1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Simple CPU accounting cgroup controller
4 */
5 #include <linux/sched/cputime.h>
6 #include <linux/tsacct_kern.h>
7 #include "sched.h"
8
9 #ifdef CONFIG_VIRT_CPU_ACCOUNTING_NATIVE
10 #include <asm/cputime.h>
11 #endif
12
13 #ifdef CONFIG_IRQ_TIME_ACCOUNTING
14
15 DEFINE_STATIC_KEY_FALSE(sched_clock_irqtime);
16
17 /*
18 * There are no locks covering percpu hardirq/softirq time.
19 * They are only modified in vtime_account, on corresponding CPU
20 * with interrupts disabled. So, writes are safe.
21 * They are read and saved off onto struct rq in update_rq_clock().
22 * This may result in other CPU reading this CPU's IRQ time and can
23 * race with irq/vtime_account on this CPU. We would either get old
24 * or new value with a side effect of accounting a slice of IRQ time to wrong
25 * task when IRQ is in progress while we read rq->clock. That is a worthy
26 * compromise in place of having locks on each IRQ in account_system_time.
27 */
28 DEFINE_PER_CPU(struct irqtime, cpu_irqtime);
29
enable_sched_clock_irqtime(void)30 void enable_sched_clock_irqtime(void)
31 {
32 static_branch_enable(&sched_clock_irqtime);
33 }
34
disable_sched_clock_irqtime(void)35 void disable_sched_clock_irqtime(void)
36 {
37 if (irqtime_enabled())
38 static_branch_disable(&sched_clock_irqtime);
39 }
40
irqtime_account_delta(struct irqtime * irqtime,u64 delta,enum cpu_usage_stat idx)41 static void irqtime_account_delta(struct irqtime *irqtime, u64 delta,
42 enum cpu_usage_stat idx)
43 {
44 u64 *cpustat = kcpustat_this_cpu->cpustat;
45
46 u64_stats_update_begin(&irqtime->sync);
47 cpustat[idx] += delta;
48 irqtime->total += delta;
49 irqtime->tick_delta += delta;
50 u64_stats_update_end(&irqtime->sync);
51 }
52
53 /*
54 * Called after incrementing preempt_count on {soft,}irq_enter
55 * and before decrementing preempt_count on {soft,}irq_exit.
56 */
irqtime_account_irq(struct task_struct * curr,unsigned int offset)57 void irqtime_account_irq(struct task_struct *curr, unsigned int offset)
58 {
59 struct irqtime *irqtime = this_cpu_ptr(&cpu_irqtime);
60 unsigned int pc;
61 s64 delta;
62 int cpu;
63
64 if (!irqtime_enabled())
65 return;
66
67 cpu = smp_processor_id();
68 delta = sched_clock_cpu(cpu) - irqtime->irq_start_time;
69 irqtime->irq_start_time += delta;
70 pc = irq_count() - offset;
71
72 /*
73 * We do not account for softirq time from ksoftirqd here.
74 * We want to continue accounting softirq time to ksoftirqd thread
75 * in that case, so as not to confuse scheduler with a special task
76 * that do not consume any time, but still wants to run.
77 */
78 if (pc & HARDIRQ_MASK)
79 irqtime_account_delta(irqtime, delta, CPUTIME_IRQ);
80 else if ((pc & SOFTIRQ_OFFSET) && curr != this_cpu_ksoftirqd())
81 irqtime_account_delta(irqtime, delta, CPUTIME_SOFTIRQ);
82 }
83
irqtime_tick_accounted(u64 maxtime)84 static u64 irqtime_tick_accounted(u64 maxtime)
85 {
86 struct irqtime *irqtime = this_cpu_ptr(&cpu_irqtime);
87 u64 delta;
88
89 delta = min(irqtime->tick_delta, maxtime);
90 irqtime->tick_delta -= delta;
91
92 return delta;
93 }
94
95 #else /* !CONFIG_IRQ_TIME_ACCOUNTING: */
96
irqtime_tick_accounted(u64 dummy)97 static u64 irqtime_tick_accounted(u64 dummy)
98 {
99 return 0;
100 }
101
102 #endif /* !CONFIG_IRQ_TIME_ACCOUNTING */
103
task_group_account_field(struct task_struct * p,int index,u64 tmp)104 static inline void task_group_account_field(struct task_struct *p, int index,
105 u64 tmp)
106 {
107 /*
108 * Since all updates are sure to touch the root cgroup, we
109 * get ourselves ahead and touch it first. If the root cgroup
110 * is the only cgroup, then nothing else should be necessary.
111 *
112 */
113 __this_cpu_add(kernel_cpustat.cpustat[index], tmp);
114
115 cgroup_account_cputime_field(p, index, tmp);
116 }
117
118 /*
119 * Account user CPU time to a process.
