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1/*
2 * Completely Fair Scheduling (CFS) Class (SCHED_NORMAL/SCHED_BATCH)
3 *
4 * Copyright (C) 2007 Red Hat, Inc., Ingo Molnar <mingo@redhat.com>
5 *
6 * Interactivity improvements by Mike Galbraith
7 * (C) 2007 Mike Galbraith <efault@gmx.de>
8 *
9 * Various enhancements by Dmitry Adamushko.
10 * (C) 2007 Dmitry Adamushko <dmitry.adamushko@gmail.com>
11 *
12 * Group scheduling enhancements by Srivatsa Vaddagiri
13 * Copyright IBM Corporation, 2007
14 * Author: Srivatsa Vaddagiri <vatsa@linux.vnet.ibm.com>
15 *
16 * Scaled math optimizations by Thomas Gleixner
17 * Copyright (C) 2007, Thomas Gleixner <tglx@linutronix.de>
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18 *
19 * Adaptive scheduling granularity, math enhancements by Peter Zijlstra
20 * Copyright (C) 2007 Red Hat, Inc., Peter Zijlstra <pzijlstr@redhat.com>
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21 */
22
9745512c 23#include <linux/latencytop.h>
1983a922 24#include <linux/sched.h>
3436ae12 25#include <linux/cpumask.h>
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26#include <linux/slab.h>
27#include <linux/profile.h>
28#include <linux/interrupt.h>
cbee9f88 29#include <linux/mempolicy.h>
e14808b4 30#include <linux/migrate.h>
cbee9f88 31#include <linux/task_work.h>
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32
33#include <trace/events/sched.h>
34
35#include "sched.h"
9745512c 36
bf0f6f24 37/*
21805085 38 * Targeted preemption latency for CPU-bound tasks:
864616ee 39 * (default: 6ms * (1 + ilog(ncpus)), units: nanoseconds)
bf0f6f24 40 *
21805085 41 * NOTE: this latency value is not the same as the concept of
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42 * 'timeslice length' - timeslices in CFS are of variable length
43 * and have no persistent notion like in traditional, time-slice
44 * based scheduling concepts.
bf0f6f24 45 *
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46 * (to see the precise effective timeslice length of your workload,
47 * run vmstat and monitor the context-switches (cs) field)
bf0f6f24 48 */
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49unsigned int sysctl_sched_latency = 6000000ULL;
50unsigned int normalized_sysctl_sched_latency = 6000000ULL;
2bd8e6d4 51
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52/*
53 * The initial- and re-scaling of tunables is configurable
54 * (default SCHED_TUNABLESCALING_LOG = *(1+ilog(ncpus))
55 *
56 * Options are:
57 * SCHED_TUNABLESCALING_NONE - unscaled, always *1
58 * SCHED_TUNABLESCALING_LOG - scaled logarithmical, *1+ilog(ncpus)
59 * SCHED_TUNABLESCALING_LINEAR - scaled linear, *ncpus
60 */
61enum sched_tunable_scaling sysctl_sched_tunable_scaling
62 = SCHED_TUNABLESCALING_LOG;
63
2bd8e6d4 64/*
b2be5e96 65 * Minimal preemption granularity for CPU-bound tasks:
864616ee 66 * (default: 0.75 msec * (1 + ilog(ncpus)), units: nanoseconds)
2bd8e6d4 67 */
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68unsigned int sysctl_sched_min_granularity = 750000ULL;
69unsigned int normalized_sysctl_sched_min_granularity = 750000ULL;
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70
71/*
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72 * is kept at sysctl_sched_latency / sysctl_sched_min_granularity
73 */
0bf377bb 74static unsigned int sched_nr_latency = 8;
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75
76/*
2bba22c5 77 * After fork, child runs first. If set to 0 (default) then
b2be5e96 78 * parent will (try to) run first.
21805085 79 */
2bba22c5 80unsigned int sysctl_sched_child_runs_first __read_mostly;
bf0f6f24 81
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82/*
83 * SCHED_OTHER wake-up granularity.
172e082a 84 * (default: 1 msec * (1 + ilog(ncpus)), units: nanoseconds)
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85 *
86 * This option delays the preemption effects of decoupled workloads
87 * and reduces their over-scheduling. Synchronous workloads will still
88 * have immediate wakeup/sleep latencies.
89 */
172e082a 90unsigned int sysctl_sched_wakeup_granularity = 1000000UL;
0bcdcf28 91unsigned int normalized_sysctl_sched_wakeup_granularity = 1000000UL;
bf0f6f24 92
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93const_debug unsigned int sysctl_sched_migration_cost = 500000UL;
94
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95/*
96 * The exponential sliding window over which load is averaged for shares
97 * distribution.
98 * (default: 10msec)
99 */
100unsigned int __read_mostly sysctl_sched_shares_window = 10000000UL;
101
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102#ifdef CONFIG_CFS_BANDWIDTH
103/*
104 * Amount of runtime to allocate from global (tg) to local (per-cfs_rq) pool
105 * each time a cfs_rq requests quota.
106 *
107 * Note: in the case that the slice exceeds the runtime remaining (either due
108 * to consumption or the quota being specified to be smaller than the slice)
109 * we will always only issue the remaining available time.
110 *
111 * default: 5 msec, units: microseconds
112 */
113unsigned int sysctl_sched_cfs_bandwidth_slice = 5000UL;
114#endif
115
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116static inline void update_load_add(struct load_weight *lw, unsigned long inc)
117{
118 lw->weight += inc;
119 lw->inv_weight = 0;
120}
121
122static inline void update_load_sub(struct load_weight *lw, unsigned long dec)
123{
124 lw->weight -= dec;
125 lw->inv_weight = 0;
126}
127
128static inline void update_load_set(struct load_weight *lw, unsigned long w)
129{
130 lw->weight = w;
131 lw->inv_weight = 0;
132}
133
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134/*
135 * Increase the granularity value when there are more CPUs,
136 * because with more CPUs the 'effective latency' as visible
137 * to users decreases. But the relationship is not linear,
138 * so pick a second-best guess by going with the log2 of the
139 * number of CPUs.
140 *
141 * This idea comes from the SD scheduler of Con Kolivas:
142 */
143static int get_update_sysctl_factor(void)
144{
145 unsigned int cpus = min_t(int, num_online_cpus(), 8);
146 unsigned int factor;
147
148 switch (sysctl_sched_tunable_scaling) {
149 case SCHED_TUNABLESCALING_NONE:
150 factor = 1;
151 break;
152 case SCHED_TUNABLESCALING_LINEAR:
153 factor = cpus;
154 break;
155 case SCHED_TUNABLESCALING_LOG:
156 default:
157 factor = 1 + ilog2(cpus);
158 break;
159 }
160
161 return factor;
162}
163
164static void update_sysctl(void)
165{
166 unsigned int factor = get_update_sysctl_factor();
167
168#define SET_SYSCTL(name) \
169 (sysctl_##name = (factor) * normalized_sysctl_##name)
170 SET_SYSCTL(sched_min_granularity);
171 SET_SYSCTL(sched_latency);
172 SET_SYSCTL(sched_wakeup_granularity);
173#undef SET_SYSCTL
174}
175
176void sched_init_granularity(void)
177{
178 update_sysctl();
179}
180
181#if BITS_PER_LONG == 32
182# define WMULT_CONST (~0UL)
183#else
184# define WMULT_CONST (1UL << 32)
185#endif
186
187#define WMULT_SHIFT 32
188
189/*
190 * Shift right and round:
191 */
192#define SRR(x, y) (((x) + (1UL << ((y) - 1))) >> (y))
193
194/*
195 * delta *= weight / lw
196 */
197static unsigned long
198calc_delta_mine(unsigned long delta_exec, unsigned long weight,
199 struct load_weight *lw)
200{
201 u64 tmp;
202
203 /*
204 * weight can be less than 2^SCHED_LOAD_RESOLUTION for task group sched
205 * entities since MIN_SHARES = 2. Treat weight as 1 if less than
206 * 2^SCHED_LOAD_RESOLUTION.
207 */
208 if (likely(weight > (1UL << SCHED_LOAD_RESOLUTION)))
209 tmp = (u64)delta_exec * scale_load_down(weight);
210 else
211 tmp = (u64)delta_exec;
212
213 if (!lw->inv_weight) {
214 unsigned long w = scale_load_down(lw->weight);
215
216 if (BITS_PER_LONG > 32 && unlikely(w >= WMULT_CONST))
217 lw->inv_weight = 1;
218 else if (unlikely(!w))
219 lw->inv_weight = WMULT_CONST;
220 else
221 lw->inv_weight = WMULT_CONST / w;
222 }
223
224 /*
225 * Check whether we'd overflow the 64-bit multiplication:
226 */
227 if (unlikely(tmp > WMULT_CONST))
228 tmp = SRR(SRR(tmp, WMULT_SHIFT/2) * lw->inv_weight,
229 WMULT_SHIFT/2);
230 else
231 tmp = SRR(tmp * lw->inv_weight, WMULT_SHIFT);
232
233 return (unsigned long)min(tmp, (u64)(unsigned long)LONG_MAX);
234}
235
236
237const struct sched_class fair_sched_class;
a4c2f00f 238
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239/**************************************************************
240 * CFS operations on generic schedulable entities:
241 */
242
62160e3f 243#ifdef CONFIG_FAIR_GROUP_SCHED
bf0f6f24 244
62160e3f 245/* cpu runqueue to which this cfs_rq is attached */
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246static inline struct rq *rq_of(struct cfs_rq *cfs_rq)
247{
62160e3f 248 return cfs_rq->rq;
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249}
250
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251/* An entity is a task if it doesn't "own" a runqueue */
252#define entity_is_task(se) (!se->my_q)
bf0f6f24 253
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254static inline struct task_struct *task_of(struct sched_entity *se)
255{
256#ifdef CONFIG_SCHED_DEBUG
257 WARN_ON_ONCE(!entity_is_task(se));
258#endif
259 return container_of(se, struct task_struct, se);
260}
261
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262/* Walk up scheduling entities hierarchy */
263#define for_each_sched_entity(se) \
264 for (; se; se = se->parent)
265
266static inline struct cfs_rq *task_cfs_rq(struct task_struct *p)
267{
268 return p->se.cfs_rq;
269}
270
271/* runqueue on which this entity is (to be) queued */
272static inline struct cfs_rq *cfs_rq_of(struct sched_entity *se)
273{
274 return se->cfs_rq;
275}
276
277/* runqueue "owned" by this group */
278static inline struct cfs_rq *group_cfs_rq(struct sched_entity *grp)
279{
280 return grp->my_q;
281}
282
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283static void update_cfs_rq_blocked_load(struct cfs_rq *cfs_rq,
284 int force_update);
9ee474f5 285
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286static inline void list_add_leaf_cfs_rq(struct cfs_rq *cfs_rq)
287{
288 if (!cfs_rq->on_list) {
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289 /*
290 * Ensure we either appear before our parent (if already
291 * enqueued) or force our parent to appear after us when it is
292 * enqueued. The fact that we always enqueue bottom-up
293 * reduces this to two cases.
