kfd_device_queue_manager.c 27.5 KB
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/*
 * Copyright 2014 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/slab.h>
#include <linux/list.h>
#include <linux/types.h>
#include <linux/printk.h>
#include <linux/bitops.h>
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#include <linux/sched.h>
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#include "kfd_priv.h"
#include "kfd_device_queue_manager.h"
#include "kfd_mqd_manager.h"
#include "cik_regs.h"
#include "kfd_kernel_queue.h"

/* Size of the per-pipe EOP queue */
#define CIK_HPD_EOP_BYTES_LOG2 11
#define CIK_HPD_EOP_BYTES (1U << CIK_HPD_EOP_BYTES_LOG2)

static int set_pasid_vmid_mapping(struct device_queue_manager *dqm,
					unsigned int pasid, unsigned int vmid);

static int create_compute_queue_nocpsch(struct device_queue_manager *dqm,
					struct queue *q,
					struct qcm_process_device *qpd);
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static int execute_queues_cpsch(struct device_queue_manager *dqm);
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static int unmap_queues_cpsch(struct device_queue_manager *dqm,
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				enum kfd_unmap_queues_filter filter,
				uint32_t filter_param);
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static int create_sdma_queue_nocpsch(struct device_queue_manager *dqm,
					struct queue *q,
					struct qcm_process_device *qpd);

static void deallocate_sdma_queue(struct device_queue_manager *dqm,
				unsigned int sdma_queue_id);
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static inline
enum KFD_MQD_TYPE get_mqd_type_from_queue_type(enum kfd_queue_type type)
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{
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	if (type == KFD_QUEUE_TYPE_SDMA)
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		return KFD_MQD_TYPE_SDMA;
	return KFD_MQD_TYPE_CP;
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}

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static bool is_pipe_enabled(struct device_queue_manager *dqm, int mec, int pipe)
{
	int i;
	int pipe_offset = mec * dqm->dev->shared_resources.num_pipe_per_mec
		+ pipe * dqm->dev->shared_resources.num_queue_per_pipe;

	/* queue is available for KFD usage if bit is 1 */
	for (i = 0; i <  dqm->dev->shared_resources.num_queue_per_pipe; ++i)
		if (test_bit(pipe_offset + i,
			      dqm->dev->shared_resources.queue_bitmap))
			return true;
	return false;
}

unsigned int get_queues_num(struct device_queue_manager *dqm)
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{
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	return bitmap_weight(dqm->dev->shared_resources.queue_bitmap,
				KGD_MAX_QUEUES);
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}

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unsigned int get_queues_per_pipe(struct device_queue_manager *dqm)
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{
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	return dqm->dev->shared_resources.num_queue_per_pipe;
}

unsigned int get_pipes_per_mec(struct device_queue_manager *dqm)
{
	return dqm->dev->shared_resources.num_pipe_per_mec;
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}

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void program_sh_mem_settings(struct device_queue_manager *dqm,
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					struct qcm_process_device *qpd)
{
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	return dqm->dev->kfd2kgd->program_sh_mem_settings(
						dqm->dev->kgd, qpd->vmid,
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						qpd->sh_mem_config,
						qpd->sh_mem_ape1_base,
						qpd->sh_mem_ape1_limit,
						qpd->sh_mem_bases);
}

static int allocate_vmid(struct device_queue_manager *dqm,
			struct qcm_process_device *qpd,
			struct queue *q)
{
	int bit, allocated_vmid;

	if (dqm->vmid_bitmap == 0)
		return -ENOMEM;

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	bit = find_first_bit((unsigned long *)&dqm->vmid_bitmap,
				dqm->dev->vm_info.vmid_num_kfd);
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	clear_bit(bit, (unsigned long *)&dqm->vmid_bitmap);

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	allocated_vmid = bit + dqm->dev->vm_info.first_vmid_kfd;
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	pr_debug("vmid allocation %d\n", allocated_vmid);
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	qpd->vmid = allocated_vmid;
	q->properties.vmid = allocated_vmid;

	set_pasid_vmid_mapping(dqm, q->process->pasid, q->properties.vmid);
	program_sh_mem_settings(dqm, qpd);

	return 0;
}

static void deallocate_vmid(struct device_queue_manager *dqm,
				struct qcm_process_device *qpd,
				struct queue *q)
{
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	int bit = qpd->vmid - dqm->dev->vm_info.first_vmid_kfd;
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	/* Release the vmid mapping */
	set_pasid_vmid_mapping(dqm, 0, qpd->vmid);

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	set_bit(bit, (unsigned long *)&dqm->vmid_bitmap);
	qpd->vmid = 0;
	q->properties.vmid = 0;
}

static int create_queue_nocpsch(struct device_queue_manager *dqm,
				struct queue *q,
				struct qcm_process_device *qpd,
				int *allocated_vmid)
{
	int retval;

	print_queue(q);

	mutex_lock(&dqm->lock);

