sched.c 25.5 KB
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/*
 * linux/net/sunrpc/sched.c
 *
 * Scheduling for synchronous and asynchronous RPC requests.
 *
 * Copyright (C) 1996 Olaf Kirch, <okir@monad.swb.de>
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 *
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 * TCP NFS related read + write fixes
 * (C) 1999 Dave Airlie, University of Limerick, Ireland <airlied@linux.ie>
 */

#include <linux/module.h>

#include <linux/sched.h>
#include <linux/interrupt.h>
#include <linux/slab.h>
#include <linux/mempool.h>
#include <linux/smp.h>
#include <linux/spinlock.h>
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#include <linux/mutex.h>
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#include <linux/sunrpc/clnt.h>

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#include "sunrpc.h"

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#ifdef RPC_DEBUG
#define RPCDBG_FACILITY		RPCDBG_SCHED
#endif

/*
 * RPC slabs and memory pools
 */
#define RPC_BUFFER_MAXSIZE	(2048)
#define RPC_BUFFER_POOLSIZE	(8)
#define RPC_TASK_POOLSIZE	(8)
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static struct kmem_cache	*rpc_task_slabp __read_mostly;
static struct kmem_cache	*rpc_buffer_slabp __read_mostly;
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static mempool_t	*rpc_task_mempool __read_mostly;
static mempool_t	*rpc_buffer_mempool __read_mostly;
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static void			rpc_async_schedule(struct work_struct *);
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static void			 rpc_release_task(struct rpc_task *task);
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static void __rpc_queue_timer_fn(unsigned long ptr);
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/*
 * RPC tasks sit here while waiting for conditions to improve.
 */
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static struct rpc_wait_queue delay_queue;
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/*
 * rpciod-related stuff
 */
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struct workqueue_struct *rpciod_workqueue;
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/*
 * Disable the timer for a given RPC task. Should be called with
 * queue->lock and bh_disabled in order to avoid races within
 * rpc_run_timer().
 */
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static void
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__rpc_disable_timer(struct rpc_wait_queue *queue, struct rpc_task *task)
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{
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	if (task->tk_timeout == 0)
		return;
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	dprintk("RPC: %5u disabling timer\n", task->tk_pid);
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	task->tk_timeout = 0;
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	list_del(&task->u.tk_wait.timer_list);
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	if (list_empty(&queue->timer_list.list))
		del_timer(&queue->timer_list.timer);
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}

static void
rpc_set_queue_timer(struct rpc_wait_queue *queue, unsigned long expires)
{
	queue->timer_list.expires = expires;
	mod_timer(&queue->timer_list.timer, expires);
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}

/*
 * Set up a timer for the current task.
 */
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static void
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__rpc_add_timer(struct rpc_wait_queue *queue, struct rpc_task *task)
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{
	if (!task->tk_timeout)
		return;

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	dprintk("RPC: %5u setting alarm for %lu ms\n",
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			task->tk_pid, task->tk_timeout * 1000 / HZ);

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	task->u.tk_wait.expires = jiffies + task->tk_timeout;
	if (list_empty(&queue->timer_list.list) || time_before(task->u.tk_wait.expires, queue->timer_list.expires))
		rpc_set_queue_timer(queue, task->u.tk_wait.expires);
	list_add(&task->u.tk_wait.timer_list, &queue->timer_list.list);
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}

/*
 * Add new request to a priority queue.
 */
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static void __rpc_add_wait_queue_priority(struct rpc_wait_queue *queue,
		struct rpc_task *task,
		unsigned char queue_priority)
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{
	struct list_head *q;
	struct rpc_task *t;

	INIT_LIST_HEAD(&task->u.tk_wait.links);
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	q = &queue->tasks[queue_priority];
	if (unlikely(queue_priority > queue->maxpriority))
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		q = &queue->tasks[queue->maxpriority];
	list_for_each_entry(t, q, u.tk_wait.list) {
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		if (t->tk_owner == task->tk_owner) {
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			list_add_tail(&task->u.tk_wait.list, &t->u.tk_wait.links);
			return;
		}
	}
	list_add_tail(&task->u.tk_wait.list, q);
}

/*
 * Add new request to wait queue.
 *
 * Swapper tasks always get inserted at the head of the queue.
 * This should avoid many nasty memory deadlocks and hopefully
 * improve overall performance.
 * Everyone else gets appended to the queue to ensure proper FIFO behavior.
 */
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static void __rpc_add_wait_queue(struct rpc_wait_queue *queue,
		struct rpc_task *task,
		unsigned char queue_priority)
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{
	BUG_ON (RPC_IS_QUEUED(task));

	if (RPC_IS_PRIORITY(queue))
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		__rpc_add_wait_queue_priority(queue, task, queue_priority);
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	else if (RPC_IS_SWAPPER(task))
		list_add(&task->u.tk_wait.list, &queue->tasks[0]);
	else
		list_add_tail(&task->u.tk_wait.list, &queue->tasks[0]);
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	task->tk_waitqueue = queue;
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	queue->qlen++;
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	rpc_set_queued(task);

