| | |
| | #include <assert.h> |
| | #include <stdbool.h> |
| | #include <stdint.h> |
| | #include <stdlib.h> |
| | #include <string.h> |
| |
|
| | |
| | #include "threadpool-common.h" |
| |
|
| | |
| | #ifndef WIN32_LEAN_AND_MEAN |
| | #define WIN32_LEAN_AND_MEAN |
| | #endif |
| | #include <windows.h> |
| |
|
| | |
| | #include <pthreadpool.h> |
| |
|
| | |
| | #include "threadpool-atomics.h" |
| | #include "threadpool-object.h" |
| | #include "threadpool-utils.h" |
| |
|
| |
|
| | static void checkin_worker_thread(struct pthreadpool* threadpool, uint32_t event_index) { |
| | if (pthreadpool_decrement_fetch_acquire_release_size_t(&threadpool->active_threads) == 0) { |
| | SetEvent(threadpool->completion_event[event_index]); |
| | } |
| | } |
| |
|
| | static void wait_worker_threads(struct pthreadpool* threadpool, uint32_t event_index) { |
| | |
| | size_t active_threads = pthreadpool_load_acquire_size_t(&threadpool->active_threads); |
| | if (active_threads == 0) { |
| | return; |
| | } |
| |
|
| | |
| | for (uint32_t i = PTHREADPOOL_SPIN_WAIT_ITERATIONS; i != 0; i--) { |
| | pthreadpool_yield(); |
| |
|
| | active_threads = pthreadpool_load_acquire_size_t(&threadpool->active_threads); |
| | if (active_threads == 0) { |
| | return; |
| | } |
| | } |
| |
|
| | |
| | const DWORD wait_status = WaitForSingleObject(threadpool->completion_event[event_index], INFINITE); |
| | assert(wait_status == WAIT_OBJECT_0); |
| | assert(pthreadpool_load_relaxed_size_t(&threadpool->active_threads) == 0); |
| | } |
| |
|
| | static uint32_t wait_for_new_command( |
| | struct pthreadpool* threadpool, |
| | uint32_t last_command, |
| | uint32_t last_flags) |
| | { |
| | uint32_t command = pthreadpool_load_acquire_uint32_t(&threadpool->command); |
| | if (command != last_command) { |
| | return command; |
| | } |
| |
|
| | if ((last_flags & PTHREADPOOL_FLAG_YIELD_WORKERS) == 0) { |
| | |
| | for (uint32_t i = PTHREADPOOL_SPIN_WAIT_ITERATIONS; i != 0; i--) { |
| | pthreadpool_yield(); |
| |
|
| | command = pthreadpool_load_acquire_uint32_t(&threadpool->command); |
| | if (command != last_command) { |
| | return command; |
| | } |
| | } |
| | } |
| |
|
| | |
| | const uint32_t event_index = (last_command >> 31); |
| | const DWORD wait_status = WaitForSingleObject(threadpool->command_event[event_index], INFINITE); |
| | assert(wait_status == WAIT_OBJECT_0); |
| |
|
| | command = pthreadpool_load_relaxed_uint32_t(&threadpool->command); |
| | assert(command != last_command); |
| | return command; |
| | } |
| |
|
| | static DWORD WINAPI thread_main(LPVOID arg) { |
| | struct thread_info* thread = (struct thread_info*) arg; |
| | struct pthreadpool* threadpool = thread->threadpool; |
| | uint32_t last_command = threadpool_command_init; |
| | struct fpu_state saved_fpu_state = { 0 }; |
| | uint32_t flags = 0; |
| |
|
| | |
| | checkin_worker_thread(threadpool, 0); |
| |
|
| | |
| | for (;;) { |
| | uint32_t command = wait_for_new_command(threadpool, last_command, flags); |
| | pthreadpool_fence_acquire(); |
| |
|
| | flags = pthreadpool_load_relaxed_uint32_t(&threadpool->flags); |
| |
|
| | |
| | switch (command & THREADPOOL_COMMAND_MASK) { |
| | case threadpool_command_parallelize: |
| | { |
| | const thread_function_t thread_function = |
| | (thread_function_t) pthreadpool_load_relaxed_void_p(&threadpool->thread_function); |
| | if (flags & PTHREADPOOL_FLAG_DISABLE_DENORMALS) { |
| | saved_fpu_state = get_fpu_state(); |
| | disable_fpu_denormals(); |
| | } |
| |
|
| | thread_function(threadpool, thread); |
| | if (flags & PTHREADPOOL_FLAG_DISABLE_DENORMALS) { |
