2 * linux/kernel/time/clockevents.c
4 * This file contains functions which manage clock event devices.
6 * Copyright(C) 2005-2006, Thomas Gleixner <tglx@linutronix.de>
7 * Copyright(C) 2005-2007, Red Hat, Inc., Ingo Molnar
8 * Copyright(C) 2006-2007, Timesys Corp., Thomas Gleixner
10 * This code is licenced under the GPL version 2. For details see
11 * kernel-base/COPYING.
14 #include <linux/clockchips.h>
15 #include <linux/hrtimer.h>
16 #include <linux/init.h>
17 #include <linux/module.h>
18 #include <linux/smp.h>
19 #include <linux/device.h>
21 #include "tick-internal.h"
23 /* The registered clock event devices */
24 static LIST_HEAD(clockevent_devices
);
25 static LIST_HEAD(clockevents_released
);
26 /* Protection for the above */
27 static DEFINE_RAW_SPINLOCK(clockevents_lock
);
28 /* Protection for unbind operations */
29 static DEFINE_MUTEX(clockevents_mutex
);
32 struct clock_event_device
*ce
;
36 static u64
cev_delta2ns(unsigned long latch
, struct clock_event_device
*evt
,
39 u64 clc
= (u64
) latch
<< evt
->shift
;
42 if (unlikely(!evt
->mult
)) {
46 rnd
= (u64
) evt
->mult
- 1;
49 * Upper bound sanity check. If the backwards conversion is
50 * not equal latch, we know that the above shift overflowed.
52 if ((clc
>> evt
->shift
) != (u64
)latch
)
56 * Scaled math oddities:
58 * For mult <= (1 << shift) we can safely add mult - 1 to
59 * prevent integer rounding loss. So the backwards conversion
60 * from nsec to device ticks will be correct.
62 * For mult > (1 << shift), i.e. device frequency is > 1GHz we
63 * need to be careful. Adding mult - 1 will result in a value
64 * which when converted back to device ticks can be larger
65 * than latch by up to (mult - 1) >> shift. For the min_delta
66 * calculation we still want to apply this in order to stay
67 * above the minimum device ticks limit. For the upper limit
68 * we would end up with a latch value larger than the upper
69 * limit of the device, so we omit the add to stay below the
70 * device upper boundary.
72 * Also omit the add if it would overflow the u64 boundary.
74 if ((~0ULL - clc
> rnd
) &&
75 (!ismax
|| evt
->mult
<= (1ULL << evt
->shift
)))
78 do_div(clc
, evt
->mult
);
80 /* Deltas less than 1usec are pointless noise */
81 return clc
> 1000 ? clc
: 1000;
85 * clockevents_delta2ns - Convert a latch value (device ticks) to nanoseconds
86 * @latch: value to convert
87 * @evt: pointer to clock event device descriptor
89 * Math helper, returns latch value converted to nanoseconds (bound checked)
91 u64
clockevent_delta2ns(unsigned long latch
, struct clock_event_device
*evt
)
93 return cev_delta2ns(latch
, evt
, false);
95 EXPORT_SYMBOL_GPL(clockevent_delta2ns
);
97 static int __clockevents_set_state(struct clock_event_device
*dev
,
98 enum clock_event_state state
)
100 /* Transition with legacy set_mode() callback */
102 /* Legacy callback doesn't support new modes */
103 if (state
> CLOCK_EVT_STATE_ONESHOT
)
106 * 'clock_event_state' and 'clock_event_mode' have 1-to-1
107 * mapping until *_ONESHOT, and so a simple cast will work.
