1 // SPDX-License-Identifier: GPL-2.0
5 * Copyright (C) 2007 Davide Libenzi <davidel@xmailserver.org>
8 * Thanks to Thomas Gleixner for code reviews and useful comments.
12 #include <linux/alarmtimer.h>
13 #include <linux/file.h>
14 #include <linux/poll.h>
15 #include <linux/init.h>
17 #include <linux/sched.h>
18 #include <linux/kernel.h>
19 #include <linux/slab.h>
20 #include <linux/list.h>
21 #include <linux/spinlock.h>
22 #include <linux/time.h>
23 #include <linux/hrtimer.h>
24 #include <linux/anon_inodes.h>
25 #include <linux/timerfd.h>
26 #include <linux/syscalls.h>
27 #include <linux/compat.h>
28 #include <linux/rcupdate.h>
29 #include <linux/time_namespace.h>
38 wait_queue_head_t wqh
;
41 short unsigned expired
;
42 short unsigned settime_flags
; /* to show in fdinfo */
44 struct list_head clist
;
45 spinlock_t cancel_lock
;
49 static LIST_HEAD(cancel_list
);
50 static DEFINE_SPINLOCK(cancel_lock
);
52 static inline bool isalarm(struct timerfd_ctx
*ctx
)
54 return ctx
->clockid
== CLOCK_REALTIME_ALARM
||
55 ctx
->clockid
== CLOCK_BOOTTIME_ALARM
;
59 * This gets called when the timer event triggers. We set the "expired"
60 * flag, but we do not re-arm the timer (in case it's necessary,
61 * tintv != 0) until the timer is accessed.
63 static void timerfd_triggered(struct timerfd_ctx
*ctx
)
67 spin_lock_irqsave(&ctx
->wqh
.lock
, flags
);
70 wake_up_locked_poll(&ctx
->wqh
, EPOLLIN
);
71 spin_unlock_irqrestore(&ctx
->wqh
.lock
, flags
);
74 static enum hrtimer_restart
timerfd_tmrproc(struct hrtimer
*htmr
)
76 struct timerfd_ctx
*ctx
= container_of(htmr
, struct timerfd_ctx
,
78 timerfd_triggered(ctx
);
79 return HRTIMER_NORESTART
;
82 static enum alarmtimer_restart
timerfd_alarmproc(struct alarm
*alarm
,
85 struct timerfd_ctx
*ctx
= container_of(alarm
, struct timerfd_ctx
,
87 timerfd_triggered(ctx
);
88 return ALARMTIMER_NORESTART
;
92 * Called when the clock was set to cancel the timers in the cancel
93 * list. This will wake up processes waiting on these timers. The
94 * wake-up requires ctx->ticks to be non zero, therefore we increment
95 * it before calling wake_up_locked().
97 void timerfd_clock_was_set(void)
99 ktime_t moffs
= ktime_mono_to_real(0);
100 struct timerfd_ctx
*ctx
;
104 list_for_each_entry_rcu(ctx
, &cancel_list
, clist
) {
105 if (!ctx
->might_cancel
)
107 spin_lock_irqsave(&ctx
->wqh
.lock
, flags
);
108 if (ctx
->moffs
!= moffs
) {
109 ctx
->moffs
= KTIME_MAX
;
111 wake_up_locked_poll(&ctx
->wqh
, EPOLLIN
);
113 spin_unlock_irqrestore(&ctx
->wqh
.lock
, flags
);
118 static void __timerfd_remove_cancel(struct timerfd_ctx
*ctx
)
120 if (ctx
->might_cancel
) {
121 ctx
->might_cancel
= false;
122 spin_lock(&cancel_lock
);
123 list_del_rcu(&ctx
->clist
);
124 spin_unlock(&cancel_lock
);
128 static void timerfd_remove_cancel(struct timerfd_ctx
*ctx
)
130 spin_lock(&ctx
->cancel_lock
);
131 __timerfd_remove_cancel(ctx
);
132 spin_unlock(&ctx
->cancel_lock
);
135 static bool timerfd_canceled(struct timerfd_ctx
*ctx
)
137 if (!ctx
->might_cancel
|| ctx
->moffs
!= KTIME_MAX
)
139 ctx
->moffs
= ktime_mono_to_real(0);
143 static void timerfd_setup_cancel(struct timerfd_ctx
*ctx
, int flags
)
145 spin_lock(&ctx
->cancel_lock
);
146 if ((ctx
->clockid
== CLOCK_REALTIME
||
147 ctx
->clockid
== CLOCK_REALTIME_ALARM
) &&
148 (flags
& TFD_TIMER_ABSTIME
) && (flags
& TFD_TIMER_CANCEL_ON_SET
)) {
149 if (!ctx
->might_cancel
) {
150 ctx
->might_cancel
= true;
151 spin_lock(&cancel_lock
);
152 list_add_rcu(&ctx
->clist
, &cancel_list
);
153 spin_unlock(&cancel_lock
);
156 __timerfd_remove_cancel(ctx
);
158 spin_unlock(&ctx
->cancel_lock
);
161 static ktime_t
timerfd_get_remaining(struct timerfd_ctx
*ctx
)
166 remaining
= alarm_expires_remaining(&ctx
->t
.alarm
);
168 remaining
= hrtimer_expires_remaining_adjusted(&ctx
->t
.tmr
);
170 return remaining
< 0 ? 0: remaining
;
173 static int timerfd_setup(struct timerfd_ctx
*ctx
, int flags
,
174 const struct itimerspec64
*ktmr
)
176 enum hrtimer_mode htmode
;
178 int clockid
= ctx
->clockid
;
180 htmode
= (flags
& TFD_TIMER_ABSTIME
) ?
