptorSetStorageImages),                                         24, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
149                 { LIMIT(maxDescriptorSetInputAttachments),                                      0, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_NONE  , -1 },
150                 { LIMIT(maxVertexInputAttributes),                                                      16, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
151                 { LIMIT(maxVertexInputBindings),                                                        16, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
152                 { LIMIT(maxVertexInputAttributeOffset),                                         2047, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
153                 { LIMIT(maxVertexInputBindingStride),                                           2048, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
154                 { LIMIT(maxVertexOutputComponents),                                                     64, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
155                 { LIMIT(maxTessellationGenerationLevel),                                        64, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
156                 { LIMIT(maxTessellationPatchSize),                                                      32, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
157                 { LIMIT(maxTessellationControlPerVertexInputComponents),        64, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
158                 { LIMIT(maxTessellationControlPerVertexOutputComponents),       64, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
159                 { LIMIT(maxTessellationControlPerPatchOutputComponents),        120, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
160                 { LIMIT(maxTessellationControlTotalOutputComponents),           2048, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
161                 { LIMIT(maxTessellationEvaluationInputComponents),                      64, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
162                 { LIMIT(maxTessellationEvaluationOutputComponents),                     64, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
163                 { LIMIT(maxGeometryShaderInvocations),                                          32, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
164                 { LIMIT(maxGeometryInputComponents),                                            64, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
165                 { LIMIT(maxGeometryOutputComponents),                                           64, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
166                 { LIMIT(maxGeometryOutputVertices),                                                     256, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
167                 { LIMIT(maxGeometryTotalOutputComponents),                                      1024, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
168                 { LIMIT(maxFragmentInputComponents),                                            64, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
169                 { LIMIT(maxFragmentOutputAttachments),                                          4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
170                 { LIMIT(maxFragmentDualSrcAttachments),                                         1, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
171                 { LIMIT(maxFragmentCombinedOutputResources),                            4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN  , -1 },
172                 { LIMIT(maxComputeSharedMemorySize),                                            16384, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN   , -1 },
173                 { LIMIT(maxComputeWorkGroupCount[0]),                                           65535, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN   , -1 },
174                 { LIMIT(maxComputeWorkGroupCount[1]),                                           65535, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN   , -1 },
175                 { LIMIT(maxComputeWorkGroupCount[2]),                                           65535,  0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN   , -1 },
176                 { LIMIT(maxComputeWorkGroupInvocations),                                        128, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN    , -1 },
177                 { LIMIT(maxComputeWorkGroupSize[0]),                                            128, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN    , -1 },
178                 { LIMIT(maxComputeWorkGroupSize[1]),                                            128, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN    , -1 },
179                 { LIMIT(maxComputeWorkGroupSize[2]),                                            64, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN    , -1 },
180                 { LIMIT(subPixelPrecisionBits),                                                         4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN    , -1 },
181                 { LIMIT(subTexelPrecisionBits),                                                         4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN    , -1 },
182                 { LIMIT(mipmapPrecisionBits),                                                           4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN    , -1 },
183                 { LIMIT(maxDrawIndexedIndexValue),                                                      (deUint32)~0, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
184                 { LIMIT(maxDrawIndirectCount),                                                          65535, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN    , -1 },
185                 { LIMIT(maxSamplerLodBias),                                                                     0, 0, 0, 2.0f, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MIN, -1 },
186                 { LIMIT(maxSamplerAnisotropy),                                                          0, 0, 0, 16.0f, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MIN, -1 },
187                 { LIMIT(maxViewports),                                                                          16, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
188                 { LIMIT(maxViewportDimensions[0]),                                                      4096, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
189                 { LIMIT(maxViewportDimensions[1]),                                                      4096, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN , -1 },
190                 { LIMIT(viewportBoundsRange[0]),                                                        0, 0, 0, -8192.0f, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MAX, -1 },
191                 { LIMIT(viewportBoundsRange[1]),                                                        0, 0, 0, 8191.0f, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MIN, -1 },
192                 { LIMIT(viewportSubPixelBits),                                                          0, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
193                 { LIMIT(minMemoryMapAlignment),                                                         64, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
194                 { LIMIT(minTexelBufferOffsetAlignment),                                         0, 0, 1, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_MIN, -1 },
195                 { LIMIT(minTexelBufferOffsetAlignment),                                         0, 0, 256, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_MAX, -1 },
196                 { LIMIT(minUniformBufferOffsetAlignment),                                       0, 0, 1, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_MIN, -1 },
197                 { LIMIT(minUniformBufferOffsetAlignment),                                       0, 0, 256, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_MAX, -1 },
198                 { LIMIT(minStorageBufferOffsetAlignment),                                       0, 0, 1, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_MIN, -1 },
199                 { LIMIT(minStorageBufferOffsetAlignment),                                       0, 0, 256, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_MAX, -1 },
200                 { LIMIT(minTexelOffset),                                                                        0, -8, 0, 0.0f, LIMIT_FORMAT_SIGNED_INT, LIMIT_TYPE_MAX, -1 },
201                 { LIMIT(maxTexelOffset),                                                                        7, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
202                 { LIMIT(minTexelGatherOffset),                                                          0, -8, 0, 0.0f, LIMIT_FORMAT_SIGNED_INT, LIMIT_TYPE_MAX, -1 },
203                 { LIMIT(maxTexelGatherOffset),                                                          7, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
204                 { LIMIT(minInterpolationOffset),                                                        0, 0, 0, -0.5f, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MAX, -1 },
205                 { LIMIT(maxInterpolationOffset),                                                        0, 0, 0, 0.5f - (1.0f/deFloatPow(2.0f, (float)limits->subPixelInterpolationOffsetBits)), LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MIN, -1 },
206                 { LIMIT(subPixelInterpolationOffsetBits),                                       4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
207                 { LIMIT(maxFramebufferWidth),                                                           4096, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
208                 { LIMIT(maxFramebufferHeight),                                                          4096, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
209                 { LIMIT(maxFramebufferLayers),                                                          0, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
210                 { LIMIT(framebufferColorSampleCounts),                                          VK_SAMPLE_COUNT_1_BIT|VK_SAMPLE_COUNT_4_BIT, 0, 0, 0.0f, LIMIT_FORMAT_BITMASK, LIMIT_TYPE_MIN, -1 },
211                 { LIMIT(framebufferDepthSampleCounts),                                          VK_SAMPLE_COUNT_1_BIT|VK_SAMPLE_COUNT_4_BIT, 0, 0, 0.0f, LIMIT_FORMAT_BITMASK, LIMIT_TYPE_MIN, -1 },
212                 { LIMIT(framebufferStencilSampleCounts),                                        VK_SAMPLE_COUNT_1_BIT|VK_SAMPLE_COUNT_4_BIT, 0, 0, 0.0f, LIMIT_FORMAT_BITMASK, LIMIT_TYPE_MIN, -1 },
213                 { LIMIT(framebufferNoAttachmentsSampleCounts),                          VK_SAMPLE_COUNT_1_BIT|VK_SAMPLE_COUNT_4_BIT, 0, 0, 0.0f, LIMIT_FORMAT_BITMASK, LIMIT_TYPE_MIN, -1 },
214                 { LIMIT(maxColorAttachments),                                                           4, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
215                 { LIMIT(sampledImageColorSampleCounts),                                         VK_SAMPLE_COUNT_1_BIT|VK_SAMPLE_COUNT_4_BIT, 0, 0, 0.0f, LIMIT_FORMAT_BITMASK, LIMIT_TYPE_MIN, -1 },
216                 { LIMIT(sampledImageIntegerSampleCounts),                                       VK_SAMPLE_COUNT_1_BIT, 0, 0, 0.0f, LIMIT_FORMAT_BITMASK, LIMIT_TYPE_MIN, -1 },
217                 { LIMIT(sampledImageDepthSampleCounts),                                         VK_SAMPLE_COUNT_1_BIT|VK_SAMPLE_COUNT_4_BIT, 0, 0, 0.0f, LIMIT_FORMAT_BITMASK, LIMIT_TYPE_MIN, -1 },
218                 { LIMIT(sampledImageStencilSampleCounts),                                       VK_SAMPLE_COUNT_1_BIT|VK_SAMPLE_COUNT_4_BIT, 0, 0, 0.0f, LIMIT_FORMAT_BITMASK, LIMIT_TYPE_MIN, -1 },
219                 { LIMIT(storageImageSampleCounts),                                                      VK_SAMPLE_COUNT_1_BIT|VK_SAMPLE_COUNT_4_BIT, 0, 0, 0.0f, LIMIT_FORMAT_BITMASK, LIMIT_TYPE_MIN, -1 },
220                 { LIMIT(maxSampleMaskWords),                                                            1, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
221                 { LIMIT(timestampComputeAndGraphics),                                           0, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_NONE, -1 },
222                 { LIMIT(timestampPeriod),                                                                       0, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_NONE, -1 },
223                 { LIMIT(maxClipDistances),                                                                      8, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
224                 { LIMIT(maxCullDistances),                                                                      8, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
225                 { LIMIT(maxCombinedClipAndCullDistances),                                       8, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_MIN, -1 },
226                 { LIMIT(discreteQueuePriorities),                                                       8, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_NONE, -1 },
227                 { LIMIT(pointSizeRange[0]),                                                                     0, 0, 0, 0.0f, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MIN, -1 },
228                 { LIMIT(pointSizeRange[0]),                                                                     0, 0, 0, 1.0f, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MAX, -1 },
229                 { LIMIT(pointSizeRange[1]),                                                                     0, 0, 0, 64.0f - limits->pointSizeGranularity , LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MIN, -1 },
230                 { LIMIT(lineWidthRange[0]),                                                                     0, 0, 0, 0.0f, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MIN, -1 },
231                 { LIMIT(lineWidthRange[0]),                                                                     0, 0, 0, 1.0f, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MAX, -1 },
232                 { LIMIT(lineWidthRange[1]),                                                                     0, 0, 0, 8.0f - limits->lineWidthGranularity, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MIN, -1 },
233                 { LIMIT(pointSizeGranularity),                                                          0, 0, 0, 1.0f, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MAX, -1 },
234                 { LIMIT(lineWidthGranularity),                                                          0, 0, 0, 1.0f, LIMIT_FORMAT_FLOAT, LIMIT_TYPE_MAX, -1 },
235                 { LIMIT(strictLines),                                                                           0, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_NONE, -1 },
236                 { LIMIT(standardSampleLocations),                                                       0, 0, 0, 0.0f, LIMIT_FORMAT_UNSIGNED_INT, LIMIT_TYPE_NONE, -1 },
237                 { LIMIT(optimalBufferCopyOffsetAlignment),                                      0, 0, 0, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_NONE, -1 },
238                 { LIMIT(optimalBufferCopyRowPitchAlignment),                            0, 0, 0, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_NONE, -1 },
239                 { LIMIT(nonCoherentAtomSize),                                                           0, 0, 1, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_MIN, -1 },
240                 { LIMIT(nonCoherentAtomSize),                                                           0, 0, 256, 0.0f, LIMIT_FORMAT_DEVICE_SIZE, LIMIT_TYPE_MAX, -1 },
241         };
242
243         const struct UnsupportedFeatureLimitTable
244         {
245                 deUint32                limitOffset;
246                 const char*             name;
247                 deUint32                featureOffset;
248                 deUint32                uintVal;                        //!< Format is UNSIGNED_INT
249                 deInt32                 intVal;                         //!< Format is SIGNED_INT
250                 deUint64                deviceSizeVal;          //!< Format is DEVICE_SIZE
251                 float                   floatVal;                       //!< Format is FLOAT
252         } unsupportedFeatureTable[] =
253         {
254                 { LIMIT(sparseAddressSpaceSize),                                                        FEATURE(sparseBinding),                                 0, 0, 0, 0.0f },
255                 { LIMIT(maxTessellationGenerationLevel),                                        FEATURE(tessellationShader),                    0, 0, 0, 0.0f },
256                 { LIMIT(maxTessellationPatchSize),                                                      FEATURE(tessellationShader),                    0, 0, 0, 0.0f },
257                 { LIMIT(maxTessellationControlPerVertexInputComponents),        FEATURE(tessellationShader),                    0, 0, 0, 0.0f },
258                 { LIMIT(maxTessellationControlPerVertexOutputComponents),       FEATURE(tessellationShader),                    0, 0, 0, 0.0f },
259                 { LIMIT(maxTessellationControlPerPatchOutputComponents),        FEATURE(tessellationShader),                    0, 0, 0, 0.0f },
260                 { LIMIT(maxTessellationControlTotalOutputComponents),           FEATURE(tessellationShader),                    0, 0, 0, 0.0f },
261                 { LIMIT(maxTessellationEvaluationInputComponents),                      FEATURE(tessellationShader),                    0, 0, 0, 0.0f },
262                 { LIMIT(maxTessellationEvaluationOutputComponents),                     FEATURE(tessellationShader),                    0, 0, 0, 0.0f },
263                 { LIMIT(maxGeometryShaderInvocations),                                          FEATURE(geometryShader),                                0, 0, 0, 0.0f },
264                 { LIMIT(maxGeometryInputComponents),                                            FEATURE(geometryShader),                                0, 0, 0, 0.0f },
265                 { LIMIT(maxGeometryOutputComponents),                                           FEATURE(geometryShader),                                0, 0, 0, 0.0f },
266                 { LIMIT(maxGeometryOutputVertices),                                                     FEATURE(geometryShader),                                0, 0, 0, 0.0f },
267                 { LIMIT(maxGeometryTotalOutputComponents),                                      FEATURE(geometryShader),                                0, 0, 0, 0.0f },
268                 { LIMIT(maxFragmentDualSrcAttachments),                                         FEATURE(dualSrcBlend),                                  0, 0, 0, 0.0f },
269                 { LIMIT(maxDrawIndexedIndexValue),                                                      FEATURE(fullDrawIndexUint32),                   (1<<24)-1, 0, 0, 0.0f },
270                 { LIMIT(maxDrawIndirectCount),                                                          FEATURE(multiDrawIndirect),                             1, 0, 0, 0.0f },
271                 { LIMIT(maxSamplerAnisotropy),                                                          FEATURE(samplerAnisotropy),                             1, 0, 0, 0.0f },
272                 { LIMIT(maxViewports),                                                                          FEATURE(multiViewport),                                 1, 0, 0, 0.0f },
273                 { LIMIT(minTexelGatherOffset),                                                          FEATURE(shaderImageGatherExtended),             0, 0, 0, 0.0f },
274                 { LIMIT(maxTexelGatherOffset),                                                          FEATURE(shaderImageGatherExtended),             0, 0, 0, 0.0f },
275                 { LIMIT(minInterpolationOffset),                                                        FEATURE(sampleRateShading),                             0, 0, 0, 0.0f },
276                 { LIMIT(maxInterpolationOffset),                                                        FEATURE(sampleRateShading),                             0, 0, 0, 0.0f },
277                 { LIMIT(subPixelInterpolationOffsetBits),                                       FEATURE(sampleRateShading),                             0, 0, 0, 0.0f },
278                 { LIMIT(storageImageSampleCounts),                                                      FEATURE(shaderStorageImageMultisample), VK_SAMPLE_COUNT_1_BIT, 0, 0, 0.0f },
279                 { LIMIT(maxClipDistances),                                                                      FEATURE(shaderClipDistance),                    0, 0, 0, 0.0f },
280                 { LIMIT(maxCullDistances),                                                                      FEATURE(shaderClipDistance),                    0, 0, 0, 0.0f },
281                 { LIMIT(maxCombinedClipAndCullDistances),                                       FEATURE(shaderClipDistance),                    0, 0, 0, 0.0f },
282                 { LIMIT(pointSizeRange[0]),                                                                     FEATURE(largePoints),                                   0, 0, 0, 1.0f },
283                 { LIMIT(pointSizeRange[1]),                                                                     FEATURE(largePoints),                                   0, 0, 0, 1.0f },
284                 { LIMIT(lineWidthRange[0]),                                                                     FEATURE(wideLines),                                             0, 0, 0, 1.0f },
285                 { LIMIT(lineWidthRange[1]),                                                                     FEATURE(wideLines),                                             0, 0, 0, 1.0f },
286                 { LIMIT(pointSizeGranularity),                                                          FEATURE(largePoints),                                   0, 0, 0, 0.0f },
287                 { LIMIT(lineWidthGranularity),                                                          FEATURE(wideLines),                                             0, 0, 0, 0.0f }
288         };
289
290         log << TestLog::Message << *limits << TestLog::EndMessage;
291
292         //!< First build a map from limit to unsupported table index
293         for (deUint32 ndx = 0; ndx < DE_LENGTH_OF_ARRAY(featureLimitTable); ndx++)
294         {
295                 for (deUint32 unsuppNdx = 0; unsuppNdx < DE_LENGTH_OF_ARRAY(unsupportedFeatureTable); unsuppNdx++)
296                 {
297                         if (unsupportedFeatureTable[unsuppNdx].limitOffset == featureLimitTable[ndx].offset)
298                         {
299                                 featureLimitTable[ndx].unsuppTableNdx = unsuppNdx;
300                                 break;
301                         }
302                 }
303         }
304
305         for (deUint32 ndx = 0; ndx < DE_LENGTH_OF_ARRAY(featureLimitTable); ndx++)
306         {
307                 switch (featureLimitTable[ndx].format)
308                 {
309                         case LIMIT_FORMAT_UNSIGNED_INT:
310                         {
311                                 deUint32 limitToCheck = featureLimitTable[ndx].uintVal;
312                                 if (featureLimitTable[ndx].unsuppTableNdx != -1)
313                                 {
314                                         if (*((VkBool32*)((deUint8*)features+unsupportedFeatureTable[featureLimitTable[ndx].unsuppTableNdx].featureOffset)) == VK_FALSE)
315                                                 limitToCheck = unsupportedFeatureTable[featureLimitTable[ndx].unsuppTableNdx].uintVal;
316                                 }
317
318                                 if (featureLimitTable[ndx].type == LIMIT_TYPE_MIN)
319                                 {
320
321                                         if (*((deUint32*)((deUint8*)limits+featureLimitTable[ndx].offset)) < limitToCheck)
322                                         {