120 * @p: the process that the CPU time gets accounted to
121 * @cputime: the CPU time spent in user space since the last update
122 */
account_user_time(struct task_struct * p,u64 cputime)123 void account_user_time(struct task_struct *p, u64 cputime)
124 {
125 int index;
126
127 /* Add user time to process. */
128 p->utime += cputime;
129 account_group_user_time(p, cputime);
130
131 index = (task_nice(p) > 0) ? CPUTIME_NICE : CPUTIME_USER;
132
133 /* Add user time to cpustat. */
134 task_group_account_field(p, index, cputime);
135
136 /* Account for user time used */
137 acct_account_cputime(p);
138 }
139
140 /*
141 * Account guest CPU time to a process.
142 * @p: the process that the CPU time gets accounted to
143 * @cputime: the CPU time spent in virtual machine since the last update
144 */
account_guest_time(struct task_struct * p,u64 cputime)145 void account_guest_time(struct task_struct *p, u64 cputime)
146 {
147 u64 *cpustat = kcpustat_this_cpu->cpustat;
148
149 /* Add guest time to process. */
150 p->utime += cputime;
151 account_group_user_time(p, cputime);
152 p->gtime += cputime;
153
154 /* Add guest time to cpustat. */
155 if (task_nice(p) > 0) {
156 task_group_account_field(p, CPUTIME_NICE, cputime);
157 cpustat[CPUTIME_GUEST_NICE] += cputime;
158 } else {
159 task_group_account_field(p, CPUTIME_USER, cputime);
160 cpustat[CPUTIME_GUEST] += cputime;
161 }
162 }
163
164 /*
165 * Account system CPU time to a process and desired cpustat field
166 * @p: the process that the CPU time gets accounted to
167 * @cputime: the CPU time spent in kernel space since the last update
168 * @index: pointer to cpustat field that has to be updated
169 */
account_system_index_time(struct task_struct * p,u64 cputime,enum cpu_usage_stat index)170 void account_system_index_time(struct task_struct *p,
171 u64 cputime, enum cpu_usage_stat index)
172 {
173 /* Add system time to process. */
174 p->stime += cputime;
175 account_group_system_time(p, cputime);
176
177 /* Add system time to cpustat. */
178 task_group_account_field(p, index, cputime);
179
180 /* Account for system time used */
181 acct_account_cputime(p);
182 }
183
184 /*
185 * Account system CPU time to a process.
186 * @p: the process that the CPU time gets accounted to
187 * @hardirq_offset: the offset to subtract from hardirq_count()
188 * @cputime: the CPU time spent in kernel space since the last update
189 */
account_system_time(struct task_struct * p,int hardirq_offset,u64 cputime)190 void account_system_time(struct task_struct *p, int hardirq_offset, u64 cputime)
191 {
192 int index;
193
194 if ((p->flags & PF_VCPU) && (irq_count() - hardirq_offset == 0)) {
195 account_guest_time(p, cputime);
196 return;
197 }
198
199 if (hardirq_count() - hardirq_offset)
200 index = CPUTIME_IRQ;
201 else if (in_serving_softirq())
202 index = CPUTIME_SOFTIRQ;
203 else
204 index = CPUTIME_SYSTEM;
205
206 account_system_index_time(p, cputime, index);
207 }
208
209 /*
210 * Account for involuntary wait time.
211 * @cputime: the CPU time spent in involuntary wait
212 */
account_steal_time(u64 cputime)213 void account_steal_time(u64 cputime)
214 {
215 u64 *cpustat = kcpustat_this_cpu->cpustat;
216
217 cpustat[CPUTIME_STEAL] += cputime;
218 }
219
220 /*
221 * Account for idle time.
222 * @cputime: the CPU time spent in idle wait
223 */
account_idle_time(u64 cputime)224 void account_idle_time(u64 cputime)
225 {
226 u64 *cpustat = kcpustat_this_cpu->cpustat;
227 struct rq *rq = this_rq();
228
229 if (atomic_read(&rq->nr_iowait) > 0)
230 cpustat[CPUTIME_IOWAIT] += cputime;
231 else
232 cpustat[CPUTIME_IDLE] += cputime;
233 }
234
235
236 #ifdef CONFIG_SCHED_CORE
237 /*
238 * Account for forceidle time due to core scheduling.
239 *
240 * REQUIRES: schedstat is enabled.
241 */
__account_forceidle_time(struct task_struct * p,u64 delta)242 void __account_forceidle_time(struct task_struct *p, u64 delta)
243 {
244 __schedstat_add(p->stats.core_forceidle_sum, delta);
245
246 task_group_account_field(p, CPUTIME_FORCEIDLE, delta);
247 }
248 #endif /* CONFIG_SCHED_CORE */
249
250 /*
251 * When a guest is interrupted for a longer amount of time, missed clock
252 * ticks are not redelivered later. Due to that, this function may on
253 * occasion account more time than the calling functions think elapsed.
