1 /* SPDX-License-Identifier: GPL-2.0 */
2 /*
3 * Scheduler internal types and methods:
4 */
5 #ifndef _KERNEL_SCHED_SCHED_H
6 #define _KERNEL_SCHED_SCHED_H
7
8 #include <linux/prandom.h>
9 #include <linux/sched/affinity.h>
10 #include <linux/sched/autogroup.h>
11 #include <linux/sched/cpufreq.h>
12 #include <linux/sched/deadline.h>
13 #include <linux/sched.h>
14 #include <linux/sched/loadavg.h>
15 #include <linux/sched/mm.h>
16 #include <linux/sched/rseq_api.h>
17 #include <linux/sched/signal.h>
18 #include <linux/sched/smt.h>
19 #include <linux/sched/stat.h>
20 #include <linux/sched/sysctl.h>
21 #include <linux/sched/task_flags.h>
22 #include <linux/sched/task.h>
23 #include <linux/sched/topology.h>
24 #include <linux/atomic.h>
25 #include <linux/bitmap.h>
26 #include <linux/bug.h>
27 #include <linux/capability.h>
28 #include <linux/cgroup_api.h>
29 #include <linux/cgroup.h>
30 #include <linux/context_tracking.h>
31 #include <linux/cpufreq.h>
32 #include <linux/cpumask_api.h>
33 #include <linux/cpuset.h>
34 #include <linux/ctype.h>
35 #include <linux/file.h>
36 #include <linux/fs_api.h>
37 #include <linux/hrtimer_api.h>
38 #include <linux/interrupt.h>
39 #include <linux/irq_work.h>
40 #include <linux/jiffies.h>
41 #include <linux/kref_api.h>
42 #include <linux/kthread.h>
43 #include <linux/ktime_api.h>
44 #include <linux/lockdep_api.h>
45 #include <linux/lockdep.h>
46 #include <linux/memblock.h>
47 #include <linux/memcontrol.h>
48 #include <linux/minmax.h>
49 #include <linux/mm.h>
50 #include <linux/module.h>
51 #include <linux/mutex_api.h>
52 #include <linux/plist.h>
53 #include <linux/poll.h>
54 #include <linux/proc_fs.h>
55 #include <linux/profile.h>
56 #include <linux/psi.h>
57 #include <linux/rcupdate.h>
58 #include <linux/seq_file.h>
59 #include <linux/seqlock.h>
60 #include <linux/softirq.h>
61 #include <linux/spinlock_api.h>
62 #include <linux/static_key.h>
63 #include <linux/stop_machine.h>
64 #include <linux/syscalls_api.h>
65 #include <linux/syscalls.h>
66 #include <linux/tick.h>
67 #include <linux/topology.h>
68 #include <linux/types.h>
69 #include <linux/u64_stats_sync_api.h>
70 #include <linux/uaccess.h>
71 #include <linux/vmstat.h>
72 #include <linux/wait_api.h>
73 #include <linux/wait_bit.h>
74 #include <linux/workqueue_api.h>
75 #include <linux/delayacct.h>
76 #include <linux/mmu_context.h>
77
78 #include <trace/events/power.h>
79 #include <trace/events/sched.h>
80
81 #include "../workqueue_internal.h"
82
83 struct rq;
84 struct cfs_rq;
85 struct rt_rq;
86 struct sched_group;
87 struct cpuidle_state;
88
89 #if defined(CONFIG_PARAVIRT) && !defined(CONFIG_HAVE_PV_STEAL_CLOCK_GEN)
90 # include <asm/paravirt.h>
91 #endif
92
93 #include <asm/barrier.h>
94
95 #include "cpupri.h"
96 #include "cpudeadline.h"
97
98 /* task_struct::on_rq states: */
99 #define TASK_ON_RQ_QUEUED 1
100 #define TASK_ON_RQ_MIGRATING 2
101
102 extern __read_mostly int scheduler_running;
103
104 extern unsigned long calc_load_update;
105 extern atomic_long_t calc_load_tasks;
106
107 extern void calc_global_load_tick(struct rq *this_rq);
108 extern long calc_load_fold_active(struct rq *this_rq, long adjust);
109
110 extern void call_trace_sched_update_nr_running(struct rq *rq, int count);
111
112 extern int sysctl_sched_rt_period;
113 extern int sysctl_sched_rt_runtime;
114 extern int sched_rr_timeslice;
115
116 /*
117 * Asymmetric CPU capacity bits
118 */
119 struct asym_cap_data {
120 struct list_head link;
121 struct rcu_head rcu;
122 unsigned long capacity;
123 unsigned long cpus[];
124 };
125
126 extern struct list_head asym_cap_list;
127
128 #define cpu_capacity_span(asym_data) to_cpumask((asym_data)->cpus)
129
130 /*
131 * Helpers for converting nanosecond timing to jiffy resolution
132 */
133 #define NS_TO_JIFFIES(time) ((unsigned long)(time) / (NSEC_PER_SEC/HZ))
134
135 /*
136 * Increase resolution of nice-level calculations for 64-bit architectures.
137 * The extra resolution improves shares distribution and load balancing of
138 * low-weight task groups (eg. nice +19 on an autogroup), deeper task-group
139 * hierarchies, especially on larger systems. This is not a user-visible change
140 * and does not change the user-interface for setting shares/weights.
141 *
142 * We increase resolution only if we have enough bits to allow this increased
143 * resolution (i.e. 64-bit). The costs for increasing resolution when 32-bit
144 * are pretty high and the returns do not justify the increased costs.
145 *
146 * Really only required when CONFIG_FAIR_GROUP_SCHED=y is also set, but to
147 * increase coverage and consistency always enable it on 64-bit platforms.
148 */
149 #ifdef CONFIG_64BIT
150 # define NICE_0_LOAD_SHIFT (SCHED_FIXEDPOINT_SHIFT + SCHED_FIXEDPOINT_SHIFT)
151 # define scale_load(w) ((w) << SCHED_FIXEDPOINT_SHIFT)
152 # define scale_load_down(w) \
153 ({ \
154 unsigned long __w = (w); \
155 \
156 if (__w) \
157 __w = max(2UL, __w >> SCHED_FIXEDPOINT_SHIFT); \
158 __w; \
159 })
160 #else
161 # define NICE_0_LOAD_SHIFT (SCHED_FIXEDPOINT_SHIFT)
162 # define scale_load(w) (w)
163 # define scale_load_down(w) (w)
164 #endif
165
166 /*
167 * Task weight (visible to users) and its load (invisible to users) have
168 * independent resolution, but they should be well calibrated. We use
169 * scale_load() and scale_load_down(w) to convert between them. The
170 * following must be true:
171 *
172 * scale_load(sched_prio_to_weight[NICE_TO_PRIO(0)-MAX_RT_PRIO]) == NICE_0_LOAD
173 *
174 */
175 #define NICE_0_LOAD (1L << NICE_0_LOAD_SHIFT)
176
177 /*
178 * Single value that decides SCHED_DEADLINE internal math precision.
179 * 10 -> just above 1us
180 * 9 -> just above 0.5us
181 */
182 #define DL_SCALE 10
183
184 /*
185 * Single value that denotes runtime == period, ie unlimited time.
186 */
187 #define RUNTIME_INF ((u64)~0ULL)
188
idle_policy(int policy)189 static inline int idle_policy(int policy)
190 {
191 return policy == SCHED_IDLE;
192 }
193
normal_policy(int policy)194 static inline int normal_policy(int policy)
195 {
196 #ifdef CONFIG_SCHED_CLASS_EXT
197 if (policy == SCHED_EXT)
198 return true;
199 #endif
200 return policy == SCHED_NORMAL;
201 }
202
fair_policy(int policy)203 static inline int fair_policy(int policy)
204 {
205 return normal_policy(policy) || policy == SCHED_BATCH;
206 }
207
rt_policy(int policy)208 static inline int rt_policy(int policy)
209 {
210 return policy == SCHED_FIFO || policy == SCHED_RR;
211 }
212
dl_policy(int policy)213 static inline int dl_policy(int policy)
214 {
215 return policy == SCHED_DEADLINE;
216 }
217
valid_policy(int policy)218 static inline bool valid_policy(int policy)
219 {
220 return idle_policy(policy) || fair_policy(policy) ||
221 rt_policy(policy) || dl_policy(policy);
222 }
223
task_has_idle_policy(struct task_struct * p)224 static inline int task_has_idle_policy(struct task_struct *p)
225 {
226 return idle_policy(p->policy);
227 }
228
task_has_rt_policy(struct task_struct * p)229 static inline int task_has_rt_policy(struct task_struct *p)
230 {
231 return rt_policy(p->policy);
232 }
233
task_has_dl_policy(struct task_struct * p)234 static inline int task_has_dl_policy(struct task_struct *p)
235 {
236 return dl_policy(p->policy);
237 }
238
239 #define cap_scale(v, s) ((v)*(s) >> SCHED_CAPACITY_SHIFT)
240
update_avg(u64 * avg,u64 sample)241 static inline void update_avg(u64 *avg, u64 sample)
242 {
243 s64 diff = sample - *avg;
244
245 *avg += diff / 8;
246 }
247
248 /*
249 * Shifting a value by an exponent greater *or equal* to the size of said value
250 * is UB; cap at size-1.
251 */
252 #define shr_bound(val, shift) \
253 (val >> min_t(typeof(shift), shift, BITS_PER_TYPE(typeof(val)) - 1))
254
255 /*
256 * cgroup weight knobs should use the common MIN, DFL and MAX values which are
257 * 1, 100 and 10000 respectively. While it loses a bit of range on both ends, it
258 * maps pretty well onto the shares value used by scheduler and the round-trip
259 * conversions preserve the original value over the entire range.
260 */
sched_weight_from_cgroup(unsigned long cgrp_weight)261 static inline unsigned long sched_weight_from_cgroup(unsigned long cgrp_weight)
262 {
263 return DIV_ROUND_CLOSEST_ULL(cgrp_weight * 1024, CGROUP_WEIGHT_DFL);
264 }
265
sched_weight_to_cgroup(unsigned long weight)266 static inline unsigned long sched_weight_to_cgroup(unsigned long weight)
267 {
268 return clamp_t(unsigned long,
269 DIV_ROUND_CLOSEST_ULL(weight * CGROUP_WEIGHT_DFL, 1024),
270 CGROUP_WEIGHT_MIN, CGROUP_WEIGHT_MAX);
271 }
272
273 /*
274 * !! For sched_setattr_nocheck() (kernel) only !!
275 *
276 * This is actually gross. :(
277 *
278 * It is used to make schedutil kworker(s) higher priority than SCHED_DEADLINE
279 * tasks, but still be able to sleep. We need this on platforms that cannot
280 * atomically change clock frequency. Remove once fast switching will be
281 * available on such platforms.
282 *
283 * SUGOV stands for SchedUtil GOVernor.
284 */
285 #define SCHED_FLAG_SUGOV 0x10000000
286
287 #define SCHED_DL_FLAGS (SCHED_FLAG_RECLAIM | SCHED_FLAG_DL_OVERRUN | SCHED_FLAG_SUGOV)
288
dl_entity_is_special(const struct sched_dl_entity * dl_se)289 static inline bool dl_entity_is_special(const struct sched_dl_entity *dl_se)
290 {
291 #ifdef CONFIG_CPU_FREQ_GOV_SCHEDUTIL
292 return unlikely(dl_se->flags & SCHED_FLAG_SUGOV);
293 #else
294 return false;
295 #endif
296 }
297
298 /*
299 * Tells if entity @a should preempt entity @b.
300 */
dl_entity_preempt(const struct sched_dl_entity * a,const struct sched_dl_entity * b)301 static inline bool dl_entity_preempt(const struct sched_dl_entity *a,
302 const struct sched_dl_entity *b)
303 {
304 return dl_entity_is_special(a) ||
305 dl_time_before(a->deadline, b->deadline);
306 }
307
308 /*
309 * This is the priority-queue data structure of the RT scheduling class:
310 */
311 struct rt_prio_array {
312 DECLARE_BITMAP(bitmap, MAX_RT_PRIO+1); /* include 1 bit for delimiter */
313 struct list_head queue[MAX_RT_PRIO];
314 };
315
316 struct rt_bandwidth {
317 /* nests inside the rq lock: */
318 raw_spinlock_t rt_runtime_lock;
319 ktime_t rt_period;
320 u64 rt_runtime;
321 struct hrtimer rt_period_timer;
322 unsigned int rt_period_active;
323 };
324
dl_bandwidth_enabled(void)325 static inline int dl_bandwidth_enabled(void)
326 {
327 return sysctl_sched_rt_runtime >= 0;
328 }
329
330 /*
331 * To keep the bandwidth of -deadline tasks under control
332 * we need some place where:
333 * - store the maximum -deadline bandwidth of each cpu;
334 * - cache the fraction of bandwidth that is currently allocated in
335 * each root domain;
336 *
337 * This is all done in the data structure below. It is similar to the
338 * one used for RT-throttling (rt_bandwidth), with the main difference
339 * that, since here we are only interested in admission control, we
340 * do not decrease any runtime while the group "executes", neither we
341 * need a timer to replenish it.
342 *
343 * With respect to SMP, bandwidth is given on a per root domain basis,
344 * meaning that:
345 * - bw (< 100%) is the deadline bandwidth of each CPU;
346 * - total_bw is the currently allocated bandwidth in each root domain;
347 */
348 struct dl_bw {
349 raw_spinlock_t lock;
350 u64 bw;
351 u64 total_bw;
352 };
353
354 extern void init_dl_bw(struct dl_bw *dl_b);
355 extern int sched_dl_global_validate(void);
356 extern void sched_dl_do_global(void);
357 extern int sched_dl_overflow(struct task_struct *p, int policy, const struct sched_attr *attr);
358 extern void __setparam_dl(struct task_struct *p, const struct sched_attr *attr);
359 extern void __getparam_dl(struct task_struct *p, struct sched_attr *attr, unsigned int flags);
360 extern bool __checkparam_dl(const struct sched_attr *attr);
361 extern bool dl_param_changed(struct task_struct *p, const struct sched_attr *attr);
362 extern int dl_cpuset_cpumask_can_shrink(const struct cpumask *cur, const struct cpumask *trial);
363 extern int dl_bw_deactivate(int cpu);
364 extern s64 dl_scaled_delta_exec(struct rq *rq, struct sched_dl_entity *dl_se, s64 delta_exec);
365 /*
366 * SCHED_DEADLINE supports servers (nested scheduling) with the following
367 * interface:
368 *
369 * dl_se::rq -- runqueue we belong to.
370 *
371 * dl_se::server_pick() -- nested pick_next_task(); we yield the period if this
372 * returns NULL.
373 *
374 * dl_server_update() -- called from update_curr_common(), propagates runtime
375 * to the server.
376 *
377 * dl_server_start() -- start the server when it has tasks; it will stop
378 * automatically when there are no more tasks, per
379 * dl_se::server_pick() returning NULL.
380 *
381 * dl_server_stop() -- (force) stop the server; use when updating
382 * parameters.
383 *
384 * dl_server_init() -- initializes the server.
385 *
386 * When started the dl_server will (per dl_defer) schedule a timer for its
387 * zero-laxity point -- that is, unlike regular EDF tasks which run ASAP, a
388 * server will run at the very end of its period.
389 *
390 * This is done such that any runtime from the target class can be accounted
391 * against the server -- through dl_server_update() above -- such that when it
392 * becomes time to run, it might already be out of runtime and get deferred
393 * until the next period. In this case dl_server_timer() will alternate
394 * between defer and replenish but never actually enqueue the server.
395 *
396 * Only when the target class does not manage to exhaust the server's runtime
397 * (there's actualy starvation in the given period), will the dl_server get on
398 * the runqueue. Once queued it will pick tasks from the target class and run
399 * them until either its runtime is exhaused, at which point its back to
400 * dl_server_timer, or until there are no more tasks to run, at which point
401 * the dl_server stops itself.
402 *
403 * By stopping at this point the dl_server retains bandwidth, which, if a new
404 * task wakes up imminently (starting the server again), can be used --
405 * subject to CBS wakeup rules -- without having to wait for the next period.
406 *
407 * Additionally, because of the dl_defer behaviour the start/stop behaviour is
408 * naturally thottled to once per period, avoiding high context switch
409 * workloads from spamming the hrtimer program/cancel paths.
410 */
411 extern void dl_server_update_idle(struct sched_dl_entity *dl_se, s64 delta_exec);
412 extern void dl_server_update(struct sched_dl_entity *dl_se, s64 delta_exec);
413 extern void dl_server_start(struct sched_dl_entity *dl_se);
414 extern void dl_server_stop(struct sched_dl_entity *dl_se);
415 extern void dl_server_init(struct sched_dl_entity *dl_se, struct rq *rq,
416 dl_server_pick_f pick_task);
417 extern void sched_init_dl_servers(void);
418
419 extern void fair_server_init(struct rq *rq);
420 extern void ext_server_init(struct rq *rq);
421 extern void __dl_server_attach_root(struct sched_dl_entity *dl_se, struct rq *rq);
422 extern int dl_server_apply_params(struct sched_dl_entity *dl_se,
423 u64 runtime, u64 period, bool init);
424
dl_server_active(struct sched_dl_entity * dl_se)425 static inline bool dl_server_active(struct sched_dl_entity *dl_se)
426 {
427 return dl_se->dl_server_active;
428 }
429
430 #ifdef CONFIG_CGROUP_SCHED
431
432 extern struct list_head task_groups;
433
434 #ifdef CONFIG_GROUP_SCHED_BANDWIDTH
435 extern const u64 max_bw_quota_period_us;
436
437 /*
438 * default period for group bandwidth.
439 * default: 0.1s, units: microseconds
440 */
default_bw_period_us(void)441 static inline u64 default_bw_period_us(void)
442 {
443 return 100000ULL;
444 }
445 #endif /* CONFIG_GROUP_SCHED_BANDWIDTH */
446
447 struct cfs_bandwidth {
448 #ifdef CONFIG_CFS_BANDWIDTH
449 raw_spinlock_t lock;
450 ktime_t period;
451 u64 quota;
452 u64 runtime;
453 u64 burst;
454 u64 runtime_snap;
455 s64 hierarchical_quota;
456
457 u8 idle;
458 u8 period_active;
459 u8 slack_started;
460 struct hrtimer period_timer;
461 struct hrtimer slack_timer;
462 struct list_head throttled_cfs_rq;
463
464 /* Statistics: */
465 int nr_periods;
466 int nr_throttled;
467 int nr_burst;
468 u64 throttled_time;
469 u64 burst_time;
470 #endif /* CONFIG_CFS_BANDWIDTH */
471 };
472
473 /* Task group related information */
474 struct task_group {
475 struct cgroup_subsys_state css;
476
477 #ifdef CONFIG_GROUP_SCHED_WEIGHT
478 /* A positive value indicates that this is a SCHED_IDLE group. */
479 int idle;
480 #endif
481
482 #ifdef CONFIG_FAIR_GROUP_SCHED
483 /* schedulable entities of this group on each CPU */
484 struct sched_entity **se;
485 /* runqueue "owned" by this group on each CPU */
486 struct cfs_rq **cfs_rq;
487 unsigned long shares;
488 /*
489 * load_avg can be heavily contended at clock tick time, so put
490 * it in its own cache-line separated from the fields above which
491 * will also be accessed at each tick.
492 */
493 atomic_long_t load_avg ____cacheline_aligned;
494 #endif /* CONFIG_FAIR_GROUP_SCHED */
495
496 #ifdef CONFIG_RT_GROUP_SCHED
497 struct sched_rt_entity **rt_se;
498 struct rt_rq **rt_rq;
499
500 struct rt_bandwidth rt_bandwidth;
501 #endif
502
503 struct scx_task_group scx;
504
505 struct rcu_head rcu;
506 struct list_head list;
507
508 struct task_group *parent;
509 struct list_head siblings;
510 struct list_head children;
511
512 #ifdef CONFIG_SCHED_AUTOGROUP
513 struct autogroup *autogroup;
514 #endif
515
516 struct cfs_bandwidth cfs_bandwidth;
517
518 #ifdef CONFIG_UCLAMP_TASK_GROUP
519 /* The two decimal precision [%] value requested from user-space */
520 unsigned int uclamp_pct[UCLAMP_CNT];
521 /* Clamp values requested for a task group */
522 struct uclamp_se uclamp_req[UCLAMP_CNT];
523 /* Effective clamp values used for a task group */
524 struct uclamp_se uclamp[UCLAMP_CNT];
525 #endif
526
527 };
528
529 #ifdef CONFIG_GROUP_SCHED_WEIGHT
530 #define ROOT_TASK_GROUP_LOAD NICE_0_LOAD
531
532 /*
533 * A weight of 0 or 1 can cause arithmetics problems.
534 * A weight of a cfs_rq is the sum of weights of which entities
535 * are queued on this cfs_rq, so a weight of a entity should not be
536 * too large, so as the shares value of a task group.
537 * (The default weight is 1024 - so there's no practical
538 * limitation from this.)
539 */
540 #define MIN_SHARES (1UL << 1)
541 #define MAX_SHARES (1UL << 18)
542 #endif
543
544 typedef int (*tg_visitor)(struct task_group *, void *);
545
546 extern int walk_tg_tree_from(struct task_group *from,
547 tg_visitor down, tg_visitor up, void *data);
548
549 /*
550 * Iterate the full tree, calling @down when first entering a node and @up when
551 * leaving it for the final time.
552 *
553 * Caller must hold rcu_lock or sufficient equivalent.
