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https://git.kernel.org/pub/scm/linux/kernel/git/stable/linux.git
synced 2026-08-09 06:14:34 +02:00
In high-performance storage environments, particularly when utilising
RAID controllers with shared tag sets (BLK_MQ_F_TAG_HCTX_SHARED), severe
latency spikes can occur when fast devices (SSDs) are starved of hardware
tags when sharing the same blk_mq_tag_set.
Currently, diagnosing this specific hardware queue contention is
difficult. When a CPU thread exhausts the tag pool, blk_mq_get_tag()
forces the current thread to block uninterruptible via io_schedule().
While this can be inferred via sched:sched_switch or dynamically
traced by attaching a kprobe to blk_mq_mark_tag_wait(), there is no
dedicated, out-of-the-box observability for this event.
This patch introduces the block_rq_tag_wait tracepoint in the tag
allocation slow-path. It triggers immediately before the task state
is altered to TASK_UNINTERRUPTIBLE (ensuring safety for PREEMPT_RT
locks). It exposes the exact hardware context (hctx) that is starved,
the specific pool experiencing starvation (driver, software scheduler,
or reserved), and the exact pool depth.
This provides storage engineers with a zero-configuration, low-overhead
mechanism to definitively identify shared-tag bottlenecks. For example,
userspace can trivially replicate tag starvation counters using bpftrace:
# bpftrace -e 'tracepoint:block:block_rq_tag_wait { @tag_waits[cpu] = count(); }'
Attaching 1 probe...
^C
@tag_waits[4]: 12
@tag_waits[12]: 87
Signed-off-by: Aaron Tomlin <atomlin@atomlin.com>
Link: https://patch.msgid.link/20260525005123.722277-1-atomlin@atomlin.com
Signed-off-by: Jens Axboe <axboe@kernel.dk>
656 lines
18 KiB
C
656 lines
18 KiB
C
// SPDX-License-Identifier: GPL-2.0
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/*
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* Tag allocation using scalable bitmaps. Uses active queue tracking to support
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* fairer distribution of tags between multiple submitters when a shared tag map
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* is used.
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*
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* Copyright (C) 2013-2014 Jens Axboe
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*/
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#include <linux/kernel.h>
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#include <linux/module.h>
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#include <linux/slab.h>
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#include <linux/mm.h>
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#include <linux/kmemleak.h>
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#include <linux/delay.h>
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#include <trace/events/block.h>
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#include "blk.h"
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#include "blk-mq.h"
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#include "blk-mq-sched.h"
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/*
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* Recalculate wakeup batch when tag is shared by hctx.
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*/
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static void blk_mq_update_wake_batch(struct blk_mq_tags *tags,
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unsigned int users)
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{
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if (!users)
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return;
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sbitmap_queue_recalculate_wake_batch(&tags->bitmap_tags,
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users);
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sbitmap_queue_recalculate_wake_batch(&tags->breserved_tags,
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users);
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}
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/*
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* If a previously inactive queue goes active, bump the active user count.
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* We need to do this before try to allocate driver tag, then even if fail
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* to get tag when first time, the other shared-tag users could reserve
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* budget for it.
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*/
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void __blk_mq_tag_busy(struct blk_mq_hw_ctx *hctx)
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{
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unsigned int users;
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unsigned long flags;
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struct blk_mq_tags *tags = hctx->tags;
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/*
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* calling test_bit() prior to test_and_set_bit() is intentional,
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* it avoids dirtying the cacheline if the queue is already active.
