xref: /linux/include/linux/sched.h (revision 2e05544060b9fef5d4d0e0172944e6956c55080f)
1 /* SPDX-License-Identifier: GPL-2.0 */
2 #ifndef _LINUX_SCHED_H
3 #define _LINUX_SCHED_H
4 
5 /*
6  * Define 'struct task_struct' and provide the main scheduler
7  * APIs (schedule(), wakeup variants, etc.)
8  */
9 
10 #include <uapi/linux/sched.h>
11 
12 #include <asm/current.h>
13 #include <asm/processor.h>
14 #include <linux/thread_info.h>
15 #include <linux/preempt.h>
16 #include <linux/cpumask_types.h>
17 
18 #include <linux/cache.h>
19 #include <linux/futex_types.h>
20 #include <linux/irqflags_types.h>
21 #include <linux/smp_types.h>
22 #include <linux/pid_types.h>
23 #include <linux/sem_types.h>
24 #include <linux/shm.h>
25 #include <linux/kmsan_types.h>
26 #include <linux/mutex_types.h>
27 #include <linux/plist_types.h>
28 #include <linux/hrtimer_types.h>
29 #include <linux/timer_types.h>
30 #include <linux/seccomp_types.h>
31 #include <linux/nodemask_types.h>
32 #include <linux/refcount_types.h>
33 #include <linux/resource.h>
34 #include <linux/latencytop.h>
35 #include <linux/sched/prio.h>
36 #include <linux/sched/types.h>
37 #include <linux/signal_types.h>
38 #include <linux/spinlock.h>
39 #include <linux/syscall_user_dispatch_types.h>
40 #include <linux/mm_types_task.h>
41 #include <linux/netdevice_xmit.h>
42 #include <linux/task_io_accounting.h>
43 #include <linux/posix-timers_types.h>
44 #include <linux/restart_block.h>
45 #include <linux/rseq_types.h>
46 #include <linux/seqlock_types.h>
47 #include <linux/kcsan.h>
48 #include <linux/rv.h>
49 #include <linux/uidgid_types.h>
50 #include <linux/tracepoint-defs.h>
51 #include <linux/unwind_deferred_types.h>
52 #include <asm/kmap_size.h>
53 #include <linux/time64.h>
54 #ifndef COMPILE_OFFSETS
55 #include <generated/rq-offsets.h>
56 #endif
57 
58 /* task_struct member predeclarations (sorted alphabetically): */
59 struct audit_context;
60 struct bio_list;
61 struct blk_plug;
62 struct bpf_local_storage;
63 struct bpf_run_ctx;
64 struct bpf_net_context;
65 struct capture_control;
66 struct cfs_rq;
67 struct fs_struct;
68 struct io_context;
69 struct io_uring_task;
70 struct mempolicy;
71 struct nameidata;
72 struct nsproxy;
73 struct perf_event_context;
74 struct perf_ctx_data;
75 struct pid_namespace;
76 struct pipe_inode_info;
77 struct rcu_node;
78 struct reclaim_state;
79 struct root_domain;
80 struct rq;
81 struct sched_attr;
82 struct sched_dl_entity;
83 struct seq_file;
84 struct sighand_struct;
85 struct signal_struct;
86 struct task_delay_info;
87 struct task_exec_state;
88 struct task_group;
89 struct task_struct;
90 struct timespec64;
91 struct user_event_mm;
92 
93 #include <linux/sched/ext.h>
94 
95 /*
96  * Task state bitmask. NOTE! These bits are also
97  * encoded in fs/proc/array.c: get_task_state().
98  *
99  * We have two separate sets of flags: task->__state
100  * is about runnability, while task->exit_state are
101  * about the task exiting. Confusing, but this way
102  * modifying one set can't modify the other one by
103  * mistake.
104  */
105 
106 /* Used in tsk->__state: */
107 #define TASK_RUNNING			0x00000000
108 #define TASK_INTERRUPTIBLE		0x00000001
109 #define TASK_UNINTERRUPTIBLE		0x00000002
110 #define __TASK_STOPPED			0x00000004
111 #define __TASK_TRACED			0x00000008
112 /* Used in tsk->exit_state: */
113 #define EXIT_DEAD			0x00000010
114 #define EXIT_ZOMBIE			0x00000020
115 #define EXIT_TRACE			(EXIT_ZOMBIE | EXIT_DEAD)
116 /* Used in tsk->__state again: */
117 #define TASK_PARKED			0x00000040
118 #define TASK_DEAD			0x00000080
119 #define TASK_WAKEKILL			0x00000100
120 #define TASK_WAKING			0x00000200
121 #define TASK_NOLOAD			0x00000400
122 #define TASK_NEW			0x00000800
123 #define TASK_RTLOCK_WAIT		0x00001000
124 #define TASK_FREEZABLE			0x00002000
125 #define __TASK_FREEZABLE_UNSAFE	       (0x00004000 * IS_ENABLED(CONFIG_LOCKDEP))
126 #define TASK_FROZEN			0x00008000
127 #define TASK_STATE_MAX			0x00010000
128 
129 #define TASK_ANY			(TASK_STATE_MAX-1)
130 
131 /*
132  * DO NOT ADD ANY NEW USERS !
133  */
134 #define TASK_FREEZABLE_UNSAFE		(TASK_FREEZABLE | __TASK_FREEZABLE_UNSAFE)
135 
136 /* Convenience macros for the sake of set_current_state: */
137 #define TASK_KILLABLE			(TASK_WAKEKILL | TASK_UNINTERRUPTIBLE)
138 #define TASK_STOPPED			(TASK_WAKEKILL | __TASK_STOPPED)
139 #define TASK_TRACED			__TASK_TRACED
140 
141 #define TASK_IDLE			(TASK_UNINTERRUPTIBLE | TASK_NOLOAD)
142 
143 /* Convenience macros for the sake of wake_up(): */
144 #define TASK_NORMAL			(TASK_INTERRUPTIBLE | TASK_UNINTERRUPTIBLE)
145 
146 /* get_task_state(): */
147 #define TASK_REPORT			(TASK_RUNNING | TASK_INTERRUPTIBLE | \
148 					 TASK_UNINTERRUPTIBLE | __TASK_STOPPED | \
149 					 __TASK_TRACED | EXIT_DEAD | EXIT_ZOMBIE | \
150 					 TASK_PARKED)
151 
152 #define task_is_running(task)		(READ_ONCE((task)->__state) == TASK_RUNNING)
153 
154 #define task_is_traced(task)		((READ_ONCE(task->jobctl) & JOBCTL_TRACED) != 0)
155 #define task_is_stopped(task)		((READ_ONCE(task->jobctl) & JOBCTL_STOPPED) != 0)
156 #define task_is_stopped_or_traced(task)	((READ_ONCE(task->jobctl) & (JOBCTL_STOPPED | JOBCTL_TRACED)) != 0)
157 
158 /*
159  * Special states are those that do not use the normal wait-loop pattern. See
160  * the comment with set_special_state().
161  */
162 #define is_special_task_state(state)					\
163 	((state) & (__TASK_STOPPED | __TASK_TRACED | TASK_PARKED |	\
164 		    TASK_DEAD | TASK_WAKING | TASK_FROZEN))
165 
166 #ifdef CONFIG_DEBUG_ATOMIC_SLEEP
167 # define debug_normal_state_change(state_value)				\
168 	do {								\
169 		WARN_ON_ONCE(is_special_task_state(state_value));	\
170 		current->task_state_change = _THIS_IP_;			\
171 	} while (0)
172 
173 # define debug_special_state_change(state_value)			\
174 	do {								\
175 		WARN_ON_ONCE(!is_special_task_state(state_value));	\
176 		current->task_state_change = _THIS_IP_;			\
177 	} while (0)
178 
179 # define debug_rtlock_wait_set_state()					\
180 	do {								 \
181 		current->saved_state_change = current->task_state_change;\
182 		current->task_state_change = _THIS_IP_;			 \
183 	} while (0)
184 
185 # define debug_rtlock_wait_restore_state()				\
186 	do {								 \
187 		current->task_state_change = current->saved_state_change;\
188 	} while (0)
189 
190 #else
191 # define debug_normal_state_change(cond)	do { } while (0)
192 # define debug_special_state_change(cond)	do { } while (0)
193 # define debug_rtlock_wait_set_state()		do { } while (0)
194 # define debug_rtlock_wait_restore_state()	do { } while (0)
195 #endif
196 
197 #define trace_set_current_state(state_value)                     \
198 	do {                                                     \
199 		if (tracepoint_enabled(sched_set_state_tp))      \
200 			__trace_set_current_state(state_value); \
201 	} while (0)
202 
203 /*
204  * set_current_state() includes a barrier so that the write of current->__state
205  * is correctly serialised wrt the caller's subsequent test of whether to
206  * actually sleep:
207  *
208  *   for (;;) {
209  *	set_current_state(TASK_UNINTERRUPTIBLE);
210  *	if (CONDITION)
211  *	   break;
212  *
213  *	schedule();
214  *   }
215  *   __set_current_state(TASK_RUNNING);
216  *
217  * If the caller does not need such serialisation (because, for instance, the
218  * CONDITION test and condition change and wakeup are under the same lock) then
219  * use __set_current_state().
220  *
221  * The above is typically ordered against the wakeup, which does:
222  *
223  *   CONDITION = 1;
224  *   wake_up_state(p, TASK_UNINTERRUPTIBLE);
225  *
226  * where wake_up_state()/try_to_wake_up() executes a full memory barrier before
227  * accessing p->__state.
228  *
229  * Wakeup will do: if (@state & p->__state) p->__state = TASK_RUNNING, that is,
230  * once it observes the TASK_UNINTERRUPTIBLE store the waking CPU can issue a
231  * TASK_RUNNING store which can collide with __set_current_state(TASK_RUNNING).
232  *
233  * However, with slightly different timing the wakeup TASK_RUNNING store can
234  * also collide with the TASK_UNINTERRUPTIBLE store. Losing that store is not
235  * a problem either because that will result in one extra go around the loop
236  * and our @cond test will save the day.
237  *
238  * Also see the comments of try_to_wake_up().
239  */
240 #define __set_current_state(state_value)				\
241 	do {								\
242 		debug_normal_state_change((state_value));		\
243 		trace_set_current_state(state_value);			\
244 		WRITE_ONCE(current->__state, (state_value));		\
245 	} while (0)
246 
247 #define set_current_state(state_value)					\
248 	do {								\
249 		debug_normal_state_change((state_value));		\
250 		trace_set_current_state(state_value);			\
251 		smp_store_mb(current->__state, (state_value));		\
252 	} while (0)
253 
254 /*
255  * set_special_state() should be used for those states when the blocking task
256  * can not use the regular condition based wait-loop. In that case we must
257  * serialize against wakeups such that any possible in-flight TASK_RUNNING
258  * stores will not collide with our state change.
259  */
260 #define set_special_state(state_value)					\
261 	do {								\
262 		unsigned long flags; /* may shadow */			\
263 									\
264 		raw_spin_lock_irqsave(&current->pi_lock, flags);	\
265 		debug_special_state_change((state_value));		\
266 		trace_set_current_state(state_value);			\
267 		WRITE_ONCE(current->__state, (state_value));		\
268 		raw_spin_unlock_irqrestore(&current->pi_lock, flags);	\
269 	} while (0)
270 
271 /*
272  * PREEMPT_RT specific variants for "sleeping" spin/rwlocks
273  *
274  * RT's spin/rwlock substitutions are state preserving. The state of the
275  * task when blocking on the lock is saved in task_struct::saved_state and
276  * restored after the lock has been acquired.  These operations are
277  * serialized by task_struct::pi_lock against try_to_wake_up(). Any non RT
278  * lock related wakeups while the task is blocked on the lock are
279  * redirected to operate on task_struct::saved_state to ensure that these
280  * are not dropped. On restore task_struct::saved_state is set to
281  * TASK_RUNNING so any wakeup attempt redirected to saved_state will fail.
282  *
283  * The lock operation looks like this:
284  *
285  *	current_save_and_set_rtlock_wait_state();
286  *	for (;;) {
287  *		if (try_lock())
288  *			break;
289  *		raw_spin_unlock_irq(&lock->wait_lock);
290  *		schedule_rtlock();
291  *		raw_spin_lock_irq(&lock->wait_lock);
292  *		set_current_state(TASK_RTLOCK_WAIT);
293  *	}
294  *	current_restore_rtlock_saved_state();
295  */
296 #define current_save_and_set_rtlock_wait_state()			\
297 	do {								\
298 		lockdep_assert_irqs_disabled();				\
299 		raw_spin_lock(&current->pi_lock);			\
300 		current->saved_state = current->__state;		\
301 		debug_rtlock_wait_set_state();				\
302 		trace_set_current_state(TASK_RTLOCK_WAIT);		\
303 		WRITE_ONCE(current->__state, TASK_RTLOCK_WAIT);		\
304 		raw_spin_unlock(&current->pi_lock);			\
305 	} while (0);
306 
307 #define current_restore_rtlock_saved_state()				\
308 	do {								\
309 		lockdep_assert_irqs_disabled();				\
310 		raw_spin_lock(&current->pi_lock);			\
311 		debug_rtlock_wait_restore_state();			\
312 		trace_set_current_state(current->saved_state);		\
313 		WRITE_ONCE(current->__state, current->saved_state);	\
314 		current->saved_state = TASK_RUNNING;			\
315 		raw_spin_unlock(&current->pi_lock);			\
316 	} while (0);
317 
318 #define get_current_state()	READ_ONCE(current->__state)
319 
320 /*
321  * Define the task command name length as enum, then it can be visible to
322  * BPF programs.
