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loader.c
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loader.c
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/*
*
* Copyright (c) 2014-2017 The Khronos Group Inc.
* Copyright (c) 2014-2017 Valve Corporation
* Copyright (c) 2014-2017 LunarG, Inc.
* Copyright (C) 2015 Google Inc.
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*
* Author: Jon Ashburn <jon@lunarg.com>
* Author: Courtney Goeltzenleuchter <courtney@LunarG.com>
* Author: Mark Young <marky@lunarg.com>
*
*/
#define _GNU_SOURCE
#include <stdio.h>
#include <stdlib.h>
#include <stdarg.h>
#include <stdbool.h>
#include <string.h>
#include <stddef.h>
#include <sys/types.h>
#if defined(_WIN32)
#include "dirent_on_windows.h"
#else // _WIN32
#include <dirent.h>
#endif // _WIN32
#include "vk_loader_platform.h"
#include "loader.h"
#include "gpa_helper.h"
#include "debug_report.h"
#include "wsi.h"
#include "vulkan/vk_icd.h"
#include "cJSON.h"
#include "murmurhash.h"
// This is a CMake generated file with #defines for any functions/includes
// that it found present. This is currently necessary to properly determine
// if secure_getenv or __secure_getenv are present
#if !defined(VULKAN_NON_CMAKE_BUILD)
#include "loader_cmake_config.h"
#endif // !defined(VULKAN_NON_CMAKE_BUILD)
// Generated file containing all the extension data
#include "vk_loader_extensions.c"
struct loader_struct loader = {0};
// TLS for instance for alloc/free callbacks
THREAD_LOCAL_DECL struct loader_instance *tls_instance;
static size_t loader_platform_combine_path(char *dest, size_t len, ...);
struct loader_phys_dev_per_icd {
uint32_t count;
VkPhysicalDevice *phys_devs;
struct loader_icd_term *this_icd_term;
};
enum loader_debug {
LOADER_INFO_BIT = 0x01,
LOADER_WARN_BIT = 0x02,
LOADER_PERF_BIT = 0x04,
LOADER_ERROR_BIT = 0x08,
LOADER_DEBUG_BIT = 0x10,
};
uint32_t g_loader_debug = 0;
uint32_t g_loader_log_msgs = 0;
// thread safety lock for accessing global data structures such as "loader"
// all entrypoints on the instance chain need to be locked except GPA
// additionally CreateDevice and DestroyDevice needs to be locked
loader_platform_thread_mutex loader_lock;
loader_platform_thread_mutex loader_json_lock;
const char *std_validation_str = "VK_LAYER_LUNARG_standard_validation";
LOADER_PLATFORM_THREAD_ONCE_DECLARATION(once_init);
void *loader_instance_heap_alloc(const struct loader_instance *instance, size_t size, VkSystemAllocationScope alloc_scope) {
void *pMemory = NULL;
#if (DEBUG_DISABLE_APP_ALLOCATORS == 1)
{
#else
if (instance && instance->alloc_callbacks.pfnAllocation) {
// These are internal structures, so it's best to align everything to
// the largest unit size which is the size of a uint64_t.
pMemory = instance->alloc_callbacks.pfnAllocation(instance->alloc_callbacks.pUserData, size, sizeof(uint64_t), alloc_scope);
} else {
#endif
pMemory = malloc(size);
}
return pMemory;
}
void loader_instance_heap_free(const struct loader_instance *instance, void *pMemory) {
if (pMemory != NULL) {
#if (DEBUG_DISABLE_APP_ALLOCATORS == 1)
{
#else
if (instance && instance->alloc_callbacks.pfnFree) {
instance->alloc_callbacks.pfnFree(instance->alloc_callbacks.pUserData, pMemory);
} else {
#endif
free(pMemory);
}
}
}
void *loader_instance_heap_realloc(const struct loader_instance *instance, void *pMemory, size_t orig_size, size_t size,
VkSystemAllocationScope alloc_scope) {
void *pNewMem = NULL;
if (pMemory == NULL || orig_size == 0) {
pNewMem = loader_instance_heap_alloc(instance, size, alloc_scope);
} else if (size == 0) {
loader_instance_heap_free(instance, pMemory);
#if (DEBUG_DISABLE_APP_ALLOCATORS == 1)
#else
} else if (instance && instance->alloc_callbacks.pfnReallocation) {
// These are internal structures, so it's best to align everything to
// the largest unit size which is the size of a uint64_t.