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*/
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if (blk_mq_is_shared_tags(hctx->flags)) {
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struct request_queue *q = hctx->queue;
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if (test_bit(QUEUE_FLAG_HCTX_ACTIVE, &q->queue_flags) ||
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test_and_set_bit(QUEUE_FLAG_HCTX_ACTIVE, &q->queue_flags))
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return;
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} else {
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if (test_bit(BLK_MQ_S_TAG_ACTIVE, &hctx->state) ||
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test_and_set_bit(BLK_MQ_S_TAG_ACTIVE, &hctx->state))
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return;
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}
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spin_lock_irqsave(&tags->lock, flags);
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users = tags->active_queues + 1;
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WRITE_ONCE(tags->active_queues, users);
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blk_mq_update_wake_batch(tags, users);
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spin_unlock_irqrestore(&tags->lock, flags);
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}
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/*
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* Wakeup all potentially sleeping on tags
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*/
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void blk_mq_tag_wakeup_all(struct blk_mq_tags *tags, bool include_reserve)
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{
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sbitmap_queue_wake_all(&tags->bitmap_tags);
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if (include_reserve)
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sbitmap_queue_wake_all(&tags->breserved_tags);
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}
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/*
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* If a previously busy queue goes inactive, potential waiters could now
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* be allowed to queue. Wake them up and check.
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*/
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void __blk_mq_tag_idle(struct blk_mq_hw_ctx *hctx)
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{
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struct blk_mq_tags *tags = hctx->tags;
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unsigned int users;
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if (blk_mq_is_shared_tags(hctx->flags)) {
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struct request_queue *q = hctx->queue;
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if (!test_and_clear_bit(QUEUE_FLAG_HCTX_ACTIVE,
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&q->queue_flags))
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return;
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} else {
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if (!test_and_clear_bit(BLK_MQ_S_TAG_ACTIVE, &hctx->state))
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return;
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}
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spin_lock_irq(&tags->lock);
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users = tags->active_queues - 1;
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WRITE_ONCE(tags->active_queues, users);
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blk_mq_update_wake_batch(tags, users);
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spin_unlock_irq(&tags->lock);
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blk_mq_tag_wakeup_all(tags, false);
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}
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static int __blk_mq_get_tag(struct blk_mq_alloc_data *data,
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struct sbitmap_queue *bt)
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{
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if (!data->q->elevator && !(data->flags & BLK_MQ_REQ_RESERVED) &&
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!hctx_may_queue(data->hctx, bt))
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return BLK_MQ_NO_TAG;
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if (data->shallow_depth)
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return sbitmap_queue_get_shallow(bt, data->shallow_depth);
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else
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return __sbitmap_queue_get(bt);
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}
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unsigned long blk_mq_get_tags(struct blk_mq_alloc_data *data, int nr_tags,
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unsigned int *offset)
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{
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struct blk_mq_tags *tags = blk_mq_tags_from_data(data);
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struct sbitmap_queue *bt = &tags->bitmap_tags;
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unsigned long ret;
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if (data->shallow_depth ||data->flags & BLK_MQ_REQ_RESERVED ||
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data->hctx->flags & BLK_MQ_F_TAG_QUEUE_SHARED)
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return 0;
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ret = __sbitmap_queue_get_batch(bt, nr_tags, offset);
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*offset += tags->nr_reserved_tags;
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return ret;
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}
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unsigned int blk_mq_get_tag(struct blk_mq_alloc_data *data)
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{
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struct blk_mq_tags *tags = blk_mq_tags_from_data(data);
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struct sbitmap_queue *bt;
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struct sbq_wait_state *ws;
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DEFINE_SBQ_WAIT(wait);
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unsigned int tag_offset;
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int tag;
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if (data->flags & BLK_MQ_REQ_RESERVED) {
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if (unlikely(!tags->nr_reserved_tags)) {
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WARN_ON_ONCE(1);
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return BLK_MQ_NO_TAG;
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}
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bt = &tags->breserved_tags;
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tag_offset = 0;
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} else {
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bt = &tags->bitmap_tags;
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tag_offset = tags->nr_reserved_tags;
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}
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tag = __blk_mq_get_tag(data, bt);
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if (tag != BLK_MQ_NO_TAG)
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goto found_tag;
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if (data->flags & BLK_MQ_REQ_NOWAIT)
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return BLK_MQ_NO_TAG;
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ws = bt_wait_ptr(bt, data->hctx);
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do {
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struct sbitmap_queue *bt_prev;
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/*
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* We're out of tags on this hardware queue, kick any
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* pending IO submits before going to sleep waiting for
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* some to complete.