554 */
walk_tg_tree(tg_visitor down,tg_visitor up,void * data)555 static inline int walk_tg_tree(tg_visitor down, tg_visitor up, void *data)
556 {
557 return walk_tg_tree_from(&root_task_group, down, up, data);
558 }
559
css_tg(struct cgroup_subsys_state * css)560 static inline struct task_group *css_tg(struct cgroup_subsys_state *css)
561 {
562 return css ? container_of(css, struct task_group, css) : NULL;
563 }
564
565 extern int tg_nop(struct task_group *tg, void *data);
566
567 #ifdef CONFIG_FAIR_GROUP_SCHED
568 extern void free_fair_sched_group(struct task_group *tg);
569 extern int alloc_fair_sched_group(struct task_group *tg, struct task_group *parent);
570 extern void online_fair_sched_group(struct task_group *tg);
571 extern void unregister_fair_sched_group(struct task_group *tg);
572 #else /* !CONFIG_FAIR_GROUP_SCHED: */
free_fair_sched_group(struct task_group * tg)573 static inline void free_fair_sched_group(struct task_group *tg) { }
alloc_fair_sched_group(struct task_group * tg,struct task_group * parent)574 static inline int alloc_fair_sched_group(struct task_group *tg, struct task_group *parent)
575 {
576 return 1;
577 }
online_fair_sched_group(struct task_group * tg)578 static inline void online_fair_sched_group(struct task_group *tg) { }
unregister_fair_sched_group(struct task_group * tg)579 static inline void unregister_fair_sched_group(struct task_group *tg) { }
580 #endif /* !CONFIG_FAIR_GROUP_SCHED */
581
582 extern void init_tg_cfs_entry(struct task_group *tg, struct cfs_rq *cfs_rq,
583 struct sched_entity *se, int cpu,
584 struct sched_entity *parent);
585 extern void init_cfs_bandwidth(struct cfs_bandwidth *cfs_b, struct cfs_bandwidth *parent);
586
587 extern void __refill_cfs_bandwidth_runtime(struct cfs_bandwidth *cfs_b);
588 extern void start_cfs_bandwidth(struct cfs_bandwidth *cfs_b);
589 extern void unthrottle_cfs_rq(struct cfs_rq *cfs_rq);
590 extern bool cfs_task_bw_constrained(struct task_struct *p);
591
592 extern void init_tg_rt_entry(struct task_group *tg, struct rt_rq *rt_rq,
593 struct sched_rt_entity *rt_se, int cpu,
594 struct sched_rt_entity *parent);
595 extern int sched_group_set_rt_runtime(struct task_group *tg, long rt_runtime_us);
596 extern int sched_group_set_rt_period(struct task_group *tg, u64 rt_period_us);
597 extern long sched_group_rt_runtime(struct task_group *tg);
598 extern long sched_group_rt_period(struct task_group *tg);
599 extern int sched_rt_can_attach(struct task_group *tg, struct task_struct *tsk);
600
601 extern struct task_group *sched_create_group(struct task_group *parent);
602 extern void sched_online_group(struct task_group *tg,
603 struct task_group *parent);
604 extern void sched_destroy_group(struct task_group *tg);
605 extern void sched_release_group(struct task_group *tg);
606
607 extern void sched_move_task(struct task_struct *tsk, bool for_autogroup);
608
609 #ifdef CONFIG_FAIR_GROUP_SCHED
610 extern int sched_group_set_shares(struct task_group *tg, unsigned long shares);
611
612 extern int sched_group_set_idle(struct task_group *tg, long idle);
613
614 extern void set_task_rq_fair(struct sched_entity *se,
615 struct cfs_rq *prev, struct cfs_rq *next);
616 #else /* !CONFIG_FAIR_GROUP_SCHED: */
sched_group_set_shares(struct task_group * tg,unsigned long shares)617 static inline int sched_group_set_shares(struct task_group *tg, unsigned long shares) { return 0; }
sched_group_set_idle(struct task_group * tg,long idle)618 static inline int sched_group_set_idle(struct task_group *tg, long idle) { return 0; }
619 #endif /* !CONFIG_FAIR_GROUP_SCHED */
620
621 #else /* !CONFIG_CGROUP_SCHED: */
622
623 struct cfs_bandwidth { };
624
cfs_task_bw_constrained(struct task_struct * p)625 static inline bool cfs_task_bw_constrained(struct task_struct *p) { return false; }
626
627 #endif /* !CONFIG_CGROUP_SCHED */
628
629 extern void unregister_rt_sched_group(struct task_group *tg);
630 extern void free_rt_sched_group(struct task_group *tg);
631 extern int alloc_rt_sched_group(struct task_group *tg, struct task_group *parent);
632
633 /*
634 * u64_u32_load/u64_u32_store
635 *
636 * Use a copy of a u64 value to protect against data race. This is only
637 * applicable for 32-bits architectures.
638 */
639 #ifdef CONFIG_64BIT
640 # define u64_u32_load_copy(var, copy) var
641 # define u64_u32_store_copy(var, copy, val) (var = val)
642 #else
643 # define u64_u32_load_copy(var, copy) \
644 ({ \
645 u64 __val, __val_copy; \
646 do { \
647 __val_copy = copy; \
648 /* \
649 * paired with u64_u32_store_copy(), ordering access \
650 * to var and copy. \
651 */ \
652 smp_rmb(); \
653 __val = var; \
654 } while (__val != __val_copy); \
655 __val; \
656 })
657 # define u64_u32_store_copy(var, copy, val) \
658 do { \
659 typeof(val) __val = (val); \
660 var = __val; \
661 /* \
662 * paired with u64_u32_load_copy(), ordering access to var and \
663 * copy. \
664 */ \
665 smp_wmb(); \
666 copy = __val; \
667 } while (0)
668 #endif
669 # define u64_u32_load(var) u64_u32_load_copy(var, var##_copy)
670 # define u64_u32_store(var, val) u64_u32_store_copy(var, var##_copy, val)
671
672 struct balance_callback {
673 struct balance_callback *next;
674 void (*func)(struct rq *rq);
675 };
676
677 /* Fair scheduling SCHED_{NORMAL,BATCH,IDLE} related fields in a runqueue: */
678 struct cfs_rq {
679 struct load_weight load;
680 unsigned int nr_queued;
681 unsigned int h_nr_queued; /* SCHED_{NORMAL,BATCH,IDLE} */
682 unsigned int h_nr_runnable; /* SCHED_{NORMAL,BATCH,IDLE} */
683 unsigned int h_nr_idle; /* SCHED_IDLE */
684
685 s64 sum_w_vruntime;
686 u64 sum_weight;
687 u64 zero_vruntime;
688 unsigned int sum_shift;
689
690 #ifdef CONFIG_SCHED_CORE
691 unsigned int forceidle_seq;
692 u64 zero_vruntime_fi;
693 #endif
694
695 struct rb_root_cached tasks_timeline;
696
697 /*
698 * 'curr' points to the currently running entity on this cfs_rq.
699 * It is set to NULL otherwise (i.e when none are currently running).
700 */
701 struct sched_entity *curr;
702 struct sched_entity *next;
703
704 /*
705 * CFS load tracking
706 */
707 struct sched_avg avg;
708 #ifndef CONFIG_64BIT
709 u64 last_update_time_copy;
710 #endif
711 struct {
712 raw_spinlock_t lock ____cacheline_aligned;
713 int nr;
714 unsigned long load_avg;
715 unsigned long util_avg;
716 unsigned long runnable_avg;
717 } removed;
718
719 #ifdef CONFIG_FAIR_GROUP_SCHED
720 u64 last_update_tg_load_avg;
721 unsigned long tg_load_avg_contrib;
722 long propagate;
723 long prop_runnable_sum;
724
725 /*
726 * h_load = weight * f(tg)
727 *
728 * Where f(tg) is the recursive weight fraction assigned to
729 * this group.
730 */
731 unsigned long h_load;
732 u64 last_h_load_update;
733 struct sched_entity *h_load_next;
734
735 struct rq *rq; /* CPU runqueue to which this cfs_rq is attached */
736
737 /*
738 * leaf cfs_rqs are those that hold tasks (lowest schedulable entity in
739 * a hierarchy). Non-leaf lrqs hold other higher schedulable entities
740 * (like users, containers etc.)
741 *
742 * leaf_cfs_rq_list ties together list of leaf cfs_rq's in a CPU.
743 * This list is used during load balance.
744 */
745 int on_list;
746 struct list_head leaf_cfs_rq_list;
747 struct task_group *tg; /* Group that "owns" this runqueue */
748
749 /* Locally cached copy of our task_group's idle value */
750 int idle;
751
752 # ifdef CONFIG_CFS_BANDWIDTH
753 int runtime_enabled;
754 s64 runtime_remaining;
755
756 u64 throttled_pelt_idle;
757 # ifndef CONFIG_64BIT
758 u64 throttled_pelt_idle_copy;
759 # endif
760 u64 throttled_clock;
761 u64 throttled_clock_pelt;
762 u64 throttled_clock_pelt_time;
763 u64 throttled_clock_self;
764 u64 throttled_clock_self_time;
765 bool throttled:1;
766 bool pelt_clock_throttled:1;
767 int throttle_count;
768 struct list_head throttled_list;
769 struct list_head throttled_csd_list;
770 struct list_head throttled_limbo_list;
771 # endif /* CONFIG_CFS_BANDWIDTH */
772 #endif /* CONFIG_FAIR_GROUP_SCHED */
773 };
774
775 #ifdef CONFIG_SCHED_CLASS_EXT
776 /* scx_rq->flags, protected by the rq lock */
777 enum scx_rq_flags {
778 /*
779 * A hotplugged CPU starts scheduling before rq_online_scx(). Track
780 * ops.cpu_on/offline() state so that ops.enqueue/dispatch() are called
781 * only while the BPF scheduler considers the CPU to be online.
782 */
783 SCX_RQ_ONLINE = 1 << 0,
784 SCX_RQ_CAN_STOP_TICK = 1 << 1,
785 SCX_RQ_BAL_KEEP = 1 << 3, /* balance decided to keep current */
786 SCX_RQ_CLK_VALID = 1 << 5, /* RQ clock is fresh and valid */
787 SCX_RQ_BAL_CB_PENDING = 1 << 6, /* must queue a cb after dispatching */
788
789 SCX_RQ_IN_WAKEUP = 1 << 16,
790 SCX_RQ_IN_BALANCE = 1 << 17,
791 };
792
793 struct scx_rq {
794 struct scx_dispatch_q local_dsq;
795 struct list_head runnable_list; /* runnable tasks on this rq */
796 struct list_head ddsp_deferred_locals; /* deferred ddsps from enq */
797 unsigned long ops_qseq;
798 u64 extra_enq_flags; /* see move_task_to_local_dsq() */
799 u32 nr_running;
800 u32 cpuperf_target; /* [0, SCHED_CAPACITY_SCALE] */
801 bool in_select_cpu;
802 bool cpu_released;
803 u32 flags;
804 u32 nr_immed; /* ENQ_IMMED tasks on local_dsq */
805 u64 clock; /* current per-rq clock -- see scx_bpf_now() */
806 cpumask_var_t cpus_to_kick;
807 cpumask_var_t cpus_to_kick_if_idle;
808 cpumask_var_t cpus_to_preempt;
809 cpumask_var_t cpus_to_wait;
810 cpumask_var_t cpus_to_sync;
811 bool kick_sync_pending;
812 unsigned long kick_sync;
813
814 struct task_struct *sub_dispatch_prev;
815
816 raw_spinlock_t deferred_reenq_lock;
817 u64 deferred_reenq_locals_seq;
818 struct list_head deferred_reenq_locals; /* scheds requesting reenq of local DSQ */
819 struct list_head deferred_reenq_users; /* user DSQs requesting reenq */
820 struct balance_callback deferred_bal_cb;
821 struct balance_callback kick_sync_bal_cb;
822 struct irq_work deferred_irq_work;
823 struct irq_work kick_cpus_irq_work;
824 };
825 #endif /* CONFIG_SCHED_CLASS_EXT */
826
rt_bandwidth_enabled(void)827 static inline int rt_bandwidth_enabled(void)
828 {
829 return sysctl_sched_rt_runtime >= 0;
830 }
831
832 /* RT IPI pull logic requires IRQ_WORK */
833 #if defined(CONFIG_IRQ_WORK) && defined(CONFIG_SMP)
834 # define HAVE_RT_PUSH_IPI
835 #endif
836
837 /* Real-Time classes' related field in a runqueue: */
838 struct rt_rq {
839 struct rt_prio_array active;
840 unsigned int rt_nr_running;
841 unsigned int rr_nr_running;
842 struct {
843 int curr; /* highest queued rt task prio */
844 int next; /* next highest */
845 } highest_prio;
846 bool overloaded;
847 struct plist_head pushable_tasks;
848
849 int rt_queued;
850
851 #ifdef CONFIG_RT_GROUP_SCHED
852 int rt_throttled;
853 u64 rt_time; /* consumed RT time, goes up in update_curr_rt */
854 u64 rt_runtime; /* allotted RT time, "slice" from rt_bandwidth, RT sharing/balancing */
855 /* Nests inside the rq lock: */
856 raw_spinlock_t rt_runtime_lock;
857
858 unsigned int rt_nr_boosted;
859
860 struct rq *rq; /* this is always top-level rq, cache? */
861 #endif
862 #ifdef CONFIG_CGROUP_SCHED
863 struct task_group *tg; /* this tg has "this" rt_rq on given CPU for runnable entities */
864 #endif
865 };
866
rt_rq_is_runnable(struct rt_rq * rt_rq)867 static inline bool rt_rq_is_runnable(struct rt_rq *rt_rq)
868 {
869 return rt_rq->rt_queued && rt_rq->rt_nr_running;
870 }
871
872 /* Deadline class' related fields in a runqueue */
873 struct dl_rq {
874 /* runqueue is an rbtree, ordered by deadline */
875 struct rb_root_cached root;
876
877 unsigned int dl_nr_running;
878
879 /*
880 * Deadline values of the currently executing and the
881 * earliest ready task on this rq. Caching these facilitates
882 * the decision whether or not a ready but not running task
883 * should migrate somewhere else.
884 */
885 struct {
886 u64 curr;
887 u64 next;
888 } earliest_dl;
889
890 bool overloaded;
891
892 /*
893 * Tasks on this rq that can be pushed away. They are kept in
894 * an rb-tree, ordered by tasks' deadlines, with caching
895 * of the leftmost (earliest deadline) element.
896 */
897 struct rb_root_cached pushable_dl_tasks_root;
898
899 /*
900 * "Active utilization" for this runqueue: increased when a
901 * task wakes up (becomes TASK_RUNNING) and decreased when a
902 * task blocks
903 */
904 u64 running_bw;
905
906 /*
907 * Utilization of the tasks "assigned" to this runqueue (including
908 * the tasks that are in runqueue and the tasks that executed on this
909 * CPU and blocked). Increased when a task moves to this runqueue, and
910 * decreased when the task moves away (migrates, changes scheduling
911 * policy, or terminates).
912 * This is needed to compute the "inactive utilization" for the
913 * runqueue (inactive utilization = this_bw - running_bw).
914 */
915 u64 this_bw;
916 u64 extra_bw;
917
918 /*
919 * Maximum available bandwidth for reclaiming by SCHED_FLAG_RECLAIM
920 * tasks of this rq. Used in calculation of reclaimable bandwidth(GRUB).
921 */
922 u64 max_bw;
923
924 /*
925 * Inverse of the fraction of CPU utilization that can be reclaimed
926 * by the GRUB algorithm.
927 */
928 u64 bw_ratio;
929 };
930
931 #ifdef CONFIG_FAIR_GROUP_SCHED
932
933 /* An entity is a task if it doesn't "own" a runqueue */
934 #define entity_is_task(se) (!se->my_q)
935
se_update_runnable(struct sched_entity * se)936 static inline void se_update_runnable(struct sched_entity *se)
937 {
938 if (!entity_is_task(se))
939 se->runnable_weight = se->my_q->h_nr_runnable;
940 }
941
se_runnable(struct sched_entity * se)942 static inline long se_runnable(struct sched_entity *se)
943 {
944 if (se->sched_delayed)
945 return false;
946
947 if (entity_is_task(se))
948 return !!se->on_rq;
949 else
950 return se->runnable_weight;
951 }
952
953 #else /* !CONFIG_FAIR_GROUP_SCHED: */
954
955 #define entity_is_task(se) 1
956
se_update_runnable(struct sched_entity * se)957 static inline void se_update_runnable(struct sched_entity *se) { }
958
se_runnable(struct sched_entity * se)959 static inline long se_runnable(struct sched_entity *se)
960 {
961 if (se->sched_delayed)
962 return false;
963
964 return !!se->on_rq;
965 }
966
967 #endif /* !CONFIG_FAIR_GROUP_SCHED */
968
969 /*
970 * XXX we want to get rid of these helpers and use the full load resolution.
971 */
se_weight(struct sched_entity * se)972 static inline long se_weight(struct sched_entity *se)
973 {
974 return scale_load_down(se->load.weight);
975 }
976
977
sched_asym_prefer(int a,int b)978 static inline bool sched_asym_prefer(int a, int b)
979 {
980 return arch_asym_cpu_priority(a) > arch_asym_cpu_priority(b);
981 }
982
983 struct perf_domain {
984 struct em_perf_domain *em_pd;
985 struct perf_domain *next;
986 struct rcu_head rcu;
987 };
988
989 /*
990 * We add the notion of a root-domain which will be used to define per-domain
991 * variables. Each exclusive cpuset essentially defines an island domain by
992 * fully partitioning the member CPUs from any other cpuset. Whenever a new
993 * exclusive cpuset is created, we also create and attach a new root-domain
994 * object.
995 *
996 */
997 struct root_domain {
998 atomic_t refcount;
999 atomic_t rto_count;
1000 struct rcu_head rcu;
1001 cpumask_var_t span;
1002 cpumask_var_t online;
1003
1004 /*
1005 * Indicate pullable load on at least one CPU, e.g:
1006 * - More than one runnable task
1007 * - Running task is misfit
1008 */
1009 bool overloaded;
1010
1011 /* Indicate one or more CPUs over-utilized (tipping point) */
1012 bool overutilized;
1013
1014 /*
1015 * The bit corresponding to a CPU gets set here if such CPU has more
1016 * than one runnable -deadline task (as it is below for RT tasks).
1017 */
1018 cpumask_var_t dlo_mask;
1019 atomic_t dlo_count;
1020 struct dl_bw dl_bw;
1021 struct cpudl cpudl;
1022
1023 /*
1024 * Indicate whether a root_domain's dl_bw has been checked or
1025 * updated. It's monotonously increasing value.
1026 *
1027 * Also, some corner cases, like 'wrap around' is dangerous, but given
1028 * that u64 is 'big enough'. So that shouldn't be a concern.
1029 */
1030 u64 visit_cookie;
1031
1032 #ifdef HAVE_RT_PUSH_IPI
1033 /*
1034 * For IPI pull requests, loop across the rto_mask.
1035 */
1036 struct irq_work rto_push_work;
1037 raw_spinlock_t rto_lock;
1038 /* These are only updated and read within rto_lock */
1039 int rto_loop;
1040 int rto_cpu;
1041 /* These atomics are updated outside of a lock */
1042 atomic_t rto_loop_next;
1043 atomic_t rto_loop_start;
1044 #endif /* HAVE_RT_PUSH_IPI */
1045 /*
1046 * The "RT overload" flag: it gets set if a CPU has more than
1047 * one runnable RT task.
1048 */
1049 cpumask_var_t rto_mask;
1050 struct cpupri cpupri;
1051
1052 /*
1053 * NULL-terminated list of performance domains intersecting with the
1054 * CPUs of the rd. Protected by RCU.
1055 */
1056 struct perf_domain __rcu *pd;
1057 };
1058
1059 extern void init_defrootdomain(void);
1060 extern int sched_init_domains(const struct cpumask *cpu_map);
1061 extern void rq_attach_root(struct rq *rq, struct root_domain *rd);
1062 extern void sched_get_rd(struct root_domain *rd);
1063 extern void sched_put_rd(struct root_domain *rd);
1064
get_rd_overloaded(struct root_domain * rd)1065 static inline int get_rd_overloaded(struct root_domain *rd)
1066 {
1067 return READ_ONCE(rd->overloaded);
1068 }
1069
set_rd_overloaded(struct root_domain * rd,int status)1070 static inline void set_rd_overloaded(struct root_domain *rd, int status)
1071 {
1072 if (get_rd_overloaded(rd) != status)
1073 WRITE_ONCE(rd->overloaded, status);
1074 }
1075
1076 #ifdef HAVE_RT_PUSH_IPI
1077 extern void rto_push_irq_work_func(struct irq_work *work);
1078 #endif
1079
1080 #ifdef CONFIG_UCLAMP_TASK
1081 /*
1082 * struct uclamp_bucket - Utilization clamp bucket
1083 * @value: utilization clamp value for tasks on this clamp bucket
1084 * @tasks: number of RUNNABLE tasks on this clamp bucket
1085 *
1086 * Keep track of how many tasks are RUNNABLE for a given utilization
1087 * clamp value.
1088 */
1089 struct uclamp_bucket {
1090 unsigned long value : bits_per(SCHED_CAPACITY_SCALE);
1091 unsigned long tasks : BITS_PER_LONG - bits_per(SCHED_CAPACITY_SCALE);
1092 };
1093
1094 /*
1095 * struct uclamp_rq - rq's utilization clamp
1096 * @value: currently active clamp values for a rq
1097 * @bucket: utilization clamp buckets affecting a rq
1098 *
1099 * Keep track of RUNNABLE tasks on a rq to aggregate their clamp values.
1100 * A clamp value is affecting a rq when there is at least one task RUNNABLE
1101 * (or actually running) with that value.
1102 *
1103 * There are up to UCLAMP_CNT possible different clamp values, currently there
1104 * are only two: minimum utilization and maximum utilization.
1105 *
1106 * All utilization clamping values are MAX aggregated, since:
1107 * - for util_min: we want to run the CPU at least at the max of the minimum
1108 * utilization required by its currently RUNNABLE tasks.
1109 * - for util_max: we want to allow the CPU to run up to the max of the
1110 * maximum utilization allowed by its currently RUNNABLE tasks.
