#include <libsync.h>
#include <stdbool.h>
#include <string.h>
-#include <sys/mman.h>
#include <sys/sysinfo.h>
#include <unistd.h>
#include <xf86drm.h>
#include "compiler/glsl_types.h"
#include "util/debug.h"
#include "util/disk_cache.h"
+#include "util/u_atomic.h"
#include "vk_format.h"
#include "vk_util.h"
#include "drm-uapi/msm_drm.h"
+/* for fd_get_driver/device_uuid() */
+#include "freedreno/common/freedreno_uuid.h"
+
+static void
+tu_semaphore_remove_temp(struct tu_device *device,
+ struct tu_semaphore *sem);
+
static int
tu_device_get_cache_uuid(uint16_t family, void *uuid)
{
return 0;
}
-static void
-tu_get_driver_uuid(void *uuid)
-{
- memset(uuid, 0, VK_UUID_SIZE);
- snprintf(uuid, VK_UUID_SIZE, "freedreno");
-}
-
-static void
-tu_get_device_uuid(void *uuid)
-{
- memset(uuid, 0, VK_UUID_SIZE);
-}
-
-static VkResult
-tu_bo_init(struct tu_device *dev,
- struct tu_bo *bo,
- uint32_t gem_handle,
- uint64_t size)
-{
- uint64_t iova = tu_gem_info_iova(dev, gem_handle);
- if (!iova)
- return VK_ERROR_OUT_OF_DEVICE_MEMORY;
-
- *bo = (struct tu_bo) {
- .gem_handle = gem_handle,
- .size = size,
- .iova = iova,
- };
-
- return VK_SUCCESS;
-}
-
VkResult
-tu_bo_init_new(struct tu_device *dev, struct tu_bo *bo, uint64_t size)
-{
- /* TODO: Choose better flags. As of 2018-11-12, freedreno/drm/msm_bo.c
- * always sets `flags = MSM_BO_WC`, and we copy that behavior here.
- */
- uint32_t gem_handle = tu_gem_new(dev, size, MSM_BO_WC);
- if (!gem_handle)
- return vk_error(dev->instance, VK_ERROR_OUT_OF_DEVICE_MEMORY);
-
- VkResult result = tu_bo_init(dev, bo, gem_handle, size);
- if (result != VK_SUCCESS) {
- tu_gem_close(dev, gem_handle);
- return vk_error(dev->instance, result);
- }
-
- return VK_SUCCESS;
-}
-
-VkResult
-tu_bo_init_dmabuf(struct tu_device *dev,
- struct tu_bo *bo,
- uint64_t size,
- int fd)
-{
- uint32_t gem_handle = tu_gem_import_dmabuf(dev, fd, size);
- if (!gem_handle)
- return vk_error(dev->instance, VK_ERROR_INVALID_EXTERNAL_HANDLE);
-
- VkResult result = tu_bo_init(dev, bo, gem_handle, size);
- if (result != VK_SUCCESS) {
- tu_gem_close(dev, gem_handle);
- return vk_error(dev->instance, result);
- }
-
- return VK_SUCCESS;
-}
-
-int
-tu_bo_export_dmabuf(struct tu_device *dev, struct tu_bo *bo)
-{
- return tu_gem_export_dmabuf(dev, bo->gem_handle);
-}
-
-VkResult
-tu_bo_map(struct tu_device *dev, struct tu_bo *bo)
-{
- if (bo->map)
- return VK_SUCCESS;
-
- uint64_t offset = tu_gem_info_offset(dev, bo->gem_handle);
- if (!offset)
- return vk_error(dev->instance, VK_ERROR_OUT_OF_DEVICE_MEMORY);
-
- /* TODO: Should we use the wrapper os_mmap() like Freedreno does? */
- void *map = mmap(0, bo->size, PROT_READ | PROT_WRITE, MAP_SHARED,
- dev->physical_device->local_fd, offset);
- if (map == MAP_FAILED)
- return vk_error(dev->instance, VK_ERROR_MEMORY_MAP_FAILED);
-
- bo->map = map;
- return VK_SUCCESS;
-}
-
-void
-tu_bo_finish(struct tu_device *dev, struct tu_bo *bo)
-{
- assert(bo->gem_handle);
-
- if (bo->map)
- munmap(bo->map, bo->size);
-
- tu_gem_close(dev, bo->gem_handle);
-}
-
-static VkResult
tu_physical_device_init(struct tu_physical_device *device,
- struct tu_instance *instance,
- drmDevicePtr drm_device)
+ struct tu_instance *instance)
{
- const char *path = drm_device->nodes[DRM_NODE_RENDER];
VkResult result = VK_SUCCESS;
- drmVersionPtr version;
- int fd;
- int master_fd = -1;
-
- fd = open(path, O_RDWR | O_CLOEXEC);
- if (fd < 0) {
- return vk_errorf(instance, VK_ERROR_INCOMPATIBLE_DRIVER,
- "failed to open device %s", path);
- }
-
- /* Version 1.3 added MSM_INFO_IOVA. */
- const int min_version_major = 1;
- const int min_version_minor = 3;
-
- version = drmGetVersion(fd);
- if (!version) {
- close(fd);
- return vk_errorf(instance, VK_ERROR_INCOMPATIBLE_DRIVER,
- "failed to query kernel driver version for device %s",
- path);
- }
-
- if (strcmp(version->name, "msm")) {
- drmFreeVersion(version);
- close(fd);
- return vk_errorf(instance, VK_ERROR_INCOMPATIBLE_DRIVER,
- "device %s does not use the msm kernel driver", path);
- }
-
- if (version->version_major != min_version_major ||
- version->version_minor < min_version_minor) {
- result = vk_errorf(instance, VK_ERROR_INCOMPATIBLE_DRIVER,
- "kernel driver for device %s has version %d.%d, "
- "but Vulkan requires version >= %d.%d",
- path, version->version_major, version->version_minor,
- min_version_major, min_version_minor);
- drmFreeVersion(version);
- close(fd);
- return result;
- }
-
- drmFreeVersion(version);
-
- if (instance->debug_flags & TU_DEBUG_STARTUP)
- tu_logi("Found compatible device '%s'.", path);
-
- device->_loader_data.loaderMagic = ICD_LOADER_MAGIC;
- device->instance = instance;
- assert(strlen(path) < ARRAY_SIZE(device->path));
- strncpy(device->path, path, ARRAY_SIZE(device->path));
-
- if (instance->enabled_extensions.KHR_display) {
- master_fd =
- open(drm_device->nodes[DRM_NODE_PRIMARY], O_RDWR | O_CLOEXEC);
- if (master_fd >= 0) {
- /* TODO: free master_fd is accel is not working? */
- }
- }
-
- device->master_fd = master_fd;
- device->local_fd = fd;
-
- if (tu_drm_get_gpu_id(device, &device->gpu_id)) {
- if (instance->debug_flags & TU_DEBUG_STARTUP)
- tu_logi("Could not query the GPU ID");
- result = vk_errorf(instance, VK_ERROR_INITIALIZATION_FAILED,
- "could not get GPU ID");
- goto fail;
- }
-
- if (tu_drm_get_gmem_size(device, &device->gmem_size)) {
- if (instance->debug_flags & TU_DEBUG_STARTUP)
- tu_logi("Could not query the GMEM size");
- result = vk_errorf(instance, VK_ERROR_INITIALIZATION_FAILED,
- "could not get GMEM size");
- goto fail;
- }
-
- if (tu_drm_get_gmem_base(device, &device->gmem_base)) {
- if (instance->debug_flags & TU_DEBUG_STARTUP)
- tu_logi("Could not query the GMEM size");
- result = vk_errorf(instance, VK_ERROR_INITIALIZATION_FAILED,
- "could not get GMEM size");
- goto fail;
- }
memset(device->name, 0, sizeof(device->name));
sprintf(device->name, "FD%d", device->gpu_id);
+ device->limited_z24s8 = (device->gpu_id == 630);
+
switch (device->gpu_id) {
case 618:
- device->magic.RB_UNKNOWN_8E04_blit = 0x00100000;
device->ccu_offset_gmem = 0x7c000; /* 0x7e000 in some cases? */
device->ccu_offset_bypass = 0x10000;
+ device->tile_align_w = 32;
device->magic.PC_UNKNOWN_9805 = 0x0;
device->magic.SP_UNKNOWN_A0F8 = 0x0;
break;
case 630:
case 640:
- device->magic.RB_UNKNOWN_8E04_blit = 0x01000000;
device->ccu_offset_gmem = 0xf8000;
device->ccu_offset_bypass = 0x20000;
+ device->tile_align_w = 32;
device->magic.PC_UNKNOWN_9805 = 0x1;
device->magic.SP_UNKNOWN_A0F8 = 0x1;
break;
+ case 650:
+ device->ccu_offset_gmem = 0x114000;
+ device->ccu_offset_bypass = 0x30000;
+ device->tile_align_w = 96;
+ device->magic.PC_UNKNOWN_9805 = 0x2;