323  */
324 enum {
325 	TASK_COMM_LEN = 16,
326 };
327 
328 extern void sched_tick(void);
329 
330 #define	MAX_SCHEDULE_TIMEOUT		LONG_MAX
331 
332 extern long schedule_timeout(long timeout);
333 extern long schedule_timeout_interruptible(long timeout);
334 extern long schedule_timeout_killable(long timeout);
335 extern long schedule_timeout_uninterruptible(long timeout);
336 extern long schedule_timeout_idle(long timeout);
337 asmlinkage void schedule(void);
338 extern void schedule_preempt_disabled(void);
339 asmlinkage void preempt_schedule_irq(void);
340 #ifdef CONFIG_PREEMPT_RT
341  extern void schedule_rtlock(void);
342 #endif
343 
344 extern int __must_check io_schedule_prepare(void);
345 extern void io_schedule_finish(int token);
346 extern long io_schedule_timeout(long timeout);
347 extern void io_schedule(void);
348 
349 /* wrapper functions to trace from this header file */
350 DECLARE_TRACEPOINT(sched_set_state_tp);
351 extern void __trace_set_current_state(int state_value);
352 DECLARE_TRACEPOINT(sched_set_need_resched_tp);
353 extern void __trace_set_need_resched(struct task_struct *curr, int tif);
354 
355 /**
356  * struct prev_cputime - snapshot of system and user cputime
357  * @utime: time spent in user mode
358  * @stime: time spent in system mode
359  * @lock: protects the above two fields
360  *
361  * Stores previous user/system time values such that we can guarantee
362  * monotonicity.
363  */
364 struct prev_cputime {
365 #ifndef CONFIG_VIRT_CPU_ACCOUNTING_NATIVE
366 	u64				utime;
367 	u64				stime;
368 	raw_spinlock_t			lock;
369 #endif
370 };
371 
372 enum vtime_state {
373 	/* Task is sleeping or running in a CPU with VTIME inactive: */
374 	VTIME_INACTIVE = 0,
375 	/* Task is idle */
376 	VTIME_IDLE,
377 	/* Task runs in kernelspace in a CPU with VTIME active: */
378 	VTIME_SYS,
379 	/* Task runs in userspace in a CPU with VTIME active: */
380 	VTIME_USER,
381 	/* Task runs as guests in a CPU with VTIME active: */
382 	VTIME_GUEST,
383 };
384 
385 struct vtime {
386 	seqcount_t		seqcount;
387 	unsigned long long	starttime;
388 	enum vtime_state	state;
389 	unsigned int		cpu;
390 	u64			utime;
391 	u64			stime;
392 	u64			gtime;
393 };
394 
395 /*
396  * Utilization clamp constraints.
397  * @UCLAMP_MIN:	Minimum utilization
398  * @UCLAMP_MAX:	Maximum utilization
399  * @UCLAMP_CNT:	Utilization clamp constraints count
400  */
401 enum uclamp_id {
402 	UCLAMP_MIN = 0,
403 	UCLAMP_MAX,
404 	UCLAMP_CNT
405 };
406 
407 extern struct root_domain def_root_domain;
408 extern struct mutex sched_domains_mutex;
409 extern void sched_domains_mutex_lock(void);
410 extern void sched_domains_mutex_unlock(void);
411 
412 struct sched_param {
413 	int sched_priority;
414 };
415 
416 struct sched_info {
417 #ifdef CONFIG_SCHED_INFO
418 	/* Cumulative counters: */
419 
420 	/* # of times we have run on this CPU: */
421 	unsigned long			pcount;
422 
423 	/* Time spent waiting on a runqueue: */
424 	unsigned long long		run_delay;
425 
426 	/* Max time spent waiting on a runqueue: */
427 	unsigned long long		max_run_delay;
428 
429 	/* Min time spent waiting on a runqueue: */
430 	unsigned long long		min_run_delay;
431 
432 	/* Timestamps: */
433 
434 	/* When did we last run on a CPU? */
435 	unsigned long long		last_arrival;
436 
437 	/* When were we last queued to run? */
438 	unsigned long long		last_queued;
439 
440 	/* Timestamp of max time spent waiting on a runqueue: */
441 	struct timespec64		max_run_delay_ts;
442 
443 #endif /* CONFIG_SCHED_INFO */
444 };
445 
446 /*
447  * Integer metrics need fixed point arithmetic, e.g., sched/fair
448  * has a few: load, load_avg, util_avg, freq, and capacity.
449  *
450  * We define a basic fixed point arithmetic range, and then formalize
451  * all these metrics based on that basic range.
452  */
453 # define SCHED_FIXEDPOINT_SHIFT		10
454 # define SCHED_FIXEDPOINT_SCALE		(1L << SCHED_FIXEDPOINT_SHIFT)
455 
456 /* Increase resolution of cpu_capacity calculations */
457 # define SCHED_CAPACITY_SHIFT		SCHED_FIXEDPOINT_SHIFT
458 # define SCHED_CAPACITY_SCALE		(1L << SCHED_CAPACITY_SHIFT)
459 
460 struct load_weight {
461 	unsigned long			weight;
462 	u32				inv_weight;
463 };
464 
465 /*
466  * The load/runnable/util_avg accumulates an infinite geometric series
467  * (see __update_load_avg_cfs_rq() in kernel/sched/pelt.c).
468  *
469  * [load_avg definition]
470  *
471  *   load_avg = runnable% * scale_load_down(load)
472  *
473  * [runnable_avg definition]
474  *
475  *   runnable_avg = runnable% * SCHED_CAPACITY_SCALE
476  *
477  * [util_avg definition]
478  *
479  *   util_avg = running% * SCHED_CAPACITY_SCALE
480  *
481  * where runnable% is the time ratio that a sched_entity is runnable and
482  * running% the time ratio that a sched_entity is running.
483  *
484  * For cfs_rq, they are the aggregated values of all runnable and blocked
485  * sched_entities.
486  *
487  * The load/runnable/util_avg doesn't directly factor frequency scaling and CPU
488  * capacity scaling. The scaling is done through the rq_clock_pelt that is used
489  * for computing those signals (see update_rq_clock_pelt())
490  *
491  * N.B., the above ratios (runnable% and running%) themselves are in the
492  * range of [0, 1]. To do fixed point arithmetics, we therefore scale them
493  * to as large a range as necessary. This is for example reflected by
494  * util_avg's SCHED_CAPACITY_SCALE.
495  *
496  * [Overflow issue]
497  *
498  * The 64-bit load_sum can have 4353082796 (=2^64/47742/88761) entities
499  * with the highest load (=88761), always runnable on a single cfs_rq,
500  * and should not overflow as the number already hits PID_MAX_LIMIT.
501  *
502  * For all other cases (including 32-bit kernels), struct load_weight's
503  * weight will overflow first before we do, because:
504  *
505  *    Max(load_avg) <= Max(load.weight)
506  *
507  * Then it is the load_weight's responsibility to consider overflow
508  * issues.
509  */
510 struct sched_avg {
511 	u64				last_update_time;
512 	u64				load_sum;
513 	u64				runnable_sum;
514 	u32				util_sum;
515 	u32				period_contrib;
516 	unsigned long			load_avg;
517 	unsigned long			runnable_avg;
518 	unsigned long			util_avg;
519 	unsigned int			util_est;
520 } ____cacheline_aligned;
521 
522 /*
523  * The UTIL_AVG_UNCHANGED flag is used to synchronize util_est with util_avg
524  * updates. When a task is dequeued, its util_est should not be updated if its
525  * util_avg has not been updated in the meantime.
526  * This information is mapped into the MSB bit of util_est at dequeue time.
527  * Since max value of util_est for a task is 1024 (PELT util_avg for a task)
528  * it is safe to use MSB.
529  */
530 #define UTIL_EST_WEIGHT_SHIFT		2
531 #define UTIL_AVG_UNCHANGED		0x80000000
532 
533 struct sched_statistics {
534 #ifdef CONFIG_SCHEDSTATS
535 	u64				wait_start;
536 	u64				wait_max;
537 	u64				wait_count;
538 	u64				wait_sum;
539 	u64				iowait_count;
540 	u64				iowait_sum;
541 
542 	u64				sleep_start;
543 	u64				sleep_max;
544 	s64				sum_sleep_runtime;
545 
546 	u64				block_start;
547 	u64				block_max;
548 	s64				sum_block_runtime;
549 
550 	s64				exec_max;
551 	u64				slice_max;
552 
553 	u64				nr_migrations_cold;
554 	u64				nr_failed_migrations_affine;
555 	u64				nr_failed_migrations_running;
556 	u64				nr_failed_migrations_hot;
557 	u64				nr_forced_migrations;
558 
559 	u64				nr_wakeups;
560 	u64				nr_wakeups_sync;
561 	u64				nr_wakeups_migrate;
562 	u64				nr_wakeups_local;
563 	u64				nr_wakeups_remote;
564 	u64				nr_wakeups_affine;
565 	u64				nr_wakeups_affine_attempts;
566 	u64				nr_wakeups_passive;
567 	u64				nr_wakeups_idle;
568 
569 #ifdef CONFIG_SCHED_CORE
570 	u64				core_forceidle_sum;
571 #endif
572 #endif /* CONFIG_SCHEDSTATS */
573 } ____cacheline_aligned;
574 
575 struct sched_entity {
576 	/* For load-balancing: */
577 	struct load_weight		load;
578 	struct rb_node			run_node;
579 	u64				deadline;
580 	u64				min_vruntime;
581 	u64				min_slice;
582 	u64				max_slice;
583 
584 	struct list_head		group_node;
585 	unsigned char			on_rq;
586 	unsigned char			sched_delayed;
587 	unsigned char			rel_deadline;
588 	unsigned char			custom_slice;
589 					/* hole */
590 
591 	u64				exec_start;
592 	u64				sum_exec_runtime;
593 	u64				prev_sum_exec_runtime;
594 	u64				vruntime;
595 	/* Approximated virtual lag: */
596 	s64				vlag;
597 	/* 'Protected' deadline, to give out minimum quantums: */
598 	u64				vprot;
599 	u64				slice;
600 
601 	u64				nr_migrations;
602 
603 #ifdef CONFIG_FAIR_GROUP_SCHED
604 	int				depth;
605 	struct sched_entity		*parent;
606 	/* rq on which this entity is (to be) queued: */
607 	struct cfs_rq			*cfs_rq;
608 	/* rq "owned" by this entity/group: */
609 	struct cfs_rq			*my_q;
610 	/* cached value of my_q->h_nr_running */
611 	unsigned long			runnable_weight;
612 #endif
613 
614 	/*
615 	 * Per entity load average tracking.
616 	 *
617 	 * Put into separate cache line so it does not
618 	 * collide with read-mostly values above.
619 	 */
620 	struct sched_avg		avg;
621 };
622 
623 struct sched_rt_entity {
624 	struct list_head		run_list;
625 	unsigned long			timeout;
626 	unsigned long			watchdog_stamp;
627 	unsigned int			time_slice;
628 	unsigned short			on_rq;
629 	unsigned short			on_list;
630 
631 	struct sched_rt_entity		*back;
632 #ifdef CONFIG_RT_GROUP_SCHED
633 	struct sched_rt_entity		*parent;
634 	/* rq on which this entity is (to be) queued: */
635 	struct rt_rq			*rt_rq;
636 	/* rq "owned" by this entity/group: */
637 	struct rt_rq			*my_q;
638 #endif
639 } __randomize_layout;
640 
641 struct rq_flags;
642 typedef struct task_struct *(*dl_server_pick_f)(struct sched_dl_entity *, struct rq_flags *rf);
643 
644 struct sched_dl_entity {
645 	struct rb_node			rb_node;
646 
647 	/*
648 	 * Original scheduling parameters. Copied here from sched_attr
649 	 * during sched_setattr(), they will remain the same until
650 	 * the next sched_setattr().
651 	 */
652 	u64				dl_runtime;	/* Maximum runtime for each instance	*/
653 	u64				dl_deadline;	/* Relative deadline of each instance	*/
654 	u64				dl_period;	/* Separation of two instances (period) */
655 	u64				dl_bw;		/* dl_runtime / dl_period		*/
656 	u64				dl_density;	/* dl_runtime / dl_deadline		*/
657 
658 	/*
659 	 * Actual scheduling parameters. Initialized with the values above,
660 	 * they are continuously updated during task execution. Note that
661 	 * the remaining runtime could be < 0 in case we are in overrun.
662 	 */
663 	s64				runtime;	/* Remaining runtime for this instance	*/
664 	u64				deadline;	/* Absolute deadline for this instance	*/
665 	unsigned int			flags;		/* Specifying the scheduler behaviour	*/
666 
667 	/*
668 	 * Some bool flags:
669 	 *
670 	 * @dl_throttled tells if we exhausted the runtime. If so, the
671 	 * task has to wait for a replenishment to be performed at the
672 	 * next firing of dl_timer.