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	if (dqm->total_queue_count >= max_num_of_queues_per_device) {
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		pr_warn("Can't create new usermode queue because %d queues were already created\n",
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				dqm->total_queue_count);
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		retval = -EPERM;
		goto out_unlock;
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	}

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	if (list_empty(&qpd->queues_list)) {
		retval = allocate_vmid(dqm, qpd, q);
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		if (retval)
			goto out_unlock;
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	}
	*allocated_vmid = qpd->vmid;
	q->properties.vmid = qpd->vmid;

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	if (q->properties.type == KFD_QUEUE_TYPE_COMPUTE)
		retval = create_compute_queue_nocpsch(dqm, q, qpd);
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	else if (q->properties.type == KFD_QUEUE_TYPE_SDMA)
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		retval = create_sdma_queue_nocpsch(dqm, q, qpd);
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	else
		retval = -EINVAL;
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	if (retval) {
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		if (list_empty(&qpd->queues_list)) {
			deallocate_vmid(dqm, qpd, q);
			*allocated_vmid = 0;
		}
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		goto out_unlock;
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	}

	list_add(&q->list, &qpd->queues_list);
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	if (q->properties.is_active)
		dqm->queue_count++;
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	if (q->properties.type == KFD_QUEUE_TYPE_SDMA)
		dqm->sdma_queue_count++;
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	/*
	 * Unconditionally increment this counter, regardless of the queue's
	 * type or whether the queue is active.
	 */
	dqm->total_queue_count++;
	pr_debug("Total of %d queues are accountable so far\n",
			dqm->total_queue_count);

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out_unlock:
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	mutex_unlock(&dqm->lock);
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	return retval;
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}

static int allocate_hqd(struct device_queue_manager *dqm, struct queue *q)
{
	bool set;
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	int pipe, bit, i;
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	set = false;

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	for (pipe = dqm->next_pipe_to_allocate, i = 0;
			i < get_pipes_per_mec(dqm);
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			pipe = ((pipe + 1) % get_pipes_per_mec(dqm)), ++i) {

		if (!is_pipe_enabled(dqm, 0, pipe))
			continue;

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		if (dqm->allocated_queues[pipe] != 0) {
			bit = find_first_bit(
				(unsigned long *)&dqm->allocated_queues[pipe],
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				get_queues_per_pipe(dqm));
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			clear_bit(bit,
				(unsigned long *)&dqm->allocated_queues[pipe]);
			q->pipe = pipe;
			q->queue = bit;
			set = true;
			break;
		}
	}

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	if (!set)
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		return -EBUSY;

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	pr_debug("hqd slot - pipe %d, queue %d\n", q->pipe, q->queue);
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	/* horizontal hqd allocation */
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	dqm->next_pipe_to_allocate = (pipe + 1) % get_pipes_per_mec(dqm);
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	return 0;
}

static inline void deallocate_hqd(struct device_queue_manager *dqm,
				struct queue *q)
{
	set_bit(q->queue, (unsigned long *)&dqm->allocated_queues[q->pipe]);
}

static int create_compute_queue_nocpsch(struct device_queue_manager *dqm,
					struct queue *q,
					struct qcm_process_device *qpd)
{
	int retval;
	struct mqd_manager *mqd;

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	mqd = dqm->ops.get_mqd_manager(dqm, KFD_MQD_TYPE_COMPUTE);
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	if (!mqd)
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		return -ENOMEM;

	retval = allocate_hqd(dqm, q);
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	if (retval)
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		return retval;

	retval = mqd->init_mqd(mqd, &q->mqd, &q->mqd_mem_obj,
				&q->gart_mqd_addr, &q->properties);
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	if (retval)
		goto out_deallocate_hqd;
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	pr_debug("Loading mqd to hqd on pipe %d, queue %d\n",
			q->pipe, q->queue);
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	dqm->dev->kfd2kgd->set_scratch_backing_va(
			dqm->dev->kgd, qpd->sh_hidden_private_base, qpd->vmid);

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	retval = mqd->load_mqd(mqd, q->mqd, q->pipe, q->queue, &q->properties,
			       q->process->mm);
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	if (retval)
		goto out_uninit_mqd;
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	return 0;
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out_uninit_mqd:
	mqd->uninit_mqd(mqd, q->mqd, q->mqd_mem_obj);
out_deallocate_hqd:
	deallocate_hqd(dqm, q);

	return retval;
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}

static int destroy_queue_nocpsch(struct device_queue_manager *dqm,
				struct qcm_process_device *qpd,
				struct queue *q)
{
	int retval;
	struct mqd_manager *mqd;

	retval = 0;

	mutex_lock(&dqm->lock);