pNewMem = instance->alloc_callbacks.pfnReallocation(instance->alloc_callbacks.pUserData, pMemory, size, sizeof(uint64_t),
alloc_scope);
#endif
} else {
pNewMem = realloc(pMemory, size);
}
return pNewMem;
}
void *loader_instance_tls_heap_alloc(size_t size) {
return loader_instance_heap_alloc(tls_instance, size, VK_SYSTEM_ALLOCATION_SCOPE_COMMAND);
}
void loader_instance_tls_heap_free(void *pMemory) { loader_instance_heap_free(tls_instance, pMemory); }
void *loader_device_heap_alloc(const struct loader_device *device, size_t size, VkSystemAllocationScope alloc_scope) {
void *pMemory = NULL;
#if (DEBUG_DISABLE_APP_ALLOCATORS == 1)
{
#else
if (device && device->alloc_callbacks.pfnAllocation) {
// These are internal structures, so it's best to align everything to
// the largest unit size which is the size of a uint64_t.
pMemory = device->alloc_callbacks.pfnAllocation(device->alloc_callbacks.pUserData, size, sizeof(uint64_t), alloc_scope);
} else {
#endif
pMemory = malloc(size);
}
return pMemory;
}
void loader_device_heap_free(const struct loader_device *device, void *pMemory) {
if (pMemory != NULL) {
#if (DEBUG_DISABLE_APP_ALLOCATORS == 1)
{
#else
if (device && device->alloc_callbacks.pfnFree) {
device->alloc_callbacks.pfnFree(device->alloc_callbacks.pUserData, pMemory);
} else {
#endif
free(pMemory);
}
}
}
void *loader_device_heap_realloc(const struct loader_device *device, void *pMemory, size_t orig_size, size_t size,
VkSystemAllocationScope alloc_scope) {
void *pNewMem = NULL;
if (pMemory == NULL || orig_size == 0) {
pNewMem = loader_device_heap_alloc(device, size, alloc_scope);
} else if (size == 0) {
loader_device_heap_free(device, pMemory);
#if (DEBUG_DISABLE_APP_ALLOCATORS == 1)
#else
} else if (device && device->alloc_callbacks.pfnReallocation) {
// These are internal structures, so it's best to align everything to
// the largest unit size which is the size of a uint64_t.
pNewMem = device->alloc_callbacks.pfnReallocation(device->alloc_callbacks.pUserData, pMemory, size, sizeof(uint64_t),
alloc_scope);
#endif
} else {
pNewMem = realloc(pMemory, size);
}
return pNewMem;
}
// Environment variables
#if defined(__linux__)
static inline char *loader_getenv(const char *name, const struct loader_instance *inst) {
// No allocation of memory necessary for Linux, but we should at least touch
// the inst pointer to get rid of compiler warnings.
(void)inst;
return getenv(name);
}
static inline char *loader_secure_getenv(const char *name, const struct loader_instance *inst) {
// No allocation of memory necessary for Linux, but we should at least touch
// the inst pointer to get rid of compiler warnings.
(void)inst;
#ifdef HAVE_SECURE_GETENV
return secure_getenv(name);
#elif defined(HAVE___SECURE_GETENV)
return __secure_getenv(name);
#else
#pragma message("Warning: Falling back to non-secure getenv for environmental lookups! Consider" \
" updating to a different libc.")
return loader_getenv(name, inst);
#endif
}
static inline void loader_free_getenv(char *val, const struct loader_instance *inst) {
// No freeing of memory necessary for Linux, but we should at least touch
// the val and inst pointers to get rid of compiler warnings.
(void)val;
(void)inst;
}
#elif defined(WIN32)
static inline char *loader_getenv(const char *name, const struct loader_instance *inst) {
char *retVal;
DWORD valSize;
valSize = GetEnvironmentVariableA(name, NULL, 0);
// valSize DOES include the null terminator, so for any set variable
// will always be at least 1. If it's 0, the variable wasn't set.