| | set_fpu_state(saved_fpu_state); |
| | } |
| | break; |
| | } |
| | case threadpool_command_shutdown: |
| | |
| | return 0; |
| | case threadpool_command_init: |
| | |
| | break; |
| | } |
| | |
| | const uint32_t event_index = command >> 31; |
| | checkin_worker_thread(threadpool, event_index); |
| | |
| | last_command = command; |
| | }; |
| | return 0; |
| | } |
| |
|
| | struct pthreadpool* pthreadpool_create(size_t threads_count) { |
| | if (threads_count == 0) { |
| | SYSTEM_INFO system_info; |
| | ZeroMemory(&system_info, sizeof(system_info)); |
| | GetSystemInfo(&system_info); |
| | threads_count = (size_t) system_info.dwNumberOfProcessors; |
| | } |
| |
|
| | struct pthreadpool* threadpool = pthreadpool_allocate(threads_count); |
| | if (threadpool == NULL) { |
| | return NULL; |
| | } |
| | threadpool->threads_count = fxdiv_init_size_t(threads_count); |
| | for (size_t tid = 0; tid < threads_count; tid++) { |
| | threadpool->threads[tid].thread_number = tid; |
| | threadpool->threads[tid].threadpool = threadpool; |
| | } |
| |
|
| | |
| | if (threads_count > 1) { |
| | threadpool->execution_mutex = CreateMutexW( |
| | NULL , |
| | FALSE , |
| | NULL ); |
| | for (size_t i = 0; i < 2; i++) { |
| | threadpool->completion_event[i] = CreateEventW( |
| | NULL , |
| | TRUE , |
| | FALSE , |
| | NULL ); |
| | threadpool->command_event[i] = CreateEventW( |
| | NULL , |
| | TRUE , |
| | FALSE , |
| | NULL ); |
| | } |
| |
|
| | pthreadpool_store_relaxed_size_t(&threadpool->active_threads, threads_count - 1 ); |
| |
|
| | |
| | for (size_t tid = 1; tid < threads_count; tid++) { |
| | threadpool->threads[tid].thread_handle = CreateThread( |
| | NULL , |
| | 0 , |
| | &thread_main, |
| | &threadpool->threads[tid], |
| | 0 , |
| | NULL ); |
| | } |
| |
|
| | |
| | wait_worker_threads(threadpool, 0); |
| | } |
| | return threadpool; |
| | } |
| |
|
| | PTHREADPOOL_INTERNAL void pthreadpool_parallelize( |
| | struct pthreadpool* threadpool, |
| | thread_function_t thread_function, |
| | const void* params, |
| | size_t params_size, |
| | void* task, |
| | void* context, |
| | size_t linear_range, |
| | uint32_t flags) |
| | { |
| | assert(threadpool != NULL); |
| | assert(thread_function != NULL); |
| | assert(task != NULL); |
| | assert(linear_range > 1); |
| |
|
| | |
| | const DWORD wait_status = WaitForSingleObject(threadpool->execution_mutex, INFINITE); |
| | assert(wait_status == WAIT_OBJECT_0); |
| |
|
| | |
| | pthreadpool_store_relaxed_void_p(&threadpool->thread_function, (void*) thread_function); |
| | pthreadpool_store_relaxed_void_p(&threadpool->task, task); |
| | pthreadpool_store_relaxed_void_p(&threadpool->argument, context); |
| | pthreadpool_store_relaxed_uint32_t(&threadpool->flags, flags); |
| |
|
| | const struct fxdiv_divisor_size_t threads_count = threadpool->threads_count; |
| | pthreadpool_store_relaxed_size_t(&threadpool->active_threads, threads_count.value - 1 ); |
| |
|
| | if (params_size != 0) { |
| | CopyMemory(&threadpool->params, params, params_size); |
| | pthreadpool_fence_release(); |
| | } |
| |
|
| | |
| | const struct fxdiv_result_size_t range_params = fxdiv_divide_size_t(linear_range, threads_count); |
| | size_t range_start = 0; |
| | for (size_t tid = 0; tid < threads_count.value; tid++) { |
| | struct thread_info* thread = &threadpool->threads[tid]; |
| | const size_t range_length = range_params.quotient + (size_t) (tid < range_params.remainder); |
| | const size_t range_end = range_start + range_length; |
| | pthreadpool_store_relaxed_size_t(&thread->range_start, range_start); |