181 HRTIMER_MODE_ABS
: HRTIMER_MODE_REL
;
183 texp
= timespec64_to_ktime(ktmr
->it_value
);
186 ctx
->tintv
= timespec64_to_ktime(ktmr
->it_interval
);
189 alarm_init(&ctx
->t
.alarm
,
190 ctx
->clockid
== CLOCK_REALTIME_ALARM
?
191 ALARM_REALTIME
: ALARM_BOOTTIME
,
194 hrtimer_init(&ctx
->t
.tmr
, clockid
, htmode
);
195 hrtimer_set_expires(&ctx
->t
.tmr
, texp
);
196 ctx
->t
.tmr
.function
= timerfd_tmrproc
;
200 if (flags
& TFD_TIMER_ABSTIME
)
201 texp
= timens_ktime_to_host(clockid
, texp
);
203 if (flags
& TFD_TIMER_ABSTIME
)
204 alarm_start(&ctx
->t
.alarm
, texp
);
206 alarm_start_relative(&ctx
->t
.alarm
, texp
);
208 hrtimer_start(&ctx
->t
.tmr
, texp
, htmode
);
211 if (timerfd_canceled(ctx
))
215 ctx
->settime_flags
= flags
& TFD_SETTIME_FLAGS
;
219 static int timerfd_release(struct inode
*inode
, struct file
*file
)
221 struct timerfd_ctx
*ctx
= file
->private_data
;
223 timerfd_remove_cancel(ctx
);
226 alarm_cancel(&ctx
->t
.alarm
);
228 hrtimer_cancel(&ctx
->t
.tmr
);
233 static __poll_t
timerfd_poll(struct file
*file
, poll_table
*wait
)
235 struct timerfd_ctx
*ctx
= file
->private_data
;
239 poll_wait(file
, &ctx
->wqh
, wait
);
241 spin_lock_irqsave(&ctx
->wqh
.lock
, flags
);
244 spin_unlock_irqrestore(&ctx
->wqh
.lock
, flags
);
249 static ssize_t
timerfd_read(struct file
*file
, char __user
*buf
, size_t count
,
252 struct timerfd_ctx
*ctx
= file
->private_data
;
256 if (count
< sizeof(ticks
))
258 spin_lock_irq(&ctx
->wqh
.lock
);
259 if (file
->f_flags
& O_NONBLOCK
)
262 res
= wait_event_interruptible_locked_irq(ctx
->wqh
, ctx
->ticks
);
265 * If clock has changed, we do not care about the
266 * ticks and we do not rearm the timer. Userspace must
269 if (timerfd_canceled(ctx
)) {
278 if (ctx
->expired
&& ctx
->tintv
) {
280 * If tintv != 0, this is a periodic timer that
281 * needs to be re-armed. We avoid doing it in the timer
282 * callback to avoid DoS attacks specifying a very
283 * short timer period.