1111 *
1112 * Since on each system we expect only a limited number of different
1113 * utilization clamp values (UCLAMP_BUCKETS), use a simple array to track
1114 * the metrics required to compute all the per-rq utilization clamp values.
1115 */
1116 struct uclamp_rq {
1117 unsigned int value;
1118 struct uclamp_bucket bucket[UCLAMP_BUCKETS];
1119 };
1120
1121 DECLARE_STATIC_KEY_FALSE(sched_uclamp_used);
1122 #endif /* CONFIG_UCLAMP_TASK */
1123
1124 /*
1125 * This is the main, per-CPU runqueue data structure.
1126 *
1127 * Locking rule: those places that want to lock multiple runqueues
1128 * (such as the load balancing or the thread migration code), lock
1129 * acquire operations must be ordered by ascending &runqueue.
1130 */
1131 struct rq {
1132 /*
1133 * The following members are loaded together, without holding the
1134 * rq->lock, in an extremely hot loop in update_sg_lb_stats()
1135 * (called from pick_next_task()). To reduce cache pollution from
1136 * this operation, they are placed together on this dedicated cache
1137 * line. Even though some of them are frequently modified, they are
1138 * loaded much more frequently than they are stored.
1139 */
1140 unsigned int nr_running;
1141 #ifdef CONFIG_NUMA_BALANCING
1142 unsigned int nr_numa_running;
1143 unsigned int nr_preferred_running;
1144 #endif
1145 unsigned int ttwu_pending;
1146 unsigned long cpu_capacity;
1147 #ifdef CONFIG_SCHED_PROXY_EXEC
1148 struct task_struct __rcu *donor; /* Scheduling context */
1149 struct task_struct __rcu *curr; /* Execution context */
1150 #else
1151 union {
1152 struct task_struct __rcu *donor; /* Scheduler context */
1153 struct task_struct __rcu *curr; /* Execution context */
1154 };
1155 #endif
1156 struct task_struct *idle;
1157 /* padding left here deliberately */
1158
1159 /*
1160 * The next cacheline holds the (hot) runqueue lock, as well as
1161 * some other less performance-critical fields.
1162 */
1163 u64 nr_switches ____cacheline_aligned;
1164
1165 /* runqueue lock: */
1166 raw_spinlock_t __lock;
1167
1168 #ifdef CONFIG_NO_HZ_COMMON
1169 unsigned int nohz_tick_stopped;
1170 atomic_t nohz_flags;
1171 unsigned int has_blocked_load;
1172 unsigned long last_blocked_load_update_tick;
1173 call_single_data_t nohz_csd;
1174 #endif /* CONFIG_NO_HZ_COMMON */
1175
1176 #ifdef CONFIG_UCLAMP_TASK
1177 /* Utilization clamp values based on CPU's RUNNABLE tasks */
1178 struct uclamp_rq uclamp[UCLAMP_CNT] ____cacheline_aligned;
1179 unsigned int uclamp_flags;
1180 #define UCLAMP_FLAG_IDLE 0x01
1181 #endif
1182
1183 struct cfs_rq cfs;
1184 struct rt_rq rt;
1185 struct dl_rq dl;
1186 #ifdef CONFIG_SCHED_CLASS_EXT
1187 struct scx_rq scx;
1188 struct sched_dl_entity ext_server;
1189 #endif
1190
1191 struct sched_dl_entity fair_server;
1192
1193 #ifdef CONFIG_FAIR_GROUP_SCHED
1194 /* list of leaf cfs_rq on this CPU: */
1195 struct list_head leaf_cfs_rq_list;
1196 struct list_head *tmp_alone_branch;
1197 #endif /* CONFIG_FAIR_GROUP_SCHED */
1198
1199 #ifdef CONFIG_NUMA_BALANCING
1200 unsigned int numa_migrate_on;
1201 #endif
1202 /*
1203 * This is part of a global counter where only the total sum
1204 * over all CPUs matters. A task can increase this counter on
1205 * one CPU and if it got migrated afterwards it may decrease
1206 * it on another CPU. Always updated under the runqueue lock:
1207 */
1208 unsigned long nr_uninterruptible;
1209
1210 struct sched_dl_entity *dl_server;
1211 struct task_struct *stop;
1212 const struct sched_class *next_class;
1213 unsigned long next_balance;
1214 struct mm_struct *prev_mm;
1215
1216 /*
1217 * The following fields of clock data are frequently referenced
1218 * and updated together, and should go on their own cache line.
1219 */
1220 u64 clock_task ____cacheline_aligned;
1221 u64 clock_pelt;
1222 u64 clock;
1223 unsigned long lost_idle_time;
1224 unsigned int clock_update_flags;
1225 u64 clock_pelt_idle;
1226 u64 clock_idle;
1227
1228 #ifndef CONFIG_64BIT
1229 u64 clock_pelt_idle_copy;
1230 u64 clock_idle_copy;
1231 #endif
1232
1233 u64 last_seen_need_resched_ns;
1234 int ticks_without_resched;
1235
1236 #ifdef CONFIG_MEMBARRIER
1237 int membarrier_state;
1238 #endif
1239
1240 struct root_domain *rd;
1241 struct sched_domain __rcu *sd;
1242
1243 struct balance_callback *balance_callback;
1244
1245 unsigned char nohz_idle_balance;
1246 unsigned char idle_balance;
1247
1248 unsigned long misfit_task_load;
1249
1250 /* For active balancing */
1251 int active_balance;
1252 int push_cpu;
1253 struct cpu_stop_work active_balance_work;
1254
1255 /* CPU of this runqueue: */
1256 int cpu;
1257 int online;
1258
1259 struct list_head cfs_tasks;
1260
1261 struct sched_avg avg_rt;
1262 struct sched_avg avg_dl;
1263 #ifdef CONFIG_HAVE_SCHED_AVG_IRQ
1264 struct sched_avg avg_irq;
1265 #endif
1266 #ifdef CONFIG_SCHED_HW_PRESSURE
1267 struct sched_avg avg_hw;
1268 #endif
1269 u64 idle_stamp;
1270 u64 avg_idle;
1271
1272 /* This is used to determine avg_idle's max value */
1273 u64 max_idle_balance_cost;
1274
1275 #ifdef CONFIG_HOTPLUG_CPU
1276 struct rcuwait hotplug_wait;
1277 #endif
1278
1279 #ifdef CONFIG_IRQ_TIME_ACCOUNTING
1280 u64 prev_irq_time;
1281 u64 psi_irq_time;
1282 #endif
1283 #ifdef CONFIG_PARAVIRT
1284 u64 prev_steal_time;
1285 #endif
1286 #ifdef CONFIG_PARAVIRT_TIME_ACCOUNTING
1287 u64 prev_steal_time_rq;
1288 #endif
1289
1290 /* calc_load related fields */
1291 unsigned long calc_load_update;
1292 long calc_load_active;
1293
1294 #ifdef CONFIG_SCHED_HRTICK
1295 call_single_data_t hrtick_csd;
1296 struct hrtimer hrtick_timer;
1297 ktime_t hrtick_time;
1298 ktime_t hrtick_delay;
1299 unsigned int hrtick_sched;
1300 #endif
1301
1302 #ifdef CONFIG_SCHEDSTATS
1303 /* latency stats */
1304 struct sched_info rq_sched_info;
1305 unsigned long long rq_cpu_time;
1306
1307 /* sys_sched_yield() stats */
1308 unsigned int yld_count;
1309
1310 /* schedule() stats */
1311 unsigned int sched_count;
1312 unsigned int sched_goidle;
1313
1314 /* try_to_wake_up() stats */
1315 unsigned int ttwu_count;
1316 unsigned int ttwu_local;
1317 #endif
1318
1319 #ifdef CONFIG_CPU_IDLE
1320 /* Must be inspected within a RCU lock section */
1321 struct cpuidle_state *idle_state;
1322 #endif
1323
1324 unsigned int nr_pinned;
1325 unsigned int push_busy;
1326 struct cpu_stop_work push_work;
1327
1328 #ifdef CONFIG_SCHED_CORE
1329 /* per rq */
1330 struct rq *core;
1331 struct task_struct *core_pick;
1332 struct sched_dl_entity *core_dl_server;
1333 unsigned int core_enabled;
1334 unsigned int core_sched_seq;
1335 struct rb_root core_tree;
1336
1337 /* shared state -- careful with sched_core_cpu_deactivate() */
1338 unsigned int core_task_seq;
1339 unsigned int core_pick_seq;
1340 unsigned long core_cookie;
1341 unsigned int core_forceidle_count;
1342 unsigned int core_forceidle_seq;
1343 unsigned int core_forceidle_occupation;
1344 u64 core_forceidle_start;
1345 #endif /* CONFIG_SCHED_CORE */
1346
1347 /* Scratch cpumask to be temporarily used under rq_lock */
1348 cpumask_var_t scratch_mask;
1349
1350 #ifdef CONFIG_CFS_BANDWIDTH
1351 call_single_data_t cfsb_csd;
1352 struct list_head cfsb_csd_list;
1353 #endif
1354
1355 atomic_t nr_iowait;
1356 } __no_randomize_layout;
1357
1358 #ifdef CONFIG_FAIR_GROUP_SCHED
1359
1360 /* CPU runqueue to which this cfs_rq is attached */
rq_of(struct cfs_rq * cfs_rq)1361 static inline struct rq *rq_of(struct cfs_rq *cfs_rq)
1362 {
1363 return cfs_rq->rq;
1364 }
1365
1366 #else /* !CONFIG_FAIR_GROUP_SCHED: */
1367
rq_of(struct cfs_rq * cfs_rq)1368 static inline struct rq *rq_of(struct cfs_rq *cfs_rq)
1369 {
1370 return container_of(cfs_rq, struct rq, cfs);
1371 }
1372 #endif /* !CONFIG_FAIR_GROUP_SCHED */
1373
cpu_of(struct rq * rq)1374 static inline int cpu_of(struct rq *rq)
1375 {
1376 return rq->cpu;
1377 }
1378
1379 #define MDF_PUSH 0x01
1380
is_migration_disabled(struct task_struct * p)1381 static inline bool is_migration_disabled(struct task_struct *p)
1382 {
1383 return p->migration_disabled;
1384 }
1385
1386 DECLARE_PER_CPU_SHARED_ALIGNED(struct rq, runqueues);
1387 DECLARE_PER_CPU(struct rnd_state, sched_rnd_state);
1388
sched_rng(void)1389 static inline u32 sched_rng(void)
1390 {
1391 return prandom_u32_state(this_cpu_ptr(&sched_rnd_state));
1392 }
1393
__this_rq(void)1394 static __always_inline struct rq *__this_rq(void)
1395 {
1396 return this_cpu_ptr(&runqueues);
1397 }
1398
1399 #define cpu_rq(cpu) (&per_cpu(runqueues, (cpu)))
1400 #define this_rq() __this_rq()
1401 #define task_rq(p) cpu_rq(task_cpu(p))
1402 #define cpu_curr(cpu) (cpu_rq(cpu)->curr)
1403 #define raw_rq() raw_cpu_ptr(&runqueues)
1404
idle_rq(struct rq * rq)1405 static inline bool idle_rq(struct rq *rq)
1406 {
1407 return rq->curr == rq->idle && !rq->nr_running && !rq->ttwu_pending;
1408 }
1409
1410 /**
1411 * available_idle_cpu - is a given CPU idle for enqueuing work.
1412 * @cpu: the CPU in question.
1413 *
1414 * Return: 1 if the CPU is currently idle. 0 otherwise.
1415 */
available_idle_cpu(int cpu)1416 static inline bool available_idle_cpu(int cpu)
1417 {
1418 if (!idle_rq(cpu_rq(cpu)))
1419 return 0;
1420
1421 if (vcpu_is_preempted(cpu))
1422 return 0;
1423
1424 return 1;
1425 }
1426
1427 #ifdef CONFIG_SCHED_PROXY_EXEC
rq_set_donor(struct rq * rq,struct task_struct * t)1428 static inline void rq_set_donor(struct rq *rq, struct task_struct *t)
1429 {
1430 rcu_assign_pointer(rq->donor, t);
1431 }
1432 #else
rq_set_donor(struct rq * rq,struct task_struct * t)1433 static inline void rq_set_donor(struct rq *rq, struct task_struct *t)
1434 {
1435 /* Do nothing */
1436 }
1437 #endif
1438
1439 #ifdef CONFIG_SCHED_CORE
1440 static inline struct cpumask *sched_group_span(struct sched_group *sg);
1441
1442 DECLARE_STATIC_KEY_FALSE(__sched_core_enabled);
1443
sched_core_enabled(struct rq * rq)1444 static inline bool sched_core_enabled(struct rq *rq)
1445 {
1446 return static_branch_unlikely(&__sched_core_enabled) && rq->core_enabled;
1447 }
1448
sched_core_disabled(void)1449 static inline bool sched_core_disabled(void)
1450 {
1451 return !static_branch_unlikely(&__sched_core_enabled);
1452 }
1453
1454 /*
1455 * Be careful with this function; not for general use. The return value isn't
1456 * stable unless you actually hold a relevant rq->__lock.
1457 */
rq_lockp(struct rq * rq)1458 static inline raw_spinlock_t *rq_lockp(struct rq *rq)
1459 {
1460 if (sched_core_enabled(rq))
1461 return &rq->core->__lock;
1462
1463 return &rq->__lock;
1464 }
1465
__rq_lockp(struct rq * rq)1466 static inline raw_spinlock_t *__rq_lockp(struct rq *rq)
1467 __returns_ctx_lock(rq_lockp(rq)) /* alias them */
1468 {
1469 if (rq->core_enabled)
1470 return &rq->core->__lock;
1471
1472 return &rq->__lock;
1473 }
1474
1475 extern bool
1476 cfs_prio_less(const struct task_struct *a, const struct task_struct *b, bool fi);
1477
1478 extern void task_vruntime_update(struct rq *rq, struct task_struct *p, bool in_fi);
1479
1480 /*
1481 * Helpers to check if the CPU's core cookie matches with the task's cookie
1482 * when core scheduling is enabled.
1483 * A special case is that the task's cookie always matches with CPU's core
1484 * cookie if the CPU is in an idle core.
1485 */
sched_cpu_cookie_match(struct rq * rq,struct task_struct * p)1486 static inline bool sched_cpu_cookie_match(struct rq *rq, struct task_struct *p)
1487 {
1488 /* Ignore cookie match if core scheduler is not enabled on the CPU. */
1489 if (!sched_core_enabled(rq))
1490 return true;
1491
1492 return rq->core->core_cookie == p->core_cookie;
1493 }
1494
sched_core_cookie_match(struct rq * rq,struct task_struct * p)1495 static inline bool sched_core_cookie_match(struct rq *rq, struct task_struct *p)
1496 {
1497 bool idle_core = true;
1498 int cpu;
1499
1500 /* Ignore cookie match if core scheduler is not enabled on the CPU. */
1501 if (!sched_core_enabled(rq))
1502 return true;
1503
1504 if (rq->core->core_cookie == p->core_cookie)
1505 return true;
1506
1507 for_each_cpu(cpu, cpu_smt_mask(cpu_of(rq))) {
1508 if (!available_idle_cpu(cpu)) {
1509 idle_core = false;
1510 break;
1511 }
1512 }
1513
1514 /*
1515 * A CPU in an idle core is always the best choice for tasks with
1516 * cookies.
1517 */
1518 return idle_core;
1519 }
1520
sched_group_cookie_match(struct rq * rq,struct task_struct * p,struct sched_group * group)1521 static inline bool sched_group_cookie_match(struct rq *rq,
1522 struct task_struct *p,
1523 struct sched_group *group)
1524 {
1525 int cpu;
1526
1527 /* Ignore cookie match if core scheduler is not enabled on the CPU. */
1528 if (!sched_core_enabled(rq))
1529 return true;
1530
1531 for_each_cpu_and(cpu, sched_group_span(group), p->cpus_ptr) {
1532 if (sched_core_cookie_match(cpu_rq(cpu), p))
1533 return true;
1534 }
1535 return false;
1536 }
1537
sched_core_enqueued(struct task_struct * p)1538 static inline bool sched_core_enqueued(struct task_struct *p)
1539 {
1540 return !RB_EMPTY_NODE(&p->core_node);
1541 }
1542
1543 extern void sched_core_enqueue(struct rq *rq, struct task_struct *p);
1544 extern void sched_core_dequeue(struct rq *rq, struct task_struct *p, int flags);
1545
1546 extern void sched_core_get(void);
1547 extern void sched_core_put(void);
1548
1549 #else /* !CONFIG_SCHED_CORE: */
1550
sched_core_enabled(struct rq * rq)1551 static inline bool sched_core_enabled(struct rq *rq)
1552 {
1553 return false;
1554 }
1555
sched_core_disabled(void)1556 static inline bool sched_core_disabled(void)
1557 {
1558 return true;
1559 }
1560
rq_lockp(struct rq * rq)1561 static inline raw_spinlock_t *rq_lockp(struct rq *rq)
1562 {
1563 return &rq->__lock;
1564 }
1565
__rq_lockp(struct rq * rq)1566 static inline raw_spinlock_t *__rq_lockp(struct rq *rq)
1567 __returns_ctx_lock(rq_lockp(rq)) /* alias them */
1568 {
1569 return &rq->__lock;
1570 }
1571
sched_cpu_cookie_match(struct rq * rq,struct task_struct * p)1572 static inline bool sched_cpu_cookie_match(struct rq *rq, struct task_struct *p)
1573 {
1574 return true;
1575 }
1576
sched_core_cookie_match(struct rq * rq,struct task_struct * p)1577 static inline bool sched_core_cookie_match(struct rq *rq, struct task_struct *p)
1578 {
1579 return true;
1580 }
1581
sched_group_cookie_match(struct rq * rq,struct task_struct * p,struct sched_group * group)1582 static inline bool sched_group_cookie_match(struct rq *rq,
1583 struct task_struct *p,
1584 struct sched_group *group)
1585 {
1586 return true;
1587 }
1588
1589 #endif /* !CONFIG_SCHED_CORE */
1590
1591 #ifdef CONFIG_RT_GROUP_SCHED
1592 # ifdef CONFIG_RT_GROUP_SCHED_DEFAULT_DISABLED
1593 DECLARE_STATIC_KEY_FALSE(rt_group_sched);
rt_group_sched_enabled(void)1594 static inline bool rt_group_sched_enabled(void)
1595 {
1596 return static_branch_unlikely(&rt_group_sched);
1597 }
1598 # else /* !CONFIG_RT_GROUP_SCHED_DEFAULT_DISABLED: */
1599 DECLARE_STATIC_KEY_TRUE(rt_group_sched);
rt_group_sched_enabled(void)1600 static inline bool rt_group_sched_enabled(void)
1601 {
1602 return static_branch_likely(&rt_group_sched);
1603 }
1604 # endif /* !CONFIG_RT_GROUP_SCHED_DEFAULT_DISABLED */
1605 #else /* !CONFIG_RT_GROUP_SCHED: */
1606 # define rt_group_sched_enabled() false
1607 #endif /* !CONFIG_RT_GROUP_SCHED */
1608
lockdep_assert_rq_held(struct rq * rq)1609 static inline void lockdep_assert_rq_held(struct rq *rq)
1610 __assumes_ctx_lock(__rq_lockp(rq))
1611 {
1612 lockdep_assert_held(__rq_lockp(rq));
1613 }
1614
1615 extern void raw_spin_rq_lock_nested(struct rq *rq, int subclass)
1616 __acquires(__rq_lockp(rq));
1617
1618 extern bool raw_spin_rq_trylock(struct rq *rq)
1619 __cond_acquires(true, __rq_lockp(rq));
1620
raw_spin_rq_lock(struct rq * rq)1621 static inline void raw_spin_rq_lock(struct rq *rq)
1622 __acquires(__rq_lockp(rq))
1623 {
1624 raw_spin_rq_lock_nested(rq, 0);
1625 }
1626
raw_spin_rq_unlock(struct rq * rq)1627 static inline void raw_spin_rq_unlock(struct rq *rq)
1628 __releases(__rq_lockp(rq))
1629 {
1630 raw_spin_unlock(rq_lockp(rq));
1631 }
1632
raw_spin_rq_lock_irq(struct rq * rq)1633 static inline void raw_spin_rq_lock_irq(struct rq *rq)
1634 __acquires(__rq_lockp(rq))
1635 {
1636 local_irq_disable();
1637 raw_spin_rq_lock(rq);
1638 }
1639
raw_spin_rq_unlock_irq(struct rq * rq)1640 static inline void raw_spin_rq_unlock_irq(struct rq *rq)
1641 __releases(__rq_lockp(rq))
1642 {
1643 raw_spin_rq_unlock(rq);
1644 local_irq_enable();
1645 }
1646
_raw_spin_rq_lock_irqsave(struct rq * rq)1647 static inline unsigned long _raw_spin_rq_lock_irqsave(struct rq *rq)
1648 __acquires(__rq_lockp(rq))
1649 {
1650 unsigned long flags;
1651
1652 local_irq_save(flags);
1653 raw_spin_rq_lock(rq);
1654
1655 return flags;
1656 }
1657
raw_spin_rq_unlock_irqrestore(struct rq * rq,unsigned long flags)1658 static inline void raw_spin_rq_unlock_irqrestore(struct rq *rq, unsigned long flags)
1659 __releases(__rq_lockp(rq))
1660 {
1661 raw_spin_rq_unlock(rq);
1662 local_irq_restore(flags);
1663 }
1664
1665 #define raw_spin_rq_lock_irqsave(rq, flags) \
1666 do { \
1667 flags = _raw_spin_rq_lock_irqsave(rq); \
1668 } while (0)
1669
1670 #ifdef CONFIG_SCHED_SMT
1671 extern void __update_idle_core(struct rq *rq);
1672
update_idle_core(struct rq * rq)1673 static inline void update_idle_core(struct rq *rq)
1674 {
1675 if (static_branch_unlikely(&sched_smt_present))
1676 __update_idle_core(rq);
1677 }
1678
1679 #else /* !CONFIG_SCHED_SMT: */
update_idle_core(struct rq * rq)1680 static inline void update_idle_core(struct rq *rq) { }
1681 #endif /* !CONFIG_SCHED_SMT */
1682
1683 #ifdef CONFIG_FAIR_GROUP_SCHED
1684
task_of(struct sched_entity * se)1685 static inline struct task_struct *task_of(struct sched_entity *se)
1686 {
1687 WARN_ON_ONCE(!entity_is_task(se));
1688 return container_of(se, struct task_struct, se);
1689 }
1690
task_cfs_rq(struct task_struct * p)1691 static inline struct cfs_rq *task_cfs_rq(struct task_struct *p)
1692 {
1693 return p->se.cfs_rq;
1694 }
1695
1696 /* runqueue on which this entity is (to be) queued */
cfs_rq_of(const struct sched_entity * se)1697 static inline struct cfs_rq *cfs_rq_of(const struct sched_entity *se)
1698 {
1699 return se->cfs_rq;
1700 }
1701
1702 /* runqueue "owned" by this group */
group_cfs_rq(struct sched_entity * grp)1703 static inline struct cfs_rq *group_cfs_rq(struct sched_entity *grp)
1704 {
1705 return grp->my_q;
1706 }
1707
1708 #else /* !CONFIG_FAIR_GROUP_SCHED: */
1709
1710 #define task_of(_se) container_of(_se, struct task_struct, se)
1711
task_cfs_rq(const struct task_struct * p)1712 static inline struct cfs_rq *task_cfs_rq(const struct task_struct *p)
1713 {
1714 return &task_rq(p)->cfs;
1715 }
1716
cfs_rq_of(const struct sched_entity * se)1717 static inline struct cfs_rq *cfs_rq_of(const struct sched_entity *se)
1718 {
1719 const struct task_struct *p = task_of(se);
1720 struct rq *rq = task_rq(p);
1721
1722 return &rq->cfs;
1723 }
1724
1725 /* runqueue "owned" by this group */
group_cfs_rq(struct sched_entity * grp)1726 static inline struct cfs_rq *group_cfs_rq(struct sched_entity *grp)
1727 {
1728 return NULL;
1729 }
1730
1731 #endif /* !CONFIG_FAIR_GROUP_SCHED */
1732
1733 extern void update_rq_avg_idle(struct rq *rq);
1734 extern void update_rq_clock(struct rq *rq);
1735
1736 /*
1737 * rq::clock_update_flags bits
1738 *
1739 * %RQCF_REQ_SKIP - will request skipping of clock update on the next
1740 * call to __schedule(). This is an optimisation to avoid
1741 * neighbouring rq clock updates.