673 	 *
674 	 * @dl_yielded tells if task gave up the CPU before consuming
675 	 * all its available runtime during the last job.
676 	 *
677 	 * @dl_non_contending tells if the task is inactive while still
678 	 * contributing to the active utilization. In other words, it
679 	 * indicates if the inactive timer has been armed and its handler
680 	 * has not been executed yet. This flag is useful to avoid race
681 	 * conditions between the inactive timer handler and the wakeup
682 	 * code.
683 	 *
684 	 * @dl_overrun tells if the task asked to be informed about runtime
685 	 * overruns.
686 	 *
687 	 * @dl_server tells if this is a server entity.
688 	 *
689 	 * @dl_server_active tells if the dlserver is active(started).
690 	 * dlserver is started on first cfs enqueue on an idle runqueue
691 	 * and is stopped when a dequeue results in 0 cfs tasks on the
692 	 * runqueue. In other words, dlserver is active only when cpu's
693 	 * runqueue has atleast one cfs task.
694 	 *
695 	 * @dl_defer tells if this is a deferred or regular server. For
696 	 * now only defer server exists.
697 	 *
698 	 * @dl_defer_armed tells if the deferrable server is waiting
699 	 * for the replenishment timer to activate it.
700 	 *
701 	 * @dl_defer_running tells if the deferrable server is actually
702 	 * running, skipping the defer phase.
703 	 *
704 	 * @dl_defer_idle tracks idle state
705 	 *
706 	 * @dl_bw_attached tells if this server's bandwidth currently
707 	 * contributes to the root domain's total_bw. Only meaningful for server
708 	 * entities (@dl_server == 1). Allows toggling the reservation on/off
709 	 * without losing the configured @dl_runtime/@dl_period.
710 	 */
711 	unsigned int			dl_throttled      : 1;
712 	unsigned int			dl_yielded        : 1;
713 	unsigned int			dl_non_contending : 1;
714 	unsigned int			dl_overrun	  : 1;
715 	unsigned int			dl_server         : 1;
716 	unsigned int			dl_server_active  : 1;
717 	unsigned int			dl_defer	  : 1;
718 	unsigned int			dl_defer_armed	  : 1;
719 	unsigned int			dl_defer_running  : 1;
720 	unsigned int			dl_defer_idle     : 1;
721 	unsigned int			dl_bw_attached    : 1;
722 
723 	/*
724 	 * Bandwidth enforcement timer. Each -deadline task has its
725 	 * own bandwidth to be enforced, thus we need one timer per task.
726 	 */
727 	struct hrtimer			dl_timer;
728 
729 	/*
730 	 * Inactive timer, responsible for decreasing the active utilization
731 	 * at the "0-lag time". When a -deadline task blocks, it contributes
732 	 * to GRUB's active utilization until the "0-lag time", hence a
733 	 * timer is needed to decrease the active utilization at the correct
734 	 * time.
735 	 */
736 	struct hrtimer			inactive_timer;
737 
738 	/*
739 	 * Bits for DL-server functionality. Also see the comment near
740 	 * dl_server_update().
741 	 *
742 	 * @rq the runqueue this server is for
743 	 */
744 	struct rq			*rq;
745 	dl_server_pick_f		server_pick_task;
746 
747 #ifdef CONFIG_RT_MUTEXES
748 	/*
749 	 * Priority Inheritance. When a DEADLINE scheduling entity is boosted
750 	 * pi_se points to the donor, otherwise points to the dl_se it belongs
751 	 * to (the original one/itself).
752 	 */
753 	struct sched_dl_entity *pi_se;
754 #endif
755 };
756 
757 #ifdef CONFIG_UCLAMP_TASK
758 /* Number of utilization clamp buckets (shorter alias) */
759 #define UCLAMP_BUCKETS CONFIG_UCLAMP_BUCKETS_COUNT
760 
761 /*
762  * Utilization clamp for a scheduling entity
763  * @value:		clamp value "assigned" to a se
764  * @bucket_id:		bucket index corresponding to the "assigned" value
765  * @active:		the se is currently refcounted in a rq's bucket
766  * @user_defined:	the requested clamp value comes from user-space
767  *
768  * The bucket_id is the index of the clamp bucket matching the clamp value
769  * which is pre-computed and stored to avoid expensive integer divisions from
770  * the fast path.
771  *
772  * The active bit is set whenever a task has got an "effective" value assigned,
773  * which can be different from the clamp value "requested" from user-space.
774  * This allows to know a task is refcounted in the rq's bucket corresponding
775  * to the "effective" bucket_id.
776  *
777  * The user_defined bit is set whenever a task has got a task-specific clamp
778  * value requested from userspace, i.e. the system defaults apply to this task
779  * just as a restriction. This allows to relax default clamps when a less
780  * restrictive task-specific value has been requested, thus allowing to
781  * implement a "nice" semantic. For example, a task running with a 20%
782  * default boost can still drop its own boosting to 0%.
783  */
784 struct uclamp_se {
785 	unsigned int value		: bits_per(SCHED_CAPACITY_SCALE);
786 	unsigned int bucket_id		: bits_per(UCLAMP_BUCKETS);
787 	unsigned int active		: 1;
788 	unsigned int user_defined	: 1;
789 };
790 #endif /* CONFIG_UCLAMP_TASK */
791 
792 union rcu_special {
793 	struct {
794 		u8			blocked;
795 		u8			need_qs;
796 		u8			exp_hint; /* Hint for performance. */
797 		u8			need_mb; /* Readers need smp_mb(). */
798 	} b; /* Bits. */
799 	u32 s; /* Set of bits. */
800 };
801 
802 enum perf_event_task_context {
803 	perf_invalid_context = -1,
804 	perf_hw_context = 0,
805 	perf_sw_context,
806 	perf_nr_task_contexts,
807 };
808 
809 /*
810  * Number of contexts where an event can trigger:
811  *      task, softirq, hardirq, nmi.
812  */
813 #define PERF_NR_CONTEXTS	4
814 
815 struct wake_q_node {
816 	struct wake_q_node *next;
817 };
818 
819 struct kmap_ctrl {
820 #ifdef CONFIG_KMAP_LOCAL
821 	int				idx;
822 	pte_t				pteval[KM_MAX_IDX];
823 #endif
824 };
825 
826 struct task_struct {
827 #ifdef CONFIG_THREAD_INFO_IN_TASK
828 	/*
829 	 * For reasons of header soup (see current_thread_info()), this
830 	 * must be the first element of task_struct.
831 	 */
832 	struct thread_info		thread_info;
833 #endif
834 	unsigned int			__state;
835 
836 	/* saved state for "spinlock sleepers" */
837 	unsigned int			saved_state;
838 
839 	/*
840 	 * This begins the randomizable portion of task_struct. Only
841 	 * scheduling-critical items should be added above here.
842 	 */
843 	randomized_struct_fields_start
844 
845 	void				*stack;
846 	refcount_t			usage;
847 	/* Per task flags (PF_*), defined further below: */
848 	unsigned int			flags;
849 	unsigned int			ptrace;
850 
851 #ifdef CONFIG_MEM_ALLOC_PROFILING
852 	struct alloc_tag		*alloc_tag;
853 #endif
854 
855 	u8				on_cpu;
856 	u8				on_rq;
857 	u8				is_blocked;
858 	u8				__pad;
859 
860 	struct __call_single_node	wake_entry;
861 	unsigned int			wakee_flips;
862 	unsigned long			wakee_flip_decay_ts;
863 	struct task_struct		*last_wakee;
864 
865 	/*
866 	 * recent_used_cpu is initially set as the last CPU used by a task
867 	 * that wakes affine another task. Waker/wakee relationships can
868 	 * push tasks around a CPU where each wakeup moves to the next one.
869 	 * Tracking a recently used CPU allows a quick search for a recently
870 	 * used CPU that may be idle.
871 	 */
872 	int				recent_used_cpu;
873 	int				wake_cpu;
874 
875 	int				prio;
876 	int				static_prio;
877 	int				normal_prio;
878 	unsigned int			rt_priority;
879 
880 	struct sched_entity		se;
881 	struct sched_rt_entity		rt;
882 	struct sched_dl_entity		dl;
883 	struct sched_dl_entity		*dl_server;
884 #ifdef CONFIG_SCHED_CLASS_EXT
885 	struct sched_ext_entity		scx;
886 #endif
887 	const struct sched_class	*sched_class;
888 
889 #ifdef CONFIG_SCHED_CORE
890 	struct rb_node			core_node;
891 	unsigned long			core_cookie;
892 	unsigned int			core_occupation;
893 #endif
894 
895 #ifdef CONFIG_CGROUP_SCHED
896 	struct task_group		*sched_task_group;
897 #ifdef CONFIG_CFS_BANDWIDTH
898 	struct callback_head		sched_throttle_work;
899 	struct list_head		throttle_node;
900 	bool				throttled;
901 #endif
902 #endif
903 
904 
905 #ifdef CONFIG_UCLAMP_TASK
906 	/*
907 	 * Clamp values requested for a scheduling entity.
908 	 * Must be updated with task_rq_lock() held.
909 	 */
910 	struct uclamp_se		uclamp_req[UCLAMP_CNT];
911 	/*
912 	 * Effective clamp values used for a scheduling entity.
913 	 * Must be updated with task_rq_lock() held.
914 	 */
915 	struct uclamp_se		uclamp[UCLAMP_CNT];
916 #endif
917 
918 	struct sched_statistics         stats;
919 
920 #ifdef CONFIG_PREEMPT_NOTIFIERS
921 	/* List of struct preempt_notifier: */
922 	struct hlist_head		preempt_notifiers;
923 #endif
924 
925 #ifdef CONFIG_BLK_DEV_IO_TRACE
926 	unsigned int			btrace_seq;
927 #endif
928 
929 	unsigned int			policy;
930 	unsigned long			max_allowed_capacity;
931 	int				nr_cpus_allowed;
932 	const cpumask_t			*cpus_ptr;
933 	cpumask_t			*user_cpus_ptr;
934 	cpumask_t			cpus_mask;
935 	void				*migration_pending;
936 	unsigned short			migration_disabled;
937 	unsigned short			migration_flags;
938 
939 #ifdef CONFIG_PREEMPT_RCU
940 	int				rcu_read_lock_nesting;
941 	union rcu_special		rcu_read_unlock_special;
942 	struct list_head		rcu_node_entry;
943 	struct rcu_node			*rcu_blocked_node;
944 #endif /* #ifdef CONFIG_PREEMPT_RCU */
945 
946 #ifdef CONFIG_TASKS_RCU
947 	unsigned long			rcu_tasks_nvcsw;
948 	u8				rcu_tasks_holdout;
949 	u8				rcu_tasks_idx;
950 	int				rcu_tasks_idle_cpu;
951 	struct list_head		rcu_tasks_holdout_list;
952 	int				rcu_tasks_exit_cpu;
953 	struct list_head		rcu_tasks_exit_list;
954 #endif /* #ifdef CONFIG_TASKS_RCU */
955 
956 #ifdef CONFIG_TASKS_TRACE_RCU
957 	int				trc_reader_nesting;
958 	struct srcu_ctr __percpu	*trc_reader_scp;
959 #endif /* #ifdef CONFIG_TASKS_TRACE_RCU */
960 
961 #ifdef CONFIG_TRIVIAL_PREEMPT_RCU
962 	int				rcu_trivial_preempt_nesting;
963 #endif /* #ifdef CONFIG_TRIVIAL_PREEMPT_RCU */
964 
965 	struct sched_info		sched_info;
966 
967 	struct list_head		tasks;
968 	struct plist_node		pushable_tasks;
969 	struct rb_node			pushable_dl_tasks;
970 
971 	struct mm_struct		*mm;
972 	struct mm_struct		*active_mm;
973 
974 	struct task_exec_state __rcu	*exec_state;
975 
976 	int				exit_state;
977 	int				exit_code;
978 	int				exit_signal;
979 	/* The signal sent when the parent dies: */
980 	int				pdeath_signal;
981 	/* JOBCTL_*, siglock protected: */
982 	unsigned long			jobctl;
983 
984 	/* Used for emulating ABI behavior of previous Linux versions: */
985 	unsigned int			personality;
986 
987 	/* Scheduler bits, serialized by scheduler locks: */
988 	unsigned			sched_reset_on_fork:1;
989 	unsigned			sched_contributes_to_load:1;
990 	unsigned			sched_migrated:1;
991 	unsigned			sched_task_hot:1;
992 
993 	/* Force alignment to the next boundary: */
994 	unsigned			:0;
995 
996 	/* Unserialized, strictly 'current' */
997 
998 	/*
999 	 * This field must not be in the scheduler word above due to wakelist
1000 	 * queueing no longer being serialized by p->on_cpu. However:
1001 	 *
1002 	 * p->XXX = X;			ttwu()
1003 	 * schedule()			  if (p->on_rq && ..) // false
1004 	 *   smp_mb__after_spinlock();	  if (smp_load_acquire(&p->on_cpu) && //true
1005 	 *   deactivate_task()		      ttwu_queue_wakelist())
1006 	 *     p->on_rq = 0;			p->sched_remote_wakeup = Y;
1007 	 *
1008 	 * guarantees all stores of 'current' are visible before
1009 	 * ->sched_remote_wakeup gets used, so it can be in this word.
