/* StarPU --- Runtime system for heterogeneous multicore architectures. * * Copyright (C) 2010-2014 Université de Bordeaux 1 * Copyright (C) 2010 Mehdi Juhoor * Copyright (C) 2010, 2011, 2012, 2013 Centre National de la Recherche Scientifique * Copyright (C) 2011 Télécom-SudParis * * StarPU is free software; you can redistribute it and/or modify * it under the terms of the GNU Lesser General Public License as published by * the Free Software Foundation; either version 2.1 of the License, or (at * your option) any later version. * * StarPU is distributed in the hope that it will be useful, but * WITHOUT ANY WARRANTY; without even the implied warranty of * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. * * See the GNU Lesser General Public License in COPYING.LGPL for more details. */ #include #include #include #include #include #include #include #include #include "driver_opencl.h" #include "driver_opencl_utils.h" #include #include #include #ifdef STARPU_SIMGRID #include #endif static int nb_devices = -1; static int init_done = 0; static starpu_pthread_mutex_t big_lock = STARPU_PTHREAD_MUTEX_INITIALIZER; static size_t global_mem[STARPU_MAXOPENCLDEVS]; #ifdef STARPU_USE_OPENCL static cl_context contexts[STARPU_MAXOPENCLDEVS]; static cl_device_id devices[STARPU_MAXOPENCLDEVS]; static cl_command_queue queues[STARPU_MAXOPENCLDEVS]; static cl_command_queue in_transfer_queues[STARPU_MAXOPENCLDEVS]; static cl_command_queue out_transfer_queues[STARPU_MAXOPENCLDEVS]; static cl_command_queue peer_transfer_queues[STARPU_MAXOPENCLDEVS]; static cl_command_queue alloc_queues[STARPU_MAXOPENCLDEVS]; static cl_event task_events[STARPU_MAXOPENCLDEVS]; #endif void _starpu_opencl_discover_devices(struct _starpu_machine_config *config) { /* Discover the number of OpenCL devices. Fill the result in CONFIG. */ /* As OpenCL must have been initialized before calling this function, * `nb_device' is ensured to be correctly set. */ STARPU_ASSERT(init_done == 1); config->topology.nhwopenclgpus = nb_devices; } static void _starpu_opencl_limit_gpu_mem_if_needed(unsigned devid) { starpu_ssize_t limit; size_t STARPU_ATTRIBUTE_UNUSED totalGlobalMem = 0; size_t STARPU_ATTRIBUTE_UNUSED to_waste = 0; char name[30]; #ifdef STARPU_SIMGRID totalGlobalMem = _starpu_simgrid_get_memsize("OpenCL", devid); #elif defined(STARPU_USE_OPENCL) /* Request the size of the current device's memory */ cl_int err; err = clGetDeviceInfo(devices[devid], CL_DEVICE_GLOBAL_MEM_SIZE, sizeof(totalGlobalMem), &totalGlobalMem, NULL); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); #endif limit = starpu_get_env_number("STARPU_LIMIT_OPENCL_MEM"); if (limit == -1) { sprintf(name, "STARPU_LIMIT_OPENCL_%u_MEM", devid); limit = starpu_get_env_number(name); } #if defined(STARPU_USE_OPENCL) || defined(STARPU_SIMGRID) if (limit == -1) { /* Use 90% of the available memory by default. */ limit = totalGlobalMem / (1024*1024) * 0.9; } #endif global_mem[devid] = limit * 1024*1024; #ifdef STARPU_USE_OPENCL /* How much memory to waste ? */ to_waste = totalGlobalMem - global_mem[devid]; #endif _STARPU_DEBUG("OpenCL device %d: Wasting %ld MB / Limit %ld MB / Total %ld MB / Remains %ld MB\n", devid, (long)to_waste/(1024*1024), (long) limit, (long)totalGlobalMem/(1024*1024), (long)(totalGlobalMem - to_waste)/(1024*1024)); } #ifdef STARPU_USE_OPENCL void starpu_opencl_get_context(int devid, cl_context *context) { *context = contexts[devid]; } void starpu_opencl_get_device(int devid, cl_device_id *device) { *device = devices[devid]; } void starpu_opencl_get_queue(int devid, cl_command_queue *queue) { *queue = queues[devid]; } void starpu_opencl_get_current_queue(cl_command_queue *queue) { struct _starpu_worker *worker = _starpu_get_local_worker_key(); STARPU_ASSERT(queue); *queue = queues[worker->devid]; } void starpu_opencl_get_current_context(cl_context *context) { struct _starpu_worker *worker = _starpu_get_local_worker_key(); STARPU_ASSERT(context); *context = contexts[worker->devid]; } #ifndef STARPU_SIMGRID cl_int _starpu_opencl_init_context(int devid) { cl_int err; cl_uint uint; STARPU_PTHREAD_MUTEX_LOCK(&big_lock); _STARPU_DEBUG("Initialising context for dev %d\n", devid); // Create a compute context err = 0; contexts[devid] = clCreateContext(NULL, 1, &devices[devid], NULL, NULL, &err); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); err = clGetDeviceInfo(devices[devid], CL_DEVICE_MEM_BASE_ADDR_ALIGN, sizeof(uint), &uint, NULL); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); starpu_malloc_set_align(uint/8); // Create execution queue for the given device queues[devid] = clCreateCommandQueue(contexts[devid], devices[devid], 0, &err); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); // Create transfer queue for the given device cl_command_queue_properties props; err = clGetDeviceInfo(devices[devid], CL_DEVICE_QUEUE_PROPERTIES, sizeof(props), &props, NULL); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); props &= ~CL_QUEUE_OUT_OF_ORDER_EXEC_MODE_ENABLE; in_transfer_queues[devid] = clCreateCommandQueue(contexts[devid], devices[devid], props, &err); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); out_transfer_queues[devid] = clCreateCommandQueue(contexts[devid], devices[devid], props, &err); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); peer_transfer_queues[devid] = clCreateCommandQueue(contexts[devid], devices[devid], props, &err); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); alloc_queues[devid] = clCreateCommandQueue(contexts[devid], devices[devid], 0, &err); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); STARPU_PTHREAD_MUTEX_UNLOCK(&big_lock); return CL_SUCCESS; } cl_int _starpu_opencl_deinit_context(int devid) { cl_int err; STARPU_PTHREAD_MUTEX_LOCK(&big_lock); _STARPU_DEBUG("De-initialising context for dev %d\n", devid); err = clReleaseContext(contexts[devid]); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); err = clReleaseCommandQueue(queues[devid]); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); err = clReleaseCommandQueue(in_transfer_queues[devid]); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); err = clReleaseCommandQueue(out_transfer_queues[devid]); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); err = clReleaseCommandQueue(peer_transfer_queues[devid]); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); err = clReleaseCommandQueue(alloc_queues[devid]); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); contexts[devid] = NULL; STARPU_PTHREAD_MUTEX_UNLOCK(&big_lock); return