+ device->magic.SP_UNKNOWN_A0F8 = 0x2;
+ break;
default:
result = vk_errorf(instance, VK_ERROR_INITIALIZATION_FAILED,
"device %s is unsupported", device->name);
fprintf(stderr, "WARNING: tu is not a conformant vulkan implementation, "
"testing use only.\n");
- tu_get_driver_uuid(&device->device_uuid);
- tu_get_device_uuid(&device->device_uuid);
+ fd_get_driver_uuid(device->driver_uuid);
+ fd_get_device_uuid(device->device_uuid, device->gpu_id);
- tu_fill_device_extension_table(device, &device->supported_extensions);
+ tu_physical_device_get_supported_extensions(device, &device->supported_extensions);
if (result != VK_SUCCESS) {
vk_error(instance, result);
return VK_SUCCESS;
fail:
- close(fd);
- if (master_fd != -1)
- close(master_fd);
+ close(device->local_fd);
+ if (device->master_fd != -1)
+ close(device->master_fd);
return result;
}
close(device->local_fd);
if (device->master_fd != -1)
close(device->master_fd);
+
+ vk_object_base_finish(&device->base);
}
static VKAPI_ATTR void *
{ "nobin", TU_DEBUG_NOBIN },
{ "sysmem", TU_DEBUG_SYSMEM },
{ "forcebin", TU_DEBUG_FORCEBIN },
+ { "noubwc", TU_DEBUG_NOUBWC },
{ NULL, 0 }
};
instance = vk_zalloc2(&default_alloc, pAllocator, sizeof(*instance), 8,
VK_SYSTEM_ALLOCATION_SCOPE_INSTANCE);
+
if (!instance)
return vk_error(NULL, VK_ERROR_OUT_OF_HOST_MEMORY);
- instance->_loader_data.loaderMagic = ICD_LOADER_MAGIC;
+ vk_object_base_init(NULL, &instance->base, VK_OBJECT_TYPE_INSTANCE);
if (pAllocator)
instance->alloc = *pAllocator;
const char *ext_name = pCreateInfo->ppEnabledExtensionNames[i];
int index = tu_get_instance_extension_index(ext_name);
- if (index < 0 || !tu_supported_instance_extensions.extensions[index]) {
+ if (index < 0 || !tu_instance_extensions_supported.extensions[index]) {
+ vk_object_base_finish(&instance->base);
vk_free2(&default_alloc, pAllocator, instance);
return vk_error(instance, VK_ERROR_EXTENSION_NOT_PRESENT);
}
result = vk_debug_report_instance_init(&instance->debug_report_callbacks);
if (result != VK_SUCCESS) {
+ vk_object_base_finish(&instance->base);
vk_free2(&default_alloc, pAllocator, instance);
return vk_error(instance, result);
}
vk_debug_report_instance_destroy(&instance->debug_report_callbacks);
+ vk_object_base_finish(&instance->base);
vk_free(&instance->alloc, instance);
}
-static VkResult
-tu_enumerate_devices(struct tu_instance *instance)
-{
- /* TODO: Check for more devices ? */
- drmDevicePtr devices[8];
- VkResult result = VK_ERROR_INCOMPATIBLE_DRIVER;
- int max_devices;
-
- instance->physical_device_count = 0;
-
- max_devices = drmGetDevices2(0, devices, ARRAY_SIZE(devices));
-
- if (instance->debug_flags & TU_DEBUG_STARTUP)
- tu_logi("Found %d drm nodes", max_devices);
-
- if (max_devices < 1)
- return vk_error(instance, VK_ERROR_INCOMPATIBLE_DRIVER);
-
- for (unsigned i = 0; i < (unsigned) max_devices; i++) {
- if (devices[i]->available_nodes & 1 << DRM_NODE_RENDER &&
- devices[i]->bustype == DRM_BUS_PLATFORM) {
-
- result = tu_physical_device_init(
- instance->physical_devices + instance->physical_device_count,
- instance, devices[i]);
- if (result == VK_SUCCESS)
- ++instance->physical_device_count;
- else if (result != VK_ERROR_INCOMPATIBLE_DRIVER)
- break;
- }
- }
- drmFreeDevices(devices, max_devices);
-
- return result;
-}
-
VkResult
tu_EnumeratePhysicalDevices(VkInstance _instance,
uint32_t *pPhysicalDeviceCount,
memset(pFeatures, 0, sizeof(*pFeatures));
*pFeatures = (VkPhysicalDeviceFeatures) {
- .robustBufferAccess = false,
+ .robustBufferAccess = true,
.fullDrawIndexUint32 = true,
- .imageCubeArray = false,
+ .imageCubeArray = true,
.independentBlend = true,
.geometryShader = true,
- .tessellationShader = false,
+ .tessellationShader = true,
.sampleRateShading = true,
.dualSrcBlend = true,
.logicOp = true,
- .multiDrawIndirect = false,
- .drawIndirectFirstInstance = false,
+ .multiDrawIndirect = true,
+ .drawIndirectFirstInstance = true,
.depthClamp = true,
- .depthBiasClamp = false,
- .fillModeNonSolid = false,
- .depthBounds = false,
+ .depthBiasClamp = true,
+ .fillModeNonSolid = true,
+ .depthBounds = true,
.wideLines = false,
- .largePoints = false,
- .alphaToOne = false,
+ .largePoints = true,
+ .alphaToOne = true,
.multiViewport = false,
.samplerAnisotropy = true,
.textureCompressionETC2 = true,
.textureCompressionBC = true,
.occlusionQueryPrecise = true,
.pipelineStatisticsQuery = false,
- .vertexPipelineStoresAndAtomics = false,
- .fragmentStoresAndAtomics = false,
+ .vertexPipelineStoresAndAtomics = true,
+ .fragmentStoresAndAtomics = true,
.shaderTessellationAndGeometryPointSize = false,
.shaderImageGatherExtended = false,
.shaderStorageImageExtendedFormats = false,
.shaderStorageImageMultisample = false,
- .shaderUniformBufferArrayDynamicIndexing = false,
- .shaderSampledImageArrayDynamicIndexing = false,
- .shaderStorageBufferArrayDynamicIndexing = false,
- .shaderStorageImageArrayDynamicIndexing = false,
+ .shaderUniformBufferArrayDynamicIndexing = true,
+ .shaderSampledImageArrayDynamicIndexing = true,
+ .shaderStorageBufferArrayDynamicIndexing = true,
+ .shaderStorageImageArrayDynamicIndexing = true,
.shaderStorageImageReadWithoutFormat = false,
.shaderStorageImageWriteWithoutFormat = false,
.shaderClipDistance = false,
vk_foreach_struct(ext, pFeatures->pNext)
{
switch (ext->sType) {
+ case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_VULKAN_1_1_FEATURES: {
+ VkPhysicalDeviceVulkan11Features *features = (void *) ext;
+ features->storageBuffer16BitAccess = false;
+ features->uniformAndStorageBuffer16BitAccess = false;
+ features->storagePushConstant16 = false;
+ features->storageInputOutput16 = false;
+ features->multiview = false;
+ features->multiviewGeometryShader = false;
+ features->multiviewTessellationShader = false;
+ features->variablePointersStorageBuffer = true;
+ features->variablePointers = true;
+ features->protectedMemory = false;
+ features->samplerYcbcrConversion = true;
+ features->shaderDrawParameters = true;
+ break;
+ }
+ case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_VULKAN_1_2_FEATURES: {
+ VkPhysicalDeviceVulkan12Features *features = (void *) ext;
+ features->samplerMirrorClampToEdge = true;
+ features->drawIndirectCount = true;
+ features->storageBuffer8BitAccess = false;
+ features->uniformAndStorageBuffer8BitAccess = false;
+ features->storagePushConstant8 = false;
+ features->shaderBufferInt64Atomics = false;
+ features->shaderSharedInt64Atomics = false;
+ features->shaderFloat16 = false;
+ features->shaderInt8 = false;
+
+ features->descriptorIndexing = false;
+ features->shaderInputAttachmentArrayDynamicIndexing = false;
+ features->shaderUniformTexelBufferArrayDynamicIndexing = false;
