blk-mq-sched.c 17.8 KB
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// SPDX-License-Identifier: GPL-2.0
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/*
 * blk-mq scheduling framework
 *
 * Copyright (C) 2016 Jens Axboe
 */
#include <linux/kernel.h>
#include <linux/module.h>
#include <linux/blk-mq.h>
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#include <linux/list_sort.h>
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#include <trace/events/block.h>

#include "blk.h"
#include "blk-mq.h"
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#include "blk-mq-debugfs.h"
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#include "blk-mq-sched.h"
#include "blk-mq-tag.h"
#include "blk-wbt.h"

D
Damien Le Moal 已提交
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void blk_mq_sched_assign_ioc(struct request *rq)
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{
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	struct request_queue *q = rq->q;
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	struct io_context *ioc;
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	struct io_cq *icq;

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	/*
	 * May not have an IO context if it's a passthrough request
	 */
	ioc = current->io_context;
	if (!ioc)
		return;

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	spin_lock_irq(&q->queue_lock);
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	icq = ioc_lookup_icq(ioc, q);
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	spin_unlock_irq(&q->queue_lock);
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	if (!icq) {
		icq = ioc_create_icq(ioc, q, GFP_ATOMIC);
		if (!icq)
			return;
	}
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	get_io_context(icq->ioc);
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	rq->elv.icq = icq;
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}

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/*
 * Mark a hardware queue as needing a restart. For shared queues, maintain
 * a count of how many hardware queues are marked for restart.
 */
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void blk_mq_sched_mark_restart_hctx(struct blk_mq_hw_ctx *hctx)
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{
	if (test_bit(BLK_MQ_S_SCHED_RESTART, &hctx->state))
		return;

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	set_bit(BLK_MQ_S_SCHED_RESTART, &hctx->state);
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}
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EXPORT_SYMBOL_GPL(blk_mq_sched_mark_restart_hctx);
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void blk_mq_sched_restart(struct blk_mq_hw_ctx *hctx)
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{
	if (!test_bit(BLK_MQ_S_SCHED_RESTART, &hctx->state))
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		return;
	clear_bit(BLK_MQ_S_SCHED_RESTART, &hctx->state);
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	/*
	 * Order clearing SCHED_RESTART and list_empty_careful(&hctx->dispatch)
	 * in blk_mq_run_hw_queue(). Its pair is the barrier in
	 * blk_mq_dispatch_rq_list(). So dispatch code won't see SCHED_RESTART,
	 * meantime new request added to hctx->dispatch is missed to check in
	 * blk_mq_run_hw_queue().
	 */
	smp_mb();

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	blk_mq_run_hw_queue(hctx, true);
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}

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static int sched_rq_cmp(void *priv, const struct list_head *a,
			const struct list_head *b)
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{
	struct request *rqa = container_of(a, struct request, queuelist);
	struct request *rqb = container_of(b, struct request, queuelist);

	return rqa->mq_hctx > rqb->mq_hctx;
}

static bool blk_mq_dispatch_hctx_list(struct list_head *rq_list)
{
	struct blk_mq_hw_ctx *hctx =
		list_first_entry(rq_list, struct request, queuelist)->mq_hctx;
	struct request *rq;
	LIST_HEAD(hctx_list);
	unsigned int count = 0;

	list_for_each_entry(rq, rq_list, queuelist) {
		if (rq->mq_hctx != hctx) {
			list_cut_before(&hctx_list, rq_list, &rq->queuelist);
			goto dispatch;
		}
		count++;
	}
	list_splice_tail_init(rq_list, &hctx_list);

dispatch:
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	return blk_mq_dispatch_rq_list(hctx, &hctx_list, count);
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}

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#define BLK_MQ_BUDGET_DELAY	3		/* ms units */

