xref: /linux/kernel/sched/fair.c (revision c23810313bdf6b02f39a1f2a1464c4b18bd39e31)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Completely Fair Scheduling (CFS) Class (SCHED_NORMAL/SCHED_BATCH)
4  *
5  *  Copyright (C) 2007 Red Hat, Inc., Ingo Molnar <mingo@redhat.com>
6  *
7  *  Interactivity improvements by Mike Galbraith
8  *  (C) 2007 Mike Galbraith <efault@gmx.de>
9  *
10  *  Various enhancements by Dmitry Adamushko.
11  *  (C) 2007 Dmitry Adamushko <dmitry.adamushko@gmail.com>
12  *
13  *  Group scheduling enhancements by Srivatsa Vaddagiri
14  *  Copyright IBM Corporation, 2007
15  *  Author: Srivatsa Vaddagiri <vatsa@linux.vnet.ibm.com>
16  *
17  *  Scaled math optimizations by Thomas Gleixner
18  *  Copyright (C) 2007, Linutronix GmbH, Thomas Gleixner <tglx@kernel.org>
19  *
20  *  Adaptive scheduling granularity, math enhancements by Peter Zijlstra
21  *  Copyright (C) 2007 Red Hat, Inc., Peter Zijlstra
22  */
23 #include <linux/energy_model.h>
24 #include <linux/mmap_lock.h>
25 #include <linux/hugetlb_inline.h>
26 #include <linux/jiffies.h>
27 #include <linux/mm_api.h>
28 #include <linux/highmem.h>
29 #include <linux/hrtimer.h>
30 #include <linux/hrtimer_bases.h>
31 #include <linux/spinlock_api.h>
32 #include <linux/cpumask_api.h>
33 #include <linux/lockdep_api.h>
34 #include <linux/softirq.h>
35 #include <linux/refcount_api.h>
36 #include <linux/topology.h>
37 #include <linux/sched/clock.h>
38 #include <linux/sched/cond_resched.h>
39 #include <linux/sched/cputime.h>
40 #include <linux/sched/isolation.h>
41 #include <linux/sched/nohz.h>
42 #include <linux/sched/prio.h>
43 #include <linux/static_call.h>
44 
45 #include <linux/cpuidle.h>
46 #include <linux/interrupt.h>
47 #include <linux/memory-tiers.h>
48 #include <linux/mempolicy.h>
49 #include <linux/mutex_api.h>
50 #include <linux/profile.h>
51 #include <linux/psi.h>
52 #include <linux/ratelimit.h>
53 #include <linux/task_work.h>
54 #include <linux/rbtree_augmented.h>
55 
56 #include <asm/switch_to.h>
57 
58 #include <uapi/linux/sched/types.h>
59 
60 #include "sched.h"
61 #include "stats.h"
62 #include "autogroup.h"
63 
64 /*
65  * The initial- and re-scaling of tunables is configurable
66  *
67  * Options are:
68  *
69  *   SCHED_TUNABLESCALING_NONE - unscaled, always *1
70  *   SCHED_TUNABLESCALING_LOG - scaled logarithmically, *1+ilog(ncpus)
71  *   SCHED_TUNABLESCALING_LINEAR - scaled linear, *ncpus
72  *
73  * (default SCHED_TUNABLESCALING_LOG = *(1+ilog(ncpus))
74  */
75 unsigned int sysctl_sched_tunable_scaling = SCHED_TUNABLESCALING_LOG;
76 
77 /*
78  * Default base time slice (request size r_i) for SCHED_NORMAL/SCHED_BATCH:
79  *
80  * Under EEVDF this is the request size used to compute the virtual
81  * deadline; see update_deadline().
82  *
83  * (default: 0.70 msec * (1 + ilog(ncpus)), units: nanoseconds)
84  */
85 unsigned int sysctl_sched_base_slice			= 700000ULL;
86 static unsigned int normalized_sysctl_sched_base_slice	= 700000ULL;
87 
88 __read_mostly unsigned int sysctl_sched_migration_cost	= 500000UL;
89 
90 static int __init setup_sched_thermal_decay_shift(char *str)
91 {
92 	pr_warn("Ignoring the deprecated sched_thermal_decay_shift= option\n");
93 	return 1;
94 }
95 __setup("sched_thermal_decay_shift=", setup_sched_thermal_decay_shift);
96 
97 /*
98  * For asym packing, by default the lower numbered CPU has higher priority.
99  */
100 int __weak arch_asym_cpu_priority(int cpu)
101 {
102 	return -cpu;
103 }
104 
105 /*
106  * The margin used when comparing utilization with CPU capacity.
107  *
108  * (default: ~20%)
109  */
110 #define fits_capacity(cap, max)	((cap) * 1280 < (max) * 1024)
111 
112 /*
113  * The margin used when comparing CPU capacities.
114  * is 'cap1' noticeably greater than 'cap2'
115  *
116  * (default: ~5%)
117  */
118 #define capacity_greater(cap1, cap2) ((cap1) * 1024 > (cap2) * 1078)
119 
120 #ifdef CONFIG_CFS_BANDWIDTH
121 /*
122  * Amount of runtime to allocate from global (tg) to local (per-cfs_rq) pool
123  * each time a cfs_rq requests quota.
124  *
125  * Note: in the case that the slice exceeds the runtime remaining (either due
126  * to consumption or the quota being specified to be smaller than the slice)
127  * we will always only issue the remaining available time.
128  *
129  * (default: 5 msec, units: microseconds)
130  */
131 static unsigned int sysctl_sched_cfs_bandwidth_slice		= 5000UL;
132 #endif
133 
134 #ifdef CONFIG_NUMA_BALANCING
135 /* Restrict the NUMA promotion throughput (MB/s) for each target node. */
136 static unsigned int sysctl_numa_balancing_promote_rate_limit = 65536;
137 #endif
138 
139 #ifdef CONFIG_SYSCTL
140 static const struct ctl_table sched_fair_sysctls[] = {
141 #ifdef CONFIG_CFS_BANDWIDTH
142 	{
143 		.procname       = "sched_cfs_bandwidth_slice_us",
144 		.data           = &sysctl_sched_cfs_bandwidth_slice,
145 		.maxlen         = sizeof(unsigned int),
146 		.mode           = 0644,
147 		.proc_handler   = proc_dointvec_minmax,
148 		.extra1         = SYSCTL_ONE,
149 	},
150 #endif
151 #ifdef CONFIG_NUMA_BALANCING
152 	{
153 		.procname	= "numa_balancing_promote_rate_limit_MBps",
154 		.data		= &sysctl_numa_balancing_promote_rate_limit,
155 		.maxlen		= sizeof(unsigned int),
156 		.mode		= 0644,
157 		.proc_handler	= proc_dointvec_minmax,
158 		.extra1		= SYSCTL_ZERO,
159 	},
160 #endif /* CONFIG_NUMA_BALANCING */
161 };
162 
163 static int __init sched_fair_sysctl_init(void)
164 {
165 	register_sysctl_init("kernel", sched_fair_sysctls);
166 	return 0;
167 }
168 late_initcall(sched_fair_sysctl_init);
169 #endif /* CONFIG_SYSCTL */
170 
171 static inline void update_load_add(struct load_weight *lw, unsigned long inc)
172 {
173 	lw->weight += inc;
174 	lw->inv_weight = 0;
175 }
176 
177 static inline void update_load_sub(struct load_weight *lw, unsigned long dec)
178 {
179 	lw->weight -= dec;
180 	lw->inv_weight = 0;
181 }
182 
183 static inline void update_load_set(struct load_weight *lw, unsigned long w)
184 {
185 	lw->weight = w;
186 	lw->inv_weight = 0;
187 }
188 
189 /*
190  * Increase the granularity value when there are more CPUs,
191  * because with more CPUs the 'effective latency' as visible
192  * to users decreases. But the relationship is not linear,
193  * so pick a second-best guess by going with the log2 of the
194  * number of CPUs.
195  *
196  * This idea comes from the SD scheduler of Con Kolivas:
197  */
198 static unsigned int get_update_sysctl_factor(void)
199 {
200 	unsigned int cpus = min_t(unsigned int, num_online_cpus(), 8);
201 	unsigned int factor;
202 
203 	switch (sysctl_sched_tunable_scaling) {
204 	case SCHED_TUNABLESCALING_NONE:
205 		factor = 1;
206 		break;
207 	case SCHED_TUNABLESCALING_LINEAR:
208 		factor = cpus;
209 		break;
210 	case SCHED_TUNABLESCALING_LOG:
211 	default:
212 		factor = 1 + ilog2(cpus);
213 		break;
214 	}
215 
216 	return factor;
217 }
218 
219 static void update_sysctl(void)
220 {
221 	unsigned int factor = get_update_sysctl_factor();
222 
223 #define SET_SYSCTL(name) \
224 	(sysctl_##name = (factor) * normalized_sysctl_##name)
225 	SET_SYSCTL(sched_base_slice);
226 #undef SET_SYSCTL
227 }
228 
229 void __init sched_init_granularity(void)
230 {
231 	update_sysctl();
232 }
233 
234 #ifndef CONFIG_64BIT
235 #define WMULT_CONST	(~0U)
236 #define WMULT_SHIFT	32
237 
238 static void __update_inv_weight(struct load_weight *lw)
239 {
240 	unsigned long w;
241 
242 	if (likely(lw->inv_weight))
243 		return;
244 
245 	w = scale_load_down(lw->weight);
246 
247 	if (BITS_PER_LONG > 32 && unlikely(w >= WMULT_CONST))
248 		lw->inv_weight = 1;
249 	else if (unlikely(!w))
250 		lw->inv_weight = WMULT_CONST;
251 	else
252 		lw->inv_weight = WMULT_CONST / w;
253 }
254 
255 /*
256  * delta_exec * weight / lw.weight
257  *   OR
258  * (delta_exec * (weight * lw->inv_weight)) >> WMULT_SHIFT
259  *
260  * Either weight := NICE_0_LOAD and lw \e sched_prio_to_wmult[], in which case
261  * we're guaranteed shift stays positive because inv_weight is guaranteed to
262  * fit 32 bits, and NICE_0_LOAD gives another 10 bits; therefore shift >= 22.
263  *
264  * Or, weight =< lw.weight (because lw.weight is the runqueue weight), thus
265  * weight/lw.weight <= 1, and therefore our shift will also be positive.
266  */
267 static u64 __calc_delta(u64 delta_exec, unsigned long weight, struct load_weight *lw)
268 {
269 	u64 fact = scale_load_down(weight);
270 	u32 fact_hi = (u32)(fact >> 32);
271 	int shift = WMULT_SHIFT;
272 	int fs;
273 
274 	__update_inv_weight(lw);
275 
276 	if (unlikely(fact_hi)) {
277 		fs = fls(fact_hi);
278 		shift -= fs;
279 		fact >>= fs;
280 	}
281 
282 	fact = mul_u32_u32(fact, lw->inv_weight);
283 
284 	fact_hi = (u32)(fact >> 32);
285 	if (fact_hi) {
286 		fs = fls(fact_hi);
287 		shift -= fs;
288 		fact >>= fs;
289 	}
290 
291 	return mul_u64_u32_shr(delta_exec, fact, shift);
292 }
293 #else
294 static u64 __calc_delta(u64 delta_exec, unsigned long weight, struct load_weight *lw)
295 {
296 	return (delta_exec * weight) / lw->weight;
297 }
298 #endif
299 
300 /*
301  * delta /= w
302  */
303 static inline u64 calc_delta_fair(u64 delta, struct sched_entity *se)
304 {
305 	if (se->h_load.weight != NICE_0_LOAD)
306 		delta = __calc_delta(delta, NICE_0_LOAD, &se->h_load);
307 
308 	return delta;
309 }
310 
311 const struct sched_class fair_sched_class;
312 
313 /**************************************************************
314  * CFS operations on generic schedulable entities:
315  */
316 
317 #ifdef CONFIG_FAIR_GROUP_SCHED
318 
319 /* Walk up scheduling entities hierarchy */
320 #define for_each_sched_entity(se) \
321 		for (; se; se = se->parent)
322 
323 static inline bool list_add_leaf_cfs_rq(struct cfs_rq *cfs_rq)
324 {
325 	struct rq *rq = rq_of(cfs_rq);
326 	int cpu = cpu_of(rq);
327 
328 	if (cfs_rq->on_list)
329 		return rq->tmp_alone_branch == &rq->leaf_cfs_rq_list;
330 
331 	cfs_rq->on_list = 1;
332 
333 	/*
334 	 * Ensure we either appear before our parent (if already
335 	 * enqueued) or force our parent to appear after us when it is
336 	 * enqueued. The fact that we always enqueue bottom-up
337 	 * reduces this to two cases and a special case for the root
338 	 * cfs_rq. Furthermore, it also means that we will always reset
339 	 * tmp_alone_branch either when the branch is connected
340 	 * to a tree or when we reach the top of the tree
341 	 */
342 	if (cfs_rq->tg->parent &&
343 	    tg_cfs_rq(cfs_rq->tg->parent, cpu)->on_list) {
344 		/*
345 		 * If parent is already on the list, we add the child
346 		 * just before. Thanks to circular linked property of
347 		 * the list, this means to put the child at the tail
348 		 * of the list that starts by parent.
349 		 */
350 		list_add_tail_rcu(&cfs_rq->leaf_cfs_rq_list,
351 			&(tg_cfs_rq(cfs_rq->tg->parent, cpu)->leaf_cfs_rq_list));
352 		/*
353 		 * The branch is now connected to its tree so we can
354 		 * reset tmp_alone_branch to the beginning of the
355 		 * list.
356 		 */
357 		rq->tmp_alone_branch = &rq->leaf_cfs_rq_list;
358 		return true;
359 	}
360 
361 	if (!cfs_rq->tg->parent) {
362 		/*
363 		 * cfs rq without parent should be put
364 		 * at the tail of the list.
365 		 */
366 		list_add_tail_rcu(&cfs_rq->leaf_cfs_rq_list,
367 			&rq->leaf_cfs_rq_list);
368 		/*
369 		 * We have reach the top of a tree so we can reset
370 		 * tmp_alone_branch to the beginning of the list.
371 		 */
372 		rq->tmp_alone_branch = &rq->leaf_cfs_rq_list;
373 		return true;
374 	}
375 
376 	/*
377 	 * The parent has not already been added so we want to
378 	 * make sure that it will be put after us.
379 	 * tmp_alone_branch points to the begin of the branch
380 	 * where we will add parent.
381 	 */
382 	list_add_rcu(&cfs_rq->leaf_cfs_rq_list, rq->tmp_alone_branch);
383 	/*
384 	 * update tmp_alone_branch to points to the new begin
385 	 * of the branch
386 	 */
387 	rq->tmp_alone_branch = &cfs_rq->leaf_cfs_rq_list;
388 	return false;
389 }
390 
391 static inline void list_del_leaf_cfs_rq(struct cfs_rq *cfs_rq)
392 {
393 	if (cfs_rq->on_list) {
394 		struct rq *rq = rq_of(cfs_rq);
395 
396 		/*
397 		 * With cfs_rq being unthrottled/throttled during an enqueue,
398 		 * it can happen the tmp_alone_branch points to the leaf that
399 		 * we finally want to delete. In this case, tmp_alone_branch moves
400 		 * to the prev element but it will point to rq->leaf_cfs_rq_list
401 		 * at the end of the enqueue.
402 		 */
403 		if (rq->tmp_alone_branch == &cfs_rq->leaf_cfs_rq_list)
404 			rq->tmp_alone_branch = cfs_rq->leaf_cfs_rq_list.prev;
405 
406 		list_del_rcu(&cfs_rq->leaf_cfs_rq_list);
407 		cfs_rq->on_list = 0;
408 	}
409 }
410 
411 static inline void assert_list_leaf_cfs_rq(struct rq *rq)
412 {
413 	WARN_ON_ONCE(rq->tmp_alone_branch != &rq->leaf_cfs_rq_list);
414 }
415 
416 /* Iterate through all leaf cfs_rq's on a runqueue */
417 #define for_each_leaf_cfs_rq_safe(rq, cfs_rq, pos)			\
418 	list_for_each_entry_safe(cfs_rq, pos, &rq->leaf_cfs_rq_list,	\
419 				 leaf_cfs_rq_list)
420 
421 /* Do the two (enqueued) entities belong to the same group ? */
422 static inline struct cfs_rq *
423 is_same_group(struct sched_entity *se, struct sched_entity *pse)
424 {
425 	if (se->cfs_rq == pse->cfs_rq)
426 		return se->cfs_rq;
427 
428 	return NULL;
429 }
430 
431 static inline struct sched_entity *parent_entity(const struct sched_entity *se)
432 {
433 	return se->parent;
434 }
435 
436 static int tg_is_idle(struct task_group *tg)
437 {
438 	return tg->idle > 0;
439 }
440 
441 static int cfs_rq_is_idle(struct cfs_rq *cfs_rq)
442 {
443 	return cfs_rq->idle > 0;
444 }
445 
446 static int se_is_idle(struct sched_entity *se)
447 {
448 	if (entity_is_task(se))
449 		return task_has_idle_policy(task_of(se));
450 	return cfs_rq_is_idle(group_cfs_rq(se));
451 }
452 
453 #else /* !CONFIG_FAIR_GROUP_SCHED: */
454 
455 #define for_each_sched_entity(se) \
456 		for (; se; se = NULL)
457 
458 static inline bool list_add_leaf_cfs_rq(struct cfs_rq *cfs_rq)
459 {
460 	return true;
461 }
462 
463 static inline void list_del_leaf_cfs_rq(struct cfs_rq *cfs_rq)
464 {
465 }
466 
467 static inline void assert_list_leaf_cfs_rq(struct rq *rq)
468 {
469 }
470 
471 #define for_each_leaf_cfs_rq_safe(rq, cfs_rq, pos)	\
472 		for (cfs_rq = &rq->cfs, pos = NULL; cfs_rq; cfs_rq = pos)
473 
474 static inline struct sched_entity *parent_entity(struct sched_entity *se)
475 {
476 	return NULL;
477 }
478 
479 static inline int tg_is_idle(struct task_group *tg)
480 {
481 	return 0;
482 }
483 
484 static int cfs_rq_is_idle(struct cfs_rq *cfs_rq)
485 {
486 	return 0;
487 }
488 
489 static int se_is_idle(struct sched_entity *se)
490 {
491 	return task_has_idle_policy(task_of(se));
492 }
493 
494 #endif /* !CONFIG_FAIR_GROUP_SCHED */
495 
496 static __always_inline
497 bool account_cfs_rq_runtime(struct cfs_rq *cfs_rq, u64 delta_exec);
498 
499 /**************************************************************
500  * Scheduling class tree data structure manipulation methods:
501  */
502 
503 extern void __BUILD_BUG_vruntime_cmp(void);
504 
505 /* Use __builtin_strcmp() because of __HAVE_ARCH_STRCMP: */
506 
507 #define vruntime_cmp(A, CMP_STR, B) ({				\
508 	int __res = 0;						\
509 								\
510 	if (!__builtin_strcmp(CMP_STR, "<")) {			\
511 		__res = ((s64)((A)-(B)) < 0);			\
512 	} else if (!__builtin_strcmp(CMP_STR, "<=")) {		\
513 		__res = ((s64)((A)-(B)) <= 0);			\
514 	} else if (!__builtin_strcmp(CMP_STR, ">")) {		\
515 		__res = ((s64)((A)-(B)) > 0);			\
516 	} else if (!__builtin_strcmp(CMP_STR, ">=")) {		\
517 		__res = ((s64)((A)-(B)) >= 0);			\
518 	} else {						\
519 		/* Unknown operator throws linker error: */	\
520 		__BUILD_BUG_vruntime_cmp();			\
521 	}							\
522 								\
523 	__res;							\
524 })
525 
526 extern void __BUILD_BUG_vruntime_op(void);
527 
528 #define vruntime_op(A, OP_STR, B) ({				\
529 	s64 __res = 0;						\
530 								\
531 	if (!__builtin_strcmp(OP_STR, "-")) {			\
532 		__res = (s64)((A)-(B));				\
533 	} else {						\
534 		/* Unknown operator throws linker error: */	\
535 		__BUILD_BUG_vruntime_op();			\
536 	}							\
537 								\
538 	__res;						\
539 })
540 
541 
542 static inline __maybe_unused u64 max_vruntime(u64 max_vruntime, u64 vruntime)
543 {
544 	if (vruntime_cmp(vruntime, ">", max_vruntime))
545 		max_vruntime = vruntime;
546 
547 	return max_vruntime;
548 }
549 
550 static inline __maybe_unused u64 min_vruntime(u64 min_vruntime, u64 vruntime)
551 {
552 	if (vruntime_cmp(vruntime, "<", min_vruntime))
553 		min_vruntime = vruntime;
554 
555 	return min_vruntime;
556 }
557 
558 static inline bool entity_before(const struct sched_entity *a,
559 				 const struct sched_entity *b)
560 {
561 	/*
562 	 * Tiebreak on vruntime seems unnecessary since it can
563 	 * hardly happen.
564 	 */
565 	return vruntime_cmp(a->deadline, "<", b->deadline);
566 }
567 
568 /*
569  * Per avg_vruntime() below, cfs_rq::zero_vruntime is only slightly stale
570  * and this value should be no more than two lag bounds. Which puts it in the
571  * general order of:
572  *
573  *	(slice + TICK_NSEC) << NICE_0_LOAD_SHIFT
574  *
575  * which is around 44 bits in size (on 64bit); that is 20 for
576  * NICE_0_LOAD_SHIFT, another 20 for NSEC_PER_MSEC and then a handful for
577  * however many msec the actual slice+tick ends up begin.
578  *
579  * (disregarding the actual divide-by-weight part makes for the worst case
580  * weight of 2, which nicely cancels vs the fuzz in zero_vruntime not actually
581  * being the zero-lag point).
582  */
583 static inline s64 entity_key(struct cfs_rq *cfs_rq, struct sched_entity *se)
584 {
585 	return vruntime_op(se->vruntime, "-", cfs_rq->zero_vruntime);
586 }
587 
588 #define __node_2_se(node) \
589 	rb_entry((node), struct sched_entity, run_node)
590 
591 /*
592  * Compute virtual time from the per-task service numbers:
593  *
594  * Fair schedulers conserve lag:
595  *
596  *   \Sum lag_i = 0
597  *
598  * Where lag_i is given by:
599  *
600  *   lag_i = S - s_i = w_i * (V - v_i)
601  *
602  * Where S is the ideal service time and V is it's virtual time counterpart.
603  * Therefore:
604  *
605  *   \Sum lag_i = 0
606  *   \Sum w_i * (V - v_i) = 0
607  *   \Sum (w_i * V - w_i * v_i) = 0
608  *
609  * From which we can solve an expression for V in v_i (which we have in
610  * se->vruntime):
611  *
612  *       \Sum v_i * w_i   \Sum v_i * w_i
613  *   V = -------------- = --------------
614  *          \Sum w_i            W
615  *
616  * Specifically, this is the weighted average of all entity virtual runtimes.
617  *
618  * [[ NOTE: this is only equal to the ideal scheduler under the condition
619  *          that join/leave operations happen at lag_i = 0, otherwise the
620  *          virtual time has non-contiguous motion equivalent to:
621  *
622  *	      V +-= lag_i / W
623  *
624  *	    Also see the comment in place_entity() that deals with this. ]]
625  *
626  * However, since v_i is u64, and the multiplication could easily overflow
627  * transform it into a relative form that uses smaller quantities:
628  *
629  * Substitute: v_i == (v_i - v0) + v0
630  *
631  *     \Sum ((v_i - v0) + v0) * w_i   \Sum (v_i - v0) * w_i
632  * V = ---------------------------- = --------------------- + v0
633  *                  W                            W
634  *
635  * Which we track using:
636  *
637  *                    v0 := cfs_rq->zero_vruntime
638  * \Sum (v_i - v0) * w_i := cfs_rq->sum_w_vruntime
639  *              \Sum w_i := cfs_rq->sum_weight
640  *
641  * Since zero_vruntime closely tracks the per-task service, these
642  * deltas: (v_i - v0), will be in the order of the maximal (virtual) lag
643  * induced in the system due to quantisation.
644  */
645 static inline unsigned long avg_vruntime_weight(struct cfs_rq *cfs_rq, unsigned long w)
646 {
647 #ifdef CONFIG_64BIT
648 	if (cfs_rq->sum_shift)
649 		w = max(2UL, w >> cfs_rq->sum_shift);
650 #endif
651 	return w;
652 }
653 
654 static inline void
655 __sum_w_vruntime_add(struct cfs_rq *cfs_rq, struct sched_entity *se)
656 {
657 	unsigned long weight = avg_vruntime_weight(cfs_rq, se->h_load.weight);
658 	s64 w_vruntime, key = entity_key(cfs_rq, se);
659 
660 	w_vruntime = key * weight;
661 	WARN_ON_ONCE((w_vruntime >> 63) != (w_vruntime >> 62));
662 
663 	cfs_rq->sum_w_vruntime += w_vruntime;
664 	cfs_rq->sum_weight += weight;
665 }
666 
667 static void
668 sum_w_vruntime_add_paranoid(struct cfs_rq *cfs_rq, struct sched_entity *se)
669 {
670 	unsigned long weight;
671 	s64 key, tmp;
672 
673 again:
674 	weight = avg_vruntime_weight(cfs_rq, se->h_load.weight);
675 	key = entity_key(cfs_rq, se);
676 
677 	if (check_mul_overflow(key, weight, &key))
678 		goto overflow;
679 
680 	if (check_add_overflow(cfs_rq->sum_w_vruntime, key, &tmp))
681 		goto overflow;
682 
683 	cfs_rq->sum_w_vruntime = tmp;
684 	cfs_rq->sum_weight += weight;
685 	return;
686 
687 overflow:
688 	/*
689 	 * There's gotta be a limit -- if we're still failing at this point
690 	 * there's really nothing much to be done about things.
691 	 */
692 	BUG_ON(cfs_rq->sum_shift >= 10);
693 	cfs_rq->sum_shift++;
694 
695 	/*
696 	 * Note: \Sum (k_i * (w_i >> 1)) != (\Sum (k_i * w_i)) >> 1
697 	 */
698 	cfs_rq->sum_w_vruntime = 0;
699 	cfs_rq->sum_weight = 0;
700 
701 	for (struct rb_node *node = cfs_rq->tasks_timeline.rb_leftmost;
702 	     node; node = rb_next(node))
703 		__sum_w_vruntime_add(cfs_rq, __node_2_se(node));
704 
705 	goto again;
706 }
707 
708 static void
709 sum_w_vruntime_add(struct cfs_rq *cfs_rq, struct sched_entity *se)
710 {
711 	if (sched_feat(PARANOID_AVG))
712 		return sum_w_vruntime_add_paranoid(cfs_rq, se);
713 
714 	__sum_w_vruntime_add(cfs_rq, se);
715 }
716 
717 static void
718 sum_w_vruntime_sub(struct cfs_rq *cfs_rq, struct sched_entity *se)
719 {
720 	unsigned long weight = avg_vruntime_weight(cfs_rq, se->h_load.weight);
721 	s64 key = entity_key(cfs_rq, se);
722 
723 	cfs_rq->sum_w_vruntime -= key * weight;
724 	cfs_rq->sum_weight -= weight;
725 }
726 
727 static inline
728 void update_zero_vruntime(struct cfs_rq *cfs_rq, s64 delta)
729 {
730 	/*
731 	 * v' = v + d ==> sum_w_vruntime' = sum_w_vruntime - d*sum_weight
732 	 */
733 	cfs_rq->sum_w_vruntime -= cfs_rq->sum_weight * delta;
734 	cfs_rq->zero_vruntime += delta;
735 }
736 
737 /*
738  * Specifically: avg_vruntime() + 0 must result in entity_eligible() := true
739  * For this to be so, the result of this function must have a left bias.
740  *
741  * Called in:
742  *  - place_entity()      -- before enqueue
743  *  - update_entity_lag() -- before dequeue
744  *  - update_deadline()   -- slice expiration
745  *
746  * This means it is one entry 'behind' but that puts it close enough to where
747  * the bound on entity_key() is at most two lag bounds.
748  */
749 u64 avg_vruntime(struct cfs_rq *cfs_rq)
750 {
751 	struct sched_entity *curr = cfs_rq->curr;
752 	long weight = cfs_rq->sum_weight;
753 	s64 delta = 0;
754 
755 	if (curr && !curr->on_rq)
756 		curr = NULL;
757 
758 	if (weight) {
759 		s64 runtime = cfs_rq->sum_w_vruntime;
760 
761 		if (curr) {
762 			unsigned long w = avg_vruntime_weight(cfs_rq, curr->h_load.weight);
763 
764 			runtime += entity_key(cfs_rq, curr) * w;
765 			weight += w;
766 		}
767 
768 		/* sign flips effective floor / ceiling */
769 		if (runtime < 0)
770 			runtime -= (weight - 1);
771 
772 		delta = div64_long(runtime, weight);
773 	} else if (curr) {
774 		/*
775 		 * When there is but one element, it is the average.
776 		 */
777 		delta = curr->vruntime - cfs_rq->zero_vruntime;
778 	}
779 
780 	update_zero_vruntime(cfs_rq, delta);
781 
782 	return cfs_rq->zero_vruntime;
783 }
784 
785 /*
786  *     \Sum (v_i - v0)*w_i
787  * V = ------------------- + v0
788  *          \Sum w_i
789  *
790  * Let W = \Sum w_i, and move v_j such that 'v_j == V', thus:
791  *
792  * V = 1/W * {(v_j - v0)*w_j + \Sum_i!=j (v_i - v0)*w_i} + v0
793  *
794  * v_j = 1/W * {(v_j - v0)*w_j + \Sum_i!=j (v_i - v0)*w_i} + v0
795  *
796  * v_j = 1/W * (v_j - v0)*w_j + 1/W * \Sum_i!=j (v_i - v0)*w_i + v0
797  *
798  * v_j - 1/W * (v_j - v0)*w_j = 1/W * \Sum_i!=j (v_i - v0)*w_i + v0
799  *
800  * v_j*W - (v_j - v0)*w_j = \Sum_i!=j (v_i - v0)*w_i + v0*W
801  *
802  * v_j*(W - w_j) + v0*w_j = \Sum_i!=j (v_i - v0)*w_i + v0*W
803  *
804  * v_j*(W - w_j) = \Sum_i!=j (v_i - v0)*w_i + v0*(W - w_j)
805  *
806  *       \Sum_i!=j (v_i - v0)*w_i
807  * v_j = ------------------------ + v0
808  *               W - w_j
809  *
810  * When v_j happens to be curr, then '\Sum_i!=j (v_i - v0)*w_i'
811  * is cfs_rq->sum_w_runtime, and 'W - w_j' is cfs_rq->sum_weight, since curr
812  * is not included in the sum.
813  */
814 static u64 ineligible_vruntime(struct cfs_rq *cfs_rq)
815 {
816 	struct sched_entity *curr = cfs_rq->curr;
817 	long weight = cfs_rq->sum_weight;
818 	s64 delta = 0;
819 
820 	if (curr && !curr->on_rq)
821 		curr = NULL;
822 
823 	/*
824 	 * This is called from set_next_task_fair(.first=true) /
825 	 * set_protect_slice() so curr had better be set and on_rq.
826 	 */
827 	WARN_ON_ONCE(!curr);
828 
829 	if (weight) {
830 		s64 runtime = cfs_rq->sum_w_vruntime;
831 
832 		/*
833 		 * Do not add @curr to obtain the effective '- w_j' terms.
834 		 */
835 
836 		/* sign flips effective floor / ceiling */
837 		if (runtime < 0)
838 			runtime -= (weight - 1);
839 
840 		delta = div64_long(runtime, weight);
841 	}
842 
843 	return cfs_rq->zero_vruntime + delta + 1;
844 }
845 
846 static inline u64 cfs_rq_max_slice(struct cfs_rq *cfs_rq);
847 
848 /*
849  * lag_i = S - s_i = w_i * (V - v_i)
850  *
851  * However, since V is approximated by the weighted average of all entities it
852  * is possible -- by addition/removal/reweight to the tree -- to move V around
853  * and end up with a larger lag than we started with.
854  *
855  * Limit this to either double the slice length with a minimum of TICK_NSEC
856  * since that is the timing granularity.
857  *
858  * EEVDF gives the following limit for a steady state system:
859  *
860  *   -r_max < lag < max(r_max, q)
861  */
862 static s64 entity_lag(struct cfs_rq *cfs_rq, struct sched_entity *se, u64 avruntime)
863 {
864 	u64 max_slice = cfs_rq_max_slice(cfs_rq) + TICK_NSEC;
865 	s64 vlag, limit;
866 
867 	vlag = avruntime - se->vruntime;
868 	limit = calc_delta_fair(max_slice, se);
869 
870 	return clamp(vlag, -limit, limit);
871 }
872 
873 /*
874  * Delayed dequeue aims to reduce the negative lag of a dequeued task. While
875  * updating the lag of an entity, check that negative lag didn't increase
876  * during the delayed dequeue period which would be unfair.
877  * Similarly, check that the entity didn't gain positive lag when DELAY_ZERO
878  * is set.
879  *
880  * Return true if the vlag has been modified. Specifically:
881  *
882  *   se->vlag != avg_vruntime() - se->vruntime
883  *
884  * This can be due to clamping in entity_lag() or clamping due to
885  * sched_delayed. Either way, when vlag is modified and the entity is
886  * retained, the tree needs to be adjusted.
887  */
888 static __always_inline
889 bool update_entity_lag(struct cfs_rq *cfs_rq, struct sched_entity *se)
890 {
891 	u64 avruntime = avg_vruntime(cfs_rq);
892 	s64 vlag = entity_lag(cfs_rq, se, avruntime);
893 
894 	if (se->sched_delayed) {
895 		/* previous vlag < 0 otherwise se would not be delayed */
896 		vlag = max(vlag, se->vlag);
897 		if (sched_feat(DELAY_ZERO))
898 			vlag = min(vlag, 0);
899 	}
900 	se->vlag = vlag;
901 
902 	return avruntime - vlag != se->vruntime;
903 }
904 
905 /*
906  * Entity is eligible once it received less service than it ought to have,
907  * eg. lag >= 0.
908  *
909  * lag_i = S - s_i = w_i*(V - v_i)
910  *
911  * lag_i >= 0 -> V >= v_i
912  *
913  *     \Sum (v_i - v0)*w_i
914  * V = ------------------- + v0
915  *          \Sum w_i
916  *
917  * lag_i >= 0 -> \Sum (v_i - v0)*w_i >= (v_i - v0)*(\Sum w_i)
918  *
919  * Note: using 'avg_vruntime() > se->vruntime' is inaccurate due
920  *       to the loss in precision caused by the division.
921  */
922 static int vruntime_eligible(struct cfs_rq *cfs_rq, u64 vruntime)
923 {
924 	struct sched_entity *curr = cfs_rq->curr;
925 	s64 key, avg = cfs_rq->sum_w_vruntime;
926 	long load = cfs_rq->sum_weight;
927 
928 	if (curr && curr->on_rq) {
929 		unsigned long weight = avg_vruntime_weight(cfs_rq, curr->h_load.weight);
930 
931 		avg += entity_key(cfs_rq, curr) * weight;
932 		load += weight;
933 	}
934 
935 	key = vruntime_op(vruntime, "-", cfs_rq->zero_vruntime);
936 
937 	/*
938 	 * The worst case term for @key includes 'NSEC_TICK * NICE_0_LOAD'
939 	 * and @load obviously includes NICE_0_LOAD. NSEC_TICK is around 24
940 	 * bits, while NICE_0_LOAD is 20 on 64bit and 10 otherwise.
941 	 *
942 	 * This gives that on 64bit the product will be at least 64bit which
943 	 * overflows s64, while on 32bit it will only be 44bits and should fit
944 	 * comfortably.
945 	 */
946 #ifdef CONFIG_64BIT
947 #ifdef CONFIG_ARCH_SUPPORTS_INT128
948 	/* This often results in simpler code than __builtin_mul_overflow(). */
949 	return avg >= (__int128)key * load;
950 #else
951 	s64 rhs;
952 	/*
953 	 * On overflow, the sign of key tells us the correct answer: a large
954 	 * positive key means vruntime >> V, so not eligible; a large negative
955 	 * key means vruntime << V, so eligible.
956 	 */
957 	if (check_mul_overflow(key, load, &rhs))
958 		return key <= 0;
959 
960 	return avg >= rhs;
961 #endif
962 #else /* 32bit */
963 	return avg >= key * load;
964 #endif
965 }
966 
967 int entity_eligible(struct cfs_rq *cfs_rq, struct sched_entity *se)
968 {
969 	return vruntime_eligible(cfs_rq, se->vruntime);
970 }
971 
972 static inline u64 cfs_rq_min_slice(struct cfs_rq *cfs_rq)
973 {
974 	struct sched_entity *root = __pick_root_entity(cfs_rq);
975 	struct sched_entity *curr = cfs_rq->curr;
976 	u64 min_slice = ~0ULL;
977 
978 	if (curr && curr->on_rq)
979 		min_slice = curr->slice;
980 
981 	if (root)
982 		min_slice = min(min_slice, root->min_slice);
983 
984 	return min_slice;
985 }
986 
987 static inline u64 cfs_rq_max_slice(struct cfs_rq *cfs_rq)
988 {
989 	struct sched_entity *root = __pick_root_entity(cfs_rq);
990 	struct sched_entity *curr = cfs_rq->curr;
991 	u64 max_slice = 0ULL;
992 
993 	if (curr && curr->on_rq)
994 		max_slice = curr->slice;
995 
996 	if (root)
997 		max_slice = max(max_slice, root->max_slice);
998 
999 	return max_slice;
1000 }
1001 
1002 static inline bool __entity_less(struct rb_node *a, const struct rb_node *b)
1003 {
1004 	return entity_before(__node_2_se(a), __node_2_se(b));
1005 }
1006 
1007 static inline void __min_vruntime_update(struct sched_entity *se, struct rb_node *node)
1008 {
1009 	if (node) {
1010 		struct sched_entity *rse = __node_2_se(node);
1011 
1012 		if (vruntime_cmp(se->min_vruntime, ">", rse->min_vruntime))
1013 			se->min_vruntime = rse->min_vruntime;
1014 	}
1015 }
1016 
1017 static inline void __min_slice_update(struct sched_entity *se, struct rb_node *node)
1018 {
1019 	if (node) {
1020 		struct sched_entity *rse = __node_2_se(node);
1021 		if (rse->min_slice < se->min_slice)
1022 			se->min_slice = rse->min_slice;
1023 	}
1024 }
1025 
1026 static inline void __max_slice_update(struct sched_entity *se, struct rb_node *node)
1027 {
1028 	if (node) {
1029 		struct sched_entity *rse = __node_2_se(node);
1030 		if (rse->max_slice > se->max_slice)
1031 			se->max_slice = rse->max_slice;
1032 	}
1033 }
1034 
1035 static inline void min_vruntime_copy(struct sched_entity *new, struct sched_entity *old)
1036 {
1037 	new->min_vruntime = old->min_vruntime;
1038 	new->min_slice = old->min_slice;
1039 	new->max_slice = old->max_slice;
1040 }
1041 
1042 /*
1043  * se->min_vruntime = min(se->vruntime, {left,right}->min_vruntime)
1044  */
1045 static inline bool min_vruntime_update(struct sched_entity *se, bool exit)
1046 {
1047 	u64 old_min_vruntime = se->min_vruntime;
1048 	u64 old_min_slice = se->min_slice;
1049 	u64 old_max_slice = se->max_slice;
1050 	struct rb_node *node = &se->run_node;
1051 
1052 	se->min_vruntime = se->vruntime;
1053 	__min_vruntime_update(se, node->rb_right);
1054 	__min_vruntime_update(se, node->rb_left);
1055 
1056 	se->min_slice = se->slice;
1057 	__min_slice_update(se, node->rb_right);
1058 	__min_slice_update(se, node->rb_left);
1059 
1060 	se->max_slice = se->slice;
1061 	__max_slice_update(se, node->rb_right);
1062 	__max_slice_update(se, node->rb_left);
1063 
1064 	return se->min_vruntime == old_min_vruntime &&
1065 	       se->min_slice == old_min_slice &&
1066 	       se->max_slice == old_max_slice;
1067 }
1068 
1069 
1070 RB_DECLARE_CALLBACKS_MULTI(static, min_vruntime_cb, struct sched_entity,
1071 		     run_node, min_vruntime_copy, min_vruntime_update);
1072 
1073 /*
1074  * Enqueue an entity into the rb-tree:
1075  */
1076 static void __enqueue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se)
1077 {
1078 	WARN_ON_ONCE(&rq_of(cfs_rq)->cfs != cfs_rq);
1079 	WARN_ON_ONCE(!entity_is_task(se));
1080 
1081 	sum_w_vruntime_add(cfs_rq, se);
1082 	se->min_vruntime = se->vruntime;
1083 	se->min_slice = se->slice;
1084 	se->max_slice = se->slice;
1085 
1086 	rb_add_augmented_cached(&se->run_node, &cfs_rq->tasks_timeline,
1087 				__entity_less, &min_vruntime_cb);
1088 }
1089 
1090 static void __dequeue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se)
1091 {
1092 	WARN_ON_ONCE(&rq_of(cfs_rq)->cfs != cfs_rq);
1093 	WARN_ON_ONCE(!entity_is_task(se));
1094 
1095 	rb_erase_augmented_cached(&se->run_node, &cfs_rq->tasks_timeline,
1096 				  &min_vruntime_cb);
1097 	sum_w_vruntime_sub(cfs_rq, se);
1098 }
1099 
1100 struct sched_entity *__pick_root_entity(struct cfs_rq *cfs_rq)
1101 {
1102 	struct rb_node *root = cfs_rq->tasks_timeline.rb_root.rb_node;
1103 
1104 	if (!root)
1105 		return NULL;
1106 
1107 	return __node_2_se(root);
1108 }
1109 
1110 struct sched_entity *__pick_first_entity(struct cfs_rq *cfs_rq)
1111 {
1112 	struct rb_node *left = rb_first_cached(&cfs_rq->tasks_timeline);
1113 
1114 	if (!left)
1115 		return NULL;
1116 
1117 	return __node_2_se(left);
1118 }
1119 
1120 /*
1121  * Set the vruntime up to which an entity can run before looking
1122  * for another entity to pick.
1123  * In case of run to parity, we use the shortest slice of the enqueued
1124  * entities to set the protected period.
1125  * When run to parity is disabled, we give a minimum quantum to the running
1126  * entity to ensure progress.
1127  */
1128 static inline void set_protect_slice(struct cfs_rq *cfs_rq, struct sched_entity *se)
1129 {
1130 	u64 slice = normalized_sysctl_sched_base_slice;
1131 	u64 vprot = se->deadline;
1132 
1133 	if (sched_feat(RUN_TO_PARITY))
1134 		slice = cfs_rq_min_slice(cfs_rq);
1135 
1136 	slice = min(slice, se->slice);
1137 
1138 	/* If there are shorter slices than se's one */
1139 	if (slice != se->slice) {
1140 		if (sched_feat(PREEMPT_SHORT))
1141 			vprot = min_vruntime(vprot, ineligible_vruntime(cfs_rq));
1142 		else
1143 			vprot = min_vruntime(vprot, se->vruntime + calc_delta_fair(slice, se));
1144 	}
1145 
1146 	se->vprot = vprot;
1147 }
1148 
1149 static inline void update_protect_slice(struct cfs_rq *cfs_rq, struct sched_entity *se)
1150 {
1151 	u64 slice = cfs_rq_min_slice(cfs_rq);
1152 	u64 vruntime = min_vruntime(se->vruntime, avg_vruntime(cfs_rq));
1153 
1154 	se->vprot = min_vruntime(se->vprot, vruntime + calc_delta_fair(slice, se));
1155 }
1156 
1157 static inline bool protect_slice(struct sched_entity *se)
1158 {
1159 	return vruntime_cmp(se->vruntime, "<", se->vprot);
1160 }
1161 
1162 static inline void cancel_protect_slice(struct sched_entity *se)
1163 {
1164 	if (protect_slice(se))
1165 		se->vprot = se->vruntime;
1166 }
1167 
1168 /*
1169  * Earliest Eligible Virtual Deadline First
1170  *
1171  * In order to provide latency guarantees for different request sizes
1172  * EEVDF selects the best runnable task from two criteria:
1173  *
1174  *  1) the task must be eligible (must be owed service)
1175  *
1176  *  2) from those tasks that meet 1), we select the one
1177  *     with the earliest virtual deadline.
1178  *
1179  * We can do this in O(log n) time due to an augmented RB-tree. The
1180  * tree keeps the entries sorted on deadline, but also functions as a
1181  * heap based on the vruntime by keeping:
1182  *
1183  *  se->min_vruntime = min(se->vruntime, se->{left,right}->min_vruntime)
1184  *
1185  * Which allows tree pruning through eligibility.
1186  */
1187 static struct sched_entity *pick_eevdf(struct cfs_rq *cfs_rq, bool protect)
1188 {
1189 	struct rb_node *node = cfs_rq->tasks_timeline.rb_root.rb_node;
1190 	struct sched_entity *se = __pick_first_entity(cfs_rq);
1191 	struct sched_entity *curr = cfs_rq->curr;
1192 	struct sched_entity *best = NULL;
1193 
1194 	/*
1195 	 * We can safely skip eligibility check if there is only one entity
1196 	 * in this cfs_rq, saving some cycles.
1197 	 */
1198 	if (cfs_rq->h_nr_queued == 1)
1199 		return curr && curr->on_rq ? curr : se;
1200 
1201 	/*
1202 	 * Picking the ->next buddy will affect latency but not fairness.
1203 	 */
1204 	if (sched_feat(PICK_BUDDY) && protect &&
1205 	    cfs_rq->next && entity_eligible(cfs_rq, cfs_rq->next)) {
1206 		/* ->next will never be delayed */
1207 		WARN_ON_ONCE(cfs_rq->next->sched_delayed);
1208 		return cfs_rq->next;
1209 	}
1210 
1211 	if (curr && (!curr->on_rq || !entity_eligible(cfs_rq, curr)))
1212 		curr = NULL;
1213 
1214 	if (curr && protect && protect_slice(curr))
1215 		return curr;
1216 
1217 	/* Pick the leftmost entity if it's eligible */
1218 	if (se && entity_eligible(cfs_rq, se)) {
1219 		best = se;
1220 		goto found;
1221 	}
1222 
1223 	/* Heap search for the EEVD entity */
1224 	while (node) {
1225 		struct rb_node *left = node->rb_left;
1226 
1227 		/*
1228 		 * Eligible entities in left subtree are always better
1229 		 * choices, since they have earlier deadlines.
1230 		 */
1231 		if (left && vruntime_eligible(cfs_rq,
1232 					__node_2_se(left)->min_vruntime)) {
1233 			node = left;
1234 			continue;
1235 		}
1236 
1237 		se = __node_2_se(node);
1238 
1239 		/*
1240 		 * The left subtree either is empty or has no eligible
1241 		 * entity, so check the current node since it is the one
1242 		 * with earliest deadline that might be eligible.
1243 		 */
1244 		if (entity_eligible(cfs_rq, se)) {
1245 			best = se;
1246 			break;
1247 		}
1248 
1249 		node = node->rb_right;
1250 	}
1251 found:
1252 	if (!best || (curr && entity_before(curr, best)))
1253 		best = curr;
1254 
1255 	return best;
1256 }
1257 
1258 struct sched_entity *__pick_last_entity(struct cfs_rq *cfs_rq)
1259 {
1260 	struct rb_node *last = rb_last(&cfs_rq->tasks_timeline.rb_root);
1261 
1262 	if (!last)
1263 		return NULL;
1264 
1265 	return __node_2_se(last);
1266 }
1267 
1268 /**************************************************************
1269  * Scheduling class statistics methods:
1270  */
1271 int sched_update_scaling(void)
1272 {
1273 	unsigned int factor = get_update_sysctl_factor();
1274 
1275 #define WRT_SYSCTL(name) \
1276 	(normalized_sysctl_##name = sysctl_##name / (factor))
1277 	WRT_SYSCTL(sched_base_slice);
1278 #undef WRT_SYSCTL
1279 
1280 	return 0;
1281 }
1282 
1283 static void clear_buddies(struct cfs_rq *cfs_rq, struct sched_entity *se);
1284 
1285 /*
1286  * XXX: strictly: vd_i += N*r_i/w_i such that: vd_i > ve_i
1287  * this is probably good enough.
1288  */
1289 static bool update_deadline(struct cfs_rq *cfs_rq, struct sched_entity *se)
1290 {
1291 	if (vruntime_cmp(se->vruntime, "<", se->deadline))
1292 		return false;
1293 
1294 	/*
1295 	 * For EEVDF the virtual time slope is determined by w_i (iow.
1296 	 * nice) while the request time r_i is determined by
1297 	 * sysctl_sched_base_slice.
1298 	 */
1299 	if (!se->custom_slice)
1300 		se->slice = sysctl_sched_base_slice;
1301 
1302 	/*
1303 	 * EEVDF: vd_i = ve_i + r_i / w_i
1304 	 */
1305 	se->deadline = se->vruntime + calc_delta_fair(se->slice, se);
1306 	avg_vruntime(cfs_rq);
1307 
1308 	/*
1309 	 * The task has consumed its request, reschedule.
1310 	 */
1311 	return true;
1312 }
1313 
1314 #include "pelt.h"
1315 
1316 static int select_idle_sibling(struct task_struct *p, int prev_cpu, int cpu);
1317 static unsigned long task_h_load(struct task_struct *p);
1318 static unsigned long capacity_of(int cpu);
1319 
1320 /* Give new sched_entity start runnable values to heavy its load in infant time */
1321 void init_entity_runnable_average(struct sched_entity *se)
1322 {
1323 	struct sched_avg *sa = &se->avg;
1324 
1325 	memset(sa, 0, sizeof(*sa));
1326 
1327 	/*
1328 	 * Tasks are initialized with full load to be seen as heavy tasks until
1329 	 * they get a chance to stabilize to their real load level.
1330 	 * Group entities are initialized with zero load to reflect the fact that
1331 	 * nothing has been attached to the task group yet.
1332 	 */
1333 	if (entity_is_task(se))
1334 		sa->load_avg = scale_load_down(se->load.weight);
1335 
1336 	/* when this task is enqueued, it will contribute to its cfs_rq's load_avg */
1337 }
1338 
1339 /*
1340  * With new tasks being created, their initial util_avgs are extrapolated
1341  * based on the cfs_rq's current util_avg:
1342  *
1343  *   util_avg = cfs_rq->avg.util_avg / (cfs_rq->avg.load_avg + 1)
1344  *		* se_weight(se)
1345  *
1346  * However, in many cases, the above util_avg does not give a desired
1347  * value. Moreover, the sum of the util_avgs may be divergent, such
1348  * as when the series is a harmonic series.
1349  *
1350  * To solve this problem, we also cap the util_avg of successive tasks to
1351  * only 1/2 of the left utilization budget:
1352  *
1353  *   util_avg_cap = (cpu_scale - cfs_rq->avg.util_avg) / 2^n
1354  *
1355  * where n denotes the nth task and cpu_scale the CPU capacity.
1356  *
1357  * For example, for a CPU with 1024 of capacity, a simplest series from
1358  * the beginning would be like:
1359  *
1360  *  task  util_avg: 512, 256, 128,  64,  32,   16,    8, ...
1361  * cfs_rq util_avg: 512, 768, 896, 960, 992, 1008, 1016, ...
1362  *
1363  * Finally, that extrapolated util_avg is clamped to the cap (util_avg_cap)
1364  * if util_avg > util_avg_cap.
1365  */
1366 void post_init_entity_util_avg(struct task_struct *p)
1367 {
1368 	struct sched_entity *se = &p->se;
1369 	struct cfs_rq *cfs_rq = cfs_rq_of(se);
1370 	struct sched_avg *sa = &se->avg;
1371 	long cpu_scale = arch_scale_cpu_capacity(cpu_of(rq_of(cfs_rq)));
1372 	long cap = (long)(cpu_scale - cfs_rq->avg.util_avg) / 2;
1373 
1374 	if (p->sched_class != &fair_sched_class) {
1375 		/*
1376 		 * For !fair tasks do:
1377 		 *
1378 		update_cfs_rq_load_avg(now, cfs_rq);
1379 		attach_entity_load_avg(cfs_rq, se);
1380 		switched_from_fair(rq, p);
1381 		 *
1382 		 * such that the next switched_to_fair() has the
1383 		 * expected state.
1384 		 */
1385 		se->avg.last_update_time = cfs_rq_clock_pelt(cfs_rq);
1386 		return;
1387 	}
1388 
1389 	if (cap > 0) {
1390 		if (cfs_rq->avg.util_avg != 0) {
1391 			sa->util_avg  = cfs_rq->avg.util_avg * se_weight(se);
1392 			sa->util_avg /= (cfs_rq->avg.load_avg + 1);
1393 
1394 			if (sa->util_avg > cap)
1395 				sa->util_avg = cap;
1396 		} else {
1397 			sa->util_avg = cap;
1398 		}
1399 	}
1400 
1401 	sa->runnable_avg = sa->util_avg;
1402 }
1403 
1404 static inline void account_mm_sched(struct rq *rq, struct task_struct *p, s64 delta_exec);
1405 
1406 static s64 update_se(struct rq *rq, struct sched_entity *se)
1407 {
1408 	u64 now = rq_clock_task(rq);
1409 	s64 delta_exec;
1410 
1411 	delta_exec = now - se->exec_start;
1412 	if (unlikely(delta_exec <= 0))
1413 		return delta_exec;
1414 
1415 	se->exec_start = now;
1416 	if (entity_is_task(se)) {
1417 		struct task_struct *running = rq->curr;
1418 		/*
1419 		 * If se is a task, we account the time against the running
1420 		 * task, as w/ proxy-exec they may not be the same.
1421 		 */
1422 		running->se.exec_start = now;
1423 		running->se.sum_exec_runtime += delta_exec;
1424 
1425 		trace_sched_stat_runtime(running, delta_exec);
1426 		account_group_exec_runtime(running, delta_exec);
1427 		account_mm_sched(rq, running, delta_exec);
1428 
1429 		cgroup_account_cputime(running, delta_exec);
1430 	} else {
1431 		/* If not task, account the time against donor se  */
1432 		se->sum_exec_runtime += delta_exec;
1433 	}
1434 
1435 	if (schedstat_enabled()) {
1436 		struct sched_statistics *stats;
1437 
1438 		stats = __schedstats_from_se(se);
1439 		__schedstat_set(stats->exec_max,
1440 				max(delta_exec, stats->exec_max));
1441 	}
1442 
1443 	return delta_exec;
1444 }
1445 
1446 #ifdef CONFIG_SCHED_CACHE
1447 
1448 /*
1449  * XXX numbers come from a place the sun don't shine -- probably wants to be SD
1450  * tunable or so.
1451  */
1452 #define EPOCH_PERIOD	(HZ / 100)	/* 10 ms */
1453 #define EPOCH_LLC_AFFINITY_TIMEOUT	5	/* 50 ms */
1454 __read_mostly unsigned int llc_aggr_tolerance	= 1;
1455 __read_mostly unsigned int llc_epoch_period	= EPOCH_PERIOD;
1456 __read_mostly unsigned int llc_epoch_affinity_timeout = EPOCH_LLC_AFFINITY_TIMEOUT;
1457 __read_mostly unsigned int llc_imb_pct		= 20;
1458 __read_mostly unsigned int llc_overaggr_pct	= 50;
1459 
1460 static int llc_id(int cpu)
1461 {
1462 	if (cpu < 0)
1463 		return -1;
1464 
1465 	return per_cpu(sd_llc_id, cpu);
1466 }
1467 
1468 static inline int get_sched_cache_scale(int mul)
1469 {
1470 	unsigned int tol = READ_ONCE(llc_aggr_tolerance);
1471 
1472 	if (!tol)
1473 		return 0;
1474 
1475 	if (tol >= 100)
1476 		return INT_MAX;
1477 
1478 	return (1 + (tol - 1) * mul);
1479 }
1480 
1481 static bool exceed_llc_capacity(struct mm_struct *mm, int cpu)
1482 {
1483 #ifdef CONFIG_NUMA_BALANCING
1484 	unsigned long llc, footprint;
1485 	struct sched_domain *sd;
1486 	int scale;
1487 
1488 	guard(rcu)();
1489 
1490 	sd = rcu_dereference_sched_domain(cpu_rq(cpu)->sd);
1491 	if (!sd)
1492 		return true;
1493 
1494 	if (static_branch_likely(&sched_numa_balancing)) {
1495 		/*
1496 		 * TBD: RDT exclusive LLC ways reserved should be
1497 		 * excluded.
1498 		 */
1499 		llc = sd->llc_bytes;
1500 		footprint = READ_ONCE(mm->sc_stat.footprint);
1501 
1502 		/*
1503 		 * Scale the LLC size by 256*llc_aggr_tolerance
1504 		 * and compare it to the task's footprint.
1505 		 *
1506 		 * Suppose the L3 size is 32MB. If the
1507 		 * llc_aggr_tolerance is 1:
1508 		 * When the footprint is larger than 32MB, the
1509 		 * process is regarded as exceeding the LLC
1510 		 * capacity. If the llc_aggr_tolerance is 99:
1511 		 * When the footprint is larger than 784GB, the
1512 		 * process is regarded as exceeding the LLC
1513 		 * capacity:
1514 		 * 784GB = (1 + (99 - 1) * 256) * 32MB
1515 		 * If the llc_aggr_tolerance is 100:
1516 		 * ignore the footprint and do the aggregation
1517 		 * anyway.
1518 		 */
1519 		scale = get_sched_cache_scale(256);
1520 		if (scale == INT_MAX)
1521 			return false;
1522 
1523 		return ((llc * (u64)scale) < (footprint * PAGE_SIZE));
1524 	}
1525 #endif
1526 	return false;
1527 }
1528 
1529 static bool invalid_llc_nr(struct mm_struct *mm, struct task_struct *p,
1530 			   int cpu)
1531 {
1532 	int scale;
1533 
1534 	if (get_nr_threads(p) <= 1)
1535 		return true;
1536 
1537 	/*
1538 	 * Scale the number of 'cores' in a LLC by llc_aggr_tolerance
1539 	 * and compare it to the task's active threads.
1540 	 */
1541 	scale = get_sched_cache_scale(1);
1542 	if (scale == INT_MAX)
1543 		return false;
1544 
1545 	return !fits_capacity((mm->sc_stat.nr_running_avg * cpu_smt_num_threads),
1546 			(scale * per_cpu(sd_llc_size, cpu)));
1547 }
1548 
1549 static void account_llc_enqueue(struct rq *rq, struct task_struct *p)
1550 {
1551 	int pref_llc, pref_llc_queued;
1552 	struct sched_domain *sd;
1553 
1554 	pref_llc = p->preferred_llc;
1555 	if (pref_llc < 0)
1556 		return;
1557 
1558 	pref_llc_queued = (pref_llc == task_llc(p));
1559 	rq->nr_llc_running++;
1560 	rq->nr_pref_llc_running += pref_llc_queued;
1561 
1562 	/*
1563 	 * Record whether p is enqueued on its preferred
1564 	 * LLC, in order to pair with account_llc_dequeue()
1565 	 * to maintain a consistent nr_pref_llc_running per
1566 	 * runqueue.
1567 	 * This is necessary because a race condition exists:
1568 	 * after a task is enqueued on a runqueue, task_llc(p)
1569 	 * may change due to CPU hotplug. Therefore, checking
1570 	 * task_llc(p) to determine whether the task is being
1571 	 * dequeued from its preferred LLC is unreliable and
1572 	 * can cause inconsistent values - checking the
1573 	 * p->pref_llc_queued in account_llc_dequeue() would
1574 	 * be reliable.
1575 	 */
1576 	p->pref_llc_queued = pref_llc_queued;
1577 
1578 	sd = rcu_dereference_all(rq->sd);
1579 	if (sd && (unsigned int)pref_llc < sd->llc_max)
1580 		sd->llc_counts[pref_llc]++;
1581 }
1582 
1583 static void account_llc_dequeue(struct rq *rq, struct task_struct *p)
1584 {
1585 	struct sched_domain *sd;
1586 	int pref_llc;
1587 
1588 	pref_llc = p->preferred_llc;
1589 	if (pref_llc < 0)
1590 		return;
1591 
1592 	rq->nr_llc_running--;
1593 	if (p->pref_llc_queued) {
1594 		rq->nr_pref_llc_running--;
1595 		/*
1596 		 * Update the status in case
1597 		 * other logic might query
1598 		 * this.
1599 		 */
1600 		p->pref_llc_queued = 0;
1601 	}
1602 
1603 	sd = rcu_dereference_all(rq->sd);
1604 	if (sd && (unsigned int)pref_llc < sd->llc_max) {
1605 		/*
1606 		 * There is a race condition between dequeue
1607 		 * and CPU hotplug. After a task has been enqueued
1608 		 * on CPUx, a CPU hotplug event occurs, and all online
1609 		 * CPUs (including CPUx) rebuild their sched_domains
1610 		 * and reset statistics to zero(including sd->llc_counts).
1611 		 * This can cause temporary undercount and we have to
1612 		 * check for such underflow in sd->llc_counts.
1613 		 *
1614 		 * This undercount is temporary and accurate accounting
1615 		 * will resume once the rq has a chance to be idle.
1616 		 */
1617 		if (sd->llc_counts[pref_llc])
1618 			sd->llc_counts[pref_llc]--;
1619 	}
1620 }
1621 
1622 void mm_init_sched(struct mm_struct *mm,
1623 		   struct sched_cache_time __percpu *_pcpu_sched)
1624 {
1625 	unsigned long epoch = 0;
1626 	int i;
1627 
1628 	for_each_possible_cpu(i) {
1629 		struct sched_cache_time *pcpu_sched = per_cpu_ptr(_pcpu_sched, i);
1630 		struct rq *rq = cpu_rq(i);
1631 
1632 		pcpu_sched->runtime = 0;
1633 		/* a slightly stale cpu epoch is acceptible */
1634 		pcpu_sched->epoch = rq->cpu_epoch;
1635 		epoch = rq->cpu_epoch;
1636 	}
1637 
1638 	raw_spin_lock_init(&mm->sc_stat.lock);
1639 	mm->sc_stat.epoch = epoch;
1640 	mm->sc_stat.cpu = -1;
1641 	mm->sc_stat.next_scan = jiffies;
1642 	mm->sc_stat.nr_running_avg = 0;
1643 	mm->sc_stat.footprint = 0;
1644 	/*
1645 	 * The update to mm->sc_stat should not be reordered
1646 	 * before initialization to mm's other fields, in case
1647 	 * the readers may get invalid mm_sched_epoch, etc.
1648 	 */
1649 	smp_store_release(&mm->sc_stat.pcpu_sched, _pcpu_sched);
1650 }
1651 
1652 /* because why would C be fully specified */
1653 static __always_inline void __shr_u64(u64 *val, unsigned int n)
1654 {
1655 	if (n >= 64) {
1656 		*val = 0;
1657 		return;
1658 	}
1659 	*val >>= n;
1660 }
1661 
1662 static inline void __update_mm_sched(struct rq *rq,
1663 				     struct sched_cache_time *pcpu_sched)
1664 {
1665 	lockdep_assert_held(&rq->cpu_epoch_lock);
1666 
1667 	unsigned int period = max(READ_ONCE(llc_epoch_period), 1U);
1668 	unsigned long n, now = jiffies;
1669 	long delta = now - rq->cpu_epoch_next;
1670 
1671 	if (delta > 0) {
1672 		n = (delta + period - 1) / period;
1673 		rq->cpu_epoch += n;
1674 		rq->cpu_epoch_next += n * period;
1675 		__shr_u64(&rq->cpu_runtime, n);
1676 	}
1677 
1678 	n = rq->cpu_epoch - pcpu_sched->epoch;
1679 	if (n) {
1680 		pcpu_sched->epoch += n;
1681 		__shr_u64(&pcpu_sched->runtime, n);
1682 	}
1683 }
1684 
1685 static unsigned long fraction_mm_sched(struct rq *rq,
1686 				       struct sched_cache_time *pcpu_sched)
1687 {
1688 	guard(raw_spinlock_irqsave)(&rq->cpu_epoch_lock);
1689 
1690 	__update_mm_sched(rq, pcpu_sched);
1691 
1692 	/*
1693 	 * Runtime is a geometric series (r=0.5) and as such will sum to twice
1694 	 * the accumulation period, this means the multiplcation here should
1695 	 * not overflow.
1696 	 */
1697 	return div64_u64(NICE_0_LOAD * pcpu_sched->runtime, rq->cpu_runtime + 1);
1698 }
1699 
1700 static int get_pref_llc(struct task_struct *p, struct mm_struct *mm)
1701 {
1702 	int mm_sched_llc = -1, mm_sched_cpu;
1703 
1704 	if (!mm)
1705 		return -1;
1706 
1707 	mm_sched_cpu = READ_ONCE(mm->sc_stat.cpu);
1708 	if (mm_sched_cpu != -1) {
1709 		mm_sched_llc = llc_id(mm_sched_cpu);
1710 
1711 #ifdef CONFIG_NUMA_BALANCING
1712 		/*
1713 		 * Don't assign preferred LLC if it
1714 		 * conflicts with NUMA balancing.
1715 		 * This can happen when sched_setnuma() gets
1716 		 * called, however it is not much of an issue
1717 		 * because we expect account_mm_sched() to get
1718 		 * called fairly regularly -- at a higher rate
1719 		 * than sched_setnuma() at least -- and thus the
1720 		 * conflict only exists for a short period of time.
1721 		 */
1722 		if (static_branch_likely(&sched_numa_balancing) &&
1723 		    p->numa_preferred_nid >= 0 &&
1724 		    cpu_to_node(mm_sched_cpu) != p->numa_preferred_nid)
1725 			mm_sched_llc = -1;
1726 #endif
1727 	}
1728 
1729 	return mm_sched_llc;
1730 }
1731 
1732 static unsigned int task_running_on_cpu(int cpu, struct task_struct *p);
1733 
1734 static inline
1735 void account_mm_sched(struct rq *rq, struct task_struct *p, s64 delta_exec)
1736 {
1737 	struct sched_cache_time *pcpu_sched;
1738 	struct mm_struct *mm = p->mm;
1739 	int mm_sched_llc = -1;
1740 	unsigned long epoch;
1741 
1742 	if (!sched_cache_enabled())
1743 		return;
1744 
1745 	if (p->sched_class != &fair_sched_class)
1746 		return;
1747 	/*
1748 	 * init_task, kthreads and user thread created
1749 	 * by user_mode_thread() don't have mm.
1750 	 */
1751 	if (!mm || !mm->sc_stat.pcpu_sched)
1752 		return;
1753 
1754 	pcpu_sched = per_cpu_ptr(mm->sc_stat.pcpu_sched, cpu_of(rq));
1755 
1756 	scoped_guard (raw_spinlock, &rq->cpu_epoch_lock) {
1757 		__update_mm_sched(rq, pcpu_sched);
1758 		pcpu_sched->runtime += delta_exec;
1759 		rq->cpu_runtime += delta_exec;
1760 		epoch = rq->cpu_epoch;
1761 	}
1762 
1763 	/*
1764 	 * If this process hasn't hit task_cache_work() for a while invalidate
1765 	 * its preferred state.
1766 	 */
1767 	if ((long)(epoch - READ_ONCE(mm->sc_stat.epoch)) > llc_epoch_affinity_timeout ||
1768 	    invalid_llc_nr(mm, p, cpu_of(rq)) ||
1769 	    exceed_llc_capacity(mm, cpu_of(rq))) {
1770 		if (READ_ONCE(mm->sc_stat.cpu) != -1)
1771 			WRITE_ONCE(mm->sc_stat.cpu, -1);
1772 	}
1773 
1774 	mm_sched_llc = get_pref_llc(p, mm);
1775 
1776 	/* task not on rq accounted later in account_entity_enqueue() */
1777 	if (task_running_on_cpu(rq->cpu, p) &&
1778 	    READ_ONCE(p->preferred_llc) != mm_sched_llc) {
1779 		account_llc_dequeue(rq, p);
1780 		WRITE_ONCE(p->preferred_llc, mm_sched_llc);
1781 		account_llc_enqueue(rq, p);
1782 	}
1783 }
1784 
1785 static void task_tick_cache(struct rq *rq, struct task_struct *p)
1786 {
1787 	struct callback_head *work = &p->cache_work;
1788 	struct mm_struct *mm = p->mm;
1789 	unsigned long epoch;
1790 
1791 	if (!sched_cache_enabled())
1792 		return;
1793 
1794 	if (!mm || p->flags & PF_KTHREAD ||
1795 	    !mm->sc_stat.pcpu_sched)
1796 		return;
1797 
1798 	epoch = rq->cpu_epoch;
1799 	/* avoid moving backwards */
1800 	if (time_after_eq(mm->sc_stat.epoch, epoch))
1801 		return;
1802 
1803 	guard(raw_spinlock)(&mm->sc_stat.lock);
1804 
1805 	if (work->next == work) {
1806 		task_work_add(p, work, TWA_RESUME);
1807 		WRITE_ONCE(mm->sc_stat.epoch, epoch);
1808 	}
1809 }
1810 
1811 static void get_scan_cpumasks(cpumask_var_t cpus, struct task_struct *p)
1812 {
1813 #ifdef CONFIG_NUMA_BALANCING
1814 	int cpu, curr_cpu, nid, pref_nid;
1815 
1816 	if (!static_branch_likely(&sched_numa_balancing))
1817 		goto out;
1818 
1819 	cpu = READ_ONCE(p->mm->sc_stat.cpu);
1820 	if (cpu != -1)
1821 		nid = cpu_to_node(cpu);
1822 	curr_cpu = task_cpu(p);
1823 
1824 	/*
1825 	 * Scanning in the preferred NUMA node is ideal. However, the NUMA
1826 	 * preferred node is per-task rather than per-process. It is possible
1827 	 * for different threads of the process to have distinct preferred
1828 	 * nodes; consequently, the process-wide preferred LLC may bounce
1829 	 * between different nodes. As a workaround, maintain the scan
1830 	 * CPU mask to also cover the process's current preferred LLC and the
1831 	 * current running node to mitigate the bouncing risk.
1832 	 * TBD: numa_group should be considered during task aggregation.
1833 	 */
1834 	pref_nid = p->numa_preferred_nid;
1835 	/* honor the task's preferred node */
1836 	if (pref_nid == NUMA_NO_NODE)
1837 		goto out;
1838 
1839 	cpumask_or(cpus, cpus, cpumask_of_node(pref_nid));
1840 
1841 	/* honor the task's preferred LLC CPU */
1842 	if (cpu != -1 && !cpumask_test_cpu(cpu, cpus) && nid != NUMA_NO_NODE)
1843 		cpumask_or(cpus, cpus, cpumask_of_node(nid));
1844 
1845 	/* make sure the task's current running node is included */
1846 	if (!cpumask_test_cpu(curr_cpu, cpus))
1847 		cpumask_or(cpus, cpus, cpumask_of_node(cpu_to_node(curr_cpu)));
1848 
1849 	return;
1850 
1851 out:
1852 #endif
1853 	cpumask_copy(cpus, cpu_online_mask);
1854 }
1855 
1856 static inline void update_avg_scale(u64 *avg, u64 sample)
1857 {
1858 	int factor = per_cpu(sd_llc_size, raw_smp_processor_id());
1859 	s64 diff = sample - *avg;
1860 	u32 divisor;
1861 
1862 	/*
1863 	 * Scale the divisor based on the number of CPUs contained
1864 	 * in the LLC. This scaling ensures smaller LLC domains use
1865 	 * a smaller divisor to achieve more precise sensitivity to
1866 	 * changes in nr_running, while larger LLC domains are capped
1867 	 * at a maximum divisor of 8 which is the default smoothing
1868 	 * factor of EWMA in update_avg().
1869 	 */
1870 	divisor = clamp_t(u32, (factor >> 2), 2, 8);
1871 	*avg += div64_s64(diff, divisor);
1872 }
1873 
1874 static void task_cache_work(struct callback_head *work)
1875 {
1876 	int cpu, m_a_cpu = -1, nr_running = 0, curr_cpu;
1877 	unsigned long next_scan, now = jiffies;
1878 	struct task_struct *p = current, *cur;
1879 	unsigned long curr_m_a_occ = 0;
1880 	struct mm_struct *mm = p->mm;
1881 	unsigned long m_a_occ = 0;
1882 	cpumask_var_t cpus;
1883 
1884 	WARN_ON_ONCE(work != &p->cache_work);
1885 
1886 	work->next = work;
1887 
1888 	if (p->flags & PF_EXITING)
1889 		return;
1890 
1891 	next_scan = READ_ONCE(mm->sc_stat.next_scan);
1892 	if (time_before(now, next_scan))
1893 		return;
1894 
1895 	/* only 1 thread is allowed to scan */
1896 	if (!try_cmpxchg(&mm->sc_stat.next_scan, &next_scan,
1897 			 now + max_t(unsigned long,
1898 				     READ_ONCE(llc_epoch_period), 1)))
1899 		return;
1900 
1901 	curr_cpu = task_cpu(p);
1902 	if (invalid_llc_nr(mm, p, curr_cpu) ||
1903 	    exceed_llc_capacity(mm, curr_cpu)) {
1904 		if (READ_ONCE(mm->sc_stat.cpu) != -1)
1905 			WRITE_ONCE(mm->sc_stat.cpu, -1);
1906 
1907 		return;
1908 	}
1909 
1910 	if (!zalloc_cpumask_var(&cpus, GFP_KERNEL))
1911 		return;
1912 
1913 	scoped_guard (cpus_read_lock) {
1914 		guard(rcu)();
1915 
1916 		get_scan_cpumasks(cpus, p);
1917 
1918 		for_each_cpu(cpu, cpus) {
1919 			/* XXX sched_cluster_active */
1920 			struct sched_domain *sd = rcu_dereference_all(per_cpu(sd_llc, cpu));
1921 			unsigned long occ, m_occ = 0, a_occ = 0;
1922 			int m_cpu = -1, i;
1923 
1924 			if (!sd)
1925 				continue;
1926 
1927 			for_each_cpu(i, sched_domain_span(sd)) {
1928 				occ = fraction_mm_sched(cpu_rq(i),
1929 							per_cpu_ptr(mm->sc_stat.pcpu_sched, i));
1930 				a_occ += occ;
1931 				if (occ > m_occ) {
1932 					m_occ = occ;
1933 					m_cpu = i;
1934 				}
1935 
1936 				cur = rcu_dereference_all(cpu_rq(i)->curr);
1937 				if (cur && !(cur->flags & (PF_EXITING | PF_KTHREAD)) &&
1938 				    cur->mm == mm)
1939 					nr_running++;
1940 			}
1941 
1942 			/*
1943 			 * Compare the accumulated occupancy of each LLC. The
1944 			 * reason for using accumulated occupancy rather than average
1945 			 * per CPU occupancy is that it works better in asymmetric LLC
1946 			 * scenarios.
1947 			 * For example, if there are 2 threads in a 4CPU LLC and 3
1948 			 * threads in an 8CPU LLC, it might be better to choose the one
1949 			 * with 3 threads. However, this would not be the case if the
1950 			 * occupancy is divided by the number of CPUs in an LLC (i.e.,
1951 			 * if average per CPU occupancy is used).
1952 			 * Besides, NUMA balancing fault statistics behave similarly:
1953 			 * the total number of faults per node is compared rather than
1954 			 * the average number of faults per CPU. This strategy is also
1955 			 * followed here.
1956 			 */
1957 			if (a_occ > m_a_occ) {
1958 				m_a_occ = a_occ;
1959 				m_a_cpu = m_cpu;
1960 			}
1961 
1962 			if (llc_id(cpu) == llc_id(READ_ONCE(mm->sc_stat.cpu)))
1963 				curr_m_a_occ = a_occ;
1964 
1965 			cpumask_andnot(cpus, cpus, sched_domain_span(sd));
1966 		}
1967 	}
1968 
1969 	if (m_a_occ > (2 * curr_m_a_occ)) {
1970 		/*
1971 		 * Avoid switching sc_stat.cpu too fast.
1972 		 * The reason to choose 2X is because:
1973 		 * 1. It is better to keep the preferred LLC stable,
1974 		 *    rather than changing it frequently and cause migrations
1975 		 * 2. 2X means the new preferred LLC has at least 1 more
1976 		 *    busy CPU than the old one(200% vs 100%, eg)
1977 		 * 3. 2X is chosen based on test results, as it delivers
1978 		 *    the optimal performance gain so far.
1979 		 */
1980 		WRITE_ONCE(mm->sc_stat.cpu, m_a_cpu);
1981 	}
1982 
1983 	update_avg_scale(&mm->sc_stat.nr_running_avg, nr_running);
1984 	free_cpumask_var(cpus);
1985 }
1986 
1987 void init_sched_mm(struct task_struct *p)
1988 {
1989 	struct callback_head *work = &p->cache_work;
1990 
1991 	init_task_work(work, task_cache_work);
1992 	work->next = work;
1993 	/*
1994 	 * Reset new task's preference to avoid
1995 	 * polluting account_llc_enqueue().
1996 	 */
1997 	p->preferred_llc = -1;
1998 }
1999 
2000 #else /* CONFIG_SCHED_CACHE */
2001 
2002 static inline void account_mm_sched(struct rq *rq, struct task_struct *p,
2003 				    s64 delta_exec) { }
2004 
2005 void init_sched_mm(struct task_struct *p) { }
2006 
2007 static void task_tick_cache(struct rq *rq, struct task_struct *p) { }
2008 
2009 static inline int get_pref_llc(struct task_struct *p,
2010 			       struct mm_struct *mm)
2011 {
2012 	return -1;
2013 }
2014 
2015 static void account_llc_enqueue(struct rq *rq, struct task_struct *p) {}
2016 
2017 static void account_llc_dequeue(struct rq *rq, struct task_struct *p) {}
2018 
2019 #endif /* CONFIG_SCHED_CACHE */
2020 
2021 /*
2022  * Used by other classes to account runtime.