294 */
295 if (cfs_rq->tg->parent &&
296 cfs_rq->tg->parent->cfs_rq[cpu_of(rq_of(cfs_rq))]->on_list) {
297 list_add_rcu(&cfs_rq->leaf_cfs_rq_list,
298 &rq_of(cfs_rq)->leaf_cfs_rq_list);
299 } else {
300 list_add_tail_rcu(&cfs_rq->leaf_cfs_rq_list,
3d4b47b4 301 &rq_of(cfs_rq)->leaf_cfs_rq_list);
67e86250 302 }
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303
304 cfs_rq->on_list = 1;
9ee474f5 305 /* We should have no load, but we need to update last_decay. */
aff3e498 306 update_cfs_rq_blocked_load(cfs_rq, 0);
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307 }
308}
309
310static inline void list_del_leaf_cfs_rq(struct cfs_rq *cfs_rq)
311{
312 if (cfs_rq->on_list) {
313 list_del_rcu(&cfs_rq->leaf_cfs_rq_list);
314 cfs_rq->on_list = 0;
315 }
316}
317
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318/* Iterate thr' all leaf cfs_rq's on a runqueue */
319#define for_each_leaf_cfs_rq(rq, cfs_rq) \
320 list_for_each_entry_rcu(cfs_rq, &rq->leaf_cfs_rq_list, leaf_cfs_rq_list)
321
322/* Do the two (enqueued) entities belong to the same group ? */
323static inline int
324is_same_group(struct sched_entity *se, struct sched_entity *pse)
325{
326 if (se->cfs_rq == pse->cfs_rq)
327 return 1;
328
329 return 0;
330}
331
332static inline struct sched_entity *parent_entity(struct sched_entity *se)
333{
334 return se->parent;
335}
336
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337/* return depth at which a sched entity is present in the hierarchy */
338static inline int depth_se(struct sched_entity *se)
339{
340 int depth = 0;
341
342 for_each_sched_entity(se)
343 depth++;
344
345 return depth;
346}
347
348static void
349find_matching_se(struct sched_entity **se, struct sched_entity **pse)
350{
351 int se_depth, pse_depth;
352
353 /*
354 * preemption test can be made between sibling entities who are in the
355 * same cfs_rq i.e who have a common parent. Walk up the hierarchy of
356 * both tasks until we find their ancestors who are siblings of common
357 * parent.
358 */
359
360 /* First walk up until both entities are at same depth */
361 se_depth = depth_se(*se);
362 pse_depth = depth_se(*pse);
363
364 while (se_depth > pse_depth) {
365 se_depth--;
366 *se = parent_entity(*se);
367 }
368
369 while (pse_depth > se_depth) {
370 pse_depth--;
371 *pse = parent_entity(*pse);
372 }
373
374 while (!is_same_group(*se, *pse)) {
375 *se = parent_entity(*se);
376 *pse = parent_entity(*pse);
377 }
378}
379
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380#else /* !CONFIG_FAIR_GROUP_SCHED */
381
382static inline struct task_struct *task_of(struct sched_entity *se)
383{
384 return container_of(se, struct task_struct, se);
385}
bf0f6f24 386
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387static inline struct rq *rq_of(struct cfs_rq *cfs_rq)
388{
389 return container_of(cfs_rq, struct rq, cfs);
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390}
391
392#define entity_is_task(se) 1
393
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394#define for_each_sched_entity(se) \
395 for (; se; se = NULL)
bf0f6f24 396
b758149c 397static inline struct cfs_rq *task_cfs_rq(struct task_struct *p)
bf0f6f24 398{
b758149c 399 return &task_rq(p)->cfs;
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400}
401
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402static inline struct cfs_rq *cfs_rq_of(struct sched_entity *se)
403{
404 struct task_struct *p = task_of(se);
405 struct rq *rq = task_rq(p);
406
407 return &rq->cfs;
408}
409
410/* runqueue "owned" by this group */
411static inline struct cfs_rq *group_cfs_rq(struct sched_entity *grp)
412{
413 return NULL;
414}
415
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416static inline void list_add_leaf_cfs_rq(struct cfs_rq *cfs_rq)
417{
418}
419
420static inline void list_del_leaf_cfs_rq(struct cfs_rq *cfs_rq)
421{
422}
423
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424#define for_each_leaf_cfs_rq(rq, cfs_rq) \
425 for (cfs_rq = &rq->cfs; cfs_rq; cfs_rq = NULL)
426
427static inline int
428is_same_group(struct sched_entity *se, struct sched_entity *pse)
429{
430 return 1;
431}
432
433static inline struct sched_entity *parent_entity(struct sched_entity *se)
434{
435 return NULL;
436}
437
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438static inline void
439find_matching_se(struct sched_entity **se, struct sched_entity **pse)
440{
441}
442
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443#endif /* CONFIG_FAIR_GROUP_SCHED */
444
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445static __always_inline
446void account_cfs_rq_runtime(struct cfs_rq *cfs_rq, unsigned long delta_exec);
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447
448/**************************************************************
449 * Scheduling class tree data structure manipulation methods:
450 */
451
1bf08230 452static inline u64 max_vruntime(u64 max_vruntime, u64 vruntime)
02e0431a 453{
1bf08230 454 s64 delta = (s64)(vruntime - max_vruntime);
368059a9 455 if (delta > 0)
1bf08230 456 max_vruntime = vruntime;
02e0431a 457
1bf08230 458 return max_vruntime;
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459}
460
0702e3eb 461static inline u64 min_vruntime(u64 min_vruntime, u64 vruntime)
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462{
463 s64 delta = (s64)(vruntime - min_vruntime);
464 if (delta < 0)
465 min_vruntime = vruntime;
466
467 return min_vruntime;
468}
469
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470static inline int entity_before(struct sched_entity *a,
471 struct sched_entity *b)
472{
473 return (s64)(a->vruntime - b->vruntime) < 0;
474}
475
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476static void update_min_vruntime(struct cfs_rq *cfs_rq)
477{
478 u64 vruntime = cfs_rq->min_vruntime;
479
480 if (cfs_rq->curr)
481 vruntime = cfs_rq->curr->vruntime;
482
483 if (cfs_rq->rb_leftmost) {
484 struct sched_entity *se = rb_entry(cfs_rq->rb_leftmost,
485 struct sched_entity,
486 run_node);
487
e17036da 488 if (!cfs_rq->curr)
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489 vruntime = se->vruntime;
490 else
491 vruntime = min_vruntime(vruntime, se->vruntime);
492 }
493
1bf08230 494 /* ensure we never gain time by being placed backwards. */
1af5f730 495 cfs_rq->min_vruntime = max_vruntime(cfs_rq->min_vruntime, vruntime);
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496#ifndef CONFIG_64BIT
497 smp_wmb();
498 cfs_rq->min_vruntime_copy = cfs_rq->min_vruntime;
499#endif
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500}
501
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502/*
503 * Enqueue an entity into the rb-tree:
504 */
0702e3eb 505static void __enqueue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se)
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506{
507 struct rb_node **link = &cfs_rq->tasks_timeline.rb_node;
508 struct rb_node *parent = NULL;
509 struct sched_entity *entry;
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510 int leftmost = 1;
511
512 /*
513 * Find the right place in the rbtree:
514 */
515 while (*link) {
516 parent = *link;
517 entry = rb_entry(parent, struct sched_entity, run_node);
518 /*
519 * We dont care about collisions. Nodes with
520 * the same key stay together.
521 */
2bd2d6f2 522 if (entity_before(se, entry)) {
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523 link = &parent->rb_left;
524 } else {
525 link = &parent->rb_right;
526 leftmost = 0;
527 }
528 }
529
530 /*
531 * Maintain a cache of leftmost tree entries (it is frequently
532 * used):
533 */
1af5f730 534 if (leftmost)
57cb499d 535 cfs_rq->rb_leftmost = &se->run_node;
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536
537 rb_link_node(&se->run_node, parent, link);
538 rb_insert_color(&se->run_node, &cfs_rq->tasks_timeline);
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539}
540
0702e3eb 541static void __dequeue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se)
bf0f6f24 542{
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543 if (cfs_rq->rb_leftmost == &se->run_node) {
544 struct rb_node *next_node;
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545
546 next_node = rb_next(&se->run_node);
547 cfs_rq->rb_leftmost = next_node;
3fe69747 548 }
e9acbff6 549
bf0f6f24 550 rb_erase(&se->run_node, &cfs_rq->tasks_timeline);
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551}
552
029632fb 553struct sched_entity *__pick_first_entity(struct cfs_rq *cfs_rq)
bf0f6f24 554{
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555 struct rb_node *left = cfs_rq->rb_leftmost;
556
557 if (!left)
558 return NULL;
559
560 return rb_entry(left, struct sched_entity, run_node);
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561}
562
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563static struct sched_entity *__pick_next_entity(struct sched_entity *se)
564{
565 struct rb_node *next = rb_next(&se->run_node);
566
567 if (!next)
568 return NULL;
569
570 return rb_entry(next, struct sched_entity, run_node);
571}
572
573#ifdef CONFIG_SCHED_DEBUG
029632fb 574struct sched_entity *__pick_last_entity(struct cfs_rq *cfs_rq)
aeb73b04 575{
7eee3e67 576 struct rb_node *last = rb_last(&cfs_rq->tasks_timeline);
aeb73b04 577
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578 if (!last)
579 return NULL;
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580
581 return rb_entry(last, struct sched_entity, run_node);
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582}
583
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584/**************************************************************
585 * Scheduling class statistics methods:
586 */
587
acb4a848 588int sched_proc_update_handler(struct ctl_table *table, int write,
8d65af78 589 void __user *buffer, size_t *lenp,
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590 loff_t *ppos)
591{
8d65af78 592 int ret = proc_dointvec_minmax(table, write, buffer, lenp, ppos);
acb4a848 593 int factor = get_update_sysctl_factor();
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594
595 if (ret || !write)
596 return ret;
597
598 sched_nr_latency = DIV_ROUND_UP(sysctl_sched_latency,
599 sysctl_sched_min_granularity);
600
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CE
601#define WRT_SYSCTL(name) \
602 (normalized_sysctl_##name = sysctl_##name / (factor))
603 WRT_SYSCTL(sched_min_granularity);
604 WRT_SYSCTL(sched_latency);
605 WRT_SYSCTL(sched_wakeup_granularity);
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606#undef WRT_SYSCTL
607
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608 return 0;
609}
610#endif
647e7cac 611
a7be37ac 612/*
f9c0b095 613 * delta /= w
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614 */
615static inline unsigned long
616calc_delta_fair(unsigned long delta, struct sched_entity *se)
617{
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618 if (unlikely(se->load.weight != NICE_0_LOAD))
619 delta = calc_delta_mine(delta, NICE_0_LOAD, &se->load);
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620
621 return delta;
622}
623
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624/*
625 * The idea is to set a period in which each task runs once.