323                                                 log << TestLog::Message << "limit Validation failed " << featureLimitTable[ndx].name
324                                                         << " not valid-limit type MIN - actual is "
325                                                         << *((deUint32*)((deUint8*)limits + featureLimitTable[ndx].offset)) << TestLog::EndMessage;
326                                                 limitsOk = false;
327                                         }
328                                 }
329                                 else if (featureLimitTable[ndx].type == LIMIT_TYPE_MAX)
330                                 {
331                                         if (*((deUint32*)((deUint8*)limits+featureLimitTable[ndx].offset)) > limitToCheck)
332                                         {
333                                                 log << TestLog::Message << "limit validation failed,  " << featureLimitTable[ndx].name
334                                                         << " not valid-limit type MAX - actual is "
335                                                         << *((deUint32*)((deUint8*)limits + featureLimitTable[ndx].offset)) << TestLog::EndMessage;
336                                                 limitsOk = false;
337                                         }
338                                 }
339                                 break;
340                         }
341
342                         case LIMIT_FORMAT_FLOAT:
343                         {
344                                 float limitToCheck = featureLimitTable[ndx].floatVal;
345                                 if (featureLimitTable[ndx].unsuppTableNdx != -1)
346                                 {
347                                         if (*((VkBool32*)((deUint8*)features+unsupportedFeatureTable[featureLimitTable[ndx].unsuppTableNdx].featureOffset)) == VK_FALSE)
348                                                 limitToCheck = unsupportedFeatureTable[featureLimitTable[ndx].unsuppTableNdx].floatVal;
349                                 }
350
351                                 if (featureLimitTable[ndx].type == LIMIT_TYPE_MIN)
352                                 {
353                                         if (*((float*)((deUint8*)limits+featureLimitTable[ndx].offset)) < limitToCheck)
354                                         {
355                                                 log << TestLog::Message << "limit validation failed, " << featureLimitTable[ndx].name
356                                                         << " not valid-limit type MIN - actual is "
357                                                         << *((float*)((deUint8*)limits + featureLimitTable[ndx].offset)) << TestLog::EndMessage;
358                                                 limitsOk = false;
359                                         }
360                                 }
361                                 else if (featureLimitTable[ndx].type == LIMIT_TYPE_MAX)
362                                 {
363                                         if (*((float*)((deUint8*)limits+featureLimitTable[ndx].offset)) > limitToCheck)
364                                         {
365                                                 log << TestLog::Message << "limit validation failed, " << featureLimitTable[ndx].name
366                                                         << " not valid-limit type MAX actual is "
367                                                         << *((float*)((deUint8*)limits + featureLimitTable[ndx].offset)) << TestLog::EndMessage;
368                                                 limitsOk = false;
369                                         }
370                                 }
371                                 break;
372                         }
373
374                         case LIMIT_FORMAT_SIGNED_INT:
375                         {
376                                 deInt32 limitToCheck = featureLimitTable[ndx].intVal;
377                                 if (featureLimitTable[ndx].unsuppTableNdx != -1)
378                                 {
379                                         if (*((VkBool32*)((deUint8*)features+unsupportedFeatureTable[featureLimitTable[ndx].unsuppTableNdx].featureOffset)) == VK_FALSE)
380                                                 limitToCheck = unsupportedFeatureTable[featureLimitTable[ndx].unsuppTableNdx].intVal;
381                                 }
382                                 if (featureLimitTable[ndx].type == LIMIT_TYPE_MIN)
383                                 {
384                                         if (*((deInt32*)((deUint8*)limits+featureLimitTable[ndx].offset)) < limitToCheck)
385                                         {
386                                                 log << TestLog::Message <<  "limit validation failed, " << featureLimitTable[ndx].name
387                                                         << " not valid-limit type MIN actual is "
388                                                         << *((deInt32*)((deUint8*)limits + featureLimitTable[ndx].offset)) << TestLog::EndMessage;
389                                                 limitsOk = false;
390                                         }
391                                 }
392                                 else if (featureLimitTable[ndx].type == LIMIT_TYPE_MAX)
393                                 {
394                                         if (*((deInt32*)((deUint8*)limits+featureLimitTable[ndx].offset)) > limitToCheck)
395                                         {
396                                                 log << TestLog::Message << "limit validation failed, " << featureLimitTable[ndx].name
397                                                         << " not valid-limit type MAX actual is "
398                                                         << *((deInt32*)((deUint8*)limits + featureLimitTable[ndx].offset)) << TestLog::EndMessage;
399                                                 limitsOk = false;
400                                         }
401                                 }
402                                 break;
403                         }
404
405                         case LIMIT_FORMAT_DEVICE_SIZE:
406                         {
407                                 deUint64 limitToCheck = featureLimitTable[ndx].deviceSizeVal;
408                                 if (featureLimitTable[ndx].unsuppTableNdx != -1)
409                                 {
410                                         if (*((VkBool32*)((deUint8*)features+unsupportedFeatureTable[featureLimitTable[ndx].unsuppTableNdx].featureOffset)) == VK_FALSE)
411                                                 limitToCheck = unsupportedFeatureTable[featureLimitTable[ndx].unsuppTableNdx].deviceSizeVal;
412                                 }
413
414                                 if (featureLimitTable[ndx].type == LIMIT_TYPE_MIN)
415                                 {
416                                         if (*((deUint64*)((deUint8*)limits+featureLimitTable[ndx].offset)) < limitToCheck)
417                                         {
418                                                 log << TestLog::Message << "limit validation failed, " << featureLimitTable[ndx].name
419                                                         << " not valid-limit type MIN actual is "
420                                                         << *((deUint64*)((deUint8*)limits + featureLimitTable[ndx].offset)) << TestLog::EndMessage;
421                                                 limitsOk = false;
422                                         }
423                                 }
424                                 else if (featureLimitTable[ndx].type == LIMIT_TYPE_MAX)
425                                 {
426                                         if (*((deUint64*)((deUint8*)limits+featureLimitTable[ndx].offset)) > limitToCheck)
427                                         {
428                                                 log << TestLog::Message << "limit validation failed, " << featureLimitTable[ndx].name
429                                                         << " not valid-limit type MAX actual is "
430                                                         << *((deUint64*)((deUint8*)limits + featureLimitTable[ndx].offset)) << TestLog::EndMessage;
431                                                 limitsOk = false;
432                                         }
433                                 }
434                                 break;
435                         }
436
437                         case LIMIT_FORMAT_BITMASK:
438                         {
439                                 deUint32 limitToCheck = featureLimitTable[ndx].uintVal;
440                                 if (featureLimitTable[ndx].unsuppTableNdx != -1)
441                                 {
442                                         if (*((VkBool32*)((deUint8*)features+unsupportedFeatureTable[featureLimitTable[ndx].unsuppTableNdx].featureOffset)) == VK_FALSE)
443                                                 limitToCheck = unsupportedFeatureTable[featureLimitTable[ndx].unsuppTableNdx].uintVal;
444                                 }
445
446                                 if (featureLimitTable[ndx].type == LIMIT_TYPE_MIN)
447                                 {
448                                         if ((*((deUint32*)((deUint8*)limits+featureLimitTable[ndx].offset)) & limitToCheck) != limitToCheck)
449                                         {
450                                                 log << TestLog::Message << "limit validation failed, " << featureLimitTable[ndx].name
451                                                         << " not valid-limit type bitmask actual is "
452                                                         << *((deUint64*)((deUint8*)limits + featureLimitTable[ndx].offset)) << TestLog::EndMessage;
453                                                 limitsOk = false;
454                                         }
455                                 }
456                                 break;
457                         }
458
459                         default:
460                                 DE_ASSERT(0);
461                                 limitsOk = false;
462                 }
463         }
464
465         for (deUint32 ndx = 0; ndx < DE_LENGTH_OF_ARRAY(limits->maxViewportDimensions); ndx++)
466         {
467                 if (limits->maxImageDimension2D > limits->maxViewportDimensions[ndx])
468                 {
469                         log << TestLog::Message << "limit validation failed, maxImageDimension2D of " << limits->maxImageDimension2D
470                                 << "is larger than maxViewportDimension[" << ndx << "] of " << limits->maxViewportDimensions[ndx] << TestLog::EndMessage;
471                         limitsOk = false;
472                 }
473         }
474
475         if (limits->viewportBoundsRange[0] > float(-2 * limits->maxViewportDimensions[0]))
476         {
477                 log << TestLog::Message << "limit validation failed, viewPortBoundsRange[0] of " << limits->viewportBoundsRange[0]
478                         << "is larger than -2*maxViewportDimension[0] of " << -2*limits->maxViewportDimensions[0] << TestLog::EndMessage;
479                 limitsOk = false;
480         }
481
482         if (limits->viewportBoundsRange[1] < float(2 * limits->maxViewportDimensions[1] - 1))
483         {
484                 log << TestLog::Message << "limit validation failed, viewportBoundsRange[1] of " << limits->viewportBoundsRange[1]
485                         << "is less than 2*maxViewportDimension[1] of " << 2*limits->maxViewportDimensions[1] << TestLog::EndMessage;
486                 limitsOk = false;
487         }
488
489         return limitsOk;
490 }
491
492 template<typename T>
493 class CheckIncompleteResult
494 {
495 public:
496         virtual                 ~CheckIncompleteResult  (void) {}
497         virtual void    getResult                               (Context& context, T* data) = 0;
498
499         void operator() (Context& context, tcu::ResultCollector& results, const std::size_t expectedCompleteSize)
500         {
501                 if (expectedCompleteSize == 0)
502                         return;
503
504                 vector<T>               outputData      (expectedCompleteSize);
505                 const deUint32  usedSize        = static_cast<deUint32>(expectedCompleteSize / 3);
506
507                 ValidateQueryBits::fillBits(outputData.begin(), outputData.end());      // unused entries should have this pattern intact
508                 m_count         = usedSize;
509                 m_result        = VK_SUCCESS;
510
511                 getResult(context, &outputData[0]);                                                                     // update m_count and m_result
512
513                 if (m_count != usedSize || m_result != VK_INCOMPLETE || !ValidateQueryBits::checkBits(outputData.begin() + m_count, outputData.end()))
514                         results.fail("Query didn't return VK_INCOMPLETE");
515         }
516
517 protected:
518         deUint32        m_count;
519         VkResult        m_result;
520 };
521
522 struct CheckEnumeratePhysicalDevicesIncompleteResult : public CheckIncompleteResult<VkPhysicalDevice>
523 {
524         void getResult (Context& context, VkPhysicalDevice* data)
525         {
526                 m_result = context.getInstanceInterface().enumeratePhysicalDevices(context.getInstance(), &m_count, data);
527         }
528 };
529
530 struct CheckEnumerateInstanceLayerPropertiesIncompleteResult : public CheckIncompleteResult<VkLayerProperties>
531 {
532         void getResult (Context& context, VkLayerProperties* data)
533         {
534                 m_result = context.getPlatformInterface().enumerateInstanceLayerProperties(&m_count, data);
535         }
536 };
537
538 struct CheckEnumerateDeviceLayerPropertiesIncompleteResult : public CheckIncompleteResult<VkLayerProperties>
539 {
540         void getResult (Context& context, VkLayerProperties* data)
541         {
542                 m_result = context.getInstanceInterface().enumerateDeviceLayerProperties(context.getPhysicalDevice(), &m_count, data);
543         }
544 };
545
546 struct CheckEnumerateInstanceExtensionPropertiesIncompleteResult : public CheckIncompleteResult<VkExtensionProperties>
547 {
548         CheckEnumerateInstanceExtensionPropertiesIncompleteResult (std::string layerName = std::string()) : m_layerName(layerName) {}
549
550         void getResult (Context& context, VkExtensionProperties* data)
551         {
552                 const char* pLayerName = (m_layerName.length() != 0 ? m_layerName.c_str() : DE_NULL);
553                 m_result = context.getPlatformInterface().enumerateInstanceExtensionProperties(pLayerName, &m_count, data);
554         }
555
556 private:
557         const std::string       m_layerName;
558 };
559
560 struct CheckEnumerateDeviceExtensionPropertiesIncompleteResult : public CheckIncompleteResult<VkExtensionProperties>
561 {
562         CheckEnumerateDeviceExtensionPropertiesIncompleteResult (std::string layerName = std::string()) : m_layerName(layerName) {}
563
564         void getResult (Context& context, VkExtensionProperties* data)
565         {
566                 const char* pLayerName = (m_layerName.length() != 0 ? m_layerName.c_str() : DE_NULL);
567                 m_result = context.getInstanceInterface().enumerateDeviceExtensionProperties(context.getPhysicalDevice(), pLayerName, &m_count, data);
568         }
569
570 private:
571         const std::string       m_layerName;
572 };
573
574 tcu::TestStatus enumeratePhysicalDevices (Context& context)
575 {
576         TestLog&                                                log             = context.getTestContext().getLog();
577         tcu::ResultCollector                    results (log);
578         const vector<VkPhysicalDevice>  devices = enumeratePhysicalDevices(context.getInstanceInterface(), context.getInstance());
579
580         log << TestLog::Integer("NumDevices", "Number of devices", "", QP_KEY_TAG_NONE, deInt64(devices.size()));
581
582         for (size_t ndx = 0; ndx < devices.size(); ndx++)
583                 log << TestLog::Message << ndx << ": " << devices[ndx] << TestLog::EndMessage;
584
585         CheckEnumeratePhysicalDevicesIncompleteResult()(context, results, devices.size());
586
587         return tcu::TestStatus(results.getResult(), results.getMessage());
588 }
589
590 template<typename T>
591 void collectDuplicates (set<T>& duplicates, const vector<T>& values)
592 {
593         set<T> seen;
594
595         for (size_t ndx = 0; ndx < values.size(); ndx++)
596         {
597                 const T& value = values[ndx];
598
599                 if (!seen.insert(value).second)
600                         duplicates.insert(value);
601         }
602 }
603
604 void checkDuplicates (tcu::ResultCollector& results, const char* what, const vector<string>& values)
605 {
606         set<string> duplicates;
607
608         collectDuplicates(duplicates, values);
609
610         for (set<string>::const_iterator iter = duplicates.begin(); iter != duplicates.end(); ++iter)
611         {
612                 std::ostringstream msg;
613                 msg << "Duplicate " << what << ": " << *iter;
614                 results.fail(msg.str());
615         }
616 }
617
618 void checkDuplicateExtensions (tcu::ResultCollector& results, const vector<string>& extensions)
619 {
620         checkDuplicates(results, "extension", extensions);
621 }
622
623 void checkDuplicateLayers (tcu::ResultCollector& results, const vector<string>& layers)
624 {
625         checkDuplicates(results, "layer", layers);
626 }
627
628 void checkKhrExtensions (tcu::ResultCollector&          results,
629                                                  const vector<string>&          extensions,
630                                                  const int                                      numAllowedKhrExtensions,
631                                                  const char* const*                     allowedKhrExtensions)
632 {
633         const set<string>       allowedExtSet           (allowedKhrExtensions, allowedKhrExtensions+numAllowedKhrExtensions);
634
635         for (vector<string>::const_iterator extIter = extensions.begin(); extIter != extensions.end(); ++extIter)
636         {
637                 // Only Khronos-controlled extensions are checked
638                 if (de::beginsWith(*extIter, "VK_KHR_") &&
639                         !de::contains(allowedExtSet, *extIter))
640                 {
641                         results.fail("Unknown KHR extension " + *extIter);
642                 }
643         }
644 }
645
646 void checkInstanceExtensions (tcu::ResultCollector& results, const vector<string>& extensions)
647 {
648         static const char* s_allowedInstanceKhrExtensions[] =
649         {
650                 "VK_KHR_surface",
651                 "VK_KHR_display",
652                 "VK_KHR_android_surface",
653                 "VK_KHR_mir_surface",
654                 "VK_KHR_wayland_surface",
655                 "VK_KHR_win32_surface",
656                 "VK_KHR_xcb_surface",
657                 "VK_KHR_xlib_surface",
658                 "VK_KHR_get_physical_device_properties2",
659                 "VK_KHR_get_surface_capabilities2",
660         };
661
662         checkKhrExtensions(results, extensions, DE_LENGTH_OF_ARRAY(s_allowedInstanceKhrExtensions), s_allowedInstanceKhrExtensions);
663         checkDuplicateExtensions(results, extensions);
664 }
665
666 void checkDeviceExtensions (tcu::ResultCollector& results, const vector<string>& extensions)
667 {
668         static const char* s_allowedDeviceKhrExtensions[] =
669         {
670                 "VK_KHR_swapchain",
671                 "VK_KHR_display_swapchain",
672                 "VK_KHR_sampler_mirror_clamp_to_edge",
673                 "VK_KHR_shader_draw_parameters",
674                 "VK_KHR_maintenance1",
675                 "VK_KHR_push_descriptor",
676                 "VK_KHR_descriptor_update_template",
677                 "VK_KHR_incremental_present",
678         };
679
680         checkKhrExtensions(results, extensions, DE_LENGTH_OF_ARRAY(s_allowedDeviceKhrExtensions), s_allowedDeviceKhrExtensions);
681         checkDuplicateExtensions(results, extensions);
682 }
683
684 tcu::TestStatus enumerateInstanceLayers (Context& context)
685 {
686         TestLog&                                                log                                     = context.getTestContext().getLog();
687         tcu::ResultCollector                    results                         (log);
688         const vector<VkLayerProperties> properties                      = enumerateInstanceLayerProperties(context.getPlatformInterface());
689         vector<string>                                  layerNames;
690
691         for (size_t ndx = 0; ndx < properties.size(); ndx++)
692         {
693                 log << TestLog::Message << ndx << ": " << properties[ndx] << TestLog::EndMessage;
694
695                 layerNames.push_back(properties[ndx].layerName);
696         }
697
698         checkDuplicateLayers(results, layerNames);
699         CheckEnumerateInstanceLayerPropertiesIncompleteResult()(context, results, layerNames.size());
700
701         return tcu::TestStatus(results.getResult(), results.getMessage());
702 }
703
704 tcu::TestStatus enumerateInstanceExtensions (Context& context)
705 {
706         TestLog&                                log             = context.getTestContext().getLog();
707         tcu::ResultCollector    results (log);
708
709         {
710                 const ScopedLogSection                          section         (log, "Global", "Global Extensions");
711                 const vector<VkExtensionProperties>     properties      = enumerateInstanceExtensionProperties(context.getPlatformInterface(), DE_NULL);
712                 vector<string>                                          extensionNames;
713
714                 for (size_t ndx = 0; ndx < properties.size(); ndx++)
715                 {
716                         log << TestLog::Message << ndx << ": " << properties[ndx] << TestLog::EndMessage;
717
718                         extensionNames.push_back(properties[ndx].extensionName);
719                 }
720
721                 checkInstanceExtensions(results, extensionNames);
722                 CheckEnumerateInstanceExtensionPropertiesIncompleteResult()(context, results, properties.size());
723         }
724
725         {
726                 const vector<VkLayerProperties> layers  = enumerateInstanceLayerProperties(context.getPlatformInterface());
727
728                 for (vector<VkLayerProperties>::const_iterator layer = layers.begin(); layer != layers.end(); ++layer)
729                 {
730                         const ScopedLogSection                          section                         (log, layer->layerName, string("Layer: ") + layer->layerName);
731                         const vector<VkExtensionProperties>     properties                      = enumerateInstanceExtensionProperties(context.getPlatformInterface(), layer->layerName);
732                         vector<string>                                          extensionNames;
733
734                         for (size_t extNdx = 0; extNdx < properties.size(); extNdx++)
735                         {
736                                 log << TestLog::Message << extNdx << ": " << properties[extNdx] << TestLog::EndMessage;
737
738                                 extensionNames.push_back(properties[extNdx].extensionName);
739                         }
740
741                         checkInstanceExtensions(results, extensionNames);
742                         CheckEnumerateInstanceExtensionPropertiesIncompleteResult(layer->layerName)(context, results, properties.size());
743                 }
744         }
745
746         return tcu::TestStatus(results.getResult(), results.getMessage());
747 }
748
749 tcu::TestStatus enumerateDeviceLayers (Context& context)
750 {
751         TestLog&                                                log                     = context.getTestContext().getLog();
752         tcu::ResultCollector                    results         (log);