if (valSize == 0) return NULL;
// Allocate the space necessary for the registry entry
if (NULL != inst && NULL != inst->alloc_callbacks.pfnAllocation) {
retVal = (char *)inst->alloc_callbacks.pfnAllocation(inst->alloc_callbacks.pUserData, valSize, sizeof(char *),
VK_SYSTEM_ALLOCATION_SCOPE_COMMAND);
} else {
retVal = (char *)malloc(valSize);
}
if (NULL != retVal) {
GetEnvironmentVariableA(name, retVal, valSize);
}
return retVal;
}
static inline char *loader_secure_getenv(const char *name, const struct loader_instance *inst) {
// No secure version for Winddows as far as I know
return loader_getenv(name, inst);
}
static inline void loader_free_getenv(char *val, const struct loader_instance *inst) {
if (NULL != inst && NULL != inst->alloc_callbacks.pfnFree) {
inst->alloc_callbacks.pfnFree(inst->alloc_callbacks.pUserData, val);
} else {
free((void *)val);
}
}
#else
static inline char *loader_getenv(const char *name, const struct loader_instance *inst) {
// stub func
(void)inst;
(void)name;
return NULL;
}
static inline void loader_free_getenv(char *val, const struct loader_instance *inst) {
// stub func
(void)val;
(void)inst;
}
#endif
void loader_log(const struct loader_instance *inst, VkFlags msg_type, int32_t msg_code, const char *format, ...) {
char msg[512];
char cmd_line_msg[512];
uint16_t cmd_line_size = sizeof(cmd_line_msg);
va_list ap;
int ret;
va_start(ap, format);
ret = vsnprintf(msg, sizeof(msg), format, ap);
if ((ret >= (int)sizeof(msg)) || ret < 0) {
msg[sizeof(msg) - 1] = '\0';
}
va_end(ap);
if (inst) {
util_DebugReportMessage(inst, msg_type, VK_DEBUG_REPORT_OBJECT_TYPE_INSTANCE_EXT, (uint64_t)(uintptr_t)inst, 0, msg_code,
"loader", msg);
}
if (!(msg_type & g_loader_log_msgs)) {
return;
}
cmd_line_msg[0] = '\0';
va_start(ap, format);
if ((msg_type & LOADER_INFO_BIT) != 0) {
strncat(cmd_line_msg, "INFO", cmd_line_size);
cmd_line_size -= 4;
}
if ((msg_type & LOADER_WARN_BIT) != 0) {
if (cmd_line_size != sizeof(cmd_line_msg)) {
strncat(cmd_line_msg, " | ", cmd_line_size);
cmd_line_size -= 3;
}
strncat(cmd_line_msg, "WARNING", cmd_line_size);
cmd_line_size -= 7;
}
if ((msg_type & LOADER_PERF_BIT) != 0) {
if (cmd_line_size != sizeof(cmd_line_msg)) {
strncat(cmd_line_msg, " | ", cmd_line_size);
cmd_line_size -= 3;
}
strncat(cmd_line_msg, "PERF", cmd_line_size);
cmd_line_size -= 4;
}
if ((msg_type & LOADER_ERROR_BIT) != 0) {
if (cmd_line_size != sizeof(cmd_line_msg)) {
strncat(cmd_line_msg, " | ", cmd_line_size);
cmd_line_size -= 3;
}
strncat(cmd_line_msg, "ERROR", cmd_line_size);
cmd_line_size -= 5;
}
if ((msg_type & LOADER_DEBUG_BIT) != 0) {
if (cmd_line_size != sizeof(cmd_line_msg)) {
strncat(cmd_line_msg, " | ", cmd_line_size);
cmd_line_size -= 3;
}
strncat(cmd_line_msg, "DEBUG", cmd_line_size);
cmd_line_size -= 5;
}
if (cmd_line_size != sizeof(cmd_line_msg)) {
strncat(cmd_line_msg, ": ", cmd_line_size);
cmd_line_size -= 2;
}
strncat(cmd_line_msg, msg, cmd_line_size);
#if defined(WIN32)
OutputDebugString(cmd_line_msg);
OutputDebugString("\n");
#endif
fputs(cmd_line_msg, stderr);
fputc('\n', stderr);
}
VKAPI_ATTR VkResult VKAPI_CALL vkSetInstanceDispatch(VkInstance instance, void *object) {
struct loader_instance *inst = loader_get_instance(instance);
if (!inst) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"vkSetInstanceDispatch: Can not retrieve Instance "
"dispatch table.");
return VK_ERROR_INITIALIZATION_FAILED;
}
loader_set_dispatch(object, inst->disp);
return VK_SUCCESS;
}
VKAPI_ATTR VkResult VKAPI_CALL vkSetDeviceDispatch(VkDevice device, void *object) {
struct loader_device *dev;
struct loader_icd_term *icd_term = loader_get_icd_and_device(device, &dev, NULL);
if (NULL == icd_term) {
return VK_ERROR_INITIALIZATION_FAILED;
}
loader_set_dispatch(object, &dev->loader_dispatch);
return VK_SUCCESS;
}
#if defined(WIN32)
static char *loader_get_next_path(char *path);
// Find the list of registry files (names within a key) in key "location".
//
// This function looks in the registry (hive = DEFAULT_VK_REGISTRY_HIVE) key as
// given in "location"
// for a list or name/values which are added to a returned list (function return
// value).
