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1/*
2 * linux/kernel/hrtimer.c
3 *
3c8aa39d 4 * Copyright(C) 2005-2006, Thomas Gleixner <tglx@linutronix.de>
79bf2bb3 5 * Copyright(C) 2005-2007, Red Hat, Inc., Ingo Molnar
54cdfdb4 6 * Copyright(C) 2006-2007 Timesys Corp., Thomas Gleixner
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TG
7 *
8 * High-resolution kernel timers
9 *
10 * In contrast to the low-resolution timeout API implemented in
11 * kernel/timer.c, hrtimers provide finer resolution and accuracy
12 * depending on system configuration and capabilities.
13 *
14 * These timers are currently used for:
15 * - itimers
16 * - POSIX timers
17 * - nanosleep
18 * - precise in-kernel timing
19 *
20 * Started by: Thomas Gleixner and Ingo Molnar
21 *
22 * Credits:
23 * based on kernel/timer.c
24 *
66188fae
TG
25 * Help, testing, suggestions, bugfixes, improvements were
26 * provided by:
27 *
28 * George Anzinger, Andrew Morton, Steven Rostedt, Roman Zippel
29 * et. al.
30 *
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31 * For licencing details see kernel-base/COPYING
32 */
33
34#include <linux/cpu.h>
9984de1a 35#include <linux/export.h>
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36#include <linux/percpu.h>
37#include <linux/hrtimer.h>
38#include <linux/notifier.h>
39#include <linux/syscalls.h>
54cdfdb4 40#include <linux/kallsyms.h>
c0a31329 41#include <linux/interrupt.h>
79bf2bb3 42#include <linux/tick.h>
54cdfdb4
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43#include <linux/seq_file.h>
44#include <linux/err.h>
237fc6e7 45#include <linux/debugobjects.h>
eea08f32
AB
46#include <linux/sched.h>
47#include <linux/timer.h>
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48
49#include <asm/uaccess.h>
50
c6a2a177
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51#include <trace/events/timer.h>
52
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53/*
54 * The timer bases:
7978672c 55 *
e06383db
JS
56 * There are more clockids then hrtimer bases. Thus, we index
57 * into the timer bases by the hrtimer_base_type enum. When trying
58 * to reach a base using a clockid, hrtimer_clockid_to_base()
59 * is used to convert from clockid to the proper hrtimer_base_type.
c0a31329 60 */
54cdfdb4 61DEFINE_PER_CPU(struct hrtimer_cpu_base, hrtimer_bases) =
c0a31329 62{
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63
64 .clock_base =
c0a31329 65 {
3c8aa39d 66 {
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67 .index = HRTIMER_BASE_MONOTONIC,
68 .clockid = CLOCK_MONOTONIC,
3c8aa39d 69 .get_time = &ktime_get,
54cdfdb4 70 .resolution = KTIME_LOW_RES,
3c8aa39d 71 },
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72 {
73 .index = HRTIMER_BASE_REALTIME,
74 .clockid = CLOCK_REALTIME,
75 .get_time = &ktime_get_real,
76 .resolution = KTIME_LOW_RES,
77 },
70a08cca 78 {
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79 .index = HRTIMER_BASE_BOOTTIME,
80 .clockid = CLOCK_BOOTTIME,
70a08cca
JS
81 .get_time = &ktime_get_boottime,
82 .resolution = KTIME_LOW_RES,
83 },
3c8aa39d 84 }
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85};
86
942c3c5c 87static const int hrtimer_clock_to_base_table[MAX_CLOCKS] = {
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88 [CLOCK_REALTIME] = HRTIMER_BASE_REALTIME,
89 [CLOCK_MONOTONIC] = HRTIMER_BASE_MONOTONIC,
90 [CLOCK_BOOTTIME] = HRTIMER_BASE_BOOTTIME,
91};
e06383db
JS
92
93static inline int hrtimer_clockid_to_base(clockid_t clock_id)
94{
95 return hrtimer_clock_to_base_table[clock_id];
96}
97
98
92127c7a
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99/*
100 * Get the coarse grained time at the softirq based on xtime and
101 * wall_to_monotonic.
102 */
3c8aa39d 103static void hrtimer_get_softirq_time(struct hrtimer_cpu_base *base)
92127c7a 104{
70a08cca 105 ktime_t xtim, mono, boot;
314ac371 106 struct timespec xts, tom, slp;
92127c7a 107
314ac371 108 get_xtime_and_monotonic_and_sleep_offset(&xts, &tom, &slp);
92127c7a 109
f4304ab2 110 xtim = timespec_to_ktime(xts);
70a08cca
JS
111 mono = ktime_add(xtim, timespec_to_ktime(tom));
112 boot = ktime_add(mono, timespec_to_ktime(slp));
e06383db 113 base->clock_base[HRTIMER_BASE_REALTIME].softirq_time = xtim;
70a08cca
JS
114 base->clock_base[HRTIMER_BASE_MONOTONIC].softirq_time = mono;
115 base->clock_base[HRTIMER_BASE_BOOTTIME].softirq_time = boot;
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116}
117
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118/*
119 * Functions and macros which are different for UP/SMP systems are kept in a
120 * single place
121 */
122#ifdef CONFIG_SMP
123
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124/*
125 * We are using hashed locking: holding per_cpu(hrtimer_bases)[n].lock
126 * means that all timers which are tied to this base via timer->base are
127 * locked, and the base itself is locked too.
128 *
129 * So __run_timers/migrate_timers can safely modify all timers which could
130 * be found on the lists/queues.
131 *
132 * When the timer's base is locked, and the timer removed from list, it is
133 * possible to set timer->base = NULL and drop the lock: the timer remains
134 * locked.
135 */
3c8aa39d
TG
136static
137struct hrtimer_clock_base *lock_hrtimer_base(const struct hrtimer *timer,
138 unsigned long *flags)
c0a31329 139{
3c8aa39d 140 struct hrtimer_clock_base *base;
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141
142 for (;;) {
143 base = timer->base;
144 if (likely(base != NULL)) {
ecb49d1a 145 raw_spin_lock_irqsave(&base->cpu_base->lock, *flags);
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146 if (likely(base == timer->base))
147 return base;
148 /* The timer has migrated to another CPU: */
ecb49d1a 149 raw_spin_unlock_irqrestore(&base->cpu_base->lock, *flags);
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150 }
151 cpu_relax();
152 }
153}
154
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155
156/*
157 * Get the preferred target CPU for NOHZ
158 */
159static int hrtimer_get_target(int this_cpu, int pinned)
160{
161#ifdef CONFIG_NO_HZ
83cd4fe2
VP
162 if (!pinned && get_sysctl_timer_migration() && idle_cpu(this_cpu))
163 return get_nohz_timer_target();
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164#endif
165 return this_cpu;
166}
167
168/*
169 * With HIGHRES=y we do not migrate the timer when it is expiring
170 * before the next event on the target cpu because we cannot reprogram
171 * the target cpu hardware and we would cause it to fire late.
172 *
173 * Called with cpu_base->lock of target cpu held.
174 */
175static int
176hrtimer_check_target(struct hrtimer *timer, struct hrtimer_clock_base *new_base)
177{
178#ifdef CONFIG_HIGH_RES_TIMERS
179 ktime_t expires;
180
181 if (!new_base->cpu_base->hres_active)
182 return 0;
183
184 expires = ktime_sub(hrtimer_get_expires(timer), new_base->offset);
185 return expires.tv64 <= new_base->cpu_base->expires_next.tv64;
186#else
187 return 0;
188#endif
189}
190
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191/*
192 * Switch the timer base to the current CPU when possible.
193 */
3c8aa39d 194static inline struct hrtimer_clock_base *
597d0275
AB
195switch_hrtimer_base(struct hrtimer *timer, struct hrtimer_clock_base *base,
196 int pinned)
c0a31329 197{
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198 struct hrtimer_clock_base *new_base;
199 struct hrtimer_cpu_base *new_cpu_base;
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200 int this_cpu = smp_processor_id();
201 int cpu = hrtimer_get_target(this_cpu, pinned);
ab8177bc 202 int basenum = base->index;
c0a31329 203
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AB
204again:
205 new_cpu_base = &per_cpu(hrtimer_bases, cpu);
e06383db 206 new_base = &new_cpu_base->clock_base[basenum];
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207
208 if (base != new_base) {
209 /*
6ff7041d 210 * We are trying to move timer to new_base.
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211 * However we can't change timer's base while it is running,
212 * so we keep it on the same CPU. No hassle vs. reprogramming
213 * the event source in the high resolution case. The softirq
214 * code will take care of this when the timer function has
215 * completed. There is no conflict as we hold the lock until
216 * the timer is enqueued.