753         const vector<VkLayerProperties> properties      = enumerateDeviceLayerProperties(context.getInstanceInterface(), context.getPhysicalDevice());
754         vector<string>                                  layerNames;
755
756         for (size_t ndx = 0; ndx < properties.size(); ndx++)
757         {
758                 log << TestLog::Message << ndx << ": " << properties[ndx] << TestLog::EndMessage;
759
760                 layerNames.push_back(properties[ndx].layerName);
761         }
762
763         checkDuplicateLayers(results, layerNames);
764         CheckEnumerateDeviceLayerPropertiesIncompleteResult()(context, results, layerNames.size());
765
766         return tcu::TestStatus(results.getResult(), results.getMessage());
767 }
768
769 tcu::TestStatus enumerateDeviceExtensions (Context& context)
770 {
771         TestLog&                                log             = context.getTestContext().getLog();
772         tcu::ResultCollector    results (log);
773
774         {
775                 const ScopedLogSection                          section         (log, "Global", "Global Extensions");
776                 const vector<VkExtensionProperties>     properties      = enumerateDeviceExtensionProperties(context.getInstanceInterface(), context.getPhysicalDevice(), DE_NULL);
777                 vector<string>                                          extensionNames;
778
779                 for (size_t ndx = 0; ndx < properties.size(); ndx++)
780                 {
781                         log << TestLog::Message << ndx << ": " << properties[ndx] << TestLog::EndMessage;
782
783                         extensionNames.push_back(properties[ndx].extensionName);
784                 }
785
786                 checkDeviceExtensions(results, extensionNames);
787                 CheckEnumerateDeviceExtensionPropertiesIncompleteResult()(context, results, properties.size());
788         }
789
790         {
791                 const vector<VkLayerProperties> layers  = enumerateDeviceLayerProperties(context.getInstanceInterface(), context.getPhysicalDevice());
792
793                 for (vector<VkLayerProperties>::const_iterator layer = layers.begin(); layer != layers.end(); ++layer)
794                 {
795                         const ScopedLogSection                          section         (log, layer->layerName, string("Layer: ") + layer->layerName);
796                         const vector<VkExtensionProperties>     properties      = enumerateDeviceExtensionProperties(context.getInstanceInterface(), context.getPhysicalDevice(), layer->layerName);
797                         vector<string>                                          extensionNames;
798
799                         for (size_t extNdx = 0; extNdx < properties.size(); extNdx++)
800                         {
801                                 log << TestLog::Message << extNdx << ": " << properties[extNdx] << TestLog::EndMessage;
802
803
804                                 extensionNames.push_back(properties[extNdx].extensionName);
805                         }
806
807                         checkDeviceExtensions(results, extensionNames);
808                         CheckEnumerateDeviceExtensionPropertiesIncompleteResult(layer->layerName)(context, results, properties.size());
809                 }
810         }
811
812         return tcu::TestStatus(results.getResult(), results.getMessage());
813 }
814
815 #define VK_SIZE_OF(STRUCT, MEMBER)                                      (sizeof(((STRUCT*)0)->MEMBER))
816 #define OFFSET_TABLE_ENTRY(STRUCT, MEMBER)                      { (size_t)DE_OFFSET_OF(STRUCT, MEMBER), VK_SIZE_OF(STRUCT, MEMBER) }
817
818 tcu::TestStatus deviceFeatures (Context& context)
819 {
820         using namespace ValidateQueryBits;
821
822         TestLog&                                                log                     = context.getTestContext().getLog();
823         VkPhysicalDeviceFeatures*               features;
824         deUint8                                                 buffer[sizeof(VkPhysicalDeviceFeatures) + GUARD_SIZE];
825
826         const QueryMemberTableEntry featureOffsetTable[] =
827         {
828                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, robustBufferAccess),
829                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, fullDrawIndexUint32),
830                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, imageCubeArray),
831                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, independentBlend),
832                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, geometryShader),
833                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, tessellationShader),
834                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, sampleRateShading),
835                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, dualSrcBlend),
836                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, logicOp),
837                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, multiDrawIndirect),
838                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, drawIndirectFirstInstance),
839                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, depthClamp),
840                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, depthBiasClamp),
841                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, fillModeNonSolid),
842                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, depthBounds),
843                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, wideLines),
844                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, largePoints),
845                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, alphaToOne),
846                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, multiViewport),
847                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, samplerAnisotropy),
848                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, textureCompressionETC2),
849                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, textureCompressionASTC_LDR),
850                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, textureCompressionBC),
851                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, occlusionQueryPrecise),
852                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, pipelineStatisticsQuery),
853                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, vertexPipelineStoresAndAtomics),
854                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, fragmentStoresAndAtomics),
855                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderTessellationAndGeometryPointSize),
856                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderImageGatherExtended),
857                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderStorageImageExtendedFormats),
858                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderStorageImageMultisample),
859                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderStorageImageReadWithoutFormat),
860                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderStorageImageWriteWithoutFormat),
861                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderUniformBufferArrayDynamicIndexing),
862                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderSampledImageArrayDynamicIndexing),
863                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderStorageBufferArrayDynamicIndexing),
864                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderStorageImageArrayDynamicIndexing),
865                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderClipDistance),
866                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderCullDistance),
867                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderFloat64),
868                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderInt64),
869                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderInt16),
870                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderResourceResidency),
871                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, shaderResourceMinLod),
872                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, sparseBinding),
873                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, sparseResidencyBuffer),
874                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, sparseResidencyImage2D),
875                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, sparseResidencyImage3D),
876                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, sparseResidency2Samples),
877                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, sparseResidency4Samples),
878                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, sparseResidency8Samples),
879                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, sparseResidency16Samples),
880                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, sparseResidencyAliased),
881                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, variableMultisampleRate),
882                 OFFSET_TABLE_ENTRY(VkPhysicalDeviceFeatures, inheritedQueries),
883                 { 0, 0 }
884         };
885
886         deMemset(buffer, GUARD_VALUE, sizeof(buffer));
887         features = reinterpret_cast<VkPhysicalDeviceFeatures*>(buffer);
888
889         context.getInstanceInterface().getPhysicalDeviceFeatures(context.getPhysicalDevice(), features);
890
891         log << TestLog::Message << "device = " << context.getPhysicalDevice() << TestLog::EndMessage
892                 << TestLog::Message << *features << TestLog::EndMessage;
893
894         // Requirements and dependencies
895         {
896                 if (!features->robustBufferAccess)
897                         return tcu::TestStatus::fail("robustBufferAccess is not supported");
898
899                 // multiViewport requires MultiViewport (SPIR-V capability) support, which depends on Geometry
900                 if (features->multiViewport && !features->geometryShader)
901                         return tcu::TestStatus::fail("multiViewport is supported but geometryShader is not");
902         }
903
904         for (int ndx = 0; ndx < GUARD_SIZE; ndx++)
905         {
906                 if (buffer[ndx + sizeof(VkPhysicalDeviceFeatures)] != GUARD_VALUE)
907                 {
908                         log << TestLog::Message << "deviceFeatures - Guard offset " << ndx << " not valid" << TestLog::EndMessage;
909                         return tcu::TestStatus::fail("deviceFeatures buffer overflow");
910                 }
911         }
912
913         if (!validateInitComplete(context.getPhysicalDevice(), &InstanceInterface::getPhysicalDeviceFeatures, context.getInstanceInterface(), featureOffsetTable))
914         {
915                 log << TestLog::Message << "deviceFeatures - VkPhysicalDeviceFeatures not completely initialized" << TestLog::EndMessage;
916                 return tcu::TestStatus::fail("deviceFeatures incomplete initialization");
917         }
918
919         return tcu::TestStatus::pass("Query succeeded");
920 }
921
922 static const ValidateQueryBits::QueryMemberTableEntry s_physicalDevicePropertiesOffsetTable[] =
923 {
924         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, apiVersion),
925         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, driverVersion),
926         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, vendorID),
927         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, deviceID),
928         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, deviceType),
929         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, pipelineCacheUUID),
930         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxImageDimension1D),
931         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxImageDimension2D),
932         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxImageDimension3D),
933         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxImageDimensionCube),
934         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxImageArrayLayers),
935         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxTexelBufferElements),
936         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxUniformBufferRange),
937         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxStorageBufferRange),
938         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxPushConstantsSize),
939         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxMemoryAllocationCount),
940         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxSamplerAllocationCount),
941         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.bufferImageGranularity),
942         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.sparseAddressSpaceSize),
943         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxBoundDescriptorSets),
944         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxPerStageDescriptorSamplers),
945         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxPerStageDescriptorUniformBuffers),
946         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxPerStageDescriptorStorageBuffers),
947         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxPerStageDescriptorSampledImages),
948         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxPerStageDescriptorStorageImages),
949         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxPerStageDescriptorInputAttachments),
950         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxPerStageResources),
951         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxDescriptorSetSamplers),
952         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxDescriptorSetUniformBuffers),
953         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxDescriptorSetUniformBuffersDynamic),
954         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxDescriptorSetStorageBuffers),
955         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxDescriptorSetStorageBuffersDynamic),
956         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxDescriptorSetSampledImages),
957         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxDescriptorSetStorageImages),
958         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxDescriptorSetInputAttachments),
959         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxVertexInputAttributes),
960         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxVertexInputBindings),
961         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxVertexInputAttributeOffset),
962         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxVertexInputBindingStride),
963         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxVertexOutputComponents),
964         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxTessellationGenerationLevel),
965         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxTessellationPatchSize),
966         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxTessellationControlPerVertexInputComponents),
967         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxTessellationControlPerVertexOutputComponents),
968         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxTessellationControlPerPatchOutputComponents),
969         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxTessellationControlTotalOutputComponents),
970         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxTessellationEvaluationInputComponents),
971         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxTessellationEvaluationOutputComponents),
972         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxGeometryShaderInvocations),
973         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxGeometryInputComponents),
974         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxGeometryOutputComponents),
975         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxGeometryOutputVertices),
976         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxGeometryTotalOutputComponents),
977         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxFragmentInputComponents),
978         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxFragmentOutputAttachments),
979         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxFragmentDualSrcAttachments),
980         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxFragmentCombinedOutputResources),
981         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxComputeSharedMemorySize),
982         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxComputeWorkGroupCount[3]),
983         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxComputeWorkGroupInvocations),
984         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxComputeWorkGroupSize[3]),
985         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.subPixelPrecisionBits),
986         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.subTexelPrecisionBits),
987         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.mipmapPrecisionBits),
988         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxDrawIndexedIndexValue),
989         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxDrawIndirectCount),
990         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxSamplerLodBias),
991         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxSamplerAnisotropy),
992         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxViewports),
993         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxViewportDimensions[2]),
994         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.viewportBoundsRange[2]),
995         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.viewportSubPixelBits),
996         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.minMemoryMapAlignment),
997         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.minTexelBufferOffsetAlignment),
998         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.minUniformBufferOffsetAlignment),
999         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.minStorageBufferOffsetAlignment),
1000         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.minTexelOffset),
1001         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxTexelOffset),
1002         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.minTexelGatherOffset),
1003         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxTexelGatherOffset),
1004         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.minInterpolationOffset),
1005         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxInterpolationOffset),
1006         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.subPixelInterpolationOffsetBits),
1007         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxFramebufferWidth),
1008         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxFramebufferHeight),
1009         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxFramebufferLayers),
1010         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.framebufferColorSampleCounts),
1011         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.framebufferDepthSampleCounts),
1012         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.framebufferStencilSampleCounts),
1013         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.framebufferNoAttachmentsSampleCounts),
1014         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxColorAttachments),
1015         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.sampledImageColorSampleCounts),
1016         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.sampledImageIntegerSampleCounts),
1017         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.sampledImageDepthSampleCounts),
1018         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.sampledImageStencilSampleCounts),
1019         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.storageImageSampleCounts),
1020         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxSampleMaskWords),
1021         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.timestampComputeAndGraphics),
1022         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.timestampPeriod),
1023         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxClipDistances),
1024         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxCullDistances),
1025         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.maxCombinedClipAndCullDistances),
1026         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.discreteQueuePriorities),
1027         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.pointSizeRange[2]),
1028         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.lineWidthRange[2]),
1029         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.pointSizeGranularity),
1030         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.lineWidthGranularity),
1031         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.strictLines),
1032         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.standardSampleLocations),
1033         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.optimalBufferCopyOffsetAlignment),
1034         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.optimalBufferCopyRowPitchAlignment),
1035         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, limits.nonCoherentAtomSize),
1036         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, sparseProperties.residencyStandard2DBlockShape),
1037         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, sparseProperties.residencyStandard2DMultisampleBlockShape),
1038         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, sparseProperties.residencyStandard3DBlockShape),
1039         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, sparseProperties.residencyAlignedMipSize),
1040         OFFSET_TABLE_ENTRY(VkPhysicalDeviceProperties, sparseProperties.residencyNonResidentStrict),
1041         { 0, 0 }
1042 };
1043
1044 tcu::TestStatus deviceProperties (Context& context)
1045 {
1046         using namespace ValidateQueryBits;
1047
1048         TestLog&                                                log                     = context.getTestContext().getLog();
1049         VkPhysicalDeviceProperties*             props;
1050         VkPhysicalDeviceFeatures                features;
1051         deUint8                                                 buffer[sizeof(VkPhysicalDeviceProperties) + GUARD_SIZE];
1052
1053         props = reinterpret_cast<VkPhysicalDeviceProperties*>(buffer);
1054         deMemset(props, GUARD_VALUE, sizeof(buffer));
1055
1056         context.getInstanceInterface().getPhysicalDeviceProperties(context.getPhysicalDevice(), props);
1057         context.getInstanceInterface().getPhysicalDeviceFeatures(context.getPhysicalDevice(), &features);
1058
1059         log << TestLog::Message << "device = " << context.getPhysicalDevice() << TestLog::EndMessage
1060                 << TestLog::Message << *props << TestLog::EndMessage;
1061
1062         if (!validateFeatureLimits(props, &features, log))
1063                 return tcu::TestStatus::fail("deviceProperties - feature limits failed");
1064
1065         for (int ndx = 0; ndx < GUARD_SIZE; ndx++)
1066         {
1067                 if (buffer[ndx + sizeof(VkPhysicalDeviceProperties)] != GUARD_VALUE)
1068                 {
1069                         log << TestLog::Message << "deviceProperties - Guard offset " << ndx << " not valid" << TestLog::EndMessage;
1070                         return tcu::TestStatus::fail("deviceProperties buffer overflow");
1071                 }
1072         }
1073
1074         if (!validateInitComplete(context.getPhysicalDevice(), &InstanceInterface::getPhysicalDeviceProperties, context.getInstanceInterface(), s_physicalDevicePropertiesOffsetTable))
1075         {
1076                 log << TestLog::Message << "deviceProperties - VkPhysicalDeviceProperties not completely initialized" << TestLog::EndMessage;
1077                 return tcu::TestStatus::fail("deviceProperties incomplete initialization");
1078         }
1079
1080         // Check if deviceName string is properly terminated.