286 ticks
+= alarm_forward_now(
287 &ctx
->t
.alarm
, ctx
->tintv
) - 1;
288 alarm_restart(&ctx
->t
.alarm
);
290 ticks
+= hrtimer_forward_now(&ctx
->t
.tmr
,
292 hrtimer_restart(&ctx
->t
.tmr
);
298 spin_unlock_irq(&ctx
->wqh
.lock
);
300 res
= put_user(ticks
, (u64 __user
*) buf
) ? -EFAULT
: sizeof(ticks
);
304 #ifdef CONFIG_PROC_FS
305 static void timerfd_show(struct seq_file
*m
, struct file
*file
)
307 struct timerfd_ctx
*ctx
= file
->private_data
;
308 struct timespec64 value
, interval
;
310 spin_lock_irq(&ctx
->wqh
.lock
);
311 value
= ktime_to_timespec64(timerfd_get_remaining(ctx
));
312 interval
= ktime_to_timespec64(ctx
->tintv
);
313 spin_unlock_irq(&ctx
->wqh
.lock
);
318 "settime flags: 0%o\n"
319 "it_value: (%llu, %llu)\n"
320 "it_interval: (%llu, %llu)\n",
322 (unsigned long long)ctx
->ticks
,
324 (unsigned long long)value
.tv_sec
,
325 (unsigned long long)value
.tv_nsec
,
326 (unsigned long long)interval
.tv_sec
,
327 (unsigned long long)interval
.tv_nsec
);
330 #define timerfd_show NULL
333 #ifdef CONFIG_CHECKPOINT_RESTORE
334 static long timerfd_ioctl(struct file
*file
, unsigned int cmd
, unsigned long arg
)
336 struct timerfd_ctx
*ctx
= file
->private_data
;
340 case TFD_IOC_SET_TICKS
: {
343 if (copy_from_user(&ticks
, (u64 __user
*)arg
, sizeof(ticks
)))
348 spin_lock_irq(&ctx
->wqh
.lock
);
349 if (!timerfd_canceled(ctx
)) {
351 wake_up_locked_poll(&ctx
->wqh
, EPOLLIN
);
354 spin_unlock_irq(&ctx
->wqh
.lock
);
365 #define timerfd_ioctl NULL
368 static const struct file_operations timerfd_fops
= {
369 .release
= timerfd_release
,
370 .poll
= timerfd_poll
,
371 .read
= timerfd_read
,
372 .llseek
= noop_llseek
,
373 .show_fdinfo
= timerfd_show
,
374 .unlocked_ioctl
= timerfd_ioctl
,
377 static int timerfd_fget(int fd
, struct fd
*p
)
379 struct fd f
= fdget(fd
);
382 if (f
.file
->f_op
!= &timerfd_fops
) {
390 SYSCALL_DEFINE2(timerfd_create
, int, clockid
, int, flags
)
393 struct timerfd_ctx
*ctx
;
395 /* Check the TFD_* constants for consistency. */
396 BUILD_BUG_ON(TFD_CLOEXEC
!= O_CLOEXEC
);
397 BUILD_BUG_ON(TFD_NONBLOCK
!= O_NONBLOCK
);
399 if ((flags
& ~TFD_CREATE_FLAGS
) ||
400 (clockid
!= CLOCK_MONOTONIC
&&
401 clockid
!= CLOCK_REALTIME
&&
402 clockid
!= CLOCK_REALTIME_ALARM
&&
403 clockid
!= CLOCK_BOOTTIME
&&
404 clockid
!= CLOCK_BOOTTIME_ALARM
))
407 if ((clockid
== CLOCK_REALTIME_ALARM
||
408 clockid
== CLOCK_BOOTTIME_ALARM
) &&
409 !capable(CAP_WAKE_ALARM
))
412 ctx
= kzalloc(sizeof(*ctx
), GFP_KERNEL
);
416 init_waitqueue_head(&ctx
->wqh
);
417 spin_lock_init(&ctx
->cancel_lock
);
418 ctx
->clockid
= clockid
;
421 alarm_init(&ctx
->t
.alarm
,
422 ctx
->clockid
== CLOCK_REALTIME_ALARM
?
423 ALARM_REALTIME
: ALARM_BOOTTIME
,
426 hrtimer_init(&ctx
->t
.tmr
, clockid
, HRTIMER_MODE_ABS
);
428 ctx
->moffs
= ktime_mono_to_real(0);
430 ufd
= anon_inode_getfd("[timerfd]", &timerfd_fops
, ctx
,
431 O_RDWR
| (flags
& TFD_SHARED_FCNTL_FLAGS
));
438 static int do_timerfd_settime(int ufd
, int flags
,
439 const struct itimerspec64
*new,
440 struct itimerspec64
*old
)
443 struct timerfd_ctx
*ctx
;
446 if ((flags
& ~TFD_SETTIME_FLAGS
) ||
447 !itimerspec64_valid(new))
450 ret
= timerfd_fget(ufd
, &f
);
453 ctx
= f
.file
->private_data
;
455 if (isalarm(ctx
) && !capable(CAP_WAKE_ALARM
)) {
460 timerfd_setup_cancel(ctx
, flags
);
463 * We need to stop the existing timer before reprogramming
464 * it to the new values.