217 */
54cdfdb4 218 if (unlikely(hrtimer_callback_running(timer)))
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219 return base;
220
221 /* See the comment in lock_timer_base() */
222 timer->base = NULL;
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223 raw_spin_unlock(&base->cpu_base->lock);
224 raw_spin_lock(&new_base->cpu_base->lock);
eea08f32 225
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226 if (cpu != this_cpu && hrtimer_check_target(timer, new_base)) {
227 cpu = this_cpu;
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228 raw_spin_unlock(&new_base->cpu_base->lock);
229 raw_spin_lock(&base->cpu_base->lock);
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230 timer->base = base;
231 goto again;
eea08f32 232 }
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233 timer->base = new_base;
234 }
235 return new_base;
236}
237
238#else /* CONFIG_SMP */
239
3c8aa39d 240static inline struct hrtimer_clock_base *
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241lock_hrtimer_base(const struct hrtimer *timer, unsigned long *flags)
242{
3c8aa39d 243 struct hrtimer_clock_base *base = timer->base;
c0a31329 244
ecb49d1a 245 raw_spin_lock_irqsave(&base->cpu_base->lock, *flags);
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246
247 return base;
248}
249
eea08f32 250# define switch_hrtimer_base(t, b, p) (b)
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251
252#endif /* !CONFIG_SMP */
253
254/*
255 * Functions for the union type storage format of ktime_t which are
256 * too large for inlining:
257 */
258#if BITS_PER_LONG < 64
259# ifndef CONFIG_KTIME_SCALAR
260/**
261 * ktime_add_ns - Add a scalar nanoseconds value to a ktime_t variable
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262 * @kt: addend
263 * @nsec: the scalar nsec value to add
264 *
265 * Returns the sum of kt and nsec in ktime_t format
266 */
267ktime_t ktime_add_ns(const ktime_t kt, u64 nsec)
268{
269 ktime_t tmp;
270
271 if (likely(nsec < NSEC_PER_SEC)) {
272 tmp.tv64 = nsec;
273 } else {
274 unsigned long rem = do_div(nsec, NSEC_PER_SEC);
275
276 tmp = ktime_set((long)nsec, rem);
277 }
278
279 return ktime_add(kt, tmp);
280}
b8b8fd2d
DH
281
282EXPORT_SYMBOL_GPL(ktime_add_ns);
a272378d
ACM
283
284/**
285 * ktime_sub_ns - Subtract a scalar nanoseconds value from a ktime_t variable
286 * @kt: minuend
287 * @nsec: the scalar nsec value to subtract
288 *
289 * Returns the subtraction of @nsec from @kt in ktime_t format
290 */
291ktime_t ktime_sub_ns(const ktime_t kt, u64 nsec)
292{
293 ktime_t tmp;
294
295 if (likely(nsec < NSEC_PER_SEC)) {
296 tmp.tv64 = nsec;
297 } else {
298 unsigned long rem = do_div(nsec, NSEC_PER_SEC);
299
300 tmp = ktime_set((long)nsec, rem);
301 }
302
303 return ktime_sub(kt, tmp);
304}
305
306EXPORT_SYMBOL_GPL(ktime_sub_ns);
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307# endif /* !CONFIG_KTIME_SCALAR */
308
309/*
310 * Divide a ktime value by a nanosecond value
311 */
4d672e7a 312u64 ktime_divns(const ktime_t kt, s64 div)
c0a31329 313{
900cfa46 314 u64 dclc;
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315 int sft = 0;
316
900cfa46 317 dclc = ktime_to_ns(kt);
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318 /* Make sure the divisor is less than 2^32: */
319 while (div >> 32) {
320 sft++;
321 div >>= 1;
322 }
323 dclc >>= sft;
324 do_div(dclc, (unsigned long) div);
325
4d672e7a 326 return dclc;
c0a31329 327}
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328#endif /* BITS_PER_LONG >= 64 */
329
5a7780e7
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330/*
331 * Add two ktime values and do a safety check for overflow:
332 */
333ktime_t ktime_add_safe(const ktime_t lhs, const ktime_t rhs)
334{
335 ktime_t res = ktime_add(lhs, rhs);
336
337 /*
338 * We use KTIME_SEC_MAX here, the maximum timeout which we can
339 * return to user space in a timespec:
340 */
341 if (res.tv64 < 0 || res.tv64 < lhs.tv64 || res.tv64 < rhs.tv64)
342 res = ktime_set(KTIME_SEC_MAX, 0);
343
344 return res;
345}
346
8daa21e6
AB
347EXPORT_SYMBOL_GPL(ktime_add_safe);
348
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349#ifdef CONFIG_DEBUG_OBJECTS_TIMERS
350
351static struct debug_obj_descr hrtimer_debug_descr;
352
99777288
SG
353static void *hrtimer_debug_hint(void *addr)
354{
355 return ((struct hrtimer *) addr)->function;
356}
357
237fc6e7
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358/*
359 * fixup_init is called when:
360 * - an active object is initialized
361 */
362static int hrtimer_fixup_init(void *addr, enum debug_obj_state state)
363{
364 struct hrtimer *timer = addr;
365
366 switch (state) {
367 case ODEBUG_STATE_ACTIVE:
368 hrtimer_cancel(timer);
369 debug_object_init(timer, &hrtimer_debug_descr);
370 return 1;
371 default:
372 return 0;
373 }
374}
375
376/*
377 * fixup_activate is called when:
378 * - an active object is activated
379 * - an unknown object is activated (might be a statically initialized object)
380 */
381static int hrtimer_fixup_activate(void *addr, enum debug_obj_state state)
382{
383 switch (state) {
384
385 case ODEBUG_STATE_NOTAVAILABLE:
386 WARN_ON_ONCE(1);
387 return 0;
388
389 case ODEBUG_STATE_ACTIVE:
390 WARN_ON(1);
391
392 default:
393 return 0;
394 }
395}
396
397/*
398 * fixup_free is called when:
399 * - an active object is freed
400 */
401static int hrtimer_fixup_free(void *addr, enum debug_obj_state state)
402{
403 struct hrtimer *timer = addr;
404
405 switch (state) {
406 case ODEBUG_STATE_ACTIVE:
407 hrtimer_cancel(timer);
408 debug_object_free(timer, &hrtimer_debug_descr);
409 return 1;
410 default:
411 return 0;
412 }
413}
414
415static struct debug_obj_descr hrtimer_debug_descr = {
416 .name = "hrtimer",
99777288 417 .debug_hint = hrtimer_debug_hint,
237fc6e7
TG
418 .fixup_init = hrtimer_fixup_init,
419 .fixup_activate = hrtimer_fixup_activate,
420 .fixup_free = hrtimer_fixup_free,
421};
422
423static inline void debug_hrtimer_init(struct hrtimer *timer)
424{
425 debug_object_init(timer, &hrtimer_debug_descr);
426}
427
428static inline void debug_hrtimer_activate(struct hrtimer *timer)
429{
430 debug_object_activate(timer, &hrtimer_debug_descr);
431}
432
433static inline void debug_hrtimer_deactivate(struct hrtimer *timer)
434{
435 debug_object_deactivate(timer, &hrtimer_debug_descr);
436}
437
438static inline void debug_hrtimer_free(struct hrtimer *timer)
439{
440 debug_object_free(timer, &hrtimer_debug_descr);
441}
442
443static void __hrtimer_init(struct hrtimer *timer, clockid_t clock_id,
444 enum hrtimer_mode mode);
445
446void hrtimer_init_on_stack(struct hrtimer *timer, clockid_t clock_id,
447 enum hrtimer_mode mode)
448{
449 debug_object_init_on_stack(timer, &hrtimer_debug_descr);
450 __hrtimer_init(timer, clock_id, mode);
451}
2bc481cf 452EXPORT_SYMBOL_GPL(hrtimer_init_on_stack);
237fc6e7
TG
453
454void destroy_hrtimer_on_stack(struct hrtimer *timer)
455{
456 debug_object_free(timer, &hrtimer_debug_descr);
457}
458
459#else
460static inline void debug_hrtimer_init(struct hrtimer *timer) { }
461static inline void debug_hrtimer_activate(struct hrtimer *timer) { }
462static inline void debug_hrtimer_deactivate(struct hrtimer *timer) { }
463#endif
464
c6a2a177
XG
465static inline void
466debug_init(struct hrtimer *timer, clockid_t clockid,
467 enum hrtimer_mode mode)
468{
469 debug_hrtimer_init(timer);
470 trace_hrtimer_init(timer, clockid, mode);
471}
472
473static inline void debug_activate(struct hrtimer *timer)
474{
475 debug_hrtimer_activate(timer);
476 trace_hrtimer_start(timer);
477}
478
479static inline void debug_deactivate(struct hrtimer *timer)
480{
481 debug_hrtimer_deactivate(timer);
482 trace_hrtimer_cancel(timer);
483}
484
54cdfdb4
TG
485/* High resolution timer related functions */
486#ifdef CONFIG_HIGH_RES_TIMERS
487
488/*
489 * High resolution timer enabled ?
490 */
491static int hrtimer_hres_enabled __read_mostly = 1;
492
493/*
494 * Enable / Disable high resolution mode
495 */
496static int __init setup_hrtimer_hres(char *str)
497{
498 if (!strcmp(str, "off"))
499 hrtimer_hres_enabled = 0;
500 else if (!strcmp(str, "on"))
501 hrtimer_hres_enabled = 1;
502 else
503 return 0;
504 return 1;
505}
506
507__setup("highres=", setup_hrtimer_hres);
508
509/*
510 * hrtimer_high_res_enabled - query, if the highres mode is enabled
511 */
512static inline int hrtimer_is_hres_enabled(void)
513{
514 return hrtimer_hres_enabled;
515}
516
517/*
518 * Is the high resolution mode active ?