1081         if (deStrnlen(props->deviceName, VK_MAX_PHYSICAL_DEVICE_NAME_SIZE) == VK_MAX_PHYSICAL_DEVICE_NAME_SIZE)
1082         {
1083                 log << TestLog::Message << "deviceProperties - VkPhysicalDeviceProperties deviceName not properly initialized" << TestLog::EndMessage;
1084                 return tcu::TestStatus::fail("deviceProperties incomplete initialization");
1085         }
1086
1087         {
1088                 const ApiVersion deviceVersion = unpackVersion(props->apiVersion);
1089                 const ApiVersion deqpVersion = unpackVersion(VK_API_VERSION);
1090
1091                 if (deviceVersion.majorNum != deqpVersion.majorNum)
1092                 {
1093                         log << TestLog::Message << "deviceProperties - API Major Version " << deviceVersion.majorNum << " is not valid" << TestLog::EndMessage;
1094                         return tcu::TestStatus::fail("deviceProperties apiVersion not valid");
1095                 }
1096
1097                 if (deviceVersion.minorNum > deqpVersion.minorNum)
1098                 {
1099                         log << TestLog::Message << "deviceProperties - API Minor Version " << deviceVersion.minorNum << " is not valid for this version of dEQP" << TestLog::EndMessage;
1100                         return tcu::TestStatus::fail("deviceProperties apiVersion not valid");
1101                 }
1102         }
1103
1104         return tcu::TestStatus::pass("DeviceProperites query succeeded");
1105 }
1106
1107 tcu::TestStatus deviceQueueFamilyProperties (Context& context)
1108 {
1109         TestLog&                                                                log                                     = context.getTestContext().getLog();
1110         const vector<VkQueueFamilyProperties>   queueProperties         = getPhysicalDeviceQueueFamilyProperties(context.getInstanceInterface(), context.getPhysicalDevice());
1111
1112         log << TestLog::Message << "device = " << context.getPhysicalDevice() << TestLog::EndMessage;
1113
1114         for (size_t queueNdx = 0; queueNdx < queueProperties.size(); queueNdx++)
1115                 log << TestLog::Message << queueNdx << ": " << queueProperties[queueNdx] << TestLog::EndMessage;
1116
1117         return tcu::TestStatus::pass("Querying queue properties succeeded");
1118 }
1119
1120 tcu::TestStatus deviceMemoryProperties (Context& context)
1121 {
1122         TestLog&                                                        log                     = context.getTestContext().getLog();
1123         VkPhysicalDeviceMemoryProperties*       memProps;
1124         deUint8                                                         buffer[sizeof(VkPhysicalDeviceMemoryProperties) + GUARD_SIZE];
1125
1126         memProps = reinterpret_cast<VkPhysicalDeviceMemoryProperties*>(buffer);
1127         deMemset(buffer, GUARD_VALUE, sizeof(buffer));
1128
1129         context.getInstanceInterface().getPhysicalDeviceMemoryProperties(context.getPhysicalDevice(), memProps);
1130
1131         log << TestLog::Message << "device = " << context.getPhysicalDevice() << TestLog::EndMessage
1132                 << TestLog::Message << *memProps << TestLog::EndMessage;
1133
1134         for (deInt32 ndx = 0; ndx < GUARD_SIZE; ndx++)
1135         {
1136                 if (buffer[ndx + sizeof(VkPhysicalDeviceMemoryProperties)] != GUARD_VALUE)
1137                 {
1138                         log << TestLog::Message << "deviceMemoryProperties - Guard offset " << ndx << " not valid" << TestLog::EndMessage;
1139                         return tcu::TestStatus::fail("deviceMemoryProperties buffer overflow");
1140                 }
1141         }
1142
1143         if (memProps->memoryHeapCount >= VK_MAX_MEMORY_HEAPS)
1144         {
1145                 log << TestLog::Message << "deviceMemoryProperties - HeapCount larger than " << (deUint32)VK_MAX_MEMORY_HEAPS << TestLog::EndMessage;
1146                 return tcu::TestStatus::fail("deviceMemoryProperties HeapCount too large");
1147         }
1148
1149         if (memProps->memoryHeapCount == 1)
1150         {
1151                 if ((memProps->memoryHeaps[0].flags & VK_MEMORY_HEAP_DEVICE_LOCAL_BIT) == 0)
1152                 {
1153                         log << TestLog::Message << "deviceMemoryProperties - Single heap is not marked DEVICE_LOCAL" << TestLog::EndMessage;
1154                         return tcu::TestStatus::fail("deviceMemoryProperties invalid HeapFlags");
1155                 }
1156         }
1157
1158         const VkMemoryPropertyFlags validPropertyFlags[] =
1159         {
1160                 0,
1161                 VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT,
1162                 VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT|VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT|VK_MEMORY_PROPERTY_HOST_COHERENT_BIT,
1163                 VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT|VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT|VK_MEMORY_PROPERTY_HOST_CACHED_BIT,
1164                 VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT|VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT|VK_MEMORY_PROPERTY_HOST_CACHED_BIT|VK_MEMORY_PROPERTY_HOST_COHERENT_BIT,
1165                 VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT|VK_MEMORY_PROPERTY_HOST_COHERENT_BIT,
1166                 VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT|VK_MEMORY_PROPERTY_HOST_CACHED_BIT,
1167                 VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT|VK_MEMORY_PROPERTY_HOST_CACHED_BIT|VK_MEMORY_PROPERTY_HOST_COHERENT_BIT,
1168                 VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT|VK_MEMORY_PROPERTY_LAZILY_ALLOCATED_BIT
1169         };
1170
1171         const VkMemoryPropertyFlags requiredPropertyFlags[] =
1172         {
1173                 VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT|VK_MEMORY_PROPERTY_HOST_COHERENT_BIT
1174         };
1175
1176         bool requiredFlagsFound[DE_LENGTH_OF_ARRAY(requiredPropertyFlags)];
1177         std::fill(DE_ARRAY_BEGIN(requiredFlagsFound), DE_ARRAY_END(requiredFlagsFound), false);
1178
1179         for (deUint32 memoryNdx = 0; memoryNdx < memProps->memoryTypeCount; memoryNdx++)
1180         {
1181                 bool validPropTypeFound = false;
1182
1183                 if (memProps->memoryTypes[memoryNdx].heapIndex >= memProps->memoryHeapCount)
1184                 {
1185                         log << TestLog::Message << "deviceMemoryProperties - heapIndex " << memProps->memoryTypes[memoryNdx].heapIndex << " larger than heapCount" << TestLog::EndMessage;
1186                         return tcu::TestStatus::fail("deviceMemoryProperties - invalid heapIndex");
1187                 }
1188
1189                 const VkMemoryPropertyFlags bitsToCheck = VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT|VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT|VK_MEMORY_PROPERTY_HOST_COHERENT_BIT|VK_MEMORY_PROPERTY_HOST_CACHED_BIT|VK_MEMORY_PROPERTY_LAZILY_ALLOCATED_BIT;
1190
1191                 for (const VkMemoryPropertyFlags* requiredFlagsIterator = DE_ARRAY_BEGIN(requiredPropertyFlags); requiredFlagsIterator != DE_ARRAY_END(requiredPropertyFlags); requiredFlagsIterator++)
1192                         if ((memProps->memoryTypes[memoryNdx].propertyFlags & *requiredFlagsIterator) == *requiredFlagsIterator)
1193                                 requiredFlagsFound[requiredFlagsIterator - DE_ARRAY_BEGIN(requiredPropertyFlags)] = true;
1194
1195                 if (de::contains(DE_ARRAY_BEGIN(validPropertyFlags), DE_ARRAY_END(validPropertyFlags), memProps->memoryTypes[memoryNdx].propertyFlags & bitsToCheck))
1196                         validPropTypeFound = true;
1197
1198                 if (!validPropTypeFound)
1199                 {
1200                         log << TestLog::Message << "deviceMemoryProperties - propertyFlags "
1201                                 << memProps->memoryTypes[memoryNdx].propertyFlags << " not valid" << TestLog::EndMessage;
1202                         return tcu::TestStatus::fail("deviceMemoryProperties propertyFlags not valid");
1203                 }
1204
1205                 if (memProps->memoryTypes[memoryNdx].propertyFlags & VK_MEMORY_PROPERTY_DEVICE_LOCAL_BIT)
1206                 {
1207                         if ((memProps->memoryHeaps[memProps->memoryTypes[memoryNdx].heapIndex].flags & VK_MEMORY_HEAP_DEVICE_LOCAL_BIT) == 0)
1208                         {
1209                                 log << TestLog::Message << "deviceMemoryProperties - DEVICE_LOCAL memory type references heap which is not DEVICE_LOCAL" << TestLog::EndMessage;
1210                                 return tcu::TestStatus::fail("deviceMemoryProperties inconsistent memoryType and HeapFlags");
1211                         }
1212                 }
1213                 else
1214                 {
1215                         if (memProps->memoryHeaps[memProps->memoryTypes[memoryNdx].heapIndex].flags & VK_MEMORY_HEAP_DEVICE_LOCAL_BIT)
1216                         {
1217                                 log << TestLog::Message << "deviceMemoryProperties - non-DEVICE_LOCAL memory type references heap with is DEVICE_LOCAL" << TestLog::EndMessage;
1218                                 return tcu::TestStatus::fail("deviceMemoryProperties inconsistent memoryType and HeapFlags");
1219                         }
1220                 }
1221         }
1222
1223         bool* requiredFlagsFoundIterator = std::find(DE_ARRAY_BEGIN(requiredFlagsFound), DE_ARRAY_END(requiredFlagsFound), false);
1224         if (requiredFlagsFoundIterator != DE_ARRAY_END(requiredFlagsFound))
1225         {
1226                 DE_ASSERT(requiredFlagsFoundIterator - DE_ARRAY_BEGIN(requiredFlagsFound) <= DE_LENGTH_OF_ARRAY(requiredPropertyFlags));
1227                 log << TestLog::Message << "deviceMemoryProperties - required property flags "
1228                         << getMemoryPropertyFlagsStr(requiredPropertyFlags[requiredFlagsFoundIterator - DE_ARRAY_BEGIN(requiredFlagsFound)]) << " not found" << TestLog::EndMessage;
1229
1230                 return tcu::TestStatus::fail("deviceMemoryProperties propertyFlags not valid");
1231         }
1232
1233         return tcu::TestStatus::pass("Querying memory properties succeeded");
1234 }
1235
1236 // \todo [2016-01-22 pyry] Optimize by doing format -> flags mapping instead
1237
1238 VkFormatFeatureFlags getRequiredOptimalTilingFeatures (VkFormat format)
1239 {
1240         static const VkFormat s_requiredSampledImageBlitSrcFormats[] =
1241         {
1242                 VK_FORMAT_B4G4R4A4_UNORM_PACK16,
1243                 VK_FORMAT_R5G6B5_UNORM_PACK16,
1244                 VK_FORMAT_A1R5G5B5_UNORM_PACK16,
1245                 VK_FORMAT_R8_UNORM,
1246                 VK_FORMAT_R8_SNORM,
1247                 VK_FORMAT_R8_UINT,
1248                 VK_FORMAT_R8_SINT,
1249                 VK_FORMAT_R8G8_UNORM,
1250                 VK_FORMAT_R8G8_SNORM,
1251                 VK_FORMAT_R8G8_UINT,
1252                 VK_FORMAT_R8G8_SINT,
1253                 VK_FORMAT_R8G8B8A8_UNORM,
1254                 VK_FORMAT_R8G8B8A8_SNORM,
1255                 VK_FORMAT_R8G8B8A8_UINT,
1256                 VK_FORMAT_R8G8B8A8_SINT,
1257                 VK_FORMAT_R8G8B8A8_SRGB,
1258                 VK_FORMAT_B8G8R8A8_UNORM,
1259                 VK_FORMAT_B8G8R8A8_SRGB,
1260                 VK_FORMAT_A8B8G8R8_UNORM_PACK32,
1261                 VK_FORMAT_A8B8G8R8_SNORM_PACK32,
1262                 VK_FORMAT_A8B8G8R8_UINT_PACK32,
1263                 VK_FORMAT_A8B8G8R8_SINT_PACK32,
1264                 VK_FORMAT_A8B8G8R8_SRGB_PACK32,
1265                 VK_FORMAT_A2B10G10R10_UNORM_PACK32,
1266                 VK_FORMAT_A2B10G10R10_UINT_PACK32,
1267                 VK_FORMAT_R16_UINT,
1268                 VK_FORMAT_R16_SINT,
1269                 VK_FORMAT_R16_SFLOAT,
1270                 VK_FORMAT_R16G16_UINT,
1271                 VK_FORMAT_R16G16_SINT,
1272                 VK_FORMAT_R16G16_SFLOAT,
1273                 VK_FORMAT_R16G16B16A16_UINT,
1274                 VK_FORMAT_R16G16B16A16_SINT,
1275                 VK_FORMAT_R16G16B16A16_SFLOAT,
1276                 VK_FORMAT_R32_UINT,
1277                 VK_FORMAT_R32_SINT,
1278                 VK_FORMAT_R32_SFLOAT,
1279                 VK_FORMAT_R32G32_UINT,
1280                 VK_FORMAT_R32G32_SINT,
1281                 VK_FORMAT_R32G32_SFLOAT,
1282                 VK_FORMAT_R32G32B32A32_UINT,
1283                 VK_FORMAT_R32G32B32A32_SINT,
1284                 VK_FORMAT_R32G32B32A32_SFLOAT,
1285                 VK_FORMAT_B10G11R11_UFLOAT_PACK32,
1286                 VK_FORMAT_E5B9G9R9_UFLOAT_PACK32,
1287                 VK_FORMAT_D16_UNORM,
1288                 VK_FORMAT_D32_SFLOAT
1289         };
1290         static const VkFormat s_requiredSampledImageFilterLinearFormats[] =
1291         {
1292                 VK_FORMAT_B4G4R4A4_UNORM_PACK16,
1293                 VK_FORMAT_R5G6B5_UNORM_PACK16,
1294                 VK_FORMAT_A1R5G5B5_UNORM_PACK16,
1295                 VK_FORMAT_R8_UNORM,
1296                 VK_FORMAT_R8_SNORM,
1297                 VK_FORMAT_R8G8_UNORM,
1298                 VK_FORMAT_R8G8_SNORM,
1299                 VK_FORMAT_R8G8B8A8_UNORM,
1300                 VK_FORMAT_R8G8B8A8_SNORM,
1301                 VK_FORMAT_R8G8B8A8_SRGB,
1302                 VK_FORMAT_B8G8R8A8_UNORM,
1303                 VK_FORMAT_B8G8R8A8_SRGB,
1304                 VK_FORMAT_A8B8G8R8_UNORM_PACK32,
1305                 VK_FORMAT_A8B8G8R8_SNORM_PACK32,
1306                 VK_FORMAT_A8B8G8R8_SRGB_PACK32,
1307                 VK_FORMAT_A2B10G10R10_UNORM_PACK32,
1308                 VK_FORMAT_R16_SFLOAT,
1309                 VK_FORMAT_R16G16_SFLOAT,
1310                 VK_FORMAT_R16G16B16A16_SFLOAT,
1311                 VK_FORMAT_B10G11R11_UFLOAT_PACK32,
1312                 VK_FORMAT_E5B9G9R9_UFLOAT_PACK32,
1313         };
1314         static const VkFormat s_requiredStorageImageFormats[] =
1315         {
1316                 VK_FORMAT_R8G8B8A8_UNORM,
1317                 VK_FORMAT_R8G8B8A8_SNORM,
1318                 VK_FORMAT_R8G8B8A8_UINT,
1319                 VK_FORMAT_R8G8B8A8_SINT,
1320                 VK_FORMAT_R16G16B16A16_UINT,
1321                 VK_FORMAT_R16G16B16A16_SINT,
1322                 VK_FORMAT_R16G16B16A16_SFLOAT,
1323                 VK_FORMAT_R32_UINT,
1324                 VK_FORMAT_R32_SINT,
1325                 VK_FORMAT_R32_SFLOAT,
1326                 VK_FORMAT_R32G32_UINT,
1327                 VK_FORMAT_R32G32_SINT,
1328                 VK_FORMAT_R32G32_SFLOAT,
1329                 VK_FORMAT_R32G32B32A32_UINT,
1330                 VK_FORMAT_R32G32B32A32_SINT,
1331                 VK_FORMAT_R32G32B32A32_SFLOAT
1332         };
1333         static const VkFormat s_requiredStorageImageAtomicFormats[] =
1334         {
1335                 VK_FORMAT_R32_UINT,
1336                 VK_FORMAT_R32_SINT
1337         };
1338         static const VkFormat s_requiredColorAttachmentBlitDstFormats[] =
1339         {
1340                 VK_FORMAT_R5G6B5_UNORM_PACK16,
1341                 VK_FORMAT_A1R5G5B5_UNORM_PACK16,
1342                 VK_FORMAT_R8_UNORM,
1343                 VK_FORMAT_R8_UINT,
1344                 VK_FORMAT_R8_SINT,
1345                 VK_FORMAT_R8G8_UNORM,
1346                 VK_FORMAT_R8G8_UINT,
1347                 VK_FORMAT_R8G8_SINT,
1348                 VK_FORMAT_R8G8B8A8_UNORM,
1349                 VK_FORMAT_R8G8B8A8_UINT,
1350                 VK_FORMAT_R8G8B8A8_SINT,
1351                 VK_FORMAT_R8G8B8A8_SRGB,
1352                 VK_FORMAT_B8G8R8A8_UNORM,
1353                 VK_FORMAT_B8G8R8A8_SRGB,
1354                 VK_FORMAT_A8B8G8R8_UNORM_PACK32,
1355                 VK_FORMAT_A8B8G8R8_UINT_PACK32,
1356                 VK_FORMAT_A8B8G8R8_SINT_PACK32,
1357                 VK_FORMAT_A8B8G8R8_SRGB_PACK32,
1358                 VK_FORMAT_A2B10G10R10_UNORM_PACK32,
1359                 VK_FORMAT_A2B10G10R10_UINT_PACK32,
1360                 VK_FORMAT_R16_UINT,
1361                 VK_FORMAT_R16_SINT,
1362                 VK_FORMAT_R16_SFLOAT,
1363                 VK_FORMAT_R16G16_UINT,
1364                 VK_FORMAT_R16G16_SINT,
1365                 VK_FORMAT_R16G16_SFLOAT,
1366                 VK_FORMAT_R16G16B16A16_UINT,
1367                 VK_FORMAT_R16G16B16A16_SINT,
1368                 VK_FORMAT_R16G16B16A16_SFLOAT,
1369                 VK_FORMAT_R32_UINT,
1370                 VK_FORMAT_R32_SINT,
1371                 VK_FORMAT_R32_SFLOAT,
1372                 VK_FORMAT_R32G32_UINT,
1373                 VK_FORMAT_R32G32_SINT,
1374                 VK_FORMAT_R32G32_SFLOAT,
1375                 VK_FORMAT_R32G32B32A32_UINT,
1376                 VK_FORMAT_R32G32B32A32_SINT,
1377                 VK_FORMAT_R32G32B32A32_SFLOAT
1378         };
1379         static const VkFormat s_requiredColorAttachmentBlendFormats[] =
1380         {
1381                 VK_FORMAT_R5G6B5_UNORM_PACK16,
1382                 VK_FORMAT_A1R5G5B5_UNORM_PACK16,
1383                 VK_FORMAT_R8_UNORM,
1384                 VK_FORMAT_R8G8_UNORM,
1385                 VK_FORMAT_R8G8B8A8_UNORM,
1386                 VK_FORMAT_R8G8B8A8_SRGB,
1387                 VK_FORMAT_B8G8R8A8_UNORM,
1388                 VK_FORMAT_B8G8R8A8_SRGB,
1389                 VK_FORMAT_A8B8G8R8_UNORM_PACK32,
1390                 VK_FORMAT_A8B8G8R8_SRGB_PACK32,
1391                 VK_FORMAT_A2B10G10R10_UNORM_PACK32,
1392                 VK_FORMAT_R16_SFLOAT,
1393                 VK_FORMAT_R16G16_SFLOAT,
1394                 VK_FORMAT_R16G16B16A16_SFLOAT
1395         };
1396         static const VkFormat s_requiredDepthStencilAttachmentFormats[] =
1397         {
1398                 VK_FORMAT_D16_UNORM
1399         };
1400
1401         VkFormatFeatureFlags    flags   = (VkFormatFeatureFlags)0;
1402
1403         if (de::contains(DE_ARRAY_BEGIN(s_requiredSampledImageBlitSrcFormats), DE_ARRAY_END(s_requiredSampledImageBlitSrcFormats), format))
1404                 flags |= VK_FORMAT_FEATURE_SAMPLED_IMAGE_BIT|VK_FORMAT_FEATURE_BLIT_SRC_BIT;
1405
1406         if (de::contains(DE_ARRAY_BEGIN(s_requiredSampledImageFilterLinearFormats), DE_ARRAY_END(s_requiredSampledImageFilterLinearFormats), format))
1407                 flags |= VK_FORMAT_FEATURE_SAMPLED_IMAGE_FILTER_LINEAR_BIT;
1408
1409         if (de::contains(DE_ARRAY_BEGIN(s_requiredStorageImageFormats), DE_ARRAY_END(s_requiredStorageImageFormats), format))
1410                 flags |= VK_FORMAT_FEATURE_STORAGE_IMAGE_BIT;
1411
1412         if (de::contains(DE_ARRAY_BEGIN(s_requiredStorageImageAtomicFormats), DE_ARRAY_END(s_requiredStorageImageAtomicFormats), format))
1413                 flags |= VK_FORMAT_FEATURE_STORAGE_IMAGE_ATOMIC_BIT;
1414
1415         if (de::contains(DE_ARRAY_BEGIN(s_requiredColorAttachmentBlitDstFormats), DE_ARRAY_END(s_requiredColorAttachmentBlitDstFormats), format))
1416                 flags |= VK_FORMAT_FEATURE_COLOR_ATTACHMENT_BIT|VK_FORMAT_FEATURE_BLIT_DST_BIT;
1417
1418         if (de::contains(DE_ARRAY_BEGIN(s_requiredColorAttachmentBlendFormats), DE_ARRAY_END(s_requiredColorAttachmentBlendFormats), format))
1419                 flags |= VK_FORMAT_FEATURE_COLOR_ATTACHMENT_BLEND_BIT;
1420
1421         if (de::contains(DE_ARRAY_BEGIN(s_requiredDepthStencilAttachmentFormats), DE_ARRAY_END(s_requiredDepthStencilAttachmentFormats), format))
1422                 flags |= VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT;
1423
1424         return flags;
1425 }
1426
1427 VkFormatFeatureFlags getRequiredBufferFeatures (VkFormat format)
1428 {
1429         static const VkFormat s_requiredVertexBufferFormats[] =
1430         {
1431                 VK_FORMAT_R8_UNORM,
1432                 VK_FORMAT_R8_SNORM,
1433                 VK_FORMAT_R8_UINT,
1434                 VK_FORMAT_R8_SINT,
1435                 VK_FORMAT_R8G8_UNORM,
1436                 VK_FORMAT_R8G8_SNORM,
1437                 VK_FORMAT_R8G8_UINT,
1438                 VK_FORMAT_R8G8_SINT,
1439                 VK_FORMAT_R8G8B8A8_UNORM,
1440                 VK_FORMAT_R8G8B8A8_SNORM,
1441                 VK_FORMAT_R8G8B8A8_UINT,
1442                 VK_FORMAT_R8G8B8A8_SINT,
1443                 VK_FORMAT_B8G8R8A8_UNORM,
1444                 VK_FORMAT_A8B8G8R8_UNORM_PACK32,
1445                 VK_FORMAT_A8B8G8R8_SNORM_PACK32,
1446                 VK_FORMAT_A8B8G8R8_UINT_PACK32,
1447                 VK_FORMAT_A8B8G8R8_SINT_PACK32,
1448                 VK_FORMAT_A2B10G10R10_UNORM_PACK32,
1449                 VK_FORMAT_R16_UNORM,
1450                 VK_FORMAT_R16_SNORM,
1451                 VK_FORMAT_R16_UINT,
1452                 VK_FORMAT_R16_SINT,
1453                 VK_FORMAT_R16_SFLOAT,
1454                 VK_FORMAT_R16G16_UNORM,
1455                 VK_FORMAT_R16G16_SNORM,
1456                 VK_FORMAT_R16G16_UINT,
1457                 VK_FORMAT_R16G16_SINT,
1458                 VK_FORMAT_R16G16_SFLOAT,
1459                 VK_FORMAT_R16G16B16A16_UNORM,
1460                 VK_FORMAT_R16G16B16A16_SNORM,
1461                 VK_FORMAT_R16G16B16A16_UINT,
1462                 VK_FORMAT_R16G16B16A16_SINT,
1463                 VK_FORMAT_R16G16B16A16_SFLOAT,
1464                 VK_FORMAT_R32_UINT,
1465                 VK_FORMAT_R32_SINT,
1466                 VK_FORMAT_R32_SFLOAT,
1467                 VK_FORMAT_R32G32_UINT,