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/*
 * Only SCSI implements .get_budget and .put_budget, and SCSI restarts
 * its queue by itself in its completion handler, so we don't need to
 * restart queue if .get_budget() returns BLK_STS_NO_RESOURCE.
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 *
 * Returns -EAGAIN if hctx->dispatch was found non-empty and run_work has to
 * be run again.  This is necessary to avoid starving flushes.
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 */
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static int __blk_mq_do_dispatch_sched(struct blk_mq_hw_ctx *hctx)
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{
	struct request_queue *q = hctx->queue;
	struct elevator_queue *e = q->elevator;
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	bool multi_hctxs = false, run_queue = false;
	bool dispatched = false, busy = false;
	unsigned int max_dispatch;
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	LIST_HEAD(rq_list);
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	int count = 0;

	if (hctx->dispatch_busy)
		max_dispatch = 1;
	else
		max_dispatch = hctx->queue->nr_requests;
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	do {
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		struct request *rq;
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		int budget_token;
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		if (e->type->ops.has_work && !e->type->ops.has_work(hctx))
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			break;
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		if (!list_empty_careful(&hctx->dispatch)) {
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			busy = true;
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			break;
		}

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		budget_token = blk_mq_get_dispatch_budget(q);
		if (budget_token < 0)
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			break;
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		rq = e->type->ops.dispatch_request(hctx);
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		if (!rq) {
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			blk_mq_put_dispatch_budget(q, budget_token);
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			/*
			 * We're releasing without dispatching. Holding the
			 * budget could have blocked any "hctx"s with the
			 * same queue and if we didn't dispatch then there's
			 * no guarantee anyone will kick the queue.  Kick it
			 * ourselves.
			 */
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			run_queue = true;
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			break;
		}

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		blk_mq_set_rq_budget_token(rq, budget_token);

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		/*
		 * Now this rq owns the budget which has to be released
		 * if this rq won't be queued to driver via .queue_rq()
		 * in blk_mq_dispatch_rq_list().
		 */
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		list_add_tail(&rq->queuelist, &rq_list);
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		count++;
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		if (rq->mq_hctx != hctx)
			multi_hctxs = true;
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		/*
		 * If we cannot get tag for the request, stop dequeueing
		 * requests from the IO scheduler. We are unlikely to be able
		 * to submit them anyway and it creates false impression for
		 * scheduling heuristics that the device can take more IO.
		 */
		if (!blk_mq_get_driver_tag(rq))
			break;
	} while (count < max_dispatch);
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	if (!count) {
		if (run_queue)
			blk_mq_delay_run_hw_queues(q, BLK_MQ_BUDGET_DELAY);
	} else if (multi_hctxs) {
		/*
		 * Requests from different hctx may be dequeued from some
		 * schedulers, such as bfq and deadline.
		 *
		 * Sort the requests in the list according to their hctx,
		 * dispatch batching requests from same hctx at a time.
		 */
		list_sort(NULL, &rq_list, sched_rq_cmp);
		do {
			dispatched |= blk_mq_dispatch_hctx_list(&rq_list);
		} while (!list_empty(&rq_list));
	} else {
		dispatched = blk_mq_dispatch_rq_list(hctx, &rq_list, count);
	}

	if (busy)
		return -EAGAIN;
	return !!dispatched;
}

static int blk_mq_do_dispatch_sched(struct blk_mq_hw_ctx *hctx)
{
	int ret;

	do {
		ret = __blk_mq_do_dispatch_sched(hctx);
	} while (ret == 1);
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	return ret;
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}

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static struct blk_mq_ctx *blk_mq_next_ctx(struct blk_mq_hw_ctx *hctx,
					  struct blk_mq_ctx *ctx)
{
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	unsigned short idx = ctx->index_hw[hctx->type];
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	if (++idx == hctx->nr_ctx)
		idx = 0;

	return hctx->ctxs[idx];
}

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/*
 * Only SCSI implements .get_budget and .put_budget, and SCSI restarts
 * its queue by itself in its completion handler, so we don't need to
 * restart queue if .get_budget() returns BLK_STS_NO_RESOURCE.
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 *
 * Returns -EAGAIN if hctx->dispatch was found non-empty and run_work has to
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 * be run again.  This is necessary to avoid starving flushes.
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 */
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static int blk_mq_do_dispatch_ctx(struct blk_mq_hw_ctx *hctx)
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{
	struct request_queue *q = hctx->queue;
	LIST_HEAD(rq_list);
	struct blk_mq_ctx *ctx = READ_ONCE(hctx->dispatch_from);
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	int ret = 0;
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	struct request *rq;
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	do {
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		int budget_token;

