posix-timers.c 35.7 KB
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/*
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 * linux/kernel/posix-timers.c
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 *
 *
 * 2002-10-15  Posix Clocks & timers
 *                           by George Anzinger george@mvista.com
 *
 *			     Copyright (C) 2002 2003 by MontaVista Software.
 *
 * 2004-06-01  Fix CLOCK_REALTIME clock/timer TIMER_ABSTIME bug.
 *			     Copyright (C) 2004 Boris Hu
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License as published by
 * the Free Software Foundation; either version 2 of the License, or (at
 * your option) any later version.
 *
 * This program is distributed in the hope that it will be useful, but
 * WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
 * General Public License for more details.

 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
 *
 * MontaVista Software | 1237 East Arques Avenue | Sunnyvale | CA 94085 | USA
 */

/* These are all the functions necessary to implement
 * POSIX clocks & timers
 */
#include <linux/mm.h>
#include <linux/interrupt.h>
#include <linux/slab.h>
#include <linux/time.h>
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#include <linux/mutex.h>
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#include <linux/sched/task.h>
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#include <linux/uaccess.h>
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#include <linux/list.h>
#include <linux/init.h>
#include <linux/compiler.h>
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#include <linux/hash.h>
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#include <linux/posix-clock.h>
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#include <linux/posix-timers.h>
#include <linux/syscalls.h>
#include <linux/wait.h>
#include <linux/workqueue.h>
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#include <linux/export.h>
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#include <linux/hashtable.h>
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#include <linux/compat.h>
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#include <linux/nospec.h>
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#include "timekeeping.h"
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#include "posix-timers.h"
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/*
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 * Management arrays for POSIX timers. Timers are now kept in static hash table
 * with 512 entries.
 * Timer ids are allocated by local routine, which selects proper hash head by
 * key, constructed from current->signal address and per signal struct counter.
 * This keeps timer ids unique per process, but now they can intersect between
 * processes.
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 */

/*
 * Lets keep our timers in a slab cache :-)
 */
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static struct kmem_cache *posix_timers_cache;
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static DEFINE_HASHTABLE(posix_timers_hashtable, 9);
static DEFINE_SPINLOCK(hash_lock);
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static const struct k_clock * const posix_clocks[];
static const struct k_clock *clockid_to_kclock(const clockid_t id);
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static const struct k_clock clock_realtime, clock_monotonic;
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/*
 * we assume that the new SIGEV_THREAD_ID shares no bits with the other
 * SIGEV values.  Here we put out an error if this assumption fails.
 */
#if SIGEV_THREAD_ID != (SIGEV_THREAD_ID & \
                       ~(SIGEV_SIGNAL | SIGEV_NONE | SIGEV_THREAD))
#error "SIGEV_THREAD_ID must not share bit with other SIGEV values!"
#endif

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/*
 * parisc wants ENOTSUP instead of EOPNOTSUPP
 */
#ifndef ENOTSUP
# define ENANOSLEEP_NOTSUP EOPNOTSUPP
#else
# define ENANOSLEEP_NOTSUP ENOTSUP
#endif
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/*
 * The timer ID is turned into a timer address by idr_find().
 * Verifying a valid ID consists of:
 *
 * a) checking that idr_find() returns other than -1.
 * b) checking that the timer id matches the one in the timer itself.
 * c) that the timer owner is in the callers thread group.
 */

/*
 * CLOCKs: The POSIX standard calls for a couple of clocks and allows us
 *	    to implement others.  This structure defines the various
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 *	    clocks.
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 *
 * RESOLUTION: Clock resolution is used to round up timer and interval
 *	    times, NOT to report clock times, which are reported with as
 *	    much resolution as the system can muster.  In some cases this
 *	    resolution may depend on the underlying clock hardware and
 *	    may not be quantifiable until run time, and only then is the
 *	    necessary code is written.	The standard says we should say
 *	    something about this issue in the documentation...
 *
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 * FUNCTIONS: The CLOCKs structure defines possible functions to
 *	    handle various clock functions.
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 *
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 *	    The standard POSIX timer management code assumes the
 *	    following: 1.) The k_itimer struct (sched.h) is used for
 *	    the timer.  2.) The list, it_lock, it_clock, it_id and
 *	    it_pid fields are not modified by timer code.
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 *
 * Permissions: It is assumed that the clock_settime() function defined
 *	    for each clock will take care of permission checks.	 Some
 *	    clocks may be set able by any user (i.e. local process
 *	    clocks) others not.	 Currently the only set able clock we
 *	    have is CLOCK_REALTIME and its high res counter part, both of
 *	    which we beg off on and pass to do_sys_settimeofday().
 */
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static struct k_itimer *__lock_timer(timer_t timer_id, unsigned long *flags);

#define lock_timer(tid, flags)						   \
({	struct k_itimer *__timr;					   \
	__cond_lock(&__timr->it_lock, __timr = __lock_timer(tid, flags));  \
	__timr;								   \
})
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static int hash(struct signal_struct *sig, unsigned int nr)
{
	return hash_32(hash32_ptr(sig) ^ nr, HASH_BITS(posix_timers_hashtable));
}

static struct k_itimer *__posix_timers_find(struct hlist_head *head,
					    struct signal_struct *sig,
					    timer_t id)
{
	struct k_itimer *timer;

	hlist_for_each_entry_rcu(timer, head, t_hash) {
		if ((timer->it_signal == sig) && (timer->it_id == id))
			return timer;
	}
	return NULL;
}

static struct k_itimer *posix_timer_by_id(timer_t id)
{
	struct signal_struct *sig = current->signal;
	struct hlist_head *head = &posix_timers_hashtable[hash(sig, id)];

	return __posix_timers_find(head, sig, id);
}

static int posix_timer_add(struct k_itimer *timer)
{
	struct signal_struct *sig = current->signal;
	int first_free_id = sig->posix_timer_id;
	struct hlist_head *head;
	int ret = -ENOENT;

	do {
		spin_lock(&hash_lock);
		head = &posix_timers_hashtable[hash(sig, sig->posix_timer_id)];
		if (!__posix_timers_find(head, sig, sig->posix_timer_id)) {
			hlist_add_head_rcu(&timer->t_hash, head);
			ret = sig->posix_timer_id;
		}
		if (++sig->posix_timer_id < 0)
			sig->posix_timer_id = 0;
		if ((sig->posix_timer_id == first_free_id) && (ret == -ENOENT))
			/* Loop over all possible ids completed */
			ret = -EAGAIN;
		spin_unlock(&hash_lock);
	} while (ret == -ENOENT);
	return ret;
}

