gpu_scheduler.c 17.7 KB
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/*
 * Copyright 2015 Advanced Micro Devices, Inc.
 *
 * Permission is hereby granted, free of charge, to any person obtaining a
 * copy of this software and associated documentation files (the "Software"),
 * to deal in the Software without restriction, including without limitation
 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
 * and/or sell copies of the Software, and to permit persons to whom the
 * Software is furnished to do so, subject to the following conditions:
 *
 * The above copyright notice and this permission notice shall be included in
 * all copies or substantial portions of the Software.
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
 * OTHER DEALINGS IN THE SOFTWARE.
 *
 *
 */
#include <linux/kthread.h>
#include <linux/wait.h>
#include <linux/sched.h>
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#include <uapi/linux/sched/types.h>
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#include <drm/drmP.h>
#include "gpu_scheduler.h"

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#define CREATE_TRACE_POINTS
#include "gpu_sched_trace.h"

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static bool amd_sched_entity_is_ready(struct amd_sched_entity *entity);
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static void amd_sched_wakeup(struct amd_gpu_scheduler *sched);
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static void amd_sched_process_job(struct dma_fence *f, struct dma_fence_cb *cb);
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/* Initialize a given run queue struct */
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static void amd_sched_rq_init(struct amd_sched_rq *rq)
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{
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	spin_lock_init(&rq->lock);
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	INIT_LIST_HEAD(&rq->entities);
	rq->current_entity = NULL;
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}

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static void amd_sched_rq_add_entity(struct amd_sched_rq *rq,
				    struct amd_sched_entity *entity)
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{
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	if (!list_empty(&entity->list))
		return;
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	spin_lock(&rq->lock);
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	list_add_tail(&entity->list, &rq->entities);
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	spin_unlock(&rq->lock);
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}

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static void amd_sched_rq_remove_entity(struct amd_sched_rq *rq,
				       struct amd_sched_entity *entity)
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{
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	if (list_empty(&entity->list))
		return;
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	spin_lock(&rq->lock);
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	list_del_init(&entity->list);
	if (rq->current_entity == entity)
		rq->current_entity = NULL;
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	spin_unlock(&rq->lock);
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}

/**
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 * Select an entity which could provide a job to run
 *
 * @rq		The run queue to check.
 *
 * Try to find a ready entity, returns NULL if none found.
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 */
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static struct amd_sched_entity *
amd_sched_rq_select_entity(struct amd_sched_rq *rq)
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{
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	struct amd_sched_entity *entity;
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	spin_lock(&rq->lock);

	entity = rq->current_entity;
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	if (entity) {
		list_for_each_entry_continue(entity, &rq->entities, list) {
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			if (amd_sched_entity_is_ready(entity)) {
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				rq->current_entity = entity;
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				spin_unlock(&rq->lock);
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				return entity;
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			}
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		}
	}

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	list_for_each_entry(entity, &rq->entities, list) {
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		if (amd_sched_entity_is_ready(entity)) {
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			rq->current_entity = entity;
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			spin_unlock(&rq->lock);
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			return entity;
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		}
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		if (entity == rq->current_entity)
			break;
	}
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	spin_unlock(&rq->lock);

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	return NULL;
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}

/**
 * Init a context entity used by scheduler when submit to HW ring.
 *
 * @sched	The pointer to the scheduler
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 * @entity	The pointer to a valid amd_sched_entity
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 * @rq		The run queue this entity belongs
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 * @kernel	If this is an entity for the kernel
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 * @jobs	The max number of jobs in the job queue
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 *
 * return 0 if succeed. negative error code on failure
*/
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int amd_sched_entity_init(struct amd_gpu_scheduler *sched,
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			  struct amd_sched_entity *entity,
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			  struct amd_sched_rq *rq,
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			  uint32_t jobs)
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{
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	int r;

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	if (!(sched && entity && rq))
		return -EINVAL;

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	memset(entity, 0, sizeof(struct amd_sched_entity));
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	INIT_LIST_HEAD(&entity->list);
	entity->rq = rq;
	entity->sched = sched;
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	spin_lock_init(&entity->queue_lock);
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	r = kfifo_alloc(&entity->job_queue, jobs * sizeof(void *), GFP_KERNEL);
	if (r)
		return r;

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	atomic_set(&entity->fence_seq, 0);
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	entity->fence_context = dma_fence_context_alloc(2);
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	return 0;
}