467 spin_lock_irq(&ctx
->wqh
.lock
);
470 if (alarm_try_to_cancel(&ctx
->t
.alarm
) >= 0)
473 if (hrtimer_try_to_cancel(&ctx
->t
.tmr
) >= 0)
476 spin_unlock_irq(&ctx
->wqh
.lock
);
479 hrtimer_cancel_wait_running(&ctx
->t
.alarm
.timer
);
481 hrtimer_cancel_wait_running(&ctx
->t
.tmr
);
485 * If the timer is expired and it's periodic, we need to advance it
486 * because the caller may want to know the previous expiration time.
487 * We do not update "ticks" and "expired" since the timer will be
488 * re-programmed again in the following timerfd_setup() call.
490 if (ctx
->expired
&& ctx
->tintv
) {
492 alarm_forward_now(&ctx
->t
.alarm
, ctx
->tintv
);
494 hrtimer_forward_now(&ctx
->t
.tmr
, ctx
->tintv
);
497 old
->it_value
= ktime_to_timespec64(timerfd_get_remaining(ctx
));
498 old
->it_interval
= ktime_to_timespec64(ctx
->tintv
);
501 * Re-program the timer to the new value ...
503 ret
= timerfd_setup(ctx
, flags
, new);
505 spin_unlock_irq(&ctx
->wqh
.lock
);
510 static int do_timerfd_gettime(int ufd
, struct itimerspec64
*t
)
513 struct timerfd_ctx
*ctx
;
514 int ret
= timerfd_fget(ufd
, &f
);
517 ctx
= f
.file
->private_data
;
519 spin_lock_irq(&ctx
->wqh
.lock
);
520 if (ctx
->expired
&& ctx
->tintv
) {
526 &ctx
->t
.alarm
, ctx
->tintv
) - 1;
527 alarm_restart(&ctx
->t
.alarm
);
530 hrtimer_forward_now(&ctx
->t
.tmr
, ctx
->tintv
)
532 hrtimer_restart(&ctx
->t
.tmr
);
535 t
->it_value
= ktime_to_timespec64(timerfd_get_remaining(ctx
));
536 t
->it_interval
= ktime_to_timespec64(ctx
->tintv
);
537 spin_unlock_irq(&ctx
->wqh
.lock
);
542 SYSCALL_DEFINE4(timerfd_settime
, int, ufd
, int, flags
,
543 const struct __kernel_itimerspec __user
*, utmr
,
544 struct __kernel_itimerspec __user
*, otmr
)
546 struct itimerspec64
new, old
;
549 if (get_itimerspec64(&new, utmr
))
551 ret
= do_timerfd_settime(ufd
, flags
, &new, &old
);
554 if (otmr
&& put_itimerspec64(&old
, otmr
))
560 SYSCALL_DEFINE2(timerfd_gettime
, int, ufd
, struct __kernel_itimerspec __user
*, otmr
)
562 struct itimerspec64 kotmr
;
563 int ret
= do_timerfd_gettime(ufd
, &kotmr
);
566 return put_itimerspec64(&kotmr
, otmr
) ? -EFAULT
: 0;
569 #ifdef CONFIG_COMPAT_32BIT_TIME
570 SYSCALL_DEFINE4(timerfd_settime32
, int, ufd
, int, flags
,
571 const struct old_itimerspec32 __user
*, utmr
,
572 struct old_itimerspec32 __user
*, otmr
)
574 struct itimerspec64
new, old
;
577 if (get_old_itimerspec32(&new, utmr
))
579 ret
= do_timerfd_settime(ufd
, flags
, &new, &old
);
582 if (otmr
&& put_old_itimerspec32(&old
, otmr
))
587 SYSCALL_DEFINE2(timerfd_gettime32
, int, ufd
,
588 struct old_itimerspec32 __user
*, otmr
)
590 struct itimerspec64 kotmr
;
591 int ret
= do_timerfd_gettime(ufd
, &kotmr
);
594 return put_old_itimerspec32(&kotmr
, otmr
) ? -EFAULT
: 0;