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static inline void unlock_timer(struct k_itimer *timr, unsigned long flags)
{
	spin_unlock_irqrestore(&timr->it_lock, flags);
}

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/* Get clock_realtime */
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static int posix_clock_realtime_get(clockid_t which_clock, struct timespec64 *tp)
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{
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	ktime_get_real_ts64(tp);
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	return 0;
}

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/* Set clock_realtime */
static int posix_clock_realtime_set(const clockid_t which_clock,
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				    const struct timespec64 *tp)
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{
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	return do_sys_settimeofday64(tp, NULL);
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}

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static int posix_clock_realtime_adj(const clockid_t which_clock,
				    struct timex *t)
{
	return do_adjtimex(t);
}

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/*
 * Get monotonic time for posix timers
 */
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static int posix_ktime_get_ts(clockid_t which_clock, struct timespec64 *tp)
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{
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	ktime_get_ts64(tp);
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	return 0;
}
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/*
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 * Get monotonic-raw time for posix timers
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 */
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static int posix_get_monotonic_raw(clockid_t which_clock, struct timespec64 *tp)
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{
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	getrawmonotonic64(tp);
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	return 0;
}

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static int posix_get_realtime_coarse(clockid_t which_clock, struct timespec64 *tp)
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{
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	*tp = current_kernel_time64();
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	return 0;
}

static int posix_get_monotonic_coarse(clockid_t which_clock,
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						struct timespec64 *tp)
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{
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	*tp = get_monotonic_coarse64();
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	return 0;
}

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static int posix_get_coarse_res(const clockid_t which_clock, struct timespec64 *tp)
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{
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	*tp = ktime_to_timespec64(KTIME_LOW_RES);
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	return 0;
}
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static int posix_get_boottime(const clockid_t which_clock, struct timespec64 *tp)
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{
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	get_monotonic_boottime64(tp);
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	return 0;
}

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static int posix_get_tai(clockid_t which_clock, struct timespec64 *tp)
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{
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	timekeeping_clocktai64(tp);
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	return 0;
}
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static int posix_get_hrtimer_res(clockid_t which_clock, struct timespec64 *tp)
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{
	tp->tv_sec = 0;
	tp->tv_nsec = hrtimer_resolution;
	return 0;
}

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/*
 * Initialize everything, well, just everything in Posix clocks/timers ;)
 */
static __init int init_posix_timers(void)
{
	posix_timers_cache = kmem_cache_create("posix_timers_cache",
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					sizeof (struct k_itimer), 0, SLAB_PANIC,
					NULL);
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	return 0;
}
__initcall(init_posix_timers);

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static void common_hrtimer_rearm(struct k_itimer *timr)
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{
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	struct hrtimer *timer = &timr->it.real.timer;

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	if (!timr->it_interval)
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		return;

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	timr->it_overrun += (unsigned int) hrtimer_forward(timer,
						timer->base->get_time(),
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						timr->it_interval);
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	hrtimer_restart(timer);
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}

/*
 * This function is exported for use by the signal deliver code.  It is
 * called just prior to the info block being released and passes that
 * block to us.  It's function is to update the overrun entry AND to
 * restart the timer.  It should only be called if the timer is to be
 * restarted (i.e. we have flagged this in the sys_private entry of the
 * info block).
 *
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 * To protect against the timer going away while the interrupt is queued,
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 * we require that the it_requeue_pending flag be set.
 */
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void posixtimer_rearm(struct siginfo *info)
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{
	struct k_itimer *timr;
	unsigned long flags;

	timr = lock_timer(info->si_tid, &flags);
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	if (!timr)
		return;
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	if (timr->it_requeue_pending == info->si_sys_private) {
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		timr->kclock->timer_rearm(timr);
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		timr->it_active = 1;
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		timr->it_overrun_last = timr->it_overrun;
		timr->it_overrun = -1;
		++timr->it_requeue_pending;

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		info->si_overrun += timr->it_overrun_last;
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	}

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	unlock_timer(timr, flags);
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}

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int posix_timer_event(struct k_itimer *timr, int si_private)
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{
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	struct task_struct *task;
	int shared, ret = -1;
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	/*
	 * FIXME: if ->sigq is queued we can race with
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	 * dequeue_signal()->posixtimer_rearm().
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	 *
	 * If dequeue_signal() sees the "right" value of
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	 * si_sys_private it calls posixtimer_rearm().
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	 * We re-queue ->sigq and drop ->it_lock().
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	 * posixtimer_rearm() locks the timer
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	 * and re-schedules it while ->sigq is pending.
	 * Not really bad, but not that we want.
	 */
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	timr->sigq->info.si_sys_private = si_private;

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	rcu_read_lock();
	task = pid_task(timr->it_pid, PIDTYPE_PID);
	if (task) {
		shared = !(timr->it_sigev_notify & SIGEV_THREAD_ID);
		ret = send_sigqueue(timr->sigq, task, shared);
	}
	rcu_read_unlock();
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	/* If we failed to send the signal the timer stops. */
	return ret > 0;
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}

/*
 * This function gets called when a POSIX.1b interval timer expires.  It
 * is used as a callback from the kernel internal timer.  The
 * run_timer_list code ALWAYS calls with interrupts on.