+ features->shaderStorageTexelBufferArrayDynamicIndexing = false;
+ features->shaderUniformBufferArrayNonUniformIndexing = false;
+ features->shaderSampledImageArrayNonUniformIndexing = false;
+ features->shaderStorageBufferArrayNonUniformIndexing = false;
+ features->shaderStorageImageArrayNonUniformIndexing = false;
+ features->shaderInputAttachmentArrayNonUniformIndexing = false;
+ features->shaderUniformTexelBufferArrayNonUniformIndexing = false;
+ features->shaderStorageTexelBufferArrayNonUniformIndexing = false;
+ features->descriptorBindingUniformBufferUpdateAfterBind = false;
+ features->descriptorBindingSampledImageUpdateAfterBind = false;
+ features->descriptorBindingStorageImageUpdateAfterBind = false;
+ features->descriptorBindingStorageBufferUpdateAfterBind = false;
+ features->descriptorBindingUniformTexelBufferUpdateAfterBind = false;
+ features->descriptorBindingStorageTexelBufferUpdateAfterBind = false;
+ features->descriptorBindingUpdateUnusedWhilePending = false;
+ features->descriptorBindingPartiallyBound = false;
+ features->descriptorBindingVariableDescriptorCount = false;
+ features->runtimeDescriptorArray = false;
+
+ features->samplerFilterMinmax = true;
+ features->scalarBlockLayout = false;
+ features->imagelessFramebuffer = false;
+ features->uniformBufferStandardLayout = false;
+ features->shaderSubgroupExtendedTypes = false;
+ features->separateDepthStencilLayouts = false;
+ features->hostQueryReset = false;
+ features->timelineSemaphore = false;
+ features->bufferDeviceAddress = false;
+ features->bufferDeviceAddressCaptureReplay = false;
+ features->bufferDeviceAddressMultiDevice = false;
+ features->vulkanMemoryModel = false;
+ features->vulkanMemoryModelDeviceScope = false;
+ features->vulkanMemoryModelAvailabilityVisibilityChains = false;
+ features->shaderOutputViewportIndex = false;
+ features->shaderOutputLayer = false;
+ features->subgroupBroadcastDynamicId = false;
+ break;
+ }
case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_VARIABLE_POINTERS_FEATURES: {
VkPhysicalDeviceVariablePointersFeatures *features = (void *) ext;
- features->variablePointersStorageBuffer = false;
- features->variablePointers = false;
+ features->variablePointersStorageBuffer = true;
+ features->variablePointers = true;
break;
}
case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_MULTIVIEW_FEATURES: {
case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_SHADER_DRAW_PARAMETERS_FEATURES: {
VkPhysicalDeviceShaderDrawParametersFeatures *features =
(VkPhysicalDeviceShaderDrawParametersFeatures *) ext;
- features->shaderDrawParameters = false;
+ features->shaderDrawParameters = true;
break;
}
case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_PROTECTED_MEMORY_FEATURES: {
case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_SAMPLER_YCBCR_CONVERSION_FEATURES: {
VkPhysicalDeviceSamplerYcbcrConversionFeatures *features =
(VkPhysicalDeviceSamplerYcbcrConversionFeatures *) ext;
- features->samplerYcbcrConversion = false;
+ features->samplerYcbcrConversion = true;
break;
}
case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_DESCRIPTOR_INDEXING_FEATURES_EXT: {
case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_CONDITIONAL_RENDERING_FEATURES_EXT: {
VkPhysicalDeviceConditionalRenderingFeaturesEXT *features =
(VkPhysicalDeviceConditionalRenderingFeaturesEXT *) ext;
- features->conditionalRendering = false;
- features->inheritedConditionalRendering = false;
+ features->conditionalRendering = true;
+ features->inheritedConditionalRendering = true;
break;
}
case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_TRANSFORM_FEEDBACK_FEATURES_EXT: {
features->geometryStreams = false;
break;
}
+ case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_INDEX_TYPE_UINT8_FEATURES_EXT: {
+ VkPhysicalDeviceIndexTypeUint8FeaturesEXT *features =
+ (VkPhysicalDeviceIndexTypeUint8FeaturesEXT *)ext;
+ features->indexTypeUint8 = true;
+ break;
+ }
+ case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_VERTEX_ATTRIBUTE_DIVISOR_FEATURES_EXT: {
+ VkPhysicalDeviceVertexAttributeDivisorFeaturesEXT *features =
+ (VkPhysicalDeviceVertexAttributeDivisorFeaturesEXT *)ext;
+ features->vertexAttributeInstanceRateDivisor = true;
+ features->vertexAttributeInstanceRateZeroDivisor = true;
+ break;
+ }
+ case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_PRIVATE_DATA_FEATURES_EXT: {
+ VkPhysicalDevicePrivateDataFeaturesEXT *features =
+ (VkPhysicalDevicePrivateDataFeaturesEXT *)ext;
+ features->privateData = true;
+ break;
+ }
+ case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_DEPTH_CLIP_ENABLE_FEATURES_EXT: {
+ VkPhysicalDeviceDepthClipEnableFeaturesEXT *features =
+ (VkPhysicalDeviceDepthClipEnableFeaturesEXT *)ext;
+ features->depthClipEnable = true;
+ break;
+ }
+ case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_4444_FORMATS_FEATURES_EXT: {
+ VkPhysicalDevice4444FormatsFeaturesEXT *features = (void *)ext;
+ features->formatA4R4G4B4 = true;
+ features->formatA4B4G4R4 = true;
+ break;
+ }
default:
break;
}
.maxComputeWorkGroupInvocations = 2048,
.maxComputeWorkGroupSize = { 2048, 2048, 2048 },
.subPixelPrecisionBits = 8,
- .subTexelPrecisionBits = 4 /* FIXME */,
- .mipmapPrecisionBits = 4 /* FIXME */,
+ .subTexelPrecisionBits = 8,
+ .mipmapPrecisionBits = 8,
.maxDrawIndexedIndexValue = UINT32_MAX,
.maxDrawIndirectCount = UINT32_MAX,
- .maxSamplerLodBias = 16,
+ .maxSamplerLodBias = 4095.0 / 256.0, /* [-16, 15.99609375] */
.maxSamplerAnisotropy = 16,
.maxViewports = MAX_VIEWPORTS,
.maxViewportDimensions = { (1 << 14), (1 << 14) },
.minTexelBufferOffsetAlignment = 64,
.minUniformBufferOffsetAlignment = 64,
.minStorageBufferOffsetAlignment = 64,
- .minTexelOffset = -32,
- .maxTexelOffset = 31,
+ .minTexelOffset = -16,
+ .maxTexelOffset = 15,
.minTexelGatherOffset = -32,
.maxTexelGatherOffset = 31,
- .minInterpolationOffset = -2,
- .maxInterpolationOffset = 2,
- .subPixelInterpolationOffsetBits = 8,
+ .minInterpolationOffset = -0.5,
+ .maxInterpolationOffset = 0.4375,
+ .subPixelInterpolationOffsetBits = 4,
.maxFramebufferWidth = (1 << 14),
.maxFramebufferHeight = (1 << 14),
.maxFramebufferLayers = (1 << 10),
.maxCullDistances = 8,
.maxCombinedClipAndCullDistances = 8,
.discreteQueuePriorities = 1,
- .pointSizeRange = { 0.125, 255.875 },
+ .pointSizeRange = { 1, 4092 },
.lineWidthRange = { 0.0, 7.9921875 },
- .pointSizeGranularity = (1.0 / 8.0),
+ .pointSizeGranularity = 0.0625,
.lineWidthGranularity = (1.0 / 128.0),
.strictLines = false, /* FINISHME */
.standardSampleLocations = true,
properties->maxTransformFeedbackStreamDataSize = 512;
properties->maxTransformFeedbackBufferDataSize = 512;