CL_SUCCESS; } #endif cl_int starpu_opencl_allocate_memory(cl_mem *mem STARPU_ATTRIBUTE_UNUSED, size_t size STARPU_ATTRIBUTE_UNUSED, cl_mem_flags flags STARPU_ATTRIBUTE_UNUSED) { #ifdef STARPU_SIMGRID STARPU_ABORT(); #else cl_int err; cl_mem memory; struct _starpu_worker *worker = _starpu_get_local_worker_key(); memory = clCreateBuffer(contexts[worker->devid], flags, size, NULL, &err); if (err == CL_OUT_OF_HOST_MEMORY) return err; if (err != CL_SUCCESS) STARPU_OPENCL_REPORT_ERROR(err); /* * OpenCL uses lazy memory allocation: we will only know if the * allocation failed when trying to copy data onto the device. But we * want to know this __now__, so we just perform a dummy copy. */ char dummy = 0; cl_event ev; err = clEnqueueWriteBuffer(alloc_queues[worker->devid], memory, CL_TRUE, 0, sizeof(dummy), &dummy, 0, NULL, &ev); if (err == CL_MEM_OBJECT_ALLOCATION_FAILURE) return err; if (err == CL_OUT_OF_RESOURCES) return err; if (err != CL_SUCCESS) STARPU_OPENCL_REPORT_ERROR(err); clWaitForEvents(1, &ev); clReleaseEvent(ev); *mem = memory; return CL_SUCCESS; #endif } cl_int starpu_opencl_copy_ram_to_opencl(void *ptr, unsigned src_node STARPU_ATTRIBUTE_UNUSED, cl_mem buffer, unsigned dst_node STARPU_ATTRIBUTE_UNUSED, size_t size, size_t offset, cl_event *event, int *ret) { cl_int err; struct _starpu_worker *worker = _starpu_get_local_worker_key(); if (event) _STARPU_TRACE_START_DRIVER_COPY_ASYNC(src_node, dst_node); cl_event ev; err = clEnqueueWriteBuffer(in_transfer_queues[worker->devid], buffer, CL_FALSE, offset, size, ptr, 0, NULL, &ev); if (event) _STARPU_TRACE_END_DRIVER_COPY_ASYNC(src_node, dst_node); if (STARPU_LIKELY(err == CL_SUCCESS)) { if (event == NULL) { /* We want a synchronous copy, let's synchronise the queue */ err = clWaitForEvents(1, &ev); if (STARPU_UNLIKELY(err)) STARPU_OPENCL_REPORT_ERROR(err); err = clReleaseEvent(ev); if (STARPU_UNLIKELY(err)) STARPU_OPENCL_REPORT_ERROR(err); } else { *event = ev; } if (ret) { *ret = (event == NULL) ? 0 : -EAGAIN; } } return err; } cl_int starpu_opencl_copy_opencl_to_ram(cl_mem buffer, unsigned src_node STARPU_ATTRIBUTE_UNUSED, void *ptr, unsigned dst_node STARPU_ATTRIBUTE_UNUSED, size_t size, size_t offset, cl_event *event, int *ret) { cl_int err; struct _starpu_worker *worker = _starpu_get_local_worker_key(); if (event) _STARPU_TRACE_START_DRIVER_COPY_ASYNC(src_node, dst_node); cl_event ev; err = clEnqueueReadBuffer(out_transfer_queues[worker->devid], buffer, CL_FALSE, offset, size, ptr, 0, NULL, &ev); if (event) _STARPU_TRACE_END_DRIVER_COPY_ASYNC(src_node, dst_node); if (STARPU_LIKELY(err == CL_SUCCESS)) { if (event == NULL) { /* We want a synchronous copy, let's synchronise the queue */ err = clWaitForEvents(1, &ev); if (STARPU_UNLIKELY(err)) STARPU_OPENCL_REPORT_ERROR(err); err = clReleaseEvent(ev); if (STARPU_UNLIKELY(err)) STARPU_OPENCL_REPORT_ERROR(err); } else { *event = ev; } if (ret) { *ret = (event == NULL) ? 