109 dev
->set_mode((enum clock_event_mode
)state
, dev
);
110 dev
->mode
= (enum clock_event_mode
)state
;
114 if (dev
->features
& CLOCK_EVT_FEAT_DUMMY
)
117 /* Transition with new state-specific callbacks */
119 case CLOCK_EVT_STATE_DETACHED
:
120 /* The clockevent device is getting replaced. Shut it down. */
122 case CLOCK_EVT_STATE_SHUTDOWN
:
123 return dev
->set_state_shutdown(dev
);
125 case CLOCK_EVT_STATE_PERIODIC
:
126 /* Core internal bug */
127 if (!(dev
->features
& CLOCK_EVT_FEAT_PERIODIC
))
129 return dev
->set_state_periodic(dev
);
131 case CLOCK_EVT_STATE_ONESHOT
:
132 /* Core internal bug */
133 if (!(dev
->features
& CLOCK_EVT_FEAT_ONESHOT
))
135 return dev
->set_state_oneshot(dev
);
143 * clockevents_set_state - set the operating state of a clock event device
144 * @dev: device to modify
147 * Must be called with interrupts disabled !
149 void clockevents_set_state(struct clock_event_device
*dev
,
150 enum clock_event_state state
)
152 if (dev
->state
!= state
) {
153 if (__clockevents_set_state(dev
, state
))
159 * A nsec2cyc multiplicator of 0 is invalid and we'd crash
160 * on it, so fix it up and emit a warning:
162 if (state
== CLOCK_EVT_STATE_ONESHOT
) {
163 if (unlikely(!dev
->mult
)) {
172 * clockevents_shutdown - shutdown the device and clear next_event
173 * @dev: device to shutdown
175 void clockevents_shutdown(struct clock_event_device
*dev
)
177 clockevents_set_state(dev
, CLOCK_EVT_STATE_SHUTDOWN
);
178 dev
->next_event
.tv64
= KTIME_MAX
;
182 * clockevents_tick_resume - Resume the tick device before using it again
183 * @dev: device to resume
185 int clockevents_tick_resume(struct clock_event_device
*dev
)
190 dev
->set_mode(CLOCK_EVT_MODE_RESUME
, dev
);
191 dev
->mode
= CLOCK_EVT_MODE_RESUME
;
192 } else if (dev
->tick_resume
) {
193 ret
= dev
->tick_resume(dev
);
199 #ifdef CONFIG_GENERIC_CLOCKEVENTS_MIN_ADJUST
201 /* Limit min_delta to a jiffie */
202 #define MIN_DELTA_LIMIT (NSEC_PER_SEC / HZ)
205 * clockevents_increase_min_delta - raise minimum delta of a clock event device
206 * @dev: device to increase the minimum delta
208 * Returns 0 on success, -ETIME when the minimum delta reached the limit.
210 static int clockevents_increase_min_delta(struct clock_event_device
*dev
)
212 /* Nothing to do if we already reached the limit */
213 if (dev
->min_delta_ns
>= MIN_DELTA_LIMIT
) {
214 printk_deferred(KERN_WARNING
215 "CE: Reprogramming failure. Giving up\n");
216 dev
->next_event
.tv64
= KTIME_MAX
;
220 if (dev
->min_delta_ns
< 5000)
221 dev
->min_delta_ns
= 5000;
223 dev
->min_delta_ns
+= dev
->min_delta_ns
>> 1;
225 if (dev
->min_delta_ns
> MIN_DELTA_LIMIT
)
226 dev
->min_delta_ns
= MIN_DELTA_LIMIT
;
228 printk_deferred(KERN_WARNING
229 "CE: %s increased min_delta_ns to %llu nsec\n",
230 dev
->name
? dev
->name
: "?",
231 (unsigned long long) dev
->min_delta_ns
);
236 * clockevents_program_min_delta - Set clock event device to the minimum delay.
237 * @dev: device to program
239 * Returns 0 on success, -ETIME when the retry loop failed.
241 static int clockevents_program_min_delta(struct clock_event_device
*dev
)
243 unsigned long long clc
;
248 delta
= dev
->min_delta_ns
;
249 dev
->next_event
= ktime_add_ns(ktime_get(), delta
);
251 if (dev
->state
== CLOCK_EVT_STATE_SHUTDOWN
)
255 clc
= ((unsigned long long) delta
* dev
->mult
) >> dev
->shift
;
256 if (dev
->set_next_event((unsigned long) clc
, dev
) == 0)
261 * We tried 3 times to program the device with the
262 * given min_delta_ns. Try to increase the minimum
263 * delta, if that fails as well get out of here.