/**
 * Query if entity is initialized
 *
 * @sched       Pointer to scheduler instance
 * @entity	The pointer to a valid scheduler entity
 *
 * return true if entity is initialized, false otherwise
*/
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static bool amd_sched_entity_is_initialized(struct amd_gpu_scheduler *sched,
					    struct amd_sched_entity *entity)
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{
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	return entity->sched == sched &&
		entity->rq != NULL;
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}

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/**
 * Check if entity is idle
 *
 * @entity	The pointer to a valid scheduler entity
 *
 * Return true if entity don't has any unscheduled jobs.
 */
static bool amd_sched_entity_is_idle(struct amd_sched_entity *entity)
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{
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	rmb();
	if (kfifo_is_empty(&entity->job_queue))
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		return true;

	return false;
}

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/**
 * Check if entity is ready
 *
 * @entity	The pointer to a valid scheduler entity
 *
 * Return true if entity could provide a job.
 */
static bool amd_sched_entity_is_ready(struct amd_sched_entity *entity)
{
	if (kfifo_is_empty(&entity->job_queue))
		return false;

	if (ACCESS_ONCE(entity->dependency))
		return false;

	return true;
}

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/**
 * Destroy a context entity
 *
 * @sched       Pointer to scheduler instance
 * @entity	The pointer to a valid scheduler entity
 *
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 * Cleanup and free the allocated resources.
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 */
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void amd_sched_entity_fini(struct amd_gpu_scheduler *sched,
			   struct amd_sched_entity *entity)
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{
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	struct amd_sched_rq *rq = entity->rq;
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	int r;
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	if (!amd_sched_entity_is_initialized(sched, entity))
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		return;
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	/**
	 * The client will not queue more IBs during this fini, consume existing
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	 * queued IBs or discard them on SIGKILL
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	*/
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	if ((current->flags & PF_SIGNALED) && current->exit_code == SIGKILL)
		r = -ERESTARTSYS;
	else
		r = wait_event_killable(sched->job_scheduled,
					amd_sched_entity_is_idle(entity));
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	amd_sched_rq_remove_entity(rq, entity);
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	if (r) {
		struct amd_sched_job *job;

		/* Park the kernel for a moment to make sure it isn't processing
		 * our enity.
		 */
		kthread_park(sched->thread);
		kthread_unpark(sched->thread);
		while (kfifo_out(&entity->job_queue, &job, sizeof(job)))
			sched->ops->free_job(job);

	}
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	kfifo_free(&entity->job_queue);
}

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static void amd_sched_entity_wakeup(struct dma_fence *f, struct dma_fence_cb *cb)
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{
	struct amd_sched_entity *entity =
		container_of(cb, struct amd_sched_entity, cb);
	entity->dependency = NULL;
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	dma_fence_put(f);
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	amd_sched_wakeup(entity->sched);
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}

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static void amd_sched_entity_clear_dep(struct dma_fence *f, struct dma_fence_cb *cb)
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{
	struct amd_sched_entity *entity =
		container_of(cb, struct amd_sched_entity, cb);
	entity->dependency = NULL;
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	dma_fence_put(f);
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}

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bool amd_sched_dependency_optimized(struct dma_fence* fence,
				    struct amd_sched_entity *entity)
{
	struct amd_gpu_scheduler *sched = entity->sched;
	struct amd_sched_fence *s_fence;

	if (!fence || dma_fence_is_signaled(fence))
		return false;
	if (fence->context == entity->fence_context)
		return true;
	s_fence = to_amd_sched_fence(fence);
	if (s_fence && s_fence->sched == sched)
		return true;

	return false;
}

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static bool amd_sched_entity_add_dependency_cb(struct amd_sched_entity *entity)
{
	struct amd_gpu_scheduler *sched = entity->sched;
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	struct dma_fence * fence = entity->dependency;
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	struct amd_sched_fence *s_fence;

	if (fence->context == entity->fence_context) {
		/* We can ignore fences from ourself */
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		dma_fence_put(entity->dependency);
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		return false;
	}

	s_fence = to_amd_sched_fence(fence);
	if (s_fence && s_fence->sched == sched) {

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		/*
		 * Fence is from the same scheduler, only need to wait for
		 * it to be scheduled
		 */
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		fence = dma_fence_get(&s_fence->scheduled);
		dma_fence_put(entity->dependency);
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		entity->dependency = fence;
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		if (!dma_fence_add_callback(fence, &entity->cb,
					    amd_sched_entity_clear_dep))
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			return true;

		/* Ignore it when it is already scheduled */
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		dma_fence_put(fence);
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		return false;
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	}