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	dprintk("RPC: %5u added to queue %p \"%s\"\n",
			task->tk_pid, queue, rpc_qname(queue));
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}

/*
 * Remove request from a priority queue.
 */
static void __rpc_remove_wait_queue_priority(struct rpc_task *task)
{
	struct rpc_task *t;

	if (!list_empty(&task->u.tk_wait.links)) {
		t = list_entry(task->u.tk_wait.links.next, struct rpc_task, u.tk_wait.list);
		list_move(&t->u.tk_wait.list, &task->u.tk_wait.list);
		list_splice_init(&task->u.tk_wait.links, &t->u.tk_wait.links);
	}
}

/*
 * Remove request from queue.
 * Note: must be called with spin lock held.
 */
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static void __rpc_remove_wait_queue(struct rpc_wait_queue *queue, struct rpc_task *task)
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{
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	__rpc_disable_timer(queue, task);
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	if (RPC_IS_PRIORITY(queue))
		__rpc_remove_wait_queue_priority(task);
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	list_del(&task->u.tk_wait.list);
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	queue->qlen--;
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	dprintk("RPC: %5u removed from queue %p \"%s\"\n",
			task->tk_pid, queue, rpc_qname(queue));
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}

static inline void rpc_set_waitqueue_priority(struct rpc_wait_queue *queue, int priority)
{
	queue->priority = priority;
	queue->count = 1 << (priority * 2);
}

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static inline void rpc_set_waitqueue_owner(struct rpc_wait_queue *queue, pid_t pid)
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{
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	queue->owner = pid;
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	queue->nr = RPC_BATCH_COUNT;
}

static inline void rpc_reset_waitqueue_priority(struct rpc_wait_queue *queue)
{
	rpc_set_waitqueue_priority(queue, queue->maxpriority);
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	rpc_set_waitqueue_owner(queue, 0);
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}

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static void __rpc_init_priority_wait_queue(struct rpc_wait_queue *queue, const char *qname, unsigned char nr_queues)
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{
	int i;

	spin_lock_init(&queue->lock);
	for (i = 0; i < ARRAY_SIZE(queue->tasks); i++)
		INIT_LIST_HEAD(&queue->tasks[i]);
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	queue->maxpriority = nr_queues - 1;
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	rpc_reset_waitqueue_priority(queue);
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	queue->qlen = 0;
	setup_timer(&queue->timer_list.timer, __rpc_queue_timer_fn, (unsigned long)queue);
	INIT_LIST_HEAD(&queue->timer_list.list);
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#ifdef RPC_DEBUG
	queue->name = qname;
#endif
}

void rpc_init_priority_wait_queue(struct rpc_wait_queue *queue, const char *qname)
{
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	__rpc_init_priority_wait_queue(queue, qname, RPC_NR_PRIORITY);
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}
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EXPORT_SYMBOL_GPL(rpc_init_priority_wait_queue);
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void rpc_init_wait_queue(struct rpc_wait_queue *queue, const char *qname)
{
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	__rpc_init_priority_wait_queue(queue, qname, 1);
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}
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EXPORT_SYMBOL_GPL(rpc_init_wait_queue);
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void rpc_destroy_wait_queue(struct rpc_wait_queue *queue)
{
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	del_timer_sync(&queue->timer_list.timer);
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}
EXPORT_SYMBOL_GPL(rpc_destroy_wait_queue);

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static int rpc_wait_bit_killable(void *word)
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{
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	if (fatal_signal_pending(current))
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		return -ERESTARTSYS;
	schedule();
	return 0;
}

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#ifdef RPC_DEBUG
static void rpc_task_set_debuginfo(struct rpc_task *task)
{
	static atomic_t rpc_pid;

	task->tk_pid = atomic_inc_return(&rpc_pid);
}
#else
static inline void rpc_task_set_debuginfo(struct rpc_task *task)
{
}
#endif

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static void rpc_set_active(struct rpc_task *task)
{
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	rpc_task_set_debuginfo(task);
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	set_bit(RPC_TASK_ACTIVE, &task->tk_runstate);
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}