2023  */
2024 s64 update_curr_common(struct rq *rq)
2025 {
2026 	return update_se(rq, &rq->donor->se);
2027 }
2028 
2029 /*
2030  * Update the current task's runtime statistics.
2031  */
2032 static void update_curr(struct cfs_rq *cfs_rq)
2033 {
2034 	/*
2035 	 * Note: cfs_rq->curr corresponds to the task picked to
2036 	 * run (ie: rq->donor.se) which due to proxy-exec may
2037 	 * not necessarily be the actual task running
2038 	 * (rq->curr.se). This is easy to confuse!
2039 	 */
2040 	struct sched_entity *curr = cfs_rq->h_curr;
2041 	struct rq *rq = rq_of(cfs_rq);
2042 	s64 delta_exec;
2043 	bool resched;
2044 
2045 	if (unlikely(!curr))
2046 		return;
2047 
2048 	delta_exec = update_se(rq, curr);
2049 	if (unlikely(delta_exec <= 0))
2050 		return;
2051 
2052 	account_cfs_rq_runtime(cfs_rq, delta_exec);
2053 
2054 	if (!entity_is_task(curr))
2055 		return;
2056 
2057 	cfs_rq = &rq->cfs;
2058 
2059 	curr->vruntime += calc_delta_fair(delta_exec, curr);
2060 	resched = update_deadline(cfs_rq, curr);
2061 
2062 	/*
2063 	 * If the fair_server is active, we need to account for the
2064 	 * fair_server time whether or not the task is running on
2065 	 * behalf of fair_server or not:
2066 	 *  - If the task is running on behalf of fair_server, we need
2067 	 *    to limit its time based on the assigned runtime.
2068 	 *  - Fair task that runs outside of fair_server should account
2069 	 *    against fair_server such that it can account for this time
2070 	 *    and possibly avoid running this period.
2071 	 */
2072 	dl_server_update(&rq->fair_server, delta_exec);
2073 
2074 	if (cfs_rq->h_nr_queued == 1)
2075 		return;
2076 
2077 	if (resched || !protect_slice(curr)) {
2078 		resched_curr_lazy(rq);
2079 		clear_buddies(cfs_rq, curr);
2080 	}
2081 }
2082 
2083 static void update_curr_fair(struct rq *rq)
2084 {
2085 	struct sched_entity *se = &rq->donor->se;
2086 
2087 	for_each_sched_entity(se)
2088 		update_curr(cfs_rq_of(se));
2089 }
2090 
2091 static inline void
2092 update_stats_wait_start_fair(struct cfs_rq *cfs_rq, struct sched_entity *se)
2093 {
2094 	struct sched_statistics *stats;
2095 	struct task_struct *p = NULL;
2096 
2097 	if (!schedstat_enabled())
2098 		return;
2099 
2100 	stats = __schedstats_from_se(se);
2101 
2102 	if (entity_is_task(se))
2103 		p = task_of(se);
2104 
2105 	__update_stats_wait_start(rq_of(cfs_rq), p, stats);
2106 }
2107 
2108 static inline void
2109 update_stats_wait_end_fair(struct cfs_rq *cfs_rq, struct sched_entity *se)
2110 {
2111 	struct sched_statistics *stats;
2112 	struct task_struct *p = NULL;
2113 
2114 	if (!schedstat_enabled())
2115 		return;
2116 
2117 	stats = __schedstats_from_se(se);
2118 
2119 	/*
2120 	 * When the sched_schedstat changes from 0 to 1, some sched se
2121 	 * maybe already in the runqueue, the se->statistics.wait_start
2122 	 * will be 0.So it will let the delta wrong. We need to avoid this
2123 	 * scenario.
2124 	 */
2125 	if (unlikely(!schedstat_val(stats->wait_start)))
2126 		return;
2127 
2128 	if (entity_is_task(se))
2129 		p = task_of(se);
2130 
2131 	__update_stats_wait_end(rq_of(cfs_rq), p, stats);
2132 }
2133 
2134 static inline void
2135 update_stats_enqueue_sleeper_fair(struct cfs_rq *cfs_rq, struct sched_entity *se)
2136 {
2137 	struct sched_statistics *stats;
2138 	struct task_struct *tsk = NULL;
2139 
2140 	if (!schedstat_enabled())
2141 		return;
2142 
2143 	stats = __schedstats_from_se(se);
2144 
2145 	if (entity_is_task(se))
2146 		tsk = task_of(se);
2147 
2148 	__update_stats_enqueue_sleeper(rq_of(cfs_rq), tsk, stats);
2149 }
2150 
2151 /*
2152  * Task is being enqueued - update stats:
2153  */
2154 static inline void
2155 update_stats_enqueue_fair(struct cfs_rq *cfs_rq, struct sched_entity *se, int flags)
2156 {
2157 	if (!schedstat_enabled())
2158 		return;
2159 
2160 	/*
2161 	 * Are we enqueueing a waiting task? (for current tasks
2162 	 * a dequeue/enqueue event is a NOP)
2163 	 */
2164 	if (se != cfs_rq->h_curr)
2165 		update_stats_wait_start_fair(cfs_rq, se);
2166 
2167 	if (flags & ENQUEUE_WAKEUP)
2168 		update_stats_enqueue_sleeper_fair(cfs_rq, se);
2169 }
2170 
2171 static inline void
2172 update_stats_dequeue_fair(struct cfs_rq *cfs_rq, struct sched_entity *se, int flags)
2173 {
2174 
2175 	if (!schedstat_enabled())
2176 		return;
2177 
2178 	/*
2179 	 * Mark the end of the wait period if dequeueing a
2180 	 * waiting task:
2181 	 */
2182 	if (se != cfs_rq->h_curr)
2183 		update_stats_wait_end_fair(cfs_rq, se);
2184 
2185 	if ((flags & DEQUEUE_SLEEP) && entity_is_task(se)) {
2186 		struct task_struct *tsk = task_of(se);
2187 		unsigned int state;
2188 
2189 		/* XXX racy against TTWU */
2190 		state = READ_ONCE(tsk->__state);
2191 		if (state & TASK_INTERRUPTIBLE)
2192 			__schedstat_set(tsk->stats.sleep_start,
2193 				      rq_clock(rq_of(cfs_rq)));
2194 		if (state & TASK_UNINTERRUPTIBLE)
2195 			__schedstat_set(tsk->stats.block_start,
2196 				      rq_clock(rq_of(cfs_rq)));
2197 	}
2198 }
2199 
2200 /*
2201  * We are picking a new current task - update its stats:
2202  */
2203 static inline void
2204 update_stats_curr_start(struct cfs_rq *cfs_rq, struct sched_entity *se)
2205 {
2206 	/*
2207 	 * We are starting a new run period:
2208 	 */
2209 	se->exec_start = rq_clock_task(rq_of(cfs_rq));
2210 }
2211 
2212 /* Check sched_smt_active before calling this to avoid overheads in fastpaths */
2213 static inline bool is_core_idle(int cpu)
2214 {
2215 	int sibling;
2216 
2217 	for_each_cpu(sibling, cpu_smt_mask(cpu)) {
2218 		if (cpu == sibling)
2219 			continue;
2220 
2221 		if (!idle_cpu(sibling))
2222 			return false;
2223 	}
2224 
2225 	return true;
2226 }
2227 
2228 #ifdef CONFIG_NUMA
2229 #define NUMA_IMBALANCE_MIN 2
2230 
2231 static inline long
2232 adjust_numa_imbalance(int imbalance, int dst_running, int imb_numa_nr)
2233 {
2234 	/*
2235 	 * Allow a NUMA imbalance if busy CPUs is less than the maximum
2236 	 * threshold. Above this threshold, individual tasks may be contending
2237 	 * for both memory bandwidth and any shared HT resources.  This is an
2238 	 * approximation as the number of running tasks may not be related to
2239 	 * the number of busy CPUs due to sched_setaffinity.
2240 	 */
2241 	if (dst_running > imb_numa_nr)
2242 		return imbalance;
2243 
2244 	/*
2245 	 * Allow a small imbalance based on a simple pair of communicating
2246 	 * tasks that remain local when the destination is lightly loaded.
2247 	 */
2248 	if (imbalance <= NUMA_IMBALANCE_MIN)
2249 		return 0;
2250 
2251 	return imbalance;
2252 }
2253 #endif /* CONFIG_NUMA */
2254 
2255 #ifdef CONFIG_NUMA_BALANCING
2256 /*
2257  * Approximate time to scan a full NUMA task in ms. The task scan period is
2258  * calculated based on the tasks virtual memory size and
2259  * numa_balancing_scan_size.
2260  */
2261 unsigned int sysctl_numa_balancing_scan_period_min = 1000;
2262 unsigned int sysctl_numa_balancing_scan_period_max = 60000;
2263 
2264 /* Portion of address space to scan in MB */
2265 unsigned int sysctl_numa_balancing_scan_size = 256;
2266 
2267 /* Scan @scan_size MB every @scan_period after an initial @scan_delay in ms */
2268 unsigned int sysctl_numa_balancing_scan_delay = 1000;
2269 
2270 /* The page with hint page fault latency < threshold in ms is considered hot */
2271 unsigned int sysctl_numa_balancing_hot_threshold = MSEC_PER_SEC;
2272 
2273 struct numa_group {
2274 	refcount_t refcount;
2275 
2276 	spinlock_t lock; /* nr_tasks, tasks */
2277 	int nr_tasks;
2278 	pid_t gid;
2279 	int active_nodes;
2280 
2281 	struct rcu_head rcu;
2282 	unsigned long total_faults;
2283 	unsigned long max_faults_cpu;
2284 	/*
2285 	 * faults[] array is split into two regions: faults_mem and faults_cpu.
2286 	 *
2287 	 * Faults_cpu is used to decide whether memory should move
2288 	 * towards the CPU. As a consequence, these stats are weighted
2289 	 * more by CPU use than by memory faults.
2290 	 */
2291 	unsigned long faults[];
2292 };
2293 
2294 /*
2295  * For functions that can be called in multiple contexts that permit reading
2296  * ->numa_group (see struct task_struct for locking rules).
2297  */
2298 static struct numa_group *deref_task_numa_group(struct task_struct *p)
2299 {
2300 	return rcu_dereference_check(p->numa_group, p == current ||
2301 		(lockdep_is_held(__rq_lockp(task_rq(p))) && !READ_ONCE(p->on_cpu)));
2302 }
2303 
2304 static struct numa_group *deref_curr_numa_group(struct task_struct *p)
2305 {
2306 	return rcu_dereference_protected(p->numa_group, p == current);
2307 }
2308 
2309 static inline unsigned long group_faults_priv(struct numa_group *ng);
2310 static inline unsigned long group_faults_shared(struct numa_group *ng);
2311 
2312 static unsigned int task_nr_scan_windows(struct task_struct *p)
2313 {
2314 	unsigned long rss = 0;
2315 	unsigned long nr_scan_pages;
2316 
2317 	/*
2318 	 * Calculations based on RSS as non-present and empty pages are skipped
2319 	 * by the PTE scanner and NUMA hinting faults should be trapped based
2320 	 * on resident pages
2321 	 */
2322 	nr_scan_pages = MB_TO_PAGES(sysctl_numa_balancing_scan_size);
2323 	rss = get_mm_rss(p->mm);
2324 	if (!rss)
2325 		rss = nr_scan_pages;
2326 
2327 	rss = round_up(rss, nr_scan_pages);
2328 	return rss / nr_scan_pages;
2329 }
2330 
2331 /* For sanity's sake, never scan more PTEs than MAX_SCAN_WINDOW MB/sec. */
2332 #define MAX_SCAN_WINDOW 2560
2333 
2334 static unsigned int task_scan_min(struct task_struct *p)
2335 {
2336 	unsigned int scan_size = READ_ONCE(sysctl_numa_balancing_scan_size);
2337 	unsigned int scan, floor;
2338 	unsigned int windows = 1;
2339 
2340 	if (scan_size < MAX_SCAN_WINDOW)
2341 		windows = MAX_SCAN_WINDOW / scan_size;
2342 	floor = 1000 / windows;
2343 
2344 	scan = sysctl_numa_balancing_scan_period_min / task_nr_scan_windows(p);
2345 	return max_t(unsigned int, floor, scan);
2346 }
2347 
2348 static unsigned int task_scan_start(struct task_struct *p)
2349 {
2350 	unsigned long smin = task_scan_min(p);
2351 	unsigned long period = smin;
2352 	struct numa_group *ng;
2353 
2354 	/* Scale the maximum scan period with the amount of shared memory. */
2355 	rcu_read_lock();
2356 	ng = rcu_dereference_all(p->numa_group);
2357 	if (ng) {
2358 		unsigned long shared = group_faults_shared(ng);
2359 		unsigned long private = group_faults_priv(ng);
2360 
2361 		period *= refcount_read(&ng->refcount);
2362 		period *= shared + 1;
2363 		period /= private + shared + 1;
2364 	}
2365 	rcu_read_unlock();
2366 
2367 	return max(smin, period);
2368 }
2369 
2370 static unsigned int task_scan_max(struct task_struct *p)
2371 {
2372 	unsigned long smin = task_scan_min(p);
2373 	unsigned long smax;
2374 	struct numa_group *ng;
2375 
2376 	/* Watch for min being lower than max due to floor calculations */
2377 	smax = sysctl_numa_balancing_scan_period_max / task_nr_scan_windows(p);
2378 
2379 	/* Scale the maximum scan period with the amount of shared memory. */
2380 	ng = deref_curr_numa_group(p);
2381 	if (ng) {
2382 		unsigned long shared = group_faults_shared(ng);
2383 		unsigned long private = group_faults_priv(ng);
2384 		unsigned long period = smax;
2385 
2386 		period *= refcount_read(&ng->refcount);
2387 		period *= shared + 1;
2388 		period /= private + shared + 1;
2389 
2390 		smax = max(smax, period);
2391 	}
2392 
2393 	return max(smin, smax);
2394 }
2395 
2396 static void account_numa_enqueue(struct rq *rq, struct task_struct *p)
2397 {
2398 	rq->nr_numa_running += (p->numa_preferred_nid != NUMA_NO_NODE);
2399 	rq->nr_preferred_running += (p->numa_preferred_nid == task_node(p));
2400 }
2401 
2402 static void account_numa_dequeue(struct rq *rq, struct task_struct *p)
2403 {
2404 	rq->nr_numa_running -= (p->numa_preferred_nid != NUMA_NO_NODE);
2405 	rq->nr_preferred_running -= (p->numa_preferred_nid == task_node(p));
2406 }
2407 
2408 /* Shared or private faults. */
2409 #define NR_NUMA_HINT_FAULT_TYPES 2
2410 
2411 /* Memory and CPU locality */
2412 #define NR_NUMA_HINT_FAULT_STATS (NR_NUMA_HINT_FAULT_TYPES * 2)
2413 
2414 /* Averaged statistics, and temporary buffers. */
2415 #define NR_NUMA_HINT_FAULT_BUCKETS (NR_NUMA_HINT_FAULT_STATS * 2)
2416 
2417 pid_t task_numa_group_id(struct task_struct *p)
2418 {
2419 	struct numa_group *ng;
2420 	pid_t gid = 0;
2421 
2422 	rcu_read_lock();
2423 	ng = rcu_dereference_all(p->numa_group);
2424 	if (ng)
2425 		gid = ng->gid;
2426 	rcu_read_unlock();
2427 
2428 	return gid;
2429 }
2430 
2431 /*
2432  * The averaged statistics, shared & private, memory & CPU,
2433  * occupy the first half of the array. The second half of the
2434  * array is for current counters, which are averaged into the
2435  * first set by task_numa_placement.
2436  */
2437 static inline int task_faults_idx(enum numa_faults_stats s, int nid, int priv)
2438 {
2439 	return NR_NUMA_HINT_FAULT_TYPES * (s * nr_node_ids + nid) + priv;
2440 }
2441 
2442 static inline unsigned long task_faults(struct task_struct *p, int nid)
2443 {
2444 	if (!p->numa_faults)
2445 		return 0;
2446 
2447 	return p->numa_faults[task_faults_idx(NUMA_MEM, nid, 0)] +
2448 		p->numa_faults[task_faults_idx(NUMA_MEM, nid, 1)];
2449 }
2450 
2451 static inline unsigned long group_faults(struct task_struct *p, int nid)
2452 {
2453 	struct numa_group *ng = deref_task_numa_group(p);
2454 
2455 	if (!ng)
2456 		return 0;
2457 
2458 	return ng->faults[task_faults_idx(NUMA_MEM, nid, 0)] +
2459 		ng->faults[task_faults_idx(NUMA_MEM, nid, 1)];
2460 }
2461 
2462 static inline unsigned long group_faults_cpu(struct numa_group *group, int nid)
2463 {
2464 	return group->faults[task_faults_idx(NUMA_CPU, nid, 0)] +
2465 		group->faults[task_faults_idx(NUMA_CPU, nid, 1)];
2466 }
2467 
2468 static inline unsigned long group_faults_priv(struct numa_group *ng)
2469 {
2470 	unsigned long faults = 0;
2471 	int node;
2472 
2473 	for_each_online_node(node) {
2474 		faults += ng->faults[task_faults_idx(NUMA_MEM, node, 1)];
2475 	}
2476 
2477 	return faults;
2478 }
2479 
2480 static inline unsigned long group_faults_shared(struct numa_group *ng)
2481 {
2482 	unsigned long faults = 0;
2483 	int node;
2484 
2485 	for_each_online_node(node) {
2486 		faults += ng->faults[task_faults_idx(NUMA_MEM, node, 0)];
2487 	}
2488 
2489 	return faults;
2490 }
2491 
2492 /*
2493  * A node triggering more than 1/3 as many NUMA faults as the maximum is
2494  * considered part of a numa group's pseudo-interleaving set. Migrations
2495  * between these nodes are slowed down, to allow things to settle down.
2496  */
2497 #define ACTIVE_NODE_FRACTION 3
2498 
2499 static bool numa_is_active_node(int nid, struct numa_group *ng)
2500 {
2501 	return group_faults_cpu(ng, nid) * ACTIVE_NODE_FRACTION > ng->max_faults_cpu;
2502 }
2503 
2504 /* Handle placement on systems where not all nodes are directly connected. */
2505 static unsigned long score_nearby_nodes(struct task_struct *p, int nid,
2506 					int lim_dist, bool task)
2507 {
2508 	unsigned long score = 0;
2509 	int node, max_dist;
2510 
2511 	/*
2512 	 * All nodes are directly connected, and the same distance
2513 	 * from each other. No need for fancy placement algorithms.
2514 	 */
2515 	if (sched_numa_topology_type == NUMA_DIRECT)
2516 		return 0;
2517 
2518 	/* sched_max_numa_distance may be changed in parallel. */
2519 	max_dist = READ_ONCE(sched_max_numa_distance);
2520 	/*
2521 	 * This code is called for each node, introducing N^2 complexity,
2522 	 * which should be OK given the number of nodes rarely exceeds 8.
2523 	 */
2524 	for_each_online_node(node) {
2525 		unsigned long faults;
2526 		int dist = node_distance(nid, node);
2527 
2528 		/*
2529 		 * The furthest away nodes in the system are not interesting
2530 		 * for placement; nid was already counted.
2531 		 */
2532 		if (dist >= max_dist || node == nid)
2533 			continue;
2534 
2535 		/*
2536 		 * On systems with a backplane NUMA topology, compare groups
2537 		 * of nodes, and move tasks towards the group with the most
2538 		 * memory accesses. When comparing two nodes at distance
2539 		 * "hoplimit", only nodes closer by than "hoplimit" are part
2540 		 * of each group. Skip other nodes.
2541 		 */
2542 		if (sched_numa_topology_type == NUMA_BACKPLANE && dist >= lim_dist)
2543 			continue;
2544 
2545 		/* Add up the faults from nearby nodes. */
2546 		if (task)
2547 			faults = task_faults(p, node);
2548 		else
2549 			faults = group_faults(p, node);
2550 
2551 		/*
2552 		 * On systems with a glueless mesh NUMA topology, there are
2553 		 * no fixed "groups of nodes". Instead, nodes that are not
2554 		 * directly connected bounce traffic through intermediate
2555 		 * nodes; a numa_group can occupy any set of nodes.
2556 		 * The further away a node is, the less the faults count.
2557 		 * This seems to result in good task placement.
2558 		 */
2559 		if (sched_numa_topology_type == NUMA_GLUELESS_MESH) {
2560 			faults *= (max_dist - dist);
2561 			faults /= (max_dist - LOCAL_DISTANCE);
2562 		}
2563 
2564 		score += faults;
2565 	}
2566 
2567 	return score;
2568 }
2569 
2570 /*
2571  * These return the fraction of accesses done by a particular task, or
2572  * task group, on a particular numa node.  The group weight is given a
2573  * larger multiplier, in order to group tasks together that are almost
2574  * evenly spread out between numa nodes.
2575  */
2576 static inline unsigned long task_weight(struct task_struct *p, int nid,
2577 					int dist)
2578 {
2579 	unsigned long faults, total_faults;
2580 
2581 	if (!p->numa_faults)
2582 		return 0;
2583 
2584 	total_faults = p->total_numa_faults;
2585 
2586 	if (!total_faults)
2587 		return 0;
2588 
2589 	faults = task_faults(p, nid);
2590 	faults += score_nearby_nodes(p, nid, dist, true);
2591 
2592 	return 1000 * faults / total_faults;
2593 }
2594 
2595 static inline unsigned long group_weight(struct task_struct *p, int nid,
2596 					 int dist)
2597 {
2598 	struct numa_group *ng = deref_task_numa_group(p);
2599 	unsigned long faults, total_faults;
2600 
2601 	if (!ng)
2602 		return 0;
2603 
2604 	total_faults = ng->total_faults;
2605 
2606 	if (!total_faults)
2607 		return 0;
2608 
2609 	faults = group_faults(p, nid);
2610 	faults += score_nearby_nodes(p, nid, dist, false);
2611 
2612 	return 1000 * faults / total_faults;
2613 }
2614 
2615 /*
2616  * If memory tiering mode is enabled, cpupid of slow memory page is
2617  * used to record scan time instead of CPU and PID.  When tiering mode
2618  * is disabled at run time, the scan time (in cpupid) will be
2619  * interpreted as CPU and PID.  So CPU needs to be checked to avoid to
2620  * access out of array bound.
2621  */
2622 static inline bool cpupid_valid(int cpupid)
2623 {
2624 	return cpupid_to_cpu(cpupid) < nr_cpu_ids;
2625 }
2626 
2627 /*
2628  * For memory tiering mode, if there are enough free pages (more than
2629  * enough watermark defined here) in fast memory node, to take full
2630  * advantage of fast memory capacity, all recently accessed slow
2631  * memory pages will be migrated to fast memory node without
2632  * considering hot threshold.
2633  */
2634 static bool pgdat_free_space_enough(struct pglist_data *pgdat)
2635 {
2636 	int z;
2637 	unsigned long enough_wmark;
2638 
2639 	enough_wmark = max(1UL * 1024 * 1024 * 1024 >> PAGE_SHIFT,
2640 			   pgdat->node_present_pages >> 4);
2641 	for (z = pgdat->nr_zones - 1; z >= 0; z--) {
2642 		struct zone *zone = pgdat->node_zones + z;
2643 
2644 		if (!populated_zone(zone))
2645 			continue;
2646 
2647 		if (zone_watermark_ok(zone, 0,
2648 				      promo_wmark_pages(zone) + enough_wmark,
2649 				      ZONE_MOVABLE, 0))
2650 			return true;
2651 	}
2652 	return false;
2653 }
2654 
2655 /*
2656  * For memory tiering mode, when page tables are scanned, the scan
2657  * time will be recorded in struct page in addition to make page
2658  * PROT_NONE for slow memory page.  So when the page is accessed, in
2659  * hint page fault handler, the hint page fault latency is calculated
2660  * via,
2661  *
2662  *	hint page fault latency = hint page fault time - scan time
2663  *
2664  * The smaller the hint page fault latency, the higher the possibility
2665  * for the page to be hot.
2666  */
2667 static int numa_hint_fault_latency(struct folio *folio)
2668 {
2669 	int last_time, time;
2670 
2671 	time = jiffies_to_msecs(jiffies);
2672 	last_time = folio_xchg_access_time(folio, time);
2673 
2674 	return (time - last_time) & PAGE_ACCESS_TIME_MASK;
2675 }
2676 
2677 /*
2678  * For memory tiering mode, too high promotion/demotion throughput may
2679  * hurt application latency.  So we provide a mechanism to rate limit
2680  * the number of pages that are tried to be promoted.
2681  */
2682 static bool numa_promotion_rate_limit(struct pglist_data *pgdat,
2683 				      unsigned long rate_limit, int nr)
2684 {
2685 	unsigned long nr_cand;
2686 	unsigned int now, start;
2687 
2688 	now = jiffies_to_msecs(jiffies);
2689 	mod_node_page_state(pgdat, PGPROMOTE_CANDIDATE, nr);
2690 	nr_cand = node_page_state(pgdat, PGPROMOTE_CANDIDATE);
2691 	start = pgdat->nbp_rl_start;
2692 	if (now - start > MSEC_PER_SEC &&
2693 	    cmpxchg(&pgdat->nbp_rl_start, start, now) == start)
2694 		pgdat->nbp_rl_nr_cand = nr_cand;
2695 	if (nr_cand - pgdat->nbp_rl_nr_cand >= rate_limit)
2696 		return true;
2697 	return false;
2698 }
2699 
2700 #define NUMA_MIGRATION_ADJUST_STEPS	16
2701 
2702 static void numa_promotion_adjust_threshold(struct pglist_data *pgdat,
2703 					    unsigned long rate_limit,
2704 					    unsigned int ref_th)
2705 {
2706 	unsigned int now, start, th_period, unit_th, th;
2707 	unsigned long nr_cand, ref_cand, diff_cand;
2708 
2709 	now = jiffies_to_msecs(jiffies);
2710 	th_period = sysctl_numa_balancing_scan_period_max;
2711 	start = pgdat->nbp_th_start;
2712 	if (now - start > th_period &&
2713 	    cmpxchg(&pgdat->nbp_th_start, start, now) == start) {
2714 		ref_cand = rate_limit *
2715 			sysctl_numa_balancing_scan_period_max / MSEC_PER_SEC;
2716 		nr_cand = node_page_state(pgdat, PGPROMOTE_CANDIDATE);
2717 		diff_cand = nr_cand - pgdat->nbp_th_nr_cand;
2718 		unit_th = ref_th * 2 / NUMA_MIGRATION_ADJUST_STEPS;
2719 		th = pgdat->nbp_threshold ? : ref_th;
2720 		if (diff_cand > ref_cand * 11 / 10)
2721 			th = max(th - unit_th, unit_th);
2722 		else if (diff_cand < ref_cand * 9 / 10)
2723 			th = min(th + unit_th, ref_th * 2);
2724 		pgdat->nbp_th_nr_cand = nr_cand;
2725 		pgdat->nbp_threshold = th;
2726 	}
2727 }
2728 
2729 bool should_numa_migrate_memory(struct task_struct *p, struct folio *folio,
2730 				int src_nid, int dst_cpu)
2731 {
2732 	struct numa_group *ng = deref_curr_numa_group(p);
2733 	int dst_nid = cpu_to_node(dst_cpu);
2734 	int last_cpupid, this_cpupid;
2735 
2736 	/*
2737 	 * Cannot migrate to memoryless nodes.
2738 	 */
2739 	if (!node_state(dst_nid, N_MEMORY))
2740 		return false;
2741 
2742 	/*
2743 	 * The pages in slow memory node should be migrated according
2744 	 * to hot/cold instead of private/shared.
2745 	 */
2746 	if (folio_use_access_time(folio)) {
2747 		struct pglist_data *pgdat;
2748 		unsigned long rate_limit;
2749 		unsigned int latency, th, def_th;
2750 		long nr = folio_nr_pages(folio);
2751 
2752 		pgdat = NODE_DATA(dst_nid);
2753 		if (pgdat_free_space_enough(pgdat)) {
2754 			/* workload changed, reset hot threshold */
2755 			pgdat->nbp_threshold = 0;
2756 			mod_node_page_state(pgdat, PGPROMOTE_CANDIDATE_NRL, nr);
2757 			return true;
2758 		}
2759 
2760 		def_th = sysctl_numa_balancing_hot_threshold;
2761 		rate_limit = MB_TO_PAGES(sysctl_numa_balancing_promote_rate_limit);
2762 		numa_promotion_adjust_threshold(pgdat, rate_limit, def_th);
2763 
2764 		th = pgdat->nbp_threshold ? : def_th;
2765 		latency = numa_hint_fault_latency(folio);
2766 		if (latency >= th)
2767 			return false;
2768 
2769 		return !numa_promotion_rate_limit(pgdat, rate_limit, nr);
2770 	}
2771 
2772 	this_cpupid = cpu_pid_to_cpupid(dst_cpu, current->pid);
2773 	last_cpupid = folio_xchg_last_cpupid(folio, this_cpupid);
2774 
2775 	if (!(sysctl_numa_balancing_mode & NUMA_BALANCING_MEMORY_TIERING) &&
2776 	    !node_is_toptier(src_nid) && !cpupid_valid(last_cpupid))
2777 		return false;
2778 
2779 	/*
2780 	 * Allow first faults or private faults to migrate immediately early in
2781 	 * the lifetime of a task. The magic number 4 is based on waiting for
2782 	 * two full passes of the "multi-stage node selection" test that is
2783 	 * executed below.
2784 	 */
2785 	if ((p->numa_preferred_nid == NUMA_NO_NODE || p->numa_scan_seq <= 4) &&
2786 	    (cpupid_pid_unset(last_cpupid) || cpupid_match_pid(p, last_cpupid)))
2787 		return true;
2788 
2789 	/*
2790 	 * Multi-stage node selection is used in conjunction with a periodic
2791 	 * migration fault to build a temporal task<->page relation. By using
2792 	 * a two-stage filter we remove short/unlikely relations.
2793 	 *
2794 	 * Using P(p) ~ n_p / n_t as per frequentist probability, we can equate
2795 	 * a task's usage of a particular page (n_p) per total usage of this
2796 	 * page (n_t) (in a given time-span) to a probability.
2797 	 *
2798 	 * Our periodic faults will sample this probability and getting the
2799 	 * same result twice in a row, given these samples are fully
2800 	 * independent, is then given by P(n)^2, provided our sample period
2801 	 * is sufficiently short compared to the usage pattern.
2802 	 *
2803 	 * This quadric squishes small probabilities, making it less likely we
2804 	 * act on an unlikely task<->page relation.
2805 	 */
2806 	if (!cpupid_pid_unset(last_cpupid) &&
2807 				cpupid_to_nid(last_cpupid) != dst_nid)
2808 		return false;
2809 
2810 	/* Always allow migrate on private faults */
2811 	if (cpupid_match_pid(p, last_cpupid))
2812 		return true;
2813 
2814 	/* A shared fault, but p->numa_group has not been set up yet. */
2815 	if (!ng)
2816 		return true;
2817 
2818 	/*
2819 	 * Destination node is much more heavily used than the source
2820 	 * node? Allow migration.
2821 	 */
2822 	if (group_faults_cpu(ng, dst_nid) > group_faults_cpu(ng, src_nid) *
2823 					ACTIVE_NODE_FRACTION)
2824 		return true;
2825 
2826 	/*
2827 	 * Distribute memory according to CPU & memory use on each node,
2828 	 * with 3/4 hysteresis to avoid unnecessary memory migrations:
2829 	 *
2830 	 * faults_cpu(dst)   3   faults_cpu(src)
2831 	 * --------------- * - > ---------------
2832 	 * faults_mem(dst)   4   faults_mem(src)
2833 	 */
2834 	return group_faults_cpu(ng, dst_nid) * group_faults(p, src_nid) * 3 >
2835 	       group_faults_cpu(ng, src_nid) * group_faults(p, dst_nid) * 4;
2836 }
2837 
2838 /*
2839  * 'numa_type' describes the node at the moment of load balancing.
2840  */
2841 enum numa_type {
2842 	/* The node has spare capacity that can be used to run more tasks.  */
2843 	node_has_spare = 0,
2844 	/*
2845 	 * The node is fully used and the tasks don't compete for more CPU
2846 	 * cycles. Nevertheless, some tasks might wait before running.
2847 	 */
2848 	node_fully_busy,
2849 	/*
2850 	 * The node is overloaded and can't provide expected CPU cycles to all
2851 	 * tasks.
2852 	 */
2853 	node_overloaded
2854 };
2855 
2856 /* Cached statistics for all CPUs within a node */
2857 struct numa_stats {
2858 	unsigned long load;
2859 	unsigned long runnable;
2860 	unsigned long util;
2861 	/* Total compute capacity of CPUs on a node */
2862 	unsigned long compute_capacity;
2863 	unsigned int nr_running;
2864 	unsigned int weight;
2865 	enum numa_type node_type;
2866 	int idle_cpu;
2867 };
2868 
2869 struct task_numa_env {
2870 	struct task_struct *p;
2871 
2872 	int src_cpu, src_nid;
2873 	int dst_cpu, dst_nid;
2874 	int imb_numa_nr;
2875 
2876 	struct numa_stats src_stats, dst_stats;
2877 
2878 	int imbalance_pct;
2879 	int dist;
2880 
2881 	struct task_struct *best_task;
2882 	long best_imp;
2883 	int best_cpu;
2884 };
2885 
2886 static unsigned long cpu_load(struct rq *rq);
2887 static unsigned long cpu_runnable(struct rq *rq);
2888 
2889 static inline enum
2890 numa_type numa_classify(unsigned int imbalance_pct,
2891 			 struct numa_stats *ns)
2892 {
2893 	if ((ns->nr_running > ns->weight) &&
2894 	    (((ns->compute_capacity * 100) < (ns->util * imbalance_pct)) ||
2895 	     ((ns->compute_capacity * imbalance_pct) < (ns->runnable * 100))))
2896 		return node_overloaded;
2897 
2898 	if ((ns->nr_running < ns->weight) ||
2899 	    (((ns->compute_capacity * 100) > (ns->util * imbalance_pct)) &&
2900 	     ((ns->compute_capacity * imbalance_pct) > (ns->runnable * 100))))
2901 		return node_has_spare;
2902 
2903 	return node_fully_busy;
2904 }
2905 
2906 /* Forward declarations of select_idle_sibling helpers */
2907 static inline bool test_idle_cores(int cpu);
2908 static inline int numa_idle_core(int idle_core, int cpu)
2909 {
2910 	if (!sched_smt_active() ||
2911 	    idle_core >= 0 || !test_idle_cores(cpu))
2912 		return idle_core;
2913 
2914 	/*
2915 	 * Prefer cores instead of packing HT siblings
2916 	 * and triggering future load balancing.
2917 	 */
2918 	if (is_core_idle(cpu))
2919 		idle_core = cpu;
2920 
2921 	return idle_core;
2922 }
2923 
2924 /*
2925  * Gather all necessary information to make NUMA balancing placement
2926  * decisions that are compatible with standard load balancer. This
2927  * borrows code and logic from update_sg_lb_stats but sharing a
2928  * common implementation is impractical.
2929  */
2930 static void update_numa_stats(struct task_numa_env *env,
2931 			      struct numa_stats *ns, int nid,
2932 			      bool find_idle)
2933 {
2934 	int cpu, idle_core = -1;
2935 
2936 	memset(ns, 0, sizeof(*ns));
2937 	ns->idle_cpu = -1;
2938 
2939 	rcu_read_lock();
2940 	for_each_cpu(cpu, cpumask_of_node(nid)) {
2941 		struct rq *rq = cpu_rq(cpu);
2942 
2943 		ns->load += cpu_load(rq);
2944 		ns->runnable += cpu_runnable(rq);
2945 		ns->util += cpu_util_cfs(cpu);
2946 		ns->nr_running += rq->cfs.h_nr_runnable;
2947 		ns->compute_capacity += capacity_of(cpu);
2948 
2949 		if (find_idle && idle_core < 0 && !rq->nr_running && idle_cpu(cpu)) {
2950 			if (READ_ONCE(rq->numa_migrate_on) ||
2951 			    !cpumask_test_cpu(cpu, env->p->cpus_ptr))
2952 				continue;
2953 
2954 			if (ns->idle_cpu == -1)
2955 				ns->idle_cpu = cpu;
2956 
2957 			idle_core = numa_idle_core(idle_core, cpu);
2958 		}
2959 	}
2960 	rcu_read_unlock();
2961 
2962 	ns->weight = cpumask_weight(cpumask_of_node(nid));
2963 
2964 	ns->node_type = numa_classify(env->imbalance_pct, ns);
2965 
2966 	if (idle_core >= 0)
2967 		ns->idle_cpu = idle_core;
2968 }
2969 
2970 static void task_numa_assign(struct task_numa_env *env,
2971 			     struct task_struct *p, long imp)
2972 {
2973 	struct rq *rq = cpu_rq(env->dst_cpu);
2974 
2975 	/* Check if run-queue part of active NUMA balance. */
2976 	if (env->best_cpu != env->dst_cpu && xchg(&rq->numa_migrate_on, 1)) {
2977 		int cpu;
2978 		int start = env->dst_cpu;
2979 
2980 		/* Find alternative idle CPU. */
2981 		for_each_cpu_wrap(cpu, cpumask_of_node(env->dst_nid), start + 1) {
2982 			if (cpu == env->best_cpu || !idle_cpu(cpu) ||
2983 			    !cpumask_test_cpu(cpu, env->p->cpus_ptr)) {
2984 				continue;
2985 			}
2986 
2987 			env->dst_cpu = cpu;
2988 			rq = cpu_rq(env->dst_cpu);
2989 			if (!xchg(&rq->numa_migrate_on, 1))
2990 				goto assign;
2991 		}
2992 
2993 		/* Failed to find an alternative idle CPU */
2994 		return;
2995 	}
2996 
2997 assign:
2998 	/*
2999 	 * Clear previous best_cpu/rq numa-migrate flag, since task now
3000 	 * found a better CPU to move/swap.
3001 	 */
3002 	if (env->best_cpu != -1 && env->best_cpu != env->dst_cpu) {
3003 		rq = cpu_rq(env->best_cpu);
3004 		WRITE_ONCE(rq->numa_migrate_on, 0);
3005 	}
3006 
3007 	if (env->best_task)
3008 		put_task_struct(env->best_task);
3009 	if (p)
3010 		get_task_struct(p);
3011 
3012 	env->best_task = p;
3013 	env->best_imp = imp;
3014 	env->best_cpu = env->dst_cpu;
3015 }
3016 
3017 static bool load_too_imbalanced(long src_load, long dst_load,
3018 				struct task_numa_env *env)
3019 {
3020 	long imb, old_imb;
3021 	long orig_src_load, orig_dst_load;
3022 	long src_capacity, dst_capacity;
3023 
3024 	/*
3025 	 * The load is corrected for the CPU capacity available on each node.
3026 	 *
3027 	 * src_load        dst_load
3028 	 * ------------ vs ---------
3029 	 * src_capacity    dst_capacity
3030 	 */
3031 	src_capacity = env->src_stats.compute_capacity;
3032 	dst_capacity = env->dst_stats.compute_capacity;
3033 
3034 	imb = abs(dst_load * src_capacity - src_load * dst_capacity);
3035 
3036 	orig_src_load = env->src_stats.load;
3037 	orig_dst_load = env->dst_stats.load;
3038 
3039 	old_imb = abs(orig_dst_load * src_capacity - orig_src_load * dst_capacity);
3040 
3041 	/* Would this change make things worse? */
3042 	return (imb > old_imb);
3043 }
3044 
3045 /*
3046  * Maximum NUMA importance can be 1998 (2*999);
3047  * SMALLIMP @ 30 would be close to 1998/64.
3048  * Used to deter task migration.
3049  */
3050 #define SMALLIMP	30
3051 
3052 /*
3053  * This checks if the overall compute and NUMA accesses of the system would
3054  * be improved if the source tasks was migrated to the target dst_cpu taking
3055  * into account that it might be best if task running on the dst_cpu should
3056  * be exchanged with the source task
3057  */
3058 static bool task_numa_compare(struct task_numa_env *env,
3059 			      long taskimp, long groupimp, bool maymove)
3060 {
3061 	struct numa_group *cur_ng, *p_ng = deref_curr_numa_group(env->p);
3062 	struct rq *dst_rq = cpu_rq(env->dst_cpu);
3063 	long imp = p_ng ? groupimp : taskimp;
3064 	struct task_struct *cur;
3065 	long src_load, dst_load;
3066 	int dist = env->dist;
3067 	long moveimp = imp;
3068 	long load;
3069 	bool stopsearch = false;
3070 
3071 	if (READ_ONCE(dst_rq->numa_migrate_on))
3072 		return false;
3073 
3074 	rcu_read_lock();
3075 	cur = rcu_dereference_all(dst_rq->curr);
3076 	if (cur && ((cur->flags & (PF_EXITING | PF_KTHREAD)) ||
3077 		    !cur->mm))
3078 		cur = NULL;
3079 
3080 	/*
3081 	 * Because we have preemption enabled we can get migrated around and
3082 	 * end try selecting ourselves (current == env->p) as a swap candidate.
3083 	 */
3084 	if (cur == env->p) {
3085 		stopsearch = true;
3086 		goto unlock;
3087 	}
3088 
3089 	if (!cur) {
3090 		if (maymove && moveimp >= env->best_imp)
3091 			goto assign;
3092 		else
3093 			goto unlock;
3094 	}
3095 
3096 	/* Skip this swap candidate if cannot move to the source cpu. */
3097 	if (!cpumask_test_cpu(env->src_cpu, cur->cpus_ptr))
3098 		goto unlock;
3099 
3100 	/*
3101 	 * Skip this swap candidate if it is not moving to its preferred
3102 	 * node and the best task is.
3103 	 */
3104 	if (env->best_task &&
3105 	    env->best_task->numa_preferred_nid == env->src_nid &&
3106 	    cur->numa_preferred_nid != env->src_nid) {
3107 		goto unlock;
3108 	}
3109 
3110 	/*
3111 	 * "imp" is the fault differential for the source task between the
3112 	 * source and destination node. Calculate the total differential for
3113 	 * the source task and potential destination task. The more negative
3114 	 * the value is, the more remote accesses that would be expected to
3115 	 * be incurred if the tasks were swapped.
3116 	 *
3117 	 * If dst and source tasks are in the same NUMA group, or not
3118 	 * in any group then look only at task weights.
3119 	 */
3120 	cur_ng = rcu_dereference_all(cur->numa_group);
3121 	if (cur_ng == p_ng) {
3122 		/*
3123 		 * Do not swap within a group or between tasks that have
3124 		 * no group if there is spare capacity. Swapping does
3125 		 * not address the load imbalance and helps one task at
3126 		 * the cost of punishing another.
3127 		 */
3128 		if (env->dst_stats.node_type == node_has_spare)
3129 			goto unlock;
3130 
3131 		imp = taskimp + task_weight(cur, env->src_nid, dist) -
3132 		      task_weight(cur, env->dst_nid, dist);
3133 		/*
3134 		 * Add some hysteresis to prevent swapping the
3135 		 * tasks within a group over tiny differences.
3136 		 */
3137 		if (cur_ng)
3138 			imp -= imp / 16;
3139 	} else {
3140 		/*
3141 		 * Compare the group weights. If a task is all by itself
3142 		 * (not part of a group), use the task weight instead.
3143 		 */
3144 		if (cur_ng && p_ng)
3145 			imp += group_weight(cur, env->src_nid, dist) -
3146 			       group_weight(cur, env->dst_nid, dist);
3147 		else
3148 			imp += task_weight(cur, env->src_nid, dist) -
3149 			       task_weight(cur, env->dst_nid, dist);
3150 	}
3151 
3152 	/* Discourage picking a task already on its preferred node */
3153 	if (cur->numa_preferred_nid == env->dst_nid)
3154 		imp -= imp / 16;
3155 
3156 	/*
3157 	 * Encourage picking a task that moves to its preferred node.
3158 	 * This potentially makes imp larger than it's maximum of
3159 	 * 1998 (see SMALLIMP and task_weight for why) but in this
3160 	 * case, it does not matter.
3161 	 */
3162 	if (cur->numa_preferred_nid == env->src_nid)
3163 		imp += imp / 8;
3164 
3165 	if (maymove && moveimp > imp && moveimp > env->best_imp) {
3166 		imp = moveimp;
3167 		cur = NULL;
3168 		goto assign;
3169 	}
3170 
3171 	/*
3172 	 * Prefer swapping with a task moving to its preferred node over a
3173 	 * task that is not.
3174 	 */
3175 	if (env->best_task && cur->numa_preferred_nid == env->src_nid &&
3176 	    env->best_task->numa_preferred_nid != env->src_nid) {
3177 		goto assign;
3178 	}
3179 
3180 	/*
3181 	 * If the NUMA importance is less than SMALLIMP,
3182 	 * task migration might only result in ping pong
3183 	 * of tasks and also hurt performance due to cache
3184 	 * misses.
3185 	 */
3186 	if (imp < SMALLIMP || imp <= env->best_imp + SMALLIMP / 2)
3187 		goto unlock;
3188 
3189 	/*
3190 	 * In the overloaded case, try and keep the load balanced.
3191 	 */
3192 	load = task_h_load(env->p) - task_h_load(cur);
3193 	if (!load)
3194 		goto assign;
3195 
3196 	dst_load = env->dst_stats.load + load;
3197 	src_load = env->src_stats.load - load;
3198 
3199 	if (load_too_imbalanced(src_load, dst_load, env))
3200 		goto unlock;
3201 
3202 assign:
3203 	/* Evaluate an idle CPU for a task numa move. */
3204 	if (!cur) {
3205 		int cpu = env->dst_stats.idle_cpu;
3206 
3207 		/* Nothing cached so current CPU went idle since the search. */
3208 		if (cpu < 0)
3209 			cpu = env->dst_cpu;
3210 
3211 		/*
3212 		 * If the CPU is no longer truly idle and the previous best CPU
3213 		 * is, keep using it.
3214 		 */
3215 		if (!idle_cpu(cpu) && env->best_cpu >= 0 &&
3216 		    idle_cpu(env->best_cpu)) {
3217 			cpu = env->best_cpu;
3218 		}
3219 
3220 		env->dst_cpu = cpu;
3221 	}
3222 
3223 	task_numa_assign(env, cur, imp);
3224 
3225 	/*
3226 	 * If a move to idle is allowed because there is capacity or load
3227 	 * balance improves then stop the search. While a better swap
3228 	 * candidate may exist, a search is not free.
3229 	 */
3230 	if (maymove && !cur && env->best_cpu >= 0 && idle_cpu(env->best_cpu))
3231 		stopsearch = true;
3232 
3233 	/*
3234 	 * If a swap candidate must be identified and the current best task
3235 	 * moves its preferred node then stop the search.
3236 	 */
3237 	if (!maymove && env->best_task &&
3238 	    env->best_task->numa_preferred_nid == env->src_nid) {
3239 		stopsearch = true;
3240 	}
3241 unlock:
3242 	rcu_read_unlock();
3243 
3244 	return stopsearch;
3245 }
3246 
3247 static void task_numa_find_cpu(struct task_numa_env *env,
3248 				long taskimp, long groupimp)
3249 {
3250 	bool maymove = false;
3251 	int cpu;
3252 
3253 	/*
3254 	 * If dst node has spare capacity, then check if there is an
3255 	 * imbalance that would be overruled by the load balancer.
3256 	 */
3257 	if (env->dst_stats.node_type == node_has_spare) {
3258 		unsigned int imbalance;
3259 		int src_running, dst_running;
3260 
3261 		/*
3262 		 * Would movement cause an imbalance? Note that if src has
3263 		 * more running tasks that the imbalance is ignored as the
3264 		 * move improves the imbalance from the perspective of the
3265 		 * CPU load balancer.
3266 		 * */
3267 		src_running = env->src_stats.nr_running - 1;
3268 		dst_running = env->dst_stats.nr_running + 1;
3269 		imbalance = max(0, dst_running - src_running);
3270 		imbalance = adjust_numa_imbalance(imbalance, dst_running,
3271 						  env->imb_numa_nr);
3272 
3273 		/* Use idle CPU if there is no imbalance */
3274 		if (!imbalance) {
3275 			maymove = true;
3276 			if (env->dst_stats.idle_cpu >= 0) {
3277 				env->dst_cpu = env->dst_stats.idle_cpu;
3278 				task_numa_assign(env, NULL, 0);
3279 				return;
3280 			}
3281 		}
3282 	} else {
3283 		long src_load, dst_load, load;
3284 		/*
3285 		 * If the improvement from just moving env->p direction is better
3286 		 * than swapping tasks around, check if a move is possible.
3287 		 */
3288 		load = task_h_load(env->p);
3289 		dst_load = env->dst_stats.load + load;
3290 		src_load = env->src_stats.load - load;
3291 		maymove = !load_too_imbalanced(src_load, dst_load, env);
3292 	}
3293 
3294 	/* Skip CPUs if the source task cannot migrate */
3295 	for_each_cpu_and(cpu, cpumask_of_node(env->dst_nid), env->p->cpus_ptr) {
3296 		env->dst_cpu = cpu;
3297 		if (task_numa_compare(env, taskimp, groupimp, maymove))
3298 			break;
3299 	}
3300 }
3301 
3302 static int task_numa_migrate(struct task_struct *p)
3303 {
3304 	struct task_numa_env env = {
3305 		.p = p,
3306 
3307 		.src_cpu = task_cpu(p),
3308 		.src_nid = task_node(p),
3309 
3310 		.imbalance_pct = 112,
3311 
3312 		.best_task = NULL,
3313 		.best_imp = 0,
3314 		.best_cpu = -1,
3315 	};
3316 	unsigned long taskweight, groupweight;
3317 	struct sched_domain *sd;
3318 	long taskimp, groupimp;
3319 	struct numa_group *ng;
3320 	struct rq *best_rq;
3321 	int nid, ret, dist;
3322 
3323 	/*
3324 	 * Pick the lowest SD_NUMA domain, as that would have the smallest
3325 	 * imbalance and would be the first to start moving tasks about.
3326 	 *
3327 	 * And we want to avoid any moving of tasks about, as that would create
3328 	 * random movement of tasks -- counter the numa conditions we're trying
3329 	 * to satisfy here.
3330 	 */
3331 	rcu_read_lock();
3332 	sd = rcu_dereference_all(per_cpu(sd_numa, env.src_cpu));
3333 	if (sd) {
3334 		env.imbalance_pct = 100 + (sd->imbalance_pct - 100) / 2;
3335 		env.imb_numa_nr = sd->imb_numa_nr;
3336 	}
3337 	rcu_read_unlock();
3338 
3339 	/*
3340 	 * Cpusets can break the scheduler domain tree into smaller
3341 	 * balance domains, some of which do not cross NUMA boundaries.
3342 	 * Tasks that are "trapped" in such domains cannot be migrated
3343 	 * elsewhere, so there is no point in (re)trying.
3344 	 */
3345 	if (unlikely(!sd)) {
3346 		sched_setnuma(p, task_node(p));
3347 		return -EINVAL;
3348 	}
3349 
3350 	env.dst_nid = p->numa_preferred_nid;
3351 	dist = env.dist = node_distance(env.src_nid, env.dst_nid);
3352 	taskweight = task_weight(p, env.src_nid, dist);
3353 	groupweight = group_weight(p, env.src_nid, dist);
3354 	update_numa_stats(&env, &env.src_stats, env.src_nid, false);
3355 	taskimp = task_weight(p, env.dst_nid, dist) - taskweight;
3356 	groupimp = group_weight(p, env.dst_nid, dist) - groupweight;
3357 	update_numa_stats(&env, &env.dst_stats, env.dst_nid, true);
3358 
3359 	/* Try to find a spot on the preferred nid. */
3360 	task_numa_find_cpu(&env, taskimp, groupimp);
3361 
3362 	/*
3363 	 * Look at other nodes in these cases:
3364 	 * - there is no space available on the preferred_nid
3365 	 * - the task is part of a numa_group that is interleaved across
3366 	 *   multiple NUMA nodes; in order to better consolidate the group,
3367 	 *   we need to check other locations.
3368 	 */
3369 	ng = deref_curr_numa_group(p);
3370 	if (env.best_cpu == -1 || (ng && ng->active_nodes > 1)) {
3371 		for_each_node_state(nid, N_CPU) {
3372 			if (nid == env.src_nid || nid == p->numa_preferred_nid)
3373 				continue;
3374 
3375 			dist = node_distance(env.src_nid, env.dst_nid);
3376 			if (sched_numa_topology_type == NUMA_BACKPLANE &&
3377 						dist != env.dist) {
3378 				taskweight = task_weight(p, env.src_nid, dist);
3379 				groupweight = group_weight(p, env.src_nid, dist);
3380 			}
3381 
3382 			/* Only consider nodes where both task and groups benefit */
3383 			taskimp = task_weight(p, nid, dist) - taskweight;
3384 			groupimp = group_weight(p, nid, dist) - groupweight;
3385 			if (taskimp < 0 && groupimp < 0)
3386 				continue;
3387 
3388 			env.dist = dist;
3389 			env.dst_nid = nid;
3390 			update_numa_stats(&env, &env.dst_stats, env.dst_nid, true);
3391 			task_numa_find_cpu(&env, taskimp, groupimp);
3392 		}
3393 	}
3394 
3395 	/*
3396 	 * If the task is part of a workload that spans multiple NUMA nodes,
3397 	 * and is migrating into one of the workload's active nodes, remember
3398 	 * this node as the task's preferred numa node, so the workload can
3399 	 * settle down.
3400 	 * A task that migrated to a second choice node will be better off
3401 	 * trying for a better one later. Do not set the preferred node here.
3402 	 */
3403 	if (ng) {
3404 		if (env.best_cpu == -1)
3405 			nid = env.src_nid;
3406 		else
3407 			nid = cpu_to_node(env.best_cpu);
3408 
3409 		if (nid != p->numa_preferred_nid)
3410 			sched_setnuma(p, nid);
3411 	}
3412 
3413 	/* No better CPU than the current one was found. */
3414 	if (env.best_cpu == -1) {
3415 		trace_sched_stick_numa(p, env.src_cpu, NULL, -1);
3416 		return -EAGAIN;
3417 	}
3418 
3419 	best_rq = cpu_rq(env.best_cpu);
3420 	if (env.best_task == NULL) {
3421 		ret = migrate_task_to(p, env.best_cpu);
3422 		WRITE_ONCE(best_rq->numa_migrate_on, 0);
3423 		if (ret != 0)
3424 			trace_sched_stick_numa(p, env.src_cpu, NULL, env.best_cpu);
3425 		return ret;
3426 	}
3427 
3428 	ret = migrate_swap(p, env.best_task, env.best_cpu, env.src_cpu);
3429 	WRITE_ONCE(best_rq->numa_migrate_on, 0);
3430 
3431 	if (ret != 0)
3432 		trace_sched_stick_numa(p, env.src_cpu, env.best_task, env.best_cpu);
3433 	put_task_struct(env.best_task);
3434 	return ret;
3435 }
3436 
3437 /* Attempt to migrate a task to a CPU on the preferred node. */
3438 static void numa_migrate_preferred(struct task_struct *p)
3439 {
3440 	unsigned long interval = HZ;
3441 
3442 	/* This task has no NUMA fault statistics yet */
3443 	if (unlikely(p->numa_preferred_nid == NUMA_NO_NODE || !p->numa_faults))
3444 		return;
3445 
3446 	/* Periodically retry migrating the task to the preferred node */
3447 	interval = min(interval, msecs_to_jiffies(p->numa_scan_period) / 16);
3448 	p->numa_migrate_retry = jiffies + interval;
3449 
3450 	/* Success if task is already running on preferred CPU */
3451 	if (task_node(p) == p->numa_preferred_nid)
3452 		return;
3453 
3454 	/* Otherwise, try migrate to a CPU on the preferred node */
3455 	task_numa_migrate(p);
3456 }
3457 
3458 /*
3459  * Find out how many nodes the workload is actively running on. Do this by
3460  * tracking the nodes from which NUMA hinting faults are triggered. This can
3461  * be different from the set of nodes where the workload's memory is currently
3462  * located.
3463  */
3464 static void numa_group_count_active_nodes(struct numa_group *numa_group)
3465 {
3466 	unsigned long faults, max_faults = 0;
3467 	int nid, active_nodes = 0;
3468 
3469 	for_each_node_state(nid, N_CPU) {
3470 		faults = group_faults_cpu(numa_group, nid);
3471 		if (faults > max_faults)
3472 			max_faults = faults;
3473 	}
3474 
3475 	for_each_node_state(nid, N_CPU) {
3476 		faults = group_faults_cpu(numa_group, nid);
3477 		if (faults * ACTIVE_NODE_FRACTION > max_faults)
3478 			active_nodes++;
3479 	}
3480 
3481 	numa_group->max_faults_cpu = max_faults;
3482 	numa_group->active_nodes = active_nodes;
3483 }
3484 
3485 /*
3486  * When adapting the scan rate, the period is divided into NUMA_PERIOD_SLOTS
3487  * increments. The more local the fault statistics are, the higher the scan
3488  * period will be for the next scan window. If local/(local+remote) ratio is
3489  * below NUMA_PERIOD_THRESHOLD (where range of ratio is 1..NUMA_PERIOD_SLOTS)
3490  * the scan period will decrease. Aim for 70% local accesses.
3491  */
3492 #define NUMA_PERIOD_SLOTS 10
3493 #define NUMA_PERIOD_THRESHOLD 7
3494 
3495 /*
3496  * Increase the scan period (slow down scanning) if the majority of
3497  * our memory is already on our local node, or if the majority of
3498  * the page accesses are shared with other processes.
3499  * Otherwise, decrease the scan period.
3500  */
3501 static void update_task_scan_period(struct task_struct *p,
3502 			unsigned long shared, unsigned long private)
3503 {
3504 	unsigned int period_slot;
3505 	int lr_ratio, ps_ratio;
3506 	int diff;
3507 
3508 	unsigned long remote = p->numa_faults_locality[0];
3509 	unsigned long local = p->numa_faults_locality[1];
3510 
3511 	/*
3512 	 * If there were no record hinting faults then either the task is
3513 	 * completely idle or all activity is in areas that are not of interest
3514 	 * to automatic numa balancing. Related to that, if there were failed
3515 	 * migration then it implies we are migrating too quickly or the local
3516 	 * node is overloaded. In either case, scan slower
3517 	 */
3518 	if (local + shared == 0 || p->numa_faults_locality[2]) {
3519 		p->numa_scan_period = min(p->numa_scan_period_max,
3520 			p->numa_scan_period << 1);
3521 
3522 		p->mm->numa_next_scan = jiffies +
3523 			msecs_to_jiffies(p->numa_scan_period);
3524 
3525 		return;
3526 	}
3527 
3528 	/*
3529 	 * Prepare to scale scan period relative to the current period.
3530 	 *	 == NUMA_PERIOD_THRESHOLD scan period stays the same
3531 	 *       <  NUMA_PERIOD_THRESHOLD scan period decreases (scan faster)
3532 	 *	 >= NUMA_PERIOD_THRESHOLD scan period increases (scan slower)
3533 	 */
3534 	period_slot = DIV_ROUND_UP(p->numa_scan_period, NUMA_PERIOD_SLOTS);
3535 	lr_ratio = (local * NUMA_PERIOD_SLOTS) / (local + remote);
3536 	ps_ratio = (private * NUMA_PERIOD_SLOTS) / (private + shared);
3537 
3538 	if (ps_ratio >= NUMA_PERIOD_THRESHOLD) {
3539 		/*
3540 		 * Most memory accesses are local. There is no need to
3541 		 * do fast NUMA scanning, since memory is already local.
3542 		 */
3543 		int slot = ps_ratio - NUMA_PERIOD_THRESHOLD;
3544 		if (!slot)
3545 			slot = 1;
3546 		diff = slot * period_slot;
3547 	} else if (lr_ratio >= NUMA_PERIOD_THRESHOLD) {
3548 		/*
3549 		 * Most memory accesses are shared with other tasks.
3550 		 * There is no point in continuing fast NUMA scanning,
3551 		 * since other tasks may just move the memory elsewhere.
3552 		 */
3553 		int slot = lr_ratio - NUMA_PERIOD_THRESHOLD;
3554 		if (!slot)
3555 			slot = 1;
3556 		diff = slot * period_slot;
3557 	} else {
3558 		/*
3559 		 * Private memory faults exceed (SLOTS-THRESHOLD)/SLOTS,
3560 		 * yet they are not on the local NUMA node. Speed up
3561 		 * NUMA scanning to get the memory moved over.
3562 		 */
3563 		int ratio = max(lr_ratio, ps_ratio);
3564 		diff = -(NUMA_PERIOD_THRESHOLD - ratio) * period_slot;
3565 	}
3566 
3567 	p->numa_scan_period = clamp(p->numa_scan_period + diff,
3568 			task_scan_min(p), task_scan_max(p));
3569 	memset(p->numa_faults_locality, 0, sizeof(p->numa_faults_locality));
3570 }
3571 
3572 /*
3573  * Get the fraction of time the task has been running since the last
3574  * NUMA placement cycle. The scheduler keeps similar statistics, but
3575  * decays those on a 32ms period, which is orders of magnitude off
3576  * from the dozens-of-seconds NUMA balancing period. Use the scheduler
3577  * stats only if the task is so new there are no NUMA statistics yet.
3578  */
3579 static u64 numa_get_avg_runtime(struct task_struct *p, u64 *period)
3580 {
3581 	u64 runtime, delta, now;
3582 	/* Use the start of this time slice to avoid calculations. */
3583 	now = p->se.exec_start;
3584 	runtime = p->se.sum_exec_runtime;
3585 
3586 	if (p->last_task_numa_placement) {
3587 		delta = runtime - p->last_sum_exec_runtime;
3588 		*period = now - p->last_task_numa_placement;
3589 
3590 		/* Avoid time going backwards, prevent potential divide error: */
3591 		if (unlikely((s64)*period < 0))
3592 			*period = 0;
3593 	} else {
3594 		delta = p->se.avg.load_sum;
3595 		*period = LOAD_AVG_MAX;
3596 	}
3597 
3598 	p->last_sum_exec_runtime = runtime;
3599 	p->last_task_numa_placement = now;
3600 
3601 	return delta;
3602 }
3603 
3604 /*
3605  * Determine the preferred nid for a task in a numa_group. This needs to
3606  * be done in a way that produces consistent results with group_weight,
3607  * otherwise workloads might not converge.
3608  */
3609 static int preferred_group_nid(struct task_struct *p, int nid)
3610 {
3611 	nodemask_t nodes;
3612 	int dist;
3613 
3614 	/* Direct connections between all NUMA nodes. */
3615 	if (sched_numa_topology_type == NUMA_DIRECT)
3616 		return nid;
3617 
3618 	/*
3619 	 * On a system with glueless mesh NUMA topology, group_weight
3620 	 * scores nodes according to the number of NUMA hinting faults on
3621 	 * both the node itself, and on nearby nodes.
3622 	 */
3623 	if (sched_numa_topology_type == NUMA_GLUELESS_MESH) {
3624 		unsigned long score, max_score = 0;
3625 		int node, max_node = nid;
3626 
3627 		dist = sched_max_numa_distance;
3628 
3629 		for_each_node_state(node, N_CPU) {
3630 			score = group_weight(p, node, dist);
3631 			if (score > max_score) {
3632 				max_score = score;
3633 				max_node = node;
3634 			}
3635 		}
3636 		return max_node;
3637 	}
3638 
3639 	/*
3640 	 * Finding the preferred nid in a system with NUMA backplane
3641 	 * interconnect topology is more involved. The goal is to locate
3642 	 * tasks from numa_groups near each other in the system, and
3643 	 * untangle workloads from different sides of the system. This requires
3644 	 * searching down the hierarchy of node groups, recursively searching
3645 	 * inside the highest scoring group of nodes. The nodemask tricks
3646 	 * keep the complexity of the search down.
3647 	 */
3648 	nodes = node_states[N_CPU];
3649 	for (dist = sched_max_numa_distance; dist > LOCAL_DISTANCE; dist--) {
3650 		unsigned long max_faults = 0;
3651 		nodemask_t max_group = NODE_MASK_NONE;
3652 		int a, b;
3653 
3654 		/* Are there nodes at this distance from each other? */
3655 		if (!find_numa_distance(dist))
3656 			continue;
3657 
3658 		for_each_node_mask(a, nodes) {
3659 			unsigned long faults = 0;
3660 			nodemask_t this_group;
3661 			nodes_clear(this_group);
3662 
3663 			/* Sum group's NUMA faults; includes a==b case. */
3664 			for_each_node_mask(b, nodes) {
3665 				if (node_distance(a, b) < dist) {
3666 					faults += group_faults(p, b);
3667 					node_set(b, this_group);
3668 					node_clear(b, nodes);
3669 				}
3670 			}
3671 
3672 			/* Remember the top group. */
3673 			if (faults > max_faults) {
3674 				max_faults = faults;
3675 				max_group = this_group;
3676 				/*
3677 				 * subtle: at the smallest distance there is
3678 				 * just one node left in each "group", the
3679 				 * winner is the preferred nid.
3680 				 */
3681 				nid = a;
3682 			}
3683 		}
3684 		/* Next round, evaluate the nodes within max_group. */
3685 		if (!max_faults)
3686 			break;
3687 		nodes = max_group;
3688 	}
3689 	return nid;
3690 }
3691 
3692 static void task_numa_placement(struct task_struct *p)
3693 	__context_unsafe(/* conditional locking */)
3694 {
3695 	int seq, nid, max_nid = NUMA_NO_NODE;
3696 	unsigned long max_faults = 0;
3697 	unsigned long fault_types[2] = { 0, 0 };
3698 	unsigned long total_faults;
3699 	u64 runtime, period;
3700 	spinlock_t *group_lock = NULL;
3701 	long __maybe_unused new_fp;
3702 	struct numa_group *ng;
3703 
3704 	/*
3705 	 * The p->mm->numa_scan_seq field gets updated without
3706 	 * exclusive access. Use READ_ONCE() here to ensure
3707 	 * that the field is read in a single access:
3708 	 */
3709 	seq = READ_ONCE(p->mm->numa_scan_seq);
3710 	if (p->numa_scan_seq == seq)
3711 		return;
3712 	p->numa_scan_seq = seq;
3713 	p->numa_scan_period_max = task_scan_max(p);
3714 
3715 	total_faults = p->numa_faults_locality[0] +
3716 		       p->numa_faults_locality[1];
3717 	runtime = numa_get_avg_runtime(p, &period);
3718 
3719 	/* If the task is part of a group prevent parallel updates to group stats */
3720 	ng = deref_curr_numa_group(p);
3721 	if (ng) {
3722 		group_lock = &ng->lock;
3723 		spin_lock_irq(group_lock);
3724 	}
3725 
3726 	/* Find the node with the highest number of faults */
3727 	for_each_online_node(nid) {
3728 		/* Keep track of the offsets in numa_faults array */
3729 		int mem_idx, membuf_idx, cpu_idx, cpubuf_idx;
3730 		unsigned long faults = 0, group_faults = 0;
3731 		int priv;
3732 
3733 		for (priv = 0; priv < NR_NUMA_HINT_FAULT_TYPES; priv++) {
3734 			long diff, f_diff, f_weight;
3735 
3736 			mem_idx = task_faults_idx(NUMA_MEM, nid, priv);
3737 			membuf_idx = task_faults_idx(NUMA_MEMBUF, nid, priv);
3738 			cpu_idx = task_faults_idx(NUMA_CPU, nid, priv);
3739 			cpubuf_idx = task_faults_idx(NUMA_CPUBUF, nid, priv);
3740 
3741 			/* Decay existing window, copy faults since last scan */
3742 			diff = p->numa_faults[membuf_idx] - p->numa_faults[mem_idx] / 2;
3743 			fault_types[priv] += p->numa_faults[membuf_idx];
3744 			p->numa_faults[membuf_idx] = 0;
3745 
3746 			/*
3747 			 * Normalize the faults_from, so all tasks in a group
3748 			 * count according to CPU use, instead of by the raw
3749 			 * number of faults. Tasks with little runtime have
3750 			 * little over-all impact on throughput, and thus their
3751 			 * faults are less important.
3752 			 */
3753 			f_weight = div64_u64(runtime << 16, period + 1);
3754 			f_weight = (f_weight * p->numa_faults[cpubuf_idx]) /
3755 				   (total_faults + 1);
3756 			f_diff = f_weight - p->numa_faults[cpu_idx] / 2;
3757 			p->numa_faults[cpubuf_idx] = 0;
3758 
3759 			p->numa_faults[mem_idx] += diff;
3760 			p->numa_faults[cpu_idx] += f_diff;
3761 			faults += p->numa_faults[mem_idx];
3762 			p->total_numa_faults += diff;
3763 			if (ng) {
3764 				/*
3765 				 * safe because we can only change our own group
3766 				 *
3767 				 * mem_idx represents the offset for a given
3768 				 * nid and priv in a specific region because it
3769 				 * is at the beginning of the numa_faults array.
3770 				 */
3771 				ng->faults[mem_idx] += diff;
3772 				ng->faults[cpu_idx] += f_diff;
3773 				ng->total_faults += diff;
3774 				group_faults += ng->faults[mem_idx];
3775 			}
3776 #ifdef CONFIG_SCHED_CACHE
3777 			/*
3778 			 * Per task p->numa_faults[mem_idx] converges,
3779 			 * so the accumulation of each task's faults
3780 			 * converges too - Given the number of threads,
3781 			 * it cannot overflow an unsigned long.
3782 			 * Racy with concurrent updates from other threads
3783 			 * sharing this mm. Acceptable since footprint is a
3784 			 * heuristic and occasional lost updates are tolerable.
3785 			 *
3786 			 * If a task exits, its corresponding footprint must
3787 			 * be subtracted from the mm->sc_stat.footprint, otherwise
3788 			 * the mm->sc_stat.footprint will not converge:
3789 			 * the exiting thread's footprint remains unchanged/undecayed
3790 			 * in mm->sc_stat.footprint. See exit_mm().
3791 			 *
3792 			 * Lost updates and unsynchronized subtraction
3793 			 * in exit_mm() can cause footprint + diff to
3794 			 * go negative. Clamp to zero to prevent the
3795 			 * unsigned footprint from wrapping.
3796 			 */
3797 			new_fp = (long)READ_ONCE(p->mm->sc_stat.footprint) + diff;
3798 			WRITE_ONCE(p->mm->sc_stat.footprint,
3799 				   max(new_fp, 0L));
3800 #endif
3801 		}
3802 
3803 		if (!ng) {
3804 			if (faults > max_faults) {
3805 				max_faults = faults;
3806 				max_nid = nid;
3807 			}
3808 		} else if (group_faults > max_faults) {
3809 			max_faults = group_faults;
3810 			max_nid = nid;
3811 		}
3812 	}
3813 
3814 	/* Cannot migrate task to CPU-less node */
3815 	max_nid = numa_nearest_node(max_nid, N_CPU);
3816 
3817 	if (ng) {
3818 		numa_group_count_active_nodes(ng);
3819 		spin_unlock_irq(group_lock);
3820 		max_nid = preferred_group_nid(p, max_nid);
3821 	}
3822 
3823 	if (max_faults) {
3824 		/* Set the new preferred node */
3825 		if (max_nid != p->numa_preferred_nid)
3826 			sched_setnuma(p, max_nid);
3827 	}
3828 
3829 	update_task_scan_period(p, fault_types[0], fault_types[1]);
3830 }
3831 
3832 static inline int get_numa_group(struct numa_group *grp)
3833 {
3834 	return refcount_inc_not_zero(&grp->refcount);
3835 }
3836 
3837 static inline void put_numa_group(struct numa_group *grp)
3838 {
3839 	if (refcount_dec_and_test(&grp->refcount))
3840 		kfree_rcu(grp, rcu);
3841 }
3842 
3843 static void task_numa_group(struct task_struct *p, int cpupid, int flags,
3844 			int *priv)
3845 {
3846 	struct numa_group *grp, *my_grp;
3847 	struct task_struct *tsk;
3848 	bool join = false;
3849 	int cpu = cpupid_to_cpu(cpupid);
3850 	int i;
3851 
3852 	if (unlikely(!deref_curr_numa_group(p))) {
3853 		unsigned int size = sizeof(struct numa_group) +
3854 				    NR_NUMA_HINT_FAULT_STATS *
3855 				    nr_node_ids * sizeof(unsigned long);
3856 
3857 		grp = kzalloc(size, GFP_KERNEL | __GFP_NOWARN);
3858 		if (!grp)
3859 			return;
3860 
3861 		refcount_set(&grp->refcount, 1);
3862 		grp->active_nodes = 1;
3863 		grp->max_faults_cpu = 0;
3864 		spin_lock_init(&grp->lock);
3865 		grp->gid = p->pid;
3866 
3867 		for (i = 0; i < NR_NUMA_HINT_FAULT_STATS * nr_node_ids; i++)
3868 			grp->faults[i] = p->numa_faults[i];
3869 
3870 		grp->total_faults = p->total_numa_faults;
3871 
3872 		grp->nr_tasks++;
3873 		rcu_assign_pointer(p->numa_group, grp);
3874 	}
3875 
3876 	rcu_read_lock();
3877 	tsk = READ_ONCE(cpu_rq(cpu)->curr);
3878 
3879 	if (!cpupid_match_pid(tsk, cpupid))
3880 		goto no_join;
3881 
3882 	grp = rcu_dereference_all(tsk->numa_group);
3883 	if (!grp)
3884 		goto no_join;
3885 
3886 	my_grp = deref_curr_numa_group(p);
3887 	if (grp == my_grp)
3888 		goto no_join;
3889 
3890 	/*
3891 	 * Only join the other group if its bigger; if we're the bigger group,
3892 	 * the other task will join us.
3893 	 */
3894 	if (my_grp->nr_tasks > grp->nr_tasks)
3895 		goto no_join;
3896 
3897 	/*
3898 	 * Tie-break on the grp address.
3899 	 */
3900 	if (my_grp->nr_tasks == grp->nr_tasks && my_grp > grp)
3901 		goto no_join;
3902 
3903 	/* Always join threads in the same process. */
3904 	if (tsk->mm == current->mm)
3905 		join = true;
3906 
3907 	/* Simple filter to avoid false positives due to PID collisions */
3908 	if (flags & TNF_SHARED)
3909 		join = true;
3910 
3911 	/* Update priv based on whether false sharing was detected */
3912 	*priv = !join;
3913 
3914 	if (join && !get_numa_group(grp))
3915 		goto no_join;
3916 
3917 	rcu_read_unlock();
3918 
3919 	if (!join)
3920 		return;
3921 
3922 	WARN_ON_ONCE(irqs_disabled());
3923 	double_lock_irq(&my_grp->lock, &grp->lock);
3924 
3925 	for (i = 0; i < NR_NUMA_HINT_FAULT_STATS * nr_node_ids; i++) {
3926 		my_grp->faults[i] -= p->numa_faults[i];
3927 		grp->faults[i] += p->numa_faults[i];
3928 	}
3929 	my_grp->total_faults -= p->total_numa_faults;
3930 	grp->total_faults += p->total_numa_faults;
3931 
3932 	my_grp->nr_tasks--;
3933 	grp->nr_tasks++;
3934 
3935 	spin_unlock(&my_grp->lock);
3936 	spin_unlock_irq(&grp->lock);
3937 
3938 	rcu_assign_pointer(p->numa_group, grp);
3939 
3940 	put_numa_group(my_grp);
3941 	return;
3942 
3943 no_join:
3944 	rcu_read_unlock();
3945 	return;
3946 }
3947 
3948 /*
3949  * Get rid of NUMA statistics associated with a task (either current or dead).
3950  * If @final is set, the task is dead and has reached refcount zero, so we can
3951  * safely free all relevant data structures. Otherwise, there might be
3952  * concurrent reads from places like load balancing and procfs, and we should
3953  * reset the data back to default state without freeing ->numa_faults.
3954  */
3955 void task_numa_free(struct task_struct *p, bool final)
3956 {
3957 	/* safe: p either is current or is being freed by current */
3958 	struct numa_group *grp = rcu_dereference_raw(p->numa_group);
3959 	unsigned long *numa_faults = p->numa_faults;
3960 	unsigned long flags;
3961 	int i;
3962 
3963 	if (!numa_faults)
3964 		return;
3965 
3966 	if (grp) {
3967 		spin_lock_irqsave(&grp->lock, flags);
3968 		for (i = 0; i < NR_NUMA_HINT_FAULT_STATS * nr_node_ids; i++)
3969 			grp->faults[i] -= p->numa_faults[i];
3970 		grp->total_faults -= p->total_numa_faults;
3971 
3972 		grp->nr_tasks--;
3973 		spin_unlock_irqrestore(&grp->lock, flags);
3974 		RCU_INIT_POINTER(p->numa_group, NULL);
3975 		put_numa_group(grp);
3976 	}
3977 
3978 	if (final) {
3979 		p->numa_faults = NULL;
3980 		kfree(numa_faults);
3981 	} else {
3982 		p->total_numa_faults = 0;
3983 		for (i = 0; i < NR_NUMA_HINT_FAULT_STATS * nr_node_ids; i++)
3984 			numa_faults[i] = 0;
3985 	}
3986 }
3987 
3988 /*
3989  * Got a PROT_NONE fault for a page on @node.
3990  */
3991 void task_numa_fault(int last_cpupid, int mem_node, int pages, int flags)
3992 {
3993 	struct task_struct *p = current;
3994 	bool migrated = flags & TNF_MIGRATED;
3995 	int cpu_node = task_node(current);
3996 	int local = !!(flags & TNF_FAULT_LOCAL);
3997 	struct numa_group *ng;
3998 	int priv;
3999 
4000 	if (!static_branch_likely(&sched_numa_balancing))
4001 		return;
4002 
4003 	/* for example, ksmd faulting in a user's mm */
4004 	if (!p->mm)
4005 		return;
4006 
4007 	/*
4008 	 * NUMA faults statistics are unnecessary for the slow memory
4009 	 * node for memory tiering mode.