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		if (!list_empty_careful(&hctx->dispatch)) {
			ret = -EAGAIN;
			break;
		}

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		if (!sbitmap_any_bit_set(&hctx->ctx_map))
			break;

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		budget_token = blk_mq_get_dispatch_budget(q);
		if (budget_token < 0)
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			break;
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		rq = blk_mq_dequeue_from_ctx(hctx, ctx);
		if (!rq) {
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			blk_mq_put_dispatch_budget(q, budget_token);
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			/*
			 * We're releasing without dispatching. Holding the
			 * budget could have blocked any "hctx"s with the
			 * same queue and if we didn't dispatch then there's
			 * no guarantee anyone will kick the queue.  Kick it
			 * ourselves.
			 */
			blk_mq_delay_run_hw_queues(q, BLK_MQ_BUDGET_DELAY);
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			break;
		}

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		blk_mq_set_rq_budget_token(rq, budget_token);

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		/*
		 * Now this rq owns the budget which has to be released
		 * if this rq won't be queued to driver via .queue_rq()
		 * in blk_mq_dispatch_rq_list().
		 */
		list_add(&rq->queuelist, &rq_list);

		/* round robin for fair dispatch */
		ctx = blk_mq_next_ctx(hctx, rq->mq_ctx);

288
	} while (blk_mq_dispatch_rq_list(rq->mq_hctx, &rq_list, 1));
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	WRITE_ONCE(hctx->dispatch_from, ctx);
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	return ret;
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}

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static int __blk_mq_sched_dispatch_requests(struct blk_mq_hw_ctx *hctx)
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{
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	struct request_queue *q = hctx->queue;
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	const bool has_sched = q->elevator;
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	int ret = 0;
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	LIST_HEAD(rq_list);

	/*
	 * If we have previous entries on our dispatch list, grab them first for
	 * more fair dispatch.
	 */
	if (!list_empty_careful(&hctx->dispatch)) {
		spin_lock(&hctx->lock);
		if (!list_empty(&hctx->dispatch))
			list_splice_init(&hctx->dispatch, &rq_list);
		spin_unlock(&hctx->lock);
	}

	/*
	 * Only ask the scheduler for requests, if we didn't have residual
	 * requests from the dispatch list. This is to avoid the case where
	 * we only ever dispatch a fraction of the requests available because
	 * of low device queue depth. Once we pull requests out of the IO
	 * scheduler, we can no longer merge or sort them. So it's best to
	 * leave them there for as long as we can. Mark the hw queue as
	 * needing a restart in that case.
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	 *
	 * We want to dispatch from the scheduler if there was nothing
	 * on the dispatch list or we were able to dispatch from the
	 * dispatch list.
324
	 */
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	if (!list_empty(&rq_list)) {
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		blk_mq_sched_mark_restart_hctx(hctx);
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		if (blk_mq_dispatch_rq_list(hctx, &rq_list, 0)) {
328
			if (has_sched)
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				ret = blk_mq_do_dispatch_sched(hctx);
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			else
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				ret = blk_mq_do_dispatch_ctx(hctx);
332
		}
333
	} else if (has_sched) {
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		ret = blk_mq_do_dispatch_sched(hctx);
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	} else if (hctx->dispatch_busy) {
		/* dequeue request one by one from sw queue if queue is busy */
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		ret = blk_mq_do_dispatch_ctx(hctx);
338
	} else {
339
		blk_mq_flush_busy_ctxs(hctx, &rq_list);
340
		blk_mq_dispatch_rq_list(hctx, &rq_list, 0);
341
	}
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	return ret;
}

void blk_mq_sched_dispatch_requests(struct blk_mq_hw_ctx *hctx)
{
	struct request_queue *q = hctx->queue;

	/* RCU or SRCU read lock is needed before checking quiesced flag */
	if (unlikely(blk_mq_hctx_stopped(hctx) || blk_queue_quiesced(q)))
		return;

	hctx->run++;