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/*
 * Mark an RPC call as having completed by clearing the 'active' bit
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 * and then waking up all tasks that were sleeping.
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 */
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static int rpc_complete_task(struct rpc_task *task)
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{
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	void *m = &task->tk_runstate;
	wait_queue_head_t *wq = bit_waitqueue(m, RPC_TASK_ACTIVE);
	struct wait_bit_key k = __WAIT_BIT_KEY_INITIALIZER(m, RPC_TASK_ACTIVE);
	unsigned long flags;
	int ret;

	spin_lock_irqsave(&wq->lock, flags);
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	clear_bit(RPC_TASK_ACTIVE, &task->tk_runstate);
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	ret = atomic_dec_and_test(&task->tk_count);
	if (waitqueue_active(wq))
		__wake_up_locked_key(wq, TASK_NORMAL, &k);
	spin_unlock_irqrestore(&wq->lock, flags);
	return ret;
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}

/*
 * Allow callers to wait for completion of an RPC call
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 *
 * Note the use of out_of_line_wait_on_bit() rather than wait_on_bit()
 * to enforce taking of the wq->lock and hence avoid races with
 * rpc_complete_task().
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 */
int __rpc_wait_for_completion_task(struct rpc_task *task, int (*action)(void *))
{
	if (action == NULL)
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		action = rpc_wait_bit_killable;
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	return out_of_line_wait_on_bit(&task->tk_runstate, RPC_TASK_ACTIVE,
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			action, TASK_KILLABLE);
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}
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EXPORT_SYMBOL_GPL(__rpc_wait_for_completion_task);
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/*
 * Make an RPC task runnable.
 *
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 * Note: If the task is ASYNC, this must be called with
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 * the spinlock held to protect the wait queue operation.
 */
static void rpc_make_runnable(struct rpc_task *task)
{
	rpc_clear_queued(task);
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	if (rpc_test_and_set_running(task))
		return;
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	if (RPC_IS_ASYNC(task)) {
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		INIT_WORK(&task->u.tk_work, rpc_async_schedule);
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		queue_work(rpciod_workqueue, &task->u.tk_work);
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	} else
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		wake_up_bit(&task->tk_runstate, RPC_TASK_QUEUED);
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}

/*
 * Prepare for sleeping on a wait queue.
 * By always appending tasks to the list we ensure FIFO behavior.
 * NB: An RPC task will only receive interrupt-driven events as long
 * as it's on a wait queue.
 */
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static void __rpc_sleep_on_priority(struct rpc_wait_queue *q,
		struct rpc_task *task,
		rpc_action action,
		unsigned char queue_priority)
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{
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	dprintk("RPC: %5u sleep_on(queue \"%s\" time %lu)\n",
			task->tk_pid, rpc_qname(q), jiffies);
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	__rpc_add_wait_queue(q, task, queue_priority);
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	BUG_ON(task->tk_callback != NULL);
	task->tk_callback = action;
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	__rpc_add_timer(q, task);
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}

void rpc_sleep_on(struct rpc_wait_queue *q, struct rpc_task *task,
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				rpc_action action)
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{
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	/* We shouldn't ever put an inactive task to sleep */
	BUG_ON(!RPC_IS_ACTIVATED(task));
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	/*
	 * Protect the queue operations.
	 */
	spin_lock_bh(&q->lock);
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	__rpc_sleep_on_priority(q, task, action, task->tk_priority);
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	spin_unlock_bh(&q->lock);
}
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EXPORT_SYMBOL_GPL(rpc_sleep_on);
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void rpc_sleep_on_priority(struct rpc_wait_queue *q, struct rpc_task *task,
		rpc_action action, int priority)
{
	/* We shouldn't ever put an inactive task to sleep */
	BUG_ON(!RPC_IS_ACTIVATED(task));

	/*
	 * Protect the queue operations.
	 */
	spin_lock_bh(&q->lock);
	__rpc_sleep_on_priority(q, task, action, priority - RPC_PRIORITY_LOW);
	spin_unlock_bh(&q->lock);
}

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/**
 * __rpc_do_wake_up_task - wake up a single rpc_task
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 * @queue: wait queue
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 * @task: task to be woken up
 *
 * Caller must hold queue->lock, and have cleared the task queued flag.
 */
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static void __rpc_do_wake_up_task(struct rpc_wait_queue *queue, struct rpc_task *task)
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{
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	dprintk("RPC: %5u __rpc_wake_up_task (now %lu)\n",
			task->tk_pid, jiffies);
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	/* Has the task been executed yet? If not, we cannot wake it up! */
	if (!RPC_IS_ACTIVATED(task)) {
		printk(KERN_ERR "RPC: Inactive task (%p) being woken up!\n", task);
		return;
	}