626 *
532b1858 627 * When there are too many tasks (sched_nr_latency) we have to stretch
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628 * this period because otherwise the slices get too small.
629 *
630 * p = (nr <= nl) ? l : l*nr/nl
631 */
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632static u64 __sched_period(unsigned long nr_running)
633{
634 u64 period = sysctl_sched_latency;
b2be5e96 635 unsigned long nr_latency = sched_nr_latency;
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636
637 if (unlikely(nr_running > nr_latency)) {
4bf0b771 638 period = sysctl_sched_min_granularity;
4d78e7b6 639 period *= nr_running;
4d78e7b6
PZ
640 }
641
642 return period;
643}
644
647e7cac
IM
645/*
646 * We calculate the wall-time slice from the period by taking a part
647 * proportional to the weight.
648 *
f9c0b095 649 * s = p*P[w/rw]
647e7cac 650 */
6d0f0ebd 651static u64 sched_slice(struct cfs_rq *cfs_rq, struct sched_entity *se)
21805085 652{
0a582440 653 u64 slice = __sched_period(cfs_rq->nr_running + !se->on_rq);
f9c0b095 654
0a582440 655 for_each_sched_entity(se) {
6272d68c 656 struct load_weight *load;
3104bf03 657 struct load_weight lw;
6272d68c
LM
658
659 cfs_rq = cfs_rq_of(se);
660 load = &cfs_rq->load;
f9c0b095 661
0a582440 662 if (unlikely(!se->on_rq)) {
3104bf03 663 lw = cfs_rq->load;
0a582440
MG
664
665 update_load_add(&lw, se->load.weight);
666 load = &lw;
667 }
668 slice = calc_delta_mine(slice, se->load.weight, load);
669 }
670 return slice;
bf0f6f24
IM
671}
672
647e7cac 673/*
660cc00f 674 * We calculate the vruntime slice of a to-be-inserted task.
647e7cac 675 *
f9c0b095 676 * vs = s/w
647e7cac 677 */
f9c0b095 678static u64 sched_vslice(struct cfs_rq *cfs_rq, struct sched_entity *se)
67e9fb2a 679{
f9c0b095 680 return calc_delta_fair(sched_slice(cfs_rq, se), se);
a7be37ac
PZ
681}
682
a75cdaa9
AS
683#ifdef CONFIG_SMP
684static inline void __update_task_entity_contrib(struct sched_entity *se);
685
686/* Give new task start runnable values to heavy its load in infant time */
687void init_task_runnable_average(struct task_struct *p)
688{
689 u32 slice;
690
691 p->se.avg.decay_count = 0;
692 slice = sched_slice(task_cfs_rq(p), &p->se) >> 10;
693 p->se.avg.runnable_avg_sum = slice;
694 p->se.avg.runnable_avg_period = slice;
695 __update_task_entity_contrib(&p->se);
696}
697#else
698void init_task_runnable_average(struct task_struct *p)
699{
700}
701#endif
702
bf0f6f24
IM
703/*
704 * Update the current task's runtime statistics. Skip current tasks that
705 * are not in our scheduling class.
706 */
707static inline void
8ebc91d9
IM
708__update_curr(struct cfs_rq *cfs_rq, struct sched_entity *curr,
709 unsigned long delta_exec)
bf0f6f24 710{
bbdba7c0 711 unsigned long delta_exec_weighted;
bf0f6f24 712
41acab88
LDM
713 schedstat_set(curr->statistics.exec_max,
714 max((u64)delta_exec, curr->statistics.exec_max));
bf0f6f24
IM
715
716 curr->sum_exec_runtime += delta_exec;
7a62eabc 717 schedstat_add(cfs_rq, exec_clock, delta_exec);
a7be37ac 718 delta_exec_weighted = calc_delta_fair(delta_exec, curr);
88ec22d3 719
e9acbff6 720 curr->vruntime += delta_exec_weighted;
1af5f730 721 update_min_vruntime(cfs_rq);
bf0f6f24
IM
722}
723
b7cc0896 724static void update_curr(struct cfs_rq *cfs_rq)
bf0f6f24 725{
429d43bc 726 struct sched_entity *curr = cfs_rq->curr;
78becc27 727 u64 now = rq_clock_task(rq_of(cfs_rq));
bf0f6f24
IM
728 unsigned long delta_exec;
729
730 if (unlikely(!curr))
731 return;
732
733 /*
734 * Get the amount of time the current task was running
735 * since the last time we changed load (this cannot
736 * overflow on 32 bits):
737 */
8ebc91d9 738 delta_exec = (unsigned long)(now - curr->exec_start);
34f28ecd
PZ
739 if (!delta_exec)
740 return;
bf0f6f24 741
8ebc91d9
IM
742 __update_curr(cfs_rq, curr, delta_exec);
743 curr->exec_start = now;
d842de87
SV
744
745 if (entity_is_task(curr)) {
746 struct task_struct *curtask = task_of(curr);
747
f977bb49 748 trace_sched_stat_runtime(curtask, delta_exec, curr->vruntime);
d842de87 749 cpuacct_charge(curtask, delta_exec);
f06febc9 750 account_group_exec_runtime(curtask, delta_exec);
d842de87 751 }
ec12cb7f
PT
752
753 account_cfs_rq_runtime(cfs_rq, delta_exec);
bf0f6f24
IM
754}
755
756static inline void
5870db5b 757update_stats_wait_start(struct cfs_rq *cfs_rq, struct sched_entity *se)
bf0f6f24 758{
78becc27 759 schedstat_set(se->statistics.wait_start, rq_clock(rq_of(cfs_rq)));
bf0f6f24
IM
760}
761
bf0f6f24
IM
762/*
763 * Task is being enqueued - update stats:
764 */
d2417e5a 765static void update_stats_enqueue(struct cfs_rq *cfs_rq, struct sched_entity *se)
bf0f6f24 766{
bf0f6f24
IM
767 /*
768 * Are we enqueueing a waiting task? (for current tasks
769 * a dequeue/enqueue event is a NOP)
770 */
429d43bc 771 if (se != cfs_rq->curr)
5870db5b 772 update_stats_wait_start(cfs_rq, se);
bf0f6f24
IM
773}
774
bf0f6f24 775static void
9ef0a961 776update_stats_wait_end(struct cfs_rq *cfs_rq, struct sched_entity *se)
bf0f6f24 777{
41acab88 778 schedstat_set(se->statistics.wait_max, max(se->statistics.wait_max,
78becc27 779 rq_clock(rq_of(cfs_rq)) - se->statistics.wait_start));
41acab88
LDM
780 schedstat_set(se->statistics.wait_count, se->statistics.wait_count + 1);
781 schedstat_set(se->statistics.wait_sum, se->statistics.wait_sum +
78becc27 782 rq_clock(rq_of(cfs_rq)) - se->statistics.wait_start);
768d0c27
PZ
783#ifdef CONFIG_SCHEDSTATS
784 if (entity_is_task(se)) {
785 trace_sched_stat_wait(task_of(se),
78becc27 786 rq_clock(rq_of(cfs_rq)) - se->statistics.wait_start);
768d0c27
PZ
787 }
788#endif
41acab88 789 schedstat_set(se->statistics.wait_start, 0);
bf0f6f24
IM
790}
791
792static inline void
19b6a2e3 793update_stats_dequeue(struct cfs_rq *cfs_rq, struct sched_entity *se)
bf0f6f24 794{
bf0f6f24
IM
795 /*
796 * Mark the end of the wait period if dequeueing a
797 * waiting task:
798 */
429d43bc 799 if (se != cfs_rq->curr)
9ef0a961 800 update_stats_wait_end(cfs_rq, se);
bf0f6f24
IM
801}
802
803/*
804 * We are picking a new current task - update its stats:
805 */
806static inline void
79303e9e 807update_stats_curr_start(struct cfs_rq *cfs_rq, struct sched_entity *se)
bf0f6f24
IM
808{
809 /*
810 * We are starting a new run period:
811 */
78becc27 812 se->exec_start = rq_clock_task(rq_of(cfs_rq));
bf0f6f24
IM
813}
814
bf0f6f24
IM
815/**************************************************
816 * Scheduling class queueing methods:
817 */
818
cbee9f88
PZ
819#ifdef CONFIG_NUMA_BALANCING
820/*
6e5fb223 821 * numa task sample period in ms
cbee9f88 822 */
6e5fb223 823unsigned int sysctl_numa_balancing_scan_period_min = 100;
b8593bfd
MG
824unsigned int sysctl_numa_balancing_scan_period_max = 100*50;
825unsigned int sysctl_numa_balancing_scan_period_reset = 100*600;
6e5fb223
PZ
826
827/* Portion of address space to scan in MB */
828unsigned int sysctl_numa_balancing_scan_size = 256;
cbee9f88 829
4b96a29b
PZ
830/* Scan @scan_size MB every @scan_period after an initial @scan_delay in ms */
831unsigned int sysctl_numa_balancing_scan_delay = 1000;
832
cbee9f88
PZ
833static void task_numa_placement(struct task_struct *p)
834{
2832bc19 835 int seq;
cbee9f88 836
2832bc19
HD
837 if (!p->mm) /* for example, ksmd faulting in a user's mm */
838 return;
839 seq = ACCESS_ONCE(p->mm->numa_scan_seq);
cbee9f88
PZ
840 if (p->numa_scan_seq == seq)
841 return;
842 p->numa_scan_seq = seq;
843
844 /* FIXME: Scheduling placement policy hints go here */
845}
846
847/*
848 * Got a PROT_NONE fault for a page on @node.
849 */
b8593bfd 850void task_numa_fault(int node, int pages, bool migrated)
cbee9f88
PZ
851{
852 struct task_struct *p = current;
853
10e84b97 854 if (!numabalancing_enabled)
1a687c2e
MG
855 return;
856
cbee9f88
PZ
857 /* FIXME: Allocate task-specific structure for placement policy here */
858
fb003b80 859 /*
b8593bfd
MG
860 * If pages are properly placed (did not migrate) then scan slower.