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	if (!dma_fence_add_callback(entity->dependency, &entity->cb,
				    amd_sched_entity_wakeup))
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		return true;

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	dma_fence_put(entity->dependency);
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	return false;
}

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static struct amd_sched_job *
amd_sched_entity_pop_job(struct amd_sched_entity *entity)
{
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	struct amd_gpu_scheduler *sched = entity->sched;
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	struct amd_sched_job *sched_job;
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	if (!kfifo_out_peek(&entity->job_queue, &sched_job, sizeof(sched_job)))
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		return NULL;

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	while ((entity->dependency = sched->ops->dependency(sched_job)))
		if (amd_sched_entity_add_dependency_cb(entity))
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			return NULL;

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	return sched_job;
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}

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/**
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 * Helper to submit a job to the job queue
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 *
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 * @sched_job		The pointer to job required to submit
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 *
 * Returns true if we could submit the job.
 */
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static bool amd_sched_entity_in(struct amd_sched_job *sched_job)
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{
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	struct amd_gpu_scheduler *sched = sched_job->sched;
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	struct amd_sched_entity *entity = sched_job->s_entity;
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	bool added, first = false;

	spin_lock(&entity->queue_lock);
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	added = kfifo_in(&entity->job_queue, &sched_job,
			sizeof(sched_job)) == sizeof(sched_job);
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	if (added && kfifo_len(&entity->job_queue) == sizeof(sched_job))
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		first = true;

	spin_unlock(&entity->queue_lock);

	/* first job wakes up scheduler */
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	if (first) {
		/* Add the entity to the run queue */
		amd_sched_rq_add_entity(entity->rq, entity);
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		amd_sched_wakeup(sched);
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	}
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	return added;
}

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/* job_finish is called after hw fence signaled, and
 * the job had already been deleted from ring_mirror_list
 */
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static void amd_sched_job_finish(struct work_struct *work)
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{
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	struct amd_sched_job *s_job = container_of(work, struct amd_sched_job,
						   finish_work);
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	struct amd_gpu_scheduler *sched = s_job->sched;

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	/* remove job from ring_mirror_list */
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	spin_lock(&sched->job_list_lock);
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	list_del_init(&s_job->node);
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	if (sched->timeout != MAX_SCHEDULE_TIMEOUT) {
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		struct amd_sched_job *next;

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		spin_unlock(&sched->job_list_lock);
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		cancel_delayed_work_sync(&s_job->work_tdr);
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		spin_lock(&sched->job_list_lock);
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		/* queue TDR for next job */
		next = list_first_entry_or_null(&sched->ring_mirror_list,
						struct amd_sched_job, node);

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		if (next)
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			schedule_delayed_work(&next->work_tdr, sched->timeout);
	}
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	spin_unlock(&sched->job_list_lock);
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	sched->ops->free_job(s_job);
}

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static void amd_sched_job_finish_cb(struct dma_fence *f,
				    struct dma_fence_cb *cb)
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{
	struct amd_sched_job *job = container_of(cb, struct amd_sched_job,
						 finish_cb);
	schedule_work(&job->finish_work);
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}

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static void amd_sched_job_begin(struct amd_sched_job *s_job)
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{
	struct amd_gpu_scheduler *sched = s_job->sched;

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	spin_lock(&sched->job_list_lock);
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	list_add_tail(&s_job->node, &sched->ring_mirror_list);
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	if (sched->timeout != MAX_SCHEDULE_TIMEOUT &&
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	    list_first_entry_or_null(&sched->ring_mirror_list,
				     struct amd_sched_job, node) == s_job)
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		schedule_delayed_work(&s_job->work_tdr, sched->timeout);
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	spin_unlock(&sched->job_list_lock);
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}

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static void amd_sched_job_timedout(struct work_struct *work)
{
	struct amd_sched_job *job = container_of(work, struct amd_sched_job,
						 work_tdr.work);

	job->sched->ops->timedout_job(job);
}

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void amd_sched_hw_job_reset(struct amd_gpu_scheduler *sched)
{
	struct amd_sched_job *s_job;

	spin_lock(&sched->job_list_lock);
	list_for_each_entry_reverse(s_job, &sched->ring_mirror_list, node) {
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		if (s_job->s_fence->parent &&
		    dma_fence_remove_callback(s_job->s_fence->parent,
					      &s_job->s_fence->cb)) {
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			dma_fence_put(s_job->s_fence->parent);
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			s_job->s_fence->parent = NULL;
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			atomic_dec(&sched->hw_rq_count);
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		}
	}
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	spin_unlock(&sched->job_list_lock);
}

void amd_sched_job_kickout(struct amd_sched_job *s_job)
{
	struct amd_gpu_scheduler *sched = s_job->sched;

	spin_lock(&sched->job_list_lock);
	list_del_init(&s_job->node);
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	spin_unlock(&sched->job_list_lock);
}