properties->maxTransformFeedbackBufferDataStride = 512;
- /* TODO: enable xfb query */
- properties->transformFeedbackQueries = false;
+ properties->transformFeedbackQueries = true;
properties->transformFeedbackStreamsLinesTriangles = false;
properties->transformFeedbackRasterizationStreamSelect = false;
properties->transformFeedbackDraw = true;
properties->variableSampleLocations = true;
break;
}
-
+ case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_SAMPLER_FILTER_MINMAX_PROPERTIES: {
+ VkPhysicalDeviceSamplerFilterMinmaxProperties *properties =
+ (VkPhysicalDeviceSamplerFilterMinmaxProperties *)ext;
+ properties->filterMinmaxImageComponentMapping = true;
+ properties->filterMinmaxSingleComponentFormats = true;
+ break;
+ }
+ case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_SUBGROUP_PROPERTIES: {
+ VkPhysicalDeviceSubgroupProperties *properties =
+ (VkPhysicalDeviceSubgroupProperties *)ext;
+ properties->subgroupSize = 64;
+ properties->supportedStages = VK_SHADER_STAGE_COMPUTE_BIT;
+ properties->supportedOperations = VK_SUBGROUP_FEATURE_BASIC_BIT |
+ VK_SUBGROUP_FEATURE_VOTE_BIT;
+ properties->quadOperationsInAllStages = false;
+ break;
+ }
+ case VK_STRUCTURE_TYPE_PHYSICAL_DEVICE_VERTEX_ATTRIBUTE_DIVISOR_PROPERTIES_EXT: {
+ VkPhysicalDeviceVertexAttributeDivisorPropertiesEXT *props =
+ (VkPhysicalDeviceVertexAttributeDivisorPropertiesEXT *)ext;
+ props->maxVertexAttribDivisor = UINT32_MAX;
+ break;
+ }
default:
break;
}
int idx,
VkDeviceQueueCreateFlags flags)
{
- queue->_loader_data.loaderMagic = ICD_LOADER_MAGIC;
+ vk_object_base_init(&device->vk, &queue->base, VK_OBJECT_TYPE_QUEUE);
+
queue->device = device;
queue->queue_family_index = queue_family_index;
queue->queue_idx = idx;
},
};
-
VkResult
tu_CreateDevice(VkPhysicalDevice physicalDevice,
const VkDeviceCreateInfo *pCreateInfo,
if (!device)
return vk_error(physical_device->instance, VK_ERROR_OUT_OF_HOST_MEMORY);
- device->_loader_data.loaderMagic = ICD_LOADER_MAGIC;
+ vk_device_init(&device->vk, pCreateInfo,
+ &physical_device->instance->alloc, pAllocator);
+
device->instance = physical_device->instance;
device->physical_device = physical_device;
-
- if (pAllocator)
- device->alloc = *pAllocator;
- else
- device->alloc = physical_device->instance->alloc;
+ device->_lost = false;
for (uint32_t i = 0; i < pCreateInfo->enabledExtensionCount; i++) {
const char *ext_name = pCreateInfo->ppEnabledExtensionNames[i];
int index = tu_get_device_extension_index(ext_name);
if (index < 0 ||
!physical_device->supported_extensions.extensions[index]) {
- vk_free(&device->alloc, device);
+ vk_free(&device->vk.alloc, device);
return vk_error(physical_device->instance,
VK_ERROR_EXTENSION_NOT_PRESENT);
}
&pCreateInfo->pQueueCreateInfos[i];
uint32_t qfi = queue_create->queueFamilyIndex;
device->queues[qfi] = vk_alloc(
- &device->alloc, queue_create->queueCount * sizeof(struct tu_queue),
+ &device->vk.alloc, queue_create->queueCount * sizeof(struct tu_queue),
8, VK_SYSTEM_ALLOCATION_SCOPE_DEVICE);
if (!device->queues[qfi]) {
result = VK_ERROR_OUT_OF_HOST_MEMORY;
if (!device->compiler)
goto fail_queues;
-#define VSC_DATA_SIZE(pitch) ((pitch) * 32 + 0x100) /* extra size to store VSC_SIZE */
-#define VSC_DATA2_SIZE(pitch) ((pitch) * 32)
-
- device->vsc_data_pitch = 0x440 * 4;
- device->vsc_data2_pitch = 0x1040 * 4;
-
- result = tu_bo_init_new(device, &device->vsc_data, VSC_DATA_SIZE(device->vsc_data_pitch));
- if (result != VK_SUCCESS)
- goto fail_vsc_data;
-
- result = tu_bo_init_new(device, &device->vsc_data2, VSC_DATA2_SIZE(device->vsc_data2_pitch));
- if (result != VK_SUCCESS)
- goto fail_vsc_data2;
+ /* initial sizes, these will increase if there is overflow */
+ device->vsc_draw_strm_pitch = 0x1000 + VSC_PAD;
+ device->vsc_prim_strm_pitch = 0x4000 + VSC_PAD;
- STATIC_ASSERT(sizeof(struct bcolor_entry) == 128);
- result = tu_bo_init_new(device, &device->border_color, sizeof(border_color));
+ STATIC_ASSERT(sizeof(border_color) == sizeof(((struct tu6_global*) 0)->border_color));
+ result = tu_bo_init_new(device, &device->global_bo, sizeof(struct tu6_global));
if (result != VK_SUCCESS)
- goto fail_border_color;
+ goto fail_global_bo;
- result = tu_bo_map(device, &device->border_color);
+ result = tu_bo_map(device, &device->global_bo);
if (result != VK_SUCCESS)
- goto fail_border_color_map;
+ goto fail_global_bo_map;
- memcpy(device->border_color.map, border_color, sizeof(border_color));
+ struct tu6_global *global = device->global_bo.map;
+ memcpy(global->border_color, border_color, sizeof(border_color));
+ global->predicate = 0;
+ tu_init_clear_blit_shaders(global);
VkPipelineCacheCreateInfo ci;
ci.sType = VK_STRUCTURE_TYPE_PIPELINE_CACHE_CREATE_INFO;
device->mem_cache = tu_pipeline_cache_from_handle(pc);
+ for (unsigned i = 0; i < ARRAY_SIZE(device->scratch_bos); i++)
+ mtx_init(&device->scratch_bos[i].construct_mtx, mtx_plain);
+
+ mtx_init(&device->vsc_pitch_mtx, mtx_plain);
+
*pDevice = tu_device_to_handle(device);
return VK_SUCCESS;
fail_pipeline_cache:
-fail_border_color_map:
- tu_bo_finish(device, &device->border_color);
-
-fail_border_color:
- tu_bo_finish(device, &device->vsc_data2);
+fail_global_bo_map:
+ tu_bo_finish(device, &device->global_bo);
-fail_vsc_data2:
- tu_bo_finish(device, &device->vsc_data);
-
-fail_vsc_data:
+fail_global_bo:
ralloc_free(device->compiler);
fail_queues:
for (unsigned q = 0; q < device->queue_count[i]; q++)
tu_queue_finish(&device->queues[i][q]);
if (device->queue_count[i])
- vk_free(&device->alloc, device->queues[i]);
+ vk_object_free(&device->vk, NULL, device->queues[i]);
}
- vk_free(&device->alloc, device);
+ vk_free(&device->vk.alloc, device);
return result;
}
if (!device)
return;
- tu_bo_finish(device, &device->vsc_data);
- tu_bo_finish(device, &device->vsc_data2);
-
for (unsigned i = 0; i < TU_MAX_QUEUE_FAMILIES; i++) {
for (unsigned q = 0; q < device->queue_count[i]; q++)
tu_queue_finish(&device->queues[i][q]);
if (device->queue_count[i])
- vk_free(&device->alloc, device->queues[i]);
+ vk_object_free(&device->vk, NULL, device->queues[i]);
}
- /* the compiler does not use pAllocator */
- ralloc_free(device->compiler);
+ for (unsigned i = 0; i < ARRAY_SIZE(device->scratch_bos); i++) {
+ if (device->scratch_bos[i].initialized)
+ tu_bo_finish(device, &device->scratch_bos[i].bo);
+ }
+
+ ir3_compiler_destroy(device->compiler);
VkPipelineCache pc = tu_pipeline_cache_to_handle(device->mem_cache);
tu_DestroyPipelineCache(tu_device_to_handle(device), pc, NULL);
- vk_free(&device->alloc, device);
+ vk_free(&device->vk.alloc, device);
+}
+
+VkResult
+_tu_device_set_lost(struct tu_device *device,
+ const char *file, int line,
+ const char *msg, ...)