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	if (q->properties.type == KFD_QUEUE_TYPE_COMPUTE) {
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		mqd = dqm->ops.get_mqd_manager(dqm, KFD_MQD_TYPE_COMPUTE);
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		if (mqd == NULL) {
			retval = -ENOMEM;
			goto out;
		}
		deallocate_hqd(dqm, q);
	} else if (q->properties.type == KFD_QUEUE_TYPE_SDMA) {
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		mqd = dqm->ops.get_mqd_manager(dqm, KFD_MQD_TYPE_SDMA);
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		if (mqd == NULL) {
			retval = -ENOMEM;
			goto out;
		}
		dqm->sdma_queue_count--;
		deallocate_sdma_queue(dqm, q->sdma_id);
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	} else {
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		pr_debug("q->properties.type %d is invalid\n",
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				q->properties.type);
		retval = -EINVAL;
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		goto out;
	}

	retval = mqd->destroy_mqd(mqd, q->mqd,
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				KFD_PREEMPT_TYPE_WAVEFRONT_RESET,
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				KFD_UNMAP_LATENCY_MS,
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				q->pipe, q->queue);

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	if (retval)
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		goto out;

	mqd->uninit_mqd(mqd, q->mqd, q->mqd_mem_obj);

	list_del(&q->list);
	if (list_empty(&qpd->queues_list))
		deallocate_vmid(dqm, qpd, q);
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	if (q->properties.is_active)
		dqm->queue_count--;
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	/*
	 * Unconditionally decrement this counter, regardless of the queue's
	 * type
	 */
	dqm->total_queue_count--;
	pr_debug("Total of %d queues are accountable so far\n",
			dqm->total_queue_count);

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out:
	mutex_unlock(&dqm->lock);
	return retval;
}

static int update_queue(struct device_queue_manager *dqm, struct queue *q)
{
	int retval;
	struct mqd_manager *mqd;
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	bool prev_active = false;
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	mutex_lock(&dqm->lock);
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	mqd = dqm->ops.get_mqd_manager(dqm,
			get_mqd_type_from_queue_type(q->properties.type));
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	if (!mqd) {
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		retval = -ENOMEM;
		goto out_unlock;
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	}

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	if (q->properties.is_active)
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		prev_active = true;

	/*
	 *
	 * check active state vs. the previous state
	 * and modify counter accordingly
	 */
	retval = mqd->update_mqd(mqd, q->mqd, &q->properties);
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	if ((q->properties.is_active) && (!prev_active))
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		dqm->queue_count++;
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	else if (!q->properties.is_active && prev_active)
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		dqm->queue_count--;

	if (sched_policy != KFD_SCHED_POLICY_NO_HWS)
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		retval = execute_queues_cpsch(dqm);
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out_unlock:
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	mutex_unlock(&dqm->lock);
	return retval;
}

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static struct mqd_manager *get_mqd_manager(
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		struct device_queue_manager *dqm, enum KFD_MQD_TYPE type)
{
	struct mqd_manager *mqd;

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	if (WARN_ON(type >= KFD_MQD_TYPE_MAX))
		return NULL;
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	pr_debug("mqd type %d\n", type);
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	mqd = dqm->mqds[type];
	if (!mqd) {
		mqd = mqd_manager_init(type, dqm->dev);
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		if (!mqd)
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			pr_err("mqd manager is NULL");
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		dqm->mqds[type] = mqd;
	}

	return mqd;
}

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static int register_process(struct device_queue_manager *dqm,
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					struct qcm_process_device *qpd)
{
	struct device_process_node *n;
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	int retval;
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	n = kzalloc(sizeof(*n), GFP_KERNEL);
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	if (!n)
		return -ENOMEM;

	n->qpd = qpd;

	mutex_lock(&dqm->lock);
	list_add(&n->list, &dqm->queues);

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	retval = dqm->ops_asic_specific.register_process(dqm, qpd);

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	dqm->processes_count++;

	mutex_unlock(&dqm->lock);

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	return retval;
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}

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static int unregister_process(struct device_queue_manager *dqm,
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					struct qcm_process_device *qpd)
{
	int retval;
	struct device_process_node *cur, *next;

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	pr_debug("qpd->queues_list is %s\n",
			list_empty(&qpd->queues_list) ? "empty" : "not empty");
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	retval = 0;
	mutex_lock(&dqm->lock);

	list_for_each_entry_safe(cur, next, &dqm->queues, list) {
		if (qpd == cur->qpd) {
			list_del(&cur->list);
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			kfree(cur);
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			dqm->processes_count--;
			goto out;
		}
	}
	/* qpd not found in dqm list */
	retval = 1;
out:
	mutex_unlock(&dqm->lock);
	return retval;
}

static int
set_pasid_vmid_mapping(struct device_queue_manager *dqm, unsigned int pasid,
			unsigned int vmid)
{
	uint32_t pasid_mapping;

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	pasid_mapping = (pasid == 0) ? 0 :
		(uint32_t)pasid |
		ATC_VMID_PASID_MAPPING_VALID;

	return dqm->dev->kfd2kgd->set_pasid_vmid_mapping(
						dqm->dev->kgd, pasid_mapping,
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						vmid);
}

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static void init_interrupts(struct device_queue_manager *dqm)
{
	unsigned int i;