861 * This is reset periodically in case of phase changes
fb003b80 862 */
b8593bfd
MG
863 if (!migrated)
864 p->numa_scan_period = min(sysctl_numa_balancing_scan_period_max,
865 p->numa_scan_period + jiffies_to_msecs(10));
fb003b80 866
cbee9f88
PZ
867 task_numa_placement(p);
868}
869
6e5fb223
PZ
870static void reset_ptenuma_scan(struct task_struct *p)
871{
872 ACCESS_ONCE(p->mm->numa_scan_seq)++;
873 p->mm->numa_scan_offset = 0;
874}
875
cbee9f88
PZ
876/*
877 * The expensive part of numa migration is done from task_work context.
878 * Triggered from task_tick_numa().
879 */
880void task_numa_work(struct callback_head *work)
881{
882 unsigned long migrate, next_scan, now = jiffies;
883 struct task_struct *p = current;
884 struct mm_struct *mm = p->mm;
6e5fb223 885 struct vm_area_struct *vma;
9f40604c
MG
886 unsigned long start, end;
887 long pages;
cbee9f88
PZ
888
889 WARN_ON_ONCE(p != container_of(work, struct task_struct, numa_work));
890
891 work->next = work; /* protect against double add */
892 /*
893 * Who cares about NUMA placement when they're dying.
894 *
895 * NOTE: make sure not to dereference p->mm before this check,
896 * exit_task_work() happens _after_ exit_mm() so we could be called
897 * without p->mm even though we still had it when we enqueued this
898 * work.
899 */
900 if (p->flags & PF_EXITING)
901 return;
902
5bca2303
MG
903 /*
904 * We do not care about task placement until a task runs on a node
905 * other than the first one used by the address space. This is
906 * largely because migrations are driven by what CPU the task
907 * is running on. If it's never scheduled on another node, it'll
908 * not migrate so why bother trapping the fault.
909 */
910 if (mm->first_nid == NUMA_PTE_SCAN_INIT)
911 mm->first_nid = numa_node_id();
912 if (mm->first_nid != NUMA_PTE_SCAN_ACTIVE) {
913 /* Are we running on a new node yet? */
914 if (numa_node_id() == mm->first_nid &&
915 !sched_feat_numa(NUMA_FORCE))
916 return;
917
918 mm->first_nid = NUMA_PTE_SCAN_ACTIVE;
919 }
920
b8593bfd
MG
921 /*
922 * Reset the scan period if enough time has gone by. Objective is that
923 * scanning will be reduced if pages are properly placed. As tasks
924 * can enter different phases this needs to be re-examined. Lacking
925 * proper tracking of reference behaviour, this blunt hammer is used.
926 */
927 migrate = mm->numa_next_reset;
928 if (time_after(now, migrate)) {
929 p->numa_scan_period = sysctl_numa_balancing_scan_period_min;
930 next_scan = now + msecs_to_jiffies(sysctl_numa_balancing_scan_period_reset);
931 xchg(&mm->numa_next_reset, next_scan);
932 }
933
cbee9f88
PZ
934 /*
935 * Enforce maximal scan/migration frequency..
936 */
937 migrate = mm->numa_next_scan;
938 if (time_before(now, migrate))
939 return;
940
941 if (p->numa_scan_period == 0)
942 p->numa_scan_period = sysctl_numa_balancing_scan_period_min;
943
fb003b80 944 next_scan = now + msecs_to_jiffies(p->numa_scan_period);
cbee9f88
PZ
945 if (cmpxchg(&mm->numa_next_scan, migrate, next_scan) != migrate)
946 return;
947
e14808b4
MG
948 /*
949 * Do not set pte_numa if the current running node is rate-limited.
950 * This loses statistics on the fault but if we are unwilling to
951 * migrate to this node, it is less likely we can do useful work
952 */
953 if (migrate_ratelimited(numa_node_id()))
954 return;
955
9f40604c
MG
956 start = mm->numa_scan_offset;
957 pages = sysctl_numa_balancing_scan_size;
958 pages <<= 20 - PAGE_SHIFT; /* MB in pages */
959 if (!pages)
960 return;
cbee9f88 961
6e5fb223 962 down_read(&mm->mmap_sem);
9f40604c 963 vma = find_vma(mm, start);
6e5fb223
PZ
964 if (!vma) {
965 reset_ptenuma_scan(p);
9f40604c 966 start = 0;
6e5fb223
PZ
967 vma = mm->mmap;
968 }
9f40604c 969 for (; vma; vma = vma->vm_next) {
6e5fb223
PZ
970 if (!vma_migratable(vma))
971 continue;
972
973 /* Skip small VMAs. They are not likely to be of relevance */
221392c3 974 if (vma->vm_end - vma->vm_start < HPAGE_SIZE)
6e5fb223
PZ
975 continue;
976
9f40604c
MG
977 do {
978 start = max(start, vma->vm_start);
979 end = ALIGN(start + (pages << PAGE_SHIFT), HPAGE_SIZE);
980 end = min(end, vma->vm_end);
981 pages -= change_prot_numa(vma, start, end);
6e5fb223 982
9f40604c
MG
983 start = end;
984 if (pages <= 0)
985 goto out;
986 } while (end != vma->vm_end);
cbee9f88 987 }
6e5fb223 988
9f40604c 989out:
6e5fb223
PZ
990 /*
991 * It is possible to reach the end of the VMA list but the last few VMAs are
992 * not guaranteed to the vma_migratable. If they are not, we would find the
993 * !migratable VMA on the next scan but not reset the scanner to the start
994 * so check it now.
995 */
996 if (vma)
9f40604c 997 mm->numa_scan_offset = start;
6e5fb223
PZ
998 else
999 reset_ptenuma_scan(p);
1000 up_read(&mm->mmap_sem);
cbee9f88
PZ
1001}
1002
1003/*
1004 * Drive the periodic memory faults..
1005 */
1006void task_tick_numa(struct rq *rq, struct task_struct *curr)
1007{
1008 struct callback_head *work = &curr->numa_work;
1009 u64 period, now;
1010
1011 /*
1012 * We don't care about NUMA placement if we don't have memory.
1013 */
1014 if (!curr->mm || (curr->flags & PF_EXITING) || work->next != work)
1015 return;
1016
1017 /*
1018 * Using runtime rather than walltime has the dual advantage that
1019 * we (mostly) drive the selection from busy threads and that the
1020 * task needs to have done some actual work before we bother with
1021 * NUMA placement.
1022 */
1023 now = curr->se.sum_exec_runtime;
1024 period = (u64)curr->numa_scan_period * NSEC_PER_MSEC;
1025
1026 if (now - curr->node_stamp > period) {
4b96a29b
PZ
1027 if (!curr->node_stamp)
1028 curr->numa_scan_period = sysctl_numa_balancing_scan_period_min;
cbee9f88
PZ
1029 curr->node_stamp = now;
1030
1031 if (!time_before(jiffies, curr->mm->numa_next_scan)) {
1032 init_task_work(work, task_numa_work); /* TODO: move this into sched_fork() */
1033 task_work_add(curr, work, true);
1034 }
1035 }
1036}
1037#else
1038static void task_tick_numa(struct rq *rq, struct task_struct *curr)
1039{
1040}
1041#endif /* CONFIG_NUMA_BALANCING */
1042
30cfdcfc
DA
1043static void
1044account_entity_enqueue(struct cfs_rq *cfs_rq, struct sched_entity *se)
1045{
1046 update_load_add(&cfs_rq->load, se->load.weight);
c09595f6 1047 if (!parent_entity(se))
029632fb 1048 update_load_add(&rq_of(cfs_rq)->load, se->load.weight);
367456c7
PZ
1049#ifdef CONFIG_SMP
1050 if (entity_is_task(se))
eb95308e 1051 list_add(&se->group_node, &rq_of(cfs_rq)->cfs_tasks);
367456c7 1052#endif
30cfdcfc 1053 cfs_rq->nr_running++;
30cfdcfc
DA
1054}
1055
1056static void
1057account_entity_dequeue(struct cfs_rq *cfs_rq, struct sched_entity *se)
1058{
1059 update_load_sub(&cfs_rq->load, se->load.weight);
c09595f6 1060 if (!parent_entity(se))
029632fb 1061 update_load_sub(&rq_of(cfs_rq)->load, se->load.weight);
367456c7 1062 if (entity_is_task(se))
b87f1724 1063 list_del_init(&se->group_node);
30cfdcfc 1064 cfs_rq->nr_running--;
30cfdcfc
DA
1065}
1066
3ff6dcac
YZ
1067#ifdef CONFIG_FAIR_GROUP_SCHED
1068# ifdef CONFIG_SMP
cf5f0acf
PZ
1069static inline long calc_tg_weight(struct task_group *tg, struct cfs_rq *cfs_rq)
1070{
1071 long tg_weight;
1072
1073 /*
1074 * Use this CPU's actual weight instead of the last load_contribution
1075 * to gain a more accurate current total weight. See
1076 * update_cfs_rq_load_contribution().
1077 */
bf5b986e 1078 tg_weight = atomic_long_read(&tg->load_avg);
82958366 1079 tg_weight -= cfs_rq->tg_load_contrib;
cf5f0acf
PZ
1080 tg_weight += cfs_rq->load.weight;
1081
1082 return tg_weight;
1083}
1084
6d5ab293 1085static long calc_cfs_shares(struct cfs_rq *cfs_rq, struct task_group *tg)
3ff6dcac 1086{
cf5f0acf 1087 long tg_weight, load, shares;
3ff6dcac 1088
cf5f0acf 1089 tg_weight = calc_tg_weight(tg, cfs_rq);
6d5ab293 1090 load = cfs_rq->load.weight;
3ff6dcac 1091
3ff6dcac 1092 shares = (tg->shares * load);
cf5f0acf
PZ
1093 if (tg_weight)
1094 shares /= tg_weight;
3ff6dcac
YZ
1095
1096 if (shares < MIN_SHARES)
1097 shares = MIN_SHARES;
1098 if (shares > tg->shares)
1099 shares = tg->shares;
1100
1101 return shares;
1102}
3ff6dcac 1103# else /* CONFIG_SMP */
6d5ab293 1104static inline long calc_cfs_shares(struct cfs_rq *cfs_rq, struct task_group *tg)
3ff6dcac
YZ
1105{
1106 return tg->shares;
1107}
3ff6dcac 1108# endif /* CONFIG_SMP */
2069dd75
PZ
1109static void reweight_entity(struct cfs_rq *cfs_rq, struct sched_entity *se,
1110 unsigned long weight)
1111{
19e5eebb
PT
1112 if (se->on_rq) {
1113 /* commit outstanding execution time */
1114 if (cfs_rq->curr == se)
1115 update_curr(cfs_rq);
2069dd75 1116 account_entity_dequeue(cfs_rq, se);
19e5eebb 1117 }
2069dd75
PZ
1118
1119 update_load_set(&se->load, weight);
1120
1121 if (se->on_rq)
1122 account_entity_enqueue(cfs_rq, se);
1123}
1124
82958366
PT
1125static inline int throttled_hierarchy(struct cfs_rq *cfs_rq);
1126
6d5ab293 1127static void update_cfs_shares(struct cfs_rq *cfs_rq)
2069dd75
PZ
1128{
1129 struct task_group *tg;
1130 struct sched_entity *se;
3ff6dcac 1131 long shares;
2069dd75 1132
2069dd75
PZ
1133 tg = cfs_rq->tg;
1134 se = tg->se[cpu_of(rq_of(cfs_rq))];
64660c86 1135 if (!se || throttled_hierarchy(cfs_rq))
2069dd75 1136 return;
3ff6dcac
YZ
1137#ifndef CONFIG_SMP
1138 if (likely(se->load.weight == tg->shares))
1139 return;
1140#endif
6d5ab293 1141 shares = calc_cfs_shares(cfs_rq, tg);
2069dd75
PZ
1142
1143 reweight_entity(cfs_rq_of(se), se, shares);
1144}
1145#else /* CONFIG_FAIR_GROUP_SCHED */
6d5ab293 1146static inline void update_cfs_shares(struct cfs_rq *cfs_rq)
2069dd75
PZ
1147{
1148}
1149#endif /* CONFIG_FAIR_GROUP_SCHED */
1150
141965c7 1151#ifdef CONFIG_SMP
5b51f2f8
PT
1152/*
1153 * We choose a half-life close to 1 scheduling period.