265 if (clockevents_increase_min_delta(dev
))
272 #else /* CONFIG_GENERIC_CLOCKEVENTS_MIN_ADJUST */
275 * clockevents_program_min_delta - Set clock event device to the minimum delay.
276 * @dev: device to program
278 * Returns 0 on success, -ETIME when the retry loop failed.
280 static int clockevents_program_min_delta(struct clock_event_device
*dev
)
282 unsigned long long clc
;
285 delta
= dev
->min_delta_ns
;
286 dev
->next_event
= ktime_add_ns(ktime_get(), delta
);
288 if (dev
->state
== CLOCK_EVT_STATE_SHUTDOWN
)
292 clc
= ((unsigned long long) delta
* dev
->mult
) >> dev
->shift
;
293 return dev
->set_next_event((unsigned long) clc
, dev
);
296 #endif /* CONFIG_GENERIC_CLOCKEVENTS_MIN_ADJUST */
299 * clockevents_program_event - Reprogram the clock event device.
300 * @dev: device to program
301 * @expires: absolute expiry time (monotonic clock)
302 * @force: program minimum delay if expires can not be set
304 * Returns 0 on success, -ETIME when the event is in the past.
306 int clockevents_program_event(struct clock_event_device
*dev
, ktime_t expires
,
309 unsigned long long clc
;
313 if (unlikely(expires
.tv64
< 0)) {
318 dev
->next_event
= expires
;
320 if (dev
->state
== CLOCK_EVT_STATE_SHUTDOWN
)
323 /* Shortcut for clockevent devices that can deal with ktime. */
324 if (dev
->features
& CLOCK_EVT_FEAT_KTIME
)
325 return dev
->set_next_ktime(expires
, dev
);
327 delta
= ktime_to_ns(ktime_sub(expires
, ktime_get()));
329 return force
? clockevents_program_min_delta(dev
) : -ETIME
;
331 delta
= min(delta
, (int64_t) dev
->max_delta_ns
);
332 delta
= max(delta
, (int64_t) dev
->min_delta_ns
);
334 clc
= ((unsigned long long) delta
* dev
->mult
) >> dev
->shift
;
335 rc
= dev
->set_next_event((unsigned long) clc
, dev
);
337 return (rc
&& force
) ? clockevents_program_min_delta(dev
) : rc
;
341 * Called after a notify add to make devices available which were
342 * released from the notifier call.
344 static void clockevents_notify_released(void)
346 struct clock_event_device
*dev
;
348 while (!list_empty(&clockevents_released
)) {
349 dev
= list_entry(clockevents_released
.next
,
350 struct clock_event_device
, list
);
351 list_del(&dev
->list
);
352 list_add(&dev
->list
, &clockevent_devices
);
353 tick_check_new_device(dev
);
358 * Try to install a replacement clock event device
360 static int clockevents_replace(struct clock_event_device
*ced
)
362 struct clock_event_device
*dev
, *newdev
= NULL
;
364 list_for_each_entry(dev
, &clockevent_devices
, list
) {
365 if (dev
== ced
|| dev
->state
!= CLOCK_EVT_STATE_DETACHED
)
368 if (!tick_check_replacement(newdev
, dev
))
371 if (!try_module_get(dev
->owner
))
375 module_put(newdev
->owner
);
379 tick_install_replacement(newdev
);
380 list_del_init(&ced
->list
);
382 return newdev
? 0 : -EBUSY
;
386 * Called with clockevents_mutex and clockevents_lock held
388 static int __clockevents_try_unbind(struct clock_event_device
*ced
, int cpu
)
390 /* Fast track. Device is unused */
391 if (ced
->state
== CLOCK_EVT_STATE_DETACHED
) {
392 list_del_init(&ced
->list
);
396 return ced
== per_cpu(tick_cpu_device
, cpu
).evtdev
? -EAGAIN
: -EBUSY
;
400 * SMP function call to unbind a device
402 static void __clockevents_unbind(void *arg
)
404 struct ce_unbind
*cu
= arg
;
407 raw_spin_lock(&clockevents_lock
);
408 res
= __clockevents_try_unbind(cu
->ce
, smp_processor_id());
410 res
= clockevents_replace(cu
->ce
);
412 raw_spin_unlock(&clockevents_lock
);
416 * Issues smp function call to unbind a per cpu device. Called with
417 * clockevents_mutex held.
