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1da177e4
LT
1/*
2 * linux/kernel/timer.c
3 *
4a22f166 4 * Kernel internal timers
1da177e4
LT
5 *
6 * Copyright (C) 1991, 1992 Linus Torvalds
7 *
8 * 1997-01-28 Modified by Finn Arne Gangstad to make timers scale better.
9 *
10 * 1997-09-10 Updated NTP code according to technical memorandum Jan '96
11 * "A Kernel Model for Precision Timekeeping" by Dave Mills
12 * 1998-12-24 Fixed a xtime SMP race (we need the xtime_lock rw spinlock to
13 * serialize accesses to xtime/lost_ticks).
14 * Copyright (C) 1998 Andrea Arcangeli
15 * 1999-03-10 Improved NTP compatibility by Ulrich Windl
16 * 2002-05-31 Move sys_sysinfo here and make its locking sane, Robert Love
17 * 2000-10-05 Implemented scalable SMP per-CPU timer handling.
18 * Copyright (C) 2000, 2001, 2002 Ingo Molnar
19 * Designed by David S. Miller, Alexey Kuznetsov and Ingo Molnar
20 */
21
22#include <linux/kernel_stat.h>
9984de1a 23#include <linux/export.h>
1da177e4
LT
24#include <linux/interrupt.h>
25#include <linux/percpu.h>
26#include <linux/init.h>
27#include <linux/mm.h>
28#include <linux/swap.h>
b488893a 29#include <linux/pid_namespace.h>
1da177e4
LT
30#include <linux/notifier.h>
31#include <linux/thread_info.h>
32#include <linux/time.h>
33#include <linux/jiffies.h>
34#include <linux/posix-timers.h>
35#include <linux/cpu.h>
36#include <linux/syscalls.h>
97a41e26 37#include <linux/delay.h>
79bf2bb3 38#include <linux/tick.h>
82f67cd9 39#include <linux/kallsyms.h>
e360adbe 40#include <linux/irq_work.h>
174cd4b1 41#include <linux/sched/signal.h>
cf4aebc2 42#include <linux/sched/sysctl.h>
370c9135 43#include <linux/sched/nohz.h>
b17b0153 44#include <linux/sched/debug.h>
5a0e3ad6 45#include <linux/slab.h>
1a0df594 46#include <linux/compat.h>
1da177e4 47
7c0f6ba6 48#include <linux/uaccess.h>
1da177e4
LT
49#include <asm/unistd.h>
50#include <asm/div64.h>
51#include <asm/timex.h>
52#include <asm/io.h>
53
c1ad348b
TG
54#include "tick-internal.h"
55
2b022e3d
XG
56#define CREATE_TRACE_POINTS
57#include <trace/events/timer.h>
58
40747ffa 59__visible u64 jiffies_64 __cacheline_aligned_in_smp = INITIAL_JIFFIES;
ecea8d19
TG
60
61EXPORT_SYMBOL(jiffies_64);
62
1da177e4 63/*
500462a9
TG
64 * The timer wheel has LVL_DEPTH array levels. Each level provides an array of
65 * LVL_SIZE buckets. Each level is driven by its own clock and therefor each
66 * level has a different granularity.
67 *
68 * The level granularity is: LVL_CLK_DIV ^ lvl
69 * The level clock frequency is: HZ / (LVL_CLK_DIV ^ level)
70 *
71 * The array level of a newly armed timer depends on the relative expiry
72 * time. The farther the expiry time is away the higher the array level and
73 * therefor the granularity becomes.
74 *
75 * Contrary to the original timer wheel implementation, which aims for 'exact'
76 * expiry of the timers, this implementation removes the need for recascading
77 * the timers into the lower array levels. The previous 'classic' timer wheel
78 * implementation of the kernel already violated the 'exact' expiry by adding
79 * slack to the expiry time to provide batched expiration. The granularity
80 * levels provide implicit batching.
81 *
82 * This is an optimization of the original timer wheel implementation for the
83 * majority of the timer wheel use cases: timeouts. The vast majority of
84 * timeout timers (networking, disk I/O ...) are canceled before expiry. If
85 * the timeout expires it indicates that normal operation is disturbed, so it
86 * does not matter much whether the timeout comes with a slight delay.
87 *
88 * The only exception to this are networking timers with a small expiry
89 * time. They rely on the granularity. Those fit into the first wheel level,
90 * which has HZ granularity.
91 *
92 * We don't have cascading anymore. timers with a expiry time above the
93 * capacity of the last wheel level are force expired at the maximum timeout
94 * value of the last wheel level. From data sampling we know that the maximum
95 * value observed is 5 days (network connection tracking), so this should not
96 * be an issue.
97 *
98 * The currently chosen array constants values are a good compromise between
99 * array size and granularity.
100 *
101 * This results in the following granularity and range levels:
102 *
103 * HZ 1000 steps
104 * Level Offset Granularity Range
105 * 0 0 1 ms 0 ms - 63 ms
106 * 1 64 8 ms 64 ms - 511 ms
107 * 2 128 64 ms 512 ms - 4095 ms (512ms - ~4s)
108 * 3 192 512 ms 4096 ms - 32767 ms (~4s - ~32s)
109 * 4 256 4096 ms (~4s) 32768 ms - 262143 ms (~32s - ~4m)
110 * 5 320 32768 ms (~32s) 262144 ms - 2097151 ms (~4m - ~34m)
111 * 6 384 262144 ms (~4m) 2097152 ms - 16777215 ms (~34m - ~4h)
112 * 7 448 2097152 ms (~34m) 16777216 ms - 134217727 ms (~4h - ~1d)
113 * 8 512 16777216 ms (~4h) 134217728 ms - 1073741822 ms (~1d - ~12d)
114 *
115 * HZ 300
116 * Level Offset Granularity Range
117 * 0 0 3 ms 0 ms - 210 ms
118 * 1 64 26 ms 213 ms - 1703 ms (213ms - ~1s)
119 * 2 128 213 ms 1706 ms - 13650 ms (~1s - ~13s)
120 * 3 192 1706 ms (~1s) 13653 ms - 109223 ms (~13s - ~1m)
121 * 4 256 13653 ms (~13s) 109226 ms - 873810 ms (~1m - ~14m)
122 * 5 320 109226 ms (~1m) 873813 ms - 6990503 ms (~14m - ~1h)
123 * 6 384 873813 ms (~14m) 6990506 ms - 55924050 ms (~1h - ~15h)
124 * 7 448 6990506 ms (~1h) 55924053 ms - 447392423 ms (~15h - ~5d)
125 * 8 512 55924053 ms (~15h) 447392426 ms - 3579139406 ms (~5d - ~41d)
126 *
127 * HZ 250
128 * Level Offset Granularity Range
129 * 0 0 4 ms 0 ms - 255 ms
130 * 1 64 32 ms 256 ms - 2047 ms (256ms - ~2s)
131 * 2 128 256 ms 2048 ms - 16383 ms (~2s - ~16s)
132 * 3 192 2048 ms (~2s) 16384 ms - 131071 ms (~16s - ~2m)
133 * 4 256 16384 ms (~16s) 131072 ms - 1048575 ms (~2m - ~17m)
134 * 5 320 131072 ms (~2m) 1048576 ms - 8388607 ms (~17m - ~2h)
135 * 6 384 1048576 ms (~17m) 8388608 ms - 67108863 ms (~2h - ~18h)
136 * 7 448 8388608 ms (~2h) 67108864 ms - 536870911 ms (~18h - ~6d)
137 * 8 512 67108864 ms (~18h) 536870912 ms - 4294967288 ms (~6d - ~49d)
138 *
139 * HZ 100
140 * Level Offset Granularity Range
141 * 0 0 10 ms 0 ms - 630 ms
142 * 1 64 80 ms 640 ms - 5110 ms (640ms - ~5s)
143 * 2 128 640 ms 5120 ms - 40950 ms (~5s - ~40s)
144 * 3 192 5120 ms (~5s) 40960 ms - 327670 ms (~40s - ~5m)
145 * 4 256 40960 ms (~40s) 327680 ms - 2621430 ms (~5m - ~43m)
146 * 5 320 327680 ms (~5m) 2621440 ms - 20971510 ms (~43m - ~5h)
147 * 6 384 2621440 ms (~43m) 20971520 ms - 167772150 ms (~5h - ~1d)
148 * 7 448 20971520 ms (~5h) 167772160 ms - 1342177270 ms (~1d - ~15d)
1da177e4 149 */
1da177e4 150
500462a9
TG
151/* Clock divisor for the next level */
152#define LVL_CLK_SHIFT 3
153#define LVL_CLK_DIV (1UL << LVL_CLK_SHIFT)
154#define LVL_CLK_MASK (LVL_CLK_DIV - 1)
155#define LVL_SHIFT(n) ((n) * LVL_CLK_SHIFT)
156#define LVL_GRAN(n) (1UL << LVL_SHIFT(n))
1da177e4 157
500462a9
TG
158/*
159 * The time start value for each level to select the bucket at enqueue
160 * time.
161 */
162#define LVL_START(n) ((LVL_SIZE - 1) << (((n) - 1) * LVL_CLK_SHIFT))
163
164/* Size of each clock level */
165#define LVL_BITS 6
166#define LVL_SIZE (1UL << LVL_BITS)
167#define LVL_MASK (LVL_SIZE - 1)
168#define LVL_OFFS(n) ((n) * LVL_SIZE)
169
170/* Level depth */
171#if HZ > 100
172# define LVL_DEPTH 9
173# else
174# define LVL_DEPTH 8
175#endif
176
177/* The cutoff (max. capacity of the wheel) */
178#define WHEEL_TIMEOUT_CUTOFF (LVL_START(LVL_DEPTH))
179#define WHEEL_TIMEOUT_MAX (WHEEL_TIMEOUT_CUTOFF - LVL_GRAN(LVL_DEPTH - 1))
180
181/*
182 * The resulting wheel size. If NOHZ is configured we allocate two
183 * wheels so we have a separate storage for the deferrable timers.