519 */
520static inline int hrtimer_hres_active(void)
521{
909ea964 522 return __this_cpu_read(hrtimer_bases.hres_active);
54cdfdb4
TG
523}
524
525/*
526 * Reprogram the event source with checking both queues for the
527 * next event
528 * Called with interrupts disabled and base->lock held
529 */
7403f41f
AC
530static void
531hrtimer_force_reprogram(struct hrtimer_cpu_base *cpu_base, int skip_equal)
54cdfdb4
TG
532{
533 int i;
534 struct hrtimer_clock_base *base = cpu_base->clock_base;
7403f41f 535 ktime_t expires, expires_next;
54cdfdb4 536
7403f41f 537 expires_next.tv64 = KTIME_MAX;
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TG
538
539 for (i = 0; i < HRTIMER_MAX_CLOCK_BASES; i++, base++) {
540 struct hrtimer *timer;
998adc3d 541 struct timerqueue_node *next;
54cdfdb4 542
998adc3d
JS
543 next = timerqueue_getnext(&base->active);
544 if (!next)
54cdfdb4 545 continue;
998adc3d
JS
546 timer = container_of(next, struct hrtimer, node);
547
cc584b21 548 expires = ktime_sub(hrtimer_get_expires(timer), base->offset);
b0a9b511
TG
549 /*
550 * clock_was_set() has changed base->offset so the
551 * result might be negative. Fix it up to prevent a
552 * false positive in clockevents_program_event()
553 */
554 if (expires.tv64 < 0)
555 expires.tv64 = 0;
7403f41f
AC
556 if (expires.tv64 < expires_next.tv64)
557 expires_next = expires;
54cdfdb4
TG
558 }
559
7403f41f
AC
560 if (skip_equal && expires_next.tv64 == cpu_base->expires_next.tv64)
561 return;
562
563 cpu_base->expires_next.tv64 = expires_next.tv64;
564
54cdfdb4
TG
565 if (cpu_base->expires_next.tv64 != KTIME_MAX)
566 tick_program_event(cpu_base->expires_next, 1);
567}
568
569/*
570 * Shared reprogramming for clock_realtime and clock_monotonic
571 *
572 * When a timer is enqueued and expires earlier than the already enqueued
573 * timers, we have to check, whether it expires earlier than the timer for
574 * which the clock event device was armed.
575 *
576 * Called with interrupts disabled and base->cpu_base.lock held
577 */
578static int hrtimer_reprogram(struct hrtimer *timer,
579 struct hrtimer_clock_base *base)
580{
41d2e494 581 struct hrtimer_cpu_base *cpu_base = &__get_cpu_var(hrtimer_bases);
cc584b21 582 ktime_t expires = ktime_sub(hrtimer_get_expires(timer), base->offset);
54cdfdb4
TG
583 int res;
584
cc584b21 585 WARN_ON_ONCE(hrtimer_get_expires_tv64(timer) < 0);
63070a79 586
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587 /*
588 * When the callback is running, we do not reprogram the clock event
589 * device. The timer callback is either running on a different CPU or
3a4fa0a2 590 * the callback is executed in the hrtimer_interrupt context. The
54cdfdb4
TG
591 * reprogramming is handled either by the softirq, which called the
592 * callback or at the end of the hrtimer_interrupt.
593 */
594 if (hrtimer_callback_running(timer))
595 return 0;
596
63070a79
TG
597 /*
598 * CLOCK_REALTIME timer might be requested with an absolute
599 * expiry time which is less than base->offset. Nothing wrong
600 * about that, just avoid to call into the tick code, which
601 * has now objections against negative expiry values.
602 */
603 if (expires.tv64 < 0)
604 return -ETIME;
605
41d2e494
TG
606 if (expires.tv64 >= cpu_base->expires_next.tv64)
607 return 0;
608
609 /*
610 * If a hang was detected in the last timer interrupt then we
611 * do not schedule a timer which is earlier than the expiry
612 * which we enforced in the hang detection. We want the system
613 * to make progress.
614 */
615 if (cpu_base->hang_detected)
54cdfdb4
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616 return 0;
617
618 /*
619 * Clockevents returns -ETIME, when the event was in the past.
620 */
621 res = tick_program_event(expires, 0);
622 if (!IS_ERR_VALUE(res))
41d2e494 623 cpu_base->expires_next = expires;
54cdfdb4
TG
624 return res;
625}
626
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TG
627/*
628 * Initialize the high resolution related parts of cpu_base
629 */
630static inline void hrtimer_init_hres(struct hrtimer_cpu_base *base)
631{
632 base->expires_next.tv64 = KTIME_MAX;
633 base->hres_active = 0;
54cdfdb4
TG
634}
635
54cdfdb4
TG
636/*
637 * When High resolution timers are active, try to reprogram. Note, that in case
638 * the state has HRTIMER_STATE_CALLBACK set, no reprogramming and no expiry
639 * check happens. The timer gets enqueued into the rbtree. The reprogramming
640 * and expiry check is done in the hrtimer_interrupt or in the softirq.
641 */
642static inline int hrtimer_enqueue_reprogram(struct hrtimer *timer,
7f1e2ca9
PZ
643 struct hrtimer_clock_base *base,
644 int wakeup)
54cdfdb4
TG
645{
646 if (base->cpu_base->hres_active && hrtimer_reprogram(timer, base)) {
7f1e2ca9 647 if (wakeup) {
ecb49d1a 648 raw_spin_unlock(&base->cpu_base->lock);
7f1e2ca9 649 raise_softirq_irqoff(HRTIMER_SOFTIRQ);
ecb49d1a 650 raw_spin_lock(&base->cpu_base->lock);
7f1e2ca9
PZ
651 } else
652 __raise_softirq_irqoff(HRTIMER_SOFTIRQ);
653
ca109491 654 return 1;
54cdfdb4 655 }
7f1e2ca9 656
54cdfdb4
TG
657 return 0;
658}
659
9ec26907
TG
660/*
661 * Retrigger next event is called after clock was set
662 *
663 * Called with interrupts disabled via on_each_cpu()
664 */
665static void retrigger_next_event(void *arg)
666{
667 struct hrtimer_cpu_base *base = &__get_cpu_var(hrtimer_bases);
668 struct timespec realtime_offset, xtim, wtm, sleep;
669
670 if (!hrtimer_hres_active())
671 return;
672
673 /* Optimized out for !HIGH_RES */
674 get_xtime_and_monotonic_and_sleep_offset(&xtim, &wtm, &sleep);
675 set_normalized_timespec(&realtime_offset, -wtm.tv_sec, -wtm.tv_nsec);
676
677 /* Adjust CLOCK_REALTIME offset */
678 raw_spin_lock(&base->lock);
679 base->clock_base[HRTIMER_BASE_REALTIME].offset =
680 timespec_to_ktime(realtime_offset);
681 base->clock_base[HRTIMER_BASE_BOOTTIME].offset =
682 timespec_to_ktime(sleep);
683
684 hrtimer_force_reprogram(base, 0);
685 raw_spin_unlock(&base->lock);
686}
b12a03ce 687
54cdfdb4
TG
688/*
689 * Switch to high resolution mode
690 */
f8953856 691static int hrtimer_switch_to_hres(void)
54cdfdb4 692{
b12a03ce 693 int i, cpu = smp_processor_id();
820de5c3 694 struct hrtimer_cpu_base *base = &per_cpu(hrtimer_bases, cpu);
54cdfdb4
TG
695 unsigned long flags;
696
697 if (base->hres_active)
f8953856 698 return 1;
54cdfdb4
TG
699
700 local_irq_save(flags);
701
702 if (tick_init_highres()) {
703 local_irq_restore(flags);
820de5c3
IM
704 printk(KERN_WARNING "Could not switch to high resolution "
705 "mode on CPU %d\n", cpu);
f8953856 706 return 0;
54cdfdb4
TG
707 }
708 base->hres_active = 1;
b12a03ce
TG
709 for (i = 0; i < HRTIMER_MAX_CLOCK_BASES; i++)
710 base->clock_base[i].resolution = KTIME_HIGH_RES;
54cdfdb4
TG
711
712 tick_setup_sched_timer();
713
714 /* "Retrigger" the interrupt to get things going */
715 retrigger_next_event(NULL);
716 local_irq_restore(flags);
f8953856 717 return 1;
54cdfdb4
TG
718}
719
720#else
721
722static inline int hrtimer_hres_active(void) { return 0; }
723static inline int hrtimer_is_hres_enabled(void) { return 0; }
f8953856 724static inline int hrtimer_switch_to_hres(void) { return 0; }
7403f41f
AC
725static inline void
726hrtimer_force_reprogram(struct hrtimer_cpu_base *base, int skip_equal) { }
54cdfdb4 727static inline int hrtimer_enqueue_reprogram(struct hrtimer *timer,
7f1e2ca9
PZ
728 struct hrtimer_clock_base *base,
729 int wakeup)
54cdfdb4
TG
730{
731 return 0;
732}
54cdfdb4 733static inline void hrtimer_init_hres(struct hrtimer_cpu_base *base) { }
9ec26907 734static inline void retrigger_next_event(void *arg) { }
54cdfdb4
TG
735
736#endif /* CONFIG_HIGH_RES_TIMERS */
737
b12a03ce
TG
738/*
739 * Clock realtime was set
740 *
741 * Change the offset of the realtime clock vs. the monotonic
742 * clock.
743 *
744 * We might have to reprogram the high resolution timer interrupt. On
745 * SMP we call the architecture specific code to retrigger _all_ high
746 * resolution timer interrupts. On UP we just disable interrupts and
747 * call the high resolution interrupt code.