 * This code is for CLOCK_REALTIME* and CLOCK_MONOTONIC* timers.
 */
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static enum hrtimer_restart posix_timer_fn(struct hrtimer *timer)
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{
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	struct k_itimer *timr;
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	unsigned long flags;
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	int si_private = 0;
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	enum hrtimer_restart ret = HRTIMER_NORESTART;
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	timr = container_of(timer, struct k_itimer, it.real.timer);
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	spin_lock_irqsave(&timr->it_lock, flags);

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	timr->it_active = 0;
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	if (timr->it_interval != 0)
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		si_private = ++timr->it_requeue_pending;
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	if (posix_timer_event(timr, si_private)) {
		/*
		 * signal was not sent because of sig_ignor
		 * we will not get a call back to restart it AND
		 * it should be restarted.
		 */
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		if (timr->it_interval != 0) {
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			ktime_t now = hrtimer_cb_get_time(timer);

			/*
			 * FIXME: What we really want, is to stop this
			 * timer completely and restart it in case the
			 * SIG_IGN is removed. This is a non trivial
			 * change which involves sighand locking
			 * (sigh !), which we don't want to do late in
			 * the release cycle.
			 *
			 * For now we just let timers with an interval
			 * less than a jiffie expire every jiffie to
			 * avoid softirq starvation in case of SIG_IGN
			 * and a very small interval, which would put
			 * the timer right back on the softirq pending
			 * list. By moving now ahead of time we trick
			 * hrtimer_forward() to expire the timer
			 * later, while we still maintain the overrun
			 * accuracy, but have some inconsistency in
			 * the timer_gettime() case. This is at least
			 * better than a starved softirq. A more
			 * complex fix which solves also another related
			 * inconsistency is already in the pipeline.
			 */
#ifdef CONFIG_HIGH_RES_TIMERS
			{
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				ktime_t kj = NSEC_PER_SEC / HZ;
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				if (timr->it_interval < kj)
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					now = ktime_add(now, kj);
			}
#endif
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			timr->it_overrun += (unsigned int)
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				hrtimer_forward(timer, now,
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						timr->it_interval);
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			ret = HRTIMER_RESTART;
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			++timr->it_requeue_pending;
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			timr->it_active = 1;
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		}
	}

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	unlock_timer(timr, flags);
	return ret;
}
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static struct pid *good_sigevent(sigevent_t * event)
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{
	struct task_struct *rtn = current->group_leader;

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	switch (event->sigev_notify) {
	case SIGEV_SIGNAL | SIGEV_THREAD_ID:
		rtn = find_task_by_vpid(event->sigev_notify_thread_id);
		if (!rtn || !same_thread_group(rtn, current))
			return NULL;
		/* FALLTHRU */
	case SIGEV_SIGNAL:
	case SIGEV_THREAD:
		if (event->sigev_signo <= 0 || event->sigev_signo > SIGRTMAX)
			return NULL;
		/* FALLTHRU */
	case SIGEV_NONE:
		return task_pid(rtn);
	default:
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		return NULL;
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	}
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}

static struct k_itimer * alloc_posix_timer(void)
{
	struct k_itimer *tmr;
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	tmr = kmem_cache_zalloc(posix_timers_cache, GFP_KERNEL);
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	if (!tmr)
		return tmr;
	if (unlikely(!(tmr->sigq = sigqueue_alloc()))) {
		kmem_cache_free(posix_timers_cache, tmr);
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		return NULL;
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	}
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	clear_siginfo(&tmr->sigq->info);
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	return tmr;
}

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static void k_itimer_rcu_free(struct rcu_head *head)
{
	struct k_itimer *tmr = container_of(head, struct k_itimer, it.rcu);

	kmem_cache_free(posix_timers_cache, tmr);
}

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#define IT_ID_SET	1
#define IT_ID_NOT_SET	0
static void release_posix_timer(struct k_itimer *tmr, int it_id_set)
{
	if (it_id_set) {
		unsigned long flags;
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		spin_lock_irqsave(&hash_lock, flags);
		hlist_del_rcu(&tmr->t_hash);
		spin_unlock_irqrestore(&hash_lock, flags);
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	}
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	put_pid(tmr->it_pid);
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	sigqueue_free(tmr->sigq);
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	call_rcu(&tmr->it.rcu, k_itimer_rcu_free);
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}

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static int common_timer_create(struct k_itimer *new_timer)
{
	hrtimer_init(&new_timer->it.real.timer, new_timer->it_clock, 0);
	return 0;
}

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/* Create a POSIX.1b interval timer. */
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static int do_timer_create(clockid_t which_clock, struct sigevent *event,
			   timer_t __user *created_timer_id)
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{
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	const struct k_clock *kc = clockid_to_kclock(which_clock);
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	struct k_itimer *new_timer;
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	int error, new_timer_id;
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	int it_id_set = IT_ID_NOT_SET;

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	if (!kc)
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		return -EINVAL;
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	if (!kc->timer_create)
		return -EOPNOTSUPP;
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	new_timer = alloc_posix_timer();
	if (unlikely(!new_timer))
		return -EAGAIN;

	spin_lock_init(&new_timer->it_lock);
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	new_timer_id = posix_timer_add(new_timer);
	if (new_timer_id < 0) {
		error = new_timer_id;
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		goto out;
	}

	it_id_set = IT_ID_SET;
	new_timer->it_id = (timer_t) new_timer_id;
	new_timer->it_clock = which_clock;
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	new_timer->kclock = kc;
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	new_timer->it_overrun = -1;

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	if (event) {
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		rcu_read_lock();
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		new_timer->it_pid = get_pid(good_sigevent(event));
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		rcu_read_unlock();
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		if (!new_timer->it_pid) {
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			error = -EINVAL;
			goto out;
		}
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		new_timer->it_sigev_notify     = event->sigev_notify;
		new_timer->sigq->info.si_signo = event->sigev_signo;
		new_timer->sigq->info.si_value = event->sigev_value;
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	} else {
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		new_timer->it_sigev_notify     = SIGEV_SIGNAL;
		new_timer->sigq->info.si_signo = SIGALRM;
		memset(&new_timer->sigq->info.si_value, 0, sizeof(sigval_t));
		new_timer->sigq->info.si_value.sival_int = new_timer->it_id;
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		new_timer->it_pid = get_pid(task_tgid(current));
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	}

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	new_timer->sigq->info.si_tid   = new_timer->it_id;
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	new_timer->sigq->info.si_code  = SI_TIMER;
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	if (copy_to_user(created_timer_id,
			 &new_timer_id, sizeof (new_timer_id))) {
		error = -EFAULT;
		goto out;
	}

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	error = kc->timer_create(new_timer);
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	if (error)
		goto out;

561
	spin_lock_irq(&current->sighand->siglock);
562
	new_timer->it_signal = current->signal;
563 564
	list_add(&new_timer->list, &current->signal->posix_timers);
	spin_unlock_irq(&current->sighand->siglock);
565 566

	return 0;
567
	/*
L
Linus Torvalds 已提交
568 569 570 571 572 573
	 * In the case of the timer belonging to another task, after
	 * the task is unlocked, the timer is owned by the other task
	 * and may cease to exist at any time.  Don't use or modify
	 * new_timer after the unlock call.
	 */
out:
574
	release_posix_timer(new_timer, it_id_set);
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	return error;
}