0 : -EAGAIN; } } return err; } cl_int starpu_opencl_copy_opencl_to_opencl(cl_mem src, unsigned src_node STARPU_ATTRIBUTE_UNUSED, size_t src_offset, cl_mem dst, unsigned dst_node STARPU_ATTRIBUTE_UNUSED, size_t dst_offset, size_t size, cl_event *event, int *ret) { cl_int err; struct _starpu_worker *worker = _starpu_get_local_worker_key(); if (event) _STARPU_TRACE_START_DRIVER_COPY_ASYNC(src_node, dst_node); cl_event ev; err = clEnqueueCopyBuffer(peer_transfer_queues[worker->devid], src, dst, src_offset, dst_offset, size, 0, NULL, &ev); if (event) _STARPU_TRACE_END_DRIVER_COPY_ASYNC(src_node, dst_node); if (STARPU_LIKELY(err == CL_SUCCESS)) { if (event == NULL) { /* We want a synchronous copy, let's synchronise the queue */ err = clWaitForEvents(1, &ev); if (STARPU_UNLIKELY(err)) STARPU_OPENCL_REPORT_ERROR(err); err = clReleaseEvent(ev); if (STARPU_UNLIKELY(err)) STARPU_OPENCL_REPORT_ERROR(err); } else { *event = ev; } if (ret) { *ret = (event == NULL) ? 0 : -EAGAIN; } } return err; } #ifdef STARPU_USE_OPENCL cl_int starpu_opencl_copy_async_sync(uintptr_t src, size_t src_offset, unsigned src_node, uintptr_t dst, size_t dst_offset, unsigned dst_node, size_t size, cl_event *event) { enum starpu_node_kind src_kind = starpu_node_get_kind(src_node); enum starpu_node_kind dst_kind = starpu_node_get_kind(dst_node); cl_int err; int ret; switch (_STARPU_MEMORY_NODE_TUPLE(src_kind,dst_kind)) { case _STARPU_MEMORY_NODE_TUPLE(STARPU_OPENCL_RAM,STARPU_CPU_RAM): err = starpu_opencl_copy_opencl_to_ram( (cl_mem) src, src_node, (void*) dst + dst_offset, dst_node, size, src_offset, event, &ret); if (STARPU_UNLIKELY(err)) STARPU_OPENCL_REPORT_ERROR(err); return ret; case _STARPU_MEMORY_NODE_TUPLE(STARPU_CPU_RAM,STARPU_OPENCL_RAM): err = starpu_opencl_copy_ram_to_opencl( (void*) src + src_offset, src_node, (cl_mem) dst, dst_node, size, dst_offset, event, &ret); if (STARPU_UNLIKELY(err)) STARPU_OPENCL_REPORT_ERROR(err); return ret; case _STARPU_MEMORY_NODE_TUPLE(STARPU_OPENCL_RAM,STARPU_OPENCL_RAM): err = starpu_opencl_copy_opencl_to_opencl( (cl_mem) src, src_node, src_offset, (cl_mem) dst, dst_node, dst_offset, size, event, &ret); if (STARPU_UNLIKELY(err)) STARPU_OPENCL_REPORT_ERROR(err); return ret; default: STARPU_ABORT(); break; } } #endif #if 0 cl_int _starpu_opencl_copy_rect_opencl_to_ram(cl_mem buffer, unsigned src_node STARPU_ATTRIBUTE_UNUSED, void *ptr, unsigned dst_node STARPU_ATTRIBUTE_UNUSED, const size_t buffer_origin[3], const size_t host_origin[3], const size_t region[3], size_t buffer_row_pitch, size_t buffer_slice_pitch, size_t host_row_pitch, size_t host_slice_pitch, cl_event *event) { cl_int err; struct _starpu_worker *worker = _starpu_get_local_worker_key(); cl_bool blocking; blocking = (event == NULL) ? CL_TRUE : CL_FALSE; if (event) _STARPU_TRACE_START_DRIVER_COPY_ASYNC(src_node, dst_node); err = clEnqueueReadBufferRect(out_transfer_queues[worker->devid], buffer, blocking, buffer_origin, host_origin, region, buffer_row_pitch, buffer_slice_pitch, host_row_pitch, host_slice_pitch, ptr, 0, NULL, event); if (event) _STARPU_TRACE_END_DRIVER_COPY_ASYNC(src_node, dst_node); if (err != CL_SUCCESS) STARPU_OPENCL_REPORT_ERROR(err); return CL_SUCCESS; } cl_int _starpu_opencl_copy_rect_ram_to_opencl(void *ptr, unsigned src_node STARPU_ATTRIBUTE_UNUSED, cl_mem buffer, unsigned dst_node STARPU_ATTRIBUTE_UNUSED, const size_t buffer_origin[3], const size_t host_origin[3], const size_t region[3], size_t buffer_row_pitch, size_t buffer_slice_pitch, size_t host_row_pitch, size_t host_slice_pitch, cl_event *event) { cl_int err; struct _starpu_worker *worker = _starpu_get_local_worker_key(); cl_bool blocking; blocking = (event == NULL) ? CL_TRUE : CL_FALSE; if (event) _STARPU_TRACE_START_DRIVER_COPY_ASYNC(src_node, dst_node); err = clEnqueueWriteBufferRect(in_transfer_queues[worker->devid], buffer, blocking, buffer_origin, host_origin, region, buffer_row_pitch, buffer_slice_pitch, host_row_pitch, host_slice_pitch, ptr, 0, NULL, event); if (event) _STARPU_TRACE_END_DRIVER_COPY_ASYNC(src_node, dst_node); if (err != CL_SUCCESS) STARPU_OPENCL_REPORT_ERROR(err); return CL_SUCCESS; } #endif #endif /* STARPU_USE_OPENCL */ static size_t _starpu_opencl_get_global_mem_size(int devid) { return global_mem[devid]; } void _starpu_opencl_init(void) { STARPU_PTHREAD_MUTEX_LOCK(&big_lock); if (!init_done) { #ifdef STARPU_SIMGRID nb_devices = _starpu_simgrid_get_nbhosts("OpenCL"); #else /* STARPU_USE_OPENCL */ cl_platform_id platform_id[_STARPU_OPENCL_PLATFORM_MAX]; cl_uint nb_platforms; cl_int err; int i; cl_device_type device_type = CL_DEVICE_TYPE_GPU|CL_DEVICE_TYPE_ACCELERATOR; _STARPU_DEBUG("Initialising OpenCL\n"); // Get Platforms if (starpu_get_env_number("STARPU_OPENCL_ON_CPUS") > 0) device_type |= CL_DEVICE_TYPE_CPU; if (starpu_get_env_number("STARPU_OPENCL_ONLY_ON_CPUS") > 0) device_type = CL_DEVICE_TYPE_CPU; err = clGetPlatformIDs(_STARPU_OPENCL_PLATFORM_MAX, platform_id, &nb_platforms); if (STARPU_UNLIKELY(err != CL_SUCCESS)) nb_platforms=0; _STARPU_DEBUG("Platforms detected: %u\n", nb_platforms); // Get devices nb_devices = 0; { unsigned j; for (j=0; j STARPU_MAXOPENCLDEVS) { _STARPU_DISP("# Warning: %u OpenCL devices available. Only %d enabled. Use configure option --enable-maxopencldev=xxx to update the maximum value of supported OpenCL devices?\n", nb_devices, STARPU_MAXOPENCLDEVS); nb_devices = STARPU_MAXOPENCLDEVS; } // initialise internal structures for(i=0 ; idevid; int workerid = args->workerid; _starpu_worker_start(args, _STARPU_FUT_OPENCL_KEY); #ifndef STARPU_SIMGRID _starpu_opencl_init_context(devid); #endif /* one more time to avoid hacks from third party lib :) */ _starpu_bind_thread_on_cpu(args->config, args->bindid); _starpu_opencl_limit_gpu_mem_if_needed(devid); _starpu_memory_manager_set_global_memory_size(args->memory_node, _starpu_opencl_get_global_mem_size(devid)); _starpu_malloc_init(args->memory_node); args->status = STATUS_UNKNOWN; float size = (float) global_mem[devid] / (1<<30); #ifdef STARPU_SIMGRID const char *devname = "Simgrid"; #else /* get the device's name */ char devname[128]; _starpu_opencl_get_device_name(devid, devname, 128); #endif snprintf(args->name, sizeof(args->name), "OpenCL %u (%s %.1f GiB)", devid, devname, size); snprintf(args->short_name, sizeof(args->short_name), "OpenCL %u", devid); _STARPU_DEBUG("OpenCL (%s) dev id %d thread is ready to run on CPU %d !