1010 	 */
1011 	unsigned			sched_remote_wakeup:1;
1012 #ifdef CONFIG_RT_MUTEXES
1013 	unsigned			sched_rt_mutex:1;
1014 #endif
1015 
1016 	/* Bit to tell TOMOYO we're in execve(): */
1017 	unsigned			in_execve:1;
1018 	unsigned			in_iowait:1;
1019 #ifndef TIF_RESTORE_SIGMASK
1020 	unsigned			restore_sigmask:1;
1021 #endif
1022 #ifdef CONFIG_MEMCG_V1
1023 	unsigned			in_user_fault:1;
1024 #endif
1025 #ifdef CONFIG_LRU_GEN
1026 	/* whether the LRU algorithm may apply to this access */
1027 	unsigned			in_lru_fault:1;
1028 #endif
1029 #ifdef CONFIG_COMPAT_BRK
1030 	unsigned			brk_randomized:1;
1031 #endif
1032 #ifdef CONFIG_CGROUPS
1033 	/* disallow userland-initiated cgroup migration */
1034 	unsigned			no_cgroup_migration:1;
1035 	/* task is frozen/stopped (used by the cgroup freezer) */
1036 	unsigned			frozen:1;
1037 #endif
1038 #ifdef CONFIG_BLK_CGROUP
1039 	unsigned			use_memdelay:1;
1040 #endif
1041 #ifdef CONFIG_PSI
1042 	/* Stalled due to lack of memory */
1043 	unsigned			in_memstall:1;
1044 #endif
1045 #ifdef CONFIG_PAGE_OWNER
1046 	/* Used by page_owner=on to detect recursion in page tracking. */
1047 	unsigned			in_page_owner:1;
1048 #endif
1049 #ifdef CONFIG_EVENTFD
1050 	/* Recursion prevention for eventfd_signal() */
1051 	unsigned			in_eventfd:1;
1052 #endif
1053 #ifdef CONFIG_ARCH_HAS_CPU_PASID
1054 	unsigned			pasid_activated:1;
1055 #endif
1056 #ifdef CONFIG_X86_BUS_LOCK_DETECT
1057 	unsigned			reported_split_lock:1;
1058 #endif
1059 #ifdef CONFIG_TASK_DELAY_ACCT
1060 	/* delay due to memory thrashing */
1061 	unsigned                        in_thrashing:1;
1062 #endif
1063 	unsigned			in_nf_duplicate:1;
1064 #ifdef CONFIG_PREEMPT_RT
1065 	struct netdev_xmit		net_xmit;
1066 #endif
1067 	unsigned long			atomic_flags; /* Flags requiring atomic access. */
1068 
1069 	struct restart_block		restart_block;
1070 
1071 	pid_t				pid;
1072 	pid_t				tgid;
1073 
1074 #ifdef CONFIG_STACKPROTECTOR
1075 	/* Canary value for the -fstack-protector GCC feature: */
1076 	unsigned long			stack_canary;
1077 #endif
1078 	/*
1079 	 * Pointers to the (original) parent process, youngest child, younger sibling,
1080 	 * older sibling, respectively.  (p->father can be replaced with
1081 	 * p->real_parent->pid)
1082 	 */
1083 
1084 	/* Real parent process: */
1085 	struct task_struct __rcu	*real_parent;
1086 
1087 	/* Recipient of SIGCHLD, wait4() reports: */
1088 	struct task_struct __rcu	*parent;
1089 
1090 	/*
1091 	 * Children/sibling form the list of natural children:
1092 	 */
1093 	struct list_head		children;
1094 	struct list_head		sibling;
1095 	struct task_struct		*group_leader;
1096 
1097 	/*
1098 	 * 'ptraced' is the list of tasks this task is using ptrace() on.
1099 	 *
1100 	 * This includes both natural children and PTRACE_ATTACH targets.
1101 	 * 'ptrace_entry' is this task's link on the p->parent->ptraced list.
1102 	 */
1103 	struct list_head		ptraced;
1104 	struct list_head		ptrace_entry;
1105 
1106 	/* PID/PID hash table linkage. */
1107 	struct pid			*thread_pid;
1108 	struct hlist_node		pid_links[PIDTYPE_MAX];
1109 	struct list_head		thread_node;
1110 
1111 	struct completion		*vfork_done;
1112 
1113 	/* CLONE_CHILD_SETTID: */
1114 	int __user			*set_child_tid;
1115 
1116 	/* CLONE_CHILD_CLEARTID: */
1117 	int __user			*clear_child_tid;
1118 
1119 	/* PF_KTHREAD | PF_IO_WORKER */
1120 	void				*worker_private;
1121 
1122 	u64				utime;
1123 	u64				stime;
1124 #ifdef CONFIG_ARCH_HAS_SCALED_CPUTIME
1125 	u64				utimescaled;
1126 	u64				stimescaled;
1127 #endif
1128 	u64				gtime;
1129 	struct prev_cputime		prev_cputime;
1130 #ifdef CONFIG_VIRT_CPU_ACCOUNTING_GEN
1131 	struct vtime			vtime;
1132 #endif
1133 
1134 #ifdef CONFIG_NO_HZ_FULL
1135 	atomic_t			tick_dep_mask;
1136 #endif
1137 	/* Context switch counts: */
1138 	unsigned long			nvcsw;
1139 	unsigned long			nivcsw;
1140 
1141 	/* Monotonic time in nsecs: */
1142 	u64				start_time;
1143 
1144 	/* Boot based time in nsecs: */
1145 	u64				start_boottime;
1146 
1147 	/* MM fault and swap info: this can arguably be seen as either mm-specific or thread-specific: */
1148 	unsigned long			min_flt;
1149 	unsigned long			maj_flt;
1150 
1151 	/* Empty if CONFIG_POSIX_CPUTIMERS=n */
1152 	struct posix_cputimers		posix_cputimers;
1153 
1154 #ifdef CONFIG_POSIX_CPU_TIMERS_TASK_WORK
1155 	struct posix_cputimers_work	posix_cputimers_work;
1156 #endif
1157 
1158 	/* Process credentials: */
1159 
1160 	/* Tracer's credentials at attach: */
1161 	const struct cred __rcu		*ptracer_cred;
1162 
1163 	/* Objective and real subjective task credentials (COW): */
1164 	const struct cred __rcu		*real_cred;
1165 
1166 	/* Effective (overridable) subjective task credentials (COW): */
1167 	const struct cred __rcu		*cred;
1168 
1169 #ifdef CONFIG_KEYS
1170 	/* Cached requested key. */
1171 	struct key			*cached_requested_key;
1172 #endif
1173 
1174 	/*
1175 	 * executable name, excluding path.
1176 	 *
1177 	 * - normally initialized by begin_new_exec()
1178 	 * - set it with set_task_comm() to ensure it is always
1179 	 *   NUL-terminated and zero-padded
1180 	 */
1181 	char				comm[TASK_COMM_LEN];
1182 
1183 	struct nameidata		*nameidata;
1184 
1185 #ifdef CONFIG_SYSVIPC
1186 	struct sysv_sem			sysvsem;
1187 	struct sysv_shm			sysvshm;
1188 #endif
1189 #ifdef CONFIG_DETECT_HUNG_TASK
1190 	unsigned long			last_switch_count;
1191 	unsigned long			last_switch_time;
1192 #endif
1193 	/* Filesystem information: */
1194 	struct fs_struct		*fs;
1195 
1196 	/* Open file information: */
1197 	struct files_struct		*files;
1198 
1199 #ifdef CONFIG_IO_URING
1200 	struct io_uring_task		*io_uring;
1201 	struct io_restriction		*io_uring_restrict;
1202 #endif
1203 
1204 	/* Namespaces: */
1205 	struct nsproxy			*nsproxy;
1206 
1207 	/* Signal handlers: */
1208 	struct signal_struct		*signal;
1209 	struct sighand_struct __rcu		*sighand;
1210 	sigset_t			blocked;
1211 	sigset_t			real_blocked;
1212 	/* Restored if set_restore_sigmask() was used: */
1213 	sigset_t			saved_sigmask;
1214 	struct sigpending		pending;
1215 	unsigned long			sas_ss_sp;
1216 	size_t				sas_ss_size;
1217 	unsigned int			sas_ss_flags;
1218 
1219 	struct callback_head		*task_works;
1220 
1221 #ifdef CONFIG_AUDIT
1222 #ifdef CONFIG_AUDITSYSCALL
1223 	struct audit_context		*audit_context;
1224 #endif
1225 	kuid_t				loginuid;
1226 	unsigned int			sessionid;
1227 #endif
1228 	struct seccomp			seccomp;
1229 	struct syscall_user_dispatch	syscall_dispatch;
1230 
1231 	/* Thread group tracking: */
1232 	u64				parent_exec_id;
1233 	u64				self_exec_id;
1234 
1235 	/* Protection against (de-)allocation: mm, files, fs, tty, keyrings, mems_allowed, mempolicy: */
1236 	spinlock_t			alloc_lock;
1237 
1238 	/* Protection of the PI data structures: */
1239 	raw_spinlock_t			pi_lock;
1240 
1241 	struct wake_q_node		wake_q;
1242 
1243 #ifdef CONFIG_RT_MUTEXES
1244 	/* PI waiters blocked on a rt_mutex held by this task: */
1245 	struct rb_root_cached		pi_waiters;
1246 	/* Updated under owner's pi_lock and rq lock */
1247 	struct task_struct		*pi_top_task;
1248 	/* Deadlock detection and priority inheritance handling: */
1249 	struct rt_mutex_waiter		*pi_blocked_on;
1250 #endif
1251 
1252 	struct mutex			*blocked_on;	/* lock we're blocked on */
1253 	raw_spinlock_t			blocked_lock;
1254 
1255 	/*
1256 	 * The task that is boosting this task; a back link for the current
1257 	 * donor stack. Set in schedule() -> find_proxy_task() and only stable
1258 	 * under preempt_disable().
1259 	 */
1260 	struct task_struct		*blocked_donor;
1261 
1262 #ifdef CONFIG_DETECT_HUNG_TASK_BLOCKER
1263 	/*
1264 	 * Encoded lock address causing task block (lower 2 bits = type from
1265 	 * <linux/hung_task.h>). Accessed via hung_task_*() helpers.