4010 	 */
4011 	if (!node_is_toptier(mem_node) &&
4012 	    (sysctl_numa_balancing_mode & NUMA_BALANCING_MEMORY_TIERING ||
4013 	     !cpupid_valid(last_cpupid)))
4014 		return;
4015 
4016 	/* Allocate buffer to track faults on a per-node basis */
4017 	if (unlikely(!p->numa_faults)) {
4018 		int size = sizeof(*p->numa_faults) *
4019 			   NR_NUMA_HINT_FAULT_BUCKETS * nr_node_ids;
4020 
4021 		p->numa_faults = kzalloc(size, GFP_KERNEL|__GFP_NOWARN);
4022 		if (!p->numa_faults)
4023 			return;
4024 
4025 		p->total_numa_faults = 0;
4026 		memset(p->numa_faults_locality, 0, sizeof(p->numa_faults_locality));
4027 	}
4028 
4029 	/*
4030 	 * First accesses are treated as private, otherwise consider accesses
4031 	 * to be private if the accessing pid has not changed
4032 	 */
4033 	if (unlikely(last_cpupid == (-1 & LAST_CPUPID_MASK))) {
4034 		priv = 1;
4035 	} else {
4036 		priv = cpupid_match_pid(p, last_cpupid);
4037 		if (!priv && !(flags & TNF_NO_GROUP))
4038 			task_numa_group(p, last_cpupid, flags, &priv);
4039 	}
4040 
4041 	/*
4042 	 * If a workload spans multiple NUMA nodes, a shared fault that
4043 	 * occurs wholly within the set of nodes that the workload is
4044 	 * actively using should be counted as local. This allows the
4045 	 * scan rate to slow down when a workload has settled down.
4046 	 */
4047 	ng = deref_curr_numa_group(p);
4048 	if (!priv && !local && ng && ng->active_nodes > 1 &&
4049 				numa_is_active_node(cpu_node, ng) &&
4050 				numa_is_active_node(mem_node, ng))
4051 		local = 1;
4052 
4053 	/*
4054 	 * Retry to migrate task to preferred node periodically, in case it
4055 	 * previously failed, or the scheduler moved us.
4056 	 */
4057 	if (time_after(jiffies, p->numa_migrate_retry)) {
4058 		task_numa_placement(p);
4059 		numa_migrate_preferred(p);
4060 	}
4061 
4062 	if (migrated)
4063 		p->numa_pages_migrated += pages;
4064 	if (flags & TNF_MIGRATE_FAIL)
4065 		p->numa_faults_locality[2] += pages;
4066 
4067 	p->numa_faults[task_faults_idx(NUMA_MEMBUF, mem_node, priv)] += pages;
4068 	p->numa_faults[task_faults_idx(NUMA_CPUBUF, cpu_node, priv)] += pages;
4069 	p->numa_faults_locality[local] += pages;
4070 }
4071 
4072 static void reset_ptenuma_scan(struct task_struct *p)
4073 {
4074 	/*
4075 	 * We only did a read acquisition of the mmap sem, so
4076 	 * p->mm->numa_scan_seq is written to without exclusive access
4077 	 * and the update is not guaranteed to be atomic. That's not
4078 	 * much of an issue though, since this is just used for
4079 	 * statistical sampling. Use READ_ONCE/WRITE_ONCE, which are not
4080 	 * expensive, to avoid any form of compiler optimizations:
4081 	 */
4082 	WRITE_ONCE(p->mm->numa_scan_seq, READ_ONCE(p->mm->numa_scan_seq) + 1);
4083 	p->mm->numa_scan_offset = 0;
4084 }
4085 
4086 static bool vma_is_accessed(struct mm_struct *mm, struct vm_area_struct *vma)
4087 {
4088 	unsigned long pids;
4089 	/*
4090 	 * Allow unconditional access first two times, so that all the (pages)
4091 	 * of VMAs get prot_none fault introduced irrespective of accesses.
4092 	 * This is also done to avoid any side effect of task scanning
4093 	 * amplifying the unfairness of disjoint set of VMAs' access.
4094 	 */
4095 	if ((READ_ONCE(current->mm->numa_scan_seq) - vma->numab_state->start_scan_seq) < 2)
4096 		return true;
4097 
4098 	pids = vma->numab_state->pids_active[0] | vma->numab_state->pids_active[1];
4099 	if (test_bit(hash_32(current->pid, ilog2(BITS_PER_LONG)), &pids))
4100 		return true;
4101 
4102 	/*
4103 	 * Complete a scan that has already started regardless of PID access, or
4104 	 * some VMAs may never be scanned in multi-threaded applications:
4105 	 */
4106 	if (mm->numa_scan_offset > vma->vm_start) {
4107 		trace_sched_skip_vma_numa(mm, vma, NUMAB_SKIP_IGNORE_PID);
4108 		return true;
4109 	}
4110 
4111 	/*
4112 	 * This vma has not been accessed for a while, and if the number
4113 	 * the threads in the same process is low, which means no other
4114 	 * threads can help scan this vma, force a vma scan.
4115 	 */
4116 	if (READ_ONCE(mm->numa_scan_seq) >
4117 	   (vma->numab_state->prev_scan_seq + get_nr_threads(current)))
4118 		return true;
4119 
4120 	return false;
4121 }
4122 
4123 #define VMA_PID_RESET_PERIOD (4 * sysctl_numa_balancing_scan_delay)
4124 
4125 /*
4126  * The expensive part of numa migration is done from task_work context.
4127  * Triggered from task_tick_numa().
4128  */
4129 static void task_numa_work(struct callback_head *work)
4130 {
4131 	unsigned long migrate, next_scan, now = jiffies;
4132 	struct task_struct *p = current;
4133 	struct mm_struct *mm = p->mm;
4134 	u64 runtime = p->se.sum_exec_runtime;
4135 	struct vm_area_struct *vma;
4136 	unsigned long start, end;
4137 	unsigned long nr_pte_updates = 0;
4138 	long pages, virtpages;
4139 	struct vma_iterator vmi;
4140 	bool vma_pids_skipped;
4141 	bool vma_pids_forced = false;
4142 
4143 	WARN_ON_ONCE(p != container_of(work, struct task_struct, numa_work));
4144 
4145 	work->next = work;
4146 	/*
4147 	 * Who cares about NUMA placement when they're dying.
4148 	 *
4149 	 * NOTE: make sure not to dereference p->mm before this check,
4150 	 * exit_task_work() happens _after_ exit_mm() so we could be called
4151 	 * without p->mm even though we still had it when we enqueued this
4152 	 * work.
4153 	 */
4154 	if (p->flags & PF_EXITING)
4155 		return;
4156 
4157 	/*
4158 	 * Memory is pinned to only one NUMA node via cpuset.mems, naturally
4159 	 * no page can be migrated.
4160 	 */
4161 	if (cpusets_enabled() && nodes_weight(cpuset_current_mems_allowed) == 1) {
4162 		trace_sched_skip_cpuset_numa(current, &cpuset_current_mems_allowed);
4163 		return;
4164 	}
4165 
4166 	if (!mm->numa_next_scan) {
4167 		mm->numa_next_scan = now +
4168 			msecs_to_jiffies(sysctl_numa_balancing_scan_delay);
4169 	}
4170 
4171 	/*
4172 	 * Enforce maximal scan/migration frequency..
4173 	 */
4174 	migrate = mm->numa_next_scan;
4175 	if (time_before(now, migrate))
4176 		return;
4177 
4178 	if (p->numa_scan_period == 0) {
4179 		p->numa_scan_period_max = task_scan_max(p);
4180 		p->numa_scan_period = task_scan_start(p);
4181 	}
4182 
4183 	next_scan = now + msecs_to_jiffies(p->numa_scan_period);
4184 	if (!try_cmpxchg(&mm->numa_next_scan, &migrate, next_scan))
4185 		return;
4186 
4187 	/*
4188 	 * Delay this task enough that another task of this mm will likely win
4189 	 * the next time around.
4190 	 */
4191 	p->node_stamp += 2 * TICK_NSEC;
4192 
4193 	pages = sysctl_numa_balancing_scan_size;
4194 	pages <<= 20 - PAGE_SHIFT; /* MB in pages */
4195 	virtpages = pages * 8;	   /* Scan up to this much virtual space */
4196 	if (!pages)
4197 		return;
4198 
4199 
4200 	if (!mmap_read_trylock(mm))
4201 		return;
4202 
4203 	/*
4204 	 * VMAs are skipped if the current PID has not trapped a fault within
4205 	 * the VMA recently. Allow scanning to be forced if there is no
4206 	 * suitable VMA remaining.
4207 	 */
4208 	vma_pids_skipped = false;
4209 
4210 retry_pids:
4211 	start = mm->numa_scan_offset;
4212 	vma_iter_init(&vmi, mm, start);
4213 	vma = vma_next(&vmi);
4214 	if (!vma) {
4215 		reset_ptenuma_scan(p);
4216 		start = 0;
4217 		vma_iter_set(&vmi, start);
4218 		vma = vma_next(&vmi);
4219 	}
4220 
4221 	for (; vma; vma = vma_next(&vmi)) {
4222 		if (!vma_migratable(vma) || !vma_policy_mof(vma) ||
4223 			is_vm_hugetlb_page(vma) || (vma->vm_flags & VM_MIXEDMAP)) {
4224 			trace_sched_skip_vma_numa(mm, vma, NUMAB_SKIP_UNSUITABLE);
4225 			continue;
4226 		}
4227 
4228 		/*
4229 		 * Shared library pages mapped by multiple processes are not
4230 		 * migrated as it is expected they are cache replicated. Avoid
4231 		 * hinting faults in read-only file-backed mappings or the vDSO
4232 		 * as migrating the pages will be of marginal benefit.
4233 		 */
4234 		if (!vma->vm_mm ||
4235 		    (vma->vm_file && (vma->vm_flags & (VM_READ|VM_WRITE)) == (VM_READ))) {
4236 			trace_sched_skip_vma_numa(mm, vma, NUMAB_SKIP_SHARED_RO);
4237 			continue;
4238 		}
4239 
4240 		/*
4241 		 * Skip inaccessible VMAs to avoid any confusion between
4242 		 * PROT_NONE and NUMA hinting PTEs
4243 		 */
4244 		if (!vma_is_accessible(vma)) {
4245 			trace_sched_skip_vma_numa(mm, vma, NUMAB_SKIP_INACCESSIBLE);
4246 			continue;
4247 		}
4248 
4249 		/* Initialise new per-VMA NUMAB state. */
4250 		if (!vma->numab_state) {
4251 			struct vma_numab_state *ptr;
4252 
4253 			ptr = kzalloc_obj(*ptr);
4254 			if (!ptr)
4255 				continue;
4256 
4257 			if (cmpxchg(&vma->numab_state, NULL, ptr)) {
4258 				kfree(ptr);
4259 				continue;
4260 			}
4261 
4262 			vma->numab_state->start_scan_seq = mm->numa_scan_seq;
4263 
4264 			vma->numab_state->next_scan = now +
4265 				msecs_to_jiffies(sysctl_numa_balancing_scan_delay);
4266 
4267 			/* Reset happens after 4 times scan delay of scan start */
4268 			vma->numab_state->pids_active_reset =  vma->numab_state->next_scan +
4269 				msecs_to_jiffies(VMA_PID_RESET_PERIOD);
4270 
4271 			/*
4272 			 * Ensure prev_scan_seq does not match numa_scan_seq,
4273 			 * to prevent VMAs being skipped prematurely on the
4274 			 * first scan:
4275 			 */
4276 			 vma->numab_state->prev_scan_seq = mm->numa_scan_seq - 1;
4277 		}
4278 
4279 		/*
4280 		 * Scanning the VMAs of short lived tasks add more overhead. So
4281 		 * delay the scan for new VMAs.
4282 		 */
4283 		if (mm->numa_scan_seq && time_before(jiffies,
4284 						vma->numab_state->next_scan)) {
4285 			trace_sched_skip_vma_numa(mm, vma, NUMAB_SKIP_SCAN_DELAY);
4286 			continue;
4287 		}
4288 
4289 		/* RESET access PIDs regularly for old VMAs. */
4290 		if (mm->numa_scan_seq &&
4291 				time_after(jiffies, vma->numab_state->pids_active_reset)) {
4292 			vma->numab_state->pids_active_reset = vma->numab_state->pids_active_reset +
4293 				msecs_to_jiffies(VMA_PID_RESET_PERIOD);
4294 			vma->numab_state->pids_active[0] = READ_ONCE(vma->numab_state->pids_active[1]);
4295 			vma->numab_state->pids_active[1] = 0;
4296 		}
4297 
4298 		/* Do not rescan VMAs twice within the same sequence. */
4299 		if (vma->numab_state->prev_scan_seq == mm->numa_scan_seq) {
4300 			mm->numa_scan_offset = vma->vm_end;
4301 			trace_sched_skip_vma_numa(mm, vma, NUMAB_SKIP_SEQ_COMPLETED);
4302 			continue;
4303 		}
4304 
4305 		/*
4306 		 * Do not scan the VMA if task has not accessed it, unless no other
4307 		 * VMA candidate exists.
4308 		 */
4309 		if (!vma_pids_forced && !vma_is_accessed(mm, vma)) {
4310 			vma_pids_skipped = true;
4311 			trace_sched_skip_vma_numa(mm, vma, NUMAB_SKIP_PID_INACTIVE);
4312 			continue;
4313 		}
4314 
4315 		do {
4316 			start = max(start, vma->vm_start);
4317 			end = ALIGN(start + (pages << PAGE_SHIFT), HPAGE_SIZE);
4318 			end = min(end, vma->vm_end);
4319 			nr_pte_updates = change_prot_numa(vma, start, end);
4320 
4321 			/*
4322 			 * Try to scan sysctl_numa_balancing_size worth of
4323 			 * hpages that have at least one present PTE that
4324 			 * is not already PTE-numa. If the VMA contains
4325 			 * areas that are unused or already full of prot_numa
4326 			 * PTEs, scan up to virtpages, to skip through those
4327 			 * areas faster.
4328 			 */
4329 			if (nr_pte_updates)
4330 				pages -= (end - start) >> PAGE_SHIFT;
4331 			virtpages -= (end - start) >> PAGE_SHIFT;
4332 
4333 			start = end;
4334 			if (pages <= 0 || virtpages <= 0)
4335 				goto out;
4336 
4337 			cond_resched();
4338 		} while (end != vma->vm_end);
4339 
4340 		/* VMA scan is complete, do not scan until next sequence. */
4341 		vma->numab_state->prev_scan_seq = mm->numa_scan_seq;
4342 
4343 		/*
4344 		 * Only force scan within one VMA at a time, to limit the
4345 		 * cost of scanning a potentially uninteresting VMA.
4346 		 */
4347 		if (vma_pids_forced)
4348 			break;
4349 	}
4350 
4351 	/*
4352 	 * If no VMAs are remaining and VMAs were skipped due to the PID
4353 	 * not accessing the VMA previously, then force a scan to ensure
4354 	 * forward progress:
4355 	 */
4356 	if (!vma && !vma_pids_forced && vma_pids_skipped) {
4357 		vma_pids_forced = true;
4358 		goto retry_pids;
4359 	}
4360 
4361 out:
4362 	/*
4363 	 * It is possible to reach the end of the VMA list but the last few
4364 	 * VMAs are not guaranteed to the vma_migratable. If they are not, we
4365 	 * would find the !migratable VMA on the next scan but not reset the
4366 	 * scanner to the start so check it now.
4367 	 */
4368 	if (vma)
4369 		mm->numa_scan_offset = start;
4370 	else
4371 		reset_ptenuma_scan(p);
4372 	mmap_read_unlock(mm);
4373 
4374 	/*
4375 	 * Make sure tasks use at least 32x as much time to run other code
4376 	 * than they used here, to limit NUMA PTE scanning overhead to 3% max.
4377 	 * Usually update_task_scan_period slows down scanning enough; on an
4378 	 * overloaded system we need to limit overhead on a per task basis.
4379 	 */
4380 	if (unlikely(p->se.sum_exec_runtime != runtime)) {
4381 		u64 diff = p->se.sum_exec_runtime - runtime;
4382 		p->node_stamp += 32 * diff;
4383 	}
4384 }
4385 
4386 void init_numa_balancing(u64 clone_flags, struct task_struct *p)
4387 {
4388 	int mm_users = 0;
4389 	struct mm_struct *mm = p->mm;
4390 
4391 	if (mm) {
4392 		mm_users = atomic_read(&mm->mm_users);
4393 		if (mm_users == 1) {
4394 			mm->numa_next_scan = jiffies + msecs_to_jiffies(sysctl_numa_balancing_scan_delay);
4395 			mm->numa_scan_seq = 0;
4396 		}
4397 	}
4398 	p->node_stamp			= 0;
4399 	p->numa_scan_seq		= mm ? mm->numa_scan_seq : 0;
4400 	p->numa_scan_period		= sysctl_numa_balancing_scan_delay;
4401 	p->numa_migrate_retry		= 0;
4402 	/* Protect against double add, see task_tick_numa and task_numa_work */
4403 	p->numa_work.next		= &p->numa_work;
4404 	p->numa_faults			= NULL;
4405 	p->numa_pages_migrated		= 0;
4406 	p->total_numa_faults		= 0;
4407 	RCU_INIT_POINTER(p->numa_group, NULL);
4408 	p->last_task_numa_placement	= 0;
4409 	p->last_sum_exec_runtime	= 0;
4410 
4411 	init_task_work(&p->numa_work, task_numa_work);
4412 
4413 	/* New address space, reset the preferred nid */
4414 	if (!(clone_flags & CLONE_VM)) {
4415 		p->numa_preferred_nid = NUMA_NO_NODE;
4416 		return;
4417 	}
4418 
4419 	/*
4420 	 * New thread, keep existing numa_preferred_nid which should be copied
4421 	 * already by arch_dup_task_struct but stagger when scans start.
4422 	 */
4423 	if (mm) {
4424 		unsigned int delay;
4425 
4426 		delay = min_t(unsigned int, task_scan_max(current),
4427 			current->numa_scan_period * mm_users * NSEC_PER_MSEC);
4428 		delay += 2 * TICK_NSEC;
4429 		p->node_stamp = delay;
4430 	}
4431 }
4432 
4433 /*
4434  * Drive the periodic memory faults..
4435  */
4436 static void task_tick_numa(struct rq *rq, struct task_struct *curr)
4437 {
4438 	struct callback_head *work = &curr->numa_work;
4439 	u64 period, now;
4440 
4441 	/*
4442 	 * We don't care about NUMA placement if we don't have memory.
4443 	 */
4444 	if (!curr->mm || (curr->flags & (PF_EXITING | PF_KTHREAD)) || work->next != work)
4445 		return;
4446 
4447 	/*
4448 	 * Using runtime rather than walltime has the dual advantage that
4449 	 * we (mostly) drive the selection from busy threads and that the
4450 	 * task needs to have done some actual work before we bother with
4451 	 * NUMA placement.
4452 	 */
4453 	now = curr->se.sum_exec_runtime;
4454 	period = (u64)curr->numa_scan_period * NSEC_PER_MSEC;
4455 
4456 	if (now > curr->node_stamp + period) {
4457 		if (!curr->node_stamp)
4458 			curr->numa_scan_period = task_scan_start(curr);
4459 		curr->node_stamp += period;
4460 
4461 		if (!time_before(jiffies, curr->mm->numa_next_scan))
4462 			task_work_add(curr, work, TWA_RESUME);
4463 	}
4464 }
4465 
4466 static void update_scan_period(struct task_struct *p, int new_cpu)
4467 {
4468 	int src_nid = cpu_to_node(task_cpu(p));
4469 	int dst_nid = cpu_to_node(new_cpu);
4470 
4471 	if (!static_branch_likely(&sched_numa_balancing))
4472 		return;
4473 
4474 	if (!p->mm || !p->numa_faults || (p->flags & PF_EXITING))
4475 		return;
4476 
4477 	if (src_nid == dst_nid)
4478 		return;
4479 
4480 	/*
4481 	 * Allow resets if faults have been trapped before one scan
4482 	 * has completed. This is most likely due to a new task that
4483 	 * is pulled cross-node due to wakeups or load balancing.
4484 	 */
4485 	if (p->numa_scan_seq) {
4486 		/*
4487 		 * Avoid scan adjustments if moving to the preferred
4488 		 * node or if the task was not previously running on
4489 		 * the preferred node.
4490 		 */
4491 		if (dst_nid == p->numa_preferred_nid ||
4492 		    (p->numa_preferred_nid != NUMA_NO_NODE &&
4493 			src_nid != p->numa_preferred_nid))
4494 			return;
4495 	}
4496 
4497 	p->numa_scan_period = task_scan_start(p);
4498 }
4499 
4500 #else /* !CONFIG_NUMA_BALANCING: */
4501 
4502 static void task_tick_numa(struct rq *rq, struct task_struct *curr)
4503 {
4504 }
4505 
4506 static inline void account_numa_enqueue(struct rq *rq, struct task_struct *p)
4507 {
4508 }
4509 
4510 static inline void account_numa_dequeue(struct rq *rq, struct task_struct *p)
4511 {
4512 }
4513 
4514 static inline void update_scan_period(struct task_struct *p, int new_cpu)
4515 {
4516 }
4517 
4518 #endif /* !CONFIG_NUMA_BALANCING */
4519 
4520 static void
4521 account_entity_enqueue(struct cfs_rq *cfs_rq, struct sched_entity *se)
4522 {
4523 	WARN_ON_ONCE(cfs_rq != cfs_rq_of(se));
4524 	update_load_add(&cfs_rq->load, se->load.weight);
4525 	if (entity_is_task(se)) {
4526 		struct task_struct *p = task_of(se);
4527 		struct rq *rq = rq_of(cfs_rq);
4528 
4529 		account_numa_enqueue(rq, p);
4530 		account_llc_enqueue(rq, p);
4531 		list_add(&se->group_node, &rq->cfs_tasks);
4532 	}
4533 	cfs_rq->nr_queued++;
4534 }
4535 
4536 static void
4537 account_entity_dequeue(struct cfs_rq *cfs_rq, struct sched_entity *se)
4538 {
4539 	WARN_ON_ONCE(cfs_rq != cfs_rq_of(se));
4540 	update_load_sub(&cfs_rq->load, se->load.weight);
4541 	if (entity_is_task(se)) {
4542 		struct task_struct *p = task_of(se);
4543 		struct rq *rq = rq_of(cfs_rq);
4544 
4545 		account_numa_dequeue(rq, p);
4546 		account_llc_dequeue(rq, p);
4547 		list_del_init(&se->group_node);
4548 	}
4549 	cfs_rq->nr_queued--;
4550 }
4551 
4552 /*
4553  * Signed add and clamp on underflow.
4554  *
4555  * Explicitly do a load-store to ensure the intermediate value never hits
4556  * memory. This allows lockless observations without ever seeing the negative
4557  * values.
4558  */
4559 #define add_positive(_ptr, _val) do {                           \
4560 	typeof(_ptr) ptr = (_ptr);                              \
4561 	__signed_scalar_typeof(*ptr) val = (_val);              \
4562 	typeof(*ptr) res, var = READ_ONCE(*ptr);                \
4563 								\
4564 	res = var + val;                                        \
4565 								\
4566 	if (val < 0 && res > var)                               \
4567 		res = 0;                                        \
4568 								\
4569 	WRITE_ONCE(*ptr, res);                                  \
4570 } while (0)
4571 
4572 /*
4573  * Remove and clamp on negative, from a local variable.
4574  *
4575  * A variant of sub_positive(), which does not use explicit load-store
4576  * and is thus optimized for local variable updates.
4577  */
4578 #define lsub_positive(_ptr, _val) do {				\
4579 	typeof(_ptr) ptr = (_ptr);				\
4580 	*ptr -= min_t(typeof(*ptr), *ptr, _val);		\
4581 } while (0)
4582 
4583 
4584 /*
4585  * Because of rounding, se->util_sum might ends up being +1 more than
4586  * cfs->util_sum. Although this is not a problem by itself, detaching
4587  * a lot of tasks with the rounding problem between 2 updates of
4588  * util_avg (~1ms) can make cfs->util_sum becoming null whereas
4589  * cfs_util_avg is not.
4590  *
4591  * Check that util_sum is still above its lower bound for the new
4592  * util_avg. Given that period_contrib might have moved since the last
4593  * sync, we are only sure that util_sum must be above or equal to
4594  *    util_avg * minimum possible divider
4595  */
4596 #define __update_sa(sa, name, delta_avg, delta_sum) do {	\
4597 	add_positive(&(sa)->name##_avg, delta_avg);		\
4598 	add_positive(&(sa)->name##_sum, delta_sum);		\
4599 	(sa)->name##_sum = max_t(typeof((sa)->name##_sum),	\
4600 			       (sa)->name##_sum,		\
4601 			       (sa)->name##_avg * PELT_MIN_DIVIDER); \
4602 } while (0)
4603 
4604 static inline void
4605 enqueue_load_avg(struct cfs_rq *cfs_rq, struct sched_entity *se)
4606 {
4607 	__update_sa(&cfs_rq->avg, load, se->avg.load_avg,
4608 		    se_weight(se) * se->avg.load_sum);
4609 }
4610 
4611 static inline void
4612 dequeue_load_avg(struct cfs_rq *cfs_rq, struct sched_entity *se)
4613 {
4614 	__update_sa(&cfs_rq->avg, load, -se->avg.load_avg,
4615 		    se_weight(se) * -se->avg.load_sum);
4616 }
4617 
4618 static void
4619 rescale_entity(struct sched_entity *se, unsigned long weight, bool rel_vprot)
4620 {
4621 	long old_weight = se->h_load.weight;
4622 
4623 	/*
4624 	 * VRUNTIME
4625 	 * --------
4626 	 *
4627 	 * COROLLARY #1: The virtual runtime of the entity needs to be
4628 	 * adjusted if re-weight at !0-lag point.
4629 	 *
4630 	 * Proof: For contradiction assume this is not true, so we can
4631 	 * re-weight without changing vruntime at !0-lag point.
4632 	 *
4633 	 *             Weight	VRuntime   Avg-VRuntime
4634 	 *     before    w          v            V
4635 	 *      after    w'         v'           V'
4636 	 *
4637 	 * Since lag needs to be preserved through re-weight:
4638 	 *
4639 	 *	lag = (V - v)*w = (V'- v')*w', where v = v'
4640 	 *	==>	V' = (V - v)*w/w' + v		(1)
4641 	 *
4642 	 * Let W be the total weight of the entities before reweight,
4643 	 * since V' is the new weighted average of entities:
4644 	 *
4645 	 *	V' = (WV + w'v - wv) / (W + w' - w)	(2)
4646 	 *
4647 	 * by using (1) & (2) we obtain:
4648 	 *
4649 	 *	(WV + w'v - wv) / (W + w' - w) = (V - v)*w/w' + v
4650 	 *	==> (WV-Wv+Wv+w'v-wv)/(W+w'-w) = (V - v)*w/w' + v
4651 	 *	==> (WV - Wv)/(W + w' - w) + v = (V - v)*w/w' + v
4652 	 *	==>	(V - v)*W/(W + w' - w) = (V - v)*w/w' (3)
4653 	 *
4654 	 * Since we are doing at !0-lag point which means V != v, we
4655 	 * can simplify (3):
4656 	 *
4657 	 *	==>	W / (W + w' - w) = w / w'
4658 	 *	==>	Ww' = Ww + ww' - ww
4659 	 *	==>	W * (w' - w) = w * (w' - w)
4660 	 *	==>	W = w	(re-weight indicates w' != w)
4661 	 *
4662 	 * So the cfs_rq contains only one entity, hence vruntime of
4663 	 * the entity @v should always equal to the cfs_rq's weighted
4664 	 * average vruntime @V, which means we will always re-weight
4665 	 * at 0-lag point, thus breach assumption. Proof completed.
4666 	 *
4667 	 *
4668 	 * COROLLARY #2: Re-weight does NOT affect weighted average
4669 	 * vruntime of all the entities.
4670 	 *
4671 	 * Proof: According to corollary #1, Eq. (1) should be:
4672 	 *
4673 	 *	(V - v)*w = (V' - v')*w'
4674 	 *	==>    v' = V' - (V - v)*w/w'		(4)
4675 	 *
4676 	 * According to the weighted average formula, we have:
4677 	 *
4678 	 *	V' = (WV - wv + w'v') / (W - w + w')
4679 	 *	   = (WV - wv + w'(V' - (V - v)w/w')) / (W - w + w')
4680 	 *	   = (WV - wv + w'V' - Vw + wv) / (W - w + w')
4681 	 *	   = (WV + w'V' - Vw) / (W - w + w')
4682 	 *
4683 	 *	==>  V'*(W - w + w') = WV + w'V' - Vw
4684 	 *	==>	V' * (W - w) = (W - w) * V	(5)
4685 	 *
4686 	 * If the entity is the only one in the cfs_rq, then reweight
4687 	 * always occurs at 0-lag point, so V won't change. Or else
4688 	 * there are other entities, hence W != w, then Eq. (5) turns
4689 	 * into V' = V. So V won't change in either case, proof done.
4690 	 *
4691 	 *
4692 	 * So according to corollary #1 & #2, the effect of re-weight
4693 	 * on vruntime should be:
4694 	 *
4695 	 *	v' = V' - (V - v) * w / w'		(4)
4696 	 *	   = V  - (V - v) * w / w'
4697 	 *	   = V  - vl * w / w'
4698 	 *	   = V  - vl'
4699 	 */
4700 	se->vlag = div64_long(se->vlag * old_weight, weight);
4701 
4702 	/*
4703 	 * DEADLINE
4704 	 * --------
4705 	 *
4706 	 * When the weight changes, the virtual time slope changes and
4707 	 * we should adjust the relative virtual deadline accordingly.
4708 	 *
4709 	 *	d' = v' + (d - v)*w/w'
4710 	 *	   = V' - (V - v)*w/w' + (d - v)*w/w'
4711 	 *	   = V  - (V - v)*w/w' + (d - v)*w/w'
4712 	 *	   = V  + (d - V)*w/w'
4713 	 */
4714 	if (se->rel_deadline)
4715 		se->deadline = div64_long(se->deadline * old_weight, weight);
4716 
4717 	if (rel_vprot)
4718 		se->vprot = div64_long(se->vprot * old_weight, weight);
4719 }
4720 
4721 static void reweight_eevdf(struct cfs_rq *cfs_rq, struct sched_entity *se,
4722 			   unsigned long weight, bool on_rq)
4723 {
4724 	bool curr = cfs_rq->curr == se;
4725 	bool rel_vprot = false;
4726 	u64 avruntime = 0;
4727 
4728 	if (se->h_load.weight == weight)
4729 		return;
4730 
4731 	if (on_rq) {
4732 		avruntime = avg_vruntime(cfs_rq);
4733 		se->vlag = entity_lag(cfs_rq, se, avruntime);
4734 		se->deadline -= avruntime;
4735 		se->rel_deadline = 1;
4736 		if (curr && protect_slice(se)) {
4737 			se->vprot -= avruntime;
4738 			rel_vprot = true;
4739 		}
4740 
4741 		cfs_rq->h_nr_queued--;
4742 		if (!curr)
4743 			__dequeue_entity(cfs_rq, se);
4744 	}
4745 
4746 	rescale_entity(se, weight, rel_vprot);
4747 
4748 	update_load_set(&se->h_load, weight);
4749 
4750 	if (on_rq) {
4751 		if (rel_vprot)
4752 			se->vprot += avruntime;
4753 		se->deadline += avruntime;
4754 		se->rel_deadline = 0;
4755 		se->vruntime = avruntime - se->vlag;
4756 
4757 		if (!curr)
4758 			__enqueue_entity(cfs_rq, se);
4759 		cfs_rq->h_nr_queued++;
4760 	}
4761 }
4762 
4763 static void reweight_entity(struct cfs_rq *cfs_rq, struct sched_entity *se,
4764 			    unsigned long weight)
4765 {
4766 	if (se->load.weight == weight)
4767 		return;
4768 
4769 	if (se->on_rq) {
4770 		WARN_ON_ONCE(cfs_rq != cfs_rq_of(se));
4771 		update_load_sub(&cfs_rq->load, se->load.weight);
4772 	}
4773 	dequeue_load_avg(cfs_rq, se);
4774 
4775 	update_load_set(&se->load, weight);
4776 
4777 	do {
4778 		u32 divider = get_pelt_divider(&se->avg);
4779 		se->avg.load_avg = div_u64(se_weight(se) * se->avg.load_sum, divider);
4780 	} while (0);
4781 
4782 	enqueue_load_avg(cfs_rq, se);
4783 
4784 	if (se->on_rq)
4785 		update_load_add(&cfs_rq->load, se->load.weight);
4786 }
4787 
4788 /*
4789  * weight = NICE_0_LOAD;
4790  * for_each_entity_se(se)
4791  *   weight = __calc_prop_weight(cfs_rq_of(se), se, weight);
4792  */
4793 static __always_inline
4794 unsigned long __calc_prop_weight(struct cfs_rq *cfs_rq, struct sched_entity *se,
4795 				 unsigned long weight)
4796 {
4797 	weight *= se->load.weight;
4798 	if (parent_entity(se))
4799 		weight /= cfs_rq->load.weight;
4800 	else
4801 		weight /= NICE_0_LOAD;
4802 
4803 	return max(weight, MIN_SHARES);
4804 }
4805 
4806 static void reweight_task_fair(struct rq *rq, struct task_struct *p,
4807 			       const struct load_weight *lw)
4808 {
4809 	struct sched_entity *se = &p->se;
4810 	unsigned long weight = NICE_0_LOAD;
4811 
4812 	if (se->on_rq)
4813 		update_curr_fair(rq);
4814 
4815 	reweight_entity(cfs_rq_of(se), se, lw->weight);
4816 	se->load.inv_weight = lw->inv_weight;
4817 
4818 	if (!se->on_rq)
4819 		return;
4820 
4821 	for_each_sched_entity(se)
4822 		weight = __calc_prop_weight(cfs_rq_of(se), se, weight);
4823 
4824 	reweight_eevdf(&rq->cfs, &p->se, weight, p->se.on_rq);
4825 }
4826 
4827 static inline int throttled_hierarchy(struct cfs_rq *cfs_rq);
4828 
4829 #ifdef CONFIG_FAIR_GROUP_SCHED
4830 /*
4831  * All this does is approximate the hierarchical proportion which includes that
4832  * global sum we all love to hate.
4833  *
4834  * That is, the weight of a group entity, is the proportional share of the
4835  * group weight based on the group runqueue weights. That is:
4836  *
4837  *                     tg->weight * grq->load.weight
4838  *   ge->load.weight = -----------------------------               (1)
4839  *                       \Sum grq->load.weight
4840  *
4841  * Now, because computing that sum is prohibitively expensive to compute (been
4842  * there, done that) we approximate it with this average stuff. The average
4843  * moves slower and therefore the approximation is cheaper and more stable.
4844  *
4845  * So instead of the above, we substitute:
4846  *
4847  *   grq->load.weight -> grq->avg.load_avg                         (2)
4848  *
4849  * which yields the following:
4850  *
4851  *                     tg->weight * grq->avg.load_avg
4852  *   ge->load.weight = ------------------------------              (3)
4853  *                             tg->load_avg
4854  *
4855  * Where: tg->load_avg ~= \Sum grq->avg.load_avg
4856  *
4857  * That is shares_avg, and it is right (given the approximation (2)).
4858  *
4859  * The problem with it is that because the average is slow -- it was designed
4860  * to be exactly that of course -- this leads to transients in boundary
4861  * conditions. In specific, the case where the group was idle and we start the
4862  * one task. It takes time for our CPU's grq->avg.load_avg to build up,
4863  * yielding bad latency etc..
4864  *
4865  * Now, in that special case (1) reduces to:
4866  *
4867  *                     tg->weight * grq->load.weight
4868  *   ge->load.weight = ----------------------------- = tg->weight   (4)
4869  *                         grp->load.weight
4870  *
4871  * That is, the sum collapses because all other CPUs are idle; the UP scenario.
4872  *
4873  * So what we do is modify our approximation (3) to approach (4) in the (near)
4874  * UP case, like:
4875  *
4876  *   ge->load.weight =
4877  *
4878  *              tg->weight * grq->load.weight
4879  *     ---------------------------------------------------         (5)
4880  *     tg->load_avg - grq->avg.load_avg + grq->load.weight
4881  *
4882  * But because grq->load.weight can drop to 0, resulting in a divide by zero,
4883  * we need to use grq->avg.load_avg as its lower bound, which then gives:
4884  *
4885  *
4886  *                     tg->weight * grq->load.weight
4887  *   ge->load.weight = -----------------------------		   (6)
4888  *                             tg_load_avg'
4889  *
4890  * Where:
4891  *
4892  *   tg_load_avg' = tg->load_avg - grq->avg.load_avg +
4893  *                  max(grq->load.weight, grq->avg.load_avg)
4894  *
4895  * And that is shares_weight and is icky. In the (near) UP case it approaches
4896  * (4) while in the normal case it approaches (3). It consistently
4897  * overestimates the ge->load.weight and therefore:
4898  *
4899  *   \Sum ge->load.weight >= tg->weight
4900  *
4901  * hence icky!
4902  */
4903 static long __calc_smp_shares(struct cfs_rq *cfs_rq, long tg_shares, long shares_max)
4904 {
4905 	struct task_group *tg = cfs_rq->tg;
4906 	long tg_weight, load, shares;
4907 
4908 	load = max(scale_load_down(cfs_rq->load.weight), cfs_rq->avg.load_avg);
4909 
4910 	tg_weight = atomic_long_read(&tg->load_avg);
4911 
4912 	/* Ensure tg_weight >= load */
4913 	tg_weight -= cfs_rq->tg_load_avg_contrib;
4914 	tg_weight += load;
4915 
4916 	shares = (tg_shares * load);
4917 	if (tg_weight)
4918 		shares /= tg_weight;
4919 
4920 	/*
4921 	 * MIN_SHARES has to be unscaled here to support per-CPU partitioning
4922 	 * of a group with small tg->shares value. It is a floor value which is
4923 	 * assigned as a minimum load.weight to the sched_entity representing
4924 	 * the group on a CPU.
4925 	 *
4926 	 * E.g. on 64-bit for a group with tg->shares of scale_load(15)=15*1024
4927 	 * on an 8-core system with 8 tasks each runnable on one CPU shares has
4928 	 * to be 15*1024*1/8=1920 instead of scale_load(MIN_SHARES)=2*1024. In
4929 	 * case no task is runnable on a CPU MIN_SHARES=2 should be returned
4930 	 * instead of 0.
4931 	 */
4932 	return clamp_t(long, shares, MIN_SHARES, shares_max);
4933 }
4934 
4935 static int tg_cpus(struct task_group *tg)
4936 {
4937 	int nr = num_online_cpus();
4938 
4939 	if (cpusets_enabled()) {
4940 		struct cgroup *cgrp = tg->css.cgroup;
4941 		if (cgrp)
4942 			nr = cpuset_num_cpus(cgrp);
4943 	}
4944 
4945 	/*
4946 	 * An empty cpuset would propagate a 0 shares_max into
4947 	 * __calc_smp_shares(), where clamp() yields hi when hi < lo and so
4948 	 * defeats the MIN_SHARES floor. Match tg_tasks(), which floors at 1.
4949 	 */
4950 	return max(nr, 1);
4951 }
4952 
4953 static inline int tg_tasks(struct task_group *tg)
4954 {
4955 	return max(1, atomic_long_read(&tg->runnable_avg) >> SCHED_CAPACITY_SHIFT);
4956 }
4957 
4958 /*
4959  * Func: fraction(nr_tasks * tg->shares)
4960  *
4961  * Scale tg->shares by the number of tasks.
4962  */
4963 static long calc_tasks_shares(struct cfs_rq *cfs_rq)
4964 {
4965 	struct task_group *tg = cfs_rq->tg;
4966 	int nr = tg_tasks(tg);
4967 	long tg_shares = READ_ONCE(tg->shares);
4968 	return __calc_smp_shares(cfs_rq, nr * tg_shares, nr * tg_shares);
4969 }
4970 
4971 /*
4972  * Func: min(fraction(nr_cpus * tg->shares), nice -20)
4973  *
4974  * Scale tg->shares by the maximal number of CPUs; but clip the max shares at
4975  * nice -20, otherwise a single spinner on a 512 CPU machine would result in
4976  * 512*NICE_0_LOAD, which is also crazy.
4977  */
4978 static long calc_max_shares(struct cfs_rq *cfs_rq)
4979 {
4980 	struct task_group *tg = cfs_rq->tg;
4981 	int nr = tg_cpus(tg);
4982 	long tg_shares = READ_ONCE(tg->shares);
4983 	long max_shares = scale_load(sched_prio_to_weight[0]);
4984 	return __calc_smp_shares(cfs_rq, tg_shares * nr, max_shares);
4985 }
4986 
4987 /*
4988  * Func: fraction(nr * tg->shares); nr = min(nr_tasks, nr_cpus)
4989  *
4990  * Scales between "smp" and "max" in a natural way. No longer needs clipping
4991  * since there are no unnatural inflations like with "max".
4992  */
4993 static long calc_concur_shares(struct cfs_rq *cfs_rq)
4994 {
4995 	struct task_group *tg = cfs_rq->tg;
4996 	int nr = min(tg_tasks(tg), tg_cpus(tg));
4997 	long tg_shares = READ_ONCE(tg->shares);
4998 	return __calc_smp_shares(cfs_rq, nr * tg_shares, nr * tg_shares);
4999 }
5000 
5001 /*
5002  * Func: fraction(tg->shares)
5003  *
5004  * This infamously results in tiny shares when you have many CPUs.
5005  */
5006 static long calc_smp_shares(struct cfs_rq *cfs_rq)
5007 {
5008 	struct task_group *tg = cfs_rq->tg;
5009 	long tg_shares = READ_ONCE(tg->shares);
5010 	return __calc_smp_shares(cfs_rq, tg_shares, tg_shares);
5011 }
5012 
5013 /*
5014  * Ignore this pesky SMP stuff, use (4).
5015  */
5016 static long calc_up_shares(struct cfs_rq *cfs_rq)
5017 {
5018 	struct task_group *tg = cfs_rq->tg;
5019 	return READ_ONCE(tg->shares);
5020 }
5021 
5022 DEFINE_STATIC_CALL(calc_group_shares, calc_concur_shares);
5023 
5024 void __sched_cgroup_mode_update(int mode)
5025 {
5026 	long (*func)(struct cfs_rq *);
5027 	switch (mode) {
5028 	case 0:
5029 		func = &calc_up_shares;
5030 		break;
5031 	case 1:
5032 		func = &calc_smp_shares;
5033 		break;
5034 	case 2:
5035 	default:
5036 		func = &calc_concur_shares;
5037 		break;
5038 	case 3:
5039 		func = &calc_max_shares;
5040 		break;
5041 	case 4:
5042 		func = &calc_tasks_shares;
5043 		break;
5044 	}
5045 	static_call_update(calc_group_shares, func);
5046 }
5047 
5048 /*
5049  * Recomputes the group entity based on the current state of its group
5050  * runqueue.
5051  */
5052 static void update_cfs_group(struct sched_entity *se)
5053 {
5054 	struct cfs_rq *gcfs_rq = group_cfs_rq(se);
5055 	long shares;
5056 
5057 	/*
5058 	 * When a group becomes empty, preserve its weight. This matters for
5059 	 * DELAY_DEQUEUE.
5060 	 */
5061 	if (!gcfs_rq || !gcfs_rq->load.weight)
5062 		return;
5063 
5064 	shares = static_call(calc_group_shares)(gcfs_rq);
5065 	reweight_entity(cfs_rq_of(se), se, shares);
5066 }
5067 
5068 #else /* !CONFIG_FAIR_GROUP_SCHED: */
5069 static inline void update_cfs_group(struct sched_entity *se)
5070 {
5071 }
5072 #endif /* !CONFIG_FAIR_GROUP_SCHED */
5073 
5074 static inline void cfs_rq_util_change(struct cfs_rq *cfs_rq, int flags)
5075 {
5076 	struct rq *rq = rq_of(cfs_rq);
5077 
5078 	if (&rq->cfs == cfs_rq) {
5079 		/*
5080 		 * There are a few boundary cases this might miss but it should
5081 		 * get called often enough that that should (hopefully) not be
5082 		 * a real problem.
5083 		 *
5084 		 * It will not get called when we go idle, because the idle
5085 		 * thread is a different class (!fair), nor will the utilization
5086 		 * number include things like RT tasks.
5087 		 *
5088 		 * As is, the util number is not freq-invariant (we'd have to
5089 		 * implement arch_scale_freq_capacity() for that).
5090 		 *
5091 		 * See cpu_util_cfs().
5092 		 */
5093 		cpufreq_update_util(rq, flags);
5094 	}
5095 }
5096 
5097 static inline bool load_avg_is_decayed(struct sched_avg *sa)
5098 {
5099 	if (sa->load_sum)
5100 		return false;
5101 
5102 	if (sa->util_sum)
5103 		return false;
5104 
5105 	if (sa->runnable_sum)
5106 		return false;
5107 
5108 	/*
5109 	 * _avg must be null when _sum are null because _avg = _sum / divider
5110 	 * Make sure that rounding and/or propagation of PELT values never
5111 	 * break this.
5112 	 */
5113 	WARN_ON_ONCE(sa->load_avg ||
5114 		      sa->util_avg ||
5115 		      sa->runnable_avg);
5116 
5117 	return true;
5118 }
5119 
5120 static inline u64 cfs_rq_last_update_time(struct cfs_rq *cfs_rq)
5121 {
5122 	return u64_u32_load_copy(cfs_rq->avg.last_update_time,
5123 				 cfs_rq->last_update_time_copy);
5124 }
5125 #ifdef CONFIG_FAIR_GROUP_SCHED
5126 /*
5127  * Because list_add_leaf_cfs_rq always places a child cfs_rq on the list
5128  * immediately before a parent cfs_rq, and cfs_rqs are removed from the list
5129  * bottom-up, we only have to test whether the cfs_rq before us on the list
5130  * is our child.
5131  * If cfs_rq is not on the list, test whether a child needs its to be added to
5132  * connect a branch to the tree  * (see list_add_leaf_cfs_rq() for details).
5133  */
5134 static inline bool child_cfs_rq_on_list(struct cfs_rq *cfs_rq)
5135 {
5136 	struct cfs_rq *prev_cfs_rq;
5137 	struct list_head *prev;
5138 	struct rq *rq = rq_of(cfs_rq);
5139 
5140 	if (cfs_rq->on_list) {
5141 		prev = cfs_rq->leaf_cfs_rq_list.prev;
5142 	} else {
5143 		prev = rq->tmp_alone_branch;
5144 	}
5145 
5146 	if (prev == &rq->leaf_cfs_rq_list)
5147 		return false;
5148 
5149 	prev_cfs_rq = container_of(prev, struct cfs_rq, leaf_cfs_rq_list);
5150 
5151 	return (prev_cfs_rq->tg->parent == cfs_rq->tg);
5152 }
5153 
5154 static inline bool cfs_rq_is_decayed(struct cfs_rq *cfs_rq)
5155 {
5156 	if (cfs_rq->load.weight)
5157 		return false;
5158 
5159 	if (!load_avg_is_decayed(&cfs_rq->avg))
5160 		return false;
5161 
5162 	if (child_cfs_rq_on_list(cfs_rq))
5163 		return false;
5164 
5165 	if (cfs_rq->tg_load_avg_contrib)
5166 		return false;
5167 
5168 	return true;
5169 }
5170 
5171 /**
5172  * update_tg_load_avg - update the tg's load avg
5173  * @cfs_rq: the cfs_rq whose avg changed
5174  *
5175  * This function 'ensures': tg->load_avg := \Sum tg->cfs_rq[]->avg.load.
5176  * However, because tg->load_avg is a global value there are performance
5177  * considerations.
5178  *
5179  * In order to avoid having to look at the other cfs_rq's, we use a
5180  * differential update where we store the last value we propagated. This in
5181  * turn allows skipping updates if the differential is 'small'.
5182  *
5183  * Updating tg's load_avg is necessary before update_cfs_group().
5184  */
5185 static inline void update_tg_load_avg(struct cfs_rq *cfs_rq)
5186 {
5187 	long dl, dr;
5188 	u64 now;
5189 
5190 	/*
5191 	 * No need to update load_avg for root_task_group as it is not used.
5192 	 */
5193 	if (cfs_rq->tg == &root_task_group)
5194 		return;
5195 
5196 	/* rq has been offline and doesn't contribute to the share anymore: */
5197 	if (!cpu_active(cpu_of(rq_of(cfs_rq))))
5198 		return;
5199 
5200 	/*
5201 	 * For migration heavy workloads, access to tg->load_avg can be
5202 	 * unbound. Limit the update rate to at most once per ms.
5203 	 */
5204 	now = rq_clock(rq_of(cfs_rq));
5205 	if (now - cfs_rq->last_update_tg_load_avg < NSEC_PER_MSEC)
5206 		return;
5207 
5208 	dl = cfs_rq->avg.load_avg - cfs_rq->tg_load_avg_contrib;
5209 	dr = cfs_rq->avg.runnable_avg - cfs_rq->tg_runnable_avg_contrib;
5210 	if (abs(dl) > cfs_rq->tg_load_avg_contrib / 64 ||
5211 	    abs(dr) > cfs_rq->tg_runnable_avg_contrib / 64) {
5212 		atomic_long_add(dl, &cfs_rq->tg->load_avg);
5213 		atomic_long_add(dr, &cfs_rq->tg->runnable_avg);
5214 		cfs_rq->tg_load_avg_contrib = cfs_rq->avg.load_avg;
5215 		cfs_rq->tg_runnable_avg_contrib = cfs_rq->avg.runnable_avg;
5216 		cfs_rq->last_update_tg_load_avg = now;
5217 	}
5218 }
5219 
5220 static inline void clear_tg_load_avg(struct cfs_rq *cfs_rq)
5221 {
5222 	long dl, dr;
5223 	u64 now;
5224 
5225 	/*
5226 	 * No need to update load_avg for root_task_group, as it is not used.
5227 	 */
5228 	if (cfs_rq->tg == &root_task_group)
5229 		return;
5230 
5231 	now = rq_clock(rq_of(cfs_rq));
5232 	dl = 0 - cfs_rq->tg_load_avg_contrib;
5233 	dr = 0 - cfs_rq->tg_runnable_avg_contrib;
5234 	atomic_long_add(dl, &cfs_rq->tg->load_avg);
5235 	atomic_long_add(dr, &cfs_rq->tg->runnable_avg);
5236 	cfs_rq->tg_load_avg_contrib = 0;
5237 	cfs_rq->tg_runnable_avg_contrib = 0;
5238 	cfs_rq->last_update_tg_load_avg = now;
5239 }
5240 
5241 /* CPU offline callback: */
5242 static void __maybe_unused clear_tg_offline_cfs_rqs(struct rq *rq)
5243 {
5244 	struct task_group *tg;
5245 
5246 	lockdep_assert_rq_held(rq);
5247 
5248 	/*
5249 	 * The rq clock has already been updated in
5250 	 * set_rq_offline(), so we should skip updating
5251 	 * the rq clock again in unthrottle_cfs_rq().
5252 	 */
5253 	rq_clock_start_loop_update(rq);
5254 
5255 	guard(rcu)();
5256 
5257 	list_for_each_entry_rcu(tg, &task_groups, list) {
5258 		struct cfs_rq *cfs_rq = tg_cfs_rq(tg, cpu_of(rq));
5259 
5260 		clear_tg_load_avg(cfs_rq);
5261 	}
5262 
5263 	rq_clock_stop_loop_update(rq);
5264 }
5265 
5266 /*
5267  * Called within set_task_rq() right before setting a task's CPU. The
5268  * caller only guarantees p->pi_lock is held; no other assumptions,
5269  * including the state of rq->lock, should be made.
5270  */
5271 void set_task_rq_fair(struct sched_entity *se,
5272 		      struct cfs_rq *prev, struct cfs_rq *next)
5273 {
5274 	u64 p_last_update_time;
5275 	u64 n_last_update_time;
5276 
5277 	if (!sched_feat(ATTACH_AGE_LOAD))
5278 		return;
5279 
5280 	/*
5281 	 * We are supposed to update the task to "current" time, then its up to
5282 	 * date and ready to go to new CPU/cfs_rq. But we have difficulty in
5283 	 * getting what current time is, so simply throw away the out-of-date
5284 	 * time. This will result in the wakee task is less decayed, but giving
5285 	 * the wakee more load sounds not bad.
5286 	 */
5287 	if (!(se->avg.last_update_time && prev))
5288 		return;
5289 
5290 	p_last_update_time = cfs_rq_last_update_time(prev);
5291 	n_last_update_time = cfs_rq_last_update_time(next);
5292 
5293 	__update_load_avg_blocked_se(p_last_update_time, se);
5294 	se->avg.last_update_time = n_last_update_time;
5295 }
5296 
5297 /*
5298  * When on migration a sched_entity joins/leaves the PELT hierarchy, we need to
5299  * propagate its contribution. The key to this propagation is the invariant
5300  * that for each group:
5301  *
5302  *   ge->avg == grq->avg						(1)
5303  *
5304  * _IFF_ we look at the pure running and runnable sums. Because they
5305  * represent the very same entity, just at different points in the hierarchy.
5306  *
5307  * Per the above update_tg_cfs_util() and update_tg_cfs_runnable() are trivial
5308  * and simply copies the running/runnable sum over (but still wrong, because
5309  * the group entity and group rq do not have their PELT windows aligned).
5310  *
5311  * However, update_tg_cfs_load() is more complex. So we have:
5312  *
5313  *   ge->avg.load_avg = ge->load.weight * ge->avg.runnable_avg		(2)
5314  *
5315  * And since, like util, the runnable part should be directly transferable,
5316  * the following would _appear_ to be the straight forward approach:
5317  *
5318  *   grq->avg.load_avg = grq->load.weight * grq->avg.runnable_avg	(3)
5319  *
5320  * And per (1) we have:
5321  *
5322  *   ge->avg.runnable_avg == grq->avg.runnable_avg
5323  *
5324  * Which gives:
5325  *
5326  *                      ge->load.weight * grq->avg.load_avg
5327  *   ge->avg.load_avg = -----------------------------------		(4)
5328  *                               grq->load.weight
5329  *
5330  * Except that is wrong!
5331  *
5332  * Because while for entities historical weight is not important and we
5333  * really only care about our future and therefore can consider a pure
5334  * runnable sum, runqueues can NOT do this.
5335  *
5336  * We specifically want runqueues to have a load_avg that includes
5337  * historical weights. Those represent the blocked load, the load we expect
5338  * to (shortly) return to us. This only works by keeping the weights as
5339  * integral part of the sum. We therefore cannot decompose as per (3).
5340  *
5341  * Another reason this doesn't work is that runnable isn't a 0-sum entity.
5342  * Imagine a rq with 2 tasks that each are runnable 2/3 of the time. Then the
5343  * rq itself is runnable anywhere between 2/3 and 1 depending on how the
5344  * runnable section of these tasks overlap (or not). If they were to perfectly
5345  * align the rq as a whole would be runnable 2/3 of the time. If however we
5346  * always have at least 1 runnable task, the rq as a whole is always runnable.
5347  *
5348  * So we'll have to approximate.. :/
5349  *
5350  * Given the constraint:
5351  *
5352  *   ge->avg.running_sum <= ge->avg.runnable_sum <= LOAD_AVG_MAX
5353  *
5354  * We can construct a rule that adds runnable to a rq by assuming minimal
5355  * overlap.
5356  *
5357  * On removal, we'll assume each task is equally runnable; which yields:
5358  *
5359  *   grq->avg.runnable_sum = grq->avg.load_sum / grq->load.weight
5360  *
5361  * XXX: only do this for the part of runnable > running ?
5362  *
5363  */
5364 static inline void
5365 update_tg_cfs_util(struct cfs_rq *cfs_rq, struct sched_entity *se, struct cfs_rq *gcfs_rq)
5366 {
5367 	long delta_sum, delta_avg = gcfs_rq->avg.util_avg - se->avg.util_avg;
5368 	u32 new_sum, divider;
5369 
5370 	/* Nothing to update */
5371 	if (!delta_avg)
5372 		return;
5373 
5374 	/*
5375 	 * cfs_rq->avg.period_contrib can be used for both cfs_rq and se.
5376 	 * See ___update_load_avg() for details.
5377 	 */
5378 	divider = get_pelt_divider(&cfs_rq->avg);
5379 
5380 	/* Set new sched_entity's utilization */
5381 	se->avg.util_avg = gcfs_rq->avg.util_avg;
5382 	new_sum = se->avg.util_avg * divider;
5383 	delta_sum = (long)new_sum - (long)se->avg.util_sum;
5384 	se->avg.util_sum = new_sum;
5385 
5386 	/* Update parent cfs_rq utilization */
5387 	__update_sa(&cfs_rq->avg, util, delta_avg, delta_sum);
5388 }
5389 
5390 static inline void
5391 update_tg_cfs_runnable(struct cfs_rq *cfs_rq, struct sched_entity *se, struct cfs_rq *gcfs_rq)
5392 {
5393 	long delta_sum, delta_avg = gcfs_rq->avg.runnable_avg - se->avg.runnable_avg;
5394 	u64 new_sum;
5395 	u32 divider;
5396 
5397 	/* Nothing to update */
5398 	if (!delta_avg)
5399 		return;
5400 
5401 	/*
5402 	 * cfs_rq->avg.period_contrib can be used for both cfs_rq and se.
5403 	 * See ___update_load_avg() for details.
5404 	 */
5405 	divider = get_pelt_divider(&cfs_rq->avg);
5406 
5407 	/* Set new sched_entity's runnable */
5408 	se->avg.runnable_avg = gcfs_rq->avg.runnable_avg;
5409 	new_sum = (u64)se->avg.runnable_avg * divider;
5410 	delta_sum = (long)new_sum - (long)se->avg.runnable_sum;
5411 	se->avg.runnable_sum = new_sum;
5412 
5413 	/* Update parent cfs_rq runnable */
5414 	__update_sa(&cfs_rq->avg, runnable, delta_avg, delta_sum);
5415 }
5416 
5417 static inline void
5418 update_tg_cfs_load(struct cfs_rq *cfs_rq, struct sched_entity *se, struct cfs_rq *gcfs_rq)
5419 {
5420 	long delta_avg, running_sum, runnable_sum = gcfs_rq->prop_runnable_sum;
5421 	unsigned long load_avg;
5422 	u64 load_sum = 0;
5423 	s64 delta_sum;
5424 	u32 divider;
5425 
5426 	if (!runnable_sum)
5427 		return;
5428 
5429 	gcfs_rq->prop_runnable_sum = 0;
5430 
5431 	/*
5432 	 * cfs_rq->avg.period_contrib can be used for both cfs_rq and se.
5433 	 * See ___update_load_avg() for details.
5434 	 */
5435 	divider = get_pelt_divider(&cfs_rq->avg);
5436 
5437 	if (runnable_sum >= 0) {
5438 		/*
5439 		 * Add runnable; clip at LOAD_AVG_MAX. Reflects that until
5440 		 * the CPU is saturated running == runnable.
5441 		 */
5442 		runnable_sum += se->avg.load_sum;
5443 		runnable_sum = min_t(long, runnable_sum, divider);
5444 	} else {
5445 		/*
5446 		 * Estimate the new unweighted runnable_sum of the gcfs_rq by
5447 		 * assuming all tasks are equally runnable.
5448 		 */
5449 		if (scale_load_down(gcfs_rq->load.weight)) {
5450 			load_sum = div_u64(gcfs_rq->avg.load_sum,
5451 				scale_load_down(gcfs_rq->load.weight));
5452 		}
5453 
5454 		/* But make sure to not inflate se's runnable */
5455 		runnable_sum = min(se->avg.load_sum, load_sum);
5456 	}
5457 
5458 	/*
5459 	 * runnable_sum can't be lower than running_sum
5460 	 * Rescale running sum to be in the same range as runnable sum
5461 	 * running_sum is in [0 : LOAD_AVG_MAX <<  SCHED_CAPACITY_SHIFT]
5462 	 * runnable_sum is in [0 : LOAD_AVG_MAX]
5463 	 */
5464 	running_sum = se->avg.util_sum >> SCHED_CAPACITY_SHIFT;
5465 	runnable_sum = max(runnable_sum, running_sum);
5466 
5467 	load_sum = se_weight(se) * runnable_sum;
5468 	load_avg = div_u64(load_sum, divider);
5469 
5470 	delta_avg = load_avg - se->avg.load_avg;
5471 	if (!delta_avg)
5472 		return;
5473 
5474 	delta_sum = load_sum - (s64)se_weight(se) * se->avg.load_sum;
5475 
5476 	se->avg.load_sum = runnable_sum;
5477 	se->avg.load_avg = load_avg;
5478 	__update_sa(&cfs_rq->avg, load, delta_avg, delta_sum);
5479 }
5480 
5481 static inline void add_tg_cfs_propagate(struct cfs_rq *cfs_rq, long runnable_sum)
5482 {
5483 	cfs_rq->propagate = 1;
5484 	cfs_rq->prop_runnable_sum += runnable_sum;
5485 }
5486 
5487 /* Update task and its cfs_rq load average */
5488 static inline int propagate_entity_load_avg(struct sched_entity *se)
5489 {
5490 	struct cfs_rq *cfs_rq, *gcfs_rq;
5491 
5492 	if (entity_is_task(se))
5493 		return 0;
5494 
5495 	gcfs_rq = group_cfs_rq(se);
5496 	if (!gcfs_rq->propagate)
5497 		return 0;
5498 
5499 	gcfs_rq->propagate = 0;
5500 
5501 	cfs_rq = cfs_rq_of(se);
5502 
5503 	add_tg_cfs_propagate(cfs_rq, gcfs_rq->prop_runnable_sum);
5504 
5505 	update_tg_cfs_util(cfs_rq, se, gcfs_rq);
5506 	update_tg_cfs_runnable(cfs_rq, se, gcfs_rq);
5507 	update_tg_cfs_load(cfs_rq, se, gcfs_rq);
5508 
5509 	trace_pelt_cfs_tp(cfs_rq);
5510 	trace_pelt_se_tp(se);
5511 
5512 	return 1;
5513 }
5514 
5515 /*
5516  * Check if we need to update the load and the utilization of a blocked
5517  * group_entity:
5518  */
5519 static inline bool skip_blocked_update(struct sched_entity *se)
5520 {
5521 	struct cfs_rq *gcfs_rq = group_cfs_rq(se);
5522 
5523 	/*
5524 	 * If sched_entity still have not zero load or utilization, we have to
5525 	 * decay it:
5526 	 */
5527 	if (se->avg.load_avg || se->avg.util_avg)
5528 		return false;
5529 
5530 	/*
5531 	 * If there is a pending propagation, we have to update the load and
5532 	 * the utilization of the sched_entity:
5533 	 */
5534 	if (gcfs_rq->propagate)
5535 		return false;
5536 
5537 	/*
5538 	 * Otherwise, the load and the utilization of the sched_entity is
5539 	 * already zero and there is no pending propagation, so it will be a
5540 	 * waste of time to try to decay it:
5541 	 */
5542 	return true;
5543 }
5544 
5545 #else /* !CONFIG_FAIR_GROUP_SCHED: */
5546 
5547 static inline void update_tg_load_avg(struct cfs_rq *cfs_rq) {}
5548 
5549 static inline void clear_tg_offline_cfs_rqs(struct rq *rq) {}
5550 
5551 static inline int propagate_entity_load_avg(struct sched_entity *se)
5552 {
5553 	return 0;
5554 }
5555 
5556 static inline void add_tg_cfs_propagate(struct cfs_rq *cfs_rq, long runnable_sum) {}
5557 
5558 #endif /* !CONFIG_FAIR_GROUP_SCHED */
5559 
5560 #ifdef CONFIG_NO_HZ_COMMON
5561 static inline void migrate_se_pelt_lag(struct sched_entity *se)
5562 {
5563 	u64 throttled = 0, now, lut;
5564 	struct cfs_rq *cfs_rq;
5565 	struct rq *rq;
5566 	bool is_idle;
5567 
5568 	if (load_avg_is_decayed(&se->avg))
5569 		return;
5570 
5571 	cfs_rq = cfs_rq_of(se);
5572 	rq = rq_of(cfs_rq);
5573 
5574 	rcu_read_lock();
5575 	is_idle = is_idle_task(rcu_dereference_all(rq->curr));
5576 	rcu_read_unlock();
5577 
5578 	/*
5579 	 * The lag estimation comes with a cost we don't want to pay all the
5580 	 * time. Hence, limiting to the case where the source CPU is idle and
5581 	 * we know we are at the greatest risk to have an outdated clock.
5582 	 */
5583 	if (!is_idle)
5584 		return;
5585 
5586 	/*
5587 	 * Estimated "now" is: last_update_time + cfs_idle_lag + rq_idle_lag, where:
5588 	 *
5589 	 *   last_update_time (the cfs_rq's last_update_time)
5590 	 *	= cfs_rq_clock_pelt()@cfs_rq_idle
5591 	 *      = rq_clock_pelt()@cfs_rq_idle
5592 	 *        - cfs->throttled_clock_pelt_time@cfs_rq_idle
5593 	 *
5594 	 *   cfs_idle_lag (delta between rq's update and cfs_rq's update)
5595 	 *      = rq_clock_pelt()@rq_idle - rq_clock_pelt()@cfs_rq_idle
5596 	 *
5597 	 *   rq_idle_lag (delta between now and rq's update)
5598 	 *      = sched_clock_cpu() - rq_clock()@rq_idle
5599 	 *
5600 	 * We can then write:
5601 	 *
5602 	 *    now = rq_clock_pelt()@rq_idle - cfs->throttled_clock_pelt_time +
5603 	 *          sched_clock_cpu() - rq_clock()@rq_idle
5604 	 * Where:
5605 	 *      rq_clock_pelt()@rq_idle is rq->clock_pelt_idle
5606 	 *      rq_clock()@rq_idle      is rq->clock_idle
5607 	 *      cfs->throttled_clock_pelt_time@cfs_rq_idle
5608 	 *                              is cfs_rq->throttled_pelt_idle
5609 	 */
5610 
5611 #ifdef CONFIG_CFS_BANDWIDTH
5612 	throttled = u64_u32_load(cfs_rq->throttled_pelt_idle);
5613 	/* The clock has been stopped for throttling */
5614 	if (throttled == U64_MAX)
5615 		return;
5616 #endif
5617 	now = u64_u32_load(rq->clock_pelt_idle);
5618 	/*
5619 	 * Paired with _update_idle_rq_clock_pelt(). It ensures at the worst case
5620 	 * is observed the old clock_pelt_idle value and the new clock_idle,
5621 	 * which lead to an underestimation. The opposite would lead to an
5622 	 * overestimation.
5623 	 */
5624 	smp_rmb();
5625 	lut = cfs_rq_last_update_time(cfs_rq);
5626 
5627 	now -= throttled;
5628 	if (now < lut)
5629 		/*
5630 		 * cfs_rq->avg.last_update_time is more recent than our
5631 		 * estimation, let's use it.
5632 		 */
5633 		now = lut;
5634 	else
5635 		now += sched_clock_cpu(cpu_of(rq)) - u64_u32_load(rq->clock_idle);
5636 
5637 	__update_load_avg_blocked_se(now, se);
5638 }
5639 #else /* !CONFIG_NO_HZ_COMMON: */
5640 static void migrate_se_pelt_lag(struct sched_entity *se) {}
5641 #endif /* !CONFIG_NO_HZ_COMMON */
5642 
5643 /**
5644  * update_cfs_rq_load_avg - update the cfs_rq's load/util averages
5645  * @now: current time, as per cfs_rq_clock_pelt()
5646  * @cfs_rq: cfs_rq to update
5647  *
5648  * The cfs_rq avg is the direct sum of all its entities (blocked and runnable)
5649  * avg. The immediate corollary is that all (fair) tasks must be attached.
5650  *
5651  * cfs_rq->avg is used for task_h_load() and update_cfs_group() for example.
5652  *
5653  * Return: true if the load decayed or we removed load.
5654  *
5655  * Since both these conditions indicate a changed cfs_rq->avg.load we should
5656  * call update_tg_load_avg() when this function returns true.
5657  */
5658 static inline int
5659 update_cfs_rq_load_avg(u64 now, struct cfs_rq *cfs_rq)
5660 {
5661 	unsigned long removed_load = 0, removed_util = 0, removed_runnable = 0;
5662 	struct sched_avg *sa = &cfs_rq->avg;
5663 	int decayed = 0;
5664 
5665 	if (cfs_rq->removed.nr) {
5666 		unsigned long r;
5667 		u32 divider = get_pelt_divider(&cfs_rq->avg);
5668 
5669 		raw_spin_lock(&cfs_rq->removed.lock);
5670 		swap(cfs_rq->removed.util_avg, removed_util);
5671 		swap(cfs_rq->removed.load_avg, removed_load);
5672 		swap(cfs_rq->removed.runnable_avg, removed_runnable);
5673 		cfs_rq->removed.nr = 0;
5674 		raw_spin_unlock(&cfs_rq->removed.lock);
5675 
5676 		r = removed_load;
5677 		__update_sa(sa, load, -r, -r*divider);
5678 
5679 		r = removed_util;
5680 		__update_sa(sa, util, -r, -r*divider);
5681 
5682 		r = removed_runnable;
5683 		__update_sa(sa, runnable, -r, -r*divider);
5684 
5685 		/*
5686 		 * removed_runnable is the unweighted version of removed_load so we
5687 		 * can use it to estimate removed_load_sum.
5688 		 */
5689 		add_tg_cfs_propagate(cfs_rq,
5690 			-(long)(removed_runnable * divider) >> SCHED_CAPACITY_SHIFT);
5691 
5692 		decayed = 1;
5693 	}
5694 
5695 	decayed |= __update_load_avg_cfs_rq(now, cfs_rq);
5696 	u64_u32_store_copy(sa->last_update_time,
5697 			   cfs_rq->last_update_time_copy,
5698 			   sa->last_update_time);
5699 	return decayed;
5700 }
5701 
5702 /**
5703  * attach_entity_load_avg - attach this entity to its cfs_rq load avg
5704  * @cfs_rq: cfs_rq to attach to
5705  * @se: sched_entity to attach
5706  *
5707  * Must call update_cfs_rq_load_avg() before this, since we rely on
5708  * cfs_rq->avg.last_update_time being current.
5709  */
5710 static void attach_entity_load_avg(struct cfs_rq *cfs_rq, struct sched_entity *se)
5711 {
5712 	/*
5713 	 * cfs_rq->avg.period_contrib can be used for both cfs_rq and se.
5714 	 * See ___update_load_avg() for details.
5715 	 */
5716 	u32 divider = get_pelt_divider(&cfs_rq->avg);
5717 
5718 	/*
5719 	 * When we attach the @se to the @cfs_rq, we must align the decay
5720 	 * window because without that, really weird and wonderful things can
5721 	 * happen.
5722 	 *
5723 	 * XXX illustrate
5724 	 */
5725 	se->avg.last_update_time = cfs_rq->avg.last_update_time;
5726 	se->avg.period_contrib = cfs_rq->avg.period_contrib;
5727 
5728 	/*
5729 	 * Hell(o) Nasty stuff.. we need to recompute _sum based on the new
5730 	 * period_contrib. This isn't strictly correct, but since we're
5731 	 * entirely outside of the PELT hierarchy, nobody cares if we truncate
5732 	 * _sum a little.
5733 	 */
5734 	se->avg.util_sum = se->avg.util_avg * divider;
5735 
5736 	se->avg.runnable_sum = se->avg.runnable_avg * divider;
5737 
5738 	se->avg.load_sum = se->avg.load_avg * divider;
5739 	if (se_weight(se) < se->avg.load_sum)
5740 		se->avg.load_sum = div_u64(se->avg.load_sum, se_weight(se));
5741 	else
5742 		se->avg.load_sum = 1;
5743 
5744 	enqueue_load_avg(cfs_rq, se);
5745 	cfs_rq->avg.util_avg += se->avg.util_avg;
5746 	cfs_rq->avg.util_sum += se->avg.util_sum;
5747 	cfs_rq->avg.runnable_avg += se->avg.runnable_avg;
5748 	cfs_rq->avg.runnable_sum += se->avg.runnable_sum;
5749 
5750 	add_tg_cfs_propagate(cfs_rq, se->avg.load_sum);
5751 
5752 	cfs_rq_util_change(cfs_rq, 0);
5753 
5754 	trace_pelt_cfs_tp(cfs_rq);
5755 }
5756 
5757 /**
5758  * detach_entity_load_avg - detach this entity from its cfs_rq load avg
5759  * @cfs_rq: cfs_rq to detach from
5760  * @se: sched_entity to detach
5761  *
5762  * Must call update_cfs_rq_load_avg() before this, since we rely on
5763  * cfs_rq->avg.last_update_time being current.
5764  */
5765 static void detach_entity_load_avg(struct cfs_rq *cfs_rq, struct sched_entity *se)
5766 {
5767 	dequeue_load_avg(cfs_rq, se);
5768 	__update_sa(&cfs_rq->avg, util, -se->avg.util_avg, -se->avg.util_sum);
5769 	__update_sa(&cfs_rq->avg, runnable, -se->avg.runnable_avg, -se->avg.runnable_sum);
5770 
5771 	add_tg_cfs_propagate(cfs_rq, -se->avg.load_sum);
5772 
5773 	cfs_rq_util_change(cfs_rq, 0);
5774 
5775 	trace_pelt_cfs_tp(cfs_rq);
5776 }
5777 
5778 #define UTIL_EST_MARGIN (SCHED_CAPACITY_SCALE / 100)
5779 
5780 static inline void util_est_update(struct sched_entity *se)
5781 {
5782 	unsigned int ewma, dequeued, last_ewma_diff;
5783 
5784 	if (!sched_feat(UTIL_EST))
5785 		return;
5786 
5787 	/* Get current estimate of utilization */
5788 	ewma = READ_ONCE(se->avg.util_est);
5789 
5790 	/*
5791 	 * If the PELT values haven't changed since enqueue time,
5792 	 * skip the util_est update.
5793 	 */
5794 	if (ewma & UTIL_AVG_UNCHANGED)
5795 		return;
5796 
5797 	/* Get utilization at dequeue */
5798 	dequeued = READ_ONCE(se->avg.util_avg);
5799 
5800 	/*
5801 	 * Reset EWMA on utilization increases, the moving average is used only
5802 	 * to smooth utilization decreases.
5803 	 */
5804 	if (ewma <= dequeued) {
5805 		ewma = dequeued;
5806 		goto done;
5807 	}
5808 
5809 	/*
5810 	 * Skip update of task's estimated utilization when its members are
5811 	 * already ~1% close to its last activation value.
5812 	 */
5813 	last_ewma_diff = ewma - dequeued;
5814 	if (last_ewma_diff < UTIL_EST_MARGIN)
5815 		goto done;
5816 
5817 	/*
5818 	 * To avoid underestimate of task utilization, skip updates of EWMA if
5819 	 * we cannot grant that thread got all CPU time it wanted.
5820 	 */
5821 	if ((dequeued + UTIL_EST_MARGIN) < READ_ONCE(se->avg.runnable_avg))
5822 		goto done;
5823 
5824 	/*
5825 	 * Update Task's estimated utilization
5826 	 *
5827 	 * When *p completes an activation we can consolidate another sample
5828 	 * of the task size. This is done by using this value to update the
5829 	 * Exponential Weighted Moving Average (EWMA):
5830 	 *
5831 	 *  ewma(t) = w *  task_util(p) + (1-w) * ewma(t-1)
5832 	 *          = w *  task_util(p) +         ewma(t-1)  - w * ewma(t-1)
5833 	 *          = w * (task_util(p) -         ewma(t-1)) +     ewma(t-1)
5834 	 *          = w * (      -last_ewma_diff           ) +     ewma(t-1)
5835 	 *          = w * (-last_ewma_diff +  ewma(t-1) / w)
5836 	 *
5837 	 * Where 'w' is the weight of new samples, which is configured to be
5838 	 * 0.25, thus making w=1/4 ( >>= UTIL_EST_WEIGHT_SHIFT)
5839 	 */
5840 	ewma <<= UTIL_EST_WEIGHT_SHIFT;
5841 	ewma  -= last_ewma_diff;
5842 	ewma >>= UTIL_EST_WEIGHT_SHIFT;
5843 done:
5844 	ewma |= UTIL_AVG_UNCHANGED;
5845 	WRITE_ONCE(se->avg.util_est, ewma);
5846 
5847 	trace_sched_util_est_se_tp(se);
5848 }
5849 
5850 /*
5851  * Optional action to be done while updating the load average
5852  */
5853 #define UPDATE_TG	0x01
5854 #define SKIP_AGE_LOAD	0x02
5855 #define DO_ATTACH	0x04
5856 #define DO_DETACH	0x08
5857 #define UPDATE_UTIL_EST	0x10
5858 
5859 /* Update task and its cfs_rq load average */
5860 static inline void update_load_avg(struct cfs_rq *cfs_rq, struct sched_entity *se, int flags)
5861 {
5862 	u64 now = cfs_rq_clock_pelt(cfs_rq);
5863 	int decayed;
5864 
5865 	/*
5866 	 * Track task load average for carrying it to new CPU after migrated, and
5867 	 * track group sched_entity load average for task_h_load calculation in migration
5868 	 */
5869 	if (se->avg.last_update_time && !(flags & SKIP_AGE_LOAD))
5870 		__update_load_avg_se(now, cfs_rq, se);
5871 
5872 	decayed  = update_cfs_rq_load_avg(now, cfs_rq);
5873 	decayed |= propagate_entity_load_avg(se);
5874 
5875 	if (!se->avg.last_update_time && (flags & DO_ATTACH)) {
5876 
5877 		/*
5878 		 * DO_ATTACH means we're here from enqueue_entity().