1468                 VK_FORMAT_R32G32_SINT,
1469                 VK_FORMAT_R32G32_SFLOAT,
1470                 VK_FORMAT_R32G32B32_UINT,
1471                 VK_FORMAT_R32G32B32_SINT,
1472                 VK_FORMAT_R32G32B32_SFLOAT,
1473                 VK_FORMAT_R32G32B32A32_UINT,
1474                 VK_FORMAT_R32G32B32A32_SINT,
1475                 VK_FORMAT_R32G32B32A32_SFLOAT
1476         };
1477         static const VkFormat s_requiredUniformTexelBufferFormats[] =
1478         {
1479                 VK_FORMAT_R8_UNORM,
1480                 VK_FORMAT_R8_SNORM,
1481                 VK_FORMAT_R8_UINT,
1482                 VK_FORMAT_R8_SINT,
1483                 VK_FORMAT_R8G8_UNORM,
1484                 VK_FORMAT_R8G8_SNORM,
1485                 VK_FORMAT_R8G8_UINT,
1486                 VK_FORMAT_R8G8_SINT,
1487                 VK_FORMAT_R8G8B8A8_UNORM,
1488                 VK_FORMAT_R8G8B8A8_SNORM,
1489                 VK_FORMAT_R8G8B8A8_UINT,
1490                 VK_FORMAT_R8G8B8A8_SINT,
1491                 VK_FORMAT_B8G8R8A8_UNORM,
1492                 VK_FORMAT_A8B8G8R8_UNORM_PACK32,
1493                 VK_FORMAT_A8B8G8R8_SNORM_PACK32,
1494                 VK_FORMAT_A8B8G8R8_UINT_PACK32,
1495                 VK_FORMAT_A8B8G8R8_SINT_PACK32,
1496                 VK_FORMAT_A2B10G10R10_UNORM_PACK32,
1497                 VK_FORMAT_A2B10G10R10_UINT_PACK32,
1498                 VK_FORMAT_R16_UINT,
1499                 VK_FORMAT_R16_SINT,
1500                 VK_FORMAT_R16_SFLOAT,
1501                 VK_FORMAT_R16G16_UINT,
1502                 VK_FORMAT_R16G16_SINT,
1503                 VK_FORMAT_R16G16_SFLOAT,
1504                 VK_FORMAT_R16G16B16A16_UINT,
1505                 VK_FORMAT_R16G16B16A16_SINT,
1506                 VK_FORMAT_R16G16B16A16_SFLOAT,
1507                 VK_FORMAT_R32_UINT,
1508                 VK_FORMAT_R32_SINT,
1509                 VK_FORMAT_R32_SFLOAT,
1510                 VK_FORMAT_R32G32_UINT,
1511                 VK_FORMAT_R32G32_SINT,
1512                 VK_FORMAT_R32G32_SFLOAT,
1513                 VK_FORMAT_R32G32B32A32_UINT,
1514                 VK_FORMAT_R32G32B32A32_SINT,
1515                 VK_FORMAT_R32G32B32A32_SFLOAT,
1516                 VK_FORMAT_B10G11R11_UFLOAT_PACK32
1517         };
1518         static const VkFormat s_requiredStorageTexelBufferFormats[] =
1519         {
1520                 VK_FORMAT_R8G8B8A8_UNORM,
1521                 VK_FORMAT_R8G8B8A8_SNORM,
1522                 VK_FORMAT_R8G8B8A8_UINT,
1523                 VK_FORMAT_R8G8B8A8_SINT,
1524                 VK_FORMAT_A8B8G8R8_UNORM_PACK32,
1525                 VK_FORMAT_A8B8G8R8_SNORM_PACK32,
1526                 VK_FORMAT_A8B8G8R8_UINT_PACK32,
1527                 VK_FORMAT_A8B8G8R8_SINT_PACK32,
1528                 VK_FORMAT_R16G16B16A16_UINT,
1529                 VK_FORMAT_R16G16B16A16_SINT,
1530                 VK_FORMAT_R16G16B16A16_SFLOAT,
1531                 VK_FORMAT_R32_UINT,
1532                 VK_FORMAT_R32_SINT,
1533                 VK_FORMAT_R32_SFLOAT,
1534                 VK_FORMAT_R32G32_UINT,
1535                 VK_FORMAT_R32G32_SINT,
1536                 VK_FORMAT_R32G32_SFLOAT,
1537                 VK_FORMAT_R32G32B32A32_UINT,
1538                 VK_FORMAT_R32G32B32A32_SINT,
1539                 VK_FORMAT_R32G32B32A32_SFLOAT
1540         };
1541         static const VkFormat s_requiredStorageTexelBufferAtomicFormats[] =
1542         {
1543                 VK_FORMAT_R32_UINT,
1544                 VK_FORMAT_R32_SINT
1545         };
1546
1547         VkFormatFeatureFlags    flags   = (VkFormatFeatureFlags)0;
1548
1549         if (de::contains(DE_ARRAY_BEGIN(s_requiredVertexBufferFormats), DE_ARRAY_END(s_requiredVertexBufferFormats), format))
1550                 flags |= VK_FORMAT_FEATURE_VERTEX_BUFFER_BIT;
1551
1552         if (de::contains(DE_ARRAY_BEGIN(s_requiredUniformTexelBufferFormats), DE_ARRAY_END(s_requiredUniformTexelBufferFormats), format))
1553                 flags |= VK_FORMAT_FEATURE_UNIFORM_TEXEL_BUFFER_BIT;
1554
1555         if (de::contains(DE_ARRAY_BEGIN(s_requiredStorageTexelBufferFormats), DE_ARRAY_END(s_requiredStorageTexelBufferFormats), format))
1556                 flags |= VK_FORMAT_FEATURE_STORAGE_TEXEL_BUFFER_BIT;
1557
1558         if (de::contains(DE_ARRAY_BEGIN(s_requiredStorageTexelBufferAtomicFormats), DE_ARRAY_END(s_requiredStorageTexelBufferAtomicFormats), format))
1559                 flags |= VK_FORMAT_FEATURE_STORAGE_TEXEL_BUFFER_ATOMIC_BIT;
1560
1561         return flags;
1562 }
1563
1564 tcu::TestStatus formatProperties (Context& context, VkFormat format)
1565 {
1566         TestLog&                                        log                             = context.getTestContext().getLog();
1567         const VkFormatProperties        properties              = getPhysicalDeviceFormatProperties(context.getInstanceInterface(), context.getPhysicalDevice(), format);
1568         bool                                            allOk                   = true;
1569
1570         const struct
1571         {
1572                 VkFormatFeatureFlags VkFormatProperties::*      field;
1573                 const char*                                                                     fieldName;
1574                 VkFormatFeatureFlags                                            requiredFeatures;
1575         } fields[] =
1576         {
1577                 { &VkFormatProperties::linearTilingFeatures,    "linearTilingFeatures",         (VkFormatFeatureFlags)0                                         },
1578                 { &VkFormatProperties::optimalTilingFeatures,   "optimalTilingFeatures",        getRequiredOptimalTilingFeatures(format)        },
1579                 { &VkFormatProperties::bufferFeatures,                  "buffeFeatures",                        getRequiredBufferFeatures(format)                       }
1580         };
1581
1582         log << TestLog::Message << properties << TestLog::EndMessage;
1583
1584         for (int fieldNdx = 0; fieldNdx < DE_LENGTH_OF_ARRAY(fields); fieldNdx++)
1585         {
1586                 const char* const                               fieldName       = fields[fieldNdx].fieldName;
1587                 const VkFormatFeatureFlags              supported       = properties.*fields[fieldNdx].field;
1588                 const VkFormatFeatureFlags              required        = fields[fieldNdx].requiredFeatures;
1589
1590                 if ((supported & required) != required)
1591                 {
1592                         log << TestLog::Message << "ERROR in " << fieldName << ":\n"
1593                                                                     << "  required: " << getFormatFeatureFlagsStr(required) << "\n  "
1594                                                                         << "  missing: " << getFormatFeatureFlagsStr(~supported & required)
1595                                 << TestLog::EndMessage;
1596                         allOk = false;
1597                 }
1598         }
1599
1600         if (allOk)
1601                 return tcu::TestStatus::pass("Query and validation passed");
1602         else
1603                 return tcu::TestStatus::fail("Required features not supported");
1604 }
1605
1606 bool optimalTilingFeaturesSupported (Context& context, VkFormat format, VkFormatFeatureFlags features)
1607 {
1608         const VkFormatProperties        properties      = getPhysicalDeviceFormatProperties(context.getInstanceInterface(), context.getPhysicalDevice(), format);
1609
1610         return (properties.optimalTilingFeatures & features) == features;
1611 }
1612
1613 bool optimalTilingFeaturesSupportedForAll (Context& context, const VkFormat* begin, const VkFormat* end, VkFormatFeatureFlags features)
1614 {
1615         for (const VkFormat* cur = begin; cur != end; ++cur)
1616         {
1617                 if (!optimalTilingFeaturesSupported(context, *cur, features))
1618                         return false;
1619         }
1620
1621         return true;
1622 }
1623
1624 tcu::TestStatus testDepthStencilSupported (Context& context)
1625 {
1626         if (!optimalTilingFeaturesSupported(context, VK_FORMAT_X8_D24_UNORM_PACK32, VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT) &&
1627                 !optimalTilingFeaturesSupported(context, VK_FORMAT_D32_SFLOAT, VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT))
1628                 return tcu::TestStatus::fail("Doesn't support one of VK_FORMAT_X8_D24_UNORM_PACK32 or VK_FORMAT_D32_SFLOAT");
1629
1630         if (!optimalTilingFeaturesSupported(context, VK_FORMAT_D24_UNORM_S8_UINT, VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT) &&
1631                 !optimalTilingFeaturesSupported(context, VK_FORMAT_D32_SFLOAT_S8_UINT, VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT))
1632                 return tcu::TestStatus::fail("Doesn't support one of VK_FORMAT_D24_UNORM_S8_UINT or VK_FORMAT_D32_SFLOAT_S8_UINT");
1633
1634         return tcu::TestStatus::pass("Required depth/stencil formats supported");
1635 }
1636
1637 tcu::TestStatus testCompressedFormatsSupported (Context& context)
1638 {
1639         static const VkFormat s_allBcFormats[] =
1640         {
1641                 VK_FORMAT_BC1_RGB_UNORM_BLOCK,
1642                 VK_FORMAT_BC1_RGB_SRGB_BLOCK,
1643                 VK_FORMAT_BC1_RGBA_UNORM_BLOCK,
1644                 VK_FORMAT_BC1_RGBA_SRGB_BLOCK,
1645                 VK_FORMAT_BC2_UNORM_BLOCK,
1646                 VK_FORMAT_BC2_SRGB_BLOCK,
1647                 VK_FORMAT_BC3_UNORM_BLOCK,
1648                 VK_FORMAT_BC3_SRGB_BLOCK,
1649                 VK_FORMAT_BC4_UNORM_BLOCK,
1650                 VK_FORMAT_BC4_SNORM_BLOCK,
1651                 VK_FORMAT_BC5_UNORM_BLOCK,
1652                 VK_FORMAT_BC5_SNORM_BLOCK,
1653                 VK_FORMAT_BC6H_UFLOAT_BLOCK,
1654                 VK_FORMAT_BC6H_SFLOAT_BLOCK,
1655                 VK_FORMAT_BC7_UNORM_BLOCK,
1656                 VK_FORMAT_BC7_SRGB_BLOCK,
1657         };
1658         static const VkFormat s_allEtc2Formats[] =
1659         {
1660                 VK_FORMAT_ETC2_R8G8B8_UNORM_BLOCK,
1661                 VK_FORMAT_ETC2_R8G8B8_SRGB_BLOCK,
1662                 VK_FORMAT_ETC2_R8G8B8A1_UNORM_BLOCK,
1663                 VK_FORMAT_ETC2_R8G8B8A1_SRGB_BLOCK,
1664                 VK_FORMAT_ETC2_R8G8B8A8_UNORM_BLOCK,
1665                 VK_FORMAT_ETC2_R8G8B8A8_SRGB_BLOCK,
1666                 VK_FORMAT_EAC_R11_UNORM_BLOCK,
1667                 VK_FORMAT_EAC_R11_SNORM_BLOCK,
1668                 VK_FORMAT_EAC_R11G11_UNORM_BLOCK,
1669                 VK_FORMAT_EAC_R11G11_SNORM_BLOCK,
1670         };
1671         static const VkFormat s_allAstcLdrFormats[] =
1672         {
1673                 VK_FORMAT_ASTC_4x4_UNORM_BLOCK,
1674                 VK_FORMAT_ASTC_4x4_SRGB_BLOCK,
1675                 VK_FORMAT_ASTC_5x4_UNORM_BLOCK,
1676                 VK_FORMAT_ASTC_5x4_SRGB_BLOCK,
1677                 VK_FORMAT_ASTC_5x5_UNORM_BLOCK,
1678                 VK_FORMAT_ASTC_5x5_SRGB_BLOCK,
1679                 VK_FORMAT_ASTC_6x5_UNORM_BLOCK,
1680                 VK_FORMAT_ASTC_6x5_SRGB_BLOCK,
1681                 VK_FORMAT_ASTC_6x6_UNORM_BLOCK,
1682                 VK_FORMAT_ASTC_6x6_SRGB_BLOCK,
1683                 VK_FORMAT_ASTC_8x5_UNORM_BLOCK,
1684                 VK_FORMAT_ASTC_8x5_SRGB_BLOCK,
1685                 VK_FORMAT_ASTC_8x6_UNORM_BLOCK,
1686                 VK_FORMAT_ASTC_8x6_SRGB_BLOCK,
1687                 VK_FORMAT_ASTC_8x8_UNORM_BLOCK,
1688                 VK_FORMAT_ASTC_8x8_SRGB_BLOCK,
1689                 VK_FORMAT_ASTC_10x5_UNORM_BLOCK,
1690                 VK_FORMAT_ASTC_10x5_SRGB_BLOCK,
1691                 VK_FORMAT_ASTC_10x6_UNORM_BLOCK,
1692                 VK_FORMAT_ASTC_10x6_SRGB_BLOCK,
1693                 VK_FORMAT_ASTC_10x8_UNORM_BLOCK,
1694                 VK_FORMAT_ASTC_10x8_SRGB_BLOCK,
1695                 VK_FORMAT_ASTC_10x10_UNORM_BLOCK,
1696                 VK_FORMAT_ASTC_10x10_SRGB_BLOCK,
1697                 VK_FORMAT_ASTC_12x10_UNORM_BLOCK,
1698                 VK_FORMAT_ASTC_12x10_SRGB_BLOCK,
1699                 VK_FORMAT_ASTC_12x12_UNORM_BLOCK,
1700                 VK_FORMAT_ASTC_12x12_SRGB_BLOCK,
1701         };
1702
1703         static const struct
1704         {
1705                 const char*                                                                     setName;
1706                 const char*                                                                     featureName;
1707                 const VkBool32 VkPhysicalDeviceFeatures::*      feature;
1708                 const VkFormat*                                                         formatsBegin;
1709                 const VkFormat*                                                         formatsEnd;
1710         } s_compressedFormatSets[] =
1711         {
1712                 { "BC",                 "textureCompressionBC",                 &VkPhysicalDeviceFeatures::textureCompressionBC,                DE_ARRAY_BEGIN(s_allBcFormats),                 DE_ARRAY_END(s_allBcFormats)            },
1713                 { "ETC2",               "textureCompressionETC2",               &VkPhysicalDeviceFeatures::textureCompressionETC2,              DE_ARRAY_BEGIN(s_allEtc2Formats),               DE_ARRAY_END(s_allEtc2Formats)          },
1714                 { "ASTC LDR",   "textureCompressionASTC_LDR",   &VkPhysicalDeviceFeatures::textureCompressionASTC_LDR,  DE_ARRAY_BEGIN(s_allAstcLdrFormats),    DE_ARRAY_END(s_allAstcLdrFormats)       },
1715         };
1716
1717         TestLog&                                                log                                     = context.getTestContext().getLog();
1718         const VkPhysicalDeviceFeatures& features                        = context.getDeviceFeatures();
1719         int                                                             numSupportedSets        = 0;
1720         int                                                             numErrors                       = 0;
1721         int                                                             numWarnings                     = 0;
1722
1723         for (int setNdx = 0; setNdx < DE_LENGTH_OF_ARRAY(s_compressedFormatSets); ++setNdx)
1724         {
1725                 const char* const       setName                 = s_compressedFormatSets[setNdx].setName;
1726                 const char* const       featureName             = s_compressedFormatSets[setNdx].featureName;
1727                 const bool                      featureBitSet   = features.*s_compressedFormatSets[setNdx].feature == VK_TRUE;
1728                 const bool                      allSupported    = optimalTilingFeaturesSupportedForAll(context,
1729                                                                                                                                                                    s_compressedFormatSets[setNdx].formatsBegin,
1730                                                                                                                                                                    s_compressedFormatSets[setNdx].formatsEnd,
1731                                                                                                                                                                    VK_FORMAT_FEATURE_SAMPLED_IMAGE_BIT);
1732
1733                 if (featureBitSet && !allSupported)
1734                 {
1735                         log << TestLog::Message << "ERROR: " << featureName << " = VK_TRUE but " << setName << " formats not supported" << TestLog::EndMessage;
1736                         numErrors += 1;
1737                 }
1738                 else if (allSupported && !featureBitSet)
1739                 {
1740                         log << TestLog::Message << "WARNING: " << setName << " formats supported but " << featureName << " = VK_FALSE" << TestLog::EndMessage;
1741                         numWarnings += 1;
1742                 }
1743
1744                 if (featureBitSet)
1745                 {
1746                         log << TestLog::Message << "All " << setName << " formats are supported" << TestLog::EndMessage;
1747                         numSupportedSets += 1;
1748                 }
1749                 else
1750                         log << TestLog::Message << setName << " formats are not supported" << TestLog::EndMessage;
1751         }
1752
1753         if (numSupportedSets == 0)
1754         {
1755                 log << TestLog::Message << "No compressed format sets supported" << TestLog::EndMessage;
1756                 numErrors += 1;
1757         }
1758
1759         if (numErrors > 0)
1760                 return tcu::TestStatus::fail("Compressed format support not valid");
1761         else if (numWarnings > 0)
1762                 return tcu::TestStatus(QP_TEST_RESULT_QUALITY_WARNING, "Found inconsistencies in compressed format support");
1763         else
1764                 return tcu::TestStatus::pass("Compressed texture format support is valid");
1765 }
1766
1767 void createFormatTests (tcu::TestCaseGroup* testGroup)
1768 {
1769         DE_STATIC_ASSERT(VK_FORMAT_UNDEFINED == 0);
1770
1771         for (deUint32 formatNdx = VK_FORMAT_UNDEFINED+1; formatNdx < VK_CORE_FORMAT_LAST; ++formatNdx)
1772         {
1773                 const VkFormat          format                  = (VkFormat)formatNdx;
1774                 const char* const       enumName                = getFormatName(format);
1775                 const string            caseName                = de::toLower(string(enumName).substr(10));
1776
1777                 addFunctionCase(testGroup, caseName, enumName, formatProperties, format);
1778         }
1779
1780         addFunctionCase(testGroup, "depth_stencil",                     "",     testDepthStencilSupported);
1781         addFunctionCase(testGroup, "compressed_formats",        "",     testCompressedFormatsSupported);
1782 }
1783
1784 VkImageUsageFlags getValidImageUsageFlags (const VkFormatFeatureFlags supportedFeatures, const bool useKhrMaintenance1Semantics)
1785 {
1786         VkImageUsageFlags       flags   = (VkImageUsageFlags)0;
1787
1788         if (useKhrMaintenance1Semantics)
1789         {
1790                 if ((supportedFeatures & VK_FORMAT_FEATURE_TRANSFER_SRC_BIT_KHR) != 0)
1791                         flags |= VK_IMAGE_USAGE_TRANSFER_SRC_BIT;
1792
1793                 if ((supportedFeatures & VK_FORMAT_FEATURE_TRANSFER_DST_BIT_KHR) != 0)
1794                         flags |= VK_IMAGE_USAGE_TRANSFER_DST_BIT;
1795         }
1796         else
1797         {
1798                 // If format is supported at all, it must be valid transfer src+dst
1799                 if (supportedFeatures != 0)
1800                         flags |= VK_IMAGE_USAGE_TRANSFER_SRC_BIT|VK_IMAGE_USAGE_TRANSFER_DST_BIT;
1801         }
1802
1803         if ((supportedFeatures & VK_FORMAT_FEATURE_SAMPLED_IMAGE_BIT) != 0)
1804                 flags |= VK_IMAGE_USAGE_SAMPLED_BIT;
1805
1806         if ((supportedFeatures & VK_FORMAT_FEATURE_COLOR_ATTACHMENT_BIT) != 0)
1807                 flags |= VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT|VK_IMAGE_USAGE_TRANSIENT_ATTACHMENT_BIT|VK_IMAGE_USAGE_INPUT_ATTACHMENT_BIT;
1808
1809         if ((supportedFeatures & VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT) != 0)
1810                 flags |= VK_IMAGE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT;
1811
1812         if ((supportedFeatures & VK_FORMAT_FEATURE_STORAGE_IMAGE_BIT) != 0)
1813                 flags |= VK_IMAGE_USAGE_STORAGE_BIT;
1814
1815         return flags;
1816 }
1817
1818 bool isValidImageUsageFlagCombination (VkImageUsageFlags usage)
1819 {
1820         if ((usage & VK_IMAGE_USAGE_TRANSIENT_ATTACHMENT_BIT) != 0)
1821         {
1822                 const VkImageUsageFlags         allowedFlags    = VK_IMAGE_USAGE_TRANSIENT_ATTACHMENT_BIT
1823                                                                                                         | VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT
1824                                                                                                         | VK_IMAGE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT
1825                                                                                                         | VK_IMAGE_USAGE_INPUT_ATTACHMENT_BIT;
1826
1827                 // Only *_ATTACHMENT_BIT flags can be combined with TRANSIENT_ATTACHMENT_BIT
1828                 if ((usage & ~allowedFlags) != 0)
1829                         return false;
1830
1831                 // TRANSIENT_ATTACHMENT_BIT is not valid without COLOR_ or DEPTH_STENCIL_ATTACHMENT_BIT
1832                 if ((usage & (VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT|VK_IMAGE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT)) == 0)
1833                         return false;
1834         }
1835
1836         return usage != 0;
1837 }
1838
1839 VkImageCreateFlags getValidImageCreateFlags (const VkPhysicalDeviceFeatures& deviceFeatures, VkFormat, VkFormatFeatureFlags, VkImageType type, VkImageUsageFlags usage)
1840 {
1841         VkImageCreateFlags      flags   = (VkImageCreateFlags)0;
1842
1843         if ((usage & VK_IMAGE_USAGE_SAMPLED_BIT) != 0)
1844         {
1845                 flags |= VK_IMAGE_CREATE_MUTABLE_FORMAT_BIT;
1846
1847                 if (type == VK_IMAGE_TYPE_2D)