1742 *
1743 * %RQCF_ACT_SKIP - is set from inside of __schedule() when skipping is
1744 * in effect and calls to update_rq_clock() are being ignored.
1745 *
1746 * %RQCF_UPDATED - is a debug flag that indicates whether a call has been
1747 * made to update_rq_clock() since the last time rq::lock was pinned.
1748 *
1749 * If inside of __schedule(), clock_update_flags will have been
1750 * shifted left (a left shift is a cheap operation for the fast path
1751 * to promote %RQCF_REQ_SKIP to %RQCF_ACT_SKIP), so you must use,
1752 *
1753 * if (rq-clock_update_flags >= RQCF_UPDATED)
1754 *
1755 * to check if %RQCF_UPDATED is set. It'll never be shifted more than
1756 * one position though, because the next rq_unpin_lock() will shift it
1757 * back.
1758 */
1759 #define RQCF_REQ_SKIP 0x01
1760 #define RQCF_ACT_SKIP 0x02
1761 #define RQCF_UPDATED 0x04
1762
assert_clock_updated(struct rq * rq)1763 static inline void assert_clock_updated(struct rq *rq)
1764 {
1765 /*
1766 * The only reason for not seeing a clock update since the
1767 * last rq_pin_lock() is if we're currently skipping updates.
1768 */
1769 WARN_ON_ONCE(rq->clock_update_flags < RQCF_ACT_SKIP);
1770 }
1771
rq_clock(struct rq * rq)1772 static inline u64 rq_clock(struct rq *rq)
1773 {
1774 lockdep_assert_rq_held(rq);
1775 assert_clock_updated(rq);
1776
1777 return rq->clock;
1778 }
1779
rq_clock_task(struct rq * rq)1780 static inline u64 rq_clock_task(struct rq *rq)
1781 {
1782 lockdep_assert_rq_held(rq);
1783 assert_clock_updated(rq);
1784
1785 return rq->clock_task;
1786 }
1787
rq_clock_skip_update(struct rq * rq)1788 static inline void rq_clock_skip_update(struct rq *rq)
1789 {
1790 lockdep_assert_rq_held(rq);
1791 rq->clock_update_flags |= RQCF_REQ_SKIP;
1792 }
1793
1794 /*
1795 * See rt task throttling, which is the only time a skip
1796 * request is canceled.
1797 */
rq_clock_cancel_skipupdate(struct rq * rq)1798 static inline void rq_clock_cancel_skipupdate(struct rq *rq)
1799 {
1800 lockdep_assert_rq_held(rq);
1801 rq->clock_update_flags &= ~RQCF_REQ_SKIP;
1802 }
1803
1804 /*
1805 * During cpu offlining and rq wide unthrottling, we can trigger
1806 * an update_rq_clock() for several cfs and rt runqueues (Typically
1807 * when using list_for_each_entry_*)
1808 * rq_clock_start_loop_update() can be called after updating the clock
1809 * once and before iterating over the list to prevent multiple update.
1810 * After the iterative traversal, we need to call rq_clock_stop_loop_update()
1811 * to clear RQCF_ACT_SKIP of rq->clock_update_flags.
1812 */
rq_clock_start_loop_update(struct rq * rq)1813 static inline void rq_clock_start_loop_update(struct rq *rq)
1814 {
1815 lockdep_assert_rq_held(rq);
1816 WARN_ON_ONCE(rq->clock_update_flags & RQCF_ACT_SKIP);
1817 rq->clock_update_flags |= RQCF_ACT_SKIP;
1818 }
1819
rq_clock_stop_loop_update(struct rq * rq)1820 static inline void rq_clock_stop_loop_update(struct rq *rq)
1821 {
1822 lockdep_assert_rq_held(rq);
1823 rq->clock_update_flags &= ~RQCF_ACT_SKIP;
1824 }
1825
1826 struct rq_flags {
1827 unsigned long flags;
1828 struct pin_cookie cookie;
1829 /*
1830 * A copy of (rq::clock_update_flags & RQCF_UPDATED) for the
1831 * current pin context is stashed here in case it needs to be
1832 * restored in rq_repin_lock().
1833 */
1834 unsigned int clock_update_flags;
1835 };
1836
1837 extern struct balance_callback balance_push_callback;
1838
1839 #ifdef CONFIG_SCHED_CLASS_EXT
1840 extern const struct sched_class ext_sched_class;
1841
1842 DECLARE_STATIC_KEY_FALSE(__scx_enabled); /* SCX BPF scheduler loaded */
1843 DECLARE_STATIC_KEY_FALSE(__scx_switched_all); /* all fair class tasks on SCX */
1844
1845 #define scx_enabled() static_branch_unlikely(&__scx_enabled)
1846 #define scx_switched_all() static_branch_unlikely(&__scx_switched_all)
1847
scx_rq_clock_update(struct rq * rq,u64 clock)1848 static inline void scx_rq_clock_update(struct rq *rq, u64 clock)
1849 {
1850 if (!scx_enabled())
1851 return;
1852 WRITE_ONCE(rq->scx.clock, clock);
1853 smp_store_release(&rq->scx.flags, rq->scx.flags | SCX_RQ_CLK_VALID);
1854 }
1855
scx_rq_clock_invalidate(struct rq * rq)1856 static inline void scx_rq_clock_invalidate(struct rq *rq)
1857 {
1858 if (!scx_enabled())
1859 return;
1860 WRITE_ONCE(rq->scx.flags, rq->scx.flags & ~SCX_RQ_CLK_VALID);
1861 }
1862
1863 #else /* !CONFIG_SCHED_CLASS_EXT: */
1864 #define scx_enabled() false
1865 #define scx_switched_all() false
1866
scx_rq_clock_update(struct rq * rq,u64 clock)1867 static inline void scx_rq_clock_update(struct rq *rq, u64 clock) {}
scx_rq_clock_invalidate(struct rq * rq)1868 static inline void scx_rq_clock_invalidate(struct rq *rq) {}
1869 #endif /* !CONFIG_SCHED_CLASS_EXT */
1870
assert_balance_callbacks_empty(struct rq * rq)1871 static inline void assert_balance_callbacks_empty(struct rq *rq)
1872 {
1873 WARN_ON_ONCE(IS_ENABLED(CONFIG_PROVE_LOCKING) &&
1874 rq->balance_callback &&
1875 rq->balance_callback != &balance_push_callback);
1876 }
1877
1878 /*
1879 * Lockdep annotation that avoids accidental unlocks; it's like a
1880 * sticky/continuous lockdep_assert_held().
1881 *
1882 * This avoids code that has access to 'struct rq *rq' (basically everything in
1883 * the scheduler) from accidentally unlocking the rq if they do not also have a
1884 * copy of the (on-stack) 'struct rq_flags rf'.
1885 *
1886 * Also see Documentation/locking/lockdep-design.rst.
1887 */
rq_pin_lock(struct rq * rq,struct rq_flags * rf)1888 static inline void rq_pin_lock(struct rq *rq, struct rq_flags *rf)
1889 {
1890 rf->cookie = lockdep_pin_lock(__rq_lockp(rq));
1891
1892 rq->clock_update_flags &= (RQCF_REQ_SKIP|RQCF_ACT_SKIP);
1893 rf->clock_update_flags = 0;
1894 assert_balance_callbacks_empty(rq);
1895 }
1896
rq_unpin_lock(struct rq * rq,struct rq_flags * rf)1897 static inline void rq_unpin_lock(struct rq *rq, struct rq_flags *rf)
1898 {
1899 if (rq->clock_update_flags > RQCF_ACT_SKIP)
1900 rf->clock_update_flags = RQCF_UPDATED;
1901
1902 scx_rq_clock_invalidate(rq);
1903 lockdep_unpin_lock(__rq_lockp(rq), rf->cookie);
1904 }
1905
rq_repin_lock(struct rq * rq,struct rq_flags * rf)1906 static inline void rq_repin_lock(struct rq *rq, struct rq_flags *rf)
1907 {
1908 lockdep_repin_lock(__rq_lockp(rq), rf->cookie);
1909
1910 /*
1911 * Restore the value we stashed in @rf for this pin context.
1912 */
1913 rq->clock_update_flags |= rf->clock_update_flags;
1914 }
1915
1916 #define __task_rq_lock(...) __acquire_ret(___task_rq_lock(__VA_ARGS__), __rq_lockp(__ret))
1917 extern struct rq *___task_rq_lock(struct task_struct *p, struct rq_flags *rf) __acquires_ret;
1918
1919 #define task_rq_lock(...) __acquire_ret(_task_rq_lock(__VA_ARGS__), __rq_lockp(__ret))
1920 extern struct rq *_task_rq_lock(struct task_struct *p, struct rq_flags *rf)
1921 __acquires(&p->pi_lock) __acquires_ret;
1922
1923 static inline void
__task_rq_unlock(struct rq * rq,struct task_struct * p,struct rq_flags * rf)1924 __task_rq_unlock(struct rq *rq, struct task_struct *p, struct rq_flags *rf)
1925 __releases(__rq_lockp(rq))
1926 {
1927 rq_unpin_lock(rq, rf);
1928 raw_spin_rq_unlock(rq);
1929 }
1930
1931 static inline void
task_rq_unlock(struct rq * rq,struct task_struct * p,struct rq_flags * rf)1932 task_rq_unlock(struct rq *rq, struct task_struct *p, struct rq_flags *rf)
1933 __releases(__rq_lockp(rq), &p->pi_lock)
1934 {
1935 __task_rq_unlock(rq, p, rf);
1936 raw_spin_unlock_irqrestore(&p->pi_lock, rf->flags);
1937 }
1938
1939 DEFINE_LOCK_GUARD_1(task_rq_lock, struct task_struct,
1940 _T->rq = task_rq_lock(_T->lock, &_T->rf),
1941 task_rq_unlock(_T->rq, _T->lock, &_T->rf),
1942 struct rq *rq; struct rq_flags rf)
1943 DECLARE_LOCK_GUARD_1_ATTRS(task_rq_lock, __acquires(_T->pi_lock), __releases((*(struct task_struct **)_T)->pi_lock))
1944 #define class_task_rq_lock_constructor(_T) WITH_LOCK_GUARD_1_ATTRS(task_rq_lock, _T)
1945
1946 DEFINE_LOCK_GUARD_1(__task_rq_lock, struct task_struct,
1947 _T->rq = __task_rq_lock(_T->lock, &_T->rf),
1948 __task_rq_unlock(_T->rq, _T->lock, &_T->rf),
1949 struct rq *rq; struct rq_flags rf)
1950
rq_lock_irqsave(struct rq * rq,struct rq_flags * rf)1951 static inline void rq_lock_irqsave(struct rq *rq, struct rq_flags *rf)
1952 __acquires(__rq_lockp(rq))
1953 {
1954 raw_spin_rq_lock_irqsave(rq, rf->flags);
1955 rq_pin_lock(rq, rf);
1956 }
1957
rq_lock_irq(struct rq * rq,struct rq_flags * rf)1958 static inline void rq_lock_irq(struct rq *rq, struct rq_flags *rf)
1959 __acquires(__rq_lockp(rq))
1960 {
1961 raw_spin_rq_lock_irq(rq);
1962 rq_pin_lock(rq, rf);
1963 }
1964
rq_lock(struct rq * rq,struct rq_flags * rf)1965 static inline void rq_lock(struct rq *rq, struct rq_flags *rf)
1966 __acquires(__rq_lockp(rq))
1967 {
1968 raw_spin_rq_lock(rq);
1969 rq_pin_lock(rq, rf);
1970 }
1971
rq_unlock_irqrestore(struct rq * rq,struct rq_flags * rf)1972 static inline void rq_unlock_irqrestore(struct rq *rq, struct rq_flags *rf)
1973 __releases(__rq_lockp(rq))
1974 {
1975 rq_unpin_lock(rq, rf);
1976 raw_spin_rq_unlock_irqrestore(rq, rf->flags);
1977 }
1978
rq_unlock_irq(struct rq * rq,struct rq_flags * rf)1979 static inline void rq_unlock_irq(struct rq *rq, struct rq_flags *rf)
1980 __releases(__rq_lockp(rq))
1981 {
1982 rq_unpin_lock(rq, rf);
1983 raw_spin_rq_unlock_irq(rq);
1984 }
1985
rq_unlock(struct rq * rq,struct rq_flags * rf)1986 static inline void rq_unlock(struct rq *rq, struct rq_flags *rf)
1987 __releases(__rq_lockp(rq))
1988 {
1989 rq_unpin_lock(rq, rf);
1990 raw_spin_rq_unlock(rq);
1991 }
1992
1993 DEFINE_LOCK_GUARD_1(rq_lock, struct rq,
1994 rq_lock(_T->lock, &_T->rf),
1995 rq_unlock(_T->lock, &_T->rf),
1996 struct rq_flags rf)
1997
1998 DECLARE_LOCK_GUARD_1_ATTRS(rq_lock, __acquires(__rq_lockp(_T)), __releases(__rq_lockp(*(struct rq **)_T)));
1999 #define class_rq_lock_constructor(_T) WITH_LOCK_GUARD_1_ATTRS(rq_lock, _T)
2000
2001 DEFINE_LOCK_GUARD_1(rq_lock_irq, struct rq,
2002 rq_lock_irq(_T->lock, &_T->rf),
2003 rq_unlock_irq(_T->lock, &_T->rf),
2004 struct rq_flags rf)
2005
2006 DECLARE_LOCK_GUARD_1_ATTRS(rq_lock_irq, __acquires(__rq_lockp(_T)), __releases(__rq_lockp(*(struct rq **)_T)));
2007 #define class_rq_lock_irq_constructor(_T) WITH_LOCK_GUARD_1_ATTRS(rq_lock_irq, _T)
2008
2009 DEFINE_LOCK_GUARD_1(rq_lock_irqsave, struct rq,
2010 rq_lock_irqsave(_T->lock, &_T->rf),
2011 rq_unlock_irqrestore(_T->lock, &_T->rf),
2012 struct rq_flags rf)
2013
2014 DECLARE_LOCK_GUARD_1_ATTRS(rq_lock_irqsave, __acquires(__rq_lockp(_T)), __releases(__rq_lockp(*(struct rq **)_T)));
2015 #define class_rq_lock_irqsave_constructor(_T) WITH_LOCK_GUARD_1_ATTRS(rq_lock_irqsave, _T)
2016
2017 #define this_rq_lock_irq(...) __acquire_ret(_this_rq_lock_irq(__VA_ARGS__), __rq_lockp(__ret))
_this_rq_lock_irq(struct rq_flags * rf)2018 static inline struct rq *_this_rq_lock_irq(struct rq_flags *rf) __acquires_ret
2019 {
2020 struct rq *rq;
2021
2022 local_irq_disable();
2023 rq = this_rq();
2024 rq_lock(rq, rf);
2025
2026 return rq;
2027 }
2028
2029 #ifdef CONFIG_NUMA
2030
2031 enum numa_topology_type {
2032 NUMA_DIRECT,
2033 NUMA_GLUELESS_MESH,
2034 NUMA_BACKPLANE,
2035 };
2036
2037 extern enum numa_topology_type sched_numa_topology_type;
2038 extern int sched_max_numa_distance;
2039 extern bool find_numa_distance(int distance);
2040 extern void sched_init_numa(int offline_node);
2041 extern void sched_update_numa(int cpu, bool online);
2042 extern void sched_domains_numa_masks_set(unsigned int cpu);
2043 extern void sched_domains_numa_masks_clear(unsigned int cpu);
2044 extern int sched_numa_find_closest(const struct cpumask *cpus, int cpu);
2045
2046 #else /* !CONFIG_NUMA: */
2047
sched_init_numa(int offline_node)2048 static inline void sched_init_numa(int offline_node) { }
sched_update_numa(int cpu,bool online)2049 static inline void sched_update_numa(int cpu, bool online) { }
sched_domains_numa_masks_set(unsigned int cpu)2050 static inline void sched_domains_numa_masks_set(unsigned int cpu) { }
sched_domains_numa_masks_clear(unsigned int cpu)2051 static inline void sched_domains_numa_masks_clear(unsigned int cpu) { }
2052
sched_numa_find_closest(const struct cpumask * cpus,int cpu)2053 static inline int sched_numa_find_closest(const struct cpumask *cpus, int cpu)
2054 {
2055 return nr_cpu_ids;
2056 }
2057
2058 #endif /* !CONFIG_NUMA */
2059
2060 #ifdef CONFIG_NUMA_BALANCING
2061
2062 /* The regions in numa_faults array from task_struct */
2063 enum numa_faults_stats {
2064 NUMA_MEM = 0,
2065 NUMA_CPU,
2066 NUMA_MEMBUF,
2067 NUMA_CPUBUF
2068 };
2069
2070 extern void sched_setnuma(struct task_struct *p, int node);
2071 extern int migrate_task_to(struct task_struct *p, int cpu);
2072 extern int migrate_swap(struct task_struct *p, struct task_struct *t,
2073 int cpu, int scpu);
2074 extern void init_numa_balancing(u64 clone_flags, struct task_struct *p);
2075
2076 #else /* !CONFIG_NUMA_BALANCING: */
2077
2078 static inline void
init_numa_balancing(u64 clone_flags,struct task_struct * p)2079 init_numa_balancing(u64 clone_flags, struct task_struct *p)
2080 {
2081 }
2082
2083 #endif /* !CONFIG_NUMA_BALANCING */
2084
2085 static inline void
queue_balance_callback(struct rq * rq,struct balance_callback * head,void (* func)(struct rq * rq))2086 queue_balance_callback(struct rq *rq,
2087 struct balance_callback *head,
2088 void (*func)(struct rq *rq))
2089 {
2090 lockdep_assert_rq_held(rq);
2091
2092 /*
2093 * Don't (re)queue an already queued item; nor queue anything when
2094 * balance_push() is active, see the comment with
2095 * balance_push_callback.
2096 */
2097 if (unlikely(head->next || rq->balance_callback == &balance_push_callback))
2098 return;
2099
2100 head->func = func;
2101 head->next = rq->balance_callback;
2102 rq->balance_callback = head;
2103 }
2104
2105 #define rcu_dereference_sched_domain(p) \
2106 rcu_dereference_all_check((p), lockdep_is_held(&sched_domains_mutex))
2107
2108 /*
2109 * The domain tree (rq->sd) is protected by RCU's quiescent state transition.
2110 * See destroy_sched_domains: call_rcu for details.
2111 *
2112 * The domain tree of any CPU may only be accessed from within
2113 * preempt-disabled sections.
2114 */
2115 #define for_each_domain(cpu, __sd) \
2116 for (__sd = rcu_dereference_sched_domain(cpu_rq(cpu)->sd); \
2117 __sd; __sd = __sd->parent)
2118
2119 /* A mask of all the SD flags that have the SDF_SHARED_CHILD metaflag */
2120 #define SD_FLAG(name, mflags) (name * !!((mflags) & SDF_SHARED_CHILD)) |
2121 static const unsigned int SD_SHARED_CHILD_MASK =
2122 #include <linux/sched/sd_flags.h>
2123 0;
2124 #undef SD_FLAG
2125
2126 /**
2127 * highest_flag_domain - Return highest sched_domain containing flag.
2128 * @cpu: The CPU whose highest level of sched domain is to
2129 * be returned.