5879 		 * !last_update_time means we've passed through
5880 		 * migrate_task_rq_fair() indicating we migrated.
5881 		 *
5882 		 * IOW we're enqueueing a task on a new CPU.
5883 		 */
5884 		attach_entity_load_avg(cfs_rq, se);
5885 		update_tg_load_avg(cfs_rq);
5886 
5887 	} else if (flags & DO_DETACH) {
5888 		/*
5889 		 * DO_DETACH means we're here from dequeue_entity()
5890 		 * and we are migrating task out of the CPU.
5891 		 */
5892 		detach_entity_load_avg(cfs_rq, se);
5893 		update_tg_load_avg(cfs_rq);
5894 	} else if (decayed) {
5895 		cfs_rq_util_change(cfs_rq, 0);
5896 
5897 		if (flags & UPDATE_TG)
5898 			update_tg_load_avg(cfs_rq);
5899 	}
5900 
5901 	if (flags & UPDATE_UTIL_EST)
5902 		util_est_update(se);
5903 }
5904 
5905 /*
5906  * Synchronize entity load avg of dequeued entity without locking
5907  * the previous rq.
5908  */
5909 static void sync_entity_load_avg(struct sched_entity *se)
5910 {
5911 	struct cfs_rq *cfs_rq = cfs_rq_of(se);
5912 	u64 last_update_time;
5913 
5914 	last_update_time = cfs_rq_last_update_time(cfs_rq);
5915 	__update_load_avg_blocked_se(last_update_time, se);
5916 }
5917 
5918 /*
5919  * Task first catches up with cfs_rq, and then subtract
5920  * itself from the cfs_rq (task must be off the queue now).
5921  */
5922 static void remove_entity_load_avg(struct sched_entity *se)
5923 {
5924 	struct cfs_rq *cfs_rq = cfs_rq_of(se);
5925 	unsigned long flags;
5926 
5927 	/*
5928 	 * tasks cannot exit without having gone through wake_up_new_task() ->
5929 	 * enqueue_task_fair() which will have added things to the cfs_rq,
5930 	 * so we can remove unconditionally.
5931 	 */
5932 
5933 	sync_entity_load_avg(se);
5934 
5935 	raw_spin_lock_irqsave(&cfs_rq->removed.lock, flags);
5936 	++cfs_rq->removed.nr;
5937 	cfs_rq->removed.util_avg	+= se->avg.util_avg;
5938 	cfs_rq->removed.load_avg	+= se->avg.load_avg;
5939 	cfs_rq->removed.runnable_avg	+= se->avg.runnable_avg;
5940 	raw_spin_unlock_irqrestore(&cfs_rq->removed.lock, flags);
5941 }
5942 
5943 static inline unsigned long cfs_rq_runnable_avg(struct cfs_rq *cfs_rq)
5944 {
5945 	return cfs_rq->avg.runnable_avg;
5946 }
5947 
5948 static inline unsigned long cfs_rq_load_avg(struct cfs_rq *cfs_rq)
5949 {
5950 	return cfs_rq->avg.load_avg;
5951 }
5952 
5953 static int sched_balance_newidle(struct rq *this_rq, struct rq_flags *rf)
5954 	__must_hold(__rq_lockp(this_rq));
5955 
5956 static inline unsigned long task_util(struct task_struct *p)
5957 {
5958 	return READ_ONCE(p->se.avg.util_avg);
5959 }
5960 
5961 static inline unsigned long _task_util_est(struct task_struct *p)
5962 {
5963 	return READ_ONCE(p->se.avg.util_est) & ~UTIL_AVG_UNCHANGED;
5964 }
5965 
5966 static inline unsigned long task_util_est(struct task_struct *p)
5967 {
5968 	return max(task_util(p), _task_util_est(p));
5969 }
5970 
5971 static inline void util_est_enqueue(struct cfs_rq *cfs_rq,
5972 				    struct task_struct *p)
5973 {
5974 	unsigned int enqueued;
5975 
5976 	if (!sched_feat(UTIL_EST))
5977 		return;
5978 
5979 	/* Update root cfs_rq's estimated utilization */
5980 	enqueued  = cfs_rq->avg.util_est;
5981 	enqueued += _task_util_est(p);
5982 	WRITE_ONCE(cfs_rq->avg.util_est, enqueued);
5983 
5984 	trace_sched_util_est_cfs_tp(cfs_rq);
5985 }
5986 
5987 static inline void util_est_dequeue(struct cfs_rq *cfs_rq,
5988 				    struct task_struct *p)
5989 {
5990 	unsigned int enqueued;
5991 
5992 	if (!sched_feat(UTIL_EST))
5993 		return;
5994 
5995 	/* Update root cfs_rq's estimated utilization */
5996 	enqueued  = cfs_rq->avg.util_est;
5997 	enqueued -= min_t(unsigned int, enqueued, _task_util_est(p));
5998 	WRITE_ONCE(cfs_rq->avg.util_est, enqueued);
5999 
6000 	trace_sched_util_est_cfs_tp(cfs_rq);
6001 }
6002 
6003 static inline unsigned long get_actual_cpu_capacity(int cpu)
6004 {
6005 	unsigned long capacity = arch_scale_cpu_capacity(cpu);
6006 
6007 	capacity -= max(hw_load_avg(cpu_rq(cpu)), cpufreq_get_pressure(cpu));
6008 
6009 	return capacity;
6010 }
6011 
6012 static inline int util_fits_cpu(unsigned long util,
6013 				unsigned long uclamp_min,
6014 				unsigned long uclamp_max,
6015 				int cpu)
6016 {
6017 	unsigned long capacity = capacity_of(cpu);
6018 	unsigned long capacity_orig;
6019 	bool fits, uclamp_max_fits;
6020 
6021 	/*
6022 	 * Check if the real util fits without any uclamp boost/cap applied.
6023 	 */
6024 	fits = fits_capacity(util, capacity);
6025 
6026 	if (!uclamp_is_used())
6027 		return fits;
6028 
6029 	/*
6030 	 * We must use arch_scale_cpu_capacity() for comparing against uclamp_min and
6031 	 * uclamp_max. We only care about capacity pressure (by using
6032 	 * capacity_of()) for comparing against the real util.
6033 	 *
6034 	 * If a task is boosted to 1024 for example, we don't want a tiny
6035 	 * pressure to skew the check whether it fits a CPU or not.
6036 	 *
6037 	 * Similarly if a task is capped to arch_scale_cpu_capacity(little_cpu), it
6038 	 * should fit a little cpu even if there's some pressure.
6039 	 *
6040 	 * Only exception is for HW or cpufreq pressure since it has a direct impact
6041 	 * on available OPP of the system.
6042 	 *
6043 	 * We honour it for uclamp_min only as a drop in performance level
6044 	 * could result in not getting the requested minimum performance level.
6045 	 *
6046 	 * For uclamp_max, we can tolerate a drop in performance level as the
6047 	 * goal is to cap the task. So it's okay if it's getting less.
6048 	 */
6049 	capacity_orig = arch_scale_cpu_capacity(cpu);
6050 
6051 	/*
6052 	 * We want to force a task to fit a cpu as implied by uclamp_max.
6053 	 * But we do have some corner cases to cater for..
6054 	 *
6055 	 *
6056 	 *                                 C=z
6057 	 *   |                             ___
6058 	 *   |                  C=y       |   |
6059 	 *   |_ _ _ _ _ _ _ _ _ ___ _ _ _ | _ | _ _ _ _ _  uclamp_max
6060 	 *   |      C=x        |   |      |   |
6061 	 *   |      ___        |   |      |   |
6062 	 *   |     |   |       |   |      |   |    (util somewhere in this region)
6063 	 *   |     |   |       |   |      |   |
6064 	 *   |     |   |       |   |      |   |
6065 	 *   +----------------------------------------
6066 	 *         CPU0        CPU1       CPU2
6067 	 *
6068 	 *   In the above example if a task is capped to a specific performance
6069 	 *   point, y, then when:
6070 	 *
6071 	 *   * util = 80% of x then it does not fit on CPU0 and should migrate
6072 	 *     to CPU1
6073 	 *   * util = 80% of y then it is forced to fit on CPU1 to honour
6074 	 *     uclamp_max request.
6075 	 *
6076 	 *   which is what we're enforcing here. A task always fits if
6077 	 *   uclamp_max <= capacity_orig. But when uclamp_max > capacity_orig,
6078 	 *   the normal upmigration rules should withhold still.
6079 	 *
6080 	 *   Only exception is when we are on max capacity, then we need to be
6081 	 *   careful not to block overutilized state. This is so because:
6082 	 *
6083 	 *     1. There's no concept of capping at max_capacity! We can't go
6084 	 *        beyond this performance level anyway.
6085 	 *     2. The system is being saturated when we're operating near
6086 	 *        max capacity, it doesn't make sense to block overutilized.
6087 	 */
6088 	uclamp_max_fits = (capacity_orig == SCHED_CAPACITY_SCALE) && (uclamp_max == SCHED_CAPACITY_SCALE);
6089 	uclamp_max_fits = !uclamp_max_fits && (uclamp_max <= capacity_orig);
6090 	fits = fits || uclamp_max_fits;
6091 
6092 	/*
6093 	 *
6094 	 *                                 C=z
6095 	 *   |                             ___       (region a, capped, util >= uclamp_max)
6096 	 *   |                  C=y       |   |
6097 	 *   |_ _ _ _ _ _ _ _ _ ___ _ _ _ | _ | _ _ _ _ _ uclamp_max
6098 	 *   |      C=x        |   |      |   |
6099 	 *   |      ___        |   |      |   |      (region b, uclamp_min <= util <= uclamp_max)
6100 	 *   |_ _ _|_ _|_ _ _ _| _ | _ _ _| _ | _ _ _ _ _ uclamp_min
6101 	 *   |     |   |       |   |      |   |
6102 	 *   |     |   |       |   |      |   |      (region c, boosted, util < uclamp_min)
6103 	 *   +----------------------------------------
6104 	 *         CPU0        CPU1       CPU2
6105 	 *
6106 	 * a) If util > uclamp_max, then we're capped, we don't care about
6107 	 *    actual fitness value here. We only care if uclamp_max fits
6108 	 *    capacity without taking margin/pressure into account.
6109 	 *    See comment above.
6110 	 *
6111 	 * b) If uclamp_min <= util <= uclamp_max, then the normal
6112 	 *    fits_capacity() rules apply. Except we need to ensure that we
6113 	 *    enforce we remain within uclamp_max, see comment above.
6114 	 *
6115 	 * c) If util < uclamp_min, then we are boosted. Same as (b) but we
6116 	 *    need to take into account the boosted value fits the CPU without
6117 	 *    taking margin/pressure into account.
6118 	 *
6119 	 * Cases (a) and (b) are handled in the 'fits' variable already. We
6120 	 * just need to consider an extra check for case (c) after ensuring we
6121 	 * handle the case uclamp_min > uclamp_max.
6122 	 */
6123 	uclamp_min = min(uclamp_min, uclamp_max);
6124 	if (fits && (util < uclamp_min) &&
6125 	    (uclamp_min > get_actual_cpu_capacity(cpu)))
6126 		return -1;
6127 
6128 	return fits;
6129 }
6130 
6131 static inline int task_fits_cpu(struct task_struct *p, int cpu)
6132 {
6133 	unsigned long uclamp_min = uclamp_eff_value(p, UCLAMP_MIN);
6134 	unsigned long uclamp_max = uclamp_eff_value(p, UCLAMP_MAX);
6135 	unsigned long util = task_util_est(p);
6136 	/*
6137 	 * Return true only if the cpu fully fits the task requirements, which
6138 	 * include the utilization but also the performance hints.
6139 	 */
6140 	return (util_fits_cpu(util, uclamp_min, uclamp_max, cpu) > 0);
6141 }
6142 
6143 static inline void update_misfit_status(struct task_struct *p, struct rq *rq)
6144 {
6145 	int cpu = cpu_of(rq);
6146 
6147 	if (!sched_asym_cpucap_active())
6148 		return;
6149 
6150 	/*
6151 	 * Affinity allows us to go somewhere higher?  Or are we on biggest
6152 	 * available CPU already? Or do we fit into this CPU ?
6153 	 */
6154 	if (!p || (p->nr_cpus_allowed == 1) ||
6155 	    (arch_scale_cpu_capacity(cpu) == p->max_allowed_capacity) ||
6156 	    task_fits_cpu(p, cpu)) {
6157 
6158 		rq->misfit_task_load = 0;
6159 		return;
6160 	}
6161 
6162 	/*
6163 	 * Make sure that misfit_task_load will not be null even if
6164 	 * task_h_load() returns 0.
6165 	 */
6166 	rq->misfit_task_load = max_t(unsigned long, task_h_load(p), 1);
6167 }
6168 
6169 void __setparam_fair(struct task_struct *p, const struct sched_attr *attr)
6170 {
6171 	struct sched_entity *se = &p->se;
6172 
6173 	p->static_prio = NICE_TO_PRIO(attr->sched_nice);
6174 	if (attr->sched_runtime) {
6175 		se->custom_slice = 1;
6176 		se->slice = clamp_t(u64, attr->sched_runtime,
6177 				      NSEC_PER_MSEC/10,   /* HZ=1000 * 10 */
6178 				      NSEC_PER_MSEC*100); /* HZ=100  / 10 */
6179 	} else {
6180 		se->custom_slice = 0;
6181 		se->slice = sysctl_sched_base_slice;
6182 	}
6183 }
6184 
6185 static void
6186 place_entity(struct cfs_rq *cfs_rq, struct sched_entity *se, int flags)
6187 {
6188 	u64 vslice, vruntime = avg_vruntime(cfs_rq);
6189 	unsigned int nr_queued = cfs_rq->h_nr_queued;
6190 	bool update_zero = false;
6191 	s64 lag = 0;
6192 
6193 	if (!se->custom_slice)
6194 		se->slice = sysctl_sched_base_slice;
6195 	vslice = calc_delta_fair(se->slice, se);
6196 
6197 	if (flags & ENQUEUE_QUEUED)
6198 		nr_queued -= 1;
6199 
6200 	/*
6201 	 * Due to how V is constructed as the weighted average of entities,
6202 	 * adding tasks with positive lag, or removing tasks with negative lag
6203 	 * will move 'time' backwards, this can screw around with the lag of
6204 	 * other tasks.
6205 	 *
6206 	 * EEVDF: placement strategy #1 / #2
6207 	 */
6208 	if (sched_feat(PLACE_LAG) && nr_queued && se->vlag) {
6209 		struct sched_entity *curr = cfs_rq->curr;
6210 		long load, weight;
6211 
6212 		lag = se->vlag;
6213 
6214 		/*
6215 		 * If we want to place a task and preserve lag, we have to
6216 		 * consider the effect of the new entity on the weighted
6217 		 * average and compensate for this, otherwise lag can quickly
6218 		 * evaporate.
6219 		 *
6220 		 * Lag is defined as:
6221 		 *
6222 		 *   lag_i = S - s_i = w_i * (V - v_i)
6223 		 *
6224 		 * To avoid the 'w_i' term all over the place, we only track
6225 		 * the virtual lag:
6226 		 *
6227 		 *   vl_i = V - v_i <=> v_i = V - vl_i
6228 		 *
6229 		 * And we take V to be the weighted average of all v:
6230 		 *
6231 		 *   V = (\Sum w_j*v_j) / W
6232 		 *
6233 		 * Where W is: \Sum w_j
6234 		 *
6235 		 * Then, the weighted average after adding an entity with lag
6236 		 * vl_i is given by:
6237 		 *
6238 		 *   V' = (\Sum w_j*v_j + w_i*v_i) / (W + w_i)
6239 		 *      = (W*V + w_i*(V - vl_i)) / (W + w_i)
6240 		 *      = (W*V + w_i*V - w_i*vl_i) / (W + w_i)
6241 		 *      = (V*(W + w_i) - w_i*vl_i) / (W + w_i)
6242 		 *      = V - w_i*vl_i / (W + w_i)
6243 		 *
6244 		 * And the actual lag after adding an entity with vl_i is:
6245 		 *
6246 		 *   vl'_i = V' - v_i
6247 		 *         = V - w_i*vl_i / (W + w_i) - (V - vl_i)
6248 		 *         = vl_i - w_i*vl_i / (W + w_i)
6249 		 *
6250 		 * Which is strictly less than vl_i. So in order to preserve lag
6251 		 * we should inflate the lag before placement such that the
6252 		 * effective lag after placement comes out right.
6253 		 *
6254 		 * As such, invert the above relation for vl'_i to get the vl_i
6255 		 * we need to use such that the lag after placement is the lag
6256 		 * we computed before dequeue.
6257 		 *
6258 		 *   vl'_i = vl_i - w_i*vl_i / (W + w_i)
6259 		 *         = ((W + w_i)*vl_i - w_i*vl_i) / (W + w_i)
6260 		 *
6261 		 *   (W + w_i)*vl'_i = (W + w_i)*vl_i - w_i*vl_i
6262 		 *                   = W*vl_i
6263 		 *
6264 		 *   vl_i = (W + w_i)*vl'_i / W
6265 		 */
6266 		load = cfs_rq->sum_weight;
6267 		if (curr && curr->on_rq)
6268 			load += avg_vruntime_weight(cfs_rq, curr->h_load.weight);
6269 
6270 		weight = avg_vruntime_weight(cfs_rq, se->h_load.weight);
6271 		lag *= load + weight;
6272 		if (WARN_ON_ONCE(!load))
6273 			load = 1;
6274 		lag = div64_long(lag, load);
6275 
6276 		/*
6277 		 * A heavy entity (relative to the tree) will pull the
6278 		 * avg_vruntime close to its vruntime position on enqueue. But
6279 		 * the zero_vruntime point is only updated at the next
6280 		 * update_deadline()/place_entity()/update_entity_lag().
6281 		 *
6282 		 * Specifically (see the comment near avg_vruntime_weight()):
6283 		 *
6284 		 *   sum_w_vruntime = \Sum (v_i - v0) * w_i
6285 		 *
6286 		 * Note that if v0 is near a light entity, both terms will be
6287 		 * small for the light entity, while in that case both terms
6288 		 * are large for the heavy entity, leading to risk of
6289 		 * overflow.
6290 		 *
6291 		 * OTOH if v0 is near the heavy entity, then the difference is
6292 		 * larger for the light entity, but the factor is small, while
6293 		 * for the heavy entity the difference is small but the factor
6294 		 * is large. Avoiding the multiplication overflow.
6295 		 */
6296 		if (weight > load)
6297 			update_zero = true;
6298 	}
6299 
6300 	se->vruntime = vruntime - lag;
6301 
6302 	if (update_zero)
6303 		update_zero_vruntime(cfs_rq, -lag);
6304 
6305 	if (sched_feat(PLACE_REL_DEADLINE) && se->rel_deadline) {
6306 		se->deadline += se->vruntime;
6307 		se->rel_deadline = 0;
6308 		return;
6309 	}
6310 
6311 	/*
6312 	 * When joining the competition; the existing tasks will be,
6313 	 * on average, halfway through their slice, as such start tasks
6314 	 * off with half a slice to ease into the competition.
6315 	 */
6316 	if (sched_feat(PLACE_DEADLINE_INITIAL) && (flags & ENQUEUE_INITIAL))
6317 		vslice /= 2;
6318 
6319 	/*
6320 	 * EEVDF: vd_i = ve_i + r_i/w_i
6321 	 */
6322 	se->deadline = se->vruntime + vslice;
6323 }
6324 
6325 static void check_enqueue_throttle(struct cfs_rq *cfs_rq);
6326 static inline int cfs_rq_throttled(struct cfs_rq *cfs_rq);
6327 
6328 static void
6329 enqueue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se, int flags)
6330 {
6331 	/*
6332 	 * When enqueuing a sched_entity, we must:
6333 	 *   - Update loads to have both entity and cfs_rq synced with now.
6334 	 *   - For group_entity, update its runnable_weight to reflect the new
6335 	 *     h_nr_runnable of its group cfs_rq.
6336 	 *   - For group_entity, update its weight to reflect the new share of
6337 	 *     its group cfs_rq
6338 	 *   - Add its new weight to cfs_rq->load.weight
6339 	 */
6340 	update_load_avg(cfs_rq, se, UPDATE_TG | DO_ATTACH);
6341 	se_update_runnable(se);
6342 	/*
6343 	 * XXX update_load_avg() above will have attached us to the pelt sum;
6344 	 * but update_cfs_group() here will re-adjust the weight and have to
6345 	 * undo/redo all that. Seems wasteful.
6346 	 */
6347 	update_cfs_group(se);
6348 
6349 	account_entity_enqueue(cfs_rq, se);
6350 
6351 	/* Entity has migrated, no longer consider this task hot */
6352 	if (flags & ENQUEUE_MIGRATED)
6353 		se->exec_start = 0;
6354 
6355 	check_schedstat_required();
6356 	update_stats_enqueue_fair(cfs_rq, se, flags);
6357 	se->on_rq = 1;
6358 
6359 	if (cfs_rq->nr_queued == 1) {
6360 		check_enqueue_throttle(cfs_rq);
6361 		list_add_leaf_cfs_rq(cfs_rq);
6362 #ifdef CONFIG_CFS_BANDWIDTH
6363 		if (cfs_rq->pelt_clock_throttled) {
6364 			struct rq *rq = rq_of(cfs_rq);
6365 
6366 			cfs_rq->throttled_clock_pelt_time += rq_clock_pelt(rq) -
6367 				cfs_rq->throttled_clock_pelt;
6368 			cfs_rq->pelt_clock_throttled = 0;
6369 		}
6370 #endif
6371 	}
6372 }
6373 
6374 static void set_next_buddy(struct cfs_rq *cfs_rq, struct sched_entity *se)
6375 {
6376 	if (WARN_ON_ONCE(!se->on_rq || se->sched_delayed))
6377 		return;
6378 	if (se_is_idle(se))
6379 		return;
6380 	cfs_rq->next = se;
6381 }
6382 
6383 static void clear_buddies(struct cfs_rq *cfs_rq, struct sched_entity *se)
6384 {
6385 	if (cfs_rq->next == se)
6386 		cfs_rq->next = NULL;
6387 }
6388 
6389 static __always_inline void return_cfs_rq_runtime(struct cfs_rq *cfs_rq);
6390 
6391 static void set_delayed(struct sched_entity *se)
6392 {
6393 	se->sched_delayed = 1;
6394 
6395 	/*
6396 	 * Delayed se of cfs_rq have no tasks queued on them.
6397 	 * Do not adjust h_nr_runnable since __dequeue_task()
6398 	 * will account it for blocked tasks.
6399 	 */
6400 	if (!entity_is_task(se))
6401 		return;
6402 
6403 	for_each_sched_entity(se) {
6404 		struct cfs_rq *cfs_rq = cfs_rq_of(se);
6405 
6406 		cfs_rq->h_nr_runnable--;
6407 	}
6408 }
6409 
6410 static void clear_delayed(struct sched_entity *se)
6411 {
6412 	se->sched_delayed = 0;
6413 
6414 	/*
6415 	 * Delayed se of cfs_rq have no tasks queued on them.
6416 	 * Do not adjust h_nr_runnable since a dequeue has
6417 	 * already accounted for it or an enqueue of a task
6418 	 * below it will account for it in enqueue_task_fair().
6419 	 */
6420 	if (!entity_is_task(se))
6421 		return;
6422 
6423 	for_each_sched_entity(se) {
6424 		struct cfs_rq *cfs_rq = cfs_rq_of(se);
6425 
6426 		cfs_rq->h_nr_runnable++;
6427 	}
6428 }
6429 
6430 static void
6431 dequeue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se, int flags)
6432 {
6433 	int action = UPDATE_TG;
6434 
6435 	if (entity_is_task(se)) {
6436 		if (task_on_rq_migrating(task_of(se)))
6437 			action |= DO_DETACH;
6438 
6439 		if ((flags & DEQUEUE_SLEEP) && !(flags & DEQUEUE_DELAYED))
6440 			action |= UPDATE_UTIL_EST;
6441 	}
6442 
6443 	/*
6444 	 * When dequeuing a sched_entity, we must:
6445 	 *   - Update loads to have both entity and cfs_rq synced with now.
6446 	 *   - For group_entity, update its runnable_weight to reflect the new
6447 	 *     h_nr_runnable of its group cfs_rq.
6448 	 *   - Subtract its previous weight from cfs_rq->load.weight.
6449 	 *   - For group entity, update its weight to reflect the new share
6450 	 *     of its group cfs_rq.
6451 	 */
6452 	update_load_avg(cfs_rq, se, action);
6453 	se_update_runnable(se);
6454 
6455 	update_stats_dequeue_fair(cfs_rq, se, flags);
6456 
6457 	se->on_rq = 0;
6458 	account_entity_dequeue(cfs_rq, se);
6459 
6460 	/* return excess runtime on last dequeue */
6461 	return_cfs_rq_runtime(cfs_rq);
6462 
6463 	update_cfs_group(se);
6464 
6465 	if (cfs_rq->nr_queued == 0) {
6466 		update_idle_cfs_rq_clock_pelt(cfs_rq);
6467 #ifdef CONFIG_CFS_BANDWIDTH
6468 		if (throttled_hierarchy(cfs_rq)) {
6469 			struct rq *rq = rq_of(cfs_rq);
6470 
6471 			list_del_leaf_cfs_rq(cfs_rq);
6472 			cfs_rq->throttled_clock_pelt = rq_clock_pelt(rq);
6473 			cfs_rq->pelt_clock_throttled = 1;
6474 		}
6475 #endif
6476 	}
6477 }
6478 
6479 static void
6480 set_next_entity(struct cfs_rq *cfs_rq, struct sched_entity *se)
6481 {
6482 	/* 'current' is not kept within the tree. */
6483 	if (se->on_rq) {
6484 		/*
6485 		 * Any task has to be enqueued before it get to execute on
6486 		 * a CPU. So account for the time it spent waiting on the
6487 		 * runqueue.
6488 		 */
6489 		update_stats_wait_end_fair(cfs_rq, se);
6490 		update_load_avg(cfs_rq, se, UPDATE_TG);
6491 	}
6492 
6493 	update_stats_curr_start(cfs_rq, se);
6494 	WARN_ON_ONCE(cfs_rq->h_curr);
6495 	cfs_rq->h_curr = se;
6496 
6497 	/*
6498 	 * Track our maximum slice length, if the CPU's load is at
6499 	 * least twice that of our own weight (i.e. don't track it
6500 	 * when there are only lesser-weight tasks around):
6501 	 */
6502 	if (schedstat_enabled() &&
6503 	    rq_of(cfs_rq)->cfs.load.weight >= 2*se->load.weight) {
6504 		struct sched_statistics *stats;
6505 
6506 		stats = __schedstats_from_se(se);
6507 		__schedstat_set(stats->slice_max,
6508 				max((u64)stats->slice_max,
6509 				    se->sum_exec_runtime - se->prev_sum_exec_runtime));
6510 	}
6511 
6512 	se->prev_sum_exec_runtime = se->sum_exec_runtime;
6513 }
6514 
6515 static bool __dequeue_task(struct rq *rq, struct task_struct *p, int flags);
6516 
6517 static struct sched_entity *
6518 pick_next_entity(struct rq *rq, bool protect)
6519 {
6520 	struct cfs_rq *cfs_rq = &rq->cfs;
6521 	struct sched_entity *se;
6522 
6523 	se = pick_eevdf(cfs_rq, protect);
6524 	if (se->sched_delayed) {
6525 		__dequeue_task(rq, task_of(se), DEQUEUE_SLEEP | DEQUEUE_DELAYED);
6526 		/*
6527 		 * Must not reference @se again, see __block_task().
6528 		 */
6529 		return NULL;
6530 	}
6531 	return se;
6532 }
6533 
6534 static void put_prev_entity(struct cfs_rq *cfs_rq, struct sched_entity *prev)
6535 {
6536 	/*
6537 	 * If still on the runqueue then deactivate_task()
6538 	 * was not called and update_curr() has to be done:
6539 	 */
6540 	if (prev->on_rq)
6541 		update_curr(cfs_rq);
6542 
6543 	if (prev->on_rq) {
6544 		update_stats_wait_start_fair(cfs_rq, prev);
6545 		/* in !on_rq case, update occurred at dequeue */
6546 		update_load_avg(cfs_rq, prev, 0);
6547 	}
6548 	WARN_ON_ONCE(cfs_rq->h_curr != prev);
6549 	cfs_rq->h_curr = NULL;
6550 }
6551 
6552 static void
6553 entity_tick(struct cfs_rq *cfs_rq, struct sched_entity *curr, int queued)
6554 {
6555 	/*
6556 	 * Update run-time statistics of the 'current'.
6557 	 */
6558 	update_curr(cfs_rq);
6559 
6560 	/*
6561 	 * Ensure that runnable average is periodically updated.
6562 	 */
6563 	update_load_avg(cfs_rq, curr, UPDATE_TG);
6564 	update_cfs_group(curr);
6565 
6566 #ifdef CONFIG_SCHED_HRTICK
6567 	/*
6568 	 * queued ticks are scheduled to match the slice, so don't bother
6569 	 * validating it and just reschedule.
6570 	 */
6571 	if (queued) {
6572 		resched_curr(rq_of(cfs_rq));
6573 		return;
6574 	}
6575 #endif
6576 }
6577 
6578 
6579 /**************************************************
6580  * CFS bandwidth control machinery
6581  */
6582 
6583 #ifdef CONFIG_CFS_BANDWIDTH
6584 
6585 #ifdef CONFIG_JUMP_LABEL
6586 static struct static_key __cfs_bandwidth_used;
6587 
6588 static inline bool cfs_bandwidth_used(void)
6589 {
6590 	return static_key_false(&__cfs_bandwidth_used);
6591 }
6592 
6593 void cfs_bandwidth_usage_inc(void)
6594 {
6595 	static_key_slow_inc_cpuslocked(&__cfs_bandwidth_used);
6596 }
6597 
6598 void cfs_bandwidth_usage_dec(void)
6599 {
6600 	static_key_slow_dec_cpuslocked(&__cfs_bandwidth_used);
6601 }
6602 #else /* !CONFIG_JUMP_LABEL: */
6603 static bool cfs_bandwidth_used(void)
6604 {
6605 	return true;
6606 }
6607 
6608 void cfs_bandwidth_usage_inc(void) {}
6609 void cfs_bandwidth_usage_dec(void) {}
6610 #endif /* !CONFIG_JUMP_LABEL */
6611 
6612 static inline u64 sched_cfs_bandwidth_slice(void)
6613 {
6614 	return (u64)sysctl_sched_cfs_bandwidth_slice * NSEC_PER_USEC;
6615 }
6616 
6617 /*
6618  * Replenish runtime according to assigned quota. We use sched_clock_cpu
6619  * directly instead of rq->clock to avoid adding additional synchronization
6620  * around rq->lock.
6621  *
6622  * requires cfs_b->lock
6623  */
6624 void __refill_cfs_bandwidth_runtime(struct cfs_bandwidth *cfs_b)
6625 {
6626 	s64 runtime;
6627 
6628 	if (unlikely(cfs_b->quota == RUNTIME_INF))
6629 		return;
6630 
6631 	cfs_b->runtime += cfs_b->quota;
6632 	runtime = cfs_b->runtime_snap - cfs_b->runtime;
6633 	if (runtime > 0) {
6634 		cfs_b->burst_time += runtime;
6635 		cfs_b->nr_burst++;
6636 	}
6637 
6638 	cfs_b->runtime = min(cfs_b->runtime, cfs_b->quota + cfs_b->burst);
6639 	cfs_b->runtime_snap = cfs_b->runtime;
6640 }
6641 
6642 static inline struct cfs_bandwidth *tg_cfs_bandwidth(struct task_group *tg)
6643 {
6644 	return &tg->cfs_bandwidth;
6645 }
6646 
6647 /* returns 0 on failure to allocate runtime */
6648 static int __assign_cfs_rq_runtime(struct cfs_bandwidth *cfs_b,
6649 				   struct cfs_rq *cfs_rq, u64 target_runtime)
6650 {
6651 	u64 min_amount, amount = 0;
6652 
6653 	lockdep_assert_held(&cfs_b->lock);
6654 
6655 	/* note: this is a positive sum as runtime_remaining <= 0 */
6656 	min_amount = target_runtime - cfs_rq->runtime_remaining;
6657 
6658 	if (cfs_b->quota == RUNTIME_INF)
6659 		amount = min_amount;
6660 	else {
6661 		start_cfs_bandwidth(cfs_b);
6662 
6663 		if (cfs_b->runtime > 0) {
6664 			amount = min(cfs_b->runtime, min_amount);
6665 			cfs_b->runtime -= amount;
6666 			cfs_b->idle = 0;
6667 		}
6668 	}
6669 
6670 	cfs_rq->runtime_remaining += amount;
6671 
6672 	return cfs_rq->runtime_remaining > 0;
6673 }
6674 
6675 static bool throttle_cfs_rq(struct cfs_rq *cfs_rq);
6676 
6677 static bool __account_cfs_rq_runtime(struct cfs_rq *cfs_rq, u64 delta_exec)
6678 {
6679 	/* dock delta_exec before expiring quota (as it could span periods) */
6680 	cfs_rq->runtime_remaining -= delta_exec;
6681 
6682 	if (likely(cfs_rq->runtime_remaining > 0))
6683 		return false;
6684 
6685 	if (cfs_rq->throttled)
6686 		return true;
6687 	/*
6688 	 * throttle_cfs_rq() will try to extend the runtime first
6689 	 * before throttling the hierarchy.
6690 	 */
6691 	return throttle_cfs_rq(cfs_rq);
6692 }
6693 
6694 static __always_inline
6695 bool account_cfs_rq_runtime(struct cfs_rq *cfs_rq, u64 delta_exec)
6696 {
6697 	if (!cfs_bandwidth_used() || !cfs_rq->runtime_enabled)
6698 		return false;
6699 
6700 	return __account_cfs_rq_runtime(cfs_rq, delta_exec);
6701 }
6702 
6703 static inline int cfs_rq_throttled(struct cfs_rq *cfs_rq)
6704 {
6705 	return cfs_bandwidth_used() && cfs_rq->throttled;
6706 }
6707 
6708 static inline bool cfs_rq_pelt_clock_throttled(struct cfs_rq *cfs_rq)
6709 {
6710 	return cfs_bandwidth_used() && cfs_rq->pelt_clock_throttled;
6711 }
6712 
6713 /* check whether cfs_rq, or any parent, is throttled */
6714 static inline int throttled_hierarchy(struct cfs_rq *cfs_rq)
6715 {
6716 	return cfs_bandwidth_used() && cfs_rq->throttle_count;
6717 }
6718 
6719 static inline int lb_throttled_hierarchy(struct task_struct *p, int dst_cpu)
6720 {
6721 	return throttled_hierarchy(tg_cfs_rq(task_group(p), dst_cpu));
6722 }
6723 
6724 static inline bool task_is_throttled(struct task_struct *p)
6725 {
6726 	return cfs_bandwidth_used() && p->throttled;
6727 }
6728 
6729 static bool dequeue_task_fair(struct rq *rq, struct task_struct *p, int flags);
6730 static void throttle_cfs_rq_work(struct callback_head *work)
6731 {
6732 	struct task_struct *p = container_of(work, struct task_struct, sched_throttle_work);
6733 	struct sched_entity *se;
6734 	struct cfs_rq *cfs_rq;
6735 	struct rq *rq;
6736 
6737 	WARN_ON_ONCE(p != current);
6738 	p->sched_throttle_work.next = &p->sched_throttle_work;
6739 
6740 	/*
6741 	 * If task is exiting, then there won't be a return to userspace, so we
6742 	 * don't have to bother with any of this.
6743 	 */
6744 	if ((p->flags & PF_EXITING))
6745 		return;
6746 
6747 	scoped_guard(task_rq_lock, p) {
6748 		se = &p->se;
6749 		cfs_rq = cfs_rq_of(se);
6750 
6751 		/* Raced, forget */
6752 		if (p->sched_class != &fair_sched_class)
6753 			return;
6754 
6755 		/*
6756 		 * If not in limbo, then either replenish has happened or this
6757 		 * task got migrated out of the throttled cfs_rq, move along.
6758 		 */
6759 		if (!cfs_rq->throttle_count)
6760 			return;
6761 		rq = scope.rq;
6762 		update_rq_clock(rq);
6763 		WARN_ON_ONCE(p->throttled || !list_empty(&p->throttle_node));
6764 		dequeue_task_fair(rq, p, DEQUEUE_SLEEP | DEQUEUE_THROTTLE);
6765 		list_add(&p->throttle_node, &cfs_rq->throttled_limbo_list);
6766 		/*
6767 		 * Must not set throttled before dequeue or dequeue will
6768 		 * mistakenly regard this task as an already throttled one.
6769 		 */
6770 		p->throttled = true;
6771 		resched_curr(rq);
6772 	}
6773 }
6774 
6775 void init_cfs_throttle_work(struct task_struct *p)
6776 {
6777 	init_task_work(&p->sched_throttle_work, throttle_cfs_rq_work);
6778 	/* Protect against double add, see throttle_cfs_rq() and throttle_cfs_rq_work() */
6779 	p->sched_throttle_work.next = &p->sched_throttle_work;
6780 	INIT_LIST_HEAD(&p->throttle_node);
6781 }
6782 
6783 /*
6784  * Task is throttled and someone wants to dequeue it again:
6785  * it could be sched/core when core needs to do things like
6786  * task affinity change, task group change, task sched class
6787  * change etc. and in these cases, DEQUEUE_SLEEP is not set;
6788  * or the task is blocked after throttled due to freezer etc.
6789  * and in these cases, DEQUEUE_SLEEP is set.
6790  */
6791 static void detach_task_cfs_rq(struct task_struct *p);
6792 static void dequeue_throttled_task(struct task_struct *p, int flags)
6793 {
6794 	WARN_ON_ONCE(p->se.on_rq);
6795 	list_del_init(&p->throttle_node);
6796 
6797 	/* task blocked after throttled */
6798 	if (flags & DEQUEUE_SLEEP) {
6799 		p->throttled = false;
6800 		return;
6801 	}
6802 
6803 	/*
6804 	 * task is migrating off its old cfs_rq, detach
6805 	 * the task's load from its old cfs_rq.
6806 	 */
6807 	if (task_on_rq_migrating(p))
6808 		detach_task_cfs_rq(p);
6809 }
6810 
6811 static bool enqueue_throttled_task(struct task_struct *p)
6812 {
6813 	struct cfs_rq *cfs_rq = cfs_rq_of(&p->se);
6814 
6815 	/* @p should have gone through dequeue_throttled_task() first */
6816 	WARN_ON_ONCE(!list_empty(&p->throttle_node));
6817 
6818 	/*
6819 	 * If the throttled task @p is enqueued to a throttled cfs_rq,
6820 	 * take the fast path by directly putting the task on the
6821 	 * target cfs_rq's limbo list.
6822 	 *
6823 	 * Do not do that when @p is current because the following race can
6824 	 * cause @p's group_node to be incorectly re-insterted in its rq's
6825 	 * cfs_tasks list, despite being throttled:
6826 	 *
6827 	 *     cpuX                       cpuY
6828 	 *   p ret2user
6829 	 *  throttle_cfs_rq_work()  sched_move_task(p)
6830 	 *  LOCK task_rq_lock
6831 	 *  dequeue_task_fair(p)
6832 	 *  UNLOCK task_rq_lock
6833 	 *                          LOCK task_rq_lock
6834 	 *                          task_current_donor(p) == true
6835 	 *                          task_on_rq_queued(p) == true
6836 	 *                          dequeue_task(p)
6837 	 *                          put_prev_task(p)
6838 	 *                          sched_change_group()
6839 	 *                          enqueue_task(p) -> p's new cfs_rq
6840 	 *                                             is throttled, go
6841 	 *                                             fast path and skip
6842 	 *                                             actual enqueue
6843 	 *                          set_next_task(p)
6844 	 *                    list_move(&se->group_node, &rq->cfs_tasks); // bug
6845 	 *  schedule()
6846 	 *
6847 	 * In the above race case, @p current cfs_rq is in the same rq as
6848 	 * its previous cfs_rq because sched_move_task() only moves a task
6849 	 * to a different group from the same rq, so we can use its current
6850 	 * cfs_rq to derive rq and test if the task is current.
6851 	 */
6852 	if (throttled_hierarchy(cfs_rq) &&
6853 	    !task_current_donor(rq_of(cfs_rq), p)) {
6854 		list_add(&p->throttle_node, &cfs_rq->throttled_limbo_list);
6855 		return true;
6856 	}
6857 
6858 	/* we can't take the fast path, do an actual enqueue*/
6859 	p->throttled = false;
6860 	return false;
6861 }
6862 
6863 static void enqueue_task_fair(struct rq *rq, struct task_struct *p, int flags);
6864 static int tg_unthrottle_up(struct task_group *tg, void *data)
6865 {
6866 	struct rq *rq = data;
6867 	struct cfs_rq *cfs_rq = tg_cfs_rq(tg, cpu_of(rq));
6868 	struct task_struct *p, *tmp;
6869 	LIST_HEAD(throttled_tasks);
6870 
6871 	/*
6872 	 * If cfs_rq->curr is set, the cfs_rq might not have caught up
6873 	 * since the last clock update. Do it now before we begin
6874 	 * queueing task onto it to save the need for unnecessarily
6875 	 * unthrottle the hierarchy for this cfs_rq to be throttled
6876 	 * right back again.
6877 	 */
6878 	update_curr(cfs_rq);
6879 
6880 	if (--cfs_rq->throttle_count)
6881 		return 0;
6882 
6883 	if (cfs_rq->pelt_clock_throttled) {
6884 		cfs_rq->throttled_clock_pelt_time += rq_clock_pelt(rq) -
6885 					     cfs_rq->throttled_clock_pelt;
6886 		cfs_rq->pelt_clock_throttled = 0;
6887 	}
6888 
6889 	if (cfs_rq->throttled_clock_self) {
6890 		u64 delta = rq_clock(rq) - cfs_rq->throttled_clock_self;
6891 
6892 		cfs_rq->throttled_clock_self = 0;
6893 
6894 		if (WARN_ON_ONCE((s64)delta < 0))
6895 			delta = 0;
6896 
6897 		cfs_rq->throttled_clock_self_time += delta;
6898 	}
6899 
6900 	/*
6901 	 * Move the tasks to a local list since an update_curr() during
6902 	 * enqueue_task_fair() can throttle a higher cfs_rq, and it can
6903 	 * see the "throttled_limbo_list" being non-empty in
6904 	 * tg_throttle_down() if throttle_count turned 0 above.
6905 	 */
6906 	list_splice_init(&cfs_rq->throttled_limbo_list, &throttled_tasks);
6907 
6908 	/* Re-enqueue the tasks that have been throttled at this level. */
6909 	list_for_each_entry_safe(p, tmp, &throttled_tasks, throttle_node) {
6910 		/*
6911 		 * Back to being throttled! Break out and put the remaining
6912 		 * tasks back onto the limbo_list to prevent running them
6913 		 * unnecessarily.
6914 		 */
6915 		if (cfs_rq->throttle_count)
6916 			break;
6917 
6918 		list_del_init(&p->throttle_node);
6919 		p->throttled = false;
6920 		enqueue_task_fair(rq, p, ENQUEUE_WAKEUP);
6921 	}
6922 
6923 	list_splice(&throttled_tasks, &cfs_rq->throttled_limbo_list);
6924 
6925 	/* Add cfs_rq with load or one or more already running entities to the list */
6926 	if (!cfs_rq_is_decayed(cfs_rq))
6927 		list_add_leaf_cfs_rq(cfs_rq);
6928 
6929 	return 0;
6930 }
6931 
6932 static inline bool task_has_throttle_work(struct task_struct *p)
6933 {
6934 	return p->sched_throttle_work.next != &p->sched_throttle_work;
6935 }
6936 
6937 static inline void task_throttle_setup_work(struct task_struct *p)
6938 {
6939 	if (task_has_throttle_work(p))
6940 		return;
6941 
6942 	/*
6943 	 * Kthreads and exiting tasks don't return to userspace, so adding the
6944 	 * work is pointless
6945 	 */
6946 	if ((p->flags & (PF_EXITING | PF_KTHREAD)))
6947 		return;
6948 
6949 	task_work_add(p, &p->sched_throttle_work, TWA_RESUME);
6950 }
6951 
6952 static void record_throttle_clock(struct cfs_rq *cfs_rq)
6953 {
6954 	struct rq *rq = rq_of(cfs_rq);
6955 
6956 	if (cfs_rq_throttled(cfs_rq) && !cfs_rq->throttled_clock)
6957 		cfs_rq->throttled_clock = rq_clock(rq);
6958 
6959 	if (!cfs_rq->throttled_clock_self)
6960 		cfs_rq->throttled_clock_self = rq_clock(rq);
6961 }
6962 
6963 static int tg_throttle_down(struct task_group *tg, void *data)
6964 {
6965 	struct rq *rq = data;
6966 	struct cfs_rq *cfs_rq = tg_cfs_rq(tg, cpu_of(rq));
6967 
6968 	if (cfs_rq->throttle_count++)
6969 		return 0;
6970 
6971 	/*
6972 	 * For cfs_rqs that still have entities enqueued, PELT clock
6973 	 * stop happens at dequeue time when all entities are dequeued.
6974 	 */
6975 	if (!cfs_rq->nr_queued) {
6976 		list_del_leaf_cfs_rq(cfs_rq);
6977 		cfs_rq->throttled_clock_pelt = rq_clock_pelt(rq);
6978 		cfs_rq->pelt_clock_throttled = 1;
6979 	}
6980 
6981 	WARN_ON_ONCE(cfs_rq->throttled_clock_self);
6982 	WARN_ON_ONCE(!list_empty(&cfs_rq->throttled_limbo_list));
6983 	return 0;
6984 }
6985 
6986 static bool throttle_cfs_rq(struct cfs_rq *cfs_rq)
6987 {
6988 	struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
6989 	struct sched_entity *curr = cfs_rq->h_curr;
6990 	struct rq *rq = rq_of(cfs_rq);
6991 
6992 	scoped_guard(raw_spinlock, &cfs_b->lock) {
6993 		u64 target_runtime = 1;
6994 
6995 		/*
6996 		 * If cfs_rq->h_curr is still runnable, we are here from an
6997 		 * update_curr(). Request sysctl_sched_cfs_bandwidth_slice
6998 		 * worth of bandwidth to continue running.
6999 		 *
7000 		 * If the curr is not runnable, just request enough bandwidth
7001 		 * to be runnable next time the pick selects this cfs_rq.
7002 		 */
7003 		if (curr && curr->on_rq)
7004 			target_runtime = sched_cfs_bandwidth_slice();
7005 
7006 		/*
7007 		 * Check if We have raced with bandwidth becoming available. If
7008 		 * we actually throttled the timer might not unthrottle us for
7009 		 * an entire period. We additionally needed to make sure that
7010 		 * any subsequent check_cfs_rq_runtime calls agree not to
7011 		 * throttle us, as we may commit to do cfs put_prev+pick_next,
7012 		 * so we ask for 1ns of runtime rather than just check cfs_b.
7013 		 *
7014 		 * This will start the period timer if necessary.
7015 		 */
7016 		if (__assign_cfs_rq_runtime(cfs_b, cfs_rq, target_runtime))
7017 			return false;
7018 
7019 		/*
7020 		 * No bandwidth available; Add ourselves on the list to be
7021 		 * unthrottled later.
7022 		 */
7023 		list_add_tail_rcu(&cfs_rq->throttled_list,
7024 				  &cfs_b->throttled_cfs_rq);
7025 	}
7026 
7027 	/* freeze hierarchy runnable averages while throttled */
7028 	scoped_guard(rcu)
7029 		walk_tg_tree_from(cfs_rq->tg, tg_throttle_down, tg_nop, (void *)rq);
7030 
7031 	/*
7032 	 * Note: distribution will already see us throttled via the
7033 	 * throttled-list.  rq->lock protects completion.
7034 	 */
7035 	cfs_rq->throttled = 1;
7036 	WARN_ON_ONCE(cfs_rq->throttled_clock);
7037 
7038 	/*
7039 	 * If current hierarchy was throttled, add throttle work to the
7040 	 * current donor. In case of proxy-execution, the execution
7041 	 * context cannot exit to the userspace while holding a mutex
7042 	 * and the rule of throttle deferral to only throttle the
7043 	 * throttled context at exit to userspace is still preserved.
7044 	 */
7045 	if (curr && curr->on_rq)
7046 		task_throttle_setup_work(rq->donor);
7047 
7048 	return true;
7049 }
7050 
7051 void unthrottle_cfs_rq(struct cfs_rq *cfs_rq)
7052 {
7053 	struct rq *rq = rq_of(cfs_rq);
7054 	struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
7055 	struct sched_entity *se = cfs_rq_se(cfs_rq);
7056 
7057 	/*
7058 	 * It's possible we are called with runtime_remaining < 0 due to things
7059 	 * like async unthrottled us with a positive runtime_remaining but other
7060 	 * still running entities consumed those runtime before we reached here.
7061 	 *
7062 	 * We can't unthrottle this cfs_rq without any runtime remaining because
7063 	 * any enqueue in tg_unthrottle_up() will immediately trigger a throttle,
7064 	 * which is not supposed to happen on unthrottle path.
7065 	 *
7066 	 * Catch up on the remaining runtime since last clock update before
7067 	 * checking runtime remaining.
7068 	 */
7069 	update_curr(cfs_rq);
7070 	if (cfs_rq->runtime_enabled && cfs_rq->runtime_remaining <= 0)
7071 		return;
7072 
7073 	cfs_rq->throttled = 0;
7074 
7075 	scoped_guard(raw_spinlock, &cfs_b->lock) {
7076 		list_del_rcu(&cfs_rq->throttled_list);
7077 
7078 		if (!cfs_rq->throttled_clock)
7079 			break;
7080 
7081 		cfs_b->throttled_time += rq_clock(rq) - cfs_rq->throttled_clock;
7082 		cfs_rq->throttled_clock = 0;
7083 	}
7084 
7085 	/* update hierarchical throttle state */
7086 	walk_tg_tree_from(cfs_rq->tg, tg_nop, tg_unthrottle_up, (void *)rq);
7087 
7088 	if (!cfs_rq->load.weight) {
7089 		if (!cfs_rq->on_list)
7090 			return;
7091 		/*
7092 		 * Nothing to run but something to decay (on_list)?
7093 		 * Complete the branch.
7094 		 */
7095 		for_each_sched_entity(se) {
7096 			if (list_add_leaf_cfs_rq(cfs_rq_of(se)))
7097 				break;
7098 		}
7099 	}
7100 
7101 	assert_list_leaf_cfs_rq(rq);
7102 
7103 	/* Determine whether we need to wake up potentially idle CPU: */
7104 	if (rq->curr == rq->idle && rq->cfs.h_nr_queued)
7105 		resched_curr(rq);
7106 }
7107 
7108 static void __cfsb_csd_unthrottle(void *arg)
7109 {
7110 	struct cfs_rq *cursor, *tmp;
7111 	struct rq *rq = arg;
7112 
7113 	guard(rq_lock)(rq);
7114 
7115 	/*
7116 	 * Iterating over the list can trigger several call to
7117 	 * update_rq_clock() in unthrottle_cfs_rq().
7118 	 * Do it once and skip the potential next ones.
7119 	 */
7120 	update_rq_clock(rq);
7121 	rq_clock_start_loop_update(rq);
7122 
7123 	/*
7124 	 * Since we hold rq lock we're safe from concurrent manipulation of
7125 	 * the CSD list. However, this RCU critical section annotates the
7126 	 * fact that we pair with sched_free_group_rcu(), so that we cannot
7127 	 * race with group being freed in the window between removing it
7128 	 * from the list and advancing to the next entry in the list.
7129 	 */
7130 	guard(rcu)();
7131 
7132 	list_for_each_entry_safe(cursor, tmp, &rq->cfsb_csd_list,
7133 				 throttled_csd_list) {
7134 		list_del_init(&cursor->throttled_csd_list);
7135 
7136 		if (cfs_rq_throttled(cursor))
7137 			unthrottle_cfs_rq(cursor);
7138 	}
7139 
7140 	rq_clock_stop_loop_update(rq);
7141 }
7142 
7143 static inline void __unthrottle_cfs_rq_async(struct cfs_rq *cfs_rq)
7144 {
7145 	struct rq *rq = rq_of(cfs_rq);
7146 	bool first;
7147 
7148 	if (rq == this_rq()) {
7149 		update_rq_clock(rq);
7150 		unthrottle_cfs_rq(cfs_rq);
7151 		return;
7152 	}
7153 
7154 	/* Already enqueued */
7155 	if (WARN_ON_ONCE(!list_empty(&cfs_rq->throttled_csd_list)))
7156 		return;
7157 
7158 	first = list_empty(&rq->cfsb_csd_list);
7159 	list_add_tail(&cfs_rq->throttled_csd_list, &rq->cfsb_csd_list);
7160 	if (first)
7161 		smp_call_function_single_async(cpu_of(rq), &rq->cfsb_csd);
7162 }
7163 
7164 static void unthrottle_cfs_rq_async(struct cfs_rq *cfs_rq)
7165 {
7166 	lockdep_assert_rq_held(rq_of(cfs_rq));
7167 
7168 	if (WARN_ON_ONCE(!cfs_rq_throttled(cfs_rq) ||
7169 	    cfs_rq->runtime_remaining <= 0))
7170 		return;
7171 
7172 	__unthrottle_cfs_rq_async(cfs_rq);
7173 }
7174 
7175 static bool distribute_cfs_runtime(struct cfs_bandwidth *cfs_b)
7176 {
7177 	bool throttled = false, unthrottle_local = false;
7178 	int this_cpu = smp_processor_id();
7179 	u64 runtime, remaining = 1;
7180 	struct cfs_rq *cfs_rq;
7181 	struct rq *rq;
7182 
7183 	guard(rcu)();
7184 
7185 	list_for_each_entry_rcu(cfs_rq, &cfs_b->throttled_cfs_rq,
7186 				throttled_list) {
7187 		rq = rq_of(cfs_rq);
7188 
7189 		if (!remaining) {
7190 			throttled = true;
7191 			break;
7192 		}
7193 
7194 		guard(rq_lock_irqsave)(rq);
7195 
7196 		if (!cfs_rq_throttled(cfs_rq))
7197 			continue;
7198 
7199 		/* Already queued for async unthrottle */
7200 		if (!list_empty(&cfs_rq->throttled_csd_list))
7201 			continue;
7202 
7203 		if (cfs_rq->h_curr) {
7204 			update_rq_clock(rq);
7205 			update_curr(cfs_rq);
7206 		}
7207 
7208 		/* By the above checks, this should never be true */
7209 		WARN_ON_ONCE(cfs_rq->runtime_remaining > 0);
7210 
7211 		scoped_guard(raw_spinlock, &cfs_b->lock) {
7212 			runtime = -cfs_rq->runtime_remaining + 1;
7213 			if (runtime > cfs_b->runtime)
7214 				runtime = cfs_b->runtime;
7215 			cfs_b->runtime -= runtime;
7216 			remaining = cfs_b->runtime;
7217 		}
7218 
7219 		cfs_rq->runtime_remaining += runtime;
7220 
7221 		/*
7222 		 * Ran out of bandwidth during distribution!
7223 		 * Indicate throttled entities and break early.
7224 		 */
7225 		if (cfs_rq->runtime_remaining <= 0) {
7226 			throttled = true;
7227 			break;
7228 		}
7229 
7230 		/* we check whether we're throttled above */
7231 		if (cpu_of(rq) != this_cpu) {
7232 			unthrottle_cfs_rq_async(cfs_rq);
7233 			continue;
7234 		}
7235 
7236 		/*
7237 		 * Allow a parallel async unthrottle to unthrottle
7238 		 * this cfs_rq too via __cfsb_csd_unthrottle().
7239 		 * If we are first, do it ourselves at the end and
7240 		 * save on an IPI from remote CPUs.
7241 		 */
7242 		unthrottle_local = list_empty(&rq->cfsb_csd_list);
7243 		list_add_tail(&cfs_rq->throttled_csd_list, &rq->cfsb_csd_list);
7244 	}
7245 
7246 	if (unthrottle_local) {
7247 		/*
7248 		 * Protect against an IPI that is also trying to flush
7249 		 * the unthrottled cfs_rq(s) from this CPU's csd_list.
7250 		 */
7251 		scoped_guard(irqsave)
7252 			__cfsb_csd_unthrottle(cpu_rq(this_cpu));
7253 	}
7254 
7255 	return throttled;
7256 }
7257 
7258 /*
7259  * Responsible for refilling a task_group's bandwidth and unthrottling its
7260  * cfs_rqs as appropriate. If there has been no activity within the last
7261  * period the timer is deactivated until scheduling resumes; cfs_b->idle is
7262  * used to track this state.
7263  */
7264 static int do_sched_cfs_period_timer(struct cfs_bandwidth *cfs_b, int overrun, unsigned long flags)
7265 	__must_hold(&cfs_b->lock)
7266 {
7267 	int throttled;
7268 
7269 	/* no need to continue the timer with no bandwidth constraint */
7270 	if (cfs_b->quota == RUNTIME_INF)
7271 		goto out_deactivate;
7272 
7273 	throttled = !list_empty(&cfs_b->throttled_cfs_rq);
7274 	cfs_b->nr_periods += overrun;
7275 
7276 	/* Refill extra burst quota even if cfs_b->idle */
7277 	__refill_cfs_bandwidth_runtime(cfs_b);
7278 
7279 	/*
7280 	 * idle depends on !throttled (for the case of a large deficit), and if
7281 	 * we're going inactive then everything else can be deferred
7282 	 */
7283 	if (cfs_b->idle && !throttled)
7284 		goto out_deactivate;
7285 
7286 	if (!throttled) {
7287 		/* mark as potentially idle for the upcoming period */
7288 		cfs_b->idle = 1;
7289 		return 0;
7290 	}
7291 
7292 	/* account preceding periods in which throttling occurred */
7293 	cfs_b->nr_throttled += overrun;
7294 
7295 	/*
7296 	 * This check is repeated as we release cfs_b->lock while we unthrottle.
7297 	 */
7298 	while (throttled && cfs_b->runtime > 0) {
7299 		raw_spin_unlock_irqrestore(&cfs_b->lock, flags);
7300 		/* we can't nest cfs_b->lock while distributing bandwidth */
7301 		throttled = distribute_cfs_runtime(cfs_b);
7302 		raw_spin_lock_irqsave(&cfs_b->lock, flags);
7303 	}
7304 
7305 	/*
7306 	 * While we are ensured activity in the period following an
7307 	 * unthrottle, this also covers the case in which the new bandwidth is
7308 	 * insufficient to cover the existing bandwidth deficit.  (Forcing the
7309 	 * timer to remain active while there are any throttled entities.)
7310 	 */
7311 	cfs_b->idle = 0;
7312 
7313 	return 0;
7314 
7315 out_deactivate:
7316 	return 1;
7317 }
7318 
7319 /* a cfs_rq won't donate quota below this amount */
7320 static const u64 min_cfs_rq_runtime = 1 * NSEC_PER_MSEC;
7321 /* minimum remaining period time to redistribute slack quota */
7322 static const u64 min_bandwidth_expiration = 2 * NSEC_PER_MSEC;
7323 /* how long we wait to gather additional slack before distributing */
7324 static const u64 cfs_bandwidth_slack_period = 5 * NSEC_PER_MSEC;
7325 
7326 /*
7327  * Are we near the end of the current quota period?
7328  *
7329  * Requires cfs_b->lock for hrtimer_expires_remaining to be safe against the
7330  * hrtimer base being cleared by hrtimer_start. In the case of
7331  * migrate_hrtimers, base is never cleared, so we are fine.
7332  */
7333 static int runtime_refresh_within(struct cfs_bandwidth *cfs_b, u64 min_expire)
7334 {
7335 	struct hrtimer *refresh_timer = &cfs_b->period_timer;
7336 	s64 remaining;
7337 
7338 	/* if the call-back is running a quota refresh is already occurring */
7339 	if (hrtimer_callback_running(refresh_timer))
7340 		return 1;
7341 
7342 	/* is a quota refresh about to occur? */
7343 	remaining = ktime_to_ns(hrtimer_expires_remaining(refresh_timer));
7344 	if (remaining < (s64)min_expire)
7345 		return 1;
7346 
7347 	return 0;
7348 }
7349 
7350 static void start_cfs_slack_bandwidth(struct cfs_bandwidth *cfs_b)
7351 {
7352 	u64 min_left = cfs_bandwidth_slack_period + min_bandwidth_expiration;
7353 
7354 	/* if there's a quota refresh soon don't bother with slack */
7355 	if (runtime_refresh_within(cfs_b, min_left))
7356 		return;
7357 
7358 	/* don't push forwards an existing deferred unthrottle */
7359 	if (cfs_b->slack_started)
7360 		return;
7361 	cfs_b->slack_started = true;
7362 
7363 	hrtimer_start(&cfs_b->slack_timer,
7364 			ns_to_ktime(cfs_bandwidth_slack_period),
7365 			HRTIMER_MODE_REL);
7366 }
7367 
7368 /* we know any runtime found here is valid as update_curr() precedes return */
7369 static void __return_cfs_rq_runtime(struct cfs_rq *cfs_rq)
7370 {
7371 	struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
7372 	s64 slack_runtime = cfs_rq->runtime_remaining - min_cfs_rq_runtime;
7373 
7374 	if (slack_runtime <= 0)
7375 		return;
7376 
7377 	guard(raw_spinlock)(&cfs_b->lock);
7378 
7379 	if (cfs_b->quota != RUNTIME_INF) {
7380 		cfs_b->runtime += slack_runtime;
7381 
7382 		/* we are under rq->lock, defer unthrottling using a timer */
7383 		if (cfs_b->runtime > sched_cfs_bandwidth_slice() &&
7384 		    !list_empty(&cfs_b->throttled_cfs_rq))
7385 			start_cfs_slack_bandwidth(cfs_b);
7386 	}
7387 
7388 	/* even if it's not valid for return we don't want to try again */
7389 	cfs_rq->runtime_remaining -= slack_runtime;
7390 }
7391 
7392 static __always_inline void return_cfs_rq_runtime(struct cfs_rq *cfs_rq)
7393 {
7394 	if (!cfs_bandwidth_used())
7395 		return;
7396 
7397 	if (!cfs_rq->runtime_enabled || cfs_rq->nr_queued)
7398 		return;
7399 
7400 	__return_cfs_rq_runtime(cfs_rq);
7401 }
7402 
7403 /*
7404  * This is done with a timer (instead of inline with bandwidth return) since
7405  * it's necessary to juggle rq->locks to unthrottle their respective cfs_rqs.
7406  */
7407 static void do_sched_cfs_slack_timer(struct cfs_bandwidth *cfs_b)
7408 {
7409 	/* confirm we're still not at a refresh boundary */
7410 	scoped_guard(raw_spinlock_irqsave, &cfs_b->lock) {
7411 		u64 runtime = 0, slice = sched_cfs_bandwidth_slice();
7412 
7413 		cfs_b->slack_started = false;
7414 
7415 		if (runtime_refresh_within(cfs_b, min_bandwidth_expiration))
7416 			return;
7417 
7418 		if (cfs_b->quota != RUNTIME_INF && cfs_b->runtime > slice)
7419 			runtime = cfs_b->runtime;
7420 
7421 		if (!runtime)
7422 			return;
7423 	}
7424 
7425 	distribute_cfs_runtime(cfs_b);
7426 }
7427 
7428 /*
7429  * When a group wakes up we want to make sure that its quota is not already
7430  * expired/exceeded, otherwise it may be allowed to steal additional ticks of
7431  * runtime as update_curr() throttling can not trigger until it's on-rq.
7432  */
7433 static void check_enqueue_throttle(struct cfs_rq *cfs_rq)
7434 {
7435 	if (!cfs_bandwidth_used())
7436 		return;
7437 
7438 	/* an active group must be handled by the update_curr() path */
7439 	if (!cfs_rq->runtime_enabled || cfs_rq->h_curr)
7440 		return;
7441 
7442 	/* ensure the group is not already throttled */
7443 	if (cfs_rq_throttled(cfs_rq))
7444 		return;
7445 
7446 	/* update runtime allocation */
7447 	account_cfs_rq_runtime(cfs_rq, 0);
7448 }
7449 
7450 static void sync_throttle(struct task_group *tg, int cpu)
7451 {
7452 	struct cfs_rq *pcfs_rq, *cfs_rq;
7453 
7454 	if (!cfs_bandwidth_used())
7455 		return;
7456 
7457 	if (!tg->parent)
7458 		return;
7459 
7460 	cfs_rq = tg_cfs_rq(tg, cpu);
7461 	pcfs_rq = tg_cfs_rq(tg->parent, cpu);
7462 
7463 	cfs_rq->throttle_count = pcfs_rq->throttle_count;
7464 	cfs_rq->throttled_clock_pelt = rq_clock_pelt(cpu_rq(cpu));
7465 
7466 	/*
7467 	 * It is not enough to sync the "pelt_clock_throttled" indicator
7468 	 * with the parent cfs_rq when the hierarchy is not queued.
7469 	 * Always join a throttled hierarchy with PELT clock throttled
7470 	 * and leaf it to the first enqueue, or distribution to
7471 	 * unthrottle the PELT clock.
7472 	 */
7473 	if (cfs_rq->throttle_count)
7474 		cfs_rq->pelt_clock_throttled = 1;
7475 }
7476 
7477 static enum hrtimer_restart sched_cfs_slack_timer(struct hrtimer *timer)
7478 {
7479 	struct cfs_bandwidth *cfs_b =
7480 		container_of(timer, struct cfs_bandwidth, slack_timer);
7481 
7482 	do_sched_cfs_slack_timer(cfs_b);
7483 
7484 	return HRTIMER_NORESTART;
7485 }
7486 
7487 static enum hrtimer_restart sched_cfs_period_timer(struct hrtimer *timer)
7488 {
7489 	struct cfs_bandwidth *cfs_b =
7490 		container_of(timer, struct cfs_bandwidth, period_timer);
7491 	int overrun;
7492 	int idle = 0;
7493 	int count = 0;
7494 
7495 	CLASS(raw_spinlock_irqsave, cfsb_guard)(&cfs_b->lock);
7496 
7497 	for (;;) {
7498 		overrun = hrtimer_forward_now(timer, cfs_b->period);
7499 		if (!overrun)
7500 			break;
7501 
7502 		idle = do_sched_cfs_period_timer(cfs_b, overrun, cfsb_guard.flags);
7503 
7504 		if (++count > 3) {
7505 			u64 new, old = ktime_to_ns(cfs_b->period);
7506 
7507 			/*
7508 			 * Grow period by a factor of 2 to avoid losing precision.
7509 			 * Precision loss in the quota/period ratio can cause __cfs_schedulable
7510 			 * to fail.
7511 			 */
7512 			new = old * 2;
7513 			if (new < max_bw_quota_period_us * NSEC_PER_USEC) {
7514 				cfs_b->period = ns_to_ktime(new);
7515 				cfs_b->quota *= 2;
7516 				cfs_b->burst *= 2;
7517 
7518 				pr_warn_ratelimited(
7519 	"cfs_period_timer[cpu%d]: period too short, scaling up (new cfs_period_us = %lld, cfs_quota_us = %lld)\n",
7520 					smp_processor_id(),
7521 					div_u64(new, NSEC_PER_USEC),
7522 					div_u64(cfs_b->quota, NSEC_PER_USEC));
7523 			} else {
7524 				pr_warn_ratelimited(
7525 	"cfs_period_timer[cpu%d]: period too short, but cannot scale up without losing precision (cfs_period_us = %lld, cfs_quota_us = %lld)\n",
7526 					smp_processor_id(),
7527 					div_u64(old, NSEC_PER_USEC),
7528 					div_u64(cfs_b->quota, NSEC_PER_USEC));
7529 			}
7530 
7531 			/* reset count so we don't come right back in here */
7532 			count = 0;
7533 		}
7534 	}
7535 
7536 	if (idle) {
7537 		cfs_b->period_active = 0;
7538 		return HRTIMER_NORESTART;
7539 	}
7540 
7541 	return HRTIMER_RESTART;
7542 }
7543 
7544 void init_cfs_bandwidth(struct cfs_bandwidth *cfs_b, struct cfs_bandwidth *parent)
7545 {
7546 	raw_spin_lock_init(&cfs_b->lock);
7547 	cfs_b->runtime = 0;
7548 	cfs_b->quota = RUNTIME_INF;
7549 	cfs_b->period = us_to_ktime(default_bw_period_us());
7550 	cfs_b->burst = 0;
7551 	cfs_b->hierarchical_quota = parent ? parent->hierarchical_quota : RUNTIME_INF;
7552 
7553 	INIT_LIST_HEAD(&cfs_b->throttled_cfs_rq);
7554 	hrtimer_setup(&cfs_b->period_timer, sched_cfs_period_timer, CLOCK_MONOTONIC,
7555 		      HRTIMER_MODE_ABS_PINNED);
7556 
7557 	/* Add a random offset so that timers interleave */
7558 	hrtimer_set_expires(&cfs_b->period_timer,
7559 			    get_random_u32_below(cfs_b->period));
7560 	hrtimer_setup(&cfs_b->slack_timer, sched_cfs_slack_timer, CLOCK_MONOTONIC,
7561 		      HRTIMER_MODE_REL);
7562 	cfs_b->slack_started = false;
7563 }
7564 
7565 static void init_cfs_rq_runtime(struct cfs_rq *cfs_rq)
7566 {
7567 	cfs_rq->runtime_enabled = 0;
7568 	INIT_LIST_HEAD(&cfs_rq->throttled_list);
7569 	INIT_LIST_HEAD(&cfs_rq->throttled_csd_list);
7570 	INIT_LIST_HEAD(&cfs_rq->throttled_limbo_list);
7571 }
7572 
7573 void start_cfs_bandwidth(struct cfs_bandwidth *cfs_b)
7574 {
7575 	lockdep_assert_held(&cfs_b->lock);
7576 
7577 	if (cfs_b->period_active)
7578 		return;
7579 
7580 	cfs_b->period_active = 1;
7581 	hrtimer_forward_now(&cfs_b->period_timer, cfs_b->period);
7582 	hrtimer_start_expires(&cfs_b->period_timer, HRTIMER_MODE_ABS_PINNED);
7583 }
7584 
7585 static void destroy_cfs_bandwidth(struct cfs_bandwidth *cfs_b)
7586 {
7587 	int __maybe_unused i;
7588 
7589 	/* init_cfs_bandwidth() was not called */
7590 	if (!cfs_b->throttled_cfs_rq.next)
7591 		return;
7592 
7593 	hrtimer_cancel(&cfs_b->period_timer);
7594 	hrtimer_cancel(&cfs_b->slack_timer);
7595 
7596 	/*
7597 	 * It is possible that we still have some cfs_rq's pending on a CSD
7598 	 * list, though this race is very rare. In order for this to occur, we
7599 	 * must have raced with the last task leaving the group while there
7600 	 * exist throttled cfs_rq(s), and the period_timer must have queued the
7601 	 * CSD item but the remote cpu has not yet processed it. To handle this,
7602 	 * we can simply flush all pending CSD work inline here. We're
7603 	 * guaranteed at this point that no additional cfs_rq of this group can
7604 	 * join a CSD list.
7605 	 */
7606 	for_each_possible_cpu(i) {
7607 		struct rq *rq = cpu_rq(i);
7608 
7609 		if (list_empty(&rq->cfsb_csd_list))
7610 			continue;
7611 
7612 		scoped_guard(irqsave)
7613 			__cfsb_csd_unthrottle(rq);
7614 	}
7615 }
7616 
7617 /*
7618  * Both these CPU hotplug callbacks race against unregister_fair_sched_group()
7619  *
7620  * The race is harmless, since modifying bandwidth settings of unhooked group
7621  * bits doesn't do much.
7622  */
7623 
7624 /* cpu online callback */
7625 static void __maybe_unused update_runtime_enabled(struct rq *rq)
7626 {
7627 	struct task_group *tg;
7628 
7629 	lockdep_assert_rq_held(rq);
7630 
7631 	guard(rcu)();
7632 
7633 	list_for_each_entry_rcu(tg, &task_groups, list) {
7634 		struct cfs_bandwidth *cfs_b = &tg->cfs_bandwidth;
7635 		struct cfs_rq *cfs_rq = tg_cfs_rq(tg, cpu_of(rq));
7636 
7637 		scoped_guard(raw_spinlock, &cfs_b->lock)
7638 			cfs_rq->runtime_enabled = cfs_b->quota != RUNTIME_INF;
7639 	}
7640 }
7641 
7642 /* cpu offline callback */
7643 static void __maybe_unused unthrottle_offline_cfs_rqs(struct rq *rq)
7644 {
7645 	struct task_group *tg;
7646 
7647 	lockdep_assert_rq_held(rq);
7648 
7649 	// Do not unthrottle for an active CPU
7650 	if (cpumask_test_cpu(cpu_of(rq), cpu_active_mask))
7651 		return;
7652 
7653 	/*
7654 	 * The rq clock has already been updated in the
7655 	 * set_rq_offline(), so we should skip updating
7656 	 * the rq clock again in unthrottle_cfs_rq().
7657 	 */
7658 	rq_clock_start_loop_update(rq);
7659 
7660 	guard(rcu)();
7661 
7662 	list_for_each_entry_rcu(tg, &task_groups, list) {
7663 		struct cfs_rq *cfs_rq = tg_cfs_rq(tg, cpu_of(rq));
7664 
7665 		if (!cfs_rq->runtime_enabled)
7666 			continue;
7667 
7668 		/*
7669 		 * Offline rq is schedulable till CPU is completely disabled
7670 		 * in take_cpu_down(), so we prevent new cfs throttling here.
7671 		 */
7672 		cfs_rq->runtime_enabled = 0;
7673 
7674 		if (!cfs_rq_throttled(cfs_rq))
7675 			continue;
7676 
7677 		/*
7678 		 * clock_task is not advancing so we just need to make sure
7679 		 * there's some valid quota amount
7680 		 */
7681 		cfs_rq->runtime_remaining = 1;
7682 		unthrottle_cfs_rq(cfs_rq);
7683 	}
7684 
7685 	rq_clock_stop_loop_update(rq);
7686 }
7687 
7688 bool cfs_task_bw_constrained(struct task_struct *p)
7689 {
7690 	struct cfs_rq *cfs_rq = task_cfs_rq(p);
7691 
7692 	if (!cfs_bandwidth_used())
7693 		return false;
7694 
7695 	if (cfs_rq->runtime_enabled ||
7696 	    tg_cfs_bandwidth(cfs_rq->tg)->hierarchical_quota != RUNTIME_INF)
7697 		return true;
7698 
7699 	return false;
7700 }
7701 
7702 #ifdef CONFIG_NO_HZ_FULL
7703 /* called from pick_next_task_fair() */
7704 static void sched_fair_update_stop_tick(struct rq *rq, struct task_struct *p)
7705 {
7706 	int cpu = cpu_of(rq);
7707 
7708 	if (!cfs_bandwidth_used())
7709 		return;
7710 
7711 	if (!tick_nohz_full_cpu(cpu))
7712 		return;
7713 
7714 	if (rq->nr_running != 1)
7715 		return;
7716 
7717 	/*
7718 	 *  We know there is only one task runnable and we've just picked it. The
7719 	 *  normal enqueue path will have cleared TICK_DEP_BIT_SCHED if we will
7720 	 *  be otherwise able to stop the tick. Just need to check if we are using
7721 	 *  bandwidth control.