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	for (i = 0 ; i < get_pipes_per_mec(dqm) ; i++)
		if (is_pipe_enabled(dqm, 0, i))
			dqm->dev->kfd2kgd->init_interrupts(dqm->dev->kgd, i);
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}

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static int initialize_nocpsch(struct device_queue_manager *dqm)
{
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	int pipe, queue;
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	pr_debug("num of pipes: %d\n", get_pipes_per_mec(dqm));
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	dqm->allocated_queues = kcalloc(get_pipes_per_mec(dqm),
					sizeof(unsigned int), GFP_KERNEL);
	if (!dqm->allocated_queues)
		return -ENOMEM;

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	mutex_init(&dqm->lock);
	INIT_LIST_HEAD(&dqm->queues);
	dqm->queue_count = dqm->next_pipe_to_allocate = 0;
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	dqm->sdma_queue_count = 0;
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	for (pipe = 0; pipe < get_pipes_per_mec(dqm); pipe++) {
		int pipe_offset = pipe * get_queues_per_pipe(dqm);

		for (queue = 0; queue < get_queues_per_pipe(dqm); queue++)
			if (test_bit(pipe_offset + queue,
				     dqm->dev->shared_resources.queue_bitmap))
				dqm->allocated_queues[pipe] |= 1 << queue;
	}
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	dqm->vmid_bitmap = (1 << dqm->dev->vm_info.vmid_num_kfd) - 1;
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	dqm->sdma_bitmap = (1 << CIK_SDMA_QUEUES) - 1;
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	return 0;
}

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static void uninitialize(struct device_queue_manager *dqm)
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{
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	int i;

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	WARN_ON(dqm->queue_count > 0 || dqm->processes_count > 0);
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	kfree(dqm->allocated_queues);
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	for (i = 0 ; i < KFD_MQD_TYPE_MAX ; i++)
		kfree(dqm->mqds[i]);
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	mutex_destroy(&dqm->lock);
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	kfd_gtt_sa_free(dqm->dev, dqm->pipeline_mem);
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}

static int start_nocpsch(struct device_queue_manager *dqm)
{
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	init_interrupts(dqm);
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	return 0;
}

static int stop_nocpsch(struct device_queue_manager *dqm)
{
	return 0;
}

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static int allocate_sdma_queue(struct device_queue_manager *dqm,
				unsigned int *sdma_queue_id)
{
	int bit;

	if (dqm->sdma_bitmap == 0)
		return -ENOMEM;

	bit = find_first_bit((unsigned long *)&dqm->sdma_bitmap,
				CIK_SDMA_QUEUES);

	clear_bit(bit, (unsigned long *)&dqm->sdma_bitmap);
	*sdma_queue_id = bit;

	return 0;
}

static void deallocate_sdma_queue(struct device_queue_manager *dqm,
				unsigned int sdma_queue_id)
{
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	if (sdma_queue_id >= CIK_SDMA_QUEUES)
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		return;
	set_bit(sdma_queue_id, (unsigned long *)&dqm->sdma_bitmap);
}

static int create_sdma_queue_nocpsch(struct device_queue_manager *dqm,
					struct queue *q,
					struct qcm_process_device *qpd)
{
	struct mqd_manager *mqd;
	int retval;

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	mqd = dqm->ops.get_mqd_manager(dqm, KFD_MQD_TYPE_SDMA);
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	if (!mqd)
		return -ENOMEM;

	retval = allocate_sdma_queue(dqm, &q->sdma_id);
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	if (retval)
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		return retval;

	q->properties.sdma_queue_id = q->sdma_id % CIK_SDMA_QUEUES_PER_ENGINE;
	q->properties.sdma_engine_id = q->sdma_id / CIK_SDMA_ENGINE_NUM;

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	pr_debug("SDMA id is:    %d\n", q->sdma_id);
	pr_debug("SDMA queue id: %d\n", q->properties.sdma_queue_id);
	pr_debug("SDMA engine id: %d\n", q->properties.sdma_engine_id);
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	dqm->ops_asic_specific.init_sdma_vm(dqm, q, qpd);
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	retval = mqd->init_mqd(mqd, &q->mqd, &q->mqd_mem_obj,
				&q->gart_mqd_addr, &q->properties);
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	if (retval)
		goto out_deallocate_sdma_queue;
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	retval = mqd->load_mqd(mqd, q->mqd, 0, 0, &q->properties, NULL);
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	if (retval)
		goto out_uninit_mqd;
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	return 0;
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out_uninit_mqd:
	mqd->uninit_mqd(mqd, q->mqd, q->mqd_mem_obj);
out_deallocate_sdma_queue:
	deallocate_sdma_queue(dqm, q->sdma_id);

	return retval;
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}

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/*
 * Device Queue Manager implementation for cp scheduler
 */

static int set_sched_resources(struct device_queue_manager *dqm)
{
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	int i, mec;
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	struct scheduling_resources res;