2130 * @flag: The flag to check for the highest sched_domain
2131 * for the given CPU.
2132 *
2133 * Returns the highest sched_domain of a CPU which contains @flag. If @flag has
2134 * the SDF_SHARED_CHILD metaflag, all the children domains also have @flag.
2135 */
highest_flag_domain(int cpu,int flag)2136 static inline struct sched_domain *highest_flag_domain(int cpu, int flag)
2137 {
2138 struct sched_domain *sd, *hsd = NULL;
2139
2140 for_each_domain(cpu, sd) {
2141 if (sd->flags & flag) {
2142 hsd = sd;
2143 continue;
2144 }
2145
2146 /*
2147 * Stop the search if @flag is known to be shared at lower
2148 * levels. It will not be found further up.
2149 */
2150 if (flag & SD_SHARED_CHILD_MASK)
2151 break;
2152 }
2153
2154 return hsd;
2155 }
2156
lowest_flag_domain(int cpu,int flag)2157 static inline struct sched_domain *lowest_flag_domain(int cpu, int flag)
2158 {
2159 struct sched_domain *sd;
2160
2161 for_each_domain(cpu, sd) {
2162 if (sd->flags & flag)
2163 break;
2164 }
2165
2166 return sd;
2167 }
2168
2169 DECLARE_PER_CPU(struct sched_domain __rcu *, sd_llc);
2170 DECLARE_PER_CPU(int, sd_llc_size);
2171 DECLARE_PER_CPU(int, sd_llc_id);
2172 DECLARE_PER_CPU(int, sd_share_id);
2173 DECLARE_PER_CPU(struct sched_domain_shared __rcu *, sd_llc_shared);
2174 DECLARE_PER_CPU(struct sched_domain __rcu *, sd_numa);
2175 DECLARE_PER_CPU(struct sched_domain __rcu *, sd_asym_packing);
2176 DECLARE_PER_CPU(struct sched_domain __rcu *, sd_asym_cpucapacity);
2177
2178 extern struct static_key_false sched_asym_cpucapacity;
2179 extern struct static_key_false sched_cluster_active;
2180
sched_asym_cpucap_active(void)2181 static __always_inline bool sched_asym_cpucap_active(void)
2182 {
2183 return static_branch_unlikely(&sched_asym_cpucapacity);
2184 }
2185
2186 struct sched_group_capacity {
2187 atomic_t ref;
2188 /*
2189 * CPU capacity of this group, SCHED_CAPACITY_SCALE being max capacity
2190 * for a single CPU.
2191 */
2192 unsigned long capacity;
2193 unsigned long min_capacity; /* Min per-CPU capacity in group */
2194 unsigned long max_capacity; /* Max per-CPU capacity in group */
2195 unsigned long next_update;
2196 int imbalance; /* XXX unrelated to capacity but shared group state */
2197
2198 int id;
2199
2200 unsigned long cpumask[]; /* Balance mask */
2201 };
2202
2203 struct sched_group {
2204 struct sched_group *next; /* Must be a circular list */
2205 atomic_t ref;
2206
2207 unsigned int group_weight;
2208 unsigned int cores;
2209 struct sched_group_capacity *sgc;
2210 int asym_prefer_cpu; /* CPU of highest priority in group */
2211 int flags;
2212
2213 /*
2214 * The CPUs this group covers.
2215 *
2216 * NOTE: this field is variable length. (Allocated dynamically
2217 * by attaching extra space to the end of the structure,
2218 * depending on how many CPUs the kernel has booted up with)
2219 */
2220 unsigned long cpumask[];
2221 };
2222
sched_group_span(struct sched_group * sg)2223 static inline struct cpumask *sched_group_span(struct sched_group *sg)
2224 {
2225 return to_cpumask(sg->cpumask);
2226 }
2227
2228 /*
2229 * See build_balance_mask().
2230 */
group_balance_mask(struct sched_group * sg)2231 static inline struct cpumask *group_balance_mask(struct sched_group *sg)
2232 {
2233 return to_cpumask(sg->sgc->cpumask);
2234 }
2235
2236 extern int group_balance_cpu(struct sched_group *sg);
2237
2238 extern void update_sched_domain_debugfs(void);
2239 extern void dirty_sched_domain_sysctl(int cpu);
2240
2241 extern int sched_update_scaling(void);
2242
task_user_cpus(struct task_struct * p)2243 static inline const struct cpumask *task_user_cpus(struct task_struct *p)
2244 {
2245 if (!p->user_cpus_ptr)
2246 return cpu_possible_mask; /* &init_task.cpus_mask */
2247 return p->user_cpus_ptr;
2248 }
2249
2250 #ifdef CONFIG_CGROUP_SCHED
2251
2252 /*
2253 * Return the group to which this tasks belongs.
2254 *
2255 * We cannot use task_css() and friends because the cgroup subsystem
2256 * changes that value before the cgroup_subsys::attach() method is called,
2257 * therefore we cannot pin it and might observe the wrong value.
2258 *
2259 * The same is true for autogroup's p->signal->autogroup->tg, the autogroup
2260 * core changes this before calling sched_move_task().
2261 *
2262 * Instead we use a 'copy' which is updated from sched_move_task() while
2263 * holding both task_struct::pi_lock and rq::lock.
2264 */
task_group(struct task_struct * p)2265 static inline struct task_group *task_group(struct task_struct *p)
2266 {
2267 return p->sched_task_group;
2268 }
2269
2270 /* Change a task's cfs_rq and parent entity if it moves across CPUs/groups */
set_task_rq(struct task_struct * p,unsigned int cpu)2271 static inline void set_task_rq(struct task_struct *p, unsigned int cpu)
2272 {
2273 #if defined(CONFIG_FAIR_GROUP_SCHED) || defined(CONFIG_RT_GROUP_SCHED)
2274 struct task_group *tg = task_group(p);
2275 #endif
2276
2277 #ifdef CONFIG_FAIR_GROUP_SCHED
2278 set_task_rq_fair(&p->se, p->se.cfs_rq, tg->cfs_rq[cpu]);
2279 p->se.cfs_rq = tg->cfs_rq[cpu];
2280 p->se.parent = tg->se[cpu];
2281 p->se.depth = tg->se[cpu] ? tg->se[cpu]->depth + 1 : 0;
2282 #endif
2283
2284 #ifdef CONFIG_RT_GROUP_SCHED
2285 /*
2286 * p->rt.rt_rq is NULL initially and it is easier to assign
2287 * root_task_group's rt_rq than switching in rt_rq_of_se()
2288 * Clobbers tg(!)
2289 */
2290 if (!rt_group_sched_enabled())
2291 tg = &root_task_group;
2292 p->rt.rt_rq = tg->rt_rq[cpu];
2293 p->rt.parent = tg->rt_se[cpu];
2294 #endif /* CONFIG_RT_GROUP_SCHED */
2295 }
2296
2297 #else /* !CONFIG_CGROUP_SCHED: */
2298
set_task_rq(struct task_struct * p,unsigned int cpu)2299 static inline void set_task_rq(struct task_struct *p, unsigned int cpu) { }
2300
task_group(struct task_struct * p)2301 static inline struct task_group *task_group(struct task_struct *p)
2302 {
2303 return NULL;
2304 }
2305
2306 #endif /* !CONFIG_CGROUP_SCHED */
2307
__set_task_cpu(struct task_struct * p,unsigned int cpu)2308 static inline void __set_task_cpu(struct task_struct *p, unsigned int cpu)
2309 {
2310 set_task_rq(p, cpu);
2311 #ifdef CONFIG_SMP
2312 /*
2313 * After ->cpu is set up to a new value, task_rq_lock(p, ...) can be
2314 * successfully executed on another CPU. We must ensure that updates of
2315 * per-task data have been completed by this moment.
2316 */
2317 smp_wmb();
2318 WRITE_ONCE(task_thread_info(p)->cpu, cpu);
2319 p->wake_cpu = cpu;
2320 rseq_sched_set_ids_changed(p);
2321 #endif /* CONFIG_SMP */
2322 }
2323
2324 /*
2325 * Tunables:
2326 */
2327
2328 #define SCHED_FEAT(name, enabled) \
2329 __SCHED_FEAT_##name ,
2330
2331 enum {
2332 #include "features.h"
2333 __SCHED_FEAT_NR,
2334 };
2335
2336 #undef SCHED_FEAT
2337
2338 /*
2339 * To support run-time toggling of sched features, all the translation units
2340 * (but core.c) reference the sysctl_sched_features defined in core.c.
2341 */
2342 extern __read_mostly unsigned int sysctl_sched_features;
2343
2344 #ifdef CONFIG_JUMP_LABEL
2345
2346 #define SCHED_FEAT(name, enabled) \
2347 static __always_inline bool static_branch_##name(struct static_key *key) \
2348 { \
2349 return static_key_##enabled(key); \
2350 }
2351
2352 #include "features.h"
2353 #undef SCHED_FEAT
2354
2355 extern struct static_key sched_feat_keys[__SCHED_FEAT_NR];
2356 #define sched_feat(x) (static_branch_##x(&sched_feat_keys[__SCHED_FEAT_##x]))
2357
2358 #else /* !CONFIG_JUMP_LABEL: */
2359
2360 #define sched_feat(x) (sysctl_sched_features & (1UL << __SCHED_FEAT_##x))
2361
2362 #endif /* !CONFIG_JUMP_LABEL */
2363
2364 extern struct static_key_false sched_numa_balancing;
2365 extern struct static_key_false sched_schedstats;
2366
global_rt_period(void)2367 static inline u64 global_rt_period(void)
2368 {
2369 return (u64)sysctl_sched_rt_period * NSEC_PER_USEC;
2370 }
2371
global_rt_runtime(void)2372 static inline u64 global_rt_runtime(void)
2373 {
2374 if (sysctl_sched_rt_runtime < 0)
2375 return RUNTIME_INF;
2376
2377 return (u64)sysctl_sched_rt_runtime * NSEC_PER_USEC;
2378 }
2379
2380 /*
2381 * Is p the current execution context?
2382 */
task_current(struct rq * rq,struct task_struct * p)2383 static inline int task_current(struct rq *rq, struct task_struct *p)
2384 {
2385 return rq->curr == p;
2386 }
2387
2388 /*
2389 * Is p the current scheduling context?
2390 *
2391 * Note that it might be the current execution context at the same time if
2392 * rq->curr == rq->donor == p.
2393 */
task_current_donor(struct rq * rq,struct task_struct * p)2394 static inline int task_current_donor(struct rq *rq, struct task_struct *p)
2395 {
2396 return rq->donor == p;
2397 }
2398
task_is_blocked(struct task_struct * p)2399 static inline bool task_is_blocked(struct task_struct *p)
2400 {
2401 if (!sched_proxy_exec())
2402 return false;
2403
2404 return !!p->blocked_on;
2405 }
2406
task_on_cpu(struct rq * rq,struct task_struct * p)2407 static inline int task_on_cpu(struct rq *rq, struct task_struct *p)
2408 {
2409 return p->on_cpu;
2410 }
2411
task_on_rq_queued(struct task_struct * p)2412 static inline int task_on_rq_queued(struct task_struct *p)
2413 {
2414 return READ_ONCE(p->on_rq) == TASK_ON_RQ_QUEUED;
2415 }
2416
task_on_rq_migrating(struct task_struct * p)2417 static inline int task_on_rq_migrating(struct task_struct *p)
2418 {
2419 return READ_ONCE(p->on_rq) == TASK_ON_RQ_MIGRATING;
2420 }
2421
2422 /* Wake flags. The first three directly map to some SD flag value */
2423 #define WF_EXEC 0x02 /* Wakeup after exec; maps to SD_BALANCE_EXEC */
2424 #define WF_FORK 0x04 /* Wakeup after fork; maps to SD_BALANCE_FORK */
2425 #define WF_TTWU 0x08 /* Wakeup; maps to SD_BALANCE_WAKE */
2426
2427 #define WF_SYNC 0x10 /* Waker goes to sleep after wakeup */
2428 #define WF_MIGRATED 0x20 /* Internal use, task got migrated */
2429 #define WF_CURRENT_CPU 0x40 /* Prefer to move the wakee to the current CPU. */
2430 #define WF_RQ_SELECTED 0x80 /* ->select_task_rq() was called */
2431
2432 static_assert(WF_EXEC == SD_BALANCE_EXEC);
2433 static_assert(WF_FORK == SD_BALANCE_FORK);
2434 static_assert(WF_TTWU == SD_BALANCE_WAKE);
2435
2436 /*
2437 * To aid in avoiding the subversion of "niceness" due to uneven distribution
2438 * of tasks with abnormal "nice" values across CPUs the contribution that
2439 * each task makes to its run queue's load is weighted according to its
2440 * scheduling class and "nice" value. For SCHED_NORMAL tasks this is just a
2441 * scaled version of the new time slice allocation that they receive on time
2442 * slice expiry etc.
2443 */
2444
2445 #define WEIGHT_IDLEPRIO 3
2446 #define WMULT_IDLEPRIO 1431655765
2447
2448 extern const int sched_prio_to_weight[40];
2449 extern const u32 sched_prio_to_wmult[40];
2450
2451 /*
2452 * {de,en}queue flags:
2453 *
2454 * SLEEP/WAKEUP - task is no-longer/just-became runnable
2455 *
2456 * SAVE/RESTORE - an otherwise spurious dequeue/enqueue, done to ensure tasks
2457 * are in a known state which allows modification. Such pairs
2458 * should preserve as much state as possible.
2459 *
2460 * MOVE - paired with SAVE/RESTORE, explicitly does not preserve the location
2461 * in the runqueue. IOW the priority is allowed to change. Callers
2462 * must expect to deal with balance callbacks.
2463 *
2464 * NOCLOCK - skip the update_rq_clock() (avoids double updates)
2465 *
2466 * MIGRATION - p->on_rq == TASK_ON_RQ_MIGRATING (used for DEADLINE)
2467 *
2468 * DELAYED - de/re-queue a sched_delayed task
2469 *
2470 * CLASS - going to update p->sched_class; makes sched_change call the
2471 * various switch methods.
2472 *
2473 * ENQUEUE_HEAD - place at front of runqueue (tail if not specified)
2474 * ENQUEUE_REPLENISH - CBS (replenish runtime and postpone deadline)
2475 * ENQUEUE_MIGRATED - the task was migrated during wakeup
2476 * ENQUEUE_RQ_SELECTED - ->select_task_rq() was called
2477 *
2478 * XXX SAVE/RESTORE in combination with CLASS doesn't really make sense, but
2479 * SCHED_DEADLINE seems to rely on this for now.
2480 */
2481
2482 #define DEQUEUE_SLEEP 0x0001 /* Matches ENQUEUE_WAKEUP */
2483 #define DEQUEUE_SAVE 0x0002 /* Matches ENQUEUE_RESTORE */
2484 #define DEQUEUE_MOVE 0x0004 /* Matches ENQUEUE_MOVE */
2485 #define DEQUEUE_NOCLOCK 0x0008 /* Matches ENQUEUE_NOCLOCK */
2486
2487 #define DEQUEUE_MIGRATING 0x0010 /* Matches ENQUEUE_MIGRATING */
2488 #define DEQUEUE_DELAYED 0x0020 /* Matches ENQUEUE_DELAYED */
2489 #define DEQUEUE_CLASS 0x0040 /* Matches ENQUEUE_CLASS */
2490
2491 #define DEQUEUE_SPECIAL 0x00010000
2492 #define DEQUEUE_THROTTLE 0x00020000
2493
2494 #define ENQUEUE_WAKEUP 0x0001
2495 #define ENQUEUE_RESTORE 0x0002
2496 #define ENQUEUE_MOVE 0x0004
2497 #define ENQUEUE_NOCLOCK 0x0008
2498
2499 #define ENQUEUE_MIGRATING 0x0010
2500 #define ENQUEUE_DELAYED 0x0020
2501 #define ENQUEUE_CLASS 0x0040
2502
2503 #define ENQUEUE_HEAD 0x00010000
2504 #define ENQUEUE_REPLENISH 0x00020000
2505 #define ENQUEUE_MIGRATED 0x00040000
2506 #define ENQUEUE_INITIAL 0x00080000
2507 #define ENQUEUE_RQ_SELECTED 0x00100000
2508
2509 #define RETRY_TASK ((void *)-1UL)
2510
2511 struct affinity_context {
2512 const struct cpumask *new_mask;
2513 struct cpumask *user_mask;
2514 unsigned int flags;
2515 };
2516
2517 extern s64 update_curr_common(struct rq *rq);
2518
2519 struct sched_class {
2520
2521 #ifdef CONFIG_UCLAMP_TASK
2522 int uclamp_enabled;
2523 #endif
2524
2525 /*
2526 * move_queued_task/activate_task/enqueue_task: rq->lock
2527 * ttwu_do_activate/activate_task/enqueue_task: rq->lock
2528 * wake_up_new_task/activate_task/enqueue_task: task_rq_lock
2529 * ttwu_runnable/enqueue_task: task_rq_lock
2530 * proxy_task_current: rq->lock
2531 * sched_change_end
2532 */
2533 void (*enqueue_task) (struct rq *rq, struct task_struct *p, int flags);
2534 /*
2535 * move_queued_task/deactivate_task/dequeue_task: rq->lock
2536 * __schedule/block_task/dequeue_task: rq->lock
2537 * proxy_task_current: rq->lock
2538 * wait_task_inactive: task_rq_lock
2539 * sched_change_begin
2540 */
2541 bool (*dequeue_task) (struct rq *rq, struct task_struct *p, int flags);
2542
2543 /*
2544 * do_sched_yield: rq->lock
2545 */
2546 void (*yield_task) (struct rq *rq);
2547 /*
2548 * yield_to: rq->lock (double)
2549 */
2550 bool (*yield_to_task)(struct rq *rq, struct task_struct *p);
2551
2552 /*
2553 * move_queued_task: rq->lock
2554 * __migrate_swap_task: rq->lock
2555 * ttwu_do_activate: rq->lock
2556 * ttwu_runnable: task_rq_lock
2557 * wake_up_new_task: task_rq_lock
2558 */
2559 void (*wakeup_preempt)(struct rq *rq, struct task_struct *p, int flags);
2560
2561 /*
2562 * schedule/pick_next_task/prev_balance: rq->lock
2563 */
2564 int (*balance)(struct rq *rq, struct task_struct *prev, struct rq_flags *rf);
2565
2566 /*
2567 * schedule/pick_next_task: rq->lock
2568 */
2569 struct task_struct *(*pick_task)(struct rq *rq, struct rq_flags *rf);
2570 /*
2571 * Optional! When implemented pick_next_task() should be equivalent to:
2572 *
2573 * next = pick_task();
2574 * if (next) {
2575 * put_prev_task(prev);
2576 * set_next_task_first(next);
2577 * }
2578 */
2579 struct task_struct *(*pick_next_task)(struct rq *rq, struct task_struct *prev,
2580 struct rq_flags *rf);
2581
2582 /*
2583 * sched_change:
2584 * __schedule: rq->lock
2585 */
2586 void (*put_prev_task)(struct rq *rq, struct task_struct *p, struct task_struct *next);
2587 void (*set_next_task)(struct rq *rq, struct task_struct *p, bool first);
2588
2589 /*
2590 * select_task_rq: p->pi_lock
2591 * sched_exec: p->pi_lock
2592 */
2593 int (*select_task_rq)(struct task_struct *p, int task_cpu, int flags);
2594
2595 /*
2596 * set_task_cpu: p->pi_lock || rq->lock (ttwu like)
2597 */
2598 void (*migrate_task_rq)(struct task_struct *p, int new_cpu);
2599
2600 /*
2601 * ttwu_do_activate: rq->lock
2602 * wake_up_new_task: task_rq_lock
2603 */
2604 void (*task_woken)(struct rq *this_rq, struct task_struct *task);
2605
2606 /*
2607 * do_set_cpus_allowed: task_rq_lock + sched_change
2608 */
2609 void (*set_cpus_allowed)(struct task_struct *p, struct affinity_context *ctx);
2610
2611 /*
2612 * sched_set_rq_{on,off}line: rq->lock
2613 */
2614 void (*rq_online)(struct rq *rq);
2615 void (*rq_offline)(struct rq *rq);
2616
2617 /*
2618 * push_cpu_stop: p->pi_lock && rq->lock
2619 */
2620 struct rq *(*find_lock_rq)(struct task_struct *p, struct rq *rq);
2621
2622 /*
2623 * hrtick: rq->lock
2624 * sched_tick: rq->lock
2625 * sched_tick_remote: rq->lock
2626 */
2627 void (*task_tick)(struct rq *rq, struct task_struct *p, int queued);
2628 /*
2629 * sched_cgroup_fork: p->pi_lock
2630 */
2631 void (*task_fork)(struct task_struct *p);
2632 /*
2633 * finish_task_switch: no locks
2634 */
2635 void (*task_dead)(struct task_struct *p);
2636
2637 /*
2638 * sched_change
2639 */
2640 void (*switching_from)(struct rq *this_rq, struct task_struct *task);
2641 void (*switched_from) (struct rq *this_rq, struct task_struct *task);
2642 void (*switching_to) (struct rq *this_rq, struct task_struct *task);
2643 void (*switched_to) (struct rq *this_rq, struct task_struct *task);
2644 u64 (*get_prio) (struct rq *this_rq, struct task_struct *task);
2645 void (*prio_changed) (struct rq *this_rq, struct task_struct *task,
2646 u64 oldprio);
2647
2648 /*
2649 * set_load_weight: task_rq_lock + sched_change
2650 * __setscheduler_parms: task_rq_lock + sched_change
2651 */
2652 void (*reweight_task)(struct rq *this_rq, struct task_struct *task,
2653 const struct load_weight *lw);
2654
2655 /*
2656 * sched_rr_get_interval: task_rq_lock
2657 */
2658 unsigned int (*get_rr_interval)(struct rq *rq,
2659 struct task_struct *task);
2660
2661 /*
2662 * task_sched_runtime: task_rq_lock
2663 */
2664 void (*update_curr)(struct rq *rq);
2665
2666 #ifdef CONFIG_FAIR_GROUP_SCHED
2667 /*
2668 * sched_change_group: task_rq_lock + sched_change
2669 */
2670 void (*task_change_group)(struct task_struct *p);
2671 #endif
2672
2673 #ifdef CONFIG_SCHED_CORE
2674 /*
2675 * pick_next_task: rq->lock
2676 * try_steal_cookie: rq->lock (double)
2677 */
2678 int (*task_is_throttled)(struct task_struct *p, int cpu);
2679 #endif
2680 };
2681
put_prev_task(struct rq * rq,struct task_struct * prev)2682 static inline void put_prev_task(struct rq *rq, struct task_struct *prev)
2683 {
2684 WARN_ON_ONCE(rq->donor != prev);
2685 prev->sched_class->put_prev_task(rq, prev, NULL);
2686 }
2687
set_next_task(struct rq * rq,struct task_struct * next)2688 static inline void set_next_task(struct rq *rq, struct task_struct *next)
2689 {
2690 next->sched_class->set_next_task(rq, next, false);
2691 }
2692
2693 static inline void
__put_prev_set_next_dl_server(struct rq * rq,struct task_struct * prev,struct task_struct * next)2694 __put_prev_set_next_dl_server(struct rq *rq,
2695 struct task_struct *prev,
2696 struct task_struct *next)
2697 {
2698 prev->dl_server = NULL;
2699 next->dl_server = rq->dl_server;
2700 rq->dl_server = NULL;
2701 }
2702
put_prev_set_next_task(struct rq * rq,struct task_struct * prev,struct task_struct * next)2703 static inline void put_prev_set_next_task(struct rq *rq,
2704 struct task_struct *prev,
2705 struct task_struct *next)
2706 {
2707 WARN_ON_ONCE(rq->donor != prev);
2708
2709 __put_prev_set_next_dl_server(rq, prev, next);
2710
2711 if (next == prev)
2712 return;
2713
2714 prev->sched_class->put_prev_task(rq, prev, next);
2715 next->sched_class->set_next_task(rq, next, true);
2716 }
2717
2718 /*
2719 * Helper to define a sched_class instance; each one is placed in a separate
2720 * section which is ordered by the linker script:
2721 *
2722 * include/asm-generic/vmlinux.lds.h
2723 *
2724 * *CAREFUL* they are laid out in *REVERSE* order!!!