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void amd_sched_job_recovery(struct amd_gpu_scheduler *sched)
{
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	struct amd_sched_job *s_job, *tmp;
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	int r;

	spin_lock(&sched->job_list_lock);
	s_job = list_first_entry_or_null(&sched->ring_mirror_list,
					 struct amd_sched_job, node);
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	if (s_job && sched->timeout != MAX_SCHEDULE_TIMEOUT)
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		schedule_delayed_work(&s_job->work_tdr, sched->timeout);

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	list_for_each_entry_safe(s_job, tmp, &sched->ring_mirror_list, node) {
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		struct amd_sched_fence *s_fence = s_job->s_fence;
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		struct dma_fence *fence;
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		spin_unlock(&sched->job_list_lock);
		fence = sched->ops->run_job(s_job);
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		atomic_inc(&sched->hw_rq_count);
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		if (fence) {
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			s_fence->parent = dma_fence_get(fence);
			r = dma_fence_add_callback(fence, &s_fence->cb,
						   amd_sched_process_job);
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			if (r == -ENOENT)
				amd_sched_process_job(fence, &s_fence->cb);
			else if (r)
				DRM_ERROR("fence add callback failed (%d)\n",
					  r);
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			dma_fence_put(fence);
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		} else {
			DRM_ERROR("Failed to run job!\n");
			amd_sched_process_job(NULL, &s_fence->cb);
		}
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		spin_lock(&sched->job_list_lock);
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	}
	spin_unlock(&sched->job_list_lock);
}

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/**
 * Submit a job to the job queue
 *
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 * @sched_job		The pointer to job required to submit
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 *
 * Returns 0 for success, negative error code otherwise.
 */
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void amd_sched_entity_push_job(struct amd_sched_job *sched_job)
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{
	struct amd_sched_entity *entity = sched_job->s_entity;

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	trace_amd_sched_job(sched_job);
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	dma_fence_add_callback(&sched_job->s_fence->finished, &sched_job->finish_cb,
			       amd_sched_job_finish_cb);
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	wait_event(entity->sched->job_scheduled,
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		   amd_sched_entity_in(sched_job));
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}

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/* init a sched_job with basic field */
int amd_sched_job_init(struct amd_sched_job *job,
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		       struct amd_gpu_scheduler *sched,
		       struct amd_sched_entity *entity,
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		       void *owner)
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{
	job->sched = sched;
	job->s_entity = entity;
	job->s_fence = amd_sched_fence_create(entity, owner);
	if (!job->s_fence)
		return -ENOMEM;
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	job->id = atomic64_inc_return(&sched->job_id_count);
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	INIT_WORK(&job->finish_work, amd_sched_job_finish);
	INIT_LIST_HEAD(&job->node);
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	INIT_DELAYED_WORK(&job->work_tdr, amd_sched_job_timedout);
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	return 0;
}

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/**
 * Return ture if we can push more jobs to the hw.
 */
static bool amd_sched_ready(struct amd_gpu_scheduler *sched)
{
	return atomic_read(&sched->hw_rq_count) <
		sched->hw_submission_limit;
}

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/**
 * Wake up the scheduler when it is ready
 */
static void amd_sched_wakeup(struct amd_gpu_scheduler *sched)
{
	if (amd_sched_ready(sched))
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		wake_up_interruptible(&sched->wake_up_worker);
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}

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/**
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 * Select next entity to process
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*/
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static struct amd_sched_entity *
amd_sched_select_entity(struct amd_gpu_scheduler *sched)
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{
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	struct amd_sched_entity *entity;
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	int i;
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	if (!amd_sched_ready(sched))
		return NULL;

	/* Kernel run queue has higher priority than normal run queue*/
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	for (i = AMD_SCHED_PRIORITY_MAX - 1; i >= AMD_SCHED_PRIORITY_MIN; i--) {
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		entity = amd_sched_rq_select_entity(&sched->sched_rq[i]);
		if (entity)
			break;
	}
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	return entity;
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}