	/*
	 * A return of -EAGAIN is an indication that hctx->dispatch is not
	 * empty and we must run again in order to avoid starving flushes.
	 */
	if (__blk_mq_sched_dispatch_requests(hctx) == -EAGAIN) {
		if (__blk_mq_sched_dispatch_requests(hctx) == -EAGAIN)
			blk_mq_run_hw_queue(hctx, true);
	}
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}

366 367
bool __blk_mq_sched_bio_merge(struct request_queue *q, struct bio *bio,
		unsigned int nr_segs)
368 369
{
	struct elevator_queue *e = q->elevator;
370 371
	struct blk_mq_ctx *ctx;
	struct blk_mq_hw_ctx *hctx;
372
	bool ret = false;
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Ming Lei 已提交
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	enum hctx_type type;
374

375
	if (e && e->type->ops.bio_merge)
376
		return e->type->ops.bio_merge(q, bio, nr_segs);
377

378 379
	ctx = blk_mq_get_ctx(q);
	hctx = blk_mq_map_queue(q, bio->bi_opf, ctx);
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Ming Lei 已提交
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	type = hctx->type;
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	if (!(hctx->flags & BLK_MQ_F_SHOULD_MERGE) ||
	    list_empty_careful(&ctx->rq_lists[type]))
		return false;

	/* default per sw-queue merge */
	spin_lock(&ctx->lock);
	/*
	 * Reverse check our software queue for entries that we could
	 * potentially merge with. Currently includes a hand-wavy stop
	 * count of 8, to not spend too much time checking for merges.
	 */
	if (blk_bio_list_merge(q, &ctx->rq_lists[type], bio, nr_segs)) {
		ctx->rq_merged++;
		ret = true;
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	}

397 398
	spin_unlock(&ctx->lock);

399
	return ret;
400 401
}

402 403
bool blk_mq_sched_try_insert_merge(struct request_queue *q, struct request *rq,
				   struct list_head *free)
404
{
405
	return rq_mergeable(rq) && elv_attempt_insert_merge(q, rq, free);
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}
EXPORT_SYMBOL_GPL(blk_mq_sched_try_insert_merge);

409 410
static bool blk_mq_sched_bypass_insert(struct blk_mq_hw_ctx *hctx,
				       struct request *rq)
411
{
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	/*
	 * dispatch flush and passthrough rq directly
	 *
	 * passthrough request has to be added to hctx->dispatch directly.
	 * For some reason, device may be in one situation which can't
	 * handle FS request, so STS_RESOURCE is always returned and the
	 * FS request will be added to hctx->dispatch. However passthrough
	 * request may be required at that time for fixing the problem. If
	 * passthrough request is added to scheduler queue, there isn't any
	 * chance to dispatch it given we prioritize requests in hctx->dispatch.
	 */
	if ((rq->rq_flags & RQF_FLUSH_SEQ) || blk_rq_is_passthrough(rq))
424 425 426
		return true;

	return false;
427 428
}

429
void blk_mq_sched_insert_request(struct request *rq, bool at_head,
430
				 bool run_queue, bool async)
431 432 433 434
{
	struct request_queue *q = rq->q;
	struct elevator_queue *e = q->elevator;
	struct blk_mq_ctx *ctx = rq->mq_ctx;
435
	struct blk_mq_hw_ctx *hctx = rq->mq_hctx;
436

437
	WARN_ON(e && (rq->tag != BLK_MQ_NO_TAG));
438

439
	if (blk_mq_sched_bypass_insert(hctx, rq)) {
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		/*
		 * Firstly normal IO request is inserted to scheduler queue or
		 * sw queue, meantime we add flush request to dispatch queue(
		 * hctx->dispatch) directly and there is at most one in-flight
		 * flush request for each hw queue, so it doesn't matter to add
		 * flush request to tail or front of the dispatch queue.
		 *
		 * Secondly in case of NCQ, flush request belongs to non-NCQ
		 * command, and queueing it will fail when there is any
		 * in-flight normal IO request(NCQ command). When adding flush
		 * rq to the front of hctx->dispatch, it is easier to introduce
		 * extra time to flush rq's latency because of S_SCHED_RESTART
		 * compared with adding to the tail of dispatch queue, then
		 * chance of flush merge is increased, and less flush requests
		 * will be issued to controller. It is observed that ~10% time
		 * is saved in blktests block/004 on disk attached to AHCI/NCQ
		 * drive when adding flush rq to the front of hctx->dispatch.
		 *
		 * Simply queue flush rq to the front of hctx->dispatch so that
		 * intensive flush workloads can benefit in case of NCQ HW.
		 */
		at_head = (rq->rq_flags & RQF_FLUSH_SEQ) ? true : at_head;
462
		blk_mq_request_bypass_insert(rq, at_head, false);
463
		goto run;
464
	}
465