2725 *
2726 * Also enforce alignment on the instance, not the type, to guarantee layout.
2727 */
2728 #define DEFINE_SCHED_CLASS(name) \
2729 const struct sched_class name##_sched_class \
2730 __aligned(__alignof__(struct sched_class)) \
2731 __section("__" #name "_sched_class")
2732
2733 /* Defined in include/asm-generic/vmlinux.lds.h */
2734 extern struct sched_class __sched_class_highest[];
2735 extern struct sched_class __sched_class_lowest[];
2736
2737 extern const struct sched_class stop_sched_class;
2738 extern const struct sched_class dl_sched_class;
2739 extern const struct sched_class rt_sched_class;
2740 extern const struct sched_class fair_sched_class;
2741 extern const struct sched_class idle_sched_class;
2742
2743 /*
2744 * Iterate only active classes. SCX can take over all fair tasks or be
2745 * completely disabled. If the former, skip fair. If the latter, skip SCX.
2746 */
next_active_class(const struct sched_class * class)2747 static inline const struct sched_class *next_active_class(const struct sched_class *class)
2748 {
2749 class++;
2750 #ifdef CONFIG_SCHED_CLASS_EXT
2751 if (scx_switched_all() && class == &fair_sched_class)
2752 class++;
2753 if (!scx_enabled() && class == &ext_sched_class)
2754 class++;
2755 #endif
2756 return class;
2757 }
2758
2759 #define for_class_range(class, _from, _to) \
2760 for (class = (_from); class < (_to); class++)
2761
2762 #define for_each_class(class) \
2763 for_class_range(class, __sched_class_highest, __sched_class_lowest)
2764
2765 #define for_active_class_range(class, _from, _to) \
2766 for (class = (_from); class != (_to); class = next_active_class(class))
2767
2768 #define for_each_active_class(class) \
2769 for_active_class_range(class, __sched_class_highest, __sched_class_lowest)
2770
2771 #define sched_class_above(_a, _b) ((_a) < (_b))
2772
rq_modified_begin(struct rq * rq,const struct sched_class * class)2773 static inline void rq_modified_begin(struct rq *rq, const struct sched_class *class)
2774 {
2775 if (sched_class_above(rq->next_class, class))
2776 rq->next_class = class;
2777 }
2778
rq_modified_above(struct rq * rq,const struct sched_class * class)2779 static inline bool rq_modified_above(struct rq *rq, const struct sched_class *class)
2780 {
2781 return sched_class_above(rq->next_class, class);
2782 }
2783
sched_stop_runnable(struct rq * rq)2784 static inline bool sched_stop_runnable(struct rq *rq)
2785 {
2786 return rq->stop && task_on_rq_queued(rq->stop);
2787 }
2788
sched_dl_runnable(struct rq * rq)2789 static inline bool sched_dl_runnable(struct rq *rq)
2790 {
2791 return rq->dl.dl_nr_running > 0;
2792 }
2793
sched_rt_runnable(struct rq * rq)2794 static inline bool sched_rt_runnable(struct rq *rq)
2795 {
2796 return rq->rt.rt_queued > 0;
2797 }
2798
sched_fair_runnable(struct rq * rq)2799 static inline bool sched_fair_runnable(struct rq *rq)
2800 {
2801 return rq->cfs.nr_queued > 0;
2802 }
2803
2804 extern struct task_struct *pick_next_task_fair(struct rq *rq, struct task_struct *prev,
2805 struct rq_flags *rf);
2806 extern struct task_struct *pick_task_idle(struct rq *rq, struct rq_flags *rf);
2807
2808 #define SCA_CHECK 0x01
2809 #define SCA_MIGRATE_DISABLE 0x02
2810 #define SCA_MIGRATE_ENABLE 0x04
2811 #define SCA_USER 0x08
2812
2813 extern void update_group_capacity(struct sched_domain *sd, int cpu);
2814
2815 extern void sched_balance_trigger(struct rq *rq);
2816
2817 extern int __set_cpus_allowed_ptr(struct task_struct *p, struct affinity_context *ctx);
2818 extern void set_cpus_allowed_common(struct task_struct *p, struct affinity_context *ctx);
2819
task_allowed_on_cpu(struct task_struct * p,int cpu)2820 static inline bool task_allowed_on_cpu(struct task_struct *p, int cpu)
2821 {
2822 /* When not in the task's cpumask, no point in looking further. */
2823 if (!cpumask_test_cpu(cpu, p->cpus_ptr))
2824 return false;
2825
2826 /* Can @cpu run a user thread? */
2827 if (!(p->flags & PF_KTHREAD) && !task_cpu_possible(cpu, p))
2828 return false;
2829
2830 return true;
2831 }
2832
alloc_user_cpus_ptr(int node)2833 static inline cpumask_t *alloc_user_cpus_ptr(int node)
2834 {
2835 /*
2836 * See set_cpus_allowed_force() above for the rcu_head usage.
2837 */
2838 int size = max_t(int, cpumask_size(), sizeof(struct rcu_head));
2839
2840 return kmalloc_node(size, GFP_KERNEL, node);
2841 }
2842
get_push_task(struct rq * rq)2843 static inline struct task_struct *get_push_task(struct rq *rq)
2844 {
2845 struct task_struct *p = rq->donor;
2846
2847 lockdep_assert_rq_held(rq);
2848
2849 if (rq->push_busy)
2850 return NULL;
2851
2852 if (p->nr_cpus_allowed == 1)
2853 return NULL;
2854
2855 if (p->migration_disabled)
2856 return NULL;
2857
2858 rq->push_busy = true;
2859 return get_task_struct(p);
2860 }
2861
2862 extern int push_cpu_stop(void *arg);
2863
2864 #ifdef CONFIG_CPU_IDLE
2865
idle_set_state(struct rq * rq,struct cpuidle_state * idle_state)2866 static inline void idle_set_state(struct rq *rq,
2867 struct cpuidle_state *idle_state)
2868 {
2869 rq->idle_state = idle_state;
2870 }
2871
idle_get_state(struct rq * rq)2872 static inline struct cpuidle_state *idle_get_state(struct rq *rq)
2873 {
2874 lockdep_assert(rcu_read_lock_any_held());
2875
2876 return rq->idle_state;
2877 }
2878
2879 #else /* !CONFIG_CPU_IDLE: */
2880
idle_set_state(struct rq * rq,struct cpuidle_state * idle_state)2881 static inline void idle_set_state(struct rq *rq,
2882 struct cpuidle_state *idle_state)
2883 {
2884 }
2885
idle_get_state(struct rq * rq)2886 static inline struct cpuidle_state *idle_get_state(struct rq *rq)
2887 {
2888 return NULL;
2889 }
2890
2891 #endif /* !CONFIG_CPU_IDLE */
2892
2893 extern void schedule_idle(void);
2894 asmlinkage void schedule_user(void);
2895
2896 extern void sysrq_sched_debug_show(void);
2897 extern void sched_init_granularity(void);
2898 extern void update_max_interval(void);
2899
2900 extern void init_sched_dl_class(void);
2901 extern void init_sched_rt_class(void);
2902 extern void init_sched_fair_class(void);
2903
2904 extern void resched_curr(struct rq *rq);
2905 extern void resched_curr_lazy(struct rq *rq);
2906 extern void resched_cpu(int cpu);
2907
2908 extern void init_rt_bandwidth(struct rt_bandwidth *rt_b, u64 period, u64 runtime);
2909 extern bool sched_rt_bandwidth_account(struct rt_rq *rt_rq);
2910
2911 extern void init_dl_entity(struct sched_dl_entity *dl_se);
2912
2913 extern void init_cfs_throttle_work(struct task_struct *p);
2914
2915 #define BW_SHIFT 20
2916 #define BW_UNIT (1 << BW_SHIFT)
2917 #define RATIO_SHIFT 8
2918 #define MAX_BW_BITS (64 - BW_SHIFT)
2919 #define MAX_BW ((1ULL << MAX_BW_BITS) - 1)
2920
2921 extern u64 to_ratio(u64 period, u64 runtime);
2922
2923 extern void init_entity_runnable_average(struct sched_entity *se);
2924 extern void post_init_entity_util_avg(struct task_struct *p);
2925
2926 #ifdef CONFIG_NO_HZ_FULL
2927 extern bool sched_can_stop_tick(struct rq *rq);
2928 extern int __init sched_tick_offload_init(void);
2929
2930 /*
2931 * Tick may be needed by tasks in the runqueue depending on their policy and
2932 * requirements. If tick is needed, lets send the target an IPI to kick it out of
2933 * nohz mode if necessary.
2934 */
sched_update_tick_dependency(struct rq * rq)2935 static inline void sched_update_tick_dependency(struct rq *rq)
2936 {
2937 int cpu = cpu_of(rq);
2938
2939 if (!tick_nohz_full_cpu(cpu))
2940 return;
2941
2942 if (sched_can_stop_tick(rq))
2943 tick_nohz_dep_clear_cpu(cpu, TICK_DEP_BIT_SCHED);
2944 else
2945 tick_nohz_dep_set_cpu(cpu, TICK_DEP_BIT_SCHED);
2946 }
2947 #else /* !CONFIG_NO_HZ_FULL: */
sched_tick_offload_init(void)2948 static inline int sched_tick_offload_init(void) { return 0; }
sched_update_tick_dependency(struct rq * rq)2949 static inline void sched_update_tick_dependency(struct rq *rq) { }
2950 #endif /* !CONFIG_NO_HZ_FULL */
2951
add_nr_running(struct rq * rq,unsigned count)2952 static inline void add_nr_running(struct rq *rq, unsigned count)
2953 {
2954 unsigned prev_nr = rq->nr_running;
2955
2956 rq->nr_running = prev_nr + count;
2957 if (trace_sched_update_nr_running_tp_enabled()) {
2958 call_trace_sched_update_nr_running(rq, count);
2959 }
2960
2961 if (prev_nr < 2 && rq->nr_running >= 2)
2962 set_rd_overloaded(rq->rd, 1);
2963
2964 sched_update_tick_dependency(rq);
2965 }
2966
sub_nr_running(struct rq * rq,unsigned count)2967 static inline void sub_nr_running(struct rq *rq, unsigned count)
2968 {
2969 rq->nr_running -= count;
2970 if (trace_sched_update_nr_running_tp_enabled()) {
2971 call_trace_sched_update_nr_running(rq, -count);
2972 }
2973
2974 /* Check if we still need preemption */
2975 sched_update_tick_dependency(rq);
2976 }
2977
__block_task(struct rq * rq,struct task_struct * p)2978 static inline void __block_task(struct rq *rq, struct task_struct *p)
2979 {
2980 if (p->sched_contributes_to_load)
2981 rq->nr_uninterruptible++;
2982
2983 if (p->in_iowait) {
2984 atomic_inc(&rq->nr_iowait);
2985 delayacct_blkio_start();
2986 }
2987
2988 ASSERT_EXCLUSIVE_WRITER(p->on_rq);
2989
2990 /*
2991 * The moment this write goes through, ttwu() can swoop in and migrate
2992 * this task, rendering our rq->__lock ineffective.
2993 *
2994 * __schedule() try_to_wake_up()
2995 * LOCK rq->__lock LOCK p->pi_lock
2996 * pick_next_task()
2997 * pick_next_task_fair()
2998 * pick_next_entity()
2999 * dequeue_entities()
3000 * __block_task()
3001 * RELEASE p->on_rq = 0 if (p->on_rq && ...)
3002 * break;
3003 *
3004 * ACQUIRE (after ctrl-dep)
3005 *
3006 * cpu = select_task_rq();
3007 * set_task_cpu(p, cpu);
3008 * ttwu_queue()
3009 * ttwu_do_activate()
3010 * LOCK rq->__lock
3011 * activate_task()
3012 * STORE p->on_rq = 1
3013 * UNLOCK rq->__lock
3014 *
3015 * Callers must ensure to not reference @p after this -- we no longer
3016 * own it.
3017 */
3018 smp_store_release(&p->on_rq, 0);
3019 }
3020
3021 extern void activate_task(struct rq *rq, struct task_struct *p, int flags);
3022 extern void deactivate_task(struct rq *rq, struct task_struct *p, int flags);
3023
3024 extern void wakeup_preempt(struct rq *rq, struct task_struct *p, int flags);
3025
3026 /*
3027 * attach_task() -- attach the task detached by detach_task() to its new rq.
3028 */
attach_task(struct rq * rq,struct task_struct * p)3029 static inline void attach_task(struct rq *rq, struct task_struct *p)
3030 {
3031 lockdep_assert_rq_held(rq);
3032
3033 WARN_ON_ONCE(task_rq(p) != rq);
3034 activate_task(rq, p, ENQUEUE_NOCLOCK);
3035 wakeup_preempt(rq, p, 0);
3036 }
3037
3038 /*
3039 * attach_one_task() -- attaches the task returned from detach_one_task() to
3040 * its new rq.
3041 */
attach_one_task(struct rq * rq,struct task_struct * p)3042 static inline void attach_one_task(struct rq *rq, struct task_struct *p)
3043 {
3044 guard(rq_lock)(rq);
3045 update_rq_clock(rq);
3046 attach_task(rq, p);
3047 }
3048
3049 #ifdef CONFIG_PREEMPT_RT
3050 # define SCHED_NR_MIGRATE_BREAK 8
3051 #else
3052 # define SCHED_NR_MIGRATE_BREAK 32
3053 #endif
3054
3055 extern __read_mostly unsigned int sysctl_sched_nr_migrate;
3056 extern __read_mostly unsigned int sysctl_sched_migration_cost;
3057
3058 extern unsigned int sysctl_sched_base_slice;
3059
3060 extern int sysctl_resched_latency_warn_ms;
3061 extern int sysctl_resched_latency_warn_once;
3062
3063 extern unsigned int sysctl_sched_tunable_scaling;
3064
3065 extern unsigned int sysctl_numa_balancing_scan_delay;
3066 extern unsigned int sysctl_numa_balancing_scan_period_min;
3067 extern unsigned int sysctl_numa_balancing_scan_period_max;
3068 extern unsigned int sysctl_numa_balancing_scan_size;
3069 extern unsigned int sysctl_numa_balancing_hot_threshold;
3070
3071 #ifdef CONFIG_SCHED_HRTICK
3072
3073 /*
3074 * Use hrtick when:
3075 * - enabled by features
3076 * - hrtimer is actually high res
3077 */
hrtick_enabled(struct rq * rq)3078 static inline bool hrtick_enabled(struct rq *rq)
3079 {
3080 return cpu_active(cpu_of(rq)) && hrtimer_highres_enabled();
3081 }
3082
hrtick_enabled_fair(struct rq * rq)3083 static inline bool hrtick_enabled_fair(struct rq *rq)
3084 {
3085 return sched_feat(HRTICK) && hrtick_enabled(rq);
3086 }
3087
hrtick_enabled_dl(struct rq * rq)3088 static inline bool hrtick_enabled_dl(struct rq *rq)
3089 {
3090 return sched_feat(HRTICK_DL) && hrtick_enabled(rq);
3091 }
3092
3093 extern void hrtick_start(struct rq *rq, u64 delay);
hrtick_active(struct rq * rq)3094 static inline bool hrtick_active(struct rq *rq)
3095 {
3096 return hrtimer_active(&rq->hrtick_timer);
3097 }
3098
3099 #else /* !CONFIG_SCHED_HRTICK: */
hrtick_enabled_fair(struct rq * rq)3100 static inline bool hrtick_enabled_fair(struct rq *rq) { return false; }
hrtick_enabled_dl(struct rq * rq)3101 static inline bool hrtick_enabled_dl(struct rq *rq) { return false; }
hrtick_enabled(struct rq * rq)3102 static inline bool hrtick_enabled(struct rq *rq) { return false; }
3103 #endif /* !CONFIG_SCHED_HRTICK */
3104
3105 #ifndef arch_scale_freq_tick
arch_scale_freq_tick(void)3106 static __always_inline void arch_scale_freq_tick(void) { }
3107 #endif
3108
3109 #ifndef arch_scale_freq_capacity
3110 /**
3111 * arch_scale_freq_capacity - get the frequency scale factor of a given CPU.
3112 * @cpu: the CPU in question.
3113 *
3114 * Return: the frequency scale factor normalized against SCHED_CAPACITY_SCALE, i.e.
3115 *
3116 * f_curr
3117 * ------ * SCHED_CAPACITY_SCALE
3118 * f_max
3119 */
3120 static __always_inline
arch_scale_freq_capacity(int cpu)3121 unsigned long arch_scale_freq_capacity(int cpu)
3122 {
3123 return SCHED_CAPACITY_SCALE;
3124 }
3125 #endif
3126
3127 /*
3128 * In double_lock_balance()/double_rq_lock(), we use raw_spin_rq_lock() to
3129 * acquire rq lock instead of rq_lock(). So at the end of these two functions
3130 * we need to call double_rq_clock_clear_update() to clear RQCF_UPDATED of
3131 * rq->clock_update_flags to avoid the WARN_DOUBLE_CLOCK warning.
3132 */
double_rq_clock_clear_update(struct rq * rq1,struct rq * rq2)3133 static inline void double_rq_clock_clear_update(struct rq *rq1, struct rq *rq2)
3134 {
3135 rq1->clock_update_flags &= (RQCF_REQ_SKIP|RQCF_ACT_SKIP);
3136 rq2->clock_update_flags &= (RQCF_REQ_SKIP|RQCF_ACT_SKIP);
3137 }
3138
3139 #define DEFINE_LOCK_GUARD_2(name, type, _lock, _unlock, ...) \
3140 __DEFINE_UNLOCK_GUARD(name, type, _unlock, type *lock2; __VA_ARGS__) \
3141 static inline class_##name##_t class_##name##_constructor(type *lock, type *lock2) \
3142 __no_context_analysis \
3143 { class_##name##_t _t = { .lock = lock, .lock2 = lock2 }, *_T = &_t; \
3144 _lock; return _t; }
3145 #define DECLARE_LOCK_GUARD_2_ATTRS(_name, _lock, _unlock1, _unlock2) \
3146 static inline class_##_name##_t class_##_name##_constructor(lock_##_name##_t *_T1, \
3147 lock_##_name##_t *_T2) _lock; \
3148 static __always_inline void __class_##_name##_cleanup_ctx1(class_##_name##_t **_T1) \
3149 __no_context_analysis _unlock1 { } \
3150 static __always_inline void __class_##_name##_cleanup_ctx2(class_##_name##_t **_T2) \
3151 __no_context_analysis _unlock2 { }
3152 #define WITH_LOCK_GUARD_2_ATTRS(_name, _T1, _T2) \
3153 class_##_name##_constructor(_T1, _T2), \
3154 *__UNIQUE_ID(unlock1) __cleanup(__class_##_name##_cleanup_ctx1) = (void *)(_T1),\
3155 *__UNIQUE_ID(unlock2) __cleanup(__class_##_name##_cleanup_ctx2) = (void *)(_T2)
3156
rq_order_less(struct rq * rq1,struct rq * rq2)3157 static inline bool rq_order_less(struct rq *rq1, struct rq *rq2)
3158 {
3159 #ifdef CONFIG_SCHED_CORE
3160 /*
3161 * In order to not have {0,2},{1,3} turn into into an AB-BA,
3162 * order by core-id first and cpu-id second.
3163 *
3164 * Notably:
3165 *
3166 * double_rq_lock(0,3); will take core-0, core-1 lock
3167 * double_rq_lock(1,2); will take core-1, core-0 lock
3168 *
3169 * when only cpu-id is considered.