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*/
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blk_mq_run_hw_queue(data->hctx, false);
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/*
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* Retry tag allocation after running the hardware queue,
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* as running the queue may also have found completions.
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*/
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tag = __blk_mq_get_tag(data, bt);
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if (tag != BLK_MQ_NO_TAG)
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break;
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/* Log the starvation event before altering task state */
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trace_block_rq_tag_wait(data->q, data->hctx,
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data->rq_flags & RQF_SCHED_TAGS,
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data->flags);
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sbitmap_prepare_to_wait(bt, ws, &wait, TASK_UNINTERRUPTIBLE);
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tag = __blk_mq_get_tag(data, bt);
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if (tag != BLK_MQ_NO_TAG)
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break;
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bt_prev = bt;
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io_schedule();
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sbitmap_finish_wait(bt, ws, &wait);
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data->ctx = blk_mq_get_ctx(data->q);
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data->hctx = blk_mq_map_queue(data->cmd_flags, data->ctx);
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tags = blk_mq_tags_from_data(data);
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if (data->flags & BLK_MQ_REQ_RESERVED)
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bt = &tags->breserved_tags;
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else
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bt = &tags->bitmap_tags;
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/*
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* If destination hw queue is changed, fake wake up on
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* previous queue for compensating the wake up miss, so
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* other allocations on previous queue won't be starved.
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*/
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if (bt != bt_prev)
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sbitmap_queue_wake_up(bt_prev, 1);
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ws = bt_wait_ptr(bt, data->hctx);
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} while (1);
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sbitmap_finish_wait(bt, ws, &wait);
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found_tag:
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/*
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* Give up this allocation if the hctx is inactive. The caller will
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* retry on an active hctx.
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*/
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if (unlikely(test_bit(BLK_MQ_S_INACTIVE, &data->hctx->state))) {
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blk_mq_put_tag(tags, data->ctx, tag + tag_offset);
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return BLK_MQ_NO_TAG;
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}
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return tag + tag_offset;
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}
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void blk_mq_put_tag(struct blk_mq_tags *tags, struct blk_mq_ctx *ctx,
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unsigned int tag)
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{
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if (!blk_mq_tag_is_reserved(tags, tag)) {
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const int real_tag = tag - tags->nr_reserved_tags;
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BUG_ON(real_tag >= tags->nr_tags);
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sbitmap_queue_clear(&tags->bitmap_tags, real_tag, ctx->cpu);
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} else {
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sbitmap_queue_clear(&tags->breserved_tags, tag, ctx->cpu);
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}
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}
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void blk_mq_put_tags(struct blk_mq_tags *tags, int *tag_array, int nr_tags)
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{
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sbitmap_queue_clear_batch(&tags->bitmap_tags, tags->nr_reserved_tags,
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tag_array, nr_tags);
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}
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struct bt_iter_data {
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struct blk_mq_hw_ctx *hctx;
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struct request_queue *q;
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busy_tag_iter_fn *fn;
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void *data;
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bool reserved;
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};
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static struct request *blk_mq_find_and_get_req(struct blk_mq_tags *tags,
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unsigned int bitnr)
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{
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struct request *rq;
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rq = tags->rqs[bitnr];
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if (!rq || rq->tag != bitnr || !req_ref_inc_not_zero(rq))
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rq = NULL;
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return rq;
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}
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static bool bt_iter(struct sbitmap *bitmap, unsigned int bitnr, void *data)
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{
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struct bt_iter_data *iter_data = data;
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struct blk_mq_hw_ctx *hctx = iter_data->hctx;
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struct request_queue *q = iter_data->q;
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struct blk_mq_tag_set *set = q->tag_set;
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struct blk_mq_tags *tags;
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struct request *rq;
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bool ret = true;
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if (blk_mq_is_shared_tags(set->flags))
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tags = set->shared_tags;
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else
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tags = hctx->tags;
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if (!iter_data->reserved)
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bitnr += tags->nr_reserved_tags;
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/*
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* We can hit rq == NULL here, because the tagging functions
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* test and set the bit before assigning ->rqs[].