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	__rpc_remove_wait_queue(queue, task);
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	rpc_make_runnable(task);

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	dprintk("RPC:       __rpc_wake_up_task done\n");
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}

/*
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 * Wake up a queued task while the queue lock is being held
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 */
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static void rpc_wake_up_task_queue_locked(struct rpc_wait_queue *queue, struct rpc_task *task)
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{
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	if (RPC_IS_QUEUED(task) && task->tk_waitqueue == queue)
		__rpc_do_wake_up_task(queue, task);
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}

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/*
 * Tests whether rpc queue is empty
 */
int rpc_queue_empty(struct rpc_wait_queue *queue)
{
	int res;

	spin_lock_bh(&queue->lock);
	res = queue->qlen;
	spin_unlock_bh(&queue->lock);
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	return res == 0;
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}
EXPORT_SYMBOL_GPL(rpc_queue_empty);

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/*
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 * Wake up a task on a specific queue
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 */
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void rpc_wake_up_queued_task(struct rpc_wait_queue *queue, struct rpc_task *task)
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{
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	spin_lock_bh(&queue->lock);
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	rpc_wake_up_task_queue_locked(queue, task);
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	spin_unlock_bh(&queue->lock);
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}
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EXPORT_SYMBOL_GPL(rpc_wake_up_queued_task);

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/*
 * Wake up the next task on a priority queue.
 */
static struct rpc_task * __rpc_wake_up_next_priority(struct rpc_wait_queue *queue)
{
	struct list_head *q;
	struct rpc_task *task;

	/*
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	 * Service a batch of tasks from a single owner.
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	 */
	q = &queue->tasks[queue->priority];
	if (!list_empty(q)) {
		task = list_entry(q->next, struct rpc_task, u.tk_wait.list);
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		if (queue->owner == task->tk_owner) {
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			if (--queue->nr)
				goto out;
			list_move_tail(&task->u.tk_wait.list, q);
		}
		/*
		 * Check if we need to switch queues.
		 */
		if (--queue->count)
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			goto new_owner;
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	}

	/*
	 * Service the next queue.
	 */
	do {
		if (q == &queue->tasks[0])
			q = &queue->tasks[queue->maxpriority];
		else
			q = q - 1;
		if (!list_empty(q)) {
			task = list_entry(q->next, struct rpc_task, u.tk_wait.list);
			goto new_queue;
		}
	} while (q != &queue->tasks[queue->priority]);

	rpc_reset_waitqueue_priority(queue);
	return NULL;

new_queue:
	rpc_set_waitqueue_priority(queue, (unsigned int)(q - &queue->tasks[0]));
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new_owner:
	rpc_set_waitqueue_owner(queue, task->tk_owner);
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out:
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	rpc_wake_up_task_queue_locked(queue, task);
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	return task;
}

/*
 * Wake up the next task on the wait queue.
 */
struct rpc_task * rpc_wake_up_next(struct rpc_wait_queue *queue)
{
	struct rpc_task	*task = NULL;

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	dprintk("RPC:       wake_up_next(%p \"%s\")\n",
			queue, rpc_qname(queue));
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	spin_lock_bh(&queue->lock);
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	if (RPC_IS_PRIORITY(queue))
		task = __rpc_wake_up_next_priority(queue);
	else {
		task_for_first(task, &queue->tasks[0])
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			rpc_wake_up_task_queue_locked(queue, task);
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	}
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	spin_unlock_bh(&queue->lock);
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	return task;
}
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EXPORT_SYMBOL_GPL(rpc_wake_up_next);
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/**
 * rpc_wake_up - wake up all rpc_tasks
 * @queue: rpc_wait_queue on which the tasks are sleeping
 *
 * Grabs queue->lock
 */
void rpc_wake_up(struct rpc_wait_queue *queue)
{
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	struct rpc_task *task, *next;
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	struct list_head *head;
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	spin_lock_bh(&queue->lock);
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	head = &queue->tasks[queue->maxpriority];
	for (;;) {
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		list_for_each_entry_safe(task, next, head, u.tk_wait.list)
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			rpc_wake_up_task_queue_locked(queue, task);
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		if (head == &queue->tasks[0])
			break;
		head--;
	}
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	spin_unlock_bh(&queue->lock);
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}
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EXPORT_SYMBOL_GPL(rpc_wake_up);
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/**
 * rpc_wake_up_status - wake up all rpc_tasks and set their status value.
 * @queue: rpc_wait_queue on which the tasks are sleeping
 * @status: status value to set
 *
 * Grabs queue->lock
 */
void rpc_wake_up_status(struct rpc_wait_queue *queue, int status)
{
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	struct rpc_task *task, *next;
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	struct list_head *head;