254 */
255 #ifdef CONFIG_PARAVIRT
256 struct static_key paravirt_steal_enabled;
257
258 #ifdef CONFIG_HAVE_PV_STEAL_CLOCK_GEN
native_steal_clock(int cpu)259 static u64 native_steal_clock(int cpu)
260 {
261 return 0;
262 }
263
264 DEFINE_STATIC_CALL(pv_steal_clock, native_steal_clock);
265 #endif
266 #endif
267
steal_account_process_time(u64 maxtime)268 static __always_inline u64 steal_account_process_time(u64 maxtime)
269 {
270 #ifdef CONFIG_PARAVIRT
271 if (static_key_false(¶virt_steal_enabled)) {
272 u64 steal;
273
274 steal = paravirt_steal_clock(smp_processor_id());
275 steal -= this_rq()->prev_steal_time;
276 steal = min(steal, maxtime);
277 account_steal_time(steal);
278 this_rq()->prev_steal_time += steal;
279
280 return steal;
281 }
282 #endif /* CONFIG_PARAVIRT */
283 return 0;
284 }
285
286 /*
287 * Account how much elapsed time was spent in steal, IRQ, or softirq time.
288 */
account_other_time(u64 max)289 static inline u64 account_other_time(u64 max)
290 {
291 u64 accounted;
292
293 lockdep_assert_irqs_disabled();
294
295 accounted = steal_account_process_time(max);
296
297 if (accounted < max)
298 accounted += irqtime_tick_accounted(max - accounted);
299
300 return accounted;
301 }
302
303 #ifdef CONFIG_64BIT
read_sum_exec_runtime(struct task_struct * t)304 static inline u64 read_sum_exec_runtime(struct task_struct *t)
305 {
306 return t->se.sum_exec_runtime;
307 }
308 #else /* !CONFIG_64BIT: */
read_sum_exec_runtime(struct task_struct * t)309 static u64 read_sum_exec_runtime(struct task_struct *t)
310 {
311 u64 ns;
312 struct rq_flags rf;
313 struct rq *rq;
314
315 rq = task_rq_lock(t, &rf);
316 ns = t->se.sum_exec_runtime;
317 task_rq_unlock(rq, t, &rf);
318
319 return ns;
320 }
321 #endif /* !CONFIG_64BIT */
322
323 /*
324 * Accumulate raw cputime values of dead tasks (sig->[us]time) and live
325 * tasks (sum on group iteration) belonging to @tsk's group.
326 */
thread_group_cputime(struct task_struct * tsk,struct task_cputime * times)327 void thread_group_cputime(struct task_struct *tsk, struct task_cputime *times)
328 {
329 struct signal_struct *sig = tsk->signal;
330 struct task_struct *t;
331 u64 utime, stime;
332
333 /*
334 * Update current task runtime to account pending time since last
335 * scheduler action or thread_group_cputime() call. This thread group
336 * might have other running tasks on different CPUs, but updating
337 * their runtime can affect syscall performance, so we skip account
338 * those pending times and rely only on values updated on tick or
339 * other scheduler action.
340 */
341 if (same_thread_group(current, tsk))
342 (void) task_sched_runtime(current);
343
344 guard(rcu)();
345 scoped_seqlock_read (&sig->stats_lock, ss_lock_irqsave) {
346 times->utime = sig->utime;
347 times->stime = sig->stime;
348 times->sum_exec_runtime = sig->sum_sched_runtime;
349
350 __for_each_thread(sig, t) {
351 task_cputime(t, &utime, &stime);
352 times->utime += utime;
353 times->stime += stime;
354 times->sum_exec_runtime += read_sum_exec_runtime(t);
355 }
356 }
357 }
358
359 #ifdef CONFIG_IRQ_TIME_ACCOUNTING
360 /*
361 * Account a tick to a process and cpustat
362 * @p: the process that the CPU time gets accounted to
363 * @user_tick: is the tick from userspace
364 * @rq: the pointer to rq
365 *
366 * Tick demultiplexing follows the order
367 * - pending hardirq update
368 * - pending softirq update
369 * - user_time
370 * - idle_time
371 * - system time
372 * - check for guest_time
373 * - else account as system_time
374 *
375 * Check for hardirq is done both for system and user time as there is
376 * no timer going off while we are on hardirq and hence we may never get an
377 * opportunity to update it solely in system time.
378 * p->stime and friends are only updated on system time and not on IRQ
379 * softirq as those do not count in task exec_runtime any more.
380 */
irqtime_account_process_tick(struct task_struct * p,int user_tick,int ticks)381 static void irqtime_account_process_tick(struct task_struct *p, int user_tick,
382 int ticks)
383 {
384 u64 other, cputime = TICK_NSEC * ticks;
385
386 /*
387 * When returning from idle, many ticks can get accounted at
388 * once, including some ticks of steal, IRQ, and softirq time.
389 * Subtract those ticks from the amount of time accounted to
390 * idle, or potentially user or system time. Due to rounding,
391 * other time can exceed ticks occasionally.
392 */
393 other = account_other_time(ULONG_MAX);
394 if (other >= cputime)
395 return;
396
397 cputime -= other;
398
399 if (this_cpu_ksoftirqd() == p) {
400 /*
401 * ksoftirqd time do not get accounted in cpu_softirq_time.
402 * So, we have to handle it separately here.
403 * Also, p->stime needs to be updated for ksoftirqd.