184 */
185#define WHEEL_SIZE (LVL_SIZE * LVL_DEPTH)
186
187#ifdef CONFIG_NO_HZ_COMMON
188# define NR_BASES 2
189# define BASE_STD 0
190# define BASE_DEF 1
191#else
192# define NR_BASES 1
193# define BASE_STD 0
194# define BASE_DEF 0
195#endif
1da177e4 196
494af3ed 197struct timer_base {
2287d866 198 raw_spinlock_t lock;
500462a9
TG
199 struct timer_list *running_timer;
200 unsigned long clk;
a683f390 201 unsigned long next_expiry;
500462a9
TG
202 unsigned int cpu;
203 bool migration_enabled;
204 bool nohz_active;
a683f390 205 bool is_idle;
2fe59f50 206 bool must_forward_clk;
500462a9
TG
207 DECLARE_BITMAP(pending_map, WHEEL_SIZE);
208 struct hlist_head vectors[WHEEL_SIZE];
6e453a67 209} ____cacheline_aligned;
e52b1db3 210
500462a9 211static DEFINE_PER_CPU(struct timer_base, timer_bases[NR_BASES]);
6e453a67 212
bc7a34b8
TG
213#if defined(CONFIG_SMP) && defined(CONFIG_NO_HZ_COMMON)
214unsigned int sysctl_timer_migration = 1;
215
683be13a 216void timers_update_migration(bool update_nohz)
bc7a34b8
TG
217{
218 bool on = sysctl_timer_migration && tick_nohz_active;
219 unsigned int cpu;
220
221 /* Avoid the loop, if nothing to update */
500462a9 222 if (this_cpu_read(timer_bases[BASE_STD].migration_enabled) == on)
bc7a34b8
TG
223 return;
224
225 for_each_possible_cpu(cpu) {
500462a9
TG
226 per_cpu(timer_bases[BASE_STD].migration_enabled, cpu) = on;
227 per_cpu(timer_bases[BASE_DEF].migration_enabled, cpu) = on;
bc7a34b8 228 per_cpu(hrtimer_bases.migration_enabled, cpu) = on;
683be13a
TG
229 if (!update_nohz)
230 continue;
500462a9
TG
231 per_cpu(timer_bases[BASE_STD].nohz_active, cpu) = true;
232 per_cpu(timer_bases[BASE_DEF].nohz_active, cpu) = true;
683be13a 233 per_cpu(hrtimer_bases.nohz_active, cpu) = true;
bc7a34b8
TG
234 }
235}
236
237int timer_migration_handler(struct ctl_table *table, int write,
238 void __user *buffer, size_t *lenp,
239 loff_t *ppos)
240{
241 static DEFINE_MUTEX(mutex);
242 int ret;
243
244 mutex_lock(&mutex);
b94bf594 245 ret = proc_dointvec_minmax(table, write, buffer, lenp, ppos);
bc7a34b8 246 if (!ret && write)
683be13a 247 timers_update_migration(false);
bc7a34b8
TG
248 mutex_unlock(&mutex);
249 return ret;
250}
bc7a34b8
TG
251#endif
252
9c133c46
AS
253static unsigned long round_jiffies_common(unsigned long j, int cpu,
254 bool force_up)
4c36a5de
AV
255{
256 int rem;
257 unsigned long original = j;
258
259 /*
260 * We don't want all cpus firing their timers at once hitting the
261 * same lock or cachelines, so we skew each extra cpu with an extra
262 * 3 jiffies. This 3 jiffies came originally from the mm/ code which
263 * already did this.
264 * The skew is done by adding 3*cpunr, then round, then subtract this
265 * extra offset again.
266 */
267 j += cpu * 3;
268
269 rem = j % HZ;
270
271 /*
272 * If the target jiffie is just after a whole second (which can happen
273 * due to delays of the timer irq, long irq off times etc etc) then
274 * we should round down to the whole second, not up. Use 1/4th second
275 * as cutoff for this rounding as an extreme upper bound for this.
9c133c46 276 * But never round down if @force_up is set.
4c36a5de 277 */
9c133c46 278 if (rem < HZ/4 && !force_up) /* round down */
4c36a5de
AV
279 j = j - rem;
280 else /* round up */
281 j = j - rem + HZ;
282
283 /* now that we have rounded, subtract the extra skew again */
284 j -= cpu * 3;
285
9e04d380
BVA
286 /*
287 * Make sure j is still in the future. Otherwise return the
288 * unmodified value.
289 */
290 return time_is_after_jiffies(j) ? j : original;
4c36a5de 291}
9c133c46
AS
292
293/**
294 * __round_jiffies - function to round jiffies to a full second
295 * @j: the time in (absolute) jiffies that should be rounded
296 * @cpu: the processor number on which the timeout will happen
297 *
298 * __round_jiffies() rounds an absolute time in the future (in jiffies)
299 * up or down to (approximately) full seconds. This is useful for timers
300 * for which the exact time they fire does not matter too much, as long as
301 * they fire approximately every X seconds.
302 *
303 * By rounding these timers to whole seconds, all such timers will fire
304 * at the same time, rather than at various times spread out. The goal
305 * of this is to have the CPU wake up less, which saves power.
306 *
307 * The exact rounding is skewed for each processor to avoid all
308 * processors firing at the exact same time, which could lead
309 * to lock contention or spurious cache line bouncing.
310 *
311 * The return value is the rounded version of the @j parameter.
312 */
313unsigned long __round_jiffies(unsigned long j, int cpu)
314{
315 return round_jiffies_common(j, cpu, false);
316}
4c36a5de
AV
317EXPORT_SYMBOL_GPL(__round_jiffies);
318
319/**
320 * __round_jiffies_relative - function to round jiffies to a full second
321 * @j: the time in (relative) jiffies that should be rounded
322 * @cpu: the processor number on which the timeout will happen
323 *
72fd4a35 324 * __round_jiffies_relative() rounds a time delta in the future (in jiffies)
4c36a5de
AV
325 * up or down to (approximately) full seconds. This is useful for timers
326 * for which the exact time they fire does not matter too much, as long as
327 * they fire approximately every X seconds.
328 *
329 * By rounding these timers to whole seconds, all such timers will fire
330 * at the same time, rather than at various times spread out. The goal
331 * of this is to have the CPU wake up less, which saves power.
332 *
333 * The exact rounding is skewed for each processor to avoid all
334 * processors firing at the exact same time, which could lead
335 * to lock contention or spurious cache line bouncing.
336 *
72fd4a35 337 * The return value is the rounded version of the @j parameter.
4c36a5de
AV
338 */
339unsigned long __round_jiffies_relative(unsigned long j, int cpu)
340{
9c133c46
AS
341 unsigned long j0 = jiffies;
342
343 /* Use j0 because jiffies might change while we run */
344 return round_jiffies_common(j + j0, cpu, false) - j0;
4c36a5de
AV
345}
346EXPORT_SYMBOL_GPL(__round_jiffies_relative);
347
348/**
349 * round_jiffies - function to round jiffies to a full second
350 * @j: the time in (absolute) jiffies that should be rounded
351 *
72fd4a35 352 * round_jiffies() rounds an absolute time in the future (in jiffies)
4c36a5de
AV
353 * up or down to (approximately) full seconds. This is useful for timers
354 * for which the exact time they fire does not matter too much, as long as
355 * they fire approximately every X seconds.
356 *
357 * By rounding these timers to whole seconds, all such timers will fire
358 * at the same time, rather than at various times spread out. The goal
359 * of this is to have the CPU wake up less, which saves power.
360 *
72fd4a35 361 * The return value is the rounded version of the @j parameter.
4c36a5de
AV
362 */
363unsigned long round_jiffies(unsigned long j)
364{
9c133c46 365 return round_jiffies_common(j, raw_smp_processor_id(), false);
4c36a5de
AV
366}
367EXPORT_SYMBOL_GPL(round_jiffies);
368
369/**
370 * round_jiffies_relative - function to round jiffies to a full second
371 * @j: the time in (relative) jiffies that should be rounded
372 *
72fd4a35 373 * round_jiffies_relative() rounds a time delta in the future (in jiffies)
4c36a5de
AV
374 * up or down to (approximately) full seconds. This is useful for timers
375 * for which the exact time they fire does not matter too much, as long as
376 * they fire approximately every X seconds.
377 *
378 * By rounding these timers to whole seconds, all such timers will fire
379 * at the same time, rather than at various times spread out. The goal
380 * of this is to have the CPU wake up less, which saves power.
381 *
72fd4a35 382 * The return value is the rounded version of the @j parameter.
4c36a5de
AV
383 */
384unsigned long round_jiffies_relative(unsigned long j)
385{
386 return __round_jiffies_relative(j, raw_smp_processor_id());
387}
388EXPORT_SYMBOL_GPL(round_jiffies_relative);
389
9c133c46
AS
390/**
391 * __round_jiffies_up - function to round jiffies up to a full second
392 * @j: the time in (absolute) jiffies that should be rounded
393 * @cpu: the processor number on which the timeout will happen
394 *
395 * This is the same as __round_jiffies() except that it will never
396 * round down. This is useful for timeouts for which the exact time
397 * of firing does not matter too much, as long as they don't fire too
398 * early.
399 */
400unsigned long __round_jiffies_up(unsigned long j, int cpu)
401{
402 return round_jiffies_common(j, cpu, true);
403}
404EXPORT_SYMBOL_GPL(__round_jiffies_up);
405
406/**
407 * __round_jiffies_up_relative - function to round jiffies up to a full second
408 * @j: the time in (relative) jiffies that should be rounded
409 * @cpu: the processor number on which the timeout will happen
410 *
411 * This is the same as __round_jiffies_relative() except that it will never
412 * round down. This is useful for timeouts for which the exact time
413 * of firing does not matter too much, as long as they don't fire too
414 * early.
415 */
416unsigned long __round_jiffies_up_relative(unsigned long j, int cpu)
417{
418 unsigned long j0 = jiffies;
419
420 /* Use j0 because jiffies might change while we run */
421 return round_jiffies_common(j + j0, cpu, true) - j0;
422}
423EXPORT_SYMBOL_GPL(__round_jiffies_up_relative);
424
425/**
426 * round_jiffies_up - function to round jiffies up to a full second
427 * @j: the time in (absolute) jiffies that should be rounded
428 *
429 * This is the same as round_jiffies() except that it will never
430 * round down. This is useful for timeouts for which the exact time
431 * of firing does not matter too much, as long as they don't fire too
432 * early.
433 */
434unsigned long round_jiffies_up(unsigned long j)
435{
436 return round_jiffies_common(j, raw_smp_processor_id(), true);
437}
438EXPORT_SYMBOL_GPL(round_jiffies_up);
439
440/**
441 * round_jiffies_up_relative - function to round jiffies up to a full second
442 * @j: the time in (relative) jiffies that should be rounded
443 *
444 * This is the same as round_jiffies_relative() except that it will never
445 * round down. This is useful for timeouts for which the exact time
446 * of firing does not matter too much, as long as they don't fire too
447 * early.