+{
+ /* Set the flag indicating that waits should return in finite time even
+ * after device loss.
+ */
+ p_atomic_inc(&device->_lost);
+
+ /* TODO: Report the log message through VkDebugReportCallbackEXT instead */
+ fprintf(stderr, "%s:%d: ", file, line);
+ va_list ap;
+ va_start(ap, msg);
+ vfprintf(stderr, msg, ap);
+ va_end(ap);
+
+ if (env_var_as_boolean("TU_ABORT_ON_DEVICE_LOSS", false))
+ abort();
+
+ return VK_ERROR_DEVICE_LOST;
+}
+
+VkResult
+tu_get_scratch_bo(struct tu_device *dev, uint64_t size, struct tu_bo **bo)
+{
+ unsigned size_log2 = MAX2(util_logbase2_ceil64(size), MIN_SCRATCH_BO_SIZE_LOG2);
+ unsigned index = size_log2 - MIN_SCRATCH_BO_SIZE_LOG2;
+ assert(index < ARRAY_SIZE(dev->scratch_bos));
+
+ for (unsigned i = index; i < ARRAY_SIZE(dev->scratch_bos); i++) {
+ if (p_atomic_read(&dev->scratch_bos[i].initialized)) {
+ /* Fast path: just return the already-allocated BO. */
+ *bo = &dev->scratch_bos[i].bo;
+ return VK_SUCCESS;
+ }
+ }
+
+ /* Slow path: actually allocate the BO. We take a lock because the process
+ * of allocating it is slow, and we don't want to block the CPU while it
+ * finishes.
+ */
+ mtx_lock(&dev->scratch_bos[index].construct_mtx);
+
+ /* Another thread may have allocated it already while we were waiting on
+ * the lock. We need to check this in order to avoid double-allocating.
+ */
+ if (dev->scratch_bos[index].initialized) {
+ mtx_unlock(&dev->scratch_bos[index].construct_mtx);
+ *bo = &dev->scratch_bos[index].bo;
+ return VK_SUCCESS;
+ }
+
+ unsigned bo_size = 1ull << size_log2;
+ VkResult result = tu_bo_init_new(dev, &dev->scratch_bos[index].bo, bo_size);
+ if (result != VK_SUCCESS) {
+ mtx_unlock(&dev->scratch_bos[index].construct_mtx);
+ return result;
+ }
+
+ p_atomic_set(&dev->scratch_bos[index].initialized, true);
+
+ mtx_unlock(&dev->scratch_bos[index].construct_mtx);
+
+ *bo = &dev->scratch_bos[index].bo;
+ return VK_SUCCESS;
}
VkResult
tu_GetDeviceQueue2(_device, &info, pQueue);
}
+static VkResult
+tu_get_semaphore_syncobjs(const VkSemaphore *sems,
+ uint32_t sem_count,
+ bool wait,
+ struct drm_msm_gem_submit_syncobj **out,
+ uint32_t *out_count)
+{
+ uint32_t syncobj_count = 0;
+ struct drm_msm_gem_submit_syncobj *syncobjs;
+
+ for (uint32_t i = 0; i < sem_count; ++i) {
+ TU_FROM_HANDLE(tu_semaphore, sem, sems[i]);
+
+ struct tu_semaphore_part *part =
+ sem->temporary.kind != TU_SEMAPHORE_NONE ?
+ &sem->temporary : &sem->permanent;
+
+ if (part->kind == TU_SEMAPHORE_SYNCOBJ)
+ ++syncobj_count;
+ }
+
+ *out = NULL;
+ *out_count = syncobj_count;
+ if (!syncobj_count)
+ return VK_SUCCESS;
+
+ *out = syncobjs = calloc(syncobj_count, sizeof (*syncobjs));
+ if (!syncobjs)
+ return VK_ERROR_OUT_OF_HOST_MEMORY;
+
+ for (uint32_t i = 0, j = 0; i < sem_count; ++i) {
+ TU_FROM_HANDLE(tu_semaphore, sem, sems[i]);
+
+ struct tu_semaphore_part *part =
+ sem->temporary.kind != TU_SEMAPHORE_NONE ?
+ &sem->temporary : &sem->permanent;
+
+ if (part->kind == TU_SEMAPHORE_SYNCOBJ) {
+ syncobjs[j].handle = part->syncobj;
+ syncobjs[j].flags = wait ? MSM_SUBMIT_SYNCOBJ_RESET : 0;
+ ++j;
+ }
+ }
+
+ return VK_SUCCESS;
+}
+
+
+static void
+tu_semaphores_remove_temp(struct tu_device *device,
+ const VkSemaphore *sems,
+ uint32_t sem_count)
+{
+ for (uint32_t i = 0; i < sem_count; ++i) {
+ TU_FROM_HANDLE(tu_semaphore, sem, sems[i]);
+ tu_semaphore_remove_temp(device, sem);
+ }
+}
+
VkResult
tu_QueueSubmit(VkQueue _queue,
uint32_t submitCount,
VkFence _fence)
{
TU_FROM_HANDLE(tu_queue, queue, _queue);
+ VkResult result;
for (uint32_t i = 0; i < submitCount; ++i) {
const VkSubmitInfo *submit = pSubmits + i;
const bool last_submit = (i == submitCount - 1);
+ struct drm_msm_gem_submit_syncobj *in_syncobjs = NULL, *out_syncobjs = NULL;
+ uint32_t nr_in_syncobjs, nr_out_syncobjs;
struct tu_bo_list bo_list;
tu_bo_list_init(&bo_list);
+ result = tu_get_semaphore_syncobjs(pSubmits[i].pWaitSemaphores,
+ pSubmits[i].waitSemaphoreCount,
+ false, &in_syncobjs, &nr_in_syncobjs);
+ if (result != VK_SUCCESS) {
+ return tu_device_set_lost(queue->device,
+ "failed to allocate space for semaphore submission\n");
+ }
+
+ result = tu_get_semaphore_syncobjs(pSubmits[i].pSignalSemaphores,
+ pSubmits[i].signalSemaphoreCount,
+ false, &out_syncobjs, &nr_out_syncobjs);
+ if (result != VK_SUCCESS) {
+ free(in_syncobjs);
+ return tu_device_set_lost(queue->device,
+ "failed to allocate space for semaphore submission\n");
+ }
+
uint32_t entry_count = 0;
for (uint32_t j = 0; j < submit->commandBufferCount; ++j) {
TU_FROM_HANDLE(tu_cmd_buffer, cmdbuf, submit->pCommandBuffers[j]);
}
uint32_t flags = MSM_PIPE_3D0;
+ if (nr_in_syncobjs) {
+ flags |= MSM_SUBMIT_SYNCOBJ_IN;
+ }
+ if (nr_out_syncobjs) {
+ flags |= MSM_SUBMIT_SYNCOBJ_OUT;
+ }
+
if (last_submit) {
flags |= MSM_SUBMIT_FENCE_FD_OUT;
}
.nr_bos = bo_list.count,
.cmds = (uint64_t)(uintptr_t)cmds,
.nr_cmds = entry_count,
+ .in_syncobjs = (uint64_t)(uintptr_t)in_syncobjs,
+ .out_syncobjs = (uint64_t)(uintptr_t)out_syncobjs,
+ .nr_in_syncobjs = nr_in_syncobjs,
+ .nr_out_syncobjs = nr_out_syncobjs,