// The DWORD values within the key must be 0 or they are skipped.
// Function return is a string with a ';' separated list of filenames.
// Function return is NULL if no valid name/value pairs are found in the key,
// or the key is not found.
//
// *reg_data contains a string list of filenames as pointer.
// When done using the returned string list, the caller should free the pointer.
VkResult loaderGetRegistryFiles(const struct loader_instance *inst, char *location, bool use_secondary_hive, char **reg_data) {
LONG rtn_value;
HKEY hive = DEFAULT_VK_REGISTRY_HIVE, key;
DWORD access_flags;
char name[2048];
char *loc = location;
char *next;
DWORD idx;
DWORD name_size = sizeof(name);
DWORD value;
DWORD total_size = 4096;
DWORD value_size = sizeof(value);
VkResult result = VK_SUCCESS;
bool found = false;
if (NULL == reg_data) {
result = VK_ERROR_INITIALIZATION_FAILED;
goto out;
}
while (*loc) {
next = loader_get_next_path(loc);
access_flags = KEY_QUERY_VALUE;
rtn_value = RegOpenKeyEx(hive, loc, 0, access_flags, &key);
if (ERROR_SUCCESS == rtn_value) {
idx = 0;
while ((rtn_value = RegEnumValue(key, idx++, name, &name_size, NULL, NULL, (LPBYTE)&value, &value_size)) ==
ERROR_SUCCESS) {
if (value_size == sizeof(value) && value == 0) {
if (NULL == *reg_data) {
*reg_data = loader_instance_heap_alloc(inst, total_size, VK_SYSTEM_ALLOCATION_SCOPE_INSTANCE);
if (NULL == *reg_data) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loaderGetRegistryFiles: Failed to allocate "
"space for registry data for key %s",
name);
result = VK_ERROR_OUT_OF_HOST_MEMORY;
goto out;
}
*reg_data[0] = '\0';
} else if (strlen(*reg_data) + name_size + 1 > total_size) {
*reg_data = loader_instance_heap_realloc(inst, *reg_data, total_size, total_size * 2,
VK_SYSTEM_ALLOCATION_SCOPE_INSTANCE);
if (NULL == *reg_data) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loaderGetRegistryFiles: Failed to reallocate "
"space for registry value of size %d for key %s",
total_size * 2, name);
result = VK_ERROR_OUT_OF_HOST_MEMORY;
goto out;
}
total_size *= 2;
}
loader_log(inst, VK_DEBUG_REPORT_INFORMATION_BIT_EXT, 0,
"Located json file \"%s\" from registry \"%s\\%s\"", name,
hive == DEFAULT_VK_REGISTRY_HIVE ? DEFAULT_VK_REGISTRY_HIVE_STR : SECONDARY_VK_REGISTRY_HIVE_STR,
location);
if (strlen(*reg_data) == 0) {
(void)snprintf(*reg_data, name_size + 1, "%s", name);
} else {
(void)snprintf(*reg_data + strlen(*reg_data), name_size + 2, "%c%s", PATH_SEPARATOR, name);
}
found = true;
}
name_size = 2048;
}
}
// Advance the location - if the next location is in the secondary hive, then reset the locations and advance the hive
if (use_secondary_hive && (hive == DEFAULT_VK_REGISTRY_HIVE) && (*next == '\0')) {
loc = location;
hive = SECONDARY_VK_REGISTRY_HIVE;
} else {
loc = next;
}
}
if (!found) {
result = VK_ERROR_INITIALIZATION_FAILED;
}
out:
return result;
}
#endif // WIN32
// Combine path elements, separating each element with the platform-specific
// directory separator, and save the combined string to a destination buffer,
// not exceeding the given length. Path elements are given as variable args,
// with a NULL element terminating the list.
//
// \returns the total length of the combined string, not including an ASCII
// NUL termination character. This length may exceed the available storage:
// in this case, the written string will be truncated to avoid a buffer
// overrun, and the return value will greater than or equal to the storage
// size. A NULL argument may be provided as the destination buffer in order
// to determine the required string length without actually writing a string.
static size_t loader_platform_combine_path(char *dest, size_t len, ...) {
size_t required_len = 0;
va_list ap;
const char *component;
va_start(ap, len);
while ((component = va_arg(ap, const char *))) {
if (required_len > 0) {
// This path element is not the first non-empty element; prepend
// a directory separator if space allows
if (dest && required_len + 1 < len) {
(void)snprintf(dest + required_len, len - required_len, "%c", DIRECTORY_SYMBOL);
}
required_len++;
}
if (dest && required_len < len) {
strncpy(dest + required_len, component, len - required_len);
}
required_len += strlen(component);
}
va_end(ap);
// strncpy(3) won't add a NUL terminating byte in the event of truncation.