448 */
449unsigned long round_jiffies_up_relative(unsigned long j)
450{
451 return __round_jiffies_up_relative(j, raw_smp_processor_id());
452}
453EXPORT_SYMBOL_GPL(round_jiffies_up_relative);
454
3bbb9ec9 455
500462a9 456static inline unsigned int timer_get_idx(struct timer_list *timer)
3bbb9ec9 457{
500462a9 458 return (timer->flags & TIMER_ARRAYMASK) >> TIMER_ARRAYSHIFT;
3bbb9ec9 459}
3bbb9ec9 460
500462a9 461static inline void timer_set_idx(struct timer_list *timer, unsigned int idx)
1da177e4 462{
500462a9
TG
463 timer->flags = (timer->flags & ~TIMER_ARRAYMASK) |
464 idx << TIMER_ARRAYSHIFT;
465}
1da177e4 466
500462a9
TG
467/*
468 * Helper function to calculate the array index for a given expiry
469 * time.
470 */
471static inline unsigned calc_index(unsigned expires, unsigned lvl)
472{
473 expires = (expires + LVL_GRAN(lvl)) >> LVL_SHIFT(lvl);
474 return LVL_OFFS(lvl) + (expires & LVL_MASK);
475}
476
ffdf0477 477static int calc_wheel_index(unsigned long expires, unsigned long clk)
1da177e4 478{
ffdf0477 479 unsigned long delta = expires - clk;
500462a9
TG
480 unsigned int idx;
481
482 if (delta < LVL_START(1)) {
483 idx = calc_index(expires, 0);
484 } else if (delta < LVL_START(2)) {
485 idx = calc_index(expires, 1);
486 } else if (delta < LVL_START(3)) {
487 idx = calc_index(expires, 2);
488 } else if (delta < LVL_START(4)) {
489 idx = calc_index(expires, 3);
490 } else if (delta < LVL_START(5)) {
491 idx = calc_index(expires, 4);
492 } else if (delta < LVL_START(6)) {
493 idx = calc_index(expires, 5);
494 } else if (delta < LVL_START(7)) {
495 idx = calc_index(expires, 6);
496 } else if (LVL_DEPTH > 8 && delta < LVL_START(8)) {
497 idx = calc_index(expires, 7);
498 } else if ((long) delta < 0) {
ffdf0477 499 idx = clk & LVL_MASK;
1da177e4 500 } else {
500462a9
TG
501 /*
502 * Force expire obscene large timeouts to expire at the
503 * capacity limit of the wheel.
1da177e4 504 */
500462a9
TG
505 if (expires >= WHEEL_TIMEOUT_CUTOFF)
506 expires = WHEEL_TIMEOUT_MAX;
1bd04bf6 507
500462a9 508 idx = calc_index(expires, LVL_DEPTH - 1);
1da177e4 509 }
ffdf0477
AMG
510 return idx;
511}
1bd04bf6 512
ffdf0477
AMG
513/*
514 * Enqueue the timer into the hash bucket, mark it pending in
515 * the bitmap and store the index in the timer flags.
516 */
517static void enqueue_timer(struct timer_base *base, struct timer_list *timer,
518 unsigned int idx)
519{
520 hlist_add_head(&timer->entry, base->vectors + idx);
500462a9
TG
521 __set_bit(idx, base->pending_map);
522 timer_set_idx(timer, idx);
1da177e4
LT
523}
524
ffdf0477
AMG
525static void
526__internal_add_timer(struct timer_base *base, struct timer_list *timer)
facbb4a7 527{
ffdf0477
AMG
528 unsigned int idx;
529
530 idx = calc_wheel_index(timer->expires, base->clk);
531 enqueue_timer(base, timer, idx);
532}
9f6d9baa 533
ffdf0477
AMG
534static void
535trigger_dyntick_cpu(struct timer_base *base, struct timer_list *timer)
536{
a683f390
TG
537 if (!IS_ENABLED(CONFIG_NO_HZ_COMMON) || !base->nohz_active)
538 return;
3bb475a3 539
facbb4a7 540 /*
a683f390
TG
541 * TODO: This wants some optimizing similar to the code below, but we
542 * will do that when we switch from push to pull for deferrable timers.
facbb4a7 543 */
a683f390
TG
544 if (timer->flags & TIMER_DEFERRABLE) {
545 if (tick_nohz_full_cpu(base->cpu))
683be13a 546 wake_up_nohz_cpu(base->cpu);
a683f390 547 return;
99d5f3aa 548 }
9f6d9baa
VK
549
550 /*
a683f390
TG
551 * We might have to IPI the remote CPU if the base is idle and the
552 * timer is not deferrable. If the other CPU is on the way to idle
553 * then it can't set base->is_idle as we hold the base lock:
9f6d9baa 554 */
a683f390
TG
555 if (!base->is_idle)
556 return;
557
558 /* Check whether this is the new first expiring timer: */
559 if (time_after_eq(timer->expires, base->next_expiry))
560 return;
561
562 /*
563 * Set the next expiry time and kick the CPU so it can reevaluate the
564 * wheel:
565 */
566 base->next_expiry = timer->expires;
ffdf0477
AMG
567 wake_up_nohz_cpu(base->cpu);
568}
569
570static void
571internal_add_timer(struct timer_base *base, struct timer_list *timer)
572{
573 __internal_add_timer(base, timer);
574 trigger_dyntick_cpu(base, timer);
facbb4a7
TG
575}
576
c6f3a97f
TG
577#ifdef CONFIG_DEBUG_OBJECTS_TIMERS
578
579static struct debug_obj_descr timer_debug_descr;
580
99777288
SG
581static void *timer_debug_hint(void *addr)
582{
583 return ((struct timer_list *) addr)->function;
584}
585
b9fdac7f
DC
586static bool timer_is_static_object(void *addr)
587{
588 struct timer_list *timer = addr;
589
590 return (timer->entry.pprev == NULL &&
591 timer->entry.next == TIMER_ENTRY_STATIC);
592}
593
c6f3a97f
TG
594/*
595 * fixup_init is called when:
596 * - an active object is initialized
55c888d6 597 */
e3252464 598static bool timer_fixup_init(void *addr, enum debug_obj_state state)
c6f3a97f
TG
599{
600 struct timer_list *timer = addr;
601
602 switch (state) {
603 case ODEBUG_STATE_ACTIVE:
604 del_timer_sync(timer);
605 debug_object_init(timer, &timer_debug_descr);
e3252464 606 return true;
c6f3a97f 607 default:
e3252464 608 return false;
c6f3a97f
TG
609 }
610}
611
fb16b8cf 612/* Stub timer callback for improperly used timers. */
ba16490e 613static void stub_timer(struct timer_list *unused)
fb16b8cf
SB
614{
615 WARN_ON(1);
616}
617
c6f3a97f
TG
618/*
619 * fixup_activate is called when:
620 * - an active object is activated
b9fdac7f 621 * - an unknown non-static object is activated
c6f3a97f 622 */
e3252464 623static bool timer_fixup_activate(void *addr, enum debug_obj_state state)
c6f3a97f
TG
624{
625 struct timer_list *timer = addr;
626
627 switch (state) {
c6f3a97f 628 case ODEBUG_STATE_NOTAVAILABLE:
ba16490e 629 timer_setup(timer, stub_timer, 0);
b9fdac7f 630 return true;
c6f3a97f
TG
631
632 case ODEBUG_STATE_ACTIVE:
633 WARN_ON(1);
634
635 default:
e3252464 636 return false;
c6f3a97f
TG
637 }
638}
639
640/*
641 * fixup_free is called when:
642 * - an active object is freed
643 */
e3252464 644static bool timer_fixup_free(void *addr, enum debug_obj_state state)
c6f3a97f
TG
645{
646 struct timer_list *timer = addr;
647
648 switch (state) {
649 case ODEBUG_STATE_ACTIVE:
650 del_timer_sync(timer);
651 debug_object_free(timer, &timer_debug_descr);
e3252464 652 return true;
c6f3a97f 653 default:
e3252464 654 return false;
c6f3a97f
TG
655 }
656}
657
dc4218bd
CC
658/*
659 * fixup_assert_init is called when:
660 * - an untracked/uninit-ed object is found
661 */
e3252464 662static bool timer_fixup_assert_init(void *addr, enum debug_obj_state state)
dc4218bd
CC
663{
664 struct timer_list *timer = addr;
665
666 switch (state) {
667 case ODEBUG_STATE_NOTAVAILABLE:
ba16490e 668 timer_setup(timer, stub_timer, 0);
b9fdac7f 669 return true;
dc4218bd 670 default:
e3252464 671 return false;
dc4218bd
CC
672 }
673}
674
c6f3a97f 675static struct debug_obj_descr timer_debug_descr = {
dc4218bd
CC
676 .name = "timer_list",
677 .debug_hint = timer_debug_hint,
b9fdac7f 678 .is_static_object = timer_is_static_object,
dc4218bd
CC
679 .fixup_init = timer_fixup_init,
680 .fixup_activate = timer_fixup_activate,
681 .fixup_free = timer_fixup_free,
682 .fixup_assert_init = timer_fixup_assert_init,
c6f3a97f
TG
683};
684
685static inline void debug_timer_init(struct timer_list *timer)
686{
687 debug_object_init(timer, &timer_debug_descr);
688}
689
690static inline void debug_timer_activate(struct timer_list *timer)
691{
692 debug_object_activate(timer, &timer_debug_descr);
693}
694
695static inline void debug_timer_deactivate(struct timer_list *timer)
696{
697 debug_object_deactivate(timer, &timer_debug_descr);
698}
699
700static inline void debug_timer_free(struct timer_list *timer)
701{
702 debug_object_free(timer, &timer_debug_descr);
703}
704
dc4218bd
CC
705static inline void debug_timer_assert_init(struct timer_list *timer)
706{
707 debug_object_assert_init(timer, &timer_debug_descr);
708}
709
188665b2
KC
710static void do_init_timer(struct timer_list *timer,
711 void (*func)(struct timer_list *),
712 unsigned int flags,
fc683995 713 const char *name, struct lock_class_key *key);
c6f3a97f 714
188665b2
KC
715void init_timer_on_stack_key(struct timer_list *timer,
716 void (*func)(struct timer_list *),
717 unsigned int flags,
fc683995 718 const char *name, struct lock_class_key *key)
c6f3a97f
TG
719{
720 debug_object_init_on_stack(timer, &timer_debug_descr);
188665b2 721 do_init_timer(timer, func, flags, name, key);
c6f3a97f 722}
6f2b9b9a 723EXPORT_SYMBOL_GPL(init_timer_on_stack_key);
c6f3a97f
TG
724
725void destroy_timer_on_stack(struct timer_list *timer)
726{
727 debug_object_free(timer, &timer_debug_descr);
728}
729EXPORT_SYMBOL_GPL(destroy_timer_on_stack);
730
731#else
732static inline void debug_timer_init(struct timer_list *timer) { }
733static inline void debug_timer_activate(struct timer_list *timer) { }
734static inline void debug_timer_deactivate(struct timer_list *timer) { }
dc4218bd 735static inline void debug_timer_assert_init(struct timer_list *timer) { }
c6f3a97f
TG
736#endif
737
2b022e3d
XG
738static inline void debug_init(struct timer_list *timer)
739{
740 debug_timer_init(timer);
741 trace_timer_init(timer);
742}
743
744static inline void
745debug_activate(struct timer_list *timer, unsigned long expires)
746{
747 debug_timer_activate(timer);
0eeda71b 748 trace_timer_start(timer, expires, timer->flags);
2b022e3d
XG
749}
750
751static inline void debug_deactivate(struct timer_list *timer)
752{
753 debug_timer_deactivate(timer);
754 trace_timer_cancel(timer);
755}
756
dc4218bd
CC
757static inline void debug_assert_init(struct timer_list *timer)
758{
759 debug_timer_assert_init(timer);
760}
761
188665b2
KC
762static void do_init_timer(struct timer_list *timer,
763 void (*func)(struct timer_list *),
764 unsigned int flags,
fc683995 765 const char *name, struct lock_class_key *key)
55c888d6 766{
1dabbcec 767 timer->entry.pprev = NULL;
188665b2 768 timer->function = func;
0eeda71b 769 timer->flags = flags | raw_smp_processor_id();
6f2b9b9a 770 lockdep_init_map(&timer->lockdep_map, name, key, 0);
55c888d6 771}
c6f3a97f
TG
772
773/**
633fe795 774 * init_timer_key - initialize a timer
c6f3a97f 775 * @timer: the timer to be initialized
188665b2 776 * @func: timer callback function
fc683995 777 * @flags: timer flags
633fe795
RD
778 * @name: name of the timer
779 * @key: lockdep class key of the fake lock used for tracking timer
780 * sync lock dependencies
c6f3a97f 781 *
633fe795 782 * init_timer_key() must be done to a timer prior calling *any* of the
c6f3a97f
TG
783 * other timer functions.