| | pthreadpool_store_relaxed_size_t(&thread->range_end, range_end); |
| | pthreadpool_store_relaxed_size_t(&thread->range_length, range_length); |
| |
|
| | |
| | range_start = range_end; |
| | } |
| |
|
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | const uint32_t old_command = pthreadpool_load_relaxed_uint32_t(&threadpool->command); |
| | const uint32_t new_command = ~(old_command | THREADPOOL_COMMAND_MASK) | threadpool_command_parallelize; |
| |
|
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | const uint32_t event_index = (old_command >> 31); |
| | BOOL reset_event_status = ResetEvent(threadpool->command_event[event_index ^ 1]); |
| | assert(reset_event_status != FALSE); |
| |
|
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | pthreadpool_store_release_uint32_t(&threadpool->command, new_command); |
| |
|
| | |
| | |
| | |
| | |
| | |
| | const BOOL set_event_status = SetEvent(threadpool->command_event[event_index]); |
| | assert(set_event_status != FALSE); |
| |
|
| | |
| | struct fpu_state saved_fpu_state = { 0 }; |
| | if (flags & PTHREADPOOL_FLAG_DISABLE_DENORMALS) { |
| | saved_fpu_state = get_fpu_state(); |
| | disable_fpu_denormals(); |
| | } |
| |
|
| | |
| | thread_function(threadpool, &threadpool->threads[0]); |
| |
|
| | |
| | if (flags & PTHREADPOOL_FLAG_DISABLE_DENORMALS) { |
| | set_fpu_state(saved_fpu_state); |
| | } |
| |
|
| | |
| | |
| | |
| | |
| | wait_worker_threads(threadpool, event_index ^ 1); |
| |
|
| | |
| | |
| | |
| | |
| | reset_event_status = ResetEvent(threadpool->completion_event[event_index]); |
| | assert(reset_event_status != FALSE); |
| |
|
| | |
| | pthreadpool_fence_acquire(); |
| |
|
| | |
| | const BOOL release_mutex_status = ReleaseMutex(threadpool->execution_mutex); |
| | assert(release_mutex_status != FALSE); |
| | } |
| |
|
| | void pthreadpool_destroy(struct pthreadpool* threadpool) { |
| | if (threadpool != NULL) { |
| | const size_t threads_count = threadpool->threads_count.value; |
| | if (threads_count > 1) { |
| | pthreadpool_store_relaxed_size_t(&threadpool->active_threads, threads_count - 1 ); |
| |
|
| | |
| | |
| | |
| | |
| | const uint32_t old_command = pthreadpool_load_relaxed_uint32_t(&threadpool->command); |
| | pthreadpool_store_release_uint32_t(&threadpool->command, threadpool_command_shutdown); |
| |
|
| | |
| | |
| | |
| | |
| | |
| | const uint32_t event_index = (old_command >> 31); |
| | const BOOL set_event_status = SetEvent(threadpool->command_event[event_index]); |
| | assert(set_event_status != FALSE); |
| |
|
| | |
| | for (size_t tid = 1; tid < threads_count; tid++) { |
| | const HANDLE thread_handle = threadpool->threads[tid].thread_handle; |
| | if (thread_handle != NULL) { |
| | const DWORD wait_status = WaitForSingleObject(thread_handle, INFINITE); |
| | assert(wait_status == WAIT_OBJECT_0); |
| |
|
| | const BOOL close_status = CloseHandle(thread_handle); |
| | assert(close_status != FALSE); |
| | } |
| | } |
| |
|
| | |
| | if (threadpool->execution_mutex != NULL) { |
| | const BOOL close_status = CloseHandle(threadpool->execution_mutex); |
| | assert(close_status != FALSE); |
| | } |
| | for (size_t i = 0; i < 2; i++) { |
| | if (threadpool->command_event[i] != NULL) { |
| | const BOOL close_status = CloseHandle(threadpool->command_event[i]); |
| | assert(close_status != FALSE); |
| | } |
| | if (threadpool->completion_event[i] != NULL) { |
| | const BOOL close_status = CloseHandle(threadpool->completion_event[i]); |
| | assert(close_status != FALSE); |
| | } |
| | } |
| | } |
| | pthreadpool_deallocate(threadpool); |
| | } |
| | } |
| |
|