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*/
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rq = blk_mq_find_and_get_req(tags, bitnr);
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if (!rq)
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return true;
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if (rq->q == q && (!hctx || rq->mq_hctx == hctx))
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ret = iter_data->fn(rq, iter_data->data);
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blk_mq_put_rq_ref(rq);
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return ret;
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}
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/**
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* bt_for_each - iterate over the requests associated with a hardware queue
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* @hctx: Hardware queue to examine.
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* @q: Request queue @hctx is associated with (@hctx->queue).
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* @bt: sbitmap to examine. This is either the breserved_tags member
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* or the bitmap_tags member of struct blk_mq_tags.
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* @fn: Pointer to the function that will be called for each request
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* associated with @hctx that has been assigned a driver tag.
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* @fn will be called as follows: @fn(rq, @data) where rq is a
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* pointer to a request. Return %true to continue iterating tags;
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* %false to stop.
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* @data: Will be passed as second argument to @fn.
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* @reserved: Indicates whether @bt is the breserved_tags member or the
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* bitmap_tags member of struct blk_mq_tags.
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*/
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static void bt_for_each(struct blk_mq_hw_ctx *hctx, struct request_queue *q,
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struct sbitmap_queue *bt, busy_tag_iter_fn *fn,
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void *data, bool reserved)
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{
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struct bt_iter_data iter_data = {
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.hctx = hctx,
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.fn = fn,
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.data = data,
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.reserved = reserved,
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.q = q,
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};
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sbitmap_for_each_set(&bt->sb, bt_iter, &iter_data);
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}
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struct bt_tags_iter_data {
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struct blk_mq_tags *tags;
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busy_tag_iter_fn *fn;
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void *data;
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unsigned int flags;
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};
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#define BT_TAG_ITER_RESERVED (1 << 0)
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#define BT_TAG_ITER_STARTED (1 << 1)
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#define BT_TAG_ITER_STATIC_RQS (1 << 2)
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static bool bt_tags_iter(struct sbitmap *bitmap, unsigned int bitnr, void *data)
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{
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struct bt_tags_iter_data *iter_data = data;
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struct blk_mq_tags *tags = iter_data->tags;
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struct request *rq;
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bool ret = true;
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bool iter_static_rqs = !!(iter_data->flags & BT_TAG_ITER_STATIC_RQS);
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if (!(iter_data->flags & BT_TAG_ITER_RESERVED))
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bitnr += tags->nr_reserved_tags;
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/*
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* We can hit rq == NULL here, because the tagging functions
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* test and set the bit before assigning ->rqs[].
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*/
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if (iter_static_rqs)
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rq = tags->static_rqs[bitnr];
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else
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rq = blk_mq_find_and_get_req(tags, bitnr);
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if (!rq)
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return true;
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if (!(iter_data->flags & BT_TAG_ITER_STARTED) ||
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blk_mq_request_started(rq))
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ret = iter_data->fn(rq, iter_data->data);
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if (!iter_static_rqs)
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blk_mq_put_rq_ref(rq);
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return ret;
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}
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/**
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* bt_tags_for_each - iterate over the requests in a tag map
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* @tags: Tag map to iterate over.
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* @bt: sbitmap to examine. This is either the breserved_tags member
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* or the bitmap_tags member of struct blk_mq_tags.
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* @fn: Pointer to the function that will be called for each started
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* request. @fn will be called as follows: @fn(rq, @data) where rq
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* is a pointer to a request. Return %true to continue iterating
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* tags; %false to stop.
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* @data: Will be passed as second argument to @fn.