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	spin_lock_bh(&queue->lock);
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	head = &queue->tasks[queue->maxpriority];
	for (;;) {
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		list_for_each_entry_safe(task, next, head, u.tk_wait.list) {
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			task->tk_status = status;
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			rpc_wake_up_task_queue_locked(queue, task);
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		}
		if (head == &queue->tasks[0])
			break;
		head--;
	}
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	spin_unlock_bh(&queue->lock);
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}
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EXPORT_SYMBOL_GPL(rpc_wake_up_status);
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static void __rpc_queue_timer_fn(unsigned long ptr)
{
	struct rpc_wait_queue *queue = (struct rpc_wait_queue *)ptr;
	struct rpc_task *task, *n;
	unsigned long expires, now, timeo;

	spin_lock(&queue->lock);
	expires = now = jiffies;
	list_for_each_entry_safe(task, n, &queue->timer_list.list, u.tk_wait.timer_list) {
		timeo = task->u.tk_wait.expires;
		if (time_after_eq(now, timeo)) {
			dprintk("RPC: %5u timeout\n", task->tk_pid);
			task->tk_status = -ETIMEDOUT;
			rpc_wake_up_task_queue_locked(queue, task);
			continue;
		}
		if (expires == now || time_after(expires, timeo))
			expires = timeo;
	}
	if (!list_empty(&queue->timer_list.list))
		rpc_set_queue_timer(queue, expires);
	spin_unlock(&queue->lock);
}

570 571
static void __rpc_atrun(struct rpc_task *task)
{
572
	task->tk_status = 0;
573 574
}

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/*
 * Run a task at a later time
 */
578
void rpc_delay(struct rpc_task *task, unsigned long delay)
L
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{
	task->tk_timeout = delay;
581
	rpc_sleep_on(&delay_queue, task, __rpc_atrun);
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}
583
EXPORT_SYMBOL_GPL(rpc_delay);
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/*
 * Helper to call task->tk_ops->rpc_call_prepare
 */
588
void rpc_prepare_task(struct rpc_task *task)
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{
	task->tk_ops->rpc_call_prepare(task, task->tk_calldata);
}

593
/*
594
 * Helper that calls task->tk_ops->rpc_call_done if it exists
595
 */
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void rpc_exit_task(struct rpc_task *task)
597
{
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	task->tk_action = NULL;
599 600
	if (task->tk_ops->rpc_call_done != NULL) {
		task->tk_ops->rpc_call_done(task, task->tk_calldata);
601
		if (task->tk_action != NULL) {
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			WARN_ON(RPC_ASSASSINATED(task));
			/* Always release the RPC slot and buffer memory */
			xprt_release(task);
605 606 607
		}
	}
}
608 609 610 611 612 613 614 615 616

void rpc_exit(struct rpc_task *task, int status)
{
	task->tk_status = status;
	task->tk_action = rpc_exit_task;
	if (RPC_IS_QUEUED(task))
		rpc_wake_up_queued_task(task->tk_waitqueue, task);
}
EXPORT_SYMBOL_GPL(rpc_exit);
617

618 619
void rpc_release_calldata(const struct rpc_call_ops *ops, void *calldata)
{
620
	if (ops->rpc_release != NULL)
621 622 623
		ops->rpc_release(calldata);
}

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/*
 * This is the RPC `scheduler' (or rather, the finite state machine).
 */
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static void __rpc_execute(struct rpc_task *task)
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{
629 630 631
	struct rpc_wait_queue *queue;
	int task_is_async = RPC_IS_ASYNC(task);
	int status = 0;
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633 634
	dprintk("RPC: %5u __rpc_execute flags=0x%x\n",
			task->tk_pid, task->tk_flags);
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	BUG_ON(RPC_IS_QUEUED(task));