784 */
188665b2
KC
785void init_timer_key(struct timer_list *timer,
786 void (*func)(struct timer_list *), unsigned int flags,
fc683995 787 const char *name, struct lock_class_key *key)
c6f3a97f 788{
2b022e3d 789 debug_init(timer);
188665b2 790 do_init_timer(timer, func, flags, name, key);
c6f3a97f 791}
6f2b9b9a 792EXPORT_SYMBOL(init_timer_key);
55c888d6 793
ec44bc7a 794static inline void detach_timer(struct timer_list *timer, bool clear_pending)
55c888d6 795{
1dabbcec 796 struct hlist_node *entry = &timer->entry;
55c888d6 797
2b022e3d 798 debug_deactivate(timer);
c6f3a97f 799
1dabbcec 800 __hlist_del(entry);
55c888d6 801 if (clear_pending)
1dabbcec
TG
802 entry->pprev = NULL;
803 entry->next = LIST_POISON2;
55c888d6
ON
804}
805
494af3ed 806static int detach_if_pending(struct timer_list *timer, struct timer_base *base,
ec44bc7a
TG
807 bool clear_pending)
808{
500462a9
TG
809 unsigned idx = timer_get_idx(timer);
810
ec44bc7a
TG
811 if (!timer_pending(timer))
812 return 0;
813
500462a9
TG
814 if (hlist_is_singular_node(&timer->entry, base->vectors + idx))
815 __clear_bit(idx, base->pending_map);
816
ec44bc7a 817 detach_timer(timer, clear_pending);
ec44bc7a
TG
818 return 1;
819}
820
500462a9
TG
821static inline struct timer_base *get_timer_cpu_base(u32 tflags, u32 cpu)
822{
823 struct timer_base *base = per_cpu_ptr(&timer_bases[BASE_STD], cpu);
824
825 /*
826 * If the timer is deferrable and nohz is active then we need to use
827 * the deferrable base.
828 */
829 if (IS_ENABLED(CONFIG_NO_HZ_COMMON) && base->nohz_active &&
830 (tflags & TIMER_DEFERRABLE))
831 base = per_cpu_ptr(&timer_bases[BASE_DEF], cpu);
832 return base;
833}
834
835static inline struct timer_base *get_timer_this_cpu_base(u32 tflags)
836{
837 struct timer_base *base = this_cpu_ptr(&timer_bases[BASE_STD]);
838
839 /*
840 * If the timer is deferrable and nohz is active then we need to use
841 * the deferrable base.
842 */
843 if (IS_ENABLED(CONFIG_NO_HZ_COMMON) && base->nohz_active &&
844 (tflags & TIMER_DEFERRABLE))
845 base = this_cpu_ptr(&timer_bases[BASE_DEF]);
846 return base;
847}
848
849static inline struct timer_base *get_timer_base(u32 tflags)
850{
851 return get_timer_cpu_base(tflags, tflags & TIMER_CPUMASK);
852}
853
a683f390
TG
854#ifdef CONFIG_NO_HZ_COMMON
855static inline struct timer_base *
6bad6bcc 856get_target_base(struct timer_base *base, unsigned tflags)
500462a9 857{
a683f390 858#ifdef CONFIG_SMP
500462a9
TG
859 if ((tflags & TIMER_PINNED) || !base->migration_enabled)
860 return get_timer_this_cpu_base(tflags);
861 return get_timer_cpu_base(tflags, get_nohz_timer_target());
862#else
863 return get_timer_this_cpu_base(tflags);
864#endif
865}
866
a683f390
TG
867static inline void forward_timer_base(struct timer_base *base)
868{
2fe59f50 869 unsigned long jnow;
6bad6bcc 870
a683f390 871 /*
2fe59f50
NP
872 * We only forward the base when we are idle or have just come out of
873 * idle (must_forward_clk logic), and have a delta between base clock
874 * and jiffies. In the common case, run_timers will take care of it.
a683f390 875 */
2fe59f50
NP
876 if (likely(!base->must_forward_clk))
877 return;
878
879 jnow = READ_ONCE(jiffies);
880 base->must_forward_clk = base->is_idle;
881 if ((long)(jnow - base->clk) < 2)
a683f390
TG
882 return;
883
884 /*
885 * If the next expiry value is > jiffies, then we fast forward to
886 * jiffies otherwise we forward to the next expiry value.
887 */
6bad6bcc
TG
888 if (time_after(base->next_expiry, jnow))
889 base->clk = jnow;
a683f390
TG
890 else
891 base->clk = base->next_expiry;
892}
893#else
894static inline struct timer_base *
6bad6bcc 895get_target_base(struct timer_base *base, unsigned tflags)
a683f390
TG
896{
897 return get_timer_this_cpu_base(tflags);
898}
899
900static inline void forward_timer_base(struct timer_base *base) { }
901#endif
902
a683f390 903
55c888d6 904/*
500462a9
TG
905 * We are using hashed locking: Holding per_cpu(timer_bases[x]).lock means
906 * that all timers which are tied to this base are locked, and the base itself
907 * is locked too.
55c888d6
ON
908 *
909 * So __run_timers/migrate_timers can safely modify all timers which could
500462a9 910 * be found in the base->vectors array.
55c888d6 911 *
500462a9
TG
912 * When a timer is migrating then the TIMER_MIGRATING flag is set and we need
913 * to wait until the migration is done.
55c888d6 914 */
494af3ed 915static struct timer_base *lock_timer_base(struct timer_list *timer,
500462a9 916 unsigned long *flags)
89e7e374 917 __acquires(timer->base->lock)
55c888d6 918{
55c888d6 919 for (;;) {
494af3ed 920 struct timer_base *base;
b831275a
TG
921 u32 tf;
922
923 /*
924 * We need to use READ_ONCE() here, otherwise the compiler
925 * might re-read @tf between the check for TIMER_MIGRATING
926 * and spin_lock().
927 */
928 tf = READ_ONCE(timer->flags);
0eeda71b
TG
929
930 if (!(tf & TIMER_MIGRATING)) {
500462a9 931 base = get_timer_base(tf);
2287d866 932 raw_spin_lock_irqsave(&base->lock, *flags);
0eeda71b 933 if (timer->flags == tf)
55c888d6 934 return base;
2287d866 935 raw_spin_unlock_irqrestore(&base->lock, *flags);
55c888d6
ON
936 }
937 cpu_relax();
938 }
939}
940
b24591e2
DH
941#define MOD_TIMER_PENDING_ONLY 0x01
942#define MOD_TIMER_REDUCE 0x02
943
74019224 944static inline int
b24591e2 945__mod_timer(struct timer_list *timer, unsigned long expires, unsigned int options)
1da177e4 946{
494af3ed 947 struct timer_base *base, *new_base;
f00c0afd
AMG
948 unsigned int idx = UINT_MAX;
949 unsigned long clk = 0, flags;
bc7a34b8 950 int ret = 0;
1da177e4 951
4da9152a
TG
952 BUG_ON(!timer->function);
953
500462a9 954 /*
f00c0afd
AMG
955 * This is a common optimization triggered by the networking code - if
956 * the timer is re-modified to have the same timeout or ends up in the
957 * same array bucket then just return:
500462a9
TG
958 */
959 if (timer_pending(timer)) {
2fe59f50
NP
960 /*
961 * The downside of this optimization is that it can result in
962 * larger granularity than you would get from adding a new
963 * timer with this expiry.
964 */
b24591e2
DH
965 long diff = timer->expires - expires;
966
967 if (!diff)
968 return 1;
969 if (options & MOD_TIMER_REDUCE && diff <= 0)
500462a9 970 return 1;
4da9152a 971
f00c0afd 972 /*
4da9152a
TG
973 * We lock timer base and calculate the bucket index right
974 * here. If the timer ends up in the same bucket, then we
975 * just update the expiry time and avoid the whole
976 * dequeue/enqueue dance.
f00c0afd 977 */
4da9152a 978 base = lock_timer_base(timer, &flags);
2fe59f50 979 forward_timer_base(base);
f00c0afd 980
b24591e2
DH
981 if (timer_pending(timer) && (options & MOD_TIMER_REDUCE) &&
982 time_before_eq(timer->expires, expires)) {
983 ret = 1;
984 goto out_unlock;
985 }
986
4da9152a 987 clk = base->clk;
f00c0afd
AMG
988 idx = calc_wheel_index(expires, clk);
989
990 /*
991 * Retrieve and compare the array index of the pending
992 * timer. If it matches set the expiry to the new value so a
993 * subsequent call will exit in the expires check above.