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* @flags: BT_TAG_ITER_*
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*/
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static void bt_tags_for_each(struct blk_mq_tags *tags, struct sbitmap_queue *bt,
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busy_tag_iter_fn *fn, void *data, unsigned int flags)
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{
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struct bt_tags_iter_data iter_data = {
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.tags = tags,
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.fn = fn,
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.data = data,
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.flags = flags,
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};
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if (tags->rqs)
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sbitmap_for_each_set(&bt->sb, bt_tags_iter, &iter_data);
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}
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static void __blk_mq_all_tag_iter(struct blk_mq_tags *tags,
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busy_tag_iter_fn *fn, void *priv, unsigned int flags)
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{
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WARN_ON_ONCE(flags & BT_TAG_ITER_RESERVED);
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if (tags->nr_reserved_tags)
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bt_tags_for_each(tags, &tags->breserved_tags, fn, priv,
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flags | BT_TAG_ITER_RESERVED);
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bt_tags_for_each(tags, &tags->bitmap_tags, fn, priv, flags);
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}
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/**
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* blk_mq_all_tag_iter - iterate over all requests in a tag map
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* @tags: Tag map to iterate over.
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* @fn: Pointer to the function that will be called for each
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* request. @fn will be called as follows: @fn(rq, @priv) where rq
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* is a pointer to a request. Return %true to continue iterating
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* tags; %false to stop.
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* @priv: Will be passed as second argument to @fn.
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*
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* Caller has to pass the tag map from which requests are allocated.
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*/
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void blk_mq_all_tag_iter(struct blk_mq_tags *tags, busy_tag_iter_fn *fn,
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void *priv)
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{
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__blk_mq_all_tag_iter(tags, fn, priv, BT_TAG_ITER_STATIC_RQS);
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}
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/**
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* blk_mq_tagset_busy_iter - iterate over all started requests in a tag set
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* @tagset: Tag set to iterate over.
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* @fn: Pointer to the function that will be called for each started
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* request. @fn will be called as follows: @fn(rq, @priv) where
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* rq is a pointer to a request. Return true to continue iterating
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* tags, false to stop.
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* @priv: Will be passed as second argument to @fn.
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*
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* We grab one request reference before calling @fn and release it after
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* @fn returns.
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*/
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void blk_mq_tagset_busy_iter(struct blk_mq_tag_set *tagset,
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busy_tag_iter_fn *fn, void *priv)
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{
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unsigned int flags = tagset->flags;
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int i, nr_tags, srcu_idx;
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srcu_idx = srcu_read_lock(&tagset->tags_srcu);
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nr_tags = blk_mq_is_shared_tags(flags) ? 1 : tagset->nr_hw_queues;
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for (i = 0; i < nr_tags; i++) {
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if (tagset->tags && tagset->tags[i])
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__blk_mq_all_tag_iter(tagset->tags[i], fn, priv,
|
|
BT_TAG_ITER_STARTED);
|
|
}
|
|
srcu_read_unlock(&tagset->tags_srcu, srcu_idx);
|
|
}
|
|
EXPORT_SYMBOL(blk_mq_tagset_busy_iter);
|
|
|
|
static bool blk_mq_tagset_count_completed_rqs(struct request *rq, void *data)
|
|
{
|
|
unsigned *count = data;
|
|
|
|
if (blk_mq_request_completed(rq))
|
|
(*count)++;
|
|
return true;
|
|
}
|
|
|
|
/**
|
|
* blk_mq_tagset_wait_completed_request - Wait until all scheduled request
|
|
* completions have finished.