3170 */
3171 if (rq1->core->cpu < rq2->core->cpu)
3172 return true;
3173 if (rq1->core->cpu > rq2->core->cpu)
3174 return false;
3175
3176 /*
3177 * __sched_core_flip() relies on SMT having cpu-id lock order.
3178 */
3179 #endif /* CONFIG_SCHED_CORE */
3180 return rq1->cpu < rq2->cpu;
3181 }
3182
3183 extern void double_rq_lock(struct rq *rq1, struct rq *rq2)
3184 __acquires(__rq_lockp(rq1), __rq_lockp(rq2));
3185
3186 #ifdef CONFIG_PREEMPTION
3187
3188 /*
3189 * fair double_lock_balance: Safely acquires both rq->locks in a fair
3190 * way at the expense of forcing extra atomic operations in all
3191 * invocations. This assures that the double_lock is acquired using the
3192 * same underlying policy as the spinlock_t on this architecture, which
3193 * reduces latency compared to the unfair variant below. However, it
3194 * also adds more overhead and therefore may reduce throughput.
3195 */
_double_lock_balance(struct rq * this_rq,struct rq * busiest)3196 static inline int _double_lock_balance(struct rq *this_rq, struct rq *busiest)
3197 __must_hold(__rq_lockp(this_rq))
3198 __acquires(__rq_lockp(busiest))
3199 {
3200 raw_spin_rq_unlock(this_rq);
3201 double_rq_lock(this_rq, busiest);
3202
3203 return 1;
3204 }
3205
3206 #else /* !CONFIG_PREEMPTION: */
3207 /*
3208 * Unfair double_lock_balance: Optimizes throughput at the expense of
3209 * latency by eliminating extra atomic operations when the locks are
3210 * already in proper order on entry. This favors lower CPU-ids and will
3211 * grant the double lock to lower CPUs over higher ids under contention,
3212 * regardless of entry order into the function.
3213 */
_double_lock_balance(struct rq * this_rq,struct rq * busiest)3214 static inline int _double_lock_balance(struct rq *this_rq, struct rq *busiest)
3215 __must_hold(__rq_lockp(this_rq))
3216 __acquires(__rq_lockp(busiest))
3217 {
3218 if (__rq_lockp(this_rq) == __rq_lockp(busiest)) {
3219 __acquire(__rq_lockp(busiest)); /* already held */
3220 double_rq_clock_clear_update(this_rq, busiest);
3221 return 0;
3222 }
3223
3224 if (likely(raw_spin_rq_trylock(busiest))) {
3225 double_rq_clock_clear_update(this_rq, busiest);
3226 return 0;
3227 }
3228
3229 if (rq_order_less(this_rq, busiest)) {
3230 raw_spin_rq_lock_nested(busiest, SINGLE_DEPTH_NESTING);
3231 double_rq_clock_clear_update(this_rq, busiest);
3232 return 0;
3233 }
3234
3235 raw_spin_rq_unlock(this_rq);
3236 double_rq_lock(this_rq, busiest);
3237
3238 return 1;
3239 }
3240
3241 #endif /* !CONFIG_PREEMPTION */
3242
3243 /*
3244 * double_lock_balance - lock the busiest runqueue, this_rq is locked already.
3245 */
double_lock_balance(struct rq * this_rq,struct rq * busiest)3246 static inline int double_lock_balance(struct rq *this_rq, struct rq *busiest)
3247 __must_hold(__rq_lockp(this_rq))
3248 __acquires(__rq_lockp(busiest))
3249 {
3250 lockdep_assert_irqs_disabled();
3251
3252 return _double_lock_balance(this_rq, busiest);
3253 }
3254
double_unlock_balance(struct rq * this_rq,struct rq * busiest)3255 static inline void double_unlock_balance(struct rq *this_rq, struct rq *busiest)
3256 __releases(__rq_lockp(busiest))
3257 {
3258 if (__rq_lockp(this_rq) != __rq_lockp(busiest))
3259 raw_spin_rq_unlock(busiest);
3260 else
3261 __release(__rq_lockp(busiest)); /* fake release */
3262 lock_set_subclass(&__rq_lockp(this_rq)->dep_map, 0, _RET_IP_);
3263 }
3264
double_lock(spinlock_t * l1,spinlock_t * l2)3265 static inline void double_lock(spinlock_t *l1, spinlock_t *l2)
3266 __acquires(l1, l2)
3267 {
3268 if (l1 > l2)
3269 swap(l1, l2);
3270
3271 spin_lock(l1);
3272 spin_lock_nested(l2, SINGLE_DEPTH_NESTING);
3273 }
3274
double_lock_irq(spinlock_t * l1,spinlock_t * l2)3275 static inline void double_lock_irq(spinlock_t *l1, spinlock_t *l2)
3276 __acquires(l1, l2)
3277 {
3278 if (l1 > l2)
3279 swap(l1, l2);
3280
3281 spin_lock_irq(l1);
3282 spin_lock_nested(l2, SINGLE_DEPTH_NESTING);
3283 }
3284
double_raw_lock(raw_spinlock_t * l1,raw_spinlock_t * l2)3285 static inline void double_raw_lock(raw_spinlock_t *l1, raw_spinlock_t *l2)
3286 __acquires(l1, l2)
3287 {
3288 if (l1 > l2)
3289 swap(l1, l2);
3290
3291 raw_spin_lock(l1);
3292 raw_spin_lock_nested(l2, SINGLE_DEPTH_NESTING);
3293 }
3294
double_raw_unlock(raw_spinlock_t * l1,raw_spinlock_t * l2)3295 static inline void double_raw_unlock(raw_spinlock_t *l1, raw_spinlock_t *l2)
3296 __releases(l1, l2)
3297 {
3298 raw_spin_unlock(l1);
3299 raw_spin_unlock(l2);
3300 }
3301
3302 DEFINE_LOCK_GUARD_2(double_raw_spinlock, raw_spinlock_t,
3303 double_raw_lock(_T->lock, _T->lock2),
3304 double_raw_unlock(_T->lock, _T->lock2))
3305
3306 DECLARE_LOCK_GUARD_2_ATTRS(double_raw_spinlock,
3307 __acquires(_T1, _T2),
3308 __releases(*(raw_spinlock_t **)_T1),
3309 __releases(*(raw_spinlock_t **)_T2));
3310 #define class_double_raw_spinlock_constructor(_T1, _T2) \
3311 WITH_LOCK_GUARD_2_ATTRS(double_raw_spinlock, _T1, _T2)
3312
3313 /*
3314 * double_rq_unlock - safely unlock two runqueues
3315 *
3316 * Note this does not restore interrupts like task_rq_unlock,
3317 * you need to do so manually after calling.
3318 */
double_rq_unlock(struct rq * rq1,struct rq * rq2)3319 static inline void double_rq_unlock(struct rq *rq1, struct rq *rq2)
3320 __releases(__rq_lockp(rq1), __rq_lockp(rq2))
3321 {
3322 if (__rq_lockp(rq1) != __rq_lockp(rq2))
3323 raw_spin_rq_unlock(rq2);
3324 else
3325 __release(__rq_lockp(rq2)); /* fake release */
3326 raw_spin_rq_unlock(rq1);
3327 }
3328
3329 extern void set_rq_online (struct rq *rq);
3330 extern void set_rq_offline(struct rq *rq);
3331
3332 extern bool sched_smp_initialized;
3333
3334 DEFINE_LOCK_GUARD_2(double_rq_lock, struct rq,
3335 double_rq_lock(_T->lock, _T->lock2),
3336 double_rq_unlock(_T->lock, _T->lock2))
3337
3338 extern struct sched_entity *__pick_root_entity(struct cfs_rq *cfs_rq);
3339 extern struct sched_entity *__pick_first_entity(struct cfs_rq *cfs_rq);
3340 extern struct sched_entity *__pick_last_entity(struct cfs_rq *cfs_rq);
3341
3342 extern bool sched_debug_verbose;
3343
3344 extern void print_cfs_stats(struct seq_file *m, int cpu);
3345 extern void print_rt_stats(struct seq_file *m, int cpu);
3346 extern void print_dl_stats(struct seq_file *m, int cpu);
3347 extern void print_cfs_rq(struct seq_file *m, int cpu, struct cfs_rq *cfs_rq);
3348 extern void print_rt_rq(struct seq_file *m, int cpu, struct rt_rq *rt_rq);
3349 extern void print_dl_rq(struct seq_file *m, int cpu, struct dl_rq *dl_rq);
3350
3351 extern void resched_latency_warn(int cpu, u64 latency);
3352
3353 #ifdef CONFIG_NUMA_BALANCING
3354 extern void show_numa_stats(struct task_struct *p, struct seq_file *m);
3355 extern void
3356 print_numa_stats(struct seq_file *m, int node, unsigned long tsf,
3357 unsigned long tpf, unsigned long gsf, unsigned long gpf);
3358 #endif /* CONFIG_NUMA_BALANCING */
3359
3360 extern void init_cfs_rq(struct cfs_rq *cfs_rq);
3361 extern void init_rt_rq(struct rt_rq *rt_rq);
3362 extern void init_dl_rq(struct dl_rq *dl_rq);
3363
3364 extern void cfs_bandwidth_usage_inc(void);
3365 extern void cfs_bandwidth_usage_dec(void);
3366
3367 #ifdef CONFIG_NO_HZ_COMMON
3368
3369 #define NOHZ_BALANCE_KICK_BIT 0
3370 #define NOHZ_STATS_KICK_BIT 1
3371 #define NOHZ_NEWILB_KICK_BIT 2
3372 #define NOHZ_NEXT_KICK_BIT 3
3373
3374 /* Run sched_balance_domains() */
3375 #define NOHZ_BALANCE_KICK BIT(NOHZ_BALANCE_KICK_BIT)
3376 /* Update blocked load */
3377 #define NOHZ_STATS_KICK BIT(NOHZ_STATS_KICK_BIT)
3378 /* Update blocked load when entering idle */
3379 #define NOHZ_NEWILB_KICK BIT(NOHZ_NEWILB_KICK_BIT)
3380 /* Update nohz.next_balance */
3381 #define NOHZ_NEXT_KICK BIT(NOHZ_NEXT_KICK_BIT)
3382
3383 #define NOHZ_KICK_MASK (NOHZ_BALANCE_KICK | NOHZ_STATS_KICK | NOHZ_NEXT_KICK)
3384
3385 #define nohz_flags(cpu) (&cpu_rq(cpu)->nohz_flags)
3386
3387 extern void nohz_balance_exit_idle(struct rq *rq);
3388 #else /* !CONFIG_NO_HZ_COMMON: */
nohz_balance_exit_idle(struct rq * rq)3389 static inline void nohz_balance_exit_idle(struct rq *rq) { }
3390 #endif /* !CONFIG_NO_HZ_COMMON */
3391
3392 #ifdef CONFIG_NO_HZ_COMMON
3393 extern void nohz_run_idle_balance(int cpu);
3394 #else
nohz_run_idle_balance(int cpu)3395 static inline void nohz_run_idle_balance(int cpu) { }
3396 #endif
3397
3398 #include "stats.h"
3399
3400 #if defined(CONFIG_SCHED_CORE) && defined(CONFIG_SCHEDSTATS)
3401
3402 extern void __sched_core_account_forceidle(struct rq *rq);
3403
sched_core_account_forceidle(struct rq * rq)3404 static inline void sched_core_account_forceidle(struct rq *rq)
3405 {
3406 if (schedstat_enabled())
3407 __sched_core_account_forceidle(rq);
3408 }
3409
3410 extern void __sched_core_tick(struct rq *rq);
3411
sched_core_tick(struct rq * rq)3412 static inline void sched_core_tick(struct rq *rq)
3413 {
3414 if (sched_core_enabled(rq) && schedstat_enabled())
3415 __sched_core_tick(rq);
3416 }
3417
3418 #else /* !(CONFIG_SCHED_CORE && CONFIG_SCHEDSTATS): */
3419
sched_core_account_forceidle(struct rq * rq)3420 static inline void sched_core_account_forceidle(struct rq *rq) { }
3421
sched_core_tick(struct rq * rq)3422 static inline void sched_core_tick(struct rq *rq) { }
3423
3424 #endif /* !(CONFIG_SCHED_CORE && CONFIG_SCHEDSTATS) */
3425
3426 #ifdef CONFIG_IRQ_TIME_ACCOUNTING
3427
3428 struct irqtime {
3429 u64 total;
3430 u64 tick_delta;
3431 u64 irq_start_time;
3432 struct u64_stats_sync sync;
3433 };
3434
3435 DECLARE_PER_CPU(struct irqtime, cpu_irqtime);
3436 DECLARE_STATIC_KEY_FALSE(sched_clock_irqtime);
3437
irqtime_enabled(void)3438 static inline int irqtime_enabled(void)
3439 {
3440 return static_branch_likely(&sched_clock_irqtime);
3441 }
3442
3443 /*
3444 * Returns the irqtime minus the softirq time computed by ksoftirqd.
3445 * Otherwise ksoftirqd's sum_exec_runtime is subtracted its own runtime
3446 * and never move forward.
3447 */
irq_time_read(int cpu)3448 static inline u64 irq_time_read(int cpu)
3449 {
3450 struct irqtime *irqtime = &per_cpu(cpu_irqtime, cpu);
3451 unsigned int seq;
3452 u64 total;
3453
3454 do {
3455 seq = __u64_stats_fetch_begin(&irqtime->sync);
3456 total = irqtime->total;
3457 } while (__u64_stats_fetch_retry(&irqtime->sync, seq));
3458
3459 return total;
3460 }
3461
3462 #else /* !CONFIG_IRQ_TIME_ACCOUNTING: */
3463
irqtime_enabled(void)3464 static inline int irqtime_enabled(void)
3465 {
3466 return 0;
3467 }
3468
3469 #endif /* !CONFIG_IRQ_TIME_ACCOUNTING */
3470
3471 #ifdef CONFIG_CPU_FREQ
3472
3473 DECLARE_PER_CPU(struct update_util_data __rcu *, cpufreq_update_util_data);
3474
3475 /**
3476 * cpufreq_update_util - Take a note about CPU utilization changes.
3477 * @rq: Runqueue to carry out the update for.
3478 * @flags: Update reason flags.
3479 *
3480 * This function is called by the scheduler on the CPU whose utilization is
3481 * being updated.
3482 *
3483 * It can only be called from RCU-sched read-side critical sections.
3484 *
3485 * The way cpufreq is currently arranged requires it to evaluate the CPU
3486 * performance state (frequency/voltage) on a regular basis to prevent it from
3487 * being stuck in a completely inadequate performance level for too long.
3488 * That is not guaranteed to happen if the updates are only triggered from CFS
3489 * and DL, though, because they may not be coming in if only RT tasks are
3490 * active all the time (or there are RT tasks only).
3491 *
3492 * As a workaround for that issue, this function is called periodically by the
3493 * RT sched class to trigger extra cpufreq updates to prevent it from stalling,
3494 * but that really is a band-aid. Going forward it should be replaced with
3495 * solutions targeted more specifically at RT tasks.
3496 */
cpufreq_update_util(struct rq * rq,unsigned int flags)3497 static inline void cpufreq_update_util(struct rq *rq, unsigned int flags)
3498 {
3499 struct update_util_data *data;
3500
3501 data = rcu_dereference_sched(*per_cpu_ptr(&cpufreq_update_util_data,
3502 cpu_of(rq)));
3503 if (data)
3504 data->func(data, rq_clock(rq), flags);
3505 }
3506 #else /* !CONFIG_CPU_FREQ: */
cpufreq_update_util(struct rq * rq,unsigned int flags)3507 static inline void cpufreq_update_util(struct rq *rq, unsigned int flags) { }
3508 #endif /* !CONFIG_CPU_FREQ */
3509
3510 #ifdef arch_scale_freq_capacity
3511 # ifndef arch_scale_freq_invariant
3512 # define arch_scale_freq_invariant() true
3513 # endif
3514 #else
3515 # define arch_scale_freq_invariant() false
3516 #endif
3517
3518 unsigned long effective_cpu_util(int cpu, unsigned long util_cfs,
3519 unsigned long *min,
3520 unsigned long *max);
3521
3522 unsigned long sugov_effective_cpu_perf(int cpu, unsigned long actual,
3523 unsigned long min,
3524 unsigned long max);
3525
3526
3527 /*
3528 * Verify the fitness of task @p to run on @cpu taking into account the
3529 * CPU original capacity and the runtime/deadline ratio of the task.
3530 *
3531 * The function will return true if the original capacity of @cpu is
3532 * greater than or equal to task's deadline density right shifted by
3533 * (BW_SHIFT - SCHED_CAPACITY_SHIFT) and false otherwise.
3534 */
dl_task_fits_capacity(struct task_struct * p,int cpu)3535 static inline bool dl_task_fits_capacity(struct task_struct *p, int cpu)
3536 {
3537 unsigned long cap = arch_scale_cpu_capacity(cpu);
3538
3539 return cap >= p->dl.dl_density >> (BW_SHIFT - SCHED_CAPACITY_SHIFT);
3540 }
3541
cpu_bw_dl(struct rq * rq)3542 static inline unsigned long cpu_bw_dl(struct rq *rq)
3543 {
3544 return (rq->dl.running_bw * SCHED_CAPACITY_SCALE) >> BW_SHIFT;
3545 }
3546
cpu_util_dl(struct rq * rq)3547 static inline unsigned long cpu_util_dl(struct rq *rq)
3548 {
3549 return READ_ONCE(rq->avg_dl.util_avg);
3550 }
3551
3552
3553 extern unsigned long cpu_util_cfs(int cpu);
3554 extern unsigned long cpu_util_cfs_boost(int cpu);
3555
cpu_util_rt(struct rq * rq)3556 static inline unsigned long cpu_util_rt(struct rq *rq)
3557 {
3558 return READ_ONCE(rq->avg_rt.util_avg);
3559 }
3560
3561 #ifdef CONFIG_UCLAMP_TASK
3562
3563 unsigned long uclamp_eff_value(struct task_struct *p, enum uclamp_id clamp_id);
3564
3565 /*
3566 * When uclamp is compiled in, the aggregation at rq level is 'turned off'
3567 * by default in the fast path and only gets turned on once userspace performs
3568 * an operation that requires it.
3569 *
3570 * Returns true if userspace opted-in to use uclamp and aggregation at rq level
3571 * hence is active.
3572 */
uclamp_is_used(void)3573 static inline bool uclamp_is_used(void)
3574 {
3575 return static_branch_likely(&sched_uclamp_used);
3576 }
3577
3578 /*
3579 * Enabling static branches would get the cpus_read_lock(),
3580 * check whether uclamp_is_used before enable it to avoid always
3581 * calling cpus_read_lock(). Because we never disable this
3582 * static key once enable it.