if (dest && required_len >= len) {
dest[len - 1] = '\0';
}
return required_len;
}
// Given string of three part form "maj.min.pat" convert to a vulkan version number.
static uint32_t loader_make_version(char *vers_str) {
uint32_t vers = 0, major = 0, minor = 0, patch = 0;
char *vers_tok;
if (!vers_str) {
return vers;
}
vers_tok = strtok(vers_str, ".\"\n\r");
if (NULL != vers_tok) {
major = (uint16_t)atoi(vers_tok);
vers_tok = strtok(NULL, ".\"\n\r");
if (NULL != vers_tok) {
minor = (uint16_t)atoi(vers_tok);
vers_tok = strtok(NULL, ".\"\n\r");
if (NULL != vers_tok) {
patch = (uint16_t)atoi(vers_tok);
}
}
}
return VK_MAKE_VERSION(major, minor, patch);
}
bool compare_vk_extension_properties(const VkExtensionProperties *op1, const VkExtensionProperties *op2) {
return strcmp(op1->extensionName, op2->extensionName) == 0 ? true : false;
}
// Search the given ext_array for an extension matching the given vk_ext_prop
bool has_vk_extension_property_array(const VkExtensionProperties *vk_ext_prop, const uint32_t count,
const VkExtensionProperties *ext_array) {
for (uint32_t i = 0; i < count; i++) {
if (compare_vk_extension_properties(vk_ext_prop, &ext_array[i])) return true;
}
return false;
}
// Search the given ext_list for an extension matching the given vk_ext_prop
bool has_vk_extension_property(const VkExtensionProperties *vk_ext_prop, const struct loader_extension_list *ext_list) {
for (uint32_t i = 0; i < ext_list->count; i++) {
if (compare_vk_extension_properties(&ext_list->list[i], vk_ext_prop)) return true;
}
return false;
}
// Search the given ext_list for a device extension matching the given ext_prop
bool has_vk_dev_ext_property(const VkExtensionProperties *ext_prop, const struct loader_device_extension_list *ext_list) {
for (uint32_t i = 0; i < ext_list->count; i++) {
if (compare_vk_extension_properties(&ext_list->list[i].props, ext_prop)) return true;
}
return false;
}
// Search the given layer list for a layer matching the given layer name
static struct loader_layer_properties *loader_get_layer_property(const char *name, const struct loader_layer_list *layer_list) {
for (uint32_t i = 0; i < layer_list->count; i++) {
const VkLayerProperties *item = &layer_list->list[i].info;
if (strcmp(name, item->layerName) == 0) return &layer_list->list[i];
}
return NULL;
}
// Get the next unused layer property in the list. Init the property to zero.
static struct loader_layer_properties *loader_get_next_layer_property(const struct loader_instance *inst,
struct loader_layer_list *layer_list) {
if (layer_list->capacity == 0) {
layer_list->list =
loader_instance_heap_alloc(inst, sizeof(struct loader_layer_properties) * 64, VK_SYSTEM_ALLOCATION_SCOPE_INSTANCE);
if (layer_list->list == NULL) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_get_next_layer_property: Out of memory can "
"not add any layer properties to list");
return NULL;
}
memset(layer_list->list, 0, sizeof(struct loader_layer_properties) * 64);
layer_list->capacity = sizeof(struct loader_layer_properties) * 64;
}
// Ensure enough room to add an entry
if ((layer_list->count + 1) * sizeof(struct loader_layer_properties) > layer_list->capacity) {
layer_list->list = loader_instance_heap_realloc(inst, layer_list->list, layer_list->capacity, layer_list->capacity * 2,
VK_SYSTEM_ALLOCATION_SCOPE_INSTANCE);
if (layer_list->list == NULL) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_get_next_layer_property: realloc failed for "
"layer list");
return NULL;
}
layer_list->capacity *= 2;
}
layer_list->count++;
return &(layer_list->list[layer_list->count - 1]);
}
// Remove all layer properties entries from the list
void loader_delete_layer_properties(const struct loader_instance *inst, struct loader_layer_list *layer_list) {