1848                         flags |= VK_IMAGE_CREATE_CUBE_COMPATIBLE_BIT;
1849         }
1850
1851         if ((usage & (VK_IMAGE_USAGE_SAMPLED_BIT|VK_IMAGE_USAGE_STORAGE_BIT)) != 0 &&
1852                 (usage & VK_IMAGE_USAGE_TRANSIENT_ATTACHMENT_BIT) == 0)
1853         {
1854                 if (deviceFeatures.sparseBinding)
1855                         flags |= VK_IMAGE_CREATE_SPARSE_BINDING_BIT|VK_IMAGE_CREATE_SPARSE_RESIDENCY_BIT;
1856
1857                 if (deviceFeatures.sparseResidencyAliased)
1858                         flags |= VK_IMAGE_CREATE_SPARSE_ALIASED_BIT;
1859         }
1860
1861         return flags;
1862 }
1863
1864 bool isValidImageCreateFlagCombination (VkImageCreateFlags)
1865 {
1866         return true;
1867 }
1868
1869 bool isRequiredImageParameterCombination (const VkPhysicalDeviceFeatures&       deviceFeatures,
1870                                                                                   const VkFormat                                        format,
1871                                                                                   const VkFormatProperties&                     formatProperties,
1872                                                                                   const VkImageType                                     imageType,
1873                                                                                   const VkImageTiling                           imageTiling,
1874                                                                                   const VkImageUsageFlags                       usageFlags,
1875                                                                                   const VkImageCreateFlags                      createFlags)
1876 {
1877         DE_UNREF(deviceFeatures);
1878         DE_UNREF(formatProperties);
1879         DE_UNREF(createFlags);
1880
1881         // Linear images can have arbitrary limitations
1882         if (imageTiling == VK_IMAGE_TILING_LINEAR)
1883                 return false;
1884
1885         // Support for other usages for compressed formats is optional
1886         if (isCompressedFormat(format) &&
1887                 (usageFlags & ~(VK_IMAGE_USAGE_SAMPLED_BIT|VK_IMAGE_USAGE_TRANSFER_SRC_BIT|VK_IMAGE_USAGE_TRANSFER_DST_BIT)) != 0)
1888                 return false;
1889
1890         // Support for 1D, and sliced 3D compressed formats is optional
1891         if (isCompressedFormat(format) && (imageType == VK_IMAGE_TYPE_1D || imageType == VK_IMAGE_TYPE_3D))
1892                 return false;
1893
1894         // Support for 1D and 3D depth/stencil textures is optional
1895         if (isDepthStencilFormat(format) && (imageType == VK_IMAGE_TYPE_1D || imageType == VK_IMAGE_TYPE_3D))
1896                 return false;
1897
1898         DE_ASSERT(deviceFeatures.sparseBinding || (createFlags & (VK_IMAGE_CREATE_SPARSE_BINDING_BIT|VK_IMAGE_CREATE_SPARSE_RESIDENCY_BIT)) == 0);
1899         DE_ASSERT(deviceFeatures.sparseResidencyAliased || (createFlags & VK_IMAGE_CREATE_SPARSE_ALIASED_BIT) == 0);
1900
1901         if (createFlags & VK_IMAGE_CREATE_SPARSE_RESIDENCY_BIT)
1902         {
1903                 if (isCompressedFormat(format))
1904                         return false;
1905
1906                 if (isDepthStencilFormat(format))
1907                         return false;
1908
1909                 if (!deIsPowerOfTwo32(mapVkFormat(format).getPixelSize()))
1910                         return false;
1911
1912                 switch (imageType)
1913                 {
1914                         case VK_IMAGE_TYPE_2D:
1915                                 return (deviceFeatures.sparseResidencyImage2D == VK_TRUE);
1916                         case VK_IMAGE_TYPE_3D:
1917                                 return (deviceFeatures.sparseResidencyImage3D == VK_TRUE);
1918                         default:
1919                                 return false;
1920                 }
1921         }
1922
1923         return true;
1924 }
1925
1926 VkSampleCountFlags getRequiredOptimalTilingSampleCounts (const VkPhysicalDeviceLimits&  deviceLimits,
1927                                                                                                                  const VkFormat                                 format,
1928                                                                                                                  const VkImageUsageFlags                usageFlags)
1929 {
1930         if (!isCompressedFormat(format))
1931         {
1932                 const tcu::TextureFormat                tcuFormat               = mapVkFormat(format);
1933                 const bool                                              hasDepthComp    = (tcuFormat.order == tcu::TextureFormat::D || tcuFormat.order == tcu::TextureFormat::DS);
1934                 const bool                                              hasStencilComp  = (tcuFormat.order == tcu::TextureFormat::S || tcuFormat.order == tcu::TextureFormat::DS);
1935                 const bool                                              isColorFormat   = !hasDepthComp && !hasStencilComp;
1936                 VkSampleCountFlags                              sampleCounts    = ~(VkSampleCountFlags)0;
1937
1938                 DE_ASSERT((hasDepthComp || hasStencilComp) != isColorFormat);
1939
1940                 if ((usageFlags & VK_IMAGE_USAGE_STORAGE_BIT) != 0)
1941                         sampleCounts &= deviceLimits.storageImageSampleCounts;
1942
1943                 if ((usageFlags & VK_IMAGE_USAGE_SAMPLED_BIT) != 0)
1944                 {
1945                         if (hasDepthComp)
1946                                 sampleCounts &= deviceLimits.sampledImageDepthSampleCounts;
1947
1948                         if (hasStencilComp)
1949                                 sampleCounts &= deviceLimits.sampledImageStencilSampleCounts;
1950
1951                         if (isColorFormat)
1952                         {
1953                                 const tcu::TextureChannelClass  chnClass        = tcu::getTextureChannelClass(tcuFormat.type);
1954
1955                                 if (chnClass == tcu::TEXTURECHANNELCLASS_UNSIGNED_INTEGER ||
1956                                         chnClass == tcu::TEXTURECHANNELCLASS_SIGNED_INTEGER)
1957                                         sampleCounts &= deviceLimits.sampledImageIntegerSampleCounts;
1958                                 else
1959                                         sampleCounts &= deviceLimits.sampledImageColorSampleCounts;
1960                         }
1961                 }
1962
1963                 if ((usageFlags & VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT) != 0)
1964                         sampleCounts &= deviceLimits.framebufferColorSampleCounts;
1965
1966                 if ((usageFlags & VK_IMAGE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT) != 0)
1967                 {
1968                         if (hasDepthComp)
1969                                 sampleCounts &= deviceLimits.framebufferDepthSampleCounts;
1970
1971                         if (hasStencilComp)
1972                                 sampleCounts &= deviceLimits.framebufferStencilSampleCounts;
1973                 }
1974
1975                 // If there is no usage flag set that would have corresponding device limit,
1976                 // only VK_SAMPLE_COUNT_1_BIT is required.
1977                 if (sampleCounts == ~(VkSampleCountFlags)0)
1978                         sampleCounts &= VK_SAMPLE_COUNT_1_BIT;
1979
1980                 return sampleCounts;
1981         }
1982         else
1983                 return VK_SAMPLE_COUNT_1_BIT;
1984 }
1985
1986 struct ImageFormatPropertyCase
1987 {
1988         typedef tcu::TestStatus (*Function) (Context& context, const VkFormat format, const VkImageType imageType, const VkImageTiling tiling);
1989
1990         Function                testFunction;
1991         VkFormat                format;
1992         VkImageType             imageType;
1993         VkImageTiling   tiling;
1994
1995         ImageFormatPropertyCase (Function testFunction_, VkFormat format_, VkImageType imageType_, VkImageTiling tiling_)
1996                 : testFunction  (testFunction_)
1997                 , format                (format_)
1998                 , imageType             (imageType_)
1999                 , tiling                (tiling_)
2000         {}
2001
2002         ImageFormatPropertyCase (void)
2003                 : testFunction  ((Function)DE_NULL)
2004                 , format                (VK_FORMAT_UNDEFINED)
2005                 , imageType             (VK_IMAGE_TYPE_LAST)
2006                 , tiling                (VK_IMAGE_TILING_LAST)
2007         {}
2008 };
2009
2010 tcu::TestStatus execImageFormatTest (Context& context, ImageFormatPropertyCase testCase)
2011 {
2012         return testCase.testFunction(context, testCase.format, testCase.imageType, testCase.tiling);
2013 }
2014
2015 void createImageFormatTypeTilingTests (tcu::TestCaseGroup* testGroup, ImageFormatPropertyCase params)
2016 {
2017         DE_ASSERT(params.format == VK_FORMAT_UNDEFINED);
2018
2019         for (deUint32 formatNdx = VK_FORMAT_UNDEFINED+1; formatNdx < VK_CORE_FORMAT_LAST; ++formatNdx)
2020         {
2021                 const VkFormat          format                  = (VkFormat)formatNdx;
2022                 const char* const       enumName                = getFormatName(format);
2023                 const string            caseName                = de::toLower(string(enumName).substr(10));
2024
2025                 params.format = format;
2026
2027                 addFunctionCase(testGroup, caseName, enumName, execImageFormatTest, params);
2028         }
2029 }
2030
2031 void createImageFormatTypeTests (tcu::TestCaseGroup* testGroup, ImageFormatPropertyCase params)
2032 {
2033         DE_ASSERT(params.tiling == VK_IMAGE_TILING_LAST);
2034
2035         testGroup->addChild(createTestGroup(testGroup->getTestContext(), "optimal",     "",     createImageFormatTypeTilingTests, ImageFormatPropertyCase(params.testFunction, VK_FORMAT_UNDEFINED, params.imageType, VK_IMAGE_TILING_OPTIMAL)));
2036         testGroup->addChild(createTestGroup(testGroup->getTestContext(), "linear",      "",     createImageFormatTypeTilingTests, ImageFormatPropertyCase(params.testFunction, VK_FORMAT_UNDEFINED, params.imageType, VK_IMAGE_TILING_LINEAR)));
2037 }
2038
2039 void createImageFormatTests (tcu::TestCaseGroup* testGroup, ImageFormatPropertyCase::Function testFunction)
2040 {
2041         testGroup->addChild(createTestGroup(testGroup->getTestContext(), "1d", "", createImageFormatTypeTests, ImageFormatPropertyCase(testFunction, VK_FORMAT_UNDEFINED, VK_IMAGE_TYPE_1D, VK_IMAGE_TILING_LAST)));
2042         testGroup->addChild(createTestGroup(testGroup->getTestContext(), "2d", "", createImageFormatTypeTests, ImageFormatPropertyCase(testFunction, VK_FORMAT_UNDEFINED, VK_IMAGE_TYPE_2D, VK_IMAGE_TILING_LAST)));
2043         testGroup->addChild(createTestGroup(testGroup->getTestContext(), "3d", "", createImageFormatTypeTests, ImageFormatPropertyCase(testFunction, VK_FORMAT_UNDEFINED, VK_IMAGE_TYPE_3D, VK_IMAGE_TILING_LAST)));
2044 }
2045
2046 tcu::TestStatus imageFormatProperties (Context& context, const VkFormat format, const VkImageType imageType, const VkImageTiling tiling)
2047 {
2048         TestLog&                                                log                                     = context.getTestContext().getLog();
2049         const VkPhysicalDeviceFeatures& deviceFeatures          = context.getDeviceFeatures();
2050         const VkPhysicalDeviceLimits&   deviceLimits            = context.getDeviceProperties().limits;
2051         const VkFormatProperties                formatProperties        = getPhysicalDeviceFormatProperties(context.getInstanceInterface(), context.getPhysicalDevice(), format);
2052         const bool                                              hasKhrMaintenance1      = isExtensionSupported(context.getDeviceExtensions(), "VK_KHR_maintenance1");
2053
2054         const VkFormatFeatureFlags              supportedFeatures       = tiling == VK_IMAGE_TILING_LINEAR ? formatProperties.linearTilingFeatures : formatProperties.optimalTilingFeatures;
2055         const VkImageUsageFlags                 usageFlagSet            = getValidImageUsageFlags(supportedFeatures, hasKhrMaintenance1);
2056
2057         tcu::ResultCollector                    results                         (log, "ERROR: ");
2058
2059         if (hasKhrMaintenance1 && (supportedFeatures & VK_FORMAT_FEATURE_SAMPLED_IMAGE_BIT) != 0)
2060         {
2061                 results.check((supportedFeatures & (VK_FORMAT_FEATURE_TRANSFER_SRC_BIT_KHR | VK_FORMAT_FEATURE_TRANSFER_DST_BIT_KHR)) != 0,
2062                                           "A sampled image format must have VK_FORMAT_FEATURE_TRANSFER_SRC_BIT_KHR and VK_FORMAT_FEATURE_TRANSFER_DST_BIT_KHR format feature flags set");
2063         }
2064
2065         for (VkImageUsageFlags curUsageFlags = 0; curUsageFlags <= usageFlagSet; curUsageFlags++)
2066         {
2067                 if ((curUsageFlags & ~usageFlagSet) != 0 ||
2068                         !isValidImageUsageFlagCombination(curUsageFlags))
2069                         continue;
2070
2071                 const VkImageCreateFlags        createFlagSet           = getValidImageCreateFlags(deviceFeatures, format, supportedFeatures, imageType, curUsageFlags);
2072
2073                 for (VkImageCreateFlags curCreateFlags = 0; curCreateFlags <= createFlagSet; curCreateFlags++)
2074                 {
2075                         if ((curCreateFlags & ~createFlagSet) != 0 ||
2076                                 !isValidImageCreateFlagCombination(curCreateFlags))
2077                                 continue;
2078
2079                         const bool                              isRequiredCombination   = isRequiredImageParameterCombination(deviceFeatures,
2080                                                                                                                                                                                                   format,
2081                                                                                                                                                                                                   formatProperties,
2082                                                                                                                                                                                                   imageType,
2083                                                                                                                                                                                                   tiling,
2084                                                                                                                                                                                                   curUsageFlags,
2085                                                                                                                                                                                                   curCreateFlags);
2086                         VkImageFormatProperties properties;
2087                         VkResult                                queryResult;
2088
2089                         log << TestLog::Message << "Testing " << getImageTypeStr(imageType) << ", "
2090                                                                         << getImageTilingStr(tiling) << ", "
2091                                                                         << getImageUsageFlagsStr(curUsageFlags) << ", "
2092                                                                         << getImageCreateFlagsStr(curCreateFlags)
2093                                 << TestLog::EndMessage;
2094
2095                         // Set return value to known garbage
2096                         deMemset(&properties, 0xcd, sizeof(properties));
2097
2098                         queryResult = context.getInstanceInterface().getPhysicalDeviceImageFormatProperties(context.getPhysicalDevice(),
2099                                                                                                                                                                                                 format,
2100                                                                                                                                                                                                 imageType,
2101                                                                                                                                                                                                 tiling,
2102                                                                                                                                                                                                 curUsageFlags,
2103                                                                                                                                                                                                 curCreateFlags,
2104                                                                                                                                                                                                 &properties);
2105
2106                         if (queryResult == VK_SUCCESS)
2107                         {
2108                                 const deUint32  fullMipPyramidSize      = de::max(de::max(deLog2Ceil32(properties.maxExtent.width),
2109                                                                                                                                           deLog2Ceil32(properties.maxExtent.height)),
2110                                                                                                                           deLog2Ceil32(properties.maxExtent.depth)) + 1;
2111
2112                                 log << TestLog::Message << properties << "\n" << TestLog::EndMessage;
2113
2114                                 results.check(imageType != VK_IMAGE_TYPE_1D || (properties.maxExtent.width >= 1 && properties.maxExtent.height == 1 && properties.maxExtent.depth == 1), "Invalid dimensions for 1D image");
2115                                 results.check(imageType != VK_IMAGE_TYPE_2D || (properties.maxExtent.width >= 1 && properties.maxExtent.height >= 1 && properties.maxExtent.depth == 1), "Invalid dimensions for 2D image");
2116                                 results.check(imageType != VK_IMAGE_TYPE_3D || (properties.maxExtent.width >= 1 && properties.maxExtent.height >= 1 && properties.maxExtent.depth >= 1), "Invalid dimensions for 3D image");
2117                                 results.check(imageType != VK_IMAGE_TYPE_3D || properties.maxArrayLayers == 1, "Invalid maxArrayLayers for 3D image");
2118
2119                                 if (tiling == VK_IMAGE_TILING_OPTIMAL && imageType == VK_IMAGE_TYPE_2D && !(curCreateFlags & VK_IMAGE_CREATE_CUBE_COMPATIBLE_BIT) &&
2120                                          ((supportedFeatures & (VK_FORMAT_FEATURE_DEPTH_STENCIL_ATTACHMENT_BIT | VK_FORMAT_FEATURE_COLOR_ATTACHMENT_BIT)) ||
2121                                          ((supportedFeatures & VK_FORMAT_FEATURE_STORAGE_IMAGE_BIT) && deviceFeatures.shaderStorageImageMultisample)))
2122                                 {
2123                                         const VkSampleCountFlags        requiredSampleCounts    = getRequiredOptimalTilingSampleCounts(deviceLimits, format, curUsageFlags);
2124                                         results.check((properties.sampleCounts & requiredSampleCounts) == requiredSampleCounts, "Required sample counts not supported");
2125                                 }
2126                                 else
2127                                         results.check(properties.sampleCounts == VK_SAMPLE_COUNT_1_BIT, "sampleCounts != VK_SAMPLE_COUNT_1_BIT");
2128
2129                                 if (isRequiredCombination)
2130                                 {
2131                                         results.check(imageType != VK_IMAGE_TYPE_1D || (properties.maxExtent.width      >= deviceLimits.maxImageDimension1D),
2132                                                                   "Reported dimensions smaller than device limits");
2133                                         results.check(imageType != VK_IMAGE_TYPE_2D || (properties.maxExtent.width      >= deviceLimits.maxImageDimension2D &&
2134                                                                                                                                         properties.maxExtent.height     >= deviceLimits.maxImageDimension2D),
2135                                                                   "Reported dimensions smaller than device limits");
2136                                         results.check(imageType != VK_IMAGE_TYPE_3D || (properties.maxExtent.width      >= deviceLimits.maxImageDimension3D &&
2137                                                                                                                                         properties.maxExtent.height     >= deviceLimits.maxImageDimension3D &&