1154 * Note: The tables below are dependent on this value.
1155 */
1156#define LOAD_AVG_PERIOD 32
1157#define LOAD_AVG_MAX 47742 /* maximum possible load avg */
1158#define LOAD_AVG_MAX_N 345 /* number of full periods to produce LOAD_MAX_AVG */
1159
1160/* Precomputed fixed inverse multiplies for multiplication by y^n */
1161static const u32 runnable_avg_yN_inv[] = {
1162 0xffffffff, 0xfa83b2da, 0xf5257d14, 0xefe4b99a, 0xeac0c6e6, 0xe5b906e6,
1163 0xe0ccdeeb, 0xdbfbb796, 0xd744fcc9, 0xd2a81d91, 0xce248c14, 0xc9b9bd85,
1164 0xc5672a10, 0xc12c4cc9, 0xbd08a39e, 0xb8fbaf46, 0xb504f333, 0xb123f581,
1165 0xad583ee9, 0xa9a15ab4, 0xa5fed6a9, 0xa2704302, 0x9ef5325f, 0x9b8d39b9,
1166 0x9837f050, 0x94f4efa8, 0x91c3d373, 0x8ea4398a, 0x8b95c1e3, 0x88980e80,
1167 0x85aac367, 0x82cd8698,
1168};
1169
1170/*
1171 * Precomputed \Sum y^k { 1<=k<=n }. These are floor(true_value) to prevent
1172 * over-estimates when re-combining.
1173 */
1174static const u32 runnable_avg_yN_sum[] = {
1175 0, 1002, 1982, 2941, 3880, 4798, 5697, 6576, 7437, 8279, 9103,
1176 9909,10698,11470,12226,12966,13690,14398,15091,15769,16433,17082,
1177 17718,18340,18949,19545,20128,20698,21256,21802,22336,22859,23371,
1178};
1179
9d85f21c
PT
1180/*
1181 * Approximate:
1182 * val * y^n, where y^32 ~= 0.5 (~1 scheduling period)
1183 */
1184static __always_inline u64 decay_load(u64 val, u64 n)
1185{
5b51f2f8
PT
1186 unsigned int local_n;
1187
1188 if (!n)
1189 return val;
1190 else if (unlikely(n > LOAD_AVG_PERIOD * 63))
1191 return 0;
1192
1193 /* after bounds checking we can collapse to 32-bit */
1194 local_n = n;
1195
1196 /*
1197 * As y^PERIOD = 1/2, we can combine
1198 * y^n = 1/2^(n/PERIOD) * k^(n%PERIOD)
1199 * With a look-up table which covers k^n (n<PERIOD)
1200 *
1201 * To achieve constant time decay_load.
1202 */
1203 if (unlikely(local_n >= LOAD_AVG_PERIOD)) {
1204 val >>= local_n / LOAD_AVG_PERIOD;
1205 local_n %= LOAD_AVG_PERIOD;
9d85f21c
PT
1206 }
1207
5b51f2f8
PT
1208 val *= runnable_avg_yN_inv[local_n];
1209 /* We don't use SRR here since we always want to round down. */
1210 return val >> 32;
1211}
1212
1213/*
1214 * For updates fully spanning n periods, the contribution to runnable
1215 * average will be: \Sum 1024*y^n
1216 *
1217 * We can compute this reasonably efficiently by combining:
1218 * y^PERIOD = 1/2 with precomputed \Sum 1024*y^n {for n <PERIOD}
1219 */
1220static u32 __compute_runnable_contrib(u64 n)
1221{
1222 u32 contrib = 0;
1223
1224 if (likely(n <= LOAD_AVG_PERIOD))
1225 return runnable_avg_yN_sum[n];
1226 else if (unlikely(n >= LOAD_AVG_MAX_N))
1227 return LOAD_AVG_MAX;
1228
1229 /* Compute \Sum k^n combining precomputed values for k^i, \Sum k^j */
1230 do {
1231 contrib /= 2; /* y^LOAD_AVG_PERIOD = 1/2 */
1232 contrib += runnable_avg_yN_sum[LOAD_AVG_PERIOD];
1233
1234 n -= LOAD_AVG_PERIOD;
1235 } while (n > LOAD_AVG_PERIOD);
1236
1237 contrib = decay_load(contrib, n);
1238 return contrib + runnable_avg_yN_sum[n];
9d85f21c
PT
1239}
1240
1241/*
1242 * We can represent the historical contribution to runnable average as the
1243 * coefficients of a geometric series. To do this we sub-divide our runnable
1244 * history into segments of approximately 1ms (1024us); label the segment that
1245 * occurred N-ms ago p_N, with p_0 corresponding to the current period, e.g.
1246 *
1247 * [<- 1024us ->|<- 1024us ->|<- 1024us ->| ...
1248 * p0 p1 p2
1249 * (now) (~1ms ago) (~2ms ago)
1250 *
1251 * Let u_i denote the fraction of p_i that the entity was runnable.
1252 *
1253 * We then designate the fractions u_i as our co-efficients, yielding the
1254 * following representation of historical load:
1255 * u_0 + u_1*y + u_2*y^2 + u_3*y^3 + ...
1256 *
1257 * We choose y based on the with of a reasonably scheduling period, fixing:
1258 * y^32 = 0.5
1259 *
1260 * This means that the contribution to load ~32ms ago (u_32) will be weighted
1261 * approximately half as much as the contribution to load within the last ms
1262 * (u_0).
1263 *
1264 * When a period "rolls over" and we have new u_0`, multiplying the previous
1265 * sum again by y is sufficient to update:
1266 * load_avg = u_0` + y*(u_0 + u_1*y + u_2*y^2 + ... )
1267 * = u_0 + u_1*y + u_2*y^2 + ... [re-labeling u_i --> u_{i+1}]
1268 */
1269static __always_inline int __update_entity_runnable_avg(u64 now,
1270 struct sched_avg *sa,
1271 int runnable)
1272{
5b51f2f8
PT
1273 u64 delta, periods;
1274 u32 runnable_contrib;
9d85f21c
PT
1275 int delta_w, decayed = 0;
1276
1277 delta = now - sa->last_runnable_update;
1278 /*
1279 * This should only happen when time goes backwards, which it
1280 * unfortunately does during sched clock init when we swap over to TSC.
1281 */
1282 if ((s64)delta < 0) {
1283 sa->last_runnable_update = now;
1284 return 0;
1285 }
1286
1287 /*
1288 * Use 1024ns as the unit of measurement since it's a reasonable
1289 * approximation of 1us and fast to compute.
1290 */
1291 delta >>= 10;
1292 if (!delta)
1293 return 0;
1294 sa->last_runnable_update = now;
1295
1296 /* delta_w is the amount already accumulated against our next period */
1297 delta_w = sa->runnable_avg_period % 1024;
1298 if (delta + delta_w >= 1024) {
1299 /* period roll-over */
1300 decayed = 1;
1301
1302 /*
1303 * Now that we know we're crossing a period boundary, figure
1304 * out how much from delta we need to complete the current
1305 * period and accrue it.
1306 */
1307 delta_w = 1024 - delta_w;
5b51f2f8
PT
1308 if (runnable)
1309 sa->runnable_avg_sum += delta_w;
1310 sa->runnable_avg_period += delta_w;
1311
1312 delta -= delta_w;
1313
1314 /* Figure out how many additional periods this update spans */
1315 periods = delta / 1024;
1316 delta %= 1024;
1317
1318 sa->runnable_avg_sum = decay_load(sa->runnable_avg_sum,
1319 periods + 1);
1320 sa->runnable_avg_period = decay_load(sa->runnable_avg_period,
1321 periods + 1);
1322
1323 /* Efficiently calculate \sum (1..n_period) 1024*y^i */
1324 runnable_contrib = __compute_runnable_contrib(periods);
1325 if (runnable)
1326 sa->runnable_avg_sum += runnable_contrib;
1327 sa->runnable_avg_period += runnable_contrib;
9d85f21c
PT
1328 }
1329
1330 /* Remainder of delta accrued against u_0` */
1331 if (runnable)
1332 sa->runnable_avg_sum += delta;
1333 sa->runnable_avg_period += delta;
1334
1335 return decayed;
1336}
1337
9ee474f5 1338/* Synchronize an entity's decay with its parenting cfs_rq.*/
aff3e498 1339static inline u64 __synchronize_entity_decay(struct sched_entity *se)
9ee474f5
PT
1340{
1341 struct cfs_rq *cfs_rq = cfs_rq_of(se);
1342 u64 decays = atomic64_read(&cfs_rq->decay_counter);
1343
1344 decays -= se->avg.decay_count;
1345 if (!decays)
aff3e498 1346 return 0;
9ee474f5
PT
1347
1348 se->avg.load_avg_contrib = decay_load(se->avg.load_avg_contrib, decays);
1349 se->avg.decay_count = 0;
aff3e498
PT
1350
1351 return decays;
9ee474f5
PT
1352}
1353
c566e8e9
PT
1354#ifdef CONFIG_FAIR_GROUP_SCHED
1355static inline void __update_cfs_rq_tg_load_contrib(struct cfs_rq *cfs_rq,
1356 int force_update)
1357{
1358 struct task_group *tg = cfs_rq->tg;
bf5b986e 1359 long tg_contrib;
c566e8e9
PT
1360
1361 tg_contrib = cfs_rq->runnable_load_avg + cfs_rq->blocked_load_avg;
1362 tg_contrib -= cfs_rq->tg_load_contrib;
1363
bf5b986e
AS
1364 if (force_update || abs(tg_contrib) > cfs_rq->tg_load_contrib / 8) {
1365 atomic_long_add(tg_contrib, &tg->load_avg);
c566e8e9
PT
1366 cfs_rq->tg_load_contrib += tg_contrib;
1367 }
1368}
8165e145 1369
bb17f655
PT
1370/*
1371 * Aggregate cfs_rq runnable averages into an equivalent task_group
1372 * representation for computing load contributions.