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	res.vmid_mask = dqm->dev->shared_resources.compute_vmid_bitmap;
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	res.queue_mask = 0;
	for (i = 0; i < KGD_MAX_QUEUES; ++i) {
		mec = (i / dqm->dev->shared_resources.num_queue_per_pipe)
			/ dqm->dev->shared_resources.num_pipe_per_mec;

		if (!test_bit(i, dqm->dev->shared_resources.queue_bitmap))
			continue;

		/* only acquire queues from the first MEC */
		if (mec > 0)
			continue;

		/* This situation may be hit in the future if a new HW
		 * generation exposes more than 64 queues. If so, the
633 634
		 * definition of res.queue_mask needs updating
		 */
635
		if (WARN_ON(i >= (sizeof(res.queue_mask)*8))) {
636 637 638 639 640 641
			pr_err("Invalid queue enabled by amdgpu: %d\n", i);
			break;
		}

		res.queue_mask |= (1ull << i);
	}
642 643 644
	res.gws_mask = res.oac_mask = res.gds_heap_base =
						res.gds_heap_size = 0;

645 646 647
	pr_debug("Scheduling resources:\n"
			"vmid mask: 0x%8X\n"
			"queue mask: 0x%8llX\n",
648 649 650 651 652 653 654 655 656
			res.vmid_mask, res.queue_mask);

	return pm_send_set_resources(&dqm->packets, &res);
}

static int initialize_cpsch(struct device_queue_manager *dqm)
{
	int retval;

657
	pr_debug("num of pipes: %d\n", get_pipes_per_mec(dqm));
658 659 660 661

	mutex_init(&dqm->lock);
	INIT_LIST_HEAD(&dqm->queues);
	dqm->queue_count = dqm->processes_count = 0;
662
	dqm->sdma_queue_count = 0;
663
	dqm->active_runlist = false;
664
	retval = dqm->ops_asic_specific.initialize(dqm);
665
	if (retval)
K
Kent Russell 已提交
666
		mutex_destroy(&dqm->lock);
667 668 669 670 671 672 673 674 675 676 677

	return retval;
}

static int start_cpsch(struct device_queue_manager *dqm)
{
	int retval;

	retval = 0;

	retval = pm_init(&dqm->packets, dqm);
678
	if (retval)
679 680 681
		goto fail_packet_manager_init;

	retval = set_sched_resources(dqm);
682
	if (retval)
683 684
		goto fail_set_sched_resources;

685
	pr_debug("Allocating fence memory\n");
686 687

	/* allocate fence memory on the gart */
688 689
	retval = kfd_gtt_sa_allocate(dqm->dev, sizeof(*dqm->fence_addr),
					&dqm->fence_mem);
690

691
	if (retval)
692 693 694 695
		goto fail_allocate_vidmem;

	dqm->fence_addr = dqm->fence_mem->cpu_ptr;
	dqm->fence_gpu_addr = dqm->fence_mem->gpu_addr;
696 697 698

	init_interrupts(dqm);

699 700 701
	mutex_lock(&dqm->lock);
	execute_queues_cpsch(dqm);
	mutex_unlock(&dqm->lock);
702 703 704 705 706 707 708 709 710 711 712

	return 0;
fail_allocate_vidmem:
fail_set_sched_resources:
	pm_uninit(&dqm->packets);
fail_packet_manager_init:
	return retval;
}

static int stop_cpsch(struct device_queue_manager *dqm)
{
713
	mutex_lock(&dqm->lock);
714
	unmap_queues_cpsch(dqm, KFD_UNMAP_QUEUES_FILTER_ALL_QUEUES, 0);
715
	mutex_unlock(&dqm->lock);
716

717
	kfd_gtt_sa_free(dqm->dev, dqm->fence_mem);
718 719 720 721 722 723 724 725 726 727
	pm_uninit(&dqm->packets);

	return 0;
}

static int create_kernel_queue_cpsch(struct device_queue_manager *dqm,
					struct kernel_queue *kq,
					struct qcm_process_device *qpd)
{
	mutex_lock(&dqm->lock);
728
	if (dqm->total_queue_count >= max_num_of_queues_per_device) {
729
		pr_warn("Can't create new kernel queue because %d queues were already created\n",
730 731 732 733 734 735 736 737 738 739 740 741 742
				dqm->total_queue_count);
		mutex_unlock(&dqm->lock);
		return -EPERM;
	}

	/*
	 * Unconditionally increment this counter, regardless of the queue's
	 * type or whether the queue is active.
	 */
	dqm->total_queue_count++;
	pr_debug("Total of %d queues are accountable so far\n",
			dqm->total_queue_count);