638
	for (;;) {
639
		void (*do_action)(struct rpc_task *);
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		/*
642
		 * Execute any pending callback first.
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		 */
644 645 646
		do_action = task->tk_callback;
		task->tk_callback = NULL;
		if (do_action == NULL) {
647 648
			/*
			 * Perform the next FSM step.
649 650 651
			 * tk_action may be NULL if the task has been killed.
			 * In particular, note that rpc_killall_tasks may
			 * do this at any time, so beware when dereferencing.
652
			 */
653 654
			do_action = task->tk_action;
			if (do_action == NULL)
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				break;
		}
657
		do_action(task);
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		/*
		 * Lockless check for whether task is sleeping or not.
		 */
		if (!RPC_IS_QUEUED(task))
			continue;
664 665 666 667 668 669 670 671 672 673 674 675 676
		/*
		 * The queue->lock protects against races with
		 * rpc_make_runnable().
		 *
		 * Note that once we clear RPC_TASK_RUNNING on an asynchronous
		 * rpc_task, rpc_make_runnable() can assign it to a
		 * different workqueue. We therefore cannot assume that the
		 * rpc_task pointer may still be dereferenced.
		 */
		queue = task->tk_waitqueue;
		spin_lock_bh(&queue->lock);
		if (!RPC_IS_QUEUED(task)) {
			spin_unlock_bh(&queue->lock);
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			continue;
		}
679 680 681 682
		rpc_clear_running(task);
		spin_unlock_bh(&queue->lock);
		if (task_is_async)
			return;
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		/* sync task: sleep here */
685
		dprintk("RPC: %5u sync task going to sleep\n", task->tk_pid);
686
		status = out_of_line_wait_on_bit(&task->tk_runstate,
687 688
				RPC_TASK_QUEUED, rpc_wait_bit_killable,
				TASK_KILLABLE);
689
		if (status == -ERESTARTSYS) {
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			/*
			 * When a sync task receives a signal, it exits with
			 * -ERESTARTSYS. In order to catch any callbacks that
			 * clean up after sleeping on some queue, we don't
			 * break the loop here, but go around once more.
			 */
696
			dprintk("RPC: %5u got signal\n", task->tk_pid);
697 698
			task->tk_flags |= RPC_TASK_KILLED;
			rpc_exit(task, -ERESTARTSYS);
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		}
		rpc_set_running(task);
701
		dprintk("RPC: %5u sync task resuming\n", task->tk_pid);
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	}

704 705
	dprintk("RPC: %5u return %d, status %d\n", task->tk_pid, status,
			task->tk_status);
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	/* Release all resources associated with the task */
	rpc_release_task(task);
}

/*
 * User-visible entry point to the scheduler.
 *
 * This may be called recursively if e.g. an async NFS task updates
 * the attributes and finds that dirty pages must be flushed.
 * NOTE: Upon exit of this function the task is guaranteed to be
 *	 released. In particular note that tk_release() will have
 *	 been called, so your task memory may have been freed.
 */
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void rpc_execute(struct rpc_task *task)
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720
{
721
	rpc_set_active(task);
722 723 724
	rpc_make_runnable(task);
	if (!RPC_IS_ASYNC(task))
		__rpc_execute(task);
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}

727
static void rpc_async_schedule(struct work_struct *work)
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728
{
729
	__rpc_execute(container_of(work, struct rpc_task, u.tk_work));
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}

732 733 734 735
/**
 * rpc_malloc - allocate an RPC buffer
 * @task: RPC task that will use this buffer
 * @size: requested byte size
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 *
737 738 739 740 741 742 743 744
 * To prevent rpciod from hanging, this allocator never sleeps,
 * returning NULL if the request cannot be serviced immediately.
 * The caller can arrange to sleep in a way that is safe for rpciod.
 *
 * Most requests are 'small' (under 2KiB) and can be serviced from a
 * mempool, ensuring that NFS reads and writes can always proceed,
 * and that there is good locality of reference for these buffers.
 *
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 * In order to avoid memory starvation triggering more writebacks of
746
 * NFS requests, we avoid using GFP_KERNEL.
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 */
748
void *rpc_malloc(struct rpc_task *task, size_t size)
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{
750
	struct rpc_buffer *buf;
751
	gfp_t gfp = RPC_IS_SWAPPER(task) ? GFP_ATOMIC : GFP_NOWAIT;
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753
	size += sizeof(struct rpc_buffer);
754 755
	if (size <= RPC_BUFFER_MAXSIZE)
		buf = mempool_alloc(rpc_buffer_mempool, gfp);
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	else
757
		buf = kmalloc(size, gfp);
758 759 760 761

	if (!buf)
		return NULL;

762
	buf->len = size;
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	dprintk("RPC: %5u allocated buffer of size %zu at %p\n",
764
			task->tk_pid, size, buf);
765
	return &buf->data;
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}
767
EXPORT_SYMBOL_GPL(rpc_malloc);
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769 770
/**
 * rpc_free - free buffer allocated via rpc_malloc
771
 * @buffer: buffer to free
772 773
 *
 */
774
void rpc_free(void *buffer)
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{
776 777
	size_t size;
	struct rpc_buffer *buf;
778

779 780
	if (!buffer)
		return;
781 782 783

	buf = container_of(buffer, struct rpc_buffer, data);
	size = buf->len;
784

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	dprintk("RPC:       freeing buffer of size %zu at %p\n",
786
			size, buf);
787