1373 */
1374static inline void __update_tg_runnable_avg(struct sched_avg *sa,
1375 struct cfs_rq *cfs_rq)
1376{
1377 struct task_group *tg = cfs_rq->tg;
1378 long contrib;
1379
1380 /* The fraction of a cpu used by this cfs_rq */
1381 contrib = div_u64(sa->runnable_avg_sum << NICE_0_SHIFT,
1382 sa->runnable_avg_period + 1);
1383 contrib -= cfs_rq->tg_runnable_contrib;
1384
1385 if (abs(contrib) > cfs_rq->tg_runnable_contrib / 64) {
1386 atomic_add(contrib, &tg->runnable_avg);
1387 cfs_rq->tg_runnable_contrib += contrib;
1388 }
1389}
1390
8165e145
PT
1391static inline void __update_group_entity_contrib(struct sched_entity *se)
1392{
1393 struct cfs_rq *cfs_rq = group_cfs_rq(se);
1394 struct task_group *tg = cfs_rq->tg;
bb17f655
PT
1395 int runnable_avg;
1396
8165e145
PT
1397 u64 contrib;
1398
1399 contrib = cfs_rq->tg_load_contrib * tg->shares;
bf5b986e
AS
1400 se->avg.load_avg_contrib = div_u64(contrib,
1401 atomic_long_read(&tg->load_avg) + 1);
bb17f655
PT
1402
1403 /*
1404 * For group entities we need to compute a correction term in the case
1405 * that they are consuming <1 cpu so that we would contribute the same
1406 * load as a task of equal weight.
1407 *
1408 * Explicitly co-ordinating this measurement would be expensive, but
1409 * fortunately the sum of each cpus contribution forms a usable
1410 * lower-bound on the true value.
1411 *
1412 * Consider the aggregate of 2 contributions. Either they are disjoint
1413 * (and the sum represents true value) or they are disjoint and we are
1414 * understating by the aggregate of their overlap.
1415 *
1416 * Extending this to N cpus, for a given overlap, the maximum amount we
1417 * understand is then n_i(n_i+1)/2 * w_i where n_i is the number of
1418 * cpus that overlap for this interval and w_i is the interval width.
1419 *
1420 * On a small machine; the first term is well-bounded which bounds the
1421 * total error since w_i is a subset of the period. Whereas on a
1422 * larger machine, while this first term can be larger, if w_i is the
1423 * of consequential size guaranteed to see n_i*w_i quickly converge to
1424 * our upper bound of 1-cpu.
1425 */
1426 runnable_avg = atomic_read(&tg->runnable_avg);
1427 if (runnable_avg < NICE_0_LOAD) {
1428 se->avg.load_avg_contrib *= runnable_avg;
1429 se->avg.load_avg_contrib >>= NICE_0_SHIFT;
1430 }
8165e145 1431}
c566e8e9
PT
1432#else
1433static inline void __update_cfs_rq_tg_load_contrib(struct cfs_rq *cfs_rq,
1434 int force_update) {}
bb17f655
PT
1435static inline void __update_tg_runnable_avg(struct sched_avg *sa,
1436 struct cfs_rq *cfs_rq) {}
8165e145 1437static inline void __update_group_entity_contrib(struct sched_entity *se) {}
c566e8e9
PT
1438#endif
1439
8165e145
PT
1440static inline void __update_task_entity_contrib(struct sched_entity *se)
1441{
1442 u32 contrib;
1443
1444 /* avoid overflowing a 32-bit type w/ SCHED_LOAD_SCALE */
1445 contrib = se->avg.runnable_avg_sum * scale_load_down(se->load.weight);
1446 contrib /= (se->avg.runnable_avg_period + 1);
1447 se->avg.load_avg_contrib = scale_load(contrib);
1448}
1449
2dac754e
PT
1450/* Compute the current contribution to load_avg by se, return any delta */
1451static long __update_entity_load_avg_contrib(struct sched_entity *se)
1452{
1453 long old_contrib = se->avg.load_avg_contrib;
1454
8165e145
PT
1455 if (entity_is_task(se)) {
1456 __update_task_entity_contrib(se);
1457 } else {
bb17f655 1458 __update_tg_runnable_avg(&se->avg, group_cfs_rq(se));
8165e145
PT
1459 __update_group_entity_contrib(se);
1460 }
2dac754e
PT
1461
1462 return se->avg.load_avg_contrib - old_contrib;
1463}
1464
9ee474f5
PT
1465static inline void subtract_blocked_load_contrib(struct cfs_rq *cfs_rq,
1466 long load_contrib)
1467{
1468 if (likely(load_contrib < cfs_rq->blocked_load_avg))
1469 cfs_rq->blocked_load_avg -= load_contrib;
1470 else
1471 cfs_rq->blocked_load_avg = 0;
1472}
1473
f1b17280
PT
1474static inline u64 cfs_rq_clock_task(struct cfs_rq *cfs_rq);
1475
9d85f21c 1476/* Update a sched_entity's runnable average */
9ee474f5
PT
1477static inline void update_entity_load_avg(struct sched_entity *se,
1478 int update_cfs_rq)
9d85f21c 1479{
2dac754e
PT
1480 struct cfs_rq *cfs_rq = cfs_rq_of(se);
1481 long contrib_delta;
f1b17280 1482 u64 now;
2dac754e 1483
f1b17280
PT
1484 /*
1485 * For a group entity we need to use their owned cfs_rq_clock_task() in
1486 * case they are the parent of a throttled hierarchy.
1487 */
1488 if (entity_is_task(se))
1489 now = cfs_rq_clock_task(cfs_rq);
1490 else
1491 now = cfs_rq_clock_task(group_cfs_rq(se));
1492
1493 if (!__update_entity_runnable_avg(now, &se->avg, se->on_rq))
2dac754e
PT
1494 return;
1495
1496 contrib_delta = __update_entity_load_avg_contrib(se);
9ee474f5
PT
1497
1498 if (!update_cfs_rq)
1499 return;
1500
2dac754e
PT
1501 if (se->on_rq)
1502 cfs_rq->runnable_load_avg += contrib_delta;
9ee474f5
PT
1503 else
1504 subtract_blocked_load_contrib(cfs_rq, -contrib_delta);
1505}
1506
1507/*
1508 * Decay the load contributed by all blocked children and account this so that
1509 * their contribution may appropriately discounted when they wake up.
1510 */
aff3e498 1511static void update_cfs_rq_blocked_load(struct cfs_rq *cfs_rq, int force_update)
9ee474f5 1512{
f1b17280 1513 u64 now = cfs_rq_clock_task(cfs_rq) >> 20;
9ee474f5
PT
1514 u64 decays;
1515
1516 decays = now - cfs_rq->last_decay;
aff3e498 1517 if (!decays && !force_update)
9ee474f5
PT
1518 return;
1519
2509940f
AS
1520 if (atomic_long_read(&cfs_rq->removed_load)) {
1521 unsigned long removed_load;
1522 removed_load = atomic_long_xchg(&cfs_rq->removed_load, 0);
aff3e498
PT
1523 subtract_blocked_load_contrib(cfs_rq, removed_load);
1524 }
9ee474f5 1525
aff3e498
PT
1526 if (decays) {
1527 cfs_rq->blocked_load_avg = decay_load(cfs_rq->blocked_load_avg,
1528 decays);
1529 atomic64_add(decays, &cfs_rq->decay_counter);
1530 cfs_rq->last_decay = now;
1531 }
c566e8e9
PT
1532
1533 __update_cfs_rq_tg_load_contrib(cfs_rq, force_update);
9d85f21c 1534}
18bf2805
BS
1535
1536static inline void update_rq_runnable_avg(struct rq *rq, int runnable)
1537{
78becc27 1538 __update_entity_runnable_avg(rq_clock_task(rq), &rq->avg, runnable);
bb17f655 1539 __update_tg_runnable_avg(&rq->avg, &rq->cfs);
18bf2805 1540}
2dac754e
PT
1541
1542/* Add the load generated by se into cfs_rq's child load-average */
1543static inline void enqueue_entity_load_avg(struct cfs_rq *cfs_rq,
9ee474f5
PT
1544 struct sched_entity *se,
1545 int wakeup)
2dac754e 1546{
aff3e498
PT
1547 /*
1548 * We track migrations using entity decay_count <= 0, on a wake-up
1549 * migration we use a negative decay count to track the remote decays
1550 * accumulated while sleeping.
a75cdaa9
AS
1551 *
1552 * Newly forked tasks are enqueued with se->avg.decay_count == 0, they
1553 * are seen by enqueue_entity_load_avg() as a migration with an already
1554 * constructed load_avg_contrib.
aff3e498
PT
1555 */
1556 if (unlikely(se->avg.decay_count <= 0)) {
78becc27 1557 se->avg.last_runnable_update = rq_clock_task(rq_of(cfs_rq));
aff3e498
PT
1558 if (se->avg.decay_count) {
1559 /*
1560 * In a wake-up migration we have to approximate the
1561 * time sleeping. This is because we can't synchronize
1562 * clock_task between the two cpus, and it is not
1563 * guaranteed to be read-safe. Instead, we can
1564 * approximate this using our carried decays, which are
1565 * explicitly atomically readable.
1566 */
1567 se->avg.last_runnable_update -= (-se->avg.decay_count)
1568 << 20;
1569 update_entity_load_avg(se, 0);
1570 /* Indicate that we're now synchronized and on-rq */
1571 se->avg.decay_count = 0;
1572 }
9ee474f5
PT
1573 wakeup = 0;
1574 } else {
282cf499
AS
1575 /*
1576 * Task re-woke on same cpu (or else migrate_task_rq_fair()
1577 * would have made count negative); we must be careful to avoid
1578 * double-accounting blocked time after synchronizing decays.