1266 	 */
1267 	unsigned long			blocker;
1268 #endif
1269 
1270 #ifdef CONFIG_DEBUG_ATOMIC_SLEEP
1271 	int				non_block_count;
1272 #endif
1273 
1274 #ifdef CONFIG_TRACE_IRQFLAGS
1275 	struct irqtrace_events		irqtrace;
1276 	unsigned int			hardirq_threaded;
1277 	u64				hardirq_chain_key;
1278 	int				softirqs_enabled;
1279 	int				softirq_context;
1280 	int				irq_config;
1281 #endif
1282 #ifdef CONFIG_PREEMPT_RT
1283 	int				softirq_disable_cnt;
1284 #endif
1285 
1286 #ifdef CONFIG_LOCKDEP
1287 # define MAX_LOCK_DEPTH			48UL
1288 	u64				curr_chain_key;
1289 	int				lockdep_depth;
1290 	unsigned int			lockdep_recursion;
1291 	struct held_lock		held_locks[MAX_LOCK_DEPTH];
1292 #endif
1293 
1294 #if defined(CONFIG_UBSAN) && !defined(CONFIG_UBSAN_TRAP)
1295 	unsigned int			in_ubsan;
1296 #endif
1297 
1298 	/* Journalling filesystem info: */
1299 	void				*journal_info;
1300 
1301 	/* Stacked block device info: */
1302 	struct bio_list			*bio_list;
1303 
1304 	/* Stack plugging: */
1305 	struct blk_plug			*plug;
1306 
1307 	/* VM state: */
1308 	struct reclaim_state		*reclaim_state;
1309 
1310 	struct io_context		*io_context;
1311 
1312 #ifdef CONFIG_COMPACTION
1313 	struct capture_control		*capture_control;
1314 #endif
1315 	/* Ptrace state: */
1316 	unsigned long			ptrace_message;
1317 	kernel_siginfo_t		*last_siginfo;
1318 
1319 	struct task_io_accounting	ioac;
1320 #ifdef CONFIG_PSI
1321 	/* Pressure stall state */
1322 	unsigned int			psi_flags;
1323 #endif
1324 #ifdef CONFIG_TASK_XACCT
1325 	/* Accumulated RSS usage: */
1326 	u64				acct_rss_mem1;
1327 	/* Accumulated virtual memory usage: */
1328 	u64				acct_vm_mem1;
1329 	/* stime + utime since last update: */
1330 	u64				acct_timexpd;
1331 #endif
1332 #ifdef CONFIG_CPUSETS
1333 	/* Protected by ->alloc_lock: */
1334 	nodemask_t			mems_allowed;
1335 	/* Sequence number to catch updates: */
1336 	seqcount_spinlock_t		mems_allowed_seq;
1337 	int				cpuset_mem_spread_rotor;
1338 #endif
1339 #ifdef CONFIG_CGROUPS
1340 	/* Control Group info protected by css_set_lock: */
1341 	struct css_set __rcu		*cgroups;
1342 	/* cg_list protected by css_set_lock and tsk->alloc_lock: */
1343 	struct list_head		cg_list;
1344 #ifdef CONFIG_PREEMPT_RT
1345 	struct llist_node		cg_dead_lnode;
1346 #endif	/* CONFIG_PREEMPT_RT */
1347 #endif	/* CONFIG_CGROUPS */
1348 #ifdef CONFIG_X86_CPU_RESCTRL
1349 	u32				closid;
1350 	u32				rmid;
1351 #endif
1352 
1353 	struct futex_sched_data		futex;
1354 
1355 #ifdef CONFIG_PERF_EVENTS
1356 	u8				perf_recursion[PERF_NR_CONTEXTS];
1357 	struct perf_event_context	*perf_event_ctxp;
1358 	struct mutex			perf_event_mutex;
1359 	struct list_head		perf_event_list;
1360 	struct perf_ctx_data __rcu	*perf_ctx_data;
1361 #endif
1362 #ifdef CONFIG_DEBUG_PREEMPT
1363 	unsigned long			preempt_disable_ip;
1364 #endif
1365 #ifdef CONFIG_NUMA
1366 	/* Protected by alloc_lock: */
1367 	struct mempolicy		*mempolicy;
1368 	short				il_prev;
1369 	u8				il_weight;
1370 	short				pref_node_fork;
1371 #endif
1372 #ifdef CONFIG_NUMA_BALANCING
1373 	int				numa_scan_seq;
1374 	unsigned int			numa_scan_period;
1375 	unsigned int			numa_scan_period_max;
1376 	int				numa_preferred_nid;
1377 	unsigned long			numa_migrate_retry;
1378 	/* Migration stamp: */
1379 	u64				node_stamp;
1380 	u64				last_task_numa_placement;
1381 	u64				last_sum_exec_runtime;
1382 	struct callback_head		numa_work;
1383 
1384 	/*
1385 	 * This pointer is only modified for current in syscall and
1386 	 * pagefault context (and for tasks being destroyed), so it can be read
1387 	 * from any of the following contexts:
1388 	 *  - RCU read-side critical section
1389 	 *  - current->numa_group from everywhere
1390 	 *  - task's runqueue locked, task not running
1391 	 */
1392 	struct numa_group __rcu		*numa_group;
1393 
1394 	/*
1395 	 * numa_faults is an array split into four regions:
1396 	 * faults_memory, faults_cpu, faults_memory_buffer, faults_cpu_buffer
1397 	 * in this precise order.
1398 	 *
1399 	 * faults_memory: Exponential decaying average of faults on a per-node
1400 	 * basis. Scheduling placement decisions are made based on these
1401 	 * counts. The values remain static for the duration of a PTE scan.
1402 	 * faults_cpu: Track the nodes the process was running on when a NUMA
1403 	 * hinting fault was incurred.
1404 	 * faults_memory_buffer and faults_cpu_buffer: Record faults per node
1405 	 * during the current scan window. When the scan completes, the counts
1406 	 * in faults_memory and faults_cpu decay and these values are copied.
1407 	 */
1408 	unsigned long			*numa_faults;
1409 	unsigned long			total_numa_faults;
1410 
1411 	/*
1412 	 * numa_faults_locality tracks if faults recorded during the last
1413 	 * scan window were remote/local or failed to migrate. The task scan
1414 	 * period is adapted based on the locality of the faults with different
1415 	 * weights depending on whether they were shared or private faults
1416 	 */
1417 	unsigned long			numa_faults_locality[3];
1418 
1419 	unsigned long			numa_pages_migrated;
1420 #endif /* CONFIG_NUMA_BALANCING */
1421 
1422 #ifdef CONFIG_SCHED_CACHE
1423 	struct callback_head		cache_work;
1424 	int				preferred_llc;
1425 	/* 1: task was enqueued to its preferred LLC, 0 otherwise */
1426 	int				pref_llc_queued;
1427 #endif
1428 
1429 	struct rseq_data		rseq;
1430 	struct sched_mm_cid		mm_cid;
1431 
1432 	struct tlbflush_unmap_batch	tlb_ubc;
1433 
1434 	/* Cache last used pipe for splice(): */
1435 	struct pipe_inode_info		*splice_pipe;
1436 
1437 	struct page_frag		task_frag;
1438 
1439 #ifdef CONFIG_ARCH_HAS_LAZY_MMU_MODE
1440 	struct lazy_mmu_state		lazy_mmu_state;
1441 #endif
1442 
1443 #ifdef CONFIG_TASK_DELAY_ACCT
1444 	struct task_delay_info		*delays;
1445 #endif
1446 
1447 #ifdef CONFIG_FAULT_INJECTION
1448 	int				make_it_fail;
1449 	unsigned int			fail_nth;
1450 #endif
1451 	/*
1452 	 * When (nr_dirtied >= nr_dirtied_pause), it's time to call
1453 	 * balance_dirty_pages() for a dirty throttling pause:
1454 	 */
1455 	int				nr_dirtied;
1456 	int				nr_dirtied_pause;
1457 	/* Start of a write-and-pause period: */
1458 	unsigned long			dirty_paused_when;
1459 
1460 #ifdef CONFIG_LATENCYTOP
1461 	int				latency_record_count;
1462 	struct latency_record		latency_record[LT_SAVECOUNT];
1463 #endif
1464 	/*
1465 	 * Time slack values; these are used to round up poll() and
1466 	 * select() etc timeout values. These are in nanoseconds.
1467 	 */
1468 	u64				timer_slack_ns;
1469 	u64				default_timer_slack_ns;
1470 
1471 #if defined(CONFIG_KASAN_GENERIC) || defined(CONFIG_KASAN_SW_TAGS)
1472 	unsigned int			kasan_depth;
1473 #endif
1474 
1475 #ifdef CONFIG_KCSAN
1476 	struct kcsan_ctx		kcsan_ctx;
1477 #ifdef CONFIG_TRACE_IRQFLAGS
1478 	struct irqtrace_events		kcsan_save_irqtrace;
1479 #endif
1480 #ifdef CONFIG_KCSAN_WEAK_MEMORY
1481 	int				kcsan_stack_depth;
1482 #endif
1483 #endif
1484 
1485 #ifdef CONFIG_KMSAN
1486 	struct kmsan_ctx		kmsan_ctx;
1487 #endif
1488 
1489 #if IS_ENABLED(CONFIG_KUNIT)
1490 	struct kunit			*kunit_test;
1491 #endif
1492 
1493 #ifdef CONFIG_FUNCTION_GRAPH_TRACER
1494 	/* Index of current stored address in ret_stack: */
1495 	int				curr_ret_stack;
1496 	int				curr_ret_depth;
1497 
1498 	/* Stack of return addresses for return function tracing: */
1499 	unsigned long			*ret_stack;
1500 
1501 	/* Timestamp for last schedule: */
1502 	unsigned long long		ftrace_timestamp;
1503 	unsigned long long		ftrace_sleeptime;
1504 
1505 	/*
1506 	 * Number of functions that haven't been traced
1507 	 * because of depth overrun:
1508 	 */
1509 	atomic_t			trace_overrun;
1510 
1511 	/* Pause tracing: */
1512 	atomic_t			tracing_graph_pause;
1513 #endif
1514 
1515 #ifdef CONFIG_TRACING
1516 	/* Bitmask and counter of trace recursion: */
1517 	unsigned long			trace_recursion;
1518 #endif /* CONFIG_TRACING */
1519 
1520 #ifdef CONFIG_KCOV
1521 	/* See kernel/kcov.c for more details. */
1522 
1523 	/* Coverage collection mode enabled for this task (0 if disabled): */
1524 	unsigned int			kcov_mode;
1525 
1526 	/* Size of the kcov_area: */
1527 	unsigned int			kcov_size;
1528 
1529 	/* Buffer for coverage collection: */
1530 	void				*kcov_area;
1531 
1532 	/* KCOV descriptor wired with this task or NULL: */
1533 	struct kcov			*kcov;
1534 
1535 	/* KCOV descriptor for remote coverage collection from other tasks: */
1536 	struct kcov			*kcov_remote;
1537 
1538 	/* KCOV common handle for remote coverage collection: */
1539 	u64				kcov_handle;
1540 
1541 	/* KCOV sequence number: */
1542 	int				kcov_sequence;
1543 
1544 	/* Collect coverage from softirq context: */
1545 	unsigned int			kcov_softirq;
1546 #endif
1547 
1548 #ifdef CONFIG_MEMCG_V1
1549 	struct mem_cgroup		*memcg_in_oom;
1550 #endif
1551 
1552 #ifdef CONFIG_MEMCG
1553 	/* Number of pages to reclaim on returning to userland: */
1554 	unsigned int			memcg_nr_pages_over_high;
1555 
1556 	/* Used by memcontrol for targeted memcg charge: */
1557 	struct mem_cgroup		*active_memcg;
1558 
1559 	/* Cache for current->cgroups->memcg->nodeinfo[nid]->objcg lookups: */
1560 	struct obj_cgroup		*objcg;
1561 #endif
1562 
1563 #ifdef CONFIG_BLK_CGROUP
1564 	struct gendisk			*throttle_disk;
1565 #endif
1566 
1567 #ifdef CONFIG_UPROBES
1568 	struct uprobe_task		*utask;
1569 #endif
1570 #if defined(CONFIG_BCACHE) || defined(CONFIG_BCACHE_MODULE)
1571 	unsigned int			sequential_io;
1572 	unsigned int			sequential_io_avg;
1573 #endif
1574 	struct kmap_ctrl		kmap_ctrl;
1575 #ifdef CONFIG_DEBUG_ATOMIC_SLEEP
1576 	unsigned long			task_state_change;
1577 # ifdef CONFIG_PREEMPT_RT
1578 	unsigned long			saved_state_change;
1579 # endif
1580 #endif
1581 	struct rcu_head			rcu;
1582 	refcount_t			rcu_users;
1583 	int				pagefault_disabled;
1584 #ifdef CONFIG_MMU
1585 	struct task_struct		*oom_reaper_list;
1586 	struct timer_list		oom_reaper_timer;
1587 #endif
1588 #ifdef CONFIG_VMAP_STACK
1589 	struct vm_struct		*stack_vm_area;
1590 #endif
1591 #ifdef CONFIG_THREAD_INFO_IN_TASK
1592 	/* A live task holds one reference: */
1593 	refcount_t			stack_refcount;
1594 #endif
1595 #ifdef CONFIG_LIVEPATCH
1596 	int patch_state;
1597 #endif
1598 #ifdef CONFIG_SECURITY
1599 	/* Used by LSM modules for access restriction: */
1600 	void				*security;
1601 #endif
1602 #ifdef CONFIG_BPF_SYSCALL
1603 	/* Used by BPF task local storage */
1604 	struct bpf_local_storage __rcu	*bpf_storage;
1605 	/* Used for BPF run context */
1606 	struct bpf_run_ctx		*bpf_ctx;
1607 #endif
1608 	/* Used by BPF for per-TASK xdp storage */
1609 	struct bpf_net_context		*bpf_net_context;
1610 
1611 #ifdef CONFIG_KSTACK_ERASE
1612 	unsigned long			lowest_stack;
1613 #endif
1614 #ifdef CONFIG_KSTACK_ERASE_METRICS
1615 	unsigned long			prev_lowest_stack;
1616 #endif
1617 
1618 #ifdef CONFIG_X86_MCE
1619 	void __user			*mce_vaddr;
1620 	__u64				mce_kflags;
1621 	u64				mce_addr;
1622 	__u64				mce_ripv : 1,
1623 					mce_whole_page : 1,
1624 					__mce_reserved : 62;
1625 	struct callback_head		mce_kill_me;
1626 	int				mce_count;
1627 #endif
1628 
1629 #ifdef CONFIG_KRETPROBES
1630 	struct llist_head               kretprobe_instances;
1631 #endif
1632 #ifdef CONFIG_RETHOOK
1633 	struct llist_head               rethooks;
1634 #endif
1635 
1636 #ifdef CONFIG_ARCH_HAS_PARANOID_L1D_FLUSH
1637 	/*
1638 	 * If L1D flush is supported on mm context switch
1639 	 * then we use this callback head to queue kill work
1640 	 * to kill tasks that are not running on SMT disabled
1641 	 * cores
1642 	 */
1643 	struct callback_head		l1d_flush_kill;
1644 #endif
1645 
1646 #ifdef CONFIG_RV
1647 	/*
1648 	 * Per-task RV monitor, fixed in CONFIG_RV_PER_TASK_MONITORS.
1649 	 * If memory becomes a concern, we can think about a dynamic method.