7722 	 */
7723 	if (cfs_task_bw_constrained(p))
7724 		tick_nohz_dep_set_cpu(cpu, TICK_DEP_BIT_SCHED);
7725 }
7726 #endif /* CONFIG_NO_HZ_FULL */
7727 
7728 #else /* !CONFIG_CFS_BANDWIDTH: */
7729 
7730 static bool account_cfs_rq_runtime(struct cfs_rq *cfs_rq, u64 delta_exec) { return false; }
7731 static void check_enqueue_throttle(struct cfs_rq *cfs_rq) {}
7732 static inline void sync_throttle(struct task_group *tg, int cpu) {}
7733 static __always_inline void return_cfs_rq_runtime(struct cfs_rq *cfs_rq) {}
7734 static void task_throttle_setup_work(struct task_struct *p) {}
7735 static bool task_is_throttled(struct task_struct *p) { return false; }
7736 static void dequeue_throttled_task(struct task_struct *p, int flags) {}
7737 static bool enqueue_throttled_task(struct task_struct *p) { return false; }
7738 static void record_throttle_clock(struct cfs_rq *cfs_rq) {}
7739 
7740 static inline int cfs_rq_throttled(struct cfs_rq *cfs_rq)
7741 {
7742 	return 0;
7743 }
7744 
7745 static inline bool cfs_rq_pelt_clock_throttled(struct cfs_rq *cfs_rq)
7746 {
7747 	return false;
7748 }
7749 
7750 static inline int throttled_hierarchy(struct cfs_rq *cfs_rq)
7751 {
7752 	return 0;
7753 }
7754 
7755 static inline int lb_throttled_hierarchy(struct task_struct *p, int dst_cpu)
7756 {
7757 	return 0;
7758 }
7759 
7760 #ifdef CONFIG_FAIR_GROUP_SCHED
7761 void init_cfs_bandwidth(struct cfs_bandwidth *cfs_b, struct cfs_bandwidth *parent) {}
7762 static void init_cfs_rq_runtime(struct cfs_rq *cfs_rq) {}
7763 #endif
7764 
7765 static inline struct cfs_bandwidth *tg_cfs_bandwidth(struct task_group *tg)
7766 {
7767 	return NULL;
7768 }
7769 static inline void destroy_cfs_bandwidth(struct cfs_bandwidth *cfs_b) {}
7770 static inline void update_runtime_enabled(struct rq *rq) {}
7771 static inline void unthrottle_offline_cfs_rqs(struct rq *rq) {}
7772 #ifdef CONFIG_CGROUP_SCHED
7773 bool cfs_task_bw_constrained(struct task_struct *p)
7774 {
7775 	return false;
7776 }
7777 #endif
7778 #endif /* !CONFIG_CFS_BANDWIDTH */
7779 
7780 #if !defined(CONFIG_CFS_BANDWIDTH) || !defined(CONFIG_NO_HZ_FULL)
7781 static inline void sched_fair_update_stop_tick(struct rq *rq, struct task_struct *p) {}
7782 #endif
7783 
7784 /**************************************************
7785  * CFS operations on tasks:
7786  */
7787 
7788 #ifdef CONFIG_SCHED_HRTICK
7789 static void hrtick_start_fair(struct rq *rq, struct task_struct *p)
7790 {
7791 	struct sched_entity *se = &p->se;
7792 	unsigned long scale = 1024;
7793 	unsigned long util = 0;
7794 	u64 vdelta;
7795 	u64 delta;
7796 
7797 	WARN_ON_ONCE(task_rq(p) != rq);
7798 
7799 	if (rq->cfs.h_nr_queued <= 1)
7800 		return;
7801 
7802 	/*
7803 	 * Compute time until virtual deadline
7804 	 */
7805 	vdelta = se->deadline - se->vruntime;
7806 	if ((s64)vdelta < 0) {
7807 		if (task_current_donor(rq, p))
7808 			resched_curr(rq);
7809 		return;
7810 	}
7811 	delta = (se->h_load.weight * vdelta) / NICE_0_LOAD;
7812 
7813 	/*
7814 	 * Correct for instantaneous load of other classes.
7815 	 */
7816 	util += cpu_util_irq(rq);
7817 	if (util && util < 1024) {
7818 		scale *= 1024;
7819 		scale /= (1024 - util);
7820 	}
7821 
7822 	hrtick_start(rq, (scale * delta) / 1024);
7823 }
7824 
7825 /*
7826  * Called on enqueue to start the hrtick when h_nr_queued becomes more than 1.
7827  */
7828 static void hrtick_update(struct rq *rq)
7829 {
7830 	struct task_struct *donor = rq->donor;
7831 
7832 	if (!hrtick_enabled_fair(rq) || donor->sched_class != &fair_sched_class)
7833 		return;
7834 
7835 	if (hrtick_active(rq))
7836 		return;
7837 
7838 	hrtick_start_fair(rq, donor);
7839 }
7840 #else /* !CONFIG_SCHED_HRTICK: */
7841 static inline void
7842 hrtick_start_fair(struct rq *rq, struct task_struct *p)
7843 {
7844 }
7845 
7846 static inline void hrtick_update(struct rq *rq)
7847 {
7848 }
7849 #endif /* !CONFIG_SCHED_HRTICK */
7850 
7851 static inline bool cpu_overutilized(int cpu)
7852 {
7853 	unsigned long rq_util_max;
7854 
7855 	if (!sched_energy_enabled())
7856 		return false;
7857 
7858 	rq_util_max = uclamp_rq_get(cpu_rq(cpu), UCLAMP_MAX);
7859 
7860 	/* Return true only if the utilization doesn't fit CPU's capacity */
7861 	return !util_fits_cpu(cpu_util_cfs(cpu), 0, rq_util_max, cpu);
7862 }
7863 
7864 /*
7865  * overutilized value make sense only if EAS is enabled
7866  */
7867 static inline bool is_rd_overutilized(struct root_domain *rd)
7868 {
7869 	return !sched_energy_enabled() || READ_ONCE(rd->overutilized);
7870 }
7871 
7872 static inline void set_rd_overutilized(struct root_domain *rd, bool flag)
7873 {
7874 	if (!sched_energy_enabled())
7875 		return;
7876 
7877 	WRITE_ONCE(rd->overutilized, flag);
7878 	trace_sched_overutilized_tp(rd, flag);
7879 }
7880 
7881 static inline void check_update_overutilized_status(struct rq *rq)
7882 {
7883 	/*
7884 	 * overutilized field is used for load balancing decisions only
7885 	 * if energy aware scheduler is being used
7886 	 */
7887 
7888 	if (!is_rd_overutilized(rq->rd) && cpu_overutilized(rq->cpu))
7889 		set_rd_overutilized(rq->rd, 1);
7890 }
7891 
7892 /* Runqueue only has SCHED_IDLE tasks enqueued */
7893 static int sched_idle_rq(struct rq *rq)
7894 {
7895 	return unlikely(rq->nr_running == rq->cfs.h_nr_idle &&
7896 			rq->nr_running);
7897 }
7898 
7899 static int choose_sched_idle_rq(struct rq *rq, struct task_struct *p)
7900 {
7901 	return sched_idle_rq(rq) && !task_has_idle_policy(p);
7902 }
7903 
7904 static int choose_idle_cpu(int cpu, struct task_struct *p)
7905 {
7906 	return available_idle_cpu(cpu) ||
7907 	       choose_sched_idle_rq(cpu_rq(cpu), p);
7908 }
7909 
7910 static void
7911 requeue_delayed_entity(struct cfs_rq *cfs_rq, struct sched_entity *se)
7912 {
7913 	/*
7914 	 * se->sched_delayed should imply: se->on_rq == 1.
7915 	 * Because a delayed entity is one that is still on
7916 	 * the runqueue competing until elegibility.
7917 	 */
7918 	WARN_ON_ONCE(!se->sched_delayed);
7919 	WARN_ON_ONCE(!se->on_rq);
7920 
7921 	if (update_entity_lag(cfs_rq, se)) {
7922 		cfs_rq->h_nr_queued--;
7923 		if (se != cfs_rq->curr)
7924 			__dequeue_entity(cfs_rq, se);
7925 		place_entity(cfs_rq, se, 0);
7926 		if (se != cfs_rq->curr)
7927 			__enqueue_entity(cfs_rq, se);
7928 		cfs_rq->h_nr_queued++;
7929 	}
7930 
7931 	update_load_avg(cfs_rq, se, 0);
7932 	clear_delayed(se);
7933 }
7934 
7935 static unsigned long enqueue_hierarchy(struct task_struct *p, int flags)
7936 {
7937 	unsigned long weight = NICE_0_LOAD;
7938 	int task_new = !(flags & ENQUEUE_WAKEUP);
7939 	struct sched_entity *se = &p->se;
7940 	int h_nr_idle = task_has_idle_policy(p);
7941 	int h_nr_runnable = 1;
7942 
7943 	if (task_new && se->sched_delayed)
7944 		h_nr_runnable = 0;
7945 
7946 	for_each_sched_entity(se) {
7947 		struct cfs_rq *cfs_rq = cfs_rq_of(se);
7948 
7949 		update_curr(cfs_rq);
7950 
7951 		if (!se->on_rq) {
7952 			enqueue_entity(cfs_rq, se, flags);
7953 		} else {
7954 			update_load_avg(cfs_rq, se, UPDATE_TG);
7955 			se_update_runnable(se);
7956 			update_cfs_group(se);
7957 		}
7958 
7959 		cfs_rq->h_nr_runnable += h_nr_runnable;
7960 		cfs_rq->h_nr_queued++;
7961 		cfs_rq->h_nr_idle += h_nr_idle;
7962 
7963 		if (cfs_rq_is_idle(cfs_rq))
7964 			h_nr_idle = 1;
7965 
7966 		weight = __calc_prop_weight(cfs_rq, se, weight);
7967 
7968 		flags = ENQUEUE_WAKEUP;
7969 	}
7970 
7971 	return weight;
7972 }
7973 
7974 /* Update curr's vruntime before placing entity or updating lag */
7975 static inline void update_curr_eevdf(struct cfs_rq *cfs_rq)
7976 {
7977 	if (!cfs_rq->curr)
7978 		return;
7979 
7980 	update_curr(cfs_rq_of(cfs_rq->curr));
7981 }
7982 
7983 /*
7984  * The enqueue_task method is called before nr_running is
7985  * increased. Here we update the fair scheduling stats and
7986  * then put the task into the rbtree:
7987  */
7988 static void
7989 enqueue_task_fair(struct rq *rq, struct task_struct *p, int flags)
7990 {
7991 	int rq_h_nr_queued = rq->cfs.h_nr_queued;
7992 	int task_new = !(flags & ENQUEUE_WAKEUP);
7993 	struct sched_entity *se = &p->se;
7994 	struct cfs_rq *cfs_rq = &rq->cfs;
7995 	unsigned long weight;
7996 	bool curr;
7997 
7998 	if (task_is_throttled(p) && enqueue_throttled_task(p))
7999 		return;
8000 
8001 	/*
8002 	 * The code below (indirectly) updates schedutil which looks at
8003 	 * the cfs_rq utilization to select a frequency.
8004 	 * Let's add the task's estimated utilization to the cfs_rq's
8005 	 * estimated utilization, before we update schedutil.
8006 	 */
8007 	if (!p->se.sched_delayed || (flags & ENQUEUE_DELAYED))
8008 		util_est_enqueue(cfs_rq, p);
8009 
8010 	update_curr_eevdf(cfs_rq);
8011 
8012 	if (flags & ENQUEUE_DELAYED) {
8013 		requeue_delayed_entity(cfs_rq, se);
8014 		return;
8015 	}
8016 
8017 	/*
8018 	 * If in_iowait is set, the code below may not trigger any cpufreq
8019 	 * utilization updates, so do it here explicitly with the IOWAIT flag
8020 	 * passed.
8021 	 */
8022 	if (p->in_iowait)
8023 		cpufreq_update_util(rq, SCHED_CPUFREQ_IOWAIT);
8024 
8025 	/*
8026 	 * XXX comment on the curr thing
8027 	 */
8028 	curr = (cfs_rq->curr == se);
8029 	if (curr)
8030 		place_entity(cfs_rq, se, flags);
8031 
8032 	if (se->on_rq && se->sched_delayed)
8033 		requeue_delayed_entity(cfs_rq, se);
8034 
8035 	weight = enqueue_hierarchy(p, flags);
8036 
8037 	if (!curr) {
8038 		reweight_eevdf(cfs_rq, se, weight, false);
8039 		place_entity(cfs_rq, se, flags | ENQUEUE_QUEUED);
8040 		__enqueue_entity(cfs_rq, se);
8041 	}
8042 
8043 	if (!rq_h_nr_queued && rq->cfs.h_nr_queued)
8044 		dl_server_start(&rq->fair_server);
8045 
8046 	/* At this point se is NULL and we are at root level*/
8047 	add_nr_running(rq, 1);
8048 
8049 	/*
8050 	 * Since new tasks are assigned an initial util_avg equal to
8051 	 * half of the spare capacity of their CPU, tiny tasks have the
8052 	 * ability to cross the overutilized threshold, which will
8053 	 * result in the load balancer ruining all the task placement
8054 	 * done by EAS. As a way to mitigate that effect, do not account
8055 	 * for the first enqueue operation of new tasks during the
8056 	 * overutilized flag detection.
8057 	 *
8058 	 * A better way of solving this problem would be to wait for
8059 	 * the PELT signals of tasks to converge before taking them
8060 	 * into account, but that is not straightforward to implement,
8061 	 * and the following generally works well enough in practice.
8062 	 */
8063 	if (!task_new)
8064 		check_update_overutilized_status(rq);
8065 
8066 	assert_list_leaf_cfs_rq(rq);
8067 
8068 	hrtick_update(rq);
8069 }
8070 
8071 static void dequeue_hierarchy(struct task_struct *p, int flags)
8072 {
8073 	struct sched_entity *se = &p->se;
8074 	bool task_sleep = flags & DEQUEUE_SLEEP;
8075 	bool task_delayed = flags & DEQUEUE_DELAYED;
8076 	bool task_throttled = flags & DEQUEUE_THROTTLE;
8077 	int h_nr_runnable = 0;
8078 	int h_nr_idle = task_has_idle_policy(p);
8079 	bool dequeue = true;
8080 
8081 	if (task_sleep || task_delayed || !se->sched_delayed)
8082 		h_nr_runnable = 1;
8083 
8084 	for_each_sched_entity(se) {
8085 		struct cfs_rq *cfs_rq = cfs_rq_of(se);
8086 
8087 		update_curr(cfs_rq);
8088 
8089 		if (dequeue) {
8090 			dequeue_entity(cfs_rq, se, flags);
8091 			/* Don't dequeue parent if it has other entities besides us */
8092 			if (cfs_rq->load.weight)
8093 				dequeue = false;
8094 		} else {
8095 			update_load_avg(cfs_rq, se, UPDATE_TG);
8096 			se_update_runnable(se);
8097 			update_cfs_group(se);
8098 		}
8099 
8100 		cfs_rq->h_nr_runnable -= h_nr_runnable;
8101 		cfs_rq->h_nr_queued--;
8102 		cfs_rq->h_nr_idle -= h_nr_idle;
8103 
8104 		if (cfs_rq_is_idle(cfs_rq))
8105 			h_nr_idle = 1;
8106 
8107 		if (throttled_hierarchy(cfs_rq) && task_throttled)
8108 			record_throttle_clock(cfs_rq);
8109 
8110 		flags |= DEQUEUE_SLEEP;
8111 		flags &= ~(DEQUEUE_DELAYED | DEQUEUE_SPECIAL);
8112 	}
8113 }
8114 
8115 /*
8116  * The part of dequeue_task_fair() that is needed to dequeue delayed tasks.
8117  *
8118  * Returns:
8119  *   true  - dequeued
8120  *   false - delayed
8121  */
8122 static bool __dequeue_task(struct rq *rq, struct task_struct *p, int flags)
8123 {
8124 	struct sched_entity *se = &p->se;
8125 	struct cfs_rq *cfs_rq = &rq->cfs;
8126 	bool was_sched_idle = sched_idle_rq(rq);
8127 	bool task_sleep = flags & DEQUEUE_SLEEP;
8128 	bool task_delayed = flags & DEQUEUE_DELAYED;
8129 
8130 	clear_buddies(cfs_rq, se);
8131 
8132 	update_curr_eevdf(cfs_rq);
8133 	update_entity_lag(cfs_rq, se);
8134 
8135 	if (flags & DEQUEUE_DELAYED) {
8136 		WARN_ON_ONCE(!se->sched_delayed);
8137 	} else {
8138 		bool delay = task_sleep;
8139 		/*
8140 		 * DELAY_DEQUEUE relies on spurious wakeups, special task
8141 		 * states must not suffer spurious wakeups, excempt them.
8142 		 */
8143 		if (flags & (DEQUEUE_SPECIAL | DEQUEUE_THROTTLE))
8144 			delay = false;
8145 
8146 		WARN_ON_ONCE(delay && se->sched_delayed);
8147 
8148 		if (sched_feat(DELAY_DEQUEUE) && delay &&
8149 		    !entity_eligible(cfs_rq, se)) {
8150 			update_load_avg(cfs_rq_of(se), se, UPDATE_UTIL_EST);
8151 			set_delayed(se);
8152 			return false;
8153 		}
8154 	}
8155 
8156 	dequeue_hierarchy(p, flags);
8157 
8158 	if (sched_feat(PLACE_REL_DEADLINE) && !task_sleep) {
8159 		se->deadline -= se->vruntime;
8160 		se->rel_deadline = 1;
8161 	}
8162 	if (se != cfs_rq->curr)
8163 		__dequeue_entity(cfs_rq, se);
8164 
8165 	sub_nr_running(rq, 1);
8166 
8167 	/* balance early to pull high priority tasks */
8168 	if (unlikely(!was_sched_idle && sched_idle_rq(rq)))
8169 		rq->next_balance = jiffies;
8170 
8171 	if (task_delayed) {
8172 		clear_delayed(se);
8173 
8174 		WARN_ON_ONCE(!task_sleep);
8175 		WARN_ON_ONCE(p->on_rq != 1);
8176 
8177 		/*
8178 		 * Fix-up what block_task() skipped.
8179 		 *
8180 		 * Must be last, @p might not be valid after this.
8181 		 */
8182 		__block_task(rq, p);
8183 	}
8184 
8185 	return true;
8186 }
8187 
8188 /*
8189  * The dequeue_task method is called before nr_running is
8190  * decreased. We remove the task from the rbtree and
8191  * update the fair scheduling stats:
8192  */
8193 static bool dequeue_task_fair(struct rq *rq, struct task_struct *p, int flags)
8194 {
8195 	if (task_is_throttled(p)) {
8196 		dequeue_throttled_task(p, flags);
8197 		return true;
8198 	}
8199 
8200 	if (!p->se.sched_delayed)
8201 		util_est_dequeue(&rq->cfs, p);
8202 
8203 	if (!__dequeue_task(rq, p, flags))
8204 		return false;
8205 
8206 	/*
8207 	 * Must not reference @p after __dequeue_task(DEQUEUE_DELAYED).
8208 	 */
8209 	return true;
8210 }
8211 
8212 static inline unsigned int cfs_h_nr_delayed(struct rq *rq)
8213 {
8214 	return (rq->cfs.h_nr_queued - rq->cfs.h_nr_runnable);
8215 }
8216 
8217 /* Working cpumask for: sched_balance_rq(), sched_balance_newidle(). */
8218 static DEFINE_PER_CPU(cpumask_var_t, load_balance_mask);
8219 static DEFINE_PER_CPU(cpumask_var_t, select_rq_mask);
8220 static DEFINE_PER_CPU(cpumask_var_t, should_we_balance_tmpmask);
8221 
8222 #ifdef CONFIG_NO_HZ_COMMON
8223 
8224 static struct {
8225 	cpumask_var_t idle_cpus_mask;
8226 	int has_blocked_load;		/* Idle CPUS has blocked load */
8227 	int needs_update;		/* Newly idle CPUs need their next_balance collated */
8228 	unsigned long next_balance;     /* in jiffy units */
8229 	unsigned long next_blocked;	/* Next update of blocked load in jiffies */
8230 } nohz ____cacheline_aligned;
8231 
8232 #endif /* CONFIG_NO_HZ_COMMON */
8233 
8234 static unsigned long cpu_load(struct rq *rq)
8235 {
8236 	return cfs_rq_load_avg(&rq->cfs);
8237 }
8238 
8239 /*
8240  * cpu_load_without - compute CPU load without any contributions from *p
8241  * @cpu: the CPU which load is requested
8242  * @p: the task which load should be discounted
8243  *
8244  * The load of a CPU is defined by the load of tasks currently enqueued on that
8245  * CPU as well as tasks which are currently sleeping after an execution on that
8246  * CPU.
8247  *
8248  * This method returns the load of the specified CPU by discounting the load of
8249  * the specified task, whenever the task is currently contributing to the CPU
8250  * load.
8251  */
8252 static unsigned long cpu_load_without(struct rq *rq, struct task_struct *p)
8253 {
8254 	struct cfs_rq *cfs_rq;
8255 	unsigned int load;
8256 
8257 	/* Task has no contribution or is new */
8258 	if (cpu_of(rq) != task_cpu(p) || !READ_ONCE(p->se.avg.last_update_time))
8259 		return cpu_load(rq);
8260 
8261 	cfs_rq = &rq->cfs;
8262 	load = READ_ONCE(cfs_rq->avg.load_avg);
8263 
8264 	/* Discount task's util from CPU's util */
8265 	lsub_positive(&load, task_h_load(p));
8266 
8267 	return load;
8268 }
8269 
8270 static unsigned long cpu_runnable(struct rq *rq)
8271 {
8272 	return cfs_rq_runnable_avg(&rq->cfs);
8273 }
8274 
8275 static unsigned long cpu_runnable_without(struct rq *rq, struct task_struct *p)
8276 {
8277 	struct cfs_rq *cfs_rq;
8278 	unsigned int runnable;
8279 
8280 	/* Task has no contribution or is new */
8281 	if (cpu_of(rq) != task_cpu(p) || !READ_ONCE(p->se.avg.last_update_time))
8282 		return cpu_runnable(rq);
8283 
8284 	cfs_rq = &rq->cfs;
8285 	runnable = READ_ONCE(cfs_rq->avg.runnable_avg);
8286 
8287 	/* Discount task's runnable from CPU's runnable */
8288 	lsub_positive(&runnable, p->se.avg.runnable_avg);
8289 
8290 	return runnable;
8291 }
8292 
8293 static unsigned long capacity_of(int cpu)
8294 {
8295 	return cpu_rq(cpu)->cpu_capacity;
8296 }
8297 
8298 static void record_wakee(struct task_struct *p)
8299 {
8300 	/*
8301 	 * Only decay a single time; tasks that have less then 1 wakeup per
8302 	 * jiffy will not have built up many flips.
8303 	 */
8304 	if (time_after(jiffies, current->wakee_flip_decay_ts + HZ)) {
8305 		current->wakee_flips >>= 1;
8306 		current->wakee_flip_decay_ts = jiffies;
8307 	}
8308 
8309 	if (current->last_wakee != p) {
8310 		current->last_wakee = p;
8311 		current->wakee_flips++;
8312 	}
8313 }
8314 
8315 /*
8316  * Detect M:N waker/wakee relationships via a switching-frequency heuristic.
8317  *
8318  * A waker of many should wake a different task than the one last awakened
8319  * at a frequency roughly N times higher than one of its wakees.
8320  *
8321  * In order to determine whether we should let the load spread vs consolidating
8322  * to shared cache, we look for a minimum 'flip' frequency of llc_size in one
8323  * partner, and a factor of lls_size higher frequency in the other.
8324  *
8325  * With both conditions met, we can be relatively sure that the relationship is
8326  * non-monogamous, with partner count exceeding socket size.
8327  *
8328  * Waker/wakee being client/server, worker/dispatcher, interrupt source or
8329  * whatever is irrelevant, spread criteria is apparent partner count exceeds
8330  * socket size.
8331  */
8332 static int wake_wide(struct task_struct *p)
8333 {
8334 	unsigned int master = current->wakee_flips;
8335 	unsigned int slave = p->wakee_flips;
8336 	int factor = __this_cpu_read(sd_llc_size);
8337 
8338 	if (master < slave)
8339 		swap(master, slave);
8340 	if (slave < factor || master < slave * factor)
8341 		return 0;
8342 	return 1;
8343 }
8344 
8345 /*
8346  * The purpose of wake_affine() is to quickly determine on which CPU we can run
8347  * soonest. For the purpose of speed we only consider the waking and previous
8348  * CPU.
8349  *
8350  * wake_affine_idle() - only considers 'now', it check if the waking CPU is
8351  *			cache-affine and is (or	will be) idle.
8352  *
8353  * wake_affine_weight() - considers the weight to reflect the average
8354  *			  scheduling latency of the CPUs. This seems to work
8355  *			  for the overloaded case.
8356  */
8357 static int
8358 wake_affine_idle(int this_cpu, int prev_cpu, int sync)
8359 {
8360 	/*
8361 	 * If this_cpu is idle, it implies the wakeup is from interrupt
8362 	 * context. Only allow the move if cache is shared. Otherwise an
8363 	 * interrupt intensive workload could force all tasks onto one
8364 	 * node depending on the IO topology or IRQ affinity settings.
8365 	 *
8366 	 * If the prev_cpu is idle and cache affine then avoid a migration.
8367 	 * There is no guarantee that the cache hot data from an interrupt
8368 	 * is more important than cache hot data on the prev_cpu and from
8369 	 * a cpufreq perspective, it's better to have higher utilisation
8370 	 * on one CPU.
8371 	 */
8372 	if (available_idle_cpu(this_cpu) && cpus_share_cache(this_cpu, prev_cpu))
8373 		return available_idle_cpu(prev_cpu) ? prev_cpu : this_cpu;
8374 
8375 	if (sync) {
8376 		struct rq *rq = cpu_rq(this_cpu);
8377 
8378 		if ((rq->nr_running - cfs_h_nr_delayed(rq)) == 1)
8379 			return this_cpu;
8380 	}
8381 
8382 	if (available_idle_cpu(prev_cpu))
8383 		return prev_cpu;
8384 
8385 	return nr_cpumask_bits;
8386 }
8387 
8388 static int
8389 wake_affine_weight(struct sched_domain *sd, struct task_struct *p,
8390 		   int this_cpu, int prev_cpu, int sync)
8391 {
8392 	s64 this_eff_load, prev_eff_load;
8393 	unsigned long task_load;
8394 
8395 	this_eff_load = cpu_load(cpu_rq(this_cpu));
8396 
8397 	if (sync) {
8398 		unsigned long current_load = task_h_load(current);
8399 
8400 		if (current_load > this_eff_load)
8401 			return this_cpu;
8402 
8403 		this_eff_load -= current_load;
8404 	}
8405 
8406 	task_load = task_h_load(p);
8407 
8408 	this_eff_load += task_load;
8409 	if (sched_feat(WA_BIAS))
8410 		this_eff_load *= 100;
8411 	this_eff_load *= capacity_of(prev_cpu);
8412 
8413 	prev_eff_load = cpu_load(cpu_rq(prev_cpu));
8414 	prev_eff_load -= task_load;
8415 	if (sched_feat(WA_BIAS))
8416 		prev_eff_load *= 100 + (sd->imbalance_pct - 100) / 2;
8417 	prev_eff_load *= capacity_of(this_cpu);
8418 
8419 	/*
8420 	 * If sync, adjust the weight of prev_eff_load such that if
8421 	 * prev_eff == this_eff that select_idle_sibling() will consider
8422 	 * stacking the wakee on top of the waker if no other CPU is
8423 	 * idle.
8424 	 */
8425 	if (sync)
8426 		prev_eff_load += 1;
8427 
8428 	return this_eff_load < prev_eff_load ? this_cpu : nr_cpumask_bits;
8429 }
8430 
8431 static int wake_affine(struct sched_domain *sd, struct task_struct *p,
8432 		       int this_cpu, int prev_cpu, int sync)
8433 {
8434 	int target = nr_cpumask_bits;
8435 
8436 	if (sched_feat(WA_IDLE))
8437 		target = wake_affine_idle(this_cpu, prev_cpu, sync);
8438 
8439 	if (sched_feat(WA_WEIGHT) && target == nr_cpumask_bits)
8440 		target = wake_affine_weight(sd, p, this_cpu, prev_cpu, sync);
8441 
8442 	schedstat_inc(p->stats.nr_wakeups_affine_attempts);
8443 	if (target != this_cpu)
8444 		return prev_cpu;
8445 
8446 	schedstat_inc(sd->ttwu_move_affine);
8447 	schedstat_inc(p->stats.nr_wakeups_affine);
8448 	return target;
8449 }
8450 
8451 static struct sched_group *
8452 sched_balance_find_dst_group(struct sched_domain *sd, struct task_struct *p, int this_cpu);
8453 
8454 /*
8455  * sched_balance_find_dst_group_cpu - find the idlest CPU among the CPUs in the group.
8456  */
8457 static int
8458 sched_balance_find_dst_group_cpu(struct sched_group *group, struct task_struct *p, int this_cpu)
8459 {
8460 	unsigned long load, min_load = ULONG_MAX;
8461 	unsigned int min_exit_latency = UINT_MAX;
8462 	u64 latest_idle_timestamp = 0;
8463 	int least_loaded_cpu = this_cpu;
8464 	int shallowest_idle_cpu = -1;
8465 	int i;
8466 
8467 	/* Check if we have any choice: */
8468 	if (group->group_weight == 1)
8469 		return cpumask_first(sched_group_span(group));
8470 
8471 	/* Traverse only the allowed CPUs */
8472 	for_each_cpu_and(i, sched_group_span(group), p->cpus_ptr) {
8473 		struct rq *rq = cpu_rq(i);
8474 
8475 		if (!sched_core_cookie_match(rq, p))
8476 			continue;
8477 
8478 		if (choose_sched_idle_rq(rq, p))
8479 			return i;
8480 
8481 		if (available_idle_cpu(i)) {
8482 			struct cpuidle_state *idle = idle_get_state(rq);
8483 			if (idle && idle->exit_latency < min_exit_latency) {
8484 				/*
8485 				 * We give priority to a CPU whose idle state
8486 				 * has the smallest exit latency irrespective
8487 				 * of any idle timestamp.
8488 				 */
8489 				min_exit_latency = idle->exit_latency;
8490 				latest_idle_timestamp = rq->idle_stamp;
8491 				shallowest_idle_cpu = i;
8492 			} else if ((!idle || idle->exit_latency == min_exit_latency) &&
8493 				   rq->idle_stamp > latest_idle_timestamp) {
8494 				/*
8495 				 * If equal or no active idle state, then
8496 				 * the most recently idled CPU might have
8497 				 * a warmer cache.
8498 				 */
8499 				latest_idle_timestamp = rq->idle_stamp;
8500 				shallowest_idle_cpu = i;
8501 			}
8502 		} else if (shallowest_idle_cpu == -1) {
8503 			load = cpu_load(cpu_rq(i));
8504 			if (load < min_load) {
8505 				min_load = load;
8506 				least_loaded_cpu = i;
8507 			}
8508 		}
8509 	}
8510 
8511 	return shallowest_idle_cpu != -1 ? shallowest_idle_cpu : least_loaded_cpu;
8512 }
8513 
8514 static inline int sched_balance_find_dst_cpu(struct sched_domain *sd, struct task_struct *p,
8515 				  int cpu, int prev_cpu, int sd_flag)
8516 {
8517 	int new_cpu = cpu;
8518 
8519 	if (!cpumask_intersects(sched_domain_span(sd), p->cpus_ptr))
8520 		return prev_cpu;
8521 
8522 	/*
8523 	 * We need task's util for cpu_util_without, sync it up to
8524 	 * prev_cpu's last_update_time.
8525 	 */
8526 	if (!(sd_flag & SD_BALANCE_FORK))
8527 		sync_entity_load_avg(&p->se);
8528 
8529 	while (sd) {
8530 		struct sched_group *group;
8531 		struct sched_domain *tmp;
8532 		int weight;
8533 
8534 		if (!(sd->flags & sd_flag)) {
8535 			sd = sd->child;
8536 			continue;
8537 		}
8538 
8539 		group = sched_balance_find_dst_group(sd, p, cpu);
8540 		if (!group) {
8541 			sd = sd->child;
8542 			continue;
8543 		}
8544 
8545 		new_cpu = sched_balance_find_dst_group_cpu(group, p, cpu);
8546 		if (new_cpu == cpu) {
8547 			/* Now try balancing at a lower domain level of 'cpu': */
8548 			sd = sd->child;
8549 			continue;
8550 		}
8551 
8552 		/* Now try balancing at a lower domain level of 'new_cpu': */
8553 		cpu = new_cpu;
8554 		weight = sd->span_weight;
8555 		sd = NULL;
8556 		for_each_domain(cpu, tmp) {
8557 			if (weight <= tmp->span_weight)
8558 				break;
8559 			if (tmp->flags & sd_flag)
8560 				sd = tmp;
8561 		}
8562 	}
8563 
8564 	return new_cpu;
8565 }
8566 
8567 static inline int __select_idle_cpu(int cpu, struct task_struct *p)
8568 {
8569 	if (choose_idle_cpu(cpu, p) && sched_cpu_cookie_match(cpu_rq(cpu), p))
8570 		return cpu;
8571 
8572 	return -1;
8573 }
8574 
8575 DEFINE_STATIC_KEY_FALSE(sched_smt_present);
8576 EXPORT_SYMBOL_GPL(sched_smt_present);
8577 
8578 static inline void set_idle_cores(int cpu, int val)
8579 {
8580 	struct sched_domain_shared *sds;
8581 
8582 	sds = rcu_dereference_all(per_cpu(sd_balance_shared, cpu));
8583 	if (sds)
8584 		WRITE_ONCE(sds->has_idle_cores, val);
8585 }
8586 
8587 static inline bool test_idle_cores(int cpu)
8588 {
8589 	struct sched_domain_shared *sds;
8590 
8591 	sds = rcu_dereference_all(per_cpu(sd_balance_shared, cpu));
8592 	if (sds)
8593 		return READ_ONCE(sds->has_idle_cores);
8594 
8595 	return false;
8596 }
8597 
8598 /*
8599  * Scans the local SMT mask to see if the entire core is idle, and records this
8600  * information in sd_balance_shared->has_idle_cores.
8601  *
8602  * Since SMT siblings share all cache levels, inspecting this limited remote
8603  * state should be fairly cheap.
8604  */
8605 void __update_idle_core(struct rq *rq)
8606 {
8607 	int core = cpu_of(rq);
8608 	int cpu;
8609 
8610 	rcu_read_lock();
8611 	if (test_idle_cores(core))
8612 		goto unlock;
8613 
8614 	for_each_cpu(cpu, cpu_smt_mask(core)) {
8615 		if (cpu == core)
8616 			continue;
8617 
8618 		if (!available_idle_cpu(cpu))
8619 			goto unlock;
8620 	}
8621 
8622 	set_idle_cores(core, 1);
8623 unlock:
8624 	rcu_read_unlock();
8625 }
8626 
8627 /*
8628  * Scan the entire LLC domain for idle cores; this dynamically switches off if
8629  * there are no idle cores left in the system; tracked through
8630  * sd_balance_shared->has_idle_cores and enabled through update_idle_core()
8631  * above.
8632  */
8633 static int select_idle_core(struct task_struct *p, int core, struct cpumask *cpus, int *idle_cpu)
8634 {
8635 	bool idle = true;
8636 	int cpu;
8637 
8638 	for_each_cpu(cpu, cpu_smt_mask(core)) {
8639 		if (!available_idle_cpu(cpu)) {
8640 			idle = false;
8641 			if (*idle_cpu == -1) {
8642 				if (choose_sched_idle_rq(cpu_rq(cpu), p) &&
8643 				    cpumask_test_cpu(cpu, cpus)) {
8644 					*idle_cpu = cpu;
8645 					break;
8646 				}
8647 				continue;
8648 			}
8649 			break;
8650 		}
8651 		if (*idle_cpu == -1 && cpumask_test_cpu(cpu, cpus))
8652 			*idle_cpu = cpu;
8653 	}
8654 
8655 	if (idle)
8656 		return core;
8657 
8658 	cpumask_andnot(cpus, cpus, cpu_smt_mask(core));
8659 	return -1;
8660 }
8661 
8662 /*
8663  * Scan the local SMT mask for idle CPUs.
8664  */
8665 static int select_idle_smt(struct task_struct *p, struct sched_domain *sd, int target)
8666 {
8667 	int cpu;
8668 
8669 	for_each_cpu_and(cpu, cpu_smt_mask(target), p->cpus_ptr) {
8670 		if (cpu == target)
8671 			continue;
8672 		/*
8673 		 * Check if the CPU is in the LLC scheduling domain of @target.
8674 		 * Due to isolcpus, there is no guarantee that all the siblings are in the domain.
8675 		 */
8676 		if (!cpumask_test_cpu(cpu, sched_domain_span(sd)))
8677 			continue;
8678 		if (choose_idle_cpu(cpu, p))
8679 			return cpu;
8680 	}
8681 
8682 	return -1;
8683 }
8684 
8685 /*
8686  * Scan the LLC domain for idle CPUs; this is dynamically regulated by
8687  * comparing the average scan cost (tracked in sd->avg_scan_cost) against the
8688  * average idle time for this rq (as found in rq->avg_idle).
8689  */
8690 static int select_idle_cpu(struct task_struct *p, struct sched_domain *sd, bool has_idle_core, int target)
8691 {
8692 	struct cpumask *cpus = this_cpu_cpumask_var_ptr(select_rq_mask);
8693 	int i, cpu, idle_cpu = -1, nr = INT_MAX;
8694 
8695 	if (sched_feat(SIS_UTIL) && sd->shared) {
8696 		/*
8697 		 * Increment because !--nr is the condition to stop scan.
8698 		 *
8699 		 * Since "sd" is "sd_llc" for target CPU dereferenced in the
8700 		 * caller, it is safe to directly dereference "sd->shared".
8701 		 * Topology bits always ensure it assigned for "sd_llc" abd it
8702 		 * cannot disappear as long as we have a RCU protected
8703 		 * reference to one the associated "sd" here.
8704 		 */
8705 		nr = READ_ONCE(sd->shared->nr_idle_scan) + 1;
8706 		/* overloaded LLC is unlikely to have idle cpu/core */
8707 		if (nr == 1)
8708 			return -1;
8709 	}
8710 
8711 	if (!cpumask_and(cpus, sched_domain_span(sd), p->cpus_ptr))
8712 		return -1;
8713 
8714 	if (static_branch_unlikely(&sched_cluster_active)) {
8715 		struct sched_group *sg = sd->groups;
8716 
8717 		if (sg->flags & SD_CLUSTER) {
8718 			for_each_cpu_wrap(cpu, sched_group_span(sg), target + 1) {
8719 				if (!cpumask_test_cpu(cpu, cpus))
8720 					continue;
8721 
8722 				if (has_idle_core) {
8723 					i = select_idle_core(p, cpu, cpus, &idle_cpu);
8724 					if ((unsigned int)i < nr_cpumask_bits)
8725 						return i;
8726 				} else {
8727 					if (--nr <= 0)
8728 						return -1;
8729 					idle_cpu = __select_idle_cpu(cpu, p);
8730 					if ((unsigned int)idle_cpu < nr_cpumask_bits)
8731 						return idle_cpu;
8732 				}
8733 			}
8734 			cpumask_andnot(cpus, cpus, sched_group_span(sg));
8735 		}
8736 	}
8737 
8738 	for_each_cpu_wrap(cpu, cpus, target + 1) {
8739 		if (has_idle_core) {
8740 			i = select_idle_core(p, cpu, cpus, &idle_cpu);
8741 			if ((unsigned int)i < nr_cpumask_bits)
8742 				return i;
8743 
8744 		} else {
8745 			if (--nr <= 0)
8746 				return -1;
8747 			idle_cpu = __select_idle_cpu(cpu, p);
8748 			if ((unsigned int)idle_cpu < nr_cpumask_bits)
8749 				break;
8750 		}
8751 	}
8752 
8753 	if (has_idle_core)
8754 		set_idle_cores(target, false);
8755 
8756 	return idle_cpu;
8757 }
8758 
8759 /*
8760  * Idle-capacity scan converts util_fits_cpu() outcomes into preference ranks,
8761  * where lower values indicate a better fit - see select_idle_capacity().
8762  *
8763  * A CPU that both fits the task and sits on a fully-idle SMT core is returned
8764  * immediately and is never assigned one of these ranks. On !SMT every CPU is
8765  * its own "core", so the early return covers all fits-and-idle cases and the
8766  * core-tier ranks below become unreachable.
8767  *
8768  *   Rank                            Val  Tier    Meaning
8769  *   ------------------------------  ---  ------  ---------------------------
8770  *   ASYM_IDLE_UCLAMP_MISFIT         -4   core    Idle core; capacity fits
8771  *                                                util but uclamp_min misses.
8772  *   ASYM_IDLE_COMPLETE_MISFIT       -3   core    Idle core; capacity does
8773  *                                                not fit. Still beats every
8774  *                                                thread-tier rank: a busy
8775  *                                                sibling cuts effective
8776  *                                                capacity more than a
8777  *                                                misfit hurts a quiet core.
8778  *   ASYM_IDLE_THREAD_FITS           -2   thread  Busy SMT sibling; capacity
8779  *                                                fits util + uclamp.
8780  *   ASYM_IDLE_THREAD_UCLAMP_MISFIT  -1   thread  Busy SMT sibling; capacity
8781  *                                                fits but uclamp_min misses
8782  *                                                (native util_fits_cpu()
8783  *                                                return value).
8784  *   ASYM_IDLE_THREAD_MISFIT          0   thread  Busy SMT sibling; capacity
8785  *                                                does not fit.
8786  *
8787  * ASYM_IDLE_CORE_BIAS (-3) is an offset, not a state. On an idle core,
8788  * fits += ASYM_IDLE_CORE_BIAS rebases thread-tier ranks into the core tier:
8789  *
8790  *   ASYM_IDLE_THREAD_UCLAMP_MISFIT (-1) + BIAS -> ASYM_IDLE_UCLAMP_MISFIT   (-4)
8791  *   ASYM_IDLE_THREAD_MISFIT         (0) + BIAS -> ASYM_IDLE_COMPLETE_MISFIT (-3)
8792  *
8793  * ASYM_IDLE_THREAD_FITS (-2) is never rebased because a fully-fitting idle-core
8794  * candidate early-returns from select_idle_capacity().
8795  */
8796 enum asym_fits_state {
8797 	ASYM_IDLE_UCLAMP_MISFIT = -4,
8798 	ASYM_IDLE_COMPLETE_MISFIT,
8799 	ASYM_IDLE_THREAD_FITS,
8800 	ASYM_IDLE_THREAD_UCLAMP_MISFIT,
8801 	ASYM_IDLE_THREAD_MISFIT,
8802 
8803 	/* util_fits_cpu() bias for idle core */
8804 	ASYM_IDLE_CORE_BIAS = -3,
8805 };
8806 
8807 /*
8808  * Scan the asym_capacity domain for idle CPUs; pick the first idle one on which
8809  * the task fits. If no CPU is big enough, but there are idle ones, try to
8810  * maximize capacity.
8811  */
8812 static int
8813 select_idle_capacity(struct task_struct *p, struct sched_domain *sd, int target)
8814 {
8815 	/*
8816 	 * On !SMT systems, has_idle_core is always false and preferred_core
8817 	 * is always true (CPU == core), so the SMT preference logic below
8818 	 * collapses to the plain capacity scan.
8819 	 */
8820 	bool has_idle_core = sched_smt_active() && test_idle_cores(target);
8821 	unsigned long task_util, util_min, util_max, best_cap = 0;
8822 	int fits, best_fits = ASYM_IDLE_THREAD_MISFIT;
8823 	int cpu, best_cpu = -1;
8824 	struct cpumask *cpus;
8825 	int nr = INT_MAX;
8826 
8827 	cpus = this_cpu_cpumask_var_ptr(select_rq_mask);
8828 	cpumask_and(cpus, sched_domain_span(sd), p->cpus_ptr);
8829 
8830 	task_util = task_util_est(p);
8831 	util_min = uclamp_eff_value(p, UCLAMP_MIN);
8832 	util_max = uclamp_eff_value(p, UCLAMP_MAX);
8833 
8834 	if (sched_feat(SIS_UTIL) && sd->shared) {
8835 		/*
8836 		 * Same nr_idle_scan hint as select_idle_cpu(), nr only limits
8837 		 * the scan when not preferring an idle core.
8838 		 */
8839 		nr = READ_ONCE(sd->shared->nr_idle_scan) + 1;
8840 		/* overloaded domain is unlikely to have idle cpu/core */
8841 		if (nr == 1)
8842 			return -1;
8843 	}
8844 
8845 	for_each_cpu_wrap(cpu, cpus, target) {
8846 		bool preferred_core = !has_idle_core || is_core_idle(cpu);
8847 		unsigned long cpu_cap = capacity_of(cpu);
8848 
8849 		/*
8850 		 * Stop when the nr_idle_scan is exhausted (mirrors
8851 		 * select_idle_cpu() logic).
8852 		 */
8853 		if (!has_idle_core && --nr <= 0)
8854 			return best_cpu;
8855 
8856 		if (!choose_idle_cpu(cpu, p))
8857 			continue;
8858 
8859 		fits = util_fits_cpu(task_util, util_min, util_max, cpu);
8860 
8861 		/*
8862 		 * Perfect fit: capacity satisfies util + uclamp and the CPU
8863 		 * sits on a fully-idle SMT core, this is a !SMT system, or
8864 		 * there is no idle core to find.
8865 		 * Short-circuit the rank-based selection and return
8866 		 * immediately.
8867 		 */
8868 		if (fits > 0 && preferred_core)
8869 			return cpu;
8870 		/*
8871 		 * Only the min performance hint (i.e. uclamp_min) doesn't fit.
8872 		 * Look for the CPU with best capacity.
8873 		 */
8874 		else if (fits < 0)
8875 			cpu_cap = get_actual_cpu_capacity(cpu);
8876 		/*
8877 		 * fits > 0 implies we are not on a preferred core, but the util
8878 		 * fits CPU capacity. Set fits to ASYM_IDLE_THREAD_FITS
8879 		 * so the effective range becomes
8880 		 * [ASYM_IDLE_THREAD_FITS, ASYM_IDLE_THREAD_MISFIT], where:
8881 		 *    ASYM_IDLE_THREAD_MISFIT - does not fit
8882 		 *    ASYM_IDLE_THREAD_UCLAMP_MISFIT - fits with the exception of UCLAMP_MIN
8883 		 *    ASYM_IDLE_THREAD_FITS - fits with the exception of preferred_core
8884 		 */
8885 		else if (fits > 0)
8886 			fits = ASYM_IDLE_THREAD_FITS;
8887 
8888 		/*
8889 		 * If we are on a preferred core, translate the range of fits
8890 		 * of [ASYM_IDLE_THREAD_UCLAMP_MISFIT, ASYM_IDLE_THREAD_MISFIT] to
8891 		 * [ASYM_IDLE_UCLAMP_MISFIT, ASYM_IDLE_COMPLETE_MISFIT].
8892 		 * This ensures that an idle core is always given priority over
8893 		 * (partially) busy core.
8894 		 *
8895 		 * A fully fitting idle core would have returned early and hence
8896 		 * fits > 0 for preferred_core need not be dealt with.
8897 		 */
8898 		if (preferred_core)
8899 			fits += ASYM_IDLE_CORE_BIAS;
8900 
8901 		/*
8902 		 * First, select CPU which fits better (lower is more preferred).
8903 		 * Then, select the one with best capacity at same level.
8904 		 */
8905 		if ((fits < best_fits) ||
8906 		    ((fits == best_fits) && (cpu_cap > best_cap))) {
8907 			best_cap = cpu_cap;
8908 			best_cpu = cpu;
8909 			best_fits = fits;
8910 		}
8911 	}
8912 
8913 	/*
8914 	 * A value in the [ASYM_IDLE_UCLAMP_MISFIT, ASYM_IDLE_COMPLETE_MISFIT]
8915 	 * range means the chosen CPU is in a fully idle SMT core. Values above
8916 	 * ASYM_IDLE_COMPLETE_MISFIT mean we never ranked such a CPU best.
8917 	 *
8918 	 * The asym-capacity wakeup path returns from select_idle_sibling()
8919 	 * after this function and never runs select_idle_cpu(), so the usual
8920 	 * select_idle_cpu() tail that clears idle cores must live here when the
8921 	 * idle-core preference did not win.
8922 	 */
8923 	if (has_idle_core && best_fits > ASYM_IDLE_COMPLETE_MISFIT)
8924 		set_idle_cores(target, false);
8925 
8926 	return best_cpu;
8927 }
8928 
8929 static inline bool asym_fits_cpu(unsigned long util,
8930 				 unsigned long util_min,
8931 				 unsigned long util_max,
8932 				 int cpu)
8933 {
8934 	if (sched_asym_cpucap_active()) {
8935 		/*
8936 		 * Return true only if the cpu fully fits the task requirements
8937 		 * which include the utilization and the performance hints.
8938 		 *
8939 		 * When SMT is active, also require that the core has no busy
8940 		 * siblings.
8941 		 *
8942 		 * Note: gating on is_core_idle() also makes the early-bailout
8943 		 * candidates in select_idle_sibling() (target, prev,
8944 		 * recent_used_cpu) idle-core-aware on ASYM+SMT, which the
8945 		 * NO_ASYM path does not do.
8946 		 */
8947 		return (!sched_smt_active() || is_core_idle(cpu)) &&
8948 		       (util_fits_cpu(util, util_min, util_max, cpu) > 0);
8949 	}
8950 
8951 	return true;
8952 }
8953 
8954 /*
8955  * Try and locate an idle core/thread in the LLC cache domain.
8956  */
8957 static int select_idle_sibling(struct task_struct *p, int prev, int target)
8958 {
8959 	bool has_idle_core = false;
8960 	struct sched_domain *sd;
8961 	unsigned long task_util, util_min, util_max;
8962 	int i, recent_used_cpu, prev_aff = -1;
8963 
8964 	/*
8965 	 * On asymmetric system, update task utilization because we will check
8966 	 * that the task fits with CPU's capacity.
8967 	 */
8968 	if (sched_asym_cpucap_active()) {
8969 		sync_entity_load_avg(&p->se);
8970 		task_util = task_util_est(p);
8971 		util_min = uclamp_eff_value(p, UCLAMP_MIN);
8972 		util_max = uclamp_eff_value(p, UCLAMP_MAX);
8973 	}
8974 
8975 	/*
8976 	 * per-cpu select_rq_mask usage
8977 	 */
8978 	lockdep_assert_irqs_disabled();
8979 
8980 	if (choose_idle_cpu(target, p) &&
8981 	    asym_fits_cpu(task_util, util_min, util_max, target))
8982 		return target;
8983 
8984 	/*
8985 	 * If the previous CPU is cache affine and idle, don't be stupid:
8986 	 */
8987 	if (prev != target && cpus_share_cache(prev, target) &&
8988 	    choose_idle_cpu(prev, p) &&
8989 	    asym_fits_cpu(task_util, util_min, util_max, prev)) {
8990 
8991 		if (!static_branch_unlikely(&sched_cluster_active) ||
8992 		    cpus_share_resources(prev, target))
8993 			return prev;
8994 
8995 		prev_aff = prev;
8996 	}
8997 
8998 	/*
8999 	 * Allow a per-cpu kthread to stack with the wakee if the
9000 	 * kworker thread and the tasks previous CPUs are the same.
9001 	 * The assumption is that the wakee queued work for the
9002 	 * per-cpu kthread that is now complete and the wakeup is
9003 	 * essentially a sync wakeup. An obvious example of this
9004 	 * pattern is IO completions.
9005 	 */
9006 	if (is_per_cpu_kthread(current) &&
9007 	    in_task() &&
9008 	    prev == smp_processor_id() &&
9009 	    this_rq()->nr_running <= 1 &&
9010 	    asym_fits_cpu(task_util, util_min, util_max, prev)) {
9011 		return prev;
9012 	}
9013 
9014 	/* Check a recently used CPU as a potential idle candidate: */
9015 	recent_used_cpu = p->recent_used_cpu;
9016 	p->recent_used_cpu = prev;
9017 	if (recent_used_cpu != prev &&
9018 	    recent_used_cpu != target &&
9019 	    cpus_share_cache(recent_used_cpu, target) &&
9020 	    choose_idle_cpu(recent_used_cpu, p) &&
9021 	    cpumask_test_cpu(recent_used_cpu, p->cpus_ptr) &&
9022 	    asym_fits_cpu(task_util, util_min, util_max, recent_used_cpu)) {
9023 
9024 		if (!static_branch_unlikely(&sched_cluster_active) ||
9025 		    cpus_share_resources(recent_used_cpu, target))
9026 			return recent_used_cpu;
9027 
9028 	} else {
9029 		recent_used_cpu = -1;
9030 	}
9031 
9032 	/*
9033 	 * For asymmetric CPU capacity systems, our domain of interest is
9034 	 * sd_asym_cpucapacity rather than sd_llc.
9035 	 */
9036 	if (sched_asym_cpucap_active()) {
9037 		sd = rcu_dereference_all(per_cpu(sd_asym_cpucapacity, target));
9038 		/*
9039 		 * On an asymmetric CPU capacity system where an exclusive
9040 		 * cpuset defines a symmetric island (i.e. one unique
9041 		 * capacity_orig value through the cpuset), the key will be set
9042 		 * but the CPUs within that cpuset will not have a domain with
9043 		 * SD_ASYM_CPUCAPACITY. These should follow the usual symmetric
9044 		 * capacity path.
9045 		 */
9046 		if (sd) {
9047 			i = select_idle_capacity(p, sd, target);
9048 			return ((unsigned)i < nr_cpumask_bits) ? i : target;
9049 		}
9050 	}
9051 
9052 	sd = rcu_dereference_all(per_cpu(sd_llc, target));
9053 	if (!sd)
9054 		return target;
9055 
9056 	if (sched_smt_active()) {
9057 		has_idle_core = test_idle_cores(target);
9058 
9059 		if (!has_idle_core && cpus_share_cache(prev, target)) {
9060 			i = select_idle_smt(p, sd, prev);
9061 			if ((unsigned int)i < nr_cpumask_bits)
9062 				return i;
9063 		}
9064 	}
9065 
9066 	i = select_idle_cpu(p, sd, has_idle_core, target);
9067 	if ((unsigned)i < nr_cpumask_bits)
9068 		return i;
9069 
9070 	/*
9071 	 * For cluster machines which have lower sharing cache like L2 or
9072 	 * LLC Tag, we tend to find an idle CPU in the target's cluster
9073 	 * first. But prev_cpu or recent_used_cpu may also be a good candidate,
9074 	 * use them if possible when no idle CPU found in select_idle_cpu().
9075 	 */
9076 	if ((unsigned int)prev_aff < nr_cpumask_bits)
9077 		return prev_aff;
9078 	if ((unsigned int)recent_used_cpu < nr_cpumask_bits)
9079 		return recent_used_cpu;
9080 
9081 	return target;
9082 }
9083 
9084 /**
9085  * cpu_util() - Estimates the amount of CPU capacity used by CFS tasks.
9086  * @cpu: the CPU to get the utilization for
9087  * @p: task for which the CPU utilization should be predicted or NULL
9088  * @dst_cpu: CPU @p migrates to, -1 if @p moves from @cpu or @p == NULL
9089  * @boost: 1 to enable boosting, otherwise 0
9090  *
9091  * The unit of the return value must be the same as the one of CPU capacity
9092  * so that CPU utilization can be compared with CPU capacity.
9093  *
9094  * CPU utilization is the sum of running time of runnable tasks plus the
9095  * recent utilization of currently non-runnable tasks on that CPU.
9096  * It represents the amount of CPU capacity currently used by CFS tasks in
9097  * the range [0..max CPU capacity] with max CPU capacity being the CPU
9098  * capacity at f_max.
9099  *
9100  * The estimated CPU utilization is defined as the maximum between CPU
9101  * utilization and sum of the estimated utilization of the currently
9102  * runnable tasks on that CPU. It preserves a utilization "snapshot" of
9103  * previously-executed tasks, which helps better deduce how busy a CPU will
9104  * be when a long-sleeping task wakes up. The contribution to CPU utilization
9105  * of such a task would be significantly decayed at this point of time.
9106  *
9107  * Boosted CPU utilization is defined as max(CPU runnable, CPU utilization).
9108  * CPU contention for CFS tasks can be detected by CPU runnable > CPU
9109  * utilization. Boosting is implemented in cpu_util() so that internal
9110  * users (e.g. EAS) can use it next to external users (e.g. schedutil),
9111  * latter via cpu_util_cfs_boost().
9112  *
9113  * CPU utilization can be higher than the current CPU capacity
9114  * (f_curr/f_max * max CPU capacity) or even the max CPU capacity because
9115  * of rounding errors as well as task migrations or wakeups of new tasks.
9116  * CPU utilization has to be capped to fit into the [0..max CPU capacity]
9117  * range. Otherwise a group of CPUs (CPU0 util = 121% + CPU1 util = 80%)
9118  * could be seen as over-utilized even though CPU1 has 20% of spare CPU
9119  * capacity. CPU utilization is allowed to overshoot current CPU capacity
9120  * though since this is useful for predicting the CPU capacity required
9121  * after task migrations (scheduler-driven DVFS).
9122  *
9123  * Return: (Boosted) (estimated) utilization for the specified CPU.
9124  */
9125 static unsigned long
9126 cpu_util(int cpu, struct task_struct *p, int dst_cpu, int boost)
9127 {
9128 	bool add_task = p && task_cpu(p) != cpu && dst_cpu == cpu;
9129 	bool sub_task = p && task_cpu(p) == cpu && dst_cpu != cpu;
9130 	struct cfs_rq *cfs_rq = &cpu_rq(cpu)->cfs;
9131 	unsigned long util = READ_ONCE(cfs_rq->avg.util_avg);
9132 	unsigned long runnable;
9133 
9134 	/*
9135 	 * If @dst_cpu is -1 or @p migrates from @cpu to @dst_cpu remove its
9136 	 * contribution. If @p migrates from another CPU to @cpu add its
9137 	 * contribution. In all the other cases @cpu is not impacted by the
9138 	 * migration so its util_avg is already correct.
9139 	 */
9140 	if (add_task)
9141 		util += task_util(p);
9142 	else if (sub_task)
9143 		lsub_positive(&util, task_util(p));
9144 
9145 	if (boost) {
9146 		runnable = READ_ONCE(cfs_rq->avg.runnable_avg);
9147 		if (add_task)
9148 			runnable += READ_ONCE(p->se.avg.runnable_avg);
9149 		else if (sub_task)
9150 			lsub_positive(&runnable,
9151 				      READ_ONCE(p->se.avg.runnable_avg));
9152 		util = max(util, runnable);
9153 	}
9154 
9155 	if (sched_feat(UTIL_EST)) {
9156 		unsigned long util_est;
9157 
9158 		util_est = READ_ONCE(cfs_rq->avg.util_est);
9159 
9160 		/*
9161 		 * During wake-up @p isn't enqueued yet and doesn't contribute
9162 		 * to any cpu_rq(cpu)->cfs.avg.util_est.
9163 		 * If @dst_cpu == @cpu add it to "simulate" cpu_util after @p
9164 		 * has been enqueued.
9165 		 *
9166 		 * During exec (@dst_cpu = -1) @p is enqueued and does
9167 		 * contribute to cpu_rq(cpu)->cfs.util_est.
9168 		 * Remove it to "simulate" cpu_util without @p's contribution.
9169 		 *
9170 		 * Despite the task_on_rq_queued(@p) check there is still a
9171 		 * small window for a possible race when an exec
9172 		 * select_task_rq_fair() races with LB's detach_task().
9173 		 *
9174 		 *   detach_task()
9175 		 *     deactivate_task()
9176 		 *       p->on_rq = TASK_ON_RQ_MIGRATING;
9177 		 *       -------------------------------- A
9178 		 *       dequeue_task()                    \
9179 		 *         dequeue_task_fair()              + Race Time
9180 		 *           util_est_dequeue()            /
9181 		 *       -------------------------------- B
9182 		 *
9183 		 * The additional check "current == p" is required to further
9184 		 * reduce the race window.
9185 		 */
9186 		if (dst_cpu == cpu)
9187 			util_est += _task_util_est(p);
9188 		else if (p && unlikely(task_on_rq_queued(p) || current == p))
9189 			lsub_positive(&util_est, _task_util_est(p));
9190 
9191 		util = max(util, util_est);
9192 	}
9193 
9194 	return min(util, arch_scale_cpu_capacity(cpu));
9195 }
9196 
9197 unsigned long cpu_util_cfs(int cpu)
9198 {
9199 	return cpu_util(cpu, NULL, -1, 0);
9200 }
9201 
9202 unsigned long cpu_util_cfs_boost(int cpu)
9203 {
9204 	return cpu_util(cpu, NULL, -1, 1);
9205 }
9206 
9207 /*
9208  * cpu_util_without: compute cpu utilization without any contributions from *p
9209  * @cpu: the CPU which utilization is requested
9210  * @p: the task which utilization should be discounted
9211  *
9212  * The utilization of a CPU is defined by the utilization of tasks currently
9213  * enqueued on that CPU as well as tasks which are currently sleeping after an
9214  * execution on that CPU.
9215  *
9216  * This method returns the utilization of the specified CPU by discounting the
9217  * utilization of the specified task, whenever the task is currently
9218  * contributing to the CPU utilization.
9219  */
9220 static unsigned long cpu_util_without(int cpu, struct task_struct *p)
9221 {
9222 	/* Task has no contribution or is new */
9223 	if (cpu != task_cpu(p) || !READ_ONCE(p->se.avg.last_update_time))
9224 		p = NULL;
9225 
9226 	return cpu_util(cpu, p, -1, 0);
9227 }
9228 
9229 /*
9230  * This function computes an effective utilization for the given CPU, to be
9231  * used for frequency selection given the linear relation: f = u * f_max.
9232  *
9233  * The scheduler tracks the following metrics:
9234  *
9235  *   cpu_util_{cfs,rt,dl,irq}()
9236  *   cpu_bw_dl()
9237  *
9238  * Where the cfs,rt and dl util numbers are tracked with the same metric and
9239  * synchronized windows and are thus directly comparable.
9240  *
9241  * The cfs,rt,dl utilization are the running times measured with rq->clock_task
9242  * which excludes things like IRQ and steal-time. These latter are then accrued
9243  * in the IRQ utilization.
9244  *
9245  * The DL bandwidth number OTOH is not a measured metric but a value computed
9246  * based on the task model parameters and gives the minimal utilization
9247  * required to meet deadlines.
9248  */
9249 unsigned long effective_cpu_util(int cpu, unsigned long util_cfs,
9250 				 unsigned long *min,
9251 				 unsigned long *max)
9252 {
9253 	unsigned long util, irq, scale;
9254 	struct rq *rq = cpu_rq(cpu);
9255 
9256 	scale = arch_scale_cpu_capacity(cpu);
9257 
9258 	/*
9259 	 * Early check to see if IRQ/steal time saturates the CPU, can be
9260 	 * because of inaccuracies in how we track these -- see
9261 	 * update_irq_load_avg().
9262 	 */
9263 	irq = cpu_util_irq(rq);
9264 	if (unlikely(irq >= scale)) {
9265 		if (min)
9266 			*min = scale;
9267 		if (max)
9268 			*max = scale;
9269 		return scale;
9270 	}
9271 
9272 	if (min) {
9273 		/*
9274 		 * The minimum utilization returns the highest level between:
9275 		 * - the computed DL bandwidth needed with the IRQ pressure which
9276 		 *   steals time to the deadline task.
9277 		 * - The minimum performance requirement for CFS and/or RT.
9278 		 */
9279 		*min = max(irq + cpu_bw_dl(rq), uclamp_rq_get(rq, UCLAMP_MIN));
9280 
9281 		/*
9282 		 * When an RT task is runnable and uclamp is not used, we must
9283 		 * ensure that the task will run at maximum compute capacity.
9284 		 */
9285 		if (!uclamp_is_used() && rt_rq_is_runnable(&rq->rt))
9286 			*min = max(*min, scale);
9287 	}
9288 
9289 	/*
9290 	 * Because the time spend on RT/DL tasks is visible as 'lost' time to
9291 	 * CFS tasks and we use the same metric to track the effective
9292 	 * utilization (PELT windows are synchronized) we can directly add them
9293 	 * to obtain the CPU's actual utilization.
9294 	 */
9295 	util = util_cfs + cpu_util_rt(rq);
9296 	util += cpu_util_dl(rq);
9297 
9298 	/*
9299 	 * The maximum hint is a soft bandwidth requirement, which can be lower
9300 	 * than the actual utilization because of uclamp_max requirements.
9301 	 */
9302 	if (max)
9303 		*max = min(scale, uclamp_rq_get(rq, UCLAMP_MAX));
9304 
9305 	if (util >= scale)
9306 		return scale;
9307 
9308 	/*
9309 	 * There is still idle time; further improve the number by using the
9310 	 * IRQ metric. Because IRQ/steal time is hidden from the task clock we
9311 	 * need to scale the task numbers:
9312 	 *
9313 	 *              max - irq
9314 	 *   U' = irq + --------- * U
9315 	 *                 max
9316 	 */
9317 	util = scale_irq_capacity(util, irq, scale);
9318 	util += irq;
9319 
9320 	return min(scale, util);
9321 }
9322 
9323 unsigned long sched_cpu_util(int cpu)
9324 {
9325 	return effective_cpu_util(cpu, cpu_util_cfs(cpu), NULL, NULL);
9326 }
9327 
9328 /*
9329  * energy_env - Utilization landscape for energy estimation.
9330  * @task_busy_time: Utilization contribution by the task for which we test the
9331  *                  placement. Given by eenv_task_busy_time().
9332  * @pd_busy_time:   Utilization of the whole perf domain without the task
9333  *                  contribution. Given by eenv_pd_busy_time().
9334  * @cpu_cap:        Maximum CPU capacity for the perf domain.
9335  * @pd_cap:         Entire perf domain capacity. (pd->nr_cpus * cpu_cap).
9336  */
9337 struct energy_env {
9338 	unsigned long task_busy_time;
9339 	unsigned long pd_busy_time;
9340 	unsigned long cpu_cap;
9341 	unsigned long pd_cap;
9342 };
9343 
9344 /*
9345  * Compute the task busy time for compute_energy(). This time cannot be
9346  * injected directly into effective_cpu_util() because of the IRQ scaling.
9347  * The latter only makes sense with the most recent CPUs where the task has
9348  * run.
9349  */
9350 static inline void eenv_task_busy_time(struct energy_env *eenv,
9351 				       struct task_struct *p, int prev_cpu)
9352 {
9353 	unsigned long busy_time, max_cap = arch_scale_cpu_capacity(prev_cpu);
9354 	unsigned long irq = cpu_util_irq(cpu_rq(prev_cpu));
9355 
9356 	if (unlikely(irq >= max_cap))
9357 		busy_time = max_cap;
9358 	else
9359 		busy_time = scale_irq_capacity(task_util_est(p), irq, max_cap);
9360 
9361 	eenv->task_busy_time = busy_time;
9362 }
9363 
9364 /*
9365  * Compute the perf_domain (PD) busy time for compute_energy(). Based on the
9366  * utilization for each @pd_cpus, it however doesn't take into account
9367  * clamping since the ratio (utilization / cpu_capacity) is already enough to
9368  * scale the EM reported power consumption at the (eventually clamped)
9369  * cpu_capacity.
9370  *
9371  * The contribution of the task @p for which we want to estimate the
9372  * energy cost is removed (by cpu_util()) and must be calculated
9373  * separately (see eenv_task_busy_time). This ensures:
9374  *
9375  *   - A stable PD utilization, no matter which CPU of that PD we want to place
9376  *     the task on.
9377  *
9378  *   - A fair comparison between CPUs as the task contribution (task_util())
9379  *     will always be the same no matter which CPU utilization we rely on
9380  *     (util_avg or util_est).
9381  *
9382  * Set @eenv busy time for the PD that spans @pd_cpus. This busy time can't
9383  * exceed @eenv->pd_cap.
9384  */
9385 static inline void eenv_pd_busy_time(struct energy_env *eenv,
9386 				     struct cpumask *pd_cpus,
9387 				     struct task_struct *p)
9388 {
9389 	unsigned long busy_time = 0;
9390 	int cpu;
9391 
9392 	for_each_cpu(cpu, pd_cpus) {
9393 		unsigned long util = cpu_util(cpu, p, -1, 0);
9394 
9395 		busy_time += effective_cpu_util(cpu, util, NULL, NULL);
9396 	}
9397 
9398 	eenv->pd_busy_time = min(eenv->pd_cap, busy_time);
9399 }
9400 
9401 /*
9402  * Compute the maximum utilization for compute_energy() when the task @p
9403  * is placed on the cpu @dst_cpu.
9404  *
9405  * Returns the maximum utilization among @eenv->cpus. This utilization can't
9406  * exceed @eenv->cpu_cap.
9407  */
9408 static inline unsigned long
9409 eenv_pd_max_util(struct energy_env *eenv, struct cpumask *pd_cpus,
9410 		 struct task_struct *p, int dst_cpu)
9411 {
9412 	unsigned long max_util = 0;
9413 	int cpu;
9414 
9415 	for_each_cpu(cpu, pd_cpus) {
9416 		struct task_struct *tsk = (cpu == dst_cpu) ? p : NULL;
9417 		unsigned long util = cpu_util(cpu, p, dst_cpu, 1);
9418 		unsigned long eff_util, min, max;
9419 
9420 		/*
9421 		 * Performance domain frequency: utilization clamping
9422 		 * must be considered since it affects the selection
9423 		 * of the performance domain frequency.
9424 		 * NOTE: in case RT tasks are running, by default the min
9425 		 * utilization can be max OPP.
9426 		 */
9427 		eff_util = effective_cpu_util(cpu, util, &min, &max);
9428 
9429 		/* Task's uclamp can modify min and max value */
9430 		if (tsk && uclamp_is_used()) {
9431 			min = max(min, uclamp_eff_value(p, UCLAMP_MIN));
9432 
9433 			/*
9434 			 * If there is no active max uclamp constraint,
9435 			 * directly use task's one, otherwise keep max.
9436 			 */
9437 			if (uclamp_rq_is_idle(cpu_rq(cpu)))
9438 				max = uclamp_eff_value(p, UCLAMP_MAX);
9439 			else
9440 				max = max(max, uclamp_eff_value(p, UCLAMP_MAX));
9441 		}
9442 
9443 		eff_util = sugov_effective_cpu_perf(cpu, eff_util, min, max);
9444 		max_util = max(max_util, eff_util);
9445 	}
9446 
9447 	return min(max_util, eenv->cpu_cap);
9448 }
9449 
9450 /*
9451  * compute_energy(): Use the Energy Model to estimate the energy that @pd would
9452  * consume for a given utilization landscape @eenv. When @dst_cpu < 0, the task
9453  * contribution is ignored.
9454  */
9455 static inline unsigned long
9456 compute_energy(struct energy_env *eenv, struct perf_domain *pd,
9457 	       struct cpumask *pd_cpus, struct task_struct *p, int dst_cpu)
9458 {
9459 	unsigned long max_util = eenv_pd_max_util(eenv, pd_cpus, p, dst_cpu);
9460 	unsigned long busy_time = eenv->pd_busy_time;
9461 	unsigned long energy;
9462 
9463 	if (dst_cpu >= 0)
9464 		busy_time = min(eenv->pd_cap, busy_time + eenv->task_busy_time);
9465 
9466 	energy = em_cpu_energy(pd->em_pd, max_util, busy_time, eenv->cpu_cap);
9467 
9468 	trace_sched_compute_energy_tp(p, dst_cpu, energy, max_util, busy_time);
9469 
9470 	return energy;
9471 }
9472 
9473 /*
9474  * find_energy_efficient_cpu(): Find most energy-efficient target CPU for the
9475  * waking task. find_energy_efficient_cpu() looks for the CPU with maximum
9476  * spare capacity in each performance domain and uses it as a potential
9477  * candidate to execute the task. Then, it uses the Energy Model to figure
9478  * out which of the CPU candidates is the most energy-efficient.
9479  *
9480  * The rationale for this heuristic is as follows. In a performance domain,
9481  * all the most energy efficient CPU candidates (according to the Energy
9482  * Model) are those for which we'll request a low frequency. When there are
9483  * several CPUs for which the frequency request will be the same, we don't
9484  * have enough data to break the tie between them, because the Energy Model
9485  * only includes active power costs. With this model, if we assume that
9486  * frequency requests follow utilization (e.g. using schedutil), the CPU with
9487  * the maximum spare capacity in a performance domain is guaranteed to be among
9488  * the best candidates of the performance domain.
9489  *
9490  * In practice, it could be preferable from an energy standpoint to pack
9491  * small tasks on a CPU in order to let other CPUs go in deeper idle states,
9492  * but that could also hurt our chances to go cluster idle, and we have no
9493  * ways to tell with the current Energy Model if this is actually a good
9494  * idea or not. So, find_energy_efficient_cpu() basically favors
9495  * cluster-packing, and spreading inside a cluster. That should at least be
9496  * a good thing for latency, and this is consistent with the idea that most
9497  * of the energy savings of EAS come from the asymmetry of the system, and
9498  * not so much from breaking the tie between identical CPUs. That's also the
9499  * reason why EAS is enabled in the topology code only for systems where
9500  * SD_ASYM_CPUCAPACITY is set.
9501  *
9502  * NOTE: Forkees are not accepted in the energy-aware wake-up path because
9503  * they don't have any useful utilization data yet and it's not possible to
9504  * forecast their impact on energy consumption. Consequently, they will be
9505  * placed by sched_balance_find_dst_cpu() on the least loaded CPU, which might turn out
9506  * to be energy-inefficient in some use-cases. The alternative would be to
9507  * bias new tasks towards specific types of CPUs first, or to try to infer
9508  * their util_avg from the parent task, but those heuristics could hurt
9509  * other use-cases too. So, until someone finds a better way to solve this,
9510  * let's keep things simple by re-using the existing slow path.
9511  */
9512 static int find_energy_efficient_cpu(struct task_struct *p, int prev_cpu)
9513 {
9514 	struct cpumask *cpus = this_cpu_cpumask_var_ptr(select_rq_mask);
9515 	unsigned long prev_delta = ULONG_MAX, best_delta = ULONG_MAX;
9516 	unsigned long p_util_min = uclamp_is_used() ? uclamp_eff_value(p, UCLAMP_MIN) : 0;
9517 	unsigned long p_util_max = uclamp_is_used() ? uclamp_eff_value(p, UCLAMP_MAX) : 1024;
9518 	struct root_domain *rd = this_rq()->rd;
9519 	int cpu, best_energy_cpu, target = -1;
9520 	int prev_fits = -1, best_fits = -1;
9521 	unsigned long best_actual_cap = 0;
9522 	unsigned long prev_actual_cap = 0;
9523 	struct sched_domain *sd;
9524 	struct perf_domain *pd;
9525 	struct energy_env eenv;
9526 
9527 	pd = rcu_dereference_all(rd->pd);
9528 	if (!pd)
9529 		return target;
9530 
9531 	/*
9532 	 * Energy-aware wake-up happens on the lowest sched_domain starting
9533 	 * from sd_asym_cpucapacity spanning over this_cpu and prev_cpu.
9534 	 */
9535 	sd = rcu_dereference_all(*this_cpu_ptr(&sd_asym_cpucapacity));
9536 	while (sd && !cpumask_test_cpu(prev_cpu, sched_domain_span(sd)))
9537 		sd = sd->parent;
9538 	if (!sd)
9539 		return target;
9540 
9541 	target = prev_cpu;
9542 
9543 	sync_entity_load_avg(&p->se);
9544 	if (!task_util_est(p) && p_util_min == 0)
9545 		return target;
9546 
9547 	eenv_task_busy_time(&eenv, p, prev_cpu);
9548 
9549 	for (; pd; pd = pd->next) {
9550 		unsigned long util_min = p_util_min, util_max = p_util_max;
9551 		unsigned long cpu_cap, cpu_actual_cap, util;
9552 		long prev_spare_cap = -1, max_spare_cap = -1;
9553 		unsigned long rq_util_min, rq_util_max;
9554 		unsigned long cur_delta, base_energy;
9555 		int max_spare_cap_cpu = -1;
9556 		int fits, max_fits = -1;
9557 
9558 		if (!cpumask_and(cpus, perf_domain_span(pd), cpu_online_mask))
9559 			continue;
9560 
9561 		/* Account external pressure for the energy estimation */
9562 		cpu = cpumask_first(cpus);
9563 		cpu_actual_cap = get_actual_cpu_capacity(cpu);
9564 
9565 		eenv.cpu_cap = cpu_actual_cap;
9566 		eenv.pd_cap = 0;
9567 
9568 		for_each_cpu(cpu, cpus) {
9569 			struct rq *rq = cpu_rq(cpu);
9570 
9571 			eenv.pd_cap += cpu_actual_cap;
9572 
9573 			if (!cpumask_test_cpu(cpu, sched_domain_span(sd)))
9574 				continue;
9575 
9576 			if (!cpumask_test_cpu(cpu, p->cpus_ptr))
9577 				continue;
9578 
9579 			util = cpu_util(cpu, p, cpu, 0);
9580 			cpu_cap = capacity_of(cpu);
9581 
9582 			/*
9583 			 * Skip CPUs that cannot satisfy the capacity request.
9584 			 * IOW, placing the task there would make the CPU
9585 			 * overutilized. Take uclamp into account to see how
9586 			 * much capacity we can get out of the CPU; this is
9587 			 * aligned with sched_cpu_util().
9588 			 */
9589 			if (uclamp_is_used() && !uclamp_rq_is_idle(rq)) {
9590 				/*
9591 				 * Open code uclamp_rq_util_with() except for
9592 				 * the clamp() part. I.e.: apply max aggregation
9593 				 * only. util_fits_cpu() logic requires to
9594 				 * operate on non clamped util but must use the
9595 				 * max-aggregated uclamp_{min, max}.
9596 				 */
9597 				rq_util_min = uclamp_rq_get(rq, UCLAMP_MIN);
9598 				rq_util_max = uclamp_rq_get(rq, UCLAMP_MAX);
9599 
9600 				util_min = max(rq_util_min, p_util_min);
9601 				util_max = max(rq_util_max, p_util_max);
9602 			}
9603 
9604 			fits = util_fits_cpu(util, util_min, util_max, cpu);
9605 			if (!fits)
9606 				continue;
9607 
9608 			lsub_positive(&cpu_cap, util);
9609 
9610 			if (cpu == prev_cpu) {
9611 				/* Always use prev_cpu as a candidate. */
9612 				prev_spare_cap = cpu_cap;
9613 				prev_fits = fits;
9614 			} else if ((fits > max_fits) ||
9615 				   ((fits == max_fits) && ((long)cpu_cap > max_spare_cap))) {
9616 				/*
9617 				 * Find the CPU with the maximum spare capacity
9618 				 * among the remaining CPUs in the performance
9619 				 * domain.