994 */
995 if (idx == timer_get_idx(timer)) {
b24591e2
DH
996 if (!(options & MOD_TIMER_REDUCE))
997 timer->expires = expires;
998 else if (time_after(timer->expires, expires))
999 timer->expires = expires;
4da9152a
TG
1000 ret = 1;
1001 goto out_unlock;
f00c0afd 1002 }
4da9152a
TG
1003 } else {
1004 base = lock_timer_base(timer, &flags);
2fe59f50 1005 forward_timer_base(base);
500462a9
TG
1006 }
1007
ec44bc7a 1008 ret = detach_if_pending(timer, base, false);
b24591e2 1009 if (!ret && (options & MOD_TIMER_PENDING_ONLY))
ec44bc7a 1010 goto out_unlock;
55c888d6 1011
2b022e3d 1012 debug_activate(timer, expires);
c6f3a97f 1013
500462a9 1014 new_base = get_target_base(base, timer->flags);
eea08f32 1015
3691c519 1016 if (base != new_base) {
1da177e4 1017 /*
500462a9 1018 * We are trying to schedule the timer on the new base.
55c888d6
ON
1019 * However we can't change timer's base while it is running,
1020 * otherwise del_timer_sync() can't detect that the timer's
500462a9
TG
1021 * handler yet has not finished. This also guarantees that the
1022 * timer is serialized wrt itself.
1da177e4 1023 */
a2c348fe 1024 if (likely(base->running_timer != timer)) {
55c888d6 1025 /* See the comment in lock_timer_base() */
0eeda71b
TG
1026 timer->flags |= TIMER_MIGRATING;
1027
2287d866 1028 raw_spin_unlock(&base->lock);
a2c348fe 1029 base = new_base;
2287d866 1030 raw_spin_lock(&base->lock);
d0023a14
ED
1031 WRITE_ONCE(timer->flags,
1032 (timer->flags & ~TIMER_BASEMASK) | base->cpu);
2fe59f50 1033 forward_timer_base(base);
1da177e4
LT
1034 }
1035 }
1036
1da177e4 1037 timer->expires = expires;
f00c0afd
AMG
1038 /*
1039 * If 'idx' was calculated above and the base time did not advance
4da9152a
TG
1040 * between calculating 'idx' and possibly switching the base, only
1041 * enqueue_timer() and trigger_dyntick_cpu() is required. Otherwise
1042 * we need to (re)calculate the wheel index via
1043 * internal_add_timer().
f00c0afd
AMG
1044 */
1045 if (idx != UINT_MAX && clk == base->clk) {
1046 enqueue_timer(base, timer, idx);
1047 trigger_dyntick_cpu(base, timer);
1048 } else {
1049 internal_add_timer(base, timer);
1050 }
74019224
IM
1051
1052out_unlock:
2287d866 1053 raw_spin_unlock_irqrestore(&base->lock, flags);
1da177e4
LT
1054
1055 return ret;
1056}
1057
2aae4a10 1058/**
74019224
IM
1059 * mod_timer_pending - modify a pending timer's timeout
1060 * @timer: the pending timer to be modified
1061 * @expires: new timeout in jiffies
1da177e4 1062 *
74019224
IM
1063 * mod_timer_pending() is the same for pending timers as mod_timer(),
1064 * but will not re-activate and modify already deleted timers.
1065 *
1066 * It is useful for unserialized use of timers.
1da177e4 1067 */
74019224 1068int mod_timer_pending(struct timer_list *timer, unsigned long expires)
1da177e4 1069{
b24591e2 1070 return __mod_timer(timer, expires, MOD_TIMER_PENDING_ONLY);
1da177e4 1071}
74019224 1072EXPORT_SYMBOL(mod_timer_pending);
1da177e4 1073
2aae4a10 1074/**
1da177e4
LT
1075 * mod_timer - modify a timer's timeout
1076 * @timer: the timer to be modified
2aae4a10 1077 * @expires: new timeout in jiffies
1da177e4 1078 *
72fd4a35 1079 * mod_timer() is a more efficient way to update the expire field of an
1da177e4
LT
1080 * active timer (if the timer is inactive it will be activated)
1081 *
1082 * mod_timer(timer, expires) is equivalent to:
1083 *
1084 * del_timer(timer); timer->expires = expires; add_timer(timer);
1085 *
1086 * Note that if there are multiple unserialized concurrent users of the
1087 * same timer, then mod_timer() is the only safe way to modify the timeout,
1088 * since add_timer() cannot modify an already running timer.
1089 *
1090 * The function returns whether it has modified a pending timer or not.
1091 * (ie. mod_timer() of an inactive timer returns 0, mod_timer() of an
1092 * active timer returns 1.)
1093 */
1094int mod_timer(struct timer_list *timer, unsigned long expires)
1095{
b24591e2 1096 return __mod_timer(timer, expires, 0);
1da177e4 1097}
1da177e4
LT
1098EXPORT_SYMBOL(mod_timer);
1099
b24591e2
DH
1100/**
1101 * timer_reduce - Modify a timer's timeout if it would reduce the timeout
1102 * @timer: The timer to be modified
1103 * @expires: New timeout in jiffies
1104 *
1105 * timer_reduce() is very similar to mod_timer(), except that it will only
1106 * modify a running timer if that would reduce the expiration time (it will
1107 * start a timer that isn't running).
1108 */
1109int timer_reduce(struct timer_list *timer, unsigned long expires)
1110{
1111 return __mod_timer(timer, expires, MOD_TIMER_REDUCE);
1112}
1113EXPORT_SYMBOL(timer_reduce);
1114
74019224
IM
1115/**
1116 * add_timer - start a timer
1117 * @timer: the timer to be added
1118 *
c1eba5bc 1119 * The kernel will do a ->function(@timer) callback from the
74019224
IM
1120 * timer interrupt at the ->expires point in the future. The
1121 * current time is 'jiffies'.
1122 *
c1eba5bc
KC
1123 * The timer's ->expires, ->function fields must be set prior calling this
1124 * function.
74019224
IM
1125 *
1126 * Timers with an ->expires field in the past will be executed in the next
1127 * timer tick.
1128 */
1129void add_timer(struct timer_list *timer)
1130{
1131 BUG_ON(timer_pending(timer));
1132 mod_timer(timer, timer->expires);
1133}
1134EXPORT_SYMBOL(add_timer);
1135
1136/**
1137 * add_timer_on - start a timer on a particular CPU
1138 * @timer: the timer to be added
1139 * @cpu: the CPU to start it on
1140 *
1141 * This is not very scalable on SMP. Double adds are not possible.
1142 */
1143void add_timer_on(struct timer_list *timer, int cpu)
1144{
500462a9 1145 struct timer_base *new_base, *base;
74019224
IM
1146 unsigned long flags;
1147
74019224 1148 BUG_ON(timer_pending(timer) || !timer->function);
22b886dd 1149
500462a9
TG
1150 new_base = get_timer_cpu_base(timer->flags, cpu);
1151
22b886dd
TH
1152 /*
1153 * If @timer was on a different CPU, it should be migrated with the
1154 * old base locked to prevent other operations proceeding with the
1155 * wrong base locked. See lock_timer_base().
1156 */
1157 base = lock_timer_base(timer, &flags);
1158 if (base != new_base) {
1159 timer->flags |= TIMER_MIGRATING;
1160
2287d866 1161 raw_spin_unlock(&base->lock);
22b886dd 1162 base = new_base;
2287d866 1163 raw_spin_lock(&base->lock);
22b886dd
TH
1164 WRITE_ONCE(timer->flags,
1165 (timer->flags & ~TIMER_BASEMASK) | cpu);
1166 }
2fe59f50 1167 forward_timer_base(base);
22b886dd 1168
2b022e3d 1169 debug_activate(timer, timer->expires);
74019224 1170 internal_add_timer(base, timer);
2287d866 1171 raw_spin_unlock_irqrestore(&base->lock, flags);
74019224 1172}
a9862e05 1173EXPORT_SYMBOL_GPL(add_timer_on);
74019224 1174
2aae4a10 1175/**
0ba42a59 1176 * del_timer - deactivate a timer.
1da177e4
LT
1177 * @timer: the timer to be deactivated
1178 *
1179 * del_timer() deactivates a timer - this works on both active and inactive
1180 * timers.
1181 *
1182 * The function returns whether it has deactivated a pending timer or not.
1183 * (ie. del_timer() of an inactive timer returns 0, del_timer() of an
1184 * active timer returns 1.)
1185 */
1186int del_timer(struct timer_list *timer)
1187{
494af3ed 1188 struct timer_base *base;
1da177e4 1189 unsigned long flags;
55c888d6 1190 int ret = 0;
1da177e4 1191
dc4218bd
CC
1192 debug_assert_init(timer);
1193
55c888d6
ON
1194 if (timer_pending(timer)) {
1195 base = lock_timer_base(timer, &flags);
ec44bc7a 1196 ret = detach_if_pending(timer, base, true);
2287d866 1197 raw_spin_unlock_irqrestore(&base->lock, flags);
1da177e4 1198 }
1da177e4 1199
55c888d6 1200 return ret;
1da177e4 1201}
1da177e4
LT
1202EXPORT_SYMBOL(del_timer);
1203
2aae4a10
REB
1204/**
1205 * try_to_del_timer_sync - Try to deactivate a timer
d15bc69a 1206 * @timer: timer to delete
2aae4a10 1207 *
fd450b73
ON
1208 * This function tries to deactivate a timer. Upon successful (ret >= 0)
1209 * exit the timer is not queued and the handler is not running on any CPU.
fd450b73
ON
1210 */
1211int try_to_del_timer_sync(struct timer_list *timer)
1212{
494af3ed 1213 struct timer_base *base;
fd450b73
ON
1214 unsigned long flags;
1215 int ret = -1;
1216
dc4218bd
CC
1217 debug_assert_init(timer);
1218
fd450b73
ON
1219 base = lock_timer_base(timer, &flags);
1220
dfb4357d 1221 if (base->running_timer != timer)
ec44bc7a 1222 ret = detach_if_pending(timer, base, true);
dfb4357d 1223
2287d866 1224 raw_spin_unlock_irqrestore(&base->lock, flags);
fd450b73
ON
1225
1226 return ret;
1227}
e19dff1f
DH
1228EXPORT_SYMBOL(try_to_del_timer_sync);
1229
6f1bc451 1230#ifdef CONFIG_SMP
2aae4a10 1231/**
1da177e4
LT
1232 * del_timer_sync - deactivate a timer and wait for the handler to finish.