1650 	 */
1651 	union rv_task_monitor		rv[CONFIG_RV_PER_TASK_MONITORS];
1652 #endif
1653 
1654 #ifdef CONFIG_USER_EVENTS
1655 	struct user_event_mm		*user_event_mm;
1656 #endif
1657 
1658 #ifdef CONFIG_UNWIND_USER
1659 	struct unwind_task_info		unwind_info;
1660 #endif
1661 
1662 	/* CPU-specific state of this task: */
1663 	struct thread_struct		thread;
1664 
1665 	/*
1666 	 * New fields for task_struct should be added above here, so that
1667 	 * they are included in the randomized portion of task_struct.
1668 	 */
1669 	randomized_struct_fields_end
1670 } __attribute__ ((aligned (64)));
1671 
1672 #ifdef CONFIG_SCHED_PROXY_EXEC
1673 DECLARE_STATIC_KEY_TRUE(__sched_proxy_exec);
1674 static inline bool sched_proxy_exec(void)
1675 {
1676 	return static_branch_likely(&__sched_proxy_exec);
1677 }
1678 #else
1679 static inline bool sched_proxy_exec(void)
1680 {
1681 	return false;
1682 }
1683 #endif
1684 
1685 #define TASK_REPORT_IDLE	(TASK_REPORT + 1)
1686 #define TASK_REPORT_MAX		(TASK_REPORT_IDLE << 1)
1687 
1688 static inline unsigned int __task_state_index(unsigned int tsk_state,
1689 					      unsigned int tsk_exit_state)
1690 {
1691 	unsigned int state = (tsk_state | tsk_exit_state) & TASK_REPORT;
1692 
1693 	BUILD_BUG_ON_NOT_POWER_OF_2(TASK_REPORT_MAX);
1694 
1695 	if ((tsk_state & TASK_IDLE) == TASK_IDLE)
1696 		state = TASK_REPORT_IDLE;
1697 
1698 	/*
1699 	 * We're lying here, but rather than expose a completely new task state
1700 	 * to userspace, we can make this appear as if the task has gone through
1701 	 * a regular rt_mutex_lock() call.
1702 	 * Report frozen tasks as uninterruptible.
1703 	 */
1704 	if ((tsk_state & TASK_RTLOCK_WAIT) || (tsk_state & TASK_FROZEN))
1705 		state = TASK_UNINTERRUPTIBLE;
1706 
1707 	return fls(state);
1708 }
1709 
1710 static inline unsigned int task_state_index(struct task_struct *tsk)
1711 {
1712 	return __task_state_index(READ_ONCE(tsk->__state), tsk->exit_state);
1713 }
1714 
1715 static inline char task_index_to_char(unsigned int state)
1716 {
1717 	static const char state_char[] = "RSDTtXZPI";
1718 
1719 	BUILD_BUG_ON(TASK_REPORT_MAX * 2 != 1 << (sizeof(state_char) - 1));
1720 
1721 	return state_char[state];
1722 }
1723 
1724 static inline char task_state_to_char(struct task_struct *tsk)
1725 {
1726 	return task_index_to_char(task_state_index(tsk));
1727 }
1728 
1729 #ifdef CONFIG_ARCH_HAS_LAZY_MMU_MODE
1730 /**
1731  * __task_lazy_mmu_mode_active() - Test the lazy MMU mode state for a task.
1732  * @tsk: The task to check.
1733  *
1734  * Test whether @tsk has its lazy MMU mode state set to active (i.e. enabled
1735  * and not paused).
1736  *
1737  * This function only considers the state saved in task_struct; to test whether
1738  * current actually is in lazy MMU mode, is_lazy_mmu_mode_active() should be
1739  * used instead.
1740  *
1741  * This function is intended for architectures that implement the lazy MMU
1742  * mode; it must not be called from generic code.
1743  */
1744 static inline bool __task_lazy_mmu_mode_active(struct task_struct *tsk)
1745 {
1746 	struct lazy_mmu_state *state = &tsk->lazy_mmu_state;
1747 
1748 	return state->enable_count > 0 && state->pause_count == 0;
1749 }
1750 
1751 /**
1752  * is_lazy_mmu_mode_active() - Test whether we are currently in lazy MMU mode.
1753  *
1754  * Test whether the current context is in lazy MMU mode. This is true if both:
1755  * 1. We are not in interrupt context
1756  * 2. Lazy MMU mode is active for the current task
1757  *
1758  * This function is intended for architectures that implement the lazy MMU
1759  * mode; it must not be called from generic code.
1760  */
1761 static inline bool is_lazy_mmu_mode_active(void)
1762 {
1763 	if (in_interrupt())
1764 		return false;
1765 
1766 	return __task_lazy_mmu_mode_active(current);
1767 }
1768 #endif
1769 
1770 extern struct pid *cad_pid;
1771 
1772 /*
1773  * Per process flags
1774  */
1775 #define PF_VCPU			0x00000001	/* I'm a virtual CPU */
1776 #define PF_IDLE			0x00000002	/* I am an IDLE thread */
1777 #define PF_EXITING		0x00000004	/* Getting shut down */
1778 #define PF_POSTCOREDUMP		0x00000008	/* Coredumps should ignore this task */
1779 #define PF_IO_WORKER		0x00000010	/* Task is an IO worker */
1780 #define PF_WQ_WORKER		0x00000020	/* I'm a workqueue worker */
1781 #define PF_FORKNOEXEC		0x00000040	/* Forked but didn't exec */
1782 #define PF_MCE_PROCESS		0x00000080      /* Process policy on mce errors */
1783 #define PF_SUPERPRIV		0x00000100	/* Used super-user privileges */
1784 #define PF_DUMPCORE		0x00000200	/* Dumped core */
1785 #define PF_SIGNALED		0x00000400	/* Killed by a signal */
1786 #define PF_MEMALLOC		0x00000800	/* Allocating memory to free memory. See memalloc_noreclaim_save() */
1787 #define PF_NPROC_EXCEEDED	0x00001000	/* set_user() noticed that RLIMIT_NPROC was exceeded */
1788 #define PF_USED_MATH		0x00002000	/* If unset the fpu must be initialized before use */
1789 #define PF_USER_WORKER		0x00004000	/* Kernel thread cloned from userspace thread */
1790 #define PF_NOFREEZE		0x00008000	/* This thread should not be frozen */
1791 #define PF_KCOMPACTD		0x00010000	/* I am kcompactd */
1792 #define PF_KSWAPD		0x00020000	/* I am kswapd */
1793 #define PF_MEMALLOC_NOFS	0x00040000	/* All allocations inherit GFP_NOFS. See memalloc_nfs_save() */
1794 #define PF_MEMALLOC_NOIO	0x00080000	/* All allocations inherit GFP_NOIO. See memalloc_noio_save() */
1795 #define PF_LOCAL_THROTTLE	0x00100000	/* Throttle writes only against the bdi I write to,
1796 						 * I am cleaning dirty pages from some other bdi. */
1797 #define PF_KTHREAD		0x00200000	/* I am a kernel thread */
1798 #define PF_RANDOMIZE		0x00400000	/* Randomize virtual address space */
1799 #define PF__HOLE__00800000	0x00800000
1800 #define PF__HOLE__01000000	0x01000000
1801 #define PF__HOLE__02000000	0x02000000
1802 #define PF_NO_SETAFFINITY	0x04000000	/* Userland is not allowed to meddle with cpus_mask */
1803 #define PF_MCE_EARLY		0x08000000      /* Early kill for mce process policy */
1804 #define PF_MEMALLOC_PIN		0x10000000	/* Allocations constrained to zones which allow long term pinning.
1805 						 * See memalloc_pin_save() */
1806 #define PF_BLOCK_TS		0x20000000	/* plug has ts that needs updating */
1807 #define PF__HOLE__40000000	0x40000000
1808 #define PF_SUSPEND_TASK		0x80000000      /* This thread called freeze_processes() and should not be frozen */
1809 
1810 /*
1811  * Only the _current_ task can read/write to tsk->flags, but other
1812  * tasks can access tsk->flags in readonly mode for example
1813  * with tsk_used_math (like during threaded core dumping).
1814  * There is however an exception to this rule during ptrace
1815  * or during fork: the ptracer task is allowed to write to the
1816  * child->flags of its traced child (same goes for fork, the parent
1817  * can write to the child->flags), because we're guaranteed the
1818  * child is not running and in turn not changing child->flags
1819  * at the same time the parent does it.
1820  */
1821 #define clear_stopped_child_used_math(child)	do { (child)->flags &= ~PF_USED_MATH; } while (0)
1822 #define set_stopped_child_used_math(child)	do { (child)->flags |= PF_USED_MATH; } while (0)
1823 #define clear_used_math()			clear_stopped_child_used_math(current)
1824 #define set_used_math()				set_stopped_child_used_math(current)
1825 
1826 #define conditional_stopped_child_used_math(condition, child) \
1827 	do { (child)->flags &= ~PF_USED_MATH, (child)->flags |= (condition) ? PF_USED_MATH : 0; } while (0)
1828 
1829 #define conditional_used_math(condition)	conditional_stopped_child_used_math(condition, current)
1830 
1831 #define copy_to_stopped_child_used_math(child) \
1832 	do { (child)->flags &= ~PF_USED_MATH, (child)->flags |= current->flags & PF_USED_MATH; } while (0)
1833 
1834 /* NOTE: this will return 0 or PF_USED_MATH, it will never return 1 */
1835 #define tsk_used_math(p)			((p)->flags & PF_USED_MATH)
1836 #define used_math()				tsk_used_math(current)
1837 
1838 static __always_inline bool is_percpu_thread(void)
1839 {
1840 	return (current->flags & PF_NO_SETAFFINITY) &&
1841 		(current->nr_cpus_allowed  == 1);
1842 }
1843 
1844 static __always_inline bool is_user_task(struct task_struct *task)
1845 {
1846 	return task->mm && !(task->flags & (PF_KTHREAD | PF_USER_WORKER));
1847 }
1848 
1849 /* Per-process atomic flags. */
1850 #define PFA_NO_NEW_PRIVS		0	/* May not gain new privileges. */
1851 #define PFA_SPREAD_PAGE			1	/* Spread page cache over cpuset */
1852 #define PFA_SPREAD_SLAB			2	/* Spread some slab caches over cpuset */
1853 #define PFA_SPEC_SSB_DISABLE		3	/* Speculative Store Bypass disabled */
1854 #define PFA_SPEC_SSB_FORCE_DISABLE	4	/* Speculative Store Bypass force disabled*/
1855 #define PFA_SPEC_IB_DISABLE		5	/* Indirect branch speculation restricted */
1856 #define PFA_SPEC_IB_FORCE_DISABLE	6	/* Indirect branch speculation permanently restricted */
1857 #define PFA_SPEC_SSB_NOEXEC		7	/* Speculative Store Bypass clear on execve() */
1858 
1859 #define TASK_PFA_TEST(name, func)					\
1860 	static inline bool task_##func(struct task_struct *p)		\
1861 	{ return test_bit(PFA_##name, &p->atomic_flags); }
1862 
1863 #define TASK_PFA_SET(name, func)					\
1864 	static inline void task_set_##func(struct task_struct *p)	\
1865 	{ set_bit(PFA_##name, &p->atomic_flags); }
1866 
1867 #define TASK_PFA_CLEAR(name, func)					\
1868 	static inline void task_clear_##func(struct task_struct *p)	\
1869 	{ clear_bit(PFA_##name, &p->atomic_flags); }
1870 
1871 TASK_PFA_TEST(NO_NEW_PRIVS, no_new_privs)
1872 TASK_PFA_SET(NO_NEW_PRIVS, no_new_privs)
1873 
1874 TASK_PFA_TEST(SPREAD_PAGE, spread_page)
1875 TASK_PFA_SET(SPREAD_PAGE, spread_page)
1876 TASK_PFA_CLEAR(SPREAD_PAGE, spread_page)
1877 
1878 TASK_PFA_TEST(SPREAD_SLAB, spread_slab)
1879 TASK_PFA_SET(SPREAD_SLAB, spread_slab)
1880 TASK_PFA_CLEAR(SPREAD_SLAB, spread_slab)
1881 
1882 TASK_PFA_TEST(SPEC_SSB_DISABLE, spec_ssb_disable)
1883 TASK_PFA_SET(SPEC_SSB_DISABLE, spec_ssb_disable)
1884 TASK_PFA_CLEAR(SPEC_SSB_DISABLE, spec_ssb_disable)
1885 
1886 TASK_PFA_TEST(SPEC_SSB_NOEXEC, spec_ssb_noexec)
1887 TASK_PFA_SET(SPEC_SSB_NOEXEC, spec_ssb_noexec)
1888 TASK_PFA_CLEAR(SPEC_SSB_NOEXEC, spec_ssb_noexec)
1889 
1890 TASK_PFA_TEST(SPEC_SSB_FORCE_DISABLE, spec_ssb_force_disable)
1891 TASK_PFA_SET(SPEC_SSB_FORCE_DISABLE, spec_ssb_force_disable)
1892 
1893 TASK_PFA_TEST(SPEC_IB_DISABLE, spec_ib_disable)
1894 TASK_PFA_SET(SPEC_IB_DISABLE, spec_ib_disable)
1895 TASK_PFA_CLEAR(SPEC_IB_DISABLE, spec_ib_disable)
1896 
1897 TASK_PFA_TEST(SPEC_IB_FORCE_DISABLE, spec_ib_force_disable)
1898 TASK_PFA_SET(SPEC_IB_FORCE_DISABLE, spec_ib_force_disable)
1899 
1900 static inline void
1901 current_restore_flags(unsigned long orig_flags, unsigned long flags)
1902 {
1903 	current->flags &= ~flags;
1904 	current->flags |= orig_flags & flags;
1905 }
1906 
1907 extern int cpuset_cpumask_can_shrink(const struct cpumask *cur, const struct cpumask *trial);
1908 extern int task_can_attach(struct task_struct *p);
1909 extern int dl_bw_alloc(int cpu, u64 dl_bw);
1910 extern void dl_bw_free(int cpu, u64 dl_bw);
1911 
1912 /* set_cpus_allowed_force() - consider using set_cpus_allowed_ptr() instead */
1913 extern void set_cpus_allowed_force(struct task_struct *p, const struct cpumask *new_mask);
1914 
1915 /**
1916  * set_cpus_allowed_ptr - set CPU affinity mask of a task
1917  * @p: the task
1918  * @new_mask: CPU affinity mask
1919  *
1920  * Return: zero if successful, or a negative error code
1921  */
1922 extern int set_cpus_allowed_ptr(struct task_struct *p, const struct cpumask *new_mask);
1923 extern int dup_user_cpus_ptr(struct task_struct *dst, struct task_struct *src, int node);
1924 extern void release_user_cpus_ptr(struct task_struct *p);
1925 extern int dl_task_check_affinity(struct task_struct *p, const struct cpumask *mask);
1926 extern void force_compatible_cpus_allowed_ptr(struct task_struct *p);
1927 extern void relax_compatible_cpus_allowed_ptr(struct task_struct *p);
1928 
1929 extern int yield_to(struct task_struct *p, bool preempt);
1930 extern void set_user_nice(struct task_struct *p, long nice);
1931 extern int task_prio(const struct task_struct *p);
1932 
1933 /**
1934  * task_nice - return the nice value of a given task.