748 */
749void clock_was_set(void)
750{
90ff1f30 751#ifdef CONFIG_HIGH_RES_TIMERS
b12a03ce
TG
752 /* Retrigger the CPU local events everywhere */
753 on_each_cpu(retrigger_next_event, NULL, 1);
9ec26907
TG
754#endif
755 timerfd_clock_was_set();
b12a03ce
TG
756}
757
758/*
759 * During resume we might have to reprogram the high resolution timer
760 * interrupt (on the local CPU):
761 */
762void hrtimers_resume(void)
763{
764 WARN_ONCE(!irqs_disabled(),
765 KERN_INFO "hrtimers_resume() called with IRQs enabled!");
766
767 retrigger_next_event(NULL);
9ec26907 768 timerfd_clock_was_set();
b12a03ce
TG
769}
770
5f201907 771static inline void timer_stats_hrtimer_set_start_info(struct hrtimer *timer)
82f67cd9 772{
5f201907 773#ifdef CONFIG_TIMER_STATS
82f67cd9
IM
774 if (timer->start_site)
775 return;
5f201907 776 timer->start_site = __builtin_return_address(0);
82f67cd9
IM
777 memcpy(timer->start_comm, current->comm, TASK_COMM_LEN);
778 timer->start_pid = current->pid;
5f201907
HC
779#endif
780}
781
782static inline void timer_stats_hrtimer_clear_start_info(struct hrtimer *timer)
783{
784#ifdef CONFIG_TIMER_STATS
785 timer->start_site = NULL;
786#endif
82f67cd9 787}
5f201907
HC
788
789static inline void timer_stats_account_hrtimer(struct hrtimer *timer)
790{
791#ifdef CONFIG_TIMER_STATS
792 if (likely(!timer_stats_active))
793 return;
794 timer_stats_update_stats(timer, timer->start_pid, timer->start_site,
795 timer->function, timer->start_comm, 0);
82f67cd9 796#endif
5f201907 797}
82f67cd9 798
c0a31329 799/*
6506f2aa 800 * Counterpart to lock_hrtimer_base above:
c0a31329
TG
801 */
802static inline
803void unlock_hrtimer_base(const struct hrtimer *timer, unsigned long *flags)
804{
ecb49d1a 805 raw_spin_unlock_irqrestore(&timer->base->cpu_base->lock, *flags);
c0a31329
TG
806}
807
808/**
809 * hrtimer_forward - forward the timer expiry
c0a31329 810 * @timer: hrtimer to forward
44f21475 811 * @now: forward past this time
c0a31329
TG
812 * @interval: the interval to forward
813 *
814 * Forward the timer expiry so it will expire in the future.
8dca6f33 815 * Returns the number of overruns.
c0a31329 816 */
4d672e7a 817u64 hrtimer_forward(struct hrtimer *timer, ktime_t now, ktime_t interval)
c0a31329 818{
4d672e7a 819 u64 orun = 1;
44f21475 820 ktime_t delta;
c0a31329 821
cc584b21 822 delta = ktime_sub(now, hrtimer_get_expires(timer));
c0a31329
TG
823
824 if (delta.tv64 < 0)
825 return 0;
826
c9db4fa1
TG
827 if (interval.tv64 < timer->base->resolution.tv64)
828 interval.tv64 = timer->base->resolution.tv64;
829
c0a31329 830 if (unlikely(delta.tv64 >= interval.tv64)) {
df869b63 831 s64 incr = ktime_to_ns(interval);
c0a31329
TG
832
833 orun = ktime_divns(delta, incr);
cc584b21
AV
834 hrtimer_add_expires_ns(timer, incr * orun);
835 if (hrtimer_get_expires_tv64(timer) > now.tv64)
c0a31329
TG
836 return orun;
837 /*
838 * This (and the ktime_add() below) is the
839 * correction for exact:
840 */
841 orun++;
842 }
cc584b21 843 hrtimer_add_expires(timer, interval);
c0a31329
TG
844
845 return orun;
846}
6bdb6b62 847EXPORT_SYMBOL_GPL(hrtimer_forward);
c0a31329
TG
848
849/*
850 * enqueue_hrtimer - internal function to (re)start a timer
851 *
852 * The timer is inserted in expiry order. Insertion into the
853 * red black tree is O(log(n)). Must hold the base lock.
a6037b61
PZ
854 *
855 * Returns 1 when the new timer is the leftmost timer in the tree.
c0a31329 856 */
a6037b61
PZ
857static int enqueue_hrtimer(struct hrtimer *timer,
858 struct hrtimer_clock_base *base)
c0a31329 859{
c6a2a177 860 debug_activate(timer);
237fc6e7 861
998adc3d 862 timerqueue_add(&base->active, &timer->node);
ab8177bc 863 base->cpu_base->active_bases |= 1 << base->index;
54cdfdb4 864
303e967f
TG
865 /*
866 * HRTIMER_STATE_ENQUEUED is or'ed to the current state to preserve the
867 * state of a possibly running callback.
868 */
869 timer->state |= HRTIMER_STATE_ENQUEUED;
a6037b61 870
998adc3d 871 return (&timer->node == base->active.next);
288867ec 872}
c0a31329
TG
873
874/*
875 * __remove_hrtimer - internal function to remove a timer
876 *
877 * Caller must hold the base lock.
54cdfdb4
TG
878 *
879 * High resolution timer mode reprograms the clock event device when the
880 * timer is the one which expires next. The caller can disable this by setting
881 * reprogram to zero. This is useful, when the context does a reprogramming
882 * anyway (e.g. timer interrupt)
c0a31329 883 */
3c8aa39d 884static void __remove_hrtimer(struct hrtimer *timer,
303e967f 885 struct hrtimer_clock_base *base,
54cdfdb4 886 unsigned long newstate, int reprogram)
c0a31329 887{
27c9cd7e 888 struct timerqueue_node *next_timer;
7403f41f
AC
889 if (!(timer->state & HRTIMER_STATE_ENQUEUED))
890 goto out;
891
27c9cd7e
JO
892 next_timer = timerqueue_getnext(&base->active);
893 timerqueue_del(&base->active, &timer->node);
894 if (&timer->node == next_timer) {
7403f41f
AC
895#ifdef CONFIG_HIGH_RES_TIMERS
896 /* Reprogram the clock event device. if enabled */
897 if (reprogram && hrtimer_hres_active()) {
898 ktime_t expires;
899
900 expires = ktime_sub(hrtimer_get_expires(timer),
901 base->offset);
902 if (base->cpu_base->expires_next.tv64 == expires.tv64)
903 hrtimer_force_reprogram(base->cpu_base, 1);
54cdfdb4 904 }
7403f41f 905#endif
54cdfdb4 906 }
ab8177bc
TG
907 if (!timerqueue_getnext(&base->active))
908 base->cpu_base->active_bases &= ~(1 << base->index);
7403f41f 909out:
303e967f 910 timer->state = newstate;
c0a31329
TG
911}
912
913/*
914 * remove hrtimer, called with base lock held
915 */
916static inline int
3c8aa39d 917remove_hrtimer(struct hrtimer *timer, struct hrtimer_clock_base *base)
c0a31329 918{
303e967f 919 if (hrtimer_is_queued(timer)) {
f13d4f97 920 unsigned long state;
54cdfdb4
TG
921 int reprogram;
922
923 /*
924 * Remove the timer and force reprogramming when high
925 * resolution mode is active and the timer is on the current
926 * CPU. If we remove a timer on another CPU, reprogramming is
927 * skipped. The interrupt event on this CPU is fired and
928 * reprogramming happens in the interrupt handler. This is a
929 * rare case and less expensive than a smp call.
930 */
c6a2a177 931 debug_deactivate(timer);
82f67cd9 932 timer_stats_hrtimer_clear_start_info(timer);
54cdfdb4 933 reprogram = base->cpu_base == &__get_cpu_var(hrtimer_bases);
f13d4f97
SQ
934 /*
935 * We must preserve the CALLBACK state flag here,
936 * otherwise we could move the timer base in
937 * switch_hrtimer_base.
938 */
939 state = timer->state & HRTIMER_STATE_CALLBACK;
940 __remove_hrtimer(timer, base, state, reprogram);
c0a31329
TG
941 return 1;
942 }
943 return 0;
944}
945
7f1e2ca9
PZ
946int __hrtimer_start_range_ns(struct hrtimer *timer, ktime_t tim,
947 unsigned long delta_ns, const enum hrtimer_mode mode,
948 int wakeup)
c0a31329 949{
3c8aa39d 950 struct hrtimer_clock_base *base, *new_base;
c0a31329 951 unsigned long flags;
a6037b61 952 int ret, leftmost;
c0a31329
TG
953
954 base = lock_hrtimer_base(timer, &flags);
955
956 /* Remove an active timer from the queue: */
957 ret = remove_hrtimer(timer, base);
958
959 /* Switch the timer base, if necessary: */
597d0275 960 new_base = switch_hrtimer_base(timer, base, mode & HRTIMER_MODE_PINNED);
c0a31329 961
597d0275 962 if (mode & HRTIMER_MODE_REL) {
5a7780e7 963 tim = ktime_add_safe(tim, new_base->get_time());
06027bdd
IM
964 /*
965 * CONFIG_TIME_LOW_RES is a temporary way for architectures
966 * to signal that they simply return xtime in
967 * do_gettimeoffset(). In this case we want to round up by
968 * resolution when starting a relative timer, to avoid short
969 * timeouts. This will go away with the GTOD framework.
970 */
971#ifdef CONFIG_TIME_LOW_RES
5a7780e7 972 tim = ktime_add_safe(tim, base->resolution);
06027bdd
IM
973#endif
974 }
237fc6e7 975
da8f2e17 976 hrtimer_set_expires_range_ns(timer, tim, delta_ns);
c0a31329 977
82f67cd9
IM
978 timer_stats_hrtimer_set_start_info(timer);
979
a6037b61
PZ
980 leftmost = enqueue_hrtimer(timer, new_base);
981
935c631d
IM
982 /*
983 * Only allow reprogramming if the new base is on this CPU.
984 * (it might still be on another CPU if the timer was pending)
a6037b61
PZ
985 *
986 * XXX send_remote_softirq() ?