1233 * @timer: the timer to be deactivated
1234 *
1235 * This function only differs from del_timer() on SMP: besides deactivating
1236 * the timer it also makes sure the handler has finished executing on other
1237 * CPUs.
1238 *
72fd4a35 1239 * Synchronization rules: Callers must prevent restarting of the timer,
1da177e4 1240 * otherwise this function is meaningless. It must not be called from
c5f66e99
TH
1241 * interrupt contexts unless the timer is an irqsafe one. The caller must
1242 * not hold locks which would prevent completion of the timer's
1243 * handler. The timer's handler must not call add_timer_on(). Upon exit the
1244 * timer is not queued and the handler is not running on any CPU.
1da177e4 1245 *
c5f66e99
TH
1246 * Note: For !irqsafe timers, you must not hold locks that are held in
1247 * interrupt context while calling this function. Even if the lock has
1248 * nothing to do with the timer in question. Here's why:
48228f7b
SR
1249 *
1250 * CPU0 CPU1
1251 * ---- ----
1252 * <SOFTIRQ>
1253 * call_timer_fn();
1254 * base->running_timer = mytimer;
1255 * spin_lock_irq(somelock);
1256 * <IRQ>
1257 * spin_lock(somelock);
1258 * del_timer_sync(mytimer);
1259 * while (base->running_timer == mytimer);
1260 *
1261 * Now del_timer_sync() will never return and never release somelock.
1262 * The interrupt on the other CPU is waiting to grab somelock but
1263 * it has interrupted the softirq that CPU0 is waiting to finish.
1264 *
1da177e4 1265 * The function returns whether it has deactivated a pending timer or not.
1da177e4
LT
1266 */
1267int del_timer_sync(struct timer_list *timer)
1268{
6f2b9b9a 1269#ifdef CONFIG_LOCKDEP
f266a511
PZ
1270 unsigned long flags;
1271
48228f7b
SR
1272 /*
1273 * If lockdep gives a backtrace here, please reference
1274 * the synchronization rules above.
1275 */
7ff20792 1276 local_irq_save(flags);
6f2b9b9a
JB
1277 lock_map_acquire(&timer->lockdep_map);
1278 lock_map_release(&timer->lockdep_map);
7ff20792 1279 local_irq_restore(flags);
6f2b9b9a 1280#endif
466bd303
YZ
1281 /*
1282 * don't use it in hardirq context, because it
1283 * could lead to deadlock.
1284 */
0eeda71b 1285 WARN_ON(in_irq() && !(timer->flags & TIMER_IRQSAFE));
fd450b73
ON
1286 for (;;) {
1287 int ret = try_to_del_timer_sync(timer);
1288 if (ret >= 0)
1289 return ret;
a0009652 1290 cpu_relax();
fd450b73 1291 }
1da177e4 1292}
55c888d6 1293EXPORT_SYMBOL(del_timer_sync);
1da177e4
LT
1294#endif
1295
354b46b1 1296static void call_timer_fn(struct timer_list *timer, void (*fn)(struct timer_list *))
576da126 1297{
4a2b4b22 1298 int count = preempt_count();
576da126
TG
1299
1300#ifdef CONFIG_LOCKDEP
1301 /*
1302 * It is permissible to free the timer from inside the
1303 * function that is called from it, this we need to take into
1304 * account for lockdep too. To avoid bogus "held lock freed"
1305 * warnings as well as problems when looking into
1306 * timer->lockdep_map, make a copy and use that here.
1307 */
4d82a1de
PZ
1308 struct lockdep_map lockdep_map;
1309
1310 lockdep_copy_map(&lockdep_map, &timer->lockdep_map);
576da126
TG
1311#endif
1312 /*
1313 * Couple the lock chain with the lock chain at
1314 * del_timer_sync() by acquiring the lock_map around the fn()
1315 * call here and in del_timer_sync().
1316 */
1317 lock_map_acquire(&lockdep_map);
1318
1319 trace_timer_expire_entry(timer);
354b46b1 1320 fn(timer);
576da126
TG
1321 trace_timer_expire_exit(timer);
1322
1323 lock_map_release(&lockdep_map);
1324
4a2b4b22 1325 if (count != preempt_count()) {
802702e0 1326 WARN_ONCE(1, "timer: %pF preempt leak: %08x -> %08x\n",
4a2b4b22 1327 fn, count, preempt_count());
802702e0
TG
1328 /*
1329 * Restore the preempt count. That gives us a decent
1330 * chance to survive and extract information. If the
1331 * callback kept a lock held, bad luck, but not worse
1332 * than the BUG() we had.
1333 */
4a2b4b22 1334 preempt_count_set(count);
576da126
TG
1335 }
1336}
1337
500462a9 1338static void expire_timers(struct timer_base *base, struct hlist_head *head)
1da177e4 1339{
500462a9
TG
1340 while (!hlist_empty(head)) {
1341 struct timer_list *timer;
354b46b1 1342 void (*fn)(struct timer_list *);
1da177e4 1343
500462a9 1344 timer = hlist_entry(head->first, struct timer_list, entry);
3bb475a3 1345
500462a9
TG
1346 base->running_timer = timer;
1347 detach_timer(timer, true);
3bb475a3 1348
500462a9 1349 fn = timer->function;
500462a9
TG
1350
1351 if (timer->flags & TIMER_IRQSAFE) {
2287d866 1352 raw_spin_unlock(&base->lock);
c1eba5bc 1353 call_timer_fn(timer, fn);
2287d866 1354 raw_spin_lock(&base->lock);
500462a9 1355 } else {
2287d866 1356 raw_spin_unlock_irq(&base->lock);
c1eba5bc 1357 call_timer_fn(timer, fn);
2287d866 1358 raw_spin_lock_irq(&base->lock);
3bb475a3 1359 }
500462a9
TG
1360 }
1361}
3bb475a3 1362
23696838
AMG
1363static int __collect_expired_timers(struct timer_base *base,
1364 struct hlist_head *heads)
500462a9
TG
1365{
1366 unsigned long clk = base->clk;
1367 struct hlist_head *vec;
1368 int i, levels = 0;
1369 unsigned int idx;
626ab0e6 1370
500462a9
TG
1371 for (i = 0; i < LVL_DEPTH; i++) {
1372 idx = (clk & LVL_MASK) + i * LVL_SIZE;
1373
1374 if (__test_and_clear_bit(idx, base->pending_map)) {
1375 vec = base->vectors + idx;
1376 hlist_move_list(vec, heads++);
1377 levels++;
1da177e4 1378 }
500462a9
TG
1379 /* Is it time to look at the next level? */
1380 if (clk & LVL_CLK_MASK)
1381 break;
1382 /* Shift clock for the next level granularity */
1383 clk >>= LVL_CLK_SHIFT;
1da177e4 1384 }
500462a9 1385 return levels;
1da177e4
LT
1386}
1387
3451d024 1388#ifdef CONFIG_NO_HZ_COMMON
1da177e4 1389/*
23696838
AMG
1390 * Find the next pending bucket of a level. Search from level start (@offset)
1391 * + @clk upwards and if nothing there, search from start of the level
1392 * (@offset) up to @offset + clk.
1da177e4 1393 */
500462a9
TG
1394static int next_pending_bucket(struct timer_base *base, unsigned offset,
1395 unsigned clk)
1396{
1397 unsigned pos, start = offset + clk;
1398 unsigned end = offset + LVL_SIZE;
1399
1400 pos = find_next_bit(base->pending_map, end, start);
1401 if (pos < end)
1402 return pos - start;
1403
1404 pos = find_next_bit(base->pending_map, start, offset);
1405 return pos < start ? pos + LVL_SIZE - start : -1;
1406}
1407
1408/*
23696838
AMG
1409 * Search the first expiring timer in the various clock levels. Caller must
1410 * hold base->lock.
1da177e4 1411 */
494af3ed 1412static unsigned long __next_timer_interrupt(struct timer_base *base)
1da177e4 1413{
500462a9
TG
1414 unsigned long clk, next, adj;
1415 unsigned lvl, offset = 0;
1416
500462a9
TG
1417 next = base->clk + NEXT_TIMER_MAX_DELTA;
1418 clk = base->clk;
1419 for (lvl = 0; lvl < LVL_DEPTH; lvl++, offset += LVL_SIZE) {
1420 int pos = next_pending_bucket(base, offset, clk & LVL_MASK);
1421
1422 if (pos >= 0) {
1423 unsigned long tmp = clk + (unsigned long) pos;
1424
1425 tmp <<= LVL_SHIFT(lvl);
1426 if (time_before(tmp, next))
1427 next = tmp;
1da177e4 1428 }
500462a9
TG
1429 /*
1430 * Clock for the next level. If the current level clock lower
1431 * bits are zero, we look at the next level as is. If not we
1432 * need to advance it by one because that's going to be the
1433 * next expiring bucket in that level. base->clk is the next
1434 * expiring jiffie. So in case of:
1435 *
1436 * LVL5 LVL4 LVL3 LVL2 LVL1 LVL0
1437 * 0 0 0 0 0 0
1438 *
1439 * we have to look at all levels @index 0. With
1440 *
1441 * LVL5 LVL4 LVL3 LVL2 LVL1 LVL0
1442 * 0 0 0 0 0 2
1443 *
1444 * LVL0 has the next expiring bucket @index 2. The upper
1445 * levels have the next expiring bucket @index 1.
1446 *
1447 * In case that the propagation wraps the next level the same
1448 * rules apply:
1449 *
1450 * LVL5 LVL4 LVL3 LVL2 LVL1 LVL0
1451 * 0 0 0 0 F 2
1452 *
1453 * So after looking at LVL0 we get:
1454 *
1455 * LVL5 LVL4 LVL3 LVL2 LVL1
1456 * 0 0 0 1 0
1457 *
1458 * So no propagation from LVL1 to LVL2 because that happened
1459 * with the add already, but then we need to propagate further
1460 * from LVL2 to LVL3.
1461 *
1462 * So the simple check whether the lower bits of the current
1463 * level are 0 or not is sufficient for all cases.
1464 */
1465 adj = clk & LVL_CLK_MASK ? 1 : 0;
1466 clk >>= LVL_CLK_SHIFT;
1467 clk += adj;
1da177e4 1468 }
500462a9 1469 return next;
1cfd6849 1470}
69239749 1471
1cfd6849
TG
1472/*
1473 * Check, if the next hrtimer event is before the next timer wheel
1474 * event:
1475 */
c1ad348b 1476static u64 cmp_next_hrtimer_event(u64 basem, u64 expires)
1cfd6849 1477{
c1ad348b 1478 u64 nextevt = hrtimer_get_next_event();
0662b713 1479
9501b6cf 1480 /*
c1ad348b
TG
1481 * If high resolution timers are enabled
1482 * hrtimer_get_next_event() returns KTIME_MAX.