+ .syncobj_stride = sizeof(struct drm_msm_gem_submit_syncobj),
};
int ret = drmCommandWriteRead(queue->device->physical_device->local_fd,
DRM_MSM_GEM_SUBMIT,
&req, sizeof(req));
if (ret) {
- fprintf(stderr, "submit failed: %s\n", strerror(errno));
- abort();
+ free(in_syncobjs);
+ free(out_syncobjs);
+ return tu_device_set_lost(queue->device, "submit failed: %s\n",
+ strerror(errno));
}
tu_bo_list_destroy(&bo_list);
+ free(in_syncobjs);
+ free(out_syncobjs);
+ tu_semaphores_remove_temp(queue->device, pSubmits[i].pWaitSemaphores,
+ pSubmits[i].waitSemaphoreCount);
if (last_submit) {
/* no need to merge fences as queue execution is serialized */
tu_fence_update_fd(&queue->submit_fence, req.fence_fd);
+ } else if (last_submit) {
+ close(req.fence_fd);
}
}
{
TU_FROM_HANDLE(tu_queue, queue, _queue);
+ if (tu_device_is_lost(queue->device))
+ return VK_ERROR_DEVICE_LOST;
+
tu_fence_wait_idle(&queue->submit_fence);
return VK_SUCCESS;
{
TU_FROM_HANDLE(tu_device, device, _device);
+ if (tu_device_is_lost(device))
+ return VK_ERROR_DEVICE_LOST;
+
for (unsigned i = 0; i < TU_MAX_QUEUE_FAMILIES; i++) {
for (unsigned q = 0; q < device->queue_count[i]; q++) {
tu_QueueWaitIdle(tu_queue_to_handle(&device->queues[i][q]));
return VK_SUCCESS;
}
-VkResult
-tu_ImportSemaphoreFdKHR(VkDevice _device,
- const VkImportSemaphoreFdInfoKHR *pImportSemaphoreFdInfo)
-{
- tu_stub();
-
- return VK_SUCCESS;
-}
-
-VkResult
-tu_GetSemaphoreFdKHR(VkDevice _device,
- const VkSemaphoreGetFdInfoKHR *pGetFdInfo,
- int *pFd)
-{
- tu_stub();
-
- return VK_SUCCESS;
-}
-
-VkResult
-tu_ImportFenceFdKHR(VkDevice _device,
- const VkImportFenceFdInfoKHR *pImportFenceFdInfo)
-{
- tu_stub();
-
- return VK_SUCCESS;
-}
-
-VkResult
-tu_GetFenceFdKHR(VkDevice _device,
- const VkFenceGetFdInfoKHR *pGetFdInfo,
- int *pFd)
-{
- tu_stub();
-
- return VK_SUCCESS;
-}
-
VkResult
tu_EnumerateInstanceExtensionProperties(const char *pLayerName,
uint32_t *pPropertyCount,
return vk_error(NULL, VK_ERROR_LAYER_NOT_PRESENT);
for (int i = 0; i < TU_INSTANCE_EXTENSION_COUNT; i++) {
- if (tu_supported_instance_extensions.extensions[i]) {
+ if (tu_instance_extensions_supported.extensions[i]) {
vk_outarray_append(&out, prop) { *prop = tu_instance_extensions[i]; }
}
}
return VK_SUCCESS;
}
- mem = vk_alloc2(&device->alloc, pAllocator, sizeof(*mem), 8,
- VK_SYSTEM_ALLOCATION_SCOPE_OBJECT);
+ mem = vk_object_alloc(&device->vk, pAllocator, sizeof(*mem),
+ VK_OBJECT_TYPE_DEVICE_MEMORY);
if (mem == NULL)
return vk_error(device->instance, VK_ERROR_OUT_OF_HOST_MEMORY);
}
if (result != VK_SUCCESS) {
- vk_free2(&device->alloc, pAllocator, mem);
+ vk_object_free(&device->vk, pAllocator, mem);
return result;
}
return;
tu_bo_finish(device, &mem->bo);
- vk_free2(&device->alloc, pAllocator, mem);
+ vk_object_free(&device->vk, pAllocator, mem);
}
VkResult
TU_FROM_HANDLE(tu_image, image, _image);
pMemoryRequirements->memoryTypeBits = 1;
- pMemoryRequirements->size = image->layout.size;
- pMemoryRequirements->alignment = image->layout.base_align;
+ pMemoryRequirements->size = image->total_size;
+ pMemoryRequirements->alignment = image->layout[0].base_align;
}
void
// Queue semaphore functions
+
+static void
+tu_semaphore_part_destroy(struct tu_device *device,
+ struct tu_semaphore_part *part)
+{
+ switch(part->kind) {
+ case TU_SEMAPHORE_NONE:
+ break;
+ case TU_SEMAPHORE_SYNCOBJ:
+ drmSyncobjDestroy(device->physical_device->local_fd, part->syncobj);
+ break;
+ }
+ part->kind = TU_SEMAPHORE_NONE;
+}
+
+static void
+tu_semaphore_remove_temp(struct tu_device *device,
+ struct tu_semaphore *sem)
+{
+ if (sem->temporary.kind != TU_SEMAPHORE_NONE) {
+ tu_semaphore_part_destroy(device, &sem->temporary);
+ }
+}
+
VkResult
tu_CreateSemaphore(VkDevice _device,
const VkSemaphoreCreateInfo *pCreateInfo,
TU_FROM_HANDLE(tu_device, device, _device);
struct tu_semaphore *sem =
- vk_alloc2(&device->alloc, pAllocator, sizeof(*sem), 8,
- VK_SYSTEM_ALLOCATION_SCOPE_OBJECT);
+ vk_object_alloc(&device->vk, pAllocator, sizeof(*sem),
+ VK_OBJECT_TYPE_SEMAPHORE);
if (!sem)
return vk_error(device->instance, VK_ERROR_OUT_OF_HOST_MEMORY);
+ const VkExportSemaphoreCreateInfo *export =
+ vk_find_struct_const(pCreateInfo->pNext, EXPORT_SEMAPHORE_CREATE_INFO);
+ VkExternalSemaphoreHandleTypeFlags handleTypes =
+ export ? export->handleTypes : 0;
+
+ sem->permanent.kind = TU_SEMAPHORE_NONE;
+ sem->temporary.kind = TU_SEMAPHORE_NONE;
+
+ if (handleTypes) {
+ if (drmSyncobjCreate(device->physical_device->local_fd, 0, &sem->permanent.syncobj) < 0) {
+ vk_free2(&device->vk.alloc, pAllocator, sem);
+ return VK_ERROR_OUT_OF_HOST_MEMORY;
+ }
+ sem->permanent.kind = TU_SEMAPHORE_SYNCOBJ;
+ }
*pSemaphore = tu_semaphore_to_handle(sem);
return VK_SUCCESS;
}
if (!_semaphore)
return;
- vk_free2(&device->alloc, pAllocator, sem);
+ tu_semaphore_part_destroy(device, &sem->permanent);
+ tu_semaphore_part_destroy(device, &sem->temporary);
+
+ vk_object_free(&device->vk, pAllocator, sem);
}
VkResult
VkEvent *pEvent)
{
TU_FROM_HANDLE(tu_device, device, _device);
- struct tu_event *event =