2138                                                                                                                                         properties.maxExtent.depth      >= deviceLimits.maxImageDimension3D),
2139                                                                   "Reported dimensions smaller than device limits");
2140                                         results.check(properties.maxMipLevels == fullMipPyramidSize, "maxMipLevels is not full mip pyramid size");
2141                                         results.check(imageType == VK_IMAGE_TYPE_3D || properties.maxArrayLayers >= deviceLimits.maxImageArrayLayers,
2142                                                                   "maxArrayLayers smaller than device limits");
2143                                 }
2144                                 else
2145                                 {
2146                                         results.check(properties.maxMipLevels == 1 || properties.maxMipLevels == fullMipPyramidSize, "Invalid mip pyramid size");
2147                                         results.check(properties.maxArrayLayers >= 1, "Invalid maxArrayLayers");
2148                                 }
2149
2150                                 results.check(properties.maxResourceSize >= (VkDeviceSize)MINIMUM_REQUIRED_IMAGE_RESOURCE_SIZE,
2151                                                           "maxResourceSize smaller than minimum required size");
2152                         }
2153                         else if (queryResult == VK_ERROR_FORMAT_NOT_SUPPORTED)
2154                         {
2155                                 log << TestLog::Message << "Got VK_ERROR_FORMAT_NOT_SUPPORTED" << TestLog::EndMessage;
2156
2157                                 if (isRequiredCombination)
2158                                         results.fail("VK_ERROR_FORMAT_NOT_SUPPORTED returned for required image parameter combination");
2159
2160                                 // Specification requires that all fields are set to 0
2161                                 results.check(properties.maxExtent.width        == 0, "maxExtent.width != 0");
2162                                 results.check(properties.maxExtent.height       == 0, "maxExtent.height != 0");
2163                                 results.check(properties.maxExtent.depth        == 0, "maxExtent.depth != 0");
2164                                 results.check(properties.maxMipLevels           == 0, "maxMipLevels != 0");
2165                                 results.check(properties.maxArrayLayers         == 0, "maxArrayLayers != 0");
2166                                 results.check(properties.sampleCounts           == 0, "sampleCounts != 0");
2167                                 results.check(properties.maxResourceSize        == 0, "maxResourceSize != 0");
2168                         }
2169                         else
2170                         {
2171                                 results.fail("Got unexpected error" + de::toString(queryResult));
2172                         }
2173                 }
2174         }
2175
2176         return tcu::TestStatus(results.getResult(), results.getMessage());
2177 }
2178
2179 // VK_KHR_get_physical_device_properties2
2180
2181 Move<VkInstance> createInstanceWithExtension (const PlatformInterface& vkp, const char* extensionName)
2182 {
2183         const vector<VkExtensionProperties>     instanceExts    = enumerateInstanceExtensionProperties(vkp, DE_NULL);
2184         vector<string>                                          enabledExts;
2185
2186         if (!isExtensionSupported(instanceExts, RequiredExtension(extensionName)))
2187                 TCU_THROW(NotSupportedError, (string(extensionName) + " is not supported").c_str());
2188
2189         enabledExts.push_back(extensionName);
2190
2191         return createDefaultInstance(vkp, vector<string>() /* layers */, enabledExts);
2192 }
2193
2194 tcu::TestStatus deviceFeatures2 (Context& context)
2195 {
2196         const PlatformInterface&                vkp                     = context.getPlatformInterface();
2197         const Unique<VkInstance>                instance        (createInstanceWithExtension(vkp, "VK_KHR_get_physical_device_properties2"));
2198         const InstanceDriver                    vki                     (vkp, *instance);
2199         const vector<VkPhysicalDevice>  devices         = enumeratePhysicalDevices(vki, *instance);
2200
2201         for (size_t deviceNdx = 0; deviceNdx < devices.size(); ++deviceNdx)
2202         {
2203                 VkPhysicalDeviceFeatures                coreFeatures;
2204                 VkPhysicalDeviceFeatures2KHR    extFeatures;
2205
2206                 deMemset(&coreFeatures, 0xcd, sizeof(coreFeatures));
2207                 deMemset(&extFeatures.features, 0xcd, sizeof(extFeatures.features));
2208
2209                 extFeatures.sType = VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_FEATURES_2_KHR;
2210                 extFeatures.pNext = DE_NULL;
2211
2212                 vki.getPhysicalDeviceFeatures(devices[deviceNdx], &coreFeatures);
2213                 vki.getPhysicalDeviceFeatures2KHR(devices[deviceNdx], &extFeatures);
2214
2215                 TCU_CHECK(extFeatures.sType == VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_FEATURES_2_KHR);
2216                 TCU_CHECK(extFeatures.pNext == DE_NULL);
2217
2218                 if (deMemCmp(&coreFeatures, &extFeatures.features, sizeof(VkPhysicalDeviceFeatures)) != 0)
2219                         TCU_FAIL("Mismatch between features reported by vkGetPhysicalDeviceFeatures and vkGetPhysicalDeviceFeatures2KHR");
2220         }
2221
2222         return tcu::TestStatus::pass("Querying device features succeeded");
2223 }
2224
2225 tcu::TestStatus deviceProperties2 (Context& context)
2226 {
2227         const PlatformInterface&                vkp                     = context.getPlatformInterface();
2228         const Unique<VkInstance>                instance        (createInstanceWithExtension(vkp, "VK_KHR_get_physical_device_properties2"));
2229         const InstanceDriver                    vki                     (vkp, *instance);
2230         const vector<VkPhysicalDevice>  devices         = enumeratePhysicalDevices(vki, *instance);
2231
2232         for (size_t deviceNdx = 0; deviceNdx < devices.size(); ++deviceNdx)
2233         {
2234                 VkPhysicalDeviceProperties              coreProperties;
2235                 VkPhysicalDeviceProperties2KHR  extProperties;
2236
2237                 extProperties.sType = VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_PROPERTIES_2_KHR;
2238                 extProperties.pNext = DE_NULL;
2239
2240                 vki.getPhysicalDeviceProperties(devices[deviceNdx], &coreProperties);
2241                 vki.getPhysicalDeviceProperties2KHR(devices[deviceNdx], &extProperties);
2242
2243                 TCU_CHECK(extProperties.sType == VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_PROPERTIES_2_KHR);
2244                 TCU_CHECK(extProperties.pNext == DE_NULL);
2245
2246                 // We can't use memcmp() here because the structs may contain padding bytes that drivers may or may not
2247                 // have written while writing the data and memcmp will compare them anyway, so we iterate through the
2248                 // valid bytes for each field in the struct and compare only the valid bytes for each one.
2249                 for (int propNdx = 0; propNdx < DE_LENGTH_OF_ARRAY(s_physicalDevicePropertiesOffsetTable); propNdx++)
2250                 {
2251                         const size_t offset                                     = s_physicalDevicePropertiesOffsetTable[propNdx].offset;
2252                         const size_t size                                       = s_physicalDevicePropertiesOffsetTable[propNdx].size;
2253
2254                         const deUint8* corePropertyBytes        = reinterpret_cast<deUint8*>(&coreProperties) + offset;
2255                         const deUint8* extPropertyBytes         = reinterpret_cast<deUint8*>(&extProperties.properties) + offset;
2256
2257                         if (deMemCmp(corePropertyBytes, extPropertyBytes, size) != 0)
2258                                 TCU_FAIL("Mismatch between properties reported by vkGetPhysicalDeviceProperties and vkGetPhysicalDeviceProperties2KHR");
2259                 }
2260         }
2261
2262         return tcu::TestStatus::pass("Querying device properties succeeded");
2263 }
2264
2265 tcu::TestStatus deviceFormatProperties2 (Context& context)
2266 {
2267         const PlatformInterface&                vkp                     = context.getPlatformInterface();
2268         const Unique<VkInstance>                instance        (createInstanceWithExtension(vkp, "VK_KHR_get_physical_device_properties2"));
2269         const InstanceDriver                    vki                     (vkp, *instance);
2270         const vector<VkPhysicalDevice>  devices         = enumeratePhysicalDevices(vki, *instance);
2271
2272         for (size_t deviceNdx = 0; deviceNdx < devices.size(); ++deviceNdx)
2273         {
2274                 const VkPhysicalDevice  physicalDevice  = devices[deviceNdx];
2275
2276                 for (int formatNdx = 0; formatNdx < VK_CORE_FORMAT_LAST; ++formatNdx)
2277                 {
2278                         const VkFormat                  format                  = (VkFormat)formatNdx;
2279                         VkFormatProperties              coreProperties;
2280                         VkFormatProperties2KHR  extProperties;
2281
2282                         deMemset(&coreProperties, 0xcd, sizeof(VkFormatProperties));
2283                         deMemset(&extProperties, 0xcd, sizeof(VkFormatProperties2KHR));
2284
2285                         extProperties.sType     = VK_STRUCTURE_TYPE_FORMAT_PROPERTIES_2_KHR;
2286                         extProperties.pNext = DE_NULL;
2287
2288                         vki.getPhysicalDeviceFormatProperties(physicalDevice, format, &coreProperties);
2289                         vki.getPhysicalDeviceFormatProperties2KHR(physicalDevice, format, &extProperties);
2290
2291                         TCU_CHECK(extProperties.sType == VK_STRUCTURE_TYPE_FORMAT_PROPERTIES_2_KHR);
2292                         TCU_CHECK(extProperties.pNext == DE_NULL);
2293
2294                 if (deMemCmp(&coreProperties, &extProperties.formatProperties, sizeof(VkFormatProperties)) != 0)
2295                         TCU_FAIL("Mismatch between format properties reported by vkGetPhysicalDeviceFormatProperties and vkGetPhysicalDeviceFormatProperties2KHR");
2296                 }
2297         }
2298
2299         return tcu::TestStatus::pass("Querying device format properties succeeded");
2300 }
2301
2302 tcu::TestStatus deviceQueueFamilyProperties2 (Context& context)
2303 {
2304         const PlatformInterface&                vkp                     = context.getPlatformInterface();
2305         const Unique<VkInstance>                instance        (createInstanceWithExtension(vkp, "VK_KHR_get_physical_device_properties2"));
2306         const InstanceDriver                    vki                     (vkp, *instance);
2307         const vector<VkPhysicalDevice>  devices         = enumeratePhysicalDevices(vki, *instance);
2308
2309         for (size_t deviceNdx = 0; deviceNdx < devices.size(); ++deviceNdx)
2310         {
2311                 const VkPhysicalDevice  physicalDevice                  = devices[deviceNdx];
2312                 deUint32                                numCoreQueueFamilies    = ~0u;
2313                 deUint32                                numExtQueueFamilies             = ~0u;
2314
2315                 vki.getPhysicalDeviceQueueFamilyProperties(physicalDevice, &numCoreQueueFamilies, DE_NULL);
2316                 vki.getPhysicalDeviceQueueFamilyProperties2KHR(physicalDevice, &numExtQueueFamilies, DE_NULL);
2317
2318                 TCU_CHECK_MSG(numCoreQueueFamilies == numExtQueueFamilies, "Different number of queue family properties reported");
2319                 TCU_CHECK(numCoreQueueFamilies > 0);
2320
2321                 {
2322                         std::vector<VkQueueFamilyProperties>            coreProperties  (numCoreQueueFamilies);
2323                         std::vector<VkQueueFamilyProperties2KHR>        extProperties   (numExtQueueFamilies);
2324
2325                         deMemset(&coreProperties[0], 0xcd, sizeof(VkQueueFamilyProperties)*numCoreQueueFamilies);
2326                         deMemset(&extProperties[0], 0xcd, sizeof(VkQueueFamilyProperties2KHR)*numExtQueueFamilies);
2327
2328                         for (size_t ndx = 0; ndx < extProperties.size(); ++ndx)
2329                         {
2330                                 extProperties[ndx].sType = VK_STRUCTURE_TYPE_QUEUE_FAMILY_PROPERTIES_2_KHR;
2331                                 extProperties[ndx].pNext = DE_NULL;
2332                         }
2333
2334                         vki.getPhysicalDeviceQueueFamilyProperties(physicalDevice, &numCoreQueueFamilies, &coreProperties[0]);
2335                         vki.getPhysicalDeviceQueueFamilyProperties2KHR(physicalDevice, &numExtQueueFamilies, &extProperties[0]);
2336
2337                         TCU_CHECK((size_t)numCoreQueueFamilies == coreProperties.size());
2338                         TCU_CHECK((size_t)numExtQueueFamilies == extProperties.size());
2339                         DE_ASSERT(numCoreQueueFamilies == numExtQueueFamilies);
2340
2341                         for (size_t ndx = 0; ndx < extProperties.size(); ++ndx)
2342                         {
2343                                 TCU_CHECK(extProperties[ndx].sType == VK_STRUCTURE_TYPE_QUEUE_FAMILY_PROPERTIES_2_KHR);
2344                                 TCU_CHECK(extProperties[ndx].pNext == DE_NULL);
2345
2346                                 if (deMemCmp(&coreProperties[ndx], &extProperties[ndx].queueFamilyProperties, sizeof(VkQueueFamilyProperties)) != 0)
2347                                         TCU_FAIL("Mismatch between format properties reported by vkGetPhysicalDeviceQueueFamilyProperties and vkGetPhysicalDeviceQueueFamilyProperties2KHR");
2348                         }
2349                 }
2350         }
2351
2352         return tcu::TestStatus::pass("Querying device queue family properties succeeded");
2353 }
2354
2355 tcu::TestStatus deviceMemoryProperties2 (Context& context)
2356 {
2357         const PlatformInterface&                vkp                     = context.getPlatformInterface();
2358         const Unique<VkInstance>                instance        (createInstanceWithExtension(vkp, "VK_KHR_get_physical_device_properties2"));
2359         const InstanceDriver                    vki                     (vkp, *instance);
2360         const vector<VkPhysicalDevice>  devices         = enumeratePhysicalDevices(vki, *instance);
2361
2362         for (size_t deviceNdx = 0; deviceNdx < devices.size(); ++deviceNdx)
2363         {
2364                 VkPhysicalDeviceMemoryProperties                coreProperties;
2365                 VkPhysicalDeviceMemoryProperties2KHR    extProperties;
2366
2367                 deMemset(&coreProperties, 0xcd, sizeof(VkPhysicalDeviceMemoryProperties));
2368                 deMemset(&extProperties, 0xcd, sizeof(VkPhysicalDeviceMemoryProperties2KHR));
2369
2370                 extProperties.sType = VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_MEMORY_PROPERTIES_2_KHR;
2371                 extProperties.pNext = DE_NULL;
2372
2373                 vki.getPhysicalDeviceMemoryProperties(devices[deviceNdx], &coreProperties);
2374                 vki.getPhysicalDeviceMemoryProperties2KHR(devices[deviceNdx], &extProperties);
2375
2376                 TCU_CHECK(extProperties.sType == VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_MEMORY_PROPERTIES_2_KHR);
2377                 TCU_CHECK(extProperties.pNext == DE_NULL);
2378
2379                 if (deMemCmp(&coreProperties, &extProperties.memoryProperties, sizeof(VkPhysicalDeviceMemoryProperties)) != 0)
2380                         TCU_FAIL("Mismatch between properties reported by vkGetPhysicalDeviceMemoryProperties and vkGetPhysicalDeviceMemoryProperties2KHR");
2381         }
2382
2383         return tcu::TestStatus::pass("Querying device memory properties succeeded");
2384 }
2385
2386 tcu::TestStatus imageFormatProperties2 (Context& context, const VkFormat format, const VkImageType imageType, const VkImageTiling tiling)
2387 {
2388         TestLog&                                                log                             = context.getTestContext().getLog();
2389
2390         const PlatformInterface&                vkp                             = context.getPlatformInterface();
2391         const Unique<VkInstance>                instance                (createInstanceWithExtension(vkp, "VK_KHR_get_physical_device_properties2"));
2392         const InstanceDriver                    vki                             (vkp, *instance);
2393         const vector<VkPhysicalDevice>  devices                 = enumeratePhysicalDevices(vki, *instance);
2394
2395         const VkImageUsageFlags                 allUsageFlags   = VK_IMAGE_USAGE_TRANSFER_SRC_BIT
2396                                                                                                         | VK_IMAGE_USAGE_TRANSFER_DST_BIT
2397                                                                                                         | VK_IMAGE_USAGE_SAMPLED_BIT
2398                                                                                                         | VK_IMAGE_USAGE_STORAGE_BIT
2399                                                                                                         | VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT
2400                                                                                                         | VK_IMAGE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT
2401                                                                                                         | VK_IMAGE_USAGE_TRANSIENT_ATTACHMENT_BIT
2402                                                                                                         | VK_IMAGE_USAGE_INPUT_ATTACHMENT_BIT;
2403         const VkImageCreateFlags                allCreateFlags  = VK_IMAGE_CREATE_SPARSE_BINDING_BIT
2404                                                                                                         | VK_IMAGE_CREATE_SPARSE_RESIDENCY_BIT
2405                                                                                                         | VK_IMAGE_CREATE_SPARSE_ALIASED_BIT
2406                                                                                                         | VK_IMAGE_CREATE_MUTABLE_FORMAT_BIT
2407                                                                                                         | VK_IMAGE_CREATE_CUBE_COMPATIBLE_BIT;
2408
2409         for (size_t deviceNdx = 0; deviceNdx < devices.size(); ++deviceNdx)
2410         {
2411                 const VkPhysicalDevice  physicalDevice  = devices[deviceNdx];
2412
2413                 for (VkImageUsageFlags curUsageFlags = (VkImageUsageFlags)1; curUsageFlags <= allUsageFlags; curUsageFlags++)
2414                 {
2415                         for (VkImageCreateFlags curCreateFlags = 0; curCreateFlags <= allCreateFlags; curCreateFlags++)
2416                         {
2417                                 const VkPhysicalDeviceImageFormatInfo2KHR       imageFormatInfo =
2418                                 {
2419                                         VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_IMAGE_FORMAT_INFO_2_KHR,
2420                                         DE_NULL,
2421                                         format,
2422                                         imageType,
2423                                         tiling,
2424                                         curUsageFlags,
2425                                         curCreateFlags
2426                                 };
2427
2428                                 VkImageFormatProperties                                         coreProperties;
2429                                 VkImageFormatProperties2KHR                                     extProperties;
2430                                 VkResult                                                                        coreResult;
2431                                 VkResult                                                                        extResult;
2432
2433                                 deMemset(&coreProperties, 0xcd, sizeof(VkImageFormatProperties));
2434                                 deMemset(&extProperties, 0xcd, sizeof(VkImageFormatProperties2KHR));
2435
2436                                 extProperties.sType = VK_STRUCTURE_TYPE_IMAGE_FORMAT_PROPERTIES_2_KHR;
2437                                 extProperties.pNext = DE_NULL;
2438
2439                                 coreResult      = vki.getPhysicalDeviceImageFormatProperties(physicalDevice, imageFormatInfo.format, imageFormatInfo.type, imageFormatInfo.tiling, imageFormatInfo.usage, imageFormatInfo.flags, &coreProperties);
2440                                 extResult       = vki.getPhysicalDeviceImageFormatProperties2KHR(physicalDevice, &imageFormatInfo, &extProperties);
2441