935c631d 987 */
a6037b61 988 if (leftmost && new_base->cpu_base == &__get_cpu_var(hrtimer_bases))
7f1e2ca9 989 hrtimer_enqueue_reprogram(timer, new_base, wakeup);
c0a31329
TG
990
991 unlock_hrtimer_base(timer, &flags);
992
993 return ret;
994}
7f1e2ca9
PZ
995
996/**
997 * hrtimer_start_range_ns - (re)start an hrtimer on the current CPU
998 * @timer: the timer to be added
999 * @tim: expiry time
1000 * @delta_ns: "slack" range for the timer
1001 * @mode: expiry mode: absolute (HRTIMER_ABS) or relative (HRTIMER_REL)
1002 *
1003 * Returns:
1004 * 0 on success
1005 * 1 when the timer was active
1006 */
1007int hrtimer_start_range_ns(struct hrtimer *timer, ktime_t tim,
1008 unsigned long delta_ns, const enum hrtimer_mode mode)
1009{
1010 return __hrtimer_start_range_ns(timer, tim, delta_ns, mode, 1);
1011}
da8f2e17
AV
1012EXPORT_SYMBOL_GPL(hrtimer_start_range_ns);
1013
1014/**
e1dd7bc5 1015 * hrtimer_start - (re)start an hrtimer on the current CPU
da8f2e17
AV
1016 * @timer: the timer to be added
1017 * @tim: expiry time
1018 * @mode: expiry mode: absolute (HRTIMER_ABS) or relative (HRTIMER_REL)
1019 *
1020 * Returns:
1021 * 0 on success
1022 * 1 when the timer was active
1023 */
1024int
1025hrtimer_start(struct hrtimer *timer, ktime_t tim, const enum hrtimer_mode mode)
1026{
7f1e2ca9 1027 return __hrtimer_start_range_ns(timer, tim, 0, mode, 1);
da8f2e17 1028}
8d16b764 1029EXPORT_SYMBOL_GPL(hrtimer_start);
c0a31329 1030
da8f2e17 1031
c0a31329
TG
1032/**
1033 * hrtimer_try_to_cancel - try to deactivate a timer
c0a31329
TG
1034 * @timer: hrtimer to stop
1035 *
1036 * Returns:
1037 * 0 when the timer was not active
1038 * 1 when the timer was active
1039 * -1 when the timer is currently excuting the callback function and
fa9799e3 1040 * cannot be stopped
c0a31329
TG
1041 */
1042int hrtimer_try_to_cancel(struct hrtimer *timer)
1043{
3c8aa39d 1044 struct hrtimer_clock_base *base;
c0a31329
TG
1045 unsigned long flags;
1046 int ret = -1;
1047
1048 base = lock_hrtimer_base(timer, &flags);
1049
303e967f 1050 if (!hrtimer_callback_running(timer))
c0a31329
TG
1051 ret = remove_hrtimer(timer, base);
1052
1053 unlock_hrtimer_base(timer, &flags);
1054
1055 return ret;
1056
1057}
8d16b764 1058EXPORT_SYMBOL_GPL(hrtimer_try_to_cancel);
c0a31329
TG
1059
1060/**
1061 * hrtimer_cancel - cancel a timer and wait for the handler to finish.
c0a31329
TG
1062 * @timer: the timer to be cancelled
1063 *
1064 * Returns:
1065 * 0 when the timer was not active
1066 * 1 when the timer was active
1067 */
1068int hrtimer_cancel(struct hrtimer *timer)
1069{
1070 for (;;) {
1071 int ret = hrtimer_try_to_cancel(timer);
1072
1073 if (ret >= 0)
1074 return ret;
5ef37b19 1075 cpu_relax();
c0a31329
TG
1076 }
1077}
8d16b764 1078EXPORT_SYMBOL_GPL(hrtimer_cancel);
c0a31329
TG
1079
1080/**
1081 * hrtimer_get_remaining - get remaining time for the timer
c0a31329
TG
1082 * @timer: the timer to read
1083 */
1084ktime_t hrtimer_get_remaining(const struct hrtimer *timer)
1085{
c0a31329
TG
1086 unsigned long flags;
1087 ktime_t rem;
1088
b3bd3de6 1089 lock_hrtimer_base(timer, &flags);
cc584b21 1090 rem = hrtimer_expires_remaining(timer);
c0a31329
TG
1091 unlock_hrtimer_base(timer, &flags);
1092
1093 return rem;
1094}
8d16b764 1095EXPORT_SYMBOL_GPL(hrtimer_get_remaining);
c0a31329 1096
ee9c5785 1097#ifdef CONFIG_NO_HZ
69239749
TL
1098/**
1099 * hrtimer_get_next_event - get the time until next expiry event
1100 *
1101 * Returns the delta to the next expiry event or KTIME_MAX if no timer
1102 * is pending.
1103 */
1104ktime_t hrtimer_get_next_event(void)
1105{
3c8aa39d
TG
1106 struct hrtimer_cpu_base *cpu_base = &__get_cpu_var(hrtimer_bases);
1107 struct hrtimer_clock_base *base = cpu_base->clock_base;
69239749
TL
1108 ktime_t delta, mindelta = { .tv64 = KTIME_MAX };
1109 unsigned long flags;
1110 int i;
1111
ecb49d1a 1112 raw_spin_lock_irqsave(&cpu_base->lock, flags);
3c8aa39d 1113
54cdfdb4
TG
1114 if (!hrtimer_hres_active()) {
1115 for (i = 0; i < HRTIMER_MAX_CLOCK_BASES; i++, base++) {
1116 struct hrtimer *timer;
998adc3d 1117 struct timerqueue_node *next;
69239749 1118
998adc3d
JS
1119 next = timerqueue_getnext(&base->active);
1120 if (!next)
54cdfdb4 1121 continue;
3c8aa39d 1122
998adc3d 1123 timer = container_of(next, struct hrtimer, node);
cc584b21 1124 delta.tv64 = hrtimer_get_expires_tv64(timer);
54cdfdb4
TG
1125 delta = ktime_sub(delta, base->get_time());
1126 if (delta.tv64 < mindelta.tv64)
1127 mindelta.tv64 = delta.tv64;
1128 }
69239749 1129 }
3c8aa39d 1130
ecb49d1a 1131 raw_spin_unlock_irqrestore(&cpu_base->lock, flags);
3c8aa39d 1132
69239749
TL
1133 if (mindelta.tv64 < 0)
1134 mindelta.tv64 = 0;
1135 return mindelta;
1136}
1137#endif
1138
237fc6e7
TG
1139static void __hrtimer_init(struct hrtimer *timer, clockid_t clock_id,
1140 enum hrtimer_mode mode)
c0a31329 1141{
3c8aa39d 1142 struct hrtimer_cpu_base *cpu_base;
e06383db 1143 int base;
c0a31329 1144
7978672c
GA
1145 memset(timer, 0, sizeof(struct hrtimer));
1146
3c8aa39d 1147 cpu_base = &__raw_get_cpu_var(hrtimer_bases);
c0a31329 1148
c9cb2e3d 1149 if (clock_id == CLOCK_REALTIME && mode != HRTIMER_MODE_ABS)
7978672c
GA
1150 clock_id = CLOCK_MONOTONIC;
1151
e06383db
JS
1152 base = hrtimer_clockid_to_base(clock_id);
1153 timer->base = &cpu_base->clock_base[base];
998adc3d 1154 timerqueue_init(&timer->node);
82f67cd9
IM
1155
1156#ifdef CONFIG_TIMER_STATS
1157 timer->start_site = NULL;
1158 timer->start_pid = -1;
1159 memset(timer->start_comm, 0, TASK_COMM_LEN);
1160#endif
c0a31329 1161}
237fc6e7
TG
1162
1163/**
1164 * hrtimer_init - initialize a timer to the given clock
1165 * @timer: the timer to be initialized
1166 * @clock_id: the clock to be used
1167 * @mode: timer mode abs/rel
1168 */
1169void hrtimer_init(struct hrtimer *timer, clockid_t clock_id,
1170 enum hrtimer_mode mode)
1171{
c6a2a177 1172 debug_init(timer, clock_id, mode);
237fc6e7
TG
1173 __hrtimer_init(timer, clock_id, mode);
1174}
8d16b764 1175EXPORT_SYMBOL_GPL(hrtimer_init);
c0a31329
TG
1176
1177/**
1178 * hrtimer_get_res - get the timer resolution for a clock
c0a31329
TG
1179 * @which_clock: which clock to query
1180 * @tp: pointer to timespec variable to store the resolution
1181 *
72fd4a35
RD
1182 * Store the resolution of the clock selected by @which_clock in the
1183 * variable pointed to by @tp.
c0a31329
TG
1184 */
1185int hrtimer_get_res(const clockid_t which_clock, struct timespec *tp)
1186{
3c8aa39d 1187 struct hrtimer_cpu_base *cpu_base;
e06383db 1188 int base = hrtimer_clockid_to_base(which_clock);
c0a31329 1189
3c8aa39d 1190 cpu_base = &__raw_get_cpu_var(hrtimer_bases);
e06383db 1191 *tp = ktime_to_timespec(cpu_base->clock_base[base].resolution);
c0a31329
TG
1192
1193 return 0;
1194}
8d16b764 1195EXPORT_SYMBOL_GPL(hrtimer_get_res);
c0a31329 1196
c6a2a177 1197static void __run_hrtimer(struct hrtimer *timer, ktime_t *now)
d3d74453
PZ
1198{
1199 struct hrtimer_clock_base *base = timer->base;
1200 struct hrtimer_cpu_base *cpu_base = base->cpu_base;
1201 enum hrtimer_restart (*fn)(struct hrtimer *);
1202 int restart;
1203
ca109491
PZ
1204 WARN_ON(!irqs_disabled());
1205
c6a2a177 1206 debug_deactivate(timer);
d3d74453
PZ
1207 __remove_hrtimer(timer, base, HRTIMER_STATE_CALLBACK, 0);
1208 timer_stats_account_hrtimer(timer);
d3d74453 1209 fn = timer->function;
ca109491
PZ
1210
1211 /*
1212 * Because we run timers from hardirq context, there is no chance
1213 * they get migrated to another cpu, therefore its safe to unlock
1214 * the timer base.