419 static int clockevents_unbind(struct clock_event_device
*ced
, int cpu
)
421 struct ce_unbind cu
= { .ce
= ced
, .res
= -ENODEV
};
423 smp_call_function_single(cpu
, __clockevents_unbind
, &cu
, 1);
428 * Unbind a clockevents device.
430 int clockevents_unbind_device(struct clock_event_device
*ced
, int cpu
)
434 mutex_lock(&clockevents_mutex
);
435 ret
= clockevents_unbind(ced
, cpu
);
436 mutex_unlock(&clockevents_mutex
);
439 EXPORT_SYMBOL_GPL(clockevents_unbind_device
);
441 /* Sanity check of state transition callbacks */
442 static int clockevents_sanity_check(struct clock_event_device
*dev
)
444 /* Legacy set_mode() callback */
446 /* We shouldn't be supporting new modes now */
447 WARN_ON(dev
->set_state_periodic
|| dev
->set_state_oneshot
||
448 dev
->set_state_shutdown
|| dev
->tick_resume
);
450 BUG_ON(dev
->mode
!= CLOCK_EVT_MODE_UNUSED
);
454 if (dev
->features
& CLOCK_EVT_FEAT_DUMMY
)
457 /* New state-specific callbacks */
458 if (!dev
->set_state_shutdown
)
461 if ((dev
->features
& CLOCK_EVT_FEAT_PERIODIC
) &&
462 !dev
->set_state_periodic
)
465 if ((dev
->features
& CLOCK_EVT_FEAT_ONESHOT
) &&
466 !dev
->set_state_oneshot
)
473 * clockevents_register_device - register a clock event device
474 * @dev: device to register
476 void clockevents_register_device(struct clock_event_device
*dev
)
480 BUG_ON(clockevents_sanity_check(dev
));
482 /* Initialize state to DETACHED */
483 dev
->state
= CLOCK_EVT_STATE_DETACHED
;
486 WARN_ON(num_possible_cpus() > 1);
487 dev
->cpumask
= cpumask_of(smp_processor_id());
490 raw_spin_lock_irqsave(&clockevents_lock
, flags
);
492 list_add(&dev
->list
, &clockevent_devices
);
493 tick_check_new_device(dev
);
494 clockevents_notify_released();
496 raw_spin_unlock_irqrestore(&clockevents_lock
, flags
);
498 EXPORT_SYMBOL_GPL(clockevents_register_device
);
500 void clockevents_config(struct clock_event_device
*dev
, u32 freq
)
504 if (!(dev
->features
& CLOCK_EVT_FEAT_ONESHOT
))
508 * Calculate the maximum number of seconds we can sleep. Limit
509 * to 10 minutes for hardware which can program more than
510 * 32bit ticks so we still get reasonable conversion values.
512 sec
= dev
->max_delta_ticks
;
516 else if (sec
> 600 && dev
->max_delta_ticks
> UINT_MAX
)
519 clockevents_calc_mult_shift(dev
, freq
, sec
);
520 dev
->min_delta_ns
= cev_delta2ns(dev
->min_delta_ticks
, dev
, false);
521 dev
->max_delta_ns
= cev_delta2ns(dev
->max_delta_ticks
, dev
, true);
525 * clockevents_config_and_register - Configure and register a clock event device
526 * @dev: device to register
527 * @freq: The clock frequency
528 * @min_delta: The minimum clock ticks to program in oneshot mode
529 * @max_delta: The maximum clock ticks to program in oneshot mode
531 * min/max_delta can be 0 for devices which do not support oneshot mode.