743 744 745
	list_add(&kq->list, &qpd->priv_queue_list);
	dqm->queue_count++;
	qpd->is_debug = true;
746
	execute_queues_cpsch(dqm);
747 748 749 750 751 752 753 754 755 756
	mutex_unlock(&dqm->lock);

	return 0;
}

static void destroy_kernel_queue_cpsch(struct device_queue_manager *dqm,
					struct kernel_queue *kq,
					struct qcm_process_device *qpd)
{
	mutex_lock(&dqm->lock);
757
	/* here we actually preempt the DIQ */
758
	unmap_queues_cpsch(dqm, KFD_UNMAP_QUEUES_FILTER_ALL_QUEUES, 0);
759 760 761
	list_del(&kq->list);
	dqm->queue_count--;
	qpd->is_debug = false;
762
	execute_queues_cpsch(dqm);
763 764 765 766
	/*
	 * Unconditionally decrement this counter, regardless of the queue's
	 * type.
	 */
767
	dqm->total_queue_count--;
768 769
	pr_debug("Total of %d queues are accountable so far\n",
			dqm->total_queue_count);
770 771 772
	mutex_unlock(&dqm->lock);
}

773 774 775 776 777 778 779 780
static void select_sdma_engine_id(struct queue *q)
{
	static int sdma_id;

	q->sdma_id = sdma_id;
	sdma_id = (sdma_id + 1) % 2;
}

781 782 783 784 785 786 787 788 789 790 791 792 793
static int create_queue_cpsch(struct device_queue_manager *dqm, struct queue *q,
			struct qcm_process_device *qpd, int *allocate_vmid)
{
	int retval;
	struct mqd_manager *mqd;

	retval = 0;

	if (allocate_vmid)
		*allocate_vmid = 0;

	mutex_lock(&dqm->lock);

794
	if (dqm->total_queue_count >= max_num_of_queues_per_device) {
795
		pr_warn("Can't create new usermode queue because %d queues were already created\n",
796 797 798 799 800
				dqm->total_queue_count);
		retval = -EPERM;
		goto out;
	}

801 802 803
	if (q->properties.type == KFD_QUEUE_TYPE_SDMA)
		select_sdma_engine_id(q);

804
	mqd = dqm->ops.get_mqd_manager(dqm,
805 806
			get_mqd_type_from_queue_type(q->properties.type));

807
	if (!mqd) {
K
Kent Russell 已提交
808 809
		retval = -ENOMEM;
		goto out;
810 811
	}

812
	dqm->ops_asic_specific.init_sdma_vm(dqm, q, qpd);
813 814
	retval = mqd->init_mqd(mqd, &q->mqd, &q->mqd_mem_obj,
				&q->gart_mqd_addr, &q->properties);
815
	if (retval)
816 817 818 819 820
		goto out;

	list_add(&q->list, &qpd->queues_list);
	if (q->properties.is_active) {
		dqm->queue_count++;
821
		retval = execute_queues_cpsch(dqm);
822 823
	}

824
	if (q->properties.type == KFD_QUEUE_TYPE_SDMA)
825
		dqm->sdma_queue_count++;
826 827 828 829 830 831 832 833 834
	/*
	 * Unconditionally increment this counter, regardless of the queue's
	 * type or whether the queue is active.
	 */
	dqm->total_queue_count++;

	pr_debug("Total of %d queues are accountable so far\n",
			dqm->total_queue_count);

835 836 837 838 839
out:
	mutex_unlock(&dqm->lock);
	return retval;
}

840
int amdkfd_fence_wait_timeout(unsigned int *fence_addr,
841
				unsigned int fence_value,
842
				unsigned int timeout_ms)
843
{
844
	unsigned long end_jiffies = msecs_to_jiffies(timeout_ms) + jiffies;
845 846

	while (*fence_addr != fence_value) {
847
		if (time_after(jiffies, end_jiffies)) {
848
			pr_err("qcm fence wait loop timeout expired\n");
849 850
			return -ETIME;
		}
851
		schedule();
852 853 854 855 856
	}

	return 0;
}

857
static int unmap_sdma_queues(struct device_queue_manager *dqm,
858 859 860
				unsigned int sdma_engine)
{
	return pm_send_unmap_queue(&dqm->packets, KFD_QUEUE_TYPE_SDMA,
861
			KFD_UNMAP_QUEUES_FILTER_DYNAMIC_QUEUES, 0, false,
862 863 864
			sdma_engine);
}

865
/* dqm->lock mutex has to be locked before calling this function */
866
static int unmap_queues_cpsch(struct device_queue_manager *dqm,
867 868
				enum kfd_unmap_queues_filter filter,
				uint32_t filter_param)
869 870
{
	int retval;
871
	struct kfd_process_device *pdd;
872 873 874

	retval = 0;

875
	if (!dqm->active_runlist)
876
		return retval;
877

878
	pr_debug("Before destroying queues, sdma queue count is : %u\n",
879 880 881
		dqm->sdma_queue_count);

	if (dqm->sdma_queue_count > 0) {
882 883
		unmap_sdma_queues(dqm, 0);
		unmap_sdma_queues(dqm, 1);
884 885
	}

886
	retval = pm_send_unmap_queue(&dqm->packets, KFD_QUEUE_TYPE_COMPUTE,
887
			filter, filter_param, false, 0);
888
	if (retval)
889
		return retval;
890 891 892 893 894