uint32_t i, j;
struct loader_device_extension_list *dev_ext_list;
if (!layer_list) return;
for (i = 0; i < layer_list->count; i++) {
loader_destroy_generic_list(inst, (struct loader_generic_list *)&layer_list->list[i].instance_extension_list);
dev_ext_list = &layer_list->list[i].device_extension_list;
if (dev_ext_list->capacity > 0 && NULL != dev_ext_list->list && dev_ext_list->list->entrypoint_count > 0) {
for (j = 0; j < dev_ext_list->list->entrypoint_count; j++) {
loader_instance_heap_free(inst, dev_ext_list->list->entrypoints[j]);
}
loader_instance_heap_free(inst, dev_ext_list->list->entrypoints);
}
loader_destroy_generic_list(inst, (struct loader_generic_list *)dev_ext_list);
}
layer_list->count = 0;
if (layer_list->capacity > 0) {
layer_list->capacity = 0;
loader_instance_heap_free(inst, layer_list->list);
}
}
static VkResult loader_add_instance_extensions(const struct loader_instance *inst,
const PFN_vkEnumerateInstanceExtensionProperties fp_get_props, const char *lib_name,
struct loader_extension_list *ext_list) {
uint32_t i, count = 0;
VkExtensionProperties *ext_props;
VkResult res = VK_SUCCESS;
if (!fp_get_props) {
// No EnumerateInstanceExtensionProperties defined
goto out;
}
res = fp_get_props(NULL, &count, NULL);
if (res != VK_SUCCESS) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_add_instance_extensions: Error getting Instance "
"extension count from %s",
lib_name);
goto out;
}
if (count == 0) {
// No ExtensionProperties to report
goto out;
}
ext_props = loader_stack_alloc(count * sizeof(VkExtensionProperties));
if (NULL == ext_props) {
res = VK_ERROR_OUT_OF_HOST_MEMORY;
goto out;
}
res = fp_get_props(NULL, &count, ext_props);
if (res != VK_SUCCESS) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_add_instance_extensions: Error getting Instance "
"extensions from %s",
lib_name);
goto out;
}
for (i = 0; i < count; i++) {
char spec_version[64];
bool ext_unsupported = wsi_unsupported_instance_extension(&ext_props[i]);
if (!ext_unsupported) {
(void)snprintf(spec_version, sizeof(spec_version), "%d.%d.%d", VK_MAJOR(ext_props[i].specVersion),
VK_MINOR(ext_props[i].specVersion), VK_PATCH(ext_props[i].specVersion));
loader_log(inst, VK_DEBUG_REPORT_DEBUG_BIT_EXT, 0, "Instance Extension: %s (%s) version %s", ext_props[i].extensionName,
lib_name, spec_version);
res = loader_add_to_ext_list(inst, ext_list, 1, &ext_props[i]);
if (res != VK_SUCCESS) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_add_instance_extensions: Failed to add %s "
"to Instance extension list",
lib_name);
goto out;
}
}
}
out:
return res;
}
// Initialize ext_list with the physical device extensions.
// The extension properties are passed as inputs in count and ext_props.
static VkResult loader_init_device_extensions(const struct loader_instance *inst, struct loader_physical_device_term *phys_dev_term,
uint32_t count, VkExtensionProperties *ext_props,
struct loader_extension_list *ext_list) {
VkResult res;
uint32_t i;
res = loader_init_generic_list(inst, (struct loader_generic_list *)ext_list, sizeof(VkExtensionProperties));
if (VK_SUCCESS != res) {
return res;
}
for (i = 0; i < count; i++) {
char spec_version[64];
(void)snprintf(spec_version, sizeof(spec_version), "%d.%d.%d", VK_MAJOR(ext_props[i].specVersion),
VK_MINOR(ext_props[i].specVersion), VK_PATCH(ext_props[i].specVersion));
loader_log(inst, VK_DEBUG_REPORT_DEBUG_BIT_EXT, 0, "Device Extension: %s (%s) version %s", ext_props[i].extensionName,
phys_dev_term->this_icd_term->scanned_icd->lib_name, spec_version);
res = loader_add_to_ext_list(inst, ext_list, 1, &ext_props[i]);
if (res != VK_SUCCESS) return res;
}
return VK_SUCCESS;
}
VkResult loader_add_device_extensions(const struct loader_instance *inst,