578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593 594 595 596 597 598 599 600 601 602 603 604 605 606 607
SYSCALL_DEFINE3(timer_create, const clockid_t, which_clock,
		struct sigevent __user *, timer_event_spec,
		timer_t __user *, created_timer_id)
{
	if (timer_event_spec) {
		sigevent_t event;

		if (copy_from_user(&event, timer_event_spec, sizeof (event)))
			return -EFAULT;
		return do_timer_create(which_clock, &event, created_timer_id);
	}
	return do_timer_create(which_clock, NULL, created_timer_id);
}

#ifdef CONFIG_COMPAT
COMPAT_SYSCALL_DEFINE3(timer_create, clockid_t, which_clock,
		       struct compat_sigevent __user *, timer_event_spec,
		       timer_t __user *, created_timer_id)
{
	if (timer_event_spec) {
		sigevent_t event;

		if (get_compat_sigevent(&event, timer_event_spec))
			return -EFAULT;
		return do_timer_create(which_clock, &event, created_timer_id);
	}
	return do_timer_create(which_clock, NULL, created_timer_id);
}
#endif

L
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/*
 * Locking issues: We need to protect the result of the id look up until
 * we get the timer locked down so it is not deleted under us.  The
 * removal is done under the idr spinlock so we use that here to bridge
 * the find to the timer lock.  To avoid a dead lock, the timer id MUST
 * be release with out holding the timer lock.
 */
N
Namhyung Kim 已提交
615
static struct k_itimer *__lock_timer(timer_t timer_id, unsigned long *flags)
L
Linus Torvalds 已提交
616 617
{
	struct k_itimer *timr;
E
Eric Dumazet 已提交
618

619 620 621 622 623 624 625
	/*
	 * timer_t could be any type >= int and we want to make sure any
	 * @timer_id outside positive int range fails lookup.
	 */
	if ((unsigned long long)timer_id > INT_MAX)
		return NULL;

E
Eric Dumazet 已提交
626
	rcu_read_lock();
627
	timr = posix_timer_by_id(timer_id);
L
Linus Torvalds 已提交
628
	if (timr) {
E
Eric Dumazet 已提交
629
		spin_lock_irqsave(&timr->it_lock, *flags);
630
		if (timr->it_signal == current->signal) {
E
Eric Dumazet 已提交
631
			rcu_read_unlock();
632 633
			return timr;
		}
E
Eric Dumazet 已提交
634
		spin_unlock_irqrestore(&timr->it_lock, *flags);
635
	}
E
Eric Dumazet 已提交
636
	rcu_read_unlock();
L
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637

638
	return NULL;
L
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639 640
}

641 642 643 644 645 646 647 648 649 650 651 652 653 654
static ktime_t common_hrtimer_remaining(struct k_itimer *timr, ktime_t now)
{
	struct hrtimer *timer = &timr->it.real.timer;

	return __hrtimer_expires_remaining_adjusted(timer, now);
}

static int common_hrtimer_forward(struct k_itimer *timr, ktime_t now)
{
	struct hrtimer *timer = &timr->it.real.timer;

	return (int)hrtimer_forward(timer, now, timr->it_interval);
}

L
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/*
 * Get the time remaining on a POSIX.1b interval timer.  This function
 * is ALWAYS called with spin_lock_irq on the timer, thus it must not
 * mess with irq.
 *
 * We have a couple of messes to clean up here.  First there is the case
 * of a timer that has a requeue pending.  These timers should appear to
 * be in the timer list with an expiry as if we were to requeue them
 * now.
 *
 * The second issue is the SIGEV_NONE timer which may be active but is
 * not really ever put in the timer list (to save system resources).
 * This timer may be expired, and if so, we will do it here.  Otherwise
 * it is the same as a requeue pending timer WRT to what we should
 * report.
 */
671
void common_timer_get(struct k_itimer *timr, struct itimerspec64 *cur_setting)
L
Linus Torvalds 已提交
672
{
673
	const struct k_clock *kc = timr->kclock;
674
	ktime_t now, remaining, iv;
675 676
	struct timespec64 ts64;
	bool sig_none;
L
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677

678
	sig_none = timr->it_sigev_notify == SIGEV_NONE;
679
	iv = timr->it_interval;
680

681
	/* interval timer ? */
682
	if (iv) {
683
		cur_setting->it_interval = ktime_to_timespec64(iv);
684 685 686 687 688 689 690 691
	} else if (!timr->it_active) {
		/*
		 * SIGEV_NONE oneshot timers are never queued. Check them
		 * below.
		 */
		if (!sig_none)
			return;
	}
692

693 694 695 696 697 698
	/*
	 * The timespec64 based conversion is suboptimal, but it's not
	 * worth to implement yet another callback.
	 */
	kc->clock_get(timr->it_clock, &ts64);
	now = timespec64_to_ktime(ts64);
699

700
	/*
701 702
	 * When a requeue is pending or this is a SIGEV_NONE timer move the
	 * expiry time forward by intervals, so expiry is > now.
703
	 */
704 705
	if (iv && (timr->it_requeue_pending & REQUEUE_PENDING || sig_none))
		timr->it_overrun += kc->timer_forward(timr, now);
706

707
	remaining = kc->timer_remaining(timr, now);
708
	/* Return 0 only, when the timer is expired and not pending */
T
Thomas Gleixner 已提交
709
	if (remaining <= 0) {
710 711 712 713
		/*
		 * A single shot SIGEV_NONE timer must return 0, when
		 * it is expired !
		 */
714
		if (!sig_none)
715
			cur_setting->it_value.tv_nsec = 1;
716
	} else {
717
		cur_setting->it_value = ktime_to_timespec64(remaining);
718
	}
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719 720 721
}

/* Get the time remaining on a POSIX.1b interval timer. */
722
static int do_timer_gettime(timer_t timer_id,  struct itimerspec64 *setting)
L
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723
{
724
	struct k_itimer *timr;
725
	const struct k_clock *kc;
L
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726
	unsigned long flags;
727
	int ret = 0;
L
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	timr = lock_timer(timer_id, &flags);
	if (!timr)
		return -EINVAL;