	*dqm->fence_addr = KFD_FENCE_INIT;
	pm_send_query_status(&dqm->packets, dqm->fence_gpu_addr,
				KFD_FENCE_COMPLETED);
	/* should be timed out */
895
	retval = amdkfd_fence_wait_timeout(dqm->fence_addr, KFD_FENCE_COMPLETED,
896
				QUEUE_PREEMPT_DEFAULT_TIMEOUT_MS);
897
	if (retval) {
898 899 900
		pdd = kfd_get_process_device_data(dqm->dev,
				kfd_get_process(current));
		pdd->reset_wavefronts = true;
901
		return retval;
902
	}
903 904 905 906 907 908
	pm_release_ib(&dqm->packets);
	dqm->active_runlist = false;

	return retval;
}

909 910
/* dqm->lock mutex has to be locked before calling this function */
static int execute_queues_cpsch(struct device_queue_manager *dqm)
911 912 913
{
	int retval;

914 915
	retval = unmap_queues_cpsch(dqm, KFD_UNMAP_QUEUES_FILTER_DYNAMIC_QUEUES,
			0);
916
	if (retval) {
917
		pr_err("The cp might be in an unrecoverable state due to an unsuccessful queues preemption");
918
		return retval;
919 920
	}

921 922
	if (dqm->queue_count <= 0 || dqm->processes_count <= 0)
		return 0;
923

924 925
	if (dqm->active_runlist)
		return 0;
926 927

	retval = pm_send_runlist(&dqm->packets, &dqm->queues);
928
	if (retval) {
929
		pr_err("failed to execute runlist");
930
		return retval;
931 932 933 934 935 936 937 938 939 940 941 942
	}
	dqm->active_runlist = true;

	return retval;
}

static int destroy_queue_cpsch(struct device_queue_manager *dqm,
				struct qcm_process_device *qpd,
				struct queue *q)
{
	int retval;
	struct mqd_manager *mqd;
943
	bool preempt_all_queues;
944

945 946
	preempt_all_queues = false;

947 948 949 950
	retval = 0;

	/* remove queue from list to prevent rescheduling after preemption */
	mutex_lock(&dqm->lock);
951 952 953 954 955 956 957 958 959 960 961

	if (qpd->is_debug) {
		/*
		 * error, currently we do not allow to destroy a queue
		 * of a currently debugged process
		 */
		retval = -EBUSY;
		goto failed_try_destroy_debugged_queue;

	}

962
	mqd = dqm->ops.get_mqd_manager(dqm,
963
			get_mqd_type_from_queue_type(q->properties.type));
964 965 966 967 968
	if (!mqd) {
		retval = -ENOMEM;
		goto failed;
	}

969 970 971
	if (q->properties.type == KFD_QUEUE_TYPE_SDMA)
		dqm->sdma_queue_count--;

972
	list_del(&q->list);
973 974
	if (q->properties.is_active)
		dqm->queue_count--;
975

976
	execute_queues_cpsch(dqm);
977 978

	mqd->uninit_mqd(mqd, q->mqd, q->mqd_mem_obj);
979 980 981 982 983 984 985 986

	/*
	 * Unconditionally decrement this counter, regardless of the queue's
	 * type
	 */
	dqm->total_queue_count--;
	pr_debug("Total of %d queues are accountable so far\n",
			dqm->total_queue_count);
987 988 989 990 991 992

	mutex_unlock(&dqm->lock);

	return 0;

failed:
993 994
failed_try_destroy_debugged_queue:

995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013
	mutex_unlock(&dqm->lock);
	return retval;
}

/*
 * Low bits must be 0000/FFFF as required by HW, high bits must be 0 to
 * stay in user mode.
 */
#define APE1_FIXED_BITS_MASK 0xFFFF80000000FFFFULL
/* APE1 limit is inclusive and 64K aligned. */
#define APE1_LIMIT_ALIGNMENT 0xFFFF

static bool set_cache_memory_policy(struct device_queue_manager *dqm,
				   struct qcm_process_device *qpd,
				   enum cache_policy default_policy,
				   enum cache_policy alternate_policy,
				   void __user *alternate_aperture_base,
				   uint64_t alternate_aperture_size)
{
1014
	bool retval;
1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035

	mutex_lock(&dqm->lock);

	if (alternate_aperture_size == 0) {
		/* base > limit disables APE1 */
		qpd->sh_mem_ape1_base = 1;
		qpd->sh_mem_ape1_limit = 0;
	} else {
		/*
		 * In FSA64, APE1_Base[63:0] = { 16{SH_MEM_APE1_BASE[31]},
		 *			SH_MEM_APE1_BASE[31:0], 0x0000 }
		 * APE1_Limit[63:0] = { 16{SH_MEM_APE1_LIMIT[31]},
		 *			SH_MEM_APE1_LIMIT[31:0], 0xFFFF }
		 * Verify that the base and size parameters can be
		 * represented in this format and convert them.
		 * Additionally restrict APE1 to user-mode addresses.
		 */

		uint64_t base = (uintptr_t)alternate_aperture_base;
		uint64_t limit = base + alternate_aperture_size - 1;