PFN_vkEnumerateDeviceExtensionProperties fpEnumerateDeviceExtensionProperties,
VkPhysicalDevice physical_device, const char *lib_name,
struct loader_extension_list *ext_list) {
uint32_t i, count;
VkResult res;
VkExtensionProperties *ext_props;
res = fpEnumerateDeviceExtensionProperties(physical_device, NULL, &count, NULL);
if (res == VK_SUCCESS && count > 0) {
ext_props = loader_stack_alloc(count * sizeof(VkExtensionProperties));
if (!ext_props) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_add_device_extensions: Failed to allocate space"
" for device extension properties.");
return VK_ERROR_OUT_OF_HOST_MEMORY;
}
res = fpEnumerateDeviceExtensionProperties(physical_device, NULL, &count, ext_props);
if (res != VK_SUCCESS) {
return res;
}
for (i = 0; i < count; i++) {
char spec_version[64];
(void)snprintf(spec_version, sizeof(spec_version), "%d.%d.%d", VK_MAJOR(ext_props[i].specVersion),
VK_MINOR(ext_props[i].specVersion), VK_PATCH(ext_props[i].specVersion));
loader_log(inst, VK_DEBUG_REPORT_DEBUG_BIT_EXT, 0, "Device Extension: %s (%s) version %s", ext_props[i].extensionName,
lib_name, spec_version);
res = loader_add_to_ext_list(inst, ext_list, 1, &ext_props[i]);
if (res != VK_SUCCESS) {
return res;
}
}
} else {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_add_device_extensions: Error getting physical "
"device extension info count from library %s",
lib_name);
return res;
}
return VK_SUCCESS;
}
VkResult loader_init_generic_list(const struct loader_instance *inst, struct loader_generic_list *list_info, size_t element_size) {
size_t capacity = 32 * element_size;
list_info->count = 0;
list_info->capacity = 0;
list_info->list = loader_instance_heap_alloc(inst, capacity, VK_SYSTEM_ALLOCATION_SCOPE_INSTANCE);
if (list_info->list == NULL) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_init_generic_list: Failed to allocate space "
"for generic list");
return VK_ERROR_OUT_OF_HOST_MEMORY;
}
memset(list_info->list, 0, capacity);
list_info->capacity = capacity;
return VK_SUCCESS;
}
void loader_destroy_generic_list(const struct loader_instance *inst, struct loader_generic_list *list) {
loader_instance_heap_free(inst, list->list);
list->count = 0;
list->capacity = 0;
}
// Append non-duplicate extension properties defined in props to the given ext_list.
// Return - Vk_SUCCESS on success
VkResult loader_add_to_ext_list(const struct loader_instance *inst, struct loader_extension_list *ext_list,
uint32_t prop_list_count, const VkExtensionProperties *props) {
uint32_t i;
const VkExtensionProperties *cur_ext;
if (ext_list->list == NULL || ext_list->capacity == 0) {
VkResult res = loader_init_generic_list(inst, (struct loader_generic_list *)ext_list, sizeof(VkExtensionProperties));
if (VK_SUCCESS != res) {
return res;
}
}
for (i = 0; i < prop_list_count; i++) {
cur_ext = &props[i];
// look for duplicates
if (has_vk_extension_property(cur_ext, ext_list)) {
continue;
}
// add to list at end
// check for enough capacity
if (ext_list->count * sizeof(VkExtensionProperties) >= ext_list->capacity) {
ext_list->list = loader_instance_heap_realloc(inst, ext_list->list, ext_list->capacity, ext_list->capacity * 2,
VK_SYSTEM_ALLOCATION_SCOPE_INSTANCE);
if (ext_list->list == NULL) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_add_to_ext_list: Failed to reallocate "
"space for extension list");
return VK_ERROR_OUT_OF_HOST_MEMORY;
}
// double capacity
ext_list->capacity *= 2;
}
memcpy(&ext_list->list[ext_list->count], cur_ext, sizeof(VkExtensionProperties));
ext_list->count++;
}
return VK_SUCCESS;
}
// Append one extension property defined in props with entrypoints defined in entries to the given
// ext_list. Do not append if a duplicate.