533 void clockevents_config_and_register(struct clock_event_device
*dev
,
534 u32 freq
, unsigned long min_delta
,
535 unsigned long max_delta
)
537 dev
->min_delta_ticks
= min_delta
;
538 dev
->max_delta_ticks
= max_delta
;
539 clockevents_config(dev
, freq
);
540 clockevents_register_device(dev
);
542 EXPORT_SYMBOL_GPL(clockevents_config_and_register
);
544 int __clockevents_update_freq(struct clock_event_device
*dev
, u32 freq
)
546 clockevents_config(dev
, freq
);
548 if (dev
->state
== CLOCK_EVT_STATE_ONESHOT
)
549 return clockevents_program_event(dev
, dev
->next_event
, false);
551 if (dev
->state
== CLOCK_EVT_STATE_PERIODIC
)
552 return __clockevents_set_state(dev
, CLOCK_EVT_STATE_PERIODIC
);
558 * clockevents_update_freq - Update frequency and reprogram a clock event device.
559 * @dev: device to modify
560 * @freq: new device frequency
562 * Reconfigure and reprogram a clock event device in oneshot
563 * mode. Must be called on the cpu for which the device delivers per
564 * cpu timer events. If called for the broadcast device the core takes
565 * care of serialization.
567 * Returns 0 on success, -ETIME when the event is in the past.
569 int clockevents_update_freq(struct clock_event_device
*dev
, u32 freq
)
574 local_irq_save(flags
);
575 ret
= tick_broadcast_update_freq(dev
, freq
);
577 ret
= __clockevents_update_freq(dev
, freq
);
578 local_irq_restore(flags
);
583 * Noop handler when we shut down an event device
585 void clockevents_handle_noop(struct clock_event_device
*dev
)
590 * clockevents_exchange_device - release and request clock devices
591 * @old: device to release (can be NULL)
592 * @new: device to request (can be NULL)
594 * Called from various tick functions with clockevents_lock held and
595 * interrupts disabled.
597 void clockevents_exchange_device(struct clock_event_device
*old
,
598 struct clock_event_device
*new)
601 * Caller releases a clock event device. We queue it into the
602 * released list and do a notify add later.
605 module_put(old
->owner
);
606 clockevents_set_state(old
, CLOCK_EVT_STATE_DETACHED
);
607 list_del(&old
->list
);
608 list_add(&old
->list
, &clockevents_released
);
612 BUG_ON(new->state
!= CLOCK_EVT_STATE_DETACHED
);
613 clockevents_shutdown(new);
618 * clockevents_suspend - suspend clock devices
620 void clockevents_suspend(void)
622 struct clock_event_device
*dev
;
624 list_for_each_entry_reverse(dev
, &clockevent_devices
, list
)
630 * clockevents_resume - resume clock devices
632 void clockevents_resume(void)
634 struct clock_event_device
*dev
;
636 list_for_each_entry(dev
, &clockevent_devices
, list
)
641 #ifdef CONFIG_HOTPLUG_CPU
643 * tick_cleanup_dead_cpu - Cleanup the tick and clockevents of a dead cpu
645 void tick_cleanup_dead_cpu(int cpu
)
647 struct clock_event_device
*dev
, *tmp
;
650 raw_spin_lock_irqsave(&clockevents_lock
, flags
);
652 tick_shutdown_broadcast_oneshot(cpu
);
653 tick_shutdown_broadcast(cpu
);
656 * Unregister the clock event devices which were
657 * released from the users in the notify chain.