\n", devname, devid, args->bindid); _STARPU_TRACE_WORKER_INIT_END(workerid); /* tell the main thread that this one is ready */ STARPU_PTHREAD_MUTEX_LOCK(&args->mutex); args->worker_is_initialized = 1; STARPU_PTHREAD_COND_SIGNAL(&args->ready_cond); STARPU_PTHREAD_MUTEX_UNLOCK(&args->mutex); return 0; } int _starpu_opencl_driver_run_once(struct _starpu_worker *args) { int workerid = args->workerid; unsigned memnode = args->memory_node; struct _starpu_job *j; struct starpu_task *task; int res; task = starpu_task_get_current(); if (task) { cl_int status; size_t size; int err; /* On-going asynchronous task, check for its termination first */ err = clGetEventInfo(task_events[args->devid], CL_EVENT_COMMAND_EXECUTION_STATUS, sizeof(cl_int), &status, &size); STARPU_ASSERT(size == sizeof(cl_int)); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); if (status != CL_COMPLETE) { /* Not ready yet, no better thing to do than waiting */ __starpu_datawizard_progress(memnode, 1, 0); return 0; } /* Asynchronous task completed! */ _starpu_opencl_stop_job(_starpu_get_job_associated_to_task(task), args); } __starpu_datawizard_progress(memnode, 1, 1); _STARPU_TRACE_END_PROGRESS(memnode); task = _starpu_get_worker_task(args, workerid, memnode); if (task == NULL) return 0; j = _starpu_get_job_associated_to_task(task); /* can OpenCL do that task ? */ if (!_STARPU_OPENCL_MAY_PERFORM(j)) { /* this is not a OpenCL task */ _starpu_push_task_to_workers(task); return 0; } res = _starpu_opencl_start_job(j, args); if (res) { switch (res) { case -EAGAIN: _STARPU_DISP("ouch, OpenCL could not actually run task %p, putting it back...\n", task); _starpu_push_task_to_workers(task); STARPU_ABORT(); return 0; default: STARPU_ABORT(); } } #ifndef STARPU_SIMGRID if (task->cl->opencl_flags[j->nimpl] & STARPU_OPENCL_ASYNC) { /* Record event to synchronize with task termination later */ int err; cl_command_queue queue; starpu_opencl_get_queue(args->devid, &queue); /* the function clEnqueueMarker is deprecated from * OpenCL version 1.2. We would like to use the new * function clEnqueueMarkerWithWaitList. We could do * it by checking its availability through our own * configure macro HAVE_CLENQUEUEMARKERWITHWAITLIST * and the OpenCL macro CL_VERSION_1_2. However these * 2 macros detect the function availability in the * ICD and not in the device implementation. */ err = clEnqueueMarker(queue, &task_events[args->devid]); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); } else #else #ifdef STARPU_DEVEL #warning No CUDA asynchronous execution with simgrid yet. #endif #endif /* Synchronous execution */ { _starpu_opencl_stop_job(j, args); } _STARPU_TRACE_START_PROGRESS(memnode); return 0; } int _starpu_opencl_driver_deinit(struct _starpu_worker *args) { _STARPU_TRACE_WORKER_DEINIT_START; unsigned memnode = args->memory_node; _starpu_handle_all_pending_node_data_requests(memnode); /* In case there remains some memory that was automatically * allocated by StarPU, we release it now. Note that data * coherency is not maintained anymore at that point ! */ _starpu_free_all_automatically_allocated_buffers(memnode); _starpu_malloc_shutdown(memnode); #ifndef STARPU_SIMGRID unsigned devid = args->devid; _starpu_opencl_deinit_context(devid); #endif _STARPU_TRACE_WORKER_DEINIT_END(_STARPU_FUT_OPENCL_KEY); return 0; } void *_starpu_opencl_worker(void *arg) { struct _starpu_worker* args = arg; _starpu_opencl_driver_init(args); _STARPU_TRACE_START_PROGRESS(memnode); while (_starpu_machine_is_running()) _starpu_opencl_driver_run_once(args); _starpu_opencl_driver_deinit(args); _STARPU_TRACE_END_PROGRESS(memnode); return NULL; } #ifdef STARPU_USE_OPENCL #ifndef STARPU_SIMGRID static unsigned _starpu_opencl_get_device_name(int