733
	memset(setting, 0, sizeof(*setting));
734
	kc = timr->kclock;
735 736 737
	if (WARN_ON_ONCE(!kc || !kc->timer_get))
		ret = -EINVAL;
	else
738
		kc->timer_get(timr, setting);
L
Linus Torvalds 已提交
739 740

	unlock_timer(timr, flags);
741 742
	return ret;
}
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743

744 745 746 747
/* Get the time remaining on a POSIX.1b interval timer. */
SYSCALL_DEFINE2(timer_gettime, timer_t, timer_id,
		struct itimerspec __user *, setting)
{
748
	struct itimerspec64 cur_setting;
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749

750
	int ret = do_timer_gettime(timer_id, &cur_setting);
751
	if (!ret) {
752
		if (put_itimerspec64(&cur_setting, setting))
753 754
			ret = -EFAULT;
	}
755
	return ret;
L
Linus Torvalds 已提交
756
}
757

758 759 760 761
#ifdef CONFIG_COMPAT
COMPAT_SYSCALL_DEFINE2(timer_gettime, timer_t, timer_id,
		       struct compat_itimerspec __user *, setting)
{
762
	struct itimerspec64 cur_setting;
763

764
	int ret = do_timer_gettime(timer_id, &cur_setting);
765
	if (!ret) {
766
		if (put_compat_itimerspec64(&cur_setting, setting))
767 768 769 770 771 772
			ret = -EFAULT;
	}
	return ret;
}
#endif

L
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773 774 775 776 777 778
/*
 * Get the number of overruns of a POSIX.1b interval timer.  This is to
 * be the overrun of the timer last delivered.  At the same time we are
 * accumulating overruns on the next timer.  The overrun is frozen when
 * the signal is delivered, either at the notify time (if the info block
 * is not queued) or at the actual delivery time (as we are informed by
779
 * the call back to posixtimer_rearm().  So all we need to do is
L
Linus Torvalds 已提交
780 781
 * to pick up the frozen overrun.
 */
782
SYSCALL_DEFINE1(timer_getoverrun, timer_t, timer_id)
L
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783 784 785
{
	struct k_itimer *timr;
	int overrun;
786
	unsigned long flags;
L
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787 788 789 790 791 792 793 794 795 796 797

	timr = lock_timer(timer_id, &flags);
	if (!timr)
		return -EINVAL;

	overrun = timr->it_overrun_last;
	unlock_timer(timr, flags);

	return overrun;
}

798 799 800 801 802 803 804
static void common_hrtimer_arm(struct k_itimer *timr, ktime_t expires,
			       bool absolute, bool sigev_none)
{
	struct hrtimer *timer = &timr->it.real.timer;
	enum hrtimer_mode mode;

	mode = absolute ? HRTIMER_MODE_ABS : HRTIMER_MODE_REL;
805 806 807 808 809 810 811 812 813 814 815 816
	/*
	 * Posix magic: Relative CLOCK_REALTIME timers are not affected by
	 * clock modifications, so they become CLOCK_MONOTONIC based under the
	 * hood. See hrtimer_init(). Update timr->kclock, so the generic
	 * functions which use timr->kclock->clock_get() work.
	 *
	 * Note: it_clock stays unmodified, because the next timer_set() might
	 * use ABSTIME, so it needs to switch back.
	 */
	if (timr->it_clock == CLOCK_REALTIME)
		timr->kclock = absolute ? &clock_realtime : &clock_monotonic;

817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832
	hrtimer_init(&timr->it.real.timer, timr->it_clock, mode);
	timr->it.real.timer.function = posix_timer_fn;

	if (!absolute)
		expires = ktime_add_safe(expires, timer->base->get_time());
	hrtimer_set_expires(timer, expires);

	if (!sigev_none)
		hrtimer_start_expires(timer, HRTIMER_MODE_ABS);
}

static int common_hrtimer_try_to_cancel(struct k_itimer *timr)
{
	return hrtimer_try_to_cancel(&timr->it.real.timer);
}

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833
/* Set a POSIX.1b interval timer. */
834 835 836
int common_timer_set(struct k_itimer *timr, int flags,
		     struct itimerspec64 *new_setting,
		     struct itimerspec64 *old_setting)
L
Linus Torvalds 已提交
837
{
838 839 840
	const struct k_clock *kc = timr->kclock;
	bool sigev_none;
	ktime_t expires;
L
Linus Torvalds 已提交
841 842 843 844

	if (old_setting)
		common_timer_get(timr, old_setting);

845
	/* Prevent rearming by clearing the interval */
846
	timr->it_interval = 0;
L
Linus Torvalds 已提交
847
	/*
848 849
	 * Careful here. On SMP systems the timer expiry function could be
	 * active and spinning on timr->it_lock.
L
Linus Torvalds 已提交
850
	 */
851
	if (kc->timer_try_to_cancel(timr) < 0)
L
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852 853
		return TIMER_RETRY;

854 855
	timr->it_active = 0;
	timr->it_requeue_pending = (timr->it_requeue_pending + 2) &
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856 857 858
		~REQUEUE_PENDING;
	timr->it_overrun_last = 0;

859
	/* Switch off the timer when it_value is zero */
860 861
	if (!new_setting->it_value.tv_sec && !new_setting->it_value.tv_nsec)
		return 0;
L
Linus Torvalds 已提交
862

863
	timr->it_interval = timespec64_to_ktime(new_setting->it_interval);
864
	expires = timespec64_to_ktime(new_setting->it_value);
865
	sigev_none = timr->it_sigev_notify == SIGEV_NONE;
866

867 868
	kc->timer_arm(timr, expires, flags & TIMER_ABSTIME, sigev_none);
	timr->it_active = !sigev_none;
L
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869 870 871
	return 0;
}

872 873 874
static int do_timer_settime(timer_t timer_id, int flags,
			    struct itimerspec64 *new_spec64,
			    struct itimerspec64 *old_spec64)
L
Linus Torvalds 已提交
875
{
876
	const struct k_clock *kc;
877
	struct k_itimer *timr;
878
	unsigned long flag;
879
	int error = 0;
L
Linus Torvalds 已提交
880

881 882
	if (!timespec64_valid(&new_spec64->it_interval) ||
	    !timespec64_valid(&new_spec64->it_value))
L
Linus Torvalds 已提交
883 884
		return -EINVAL;

885 886
	if (old_spec64)
		memset(old_spec64, 0, sizeof(*old_spec64));
L
Linus Torvalds 已提交
887 888 889 890 891
retry:
	timr = lock_timer(timer_id, &flag);
	if (!timr)
		return -EINVAL;