466
	if (e) {
467 468 469
		LIST_HEAD(list);

		list_add(&rq->queuelist, &list);
470
		e->type->ops.insert_requests(hctx, &list, at_head);
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	} else {
		spin_lock(&ctx->lock);
		__blk_mq_insert_request(hctx, rq, at_head);
		spin_unlock(&ctx->lock);
	}

477
run:
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	if (run_queue)
		blk_mq_run_hw_queue(hctx, async);
}

482
void blk_mq_sched_insert_requests(struct blk_mq_hw_ctx *hctx,
483 484 485
				  struct blk_mq_ctx *ctx,
				  struct list_head *list, bool run_queue_async)
{
486
	struct elevator_queue *e;
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	struct request_queue *q = hctx->queue;

	/*
	 * blk_mq_sched_insert_requests() is called from flush plug
	 * context only, and hold one usage counter to prevent queue
	 * from being released.
	 */
	percpu_ref_get(&q->q_usage_counter);
495

496
	e = hctx->queue->elevator;
497
	if (e) {
498
		e->type->ops.insert_requests(hctx, list, false);
499
	} else {
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		/*
		 * try to issue requests directly if the hw queue isn't
		 * busy in case of 'none' scheduler, and this way may save
		 * us one extra enqueue & dequeue to sw queue.
		 */
505
		if (!hctx->dispatch_busy && !e && !run_queue_async) {
506
			blk_mq_try_issue_list_directly(hctx, list);
507
			if (list_empty(list))
508
				goto out;
509 510
		}
		blk_mq_insert_requests(hctx, ctx, list);
511
	}
512 513

	blk_mq_run_hw_queue(hctx, run_queue_async);
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 out:
	percpu_ref_put(&q->q_usage_counter);
516 517
}

518 519 520
static int blk_mq_sched_alloc_map_and_rqs(struct request_queue *q,
					  struct blk_mq_hw_ctx *hctx,
					  unsigned int hctx_idx)
521
{
522 523
	hctx->sched_tags = blk_mq_alloc_map_and_rqs(q->tag_set, hctx_idx,
						    q->nr_requests);
524 525 526

	if (!hctx->sched_tags)
		return -ENOMEM;
527
	return 0;
528 529
}

530
/* called in queue's release handler, tagset has gone away */
531
static void blk_mq_sched_tags_teardown(struct request_queue *q)
532 533
{
	struct blk_mq_hw_ctx *hctx;
534 535
	int i;

536 537
	queue_for_each_hw_ctx(q, hctx, i) {
		if (hctx->sched_tags) {
538
			blk_mq_free_rq_map(hctx->sched_tags, hctx->flags);
539 540 541
			hctx->sched_tags = NULL;
		}
	}
542 543
}

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static int blk_mq_init_sched_shared_sbitmap(struct request_queue *queue)
{
	struct blk_mq_tag_set *set = queue->tag_set;
	int alloc_policy = BLK_MQ_FLAG_TO_ALLOC_POLICY(set->flags);
	struct blk_mq_hw_ctx *hctx;
	int ret, i;

	/*
	 * Set initial depth at max so that we don't need to reallocate for
	 * updating nr_requests.
	 */
	ret = blk_mq_init_bitmaps(&queue->sched_bitmap_tags,
				  &queue->sched_breserved_tags,
				  MAX_SCHED_RQ, set->reserved_tags,
				  set->numa_node, alloc_policy);
	if (ret)
		return ret;

	queue_for_each_hw_ctx(queue, hctx, i) {
		hctx->sched_tags->bitmap_tags =
					&queue->sched_bitmap_tags;
		hctx->sched_tags->breserved_tags =
					&queue->sched_breserved_tags;
	}