3583 */
sched_uclamp_enable(void)3584 static inline void sched_uclamp_enable(void)
3585 {
3586 if (!uclamp_is_used())
3587 static_branch_enable(&sched_uclamp_used);
3588 }
3589
uclamp_rq_get(struct rq * rq,enum uclamp_id clamp_id)3590 static inline unsigned long uclamp_rq_get(struct rq *rq,
3591 enum uclamp_id clamp_id)
3592 {
3593 return READ_ONCE(rq->uclamp[clamp_id].value);
3594 }
3595
uclamp_rq_set(struct rq * rq,enum uclamp_id clamp_id,unsigned int value)3596 static inline void uclamp_rq_set(struct rq *rq, enum uclamp_id clamp_id,
3597 unsigned int value)
3598 {
3599 WRITE_ONCE(rq->uclamp[clamp_id].value, value);
3600 }
3601
uclamp_rq_is_idle(struct rq * rq)3602 static inline bool uclamp_rq_is_idle(struct rq *rq)
3603 {
3604 return rq->uclamp_flags & UCLAMP_FLAG_IDLE;
3605 }
3606
3607 /* Is the rq being capped/throttled by uclamp_max? */
uclamp_rq_is_capped(struct rq * rq)3608 static inline bool uclamp_rq_is_capped(struct rq *rq)
3609 {
3610 unsigned long rq_util;
3611 unsigned long max_util;
3612
3613 if (!uclamp_is_used())
3614 return false;
3615
3616 rq_util = cpu_util_cfs(cpu_of(rq)) + cpu_util_rt(rq);
3617 max_util = READ_ONCE(rq->uclamp[UCLAMP_MAX].value);
3618
3619 return max_util != SCHED_CAPACITY_SCALE && rq_util >= max_util;
3620 }
3621
3622 #define for_each_clamp_id(clamp_id) \
3623 for ((clamp_id) = 0; (clamp_id) < UCLAMP_CNT; (clamp_id)++)
3624
3625 extern unsigned int sysctl_sched_uclamp_util_min_rt_default;
3626
3627
uclamp_none(enum uclamp_id clamp_id)3628 static inline unsigned int uclamp_none(enum uclamp_id clamp_id)
3629 {
3630 if (clamp_id == UCLAMP_MIN)
3631 return 0;
3632 return SCHED_CAPACITY_SCALE;
3633 }
3634
3635 /* Integer rounded range for each bucket */
3636 #define UCLAMP_BUCKET_DELTA DIV_ROUND_CLOSEST(SCHED_CAPACITY_SCALE, UCLAMP_BUCKETS)
3637
uclamp_bucket_id(unsigned int clamp_value)3638 static inline unsigned int uclamp_bucket_id(unsigned int clamp_value)
3639 {
3640 return min_t(unsigned int, clamp_value / UCLAMP_BUCKET_DELTA, UCLAMP_BUCKETS - 1);
3641 }
3642
3643 static inline void
uclamp_se_set(struct uclamp_se * uc_se,unsigned int value,bool user_defined)3644 uclamp_se_set(struct uclamp_se *uc_se, unsigned int value, bool user_defined)
3645 {
3646 uc_se->value = value;
3647 uc_se->bucket_id = uclamp_bucket_id(value);
3648 uc_se->user_defined = user_defined;
3649 }
3650
3651 #else /* !CONFIG_UCLAMP_TASK: */
3652
3653 static inline unsigned long
uclamp_eff_value(struct task_struct * p,enum uclamp_id clamp_id)3654 uclamp_eff_value(struct task_struct *p, enum uclamp_id clamp_id)
3655 {
3656 if (clamp_id == UCLAMP_MIN)
3657 return 0;
3658
3659 return SCHED_CAPACITY_SCALE;
3660 }
3661
uclamp_rq_is_capped(struct rq * rq)3662 static inline bool uclamp_rq_is_capped(struct rq *rq) { return false; }
3663
uclamp_is_used(void)3664 static inline bool uclamp_is_used(void)
3665 {
3666 return false;
3667 }
3668
sched_uclamp_enable(void)3669 static inline void sched_uclamp_enable(void) {}
3670
3671 static inline unsigned long
uclamp_rq_get(struct rq * rq,enum uclamp_id clamp_id)3672 uclamp_rq_get(struct rq *rq, enum uclamp_id clamp_id)
3673 {
3674 if (clamp_id == UCLAMP_MIN)
3675 return 0;
3676
3677 return SCHED_CAPACITY_SCALE;
3678 }
3679
3680 static inline void
uclamp_rq_set(struct rq * rq,enum uclamp_id clamp_id,unsigned int value)3681 uclamp_rq_set(struct rq *rq, enum uclamp_id clamp_id, unsigned int value)
3682 {
3683 }
3684
uclamp_rq_is_idle(struct rq * rq)3685 static inline bool uclamp_rq_is_idle(struct rq *rq)
3686 {
3687 return false;
3688 }
3689
3690 #endif /* !CONFIG_UCLAMP_TASK */
3691
3692 #ifdef CONFIG_HAVE_SCHED_AVG_IRQ
3693
cpu_util_irq(struct rq * rq)3694 static inline unsigned long cpu_util_irq(struct rq *rq)
3695 {
3696 return READ_ONCE(rq->avg_irq.util_avg);
3697 }
3698
3699 static inline
scale_irq_capacity(unsigned long util,unsigned long irq,unsigned long max)3700 unsigned long scale_irq_capacity(unsigned long util, unsigned long irq, unsigned long max)
3701 {
3702 util *= (max - irq);
3703 util /= max;
3704
3705 return util;
3706
3707 }
3708
3709 #else /* !CONFIG_HAVE_SCHED_AVG_IRQ: */
3710
cpu_util_irq(struct rq * rq)3711 static inline unsigned long cpu_util_irq(struct rq *rq)
3712 {
3713 return 0;
3714 }
3715
3716 static inline
scale_irq_capacity(unsigned long util,unsigned long irq,unsigned long max)3717 unsigned long scale_irq_capacity(unsigned long util, unsigned long irq, unsigned long max)
3718 {
3719 return util;
3720 }
3721
3722 #endif /* !CONFIG_HAVE_SCHED_AVG_IRQ */
3723
3724 extern void __setparam_fair(struct task_struct *p, const struct sched_attr *attr);
3725
3726 #if defined(CONFIG_ENERGY_MODEL) && defined(CONFIG_CPU_FREQ_GOV_SCHEDUTIL)
3727
3728 #define perf_domain_span(pd) (to_cpumask(((pd)->em_pd->cpus)))
3729
3730 DECLARE_STATIC_KEY_FALSE(sched_energy_present);
3731
sched_energy_enabled(void)3732 static inline bool sched_energy_enabled(void)
3733 {
3734 return static_branch_unlikely(&sched_energy_present);
3735 }
3736
3737 #else /* !(CONFIG_ENERGY_MODEL && CONFIG_CPU_FREQ_GOV_SCHEDUTIL): */
3738
3739 #define perf_domain_span(pd) NULL
3740
sched_energy_enabled(void)3741 static inline bool sched_energy_enabled(void) { return false; }
3742
3743 #endif /* !(CONFIG_ENERGY_MODEL && CONFIG_CPU_FREQ_GOV_SCHEDUTIL) */
3744
3745 #ifdef CONFIG_MEMBARRIER
3746
3747 /*
3748 * The scheduler provides memory barriers required by membarrier between:
3749 * - prior user-space memory accesses and store to rq->membarrier_state,
3750 * - store to rq->membarrier_state and following user-space memory accesses.
3751 * In the same way it provides those guarantees around store to rq->curr.
3752 */
membarrier_switch_mm(struct rq * rq,struct mm_struct * prev_mm,struct mm_struct * next_mm)3753 static inline void membarrier_switch_mm(struct rq *rq,
3754 struct mm_struct *prev_mm,
3755 struct mm_struct *next_mm)
3756 {
3757 int membarrier_state;
3758
3759 if (prev_mm == next_mm)
3760 return;
3761
3762 membarrier_state = atomic_read(&next_mm->membarrier_state);
3763 if (READ_ONCE(rq->membarrier_state) == membarrier_state)
3764 return;
3765
3766 WRITE_ONCE(rq->membarrier_state, membarrier_state);
3767 }
3768
3769 #else /* !CONFIG_MEMBARRIER: */
3770
membarrier_switch_mm(struct rq * rq,struct mm_struct * prev_mm,struct mm_struct * next_mm)3771 static inline void membarrier_switch_mm(struct rq *rq,
3772 struct mm_struct *prev_mm,
3773 struct mm_struct *next_mm)
3774 {
3775 }
3776
3777 #endif /* !CONFIG_MEMBARRIER */
3778
is_per_cpu_kthread(struct task_struct * p)3779 static inline bool is_per_cpu_kthread(struct task_struct *p)
3780 {
3781 if (!(p->flags & PF_KTHREAD))
3782 return false;
3783
3784 if (p->nr_cpus_allowed != 1)
3785 return false;
3786
3787 return true;
3788 }
3789
3790 extern void swake_up_all_locked(struct swait_queue_head *q);
3791 extern void __prepare_to_swait(struct swait_queue_head *q, struct swait_queue *wait);
3792
3793 extern int try_to_wake_up(struct task_struct *tsk, unsigned int state, int wake_flags);
3794
3795 #ifdef CONFIG_PREEMPT_DYNAMIC
3796 extern int preempt_dynamic_mode;
3797 extern int sched_dynamic_mode(const char *str);
3798 extern void sched_dynamic_update(int mode);
3799 #endif
3800 extern const char *preempt_modes[];
3801
3802 #ifdef CONFIG_SCHED_MM_CID
3803
cid_on_cpu(unsigned int cid)3804 static __always_inline bool cid_on_cpu(unsigned int cid)
3805 {
3806 return cid & MM_CID_ONCPU;
3807 }
3808
cid_in_transit(unsigned int cid)3809 static __always_inline bool cid_in_transit(unsigned int cid)
3810 {
3811 return cid & MM_CID_TRANSIT;
3812 }
3813
cpu_cid_to_cid(unsigned int cid)3814 static __always_inline unsigned int cpu_cid_to_cid(unsigned int cid)
3815 {
3816 return cid & ~MM_CID_ONCPU;
3817 }
3818
cid_to_cpu_cid(unsigned int cid)3819 static __always_inline unsigned int cid_to_cpu_cid(unsigned int cid)
3820 {
3821 return cid | MM_CID_ONCPU;
3822 }
3823
cid_to_transit_cid(unsigned int cid)3824 static __always_inline unsigned int cid_to_transit_cid(unsigned int cid)
3825 {
3826 return cid | MM_CID_TRANSIT;
3827 }
3828
cid_from_transit_cid(unsigned int cid)3829 static __always_inline unsigned int cid_from_transit_cid(unsigned int cid)
3830 {
3831 return cid & ~MM_CID_TRANSIT;
3832 }
3833
cid_on_task(unsigned int cid)3834 static __always_inline bool cid_on_task(unsigned int cid)
3835 {
3836 /* True if none of the MM_CID_ONCPU, MM_CID_TRANSIT, MM_CID_UNSET bits is set */
3837 return cid < MM_CID_TRANSIT;
3838 }
3839
mm_drop_cid(struct mm_struct * mm,unsigned int cid)3840 static __always_inline void mm_drop_cid(struct mm_struct *mm, unsigned int cid)
3841 {
3842 clear_bit(cid, mm_cidmask(mm));
3843 }
3844
mm_unset_cid_on_task(struct task_struct * t)3845 static __always_inline void mm_unset_cid_on_task(struct task_struct *t)
3846 {
3847 unsigned int cid = t->mm_cid.cid;
3848
3849 t->mm_cid.cid = MM_CID_UNSET;
3850 if (cid_on_task(cid))
3851 mm_drop_cid(t->mm, cid);
3852 }
3853
mm_drop_cid_on_cpu(struct mm_struct * mm,struct mm_cid_pcpu * pcp)3854 static __always_inline void mm_drop_cid_on_cpu(struct mm_struct *mm, struct mm_cid_pcpu *pcp)
3855 {
3856 /* Clear the ONCPU bit, but do not set UNSET in the per CPU storage */
3857 if (cid_on_cpu(pcp->cid)) {
3858 pcp->cid = cpu_cid_to_cid(pcp->cid);
3859 mm_drop_cid(mm, pcp->cid);
3860 }
3861 }
3862
__mm_get_cid(struct mm_struct * mm,unsigned int max_cids)3863 static inline unsigned int __mm_get_cid(struct mm_struct *mm, unsigned int max_cids)
3864 {
3865 unsigned int cid = find_first_zero_bit(mm_cidmask(mm), max_cids);
3866
3867 if (cid >= max_cids)
3868 return MM_CID_UNSET;
3869 if (test_and_set_bit(cid, mm_cidmask(mm)))
3870 return MM_CID_UNSET;
3871 return cid;
3872 }
3873
mm_get_cid(struct mm_struct * mm)3874 static inline unsigned int mm_get_cid(struct mm_struct *mm)
3875 {
3876 unsigned int cid = __mm_get_cid(mm, READ_ONCE(mm->mm_cid.max_cids));
3877
3878 while (cid == MM_CID_UNSET) {
3879 cpu_relax();
3880 cid = __mm_get_cid(mm, num_possible_cpus());
3881 }
3882 return cid;
3883 }
3884
mm_cid_converge(struct mm_struct * mm,unsigned int orig_cid,unsigned int max_cids)3885 static inline unsigned int mm_cid_converge(struct mm_struct *mm, unsigned int orig_cid,
3886 unsigned int max_cids)
3887 {
3888 unsigned int new_cid, cid = cpu_cid_to_cid(orig_cid);
3889
3890 /* Is it in the optimal CID space? */
3891 if (likely(cid < max_cids))
3892 return orig_cid;
3893
3894 /* Try to find one in the optimal space. Otherwise keep the provided. */
3895 new_cid = __mm_get_cid(mm, max_cids);
3896 if (new_cid != MM_CID_UNSET) {
3897 mm_drop_cid(mm, cid);
3898 /* Preserve the ONCPU mode of the original CID */
3899 return new_cid | (orig_cid & MM_CID_ONCPU);
3900 }
3901 return orig_cid;
3902 }
3903
mm_cid_update_task_cid(struct task_struct * t,unsigned int cid)3904 static __always_inline void mm_cid_update_task_cid(struct task_struct *t, unsigned int cid)
3905 {
3906 if (t->mm_cid.cid != cid) {
3907 t->mm_cid.cid = cid;
3908 rseq_sched_set_ids_changed(t);
3909 }
3910 }
3911
mm_cid_update_pcpu_cid(struct mm_struct * mm,unsigned int cid)3912 static __always_inline void mm_cid_update_pcpu_cid(struct mm_struct *mm, unsigned int cid)
3913 {
3914 __this_cpu_write(mm->mm_cid.pcpu->cid, cid);
3915 }
3916
mm_cid_from_cpu(struct task_struct * t,unsigned int cpu_cid,unsigned int mode)3917 static __always_inline void mm_cid_from_cpu(struct task_struct *t, unsigned int cpu_cid,
3918 unsigned int mode)
3919 {
3920 unsigned int max_cids, tcid = t->mm_cid.cid;
3921 struct mm_struct *mm = t->mm;
3922
3923 max_cids = READ_ONCE(mm->mm_cid.max_cids);
3924 /* Optimize for the common case where both have the ONCPU bit set */
3925 if (likely(cid_on_cpu(cpu_cid & tcid))) {
3926 if (likely(cpu_cid_to_cid(cpu_cid) < max_cids)) {
3927 mm_cid_update_task_cid(t, cpu_cid);
3928 return;
3929 }
3930 /* Try to converge into the optimal CID space */
3931 cpu_cid = mm_cid_converge(mm, cpu_cid, max_cids);
3932 } else {
3933 /* Hand over or drop the task owned CID */
3934 if (cid_on_task(tcid)) {
3935 if (cid_on_cpu(cpu_cid))
3936 mm_unset_cid_on_task(t);
3937 else
3938 cpu_cid = cid_to_cpu_cid(tcid);
3939 }
3940 /* Still nothing, allocate a new one */
3941 if (!cid_on_cpu(cpu_cid))
3942 cpu_cid = cid_to_cpu_cid(mm_get_cid(mm));
3943
3944 /* Handle the transition mode flag if required */
3945 if (mode & MM_CID_TRANSIT)
3946 cpu_cid = cpu_cid_to_cid(cpu_cid) | MM_CID_TRANSIT;
3947 }
3948 mm_cid_update_pcpu_cid(mm, cpu_cid);
3949 mm_cid_update_task_cid(t, cpu_cid);
3950 }
3951
mm_cid_from_task(struct task_struct * t,unsigned int cpu_cid,unsigned int mode)3952 static __always_inline void mm_cid_from_task(struct task_struct *t, unsigned int cpu_cid,
3953 unsigned int mode)
3954 {
3955 unsigned int max_cids, tcid = t->mm_cid.cid;
3956 struct mm_struct *mm = t->mm;
3957
3958 max_cids = READ_ONCE(mm->mm_cid.max_cids);
3959 /* Optimize for the common case, where both have the ONCPU bit clear */
3960 if (likely(cid_on_task(tcid | cpu_cid))) {
3961 if (likely(tcid < max_cids)) {
3962 mm_cid_update_pcpu_cid(mm, tcid);
3963 return;
3964 }
3965 /* Try to converge into the optimal CID space */
3966 tcid = mm_cid_converge(mm, tcid, max_cids);
3967 } else {
3968 /* Hand over or drop the CPU owned CID */
3969 if (cid_on_cpu(cpu_cid)) {
3970 if (cid_on_task(tcid))
3971 mm_drop_cid_on_cpu(mm, this_cpu_ptr(mm->mm_cid.pcpu));
3972 else
3973 tcid = cpu_cid_to_cid(cpu_cid);
3974 }
3975 /* Still nothing, allocate a new one */
3976 if (!cid_on_task(tcid))
3977 tcid = mm_get_cid(mm);
3978 /* Set the transition mode flag if required */
3979 tcid |= mode & MM_CID_TRANSIT;
3980 }
3981 mm_cid_update_pcpu_cid(mm, tcid);
3982 mm_cid_update_task_cid(t, tcid);
3983 }
3984
mm_cid_schedin(struct task_struct * next)3985 static __always_inline void mm_cid_schedin(struct task_struct *next)
3986 {
3987 struct mm_struct *mm = next->mm;
3988 unsigned int cpu_cid, mode;
3989
3990 if (!next->mm_cid.active)
3991 return;
3992
3993 cpu_cid = __this_cpu_read(mm->mm_cid.pcpu->cid);
3994 mode = READ_ONCE(mm->mm_cid.mode);
3995 if (likely(!cid_on_cpu(mode)))
3996 mm_cid_from_task(next, cpu_cid, mode);
3997 else
3998 mm_cid_from_cpu(next, cpu_cid, mode);
3999 }
4000
mm_cid_schedout(struct task_struct * prev)4001 static __always_inline void mm_cid_schedout(struct task_struct *prev)
4002 {
4003 struct mm_struct *mm = prev->mm;
4004 unsigned int mode, cid;
4005
4006 /* During mode transitions CIDs are temporary and need to be dropped */
4007 if (likely(!cid_in_transit(prev->mm_cid.cid)))
4008 return;
4009
4010 mode = READ_ONCE(mm->mm_cid.mode);
4011 cid = cid_from_transit_cid(prev->mm_cid.cid);
4012
4013 /*
4014 * If transition mode is done, transfer ownership when the CID is
4015 * within the convergence range to optimize the next schedule in.
4016 */
4017 if (!cid_in_transit(mode) && cid < READ_ONCE(mm->mm_cid.max_cids)) {
4018 if (cid_on_cpu(mode))
4019 cid = cid_to_cpu_cid(cid);
4020
4021 /* Update both so that the next schedule in goes into the fast path */
4022 mm_cid_update_pcpu_cid(mm, cid);
4023 prev->mm_cid.cid = cid;
4024 } else {
4025 mm_drop_cid(mm, cid);
4026 prev->mm_cid.cid = MM_CID_UNSET;
4027 }
4028 }
4029
mm_cid_switch_to(struct task_struct * prev,struct task_struct * next)4030 static inline void mm_cid_switch_to(struct task_struct *prev, struct task_struct *next)
4031 {
4032 mm_cid_schedout(prev);
4033 mm_cid_schedin(next);
4034 }
4035
4036 #else /* !CONFIG_SCHED_MM_CID: */
mm_cid_switch_to(struct task_struct * prev,struct task_struct * next)4037 static inline void mm_cid_switch_to(struct task_struct *prev, struct task_struct *next) { }
4038 #endif /* !CONFIG_SCHED_MM_CID */
4039
4040 extern u64 avg_vruntime(struct cfs_rq *cfs_rq);
4041 extern int entity_eligible(struct cfs_rq *cfs_rq, struct sched_entity *se);
4042 static inline
move_queued_task_locked(struct rq * src_rq,struct rq * dst_rq,struct task_struct * task)4043 void move_queued_task_locked(struct rq *src_rq, struct rq *dst_rq, struct task_struct *task)
4044 {
4045 lockdep_assert_rq_held(src_rq);
4046 lockdep_assert_rq_held(dst_rq);
4047
4048 deactivate_task(src_rq, task, 0);
4049 set_task_cpu(task, dst_rq->cpu);
4050 activate_task(dst_rq, task, 0);
4051 wakeup_preempt(dst_rq, task, 0);
4052 }
4053
4054 static inline
task_is_pushable(struct rq * rq,struct task_struct * p,int cpu)4055 bool task_is_pushable(struct rq *rq, struct task_struct *p, int cpu)
4056 {
4057 if (!task_on_cpu(rq, p) &&
4058 cpumask_test_cpu(cpu, &p->cpus_mask))
4059 return true;
4060
4061 return false;
4062 }
4063
4064 #ifdef CONFIG_RT_MUTEXES
4065
__rt_effective_prio(struct task_struct * pi_task,int prio)4066 static inline int __rt_effective_prio(struct task_struct *pi_task, int prio)
4067 {
4068 if (pi_task)
4069 prio = min(prio, pi_task->prio);
4070
4071 return prio;
4072 }
4073
rt_effective_prio(struct task_struct * p,int prio)4074 static inline int rt_effective_prio(struct task_struct *p, int prio)
4075 {
4076 struct task_struct *pi_task = rt_mutex_get_top_task(p);
4077
4078 return __rt_effective_prio(pi_task, prio);
4079 }
4080
4081 #else /* !CONFIG_RT_MUTEXES: */
4082
rt_effective_prio(struct task_struct * p,int prio)4083 static inline int rt_effective_prio(struct task_struct *p, int prio)
4084 {
4085 return prio;
4086 }
4087
4088 #endif /* !CONFIG_RT_MUTEXES */
4089
4090 extern int __sched_setscheduler(struct task_struct *p, const struct sched_attr *attr, bool user, bool pi);
4091 extern int __sched_setaffinity(struct task_struct *p, struct affinity_context *ctx);
4092 extern const struct sched_class *__setscheduler_class(int policy, int prio);
4093 extern void set_load_weight(struct task_struct *p, bool update_load);
4094 extern void enqueue_task(struct rq *rq, struct task_struct *p, int flags);
4095 extern bool dequeue_task(struct rq *rq, struct task_struct *p, int flags);
4096
4097 extern struct balance_callback *splice_balance_callbacks(struct rq *rq);
4098
4099 extern void __balance_callbacks(struct rq *rq, struct rq_flags *rf);
4100 extern void balance_callbacks(struct rq *rq, struct balance_callback *head);
4101
4102 /*
4103 * The 'sched_change' pattern is the safe, easy and slow way of changing a
4104 * task's scheduling properties. It dequeues a task, such that the scheduler
4105 * is fully unaware of it; at which point its properties can be modified;
4106 * after which it is enqueued again.
4107 *
4108 * Typically this must be called while holding task_rq_lock, since most/all
4109 * properties are serialized under those locks. There is currently one
4110 * exception to this rule in sched/ext which only holds rq->lock.
4111 */
4112
4113 /*
4114 * This structure is a temporary, used to preserve/convey the queueing state
4115 * of the task between sched_change_begin() and sched_change_end(). Ensuring
4116 * the task's queueing state is idempotent across the operation.
4117 */
4118 struct sched_change_ctx {
4119 u64 prio;
4120 struct task_struct *p;
4121 const struct sched_class *class;
4122 int flags;
4123 bool queued;
4124 bool running;
4125 };
4126
4127 struct sched_change_ctx *sched_change_begin(struct task_struct *p, unsigned int flags);
4128 void sched_change_end(struct sched_change_ctx *ctx);
4129
4130 DEFINE_CLASS(sched_change, struct sched_change_ctx *,
4131 sched_change_end(_T),
4132 sched_change_begin(p, flags),
4133 struct task_struct *p, unsigned int flags)
4134
4135 DEFINE_CLASS_IS_UNCONDITIONAL(sched_change)
4136
4137 #include "ext.h"
4138
4139 #endif /* _KERNEL_SCHED_SCHED_H */
4140