K
Kent Russell 已提交
1036 1037 1038
		if (limit <= base || (base & APE1_FIXED_BITS_MASK) != 0 ||
		   (limit & APE1_FIXED_BITS_MASK) != APE1_LIMIT_ALIGNMENT) {
			retval = false;
1039
			goto out;
K
Kent Russell 已提交
1040
		}
1041 1042 1043 1044 1045

		qpd->sh_mem_ape1_base = base >> 16;
		qpd->sh_mem_ape1_limit = limit >> 16;
	}

1046 1047 1048 1049 1050 1051 1052
	retval = dqm->ops_asic_specific.set_cache_memory_policy(
			dqm,
			qpd,
			default_policy,
			alternate_policy,
			alternate_aperture_base,
			alternate_aperture_size);
1053 1054 1055 1056

	if ((sched_policy == KFD_SCHED_POLICY_NO_HWS) && (qpd->vmid != 0))
		program_sh_mem_settings(dqm, qpd);

1057
	pr_debug("sh_mem_config: 0x%x, ape1_base: 0x%x, ape1_limit: 0x%x\n",
1058 1059 1060 1061 1062
		qpd->sh_mem_config, qpd->sh_mem_ape1_base,
		qpd->sh_mem_ape1_limit);

out:
	mutex_unlock(&dqm->lock);
K
Kent Russell 已提交
1063
	return retval;
1064 1065 1066 1067 1068 1069
}

struct device_queue_manager *device_queue_manager_init(struct kfd_dev *dev)
{
	struct device_queue_manager *dqm;

1070
	pr_debug("Loading device queue manager\n");
1071

1072
	dqm = kzalloc(sizeof(*dqm), GFP_KERNEL);
1073 1074 1075 1076 1077 1078 1079 1080
	if (!dqm)
		return NULL;

	dqm->dev = dev;
	switch (sched_policy) {
	case KFD_SCHED_POLICY_HWS:
	case KFD_SCHED_POLICY_HWS_NO_OVERSUBSCRIPTION:
		/* initialize dqm for cp scheduling */
1081 1082 1083 1084 1085 1086
		dqm->ops.create_queue = create_queue_cpsch;
		dqm->ops.initialize = initialize_cpsch;
		dqm->ops.start = start_cpsch;
		dqm->ops.stop = stop_cpsch;
		dqm->ops.destroy_queue = destroy_queue_cpsch;
		dqm->ops.update_queue = update_queue;
1087 1088 1089 1090
		dqm->ops.get_mqd_manager = get_mqd_manager;
		dqm->ops.register_process = register_process;
		dqm->ops.unregister_process = unregister_process;
		dqm->ops.uninitialize = uninitialize;
1091 1092 1093
		dqm->ops.create_kernel_queue = create_kernel_queue_cpsch;
		dqm->ops.destroy_kernel_queue = destroy_kernel_queue_cpsch;
		dqm->ops.set_cache_memory_policy = set_cache_memory_policy;
1094 1095 1096
		break;
	case KFD_SCHED_POLICY_NO_HWS:
		/* initialize dqm for no cp scheduling */
1097 1098 1099 1100 1101
		dqm->ops.start = start_nocpsch;
		dqm->ops.stop = stop_nocpsch;
		dqm->ops.create_queue = create_queue_nocpsch;
		dqm->ops.destroy_queue = destroy_queue_nocpsch;
		dqm->ops.update_queue = update_queue;
1102 1103 1104
		dqm->ops.get_mqd_manager = get_mqd_manager;
		dqm->ops.register_process = register_process;
		dqm->ops.unregister_process = unregister_process;
1105
		dqm->ops.initialize = initialize_nocpsch;
1106
		dqm->ops.uninitialize = uninitialize;
1107
		dqm->ops.set_cache_memory_policy = set_cache_memory_policy;
1108 1109
		break;
	default:
1110 1111
		pr_err("Invalid scheduling policy %d\n", sched_policy);
		goto out_free;
1112 1113
	}

1114 1115 1116
	switch (dev->device_info->asic_family) {
	case CHIP_CARRIZO:
		device_queue_manager_init_vi(&dqm->ops_asic_specific);
1117 1118
		break;

1119 1120
	case CHIP_KAVERI:
		device_queue_manager_init_cik(&dqm->ops_asic_specific);
1121
		break;
1122 1123 1124 1125
	default:
		WARN(1, "Unexpected ASIC family %u",
		     dev->device_info->asic_family);
		goto out_free;
1126 1127
	}

1128 1129
	if (!dqm->ops.initialize(dqm))
		return dqm;
1130

1131 1132 1133
out_free:
	kfree(dqm);
	return NULL;
1134 1135 1136 1137
}

void device_queue_manager_uninit(struct device_queue_manager *dqm)
{
1138
	dqm->ops.uninitialize(dqm);
1139 1140
	kfree(dqm);
}