569
	blk_mq_tag_update_sched_shared_sbitmap(queue);
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	return 0;
}

static void blk_mq_exit_sched_shared_sbitmap(struct request_queue *queue)
{
	sbitmap_queue_free(&queue->sched_bitmap_tags);
	sbitmap_queue_free(&queue->sched_breserved_tags);
}

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int blk_mq_init_sched(struct request_queue *q, struct elevator_type *e)
{
	struct blk_mq_hw_ctx *hctx;
583
	struct elevator_queue *eq;
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	unsigned int i;
	int ret;

	if (!e) {
		q->elevator = NULL;
589
		q->nr_requests = q->tag_set->queue_depth;
590 591
		return 0;
	}
592 593

	/*
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	 * Default to double of smaller one between hw queue_depth and 128,
	 * since we don't split into sync/async like the old code did.
	 * Additionally, this is a per-hw queue depth.
597
	 */
598
	q->nr_requests = 2 * min_t(unsigned int, q->tag_set->queue_depth,
599
				   BLKDEV_DEFAULT_RQ);
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	queue_for_each_hw_ctx(q, hctx, i) {
602
		ret = blk_mq_sched_alloc_map_and_rqs(q, hctx, i);
603
		if (ret)
604
			goto err_free_map_and_rqs;
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	}

	if (blk_mq_is_sbitmap_shared(q->tag_set->flags)) {
		ret = blk_mq_init_sched_shared_sbitmap(q);
		if (ret)
610
			goto err_free_map_and_rqs;
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	}

613
	ret = e->ops.init_sched(q, e);
614
	if (ret)
615
		goto err_free_sbitmap;
616

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	blk_mq_debugfs_register_sched(q);

	queue_for_each_hw_ctx(q, hctx, i) {
620 621
		if (e->ops.init_hctx) {
			ret = e->ops.init_hctx(hctx, i);
622 623
			if (ret) {
				eq = q->elevator;
624
				blk_mq_sched_free_rqs(q);
625 626 627 628 629
				blk_mq_exit_sched(q, eq);
				kobject_put(&eq->kobj);
				return ret;
			}
		}
630
		blk_mq_debugfs_register_sched_hctx(q, hctx);
631 632
	}

633 634
	return 0;

635 636 637
err_free_sbitmap:
	if (blk_mq_is_sbitmap_shared(q->tag_set->flags))
		blk_mq_exit_sched_shared_sbitmap(q);
638
err_free_map_and_rqs:
639
	blk_mq_sched_free_rqs(q);
640 641
	blk_mq_sched_tags_teardown(q);
	q->elevator = NULL;
642
	return ret;
643
}
644

645 646 647 648
/*
 * called in either blk_queue_cleanup or elevator_switch, tagset
 * is required for freeing requests
 */
649
void blk_mq_sched_free_rqs(struct request_queue *q)
650 651 652 653 654 655 656 657 658 659
{
	struct blk_mq_hw_ctx *hctx;
	int i;

	queue_for_each_hw_ctx(q, hctx, i) {
		if (hctx->sched_tags)
			blk_mq_free_rqs(q->tag_set, hctx->sched_tags, i);
	}
}

660 661
void blk_mq_exit_sched(struct request_queue *q, struct elevator_queue *e)
{
662 663
	struct blk_mq_hw_ctx *hctx;
	unsigned int i;
664
	unsigned int flags = 0;
665

666 667
	queue_for_each_hw_ctx(q, hctx, i) {
		blk_mq_debugfs_unregister_sched_hctx(hctx);
668 669
		if (e->type->ops.exit_hctx && hctx->sched_data) {
			e->type->ops.exit_hctx(hctx, i);
670
			hctx->sched_data = NULL;
671
		}
672
		flags = hctx->flags;
673
	}
674
	blk_mq_debugfs_unregister_sched(q);
675 676
	if (e->type->ops.exit_sched)
		e->type->ops.exit_sched(e);
677
	blk_mq_sched_tags_teardown(q);
678
	if (blk_mq_is_sbitmap_shared(flags))
679
		blk_mq_exit_sched_shared_sbitmap(q);
680 681
	q->elevator = NULL;
}