892
	kc = timr->kclock;
893 894 895
	if (WARN_ON_ONCE(!kc || !kc->timer_set))
		error = -EINVAL;
	else
896
		error = kc->timer_set(timr, flags, new_spec64, old_spec64);
L
Linus Torvalds 已提交
897 898 899

	unlock_timer(timr, flag);
	if (error == TIMER_RETRY) {
900
		old_spec64 = NULL;	// We already got the old time...
L
Linus Torvalds 已提交
901 902 903
		goto retry;
	}

904 905
	return error;
}
L
Linus Torvalds 已提交
906

907 908 909 910 911
/* Set a POSIX.1b interval timer */
SYSCALL_DEFINE4(timer_settime, timer_t, timer_id, int, flags,
		const struct itimerspec __user *, new_setting,
		struct itimerspec __user *, old_setting)
{
912 913
	struct itimerspec64 new_spec, old_spec;
	struct itimerspec64 *rtn = old_setting ? &old_spec : NULL;
914 915 916 917 918
	int error = 0;

	if (!new_setting)
		return -EINVAL;

919
	if (get_itimerspec64(&new_spec, new_setting))
920 921
		return -EFAULT;

922
	error = do_timer_settime(timer_id, flags, &new_spec, rtn);
923
	if (!error && old_setting) {
924
		if (put_itimerspec64(&old_spec, old_setting))
925 926 927 928 929 930 931 932 933 934
			error = -EFAULT;
	}
	return error;
}

#ifdef CONFIG_COMPAT
COMPAT_SYSCALL_DEFINE4(timer_settime, timer_t, timer_id, int, flags,
		       struct compat_itimerspec __user *, new,
		       struct compat_itimerspec __user *, old)
{
935 936
	struct itimerspec64 new_spec, old_spec;
	struct itimerspec64 *rtn = old ? &old_spec : NULL;
937 938 939 940
	int error = 0;

	if (!new)
		return -EINVAL;
941
	if (get_compat_itimerspec64(&new_spec, new))
942 943
		return -EFAULT;

944
	error = do_timer_settime(timer_id, flags, &new_spec, rtn);
945
	if (!error && old) {
946
		if (put_compat_itimerspec64(&old_spec, old))
947 948
			error = -EFAULT;
	}
L
Linus Torvalds 已提交
949 950
	return error;
}
951
#endif
L
Linus Torvalds 已提交
952

953
int common_timer_del(struct k_itimer *timer)
L
Linus Torvalds 已提交
954
{
955
	const struct k_clock *kc = timer->kclock;
956

957 958
	timer->it_interval = 0;
	if (kc->timer_try_to_cancel(timer) < 0)
L
Linus Torvalds 已提交
959
		return TIMER_RETRY;
960
	timer->it_active = 0;
L
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961 962 963 964 965
	return 0;
}

static inline int timer_delete_hook(struct k_itimer *timer)
{
966
	const struct k_clock *kc = timer->kclock;
967 968 969 970

	if (WARN_ON_ONCE(!kc || !kc->timer_del))
		return -EINVAL;
	return kc->timer_del(timer);
L
Linus Torvalds 已提交
971 972 973
}

/* Delete a POSIX.1b interval timer. */
974
SYSCALL_DEFINE1(timer_delete, timer_t, timer_id)
L
Linus Torvalds 已提交
975 976
{
	struct k_itimer *timer;
977
	unsigned long flags;
L
Linus Torvalds 已提交
978 979 980 981 982 983

retry_delete:
	timer = lock_timer(timer_id, &flags);
	if (!timer)
		return -EINVAL;

984
	if (timer_delete_hook(timer) == TIMER_RETRY) {
L
Linus Torvalds 已提交
985 986 987
		unlock_timer(timer, flags);
		goto retry_delete;
	}
988

L
Linus Torvalds 已提交
989 990 991 992 993 994 995
	spin_lock(&current->sighand->siglock);
	list_del(&timer->list);
	spin_unlock(&current->sighand->siglock);
	/*
	 * This keeps any tasks waiting on the spin lock from thinking
	 * they got something (see the lock code above).
	 */
996
	timer->it_signal = NULL;
997

L
Linus Torvalds 已提交
998 999 1000 1001
	unlock_timer(timer, flags);
	release_posix_timer(timer, IT_ID_SET);
	return 0;
}
1002

L
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1003 1004 1005
/*
 * return timer owned by the process, used by exit_itimers
 */
1006
static void itimer_delete(struct k_itimer *timer)
L
Linus Torvalds 已提交
1007 1008 1009 1010 1011 1012
{
	unsigned long flags;

retry_delete:
	spin_lock_irqsave(&timer->it_lock, flags);

1013
	if (timer_delete_hook(timer) == TIMER_RETRY) {
L
Linus Torvalds 已提交
1014 1015 1016 1017 1018 1019 1020 1021
		unlock_timer(timer, flags);
		goto retry_delete;
	}
	list_del(&timer->list);
	/*
	 * This keeps any tasks waiting on the spin lock from thinking
	 * they got something (see the lock code above).
	 */
1022
	timer->it_signal = NULL;
1023

L
Linus Torvalds 已提交
1024 1025 1026 1027 1028
	unlock_timer(timer, flags);
	release_posix_timer(timer, IT_ID_SET);
}

/*
1029
 * This is called by do_exit or de_thread, only when there are no more
L
Linus Torvalds 已提交
1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041
 * references to the shared signal_struct.
 */
void exit_itimers(struct signal_struct *sig)
{
	struct k_itimer *tmr;

	while (!list_empty(&sig->posix_timers)) {
		tmr = list_entry(sig->posix_timers.next, struct k_itimer, list);
		itimer_delete(tmr);
	}
}

1042
SYSCALL_DEFINE2(clock_settime, const clockid_t, which_clock,
1043
		const struct __kernel_timespec __user *, tp)
L
Linus Torvalds 已提交
1044
{
1045
	const struct k_clock *kc = clockid_to_kclock(which_clock);
1046
	struct timespec64 new_tp;
L
Linus Torvalds 已提交
1047

1048
	if (!kc || !kc->clock_set)
L
Linus Torvalds 已提交
1049
		return -EINVAL;
1050