1215 */
ecb49d1a 1216 raw_spin_unlock(&cpu_base->lock);
c6a2a177 1217 trace_hrtimer_expire_entry(timer, now);
ca109491 1218 restart = fn(timer);
c6a2a177 1219 trace_hrtimer_expire_exit(timer);
ecb49d1a 1220 raw_spin_lock(&cpu_base->lock);
d3d74453
PZ
1221
1222 /*
e3f1d883
TG
1223 * Note: We clear the CALLBACK bit after enqueue_hrtimer and
1224 * we do not reprogramm the event hardware. Happens either in
1225 * hrtimer_start_range_ns() or in hrtimer_interrupt()
d3d74453
PZ
1226 */
1227 if (restart != HRTIMER_NORESTART) {
1228 BUG_ON(timer->state != HRTIMER_STATE_CALLBACK);
a6037b61 1229 enqueue_hrtimer(timer, base);
d3d74453 1230 }
f13d4f97
SQ
1231
1232 WARN_ON_ONCE(!(timer->state & HRTIMER_STATE_CALLBACK));
1233
d3d74453
PZ
1234 timer->state &= ~HRTIMER_STATE_CALLBACK;
1235}
1236
54cdfdb4
TG
1237#ifdef CONFIG_HIGH_RES_TIMERS
1238
1239/*
1240 * High resolution timer interrupt
1241 * Called with interrupts disabled
1242 */
1243void hrtimer_interrupt(struct clock_event_device *dev)
1244{
1245 struct hrtimer_cpu_base *cpu_base = &__get_cpu_var(hrtimer_bases);
41d2e494
TG
1246 ktime_t expires_next, now, entry_time, delta;
1247 int i, retries = 0;
54cdfdb4
TG
1248
1249 BUG_ON(!cpu_base->hres_active);
1250 cpu_base->nr_events++;
1251 dev->next_event.tv64 = KTIME_MAX;
1252
41d2e494
TG
1253 entry_time = now = ktime_get();
1254retry:
54cdfdb4
TG
1255 expires_next.tv64 = KTIME_MAX;
1256
ecb49d1a 1257 raw_spin_lock(&cpu_base->lock);
6ff7041d
TG
1258 /*
1259 * We set expires_next to KTIME_MAX here with cpu_base->lock
1260 * held to prevent that a timer is enqueued in our queue via
1261 * the migration code. This does not affect enqueueing of
1262 * timers which run their callback and need to be requeued on
1263 * this CPU.
1264 */
1265 cpu_base->expires_next.tv64 = KTIME_MAX;
1266
54cdfdb4 1267 for (i = 0; i < HRTIMER_MAX_CLOCK_BASES; i++) {
ab8177bc 1268 struct hrtimer_clock_base *base;
998adc3d 1269 struct timerqueue_node *node;
ab8177bc
TG
1270 ktime_t basenow;
1271
1272 if (!(cpu_base->active_bases & (1 << i)))
1273 continue;
54cdfdb4 1274
ab8177bc 1275 base = cpu_base->clock_base + i;
54cdfdb4
TG
1276 basenow = ktime_add(now, base->offset);
1277
998adc3d 1278 while ((node = timerqueue_getnext(&base->active))) {
54cdfdb4
TG
1279 struct hrtimer *timer;
1280
998adc3d 1281 timer = container_of(node, struct hrtimer, node);
54cdfdb4 1282
654c8e0b
AV
1283 /*
1284 * The immediate goal for using the softexpires is
1285 * minimizing wakeups, not running timers at the
1286 * earliest interrupt after their soft expiration.
1287 * This allows us to avoid using a Priority Search
1288 * Tree, which can answer a stabbing querry for
1289 * overlapping intervals and instead use the simple
1290 * BST we already have.
1291 * We don't add extra wakeups by delaying timers that
1292 * are right-of a not yet expired timer, because that
1293 * timer will have to trigger a wakeup anyway.
1294 */
1295
1296 if (basenow.tv64 < hrtimer_get_softexpires_tv64(timer)) {
54cdfdb4
TG
1297 ktime_t expires;
1298
cc584b21 1299 expires = ktime_sub(hrtimer_get_expires(timer),
54cdfdb4
TG
1300 base->offset);
1301 if (expires.tv64 < expires_next.tv64)
1302 expires_next = expires;
1303 break;
1304 }
1305
c6a2a177 1306 __run_hrtimer(timer, &basenow);
54cdfdb4 1307 }
54cdfdb4
TG
1308 }
1309
6ff7041d
TG
1310 /*
1311 * Store the new expiry value so the migration code can verify
1312 * against it.
1313 */
54cdfdb4 1314 cpu_base->expires_next = expires_next;
ecb49d1a 1315 raw_spin_unlock(&cpu_base->lock);
54cdfdb4
TG
1316
1317 /* Reprogramming necessary ? */
41d2e494
TG
1318 if (expires_next.tv64 == KTIME_MAX ||
1319 !tick_program_event(expires_next, 0)) {
1320 cpu_base->hang_detected = 0;
1321 return;
54cdfdb4 1322 }
41d2e494
TG
1323
1324 /*
1325 * The next timer was already expired due to:
1326 * - tracing
1327 * - long lasting callbacks
1328 * - being scheduled away when running in a VM
1329 *
1330 * We need to prevent that we loop forever in the hrtimer
1331 * interrupt routine. We give it 3 attempts to avoid
1332 * overreacting on some spurious event.
1333 */
1334 now = ktime_get();
1335 cpu_base->nr_retries++;
1336 if (++retries < 3)
1337 goto retry;
1338 /*
1339 * Give the system a chance to do something else than looping
1340 * here. We stored the entry time, so we know exactly how long
1341 * we spent here. We schedule the next event this amount of
1342 * time away.
1343 */
1344 cpu_base->nr_hangs++;
1345 cpu_base->hang_detected = 1;
1346 delta = ktime_sub(now, entry_time);
1347 if (delta.tv64 > cpu_base->max_hang_time.tv64)
1348 cpu_base->max_hang_time = delta;
1349 /*
1350 * Limit it to a sensible value as we enforce a longer
1351 * delay. Give the CPU at least 100ms to catch up.
1352 */
1353 if (delta.tv64 > 100 * NSEC_PER_MSEC)
1354 expires_next = ktime_add_ns(now, 100 * NSEC_PER_MSEC);
1355 else
1356 expires_next = ktime_add(now, delta);
1357 tick_program_event(expires_next, 1);
1358 printk_once(KERN_WARNING "hrtimer: interrupt took %llu ns\n",
1359 ktime_to_ns(delta));
54cdfdb4
TG
1360}
1361
8bdec955
TG
1362/*
1363 * local version of hrtimer_peek_ahead_timers() called with interrupts
1364 * disabled.
1365 */
1366static void __hrtimer_peek_ahead_timers(void)
1367{
1368 struct tick_device *td;
1369
1370 if (!hrtimer_hres_active())
1371 return;
1372
1373 td = &__get_cpu_var(tick_cpu_device);
1374 if (td && td->evtdev)
1375 hrtimer_interrupt(td->evtdev);
1376}
1377
2e94d1f7
AV
1378/**
1379 * hrtimer_peek_ahead_timers -- run soft-expired timers now
1380 *
1381 * hrtimer_peek_ahead_timers will peek at the timer queue of
1382 * the current cpu and check if there are any timers for which
1383 * the soft expires time has passed. If any such timers exist,
1384 * they are run immediately and then removed from the timer queue.
1385 *
1386 */
1387void hrtimer_peek_ahead_timers(void)
1388{
643bdf68 1389 unsigned long flags;
dc4304f7 1390
2e94d1f7 1391 local_irq_save(flags);
8bdec955 1392 __hrtimer_peek_ahead_timers();
2e94d1f7
AV
1393 local_irq_restore(flags);
1394}
1395
a6037b61
PZ
1396static void run_hrtimer_softirq(struct softirq_action *h)
1397{
1398 hrtimer_peek_ahead_timers();
1399}
1400
82c5b7b5
IM
1401#else /* CONFIG_HIGH_RES_TIMERS */
1402
1403static inline void __hrtimer_peek_ahead_timers(void) { }
1404
1405#endif /* !CONFIG_HIGH_RES_TIMERS */
82f67cd9 1406
d3d74453
PZ
1407/*
1408 * Called from timer softirq every jiffy, expire hrtimers:
1409 *
1410 * For HRT its the fall back code to run the softirq in the timer
1411 * softirq context in case the hrtimer initialization failed or has
1412 * not been done yet.
1413 */
1414void hrtimer_run_pending(void)
1415{
d3d74453
PZ
1416 if (hrtimer_hres_active())
1417 return;
54cdfdb4 1418
d3d74453
PZ
1419 /*
1420 * This _is_ ugly: We have to check in the softirq context,
1421 * whether we can switch to highres and / or nohz mode. The
1422 * clocksource switch happens in the timer interrupt with
1423 * xtime_lock held. Notification from there only sets the
1424 * check bit in the tick_oneshot code, otherwise we might
1425 * deadlock vs. xtime_lock.