1579 */
1580 se->avg.last_runnable_update += __synchronize_entity_decay(se)
1581 << 20;
9ee474f5
PT
1582 }
1583
aff3e498
PT
1584 /* migrated tasks did not contribute to our blocked load */
1585 if (wakeup) {
9ee474f5 1586 subtract_blocked_load_contrib(cfs_rq, se->avg.load_avg_contrib);
aff3e498
PT
1587 update_entity_load_avg(se, 0);
1588 }
9ee474f5 1589
2dac754e 1590 cfs_rq->runnable_load_avg += se->avg.load_avg_contrib;
aff3e498
PT
1591 /* we force update consideration on load-balancer moves */
1592 update_cfs_rq_blocked_load(cfs_rq, !wakeup);
2dac754e
PT
1593}
1594
9ee474f5
PT
1595/*
1596 * Remove se's load from this cfs_rq child load-average, if the entity is
1597 * transitioning to a blocked state we track its projected decay using
1598 * blocked_load_avg.
1599 */
2dac754e 1600static inline void dequeue_entity_load_avg(struct cfs_rq *cfs_rq,
9ee474f5
PT
1601 struct sched_entity *se,
1602 int sleep)
2dac754e 1603{
9ee474f5 1604 update_entity_load_avg(se, 1);
aff3e498
PT
1605 /* we force update consideration on load-balancer moves */
1606 update_cfs_rq_blocked_load(cfs_rq, !sleep);
9ee474f5 1607
2dac754e 1608 cfs_rq->runnable_load_avg -= se->avg.load_avg_contrib;
9ee474f5
PT
1609 if (sleep) {
1610 cfs_rq->blocked_load_avg += se->avg.load_avg_contrib;
1611 se->avg.decay_count = atomic64_read(&cfs_rq->decay_counter);
1612 } /* migrations, e.g. sleep=0 leave decay_count == 0 */
2dac754e 1613}
642dbc39
VG
1614
1615/*
1616 * Update the rq's load with the elapsed running time before entering
1617 * idle. if the last scheduled task is not a CFS task, idle_enter will
1618 * be the only way to update the runnable statistic.
1619 */
1620void idle_enter_fair(struct rq *this_rq)
1621{
1622 update_rq_runnable_avg(this_rq, 1);
1623}
1624
1625/*
1626 * Update the rq's load with the elapsed idle time before a task is
1627 * scheduled. if the newly scheduled task is not a CFS task, idle_exit will
1628 * be the only way to update the runnable statistic.
1629 */
1630void idle_exit_fair(struct rq *this_rq)
1631{
1632 update_rq_runnable_avg(this_rq, 0);
1633}
1634
9d85f21c 1635#else
9ee474f5
PT
1636static inline void update_entity_load_avg(struct sched_entity *se,
1637 int update_cfs_rq) {}
18bf2805 1638static inline void update_rq_runnable_avg(struct rq *rq, int runnable) {}
2dac754e 1639static inline void enqueue_entity_load_avg(struct cfs_rq *cfs_rq,
9ee474f5
PT
1640 struct sched_entity *se,
1641 int wakeup) {}
2dac754e 1642static inline void dequeue_entity_load_avg(struct cfs_rq *cfs_rq,
9ee474f5
PT
1643 struct sched_entity *se,
1644 int sleep) {}
aff3e498
PT
1645static inline void update_cfs_rq_blocked_load(struct cfs_rq *cfs_rq,
1646 int force_update) {}
9d85f21c
PT
1647#endif
1648
2396af69 1649static void enqueue_sleeper(struct cfs_rq *cfs_rq, struct sched_entity *se)
bf0f6f24 1650{
bf0f6f24 1651#ifdef CONFIG_SCHEDSTATS
e414314c
PZ
1652 struct task_struct *tsk = NULL;
1653
1654 if (entity_is_task(se))
1655 tsk = task_of(se);
1656
41acab88 1657 if (se->statistics.sleep_start) {
78becc27 1658 u64 delta = rq_clock(rq_of(cfs_rq)) - se->statistics.sleep_start;
bf0f6f24
IM
1659
1660 if ((s64)delta < 0)
1661 delta = 0;
1662
41acab88
LDM
1663 if (unlikely(delta > se->statistics.sleep_max))
1664 se->statistics.sleep_max = delta;
bf0f6f24 1665
8c79a045 1666 se->statistics.sleep_start = 0;
41acab88 1667 se->statistics.sum_sleep_runtime += delta;
9745512c 1668
768d0c27 1669 if (tsk) {
e414314c 1670 account_scheduler_latency(tsk, delta >> 10, 1);
768d0c27
PZ
1671 trace_sched_stat_sleep(tsk, delta);
1672 }
bf0f6f24 1673 }
41acab88 1674 if (se->statistics.block_start) {
78becc27 1675 u64 delta = rq_clock(rq_of(cfs_rq)) - se->statistics.block_start;
bf0f6f24
IM
1676
1677 if ((s64)delta < 0)
1678 delta = 0;
1679
41acab88
LDM
1680 if (unlikely(delta > se->statistics.block_max))
1681 se->statistics.block_max = delta;
bf0f6f24 1682
8c79a045 1683 se->statistics.block_start = 0;
41acab88 1684 se->statistics.sum_sleep_runtime += delta;
30084fbd 1685
e414314c 1686 if (tsk) {
8f0dfc34 1687 if (tsk->in_iowait) {
41acab88
LDM
1688 se->statistics.iowait_sum += delta;
1689 se->statistics.iowait_count++;
768d0c27 1690 trace_sched_stat_iowait(tsk, delta);
8f0dfc34
AV
1691 }
1692
b781a602
AV
1693 trace_sched_stat_blocked(tsk, delta);
1694
e414314c
PZ
1695 /*
1696 * Blocking time is in units of nanosecs, so shift by
1697 * 20 to get a milliseconds-range estimation of the
1698 * amount of time that the task spent sleeping:
1699 */
1700 if (unlikely(prof_on == SLEEP_PROFILING)) {
1701 profile_hits(SLEEP_PROFILING,
1702 (void *)get_wchan(tsk),
1703 delta >> 20);
1704 }
1705 account_scheduler_latency(tsk, delta >> 10, 0);
30084fbd 1706 }
bf0f6f24
IM
1707 }
1708#endif
1709}
1710
ddc97297
PZ
1711static void check_spread(struct cfs_rq *cfs_rq, struct sched_entity *se)
1712{
1713#ifdef CONFIG_SCHED_DEBUG
1714 s64 d = se->vruntime - cfs_rq->min_vruntime;
1715
1716 if (d < 0)
1717 d = -d;
1718
1719 if (d > 3*sysctl_sched_latency)
1720 schedstat_inc(cfs_rq, nr_spread_over);
1721#endif
1722}
1723
aeb73b04
PZ
1724static void
1725place_entity(struct cfs_rq *cfs_rq, struct sched_entity *se, int initial)
1726{
1af5f730 1727 u64 vruntime = cfs_rq->min_vruntime;
94dfb5e7 1728
2cb8600e
PZ
1729 /*
1730 * The 'current' period is already promised to the current tasks,
1731 * however the extra weight of the new task will slow them down a
1732 * little, place the new task so that it fits in the slot that
1733 * stays open at the end.
1734 */
94dfb5e7 1735 if (initial && sched_feat(START_DEBIT))
f9c0b095 1736 vruntime += sched_vslice(cfs_rq, se);
aeb73b04 1737
a2e7a7eb 1738 /* sleeps up to a single latency don't count. */
5ca9880c 1739 if (!initial) {
a2e7a7eb 1740 unsigned long thresh = sysctl_sched_latency;
a7be37ac 1741
a2e7a7eb
MG
1742 /*
1743 * Halve their sleep time's effect, to allow
1744 * for a gentler effect of sleepers:
1745 */
1746 if (sched_feat(GENTLE_FAIR_SLEEPERS))
1747 thresh >>= 1;
51e0304c 1748
a2e7a7eb 1749 vruntime -= thresh;
aeb73b04
PZ
1750 }
1751
b5d9d734 1752 /* ensure we never gain time by being placed backwards. */
16c8f1c7 1753 se->vruntime = max_vruntime(se->vruntime, vruntime);
aeb73b04
PZ
1754}
1755
d3d9dc33
PT
1756static void check_enqueue_throttle(struct cfs_rq *cfs_rq);
1757
bf0f6f24 1758static void
88ec22d3 1759enqueue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se, int flags)
bf0f6f24 1760{
88ec22d3
PZ
1761 /*
1762 * Update the normalized vruntime before updating min_vruntime
0fc576d5 1763 * through calling update_curr().
88ec22d3 1764 */
371fd7e7 1765 if (!(flags & ENQUEUE_WAKEUP) || (flags & ENQUEUE_WAKING))
88ec22d3
PZ
1766 se->vruntime += cfs_rq->min_vruntime;
1767
bf0f6f24 1768 /*
a2a2d680 1769 * Update run-time statistics of the 'current'.
bf0f6f24 1770 */
b7cc0896 1771 update_curr(cfs_rq);
f269ae04 1772 enqueue_entity_load_avg(cfs_rq, se, flags & ENQUEUE_WAKEUP);
17bc14b7
LT
1773 account_entity_enqueue(cfs_rq, se);
1774 update_cfs_shares(cfs_rq);
bf0f6f24 1775
88ec22d3 1776 if (flags & ENQUEUE_WAKEUP) {
aeb73b04 1777 place_entity(cfs_rq, se, 0);
2396af69 1778 enqueue_sleeper(cfs_rq, se);
e9acbff6 1779 }
bf0f6f24 1780
d2417e5a 1781 update_stats_enqueue(cfs_rq, se);
ddc97297 1782 check_spread(cfs_rq, se);
83b699ed
SV
1783 if (se != cfs_rq->curr)
1784 __enqueue_entity(cfs_rq, se);
2069dd75 1785 se->on_rq = 1;
3d4b47b4 1786
d3d9dc33 1787 if (cfs_rq->nr_running == 1) {
3d4b47b4 1788 list_add_leaf_cfs_rq(cfs_rq);
d3d9dc33
PT
1789 check_enqueue_throttle(cfs_rq);
1790 }
bf0f6f24
IM
1791}
1792
2c13c919 1793static void __clear_buddies_last(struct sched_entity *se)
2002c695 1794{
2c13c919
RR
1795 for_each_sched_entity(se) {
1796 struct cfs_rq *cfs_rq = cfs_rq_of(se);
1797 if (cfs_rq->last == se)
1798 cfs_rq->last = NULL;
1799 else
1800 break;
1801 }
1802}
2002c695 1803
2c13c919
RR
1804static void __clear_buddies_next(struct sched_entity *se)
1805{
1806 for_each_sched_entity(se) {
1807 struct cfs_rq *cfs_rq = cfs_rq_of(se);
1808 if (cfs_rq->next == se)
1809 cfs_rq->next = NULL;
1810 else
1811 break;
1812 }
2002c695
PZ
1813}
1814
ac53db59
RR
1815static void __clear_buddies_skip(struct sched_entity *se)
1816{
1817 for_each_sched_entity(se) {
1818 struct cfs_rq *cfs_rq = cfs_rq_of(se);
1819 if (cfs_rq->skip == se)
1820 cfs_rq->skip = NULL;
1821 else
1822 break;
1823 }
1824}
1825
a571bbea
PZ
1826static void clear_buddies(struct cfs_rq *cfs_rq, struct sched_entity *se)
1827{
2c13c919
RR
1828 if (cfs_rq->last == se)
1829 __clear_buddies_last(se);
1830
1831 if (cfs_rq->next == se)
1832 __clear_buddies_next(se);
ac53db59
RR
1833
1834 if (cfs_rq->skip == se)
1835 __clear_buddies_skip(se);
a571bbea
PZ
1836}
1837
6c16a6dc 1838static __always_inline void return_cfs_rq_runtime(struct cfs_rq *cfs_rq);
d8b4986d 1839
bf0f6f24 1840static void
371fd7e7 1841dequeue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se, int flags)
bf0f6f24 1842{
a2a2d680
DA
1843 /*
1844 * Update run-time statistics of the 'current'.