|
|
* @tagset: Tag set to drain completed request
|
|
*
|
|
* Note: This function has to be run after all IO queues are shutdown
|
|
*/
|
|
void blk_mq_tagset_wait_completed_request(struct blk_mq_tag_set *tagset)
|
|
{
|
|
while (true) {
|
|
unsigned count = 0;
|
|
|
|
blk_mq_tagset_busy_iter(tagset,
|
|
blk_mq_tagset_count_completed_rqs, &count);
|
|
if (!count)
|
|
break;
|
|
msleep(5);
|
|
}
|
|
}
|
|
EXPORT_SYMBOL(blk_mq_tagset_wait_completed_request);
|
|
|
|
/**
|
|
* blk_mq_queue_tag_busy_iter - iterate over all requests with a driver tag
|
|
* @q: Request queue to examine.
|
|
* @fn: Pointer to the function that will be called for each request
|
|
* on @q. @fn will be called as follows: @fn(rq, @priv) where rq
|
|
* is a pointer to a request and hctx points to the hardware queue
|
|
* associated with the request.
|
|
* @priv: Will be passed as second argument to @fn.
|
|
*
|
|
* Note: if @q->tag_set is shared with other request queues then @fn will be
|
|
* called for all requests on all queues that share that tag set and not only
|
|
* for requests associated with @q.
|
|
*/
|
|
void blk_mq_queue_tag_busy_iter(struct request_queue *q, busy_tag_iter_fn *fn,
|
|
void *priv)
|
|
{
|
|
int srcu_idx;
|
|
|
|
/*
|
|
* __blk_mq_update_nr_hw_queues() updates nr_hw_queues and queue_hw_ctx
|
|
* while the queue is frozen. So we can use q_usage_counter to avoid
|
|
* racing with it.
|
|
*/
|
|
if (!percpu_ref_tryget(&q->q_usage_counter))
|
|
return;
|
|
|
|
srcu_idx = srcu_read_lock(&q->tag_set->tags_srcu);
|
|
if (blk_mq_is_shared_tags(q->tag_set->flags)) {
|
|
struct blk_mq_tags *tags = q->tag_set->shared_tags;
|
|
struct sbitmap_queue *bresv = &tags->breserved_tags;
|
|
struct sbitmap_queue *btags = &tags->bitmap_tags;
|
|
|
|
if (tags->nr_reserved_tags)
|
|
bt_for_each(NULL, q, bresv, fn, priv, true);
|
|
bt_for_each(NULL, q, btags, fn, priv, false);
|
|
} else {
|
|
struct blk_mq_hw_ctx *hctx;
|
|
unsigned long i;
|
|
|
|
queue_for_each_hw_ctx(q, hctx, i) {
|
|
struct blk_mq_tags *tags = hctx->tags;
|
|
struct sbitmap_queue *bresv = &tags->breserved_tags;
|
|
struct sbitmap_queue *btags = &tags->bitmap_tags;
|
|
|
|
/*
|
|
* If no software queues are currently mapped to this
|
|
* hardware queue, there's nothing to check
|
|
*/
|
|
if (!blk_mq_hw_queue_mapped(hctx))
|
|
continue;
|
|
|
|
if (tags->nr_reserved_tags)
|
|
bt_for_each(hctx, q, bresv, fn, priv, true);
|
|
bt_for_each(hctx, q, btags, fn, priv, false);
|
|
}
|
|
}
|
|
srcu_read_unlock(&q->tag_set->tags_srcu, srcu_idx);
|
|
blk_queue_exit(q);
|
|
}
|
|
|
|
static int bt_alloc(struct sbitmap_queue *bt, unsigned int depth,
|
|
bool round_robin, int node)
|
|
{
|
|
return sbitmap_queue_init_node(bt, depth, -1, round_robin, GFP_KERNEL,
|
|
node);
|
|
}
|
|
|
|
struct blk_mq_tags *blk_mq_init_tags(unsigned int total_tags,
|
|
unsigned int reserved_tags, unsigned int flags, int node)
|
|
{
|
|
unsigned int depth = total_tags - reserved_tags;