1426 */
1427 if (tick_check_oneshot_change(!hrtimer_is_hres_enabled()))
1428 hrtimer_switch_to_hres();
54cdfdb4
TG
1429}
1430
c0a31329 1431/*
d3d74453 1432 * Called from hardirq context every jiffy
c0a31329 1433 */
833883d9 1434void hrtimer_run_queues(void)
c0a31329 1435{
998adc3d 1436 struct timerqueue_node *node;
833883d9
DS
1437 struct hrtimer_cpu_base *cpu_base = &__get_cpu_var(hrtimer_bases);
1438 struct hrtimer_clock_base *base;
1439 int index, gettime = 1;
c0a31329 1440
833883d9 1441 if (hrtimer_hres_active())
3055adda
DS
1442 return;
1443
833883d9
DS
1444 for (index = 0; index < HRTIMER_MAX_CLOCK_BASES; index++) {
1445 base = &cpu_base->clock_base[index];
b007c389 1446 if (!timerqueue_getnext(&base->active))
d3d74453 1447 continue;
833883d9 1448
d7cfb60c 1449 if (gettime) {
833883d9
DS
1450 hrtimer_get_softirq_time(cpu_base);
1451 gettime = 0;
b75f7a51 1452 }
d3d74453 1453
ecb49d1a 1454 raw_spin_lock(&cpu_base->lock);
c0a31329 1455
b007c389 1456 while ((node = timerqueue_getnext(&base->active))) {
833883d9 1457 struct hrtimer *timer;
54cdfdb4 1458
998adc3d 1459 timer = container_of(node, struct hrtimer, node);
cc584b21
AV
1460 if (base->softirq_time.tv64 <=
1461 hrtimer_get_expires_tv64(timer))
833883d9
DS
1462 break;
1463
c6a2a177 1464 __run_hrtimer(timer, &base->softirq_time);
833883d9 1465 }
ecb49d1a 1466 raw_spin_unlock(&cpu_base->lock);
833883d9 1467 }
c0a31329
TG
1468}
1469
10c94ec1
TG
1470/*
1471 * Sleep related functions:
1472 */
c9cb2e3d 1473static enum hrtimer_restart hrtimer_wakeup(struct hrtimer *timer)
00362e33
TG
1474{
1475 struct hrtimer_sleeper *t =
1476 container_of(timer, struct hrtimer_sleeper, timer);
1477 struct task_struct *task = t->task;
1478
1479 t->task = NULL;
1480 if (task)
1481 wake_up_process(task);
1482
1483 return HRTIMER_NORESTART;
1484}
1485
36c8b586 1486void hrtimer_init_sleeper(struct hrtimer_sleeper *sl, struct task_struct *task)
00362e33
TG
1487{
1488 sl->timer.function = hrtimer_wakeup;
1489 sl->task = task;
1490}
2bc481cf 1491EXPORT_SYMBOL_GPL(hrtimer_init_sleeper);
00362e33 1492
669d7868 1493static int __sched do_nanosleep(struct hrtimer_sleeper *t, enum hrtimer_mode mode)
432569bb 1494{
669d7868 1495 hrtimer_init_sleeper(t, current);
10c94ec1 1496
432569bb
RZ
1497 do {
1498 set_current_state(TASK_INTERRUPTIBLE);
cc584b21 1499 hrtimer_start_expires(&t->timer, mode);
37bb6cb4
PZ
1500 if (!hrtimer_active(&t->timer))
1501 t->task = NULL;
432569bb 1502
54cdfdb4
TG
1503 if (likely(t->task))
1504 schedule();
432569bb 1505
669d7868 1506 hrtimer_cancel(&t->timer);
c9cb2e3d 1507 mode = HRTIMER_MODE_ABS;
669d7868
TG
1508
1509 } while (t->task && !signal_pending(current));
432569bb 1510
3588a085
PZ
1511 __set_current_state(TASK_RUNNING);
1512
669d7868 1513 return t->task == NULL;
10c94ec1
TG
1514}
1515
080344b9
ON
1516static int update_rmtp(struct hrtimer *timer, struct timespec __user *rmtp)
1517{
1518 struct timespec rmt;
1519 ktime_t rem;
1520
cc584b21 1521 rem = hrtimer_expires_remaining(timer);
080344b9
ON
1522 if (rem.tv64 <= 0)
1523 return 0;
1524 rmt = ktime_to_timespec(rem);
1525
1526 if (copy_to_user(rmtp, &rmt, sizeof(*rmtp)))
1527 return -EFAULT;
1528
1529 return 1;
1530}
1531
1711ef38 1532long __sched hrtimer_nanosleep_restart(struct restart_block *restart)
10c94ec1 1533{
669d7868 1534 struct hrtimer_sleeper t;
080344b9 1535 struct timespec __user *rmtp;
237fc6e7 1536 int ret = 0;
10c94ec1 1537
ab8177bc 1538 hrtimer_init_on_stack(&t.timer, restart->nanosleep.clockid,
237fc6e7 1539 HRTIMER_MODE_ABS);
cc584b21 1540 hrtimer_set_expires_tv64(&t.timer, restart->nanosleep.expires);
10c94ec1 1541
c9cb2e3d 1542 if (do_nanosleep(&t, HRTIMER_MODE_ABS))
237fc6e7 1543 goto out;
10c94ec1 1544
029a07e0 1545 rmtp = restart->nanosleep.rmtp;
432569bb 1546 if (rmtp) {
237fc6e7 1547 ret = update_rmtp(&t.timer, rmtp);
080344b9 1548 if (ret <= 0)
237fc6e7 1549 goto out;
432569bb 1550 }
10c94ec1 1551
10c94ec1 1552 /* The other values in restart are already filled in */
237fc6e7
TG
1553 ret = -ERESTART_RESTARTBLOCK;
1554out:
1555 destroy_hrtimer_on_stack(&t.timer);
1556 return ret;
10c94ec1
TG
1557}
1558
080344b9 1559long hrtimer_nanosleep(struct timespec *rqtp, struct timespec __user *rmtp,
10c94ec1
TG
1560 const enum hrtimer_mode mode, const clockid_t clockid)
1561{
1562 struct restart_block *restart;
669d7868 1563 struct hrtimer_sleeper t;
237fc6e7 1564 int ret = 0;
3bd01206
AV
1565 unsigned long slack;
1566
1567 slack = current->timer_slack_ns;
1568 if (rt_task(current))
1569 slack = 0;
10c94ec1 1570
237fc6e7 1571 hrtimer_init_on_stack(&t.timer, clockid, mode);
3bd01206 1572 hrtimer_set_expires_range_ns(&t.timer, timespec_to_ktime(*rqtp), slack);
432569bb 1573 if (do_nanosleep(&t, mode))
237fc6e7 1574 goto out;
10c94ec1 1575
7978672c 1576 /* Absolute timers do not update the rmtp value and restart: */
237fc6e7
TG
1577 if (mode == HRTIMER_MODE_ABS) {
1578 ret = -ERESTARTNOHAND;
1579 goto out;
1580 }
10c94ec1 1581
432569bb 1582 if (rmtp) {
237fc6e7 1583 ret = update_rmtp(&t.timer, rmtp);
080344b9 1584 if (ret <= 0)
237fc6e7 1585 goto out;
432569bb 1586 }
10c94ec1
TG
1587
1588 restart = &current_thread_info()->restart_block;
1711ef38 1589 restart->fn = hrtimer_nanosleep_restart;
ab8177bc 1590 restart->nanosleep.clockid = t.timer.base->clockid;
029a07e0 1591 restart->nanosleep.rmtp = rmtp;
cc584b21 1592 restart->nanosleep.expires = hrtimer_get_expires_tv64(&t.timer);
10c94ec1 1593
237fc6e7
TG
1594 ret = -ERESTART_RESTARTBLOCK;
1595out:
1596 destroy_hrtimer_on_stack(&t.timer);
1597 return ret;
10c94ec1
TG
1598}
1599
58fd3aa2
HC
1600SYSCALL_DEFINE2(nanosleep, struct timespec __user *, rqtp,
1601 struct timespec __user *, rmtp)
6ba1b912 1602{
080344b9 1603 struct timespec tu;
6ba1b912
TG
1604
1605 if (copy_from_user(&tu, rqtp, sizeof(tu)))
1606 return -EFAULT;
1607
1608 if (!timespec_valid(&tu))
1609 return -EINVAL;
1610
080344b9 1611 return hrtimer_nanosleep(&tu, rmtp, HRTIMER_MODE_REL, CLOCK_MONOTONIC);
6ba1b912
TG
1612}
1613
c0a31329
TG
1614/*
1615 * Functions related to boot-time initialization:
1616 */
0ec160dd 1617static void __cpuinit init_hrtimers_cpu(int cpu)
c0a31329 1618{
3c8aa39d 1619 struct hrtimer_cpu_base *cpu_base = &per_cpu(hrtimer_bases, cpu);
c0a31329
TG
1620 int i;
1621
ecb49d1a 1622 raw_spin_lock_init(&cpu_base->lock);
3c8aa39d 1623
998adc3d 1624 for (i = 0; i < HRTIMER_MAX_CLOCK_BASES; i++) {
3c8aa39d 1625 cpu_base->clock_base[i].cpu_base = cpu_base;
998adc3d
JS
1626 timerqueue_init_head(&cpu_base->clock_base[i].active);
1627 }
3c8aa39d 1628
54cdfdb4 1629 hrtimer_init_hres(cpu_base);
c0a31329
TG
1630}
1631
1632#ifdef CONFIG_HOTPLUG_CPU
1633
ca109491 1634static void migrate_hrtimer_list(struct hrtimer_clock_base *old_base,
37810659 1635 struct hrtimer_clock_base *new_base)
c0a31329
TG
1636{
1637 struct hrtimer *timer;
998adc3d 1638 struct timerqueue_node *node;
c0a31329 1639
998adc3d
JS
1640 while ((node = timerqueue_getnext(&old_base->active))) {
1641 timer = container_of(node, struct hrtimer, node);
54cdfdb4 1642 BUG_ON(hrtimer_callback_running(timer));
c6a2a177 1643 debug_deactivate(timer);
b00c1a99
TG
1644
1645 /*
1646 * Mark it as STATE_MIGRATE not INACTIVE otherwise the
1647 * timer could be seen as !active and just vanish away
1648 * under us on another CPU
1649 */
1650 __remove_hrtimer(timer, old_base, HRTIMER_STATE_MIGRATE, 0);
c0a31329 1651 timer->base = new_base;
54cdfdb4 1652 /*
e3f1d883
TG
1653 * Enqueue the timers on the new cpu. This does not
1654 * reprogram the event device in case the timer
1655 * expires before the earliest on this CPU, but we run
1656 * hrtimer_interrupt after we migrated everything to
1657 * sort out already expired timers and reprogram the
1658 * event device.