9501b6cf 1483 */
c1ad348b
TG
1484 if (expires <= nextevt)
1485 return expires;
eaad084b
TG
1486
1487 /*
c1ad348b
TG
1488 * If the next timer is already expired, return the tick base
1489 * time so the tick is fired immediately.
eaad084b 1490 */
c1ad348b
TG
1491 if (nextevt <= basem)
1492 return basem;
eaad084b 1493
9501b6cf 1494 /*
c1ad348b
TG
1495 * Round up to the next jiffie. High resolution timers are
1496 * off, so the hrtimers are expired in the tick and we need to
1497 * make sure that this tick really expires the timer to avoid
1498 * a ping pong of the nohz stop code.
1499 *
1500 * Use DIV_ROUND_UP_ULL to prevent gcc calling __divdi3
9501b6cf 1501 */
c1ad348b 1502 return DIV_ROUND_UP_ULL(nextevt, TICK_NSEC) * TICK_NSEC;
1da177e4 1503}
1cfd6849
TG
1504
1505/**
c1ad348b
TG
1506 * get_next_timer_interrupt - return the time (clock mono) of the next timer
1507 * @basej: base time jiffies
1508 * @basem: base time clock monotonic
1509 *
1510 * Returns the tick aligned clock monotonic time of the next pending
1511 * timer or KTIME_MAX if no timer is pending.
1cfd6849 1512 */
c1ad348b 1513u64 get_next_timer_interrupt(unsigned long basej, u64 basem)
1cfd6849 1514{
500462a9 1515 struct timer_base *base = this_cpu_ptr(&timer_bases[BASE_STD]);
c1ad348b
TG
1516 u64 expires = KTIME_MAX;
1517 unsigned long nextevt;
46c8f0b0 1518 bool is_max_delta;
1cfd6849 1519
dbd87b5a
HC
1520 /*
1521 * Pretend that there is no timer pending if the cpu is offline.
1522 * Possible pending timers will be migrated later to an active cpu.
1523 */
1524 if (cpu_is_offline(smp_processor_id()))
e40468a5
TG
1525 return expires;
1526
2287d866 1527 raw_spin_lock(&base->lock);
500462a9 1528 nextevt = __next_timer_interrupt(base);
46c8f0b0 1529 is_max_delta = (nextevt == base->clk + NEXT_TIMER_MAX_DELTA);
a683f390
TG
1530 base->next_expiry = nextevt;
1531 /*
041ad7bc
TG
1532 * We have a fresh next event. Check whether we can forward the
1533 * base. We can only do that when @basej is past base->clk
1534 * otherwise we might rewind base->clk.
a683f390 1535 */
041ad7bc
TG
1536 if (time_after(basej, base->clk)) {
1537 if (time_after(nextevt, basej))
1538 base->clk = basej;
1539 else if (time_after(nextevt, base->clk))
1540 base->clk = nextevt;
1541 }
23696838 1542
a683f390 1543 if (time_before_eq(nextevt, basej)) {
500462a9 1544 expires = basem;
a683f390
TG
1545 base->is_idle = false;
1546 } else {
46c8f0b0 1547 if (!is_max_delta)
34f41c03 1548 expires = basem + (u64)(nextevt - basej) * TICK_NSEC;
a683f390 1549 /*
2fe59f50
NP
1550 * If we expect to sleep more than a tick, mark the base idle.
1551 * Also the tick is stopped so any added timer must forward
1552 * the base clk itself to keep granularity small. This idle
1553 * logic is only maintained for the BASE_STD base, deferrable
1554 * timers may still see large granularity skew (by design).
a683f390 1555 */
2fe59f50
NP
1556 if ((expires - basem) > TICK_NSEC) {
1557 base->must_forward_clk = true;
a683f390 1558 base->is_idle = true;
2fe59f50 1559 }
e40468a5 1560 }
2287d866 1561 raw_spin_unlock(&base->lock);
1cfd6849 1562
c1ad348b 1563 return cmp_next_hrtimer_event(basem, expires);
1cfd6849 1564}
23696838 1565
a683f390
TG
1566/**
1567 * timer_clear_idle - Clear the idle state of the timer base
1568 *
1569 * Called with interrupts disabled
1570 */
1571void timer_clear_idle(void)
1572{
1573 struct timer_base *base = this_cpu_ptr(&timer_bases[BASE_STD]);
1574
1575 /*
1576 * We do this unlocked. The worst outcome is a remote enqueue sending
1577 * a pointless IPI, but taking the lock would just make the window for
1578 * sending the IPI a few instructions smaller for the cost of taking
1579 * the lock in the exit from idle path.
1580 */
1581 base->is_idle = false;
1582}
1583
23696838
AMG
1584static int collect_expired_timers(struct timer_base *base,
1585 struct hlist_head *heads)
1586{
1587 /*
1588 * NOHZ optimization. After a long idle sleep we need to forward the
1589 * base to current jiffies. Avoid a loop by searching the bitfield for
1590 * the next expiring timer.
1591 */
1592 if ((long)(jiffies - base->clk) > 2) {
1593 unsigned long next = __next_timer_interrupt(base);
1594
1595 /*
1596 * If the next timer is ahead of time forward to current
a683f390 1597 * jiffies, otherwise forward to the next expiry time:
23696838
AMG
1598 */
1599 if (time_after(next, jiffies)) {
c310ce4d
ZD
1600 /*
1601 * The call site will increment base->clk and then
1602 * terminate the expiry loop immediately.
1603 */
1604 base->clk = jiffies;
23696838
AMG
1605 return 0;
1606 }
1607 base->clk = next;
1608 }
1609 return __collect_expired_timers(base, heads);
1610}
1611#else
1612static inline int collect_expired_timers(struct timer_base *base,
1613 struct hlist_head *heads)
1614{
1615 return __collect_expired_timers(base, heads);
1616}
1da177e4
LT
1617#endif
1618
1da177e4 1619/*
5b4db0c2 1620 * Called from the timer interrupt handler to charge one tick to the current
1da177e4
LT
1621 * process. user_tick is 1 if the tick is user time, 0 for system.
1622 */
1623void update_process_times(int user_tick)
1624{
1625 struct task_struct *p = current;
1da177e4
LT
1626
1627 /* Note: this timer irq context must be accounted for as well. */
fa13a5a1 1628 account_process_tick(p, user_tick);
1da177e4 1629 run_local_timers();
c3377c2d 1630 rcu_check_callbacks(user_tick);
e360adbe
PZ
1631#ifdef CONFIG_IRQ_WORK
1632 if (in_irq())
76a33061 1633 irq_work_tick();
e360adbe 1634#endif
1da177e4 1635 scheduler_tick();
baa73d9e
NP
1636 if (IS_ENABLED(CONFIG_POSIX_TIMERS))
1637 run_posix_cpu_timers(p);
1da177e4
LT
1638}
1639
73420fea
AMG
1640/**
1641 * __run_timers - run all expired timers (if any) on this CPU.
1642 * @base: the timer vector to be processed.
1643 */
1644static inline void __run_timers(struct timer_base *base)
1645{
1646 struct hlist_head heads[LVL_DEPTH];
1647 int levels;
1648
1649 if (!time_after_eq(jiffies, base->clk))
1650 return;
1651
2287d866 1652 raw_spin_lock_irq(&base->lock);
73420fea
AMG
1653
1654 while (time_after_eq(jiffies, base->clk)) {
1655
1656 levels = collect_expired_timers(base, heads);
1657 base->clk++;
1658
1659 while (levels--)
1660 expire_timers(base, heads + levels);
1661 }
1662 base->running_timer = NULL;
2287d866 1663 raw_spin_unlock_irq(&base->lock);
73420fea
AMG
1664}
1665
1da177e4
LT
1666/*
1667 * This function runs timers and the timer-tq in bottom half context.
1668 */
0766f788 1669static __latent_entropy void run_timer_softirq(struct softirq_action *h)
1da177e4 1670{
500462a9 1671 struct timer_base *base = this_cpu_ptr(&timer_bases[BASE_STD]);
1da177e4 1672
2fe59f50
NP
1673 /*
1674 * must_forward_clk must be cleared before running timers so that any
1675 * timer functions that call mod_timer will not try to forward the
1676 * base. idle trcking / clock forwarding logic is only used with
1677 * BASE_STD timers.
1678 *
1679 * The deferrable base does not do idle tracking at all, so we do
1680 * not forward it. This can result in very large variations in
1681 * granularity for deferrable timers, but they can be deferred for
1682 * long periods due to idle.
1683 */
1684 base->must_forward_clk = false;
1685
500462a9
TG
1686 __run_timers(base);
1687 if (IS_ENABLED(CONFIG_NO_HZ_COMMON) && base->nohz_active)
1688 __run_timers(this_cpu_ptr(&timer_bases[BASE_DEF]));
1da177e4
LT
1689}
1690
1691/*
1692 * Called by the local, per-CPU timer interrupt on SMP.
1693 */
1694void run_local_timers(void)
1695{
4e85876a
TG
1696 struct timer_base *base = this_cpu_ptr(&timer_bases[BASE_STD]);
1697
d3d74453 1698 hrtimer_run_queues();
4e85876a
TG
1699 /* Raise the softirq only if required. */
1700 if (time_before(jiffies, base->clk)) {
1701 if (!IS_ENABLED(CONFIG_NO_HZ_COMMON) || !base->nohz_active)
1702 return;
1703 /* CPU is awake, so check the deferrable base. */
1704 base++;
1705 if (time_before(jiffies, base->clk))
1706 return;
1707 }
1da177e4
LT
1708 raise_softirq(TIMER_SOFTIRQ);
1709}
1710
58e1177b
KC
1711/*
1712 * Since schedule_timeout()'s timer is defined on the stack, it must store
1713 * the target task on the stack as well.
1714 */
1715struct process_timer {
1716 struct timer_list timer;
1717 struct task_struct *task;
1718};
1719
1720static void process_timeout(struct timer_list *t)
1da177e4 1721{
58e1177b
KC
1722 struct process_timer *timeout = from_timer(timeout, t, timer);
1723
1724 wake_up_process(timeout->task);
1da177e4
LT
1725}
1726
1727/**
1728 * schedule_timeout - sleep until timeout
1729 * @timeout: timeout value in jiffies
1730 *
1731 * Make the current task sleep until @timeout jiffies have
1732 * elapsed. The routine will return immediately unless
1733 * the current task state has been set (see set_current_state()).