dev, char *name, int lname) { int err; if (!init_done) { _starpu_opencl_init(); } // Get device name err = clGetDeviceInfo(devices[dev], CL_DEVICE_NAME, lname, name, NULL); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); _STARPU_DEBUG("Device %d : [%s]\n", dev, name); return EXIT_SUCCESS; } #endif #endif unsigned _starpu_opencl_get_device_count(void) { if (!init_done) { _starpu_opencl_init(); } return nb_devices; } #ifdef STARPU_USE_OPENCL cl_device_type _starpu_opencl_get_device_type(int devid) { int err; cl_device_type type; if (!init_done) _starpu_opencl_init(); err = clGetDeviceInfo(devices[devid], CL_DEVICE_TYPE, sizeof(cl_device_type), &type, NULL); if (STARPU_UNLIKELY(err != CL_SUCCESS)) STARPU_OPENCL_REPORT_ERROR(err); return type; } #endif /* STARPU_USE_OPENCL */ static int _starpu_opencl_start_job(struct _starpu_job *j, struct _starpu_worker *args) { int ret; STARPU_ASSERT(j); struct starpu_task *task = j->task; int profiling = starpu_profiling_status_get(); STARPU_ASSERT(task); struct starpu_codelet *cl = task->cl; STARPU_ASSERT(cl); _starpu_set_current_task(j->task); args->current_task = j->task; ret = _starpu_fetch_task_input(j); if (ret != 0) { /* there was not enough memory, so the input of * the codelet cannot be fetched ... put the * codelet back, and try it later */ return -EAGAIN; } _starpu_driver_start_job(args, j, &j->cl_start, 0, profiling); starpu_opencl_func_t func = _starpu_task_get_opencl_nth_implementation(cl, j->nimpl); STARPU_ASSERT_MSG(func, "when STARPU_OPENCL is defined in 'where', opencl_func or opencl_funcs has to be defined"); if (starpu_get_env_number("STARPU_DISABLE_KERNELS") <= 0) { #ifdef STARPU_SIMGRID double length = NAN; #ifdef STARPU_OPENCL_SIMULATOR func(_STARPU_TASK_GET_INTERFACES(task), task->cl_arg); #ifndef CL_PROFILING_CLOCK_CYCLE_COUNT #ifdef CL_PROFILING_COMMAND_SHAVE_CYCLE_COUNT #define CL_PROFILING_CLOCK_CYCLE_COUNT CL_PROFILING_COMMAND_SHAVE_CYCLE_COUNT #else #error The OpenCL simulator must provide CL_PROFILING_CLOCK_CYCLE_COUNT #endif #endif struct starpu_profiling_task_info *profiling_info = task->profiling_info; STARPU_ASSERT_MSG(profiling_info->used_cycles, "Application kernel must call starpu_opencl_collect_stats to collect simulated time"); length = ((double) profiling_info->used_cycles)/MSG_get_host_speed(MSG_host_self()); #endif _starpu_simgrid_execute_job(j, &args->perf_arch, length); #else func(_STARPU_TASK_GET_INTERFACES(task), task->cl_arg); #endif } return 0; } static void _starpu_opencl_stop_job(struct _starpu_job *j, struct _starpu_worker *args) { struct timespec codelet_end; int profiling = starpu_profiling_status_get(); _starpu_set_current_task(NULL); args->current_task = NULL; _starpu_driver_end_job(args, j, &args->perf_arch, &codelet_end, 0, profiling); _starpu_driver_update_job_feedback(j, args, &args->perf_arch, &j->cl_start, &codelet_end, profiling); _starpu_push_task_output(j); _starpu_handle_job_termination(j); } #ifdef STARPU_USE_OPENCL int _starpu_run_opencl(struct _starpu_worker *workerarg) { _STARPU_DEBUG("Running OpenCL %u from the application\n", workerarg->devid); workerarg->set = NULL; workerarg->worker_is_initialized = 0; /* Let's go ! */ _starpu_opencl_worker(workerarg); return 0; } #endif /* STARPU_USE_OPENCL */