404 */
405 account_system_index_time(p, cputime, CPUTIME_SOFTIRQ);
406 } else if (user_tick) {
407 account_user_time(p, cputime);
408 } else if (p == this_rq()->idle) {
409 account_idle_time(cputime);
410 } else if (p->flags & PF_VCPU) { /* System time or guest time */
411 account_guest_time(p, cputime);
412 } else {
413 account_system_index_time(p, cputime, CPUTIME_SYSTEM);
414 }
415 }
416
irqtime_account_idle_ticks(int ticks)417 static void irqtime_account_idle_ticks(int ticks)
418 {
419 irqtime_account_process_tick(current, 0, ticks);
420 }
421 #else /* !CONFIG_IRQ_TIME_ACCOUNTING: */
irqtime_account_idle_ticks(int ticks)422 static inline void irqtime_account_idle_ticks(int ticks) { }
irqtime_account_process_tick(struct task_struct * p,int user_tick,int nr_ticks)423 static inline void irqtime_account_process_tick(struct task_struct *p, int user_tick,
424 int nr_ticks) { }
425 #endif /* !CONFIG_IRQ_TIME_ACCOUNTING */
426
427 /*
428 * Use precise platform statistics if available:
429 */
430 #ifdef CONFIG_VIRT_CPU_ACCOUNTING_NATIVE
431
vtime_account_irq(struct task_struct * tsk,unsigned int offset)432 void vtime_account_irq(struct task_struct *tsk, unsigned int offset)
433 {
434 unsigned int pc = irq_count() - offset;
435
436 if (pc & HARDIRQ_OFFSET) {
437 vtime_account_hardirq(tsk);
438 } else if (pc & SOFTIRQ_OFFSET) {
439 vtime_account_softirq(tsk);
440 } else if (!IS_ENABLED(CONFIG_HAVE_VIRT_CPU_ACCOUNTING_IDLE) &&
441 is_idle_task(tsk)) {
442 vtime_account_idle(tsk);
443 } else {
444 vtime_account_kernel(tsk);
445 }
446 }
447
cputime_adjust(struct task_cputime * curr,struct prev_cputime * prev,u64 * ut,u64 * st)448 void cputime_adjust(struct task_cputime *curr, struct prev_cputime *prev,
449 u64 *ut, u64 *st)
450 {
451 *ut = curr->utime;
452 *st = curr->stime;
453 }
454
task_cputime_adjusted(struct task_struct * p,u64 * ut,u64 * st)455 void task_cputime_adjusted(struct task_struct *p, u64 *ut, u64 *st)
456 {
457 *ut = p->utime;
458 *st = p->stime;
459 }
460 EXPORT_SYMBOL_GPL(task_cputime_adjusted);
461
thread_group_cputime_adjusted(struct task_struct * p,u64 * ut,u64 * st)462 void thread_group_cputime_adjusted(struct task_struct *p, u64 *ut, u64 *st)
463 {
464 struct task_cputime cputime;
465
466 thread_group_cputime(p, &cputime);
467
468 *ut = cputime.utime;
469 *st = cputime.stime;
470 }
471
472 #else /* !CONFIG_VIRT_CPU_ACCOUNTING_NATIVE: */
473
474 /*
475 * Account a single tick of CPU time.
476 * @p: the process that the CPU time gets accounted to
477 * @user_tick: indicates if the tick is a user or a system tick
478 */
account_process_tick(struct task_struct * p,int user_tick)479 void account_process_tick(struct task_struct *p, int user_tick)
480 {
481 u64 cputime, steal;
482
483 if (vtime_accounting_enabled_this_cpu())
484 return;
485
486 if (irqtime_enabled()) {
487 irqtime_account_process_tick(p, user_tick, 1);
488 return;
489 }
490
491 cputime = TICK_NSEC;
492 steal = steal_account_process_time(ULONG_MAX);
493
494 if (steal >= cputime)
495 return;
496
497 cputime -= steal;
498
499 if (user_tick)
500 account_user_time(p, cputime);
501 else if ((p != this_rq()->idle) || (irq_count() != HARDIRQ_OFFSET))
502 account_system_time(p, HARDIRQ_OFFSET, cputime);
503 else
504 account_idle_time(cputime);
505 }
506
507 /*
508 * Account multiple ticks of idle time.
509 * @ticks: number of stolen ticks
510 */
account_idle_ticks(unsigned long ticks)511 void account_idle_ticks(unsigned long ticks)
512 {
513 u64 cputime, steal;
514
515 if (irqtime_enabled()) {
516 irqtime_account_idle_ticks(ticks);
517 return;
518 }
519
520 cputime = ticks * TICK_NSEC;
521 steal = steal_account_process_time(ULONG_MAX);
522
523 if (steal >= cputime)
524 return;
525
526 cputime -= steal;
527 account_idle_time(cputime);
528 }
529
530 /*
531 * Adjust tick based cputime random precision against scheduler runtime
532 * accounting.
533 *
534 * Tick based cputime accounting depend on random scheduling timeslices of a
535 * task to be interrupted or not by the timer. Depending on these
536 * circumstances, the number of these interrupts may be over or
537 * under-optimistic, matching the real user and system cputime with a variable
538 * precision.
539 *
540 * Fix this by scaling these tick based values against the total runtime
541 * accounted by the CFS scheduler.