54cdfdb4 1659 */
a6037b61 1660 enqueue_hrtimer(timer, new_base);
41e1022e 1661
b00c1a99
TG
1662 /* Clear the migration state bit */
1663 timer->state &= ~HRTIMER_STATE_MIGRATE;
c0a31329
TG
1664 }
1665}
1666
d5fd43c4 1667static void migrate_hrtimers(int scpu)
c0a31329 1668{
3c8aa39d 1669 struct hrtimer_cpu_base *old_base, *new_base;
731a55ba 1670 int i;
c0a31329 1671
37810659 1672 BUG_ON(cpu_online(scpu));
37810659 1673 tick_cancel_sched_timer(scpu);
731a55ba
TG
1674
1675 local_irq_disable();
1676 old_base = &per_cpu(hrtimer_bases, scpu);
1677 new_base = &__get_cpu_var(hrtimer_bases);
d82f0b0f
ON
1678 /*
1679 * The caller is globally serialized and nobody else
1680 * takes two locks at once, deadlock is not possible.
1681 */
ecb49d1a
TG
1682 raw_spin_lock(&new_base->lock);
1683 raw_spin_lock_nested(&old_base->lock, SINGLE_DEPTH_NESTING);
c0a31329 1684
3c8aa39d 1685 for (i = 0; i < HRTIMER_MAX_CLOCK_BASES; i++) {
ca109491 1686 migrate_hrtimer_list(&old_base->clock_base[i],
37810659 1687 &new_base->clock_base[i]);
c0a31329
TG
1688 }
1689
ecb49d1a
TG
1690 raw_spin_unlock(&old_base->lock);
1691 raw_spin_unlock(&new_base->lock);
37810659 1692
731a55ba
TG
1693 /* Check, if we got expired work to do */
1694 __hrtimer_peek_ahead_timers();
1695 local_irq_enable();
c0a31329 1696}
37810659 1697
c0a31329
TG
1698#endif /* CONFIG_HOTPLUG_CPU */
1699
8c78f307 1700static int __cpuinit hrtimer_cpu_notify(struct notifier_block *self,
c0a31329
TG
1701 unsigned long action, void *hcpu)
1702{
b2e3c0ad 1703 int scpu = (long)hcpu;
c0a31329
TG
1704
1705 switch (action) {
1706
1707 case CPU_UP_PREPARE:
8bb78442 1708 case CPU_UP_PREPARE_FROZEN:
37810659 1709 init_hrtimers_cpu(scpu);
c0a31329
TG
1710 break;
1711
1712#ifdef CONFIG_HOTPLUG_CPU
94df7de0
SD
1713 case CPU_DYING:
1714 case CPU_DYING_FROZEN:
1715 clockevents_notify(CLOCK_EVT_NOTIFY_CPU_DYING, &scpu);
1716 break;
c0a31329 1717 case CPU_DEAD:
8bb78442 1718 case CPU_DEAD_FROZEN:
b2e3c0ad 1719 {
37810659 1720 clockevents_notify(CLOCK_EVT_NOTIFY_CPU_DEAD, &scpu);
d5fd43c4 1721 migrate_hrtimers(scpu);
c0a31329 1722 break;
b2e3c0ad 1723 }
c0a31329
TG
1724#endif
1725
1726 default:
1727 break;
1728 }
1729
1730 return NOTIFY_OK;
1731}
1732
8c78f307 1733static struct notifier_block __cpuinitdata hrtimers_nb = {
c0a31329
TG
1734 .notifier_call = hrtimer_cpu_notify,
1735};
1736
1737void __init hrtimers_init(void)
1738{
1739 hrtimer_cpu_notify(&hrtimers_nb, (unsigned long)CPU_UP_PREPARE,
1740 (void *)(long)smp_processor_id());
1741 register_cpu_notifier(&hrtimers_nb);
a6037b61
PZ
1742#ifdef CONFIG_HIGH_RES_TIMERS
1743 open_softirq(HRTIMER_SOFTIRQ, run_hrtimer_softirq);
1744#endif
c0a31329
TG
1745}
1746
7bb67439 1747/**
351b3f7a 1748 * schedule_hrtimeout_range_clock - sleep until timeout
7bb67439 1749 * @expires: timeout value (ktime_t)
654c8e0b 1750 * @delta: slack in expires timeout (ktime_t)
7bb67439 1751 * @mode: timer mode, HRTIMER_MODE_ABS or HRTIMER_MODE_REL
351b3f7a 1752 * @clock: timer clock, CLOCK_MONOTONIC or CLOCK_REALTIME
7bb67439 1753 */
351b3f7a
CE
1754int __sched
1755schedule_hrtimeout_range_clock(ktime_t *expires, unsigned long delta,
1756 const enum hrtimer_mode mode, int clock)
7bb67439
AV
1757{
1758 struct hrtimer_sleeper t;
1759
1760 /*
1761 * Optimize when a zero timeout value is given. It does not
1762 * matter whether this is an absolute or a relative time.
1763 */
1764 if (expires && !expires->tv64) {
1765 __set_current_state(TASK_RUNNING);
1766 return 0;
1767 }
1768
1769 /*
43b21013 1770 * A NULL parameter means "infinite"
7bb67439
AV
1771 */
1772 if (!expires) {
1773 schedule();
1774 __set_current_state(TASK_RUNNING);
1775 return -EINTR;
1776 }
1777
351b3f7a 1778 hrtimer_init_on_stack(&t.timer, clock, mode);
654c8e0b 1779 hrtimer_set_expires_range_ns(&t.timer, *expires, delta);
7bb67439
AV
1780
1781 hrtimer_init_sleeper(&t, current);
1782
cc584b21 1783 hrtimer_start_expires(&t.timer, mode);
7bb67439
AV
1784 if (!hrtimer_active(&t.timer))
1785 t.task = NULL;
1786
1787 if (likely(t.task))
1788 schedule();
1789
1790 hrtimer_cancel(&t.timer);
1791 destroy_hrtimer_on_stack(&t.timer);
1792
1793 __set_current_state(TASK_RUNNING);
1794
1795 return !t.task ? 0 : -EINTR;
1796}
351b3f7a
CE
1797
1798/**
1799 * schedule_hrtimeout_range - sleep until timeout
1800 * @expires: timeout value (ktime_t)
1801 * @delta: slack in expires timeout (ktime_t)
1802 * @mode: timer mode, HRTIMER_MODE_ABS or HRTIMER_MODE_REL
1803 *
1804 * Make the current task sleep until the given expiry time has
1805 * elapsed. The routine will return immediately unless
1806 * the current task state has been set (see set_current_state()).
1807 *
1808 * The @delta argument gives the kernel the freedom to schedule the
1809 * actual wakeup to a time that is both power and performance friendly.
1810 * The kernel give the normal best effort behavior for "@expires+@delta",
1811 * but may decide to fire the timer earlier, but no earlier than @expires.
1812 *
1813 * You can set the task state as follows -
1814 *
1815 * %TASK_UNINTERRUPTIBLE - at least @timeout time is guaranteed to
1816 * pass before the routine returns.
1817 *
1818 * %TASK_INTERRUPTIBLE - the routine may return early if a signal is
1819 * delivered to the current task.
1820 *
1821 * The current task state is guaranteed to be TASK_RUNNING when this
1822 * routine returns.
1823 *
1824 * Returns 0 when the timer has expired otherwise -EINTR
1825 */
1826int __sched schedule_hrtimeout_range(ktime_t *expires, unsigned long delta,
1827 const enum hrtimer_mode mode)
1828{
1829 return schedule_hrtimeout_range_clock(expires, delta, mode,
1830 CLOCK_MONOTONIC);
1831}
654c8e0b
AV
1832EXPORT_SYMBOL_GPL(schedule_hrtimeout_range);
1833
1834/**
1835 * schedule_hrtimeout - sleep until timeout
1836 * @expires: timeout value (ktime_t)
1837 * @mode: timer mode, HRTIMER_MODE_ABS or HRTIMER_MODE_REL
1838 *
1839 * Make the current task sleep until the given expiry time has
1840 * elapsed. The routine will return immediately unless
1841 * the current task state has been set (see set_current_state()).
1842 *
1843 * You can set the task state as follows -
1844 *
1845 * %TASK_UNINTERRUPTIBLE - at least @timeout time is guaranteed to
1846 * pass before the routine returns.
1847 *
1848 * %TASK_INTERRUPTIBLE - the routine may return early if a signal is
1849 * delivered to the current task.
1850 *
1851 * The current task state is guaranteed to be TASK_RUNNING when this
1852 * routine returns.
1853 *
1854 * Returns 0 when the timer has expired otherwise -EINTR
1855 */
1856int __sched schedule_hrtimeout(ktime_t *expires,
1857 const enum hrtimer_mode mode)
1858{
1859 return schedule_hrtimeout_range(expires, 0, mode);
1860}
7bb67439 1861EXPORT_SYMBOL_GPL(schedule_hrtimeout);