9620 				 */
9621 				max_spare_cap = cpu_cap;
9622 				max_spare_cap_cpu = cpu;
9623 				max_fits = fits;
9624 			}
9625 		}
9626 
9627 		if (max_spare_cap_cpu < 0 && prev_spare_cap < 0)
9628 			continue;
9629 
9630 		eenv_pd_busy_time(&eenv, cpus, p);
9631 		/* Compute the 'base' energy of the pd, without @p */
9632 		base_energy = compute_energy(&eenv, pd, cpus, p, -1);
9633 
9634 		/* Evaluate the energy impact of using prev_cpu. */
9635 		if (prev_spare_cap > -1) {
9636 			prev_delta = compute_energy(&eenv, pd, cpus, p,
9637 						    prev_cpu);
9638 			/* CPU utilization has changed */
9639 			if (prev_delta < base_energy)
9640 				return target;
9641 			prev_delta -= base_energy;
9642 			prev_actual_cap = cpu_actual_cap;
9643 			best_delta = min(best_delta, prev_delta);
9644 		}
9645 
9646 		/* Evaluate the energy impact of using max_spare_cap_cpu. */
9647 		if (max_spare_cap_cpu >= 0 && max_spare_cap > prev_spare_cap) {
9648 			/* Current best energy cpu fits better */
9649 			if (max_fits < best_fits)
9650 				continue;
9651 
9652 			/*
9653 			 * Both don't fit performance hint (i.e. uclamp_min)
9654 			 * but best energy cpu has better capacity.
9655 			 */
9656 			if ((max_fits < 0) &&
9657 			    (cpu_actual_cap <= best_actual_cap))
9658 				continue;
9659 
9660 			cur_delta = compute_energy(&eenv, pd, cpus, p,
9661 						   max_spare_cap_cpu);
9662 			/* CPU utilization has changed */
9663 			if (cur_delta < base_energy)
9664 				return target;
9665 			cur_delta -= base_energy;
9666 
9667 			/*
9668 			 * Both fit for the task but best energy cpu has lower
9669 			 * energy impact.
9670 			 */
9671 			if ((max_fits > 0) && (best_fits > 0) &&
9672 			    (cur_delta >= best_delta))
9673 				continue;
9674 
9675 			best_delta = cur_delta;
9676 			best_energy_cpu = max_spare_cap_cpu;
9677 			best_fits = max_fits;
9678 			best_actual_cap = cpu_actual_cap;
9679 		}
9680 	}
9681 
9682 	if ((best_fits > prev_fits) ||
9683 	    ((best_fits > 0) && (best_delta < prev_delta)) ||
9684 	    ((best_fits < 0) && (best_actual_cap > prev_actual_cap)))
9685 		target = best_energy_cpu;
9686 
9687 	return target;
9688 }
9689 
9690 /*
9691  * select_task_rq_fair: Select target runqueue for the waking task in domains
9692  * that have the relevant SD flag set. In practice, this is SD_BALANCE_WAKE,
9693  * SD_BALANCE_FORK, or SD_BALANCE_EXEC.
9694  *
9695  * Balances load by selecting the idlest CPU in the idlest group, or under
9696  * certain conditions an idle sibling CPU if the domain has SD_WAKE_AFFINE set.
9697  *
9698  * Returns the target CPU number.
9699  */
9700 static int
9701 select_task_rq_fair(struct task_struct *p, int prev_cpu, int wake_flags)
9702 {
9703 	int sync = (wake_flags & WF_SYNC) && !(current->flags & PF_EXITING);
9704 	struct sched_domain *tmp, *sd = NULL;
9705 	int cpu = smp_processor_id();
9706 	int new_cpu = prev_cpu;
9707 	int want_affine = 0;
9708 	/* SD_flags and WF_flags share the first nibble */
9709 	int sd_flag = wake_flags & 0xF;
9710 
9711 	/*
9712 	 * required for stable ->cpus_allowed
9713 	 */
9714 	lockdep_assert_held(&p->pi_lock);
9715 	if (wake_flags & WF_TTWU) {
9716 		record_wakee(p);
9717 
9718 		if ((wake_flags & WF_CURRENT_CPU) &&
9719 		    cpumask_test_cpu(cpu, p->cpus_ptr))
9720 			return cpu;
9721 
9722 		if (!is_rd_overutilized(this_rq()->rd)) {
9723 			new_cpu = find_energy_efficient_cpu(p, prev_cpu);
9724 			if (new_cpu >= 0)
9725 				return new_cpu;
9726 			new_cpu = prev_cpu;
9727 		}
9728 
9729 		want_affine = !wake_wide(p) && cpumask_test_cpu(cpu, p->cpus_ptr);
9730 	}
9731 
9732 	for_each_domain(cpu, tmp) {
9733 		/*
9734 		 * If both 'cpu' and 'prev_cpu' are part of this domain,
9735 		 * cpu is a valid SD_WAKE_AFFINE target.
9736 		 */
9737 		if (want_affine && (tmp->flags & SD_WAKE_AFFINE) &&
9738 		    cpumask_test_cpu(prev_cpu, sched_domain_span(tmp))) {
9739 			if (cpu != prev_cpu)
9740 				new_cpu = wake_affine(tmp, p, cpu, prev_cpu, sync);
9741 
9742 			sd = NULL; /* Prefer wake_affine over balance flags */
9743 			break;
9744 		}
9745 
9746 		/*
9747 		 * Usually only true for WF_EXEC and WF_FORK, as sched_domains
9748 		 * usually do not have SD_BALANCE_WAKE set. That means wakeup
9749 		 * will usually go to the fast path.
9750 		 */
9751 		if (tmp->flags & sd_flag)
9752 			sd = tmp;
9753 		else if (!want_affine)
9754 			break;
9755 	}
9756 
9757 	/* Slow path */
9758 	if (unlikely(sd))
9759 		return sched_balance_find_dst_cpu(sd, p, cpu, prev_cpu, sd_flag);
9760 
9761 	/* Fast path */
9762 	if (wake_flags & WF_TTWU)
9763 		return select_idle_sibling(p, prev_cpu, new_cpu);
9764 
9765 	return new_cpu;
9766 }
9767 
9768 /*
9769  * Called immediately before a task is migrated to a new CPU; task_cpu(p) and
9770  * cfs_rq_of(p) references at time of call are still valid and identify the
9771  * previous CPU. The caller guarantees p->pi_lock or task_rq(p)->lock is held.
9772  */
9773 static void migrate_task_rq_fair(struct task_struct *p, int new_cpu)
9774 {
9775 	struct sched_entity *se = &p->se;
9776 
9777 	if (!task_on_rq_migrating(p)) {
9778 		remove_entity_load_avg(se);
9779 
9780 		/*
9781 		 * Here, the task's PELT values have been updated according to
9782 		 * the current rq's clock. But if that clock hasn't been
9783 		 * updated in a while, a substantial idle time will be missed,
9784 		 * leading to an inflation after wake-up on the new rq.
9785 		 *
9786 		 * Estimate the missing time from the cfs_rq last_update_time
9787 		 * and update sched_avg to improve the PELT continuity after
9788 		 * migration.
9789 		 */
9790 		migrate_se_pelt_lag(se);
9791 	}
9792 
9793 	/* Tell new CPU we are migrated */
9794 	se->avg.last_update_time = 0;
9795 
9796 	update_scan_period(p, new_cpu);
9797 }
9798 
9799 static void task_dead_fair(struct task_struct *p)
9800 {
9801 	struct sched_entity *se = &p->se;
9802 	remove_entity_load_avg(se);
9803 }
9804 
9805 /*
9806  * Set the max capacity the task is allowed to run at for misfit detection.
9807  */
9808 static void set_task_max_allowed_capacity(struct task_struct *p)
9809 {
9810 	struct asym_cap_data *entry;
9811 
9812 	if (!sched_asym_cpucap_active())
9813 		return;
9814 
9815 	rcu_read_lock();
9816 	list_for_each_entry_rcu(entry, &asym_cap_list, link) {
9817 		cpumask_t *cpumask;
9818 
9819 		cpumask = cpu_capacity_span(entry);
9820 		if (!cpumask_intersects(p->cpus_ptr, cpumask))
9821 			continue;
9822 
9823 		p->max_allowed_capacity = entry->capacity;
9824 		break;
9825 	}
9826 	rcu_read_unlock();
9827 }
9828 
9829 static void set_cpus_allowed_fair(struct task_struct *p, struct affinity_context *ctx)
9830 {
9831 	set_cpus_allowed_common(p, ctx);
9832 	set_task_max_allowed_capacity(p);
9833 }
9834 
9835 enum preempt_wakeup_action {
9836 	PREEMPT_WAKEUP_NONE,	/* No preemption. */
9837 	PREEMPT_WAKEUP_SHORT,	/* Ignore slice protection. */
9838 	PREEMPT_WAKEUP_PICK,	/* Let pick_eevdf() decide. */
9839 	PREEMPT_WAKEUP_RESCHED,	/* Force reschedule. */
9840 };
9841 
9842 static inline bool set_preempt_buddy(struct cfs_rq *cfs_rq, struct sched_entity *pse)
9843 {
9844 	/*
9845 	 * Keep existing buddy if the deadline is sooner than pse.
9846 	 * The older buddy may be cache cold and completely unrelated
9847 	 * to the current wakeup but that is unpredictable where as
9848 	 * obeying the deadline is more in line with EEVDF objectives.
9849 	 */
9850 	if (cfs_rq->next && entity_before(cfs_rq->next, pse))
9851 		return false;
9852 
9853 	set_next_buddy(cfs_rq, pse);
9854 	return true;
9855 }
9856 
9857 static inline bool set_short_buddy(struct cfs_rq *cfs_rq, struct sched_entity *pse)
9858 {
9859 	if (cfs_rq->next && cfs_rq->next->slice < pse->slice)
9860 		return false;
9861 
9862 	set_next_buddy(cfs_rq, pse);
9863 	return true;
9864 }
9865 
9866 /*
9867  * WF_SYNC|WF_TTWU indicates the waker expects to sleep but it is not
9868  * strictly enforced because the hint is either misunderstood or
9869  * multiple tasks must be woken up.
9870  */
9871 static inline enum preempt_wakeup_action
9872 preempt_sync(struct rq *rq, int wake_flags,
9873 	     struct sched_entity *pse, struct sched_entity *se)
9874 {
9875 	u64 threshold, delta;
9876 
9877 	/*
9878 	 * WF_SYNC without WF_TTWU is not expected so warn if it happens even
9879 	 * though it is likely harmless.
9880 	 */
9881 	WARN_ON_ONCE(!(wake_flags & WF_TTWU));
9882 
9883 	threshold = sysctl_sched_migration_cost;
9884 	delta = rq_clock_task(rq) - se->exec_start;
9885 	if ((s64)delta < 0)
9886 		delta = 0;
9887 
9888 	/*
9889 	 * WF_RQ_SELECTED implies the tasks are stacking on a CPU when they
9890 	 * could run on other CPUs. Reduce the threshold before preemption is
9891 	 * allowed to an arbitrary lower value as it is more likely (but not
9892 	 * guaranteed) the waker requires the wakee to finish.
9893 	 */
9894 	if (wake_flags & WF_RQ_SELECTED)
9895 		threshold >>= 2;
9896 
9897 	/*
9898 	 * As WF_SYNC is not strictly obeyed, allow some runtime for batch
9899 	 * wakeups to be issued.
9900 	 */
9901 	if (entity_before(pse, se) && delta >= threshold)
9902 		return PREEMPT_WAKEUP_RESCHED;
9903 
9904 	return PREEMPT_WAKEUP_NONE;
9905 }
9906 
9907 /*
9908  * Preempt the current task with a newly woken task if needed:
9909  */
9910 static void wakeup_preempt_fair(struct rq *rq, struct task_struct *p, int wake_flags)
9911 {
9912 	enum preempt_wakeup_action preempt_action = PREEMPT_WAKEUP_PICK;
9913 	struct task_struct *donor = rq->donor;
9914 	struct sched_entity *nse, *se = &donor->se, *pse = &p->se;
9915 	struct cfs_rq *cfs_rq = &rq->cfs;
9916 	int cse_is_idle, pse_is_idle;
9917 
9918 	/*
9919 	 * XXX Getting preempted by higher class, try and find idle CPU?
9920 	 */
9921 	if (p->sched_class != &fair_sched_class ||
9922 	    donor->sched_class != &fair_sched_class)
9923 		return;
9924 
9925 	if (unlikely(se == pse))
9926 		return;
9927 
9928 	/*
9929 	 * This is possible from callers such as attach_tasks(), in which we
9930 	 * unconditionally wakeup_preempt() after an enqueue (which may have
9931 	 * lead to a throttle).  This both saves work and prevents false
9932 	 * next-buddy nomination below.
9933 	 */
9934 	if (task_is_throttled(p))
9935 		return;
9936 
9937 	/*
9938 	 * We can come here with TIF_NEED_RESCHED already set from new task
9939 	 * wake up path.
9940 	 *
9941 	 * Note: this also catches the edge-case of curr being in a throttled
9942 	 * group (e.g. via set_curr_task), since update_curr() (in the
9943 	 * enqueue of curr) will have resulted in resched being set.  This
9944 	 * prevents us from potentially nominating it as a false LAST_BUDDY
9945 	 * below.
9946 	 */
9947 	if (!sched_feat(PREEMPT_SHORT) && test_tsk_need_resched(rq->curr))
9948 		return;
9949 
9950 	if (!sched_feat(WAKEUP_PREEMPTION))
9951 		return;
9952 
9953 	WARN_ON_ONCE(!pse);
9954 
9955 	cse_is_idle = se_is_idle(se);
9956 	pse_is_idle = se_is_idle(pse);
9957 
9958 	nse = se;
9959 	/*
9960 	 * Preempt an idle entity in favor of a non-idle entity (and don't preempt
9961 	 * in the inverse case).
9962 	 */
9963 	if (cse_is_idle && !pse_is_idle)
9964 		goto preempt;
9965 
9966 	update_curr_fair(rq);
9967 
9968 	if (cse_is_idle != pse_is_idle)
9969 		goto update;
9970 
9971 	/*
9972 	 * BATCH and IDLE tasks do not preempt others.
9973 	 */
9974 	if (unlikely(!normal_policy(p->policy)))
9975 		goto update;
9976 
9977 	/*
9978 	 * Do not preempt for tasks that are sched_delayed as it would violate
9979 	 * EEVDF to forcibly queue an ineligible task.
9980 	 */
9981 	if (pse->sched_delayed)
9982 		goto update;
9983 
9984 	/*
9985 	 * If @p has a shorter slice than current and @p is eligible, override
9986 	 * current's slice protection in order to allow preemption.
9987 	 */
9988 	if (sched_feat(PREEMPT_SHORT) && (pse->slice < se->slice)) {
9989 		preempt_action = PREEMPT_WAKEUP_SHORT;
9990 		goto pick;
9991 	}
9992 
9993 	/*
9994 	 * Ignore wakee preemption on WF_FORK as it is less likely that
9995 	 * there is shared data as exec often follow fork.
9996 	 */
9997 	if (wake_flags & WF_FORK)
9998 		goto update;
9999 
10000 	/* Prefer picking wakee soon if appropriate. */
10001 	if (sched_feat(NEXT_BUDDY) && set_preempt_buddy(cfs_rq, pse)) {
10002 		/*
10003 		 * Decide whether to obey WF_SYNC hint for a new buddy. Old
10004 		 * buddies are ignored as they may not be relevant to the
10005 		 * waker and less likely to be cache hot.
10006 		 */
10007 		if (wake_flags & WF_SYNC)
10008 			preempt_action = preempt_sync(rq, wake_flags, pse, se);
10009 	}
10010 
10011 	switch (preempt_action) {
10012 	case PREEMPT_WAKEUP_NONE:
10013 		return;
10014 	case PREEMPT_WAKEUP_RESCHED:
10015 		goto preempt;
10016 	case PREEMPT_WAKEUP_SHORT:
10017 		fallthrough;
10018 	case PREEMPT_WAKEUP_PICK:
10019 		break;
10020 	}
10021 
10022 pick:
10023 	if (cfs_rq->h_nr_queued) {
10024 		nse = pick_next_entity(rq, preempt_action != PREEMPT_WAKEUP_SHORT);
10025 		if (unlikely(!nse))
10026 			goto pick;
10027 
10028 		/* If @p has become the most eligible task, force preemption */
10029 		if (nse == pse)
10030 			goto preempt;
10031 	}
10032 
10033 	/*
10034 	 * If @p is eligible but not the next task to run then cancel protection
10035 	 * to prevent large scheduling latency
10036 	 */
10037 	if (preempt_action == PREEMPT_WAKEUP_SHORT && entity_eligible(cfs_rq, pse))
10038 		goto preempt;
10039 update:
10040 	if (sched_feat(RUN_TO_PARITY))
10041 		update_protect_slice(cfs_rq, se);
10042 
10043 	return;
10044 
10045 preempt:
10046 	cancel_protect_slice(se);
10047 
10048 	if (preempt_action == PREEMPT_WAKEUP_SHORT)
10049 		set_short_buddy(cfs_rq, pse);
10050 
10051 	resched_curr_lazy(rq);
10052 }
10053 
10054 struct task_struct *pick_task_fair(struct rq *rq, struct rq_flags *rf)
10055 	__must_hold(__rq_lockp(rq))
10056 {
10057 	struct cfs_rq *cfs_rq = &rq->cfs;
10058 	struct sched_entity *se;
10059 	struct task_struct *p;
10060 	int new_tasks;
10061 
10062 again:
10063 	if (!cfs_rq->h_nr_queued)
10064 		goto idle;
10065 
10066 	/* Might not have done put_prev_entity() */
10067 	if (cfs_rq->curr && cfs_rq->curr->on_rq)
10068 		update_curr_eevdf(cfs_rq);
10069 
10070 	se = pick_next_entity(rq, true);
10071 	if (!se)
10072 		goto again;
10073 
10074 	p = task_of(se);
10075 	return p;
10076 
10077 idle:
10078 	if (sched_core_enabled(rq))
10079 		return NULL;
10080 
10081 	new_tasks = sched_balance_newidle(rq, rf);
10082 	if (new_tasks < 0)
10083 		return RETRY_TASK;
10084 	if (new_tasks > 0)
10085 		goto again;
10086 	return NULL;
10087 }
10088 
10089 static struct task_struct *
10090 fair_server_pick_task(struct sched_dl_entity *dl_se, struct rq_flags *rf)
10091 	__must_hold(__rq_lockp(dl_se->rq))
10092 {
10093 	return pick_task_fair(dl_se->rq, rf);
10094 }
10095 
10096 void fair_server_init(struct rq *rq)
10097 {
10098 	struct sched_dl_entity *dl_se = &rq->fair_server;
10099 
10100 	init_dl_entity(dl_se);
10101 
10102 	dl_server_init(dl_se, rq, fair_server_pick_task);
10103 }
10104 
10105 /*
10106  * Account for a descheduled task:
10107  */
10108 static void put_prev_task_fair(struct rq *rq, struct task_struct *prev, struct task_struct *next)
10109 {
10110 	struct sched_entity *se = &prev->se;
10111 	struct cfs_rq *cfs_rq = &rq->cfs;
10112 	struct sched_entity *nse = NULL;
10113 
10114 #ifdef CONFIG_FAIR_GROUP_SCHED
10115 	if (next && next->sched_class == &fair_sched_class)
10116 		nse = &next->se;
10117 #endif
10118 
10119 	while (se) {
10120 		cfs_rq = cfs_rq_of(se);
10121 		if (!nse || cfs_rq->h_curr)
10122 			put_prev_entity(cfs_rq, se);
10123 #ifdef CONFIG_FAIR_GROUP_SCHED
10124 		if (nse) {
10125 			if (is_same_group(se, nse))
10126 				break;
10127 
10128 			int d = nse->depth - se->depth;
10129 			if (d >= 0) {
10130 				/* nse has equal or greater depth, ascend */
10131 				nse = parent_entity(nse);
10132 				/* if nse is the deeper, do not ascend se */
10133 				if (d > 0)
10134 					continue;
10135 			}
10136 		}
10137 #endif
10138 		se = parent_entity(se);
10139 	}
10140 
10141 	/* Put 'current' back into the tree. */
10142 	cfs_rq = &rq->cfs;
10143 	se = &prev->se;
10144 	WARN_ON_ONCE(cfs_rq->curr != se);
10145 	cfs_rq->curr = NULL;
10146 	if (se->on_rq)
10147 		__enqueue_entity(cfs_rq, se);
10148 }
10149 
10150 /*
10151  * sched_yield() is very simple
10152  */
10153 static void yield_task_fair(struct rq *rq)
10154 {
10155 	struct task_struct *curr = rq->donor;
10156 	struct sched_entity *se = &curr->se;
10157 	struct cfs_rq *cfs_rq = &rq->cfs;
10158 
10159 	/*
10160 	 * Are we the only task in the tree?
10161 	 */
10162 	if (unlikely(rq->nr_running == 1))
10163 		return;
10164 
10165 	clear_buddies(cfs_rq, se);
10166 
10167 	update_rq_clock(rq);
10168 	/*
10169 	 * Update run-time statistics of the 'current'.
10170 	 */
10171 	update_curr_eevdf(cfs_rq);
10172 	/*
10173 	 * Tell update_rq_clock() that we've just updated,
10174 	 * so we don't do microscopic update in schedule()
10175 	 * and double the fastpath cost.
10176 	 */
10177 	rq_clock_skip_update(rq);
10178 
10179 	/*
10180 	 * Forfeit the remaining vruntime, only if the entity is eligible. This
10181 	 * condition is necessary because in core scheduling we prefer to run
10182 	 * ineligible tasks rather than force idling. If this happens we may
10183 	 * end up in a loop where the core scheduler picks the yielding task,
10184 	 * which yields immediately again; without the condition the vruntime
10185 	 * ends up quickly running away.
10186 	 */
10187 	if (entity_eligible(cfs_rq, se)) {
10188 		se->vruntime = se->deadline;
10189 		update_deadline(cfs_rq, se);
10190 	}
10191 }
10192 
10193 static bool yield_to_task_fair(struct rq *rq, struct task_struct *p)
10194 {
10195 	struct sched_entity *se = &p->se;
10196 
10197 	/* !se->on_rq also covers throttled task */
10198 	if (!se->on_rq || se->sched_delayed)
10199 		return false;
10200 
10201 	/* Tell the scheduler that we'd really like se to run next. */
10202 	set_next_buddy(&task_rq(p)->cfs, se);
10203 
10204 	yield_task_fair(rq);
10205 
10206 	return true;
10207 }
10208 
10209 /**************************************************
10210  * Fair scheduling class load-balancing methods.
10211  *
10212  * BASICS
10213  *
10214  * The purpose of load-balancing is to achieve the same basic fairness the
10215  * per-CPU scheduler provides, namely provide a proportional amount of compute
10216  * time to each task. This is expressed in the following equation:
10217  *
10218  *   W_i,n/P_i == W_j,n/P_j for all i,j                               (1)
10219  *
10220  * Where W_i,n is the n-th weight average for CPU i. The instantaneous weight
10221  * W_i,0 is defined as:
10222  *
10223  *   W_i,0 = \Sum_j w_i,j                                             (2)
10224  *
10225  * Where w_i,j is the weight of the j-th runnable task on CPU i. This weight
10226  * is derived from the nice value as per sched_prio_to_weight[].
10227  *
10228  * The weight average is an exponential decay average of the instantaneous
10229  * weight:
10230  *
10231  *   W'_i,n = (2^n - 1) / 2^n * W_i,n + 1 / 2^n * W_i,0               (3)
10232  *
10233  * C_i is the compute capacity of CPU i, typically it is the
10234  * fraction of 'recent' time available for SCHED_OTHER task execution. But it
10235  * can also include other factors [XXX].
10236  *
10237  * To achieve this balance we define a measure of imbalance which follows
10238  * directly from (1):
10239  *
10240  *   imb_i,j = max{ avg(W/C), W_i/C_i } - min{ avg(W/C), W_j/C_j }    (4)
10241  *
10242  * We them move tasks around to minimize the imbalance. In the continuous
10243  * function space it is obvious this converges, in the discrete case we get
10244  * a few fun cases generally called infeasible weight scenarios.
10245  *
10246  * [XXX expand on:
10247  *     - infeasible weights;
10248  *     - local vs global optima in the discrete case. ]
10249  *
10250  *
10251  * SCHED DOMAINS
10252  *
10253  * In order to solve the imbalance equation (4), and avoid the obvious O(n^2)
10254  * for all i,j solution, we create a tree of CPUs that follows the hardware
10255  * topology where each level pairs two lower groups (or better). This results
10256  * in O(log n) layers. Furthermore we reduce the number of CPUs going up the
10257  * tree to only the first of the previous level and we decrease the frequency
10258  * of load-balance at each level inversely proportional to the number of CPUs in
10259  * the groups.
10260  *
10261  * This yields:
10262  *
10263  *     log_2 n     1     n
10264  *   \Sum       { --- * --- * 2^i } = O(n)                            (5)
10265  *     i = 0      2^i   2^i
10266  *                               `- size of each group
10267  *         |         |     `- number of CPUs doing load-balance
10268  *         |         `- freq
10269  *         `- sum over all levels
10270  *
10271  * Coupled with a limit on how many tasks we can migrate every balance pass,
10272  * this makes (5) the runtime complexity of the balancer.
10273  *
10274  * An important property here is that each CPU is still (indirectly) connected
10275  * to every other CPU in at most O(log n) steps:
10276  *
10277  * The adjacency matrix of the resulting graph is given by:
10278  *
10279  *             log_2 n
10280  *   A_i,j = \Union     (i % 2^k == 0) && i / 2^(k+1) == j / 2^(k+1)  (6)
10281  *             k = 0
10282  *
10283  * And you'll find that:
10284  *
10285  *   A^(log_2 n)_i,j != 0  for all i,j                                (7)
10286  *
10287  * Showing there's indeed a path between every CPU in at most O(log n) steps.
10288  * The task movement gives a factor of O(m), giving a convergence complexity
10289  * of:
10290  *
10291  *   O(nm log n),  n := nr_cpus, m := nr_tasks                        (8)
10292  *
10293  *
10294  * WORK CONSERVING
10295  *
10296  * In order to avoid CPUs going idle while there's still work to do, new idle
10297  * balancing is more aggressive and has the newly idle CPU iterate up the domain
10298  * tree itself instead of relying on other CPUs to bring it work.
10299  *
10300  * This adds some complexity to both (5) and (8) but it reduces the total idle
10301  * time.
10302  *
10303  * [XXX more?]
10304  *
10305  *
10306  * CGROUPS
10307  *
10308  * Cgroups make a horror show out of (2), instead of a simple sum we get:
10309  *
10310  *                                s_k,i
10311  *   W_i,0 = \Sum_j \Prod_k w_k * -----                               (9)
10312  *                                 S_k
10313  *
10314  * Where
10315  *
10316  *   s_k,i = \Sum_j w_i,j,k  and  S_k = \Sum_i s_k,i                 (10)
10317  *
10318  * w_i,j,k is the weight of the j-th runnable task in the k-th cgroup on CPU i.
10319  *
10320  * The big problem is S_k, its a global sum needed to compute a local (W_i)
10321  * property.
10322  *
10323  * [XXX write more on how we solve this.. _after_ merging pjt's patches that
10324  *      rewrite all of this once again.]
10325  */
10326 
10327 static unsigned long __read_mostly max_load_balance_interval = HZ/10;
10328 
10329 enum fbq_type { regular, remote, all };
10330 
10331 /*
10332  * 'group_type' describes the group of CPUs at the moment of load balancing.
10333  *
10334  * The enum is ordered by pulling priority, with the group with lowest priority
10335  * first so the group_type can simply be compared when selecting the busiest
10336  * group. See update_sd_pick_busiest().
10337  */
10338 enum group_type {
10339 	/* The group has spare capacity that can be used to run more tasks.  */
10340 	group_has_spare = 0,
10341 	/*
10342 	 * The group is fully used and the tasks don't compete for more CPU
10343 	 * cycles. Nevertheless, some tasks might wait before running.
10344 	 */
10345 	group_fully_busy,
10346 	/*
10347 	 * One task doesn't fit with CPU's capacity and must be migrated to a
10348 	 * more powerful CPU.
10349 	 */
10350 	group_misfit_task,
10351 	/*
10352 	 * Balance SMT group that's fully busy. Can benefit from migration
10353 	 * a task on SMT with busy sibling to another CPU on idle core.
10354 	 */
10355 	group_smt_balance,
10356 	/*
10357 	 * SD_ASYM_PACKING only: One local CPU with higher capacity is available,
10358 	 * and the task should be migrated to it instead of running on the
10359 	 * current CPU.
10360 	 */
10361 	group_asym_packing,
10362 	/*
10363 	 * The tasks' affinity constraints previously prevented the scheduler
10364 	 * from balancing the load across the system.
10365 	 */
10366 	group_imbalanced,
10367 	/*
10368 	 * There are tasks running on non-preferred LLC, possible to move
10369 	 * them to their preferred LLC without creating too much imbalance.
10370 	 * The priority of group_llc_balance is lower than that of
10371 	 * group_overloaded and higher than that of all other group types.
10372 	 * This is because group_llc_balance may exacerbate load imbalance.
10373 	 * If the LLC balancing attempt fails, the nr_balance_failed
10374 	 * mechanism will trigger other group types to rebalance the load.
10375 	 */
10376 	group_llc_balance,
10377 	/*
10378 	 * The CPU is overloaded and can't provide expected CPU cycles to all
10379 	 * tasks.
10380 	 */
10381 	group_overloaded
10382 };
10383 
10384 enum migration_type {
10385 	migrate_load = 0,
10386 	migrate_util,
10387 	migrate_task,
10388 	migrate_misfit,
10389 	migrate_llc_task
10390 };
10391 
10392 #define LBF_ALL_PINNED	0x01
10393 #define LBF_NEED_BREAK	0x02
10394 #define LBF_DST_PINNED  0x04
10395 #define LBF_SOME_PINNED	0x08
10396 #define LBF_ACTIVE_LB	0x10
10397 #define LBF_LLC_PINNED	0x20
10398 
10399 struct lb_env {
10400 	struct sched_domain	*sd;
10401 
10402 	struct rq		*src_rq;
10403 	int			src_cpu;
10404 
10405 	int			dst_cpu;
10406 	struct rq		*dst_rq;
10407 	bool			dst_core_idle;
10408 
10409 	struct cpumask		*dst_grpmask;
10410 	int			new_dst_cpu;
10411 	enum cpu_idle_type	idle;
10412 	long			imbalance;
10413 	/* The set of CPUs under consideration for load-balancing */
10414 	struct cpumask		*cpus;
10415 
10416 	unsigned int		flags;
10417 
10418 	unsigned int		loop;
10419 	unsigned int		loop_break;
10420 	unsigned int		loop_max;
10421 
10422 	enum fbq_type		fbq_type;
10423 	enum migration_type	migration_type;
10424 	struct list_head	tasks;
10425 };
10426 
10427 /*
10428  * Is this task likely cache-hot:
10429  */
10430 static int task_hot(struct task_struct *p, struct lb_env *env)
10431 {
10432 	s64 delta;
10433 
10434 	lockdep_assert_rq_held(env->src_rq);
10435 
10436 	if (p->sched_class != &fair_sched_class)
10437 		return 0;
10438 
10439 	if (unlikely(task_has_idle_policy(p)))
10440 		return 0;
10441 
10442 	/* SMT siblings share cache */
10443 	if (env->sd->flags & SD_SHARE_CPUCAPACITY)
10444 		return 0;
10445 
10446 	/*
10447 	 * Buddy candidates are cache hot:
10448 	 */
10449 	if (sched_feat(CACHE_HOT_BUDDY) && env->dst_rq->nr_running &&
10450 	    (&p->se == cfs_rq_of(&p->se)->next))
10451 		return 1;
10452 
10453 	if (sysctl_sched_migration_cost == -1)
10454 		return 1;
10455 
10456 	/*
10457 	 * Don't migrate task if the task's cookie does not match
10458 	 * with the destination CPU's core cookie.
10459 	 */
10460 	if (!sched_core_cookie_match(cpu_rq(env->dst_cpu), p))
10461 		return 1;
10462 
10463 	if (sysctl_sched_migration_cost == 0)
10464 		return 0;
10465 
10466 	delta = rq_clock_task(env->src_rq) - p->se.exec_start;
10467 
10468 	return delta < (s64)sysctl_sched_migration_cost;
10469 }
10470 
10471 #ifdef CONFIG_NUMA_BALANCING
10472 /*
10473  * Returns a positive value, if task migration degrades locality.
10474  * Returns 0, if task migration is not affected by locality.
10475  * Returns a negative value, if task migration improves locality i.e migration preferred.
10476  */
10477 static long migrate_degrades_locality(struct task_struct *p, struct lb_env *env)
10478 {
10479 	struct numa_group *numa_group = rcu_dereference_all(p->numa_group);
10480 	unsigned long src_weight, dst_weight;
10481 	int src_nid, dst_nid, dist;
10482 
10483 	if (!static_branch_likely(&sched_numa_balancing))
10484 		return 0;
10485 
10486 	if (!p->numa_faults || !(env->sd->flags & SD_NUMA))
10487 		return 0;
10488 
10489 	src_nid = cpu_to_node(env->src_cpu);
10490 	dst_nid = cpu_to_node(env->dst_cpu);
10491 
10492 	if (src_nid == dst_nid)
10493 		return 0;
10494 
10495 	/* Migrating away from the preferred node is always bad. */
10496 	if (src_nid == p->numa_preferred_nid) {
10497 		if (env->src_rq->nr_running > env->src_rq->nr_preferred_running)
10498 			return 1;
10499 		else
10500 			return 0;
10501 	}
10502 
10503 	/* Encourage migration to the preferred node. */
10504 	if (dst_nid == p->numa_preferred_nid)
10505 		return -1;
10506 
10507 	/* Leaving a core idle is often worse than degrading locality. */
10508 	if (env->idle == CPU_IDLE)
10509 		return 0;
10510 
10511 	dist = node_distance(src_nid, dst_nid);
10512 	if (numa_group) {
10513 		src_weight = group_weight(p, src_nid, dist);
10514 		dst_weight = group_weight(p, dst_nid, dist);
10515 	} else {
10516 		src_weight = task_weight(p, src_nid, dist);
10517 		dst_weight = task_weight(p, dst_nid, dist);
10518 	}
10519 
10520 	return src_weight - dst_weight;
10521 }
10522 
10523 #else /* !CONFIG_NUMA_BALANCING: */
10524 static inline long migrate_degrades_locality(struct task_struct *p,
10525 					     struct lb_env *env)
10526 {
10527 	return 0;
10528 }
10529 #endif /* !CONFIG_NUMA_BALANCING */
10530 
10531 /*
10532  * Check whether the task is ineligible on the destination cpu
10533  *
10534  * When the PLACE_LAG scheduling feature is enabled and
10535  * dst_cfs_rq->nr_queued is greater than 1, if the task
10536  * is ineligible, it will also be ineligible when
10537  * it is migrated to the destination cpu.
10538  */
10539 static inline int task_is_ineligible_on_dst_cpu(struct task_struct *p, int dest_cpu)
10540 {
10541 	struct cfs_rq *dst_cfs_rq = &cpu_rq(dest_cpu)->cfs;
10542 
10543 	if (sched_feat(PLACE_LAG) && dst_cfs_rq->h_nr_queued &&
10544 	    !entity_eligible(&task_rq(p)->cfs, &p->se))
10545 		return 1;
10546 
10547 	return 0;
10548 }
10549 
10550 #ifdef CONFIG_SCHED_CACHE
10551 /*
10552  * The margin used when comparing LLC utilization with CPU capacity.
10553  * It determines the LLC load level where active LLC aggregation is
10554  * done.
10555  * Derived from fits_capacity().
10556  *
10557  * (default: ~50%, tunable via debugfs)
10558  */
10559 static bool fits_llc_capacity(unsigned long util, unsigned long max)
10560 {
10561 	u32 aggr_pct = llc_overaggr_pct;
10562 
10563 	/*
10564 	 * For single core systems, raise the aggregation
10565 	 * threshold to accommodate more tasks.
10566 	 */
10567 	if (cpu_smt_num_threads == 1)
10568 		aggr_pct = (aggr_pct * 3 / 2);
10569 
10570 	return util * 100 < max * aggr_pct;
10571 }
10572 
10573 /*
10574  * The margin used when comparing utilization.
10575  * is 'util1' noticeably greater than 'util2'
10576  * Derived from capacity_greater().
10577  * Bias is in perentage.
10578  */
10579 /* Allows dst util to be bigger than src util by up to bias percent */
10580 #define util_greater(util1, util2) \
10581 	((util1) * 100 > (util2) * (100 + llc_imb_pct))
10582 
10583 static __maybe_unused bool get_llc_stats(int cpu, unsigned long *util,
10584 					 unsigned long *cap)
10585 {
10586 	struct sched_domain_shared *sd_share;
10587 
10588 	sd_share = rcu_dereference_all(per_cpu(sd_llc_shared, cpu));
10589 	if (!sd_share)
10590 		return false;
10591 
10592 	*util = READ_ONCE(sd_share->util_avg);
10593 	*cap = READ_ONCE(sd_share->capacity);
10594 
10595 	return true;
10596 }
10597 
10598 /*
10599  * Decision matrix according to the LLC utilization. To
10600  * decide whether we can do task aggregation across LLC.
10601  *
10602  * By default, 50% is the threshold for treating the LLC
10603  * as busy. The reason for choosing 50% is to avoid saturation
10604  * of SMT-2, and it is also a safe cutoff for other SMT-n
10605  * platforms. SMT-1 has higher threshold because it is
10606  * supposed to accommodate more tasks, see fits_llc_capacity().
10607  *
10608  * 20% is the utilization imbalance percentage to decide
10609  * if the preferred LLC is busier than the non-preferred LLC.
10610  * 20 is a little higher than the LLC domain's imbalance_pct
10611  * 17. The hysteresis is used to avoid task bouncing between the
10612  * preferred LLC and the non-preferred LLC, and it will
10613  * be turned into tunable debugfs.
10614  *
10615  * 1. moving towards the preferred LLC, dst is the preferred
10616  *    LLC, src is not.
10617  *
10618  * src \ dst      30%  40%  50%  60%
10619  * 30%            Y    Y    Y    N
10620  * 40%            Y    Y    Y    Y
10621  * 50%            Y    Y    G    G
10622  * 60%            Y    Y    G    G
10623  *
10624  * 2. moving out of the preferred LLC, src is the preferred
10625  *    LLC, dst is not:
10626  *
10627  * src \ dst      30%  40%  50%  60%
10628  * 30%            N    N    N    N
10629  * 40%            N    N    N    N
10630  * 50%            N    N    G    G
10631  * 60%            Y    N    G    G
10632  *
10633  * src :      src_util
10634  * dst :      dst_util
10635  * Y :        Yes, migrate
10636  * N :        No, do not migrate
10637  * G :        let the Generic load balance to even the load.
10638  *
10639  * The intention is that if both LLCs are quite busy, cache aware
10640  * load balance should not be performed, and generic load balance
10641  * should take effect. However, if one is busy and the other is not,
10642  * the preferred LLC capacity(50%) and imbalance criteria(20%) should
10643  * be considered to determine whether LLC aggregation should be
10644  * performed to bias the load towards the preferred LLC.
10645  */
10646 
10647 /* migration decision, 3 states are orthogonal. */
10648 enum llc_mig {
10649 	mig_forbid = 0,		/* N: Don't migrate task, respect LLC preference */
10650 	mig_llc,		/* Y: Do LLC preference based migration */
10651 	mig_unrestricted	/* G: Don't restrict generic load balance migration */
10652 };
10653 
10654 /*
10655  * Check if task can be moved from the source LLC to the
10656  * destination LLC without breaking cache aware preferrence.
10657  * src_cpu and dst_cpu are arbitrary CPUs within the source
10658  * and destination LLCs, respectively.
10659  */
10660 static enum llc_mig can_migrate_llc(int src_cpu, int dst_cpu,
10661 				    unsigned long tsk_util,
10662 				    bool to_pref)
10663 {
10664 	unsigned long src_util, dst_util, src_cap, dst_cap;
10665 
10666 	if (!get_llc_stats(src_cpu, &src_util, &src_cap) ||
10667 	    !get_llc_stats(dst_cpu, &dst_util, &dst_cap))
10668 		return mig_unrestricted;
10669 
10670 	src_util = src_util < tsk_util ? 0 : src_util - tsk_util;
10671 	dst_util = dst_util + tsk_util;
10672 
10673 	if (!fits_llc_capacity(dst_util, dst_cap) &&
10674 	    !fits_llc_capacity(src_util, src_cap))
10675 		return mig_unrestricted;
10676 
10677 	if (to_pref) {
10678 		/*
10679 		 * Don't migrate if we will get preferred LLC too
10680 		 * heavily loaded and if the dest is much busier
10681 		 * than the src, in which case migration will
10682 		 * increase the imbalance too much.
10683 		 */
10684 		if (!fits_llc_capacity(dst_util, dst_cap) &&
10685 		    util_greater(dst_util, src_util))
10686 			return mig_forbid;
10687 	} else {
10688 		/*
10689 		 * Don't migrate if we will leave preferred LLC
10690 		 * too idle, or if this migration leads to the
10691 		 * non-preferred LLC falls within sysctl_aggr_imb percent
10692 		 * of preferred LLC, leading to migration again
10693 		 * back to preferred LLC.
10694 		 */
10695 		if (fits_llc_capacity(src_util, src_cap) ||
10696 		    !util_greater(src_util, dst_util))
10697 			return mig_forbid;
10698 	}
10699 	return mig_llc;
10700 }
10701 
10702 static inline bool task_misfits_asym_cpu(struct lb_env *env, struct task_struct *p)
10703 {
10704 	/*
10705 	 * On asymmetric CPU capacity domains, do not let cache-aware
10706 	 * balancing pull the task onto a destination CPU that cannot
10707 	 * accommodate it. Doing so would turn the task into a misfit on
10708 	 * the destination, trading a cache-locality gain for a capacity
10709 	 * loss. If the task already does not fit its source CPU, the move
10710 	 * cannot make things worse, so let the LLC preference decide.
10711 	 */
10712 	if ((env->sd->flags & SD_ASYM_CPUCAPACITY) && p &&
10713 	    !task_fits_cpu(p, env->dst_cpu) &&
10714 	    task_fits_cpu(p, env->src_cpu))
10715 		return true;
10716 
10717 	return false;
10718 }
10719 
10720 /*
10721  * Check if task p can migrate from source LLC to
10722  * destination LLC in terms of cache aware load balance.
10723  */
10724 static enum llc_mig can_migrate_llc_task(struct lb_env *env,
10725 					 struct task_struct *p)
10726 {
10727 	struct mm_struct *mm;
10728 	bool to_pref;
10729 	int cpu, src_cpu, dst_cpu;
10730 
10731 	if (task_misfits_asym_cpu(env, p))
10732 		return mig_forbid;
10733 
10734 	src_cpu = env->src_cpu;
10735 	dst_cpu = env->dst_cpu;
10736 	mm = p->mm;
10737 	if (!mm)
10738 		return mig_unrestricted;
10739 
10740 	cpu = READ_ONCE(mm->sc_stat.cpu);
10741 	if (cpu < 0 || cpus_share_cache(src_cpu, dst_cpu))
10742 		return mig_unrestricted;
10743 
10744 	/* skip cache aware load balance for too many threads */
10745 	if (invalid_llc_nr(mm, p, dst_cpu) ||
10746 	    exceed_llc_capacity(mm, dst_cpu)) {
10747 		if (READ_ONCE(mm->sc_stat.cpu) != -1)
10748 			WRITE_ONCE(mm->sc_stat.cpu, -1);
10749 		return mig_unrestricted;
10750 	}
10751 
10752 	if (cpus_share_cache(dst_cpu, cpu))
10753 		to_pref = true;
10754 	else if (cpus_share_cache(src_cpu, cpu))
10755 		to_pref = false;
10756 	else
10757 		return mig_unrestricted;
10758 
10759 	return can_migrate_llc(src_cpu, dst_cpu,
10760 			       task_util(p), to_pref);
10761 }
10762 
10763 /*
10764  * Check if active load balance breaks LLC locality in
10765  * terms of cache aware load balance. The load level and
10766  * imbalance do not warrant breaking LLC preference per
10767  * the can_migrate_llc() policy. Here, the benefit of
10768  * LLC locality outweighs the power efficiency gained from
10769  * migrating the only runnable task away.
10770  */
10771 static inline bool
10772 alb_break_llc(struct lb_env *env)
10773 {
10774 	if (!sched_cache_enabled())
10775 		return false;
10776 
10777 	if (cpus_share_cache(env->src_cpu, env->dst_cpu))
10778 		return false;
10779 	/*
10780 	 * All tasks prefer to stay on their current CPU.
10781 	 * Do not pull a task from its preferred CPU if:
10782 	 * 1. It is the only task running and does not exceed
10783 	 *    imbalance allowance; OR
10784 	 * 2. Migrating it away from its preferred LLC would violate
10785 	 *    the cache-aware scheduling policy.
10786 	 */
10787 	if (env->src_rq->nr_pref_llc_running &&
10788 	    env->src_rq->nr_pref_llc_running == env->src_rq->cfs.h_nr_runnable) {
10789 		unsigned long util = 0;
10790 		struct task_struct *cur;
10791 
10792 		/*
10793 		 * Migrating misfit tasks from current CPU
10794 		 * to CPU with a better fit.
10795 		 * Prioritize that over LLC preference.
10796 		 */
10797 		if (env->migration_type == migrate_misfit)
10798 			return false;
10799 
10800 		if (env->src_rq->nr_running <= 1)
10801 			return true;
10802 
10803 		cur = rcu_dereference_all(env->src_rq->curr);
10804 		if (cur && cur->sched_class == &fair_sched_class)
10805 			util = task_util(cur);
10806 
10807 		if (task_misfits_asym_cpu(env, cur) ||
10808 		    can_migrate_llc(env->src_cpu, env->dst_cpu,
10809 				    util, false) == mig_forbid)
10810 			return true;
10811 	}
10812 
10813 	return false;
10814 }
10815 
10816 /*
10817  * Check if migrating task p from env->src_cpu to
10818  * env->dst_cpu breaks LLC localiy.
10819  */
10820 static bool migrate_degrades_llc(struct task_struct *p, struct lb_env *env)
10821 {
10822 	if (!sched_cache_enabled())
10823 		return false;
10824 
10825 	if (task_has_sched_core(p))
10826 		return false;
10827 	/*
10828 	 * Skip over tasks that would degrade LLC locality;
10829 	 * only when nr_balanced_failed is sufficiently high do we
10830 	 * ignore this constraint.
10831 	 *
10832 	 * Threshold of cache_nice_tries is set to 1 higher
10833 	 * than nr_balance_failed to avoid excessive task
10834 	 * migration at the same time.
10835 	 */
10836 	if (env->sd->nr_balance_failed >= env->sd->cache_nice_tries + 1)
10837 		return false;
10838 
10839 	/*
10840 	 * We know the env->src_cpu has some tasks prefer to
10841 	 * run on env->dst_cpu, skip the tasks do not prefer
10842 	 * env->dst_cpu, and find the one that prefers.
10843 	 */
10844 	if (env->migration_type == migrate_llc_task &&
10845 	    READ_ONCE(p->preferred_llc) != llc_id(env->dst_cpu))
10846 		return true;
10847 
10848 	if (can_migrate_llc_task(env, p) != mig_forbid)
10849 		return false;
10850 
10851 	return true;
10852 }
10853 
10854 #else
10855 static inline bool get_llc_stats(int cpu, unsigned long *util,
10856 				 unsigned long *cap)
10857 {
10858 	return false;
10859 }
10860 
10861 static inline bool
10862 alb_break_llc(struct lb_env *env)
10863 {
10864 	return false;
10865 }
10866 
10867 static inline bool
10868 migrate_degrades_llc(struct task_struct *p, struct lb_env *env)
10869 {
10870 	return false;
10871 }
10872 #endif
10873 /*
10874  * can_migrate_task - may task p from runqueue rq be migrated to this_cpu?
10875  */
10876 static
10877 int can_migrate_task(struct task_struct *p, struct lb_env *env)
10878 {
10879 	long degrades, hot;
10880 
10881 	lockdep_assert_rq_held(env->src_rq);
10882 	if (p->sched_task_hot)
10883 		p->sched_task_hot = 0;
10884 
10885 	/*
10886 	 * We do not migrate tasks that are:
10887 	 * 1) delayed dequeued unless we migrate load, or
10888 	 * 2) target cfs_rq is in throttled hierarchy, or
10889 	 * 3) cannot be migrated to this CPU due to cpus_ptr, or
10890 	 * 4) running (obviously), or
10891 	 * 5) are cache-hot on their current CPU, or
10892 	 * 6) are blocked on mutexes (if SCHED_PROXY_EXEC is enabled)
10893 	 */
10894 	if ((p->se.sched_delayed) && (env->migration_type != migrate_load))
10895 		return 0;
10896 
10897 	if (lb_throttled_hierarchy(p, env->dst_cpu))
10898 		return 0;
10899 
10900 	/*
10901 	 * We want to prioritize the migration of eligible tasks.
10902 	 * For ineligible tasks we soft-limit them and only allow
10903 	 * them to migrate when nr_balance_failed is non-zero to
10904 	 * avoid load-balancing trying very hard to balance the load.
10905 	 */
10906 	if (!env->sd->nr_balance_failed &&
10907 	    task_is_ineligible_on_dst_cpu(p, env->dst_cpu))
10908 		return 0;
10909 
10910 	/* Disregard percpu kthreads; they are where they need to be. */
10911 	if (kthread_is_per_cpu(p))
10912 		return 0;
10913 
10914 	if (task_is_blocked(p))
10915 		return 0;
10916 
10917 	if (!cpumask_test_cpu(env->dst_cpu, p->cpus_ptr)) {
10918 		int cpu;
10919 
10920 		schedstat_inc(p->stats.nr_failed_migrations_affine);
10921 
10922 		env->flags |= LBF_SOME_PINNED;
10923 
10924 		/*
10925 		 * Remember if this task can be migrated to any other CPU in
10926 		 * our sched_group. We may want to revisit it if we couldn't
10927 		 * meet load balance goals by pulling other tasks on src_cpu.
10928 		 *
10929 		 * Avoid computing new_dst_cpu
10930 		 * - for NEWLY_IDLE
10931 		 * - if we have already computed one in current iteration
10932 		 * - if it's an active balance
10933 		 */
10934 		if (env->idle == CPU_NEWLY_IDLE ||
10935 		    env->flags & (LBF_DST_PINNED | LBF_ACTIVE_LB))
10936 			return 0;
10937 
10938 		/* Prevent to re-select dst_cpu via env's CPUs: */
10939 		cpu = cpumask_first_and_and(env->dst_grpmask, env->cpus, p->cpus_ptr);
10940 
10941 		if (cpu < nr_cpu_ids) {
10942 			env->flags |= LBF_DST_PINNED;
10943 			env->new_dst_cpu = cpu;
10944 		}
10945 
10946 		return 0;
10947 	}
10948 
10949 	/* Record that we found at least one task that could run on dst_cpu */
10950 	env->flags &= ~LBF_ALL_PINNED;
10951 
10952 	if (task_on_cpu(env->src_rq, p) ||
10953 	    task_current_donor(env->src_rq, p)) {
10954 		schedstat_inc(p->stats.nr_failed_migrations_running);
10955 		return 0;
10956 	}
10957 
10958 	/*
10959 	 * Aggressive migration if:
10960 	 * 1) active balance
10961 	 * 2) destination numa is preferred
10962 	 * 3) task is cache cold, or
10963 	 * 4) too many balance attempts have failed.
10964 	 */
10965 	if (env->flags & LBF_ACTIVE_LB)
10966 		return 1;
10967 
10968 	degrades = migrate_degrades_locality(p, env);
10969 	if (!degrades) {
10970 		/*
10971 		 * If the NUMA locality is not broken,
10972 		 * further check if migration would hurt
10973 		 * LLC locality.
10974 		 */
10975 		if (migrate_degrades_llc(p, env)) {
10976 			/*
10977 			 * If regular load balancing fails to pull a task
10978 			 * due to LLC locality, this is expected behavior
10979 			 * and we set LBF_LLC_PINNED so we don't increase
10980 			 * nr_balance_failed unecessarily.
10981 			 */
10982 			if (env->migration_type != migrate_llc_task)
10983 				env->flags |= LBF_LLC_PINNED;
10984 
10985 			return 0;
10986 		}
10987 
10988 		hot = task_hot(p, env);
10989 	} else {
10990 		hot = degrades > 0;
10991 	}
10992 
10993 	if (!hot || env->sd->nr_balance_failed > env->sd->cache_nice_tries) {
10994 		if (hot)
10995 			p->sched_task_hot = 1;
10996 		return 1;
10997 	}
10998 
10999 	schedstat_inc(p->stats.nr_failed_migrations_hot);
11000 	return 0;
11001 }
11002 
11003 /*
11004  * detach_task() -- detach the task for the migration specified in env
11005  */
11006 static void detach_task(struct task_struct *p, struct lb_env *env)
11007 {
11008 	lockdep_assert_rq_held(env->src_rq);
11009 
11010 	if (p->sched_task_hot) {
11011 		p->sched_task_hot = 0;
11012 		schedstat_inc(env->sd->lb_hot_gained[env->idle]);
11013 		schedstat_inc(p->stats.nr_forced_migrations);
11014 	}
11015 
11016 	WARN_ON(task_current(env->src_rq, p));
11017 	WARN_ON(task_current_donor(env->src_rq, p));
11018 
11019 	deactivate_task(env->src_rq, p, DEQUEUE_NOCLOCK);
11020 	set_task_cpu(p, env->dst_cpu);
11021 }
11022 
11023 /*
11024  * detach_one_task() -- tries to dequeue exactly one task from env->src_rq, as
11025  * part of active balancing operations within "domain".
11026  *
11027  * Returns a task if successful and NULL otherwise.
11028  */
11029 static struct task_struct *detach_one_task(struct lb_env *env)
11030 {
11031 	struct task_struct *p;
11032 
11033 	lockdep_assert_rq_held(env->src_rq);
11034 
11035 	list_for_each_entry_reverse(p,
11036 			&env->src_rq->cfs_tasks, se.group_node) {
11037 		if (!can_migrate_task(p, env))
11038 			continue;
11039 
11040 		detach_task(p, env);
11041 
11042 		/*
11043 		 * Right now, this is only the second place where
11044 		 * lb_gained[env->idle] is updated (other is detach_tasks)
11045 		 * so we can safely collect stats here rather than
11046 		 * inside detach_tasks().
11047 		 */
11048 		schedstat_inc(env->sd->lb_gained[env->idle]);
11049 		return p;
11050 	}
11051 	return NULL;
11052 }
11053 
11054 /*
11055  * detach_tasks() -- tries to detach up to imbalance load/util/tasks from
11056  * busiest_rq, as part of a balancing operation within domain "sd".
11057  *
11058  * Returns number of detached tasks if successful and 0 otherwise.
11059  */
11060 static int detach_tasks(struct lb_env *env)
11061 {
11062 	struct list_head *tasks = &env->src_rq->cfs_tasks;
11063 	unsigned long util, load;
11064 	struct task_struct *p;
11065 	int detached = 0;
11066 
11067 	lockdep_assert_rq_held(env->src_rq);
11068 
11069 	/*
11070 	 * Source run queue has been emptied by another CPU, clear
11071 	 * LBF_ALL_PINNED flag as we will not test any task.
11072 	 */
11073 	if (env->src_rq->nr_running <= 1) {
11074 		env->flags &= ~LBF_ALL_PINNED;
11075 		return 0;
11076 	}
11077 
11078 	if (env->imbalance <= 0)
11079 		return 0;
11080 
11081 	while (!list_empty(tasks)) {
11082 		/*
11083 		 * We don't want to steal all, otherwise we may be treated likewise,
11084 		 * which could at worst lead to a livelock crash.
11085 		 */
11086 		if (env->idle && env->src_rq->nr_running <= 1)
11087 			break;
11088 
11089 		env->loop++;
11090 		/* We've more or less seen every task there is, call it quits */
11091 		if (env->loop > env->loop_max)
11092 			break;
11093 
11094 		/* take a breather every nr_migrate tasks */
11095 		if (env->loop > env->loop_break) {
11096 			env->loop_break += SCHED_NR_MIGRATE_BREAK;
11097 			env->flags |= LBF_NEED_BREAK;
11098 			break;
11099 		}
11100 
11101 		p = list_last_entry(tasks, struct task_struct, se.group_node);
11102 
11103 		if (!can_migrate_task(p, env))
11104 			goto next;
11105 
11106 		switch (env->migration_type) {
11107 		case migrate_load:
11108 			/*
11109 			 * Depending of the number of CPUs and tasks and the
11110 			 * cgroup hierarchy, task_h_load() can return a null
11111 			 * value. Make sure that env->imbalance decreases
11112 			 * otherwise detach_tasks() will stop only after
11113 			 * detaching up to loop_max tasks.
11114 			 */
11115 			load = max_t(unsigned long, task_h_load(p), 1);
11116 
11117 			if (sched_feat(LB_MIN) &&
11118 			    load < 16 && !env->sd->nr_balance_failed)
11119 				goto next;
11120 
11121 			/*
11122 			 * Make sure that we don't migrate too much load.
11123 			 * Nevertheless, let relax the constraint if
11124 			 * scheduler fails to find a good waiting task to
11125 			 * migrate.
11126 			 */
11127 			if (shr_bound(load, env->sd->nr_balance_failed) > env->imbalance)
11128 				goto next;
11129 
11130 			env->imbalance -= load;
11131 			break;
11132 
11133 		case migrate_util:
11134 			util = task_util_est(p);
11135 
11136 			if (shr_bound(util, env->sd->nr_balance_failed) > env->imbalance)
11137 				goto next;
11138 
11139 			env->imbalance -= util;
11140 			break;
11141 
11142 		case migrate_task:
11143 			env->imbalance--;
11144 			break;
11145 
11146 		case migrate_misfit:
11147 			/* This is not a misfit task */
11148 			if (task_fits_cpu(p, env->src_cpu))
11149 				goto next;
11150 
11151 			env->imbalance = 0;
11152 			break;
11153 
11154 		case migrate_llc_task:
11155 			env->imbalance--;
11156 			break;
11157 		}
11158 
11159 		detach_task(p, env);
11160 		list_add(&p->se.group_node, &env->tasks);
11161 
11162 		detached++;
11163 
11164 #ifdef CONFIG_PREEMPTION
11165 		/*
11166 		 * NEWIDLE balancing is a source of latency, so preemptible
11167 		 * kernels will stop after the first task is detached to minimize
11168 		 * the critical section.
11169 		 */
11170 		if (env->idle == CPU_NEWLY_IDLE)
11171 			break;
11172 #endif
11173 
11174 		/*
11175 		 * We only want to steal up to the prescribed amount of
11176 		 * load/util/tasks.
11177 		 */
11178 		if (env->imbalance <= 0)
11179 			break;
11180 
11181 		continue;
11182 next:
11183 		if (p->sched_task_hot)
11184 			schedstat_inc(p->stats.nr_failed_migrations_hot);
11185 
11186 		list_move(&p->se.group_node, tasks);
11187 	}
11188 
11189 	/*
11190 	 * Right now, this is one of only two places we collect this stat
11191 	 * so we can safely collect detach_one_task() stats here rather
11192 	 * than inside detach_one_task().
11193 	 */
11194 	schedstat_add(env->sd->lb_gained[env->idle], detached);
11195 
11196 	return detached;
11197 }
11198 
11199 /*
11200  * attach_tasks() -- attaches all tasks detached by detach_tasks() to their
11201  * new rq.
11202  */
11203 static void attach_tasks(struct lb_env *env)
11204 {
11205 	struct list_head *tasks = &env->tasks;
11206 	struct task_struct *p;
11207 	struct rq_flags rf;
11208 
11209 	rq_lock(env->dst_rq, &rf);
11210 	update_rq_clock(env->dst_rq);
11211 
11212 	while (!list_empty(tasks)) {
11213 		p = list_first_entry(tasks, struct task_struct, se.group_node);
11214 		list_del_init(&p->se.group_node);
11215 
11216 		attach_task(env->dst_rq, p);
11217 	}
11218 
11219 	rq_unlock(env->dst_rq, &rf);
11220 }
11221 
11222 #ifdef CONFIG_NO_HZ_COMMON
11223 static inline bool cfs_rq_has_blocked_load(struct cfs_rq *cfs_rq)
11224 {
11225 	if (cfs_rq->avg.load_avg)
11226 		return true;
11227 
11228 	if (cfs_rq->avg.util_avg)
11229 		return true;
11230 
11231 	return false;
11232 }
11233 
11234 static inline bool others_have_blocked(struct rq *rq)
11235 {
11236 	if (cpu_util_rt(rq))
11237 		return true;
11238 
11239 	if (cpu_util_dl(rq))
11240 		return true;
11241 
11242 	if (hw_load_avg(rq))
11243 		return true;
11244 
11245 	if (cpu_util_irq(rq))
11246 		return true;
11247 
11248 	return false;
11249 }
11250 
11251 static inline void update_blocked_load_tick(struct rq *rq)
11252 {
11253 	WRITE_ONCE(rq->last_blocked_load_update_tick, jiffies);
11254 }
11255 
11256 static inline void update_has_blocked_load_status(struct rq *rq, bool has_blocked_load)
11257 {
11258 	if (!has_blocked_load)
11259 		rq->has_blocked_load = 0;
11260 }
11261 #else /* !CONFIG_NO_HZ_COMMON: */
11262 static inline bool cfs_rq_has_blocked_load(struct cfs_rq *cfs_rq) { return false; }
11263 static inline bool others_have_blocked(struct rq *rq) { return false; }
11264 static inline void update_blocked_load_tick(struct rq *rq) {}
11265 static inline void update_has_blocked_load_status(struct rq *rq, bool has_blocked_load) {}
11266 #endif /* !CONFIG_NO_HZ_COMMON */
11267 
11268 static bool __update_blocked_others(struct rq *rq, bool *done)
11269 {
11270 	bool updated;
11271 
11272 	/*
11273 	 * update_load_avg() can call cpufreq_update_util(). Make sure that RT,
11274 	 * DL and IRQ signals have been updated before updating CFS.
11275 	 */
11276 	updated = update_other_load_avgs(rq);
11277 
11278 	if (others_have_blocked(rq))
11279 		*done = false;
11280 
11281 	return updated;
11282 }
11283 
11284 #ifdef CONFIG_FAIR_GROUP_SCHED
11285 
11286 static bool __update_blocked_fair(struct rq *rq, bool *done)
11287 {
11288 	struct cfs_rq *cfs_rq, *pos;
11289 	bool decayed = false;
11290 
11291 	/*
11292 	 * Iterates the task_group tree in a bottom up fashion, see
11293 	 * list_add_leaf_cfs_rq() for details.
11294 	 */
11295 	for_each_leaf_cfs_rq_safe(rq, cfs_rq, pos) {
11296 		struct sched_entity *se;
11297 
11298 		if (update_cfs_rq_load_avg(cfs_rq_clock_pelt(cfs_rq), cfs_rq)) {
11299 			update_tg_load_avg(cfs_rq);
11300 
11301 			if (cfs_rq->nr_queued == 0)
11302 				update_idle_cfs_rq_clock_pelt(cfs_rq);
11303 
11304 			if (cfs_rq == &rq->cfs)
11305 				decayed = true;
11306 		}
11307 
11308 		/* Propagate pending load changes to the parent, if any: */
11309 		se = cfs_rq_se(cfs_rq);
11310 		if (se && !skip_blocked_update(se))
11311 			update_load_avg(cfs_rq_of(se), se, UPDATE_TG);
11312 
11313 		/*
11314 		 * There can be a lot of idle CPU cgroups.  Don't let fully
11315 		 * decayed cfs_rqs linger on the list.
11316 		 */
11317 		if (cfs_rq_is_decayed(cfs_rq))
11318 			list_del_leaf_cfs_rq(cfs_rq);
11319 
11320 		/* Don't need periodic decay once load/util_avg are null */
11321 		if (cfs_rq_has_blocked_load(cfs_rq))
11322 			*done = false;
11323 	}
11324 
11325 	return decayed;
11326 }
11327 
11328 /*
11329  * Compute the hierarchical load factor for cfs_rq and all its ascendants.
11330  * This needs to be done in a top-down fashion because the load of a child
11331  * group is a fraction of its parents load.
11332  */
11333 static void update_cfs_rq_h_load(struct cfs_rq *cfs_rq)
11334 {
11335 	struct sched_entity *se = cfs_rq_se(cfs_rq);
11336 	unsigned long now = jiffies;
11337 	unsigned long load;
11338 
11339 	if (cfs_rq->last_h_load_update == now)
11340 		return;
11341 
11342 	WRITE_ONCE(cfs_rq->h_load_next, NULL);
11343 	for_each_sched_entity(se) {
11344 		cfs_rq = cfs_rq_of(se);
11345 		WRITE_ONCE(cfs_rq->h_load_next, se);
11346 		if (cfs_rq->last_h_load_update == now)
11347 			break;
11348 	}
11349 
11350 	if (!se) {
11351 		cfs_rq->h_load = cfs_rq_load_avg(cfs_rq);
11352 		cfs_rq->last_h_load_update = now;
11353 	}
11354 
11355 	while ((se = READ_ONCE(cfs_rq->h_load_next)) != NULL) {
11356 		load = cfs_rq->h_load;
11357 		load = div64_ul(load * se->avg.load_avg,
11358 				cfs_rq_load_avg(cfs_rq) + 1);
11359 		cfs_rq = group_cfs_rq(se);
11360 		cfs_rq->h_load = load;
11361 		cfs_rq->last_h_load_update = now;
11362 	}
11363 }
11364 
11365 static unsigned long task_h_load(struct task_struct *p)
11366 {
11367 	struct cfs_rq *cfs_rq = task_cfs_rq(p);
11368 
11369 	update_cfs_rq_h_load(cfs_rq);
11370 	return div64_ul(p->se.avg.load_avg * cfs_rq->h_load,
11371 			cfs_rq_load_avg(cfs_rq) + 1);
11372 }
11373 #else /* !CONFIG_FAIR_GROUP_SCHED: */
11374 static bool __update_blocked_fair(struct rq *rq, bool *done)
11375 {
11376 	struct cfs_rq *cfs_rq = &rq->cfs;
11377 	bool decayed;
11378 
11379 	decayed = update_cfs_rq_load_avg(cfs_rq_clock_pelt(cfs_rq), cfs_rq);
11380 	if (cfs_rq_has_blocked_load(cfs_rq))
11381 		*done = false;
11382 
11383 	return decayed;
11384 }
11385 
11386 static unsigned long task_h_load(struct task_struct *p)
11387 {
11388 	return p->se.avg.load_avg;
11389 }
11390 #endif /* !CONFIG_FAIR_GROUP_SCHED */
11391 
11392 static void __sched_balance_update_blocked_averages(struct rq *rq)
11393 {
11394 	bool decayed = false, done = true;
11395 
11396 	update_blocked_load_tick(rq);
11397 
11398 	decayed |= __update_blocked_others(rq, &done);
11399 	decayed |= __update_blocked_fair(rq, &done);
11400 
11401 	update_has_blocked_load_status(rq, !done);
11402 	if (decayed)
11403 		cpufreq_update_util(rq, 0);
11404 }
11405 
11406 static void sched_balance_update_blocked_averages(int cpu)
11407 {
11408 	struct rq *rq = cpu_rq(cpu);
11409 
11410 	guard(rq_lock_irqsave)(rq);
11411 	update_rq_clock(rq);
11412 	__sched_balance_update_blocked_averages(rq);
11413 }
11414 
11415 /********** Helpers for sched_balance_find_src_group ************************/
11416 
11417 /*
11418  * sg_lb_stats - stats of a sched_group required for load-balancing:
11419  */
11420 struct sg_lb_stats {
11421 	unsigned long avg_load;			/* Avg load            over the CPUs of the group */
11422 	unsigned long group_load;		/* Total load          over the CPUs of the group */
11423 	unsigned long group_capacity;		/* Capacity            over the CPUs of the group */
11424 	unsigned long group_util;		/* Total utilization   over the CPUs of the group */
11425 	unsigned long group_runnable;		/* Total runnable time over the CPUs of the group */
11426 	unsigned int sum_nr_running;		/* Nr of all tasks running in the group */
11427 	unsigned int sum_h_nr_running;		/* Nr of CFS tasks running in the group */
11428 	unsigned int idle_cpus;                 /* Nr of idle CPUs         in the group */
11429 	unsigned int group_weight;
11430 	enum group_type group_type;
11431 	unsigned int group_asym_packing;	/* Tasks should be moved to preferred CPU */
11432 	unsigned int group_smt_balance;		/* Task on busy SMT be moved */
11433 	unsigned int group_llc_balance;		/* Tasks should be moved to preferred LLC */
11434 	unsigned long group_misfit_task_load;	/* A CPU has a task too big for its capacity */
11435 	unsigned int group_overutilized;	/* At least one CPU is overutilized in the group */
11436 #ifdef CONFIG_NUMA_BALANCING
11437 	unsigned int nr_numa_running;
11438 	unsigned int nr_preferred_running;
11439 #endif
11440 #ifdef CONFIG_SCHED_CACHE
11441 	unsigned int nr_pref_dst_llc;
11442 #endif
11443 };
11444 
11445 /*
11446  * sd_lb_stats - stats of a sched_domain required for load-balancing:
11447  */
11448 struct sd_lb_stats {
11449 	struct sched_group *busiest;		/* Busiest group in this sd */
11450 	struct sched_group *local;		/* Local group in this sd */
11451 	unsigned long total_load;		/* Total load of all groups in sd */
11452 	unsigned long total_capacity;		/* Total capacity of all groups in sd */
11453 	unsigned long avg_load;			/* Average load across all groups in sd */
11454 	unsigned int prefer_sibling;		/* Tasks should go to sibling first */
11455 
11456 	struct sg_lb_stats busiest_stat;	/* Statistics of the busiest group */
11457 	struct sg_lb_stats local_stat;		/* Statistics of the local group */
11458 };
11459 
11460 static inline void init_sd_lb_stats(struct sd_lb_stats *sds)
11461 {
11462 	/*
11463 	 * Skimp on the clearing to avoid duplicate work. We can avoid clearing
11464 	 * local_stat because update_sg_lb_stats() does a full clear/assignment.
11465 	 * We must however set busiest_stat::group_type and
11466 	 * busiest_stat::idle_cpus to the worst busiest group because
11467 	 * update_sd_pick_busiest() reads these before assignment.
11468 	 */
11469 	*sds = (struct sd_lb_stats){
11470 		.busiest = NULL,
11471 		.local = NULL,
11472 		.total_load = 0UL,
11473 		.total_capacity = 0UL,
11474 		.busiest_stat = {
11475 			.idle_cpus = UINT_MAX,
11476 			.group_type = group_has_spare,
11477 		},
11478 	};
11479 }
11480 
11481 static unsigned long scale_rt_capacity(int cpu)
11482 {
11483 	unsigned long max = get_actual_cpu_capacity(cpu);
11484 	struct rq *rq = cpu_rq(cpu);
11485 	unsigned long used, free;
11486 	unsigned long irq;
11487 
11488 	irq = cpu_util_irq(rq);
11489 
11490 	if (unlikely(irq >= max))
11491 		return 1;
11492 
11493 	/*
11494 	 * avg_rt.util_avg and avg_dl.util_avg track binary signals
11495 	 * (running and not running) with weights 0 and 1024 respectively.
11496 	 */
11497 	used = cpu_util_rt(rq);
11498 	used += cpu_util_dl(rq);
11499 
11500 	if (unlikely(used >= max))
11501 		return 1;
11502 
11503 	free = max - used;
11504 
11505 	return scale_irq_capacity(free, irq, max);
11506 }
11507 
11508 static void update_cpu_capacity(struct sched_domain *sd, int cpu)
11509 {
11510 	unsigned long capacity = scale_rt_capacity(cpu);
11511 	struct sched_group *sdg = sd->groups;
11512 
11513 	if (!capacity)
11514 		capacity = 1;
11515 
11516 	cpu_rq(cpu)->cpu_capacity = capacity;
11517 	trace_sched_cpu_capacity_tp(cpu_rq(cpu));
11518 
11519 	sdg->sgc->capacity = capacity;
11520 	sdg->sgc->min_capacity = capacity;
11521 	sdg->sgc->max_capacity = capacity;
11522 }
11523 
11524 void update_group_capacity(struct sched_domain *sd, int cpu)
11525 {
11526 	struct sched_domain *child = sd->child;
11527 	struct sched_group *group, *sdg = sd->groups;
11528 	unsigned long capacity, min_capacity, max_capacity;
11529 	unsigned long interval;
11530 
11531 	interval = msecs_to_jiffies(sd->balance_interval);
11532 	interval = clamp(interval, 1UL, max_load_balance_interval);
11533 	sdg->sgc->next_update = jiffies + interval;
11534 
11535 	if (!child) {
11536 		update_cpu_capacity(sd, cpu);
11537 		return;
11538 	}
11539 
11540 	capacity = 0;
11541 	min_capacity = ULONG_MAX;
11542 	max_capacity = 0;
11543 
11544 	if (child->flags & SD_NUMA) {
11545 		/*
11546 		 * SD_NUMA domains cannot assume that child groups
11547 		 * span the current group.
11548 		 */
11549 
11550 		for_each_cpu(cpu, sched_group_span(sdg)) {
11551 			unsigned long cpu_cap = capacity_of(cpu);
11552 
11553 			capacity += cpu_cap;
11554 			min_capacity = min(cpu_cap, min_capacity);
11555 			max_capacity = max(cpu_cap, max_capacity);
11556 		}
11557 	} else  {
11558 		/*
11559 		 * !SD_NUMA domains can assume that child groups
11560 		 * span the current group.
11561 		 */
11562 
11563 		group = child->groups;
11564 		do {
11565 			struct sched_group_capacity *sgc = group->sgc;
11566 
11567 			capacity += sgc->capacity;
11568 			min_capacity = min(sgc->min_capacity, min_capacity);
11569 			max_capacity = max(sgc->max_capacity, max_capacity);
11570 			group = group->next;
11571 		} while (group != child->groups);
11572 	}
11573 
11574 	sdg->sgc->capacity = capacity;
11575 	sdg->sgc->min_capacity = min_capacity;
11576 	sdg->sgc->max_capacity = max_capacity;
11577 }
11578 
11579 /*
11580  * Check whether the capacity of the rq has been noticeably reduced by side
11581  * activity. The imbalance_pct is used for the threshold.
11582  * Return true is the capacity is reduced
11583  */
11584 static inline int
11585 check_cpu_capacity(struct rq *rq, struct sched_domain *sd)
11586 {
11587 	return ((rq->cpu_capacity * sd->imbalance_pct) <
11588 				(arch_scale_cpu_capacity(cpu_of(rq)) * 100));
11589 }
11590 
11591 /* Check if the rq has a misfit task */
11592 static inline bool check_misfit_status(struct rq *rq)
11593 {
11594 	return rq->misfit_task_load;
11595 }
11596 
11597 /*
11598  * Group imbalance indicates (and tries to solve) the problem where balancing
11599  * groups is inadequate due to ->cpus_ptr constraints.
11600  *
11601  * Imagine a situation of two groups of 4 CPUs each and 4 tasks each with a
11602  * cpumask covering 1 CPU of the first group and 3 CPUs of the second group.
11603  * Something like:
11604  *
11605  *	{ 0 1 2 3 } { 4 5 6 7 }
11606  *	        *     * * *
11607  *
11608  * If we were to balance group-wise we'd place two tasks in the first group and
11609  * two tasks in the second group. Clearly this is undesired as it will overload
11610  * cpu 3 and leave one of the CPUs in the second group unused.
11611  *
11612  * The current solution to this issue is detecting the skew in the first group
11613  * by noticing the lower domain failed to reach balance and had difficulty
11614  * moving tasks due to affinity constraints.
11615  *
11616  * When this is so detected; this group becomes a candidate for busiest; see
11617  * update_sd_pick_busiest(). And calculate_imbalance() and
11618  * sched_balance_find_src_group() avoid some of the usual balance conditions to allow it
11619  * to create an effective group imbalance.
11620  *
11621  * This is a somewhat tricky proposition since the next run might not find the
11622  * group imbalance and decide the groups need to be balanced again. A most
11623  * subtle and fragile situation.
11624  */
11625 
11626 static inline int sg_imbalanced(struct sched_group *group)
11627 {
11628 	return group->sgc->imbalance;
11629 }
11630 
11631 /*
11632  * group_has_capacity returns true if the group has spare capacity that could
11633  * be used by some tasks.
11634  * We consider that a group has spare capacity if the number of task is
11635  * smaller than the number of CPUs or if the utilization is lower than the
11636  * available capacity for CFS tasks.
11637  * For the latter, we use a threshold to stabilize the state, to take into
11638  * account the variance of the tasks' load and to return true if the available
11639  * capacity in meaningful for the load balancer.
11640  * As an example, an available capacity of 1% can appear but it doesn't make
11641  * any benefit for the load balance.
11642  */
11643 static inline bool
11644 group_has_capacity(unsigned int imbalance_pct, struct sg_lb_stats *sgs)
11645 {
11646 	if (sgs->sum_nr_running < sgs->group_weight)
11647 		return true;
11648 
11649 	if ((sgs->group_capacity * imbalance_pct) <
11650 			(sgs->group_runnable * 100))
11651 		return false;
11652 
11653 	if ((sgs->group_capacity * 100) >
11654 			(sgs->group_util * imbalance_pct))
11655 		return true;
11656 
11657 	return false;
11658 }
11659 
11660 /*
11661  *  group_is_overloaded returns true if the group has more tasks than it can
11662  *  handle.
11663  *  group_is_overloaded is not equals to !group_has_capacity because a group
11664  *  with the exact right number of tasks, has no more spare capacity but is not
11665  *  overloaded so both group_has_capacity and group_is_overloaded return
11666  *  false.
11667  */
11668 static inline bool
11669 group_is_overloaded(unsigned int imbalance_pct, struct sg_lb_stats *sgs)
11670 {
11671 	/*
11672 	 * With EAS and uclamp, 1 CPU in the group must be overutilized to
11673 	 * consider the group overloaded.