1935  * @p: the task in question.
1936  *
1937  * Return: The nice value [ -20 ... 0 ... 19 ].
1938  */
1939 static inline int task_nice(const struct task_struct *p)
1940 {
1941 	return PRIO_TO_NICE((p)->static_prio);
1942 }
1943 
1944 extern int can_nice(const struct task_struct *p, const int nice);
1945 extern int task_curr(const struct task_struct *p);
1946 extern int idle_cpu(int cpu);
1947 extern int sched_setscheduler(struct task_struct *, int, const struct sched_param *);
1948 extern int sched_setscheduler_nocheck(struct task_struct *, int, const struct sched_param *);
1949 extern void sched_set_fifo(struct task_struct *p);
1950 extern void sched_set_fifo_low(struct task_struct *p);
1951 extern void sched_set_fifo_secondary(struct task_struct *p);
1952 extern void sched_set_normal(struct task_struct *p, int nice);
1953 extern int sched_setattr(struct task_struct *, const struct sched_attr *);
1954 extern int sched_setattr_nocheck(struct task_struct *, const struct sched_attr *);
1955 extern struct task_struct *idle_task(int cpu);
1956 
1957 /**
1958  * is_idle_task - is the specified task an idle task?
1959  * @p: the task in question.
1960  *
1961  * Return: 1 if @p is an idle task. 0 otherwise.
1962  */
1963 static __always_inline bool is_idle_task(const struct task_struct *p)
1964 {
1965 	return !!(p->flags & PF_IDLE);
1966 }
1967 
1968 extern struct task_struct *curr_task(int cpu);
1969 extern void ia64_set_curr_task(int cpu, struct task_struct *p);
1970 
1971 void yield(void);
1972 
1973 union thread_union {
1974 	struct task_struct task;
1975 #ifndef CONFIG_THREAD_INFO_IN_TASK
1976 	struct thread_info thread_info;
1977 #endif
1978 	unsigned long stack[THREAD_SIZE/sizeof(long)];
1979 };
1980 
1981 #ifndef CONFIG_THREAD_INFO_IN_TASK
1982 extern struct thread_info init_thread_info;
1983 #endif
1984 
1985 extern unsigned long init_stack[THREAD_SIZE / sizeof(unsigned long)];
1986 
1987 #ifdef CONFIG_THREAD_INFO_IN_TASK
1988 # define task_thread_info(task)	(&(task)->thread_info)
1989 #else
1990 # define task_thread_info(task)	((struct thread_info *)(task)->stack)
1991 #endif
1992 
1993 /*
1994  * find a task by one of its numerical ids
1995  *
1996  * find_task_by_pid_ns():
1997  *      finds a task by its pid in the specified namespace
1998  * find_task_by_vpid():
1999  *      finds a task by its virtual pid
2000  *
2001  * see also find_vpid() etc in include/linux/pid.h
2002  */
2003 
2004 extern struct task_struct *find_task_by_vpid(pid_t nr);
2005 extern struct task_struct *find_task_by_pid_ns(pid_t nr, struct pid_namespace *ns);
2006 
2007 /*
2008  * find a task by its virtual pid and get the task struct
2009  */
2010 extern struct task_struct *find_get_task_by_vpid(pid_t nr);
2011 
2012 extern int wake_up_state(struct task_struct *tsk, unsigned int state);
2013 extern int wake_up_process(struct task_struct *tsk);
2014 extern void wake_up_new_task(struct task_struct *tsk);
2015 
2016 extern void kick_process(struct task_struct *tsk);
2017 
2018 extern void __set_task_comm(struct task_struct *tsk, const char *from, bool exec);
2019 #define set_task_comm(tsk, from) ({			\
2020 	BUILD_BUG_ON(sizeof(from) != TASK_COMM_LEN);	\
2021 	__set_task_comm(tsk, from, false);		\
2022 })
2023 
2024 /*
2025  * - Why not use task_lock()?
2026  *   User space can randomly change their names anyway, so locking for readers
2027  *   doesn't make sense. For writers, locking is probably necessary, as a race
2028  *   condition could lead to long-term mixed results.
2029  *   The strscpy_pad() in __set_task_comm() can ensure that the task comm is
2030  *   always NUL-terminated and zero-padded. Therefore the race condition between
2031  *   reader and writer is not an issue.
2032  *
2033  * - BUILD_BUG_ON() can help prevent the buf from being truncated.
2034  *   Since the callers don't perform any return value checks, this safeguard is
2035  *   necessary.
2036  */
2037 #define get_task_comm(buf, tsk) ({			\
2038 	BUILD_BUG_ON(sizeof(buf) < TASK_COMM_LEN);	\
2039 	strscpy_pad(buf, (tsk)->comm);			\
2040 	buf;						\
2041 })
2042 
2043 static __always_inline void scheduler_ipi(void)
2044 {
2045 	/*
2046 	 * Fold TIF_NEED_RESCHED into the preempt_count; anybody setting
2047 	 * TIF_NEED_RESCHED remotely (for the first time) will also send
2048 	 * this IPI.
2049 	 */
2050 	preempt_fold_need_resched();
2051 }
2052 
2053 extern unsigned long wait_task_inactive(struct task_struct *, unsigned int match_state);
2054 
2055 /*
2056  * Set thread flags in other task's structures.
2057  * See asm/thread_info.h for TIF_xxxx flags available:
2058  */
2059 static inline void set_tsk_thread_flag(struct task_struct *tsk, int flag)
2060 {
2061 	set_ti_thread_flag(task_thread_info(tsk), flag);
2062 }
2063 
2064 static inline void clear_tsk_thread_flag(struct task_struct *tsk, int flag)
2065 {
2066 	clear_ti_thread_flag(task_thread_info(tsk), flag);
2067 }
2068 
2069 static inline void update_tsk_thread_flag(struct task_struct *tsk, int flag,
2070 					  bool value)
2071 {
2072 	update_ti_thread_flag(task_thread_info(tsk), flag, value);
2073 }
2074 
2075 static inline int test_and_set_tsk_thread_flag(struct task_struct *tsk, int flag)
2076 {
2077 	return test_and_set_ti_thread_flag(task_thread_info(tsk), flag);
2078 }
2079 
2080 static inline int test_and_clear_tsk_thread_flag(struct task_struct *tsk, int flag)
2081 {
2082 	return test_and_clear_ti_thread_flag(task_thread_info(tsk), flag);
2083 }
2084 
2085 static inline int test_tsk_thread_flag(struct task_struct *tsk, int flag)
2086 {
2087 	return test_ti_thread_flag(task_thread_info(tsk), flag);
2088 }
2089 
2090 static inline void set_tsk_need_resched(struct task_struct *tsk)
2091 {
2092 	if (tracepoint_enabled(sched_set_need_resched_tp) &&
2093 	    !test_tsk_thread_flag(tsk, TIF_NEED_RESCHED))
2094 		__trace_set_need_resched(tsk, TIF_NEED_RESCHED);
2095 	set_tsk_thread_flag(tsk,TIF_NEED_RESCHED);
2096 }
2097 
2098 static inline void clear_tsk_need_resched(struct task_struct *tsk)
2099 {
2100 	atomic_long_andnot(_TIF_NEED_RESCHED | _TIF_NEED_RESCHED_LAZY,
2101 			   (atomic_long_t *)&task_thread_info(tsk)->flags);
2102 }
2103 
2104 static inline int test_tsk_need_resched(struct task_struct *tsk)
2105 {
2106 	return unlikely(test_tsk_thread_flag(tsk,TIF_NEED_RESCHED));
2107 }
2108 
2109 static inline void set_need_resched_current(void)
2110 {
2111 	lockdep_assert_irqs_disabled();
2112 	set_tsk_need_resched(current);
2113 	set_preempt_need_resched();
2114 }
2115 
2116 /*
2117  * cond_resched() and cond_resched_lock(): latency reduction via
2118  * explicit rescheduling in places that are safe. The return
2119  * value indicates whether a reschedule was done in fact.
2120  * cond_resched_lock() will drop the spinlock before scheduling,
2121  */
2122 #if !defined(CONFIG_PREEMPTION) || defined(CONFIG_PREEMPT_DYNAMIC)
2123 extern int __cond_resched(void);
2124 
2125 #if defined(CONFIG_PREEMPT_DYNAMIC) && defined(CONFIG_HAVE_PREEMPT_DYNAMIC_CALL)
2126 
2127 DECLARE_STATIC_CALL(cond_resched, __cond_resched);
2128 
2129 static __always_inline int _cond_resched(void)
2130 {
2131 	return static_call_mod(cond_resched)();
2132 }
2133 
2134 #elif defined(CONFIG_PREEMPT_DYNAMIC) && defined(CONFIG_HAVE_PREEMPT_DYNAMIC_KEY)
2135 
2136 extern int dynamic_cond_resched(void);
2137 
2138 static __always_inline int _cond_resched(void)
2139 {
2140 	return dynamic_cond_resched();
2141 }
2142 
2143 #else /* !CONFIG_PREEMPTION */
2144 
2145 static inline int _cond_resched(void)
2146 {
2147 	return __cond_resched();
2148 }
2149 
2150 #endif /* PREEMPT_DYNAMIC && CONFIG_HAVE_PREEMPT_DYNAMIC_CALL */
2151 
2152 #else /* CONFIG_PREEMPTION && !CONFIG_PREEMPT_DYNAMIC */
2153 
2154 static inline int _cond_resched(void)
2155 {
2156 	return 0;
2157 }
2158 
2159 #endif /* !CONFIG_PREEMPTION || CONFIG_PREEMPT_DYNAMIC */
2160 
2161 #define cond_resched() ({			\
2162 	__might_resched(__FILE__, __LINE__, 0);	\
2163 	_cond_resched();			\
2164 })
2165 
2166 extern int __cond_resched_lock(spinlock_t *lock) __must_hold(lock);
2167 extern int __cond_resched_rwlock_read(rwlock_t *lock) __must_hold_shared(lock);
2168 extern int __cond_resched_rwlock_write(rwlock_t *lock) __must_hold(lock);
2169 
2170 #define MIGHT_RESCHED_RCU_SHIFT		8
2171 #define MIGHT_RESCHED_PREEMPT_MASK	((1U << MIGHT_RESCHED_RCU_SHIFT) - 1)
2172 
2173 #ifndef CONFIG_PREEMPT_RT
2174 /*
2175  * Non RT kernels have an elevated preempt count due to the held lock,
2176  * but are not allowed to be inside a RCU read side critical section
2177  */
2178 # define PREEMPT_LOCK_RESCHED_OFFSETS	PREEMPT_LOCK_OFFSET
2179 #else
2180 /*
2181  * spin/rw_lock() on RT implies rcu_read_lock(). The might_sleep() check in
2182  * cond_resched*lock() has to take that into account because it checks for
2183  * preempt_count() and rcu_preempt_depth().