542 *
543 * This code provides the following guarantees:
544 *
545 * stime + utime == rtime
546 * stime_i+1 >= stime_i, utime_i+1 >= utime_i
547 *
548 * Assuming that rtime_i+1 >= rtime_i.
549 */
cputime_adjust(struct task_cputime * curr,struct prev_cputime * prev,u64 * ut,u64 * st)550 void cputime_adjust(struct task_cputime *curr, struct prev_cputime *prev,
551 u64 *ut, u64 *st)
552 {
553 u64 rtime, stime, utime;
554 unsigned long flags;
555
556 /* Serialize concurrent callers such that we can honour our guarantees */
557 raw_spin_lock_irqsave(&prev->lock, flags);
558 rtime = curr->sum_exec_runtime;
559
560 /*
561 * This is possible under two circumstances:
562 * - rtime isn't monotonic after all (a bug);
563 * - we got reordered by the lock.
564 *
565 * In both cases this acts as a filter such that the rest of the code
566 * can assume it is monotonic regardless of anything else.
567 */
568 if (prev->stime + prev->utime >= rtime)
569 goto out;
570
571 stime = curr->stime;
572 utime = curr->utime;
573
574 /*
575 * If either stime or utime are 0, assume all runtime is userspace.
576 * Once a task gets some ticks, the monotonicity code at 'update:'
577 * will ensure things converge to the observed ratio.
578 */
579 if (stime == 0) {
580 utime = rtime;
581 goto update;
582 }
583
584 if (utime == 0) {
585 stime = rtime;
586 goto update;
587 }
588
589 stime = mul_u64_u64_div_u64(stime, rtime, stime + utime);
590 /*
591 * Because mul_u64_u64_div_u64() can approximate on some
592 * achitectures; enforce the constraint that: a*b/(b+c) <= a.
593 */
594 if (unlikely(stime > rtime))
595 stime = rtime;
596
597 update:
598 /*
599 * Make sure stime doesn't go backwards; this preserves monotonicity
600 * for utime because rtime is monotonic.
601 *
602 * utime_i+1 = rtime_i+1 - stime_i
603 * = rtime_i+1 - (rtime_i - utime_i)
604 * = (rtime_i+1 - rtime_i) + utime_i
605 * >= utime_i
606 */
607 if (stime < prev->stime)
608 stime = prev->stime;
609 utime = rtime - stime;
610
611 /*
612 * Make sure utime doesn't go backwards; this still preserves
613 * monotonicity for stime, analogous argument to above.
614 */
615 if (utime < prev->utime) {
616 utime = prev->utime;
617 stime = rtime - utime;
618 }
619
620 prev->stime = stime;
621 prev->utime = utime;
622 out:
623 *ut = prev->utime;
624 *st = prev->stime;
625 raw_spin_unlock_irqrestore(&prev->lock, flags);
626 }
627
task_cputime_adjusted(struct task_struct * p,u64 * ut,u64 * st)628 void task_cputime_adjusted(struct task_struct *p, u64 *ut, u64 *st)
629 {
630 struct task_cputime cputime = {
631 .sum_exec_runtime = p->se.sum_exec_runtime,
632 };
633
634 if (task_cputime(p, &cputime.utime, &cputime.stime))
635 cputime.sum_exec_runtime = task_sched_runtime(p);
636 cputime_adjust(&cputime, &p->prev_cputime, ut, st);
637 }
638 EXPORT_SYMBOL_GPL(task_cputime_adjusted);
639
thread_group_cputime_adjusted(struct task_struct * p,u64 * ut,u64 * st)640 void thread_group_cputime_adjusted(struct task_struct *p, u64 *ut, u64 *st)
641 {
642 struct task_cputime cputime;
643
644 thread_group_cputime(p, &cputime);
645 cputime_adjust(&cputime, &p->signal->prev_cputime, ut, st);
646 }
647 #endif /* !CONFIG_VIRT_CPU_ACCOUNTING_NATIVE */
648
649 #ifdef CONFIG_VIRT_CPU_ACCOUNTING_GEN
vtime_delta(struct vtime * vtime)650 static u64 vtime_delta(struct vtime *vtime)
651 {
652 unsigned long long clock;
653
654 clock = sched_clock();
655 if (clock < vtime->starttime)
656 return 0;
657
658 return clock - vtime->starttime;
659 }
660
get_vtime_delta(struct vtime * vtime)661 static u64 get_vtime_delta(struct vtime *vtime)
662 {
663 u64 delta = vtime_delta(vtime);
664 u64 other;
665
666 /*
667 * Unlike tick based timing, vtime based timing never has lost
668 * ticks, and no need for steal time accounting to make up for
669 * lost ticks. Vtime accounts a rounded version of actual
670 * elapsed time. Limit account_other_time to prevent rounding
671 * errors from causing elapsed vtime to go negative.