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static void amd_sched_process_job(struct dma_fence *f, struct dma_fence_cb *cb)
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{
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	struct amd_sched_fence *s_fence =
		container_of(cb, struct amd_sched_fence, cb);
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	struct amd_gpu_scheduler *sched = s_fence->sched;
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	atomic_dec(&sched->hw_rq_count);
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	amd_sched_fence_finished(s_fence);
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	trace_amd_sched_process_job(s_fence);
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	dma_fence_put(&s_fence->finished);
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	wake_up_interruptible(&sched->wake_up_worker);
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}

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static bool amd_sched_blocked(struct amd_gpu_scheduler *sched)
{
	if (kthread_should_park()) {
		kthread_parkme();
		return true;
	}

	return false;
}

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static int amd_sched_main(void *param)
{
	struct sched_param sparam = {.sched_priority = 1};
	struct amd_gpu_scheduler *sched = (struct amd_gpu_scheduler *)param;
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	int r, count;
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	sched_setscheduler(current, SCHED_FIFO, &sparam);

	while (!kthread_should_stop()) {
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		struct amd_sched_entity *entity = NULL;
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		struct amd_sched_fence *s_fence;
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		struct amd_sched_job *sched_job;
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		struct dma_fence *fence;
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		wait_event_interruptible(sched->wake_up_worker,
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					 (!amd_sched_blocked(sched) &&
					  (entity = amd_sched_select_entity(sched))) ||
					 kthread_should_stop());
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		if (!entity)
			continue;

		sched_job = amd_sched_entity_pop_job(entity);
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		if (!sched_job)
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			continue;

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		s_fence = sched_job->s_fence;
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		atomic_inc(&sched->hw_rq_count);
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		amd_sched_job_begin(sched_job);

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		fence = sched->ops->run_job(sched_job);
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		amd_sched_fence_scheduled(s_fence);
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		if (fence) {
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			s_fence->parent = dma_fence_get(fence);
			r = dma_fence_add_callback(fence, &s_fence->cb,
						   amd_sched_process_job);
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			if (r == -ENOENT)
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				amd_sched_process_job(fence, &s_fence->cb);
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			else if (r)
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				DRM_ERROR("fence add callback failed (%d)\n",
					  r);
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			dma_fence_put(fence);
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		} else {
			DRM_ERROR("Failed to run job!\n");
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			amd_sched_process_job(NULL, &s_fence->cb);
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		}
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		count = kfifo_out(&entity->job_queue, &sched_job,
				sizeof(sched_job));
		WARN_ON(count != sizeof(sched_job));
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		wake_up(&sched->job_scheduled);
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	}
	return 0;
}

/**
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 * Init a gpu scheduler instance
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 *
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 * @sched		The pointer to the scheduler
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 * @ops			The backend operations for this scheduler.
 * @hw_submissions	Number of hw submissions to do.
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 * @name		Name used for debugging
644
 *
645
 * Return 0 on success, otherwise error code.
646
*/
647
int amd_sched_init(struct amd_gpu_scheduler *sched,
648
		   const struct amd_sched_backend_ops *ops,
649
		   unsigned hw_submission, long timeout, const char *name)
650
{
651
	int i;
652
	sched->ops = ops;
653
	sched->hw_submission_limit = hw_submission;
654
	sched->name = name;
655
	sched->timeout = timeout;
656
	for (i = AMD_SCHED_PRIORITY_MIN; i < AMD_SCHED_PRIORITY_MAX; i++)
657
		amd_sched_rq_init(&sched->sched_rq[i]);
658

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	init_waitqueue_head(&sched->wake_up_worker);
	init_waitqueue_head(&sched->job_scheduled);
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	INIT_LIST_HEAD(&sched->ring_mirror_list);
	spin_lock_init(&sched->job_list_lock);
663
	atomic_set(&sched->hw_rq_count, 0);
664
	atomic64_set(&sched->job_id_count, 0);
665

666
	/* Each scheduler will run on a seperate kernel thread */
667
	sched->thread = kthread_run(amd_sched_main, sched, sched->name);
668
	if (IS_ERR(sched->thread)) {
669 670
		DRM_ERROR("Failed to create scheduler for %s.\n", name);
		return PTR_ERR(sched->thread);
671 672
	}

673
	return 0;
674 675 676 677 678 679 680
}

/**
 * Destroy a gpu scheduler
 *
 * @sched	The pointer to the scheduler
 */
681
void amd_sched_fini(struct amd_gpu_scheduler *sched)
682
{
683 684
	if (sched->thread)
		kthread_stop(sched->thread);
685
}