- vk_alloc2(&device->alloc, pAllocator, sizeof(*event), 8,
- VK_SYSTEM_ALLOCATION_SCOPE_OBJECT);
+ struct tu_event *event =
+ vk_object_alloc(&device->vk, pAllocator, sizeof(*event),
+ VK_OBJECT_TYPE_EVENT);
if (!event)
return vk_error(device->instance, VK_ERROR_OUT_OF_HOST_MEMORY);
fail_map:
tu_bo_finish(device, &event->bo);
fail_alloc:
- vk_free2(&device->alloc, pAllocator, event);
+ vk_object_free(&device->vk, pAllocator, event);
return vk_error(device->instance, VK_ERROR_OUT_OF_HOST_MEMORY);
}
return;
tu_bo_finish(device, &event->bo);
- vk_free2(&device->alloc, pAllocator, event);
+ vk_object_free(&device->vk, pAllocator, event);
}
VkResult
assert(pCreateInfo->sType == VK_STRUCTURE_TYPE_BUFFER_CREATE_INFO);
- buffer = vk_alloc2(&device->alloc, pAllocator, sizeof(*buffer), 8,
- VK_SYSTEM_ALLOCATION_SCOPE_OBJECT);
+ buffer = vk_object_alloc(&device->vk, pAllocator, sizeof(*buffer),
+ VK_OBJECT_TYPE_BUFFER);
if (buffer == NULL)
return vk_error(device->instance, VK_ERROR_OUT_OF_HOST_MEMORY);
if (!buffer)
return;
- vk_free2(&device->alloc, pAllocator, buffer);
+ vk_object_free(&device->vk, pAllocator, buffer);
}
VkResult
VkFramebuffer *pFramebuffer)
{
TU_FROM_HANDLE(tu_device, device, _device);
+ TU_FROM_HANDLE(tu_render_pass, pass, pCreateInfo->renderPass);
struct tu_framebuffer *framebuffer;
assert(pCreateInfo->sType == VK_STRUCTURE_TYPE_FRAMEBUFFER_CREATE_INFO);
size_t size = sizeof(*framebuffer) + sizeof(struct tu_attachment_info) *
pCreateInfo->attachmentCount;
- framebuffer = vk_alloc2(&device->alloc, pAllocator, size, 8,
- VK_SYSTEM_ALLOCATION_SCOPE_OBJECT);
+ framebuffer = vk_object_alloc(&device->vk, pAllocator, size,
+ VK_OBJECT_TYPE_FRAMEBUFFER);
if (framebuffer == NULL)
return vk_error(device->instance, VK_ERROR_OUT_OF_HOST_MEMORY);
framebuffer->attachments[i].attachment = iview;
}
+ tu_framebuffer_tiling_config(framebuffer, device, pass);
+
*pFramebuffer = tu_framebuffer_to_handle(framebuffer);
return VK_SUCCESS;
}
if (!fb)
return;
- vk_free2(&device->alloc, pAllocator, fb);
-}
-
-static enum a6xx_tex_clamp
-tu6_tex_wrap(VkSamplerAddressMode address_mode)
-{
- switch (address_mode) {
- case VK_SAMPLER_ADDRESS_MODE_REPEAT:
- return A6XX_TEX_REPEAT;
- case VK_SAMPLER_ADDRESS_MODE_MIRRORED_REPEAT:
- return A6XX_TEX_MIRROR_REPEAT;
- case VK_SAMPLER_ADDRESS_MODE_CLAMP_TO_EDGE:
- return A6XX_TEX_CLAMP_TO_EDGE;
- case VK_SAMPLER_ADDRESS_MODE_CLAMP_TO_BORDER:
- return A6XX_TEX_CLAMP_TO_BORDER;
- case VK_SAMPLER_ADDRESS_MODE_MIRROR_CLAMP_TO_EDGE:
- /* only works for PoT.. need to emulate otherwise! */
- return A6XX_TEX_MIRROR_CLAMP;
- default:
- unreachable("illegal tex wrap mode");
- break;
- }
-}
-static enum a6xx_tex_filter
-tu6_tex_filter(VkFilter filter, unsigned aniso)
-{
- switch (filter) {
- case VK_FILTER_NEAREST:
- return A6XX_TEX_NEAREST;
- case VK_FILTER_LINEAR:
- return aniso ? A6XX_TEX_ANISO : A6XX_TEX_LINEAR;
- case VK_FILTER_CUBIC_EXT:
- return A6XX_TEX_CUBIC;
- default:
- unreachable("illegal texture filter");
- break;
- }
-}
-
-static inline enum adreno_compare_func
-tu6_compare_func(VkCompareOp op)
-{
- return (enum adreno_compare_func) op;
+ vk_object_free(&device->vk, pAllocator, fb);
}
static void
struct tu_sampler *sampler,
const VkSamplerCreateInfo *pCreateInfo)
{
+ const struct VkSamplerReductionModeCreateInfo *reduction =
+ vk_find_struct_const(pCreateInfo->pNext, SAMPLER_REDUCTION_MODE_CREATE_INFO);
+ const struct VkSamplerYcbcrConversionInfo *ycbcr_conversion =
+ vk_find_struct_const(pCreateInfo->pNext, SAMPLER_YCBCR_CONVERSION_INFO);
+
unsigned aniso = pCreateInfo->anisotropyEnable ?
util_last_bit(MIN2((uint32_t)pCreateInfo->maxAnisotropy >> 1, 8)) : 0;
bool miplinear = (pCreateInfo->mipmapMode == VK_SAMPLER_MIPMAP_MODE_LINEAR);
+ float min_lod = CLAMP(pCreateInfo->minLod, 0.0f, 4095.0f / 256.0f);
+ float max_lod = CLAMP(pCreateInfo->maxLod, 0.0f, 4095.0f / 256.0f);
sampler->descriptor[0] =
COND(miplinear, A6XX_TEX_SAMP_0_MIPFILTER_LINEAR_NEAR) |
sampler->descriptor[1] =
/* COND(!cso->seamless_cube_map, A6XX_TEX_SAMP_1_CUBEMAPSEAMLESSFILTOFF) | */
COND(pCreateInfo->unnormalizedCoordinates, A6XX_TEX_SAMP_1_UNNORM_COORDS) |
- A6XX_TEX_SAMP_1_MIN_LOD(pCreateInfo->minLod) |
- A6XX_TEX_SAMP_1_MAX_LOD(pCreateInfo->maxLod) |
+ A6XX_TEX_SAMP_1_MIN_LOD(min_lod) |
+ A6XX_TEX_SAMP_1_MAX_LOD(max_lod) |
COND(pCreateInfo->compareEnable,
A6XX_TEX_SAMP_1_COMPARE_FUNC(tu6_compare_func(pCreateInfo->compareOp)));
/* This is an offset into the border_color BO, which we fill with all the
sizeof(struct bcolor_entry));
sampler->descriptor[3] = 0;
+ if (reduction) {
+ sampler->descriptor[2] |= A6XX_TEX_SAMP_2_REDUCTION_MODE(
+ tu6_reduction_mode(reduction->reductionMode));
+ }
+
+ sampler->ycbcr_sampler = ycbcr_conversion ?
+ tu_sampler_ycbcr_conversion_from_handle(ycbcr_conversion->conversion) : NULL;
+
+ if (sampler->ycbcr_sampler &&
+ sampler->ycbcr_sampler->chroma_filter == VK_FILTER_LINEAR) {
+ sampler->descriptor[2] |= A6XX_TEX_SAMP_2_CHROMA_LINEAR;
+ }
+
/* TODO:
* A6XX_TEX_SAMP_1_MIPFILTER_LINEAR_FAR disables mipmapping, but vk has no NONE mipfilter?