672 */
673 other = account_other_time(delta);
674 WARN_ON_ONCE(vtime->state == VTIME_INACTIVE);
675 vtime->starttime += delta;
676
677 return delta - other;
678 }
679
vtime_account_system(struct task_struct * tsk,struct vtime * vtime)680 static void vtime_account_system(struct task_struct *tsk,
681 struct vtime *vtime)
682 {
683 vtime->stime += get_vtime_delta(vtime);
684 if (vtime->stime >= TICK_NSEC) {
685 account_system_time(tsk, irq_count(), vtime->stime);
686 vtime->stime = 0;
687 }
688 }
689
vtime_account_guest(struct task_struct * tsk,struct vtime * vtime)690 static void vtime_account_guest(struct task_struct *tsk,
691 struct vtime *vtime)
692 {
693 vtime->gtime += get_vtime_delta(vtime);
694 if (vtime->gtime >= TICK_NSEC) {
695 account_guest_time(tsk, vtime->gtime);
696 vtime->gtime = 0;
697 }
698 }
699
__vtime_account_kernel(struct task_struct * tsk,struct vtime * vtime)700 static void __vtime_account_kernel(struct task_struct *tsk,
701 struct vtime *vtime)
702 {
703 /* We might have scheduled out from guest path */
704 if (vtime->state == VTIME_GUEST)
705 vtime_account_guest(tsk, vtime);
706 else
707 vtime_account_system(tsk, vtime);
708 }
709
vtime_account_kernel(struct task_struct * tsk)710 void vtime_account_kernel(struct task_struct *tsk)
711 {
712 struct vtime *vtime = &tsk->vtime;
713
714 if (!vtime_delta(vtime))
715 return;
716
717 write_seqcount_begin(&vtime->seqcount);
718 __vtime_account_kernel(tsk, vtime);
719 write_seqcount_end(&vtime->seqcount);
720 }
721
vtime_user_enter(struct task_struct * tsk)722 void vtime_user_enter(struct task_struct *tsk)
723 {
724 struct vtime *vtime = &tsk->vtime;
725
726 write_seqcount_begin(&vtime->seqcount);
727 vtime_account_system(tsk, vtime);
728 vtime->state = VTIME_USER;
729 write_seqcount_end(&vtime->seqcount);
730 }
731
vtime_user_exit(struct task_struct * tsk)732 void vtime_user_exit(struct task_struct *tsk)
733 {
734 struct vtime *vtime = &tsk->vtime;
735
736 write_seqcount_begin(&vtime->seqcount);
737 vtime->utime += get_vtime_delta(vtime);
738 if (vtime->utime >= TICK_NSEC) {
739 account_user_time(tsk, vtime->utime);
740 vtime->utime = 0;
741 }
742 vtime->state = VTIME_SYS;
743 write_seqcount_end(&vtime->seqcount);
744 }
745
vtime_guest_enter(struct task_struct * tsk)746 void vtime_guest_enter(struct task_struct *tsk)
747 {
748 struct vtime *vtime = &tsk->vtime;
749 /*
750 * The flags must be updated under the lock with
751 * the vtime_starttime flush and update.
752 * That enforces a right ordering and update sequence
753 * synchronization against the reader (task_gtime())
754 * that can thus safely catch up with a tickless delta.
755 */
756 write_seqcount_begin(&vtime->seqcount);
757 vtime_account_system(tsk, vtime);
758 tsk->flags |= PF_VCPU;
759 vtime->state = VTIME_GUEST;
760 write_seqcount_end(&vtime->seqcount);
761 }
762 EXPORT_SYMBOL_GPL(vtime_guest_enter);
763
vtime_guest_exit(struct task_struct * tsk)764 void vtime_guest_exit(struct task_struct *tsk)
765 {
766 struct vtime *vtime = &tsk->vtime;
767
768 write_seqcount_begin(&vtime->seqcount);
769 vtime_account_guest(tsk, vtime);
770 tsk->flags &= ~PF_VCPU;
771 vtime->state = VTIME_SYS;
772 write_seqcount_end(&vtime->seqcount);
773 }
774 EXPORT_SYMBOL_GPL(vtime_guest_exit);
775
vtime_account_idle(struct task_struct * tsk)776 void vtime_account_idle(struct task_struct *tsk)
777 {
778 account_idle_time(get_vtime_delta(&tsk->vtime));
779 }
780
vtime_task_switch_generic(struct task_struct * prev)781 void vtime_task_switch_generic(struct task_struct *prev)
782 {
783 struct vtime *vtime = &prev->vtime;
784
785 write_seqcount_begin(&vtime->seqcount);
786 if (vtime->state == VTIME_IDLE)
787 vtime_account_idle(prev);
788 else
789 __vtime_account_kernel(prev, vtime);
790 vtime->state = VTIME_INACTIVE;
791 vtime->cpu = -1;
792 write_seqcount_end(&vtime->seqcount);
793
794 vtime = ¤t->vtime;
795
796 write_seqcount_begin(&vtime->seqcount);
797 if (is_idle_task(current))
798 vtime->state = VTIME_IDLE;
799 else if (current->flags & PF_VCPU)
800 vtime->state = VTIME_GUEST;
801 else
802 vtime->state = VTIME_SYS;
803 vtime->starttime = sched_clock();
804 vtime->cpu = smp_processor_id();
805 write_seqcount_end(&vtime->seqcount);
806 }
807
vtime_init_idle(struct task_struct * t,int cpu)808 void vtime_init_idle(struct task_struct *t, int cpu)
809 {
810 struct vtime *vtime = &t->vtime;
811 unsigned long flags;
812
813 local_irq_save(flags);
814 write_seqcount_begin(&vtime->seqcount);
815 vtime->state = VTIME_IDLE;
816 vtime->starttime = sched_clock();
817 vtime->cpu = cpu;
818 write_seqcount_end(&vtime->seqcount);
819 local_irq_restore(flags);
820 }
821
task_gtime(struct task_struct * t)822 u64 task_gtime(struct task_struct *t)
823 {
824 struct vtime *vtime = &t->vtime;
825 unsigned int seq;
826 u64 gtime;
827
828 if (!vtime_accounting_enabled())
829 return t->gtime;
830
831 do {
832 seq = read_seqcount_begin(&vtime->seqcount);
833
834 gtime = t->gtime;
835 if (vtime->state == VTIME_GUEST)
836 gtime += vtime->gtime + vtime_delta(vtime);
837
838 } while (read_seqcount_retry(&vtime->seqcount, seq));
839
840 return gtime;
841 }
842
843 /*
844 * Fetch cputime raw values from fields of task_struct and
845 * add up the pending nohz execution time since the last
846 * cputime snapshot.