11674 	 */
11675 	if (sched_energy_enabled() && !sgs->group_overutilized)
11676 		return false;
11677 
11678 	if (sgs->sum_nr_running <= sgs->group_weight)
11679 		return false;
11680 
11681 	if ((sgs->group_capacity * 100) <
11682 			(sgs->group_util * imbalance_pct))
11683 		return true;
11684 
11685 	if ((sgs->group_capacity * imbalance_pct) <
11686 			(sgs->group_runnable * 100))
11687 		return true;
11688 
11689 	return false;
11690 }
11691 
11692 static inline enum
11693 group_type group_classify(unsigned int imbalance_pct,
11694 			  struct sched_group *group,
11695 			  struct sg_lb_stats *sgs)
11696 {
11697 	if (group_is_overloaded(imbalance_pct, sgs))
11698 		return group_overloaded;
11699 
11700 	if (sgs->group_llc_balance)
11701 		return group_llc_balance;
11702 
11703 	if (sg_imbalanced(group))
11704 		return group_imbalanced;
11705 
11706 	if (sgs->group_asym_packing)
11707 		return group_asym_packing;
11708 
11709 	if (sgs->group_smt_balance)
11710 		return group_smt_balance;
11711 
11712 	if (sgs->group_misfit_task_load)
11713 		return group_misfit_task;
11714 
11715 	if (!group_has_capacity(imbalance_pct, sgs))
11716 		return group_fully_busy;
11717 
11718 	return group_has_spare;
11719 }
11720 
11721 /**
11722  * sched_use_asym_prio - Check whether asym_packing priority must be used
11723  * @sd:		The scheduling domain of the load balancing
11724  * @cpu:	A CPU
11725  *
11726  * Always use CPU priority when balancing load between SMT siblings. When
11727  * balancing load between cores, it is not sufficient that @cpu is idle. Only
11728  * use CPU priority if the whole core is idle.
11729  *
11730  * Returns: True if the priority of @cpu must be followed. False otherwise.
11731  */
11732 static bool sched_use_asym_prio(struct sched_domain *sd, int cpu)
11733 {
11734 	if (!(sd->flags & SD_ASYM_PACKING))
11735 		return false;
11736 
11737 	if (!sched_smt_active())
11738 		return true;
11739 
11740 	return sd->flags & SD_SHARE_CPUCAPACITY || is_core_idle(cpu);
11741 }
11742 
11743 static inline bool sched_asym(struct sched_domain *sd, int dst_cpu, int src_cpu)
11744 {
11745 	/*
11746 	 * First check if @dst_cpu can do asym_packing load balance. Only do it
11747 	 * if it has higher priority than @src_cpu.
11748 	 */
11749 	return sched_use_asym_prio(sd, dst_cpu) &&
11750 		sched_asym_prefer(dst_cpu, src_cpu);
11751 }
11752 
11753 /**
11754  * sched_group_asym - Check if the destination CPU can do asym_packing balance
11755  * @env:	The load balancing environment
11756  * @sgs:	Load-balancing statistics of the candidate busiest group
11757  * @group:	The candidate busiest group
11758  *
11759  * @env::dst_cpu can do asym_packing if it has higher priority than the
11760  * preferred CPU of @group.
11761  *
11762  * Return: true if @env::dst_cpu can do with asym_packing load balance. False
11763  * otherwise.
11764  */
11765 static inline bool
11766 sched_group_asym(struct lb_env *env, struct sg_lb_stats *sgs, struct sched_group *group)
11767 {
11768 	/*
11769 	 * CPU priorities do not make sense for SMT cores with more than one
11770 	 * busy sibling.
11771 	 */
11772 	if ((group->flags & SD_SHARE_CPUCAPACITY) &&
11773 	    (sgs->group_weight - sgs->idle_cpus != 1))
11774 		return false;
11775 
11776 	return sched_asym(env->sd, env->dst_cpu, READ_ONCE(group->asym_prefer_cpu));
11777 }
11778 
11779 /* One group has more than one SMT CPU while the other group does not */
11780 static inline bool smt_vs_nonsmt_groups(struct sched_group *sg1,
11781 				    struct sched_group *sg2)
11782 {
11783 	if (!sg1 || !sg2)
11784 		return false;
11785 
11786 	return (sg1->flags & SD_SHARE_CPUCAPACITY) !=
11787 		(sg2->flags & SD_SHARE_CPUCAPACITY);
11788 }
11789 
11790 static inline bool smt_balance(struct lb_env *env, struct sg_lb_stats *sgs,
11791 			       struct sched_group *group)
11792 {
11793 	if (!env->idle)
11794 		return false;
11795 
11796 	/*
11797 	 * For SMT source group, it is better to move a task
11798 	 * to a CPU that doesn't have multiple tasks sharing its CPU capacity.
11799 	 * Note that if a group has a single SMT, SD_SHARE_CPUCAPACITY
11800 	 * will not be on.
11801 	 */
11802 	if (group->flags & SD_SHARE_CPUCAPACITY &&
11803 	    sgs->sum_h_nr_running > 1)
11804 		return true;
11805 
11806 	return false;
11807 }
11808 
11809 static inline long sibling_imbalance(struct lb_env *env,
11810 				    struct sd_lb_stats *sds,
11811 				    struct sg_lb_stats *busiest,
11812 				    struct sg_lb_stats *local)
11813 {
11814 	int ncores_busiest, ncores_local;
11815 	long imbalance;
11816 
11817 	if (!env->idle || !busiest->sum_nr_running)
11818 		return 0;
11819 
11820 	ncores_busiest = sds->busiest->cores;
11821 	ncores_local = sds->local->cores;
11822 
11823 	if (ncores_busiest == ncores_local) {
11824 		imbalance = busiest->sum_nr_running;
11825 		lsub_positive(&imbalance, local->sum_nr_running);
11826 		return imbalance;
11827 	}
11828 
11829 	/* Balance such that nr_running/ncores ratio are same on both groups */
11830 	imbalance = ncores_local * busiest->sum_nr_running;
11831 	lsub_positive(&imbalance, ncores_busiest * local->sum_nr_running);
11832 	/* Normalize imbalance and do rounding on normalization */
11833 	imbalance = 2 * imbalance + ncores_local + ncores_busiest;
11834 	imbalance /= ncores_local + ncores_busiest;
11835 
11836 	/* Take advantage of resource in an empty sched group */
11837 	if (imbalance <= 1 && local->sum_nr_running == 0 &&
11838 	    busiest->sum_nr_running > 1)
11839 		imbalance = 2;
11840 
11841 	return imbalance;
11842 }
11843 
11844 static inline bool
11845 sched_reduced_capacity(struct rq *rq, struct sched_domain *sd)
11846 {
11847 	/*
11848 	 * When there is more than 1 task, the group_overloaded case already
11849 	 * takes care of cpu with reduced capacity
11850 	 */
11851 	if (rq->cfs.h_nr_runnable != 1)
11852 		return false;
11853 
11854 	return check_cpu_capacity(rq, sd);
11855 }
11856 
11857 #ifdef CONFIG_SCHED_CACHE
11858 /*
11859  * Record the statistics for this scheduler group for later
11860  * use. These values guide load balancing on aggregating tasks
11861  * to a LLC.
11862  */
11863 static void record_sg_llc_stats(struct lb_env *env,
11864 				struct sg_lb_stats *sgs,
11865 				struct sched_group *group)
11866 {
11867 	struct sched_domain_shared *sd_share;
11868 	int cpu;
11869 
11870 	if (!sched_cache_enabled() || env->idle == CPU_NEWLY_IDLE)
11871 		return;
11872 
11873 	/* Only care about sched domain spanning multiple LLCs */
11874 	if (env->sd->child != rcu_dereference_all(per_cpu(sd_llc, env->dst_cpu)))
11875 		return;
11876 
11877 	/*
11878 	 * At this point we know this group spans a LLC domain.
11879 	 * Record the statistic of this group in its corresponding
11880 	 * shared LLC domain.
11881 	 * Note: sd_share cannot be obtained via sd->child->shared,
11882 	 * because the latter refers to the domain that covers the
11883 	 * local group. Instead, sd_share should be located using
11884 	 * the first CPU of the LLC group.
11885 	 */
11886 	cpu = cpumask_first(sched_group_span(group));
11887 	sd_share = rcu_dereference_all(per_cpu(sd_llc_shared, cpu));
11888 	if (!sd_share)
11889 		return;
11890 
11891 	if (READ_ONCE(sd_share->util_avg) != sgs->group_util)
11892 		WRITE_ONCE(sd_share->util_avg, sgs->group_util);
11893 
11894 	if (unlikely(READ_ONCE(sd_share->capacity) != sgs->group_capacity))
11895 		WRITE_ONCE(sd_share->capacity, sgs->group_capacity);
11896 }
11897 
11898 /*
11899  * Do LLC balance on sched group that contains LLC, and have tasks preferring
11900  * to run on LLC in idle dst_cpu.
11901  */
11902 static inline bool llc_balance(struct lb_env *env, struct sg_lb_stats *sgs,
11903 			       struct sched_group *group)
11904 {
11905 	if (!sched_cache_enabled())
11906 		return false;
11907 
11908 	if (env->sd->flags & SD_SHARE_LLC)
11909 		return false;
11910 
11911 	/*
11912 	 * On asymmetric domains, group_misfit_task_load
11913 	 * should be prioritized to move tasks to CPU that fit them
11914 	 * over aggregating tasks to their preferred LLC.
11915 	 */
11916 	if ((env->sd->flags & SD_ASYM_CPUCAPACITY) &&
11917 	    sgs->group_misfit_task_load)
11918 		return false;
11919 
11920 	/*
11921 	 * Skip cache aware tagging if nr_balanced_failed is sufficiently high.
11922 	 * Threshold of cache_nice_tries is set to 1 higher than nr_balance_failed
11923 	 * to avoid excessive task migration at the same time.
11924 	 */
11925 	if (env->sd->nr_balance_failed >= env->sd->cache_nice_tries + 1)
11926 		return false;
11927 
11928 	if (sgs->nr_pref_dst_llc &&
11929 	    can_migrate_llc(cpumask_first(sched_group_span(group)),
11930 			    env->dst_cpu, 0, true) == mig_llc)
11931 		return true;
11932 
11933 	return false;
11934 }
11935 
11936 static bool update_llc_busiest(struct lb_env *env,
11937 			       struct sg_lb_stats *busiest,
11938 			       struct sg_lb_stats *sgs)
11939 {
11940 	/*
11941 	 * There are more tasks that want to run on dst_cpu's LLC.
11942 	 */
11943 	return sgs->nr_pref_dst_llc > busiest->nr_pref_dst_llc;
11944 }
11945 #else
11946 static inline void record_sg_llc_stats(struct lb_env *env, struct sg_lb_stats *sgs,
11947 				       struct sched_group *group)
11948 {
11949 }
11950 
11951 static inline bool llc_balance(struct lb_env *env, struct sg_lb_stats *sgs,
11952 			       struct sched_group *group)
11953 {
11954 	return false;
11955 }
11956 
11957 static bool update_llc_busiest(struct lb_env *env,
11958 			       struct sg_lb_stats *busiest,
11959 			       struct sg_lb_stats *sgs)
11960 {
11961 	return false;
11962 }
11963 #endif
11964 
11965 /**
11966  * update_sg_lb_stats - Update sched_group's statistics for load balancing.
11967  * @env: The load balancing environment.
11968  * @sds: Load-balancing data with statistics of the local group.
11969  * @group: sched_group whose statistics are to be updated.
11970  * @sgs: variable to hold the statistics for this group.
11971  * @sg_overloaded: sched_group is overloaded
11972  */
11973 static inline void update_sg_lb_stats(struct lb_env *env,
11974 				      struct sd_lb_stats *sds,
11975 				      struct sched_group *group,
11976 				      struct sg_lb_stats *sgs,
11977 				      bool *sg_overloaded)
11978 {
11979 	int i, nr_running, local_group, sd_flags = env->sd->flags;
11980 	bool balancing_at_rd = !env->sd->parent;
11981 
11982 	memset(sgs, 0, sizeof(*sgs));
11983 
11984 	local_group = group == sds->local;
11985 
11986 	for_each_cpu_and(i, sched_group_span(group), env->cpus) {
11987 		struct rq *rq = cpu_rq(i);
11988 		unsigned long load = cpu_load(rq);
11989 
11990 		sgs->group_load += load;
11991 		sgs->group_util += cpu_util_cfs(i);
11992 		sgs->group_runnable += cpu_runnable(rq);
11993 		sgs->sum_h_nr_running += rq->cfs.h_nr_runnable;
11994 
11995 		nr_running = rq->nr_running;
11996 		sgs->sum_nr_running += nr_running;
11997 
11998 		if (cpu_overutilized(i))
11999 			sgs->group_overutilized = 1;
12000 
12001 #ifdef CONFIG_SCHED_CACHE
12002 		if (sched_cache_enabled()) {
12003 			struct sched_domain *sd_tmp;
12004 			int dst_llc;
12005 
12006 			dst_llc = llc_id(env->dst_cpu);
12007 			if (llc_id(i) != dst_llc) {
12008 				sd_tmp = rcu_dereference_all(rq->sd);
12009 				if (sd_tmp && (unsigned int)dst_llc < sd_tmp->llc_max)
12010 					sgs->nr_pref_dst_llc += sd_tmp->llc_counts[dst_llc];
12011 			}
12012 		}
12013 #endif
12014 
12015 		/*
12016 		 * No need to call idle_cpu() if nr_running is not 0
12017 		 */
12018 		if (!nr_running && idle_cpu(i)) {
12019 			sgs->idle_cpus++;
12020 			/* Idle cpu can't have misfit task */
12021 			continue;
12022 		}
12023 
12024 		/* Overload indicator is only updated at root domain */
12025 		if (balancing_at_rd && nr_running > 1)
12026 			*sg_overloaded = 1;
12027 
12028 #ifdef CONFIG_NUMA_BALANCING
12029 		/* Only fbq_classify_group() uses this to classify NUMA groups */
12030 		if (sd_flags & SD_NUMA) {
12031 			sgs->nr_numa_running += rq->nr_numa_running;
12032 			sgs->nr_preferred_running += rq->nr_preferred_running;
12033 		}
12034 #endif
12035 		if (local_group)
12036 			continue;
12037 
12038 		if (sd_flags & SD_ASYM_CPUCAPACITY) {
12039 			if (rq->misfit_task_load) {
12040 				/*
12041 				 * Always mark the root domain overloaded so big
12042 				 * CPUs can pick up misfit tasks via newly idle
12043 				 * balance.
12044 				 */
12045 				if (balancing_at_rd)
12046 					*sg_overloaded = 1;
12047 
12048 				/*
12049 				 * Only account misfit load if @dst_cpu can
12050 				 * help; otherwise, the group may be classified
12051 				 * as misfit_task and update_sd_pick_busiest()
12052 				 * will skip it.
12053 				 */
12054 				if (capacity_greater(capacity_of(env->dst_cpu),
12055 						     group->sgc->max_capacity) &&
12056 				    (sgs->group_misfit_task_load < rq->misfit_task_load))
12057 					sgs->group_misfit_task_load = rq->misfit_task_load;
12058 			}
12059 		} else if (env->idle && sched_reduced_capacity(rq, env->sd)) {
12060 			/* Check for a task running on a CPU with reduced capacity */
12061 			if (sgs->group_misfit_task_load < load)
12062 				sgs->group_misfit_task_load = load;
12063 		}
12064 	}
12065 
12066 	sgs->group_capacity = group->sgc->capacity;
12067 
12068 	sgs->group_weight = group->group_weight;
12069 
12070 	if (!local_group) {
12071 		/* Check if dst CPU is idle and preferred to this group */
12072 		if (env->idle && sgs->sum_h_nr_running &&
12073 		    sched_group_asym(env, sgs, group))
12074 			sgs->group_asym_packing = 1;
12075 
12076 		/* Check for loaded SMT group to be balanced to dst CPU */
12077 		if (smt_balance(env, sgs, group))
12078 			sgs->group_smt_balance = 1;
12079 
12080 		/* Check for tasks in this group can be moved to their preferred LLC */
12081 		if (llc_balance(env, sgs, group))
12082 			sgs->group_llc_balance = 1;
12083 	}
12084 
12085 	sgs->group_type = group_classify(env->sd->imbalance_pct, group, sgs);
12086 
12087 	record_sg_llc_stats(env, sgs, group);
12088 	/* Computing avg_load makes sense only when group is overloaded */
12089 	if (sgs->group_type == group_overloaded)
12090 		sgs->avg_load = (sgs->group_load * SCHED_CAPACITY_SCALE) /
12091 				sgs->group_capacity;
12092 }
12093 
12094 /**
12095  * update_sd_pick_busiest - return 1 on busiest group
12096  * @env: The load balancing environment.
12097  * @sds: sched_domain statistics
12098  * @sg: sched_group candidate to be checked for being the busiest
12099  * @sgs: sched_group statistics
12100  *
12101  * Determine if @sg is a busier group than the previously selected
12102  * busiest group.
12103  *
12104  * Return: %true if @sg is a busier group than the previously selected
12105  * busiest group. %false otherwise.
12106  */
12107 static bool update_sd_pick_busiest(struct lb_env *env,
12108 				   struct sd_lb_stats *sds,
12109 				   struct sched_group *sg,
12110 				   struct sg_lb_stats *sgs)
12111 {
12112 	struct sg_lb_stats *busiest = &sds->busiest_stat;
12113 
12114 	/* Make sure that there is at least one task to pull */
12115 	if (!sgs->sum_h_nr_running)
12116 		return false;
12117 
12118 	/*
12119 	 * Don't try to pull misfit tasks we can't help.
12120 	 * We can use max_capacity here as reduction in capacity on some
12121 	 * CPUs in the group should either be possible to resolve
12122 	 * internally or be covered by avg_load imbalance (eventually).
12123 	 *
12124 	 * When SMT is active, only pull a misfit to dst_cpu if it is on a
12125 	 * fully idle core; otherwise the effective capacity of the core is
12126 	 * reduced and we may not actually provide more capacity than the
12127 	 * source.
12128 	 */
12129 	if ((env->sd->flags & SD_ASYM_CPUCAPACITY) &&
12130 	    (sgs->group_type == group_misfit_task) &&
12131 	    (!env->dst_core_idle ||
12132 	     !capacity_greater(capacity_of(env->dst_cpu), sg->sgc->max_capacity) ||
12133 	     sds->local_stat.group_type != group_has_spare))
12134 		return false;
12135 
12136 	/*
12137 	 * Candidate sg has no more than one task per CPU and has higher
12138 	 * per-CPU capacity. Migrating tasks to less capable CPUs may harm
12139 	 * throughput. Maximize throughput, power/energy consequences are not
12140 	 * considered.
12141 	 */
12142 	if ((env->sd->flags & SD_ASYM_CPUCAPACITY) &&
12143 	    (sgs->group_type <= group_fully_busy) &&
12144 	    (capacity_greater(sg->sgc->min_capacity, capacity_of(env->dst_cpu))))
12145 		return false;
12146 
12147 	if (sgs->group_type > busiest->group_type)
12148 		return true;
12149 
12150 	if (sgs->group_type < busiest->group_type)
12151 		return false;
12152 
12153 	/*
12154 	 * The candidate and the current busiest group are the same type of
12155 	 * group. Let check which one is the busiest according to the type.
12156 	 */
12157 
12158 	switch (sgs->group_type) {
12159 	case group_overloaded:
12160 		/* Select the overloaded group with highest avg_load. */
12161 		return sgs->avg_load > busiest->avg_load;
12162 
12163 	case group_llc_balance:
12164 		/* Select the group with most tasks preferring dst LLC */
12165 		return update_llc_busiest(env, busiest, sgs);
12166 
12167 	case group_imbalanced:
12168 		/*
12169 		 * Select the 1st imbalanced group as we don't have any way to
12170 		 * choose one more than another.
12171 		 */
12172 		return false;
12173 
12174 	case group_asym_packing:
12175 		/* Prefer to move from lowest priority CPU's work */
12176 		return sched_asym_prefer(READ_ONCE(sds->busiest->asym_prefer_cpu),
12177 					 READ_ONCE(sg->asym_prefer_cpu));
12178 
12179 	case group_misfit_task:
12180 		/*
12181 		 * If we have more than one misfit sg go with the biggest
12182 		 * misfit.
12183 		 */
12184 		return sgs->group_misfit_task_load > busiest->group_misfit_task_load;
12185 
12186 	case group_smt_balance:
12187 		/*
12188 		 * Check if we have spare CPUs on either SMT group to
12189 		 * choose has spare or fully busy handling.
12190 		 */
12191 		if (sgs->idle_cpus != 0 || busiest->idle_cpus != 0)
12192 			goto has_spare;
12193 
12194 		fallthrough;
12195 
12196 	case group_fully_busy:
12197 		/*
12198 		 * Select the fully busy group with highest avg_load. In
12199 		 * theory, there is no need to pull task from such kind of
12200 		 * group because tasks have all compute capacity that they need
12201 		 * but we can still improve the overall throughput by reducing
12202 		 * contention when accessing shared HW resources.
12203 		 *
12204 		 * XXX for now avg_load is not computed and always 0 so we
12205 		 * select the 1st one, except if @sg is composed of SMT
12206 		 * siblings.
12207 		 */
12208 
12209 		if (sgs->avg_load < busiest->avg_load)
12210 			return false;
12211 
12212 		if (sgs->avg_load == busiest->avg_load) {
12213 			/*
12214 			 * SMT sched groups need more help than non-SMT groups.
12215 			 * If @sg happens to also be SMT, either choice is good.
12216 			 */
12217 			if (sds->busiest->flags & SD_SHARE_CPUCAPACITY)
12218 				return false;
12219 		}
12220 
12221 		break;
12222 
12223 	case group_has_spare:
12224 		/*
12225 		 * Do not pick sg with SMT CPUs over sg with pure CPUs,
12226 		 * as we do not want to pull task off SMT core with one task
12227 		 * and make the core idle.
12228 		 */
12229 		if (smt_vs_nonsmt_groups(sds->busiest, sg)) {
12230 			if (sg->flags & SD_SHARE_CPUCAPACITY && sgs->sum_h_nr_running <= 1)
12231 				return false;
12232 			else
12233 				return true;
12234 		}
12235 has_spare:
12236 
12237 		/*
12238 		 * Select not overloaded group with lowest number of idle CPUs
12239 		 * and highest number of running tasks. We could also compare
12240 		 * the spare capacity which is more stable but it can end up
12241 		 * that the group has less spare capacity but finally more idle
12242 		 * CPUs which means less opportunity to pull tasks.
12243 		 */
12244 		if (sgs->idle_cpus > busiest->idle_cpus)
12245 			return false;
12246 		else if ((sgs->idle_cpus == busiest->idle_cpus) &&
12247 			 (sgs->sum_nr_running <= busiest->sum_nr_running))
12248 			return false;
12249 
12250 		break;
12251 	}
12252 
12253 	return true;
12254 }
12255 
12256 #ifdef CONFIG_NUMA_BALANCING
12257 static inline enum fbq_type fbq_classify_group(struct sg_lb_stats *sgs)
12258 {
12259 	if (sgs->sum_h_nr_running > sgs->nr_numa_running)
12260 		return regular;
12261 	if (sgs->sum_h_nr_running > sgs->nr_preferred_running)
12262 		return remote;
12263 	return all;
12264 }
12265 
12266 static inline enum fbq_type fbq_classify_rq(struct rq *rq)
12267 {
12268 	if (rq->nr_running > rq->nr_numa_running)
12269 		return regular;
12270 	if (rq->nr_running > rq->nr_preferred_running)
12271 		return remote;
12272 	return all;
12273 }
12274 #else /* !CONFIG_NUMA_BALANCING: */
12275 static inline enum fbq_type fbq_classify_group(struct sg_lb_stats *sgs)
12276 {
12277 	return all;
12278 }
12279 
12280 static inline enum fbq_type fbq_classify_rq(struct rq *rq)
12281 {
12282 	return regular;
12283 }
12284 #endif /* !CONFIG_NUMA_BALANCING */
12285 
12286 
12287 struct sg_lb_stats;
12288 
12289 /*
12290  * task_running_on_cpu - return 1 if @p is running on @cpu.
12291  */
12292 
12293 static unsigned int task_running_on_cpu(int cpu, struct task_struct *p)
12294 {
12295 	/* Task has no contribution or is new */
12296 	if (cpu != task_cpu(p) || !READ_ONCE(p->se.avg.last_update_time))
12297 		return 0;
12298 
12299 	if (task_on_rq_queued(p))
12300 		return 1;
12301 
12302 	return 0;
12303 }
12304 
12305 /**
12306  * idle_cpu_without - would a given CPU be idle without p ?
12307  * @cpu: the processor on which idleness is tested.
12308  * @p: task which should be ignored.
12309  *
12310  * Return: 1 if the CPU would be idle. 0 otherwise.
12311  */
12312 static int idle_cpu_without(int cpu, struct task_struct *p)
12313 {
12314 	struct rq *rq = cpu_rq(cpu);
12315 
12316 	if (rq->curr != rq->idle && rq->curr != p)
12317 		return 0;
12318 
12319 	/*
12320 	 * rq->nr_running can't be used but an updated version without the
12321 	 * impact of p on cpu must be used instead. The updated nr_running
12322 	 * be computed and tested before calling idle_cpu_without().
12323 	 */
12324 
12325 	if (rq->ttwu_pending)
12326 		return 0;
12327 
12328 	return 1;
12329 }
12330 
12331 /*
12332  * update_sg_wakeup_stats - Update sched_group's statistics for wakeup.
12333  * @sd: The sched_domain level to look for idlest group.
12334  * @group: sched_group whose statistics are to be updated.
12335  * @sgs: variable to hold the statistics for this group.
12336  * @p: The task for which we look for the idlest group/CPU.
12337  */
12338 static inline void update_sg_wakeup_stats(struct sched_domain *sd,
12339 					  struct sched_group *group,
12340 					  struct sg_lb_stats *sgs,
12341 					  struct task_struct *p)
12342 {
12343 	int i, nr_running;
12344 
12345 	memset(sgs, 0, sizeof(*sgs));
12346 
12347 	/* Assume that task can't fit any CPU of the group */
12348 	if (sd->flags & SD_ASYM_CPUCAPACITY)
12349 		sgs->group_misfit_task_load = 1;
12350 
12351 	for_each_cpu_and(i, sched_group_span(group), p->cpus_ptr) {
12352 		struct rq *rq = cpu_rq(i);
12353 		unsigned int local;
12354 
12355 		sgs->group_load += cpu_load_without(rq, p);
12356 		sgs->group_util += cpu_util_without(i, p);
12357 		sgs->group_runnable += cpu_runnable_without(rq, p);
12358 		local = task_running_on_cpu(i, p);
12359 		sgs->sum_h_nr_running += rq->cfs.h_nr_runnable - local;
12360 
12361 		nr_running = rq->nr_running - local;
12362 		sgs->sum_nr_running += nr_running;
12363 
12364 		/*
12365 		 * No need to call idle_cpu_without() if nr_running is not 0
12366 		 */
12367 		if (!nr_running && idle_cpu_without(i, p))
12368 			sgs->idle_cpus++;
12369 
12370 		/* Check if task fits in the CPU */
12371 		if (sd->flags & SD_ASYM_CPUCAPACITY &&
12372 		    sgs->group_misfit_task_load &&
12373 		    task_fits_cpu(p, i))
12374 			sgs->group_misfit_task_load = 0;
12375 
12376 	}
12377 
12378 	sgs->group_capacity = group->sgc->capacity;
12379 
12380 	sgs->group_weight = group->group_weight;
12381 
12382 	sgs->group_type = group_classify(sd->imbalance_pct, group, sgs);
12383 
12384 	/*
12385 	 * Computing avg_load makes sense only when group is fully busy or
12386 	 * overloaded
12387 	 */
12388 	if (sgs->group_type == group_fully_busy ||
12389 		sgs->group_type == group_overloaded)
12390 		sgs->avg_load = (sgs->group_load * SCHED_CAPACITY_SCALE) /
12391 				sgs->group_capacity;
12392 }
12393 
12394 static bool update_pick_idlest(struct sched_group *idlest,
12395 			       struct sg_lb_stats *idlest_sgs,
12396 			       struct sched_group *group,
12397 			       struct sg_lb_stats *sgs)
12398 {
12399 	if (sgs->group_type < idlest_sgs->group_type)
12400 		return true;
12401 
12402 	if (sgs->group_type > idlest_sgs->group_type)
12403 		return false;
12404 
12405 	/*
12406 	 * The candidate and the current idlest group are the same type of
12407 	 * group. Let check which one is the idlest according to the type.
12408 	 */
12409 
12410 	switch (sgs->group_type) {
12411 	case group_overloaded:
12412 	case group_fully_busy:
12413 		/* Select the group with lowest avg_load. */
12414 		if (idlest_sgs->avg_load <= sgs->avg_load)
12415 			return false;
12416 		break;
12417 
12418 	case group_llc_balance:
12419 	case group_imbalanced:
12420 	case group_asym_packing:
12421 	case group_smt_balance:
12422 		/* Those types are not used in the slow wakeup path */
12423 		return false;
12424 
12425 	case group_misfit_task:
12426 		/* Select group with the highest max capacity */
12427 		if (idlest->sgc->max_capacity >= group->sgc->max_capacity)
12428 			return false;
12429 		break;
12430 
12431 	case group_has_spare:
12432 		/* Select group with most idle CPUs */
12433 		if (idlest_sgs->idle_cpus > sgs->idle_cpus)
12434 			return false;
12435 
12436 		/* Select group with lowest group_util */
12437 		if (idlest_sgs->idle_cpus == sgs->idle_cpus &&
12438 			idlest_sgs->group_util <= sgs->group_util)
12439 			return false;
12440 
12441 		break;
12442 	}
12443 
12444 	return true;
12445 }
12446 
12447 /*
12448  * sched_balance_find_dst_group() finds and returns the least busy CPU group within the
12449  * domain.
12450  *
12451  * Assumes p is allowed on at least one CPU in sd.
12452  */
12453 static struct sched_group *
12454 sched_balance_find_dst_group(struct sched_domain *sd, struct task_struct *p, int this_cpu)
12455 {
12456 	struct sched_group *idlest = NULL, *local = NULL, *group = sd->groups;
12457 	struct sg_lb_stats local_sgs, tmp_sgs;
12458 	struct sg_lb_stats *sgs;
12459 	unsigned long imbalance;
12460 	struct sg_lb_stats idlest_sgs = {
12461 			.avg_load = UINT_MAX,
12462 			.group_type = group_overloaded,
12463 	};
12464 
12465 	do {
12466 		int local_group;
12467 
12468 		/* Skip over this group if it has no CPUs allowed */
12469 		if (!cpumask_intersects(sched_group_span(group),
12470 					p->cpus_ptr))
12471 			continue;
12472 
12473 		/* Skip over this group if no cookie matched */
12474 		if (!sched_group_cookie_match(cpu_rq(this_cpu), p, group))
12475 			continue;
12476 
12477 		local_group = cpumask_test_cpu(this_cpu,
12478 					       sched_group_span(group));
12479 
12480 		if (local_group) {
12481 			sgs = &local_sgs;
12482 			local = group;
12483 		} else {
12484 			sgs = &tmp_sgs;
12485 		}
12486 
12487 		update_sg_wakeup_stats(sd, group, sgs, p);
12488 
12489 		if (!local_group && update_pick_idlest(idlest, &idlest_sgs, group, sgs)) {
12490 			idlest = group;
12491 			idlest_sgs = *sgs;
12492 		}
12493 
12494 	} while (group = group->next, group != sd->groups);
12495 
12496 
12497 	/* There is no idlest group to push tasks to */
12498 	if (!idlest)
12499 		return NULL;
12500 
12501 	/* The local group has been skipped because of CPU affinity */
12502 	if (!local)
12503 		return idlest;
12504 
12505 	/*
12506 	 * If the local group is idler than the selected idlest group
12507 	 * don't try and push the task.
12508 	 */
12509 	if (local_sgs.group_type < idlest_sgs.group_type)
12510 		return NULL;
12511 
12512 	/*
12513 	 * If the local group is busier than the selected idlest group
12514 	 * try and push the task.
12515 	 */
12516 	if (local_sgs.group_type > idlest_sgs.group_type)
12517 		return idlest;
12518 
12519 	switch (local_sgs.group_type) {
12520 	case group_overloaded:
12521 	case group_fully_busy:
12522 
12523 		/* Calculate allowed imbalance based on load */
12524 		imbalance = scale_load_down(NICE_0_LOAD) *
12525 				(sd->imbalance_pct-100) / 100;
12526 
12527 		/*
12528 		 * When comparing groups across NUMA domains, it's possible for
12529 		 * the local domain to be very lightly loaded relative to the
12530 		 * remote domains but "imbalance" skews the comparison making
12531 		 * remote CPUs look much more favourable. When considering
12532 		 * cross-domain, add imbalance to the load on the remote node
12533 		 * and consider staying local.
12534 		 */
12535 
12536 		if ((sd->flags & SD_NUMA) &&
12537 		    ((idlest_sgs.avg_load + imbalance) >= local_sgs.avg_load))
12538 			return NULL;
12539 
12540 		/*
12541 		 * If the local group is less loaded than the selected
12542 		 * idlest group don't try and push any tasks.
12543 		 */
12544 		if (idlest_sgs.avg_load >= (local_sgs.avg_load + imbalance))
12545 			return NULL;
12546 
12547 		if (100 * local_sgs.avg_load <= sd->imbalance_pct * idlest_sgs.avg_load)
12548 			return NULL;
12549 		break;
12550 
12551 	case group_llc_balance:
12552 	case group_imbalanced:
12553 	case group_asym_packing:
12554 	case group_smt_balance:
12555 		/* Those type are not used in the slow wakeup path */
12556 		return NULL;
12557 
12558 	case group_misfit_task:
12559 		/* Select group with the highest max capacity */
12560 		if (local->sgc->max_capacity >= idlest->sgc->max_capacity)
12561 			return NULL;
12562 		break;
12563 
12564 	case group_has_spare:
12565 #ifdef CONFIG_NUMA
12566 		if (sd->flags & SD_NUMA) {
12567 			int imb_numa_nr = sd->imb_numa_nr;
12568 #ifdef CONFIG_NUMA_BALANCING
12569 			int idlest_cpu;
12570 			/*
12571 			 * If there is spare capacity at NUMA, try to select
12572 			 * the preferred node
12573 			 */
12574 			if (cpu_to_node(this_cpu) == p->numa_preferred_nid)
12575 				return NULL;
12576 
12577 			idlest_cpu = cpumask_first(sched_group_span(idlest));
12578 			if (cpu_to_node(idlest_cpu) == p->numa_preferred_nid)
12579 				return idlest;
12580 #endif /* CONFIG_NUMA_BALANCING */
12581 			/*
12582 			 * Otherwise, keep the task close to the wakeup source
12583 			 * and improve locality if the number of running tasks
12584 			 * would remain below threshold where an imbalance is
12585 			 * allowed while accounting for the possibility the
12586 			 * task is pinned to a subset of CPUs. If there is a
12587 			 * real need of migration, periodic load balance will
12588 			 * take care of it.
12589 			 */
12590 			if (p->nr_cpus_allowed != NR_CPUS) {
12591 				unsigned int w = cpumask_weight_and(p->cpus_ptr,
12592 								sched_group_span(local));
12593 				imb_numa_nr = min(w, sd->imb_numa_nr);
12594 			}
12595 
12596 			imbalance = abs(local_sgs.idle_cpus - idlest_sgs.idle_cpus);
12597 			if (!adjust_numa_imbalance(imbalance,
12598 						   local_sgs.sum_nr_running + 1,
12599 						   imb_numa_nr)) {
12600 				return NULL;
12601 			}
12602 		}
12603 #endif /* CONFIG_NUMA */
12604 
12605 		/*
12606 		 * Select group with highest number of idle CPUs. We could also
12607 		 * compare the utilization which is more stable but it can end
12608 		 * up that the group has less spare capacity but finally more
12609 		 * idle CPUs which means more opportunity to run task.
12610 		 */
12611 		if (local_sgs.idle_cpus >= idlest_sgs.idle_cpus)
12612 			return NULL;
12613 		break;
12614 	}
12615 
12616 	return idlest;
12617 }
12618 
12619 static void update_idle_cpu_scan(struct lb_env *env,
12620 				 unsigned long sum_util)
12621 {
12622 	struct sched_domain_shared *sd_share;
12623 	struct sched_domain *sd = env->sd;
12624 	int llc_weight, pct;
12625 	u64 x, y, tmp;
12626 	/*
12627 	 * Update the number of CPUs to scan in LLC domain, which could
12628 	 * be used as a hint in select_idle_cpu(). The update of sd_share
12629 	 * could be expensive because it is within a shared cache line.
12630 	 * So the write of this hint only occurs during periodic load
12631 	 * balancing, rather than CPU_NEWLY_IDLE, because the latter
12632 	 * can fire way more frequently than the former.
12633 	 */
12634 	if (!sched_feat(SIS_UTIL) || env->idle == CPU_NEWLY_IDLE)
12635 		return;
12636 
12637 	sd_share = sd->shared;
12638 	if (!sd_share)
12639 		return;
12640 
12641 	/*
12642 	 * The number of CPUs to search drops as sum_util increases, when
12643 	 * sum_util hits 85% or above, the scan stops.
12644 	 * The reason to choose 85% as the threshold is because this is the
12645 	 * imbalance_pct(117) when a LLC sched group is overloaded.
12646 	 *
12647 	 * let y = SCHED_CAPACITY_SCALE - p * x^2                       [1]
12648 	 * and y'= y / SCHED_CAPACITY_SCALE
12649 	 *
12650 	 * x is the ratio of sum_util compared to the CPU capacity:
12651 	 * x = sum_util / (llc_weight * SCHED_CAPACITY_SCALE)
12652 	 * y' is the ratio of CPUs to be scanned in the LLC domain,
12653 	 * and the number of CPUs to scan is calculated by:
12654 	 *
12655 	 * nr_scan = llc_weight * y'                                    [2]
12656 	 *
12657 	 * When x hits the threshold of overloaded, AKA, when
12658 	 * x = 100 / pct, y drops to 0. According to [1],
12659 	 * p should be SCHED_CAPACITY_SCALE * pct^2 / 10000
12660 	 *
12661 	 * Scale x by SCHED_CAPACITY_SCALE:
12662 	 * x' = sum_util / llc_weight;                                  [3]
12663 	 *
12664 	 * and finally [1] becomes:
12665 	 * y = SCHED_CAPACITY_SCALE -
12666 	 *     x'^2 * pct^2 / (10000 * SCHED_CAPACITY_SCALE)            [4]
12667 	 *
12668 	 */
12669 	/* equation [3] */
12670 	x = sum_util;
12671 	llc_weight = sd->span_weight;
12672 	do_div(x, llc_weight);
12673 
12674 	/* equation [4] */
12675 	pct = sd->imbalance_pct;
12676 	tmp = x * x * pct * pct;
12677 	do_div(tmp, 10000 * SCHED_CAPACITY_SCALE);
12678 	tmp = min_t(long, tmp, SCHED_CAPACITY_SCALE);
12679 	y = SCHED_CAPACITY_SCALE - tmp;
12680 
12681 	/* equation [2] */
12682 	y *= llc_weight;
12683 	do_div(y, SCHED_CAPACITY_SCALE);
12684 	if ((int)y != sd_share->nr_idle_scan)
12685 		WRITE_ONCE(sd_share->nr_idle_scan, (int)y);
12686 }
12687 
12688 /**
12689  * update_sd_lb_stats - Update sched_domain's statistics for load balancing.
12690  * @env: The load balancing environment.
12691  * @sds: variable to hold the statistics for this sched_domain.
12692  */
12693 
12694 static inline void update_sd_lb_stats(struct lb_env *env, struct sd_lb_stats *sds)
12695 {
12696 	struct sched_group *sg = env->sd->groups;
12697 	struct sg_lb_stats *local = &sds->local_stat;
12698 	struct sg_lb_stats tmp_sgs;
12699 	unsigned long sum_util = 0;
12700 	bool sg_overloaded = 0, sg_overutilized = 0;
12701 
12702 	env->dst_core_idle = !sched_smt_active() || is_core_idle(env->dst_cpu);
12703 
12704 	do {
12705 		struct sg_lb_stats *sgs = &tmp_sgs;
12706 		int local_group;
12707 
12708 		local_group = cpumask_test_cpu(env->dst_cpu, sched_group_span(sg));
12709 		if (local_group) {
12710 			sds->local = sg;
12711 			sgs = local;
12712 
12713 			if (env->idle != CPU_NEWLY_IDLE ||
12714 			    time_after_eq(jiffies, sg->sgc->next_update))
12715 				update_group_capacity(env->sd, env->dst_cpu);
12716 		}
12717 
12718 		update_sg_lb_stats(env, sds, sg, sgs, &sg_overloaded);
12719 
12720 		if (!local_group && update_sd_pick_busiest(env, sds, sg, sgs)) {
12721 			sds->busiest = sg;
12722 			sds->busiest_stat = *sgs;
12723 		}
12724 
12725 		sg_overutilized |= sgs->group_overutilized;
12726 
12727 		/* Now, start updating sd_lb_stats */
12728 		sds->total_load += sgs->group_load;
12729 		sds->total_capacity += sgs->group_capacity;
12730 
12731 		sum_util += sgs->group_util;
12732 		sg = sg->next;
12733 	} while (sg != env->sd->groups);
12734 
12735 	/*
12736 	 * Indicate that the child domain of the busiest group prefers tasks
12737 	 * go to a child's sibling domains first. NB the flags of a sched group
12738 	 * are those of the child domain.
12739 	 */
12740 	if (sds->busiest)
12741 		sds->prefer_sibling = !!(sds->busiest->flags & SD_PREFER_SIBLING);
12742 
12743 
12744 	if (env->sd->flags & SD_NUMA)
12745 		env->fbq_type = fbq_classify_group(&sds->busiest_stat);
12746 
12747 	if (!env->sd->parent) {
12748 		/* update overload indicator if we are at root domain */
12749 		set_rd_overloaded(env->dst_rq->rd, sg_overloaded);
12750 
12751 		/* Update over-utilization (tipping point, U >= 0) indicator */
12752 		set_rd_overutilized(env->dst_rq->rd, sg_overutilized);
12753 	} else if (sg_overutilized) {
12754 		set_rd_overutilized(env->dst_rq->rd, sg_overutilized);
12755 	}
12756 
12757 	update_idle_cpu_scan(env, sum_util);
12758 }
12759 
12760 /**
12761  * calculate_imbalance - Calculate the amount of imbalance present within the
12762  *			 groups of a given sched_domain during load balance.
12763  * @env: load balance environment
12764  * @sds: statistics of the sched_domain whose imbalance is to be calculated.
12765  */
12766 static inline void calculate_imbalance(struct lb_env *env, struct sd_lb_stats *sds)
12767 {
12768 	struct sg_lb_stats *local, *busiest;
12769 
12770 	local = &sds->local_stat;
12771 	busiest = &sds->busiest_stat;
12772 
12773 	if (busiest->group_type == group_misfit_task) {
12774 		if (env->sd->flags & SD_ASYM_CPUCAPACITY) {
12775 			/* Set imbalance to allow misfit tasks to be balanced. */
12776 			env->migration_type = migrate_misfit;
12777 			env->imbalance = 1;
12778 		} else {
12779 			/*
12780 			 * Set load imbalance to allow moving task from cpu
12781 			 * with reduced capacity.
12782 			 */
12783 			env->migration_type = migrate_load;
12784 			env->imbalance = busiest->group_misfit_task_load;
12785 		}
12786 		return;
12787 	}
12788 
12789 	if (busiest->group_type == group_asym_packing) {
12790 		/*
12791 		 * In case of asym capacity, we will try to migrate all load to
12792 		 * the preferred CPU.
12793 		 */
12794 		env->migration_type = migrate_task;
12795 		env->imbalance = busiest->sum_h_nr_running;
12796 		return;
12797 	}
12798 
12799 	if (busiest->group_type == group_smt_balance) {
12800 		/* Reduce number of tasks sharing CPU capacity */
12801 		env->migration_type = migrate_task;
12802 		env->imbalance = 1;
12803 		return;
12804 	}
12805 
12806 #ifdef CONFIG_SCHED_CACHE
12807 	if (busiest->group_type == group_llc_balance) {
12808 		/* Move a task that prefer local LLC */
12809 		env->migration_type = migrate_llc_task;
12810 		env->imbalance = 1;
12811 		return;
12812 	}
12813 #endif
12814 
12815 	if (busiest->group_type == group_imbalanced) {
12816 		/*
12817 		 * In the group_imb case we cannot rely on group-wide averages
12818 		 * to ensure CPU-load equilibrium, try to move any task to fix
12819 		 * the imbalance. The next load balance will take care of
12820 		 * balancing back the system.
12821 		 */
12822 		env->migration_type = migrate_task;
12823 		env->imbalance = 1;
12824 		return;
12825 	}
12826 
12827 	/*
12828 	 * Try to use spare capacity of local group without overloading it or
12829 	 * emptying busiest.
12830 	 */
12831 	if (local->group_type == group_has_spare) {
12832 		if ((busiest->group_type > group_fully_busy) &&
12833 		    !(env->sd->flags & SD_SHARE_LLC)) {
12834 			/*
12835 			 * If busiest is overloaded, try to fill spare
12836 			 * capacity. This might end up creating spare capacity
12837 			 * in busiest or busiest still being overloaded but
12838 			 * there is no simple way to directly compute the
12839 			 * amount of load to migrate in order to balance the
12840 			 * system.
12841 			 */
12842 			env->migration_type = migrate_util;
12843 			env->imbalance = max(local->group_capacity, local->group_util) -
12844 					 local->group_util;
12845 
12846 			/*
12847 			 * In some cases, the group's utilization is max or even
12848 			 * higher than capacity because of migrations but the
12849 			 * local CPU is (newly) idle. There is at least one
12850 			 * waiting task in this overloaded busiest group. Let's
12851 			 * try to pull it.
12852 			 */
12853 			if (env->idle && env->imbalance == 0) {
12854 				env->migration_type = migrate_task;
12855 				env->imbalance = 1;
12856 			}
12857 
12858 			return;
12859 		}
12860 
12861 		if (busiest->group_weight == 1 || sds->prefer_sibling) {
12862 			/*
12863 			 * When prefer sibling, evenly spread running tasks on
12864 			 * groups.
12865 			 */
12866 			env->migration_type = migrate_task;
12867 			env->imbalance = sibling_imbalance(env, sds, busiest, local);
12868 		} else {
12869 
12870 			/*
12871 			 * If there is no overload, we just want to even the number of
12872 			 * idle CPUs.
12873 			 */
12874 			env->migration_type = migrate_task;
12875 			env->imbalance = max_t(long, 0,
12876 					       (local->idle_cpus - busiest->idle_cpus));
12877 		}
12878 
12879 #ifdef CONFIG_NUMA
12880 		/* Consider allowing a small imbalance between NUMA groups */
12881 		if (env->sd->flags & SD_NUMA) {
12882 			env->imbalance = adjust_numa_imbalance(env->imbalance,
12883 							       local->sum_nr_running + 1,
12884 							       env->sd->imb_numa_nr);
12885 		}
12886 #endif
12887 
12888 		/* Number of tasks to move to restore balance */
12889 		env->imbalance >>= 1;
12890 
12891 		return;
12892 	}
12893 
12894 	/*
12895 	 * Local is fully busy but has to take more load to relieve the
12896 	 * busiest group
12897 	 */
12898 	if (local->group_type < group_overloaded) {
12899 		/*
12900 		 * Local will become overloaded so the avg_load metrics are
12901 		 * finally needed.
12902 		 */
12903 
12904 		local->avg_load = (local->group_load * SCHED_CAPACITY_SCALE) /
12905 				  local->group_capacity;
12906 
12907 		/*
12908 		 * If the local group is more loaded than the selected
12909 		 * busiest group don't try to pull any tasks.
12910 		 */
12911 		if (local->avg_load >= busiest->avg_load) {
12912 			env->imbalance = 0;
12913 			return;
12914 		}
12915 
12916 		sds->avg_load = (sds->total_load * SCHED_CAPACITY_SCALE) /
12917 				sds->total_capacity;
12918 
12919 		/*
12920 		 * If the local group is more loaded than the average system
12921 		 * load, don't try to pull any tasks.
12922 		 */
12923 		if (local->avg_load >= sds->avg_load) {
12924 			env->imbalance = 0;
12925 			return;
12926 		}
12927 
12928 	}
12929 
12930 	/*
12931 	 * Both group are or will become overloaded and we're trying to get all
12932 	 * the CPUs to the average_load, so we don't want to push ourselves
12933 	 * above the average load, nor do we wish to reduce the max loaded CPU
12934 	 * below the average load. At the same time, we also don't want to
12935 	 * reduce the group load below the group capacity. Thus we look for
12936 	 * the minimum possible imbalance.
12937 	 */
12938 	env->migration_type = migrate_load;
12939 	env->imbalance = min(
12940 		(busiest->avg_load - sds->avg_load) * busiest->group_capacity,
12941 		(sds->avg_load - local->avg_load) * local->group_capacity
12942 	) / SCHED_CAPACITY_SCALE;
12943 }
12944 
12945 /******* sched_balance_find_src_group() helpers end here *********************/
12946 
12947 /*
12948  * Decision matrix according to the local and busiest group type:
12949  *
12950  * busiest \ local has_spare fully_busy misfit asym imbalanced overloaded
12951  * has_spare        nr_idle   balanced   N/A    N/A  balanced   balanced
12952  * fully_busy       nr_idle   nr_idle    N/A    N/A  balanced   balanced
12953  * misfit_task      force     N/A        N/A    N/A  N/A        N/A
12954  * asym_packing     force     force      N/A    N/A  force      force
12955  * imbalanced       force     force      N/A    N/A  force      force
12956  * overloaded       force     force      N/A    N/A  force      avg_load
12957  *
12958  * N/A :      Not Applicable because already filtered while updating
12959  *            statistics.
12960  * balanced : The system is balanced for these 2 groups.
12961  * force :    Calculate the imbalance as load migration is probably needed.
12962  * avg_load : Only if imbalance is significant enough.
12963  * nr_idle :  dst_cpu is not busy and the number of idle CPUs is quite
12964  *            different in groups.
12965  */
12966 
12967 /**
12968  * sched_balance_find_src_group - Returns the busiest group within the sched_domain
12969  * if there is an imbalance.
12970  * @env: The load balancing environment.
12971  *
12972  * Also calculates the amount of runnable load which should be moved
12973  * to restore balance.
12974  *
12975  * Return:	- The busiest group if imbalance exists.
12976  */
12977 static struct sched_group *sched_balance_find_src_group(struct lb_env *env)
12978 {
12979 	struct sg_lb_stats *local, *busiest;
12980 	struct sd_lb_stats sds;
12981 
12982 	init_sd_lb_stats(&sds);
12983 
12984 	/*
12985 	 * Compute the various statistics relevant for load balancing at
12986 	 * this level.
12987 	 */
12988 	update_sd_lb_stats(env, &sds);
12989 
12990 	/* There is no busy sibling group to pull tasks from */
12991 	if (!sds.busiest)
12992 		goto out_balanced;
12993 
12994 	busiest = &sds.busiest_stat;
12995 
12996 	/* Misfit tasks should be dealt with regardless of the avg load */
12997 	if (busiest->group_type == group_misfit_task)
12998 		goto force_balance;
12999 
13000 	if (!is_rd_overutilized(env->dst_rq->rd) &&
13001 	    rcu_dereference_all(env->dst_rq->rd->pd))
13002 		goto out_balanced;
13003 
13004 	/* ASYM feature bypasses nice load balance check */
13005 	if (busiest->group_type == group_asym_packing)
13006 		goto force_balance;
13007 
13008 	/*
13009 	 * If the busiest group is imbalanced the below checks don't
13010 	 * work because they assume all things are equal, which typically
13011 	 * isn't true due to cpus_ptr constraints and the like.
13012 	 */
13013 	if (busiest->group_type == group_imbalanced)
13014 		goto force_balance;
13015 
13016 	local = &sds.local_stat;
13017 	/*
13018 	 * If the local group is busier than the selected busiest group
13019 	 * don't try and pull any tasks.
13020 	 */
13021 	if (local->group_type > busiest->group_type)
13022 		goto out_balanced;
13023 
13024 	/*
13025 	 * When groups are overloaded, use the avg_load to ensure fairness
13026 	 * between tasks.
13027 	 */
13028 	if (local->group_type == group_overloaded) {
13029 		/*
13030 		 * If the local group is more loaded than the selected
13031 		 * busiest group don't try to pull any tasks.
13032 		 */
13033 		if (local->avg_load >= busiest->avg_load)
13034 			goto out_balanced;
13035 
13036 		/* XXX broken for overlapping NUMA groups */
13037 		sds.avg_load = (sds.total_load * SCHED_CAPACITY_SCALE) /
13038 				sds.total_capacity;
13039 
13040 		/*
13041 		 * Don't pull any tasks if this group is already above the
13042 		 * domain average load.
13043 		 */
13044 		if (local->avg_load >= sds.avg_load)
13045 			goto out_balanced;
13046 
13047 		/*
13048 		 * If the busiest group is more loaded, use imbalance_pct to be
13049 		 * conservative.
13050 		 */
13051 		if (100 * busiest->avg_load <=
13052 				env->sd->imbalance_pct * local->avg_load)
13053 			goto out_balanced;
13054 	}
13055 
13056 	/*
13057 	 * Try to move all excess tasks to a sibling domain of the busiest
13058 	 * group's child domain.
13059 	 */
13060 	if (sds.prefer_sibling && local->group_type == group_has_spare &&
13061 	    (busiest->group_type == group_llc_balance ||
13062 	    sibling_imbalance(env, &sds, busiest, local) > 1))
13063 		goto force_balance;
13064 
13065 	if (busiest->group_type != group_overloaded) {
13066 		if (!env->idle) {
13067 			/*
13068 			 * If the busiest group is not overloaded (and as a
13069 			 * result the local one too) but this CPU is already
13070 			 * busy, let another idle CPU try to pull task.
13071 			 */
13072 			goto out_balanced;
13073 		}
13074 
13075 		if (busiest->group_type == group_smt_balance &&
13076 		    smt_vs_nonsmt_groups(sds.local, sds.busiest)) {
13077 			/* Let non SMT CPU pull from SMT CPU sharing with sibling */
13078 			goto force_balance;
13079 		}
13080 
13081 		if (busiest->group_weight > 1 &&
13082 		    local->idle_cpus <= (busiest->idle_cpus + 1)) {
13083 			/*
13084 			 * If the busiest group is not overloaded
13085 			 * and there is no imbalance between this and busiest
13086 			 * group wrt idle CPUs, it is balanced. The imbalance
13087 			 * becomes significant if the diff is greater than 1
13088 			 * otherwise we might end up to just move the imbalance
13089 			 * on another group. Of course this applies only if
13090 			 * there is more than 1 CPU per group.
13091 			 */
13092 			goto out_balanced;
13093 		}
13094 
13095 		if (busiest->sum_h_nr_running == 1) {
13096 			/*
13097 			 * busiest doesn't have any tasks waiting to run
13098 			 */
13099 			goto out_balanced;
13100 		}
13101 	}
13102 
13103 force_balance:
13104 	/* Looks like there is an imbalance. Compute it */
13105 	calculate_imbalance(env, &sds);
13106 	return env->imbalance ? sds.busiest : NULL;
13107 
13108 out_balanced:
13109 	env->imbalance = 0;
13110 	return NULL;
13111 }
13112 
13113 /*
13114  * sched_balance_find_src_rq - find the busiest runqueue among the CPUs in the group.
13115  */
13116 static struct rq *sched_balance_find_src_rq(struct lb_env *env,
13117 				     struct sched_group *group)
13118 {
13119 	struct rq *busiest = NULL, *rq;
13120 	unsigned long busiest_util = 0, busiest_load = 0, busiest_capacity = 1;
13121 	unsigned int __maybe_unused busiest_pref_llc = 0;
13122 	struct sched_domain __maybe_unused *sd_tmp;
13123 	unsigned int busiest_nr = 0;
13124 	int __maybe_unused dst_llc;
13125 	int i;
13126 
13127 	for_each_cpu_and(i, sched_group_span(group), env->cpus) {
13128 		unsigned long capacity, load, util;
13129 		unsigned int nr_running;
13130 		enum fbq_type rt;
13131 
13132 		rq = cpu_rq(i);
13133 		rt = fbq_classify_rq(rq);
13134 
13135 		/*
13136 		 * We classify groups/runqueues into three groups:
13137 		 *  - regular: there are !numa tasks
13138 		 *  - remote:  there are numa tasks that run on the 'wrong' node
13139 		 *  - all:     there is no distinction
13140 		 *
13141 		 * In order to avoid migrating ideally placed numa tasks,
13142 		 * ignore those when there's better options.
13143 		 *
13144 		 * If we ignore the actual busiest queue to migrate another
13145 		 * task, the next balance pass can still reduce the busiest
13146 		 * queue by moving tasks around inside the node.
13147 		 *
13148 		 * If we cannot move enough load due to this classification
13149 		 * the next pass will adjust the group classification and
13150 		 * allow migration of more tasks.
13151 		 *
13152 		 * Both cases only affect the total convergence complexity.
13153 		 */
13154 		if (rt > env->fbq_type)
13155 			continue;
13156 
13157 		nr_running = rq->cfs.h_nr_runnable;
13158 		if (!nr_running)
13159 			continue;
13160 
13161 		capacity = capacity_of(i);
13162 
13163 		/*
13164 		 * For ASYM_CPUCAPACITY domains, don't pick a CPU that could
13165 		 * eventually lead to active_balancing high->low capacity.
13166 		 * Higher per-CPU capacity is considered better than balancing
13167 		 * average load.
13168 		 */
13169 		if (env->sd->flags & SD_ASYM_CPUCAPACITY &&
13170 		    nr_running == 1) {
13171 			bool cluster_equal_cap = static_branch_unlikely(&sched_cluster_active) &&
13172 						 (get_actual_cpu_capacity(env->dst_cpu) ==
13173 						  get_actual_cpu_capacity(i));
13174 			bool smt_degraded_cap = sched_smt_active() && !is_core_idle(i);
13175 
13176 			/*
13177 			 * Busy SMT siblings reduce the capacity of CPU @i. Do
13178 			 * not skip it in this case.
13179 			 *
13180 			 * CONFIG_SCHED_CLUSTER requires balancing load across
13181 			 * clusters of identical capacity, accounting for
13182 			 * hardware and cpufreq pressure.
13183 			 */
13184 			if (!smt_degraded_cap && !cluster_equal_cap &&
13185 			    !capacity_greater(capacity_of(env->dst_cpu), capacity))
13186 				continue;
13187 		}
13188 
13189 		/*
13190 		 * Make sure we only pull tasks from a CPU of lower priority
13191 		 * when balancing between SMT siblings.
13192 		 *
13193 		 * If balancing between cores, let lower priority CPUs help
13194 		 * SMT cores with more than one busy sibling.
13195 		 */
13196 		if (sched_asym(env->sd, i, env->dst_cpu) && nr_running == 1)
13197 			continue;
13198 
13199 		switch (env->migration_type) {
13200 		case migrate_load:
13201 			/*
13202 			 * When comparing with load imbalance, use cpu_load()
13203 			 * which is not scaled with the CPU capacity.
13204 			 */
13205 			load = cpu_load(rq);
13206 
13207 			if (nr_running == 1 && load > env->imbalance &&
13208 			    !check_cpu_capacity(rq, env->sd))
13209 				break;
13210 
13211 			/*
13212 			 * For the load comparisons with the other CPUs,
13213 			 * consider the cpu_load() scaled with the CPU
13214 			 * capacity, so that the load can be moved away
13215 			 * from the CPU that is potentially running at a
13216 			 * lower capacity.
13217 			 *
13218 			 * Thus we're looking for max(load_i / capacity_i),
13219 			 * crosswise multiplication to rid ourselves of the
13220 			 * division works out to:
13221 			 * load_i * capacity_j > load_j * capacity_i;
13222 			 * where j is our previous maximum.
13223 			 */
13224 			if (load * busiest_capacity > busiest_load * capacity) {
13225 				busiest_load = load;
13226 				busiest_capacity = capacity;
13227 				busiest = rq;
13228 			}
13229 			break;
13230 
13231 		case migrate_util:
13232 			util = cpu_util_cfs_boost(i);
13233 
13234 			/*
13235 			 * Don't try to pull utilization from a CPU with one
13236 			 * running task. Whatever its utilization, we will fail
13237 			 * detach the task.
13238 			 */
13239 			if (nr_running <= 1)
13240 				continue;
13241 
13242 			if (busiest_util < util) {
13243 				busiest_util = util;
13244 				busiest = rq;
13245 			}
13246 			break;
13247 
13248 		case migrate_task:
13249 			if (busiest_nr < nr_running) {
13250 				busiest_nr = nr_running;
13251 				busiest = rq;
13252 			}
13253 			break;
13254 
13255 		case migrate_misfit:
13256 			/*
13257 			 * For ASYM_CPUCAPACITY domains with misfit tasks we
13258 			 * simply seek the "biggest" misfit task.
13259 			 */
13260 			if (rq->misfit_task_load > busiest_load) {
13261 				busiest_load = rq->misfit_task_load;
13262 				busiest = rq;
13263 			}
13264 
13265 			break;
13266 
13267 		case migrate_llc_task:
13268 #ifdef CONFIG_SCHED_CACHE
13269 			sd_tmp = rcu_dereference_all(rq->sd);
13270 			dst_llc = llc_id(env->dst_cpu);
13271 
13272 			if (sd_tmp && (unsigned)dst_llc < sd_tmp->llc_max) {
13273 				unsigned int this_pref_llc =
13274 					sd_tmp->llc_counts[dst_llc];
13275 
13276 				if (busiest_pref_llc < this_pref_llc) {
13277 					busiest_pref_llc = this_pref_llc;
13278 					busiest = rq;
13279 				}
13280 			}
13281 #endif
13282 			break;
13283 
13284 		}
13285 	}
13286 
13287 	return busiest;
13288 }
13289 
13290 /*
13291  * Max backoff if we encounter pinned tasks. Pretty arbitrary value, but
13292  * so long as it is large enough.
13293  */
13294 #define MAX_PINNED_INTERVAL	512
13295 
13296 static inline bool
13297 asym_active_balance(struct lb_env *env)
13298 {
13299 	/*
13300 	 * ASYM_PACKING needs to force migrate tasks from busy but lower
13301 	 * priority CPUs in order to pack all tasks in the highest priority
13302 	 * CPUs. When done between cores, do it only if the whole core if the
13303 	 * whole core is idle.
13304 	 *
13305 	 * If @env::src_cpu is an SMT core with busy siblings, let
13306 	 * the lower priority @env::dst_cpu help it. Do not follow
13307 	 * CPU priority.
13308 	 */
13309 	return env->idle && sched_use_asym_prio(env->sd, env->dst_cpu) &&
13310 	       (sched_asym_prefer(env->dst_cpu, env->src_cpu) ||
13311 		!sched_use_asym_prio(env->sd, env->src_cpu));
13312 }
13313 
13314 static inline bool
13315 imbalanced_active_balance(struct lb_env *env)
13316 {
13317 	struct sched_domain *sd = env->sd;
13318 
13319 	/*
13320 	 * The imbalanced case includes the case of pinned tasks preventing a fair
13321 	 * distribution of the load on the system but also the even distribution of the
13322 	 * threads on a system with spare capacity
13323 	 */
13324 	if ((env->migration_type == migrate_task) &&
13325 	    (sd->nr_balance_failed > sd->cache_nice_tries+2))
13326 		return 1;
13327 
13328 	return 0;
13329 }
13330 
13331 static int need_active_balance(struct lb_env *env)
13332 {
13333 	struct sched_domain *sd = env->sd;
13334 
13335 	if (alb_break_llc(env))
13336 		return 0;
13337 
13338 	if (asym_active_balance(env))
13339 		return 1;
13340 
13341 	if (imbalanced_active_balance(env))
13342 		return 1;
13343 
13344 	/*
13345 	 * The dst_cpu is idle and the src_cpu CPU has only 1 CFS task.
13346 	 * It's worth migrating the task if the src_cpu's capacity is reduced
13347 	 * because of other sched_class or IRQs if more capacity stays
13348 	 * available on dst_cpu.
13349 	 */
13350 	if (env->idle &&
13351 	    (env->src_rq->cfs.h_nr_runnable == 1)) {
13352 		if ((check_cpu_capacity(env->src_rq, sd)) &&
13353 		    (capacity_of(env->src_cpu)*sd->imbalance_pct < capacity_of(env->dst_cpu)*100))
13354 			return 1;
13355 	}
13356 
13357 	if (env->migration_type == migrate_misfit ||
13358 	    env->migration_type == migrate_llc_task)
13359 		return 1;
13360 
13361 	return 0;
13362 }
13363 
13364 static int active_load_balance_cpu_stop(void *data);
13365 
13366 static int should_we_balance(struct lb_env *env)
13367 {
13368 	struct cpumask *swb_cpus = this_cpu_cpumask_var_ptr(should_we_balance_tmpmask);
13369 	struct sched_group *sg = env->sd->groups;
13370 	int cpu, idle_smt = -1;
13371 
13372 	/*
13373 	 * Ensure the balancing environment is consistent; can happen
13374 	 * when the softirq triggers 'during' hotplug.
13375 	 */
13376 	if (!cpumask_test_cpu(env->dst_cpu, env->cpus))
13377 		return 0;
13378 
13379 	/*
13380 	 * In the newly idle case, we will allow all the CPUs
13381 	 * to do the newly idle load balance.
13382 	 *
13383 	 * However, we bail out if we already have tasks or a wakeup pending,
13384 	 * to optimize wakeup latency.
13385 	 */
13386 	if (env->idle == CPU_NEWLY_IDLE) {
13387 		if (env->dst_rq->nr_running > 0 || env->dst_rq->ttwu_pending)
13388 			return 0;
13389 		return 1;
13390 	}
13391 
13392 	cpumask_copy(swb_cpus, group_balance_mask(sg));
13393 	/* Try to find first idle CPU */
13394 	for_each_cpu_and(cpu, swb_cpus, env->cpus) {
13395 		if (!idle_cpu(cpu))
13396 			continue;
13397 
13398 		/*
13399 		 * Don't balance to idle SMT in busy core right away when
13400 		 * balancing cores, but remember the first idle SMT CPU for
13401 		 * later consideration.  Find CPU on an idle core first.
13402 		 */
13403 		if (sched_smt_active() &&
13404 		    !(env->sd->flags & SD_SHARE_CPUCAPACITY) &&
13405 		    !is_core_idle(cpu)) {
13406 			if (idle_smt == -1)
13407 				idle_smt = cpu;
13408 			/*
13409 			 * If the core is not idle, and first SMT sibling which is
13410 			 * idle has been found, then its not needed to check other
13411 			 * SMT siblings for idleness:
13412 			 */
13413 			cpumask_andnot(swb_cpus, swb_cpus, cpu_smt_mask(cpu));
13414 			continue;
13415 		}
13416 
13417 		/*
13418 		 * Are we the first idle core in a non-SMT domain or higher,
13419 		 * or the first idle CPU in a SMT domain?
13420 		 */
13421 		return cpu == env->dst_cpu;
13422 	}
13423 
13424 	/* Are we the first idle CPU with busy siblings? */
13425 	if (idle_smt != -1)
13426 		return idle_smt == env->dst_cpu;
13427 
13428 	/* Are we the first CPU of this group ? */
13429 	return group_balance_cpu(sg) == env->dst_cpu;
13430 }
13431 
13432 static void update_lb_imbalance_stat(struct lb_env *env, struct sched_domain *sd,
13433 				     enum cpu_idle_type idle)
13434 {
13435 	if (!schedstat_enabled())
13436 		return;
13437 
13438 	switch (env->migration_type) {
13439 	case migrate_load:
13440 		__schedstat_add(sd->lb_imbalance_load[idle], env->imbalance);
13441 		break;
13442 	case migrate_util:
13443 		__schedstat_add(sd->lb_imbalance_util[idle], env->imbalance);
13444 		break;
13445 	case migrate_task:
13446 		__schedstat_add(sd->lb_imbalance_task[idle], env->imbalance);
13447 		break;
13448 	case migrate_misfit:
13449 		__schedstat_add(sd->lb_imbalance_misfit[idle], env->imbalance);
13450 		break;
13451 	case migrate_llc_task:
13452 		break;
13453 	}
13454 }
13455 
13456 /*
13457  * This flag serializes load-balancing passes over large domains
13458  * (above the NODE topology level) - only one load-balancing instance
13459  * may run at a time, to reduce overhead on very large systems with
13460  * lots of CPUs and large NUMA distances.
13461  *
13462  * - Note that load-balancing passes triggered while another one
13463  *   is executing are skipped and not re-tried.
13464  *
13465  * - Also note that this does not serialize rebalance_domains()
13466  *   execution, as non-SD_SERIALIZE domains will still be
13467  *   load-balanced in parallel.
13468  */
13469 static atomic_t sched_balance_running = ATOMIC_INIT(0);
13470 
13471 /*
13472  * Check this_cpu to ensure it is balanced within domain. Attempt to move
13473  * tasks if there is an imbalance.
13474  */
13475 static int sched_balance_rq(int this_cpu, struct rq *this_rq,
13476 			struct sched_domain *sd, enum cpu_idle_type idle,
13477 			int *continue_balancing)
13478 {
13479 	int ld_moved, cur_ld_moved, active_balance = 0;
13480 	struct sched_domain *sd_parent = sd->parent;
13481 	struct sched_group *group;
13482 	struct rq *busiest;
13483 	struct rq_flags rf;
13484 	struct cpumask *cpus = this_cpu_cpumask_var_ptr(load_balance_mask);
13485 	struct lb_env env = {
13486 		.sd		= sd,
13487 		.dst_cpu	= this_cpu,
13488 		.dst_rq		= this_rq,
13489 		.dst_grpmask    = group_balance_mask(sd->groups),
13490 		.idle		= idle,
13491 		.loop_break	= SCHED_NR_MIGRATE_BREAK,
13492 		.cpus		= cpus,
13493 		.fbq_type	= all,
13494 		.tasks		= LIST_HEAD_INIT(env.tasks),
13495 	};
13496 	bool need_unlock = false;
13497 
13498 	cpumask_and(cpus, sched_domain_span(sd), cpu_active_mask);
13499 
13500 	schedstat_inc(sd->lb_count[idle]);
13501 
13502 redo:
13503 	if (!should_we_balance(&env)) {
13504 		*continue_balancing = 0;
13505 		goto out_balanced;
13506 	}
13507 
13508 	if (!need_unlock && (sd->flags & SD_SERIALIZE)) {
13509 		int zero = 0;
13510 		if (!atomic_try_cmpxchg_acquire(&sched_balance_running, &zero, 1))
13511 			goto out_balanced;
13512 
13513 		need_unlock = true;
13514 	}
13515 
13516 	group = sched_balance_find_src_group(&env);
13517 	if (!group) {
13518 		schedstat_inc(sd->lb_nobusyg[idle]);
13519 		goto out_balanced;
13520 	}
13521 
13522 	busiest = sched_balance_find_src_rq(&env, group);
13523 	if (!busiest) {
13524 		schedstat_inc(sd->lb_nobusyq[idle]);
13525 		goto out_balanced;
13526 	}
13527 
13528 	WARN_ON_ONCE(busiest == env.dst_rq);
13529 
13530 	update_lb_imbalance_stat(&env, sd, idle);
13531 
13532 	env.src_cpu = busiest->cpu;
13533 	env.src_rq = busiest;
13534 
13535 	ld_moved = 0;
13536 	/* Clear this flag as soon as we find a pullable task */
13537 	env.flags |= LBF_ALL_PINNED;
13538 	if (busiest->nr_running > 1) {
13539 		/*
13540 		 * Attempt to move tasks. If sched_balance_find_src_group has found
13541 		 * an imbalance but busiest->nr_running <= 1, the group is
13542 		 * still unbalanced. ld_moved simply stays zero, so it is
13543 		 * correctly treated as an imbalance.
13544 		 */
13545 		env.loop_max  = min(sysctl_sched_nr_migrate, busiest->nr_running);
13546 
13547 more_balance:
13548 		rq_lock_irqsave(busiest, &rf);
13549 		update_rq_clock(busiest);
13550 
13551 		/*
13552 		 * cur_ld_moved - load moved in current iteration
13553 		 * ld_moved     - cumulative load moved across iterations
13554 		 */
13555 		cur_ld_moved = detach_tasks(&env);
13556 
13557 		/*
13558 		 * We've detached some tasks from busiest_rq. Every
13559 		 * task is masked "TASK_ON_RQ_MIGRATING", so we can safely
13560 		 * unlock busiest->lock, and we are able to be sure
13561 		 * that nobody can manipulate the tasks in parallel.
13562 		 * See task_rq_lock() family for the details.
13563 		 */
13564 
13565 		rq_unlock(busiest, &rf);
13566 
13567 		if (cur_ld_moved) {
13568 			attach_tasks(&env);
13569 			ld_moved += cur_ld_moved;
13570 		}
13571 
13572 		local_irq_restore(rf.flags);
13573 
13574 		if (env.flags & LBF_NEED_BREAK) {
13575 			env.flags &= ~LBF_NEED_BREAK;
13576 			goto more_balance;
13577 		}
13578 
13579 		/*
13580 		 * Revisit (affine) tasks on src_cpu that couldn't be moved to
13581 		 * us and move them to an alternate dst_cpu in our sched_group
13582 		 * where they can run. The upper limit on how many times we
13583 		 * iterate on same src_cpu is dependent on number of CPUs in our
13584 		 * sched_group.
13585 		 *
13586 		 * This changes load balance semantics a bit on who can move
13587 		 * load to a given_cpu. In addition to the given_cpu itself
13588 		 * (or a ilb_cpu acting on its behalf where given_cpu is
13589 		 * nohz-idle), we now have balance_cpu in a position to move
13590 		 * load to given_cpu. In rare situations, this may cause
13591 		 * conflicts (balance_cpu and given_cpu/ilb_cpu deciding
13592 		 * _independently_ and at _same_ time to move some load to
13593 		 * given_cpu) causing excess load to be moved to given_cpu.
13594 		 * This however should not happen so much in practice and
13595 		 * moreover subsequent load balance cycles should correct the
13596 		 * excess load moved.
13597 		 */
13598 		if ((env.flags & LBF_DST_PINNED) && env.imbalance > 0) {
13599 
13600 			/* Prevent to re-select dst_cpu via env's CPUs */
13601 			__cpumask_clear_cpu(env.dst_cpu, env.cpus);
13602 
13603 			env.dst_rq	 = cpu_rq(env.new_dst_cpu);
13604 			env.dst_cpu	 = env.new_dst_cpu;
13605 			env.flags	&= ~LBF_DST_PINNED;
13606 			env.loop	 = 0;
13607 			env.loop_break	 = SCHED_NR_MIGRATE_BREAK;
13608 
13609 			/*
13610 			 * Go back to "more_balance" rather than "redo" since we
13611 			 * need to continue with same src_cpu.
13612 			 */
13613 			goto more_balance;
13614 		}
13615 
13616 		/*
13617 		 * We failed to reach balance because of affinity.
13618 		 */
13619 		if (sd_parent) {
13620 			int *group_imbalance = &sd_parent->groups->sgc->imbalance;
13621 
13622 			if ((env.flags & LBF_SOME_PINNED) && env.imbalance > 0)
13623 				*group_imbalance = 1;
13624 		}
13625 
13626 		/* All tasks on this runqueue were pinned by CPU affinity */
13627 		if (unlikely(env.flags & LBF_ALL_PINNED)) {
13628 			__cpumask_clear_cpu(cpu_of(busiest), cpus);
13629 			/*
13630 			 * Attempting to continue load balancing at the current
13631 			 * sched_domain level only makes sense if there are
13632 			 * active CPUs remaining as possible busiest CPUs to
13633 			 * pull load from which are not contained within the
13634 			 * destination group that is receiving any migrated
13635 			 * load.
13636 			 */
13637 			if (!cpumask_subset(cpus, env.dst_grpmask)) {
13638 				env.loop = 0;
13639 				env.loop_break = SCHED_NR_MIGRATE_BREAK;
13640 				goto redo;
13641 			}
13642 			goto out_all_pinned;
13643 		}
13644 	}
13645 
13646 	if (ld_moved) {
13647 		sd->nr_balance_failed = 0;
13648 		goto out_unbalanced;
13649 	}
13650 
13651 	schedstat_inc(sd->lb_failed[idle]);
13652 	/*
13653 	 * Increment the failure counter only on periodic balance.
13654 	 * We do not want newidle balance, which can be very
13655 	 * frequent, pollute the failure counter causing
13656 	 * excessive cache_hot migrations and active balances.
13657 	 *
13658 	 * Similarly for migration_misfit which is not related to
13659 	 * load/util migration, don't pollute nr_balance_failed.
13660 	 *
13661 	 * The same for cache aware scheduling's allowance for
13662 	 * load imbalance. If regular load balance does not
13663 	 * migrate task due to LLC locality, it is a expected
13664 	 * behavior and don't pollute nr_balance_failed.
13665 	 * See can_migrate_task().
13666 	 */
13667 	if (idle != CPU_NEWLY_IDLE &&
13668 	    env.migration_type != migrate_misfit &&
13669 	    !(env.flags & LBF_LLC_PINNED))
13670 		sd->nr_balance_failed++;
13671 
13672 	if (!need_active_balance(&env))
13673 		goto out_unbalanced;
13674 
13675 	scoped_guard (raw_spin_rq_lock_irqsave, busiest) {
13676 		/*
13677 		 * Don't kick the active_load_balance_cpu_stop,
13678 		 * if the curr task on busiest CPU can't be
13679 		 * moved to this_cpu:
13680 		 */
13681 		if (!cpumask_test_cpu(this_cpu, busiest->curr->cpus_ptr))
13682 			goto out_one_pinned;
13683 
13684 		/* Record that we found at least one task that could run on this_cpu */
13685 		env.flags &= ~LBF_ALL_PINNED;
13686 
13687 		/*
13688 		 * ->active_balance synchronizes accesses to
13689 		 * ->active_balance_work.  Once set, it's cleared
13690 		 * only after active load balance is finished.