1734 *
1735 * You can set the task state as follows -
1736 *
1737 * %TASK_UNINTERRUPTIBLE - at least @timeout jiffies are guaranteed to
4b7e9cf9
DA
1738 * pass before the routine returns unless the current task is explicitly
1739 * woken up, (e.g. by wake_up_process())".
1da177e4
LT
1740 *
1741 * %TASK_INTERRUPTIBLE - the routine may return early if a signal is
4b7e9cf9
DA
1742 * delivered to the current task or the current task is explicitly woken
1743 * up.
1da177e4
LT
1744 *
1745 * The current task state is guaranteed to be TASK_RUNNING when this
1746 * routine returns.
1747 *
1748 * Specifying a @timeout value of %MAX_SCHEDULE_TIMEOUT will schedule
1749 * the CPU away without a bound on the timeout. In this case the return
1750 * value will be %MAX_SCHEDULE_TIMEOUT.
1751 *
4b7e9cf9
DA
1752 * Returns 0 when the timer has expired otherwise the remaining time in
1753 * jiffies will be returned. In all cases the return value is guaranteed
1754 * to be non-negative.
1da177e4 1755 */
7ad5b3a5 1756signed long __sched schedule_timeout(signed long timeout)
1da177e4 1757{
58e1177b 1758 struct process_timer timer;
1da177e4
LT
1759 unsigned long expire;
1760
1761 switch (timeout)
1762 {
1763 case MAX_SCHEDULE_TIMEOUT:
1764 /*
1765 * These two special cases are useful to be comfortable
1766 * in the caller. Nothing more. We could take
1767 * MAX_SCHEDULE_TIMEOUT from one of the negative value
1768 * but I' d like to return a valid offset (>=0) to allow
1769 * the caller to do everything it want with the retval.
1770 */
1771 schedule();
1772 goto out;
1773 default:
1774 /*
1775 * Another bit of PARANOID. Note that the retval will be
1776 * 0 since no piece of kernel is supposed to do a check
1777 * for a negative retval of schedule_timeout() (since it
1778 * should never happens anyway). You just have the printk()
1779 * that will tell you if something is gone wrong and where.
1780 */
5b149bcc 1781 if (timeout < 0) {
1da177e4 1782 printk(KERN_ERR "schedule_timeout: wrong timeout "
5b149bcc
AM
1783 "value %lx\n", timeout);
1784 dump_stack();
1da177e4
LT
1785 current->state = TASK_RUNNING;
1786 goto out;
1787 }
1788 }
1789
1790 expire = timeout + jiffies;
1791
58e1177b
KC
1792 timer.task = current;
1793 timer_setup_on_stack(&timer.timer, process_timeout, 0);
b24591e2 1794 __mod_timer(&timer.timer, expire, 0);
1da177e4 1795 schedule();
58e1177b 1796 del_singleshot_timer_sync(&timer.timer);
1da177e4 1797
c6f3a97f 1798 /* Remove the timer from the object tracker */
58e1177b 1799 destroy_timer_on_stack(&timer.timer);
c6f3a97f 1800
1da177e4
LT
1801 timeout = expire - jiffies;
1802
1803 out:
1804 return timeout < 0 ? 0 : timeout;
1805}
1da177e4
LT
1806EXPORT_SYMBOL(schedule_timeout);
1807
8a1c1757
AM
1808/*
1809 * We can use __set_current_state() here because schedule_timeout() calls
1810 * schedule() unconditionally.
1811 */
64ed93a2
NA
1812signed long __sched schedule_timeout_interruptible(signed long timeout)
1813{
a5a0d52c
AM
1814 __set_current_state(TASK_INTERRUPTIBLE);
1815 return schedule_timeout(timeout);
64ed93a2
NA
1816}
1817EXPORT_SYMBOL(schedule_timeout_interruptible);
1818
294d5cc2
MW
1819signed long __sched schedule_timeout_killable(signed long timeout)
1820{
1821 __set_current_state(TASK_KILLABLE);
1822 return schedule_timeout(timeout);
1823}
1824EXPORT_SYMBOL(schedule_timeout_killable);
1825
64ed93a2
NA
1826signed long __sched schedule_timeout_uninterruptible(signed long timeout)
1827{
a5a0d52c
AM
1828 __set_current_state(TASK_UNINTERRUPTIBLE);
1829 return schedule_timeout(timeout);
64ed93a2
NA
1830}
1831EXPORT_SYMBOL(schedule_timeout_uninterruptible);
1832
69b27baf
AM
1833/*
1834 * Like schedule_timeout_uninterruptible(), except this task will not contribute
1835 * to load average.
1836 */
1837signed long __sched schedule_timeout_idle(signed long timeout)
1838{
1839 __set_current_state(TASK_IDLE);
1840 return schedule_timeout(timeout);
1841}
1842EXPORT_SYMBOL(schedule_timeout_idle);
1843
1da177e4 1844#ifdef CONFIG_HOTPLUG_CPU
494af3ed 1845static void migrate_timer_list(struct timer_base *new_base, struct hlist_head *head)
1da177e4
LT
1846{
1847 struct timer_list *timer;
0eeda71b 1848 int cpu = new_base->cpu;
1da177e4 1849
1dabbcec
TG
1850 while (!hlist_empty(head)) {
1851 timer = hlist_entry(head->first, struct timer_list, entry);
ec44bc7a 1852 detach_timer(timer, false);
0eeda71b 1853 timer->flags = (timer->flags & ~TIMER_BASEMASK) | cpu;
1da177e4 1854 internal_add_timer(new_base, timer);
1da177e4 1855 }
1da177e4
LT
1856}
1857
24f73b99 1858int timers_dead_cpu(unsigned int cpu)
1da177e4 1859{
494af3ed
TG
1860 struct timer_base *old_base;
1861 struct timer_base *new_base;
500462a9 1862 int b, i;
1da177e4
LT
1863
1864 BUG_ON(cpu_online(cpu));
55c888d6 1865
500462a9
TG
1866 for (b = 0; b < NR_BASES; b++) {
1867 old_base = per_cpu_ptr(&timer_bases[b], cpu);
1868 new_base = get_cpu_ptr(&timer_bases[b]);
1869 /*
1870 * The caller is globally serialized and nobody else
1871 * takes two locks at once, deadlock is not possible.
1872 */
2287d866
SAS
1873 raw_spin_lock_irq(&new_base->lock);
1874 raw_spin_lock_nested(&old_base->lock, SINGLE_DEPTH_NESTING);
500462a9
TG
1875
1876 BUG_ON(old_base->running_timer);
1877
1878 for (i = 0; i < WHEEL_SIZE; i++)
1879 migrate_timer_list(new_base, old_base->vectors + i);
8def9060 1880
2287d866
SAS
1881 raw_spin_unlock(&old_base->lock);
1882 raw_spin_unlock_irq(&new_base->lock);
500462a9
TG
1883 put_cpu_ptr(&timer_bases);
1884 }
24f73b99 1885 return 0;
1da177e4 1886}
1da177e4 1887
3650b57f 1888#endif /* CONFIG_HOTPLUG_CPU */
1da177e4 1889
0eeda71b 1890static void __init init_timer_cpu(int cpu)
8def9060 1891{
500462a9
TG
1892 struct timer_base *base;
1893 int i;
8def9060 1894
500462a9
TG
1895 for (i = 0; i < NR_BASES; i++) {
1896 base = per_cpu_ptr(&timer_bases[i], cpu);
1897 base->cpu = cpu;
2287d866 1898 raw_spin_lock_init(&base->lock);
500462a9
TG
1899 base->clk = jiffies;
1900 }
8def9060
VK
1901}
1902
1903static void __init init_timer_cpus(void)
1da177e4 1904{
8def9060
VK
1905 int cpu;
1906
0eeda71b
TG
1907 for_each_possible_cpu(cpu)
1908 init_timer_cpu(cpu);
8def9060 1909}
e52b1db3 1910
8def9060
VK
1911void __init init_timers(void)
1912{
8def9060 1913 init_timer_cpus();
962cf36c 1914 open_softirq(TIMER_SOFTIRQ, run_timer_softirq);
1da177e4
LT
1915}
1916
1da177e4
LT
1917/**
1918 * msleep - sleep safely even with waitqueue interruptions
1919 * @msecs: Time in milliseconds to sleep for
1920 */
1921void msleep(unsigned int msecs)
1922{
1923 unsigned long timeout = msecs_to_jiffies(msecs) + 1;
1924
75bcc8c5
NA
1925 while (timeout)
1926 timeout = schedule_timeout_uninterruptible(timeout);
1da177e4
LT
1927}
1928
1929EXPORT_SYMBOL(msleep);
1930
1931/**
96ec3efd 1932 * msleep_interruptible - sleep waiting for signals
1da177e4
LT
1933 * @msecs: Time in milliseconds to sleep for
1934 */
1935unsigned long msleep_interruptible(unsigned int msecs)
1936{
1937 unsigned long timeout = msecs_to_jiffies(msecs) + 1;
1938
75bcc8c5
NA
1939 while (timeout && !signal_pending(current))
1940 timeout = schedule_timeout_interruptible(timeout);
1da177e4
LT
1941 return jiffies_to_msecs(timeout);
1942}
1943
1944EXPORT_SYMBOL(msleep_interruptible);
5e7f5a17 1945
5e7f5a17 1946/**
b5227d03 1947 * usleep_range - Sleep for an approximate time
5e7f5a17
PP
1948 * @min: Minimum time in usecs to sleep
1949 * @max: Maximum time in usecs to sleep
b5227d03
BH
1950 *
1951 * In non-atomic context where the exact wakeup time is flexible, use
1952 * usleep_range() instead of udelay(). The sleep improves responsiveness
1953 * by avoiding the CPU-hogging busy-wait of udelay(), and the range reduces
1954 * power usage by allowing hrtimers to take advantage of an already-
1955 * scheduled interrupt instead of scheduling a new one just for this sleep.
5e7f5a17 1956 */
2ad5d327 1957void __sched usleep_range(unsigned long min, unsigned long max)
5e7f5a17 1958{
6c5e9059
DA
1959 ktime_t exp = ktime_add_us(ktime_get(), min);
1960 u64 delta = (u64)(max - min) * NSEC_PER_USEC;
1961
1962 for (;;) {
1963 __set_current_state(TASK_UNINTERRUPTIBLE);
1964 /* Do not return before the requested sleep time has elapsed */
1965 if (!schedule_hrtimeout_range(&exp, delta, HRTIMER_MODE_ABS))
1966 break;
1967 }
5e7f5a17
PP
1968}
1969EXPORT_SYMBOL(usleep_range);