847 */
task_cputime(struct task_struct * t,u64 * utime,u64 * stime)848 bool task_cputime(struct task_struct *t, u64 *utime, u64 *stime)
849 {
850 struct vtime *vtime = &t->vtime;
851 unsigned int seq;
852 u64 delta;
853 int ret;
854
855 if (!vtime_accounting_enabled()) {
856 *utime = t->utime;
857 *stime = t->stime;
858 return false;
859 }
860
861 do {
862 ret = false;
863 seq = read_seqcount_begin(&vtime->seqcount);
864
865 *utime = t->utime;
866 *stime = t->stime;
867
868 /* Task is sleeping or idle, nothing to add */
869 if (vtime->state < VTIME_SYS)
870 continue;
871
872 ret = true;
873 delta = vtime_delta(vtime);
874
875 /*
876 * Task runs either in user (including guest) or kernel space,
877 * add pending nohz time to the right place.
878 */
879 if (vtime->state == VTIME_SYS)
880 *stime += vtime->stime + delta;
881 else
882 *utime += vtime->utime + delta;
883 } while (read_seqcount_retry(&vtime->seqcount, seq));
884
885 return ret;
886 }
887
vtime_state_fetch(struct vtime * vtime,int cpu)888 static int vtime_state_fetch(struct vtime *vtime, int cpu)
889 {
890 int state = READ_ONCE(vtime->state);
891
892 /*
893 * We raced against a context switch, fetch the
894 * kcpustat task again.
895 */
896 if (vtime->cpu != cpu && vtime->cpu != -1)
897 return -EAGAIN;
898
899 /*
900 * Two possible things here:
901 * 1) We are seeing the scheduling out task (prev) or any past one.
902 * 2) We are seeing the scheduling in task (next) but it hasn't
903 * passed though vtime_task_switch() yet so the pending
904 * cputime of the prev task may not be flushed yet.
905 *
906 * Case 1) is ok but 2) is not. So wait for a safe VTIME state.
907 */
908 if (state == VTIME_INACTIVE)
909 return -EAGAIN;
910
911 return state;
912 }
913
kcpustat_user_vtime(struct vtime * vtime)914 static u64 kcpustat_user_vtime(struct vtime *vtime)
915 {
916 if (vtime->state == VTIME_USER)
917 return vtime->utime + vtime_delta(vtime);
918 else if (vtime->state == VTIME_GUEST)
919 return vtime->gtime + vtime_delta(vtime);
920 return 0;
921 }
922
kcpustat_field_vtime(u64 * cpustat,struct task_struct * tsk,enum cpu_usage_stat usage,int cpu,u64 * val)923 static int kcpustat_field_vtime(u64 *cpustat,
924 struct task_struct *tsk,
925 enum cpu_usage_stat usage,
926 int cpu, u64 *val)
927 {
928 struct vtime *vtime = &tsk->vtime;
929 unsigned int seq;
930
931 do {
932 int state;
933
934 seq = read_seqcount_begin(&vtime->seqcount);
935
936 state = vtime_state_fetch(vtime, cpu);
937 if (state < 0)
938 return state;
939
940 *val = cpustat[usage];
941
942 /*
943 * Nice VS unnice cputime accounting may be inaccurate if
944 * the nice value has changed since the last vtime update.
945 * But proper fix would involve interrupting target on nice
946 * updates which is a no go on nohz_full (although the scheduler
947 * may still interrupt the target if rescheduling is needed...)