13691 		 */
13692 		if (busiest->active_balance)
13693 			goto out_unbalanced;
13694 
13695 		/*
13696 		 * @busiest dropped its rq_lock in the middle of
13697 		 * scheduling out its ->curr task (->on_rq := 0), no
13698 		 * need to forcefully punt it away with active balance.
13699 		 */
13700 		if (!busiest->curr->on_rq)
13701 			goto out_unbalanced;
13702 
13703 		busiest->active_balance = 1;
13704 		busiest->push_cpu = this_cpu;
13705 		active_balance = 1;
13706 		preempt_disable();
13707 	}
13708 	if (active_balance) {
13709 		stop_one_cpu_nowait(cpu_of(busiest),
13710 				    active_load_balance_cpu_stop, busiest,
13711 				    &busiest->active_balance_work);
13712 	}
13713 	preempt_enable();
13714 
13715 out_unbalanced:
13716 	/* We were unbalanced, so reset the balancing interval */
13717 	sd->balance_interval = sd->min_interval;
13718 	goto out;
13719 
13720 out_balanced:
13721 	/*
13722 	 * We reach balance although we may have faced some affinity
13723 	 * constraints. Clear the imbalance flag only if other tasks got
13724 	 * a chance to move and fix the imbalance.
13725 	 */
13726 	if (sd_parent && !(env.flags & LBF_ALL_PINNED)) {
13727 		int *group_imbalance = &sd_parent->groups->sgc->imbalance;
13728 
13729 		if (*group_imbalance)
13730 			*group_imbalance = 0;
13731 	}
13732 
13733 out_all_pinned:
13734 	/*
13735 	 * We reach balance because all tasks are pinned at this level so
13736 	 * we can't migrate them. Let the imbalance flag set so parent level
13737 	 * can try to migrate them.
13738 	 */
13739 	schedstat_inc(sd->lb_balanced[idle]);
13740 
13741 	sd->nr_balance_failed = 0;
13742 
13743 out_one_pinned:
13744 	ld_moved = 0;
13745 
13746 	/*
13747 	 * sched_balance_newidle() disregards balance intervals, so we could
13748 	 * repeatedly reach this code, which would lead to balance_interval
13749 	 * skyrocketing in a short amount of time. Skip the balance_interval
13750 	 * increase logic to avoid that.
13751 	 *
13752 	 * Similarly misfit migration which is not necessarily an indication of
13753 	 * the system being busy and requires lb to backoff to let it settle
13754 	 * down.
13755 	 */
13756 	if (env.idle == CPU_NEWLY_IDLE ||
13757 	    env.migration_type == migrate_misfit)
13758 		goto out;
13759 
13760 	/* tune up the balancing interval */
13761 	if ((env.flags & LBF_ALL_PINNED &&
13762 	     sd->balance_interval < MAX_PINNED_INTERVAL) ||
13763 	    sd->balance_interval < sd->max_interval)
13764 		sd->balance_interval *= 2;
13765 out:
13766 	if (need_unlock)
13767 		atomic_set_release(&sched_balance_running, 0);
13768 
13769 	return ld_moved;
13770 }
13771 
13772 static inline unsigned long
13773 get_sd_balance_interval(struct sched_domain *sd, int cpu_busy)
13774 {
13775 	unsigned long interval = sd->balance_interval;
13776 
13777 	if (cpu_busy)
13778 		interval *= sd->busy_factor;
13779 
13780 	/* scale ms to jiffies */
13781 	interval = msecs_to_jiffies(interval);
13782 
13783 	/*
13784 	 * Reduce likelihood of busy balancing at higher domains racing with
13785 	 * balancing at lower domains by preventing their balancing periods
13786 	 * from being multiples of each other.
13787 	 */
13788 	if (cpu_busy)
13789 		interval -= 1;
13790 
13791 	interval = clamp(interval, 1UL, max_load_balance_interval);
13792 
13793 	return interval;
13794 }
13795 
13796 static inline void
13797 update_next_balance(struct sched_domain *sd, unsigned long *next_balance)
13798 {
13799 	unsigned long interval, next;
13800 
13801 	/* used by idle balance, so cpu_busy = 0 */
13802 	interval = get_sd_balance_interval(sd, 0);
13803 	next = sd->last_balance + interval;
13804 
13805 	if (time_after(*next_balance, next))
13806 		*next_balance = next;
13807 }
13808 
13809 /*
13810  * active_load_balance_cpu_stop is run by the CPU stopper. It pushes
13811  * running tasks off the busiest CPU onto idle CPUs. It requires at
13812  * least 1 task to be running on each physical CPU where possible, and
13813  * avoids physical / logical imbalances.
13814  */
13815 static int active_load_balance_cpu_stop(void *data)
13816 {
13817 	struct rq *busiest_rq = data;
13818 	int busiest_cpu = cpu_of(busiest_rq);
13819 	int target_cpu = busiest_rq->push_cpu;
13820 	struct rq *target_rq = cpu_rq(target_cpu);
13821 	struct sched_domain *sd;
13822 	struct task_struct *p = NULL;
13823 	struct rq_flags rf;
13824 
13825 	rq_lock_irq(busiest_rq, &rf);
13826 	/*
13827 	 * Between queueing the stop-work and running it is a hole in which
13828 	 * CPUs can become inactive. We should not move tasks from or to
13829 	 * inactive CPUs.
13830 	 */
13831 	if (!cpu_active(busiest_cpu) || !cpu_active(target_cpu))
13832 		goto out_unlock;
13833 
13834 	/* Make sure the requested CPU hasn't gone down in the meantime: */
13835 	if (unlikely(busiest_cpu != smp_processor_id() ||
13836 		     !busiest_rq->active_balance))
13837 		goto out_unlock;
13838 
13839 	/* Is there any task to move? */
13840 	if (busiest_rq->nr_running <= 1)
13841 		goto out_unlock;
13842 
13843 	/*
13844 	 * This condition is "impossible", if it occurs
13845 	 * we need to fix it. Originally reported by
13846 	 * Bjorn Helgaas on a 128-CPU setup.
13847 	 */
13848 	WARN_ON_ONCE(busiest_rq == target_rq);
13849 
13850 	/* Search for an sd spanning us and the target CPU. */
13851 	rcu_read_lock();
13852 	for_each_domain(target_cpu, sd) {
13853 		if (cpumask_test_cpu(busiest_cpu, sched_domain_span(sd)))
13854 			break;
13855 	}
13856 
13857 	if (likely(sd)) {
13858 		struct lb_env env = {
13859 			.sd		= sd,
13860 			.dst_cpu	= target_cpu,
13861 			.dst_rq		= target_rq,
13862 			.src_cpu	= busiest_rq->cpu,
13863 			.src_rq		= busiest_rq,
13864 			.idle		= CPU_IDLE,
13865 			.flags		= LBF_ACTIVE_LB,
13866 		};
13867 
13868 		schedstat_inc(sd->alb_count);
13869 		update_rq_clock(busiest_rq);
13870 
13871 		p = detach_one_task(&env);
13872 		if (p) {
13873 			schedstat_inc(sd->alb_pushed);
13874 			/* Active balancing done, reset the failure counter. */
13875 			sd->nr_balance_failed = 0;
13876 		} else {
13877 			schedstat_inc(sd->alb_failed);
13878 		}
13879 	}
13880 	rcu_read_unlock();
13881 out_unlock:
13882 	busiest_rq->active_balance = 0;
13883 	rq_unlock(busiest_rq, &rf);
13884 
13885 	if (p)
13886 		attach_one_task(target_rq, p);
13887 
13888 	local_irq_enable();
13889 
13890 	return 0;
13891 }
13892 
13893 /*
13894  * Scale the max sched_balance_rq interval with the number of CPUs in the system.
13895  * This trades load-balance latency on larger machines for less cross talk.
13896  */
13897 void update_max_interval(void)
13898 {
13899 	max_load_balance_interval = HZ*num_online_cpus()/10;
13900 }
13901 
13902 static inline void update_newidle_stats(struct sched_domain *sd, unsigned int success)
13903 {
13904 	sd->newidle_call++;
13905 	sd->newidle_success += success;
13906 
13907 	if (sd->newidle_call >= 1024) {
13908 		u64 now = sched_clock();
13909 		s64 delta = now - sd->newidle_stamp;
13910 		sd->newidle_stamp = now;
13911 		int ratio = 0;
13912 
13913 		if (delta < 0)
13914 			delta = 0;
13915 
13916 		if (sched_feat(NI_RATE)) {
13917 			/*
13918 			 * ratio  delta   freq
13919 			 *
13920 			 * 1024 -  4  s -  128 Hz
13921 			 *  512 -  2  s -  256 Hz
13922 			 *  256 -  1  s -  512 Hz
13923 			 *  128 - .5  s - 1024 Hz
13924 			 *   64 - .25 s - 2048 Hz
13925 			 */
13926 			ratio = delta >> 22;
13927 		}
13928 
13929 		ratio += sd->newidle_success;
13930 
13931 		sd->newidle_ratio = min(1024, ratio);
13932 		sd->newidle_call /= 2;
13933 		sd->newidle_success /= 2;
13934 	}
13935 }
13936 
13937 static inline bool
13938 update_newidle_cost(struct sched_domain *sd, u64 cost, unsigned int success)
13939 {
13940 	unsigned long next_decay = sd->last_decay_max_lb_cost + HZ;
13941 	unsigned long now = jiffies;
13942 
13943 	if (cost)
13944 		update_newidle_stats(sd, success);
13945 
13946 	if (cost > sd->max_newidle_lb_cost) {
13947 		/*
13948 		 * Track max cost of a domain to make sure to not delay the
13949 		 * next wakeup on the CPU.
13950 		 */
13951 		sd->max_newidle_lb_cost = cost;
13952 		sd->last_decay_max_lb_cost = now;
13953 
13954 	} else if (time_after(now, next_decay)) {
13955 		/*
13956 		 * Decay the newidle max times by ~1% per second to ensure that
13957 		 * it is not outdated and the current max cost is actually
13958 		 * shorter.
13959 		 */
13960 		sd->max_newidle_lb_cost = (sd->max_newidle_lb_cost * 253) / 256;
13961 		sd->last_decay_max_lb_cost = now;
13962 		return true;
13963 	}
13964 
13965 	return false;
13966 }
13967 
13968 /*
13969  * It checks each scheduling domain to see if it is due to be balanced,
13970  * and initiates a balancing operation if so.
13971  *
13972  * Balancing parameters are set up in init_sched_domains.
13973  */
13974 static void sched_balance_domains(struct rq *rq, enum cpu_idle_type idle)
13975 {
13976 	int continue_balancing = 1;
13977 	int cpu = rq->cpu;
13978 	int busy = idle != CPU_IDLE && !sched_idle_rq(rq);
13979 	unsigned long interval;
13980 	struct sched_domain *sd;
13981 	/* Earliest time when we have to do rebalance again */
13982 	unsigned long next_balance = jiffies + 60*HZ;
13983 	int update_next_balance = 0;
13984 	int need_decay = 0;
13985 	u64 max_cost = 0;
13986 
13987 	rcu_read_lock();
13988 	for_each_domain(cpu, sd) {
13989 		/*
13990 		 * Decay the newidle max times here because this is a regular
13991 		 * visit to all the domains.
13992 		 */
13993 		need_decay = update_newidle_cost(sd, 0, 0);
13994 		max_cost += sd->max_newidle_lb_cost;
13995 
13996 		/*
13997 		 * Stop the load balance at this level. There is another
13998 		 * CPU in our sched group which is doing load balancing more
13999 		 * actively.
14000 		 */
14001 		if (!continue_balancing) {
14002 			if (need_decay)
14003 				continue;
14004 			break;
14005 		}
14006 
14007 		interval = get_sd_balance_interval(sd, busy);
14008 		if (time_after_eq(jiffies, sd->last_balance + interval)) {
14009 			if (sched_balance_rq(cpu, rq, sd, idle, &continue_balancing)) {
14010 				/*
14011 				 * The LBF_DST_PINNED logic could have changed
14012 				 * env->dst_cpu, so we can't know our idle
14013 				 * state even if we migrated tasks. Update it.
14014 				 */
14015 				idle = idle_cpu(cpu);
14016 				busy = !idle && !sched_idle_rq(rq);
14017 			}
14018 			sd->last_balance = jiffies;
14019 			interval = get_sd_balance_interval(sd, busy);
14020 		}
14021 		if (time_after(next_balance, sd->last_balance + interval)) {
14022 			next_balance = sd->last_balance + interval;
14023 			update_next_balance = 1;
14024 		}
14025 	}
14026 	if (need_decay) {
14027 		/*
14028 		 * Ensure the rq-wide value also decays but keep it at a
14029 		 * reasonable floor to avoid funnies with rq->avg_idle.
14030 		 */
14031 		rq->max_idle_balance_cost =
14032 			max((u64)sysctl_sched_migration_cost, max_cost);
14033 	}
14034 	rcu_read_unlock();
14035 
14036 	/*
14037 	 * next_balance will be updated only when there is a need.
14038 	 * When the cpu is attached to null domain for ex, it will not be
14039 	 * updated.
14040 	 */
14041 	if (likely(update_next_balance))
14042 		rq->next_balance = next_balance;
14043 
14044 }
14045 
14046 static inline int on_null_domain(struct rq *rq)
14047 {
14048 	return unlikely(!rcu_dereference_sched(rq->sd));
14049 }
14050 
14051 #ifdef CONFIG_NO_HZ_COMMON
14052 /*
14053  * NOHZ idle load balancing (ILB) details:
14054  *
14055  * - When one of the busy CPUs notices that there may be an idle rebalancing
14056  *   needed, they will kick the idle load balancer, which then does idle
14057  *   load balancing for all the idle CPUs.
14058  */
14059 static inline int find_new_ilb(void)
14060 {
14061 	struct cpumask *ilb_cpus;
14062 	int ilb_cpu, fallback = -1;
14063 
14064 	lockdep_assert_irqs_disabled();
14065 
14066 	/*
14067 	 * Reuse the per-CPU select_rq_mask, which is protected from concurrent
14068 	 * use on this CPU by having interrupts disabled.
14069 	 */
14070 	ilb_cpus = this_cpu_cpumask_var_ptr(select_rq_mask);
14071 	cpumask_and(ilb_cpus, nohz.idle_cpus_mask,
14072 		    housekeeping_cpumask(HK_TYPE_KERNEL_NOISE));
14073 
14074 	for_each_cpu(ilb_cpu, ilb_cpus) {
14075 		if (!idle_cpu(ilb_cpu)) {
14076 			/*
14077 			 * Once an idle fallback exists, a busy CPU proves that
14078 			 * this core cannot be fully idle. Skip its siblings.
14079 			 */
14080 			if (sched_smt_active() && fallback >= 0)
14081 				cpumask_andnot(ilb_cpus, ilb_cpus, cpu_smt_mask(ilb_cpu));
14082 			continue;
14083 		}
14084 
14085 		/*
14086 		 * Running the idle load balancer on an idle sibling of a busy
14087 		 * SMT core can reduce the capacity available to its sibling. Prefer
14088 		 * a CPU whose entire core is idle, but retain the first idle CPU as
14089 		 * a fallback so idle balancing can still make progress when no fully
14090 		 * idle core exists.
14091 		 */
14092 		if (sched_smt_active() && !is_core_idle(ilb_cpu)) {
14093 			if (fallback < 0)
14094 				fallback = ilb_cpu;
14095 
14096 			/*
14097 			 * The core is not idle, so there is no need to check
14098 			 * any of its other SMT siblings.
14099 			 */
14100 			cpumask_andnot(ilb_cpus, ilb_cpus,
14101 				       cpu_smt_mask(ilb_cpu));
14102 			continue;
14103 		}
14104 
14105 		return ilb_cpu;
14106 	}
14107 
14108 	return fallback;
14109 }
14110 
14111 /*
14112  * Kick a CPU to do the NOHZ balancing, if it is time for it, via a cross-CPU
14113  * SMP function call (IPI).
14114  *
14115  * Prefer a CPU on a fully idle core in the HK_TYPE_KERNEL_NOISE housekeeping
14116  * set. Fall back to the first idle CPU when no fully idle core exists.
14117  */
14118 static void kick_ilb(unsigned int flags)
14119 {
14120 	int ilb_cpu;
14121 
14122 	/*
14123 	 * Increase nohz.next_balance only when if full ilb is triggered but
14124 	 * not if we only update stats.
14125 	 */
14126 	if (flags & NOHZ_BALANCE_KICK)
14127 		nohz.next_balance = jiffies+1;
14128 
14129 	ilb_cpu = find_new_ilb();
14130 	if (ilb_cpu < 0)
14131 		return;
14132 
14133 	/*
14134 	 * Don't bother if no new NOHZ balance work items for ilb_cpu,
14135 	 * i.e. all bits in flags are already set in ilb_cpu.
14136 	 */
14137 	if ((atomic_read(nohz_flags(ilb_cpu)) & flags) == flags)
14138 		return;
14139 
14140 	/*
14141 	 * Access to rq::nohz_csd is serialized by NOHZ_KICK_MASK; he who sets
14142 	 * the first flag owns it; cleared by nohz_csd_func().
14143 	 */
14144 	flags = atomic_fetch_or(flags, nohz_flags(ilb_cpu));
14145 	if (flags & NOHZ_KICK_MASK)
14146 		return;
14147 
14148 	/*
14149 	 * This way we generate an IPI on the target CPU which
14150 	 * is idle, and the softirq performing NOHZ idle load balancing
14151 	 * will be run before returning from the IPI.
14152 	 */
14153 	smp_call_function_single_async(ilb_cpu, &cpu_rq(ilb_cpu)->nohz_csd);
14154 }
14155 
14156 /*
14157  * Current decision point for kicking the idle load balancer in the presence
14158  * of idle CPUs in the system.
14159  */
14160 static void nohz_balancer_kick(struct rq *rq)
14161 {
14162 	unsigned long now = jiffies;
14163 	struct sched_domain_shared *sds;
14164 	struct sched_domain *sd;
14165 	int nr_busy, i, cpu = rq->cpu;
14166 	unsigned int flags = 0;
14167 
14168 	if (unlikely(rq->idle_balance))
14169 		return;
14170 
14171 	/*
14172 	 * We may be recently in ticked or tickless idle mode. At the first
14173 	 * busy tick after returning from idle, we will update the busy stats.
14174 	 */
14175 	nohz_balance_exit_idle(rq);
14176 
14177 	if (READ_ONCE(nohz.has_blocked_load) &&
14178 	    time_after(now, READ_ONCE(nohz.next_blocked)))
14179 		flags = NOHZ_STATS_KICK;
14180 
14181 	/*
14182 	 * Most of the time system is not 100% busy. i.e nohz.nr_cpus > 0
14183 	 * Skip the read if time is not due.
14184 	 *
14185 	 * If none are in tickless mode, there maybe a narrow window
14186 	 * (28 jiffies, HZ=1000) where flags maybe set and kick_ilb called.
14187 	 * But idle load balancing is not done as find_new_ilb fails.
14188 	 * That's very rare. So read nohz.nr_cpus only if time is due.
14189 	 */
14190 	if (time_before(now, nohz.next_balance))
14191 		goto out;
14192 
14193 	/*
14194 	 * None are in tickless mode and hence no need for NOHZ idle load
14195 	 * balancing
14196 	 */
14197 	if (unlikely(cpumask_empty(nohz.idle_cpus_mask)))
14198 		return;
14199 
14200 	if (rq->nr_running >= 2) {
14201 		flags = NOHZ_STATS_KICK | NOHZ_BALANCE_KICK;
14202 		goto out;
14203 	}
14204 
14205 	sd = rcu_dereference_all(rq->sd);
14206 	if (sd) {
14207 		/*
14208 		 * If there's a runnable CFS task and the current CPU has reduced
14209 		 * capacity, kick the ILB to see if there's a better CPU to run on:
14210 		 */
14211 		if (rq->cfs.h_nr_runnable >= 1 && check_cpu_capacity(rq, sd)) {
14212 			flags |= NOHZ_STATS_KICK | NOHZ_BALANCE_KICK;
14213 			goto out;
14214 		}
14215 	}
14216 
14217 	sd = rcu_dereference_all(per_cpu(sd_asym_packing, cpu));
14218 	if (sd) {
14219 		/*
14220 		 * When ASYM_PACKING; see if there's a more preferred CPU
14221 		 * currently idle; in which case, kick the ILB to move tasks
14222 		 * around.
14223 		 *
14224 		 * When balancing between cores, all the SMT siblings of the
14225 		 * preferred CPU must be idle.
14226 		 */
14227 		for_each_cpu_and(i, sched_domain_span(sd), nohz.idle_cpus_mask) {
14228 			if (sched_asym(sd, i, cpu)) {
14229 				flags |= NOHZ_STATS_KICK | NOHZ_BALANCE_KICK;
14230 				goto out;
14231 			}
14232 		}
14233 	}
14234 
14235 	sd = rcu_dereference_all(per_cpu(sd_asym_cpucapacity, cpu));
14236 	if (sd) {
14237 		/*
14238 		 * When ASYM_CPUCAPACITY; see if there's a higher capacity CPU
14239 		 * to run the misfit task on.
14240 		 */
14241 		if (check_misfit_status(rq))
14242 			flags |= NOHZ_STATS_KICK | NOHZ_BALANCE_KICK;
14243 
14244 		/*
14245 		 * For asymmetric systems, we do not want to nicely balance
14246 		 * cache use, instead we want to embrace asymmetry and only
14247 		 * ensure tasks have enough CPU capacity.
14248 		 *
14249 		 * Skip the LLC logic because it's not relevant in that case.
14250 		 */
14251 		goto out;
14252 	}
14253 
14254 	sds = rcu_dereference_all(per_cpu(sd_balance_shared, cpu));
14255 	if (sds) {
14256 		/*
14257 		 * If there is an imbalance between LLC domains (IOW we could
14258 		 * increase the overall cache utilization), we need a less-loaded LLC
14259 		 * domain to pull some load from. Likewise, we may need to spread
14260 		 * load within the current LLC domain (e.g. packed SMT cores but
14261 		 * other CPUs are idle). We can't really know from here how busy
14262 		 * the others are - so just get a NOHZ balance going if it looks
14263 		 * like this LLC domain has tasks we could move.
14264 		 */
14265 		nr_busy = atomic_read(&sds->nr_busy_cpus);
14266 		if (nr_busy > 1)
14267 			flags |= NOHZ_STATS_KICK | NOHZ_BALANCE_KICK;
14268 	}
14269 out:
14270 	if (READ_ONCE(nohz.needs_update))
14271 		flags |= NOHZ_NEXT_KICK;
14272 
14273 	if (flags)
14274 		kick_ilb(flags);
14275 }
14276 
14277 static void set_cpu_sd_state_busy(int cpu)
14278 {
14279 	struct sched_domain *sd;
14280 	sd = rcu_dereference_all(per_cpu(sd_llc, cpu));
14281 
14282 	/*
14283 	 * sd->nohz_idle only pairs with nr_busy_cpus on sd->shared; if this
14284 	 * domain has no shared object there is nothing to clear or account.
14285 	 */
14286 	if (!sd || !sd->shared || !sd->nohz_idle)
14287 		return;
14288 	sd->nohz_idle = 0;
14289 
14290 	atomic_inc(&sd->shared->nr_busy_cpus);
14291 }
14292 
14293 void nohz_balance_exit_idle(struct rq *rq)
14294 {
14295 	WARN_ON_ONCE(rq != this_rq());
14296 
14297 	if (likely(!rq->nohz_tick_stopped))
14298 		return;
14299 
14300 	rq->nohz_tick_stopped = 0;
14301 	cpumask_clear_cpu(rq->cpu, nohz.idle_cpus_mask);
14302 
14303 	set_cpu_sd_state_busy(rq->cpu);
14304 }
14305 
14306 static void set_cpu_sd_state_idle(int cpu)
14307 {
14308 	struct sched_domain *sd;
14309 	sd = rcu_dereference_all(per_cpu(sd_llc, cpu));
14310 
14311 	/* See set_cpu_sd_state_busy(): nohz_idle is only used with sd->shared. */
14312 	if (!sd || !sd->shared || sd->nohz_idle)
14313 		return;
14314 	sd->nohz_idle = 1;
14315 
14316 	atomic_dec(&sd->shared->nr_busy_cpus);
14317 }
14318 
14319 /*
14320  * This routine will record that the CPU is going idle with tick stopped.
14321  * This info will be used in performing idle load balancing in the future.
14322  */
14323 void nohz_balance_enter_idle(int cpu)
14324 {
14325 	struct rq *rq = cpu_rq(cpu);
14326 
14327 	WARN_ON_ONCE(cpu != smp_processor_id());
14328 
14329 	/* If this CPU is going down, then nothing needs to be done: */
14330 	if (!cpu_active(cpu))
14331 		return;
14332 
14333 	/*
14334 	 * Can be set safely without rq->lock held
14335 	 * If a clear happens, it will have evaluated last additions because
14336 	 * rq->lock is held during the check and the clear
14337 	 */
14338 	rq->has_blocked_load = 1;
14339 
14340 	/*
14341 	 * The tick is still stopped but load could have been added in the
14342 	 * meantime. We set the nohz.has_blocked_load flag to trig a check of the
14343 	 * *_avg. The CPU is already part of nohz.idle_cpus_mask so the clear
14344 	 * of nohz.has_blocked_load can only happen after checking the new load
14345 	 */
14346 	if (rq->nohz_tick_stopped)
14347 		goto out;
14348 
14349 	/* If we're a completely isolated CPU, we don't play: */
14350 	if (on_null_domain(rq))
14351 		return;
14352 
14353 	rq->nohz_tick_stopped = 1;
14354 
14355 	cpumask_set_cpu(cpu, nohz.idle_cpus_mask);
14356 
14357 	/*
14358 	 * Ensures that if nohz_idle_balance() fails to observe our
14359 	 * @idle_cpus_mask store, it must observe the @has_blocked_load
14360 	 * and @needs_update stores.
14361 	 */
14362 	smp_mb__after_atomic();
14363 
14364 	set_cpu_sd_state_idle(cpu);
14365 
14366 	WRITE_ONCE(nohz.needs_update, 1);
14367 out:
14368 	/*
14369 	 * Each time a cpu enter idle, we assume that it has blocked load and
14370 	 * enable the periodic update of the load of idle CPUs
14371 	 */
14372 	WRITE_ONCE(nohz.has_blocked_load, 1);
14373 }
14374 
14375 static bool update_nohz_stats(struct rq *rq)
14376 {
14377 	unsigned int cpu = rq->cpu;
14378 
14379 	if (!rq->has_blocked_load)
14380 		return false;
14381 
14382 	if (!cpumask_test_cpu(cpu, nohz.idle_cpus_mask))
14383 		return false;
14384 
14385 	if (!time_after(jiffies, READ_ONCE(rq->last_blocked_load_update_tick)))
14386 		return true;
14387 
14388 	sched_balance_update_blocked_averages(cpu);
14389 
14390 	return rq->has_blocked_load;
14391 }
14392 
14393 /*
14394  * Internal function that runs load balance for all idle CPUs. The load balance
14395  * can be a simple update of blocked load or a complete load balance with
14396  * tasks movement depending of flags.
14397  */
14398 static void _nohz_idle_balance(struct rq *this_rq, unsigned int flags)
14399 {
14400 	/* Earliest time when we have to do rebalance again */
14401 	unsigned long now = jiffies;
14402 	unsigned long next_balance = now + 60*HZ;
14403 	bool has_blocked_load = false;
14404 	int update_next_balance = 0;
14405 	int this_cpu = this_rq->cpu;
14406 	int balance_cpu;
14407 	struct rq *rq;
14408 
14409 	WARN_ON_ONCE((flags & NOHZ_KICK_MASK) == NOHZ_BALANCE_KICK);
14410 
14411 	/*
14412 	 * We assume there will be no idle load after this update and clear
14413 	 * the has_blocked_load flag. If a cpu enters idle in the mean time, it will
14414 	 * set the has_blocked_load flag and trigger another update of idle load.
14415 	 * Because a cpu that becomes idle, is added to idle_cpus_mask before
14416 	 * setting the flag, we are sure to not clear the state and not
14417 	 * check the load of an idle cpu.
14418 	 *
14419 	 * Same applies to idle_cpus_mask vs needs_update.
14420 	 */
14421 	if (flags & NOHZ_STATS_KICK)
14422 		WRITE_ONCE(nohz.has_blocked_load, 0);
14423 	if (flags & NOHZ_NEXT_KICK)
14424 		WRITE_ONCE(nohz.needs_update, 0);
14425 
14426 	/*
14427 	 * Ensures that if we miss the CPU, we must see the has_blocked_load
14428 	 * store from nohz_balance_enter_idle().
14429 	 */
14430 	smp_mb();
14431 
14432 	/*
14433 	 * Start with the next CPU after this_cpu so we will end with this_cpu and let a
14434 	 * chance for other idle cpu to pull load.
14435 	 */
14436 	for_each_cpu_wrap(balance_cpu,  nohz.idle_cpus_mask, this_cpu+1) {
14437 		if (!idle_cpu(balance_cpu))
14438 			continue;
14439 
14440 		/*
14441 		 * If this CPU gets work to do, stop the load balancing
14442 		 * work being done for other CPUs. Next load
14443 		 * balancing owner will pick it up.
14444 		 */
14445 		if (!idle_cpu(this_cpu) && need_resched()) {
14446 			if (flags & NOHZ_STATS_KICK)
14447 				has_blocked_load = true;
14448 			if (flags & NOHZ_NEXT_KICK)
14449 				WRITE_ONCE(nohz.needs_update, 1);
14450 			goto abort;
14451 		}
14452 
14453 		rq = cpu_rq(balance_cpu);
14454 
14455 		if (flags & NOHZ_STATS_KICK)
14456 			has_blocked_load |= update_nohz_stats(rq);
14457 
14458 		/*
14459 		 * If time for next balance is due,
14460 		 * do the balance.
14461 		 */
14462 		if (time_after_eq(jiffies, rq->next_balance)) {
14463 			struct rq_flags rf;
14464 
14465 			rq_lock_irqsave(rq, &rf);
14466 			update_rq_clock(rq);
14467 			rq_unlock_irqrestore(rq, &rf);
14468 
14469 			if (flags & NOHZ_BALANCE_KICK)
14470 				sched_balance_domains(rq, CPU_IDLE);
14471 		}
14472 
14473 		if (time_after(next_balance, rq->next_balance)) {
14474 			next_balance = rq->next_balance;
14475 			update_next_balance = 1;
14476 		}
14477 	}
14478 
14479 	/*
14480 	 * next_balance will be updated only when there is a need.
14481 	 * When the CPU is attached to null domain for ex, it will not be
14482 	 * updated.
14483 	 */
14484 	if (likely(update_next_balance))
14485 		nohz.next_balance = next_balance;
14486 
14487 	if (flags & NOHZ_STATS_KICK)
14488 		WRITE_ONCE(nohz.next_blocked,
14489 			   now + msecs_to_jiffies(LOAD_AVG_PERIOD));
14490 
14491 abort:
14492 	/* There is still blocked load, enable periodic update */
14493 	if (has_blocked_load)
14494 		WRITE_ONCE(nohz.has_blocked_load, 1);
14495 }
14496 
14497 /*
14498  * In CONFIG_NO_HZ_COMMON case, the idle balance kickee will do the
14499  * rebalancing for all the CPUs for whom scheduler ticks are stopped.
14500  */
14501 static bool nohz_idle_balance(struct rq *this_rq, enum cpu_idle_type idle)
14502 {
14503 	unsigned int flags = this_rq->nohz_idle_balance;
14504 
14505 	if (!flags)
14506 		return false;
14507 
14508 	this_rq->nohz_idle_balance = 0;
14509 
14510 	if (idle != CPU_IDLE)
14511 		return false;
14512 
14513 	_nohz_idle_balance(this_rq, flags);
14514 
14515 	return true;
14516 }
14517 
14518 /*
14519  * Check if we need to directly run the ILB for updating blocked load before
14520  * entering idle state. Here we run ILB directly without issuing IPIs.
14521  *
14522  * Note that when this function is called, the tick may not yet be stopped on
14523  * this CPU yet. nohz.idle_cpus_mask is updated only when tick is stopped and
14524  * cleared on the next busy tick. In other words, nohz.idle_cpus_mask updates
14525  * don't align with CPUs enter/exit idle to avoid bottlenecks due to high idle
14526  * entry/exit rate (usec). So it is possible that _nohz_idle_balance() is
14527  * called from this function on (this) CPU that's not yet in the mask. That's
14528  * OK because the goal of nohz_run_idle_balance() is to run ILB only for
14529  * updating the blocked load of already idle CPUs without waking up one of
14530  * those idle CPUs and outside the preempt disable / IRQ off phase of the local
14531  * cpu about to enter idle, because it can take a long time.
14532  */
14533 void nohz_run_idle_balance(int cpu)
14534 {
14535 	unsigned int flags;
14536 
14537 	flags = atomic_fetch_andnot(NOHZ_NEWILB_KICK, nohz_flags(cpu));
14538 
14539 	/*
14540 	 * Update the blocked load only if no SCHED_SOFTIRQ is about to happen
14541 	 * (i.e. NOHZ_STATS_KICK set) and will do the same.
14542 	 */
14543 	if ((flags == NOHZ_NEWILB_KICK) && !need_resched())
14544 		_nohz_idle_balance(cpu_rq(cpu), NOHZ_STATS_KICK);
14545 }
14546 
14547 static void nohz_newidle_balance(struct rq *this_rq)
14548 {
14549 	int this_cpu = this_rq->cpu;
14550 
14551 	/* Will wake up very soon. No time for doing anything else*/
14552 	if (this_rq->avg_idle < sysctl_sched_migration_cost)
14553 		return;
14554 
14555 	/* Don't need to update blocked load of idle CPUs*/
14556 	if (!READ_ONCE(nohz.has_blocked_load) ||
14557 	    time_before(jiffies, READ_ONCE(nohz.next_blocked)))
14558 		return;
14559 
14560 	/*
14561 	 * Set the need to trigger ILB in order to update blocked load
14562 	 * before entering idle state.
14563 	 */
14564 	atomic_or(NOHZ_NEWILB_KICK, nohz_flags(this_cpu));
14565 }
14566 
14567 #else /* !CONFIG_NO_HZ_COMMON: */
14568 static inline void nohz_balancer_kick(struct rq *rq) { }
14569 
14570 static inline bool nohz_idle_balance(struct rq *this_rq, enum cpu_idle_type idle)
14571 {
14572 	return false;
14573 }
14574 
14575 static inline void nohz_newidle_balance(struct rq *this_rq) { }
14576 #endif /* !CONFIG_NO_HZ_COMMON */
14577 
14578 /*
14579  * sched_balance_newidle is called by schedule() if this_cpu is about to become
14580  * idle. Attempts to pull tasks from other CPUs.
14581  *
14582  * Returns:
14583  *   < 0 - we released the lock and there are !fair tasks present
14584  *     0 - failed, no new tasks
14585  *   > 0 - success, new (fair) tasks present
14586  */
14587 static int sched_balance_newidle(struct rq *this_rq, struct rq_flags *rf)
14588 	__must_hold(__rq_lockp(this_rq))
14589 {
14590 	unsigned long next_balance = jiffies + HZ;
14591 	int this_cpu = this_rq->cpu;
14592 	int continue_balancing = 1;
14593 	u64 t0, t1, curr_cost = 0;
14594 	struct sched_domain *sd;
14595 	int pulled_task = 0;
14596 
14597 	update_misfit_status(NULL, this_rq);
14598 
14599 	/*
14600 	 * There is a task waiting to run. No need to search for one.
14601 	 * Return 0; the task will be enqueued when switching to idle.
14602 	 */
14603 	if (this_rq->ttwu_pending)
14604 		return 0;
14605 
14606 	/*
14607 	 * We must set idle_stamp _before_ calling sched_balance_rq()
14608 	 * for CPU_NEWLY_IDLE, such that we measure the this duration
14609 	 * as idle time.
14610 	 */
14611 	this_rq->idle_stamp = rq_clock(this_rq);
14612 
14613 	/*
14614 	 * Do not pull tasks towards !active CPUs...
14615 	 */
14616 	if (!cpu_active(this_cpu))
14617 		return 0;
14618 
14619 	/*
14620 	 * This is OK, because current is on_cpu, which avoids it being picked
14621 	 * for load-balance and preemption/IRQs are still disabled avoiding
14622 	 * further scheduler activity on it and we're being very careful to
14623 	 * re-start the picking loop.
14624 	 */
14625 	rq_unpin_lock(this_rq, rf);
14626 
14627 	sd = rcu_dereference_sched_domain(this_rq->sd);
14628 	if (!sd)
14629 		goto out;
14630 
14631 	if (!get_rd_overloaded(this_rq->rd) ||
14632 	    this_rq->avg_idle < sd->max_newidle_lb_cost) {
14633 
14634 		update_next_balance(sd, &next_balance);
14635 		goto out;
14636 	}
14637 
14638 	/*
14639 	 * Include sched_balance_update_blocked_averages() in the cost
14640 	 * calculation because it can be quite costly -- this ensures we skip
14641 	 * it when avg_idle gets to be very low.
14642 	 */
14643 	t0 = sched_clock_cpu(this_cpu);
14644 	__sched_balance_update_blocked_averages(this_rq);
14645 
14646 	rq_modified_begin(this_rq, &fair_sched_class);
14647 	raw_spin_rq_unlock(this_rq);
14648 
14649 	for_each_domain(this_cpu, sd) {
14650 		u64 domain_cost;
14651 
14652 		update_next_balance(sd, &next_balance);
14653 
14654 		if (this_rq->avg_idle < curr_cost + sd->max_newidle_lb_cost)
14655 			break;
14656 
14657 		if (sd->flags & SD_BALANCE_NEWIDLE) {
14658 			unsigned int weight = 1;
14659 
14660 			if (sched_feat(NI_RANDOM) && sd->newidle_ratio < 1024) {
14661 				/*
14662 				 * Throw a 1k sided dice; and only run
14663 				 * newidle_balance according to the success
14664 				 * rate.
14665 				 */
14666 				u32 d1k = sched_rng() % 1024;
14667 				weight = 1 + sd->newidle_ratio;
14668 				if (d1k > weight) {
14669 					update_newidle_stats(sd, 0);
14670 					continue;
14671 				}
14672 				weight = (1024 + weight/2) / weight;
14673 			}
14674 
14675 			pulled_task = sched_balance_rq(this_cpu, this_rq,
14676 						   sd, CPU_NEWLY_IDLE,
14677 						   &continue_balancing);
14678 
14679 			t1 = sched_clock_cpu(this_cpu);
14680 			domain_cost = t1 - t0;
14681 			curr_cost += domain_cost;
14682 			t0 = t1;
14683 
14684 			/*
14685 			 * Track max cost of a domain to make sure to not delay the
14686 			 * next wakeup on the CPU.
14687 			 */
14688 			update_newidle_cost(sd, domain_cost, weight * !!pulled_task);
14689 		}
14690 
14691 		/*
14692 		 * Stop searching for tasks to pull if there are
14693 		 * now runnable tasks on this rq.
14694 		 */
14695 		if (pulled_task || !continue_balancing)
14696 			break;
14697 	}
14698 
14699 	raw_spin_rq_lock(this_rq);
14700 
14701 	if (curr_cost > this_rq->max_idle_balance_cost)
14702 		this_rq->max_idle_balance_cost = curr_cost;
14703 
14704 	/*
14705 	 * While browsing the domains, we released the rq lock, a task could
14706 	 * have been enqueued in the meantime. Since we're not going idle,
14707 	 * pretend we pulled a task.
14708 	 */
14709 	if (this_rq->cfs.h_nr_queued && !pulled_task)
14710 		pulled_task = 1;
14711 
14712 	/* If a higher prio class was modified, restart the pick */
14713 	if (rq_modified_above(this_rq, &fair_sched_class))
14714 		pulled_task = -1;
14715 
14716 out:
14717 	/* Move the next balance forward */
14718 	if (time_after(this_rq->next_balance, next_balance))
14719 		this_rq->next_balance = next_balance;
14720 
14721 	if (pulled_task)
14722 		this_rq->idle_stamp = 0;
14723 	else
14724 		nohz_newidle_balance(this_rq);
14725 
14726 	rq_repin_lock(this_rq, rf);
14727 
14728 	return pulled_task;
14729 }
14730 
14731 /*
14732  * This softirq handler is triggered via SCHED_SOFTIRQ from two places:
14733  *
14734  * - directly from the local sched_tick() for periodic load balancing
14735  *
14736  * - indirectly from a remote sched_tick() for NOHZ idle balancing
14737  *   through the SMP cross-call nohz_csd_func()
14738  */
14739 static __latent_entropy void sched_balance_softirq(void)
14740 {
14741 	struct rq *this_rq = this_rq();
14742 	enum cpu_idle_type idle = this_rq->idle_balance;
14743 	/*
14744 	 * If this CPU has a pending NOHZ_BALANCE_KICK, then do the
14745 	 * balancing on behalf of the other idle CPUs whose ticks are
14746 	 * stopped. Do nohz_idle_balance *before* sched_balance_domains to
14747 	 * give the idle CPUs a chance to load balance. Else we may
14748 	 * load balance only within the local sched_domain hierarchy
14749 	 * and abort nohz_idle_balance altogether if we pull some load.
14750 	 */
14751 	if (nohz_idle_balance(this_rq, idle))
14752 		return;
14753 
14754 	/* normal load balance */
14755 	sched_balance_update_blocked_averages(this_rq->cpu);
14756 	sched_balance_domains(this_rq, idle);
14757 }
14758 
14759 /*
14760  * Trigger the SCHED_SOFTIRQ if it is time to do periodic load balancing.
14761  */
14762 void sched_balance_trigger(struct rq *rq)
14763 {
14764 	/*
14765 	 * Don't need to rebalance while attached to NULL domain or
14766 	 * runqueue CPU is not active
14767 	 */
14768 	if (unlikely(on_null_domain(rq) || !cpu_active(cpu_of(rq))))
14769 		return;
14770 
14771 	if (time_after_eq(jiffies, rq->next_balance))
14772 		raise_softirq(SCHED_SOFTIRQ);
14773 
14774 	nohz_balancer_kick(rq);
14775 }
14776 
14777 static void rq_online_fair(struct rq *rq)
14778 {
14779 	update_sysctl();
14780 
14781 	update_runtime_enabled(rq);
14782 }
14783 
14784 static void rq_offline_fair(struct rq *rq)
14785 {
14786 	update_sysctl();
14787 
14788 	/* Ensure any throttled groups are reachable by pick_next_task */
14789 	unthrottle_offline_cfs_rqs(rq);
14790 
14791 	/* Ensure that we remove rq contribution to group share: */
14792 	clear_tg_offline_cfs_rqs(rq);
14793 }
14794 
14795 #ifdef CONFIG_SCHED_CORE
14796 static inline bool
14797 __entity_slice_used(struct sched_entity *se, int min_nr_tasks)
14798 {
14799 	u64 rtime = se->sum_exec_runtime - se->prev_sum_exec_runtime;
14800 	u64 slice = se->slice;
14801 
14802 	return (rtime * min_nr_tasks > slice);
14803 }
14804 
14805 #define MIN_NR_TASKS_DURING_FORCEIDLE	2
14806 static inline void task_tick_core(struct rq *rq, struct task_struct *curr)
14807 {
14808 	if (!sched_core_enabled(rq))
14809 		return;
14810 
14811 	/*
14812 	 * If runqueue has only one task which used up its slice and
14813 	 * if the sibling is forced idle, then trigger schedule to
14814 	 * give forced idle task a chance.
14815 	 *
14816 	 * __entity_slice_used() considers only this active rq and it gets the
14817 	 * whole slice. But during force idle, we have siblings acting
14818 	 * like a single runqueue and hence we need to consider runnable
14819 	 * tasks on this CPU and the forced idle CPU. Ideally, we should
14820 	 * go through the forced idle rq, but that would be a perf hit.
14821 	 * We can assume that the forced idle CPU has at least
14822 	 * MIN_NR_TASKS_DURING_FORCEIDLE - 1 tasks and use that to check
14823 	 * if we need to give up the CPU.
14824 	 */
14825 	if (rq->core->core_forceidle_count && rq->cfs.h_nr_queued == 1 &&
14826 	    __entity_slice_used(&curr->se, MIN_NR_TASKS_DURING_FORCEIDLE))
14827 		resched_curr(rq);
14828 }
14829 
14830 /*
14831  * Consider any infeasible weight scenario. Take for instance two tasks,
14832  * each bound to their respective sibling, one with weight 1 and one with
14833  * weight 2. Then the lower weight task will run ahead of the higher weight
14834  * task without bound.
14835  *
14836  * This utterly destroys the concept of a shared time base.
14837  *
14838  * Remember; all this is about a proportionally fair scheduling, where each
14839  * tasks receives:
14840  *
14841  *              w_i
14842  *   dt_i = ---------- dt                                     (1)
14843  *          \Sum_j w_j
14844  *
14845  * which we do by tracking a virtual time, s_i:
14846  *
14847  *          1
14848  *   s_i = --- d[t]_i                                         (2)
14849  *         w_i
14850  *
14851  * Where d[t] is a delta of discrete time, while dt is an infinitesimal.
14852  * The immediate corollary is that the ideal schedule S, where (2) to use
14853  * an infinitesimal delta, is:
14854  *
14855  *           1
14856  *   S = ---------- dt                                        (3)
14857  *       \Sum_i w_i
14858  *
14859  * From which we can define the lag, or deviation from the ideal, as:
14860  *
14861  *   lag(i) = S - s_i                                         (4)
14862  *
14863  * And since the one and only purpose is to approximate S, we get that:
14864  *
14865  *   \Sum_i w_i lag(i) := 0                                   (5)
14866  *
14867  * If this were not so, we no longer converge to S, and we can no longer
14868  * claim our scheduler has any of the properties we derive from S. This is
14869  * exactly what you did above, you broke it!
14870  *
14871  *
14872  * Let's continue for a while though; to see if there is anything useful to
14873  * be learned. We can combine (1)-(3) or (4)-(5) and express S in s_i:
14874  *
14875  *       \Sum_i w_i s_i
14876  *   S = --------------                                       (6)
14877  *         \Sum_i w_i
14878  *
14879  * Which gives us a way to compute S, given our s_i. Now, if you've read
14880  * our code, you know that we do not in fact do this, the reason for this
14881  * is two-fold. Firstly, computing S in that way requires a 64bit division
14882  * for every time we'd use it (see 12), and secondly, this only describes
14883  * the steady-state, it doesn't handle dynamics.
14884  *
14885  * Anyway, in (6):  s_i -> x + (s_i - x), to get:
14886  *
14887  *           \Sum_i w_i (s_i - x)
14888  *   S - x = --------------------                             (7)
14889  *              \Sum_i w_i
14890  *
14891  * Which shows that S and s_i transform alike (which makes perfect sense
14892  * given that S is basically the (weighted) average of s_i).
14893  *
14894  * So the thing to remember is that the above is strictly UP. It is
14895  * possible to generalize to multiple runqueues -- however it gets really
14896  * yuck when you have to add affinity support, as illustrated by our very
14897  * first counter-example.
14898  *
14899  * Luckily I think we can avoid needing a full multi-queue variant for
14900  * core-scheduling (or load-balancing). The crucial observation is that we
14901  * only actually need this comparison in the presence of forced-idle; only
14902  * then do we need to tell if the stalled rq has higher priority over the
14903  * other.
14904  *
14905  * [XXX assumes SMT2; better consider the more general case, I suspect
14906  * it'll work out because our comparison is always between 2 rqs and the
14907  * answer is only interesting if one of them is forced-idle]
14908  *
14909  * And (under assumption of SMT2) when there is forced-idle, there is only
14910  * a single queue, so everything works like normal.
14911  *
14912  * Let, for our runqueue 'k':
14913  *
14914  *   T_k = \Sum_i w_i s_i
14915  *   W_k = \Sum_i w_i      ; for all i of k                  (8)
14916  *
14917  * Then we can write (6) like:
14918  *
14919  *         T_k
14920  *   S_k = ---                                               (9)
14921  *         W_k
14922  *
14923  * From which immediately follows that:
14924  *
14925  *           T_k + T_l
14926  *   S_k+l = ---------                                       (10)
14927  *           W_k + W_l
14928  *
14929  * On which we can define a combined lag:
14930  *
14931  *   lag_k+l(i) := S_k+l - s_i                               (11)
14932  *
14933  * And that gives us the tools to compare tasks across a combined runqueue.
14934  *
14935  *
14936  * Combined this gives the following:
14937  *
14938  *  a) when a runqueue enters force-idle, sync it against it's sibling rq(s)
14939  *     using (7); this only requires storing single 'time'-stamps.
14940  *
14941  *  b) when comparing tasks between 2 runqueues of which one is forced-idle,
14942  *     compare the combined lag, per (11).
14943  *
14944  * Now, of course cgroups (I so hate them) make this more interesting in
14945  * that a) seems to suggest we need to iterate all cgroup on a CPU at such
14946  * boundaries, but I think we can avoid that. The force-idle is for the
14947  * whole CPU, all it's rqs. So we can mark it in the root and lazily
14948  * propagate downward on demand.
14949  */
14950 
14951 /*
14952  * So this sync is basically a relative reset of S to 0.
14953  *
14954  * So with 2 queues, when one goes idle, we drop them both to 0 and one
14955  * then increases due to not being idle, and the idle one builds up lag to
14956  * get re-elected. So far so simple, right?
14957  *
14958  * When there's 3, we can have the situation where 2 run and one is idle,
14959  * we sync to 0 and let the idle one build up lag to get re-election. Now
14960  * suppose another one also drops idle. At this point dropping all to 0
14961  * again would destroy the built-up lag from the queue that was already
14962  * idle, not good.
14963  *
14964  * So instead of syncing everything, we can:
14965  *
14966  *   less := !((s64)(s_a - s_b) <= 0)
14967  *
14968  *   (v_a - S_a) - (v_b - S_b) == v_a - v_b - S_a + S_b
14969  *                             == v_a - (v_b - S_a + S_b)
14970  *
14971  * IOW, we can recast the (lag) comparison to a one-sided difference.
14972  * So if then, instead of syncing the whole queue, sync the idle queue
14973  * against the active queue with S_a + S_b at the point where we sync.
14974  *
14975  * (XXX consider the implication of living in a cyclic group: N / 2^n N)
14976  *
14977  * This gives us means of syncing single queues against the active queue,
14978  * and for already idle queues to preserve their build-up lag.
14979  *
14980  * Of course, then we get the situation where there's 2 active and one
14981  * going idle, who do we pick to sync against? Theory would have us sync
14982  * against the combined S, but as we've already demonstrated, there is no
14983  * such thing in infeasible weight scenarios.
14984  *
14985  * One thing I've considered; and this is where that core_active rudiment
14986  * came from, is having active queues sync up between themselves after
14987  * every tick. This limits the observed divergence due to the work
14988  * conservancy.
14989  *
14990  * On top of that, we can improve upon things by employing (10) here.
14991  */
14992 
14993 /*
14994  * se_fi_update - Update the cfs_rq->zero_vruntime_fi in a CFS hierarchy if needed.
14995  */
14996 static void se_fi_update(const struct sched_entity *se, unsigned int fi_seq,
14997 			 bool forceidle)
14998 {
14999 	for_each_sched_entity(se) {
15000 		struct cfs_rq *cfs_rq = cfs_rq_of(se);
15001 
15002 		if (forceidle) {
15003 			if (cfs_rq->forceidle_seq == fi_seq)
15004 				break;
15005 			cfs_rq->forceidle_seq = fi_seq;
15006 		}
15007 
15008 		cfs_rq->zero_vruntime_fi = cfs_rq->zero_vruntime;
15009 	}
15010 }
15011 
15012 void task_vruntime_update(struct rq *rq, struct task_struct *p, bool in_fi)
15013 {
15014 	struct sched_entity *se = &p->se;
15015 
15016 	if (p->sched_class != &fair_sched_class)
15017 		return;
15018 
15019 	se_fi_update(se, rq->core->core_forceidle_seq, in_fi);
15020 }
15021 
15022 bool cfs_prio_less(const struct task_struct *a, const struct task_struct *b,
15023 			bool in_fi)
15024 {
15025 	struct rq *rq = task_rq(a);
15026 	const struct sched_entity *sea = &a->se;
15027 	const struct sched_entity *seb = &b->se;
15028 	struct cfs_rq *cfs_rqa;
15029 	struct cfs_rq *cfs_rqb;
15030 	s64 delta;
15031 
15032 	WARN_ON_ONCE(task_rq(b)->core != rq->core);
15033 
15034 	cfs_rqa = &task_rq(a)->cfs;
15035 	cfs_rqb = &task_rq(b)->cfs;
15036 
15037 	/*
15038 	 * Find delta after normalizing se's vruntime with its cfs_rq's
15039 	 * zero_vruntime_fi, which would have been updated in prior calls
15040 	 * to se_fi_update().
15041 	 */
15042 	delta = vruntime_op(sea->vruntime, "-", seb->vruntime) +
15043 		vruntime_op(cfs_rqb->zero_vruntime_fi, "-", cfs_rqa->zero_vruntime_fi);
15044 
15045 	return delta > 0;
15046 }
15047 
15048 static int task_is_throttled_fair(struct task_struct *p, int cpu)
15049 {
15050 	struct cfs_rq *cfs_rq;
15051 
15052 #ifdef CONFIG_FAIR_GROUP_SCHED
15053 	cfs_rq = tg_cfs_rq(task_group(p), cpu);
15054 #else
15055 	cfs_rq = &cpu_rq(cpu)->cfs;
15056 #endif
15057 	return throttled_hierarchy(cfs_rq);
15058 }
15059 #else /* !CONFIG_SCHED_CORE: */
15060 static inline void task_tick_core(struct rq *rq, struct task_struct *curr) {}
15061 #endif /* !CONFIG_SCHED_CORE */
15062 
15063 /*
15064  * scheduler tick hitting a task of our scheduling class.
15065  *
15066  * NOTE: This function can be called remotely by the tick offload that
15067  * goes along full dynticks. Therefore no local assumption can be made
15068  * and everything must be accessed through the @rq and @curr passed in
15069  * parameters.
15070  */
15071 static void task_tick_fair(struct rq *rq, struct task_struct *curr, int queued)
15072 {
15073 	struct sched_entity *se = &curr->se;
15074 
15075 	if (se->on_rq) {
15076 		unsigned long weight = NICE_0_LOAD;
15077 		struct cfs_rq *cfs_rq;
15078 
15079 		for_each_sched_entity(se) {
15080 			cfs_rq = cfs_rq_of(se);
15081 			entity_tick(cfs_rq, se, queued);
15082 
15083 			weight = __calc_prop_weight(cfs_rq, se, weight);
15084 		}
15085 
15086 		se = &curr->se;
15087 		reweight_eevdf(cfs_rq, se, weight, se->on_rq);
15088 	}
15089 
15090 	if (queued)
15091 		return;
15092 
15093 	if (static_branch_unlikely(&sched_numa_balancing))
15094 		task_tick_numa(rq, curr);
15095 
15096 	task_tick_cache(rq, curr);
15097 
15098 	update_misfit_status(curr, rq);
15099 	check_update_overutilized_status(task_rq(curr));
15100 
15101 	task_tick_core(rq, curr);
15102 }
15103 
15104 /*
15105  * called on fork with the child task as argument from the parent's context
15106  *  - child not yet on the tasklist
15107  *  - preemption disabled
15108  */
15109 static void task_fork_fair(struct task_struct *p)
15110 {
15111 	set_task_max_allowed_capacity(p);
15112 }
15113 
15114 /*
15115  * Priority of the task has changed. Check to see if we preempt
15116  * the current task.
15117  */
15118 static void
15119 prio_changed_fair(struct rq *rq, struct task_struct *p, u64 oldprio)
15120 {
15121 	if (!task_on_rq_queued(p))
15122 		return;
15123 
15124 	if (p->prio == oldprio)
15125 		return;
15126 
15127 	if (rq->cfs.h_nr_queued == 1)
15128 		return;
15129 
15130 	/*
15131 	 * Reschedule if we are currently running on this runqueue and
15132 	 * our priority decreased, or if we are not currently running on
15133 	 * this runqueue and our priority is higher than the current's
15134 	 */
15135 	if (task_current_donor(rq, p)) {
15136 		if (p->prio > oldprio)
15137 			resched_curr(rq);
15138 	} else {
15139 		wakeup_preempt(rq, p, 0);
15140 	}
15141 }
15142 
15143 #ifdef CONFIG_FAIR_GROUP_SCHED
15144 /*
15145  * Propagate the changes of the sched_entity across the tg tree to make it
15146  * visible to the root
15147  */
15148 static void propagate_entity_cfs_rq(struct sched_entity *se)
15149 {
15150 	struct cfs_rq *cfs_rq = cfs_rq_of(se);
15151 
15152 	/*
15153 	 * If a task gets attached to this cfs_rq and before being queued,
15154 	 * it gets migrated to another CPU due to reasons like affinity
15155 	 * change, make sure this cfs_rq stays on leaf cfs_rq list to have
15156 	 * that removed load decayed or it can cause faireness problem.
15157 	 */
15158 	if (!cfs_rq_pelt_clock_throttled(cfs_rq))
15159 		list_add_leaf_cfs_rq(cfs_rq);
15160 
15161 	/* Start to propagate at parent */
15162 	se = se->parent;
15163 
15164 	for_each_sched_entity(se) {
15165 		cfs_rq = cfs_rq_of(se);
15166 
15167 		update_load_avg(cfs_rq, se, UPDATE_TG);
15168 
15169 		if (!cfs_rq_pelt_clock_throttled(cfs_rq))
15170 			list_add_leaf_cfs_rq(cfs_rq);
15171 	}
15172 
15173 	assert_list_leaf_cfs_rq(rq_of(cfs_rq));
15174 }
15175 #else /* !CONFIG_FAIR_GROUP_SCHED: */
15176 static void propagate_entity_cfs_rq(struct sched_entity *se) { }
15177 #endif /* !CONFIG_FAIR_GROUP_SCHED */
15178 
15179 static void detach_entity_cfs_rq(struct sched_entity *se)
15180 {
15181 	struct cfs_rq *cfs_rq = cfs_rq_of(se);
15182 
15183 	/*
15184 	 * In case the task sched_avg hasn't been attached:
15185 	 * - A forked task which hasn't been woken up by wake_up_new_task().
15186 	 * - A task which has been woken up by try_to_wake_up() but is
15187 	 *   waiting for actually being woken up by sched_ttwu_pending().
15188 	 */
15189 	if (!se->avg.last_update_time)
15190 		return;
15191 
15192 	/* Catch up with the cfs_rq and remove our load when we leave */
15193 	update_load_avg(cfs_rq, se, 0);
15194 	detach_entity_load_avg(cfs_rq, se);
15195 	update_tg_load_avg(cfs_rq);
15196 	propagate_entity_cfs_rq(se);
15197 }
15198 
15199 static void attach_entity_cfs_rq(struct sched_entity *se)
15200 {
15201 	struct cfs_rq *cfs_rq = cfs_rq_of(se);
15202 
15203 	/* Synchronize entity with its cfs_rq */
15204 	update_load_avg(cfs_rq, se, sched_feat(ATTACH_AGE_LOAD) ? 0 : SKIP_AGE_LOAD);
15205 	attach_entity_load_avg(cfs_rq, se);
15206 	update_tg_load_avg(cfs_rq);
15207 	propagate_entity_cfs_rq(se);
15208 }
15209 
15210 static void detach_task_cfs_rq(struct task_struct *p)
15211 {
15212 	struct sched_entity *se = &p->se;
15213 
15214 	detach_entity_cfs_rq(se);
15215 }
15216 
15217 static void attach_task_cfs_rq(struct task_struct *p)
15218 {
15219 	struct sched_entity *se = &p->se;
15220 
15221 	attach_entity_cfs_rq(se);
15222 }
15223 
15224 static void switching_from_fair(struct rq *rq, struct task_struct *p)
15225 {
15226 	if (p->se.sched_delayed)
15227 		dequeue_task(rq, p, DEQUEUE_SLEEP | DEQUEUE_DELAYED | DEQUEUE_NOCLOCK);
15228 }
15229 
15230 static void switched_from_fair(struct rq *rq, struct task_struct *p)
15231 {
15232 	detach_task_cfs_rq(p);
15233 }
15234 
15235 static void switched_to_fair(struct rq *rq, struct task_struct *p)
15236 {
15237 	WARN_ON_ONCE(p->se.sched_delayed);
15238 
15239 	attach_task_cfs_rq(p);
15240 
15241 	set_task_max_allowed_capacity(p);
15242 
15243 	if (task_on_rq_queued(p)) {
15244 		/*
15245 		 * We were most likely switched from sched_rt, so
15246 		 * kick off the schedule if running, otherwise just see
15247 		 * if we can still preempt the current task.
15248 		 */
15249 		if (task_current_donor(rq, p))
15250 			resched_curr(rq);
15251 		else
15252 			wakeup_preempt(rq, p, 0);
15253 	}
15254 }
15255 
15256 static void set_next_task_fair(struct rq *rq, struct task_struct *p, bool first)
15257 {
15258 	struct sched_entity *se = &p->se;
15259 	bool throttled = false;
15260 	struct cfs_rq *cfs_rq = &rq->cfs;
15261 	unsigned long weight = NICE_0_LOAD;
15262 	bool on_rq = se->on_rq;
15263 
15264 	clear_buddies(cfs_rq, se);
15265 
15266 	if (on_rq)
15267 		__dequeue_entity(cfs_rq, se);
15268 
15269 	for_each_sched_entity(se) {
15270 		cfs_rq = cfs_rq_of(se);
15271 
15272 		if (!IS_ENABLED(CONFIG_FAIR_GROUP_SCHED) ||
15273 		    !first || !cfs_rq->h_curr)
15274 			set_next_entity(cfs_rq, se);
15275 
15276 		/* ensure bandwidth has been allocated on our new cfs_rq */
15277 		throttled |= account_cfs_rq_runtime(cfs_rq, 0);
15278 
15279 		if (on_rq)
15280 			weight = __calc_prop_weight(cfs_rq, se, weight);
15281 	}
15282 
15283 	if (throttled)
15284 		task_throttle_setup_work(p);
15285 
15286 	se = &p->se;
15287 	cfs_rq->curr = se;
15288 
15289 	if (on_rq) {
15290 		reweight_eevdf(cfs_rq, se, weight, se->on_rq);
15291 		if (first)
15292 			set_protect_slice(cfs_rq, se);
15293 	}
15294 
15295 	if (task_on_rq_queued(p)) {
15296 		/*
15297 		 * Move the next running task to the front of the list, so our
15298 		 * cfs_tasks list becomes MRU one.
15299 		 */
15300 		list_move(&se->group_node, &rq->cfs_tasks);
15301 	}
15302 	if (!first)
15303 		return;
15304 
15305 	WARN_ON_ONCE(se->sched_delayed);
15306 
15307 	if (hrtick_enabled_fair(rq))
15308 		hrtick_start_fair(rq, p);
15309 
15310 	update_misfit_status(p, rq);
15311 	sched_fair_update_stop_tick(rq, p);
15312 }
15313 
15314 void init_cfs_rq(struct cfs_rq *cfs_rq)
15315 {
15316 	cfs_rq->tasks_timeline = RB_ROOT_CACHED;
15317 	cfs_rq->zero_vruntime = (u64)(-(1LL << 20));
15318 	raw_spin_lock_init(&cfs_rq->removed.lock);
15319 }
15320 
15321 #ifdef CONFIG_FAIR_GROUP_SCHED
15322 static void task_change_group_fair(struct task_struct *p)
15323 {
15324 	/*
15325 	 * We couldn't detach or attach a forked task which
15326 	 * hasn't been woken up by wake_up_new_task().
15327 	 */
15328 	if (READ_ONCE(p->__state) == TASK_NEW)
15329 		return;
15330 
15331 	detach_task_cfs_rq(p);
15332 
15333 	/* Tell se's cfs_rq has been changed -- migrated */
15334 	p->se.avg.last_update_time = 0;
15335 	set_task_rq(p, task_cpu(p));
15336 	attach_task_cfs_rq(p);
15337 }
15338 
15339 void free_fair_sched_group(struct task_group *tg)
15340 {
15341 	free_percpu(tg->cfs_rq);
15342 }
15343 
15344 int alloc_fair_sched_group(struct task_group *tg, struct task_group *parent)
15345 {
15346 	struct cfs_tg_state __percpu *state;
15347 	struct sched_entity *se;
15348 	struct cfs_rq *cfs_rq;
15349 	int i;
15350 
15351 	state = alloc_percpu_gfp(struct cfs_tg_state, GFP_KERNEL);
15352 	if (!state)
15353 		goto err;
15354 
15355 	tg->cfs_rq = &state->cfs_rq;
15356 	tg->shares = NICE_0_LOAD;
15357 
15358 	init_cfs_bandwidth(tg_cfs_bandwidth(tg), tg_cfs_bandwidth(parent));
15359 
15360 	for_each_possible_cpu(i) {
15361 		cfs_rq = tg_cfs_rq(tg, i);
15362 		if (!cfs_rq)
15363 			goto err;
15364 
15365 		se = tg_se(tg, i);
15366 		init_cfs_rq(cfs_rq);
15367 		init_tg_cfs_entry(tg, cfs_rq, se, i, tg_se(parent, i));
15368 		init_entity_runnable_average(se);
15369 	}
15370 
15371 	return 1;
15372 
15373 err:
15374 	return 0;
15375 }
15376 
15377 void online_fair_sched_group(struct task_group *tg)
15378 {
15379 	struct sched_entity *se;
15380 	struct rq_flags rf;
15381 	struct rq *rq;
15382 	int i;
15383 
15384 	for_each_possible_cpu(i) {
15385 		rq = cpu_rq(i);
15386 		se = tg_se(tg, i);
15387 		rq_lock_irq(rq, &rf);
15388 		update_rq_clock(rq);
15389 		attach_entity_cfs_rq(se);
15390 		sync_throttle(tg, i);
15391 		rq_unlock_irq(rq, &rf);
15392 	}
15393 }
15394 
15395 void unregister_fair_sched_group(struct task_group *tg)
15396 {
15397 	int cpu;
15398 
15399 	destroy_cfs_bandwidth(tg_cfs_bandwidth(tg));
15400 
15401 	for_each_possible_cpu(cpu) {
15402 		struct cfs_rq *cfs_rq = tg_cfs_rq(tg, cpu);
15403 		struct sched_entity *se = tg_se(tg, cpu);
15404 		struct rq *rq = cpu_rq(cpu);
15405 
15406 		if (se)
15407 			remove_entity_load_avg(se);
15408 
15409 		/*
15410 		 * Only empty task groups can be destroyed; so we can speculatively
15411 		 * check on_list without danger of it being re-added.
15412 		 */
15413 		if (cfs_rq->on_list) {
15414 			guard(rq_lock_irqsave)(rq);
15415 			list_del_leaf_cfs_rq(cfs_rq);
15416 		}
15417 	}
15418 }
15419 
15420 void init_tg_cfs_entry(struct task_group *tg, struct cfs_rq *cfs_rq,
15421 			struct sched_entity *se, int cpu,
15422 			struct sched_entity *parent)
15423 {
15424 	struct rq *rq = cpu_rq(cpu);
15425 
15426 	cfs_rq->tg = tg;
15427 	cfs_rq->rq = rq;
15428 	init_cfs_rq_runtime(cfs_rq);
15429 
15430 	/* se could be NULL for root_task_group */
15431 	if (!se)
15432 		return;
15433 
15434 	if (!parent) {
15435 		se->cfs_rq = &rq->cfs;
15436 		se->depth = 0;
15437 	} else {
15438 		se->cfs_rq = parent->my_q;
15439 		se->depth = parent->depth + 1;
15440 	}
15441 
15442 	se->my_q = cfs_rq;
15443 	/* guarantee group entities always have weight */
15444 	update_load_set(&se->load, NICE_0_LOAD);
15445 	se->parent = parent;
15446 }
15447 
15448 static DEFINE_MUTEX(shares_mutex);
15449 
15450 static int __sched_group_set_shares(struct task_group *tg, unsigned long shares)
15451 {
15452 	int i;
15453 
15454 	lockdep_assert_held(&shares_mutex);
15455 
15456 	/*
15457 	 * We can't change the weight of the root cgroup.
15458 	 */
15459 	if (is_root_task_group(tg))
15460 		return -EINVAL;
15461 
15462 	shares = clamp(shares, scale_load(MIN_SHARES), scale_load(MAX_SHARES));
15463 
15464 	if (tg->shares == shares)
15465 		return 0;
15466 
15467 	tg->shares = shares;
15468 	for_each_possible_cpu(i) {
15469 		struct rq *rq = cpu_rq(i);
15470 		struct sched_entity *se = tg_se(tg, i);
15471 		struct rq_flags rf;
15472 
15473 		/* Propagate contribution to hierarchy */
15474 		rq_lock_irqsave(rq, &rf);
15475 		update_rq_clock(rq);
15476 		for_each_sched_entity(se) {
15477 			update_load_avg(cfs_rq_of(se), se, UPDATE_TG);
15478 			update_cfs_group(se);
15479 		}
15480 		rq_unlock_irqrestore(rq, &rf);
15481 	}
15482 
15483 	return 0;
15484 }
15485 
15486 int sched_group_set_shares(struct task_group *tg, unsigned long shares)
15487 {
15488 	int ret;
15489 
15490 	mutex_lock(&shares_mutex);
15491 	if (tg_is_idle(tg))
15492 		ret = -EINVAL;
15493 	else
15494 		ret = __sched_group_set_shares(tg, shares);
15495 	mutex_unlock(&shares_mutex);
15496 
15497 	return ret;
15498 }
15499 
15500 int sched_group_set_idle(struct task_group *tg, long idle)
15501 {
15502 	int i;
15503 
15504 	if (tg == &root_task_group)
15505 		return -EINVAL;
15506 
15507 	if (idle < 0 || idle > 1)
15508 		return -EINVAL;
15509 
15510 	mutex_lock(&shares_mutex);
15511 
15512 	if (tg->idle == idle) {
15513 		mutex_unlock(&shares_mutex);
15514 		return 0;
15515 	}
15516 
15517 	tg->idle = idle;
15518 
15519 	for_each_possible_cpu(i) {
15520 		struct rq *rq = cpu_rq(i);
15521 		struct sched_entity *se = tg_se(tg, i);
15522 		struct cfs_rq *grp_cfs_rq = tg_cfs_rq(tg, i);
15523 		bool was_idle = cfs_rq_is_idle(grp_cfs_rq);
15524 		long idle_task_delta;
15525 		struct rq_flags rf;
15526 
15527 		rq_lock_irqsave(rq, &rf);
15528 
15529 		grp_cfs_rq->idle = idle;
15530 		if (WARN_ON_ONCE(was_idle == cfs_rq_is_idle(grp_cfs_rq)))
15531 			goto next_cpu;
15532 
15533 		idle_task_delta = grp_cfs_rq->h_nr_queued -
15534 				  grp_cfs_rq->h_nr_idle;
15535 		if (!cfs_rq_is_idle(grp_cfs_rq))
15536 			idle_task_delta *= -1;
15537 
15538 		for_each_sched_entity(se) {
15539 			struct cfs_rq *cfs_rq = cfs_rq_of(se);
15540 
15541 			if (!se->on_rq)
15542 				break;
15543 
15544 			cfs_rq->h_nr_idle += idle_task_delta;
15545 
15546 			/* Already accounted at parent level and above. */
15547 			if (cfs_rq_is_idle(cfs_rq))
15548 				break;
15549 		}
15550 
15551 next_cpu:
15552 		rq_unlock_irqrestore(rq, &rf);
15553 	}
15554 
15555 	/* Idle groups have minimum weight. */
15556 	if (tg_is_idle(tg))
15557 		__sched_group_set_shares(tg, scale_load(WEIGHT_IDLEPRIO));
15558 	else
15559 		__sched_group_set_shares(tg, NICE_0_LOAD);
15560 
15561 	mutex_unlock(&shares_mutex);
15562 	return 0;
15563 }
15564 
15565 #endif /* CONFIG_FAIR_GROUP_SCHED */
15566 
15567 
15568 static unsigned int get_rr_interval_fair(struct rq *rq, struct task_struct *task)
15569 {
15570 	struct sched_entity *se = &task->se;
15571 	unsigned int rr_interval = 0;
15572 
15573 	/*
15574 	 * Time slice is 0 for SCHED_OTHER tasks that are on an otherwise
15575 	 * idle runqueue:
15576 	 */
15577 	if (rq->cfs.load.weight)
15578 		rr_interval = NS_TO_JIFFIES(se->slice);
15579 
15580 	return rr_interval;
15581 }
15582 
15583 /*
15584  * All the scheduling class methods:
15585  */
15586 DEFINE_SCHED_CLASS(fair) = {
15587 	.enqueue_task		= enqueue_task_fair,
15588 	.dequeue_task		= dequeue_task_fair,
15589 	.yield_task		= yield_task_fair,
15590 	.yield_to_task		= yield_to_task_fair,
15591 
15592 	.wakeup_preempt		= wakeup_preempt_fair,
15593 
15594 	.pick_task		= pick_task_fair,
15595 	.put_prev_task		= put_prev_task_fair,
15596 	.set_next_task          = set_next_task_fair,
15597 
15598 	.select_task_rq		= select_task_rq_fair,
15599 	.migrate_task_rq	= migrate_task_rq_fair,
15600 
15601 	.rq_online		= rq_online_fair,
15602 	.rq_offline		= rq_offline_fair,
15603 
15604 	.task_dead		= task_dead_fair,
15605 	.set_cpus_allowed	= set_cpus_allowed_fair,
15606 
15607 	.task_tick		= task_tick_fair,
15608 	.task_fork		= task_fork_fair,
15609 
15610 	.reweight_task		= reweight_task_fair,
15611 	.prio_changed		= prio_changed_fair,
15612 	.switching_from		= switching_from_fair,
15613 	.switched_from		= switched_from_fair,
15614 	.switched_to		= switched_to_fair,
15615 
15616 	.get_rr_interval	= get_rr_interval_fair,
15617 
15618 	.update_curr		= update_curr_fair,
15619 
15620 #ifdef CONFIG_FAIR_GROUP_SCHED
15621 	.task_change_group	= task_change_group_fair,
15622 #endif
15623 
15624 #ifdef CONFIG_SCHED_CORE
15625 	.task_is_throttled	= task_is_throttled_fair,
15626 #endif
15627 
15628 #ifdef CONFIG_UCLAMP_TASK
15629 	.uclamp_enabled		= 1,
15630 #endif
15631 };
15632 
15633 void print_cfs_stats(struct seq_file *m, int cpu)
15634 {
15635 	struct cfs_rq *cfs_rq, *pos;
15636 
15637 	rcu_read_lock();
15638 	for_each_leaf_cfs_rq_safe(cpu_rq(cpu), cfs_rq, pos)
15639 		print_cfs_rq(m, cpu, cfs_rq);
15640 	rcu_read_unlock();
15641 }
15642 
15643 #ifdef CONFIG_NUMA_BALANCING
15644 void show_numa_stats(struct task_struct *p, struct seq_file *m)
15645 {
15646 	int node;
15647 	unsigned long tsf = 0, tpf = 0, gsf = 0, gpf = 0;
15648 	struct numa_group *ng;
15649 
15650 	rcu_read_lock();
15651 	ng = rcu_dereference_all(p->numa_group);
15652 	for_each_online_node(node) {
15653 		if (p->numa_faults) {
15654 			tsf = p->numa_faults[task_faults_idx(NUMA_MEM, node, 0)];
15655 			tpf = p->numa_faults[task_faults_idx(NUMA_MEM, node, 1)];
15656 		}
15657 		if (ng) {
15658 			gsf = ng->faults[task_faults_idx(NUMA_MEM, node, 0)];
15659 			gpf = ng->faults[task_faults_idx(NUMA_MEM, node, 1)];
15660 		}
15661 		print_numa_stats(m, node, tsf, tpf, gsf, gpf);
15662 	}
15663 	rcu_read_unlock();
15664 }
15665 #endif /* CONFIG_NUMA_BALANCING */
15666 
15667 __init void init_sched_fair_class(void)
15668 {
15669 	int i;
15670 
15671 	for_each_possible_cpu(i) {
15672 		zalloc_cpumask_var_node(&per_cpu(load_balance_mask, i), GFP_KERNEL, cpu_to_node(i));
15673 		zalloc_cpumask_var_node(&per_cpu(select_rq_mask,    i), GFP_KERNEL, cpu_to_node(i));
15674 		zalloc_cpumask_var_node(&per_cpu(should_we_balance_tmpmask, i),
15675 					GFP_KERNEL, cpu_to_node(i));
15676 
15677 #ifdef CONFIG_CFS_BANDWIDTH
15678 		INIT_CSD(&cpu_rq(i)->cfsb_csd, __cfsb_csd_unthrottle, cpu_rq(i));
15679 		INIT_LIST_HEAD(&cpu_rq(i)->cfsb_csd_list);
15680 #endif
15681 	}
15682 
15683 	open_softirq(SCHED_SOFTIRQ, sched_balance_softirq);
15684 
15685 #ifdef CONFIG_NO_HZ_COMMON
15686 	nohz.next_balance = jiffies;
15687 	nohz.next_blocked = jiffies;
15688 	zalloc_cpumask_var(&nohz.idle_cpus_mask, GFP_NOWAIT);
15689 #endif
15690 }
15691