1051
	if (get_timespec64(&new_tp, tp))
L
Linus Torvalds 已提交
1052 1053
		return -EFAULT;

1054
	return kc->clock_set(which_clock, &new_tp);
L
Linus Torvalds 已提交
1055 1056
}

1057
SYSCALL_DEFINE2(clock_gettime, const clockid_t, which_clock,
1058
		struct __kernel_timespec __user *, tp)
L
Linus Torvalds 已提交
1059
{
1060
	const struct k_clock *kc = clockid_to_kclock(which_clock);
1061
	struct timespec64 kernel_tp;
L
Linus Torvalds 已提交
1062 1063
	int error;

1064
	if (!kc)
L
Linus Torvalds 已提交
1065
		return -EINVAL;
1066

1067
	error = kc->clock_get(which_clock, &kernel_tp);
1068

1069
	if (!error && put_timespec64(&kernel_tp, tp))
L
Linus Torvalds 已提交
1070 1071 1072 1073 1074
		error = -EFAULT;

	return error;
}

1075 1076 1077
SYSCALL_DEFINE2(clock_adjtime, const clockid_t, which_clock,
		struct timex __user *, utx)
{
1078
	const struct k_clock *kc = clockid_to_kclock(which_clock);
1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091
	struct timex ktx;
	int err;

	if (!kc)
		return -EINVAL;
	if (!kc->clock_adj)
		return -EOPNOTSUPP;

	if (copy_from_user(&ktx, utx, sizeof(ktx)))
		return -EFAULT;

	err = kc->clock_adj(which_clock, &ktx);

1092
	if (err >= 0 && copy_to_user(utx, &ktx, sizeof(ktx)))
1093 1094 1095 1096 1097
		return -EFAULT;

	return err;
}

1098
SYSCALL_DEFINE2(clock_getres, const clockid_t, which_clock,
1099
		struct __kernel_timespec __user *, tp)
1100 1101
{
	const struct k_clock *kc = clockid_to_kclock(which_clock);
1102
	struct timespec64 rtn_tp;
1103 1104 1105 1106 1107
	int error;

	if (!kc)
		return -EINVAL;

1108
	error = kc->clock_getres(which_clock, &rtn_tp);
1109

1110
	if (!error && tp && put_timespec64(&rtn_tp, tp))
1111 1112 1113 1114 1115
		error = -EFAULT;

	return error;
}

1116
#ifdef CONFIG_COMPAT_32BIT_TIME
1117

1118 1119 1120 1121
COMPAT_SYSCALL_DEFINE2(clock_settime, clockid_t, which_clock,
		       struct compat_timespec __user *, tp)
{
	const struct k_clock *kc = clockid_to_kclock(which_clock);
1122
	struct timespec64 ts;
1123 1124 1125 1126

	if (!kc || !kc->clock_set)
		return -EINVAL;

1127
	if (compat_get_timespec64(&ts, tp))
1128 1129
		return -EFAULT;

1130
	return kc->clock_set(which_clock, &ts);
1131 1132 1133 1134 1135 1136
}

COMPAT_SYSCALL_DEFINE2(clock_gettime, clockid_t, which_clock,
		       struct compat_timespec __user *, tp)
{
	const struct k_clock *kc = clockid_to_kclock(which_clock);
1137 1138
	struct timespec64 ts;
	int err;
1139 1140 1141 1142

	if (!kc)
		return -EINVAL;

1143
	err = kc->clock_get(which_clock, &ts);
1144

1145 1146
	if (!err && compat_put_timespec64(&ts, tp))
		err = -EFAULT;
1147

1148
	return err;
1149 1150
}

1151 1152 1153 1154
#endif

#ifdef CONFIG_COMPAT

1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178
COMPAT_SYSCALL_DEFINE2(clock_adjtime, clockid_t, which_clock,
		       struct compat_timex __user *, utp)
{
	const struct k_clock *kc = clockid_to_kclock(which_clock);
	struct timex ktx;
	int err;

	if (!kc)
		return -EINVAL;
	if (!kc->clock_adj)
		return -EOPNOTSUPP;

	err = compat_get_timex(&ktx, utp);
	if (err)
		return err;

	err = kc->clock_adj(which_clock, &ktx);

	if (err >= 0)
		err = compat_put_timex(utp, &ktx);

	return err;
}

1179 1180 1181 1182
#endif

#ifdef CONFIG_COMPAT_32BIT_TIME

1183 1184
COMPAT_SYSCALL_DEFINE2(clock_getres, clockid_t, which_clock,
		       struct compat_timespec __user *, tp)
L
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{
1186
	const struct k_clock *kc = clockid_to_kclock(which_clock);
1187 1188
	struct timespec64 ts;
	int err;
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1189

1190
	if (!kc)
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		return -EINVAL;

1193 1194 1195
	err = kc->clock_getres(which_clock, &ts);
	if (!err && tp && compat_put_timespec64(&ts, tp))
		return -EFAULT;
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1196

1197
	return err;
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}
1199

1200
#endif
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1201

1202 1203 1204 1205
/*
 * nanosleep for monotonic and realtime clocks
 */
static int common_nsleep(const clockid_t which_clock, int flags,
1206
			 const struct timespec64 *rqtp)
1207
{
1208
	return hrtimer_nanosleep(rqtp, flags & TIMER_ABSTIME ?
1209 1210
				 HRTIMER_MODE_ABS : HRTIMER_MODE_REL,
				 which_clock);
1211
}
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1213
SYSCALL_DEFINE4(clock_nanosleep, const clockid_t, which_clock, int, flags,
1214 1215
		const struct __kernel_timespec __user *, rqtp,
		struct __kernel_timespec __user *, rmtp)
L
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{
1217
	const struct k_clock *kc = clockid_to_kclock(which_clock);
1218
	struct timespec64 t;
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1219

1220
	if (!kc)
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1221
		return -EINVAL;
1222 1223
	if (!kc->nsleep)
		return -ENANOSLEEP_NOTSUP;
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1224

1225
	if (get_timespec64(&t, rqtp))
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1226 1227
		return -EFAULT;

1228
	if (!timespec64_valid(&t))
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1229
		return -EINVAL;
1230 1231
	if (flags & TIMER_ABSTIME)
		rmtp = NULL;
1232
	current->restart_block.nanosleep.type = rmtp ? TT_NATIVE : TT_NONE;
1233
	current->restart_block.nanosleep.rmtp = rmtp;
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1234