659 list_for_each_entry_safe(dev
, tmp
, &clockevents_released
, list
)
660 list_del(&dev
->list
);
662 * Now check whether the CPU has left unused per cpu devices
664 list_for_each_entry_safe(dev
, tmp
, &clockevent_devices
, list
) {
665 if (cpumask_test_cpu(cpu
, dev
->cpumask
) &&
666 cpumask_weight(dev
->cpumask
) == 1 &&
667 !tick_is_broadcast_device(dev
)) {
668 BUG_ON(dev
->state
!= CLOCK_EVT_STATE_DETACHED
);
669 list_del(&dev
->list
);
672 raw_spin_unlock_irqrestore(&clockevents_lock
, flags
);
677 struct bus_type clockevents_subsys
= {
678 .name
= "clockevents",
679 .dev_name
= "clockevent",
682 static DEFINE_PER_CPU(struct device
, tick_percpu_dev
);
683 static struct tick_device
*tick_get_tick_dev(struct device
*dev
);
685 static ssize_t
sysfs_show_current_tick_dev(struct device
*dev
,
686 struct device_attribute
*attr
,
689 struct tick_device
*td
;
692 raw_spin_lock_irq(&clockevents_lock
);
693 td
= tick_get_tick_dev(dev
);
694 if (td
&& td
->evtdev
)
695 count
= snprintf(buf
, PAGE_SIZE
, "%s\n", td
->evtdev
->name
);
696 raw_spin_unlock_irq(&clockevents_lock
);
699 static DEVICE_ATTR(current_device
, 0444, sysfs_show_current_tick_dev
, NULL
);
701 /* We don't support the abomination of removable broadcast devices */
702 static ssize_t
sysfs_unbind_tick_dev(struct device
*dev
,
703 struct device_attribute
*attr
,
704 const char *buf
, size_t count
)
706 char name
[CS_NAME_LEN
];
707 ssize_t ret
= sysfs_get_uname(buf
, name
, count
);
708 struct clock_event_device
*ce
;
714 mutex_lock(&clockevents_mutex
);
715 raw_spin_lock_irq(&clockevents_lock
);
716 list_for_each_entry(ce
, &clockevent_devices
, list
) {
717 if (!strcmp(ce
->name
, name
)) {
718 ret
= __clockevents_try_unbind(ce
, dev
->id
);
722 raw_spin_unlock_irq(&clockevents_lock
);
724 * We hold clockevents_mutex, so ce can't go away
727 ret
= clockevents_unbind(ce
, dev
->id
);
728 mutex_unlock(&clockevents_mutex
);
729 return ret
? ret
: count
;
731 static DEVICE_ATTR(unbind_device
, 0200, NULL
, sysfs_unbind_tick_dev
);
733 #ifdef CONFIG_GENERIC_CLOCKEVENTS_BROADCAST
734 static struct device tick_bc_dev
= {
735 .init_name
= "broadcast",
737 .bus
= &clockevents_subsys
,
740 static struct tick_device
*tick_get_tick_dev(struct device
*dev
)
742 return dev
== &tick_bc_dev
? tick_get_broadcast_device() :
743 &per_cpu(tick_cpu_device
, dev
->id
);
746 static __init
int tick_broadcast_init_sysfs(void)
748 int err
= device_register(&tick_bc_dev
);
751 err
= device_create_file(&tick_bc_dev
, &dev_attr_current_device
);
755 static struct tick_device
*tick_get_tick_dev(struct device
*dev
)
757 return &per_cpu(tick_cpu_device
, dev
->id
);
759 static inline int tick_broadcast_init_sysfs(void) { return 0; }
762 static int __init
tick_init_sysfs(void)
766 for_each_possible_cpu(cpu
) {
767 struct device
*dev
= &per_cpu(tick_percpu_dev
, cpu
);
771 dev
->bus
= &clockevents_subsys
;
772 err
= device_register(dev
);
774 err
= device_create_file(dev
, &dev_attr_current_device
);
776 err
= device_create_file(dev
, &dev_attr_unbind_device
);
780 return tick_broadcast_init_sysfs();
783 static int __init
clockevents_init_sysfs(void)
785 int err
= subsys_system_register(&clockevents_subsys
, NULL
);
788 err
= tick_init_sysfs();
791 device_initcall(clockevents_init_sysfs
);