788 789 790 791
	if (size <= RPC_BUFFER_MAXSIZE)
		mempool_free(buf, rpc_buffer_mempool);
	else
		kfree(buf);
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}
793
EXPORT_SYMBOL_GPL(rpc_free);
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/*
 * Creation and deletion of RPC task structures
 */
798
static void rpc_init_task(struct rpc_task *task, const struct rpc_task_setup *task_setup_data)
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{
	memset(task, 0, sizeof(*task));
801
	atomic_set(&task->tk_count, 1);
802 803 804
	task->tk_flags  = task_setup_data->flags;
	task->tk_ops = task_setup_data->callback_ops;
	task->tk_calldata = task_setup_data->callback_data;
805
	INIT_LIST_HEAD(&task->tk_task);
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	/* Initialize retry counters */
	task->tk_garb_retry = 2;
	task->tk_cred_retry = 2;
810
	task->tk_rebind_retry = 2;
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812 813
	task->tk_priority = task_setup_data->priority - RPC_PRIORITY_LOW;
	task->tk_owner = current->tgid;
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814 815

	/* Initialize workqueue for async tasks */
816
	task->tk_workqueue = task_setup_data->workqueue;
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817

818 819
	if (task->tk_ops->rpc_call_prepare != NULL)
		task->tk_action = rpc_prepare_task;
820

821
	/* starting timestamp */
822
	task->tk_start = ktime_get();
823

824
	dprintk("RPC:       new task initialized, procpid %u\n",
825
				task_pid_nr(current));
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826 827 828 829 830 831 832 833 834
}

static struct rpc_task *
rpc_alloc_task(void)
{
	return (struct rpc_task *)mempool_alloc(rpc_task_mempool, GFP_NOFS);
}

/*
835
 * Create a new task for the specified client.
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836
 */
837
struct rpc_task *rpc_new_task(const struct rpc_task_setup *setup_data)
L
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838
{
839 840 841 842 843
	struct rpc_task	*task = setup_data->task;
	unsigned short flags = 0;

	if (task == NULL) {
		task = rpc_alloc_task();
844 845 846 847 848
		if (task == NULL) {
			rpc_release_calldata(setup_data->callback_ops,
					setup_data->callback_data);
			return ERR_PTR(-ENOMEM);
		}
849 850
		flags = RPC_TASK_DYNAMIC;
	}
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851

852
	rpc_init_task(task, setup_data);
853
	task->tk_flags |= flags;
854
	dprintk("RPC:       allocated task %p\n", task);
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855 856 857
	return task;
}

858
static void rpc_free_task(struct rpc_task *task)
L
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859
{
860 861
	const struct rpc_call_ops *tk_ops = task->tk_ops;
	void *calldata = task->tk_calldata;
L
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862

863 864 865 866
	if (task->tk_flags & RPC_TASK_DYNAMIC) {
		dprintk("RPC: %5u freeing task\n", task->tk_pid);
		mempool_free(task, rpc_task_mempool);
	}
867 868 869 870 871 872 873 874
	rpc_release_calldata(tk_ops, calldata);
}

static void rpc_async_release(struct work_struct *work)
{
	rpc_free_task(container_of(work, struct rpc_task, u.tk_work));
}

875
static void rpc_release_resources_task(struct rpc_task *task)
876
{
877 878
	if (task->tk_rqstp)
		xprt_release(task);
879
	if (task->tk_msg.rpc_cred) {
880
		put_rpccred(task->tk_msg.rpc_cred);
881 882
		task->tk_msg.rpc_cred = NULL;
	}
883
	rpc_task_release_client(task);
884 885 886 887 888 889
}

static void rpc_final_put_task(struct rpc_task *task,
		struct workqueue_struct *q)
{
	if (q != NULL) {
890
		INIT_WORK(&task->u.tk_work, rpc_async_release);
891
		queue_work(q, &task->u.tk_work);
892 893
	} else
		rpc_free_task(task);
894
}
895 896 897 898 899 900 901 902 903 904 905 906 907

static void rpc_do_put_task(struct rpc_task *task, struct workqueue_struct *q)
{
	if (atomic_dec_and_test(&task->tk_count)) {
		rpc_release_resources_task(task);
		rpc_final_put_task(task, q);
	}
}

void rpc_put_task(struct rpc_task *task)
{
	rpc_do_put_task(task, NULL);
}
908
EXPORT_SYMBOL_GPL(rpc_put_task);
909

910 911 912 913 914 915
void rpc_put_task_async(struct rpc_task *task)
{
	rpc_do_put_task(task, task->tk_workqueue);
}
EXPORT_SYMBOL_GPL(rpc_put_task_async);