1235
	return kc->nsleep(which_clock, flags, &t);
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1236
}
1237

1238 1239
#ifdef CONFIG_COMPAT_32BIT_TIME

1240 1241 1242
COMPAT_SYSCALL_DEFINE4(clock_nanosleep, clockid_t, which_clock, int, flags,
		       struct compat_timespec __user *, rqtp,
		       struct compat_timespec __user *, rmtp)
1243
{
1244
	const struct k_clock *kc = clockid_to_kclock(which_clock);
1245
	struct timespec64 t;
1246

1247
	if (!kc)
1248
		return -EINVAL;
1249 1250 1251
	if (!kc->nsleep)
		return -ENANOSLEEP_NOTSUP;

1252
	if (compat_get_timespec64(&t, rqtp))
1253
		return -EFAULT;
1254

1255
	if (!timespec64_valid(&t))
1256 1257 1258 1259 1260 1261
		return -EINVAL;
	if (flags & TIMER_ABSTIME)
		rmtp = NULL;
	current->restart_block.nanosleep.type = rmtp ? TT_COMPAT : TT_NONE;
	current->restart_block.nanosleep.compat_rmtp = rmtp;

1262
	return kc->nsleep(which_clock, flags, &t);
1263
}
1264

1265
#endif
1266 1267

static const struct k_clock clock_realtime = {
1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281
	.clock_getres		= posix_get_hrtimer_res,
	.clock_get		= posix_clock_realtime_get,
	.clock_set		= posix_clock_realtime_set,
	.clock_adj		= posix_clock_realtime_adj,
	.nsleep			= common_nsleep,
	.timer_create		= common_timer_create,
	.timer_set		= common_timer_set,
	.timer_get		= common_timer_get,
	.timer_del		= common_timer_del,
	.timer_rearm		= common_hrtimer_rearm,
	.timer_forward		= common_hrtimer_forward,
	.timer_remaining	= common_hrtimer_remaining,
	.timer_try_to_cancel	= common_hrtimer_try_to_cancel,
	.timer_arm		= common_hrtimer_arm,
1282 1283 1284
};

static const struct k_clock clock_monotonic = {
1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296
	.clock_getres		= posix_get_hrtimer_res,
	.clock_get		= posix_ktime_get_ts,
	.nsleep			= common_nsleep,
	.timer_create		= common_timer_create,
	.timer_set		= common_timer_set,
	.timer_get		= common_timer_get,
	.timer_del		= common_timer_del,
	.timer_rearm		= common_hrtimer_rearm,
	.timer_forward		= common_hrtimer_forward,
	.timer_remaining	= common_hrtimer_remaining,
	.timer_try_to_cancel	= common_hrtimer_try_to_cancel,
	.timer_arm		= common_hrtimer_arm,
1297 1298 1299
};

static const struct k_clock clock_monotonic_raw = {
1300 1301
	.clock_getres		= posix_get_hrtimer_res,
	.clock_get		= posix_get_monotonic_raw,
1302 1303 1304
};

static const struct k_clock clock_realtime_coarse = {
1305 1306
	.clock_getres		= posix_get_coarse_res,
	.clock_get		= posix_get_realtime_coarse,
1307 1308 1309
};

static const struct k_clock clock_monotonic_coarse = {
1310 1311
	.clock_getres		= posix_get_coarse_res,
	.clock_get		= posix_get_monotonic_coarse,
1312 1313 1314
};

static const struct k_clock clock_tai = {
1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326
	.clock_getres		= posix_get_hrtimer_res,
	.clock_get		= posix_get_tai,
	.nsleep			= common_nsleep,
	.timer_create		= common_timer_create,
	.timer_set		= common_timer_set,
	.timer_get		= common_timer_get,
	.timer_del		= common_timer_del,
	.timer_rearm		= common_hrtimer_rearm,
	.timer_forward		= common_hrtimer_forward,
	.timer_remaining	= common_hrtimer_remaining,
	.timer_try_to_cancel	= common_hrtimer_try_to_cancel,
	.timer_arm		= common_hrtimer_arm,
1327 1328
};

1329
static const struct k_clock clock_boottime = {
1330
	.clock_getres		= posix_get_hrtimer_res,
1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341
	.clock_get		= posix_get_boottime,
	.nsleep			= common_nsleep,
	.timer_create		= common_timer_create,
	.timer_set		= common_timer_set,
	.timer_get		= common_timer_get,
	.timer_del		= common_timer_del,
	.timer_rearm		= common_hrtimer_rearm,
	.timer_forward		= common_hrtimer_forward,
	.timer_remaining	= common_hrtimer_remaining,
	.timer_try_to_cancel	= common_hrtimer_try_to_cancel,
	.timer_arm		= common_hrtimer_arm,
1342 1343 1344 1345 1346 1347 1348 1349 1350 1351
};

static const struct k_clock * const posix_clocks[] = {
	[CLOCK_REALTIME]		= &clock_realtime,
	[CLOCK_MONOTONIC]		= &clock_monotonic,
	[CLOCK_PROCESS_CPUTIME_ID]	= &clock_process,
	[CLOCK_THREAD_CPUTIME_ID]	= &clock_thread,
	[CLOCK_MONOTONIC_RAW]		= &clock_monotonic_raw,
	[CLOCK_REALTIME_COARSE]		= &clock_realtime_coarse,
	[CLOCK_MONOTONIC_COARSE]	= &clock_monotonic_coarse,
1352
	[CLOCK_BOOTTIME]		= &clock_boottime,
1353 1354 1355 1356 1357 1358 1359
	[CLOCK_REALTIME_ALARM]		= &alarm_clock,
	[CLOCK_BOOTTIME_ALARM]		= &alarm_clock,
	[CLOCK_TAI]			= &clock_tai,
};

static const struct k_clock *clockid_to_kclock(const clockid_t id)
{
1360 1361 1362
	clockid_t idx = id;

	if (id < 0) {
1363 1364
		return (id & CLOCKFD_MASK) == CLOCKFD ?
			&clock_posix_dynamic : &clock_posix_cpu;
1365
	}
1366

1367
	if (id >= ARRAY_SIZE(posix_clocks))
1368
		return NULL;
1369 1370

	return posix_clocks[array_index_nospec(idx, ARRAY_SIZE(posix_clocks))];
1371
}