|
|
bool round_robin = flags & BLK_MQ_F_TAG_RR;
|
|
struct blk_mq_tags *tags;
|
|
|
|
if (total_tags > BLK_MQ_TAG_MAX) {
|
|
pr_err("blk-mq: tag depth too large\n");
|
|
return NULL;
|
|
}
|
|
|
|
tags = kzalloc_node(sizeof(*tags), GFP_KERNEL, node);
|
|
if (!tags)
|
|
return NULL;
|
|
|
|
tags->nr_tags = total_tags;
|
|
tags->nr_reserved_tags = reserved_tags;
|
|
spin_lock_init(&tags->lock);
|
|
INIT_LIST_HEAD(&tags->page_list);
|
|
|
|
if (bt_alloc(&tags->bitmap_tags, depth, round_robin, node))
|
|
goto out_free_tags;
|
|
if (bt_alloc(&tags->breserved_tags, reserved_tags, round_robin, node))
|
|
goto out_free_bitmap_tags;
|
|
|
|
return tags;
|
|
|
|
out_free_bitmap_tags:
|
|
sbitmap_queue_free(&tags->bitmap_tags);
|
|
out_free_tags:
|
|
kfree(tags);
|
|
return NULL;
|
|
}
|
|
|
|
static void blk_mq_free_tags_callback(struct rcu_head *head)
|
|
{
|
|
struct blk_mq_tags *tags = container_of(head, struct blk_mq_tags,
|
|
rcu_head);
|
|
struct page *page;
|
|
|
|
while (!list_empty(&tags->page_list)) {
|
|
page = list_first_entry(&tags->page_list, struct page, lru);
|
|
list_del_init(&page->lru);
|
|
/*
|
|
* Remove kmemleak object previously allocated in
|
|
* blk_mq_alloc_rqs().
|
|
*/
|
|
kmemleak_free(page_address(page));
|
|
__free_pages(page, page->private);
|
|
}
|
|
kfree(tags);
|
|
}
|
|
|
|
void blk_mq_free_tags(struct blk_mq_tag_set *set, struct blk_mq_tags *tags)
|
|
{
|
|
sbitmap_queue_free(&tags->bitmap_tags);
|
|
sbitmap_queue_free(&tags->breserved_tags);
|
|
|
|
/* if tags pages is not allocated yet, free tags directly */
|
|
if (list_empty(&tags->page_list)) {
|
|
kfree(tags);
|
|
return;
|
|
}
|
|
|
|
call_srcu(&set->tags_srcu, &tags->rcu_head, blk_mq_free_tags_callback);
|
|
}
|
|
|
|
void blk_mq_tag_resize_shared_tags(struct blk_mq_tag_set *set, unsigned int size)
|
|
{
|
|
struct blk_mq_tags *tags = set->shared_tags;
|
|
|
|
sbitmap_queue_resize(&tags->bitmap_tags, size - set->reserved_tags);
|
|
}
|
|
|
|
void blk_mq_tag_update_sched_shared_tags(struct request_queue *q,
|
|
unsigned int nr)
|
|
{
|
|
sbitmap_queue_resize(&q->sched_shared_tags->bitmap_tags,
|
|
nr - q->tag_set->reserved_tags);
|
|
}
|
|
|
|
/**
|
|
* blk_mq_unique_tag() - return a tag that is unique queue-wide
|
|
* @rq: request for which to compute a unique tag
|
|
*
|
|
* The tag field in struct request is unique per hardware queue but not over
|
|
* all hardware queues. Hence this function that returns a tag with the
|
|
* hardware context index in the upper bits and the per hardware queue tag in
|
|
* the lower bits.
|
|
*
|
|
* Note: When called for a request that is queued on a non-multiqueue request
|
|
* queue, the hardware context index is set to zero.
|
|
*/
|
|
u32 blk_mq_unique_tag(struct request *rq)
|
|
{
|
|
return (rq->mq_hctx->queue_num << BLK_MQ_UNIQUE_TAG_BITS) |
|
|
(rq->tag & BLK_MQ_UNIQUE_TAG_MASK);
|
|
}
|
|
EXPORT_SYMBOL(blk_mq_unique_tag);
|