2442                                 TCU_CHECK(extProperties.sType == VK_STRUCTURE_TYPE_IMAGE_FORMAT_PROPERTIES_2_KHR);
2443                                 TCU_CHECK(extProperties.pNext == DE_NULL);
2444
2445                                 if ((coreResult != extResult) ||
2446                                         (deMemCmp(&coreProperties, &extProperties.imageFormatProperties, sizeof(VkImageFormatProperties)) != 0))
2447                                 {
2448                                         log << TestLog::Message << "ERROR: device " << deviceNdx << ": mismatch with query " << imageFormatInfo << TestLog::EndMessage
2449                                                 << TestLog::Message << "vkGetPhysicalDeviceImageFormatProperties() returned " << coreResult << ", " << coreProperties << TestLog::EndMessage
2450                                                 << TestLog::Message << "vkGetPhysicalDeviceImageFormatProperties2KHR() returned " << extResult << ", " << extProperties << TestLog::EndMessage;
2451                                         TCU_FAIL("Mismatch between image format properties reported by vkGetPhysicalDeviceImageFormatProperties and vkGetPhysicalDeviceImageFormatProperties2KHR");
2452                                 }
2453                         }
2454                 }
2455         }
2456
2457         return tcu::TestStatus::pass("Querying image format properties succeeded");
2458 }
2459
2460 tcu::TestStatus sparseImageFormatProperties2 (Context& context, const VkFormat format, const VkImageType imageType, const VkImageTiling tiling)
2461 {
2462         TestLog&                                                log                             = context.getTestContext().getLog();
2463
2464         const PlatformInterface&                vkp                             = context.getPlatformInterface();
2465         const Unique<VkInstance>                instance                (createInstanceWithExtension(vkp, "VK_KHR_get_physical_device_properties2"));
2466         const InstanceDriver                    vki                             (vkp, *instance);
2467         const vector<VkPhysicalDevice>  devices                 = enumeratePhysicalDevices(vki, *instance);
2468
2469         const VkImageUsageFlags                 allUsageFlags   = VK_IMAGE_USAGE_TRANSFER_SRC_BIT
2470                                                                                                         | VK_IMAGE_USAGE_TRANSFER_DST_BIT
2471                                                                                                         | VK_IMAGE_USAGE_SAMPLED_BIT
2472                                                                                                         | VK_IMAGE_USAGE_STORAGE_BIT
2473                                                                                                         | VK_IMAGE_USAGE_COLOR_ATTACHMENT_BIT
2474                                                                                                         | VK_IMAGE_USAGE_DEPTH_STENCIL_ATTACHMENT_BIT
2475                                                                                                         | VK_IMAGE_USAGE_TRANSIENT_ATTACHMENT_BIT
2476                                                                                                         | VK_IMAGE_USAGE_INPUT_ATTACHMENT_BIT;
2477
2478         for (size_t deviceNdx = 0; deviceNdx < devices.size(); ++deviceNdx)
2479         {
2480                 const VkPhysicalDevice  physicalDevice  = devices[deviceNdx];
2481
2482                 for (deUint32 sampleCountBit = VK_SAMPLE_COUNT_1_BIT; sampleCountBit <= VK_SAMPLE_COUNT_64_BIT; sampleCountBit = (sampleCountBit << 1u))
2483                 {
2484                         for (VkImageUsageFlags curUsageFlags = (VkImageUsageFlags)1; curUsageFlags <= allUsageFlags; curUsageFlags++)
2485                         {
2486                                 const VkPhysicalDeviceSparseImageFormatInfo2KHR imageFormatInfo =
2487                                 {
2488                                         VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_SPARSE_IMAGE_FORMAT_INFO_2_KHR,
2489                                         DE_NULL,
2490                                         format,
2491                                         imageType,
2492                                         (VkSampleCountFlagBits)sampleCountBit,
2493                                         curUsageFlags,
2494                                         tiling,
2495                                 };
2496
2497                                 deUint32                                                                                numCoreProperties       = ~0u;
2498                                 deUint32                                                                                numExtProperties        = ~0u;
2499
2500                                 // Query count
2501                                 vki.getPhysicalDeviceSparseImageFormatProperties(physicalDevice, imageFormatInfo.format, imageFormatInfo.type, imageFormatInfo.samples, imageFormatInfo.usage, imageFormatInfo.tiling, &numCoreProperties, DE_NULL);
2502                                 vki.getPhysicalDeviceSparseImageFormatProperties2KHR(physicalDevice, &imageFormatInfo, &numExtProperties, DE_NULL);
2503
2504                                 if (numCoreProperties != numExtProperties)
2505                                 {
2506                                         log << TestLog::Message << "ERROR: device " << deviceNdx << ": different number of properties reported for " << imageFormatInfo << TestLog::EndMessage;
2507                                         TCU_FAIL("Mismatch in reported property count");
2508                                 }
2509
2510                                 if (numCoreProperties > 0)
2511                                 {
2512                                         std::vector<VkSparseImageFormatProperties>              coreProperties  (numCoreProperties);
2513                                         std::vector<VkSparseImageFormatProperties2KHR>  extProperties   (numExtProperties);
2514
2515                                         deMemset(&coreProperties[0], 0xcd, sizeof(VkSparseImageFormatProperties)*numCoreProperties);
2516                                         deMemset(&extProperties[0], 0xcd, sizeof(VkSparseImageFormatProperties2KHR)*numExtProperties);
2517
2518                                         for (deUint32 ndx = 0; ndx < numExtProperties; ++ndx)
2519                                         {
2520                                                 extProperties[ndx].sType = VK_STRUCTURE_TYPE_SPARSE_IMAGE_FORMAT_PROPERTIES_2_KHR;
2521                                                 extProperties[ndx].pNext = DE_NULL;
2522                                         }
2523
2524                                         vki.getPhysicalDeviceSparseImageFormatProperties(physicalDevice, imageFormatInfo.format, imageFormatInfo.type, imageFormatInfo.samples, imageFormatInfo.usage, imageFormatInfo.tiling, &numCoreProperties, &coreProperties[0]);
2525                                         vki.getPhysicalDeviceSparseImageFormatProperties2KHR(physicalDevice, &imageFormatInfo, &numExtProperties, &extProperties[0]);
2526
2527                                         TCU_CHECK((size_t)numCoreProperties == coreProperties.size());
2528                                         TCU_CHECK((size_t)numExtProperties == extProperties.size());
2529
2530                                         for (deUint32 ndx = 0; ndx < numCoreProperties; ++ndx)
2531                                         {
2532                                                 TCU_CHECK(extProperties[ndx].sType == VK_STRUCTURE_TYPE_SPARSE_IMAGE_FORMAT_PROPERTIES_2_KHR);
2533                                                 TCU_CHECK(extProperties[ndx].pNext == DE_NULL);
2534
2535                                                 if ((deMemCmp(&coreProperties[ndx], &extProperties[ndx].properties, sizeof(VkSparseImageFormatProperties)) != 0))
2536                                                 {
2537                                                         log << TestLog::Message << "ERROR: device " << deviceNdx << ": mismatch with query " << imageFormatInfo << " property " << ndx << TestLog::EndMessage
2538                                                                 << TestLog::Message << "vkGetPhysicalDeviceSparseImageFormatProperties() returned " << coreProperties[ndx] << TestLog::EndMessage
2539                                                                 << TestLog::Message << "vkGetPhysicalDeviceSparseImageFormatProperties2KHR() returned " << extProperties[ndx] << TestLog::EndMessage;
2540                                                         TCU_FAIL("Mismatch between image format properties reported by vkGetPhysicalDeviceSparseImageFormatProperties and vkGetPhysicalDeviceSparseImageFormatProperties2KHR");
2541                                                 }
2542                                         }
2543                                 }
2544                         }
2545                 }
2546         }
2547
2548         return tcu::TestStatus::pass("Querying sparse image format properties succeeded");
2549 }
2550
2551 // Android CTS -specific tests
2552
2553 namespace android
2554 {
2555
2556 void checkExtensions (tcu::ResultCollector& results, const set<string>& allowedExtensions, const vector<VkExtensionProperties>& reportedExtensions)
2557 {
2558         for (vector<VkExtensionProperties>::const_iterator extension = reportedExtensions.begin(); extension != reportedExtensions.end(); ++extension)
2559         {
2560                 const string    extensionName   (extension->extensionName);
2561                 const bool              mustBeKnown             = de::beginsWith(extensionName, "VK_KHX_")              ||
2562                                                                                   de::beginsWith(extensionName, "VK_GOOGLE_")   ||
2563                                                                                   de::beginsWith(extensionName, "VK_ANDROID_");
2564
2565                 if (mustBeKnown && !de::contains(allowedExtensions, extensionName))
2566                         results.fail("Unknown extension: " + extensionName);
2567         }
2568 }
2569
2570 tcu::TestStatus testNoUnknownExtensions (Context& context)
2571 {
2572         TestLog&                                log                                     = context.getTestContext().getLog();
2573         tcu::ResultCollector    results                         (log);
2574         set<string>                             allowedInstanceExtensions;
2575         set<string>                             allowedDeviceExtensions;
2576
2577         // All known extensions should be added to allowedExtensions:
2578         // allowedExtensions.insert("VK_GOOGLE_extension1");
2579         allowedDeviceExtensions.insert("VK_GOOGLE_display_timing");
2580
2581         // Instance extensions
2582         checkExtensions(results,
2583                                         allowedInstanceExtensions,
2584                                         enumerateInstanceExtensionProperties(context.getPlatformInterface(), DE_NULL));
2585
2586         // Extensions exposed by instance layers
2587         {
2588                 const vector<VkLayerProperties> layers  = enumerateInstanceLayerProperties(context.getPlatformInterface());
2589
2590                 for (vector<VkLayerProperties>::const_iterator layer = layers.begin(); layer != layers.end(); ++layer)
2591                 {
2592                         checkExtensions(results,
2593                                                         allowedInstanceExtensions,
2594                                                         enumerateInstanceExtensionProperties(context.getPlatformInterface(), layer->layerName));
2595                 }
2596         }
2597
2598         // Device extensions
2599         checkExtensions(results,
2600                                         allowedDeviceExtensions,
2601                                         enumerateDeviceExtensionProperties(context.getInstanceInterface(), context.getPhysicalDevice(), DE_NULL));
2602
2603         // Extensions exposed by device layers
2604         {
2605                 const vector<VkLayerProperties> layers  = enumerateDeviceLayerProperties(context.getInstanceInterface(), context.getPhysicalDevice());
2606
2607                 for (vector<VkLayerProperties>::const_iterator layer = layers.begin(); layer != layers.end(); ++layer)
2608                 {
2609                         checkExtensions(results,
2610                                                         allowedDeviceExtensions,
2611                                                         enumerateDeviceExtensionProperties(context.getInstanceInterface(), context.getPhysicalDevice(), layer->layerName));
2612                 }
2613         }
2614
2615         return tcu::TestStatus(results.getResult(), results.getMessage());
2616 }
2617
2618 tcu::TestStatus testNoLayers (Context& context)
2619 {
2620         TestLog&                                log             = context.getTestContext().getLog();
2621         tcu::ResultCollector    results (log);
2622
2623         {
2624                 const vector<VkLayerProperties> layers  = enumerateInstanceLayerProperties(context.getPlatformInterface());
2625
2626                 for (vector<VkLayerProperties>::const_iterator layer = layers.begin(); layer != layers.end(); ++layer)
2627                         results.fail(string("Instance layer enumerated: ") + layer->layerName);
2628         }
2629
2630         {
2631                 const vector<VkLayerProperties> layers  = enumerateDeviceLayerProperties(context.getInstanceInterface(), context.getPhysicalDevice());
2632
2633                 for (vector<VkLayerProperties>::const_iterator layer = layers.begin(); layer != layers.end(); ++layer)
2634                         results.fail(string("Device layer enumerated: ") + layer->layerName);
2635         }
2636
2637         return tcu::TestStatus(results.getResult(), results.getMessage());
2638 }
2639
2640 tcu::TestStatus testMandatoryExtensions (Context& context)
2641 {
2642         TestLog&                                log             = context.getTestContext().getLog();
2643         tcu::ResultCollector    results (log);
2644
2645         // Instance extensions
2646         {
2647                 static const char*                                      mandatoryExtensions[]   =
2648                 {
2649                         "VK_KHR_get_physical_device_properties2",
2650                 };
2651                 const vector<VkExtensionProperties>     extensions                              = enumerateInstanceExtensionProperties(context.getPlatformInterface(), DE_NULL);
2652
2653                 for (int ndx = 0; ndx < DE_LENGTH_OF_ARRAY(mandatoryExtensions); ++ndx)
2654                 {
2655                         if (!isExtensionSupported(extensions, RequiredExtension(mandatoryExtensions[ndx])))
2656                                 results.fail(string(mandatoryExtensions[ndx]) + " is not supported");
2657                 }
2658         }
2659
2660         // Device extensions
2661         {
2662                 static const char*                                      mandatoryExtensions[]   =
2663                 {
2664                         "VK_KHR_maintenance1",
2665                 };
2666                 const vector<VkExtensionProperties>     extensions                              = enumerateDeviceExtensionProperties(context.getInstanceInterface(), context.getPhysicalDevice(), DE_NULL);
2667
2668                 for (int ndx = 0; ndx < DE_LENGTH_OF_ARRAY(mandatoryExtensions); ++ndx)
2669                 {
2670                         if (!isExtensionSupported(extensions, RequiredExtension(mandatoryExtensions[ndx])))
2671                                 results.fail(string(mandatoryExtensions[ndx]) + " is not supported");
2672                 }
2673         }
2674
2675         return tcu::TestStatus(results.getResult(), results.getMessage());
2676 }
2677
2678 } // android
2679
2680 } // anonymous
2681
2682 tcu::TestCaseGroup* createFeatureInfoTests (tcu::TestContext& testCtx)
2683 {
2684         de::MovePtr<tcu::TestCaseGroup> infoTests       (new tcu::TestCaseGroup(testCtx, "info", "Platform Information Tests"));
2685
2686         {
2687                 de::MovePtr<tcu::TestCaseGroup> instanceInfoTests       (new tcu::TestCaseGroup(testCtx, "instance", "Instance Information Tests"));
2688
2689                 addFunctionCase(instanceInfoTests.get(), "physical_devices",            "Physical devices",                     enumeratePhysicalDevices);
2690                 addFunctionCase(instanceInfoTests.get(), "layers",                                      "Layers",                                       enumerateInstanceLayers);
2691                 addFunctionCase(instanceInfoTests.get(), "extensions",                          "Extensions",                           enumerateInstanceExtensions);
2692
2693                 infoTests->addChild(instanceInfoTests.release());
2694         }
2695
2696         {
2697                 de::MovePtr<tcu::TestCaseGroup> deviceInfoTests (new tcu::TestCaseGroup(testCtx, "device", "Device Information Tests"));
2698
2699                 addFunctionCase(deviceInfoTests.get(), "features",                                      "Device Features",                      deviceFeatures);
2700                 addFunctionCase(deviceInfoTests.get(), "properties",                            "Device Properties",            deviceProperties);
2701                 addFunctionCase(deviceInfoTests.get(), "queue_family_properties",       "Queue family properties",      deviceQueueFamilyProperties);
2702                 addFunctionCase(deviceInfoTests.get(), "memory_properties",                     "Memory properties",            deviceMemoryProperties);
2703                 addFunctionCase(deviceInfoTests.get(), "layers",                                        "Layers",                                       enumerateDeviceLayers);
2704                 addFunctionCase(deviceInfoTests.get(), "extensions",                            "Extensions",                           enumerateDeviceExtensions);
2705
2706                 infoTests->addChild(deviceInfoTests.release());
2707         }
2708
2709         infoTests->addChild(createTestGroup(testCtx, "format_properties",               "VkGetPhysicalDeviceFormatProperties() Tests",          createFormatTests));
2710         infoTests->addChild(createTestGroup(testCtx, "image_format_properties", "VkGetPhysicalDeviceImageFormatProperties() Tests",     createImageFormatTests, imageFormatProperties));
2711
2712         {
2713                 de::MovePtr<tcu::TestCaseGroup> extendedPropertiesTests (new tcu::TestCaseGroup(testCtx, "get_physical_device_properties2", "VK_KHR_get_physical_device_properties2"));
2714
2715                 addFunctionCase(extendedPropertiesTests.get(), "features",                                      "Extended Device Features",                                     deviceFeatures2);
2716                 addFunctionCase(extendedPropertiesTests.get(), "properties",                            "Extended Device Properties",                           deviceProperties2);
2717                 addFunctionCase(extendedPropertiesTests.get(), "format_properties",                     "Extended Device Format Properties",            deviceFormatProperties2);
2718                 addFunctionCase(extendedPropertiesTests.get(), "queue_family_properties",       "Extended Device Queue Family Properties",      deviceQueueFamilyProperties2);
2719                 addFunctionCase(extendedPropertiesTests.get(), "memory_properties",                     "Extended Device Memory Properties",            deviceMemoryProperties2);
2720
2721                 infoTests->addChild(extendedPropertiesTests.release());
2722         }
2723
2724         infoTests->addChild(createTestGroup(testCtx, "image_format_properties2",                "VkGetPhysicalDeviceImageFormatProperties2KHR() Tests",                 createImageFormatTests, imageFormatProperties2));
2725         infoTests->addChild(createTestGroup(testCtx, "sparse_image_format_properties2", "VkGetPhysicalDeviceSparseImageFormatProperties2KHR() Tests",   createImageFormatTests, sparseImageFormatProperties2));
2726
2727         {
2728                 de::MovePtr<tcu::TestCaseGroup> androidTests    (new tcu::TestCaseGroup(testCtx, "android", "Android CTS Tests"));
2729
2730                 addFunctionCase(androidTests.get(),     "mandatory_extensions",         "Test that all mandatory extensions are supported",     android::testMandatoryExtensions);
2731                 addFunctionCase(androidTests.get(), "no_unknown_extensions",    "Test for unknown device or instance extensions",       android::testNoUnknownExtensions);
2732                 addFunctionCase(androidTests.get(), "no_layers",                                "Test that no layers are enumerated",                           android::testNoLayers);
2733
2734                 infoTests->addChild(androidTests.release());
2735         }
2736
2737         return infoTests.release();
2738 }
2739
2740 } // api
2741 } // vkt