2184  */
2185 # define PREEMPT_LOCK_RESCHED_OFFSETS	\
2186 	(PREEMPT_LOCK_OFFSET + (1U << MIGHT_RESCHED_RCU_SHIFT))
2187 #endif
2188 
2189 #define cond_resched_lock(lock) ({						\
2190 	__might_resched(__FILE__, __LINE__, PREEMPT_LOCK_RESCHED_OFFSETS);	\
2191 	__cond_resched_lock(lock);						\
2192 })
2193 
2194 #define cond_resched_rwlock_read(lock) ({					\
2195 	__might_resched(__FILE__, __LINE__, PREEMPT_LOCK_RESCHED_OFFSETS);	\
2196 	__cond_resched_rwlock_read(lock);					\
2197 })
2198 
2199 #define cond_resched_rwlock_write(lock) ({					\
2200 	__might_resched(__FILE__, __LINE__, PREEMPT_LOCK_RESCHED_OFFSETS);	\
2201 	__cond_resched_rwlock_write(lock);					\
2202 })
2203 
2204 #ifndef CONFIG_PREEMPT_RT
2205 
2206 static inline struct mutex *__get_task_blocked_on(struct task_struct *p)
2207 {
2208 	lockdep_assert_held_once(&p->blocked_lock);
2209 	return p->blocked_on;
2210 }
2211 
2212 static inline void __set_task_blocked_on(struct task_struct *p, struct mutex *m)
2213 {
2214 	WARN_ON_ONCE(!m);
2215 	/* The task should only be setting itself as blocked */
2216 	WARN_ON_ONCE(p != current);
2217 	/* Currently we serialize blocked_on under the task::blocked_lock */
2218 	lockdep_assert_held_once(&p->blocked_lock);
2219 	/*
2220 	 * Check ensure we don't overwrite existing mutex value
2221 	 * with a different mutex. Note, setting it to the same
2222 	 * lock repeatedly is ok.
2223 	 */
2224 	WARN_ON_ONCE(p->blocked_on && p->blocked_on != m);
2225 	p->blocked_on = m;
2226 }
2227 
2228 static inline void __clear_task_blocked_on(struct task_struct *p, struct mutex *m)
2229 {
2230 	/* Currently we serialize blocked_on under the task::blocked_lock */
2231 	lockdep_assert_held_once(&p->blocked_lock);
2232 	/*
2233 	 * There may be cases where we re-clear already cleared
2234 	 * blocked_on relationships, but make sure we are not
2235 	 * clearing the relationship with a different lock.
2236 	 */
2237 	WARN_ON_ONCE(m && p->blocked_on && p->blocked_on != m);
2238 	p->blocked_on = NULL;
2239 }
2240 
2241 static inline void clear_task_blocked_on(struct task_struct *p, struct mutex *m)
2242 {
2243 	guard(raw_spinlock_irqsave)(&p->blocked_lock);
2244 	__clear_task_blocked_on(p, m);
2245 }
2246 #else
2247 static inline void __clear_task_blocked_on(struct task_struct *p, struct rt_mutex *m)
2248 {
2249 }
2250 
2251 static inline void clear_task_blocked_on(struct task_struct *p, struct rt_mutex *m)
2252 {
2253 }
2254 #endif /* !CONFIG_PREEMPT_RT */
2255 
2256 static __always_inline bool need_resched(void)
2257 {
2258 	return unlikely(tif_need_resched());
2259 }
2260 
2261 /*
2262  * Wrappers for p->thread_info->cpu access. No-op on UP.
2263  */
2264 #ifdef CONFIG_SMP
2265 
2266 static inline unsigned int task_cpu(const struct task_struct *p)
2267 {
2268 	return READ_ONCE(task_thread_info(p)->cpu);
2269 }
2270 
2271 extern void set_task_cpu(struct task_struct *p, unsigned int cpu);
2272 
2273 #else
2274 
2275 static inline unsigned int task_cpu(const struct task_struct *p)
2276 {
2277 	return 0;
2278 }
2279 
2280 static inline void set_task_cpu(struct task_struct *p, unsigned int cpu)
2281 {
2282 }
2283 
2284 #endif /* CONFIG_SMP */
2285 
2286 static inline bool task_is_runnable(struct task_struct *p)
2287 {
2288 	return p->on_rq && !p->se.sched_delayed;
2289 }
2290 
2291 extern bool sched_task_on_rq(struct task_struct *p);
2292 extern unsigned long get_wchan(struct task_struct *p);
2293 extern struct task_struct *cpu_curr_snapshot(int cpu);
2294 
2295 /*
2296  * In order to reduce various lock holder preemption latencies provide an
2297  * interface to see if a vCPU is currently running or not.
2298  *
2299  * This allows us to terminate optimistic spin loops and block, analogous to
2300  * the native optimistic spin heuristic of testing if the lock owner task is
2301  * running or not.
2302  */
2303 #ifndef vcpu_is_preempted
2304 static inline bool vcpu_is_preempted(int cpu)
2305 {
2306 	return false;
2307 }
2308 #endif
2309 
2310 extern long sched_setaffinity(pid_t pid, const struct cpumask *new_mask);
2311 extern long sched_getaffinity(pid_t pid, struct cpumask *mask);
2312 
2313 #ifndef TASK_SIZE_OF
2314 #define TASK_SIZE_OF(tsk)	TASK_SIZE
2315 #endif
2316 
2317 static inline bool owner_on_cpu(struct task_struct *owner)
2318 {
2319 	/*
2320 	 * As lock holder preemption issue, we both skip spinning if
2321 	 * task is not on cpu or its cpu is preempted
2322 	 */
2323 	return READ_ONCE(owner->on_cpu) && !vcpu_is_preempted(task_cpu(owner));
2324 }
2325 
2326 /* Returns effective CPU energy utilization, as seen by the scheduler */
2327 unsigned long sched_cpu_util(int cpu);
2328 
2329 #ifdef CONFIG_SCHED_CORE
2330 extern void sched_core_free(struct task_struct *tsk);
2331 extern void sched_core_fork(struct task_struct *p);
2332 extern int sched_core_share_pid(unsigned int cmd, pid_t pid, enum pid_type type,
2333 				unsigned long uaddr);
2334 extern int sched_core_idle_cpu(int cpu);
2335 #else
2336 static inline void sched_core_free(struct task_struct *tsk) { }
2337 static inline void sched_core_fork(struct task_struct *p) { }
2338 static inline int sched_core_idle_cpu(int cpu) { return idle_cpu(cpu); }
2339 #endif
2340 
2341 extern void sched_set_stop_task(int cpu, struct task_struct *stop);
2342 
2343 #ifdef CONFIG_MEM_ALLOC_PROFILING
2344 static __always_inline struct alloc_tag *alloc_tag_save(struct alloc_tag *tag)
2345 {
2346 	swap(current->alloc_tag, tag);
2347 	return tag;
2348 }
2349 
2350 static __always_inline void alloc_tag_restore(struct alloc_tag *tag, struct alloc_tag *old)
2351 {
2352 #ifdef CONFIG_MEM_ALLOC_PROFILING_DEBUG
2353 	WARN(current->alloc_tag != tag, "current->alloc_tag was changed:\n");
2354 #endif
2355 	current->alloc_tag = old;
2356 }
2357 #else
2358 #define alloc_tag_save(_tag)			NULL
2359 #define alloc_tag_restore(_tag, _old)		do {} while (0)
2360 #endif
2361 
2362 /* Avoids recursive inclusion hell */
2363 #ifdef CONFIG_SCHED_MM_CID
2364 void sched_mm_cid_before_execve(struct task_struct *t);
2365 void sched_mm_cid_after_execve(struct task_struct *t);
2366 void sched_mm_cid_exit(struct task_struct *t);
2367 static __always_inline int task_mm_cid(struct task_struct *t)
2368 {
2369 	return t->mm_cid.cid & ~(MM_CID_ONCPU | MM_CID_TRANSIT);
2370 }
2371 #else
2372 static inline void sched_mm_cid_before_execve(struct task_struct *t) { }
2373 static inline void sched_mm_cid_after_execve(struct task_struct *t) { }
2374 static inline void sched_mm_cid_exit(struct task_struct *t) { }
2375 static __always_inline int task_mm_cid(struct task_struct *t)
2376 {
2377 	/*
2378 	 * Use the processor id as a fall-back when the mm cid feature is
2379 	 * disabled. This provides functional per-cpu data structure accesses
2380 	 * in user-space, althrough it won't provide the memory usage benefits.
2381 	 */
2382 	return task_cpu(t);
2383 }
2384 #endif
2385 
2386 #ifdef CONFIG_SCHED_CACHE
2387 
2388 struct sched_cache_time {
2389 	u64 runtime;
2390 	unsigned long epoch;
2391 };
2392 
2393 struct sched_cache_stat {
2394 	struct sched_cache_time __percpu *pcpu_sched;
2395 	raw_spinlock_t lock;
2396 	unsigned long epoch;
2397 	u64 nr_running_avg;
2398 	unsigned long next_scan;
2399 	unsigned long footprint;
2400 	int cpu;
2401 } ____cacheline_aligned_in_smp;
2402 
2403 #else
2404 
2405 struct sched_cache_stat { };
2406 
2407 #endif
2408 
2409 #ifndef MODULE
2410 #ifndef COMPILE_OFFSETS
2411 
2412 extern void ___migrate_enable(void);
2413 
2414 struct rq;
2415 DECLARE_PER_CPU_SHARED_ALIGNED(struct rq, runqueues);
2416 
2417 /*
2418  * The "struct rq" is not available here, so we can't access the
2419  * "runqueues" with this_cpu_ptr(), as the compilation will fail in
2420  * this_cpu_ptr() -> raw_cpu_ptr() -> __verify_pcpu_ptr():
2421  *   typeof((ptr) + 0)
2422  *
2423  * So use arch_raw_cpu_ptr()/PERCPU_PTR() directly here.
2424  */
2425 #ifdef CONFIG_SMP
2426 #define this_rq_raw() arch_raw_cpu_ptr(&runqueues)
2427 #else
2428 #define this_rq_raw() PERCPU_PTR(&runqueues)
2429 #endif
2430 #define this_rq_pinned() (*(unsigned int *)((void *)this_rq_raw() + RQ_nr_pinned))
2431 
2432 static inline void __migrate_enable(void)
2433 {
2434 	struct task_struct *p = current;
2435 
2436 #ifdef CONFIG_DEBUG_PREEMPT
2437 	/*
2438 	 * Check both overflow from migrate_disable() and superfluous
2439 	 * migrate_enable().
2440 	 */
2441 	if (WARN_ON_ONCE((s16)p->migration_disabled <= 0))
2442 		return;
2443 #endif
2444 
2445 	if (p->migration_disabled > 1) {
2446 		p->migration_disabled--;
2447 		return;
2448 	}
2449 
2450 	/*
2451 	 * Ensure stop_task runs either before or after this, and that
2452 	 * __set_cpus_allowed_ptr(SCA_MIGRATE_ENABLE) doesn't schedule().
2453 	 */
2454 	guard(preempt)();
2455 	if (unlikely(p->cpus_ptr != &p->cpus_mask))
2456 		___migrate_enable();
2457 	/*
2458 	 * Mustn't clear migration_disabled() until cpus_ptr points back at the
2459 	 * regular cpus_mask, otherwise things that race (eg.
2460 	 * select_fallback_rq) get confused.
2461 	 */
2462 	barrier();
2463 	p->migration_disabled = 0;
2464 	this_rq_pinned()--;
2465 }
2466 
2467 static inline void __migrate_disable(void)
2468 {
2469 	struct task_struct *p = current;
2470 
2471 	if (p->migration_disabled) {
2472 #ifdef CONFIG_DEBUG_PREEMPT
2473 		/*
2474 		 *Warn about overflow half-way through the range.
2475 		 */
2476 		WARN_ON_ONCE((s16)p->migration_disabled < 0);
2477 #endif
2478 		p->migration_disabled++;
2479 		return;
2480 	}
2481 
2482 	guard(preempt)();
2483 	this_rq_pinned()++;
2484 	p->migration_disabled = 1;
2485 }
2486 #else /* !COMPILE_OFFSETS */
2487 static inline void __migrate_disable(void) { }
2488 static inline void __migrate_enable(void) { }
2489 #endif /* !COMPILE_OFFSETS */
2490 
2491 /*
2492  * So that it is possible to not export the runqueues variable, define and
2493  * export migrate_enable/migrate_disable in kernel/sched/core.c too, and use
2494  * them for the modules. The macro "INSTANTIATE_EXPORTED_MIGRATE_DISABLE" will
2495  * be defined in kernel/sched/core.c.
2496  */
2497 #ifndef INSTANTIATE_EXPORTED_MIGRATE_DISABLE
2498 static __always_inline void migrate_disable(void)
2499 {
2500 	__migrate_disable();
2501 }
2502 
2503 static __always_inline void migrate_enable(void)
2504 {
2505 	__migrate_enable();
2506 }
2507 #else /* INSTANTIATE_EXPORTED_MIGRATE_DISABLE */
2508 extern void migrate_disable(void);
2509 extern void migrate_enable(void);
2510 #endif /* INSTANTIATE_EXPORTED_MIGRATE_DISABLE */
2511 
2512 #else /* MODULE */
2513 extern void migrate_disable(void);
2514 extern void migrate_enable(void);
2515 #endif /* MODULE */
2516 
2517 DEFINE_LOCK_GUARD_0(migrate, migrate_disable(), migrate_enable())
2518 
2519 #endif
2520