916
static void rpc_release_task(struct rpc_task *task)
917
{
918
	dprintk("RPC: %5u release task\n", task->tk_pid);
L
Linus Torvalds 已提交
919 920 921

	BUG_ON (RPC_IS_QUEUED(task));

922
	rpc_release_resources_task(task);
923

924 925 926 927 928 929 930 931 932 933 934 935 936 937
	/*
	 * Note: at this point we have been removed from rpc_clnt->cl_tasks,
	 * so it should be safe to use task->tk_count as a test for whether
	 * or not any other processes still hold references to our rpc_task.
	 */
	if (atomic_read(&task->tk_count) != 1 + !RPC_IS_ASYNC(task)) {
		/* Wake up anyone who may be waiting for task completion */
		if (!rpc_complete_task(task))
			return;
	} else {
		if (!atomic_dec_and_test(&task->tk_count))
			return;
	}
	rpc_final_put_task(task, task->tk_workqueue);
L
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938 939
}

940 941 942 943 944 945 946 947 948 949
int rpciod_up(void)
{
	return try_module_get(THIS_MODULE) ? 0 : -EINVAL;
}

void rpciod_down(void)
{
	module_put(THIS_MODULE);
}

L
Linus Torvalds 已提交
950
/*
951
 * Start up the rpciod workqueue.
L
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952
 */
953
static int rpciod_start(void)
L
Linus Torvalds 已提交
954 955
{
	struct workqueue_struct *wq;
T
Trond Myklebust 已提交
956

L
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957 958 959
	/*
	 * Create the rpciod thread and wait for it to start.
	 */
T
Trond Myklebust 已提交
960
	dprintk("RPC:       creating workqueue rpciod\n");
961
	wq = alloc_workqueue("rpciod", WQ_MEM_RECLAIM, 0);
L
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962
	rpciod_workqueue = wq;
963
	return rpciod_workqueue != NULL;
L
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964 965
}

966
static void rpciod_stop(void)
L
Linus Torvalds 已提交
967
{
968
	struct workqueue_struct *wq = NULL;
T
Trond Myklebust 已提交
969

970 971
	if (rpciod_workqueue == NULL)
		return;
T
Trond Myklebust 已提交
972
	dprintk("RPC:       destroying workqueue rpciod\n");
L
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973

974 975 976
	wq = rpciod_workqueue;
	rpciod_workqueue = NULL;
	destroy_workqueue(wq);
L
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977 978 979 980 981
}

void
rpc_destroy_mempool(void)
{
982
	rpciod_stop();
L
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983 984 985 986
	if (rpc_buffer_mempool)
		mempool_destroy(rpc_buffer_mempool);
	if (rpc_task_mempool)
		mempool_destroy(rpc_task_mempool);
987 988 989 990
	if (rpc_task_slabp)
		kmem_cache_destroy(rpc_task_slabp);
	if (rpc_buffer_slabp)
		kmem_cache_destroy(rpc_buffer_slabp);
991
	rpc_destroy_wait_queue(&delay_queue);
L
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992 993 994 995 996
}

int
rpc_init_mempool(void)
{
997 998 999 1000 1001 1002 1003 1004
	/*
	 * The following is not strictly a mempool initialisation,
	 * but there is no harm in doing it here
	 */
	rpc_init_wait_queue(&delay_queue, "delayq");
	if (!rpciod_start())
		goto err_nomem;

L
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1005 1006 1007
	rpc_task_slabp = kmem_cache_create("rpc_tasks",
					     sizeof(struct rpc_task),
					     0, SLAB_HWCACHE_ALIGN,
1008
					     NULL);
L
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1009 1010 1011 1012 1013
	if (!rpc_task_slabp)
		goto err_nomem;
	rpc_buffer_slabp = kmem_cache_create("rpc_buffers",
					     RPC_BUFFER_MAXSIZE,
					     0, SLAB_HWCACHE_ALIGN,
1014
					     NULL);
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1015 1016
	if (!rpc_buffer_slabp)
		goto err_nomem;
1017 1018
	rpc_task_mempool = mempool_create_slab_pool(RPC_TASK_POOLSIZE,
						    rpc_task_slabp);
L
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1019 1020
	if (!rpc_task_mempool)
		goto err_nomem;
1021 1022
	rpc_buffer_mempool = mempool_create_slab_pool(RPC_BUFFER_POOLSIZE,
						      rpc_buffer_slabp);
L
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1023 1024 1025 1026 1027 1028 1029
	if (!rpc_buffer_mempool)
		goto err_nomem;
	return 0;
err_nomem:
	rpc_destroy_mempool();
	return -ENOMEM;
}