*/
assert(pCreateInfo->sType == VK_STRUCTURE_TYPE_SAMPLER_CREATE_INFO);
- sampler = vk_alloc2(&device->alloc, pAllocator, sizeof(*sampler), 8,
- VK_SYSTEM_ALLOCATION_SCOPE_OBJECT);
+ sampler = vk_object_alloc(&device->vk, pAllocator, sizeof(*sampler),
+ VK_OBJECT_TYPE_SAMPLER);
if (!sampler)
return vk_error(device->instance, VK_ERROR_OUT_OF_HOST_MEMORY);
if (!sampler)
return;
- vk_free2(&device->alloc, pAllocator, sampler);
+
+ vk_object_free(&device->vk, pAllocator, sampler);
}
/* vk_icd.h does not declare this function, so we declare it here to
return VK_SUCCESS;
}
+VkResult
+tu_ImportFenceFdKHR(VkDevice _device,
+ const VkImportFenceFdInfoKHR *pImportFenceFdInfo)
+{
+ tu_stub();
+
+ return VK_SUCCESS;
+}
+
+VkResult
+tu_GetFenceFdKHR(VkDevice _device,
+ const VkFenceGetFdInfoKHR *pGetFdInfo,
+ int *pFd)
+{
+ tu_stub();
+
+ return VK_SUCCESS;
+}
+
+VkResult
+tu_ImportSemaphoreFdKHR(VkDevice _device,
+ const VkImportSemaphoreFdInfoKHR *pImportSemaphoreFdInfo)
+{
+ TU_FROM_HANDLE(tu_device, device, _device);
+ TU_FROM_HANDLE(tu_semaphore, sem, pImportSemaphoreFdInfo->semaphore);
+ int ret;
+ struct tu_semaphore_part *dst = NULL;
+
+ if (pImportSemaphoreFdInfo->flags & VK_SEMAPHORE_IMPORT_TEMPORARY_BIT) {
+ dst = &sem->temporary;
+ } else {
+ dst = &sem->permanent;
+ }
+
+ uint32_t syncobj = dst->kind == TU_SEMAPHORE_SYNCOBJ ? dst->syncobj : 0;
+
+ switch(pImportSemaphoreFdInfo->handleType) {
+ case VK_EXTERNAL_SEMAPHORE_HANDLE_TYPE_OPAQUE_FD_BIT: {
+ uint32_t old_syncobj = syncobj;
+ ret = drmSyncobjFDToHandle(device->physical_device->local_fd, pImportSemaphoreFdInfo->fd, &syncobj);
+ if (ret == 0) {
+ close(pImportSemaphoreFdInfo->fd);
+ if (old_syncobj)
+ drmSyncobjDestroy(device->physical_device->local_fd, old_syncobj);
+ }
+ break;
+ }
+ case VK_EXTERNAL_SEMAPHORE_HANDLE_TYPE_SYNC_FD_BIT: {
+ if (!syncobj) {
+ ret = drmSyncobjCreate(device->physical_device->local_fd, 0, &syncobj);
+ if (ret)
+ break;
+ }
+ if (pImportSemaphoreFdInfo->fd == -1) {
+ ret = drmSyncobjSignal(device->physical_device->local_fd, &syncobj, 1);
+ } else {
+ ret = drmSyncobjImportSyncFile(device->physical_device->local_fd, syncobj, pImportSemaphoreFdInfo->fd);
+ }
+ if (!ret)
+ close(pImportSemaphoreFdInfo->fd);
+ break;
+ }
+ default:
+ unreachable("Unhandled semaphore handle type");
+ }
+
+ if (ret) {
+ return VK_ERROR_INVALID_EXTERNAL_HANDLE;
+ }
+ dst->syncobj = syncobj;
+ dst->kind = TU_SEMAPHORE_SYNCOBJ;
+
+ return VK_SUCCESS;
+}
+
+VkResult
+tu_GetSemaphoreFdKHR(VkDevice _device,
+ const VkSemaphoreGetFdInfoKHR *pGetFdInfo,
+ int *pFd)
+{
+ TU_FROM_HANDLE(tu_device, device, _device);
+ TU_FROM_HANDLE(tu_semaphore, sem, pGetFdInfo->semaphore);
+ int ret;
+ uint32_t syncobj_handle;
+
+ if (sem->temporary.kind != TU_SEMAPHORE_NONE) {
+ assert(sem->temporary.kind == TU_SEMAPHORE_SYNCOBJ);
+ syncobj_handle = sem->temporary.syncobj;
+ } else {
+ assert(sem->permanent.kind == TU_SEMAPHORE_SYNCOBJ);
+ syncobj_handle = sem->permanent.syncobj;
+ }
+
+ switch(pGetFdInfo->handleType) {
+ case VK_EXTERNAL_SEMAPHORE_HANDLE_TYPE_OPAQUE_FD_BIT:
+ ret = drmSyncobjHandleToFD(device->physical_device->local_fd, syncobj_handle, pFd);
+ break;
+ case VK_EXTERNAL_SEMAPHORE_HANDLE_TYPE_SYNC_FD_BIT:
+ ret = drmSyncobjExportSyncFile(device->physical_device->local_fd, syncobj_handle, pFd);
+ if (!ret) {
+ if (sem->temporary.kind != TU_SEMAPHORE_NONE) {
+ tu_semaphore_part_destroy(device, &sem->temporary);
+ } else {
+ drmSyncobjReset(device->physical_device->local_fd, &syncobj_handle, 1);
+ }
+ }
+ break;
+ default:
+ unreachable("Unhandled semaphore handle type");
+ }
+
+ if (ret)
+ return vk_error(device->instance, VK_ERROR_INVALID_EXTERNAL_HANDLE);
+ return VK_SUCCESS;
+}
+
+
+static bool tu_has_syncobj(struct tu_physical_device *pdev)
+{
+ uint64_t value;
+ if (drmGetCap(pdev->local_fd, DRM_CAP_SYNCOBJ, &value))
+ return false;
+ return value && pdev->msm_major_version == 1 && pdev->msm_minor_version >= 6;
+}
+
void
tu_GetPhysicalDeviceExternalSemaphoreProperties(
VkPhysicalDevice physicalDevice,
const VkPhysicalDeviceExternalSemaphoreInfo *pExternalSemaphoreInfo,
VkExternalSemaphoreProperties *pExternalSemaphoreProperties)
{
- pExternalSemaphoreProperties->exportFromImportedHandleTypes = 0;
- pExternalSemaphoreProperties->compatibleHandleTypes = 0;
- pExternalSemaphoreProperties->externalSemaphoreFeatures = 0;
+ TU_FROM_HANDLE(tu_physical_device, pdev, physicalDevice);
+
+ if (tu_has_syncobj(pdev) &&
+ (pExternalSemaphoreInfo->handleType == VK_EXTERNAL_SEMAPHORE_HANDLE_TYPE_OPAQUE_FD_BIT ||
+ pExternalSemaphoreInfo->handleType == VK_EXTERNAL_SEMAPHORE_HANDLE_TYPE_SYNC_FD_BIT)) {
+ pExternalSemaphoreProperties->exportFromImportedHandleTypes = VK_EXTERNAL_SEMAPHORE_HANDLE_TYPE_OPAQUE_FD_BIT | VK_EXTERNAL_SEMAPHORE_HANDLE_TYPE_SYNC_FD_BIT;
+ pExternalSemaphoreProperties->compatibleHandleTypes = VK_EXTERNAL_SEMAPHORE_HANDLE_TYPE_OPAQUE_FD_BIT | VK_EXTERNAL_SEMAPHORE_HANDLE_TYPE_SYNC_FD_BIT;
+ pExternalSemaphoreProperties->externalSemaphoreFeatures = VK_EXTERNAL_SEMAPHORE_FEATURE_EXPORTABLE_BIT |
+ VK_EXTERNAL_SEMAPHORE_FEATURE_IMPORTABLE_BIT;
+ } else {
+ pExternalSemaphoreProperties->exportFromImportedHandleTypes = 0;
+ pExternalSemaphoreProperties->compatibleHandleTypes = 0;
+ pExternalSemaphoreProperties->externalSemaphoreFeatures = 0;
+ }
}
void
else
pMultisampleProperties->maxSampleLocationGridSize = (VkExtent2D){ 0, 0 };
}
+
+
+VkResult
+tu_CreatePrivateDataSlotEXT(VkDevice _device,
+ const VkPrivateDataSlotCreateInfoEXT* pCreateInfo,
+ const VkAllocationCallbacks* pAllocator,
+ VkPrivateDataSlotEXT* pPrivateDataSlot)
+{
+ TU_FROM_HANDLE(tu_device, device, _device);
+ return vk_private_data_slot_create(&device->vk,
+ pCreateInfo,
+ pAllocator,
+ pPrivateDataSlot);
+}
+
+void
+tu_DestroyPrivateDataSlotEXT(VkDevice _device,
+ VkPrivateDataSlotEXT privateDataSlot,
+ const VkAllocationCallbacks* pAllocator)
+{
+ TU_FROM_HANDLE(tu_device, device, _device);
+ vk_private_data_slot_destroy(&device->vk, privateDataSlot, pAllocator);
+}
+
+VkResult
+tu_SetPrivateDataEXT(VkDevice _device,
+ VkObjectType objectType,
+ uint64_t objectHandle,
+ VkPrivateDataSlotEXT privateDataSlot,
+ uint64_t data)
+{
+ TU_FROM_HANDLE(tu_device, device, _device);
+ return vk_object_base_set_private_data(&device->vk,
+ objectType,
+ objectHandle,
+ privateDataSlot,
+ data);
+}
+
+void
+tu_GetPrivateDataEXT(VkDevice _device,
+ VkObjectType objectType,
+ uint64_t objectHandle,
+ VkPrivateDataSlotEXT privateDataSlot,
+ uint64_t* pData)
+{
+ TU_FROM_HANDLE(tu_device, device, _device);
+ vk_object_base_get_private_data(&device->vk,
+ objectType,
+ objectHandle,
+ privateDataSlot,
+ pData);
+}