948 */
949 switch (usage) {
950 case CPUTIME_SYSTEM:
951 if (state == VTIME_SYS)
952 *val += vtime->stime + vtime_delta(vtime);
953 break;
954 case CPUTIME_USER:
955 if (task_nice(tsk) <= 0)
956 *val += kcpustat_user_vtime(vtime);
957 break;
958 case CPUTIME_NICE:
959 if (task_nice(tsk) > 0)
960 *val += kcpustat_user_vtime(vtime);
961 break;
962 case CPUTIME_GUEST:
963 if (state == VTIME_GUEST && task_nice(tsk) <= 0)
964 *val += vtime->gtime + vtime_delta(vtime);
965 break;
966 case CPUTIME_GUEST_NICE:
967 if (state == VTIME_GUEST && task_nice(tsk) > 0)
968 *val += vtime->gtime + vtime_delta(vtime);
969 break;
970 default:
971 break;
972 }
973 } while (read_seqcount_retry(&vtime->seqcount, seq));
974
975 return 0;
976 }
977
kcpustat_field(struct kernel_cpustat * kcpustat,enum cpu_usage_stat usage,int cpu)978 u64 kcpustat_field(struct kernel_cpustat *kcpustat,
979 enum cpu_usage_stat usage, int cpu)
980 {
981 u64 *cpustat = kcpustat->cpustat;
982 u64 val = cpustat[usage];
983 struct rq *rq;
984 int err;
985
986 if (!vtime_accounting_enabled_cpu(cpu))
987 return val;
988
989 rq = cpu_rq(cpu);
990
991 for (;;) {
992 struct task_struct *curr;
993
994 rcu_read_lock();
995 curr = rcu_dereference(rq->curr);
996 if (WARN_ON_ONCE(!curr)) {
997 rcu_read_unlock();
998 return cpustat[usage];
999 }
1000
1001 err = kcpustat_field_vtime(cpustat, curr, usage, cpu, &val);
1002 rcu_read_unlock();
1003
1004 if (!err)
1005 return val;
1006
1007 cpu_relax();
1008 }
1009 }
1010 EXPORT_SYMBOL_GPL(kcpustat_field);
1011
kcpustat_cpu_fetch_vtime(struct kernel_cpustat * dst,const struct kernel_cpustat * src,struct task_struct * tsk,int cpu)1012 static int kcpustat_cpu_fetch_vtime(struct kernel_cpustat *dst,
1013 const struct kernel_cpustat *src,
1014 struct task_struct *tsk, int cpu)
1015 {
1016 struct vtime *vtime = &tsk->vtime;
1017 unsigned int seq;
1018
1019 do {
1020 u64 *cpustat;
1021 u64 delta;
1022 int state;
1023
1024 seq = read_seqcount_begin(&vtime->seqcount);
1025
1026 state = vtime_state_fetch(vtime, cpu);
1027 if (state < 0)
1028 return state;
1029
1030 *dst = *src;
1031 cpustat = dst->cpustat;
1032
1033 /* Task is sleeping, dead or idle, nothing to add */
1034 if (state < VTIME_SYS)
1035 continue;
1036
1037 delta = vtime_delta(vtime);
1038
1039 /*
1040 * Task runs either in user (including guest) or kernel space,
1041 * add pending nohz time to the right place.
1042 */
1043 if (state == VTIME_SYS) {
1044 cpustat[CPUTIME_SYSTEM] += vtime->stime + delta;
1045 } else if (state == VTIME_USER) {
1046 if (task_nice(tsk) > 0)
1047 cpustat[CPUTIME_NICE] += vtime->utime + delta;
1048 else
1049 cpustat[CPUTIME_USER] += vtime->utime + delta;
1050 } else {
1051 WARN_ON_ONCE(state != VTIME_GUEST);
1052 if (task_nice(tsk) > 0) {
1053 cpustat[CPUTIME_GUEST_NICE] += vtime->gtime + delta;
1054 cpustat[CPUTIME_NICE] += vtime->gtime + delta;
1055 } else {
1056 cpustat[CPUTIME_GUEST] += vtime->gtime + delta;
1057 cpustat[CPUTIME_USER] += vtime->gtime + delta;
1058 }
1059 }
1060 } while (read_seqcount_retry(&vtime->seqcount, seq));
1061
1062 return 0;
1063 }
1064
kcpustat_cpu_fetch(struct kernel_cpustat * dst,int cpu)1065 void kcpustat_cpu_fetch(struct kernel_cpustat *dst, int cpu)
1066 {
1067 const struct kernel_cpustat *src = &kcpustat_cpu(cpu);
1068 struct rq *rq;
1069 int err;
1070
1071 if (!vtime_accounting_enabled_cpu(cpu)) {
1072 *dst = *src;
1073 return;
1074 }
1075
1076 rq = cpu_rq(cpu);
1077
1078 for (;;) {
1079 struct task_struct *curr;
1080
1081 rcu_read_lock();
1082 curr = rcu_dereference(rq->curr);
1083 if (WARN_ON_ONCE(!curr)) {
1084 rcu_read_unlock();
1085 *dst = *src;
1086 return;
1087 }
1088
1089 err = kcpustat_cpu_fetch_vtime(dst, src, curr, cpu);
1090 rcu_read_unlock();
1091
1092 if (!err)
1093 return;
1094
1095 cpu_relax();
1096 }
1097 }
1098 EXPORT_SYMBOL_GPL(kcpustat_cpu_fetch);
1099
1100 #endif /* CONFIG_VIRT_CPU_ACCOUNTING_GEN */
1101