// Return - Vk_SUCCESS on success
VkResult loader_add_to_dev_ext_list(const struct loader_instance *inst, struct loader_device_extension_list *ext_list,
const VkExtensionProperties *props, uint32_t entry_count, char **entrys) {
uint32_t idx;
if (ext_list->list == NULL || ext_list->capacity == 0) {
VkResult res = loader_init_generic_list(inst, (struct loader_generic_list *)ext_list, sizeof(struct loader_dev_ext_props));
if (VK_SUCCESS != res) {
return res;
}
}
// look for duplicates
if (has_vk_dev_ext_property(props, ext_list)) {
return VK_SUCCESS;
}
idx = ext_list->count;
// add to list at end
// check for enough capacity
if (idx * sizeof(struct loader_dev_ext_props) >= ext_list->capacity) {
ext_list->list = loader_instance_heap_realloc(inst, ext_list->list, ext_list->capacity, ext_list->capacity * 2,
VK_SYSTEM_ALLOCATION_SCOPE_INSTANCE);
if (ext_list->list == NULL) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_add_to_dev_ext_list: Failed to reallocate "
"space for device extension list");
return VK_ERROR_OUT_OF_HOST_MEMORY;
}
// double capacity
ext_list->capacity *= 2;
}
memcpy(&ext_list->list[idx].props, props, sizeof(struct loader_dev_ext_props));
ext_list->list[idx].entrypoint_count = entry_count;
ext_list->list[idx].entrypoints =
loader_instance_heap_alloc(inst, sizeof(char *) * entry_count, VK_SYSTEM_ALLOCATION_SCOPE_INSTANCE);
if (ext_list->list[idx].entrypoints == NULL) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_add_to_dev_ext_list: Failed to allocate space "
"for device extension entrypoint list in list %d",
idx);
ext_list->list[idx].entrypoint_count = 0;
return VK_ERROR_OUT_OF_HOST_MEMORY;
}
for (uint32_t i = 0; i < entry_count; i++) {
ext_list->list[idx].entrypoints[i] =
loader_instance_heap_alloc(inst, strlen(entrys[i]) + 1, VK_SYSTEM_ALLOCATION_SCOPE_INSTANCE);
if (ext_list->list[idx].entrypoints[i] == NULL) {
for (uint32_t j = 0; j < i; j++) {
loader_instance_heap_free(inst, ext_list->list[idx].entrypoints[j]);
}
loader_instance_heap_free(inst, ext_list->list[idx].entrypoints);
ext_list->list[idx].entrypoint_count = 0;
ext_list->list[idx].entrypoints = NULL;
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_add_to_dev_ext_list: Failed to allocate space "
"for device extension entrypoint %d name",
i);
return VK_ERROR_OUT_OF_HOST_MEMORY;
}
strcpy(ext_list->list[idx].entrypoints[i], entrys[i]);
}
ext_list->count++;
return VK_SUCCESS;
}
// Search the given search_list for any layers in the props list. Add these to the
// output layer_list. Don't add duplicates to the output layer_list.
static VkResult loader_add_layer_names_to_list(const struct loader_instance *inst, struct loader_layer_list *output_list,
uint32_t name_count, const char *const *names,
const struct loader_layer_list *search_list) {
struct loader_layer_properties *layer_prop;
VkResult err = VK_SUCCESS;
for (uint32_t i = 0; i < name_count; i++) {
const char *search_target = names[i];
layer_prop = loader_get_layer_property(search_target, search_list);
if (!layer_prop) {
loader_log(inst, VK_DEBUG_REPORT_ERROR_BIT_EXT, 0,
"loader_add_layer_names_to_list: Unable to find layer"
" %s",
search_target);
err = VK_ERROR_LAYER_NOT_PRESENT;
continue;
}
err = loader_add_to_layer_list(inst, output_list, 1, layer_prop);
}
return err;
}
// Manage lists of VkLayerProperties
static bool loader_init_layer_list(const struct loader_instance *inst, struct loader_layer_list *list) {
list->capacity = 32 * sizeof(struct loader_layer_properties);
list->list = loader_instance_heap_alloc(inst, list->capacity, VK_SYSTEM_ALLOCATION_SCOPE_INSTANCE);
if (list->list == NULL) {
return false;
}
memset(list->list, 0, list->capacity);
list->count = 0;
return true;
}
void loader_destroy_layer_list(const struct loader_instance *inst, struct loader_device *device,
struct loader_layer_list *layer_list) {
if (device) {
loader_device_heap_free(device, layer_list->list);
} else {
loader_instance_heap_free(inst, layer_list->list);
}
layer_list->count = 0;
layer_list->capacity = 0;
}
// Search the given layer list for a list matching the given VkLayerProperties
bool has_vk_layer_property(const VkLayerProperties *vk_layer_prop, const struct loader_layer_list *list) {
for (uint32_t i = 0; i < list->count; i++) {
if (strcmp(vk_layer_prop->layerName, list->list[i].info.layerName) == 0) return true;
}
return false;
}
// Search the given layer list for a layer matching the given name
bool has_layer_name(const char *name, const struct loader_layer_list *list) {
for (uint32_t i = 0; i < list->count; i++) {
if (strcmp(name, list->list[i].info.layerName) == 0) return true;
}
return false;
}
// Append non-duplicate layer properties defined in prop_list to the given layer_info list
VkResult loader_add_to_layer_list(const struct loader_instance *inst, struct loader_layer_list *list, uint32_t prop_list_count,