1845 */
1846 update_curr(cfs_rq);
17bc14b7 1847 dequeue_entity_load_avg(cfs_rq, se, flags & DEQUEUE_SLEEP);
a2a2d680 1848
19b6a2e3 1849 update_stats_dequeue(cfs_rq, se);
371fd7e7 1850 if (flags & DEQUEUE_SLEEP) {
67e9fb2a 1851#ifdef CONFIG_SCHEDSTATS
bf0f6f24
IM
1852 if (entity_is_task(se)) {
1853 struct task_struct *tsk = task_of(se);
1854
1855 if (tsk->state & TASK_INTERRUPTIBLE)
78becc27 1856 se->statistics.sleep_start = rq_clock(rq_of(cfs_rq));
bf0f6f24 1857 if (tsk->state & TASK_UNINTERRUPTIBLE)
78becc27 1858 se->statistics.block_start = rq_clock(rq_of(cfs_rq));
bf0f6f24 1859 }
db36cc7d 1860#endif
67e9fb2a
PZ
1861 }
1862
2002c695 1863 clear_buddies(cfs_rq, se);
4793241b 1864
83b699ed 1865 if (se != cfs_rq->curr)
30cfdcfc 1866 __dequeue_entity(cfs_rq, se);
17bc14b7 1867 se->on_rq = 0;
30cfdcfc 1868 account_entity_dequeue(cfs_rq, se);
88ec22d3
PZ
1869
1870 /*
1871 * Normalize the entity after updating the min_vruntime because the
1872 * update can refer to the ->curr item and we need to reflect this
1873 * movement in our normalized position.
1874 */
371fd7e7 1875 if (!(flags & DEQUEUE_SLEEP))
88ec22d3 1876 se->vruntime -= cfs_rq->min_vruntime;
1e876231 1877
d8b4986d
PT
1878 /* return excess runtime on last dequeue */
1879 return_cfs_rq_runtime(cfs_rq);
1880
1e876231 1881 update_min_vruntime(cfs_rq);
17bc14b7 1882 update_cfs_shares(cfs_rq);
bf0f6f24
IM
1883}
1884
1885/*
1886 * Preempt the current task with a newly woken task if needed:
1887 */
7c92e54f 1888static void
2e09bf55 1889check_preempt_tick(struct cfs_rq *cfs_rq, struct sched_entity *curr)
bf0f6f24 1890{
11697830 1891 unsigned long ideal_runtime, delta_exec;
f4cfb33e
WX
1892 struct sched_entity *se;
1893 s64 delta;
11697830 1894
6d0f0ebd 1895 ideal_runtime = sched_slice(cfs_rq, curr);
11697830 1896 delta_exec = curr->sum_exec_runtime - curr->prev_sum_exec_runtime;
a9f3e2b5 1897 if (delta_exec > ideal_runtime) {
bf0f6f24 1898 resched_task(rq_of(cfs_rq)->curr);
a9f3e2b5
MG
1899 /*
1900 * The current task ran long enough, ensure it doesn't get
1901 * re-elected due to buddy favours.
1902 */
1903 clear_buddies(cfs_rq, curr);
f685ceac
MG
1904 return;
1905 }
1906
1907 /*
1908 * Ensure that a task that missed wakeup preemption by a
1909 * narrow margin doesn't have to wait for a full slice.
1910 * This also mitigates buddy induced latencies under load.
1911 */
f685ceac
MG
1912 if (delta_exec < sysctl_sched_min_granularity)
1913 return;
1914
f4cfb33e
WX
1915 se = __pick_first_entity(cfs_rq);
1916 delta = curr->vruntime - se->vruntime;
f685ceac 1917
f4cfb33e
WX
1918 if (delta < 0)
1919 return;
d7d82944 1920
f4cfb33e
WX
1921 if (delta > ideal_runtime)
1922 resched_task(rq_of(cfs_rq)->curr);
bf0f6f24
IM
1923}
1924
83b699ed 1925static void
8494f412 1926set_next_entity(struct cfs_rq *cfs_rq, struct sched_entity *se)
bf0f6f24 1927{
83b699ed
SV
1928 /* 'current' is not kept within the tree. */
1929 if (se->on_rq) {
1930 /*
1931 * Any task has to be enqueued before it get to execute on
1932 * a CPU. So account for the time it spent waiting on the
1933 * runqueue.
1934 */
1935 update_stats_wait_end(cfs_rq, se);
1936 __dequeue_entity(cfs_rq, se);
1937 }
1938
79303e9e 1939 update_stats_curr_start(cfs_rq, se);
429d43bc 1940 cfs_rq->curr = se;
eba1ed4b
IM
1941#ifdef CONFIG_SCHEDSTATS
1942 /*
1943 * Track our maximum slice length, if the CPU's load is at
1944 * least twice that of our own weight (i.e. dont track it
1945 * when there are only lesser-weight tasks around):
1946 */
495eca49 1947 if (rq_of(cfs_rq)->load.weight >= 2*se->load.weight) {
41acab88 1948 se->statistics.slice_max = max(se->statistics.slice_max,
eba1ed4b
IM
1949 se->sum_exec_runtime - se->prev_sum_exec_runtime);
1950 }
1951#endif
4a55b450 1952 se->prev_sum_exec_runtime = se->sum_exec_runtime;
bf0f6f24
IM
1953}
1954
3f3a4904
PZ
1955static int
1956wakeup_preempt_entity(struct sched_entity *curr, struct sched_entity *se);
1957
ac53db59
RR
1958/*
1959 * Pick the next process, keeping these things in mind, in this order:
1960 * 1) keep things fair between processes/task groups
1961 * 2) pick the "next" process, since someone really wants that to run
1962 * 3) pick the "last" process, for cache locality
1963 * 4) do not run the "skip" process, if something else is available
1964 */
f4b6755f 1965static struct sched_entity *pick_next_entity(struct cfs_rq *cfs_rq)
aa2ac252 1966{
ac53db59 1967 struct sched_entity *se = __pick_first_entity(cfs_rq);
f685ceac 1968 struct sched_entity *left = se;
f4b6755f 1969
ac53db59
RR
1970 /*
1971 * Avoid running the skip buddy, if running something else can
1972 * be done without getting too unfair.
1973 */
1974 if (cfs_rq->skip == se) {
1975 struct sched_entity *second = __pick_next_entity(se);
1976 if (second && wakeup_preempt_entity(second, left) < 1)
1977 se = second;
1978 }
aa2ac252 1979
f685ceac
MG
1980 /*
1981 * Prefer last buddy, try to return the CPU to a preempted task.
1982 */
1983 if (cfs_rq->last && wakeup_preempt_entity(cfs_rq->last, left) < 1)
1984 se = cfs_rq->last;
1985
ac53db59
RR
1986 /*
1987 * Someone really wants this to run. If it's not unfair, run it.
1988 */
1989 if (cfs_rq->next && wakeup_preempt_entity(cfs_rq->next, left) < 1)
1990 se = cfs_rq->next;
1991
f685ceac 1992 clear_buddies(cfs_rq, se);
4793241b
PZ
1993
1994 return se;
aa2ac252
PZ
1995}
1996
d3d9dc33
PT
1997static void check_cfs_rq_runtime(struct cfs_rq *cfs_rq);
1998
ab6cde26 1999static void put_prev_entity(struct cfs_rq *cfs_rq, struct sched_entity *prev)
bf0f6f24
IM
2000{
2001 /*
2002 * If still on the runqueue then deactivate_task()
2003 * was not called and update_curr() has to be done:
2004 */
2005 if (prev->on_rq)
b7cc0896 2006 update_curr(cfs_rq);
bf0f6f24 2007
d3d9dc33
PT
2008 /* throttle cfs_rqs exceeding runtime */
2009 check_cfs_rq_runtime(cfs_rq);
2010
ddc97297 2011 check_spread(cfs_rq, prev);
30cfdcfc 2012 if (prev->on_rq) {
5870db5b 2013 update_stats_wait_start(cfs_rq, prev);
30cfdcfc
DA
2014 /* Put 'current' back into the tree. */
2015 __enqueue_entity(cfs_rq, prev);
9d85f21c 2016 /* in !on_rq case, update occurred at dequeue */
9ee474f5 2017 update_entity_load_avg(prev, 1);
30cfdcfc 2018 }
429d43bc 2019 cfs_rq->curr = NULL;
bf0f6f24
IM
2020}
2021
8f4d37ec
PZ
2022static void
2023entity_tick(struct cfs_rq *cfs_rq, struct sched_entity *curr, int queued)
bf0f6f24 2024{
bf0f6f24 2025 /*
30cfdcfc 2026 * Update run-time statistics of the 'current'.
bf0f6f24 2027 */
30cfdcfc 2028 update_curr(cfs_rq);
bf0f6f24 2029
9d85f21c
PT
2030 /*
2031 * Ensure that runnable average is periodically updated.
2032 */
9ee474f5 2033 update_entity_load_avg(curr, 1);
aff3e498 2034 update_cfs_rq_blocked_load(cfs_rq, 1);
9d85f21c 2035
8f4d37ec
PZ
2036#ifdef CONFIG_SCHED_HRTICK
2037 /*
2038 * queued ticks are scheduled to match the slice, so don't bother
2039 * validating it and just reschedule.
2040 */
983ed7a6
HH
2041 if (queued) {
2042 resched_task(rq_of(cfs_rq)->curr);
2043 return;
2044 }
8f4d37ec
PZ
2045 /*
2046 * don't let the period tick interfere with the hrtick preemption
2047 */
2048 if (!sched_feat(DOUBLE_TICK) &&
2049 hrtimer_active(&rq_of(cfs_rq)->hrtick_timer))
2050 return;
2051#endif
2052
2c2efaed 2053 if (cfs_rq->nr_running > 1)
2e09bf55 2054 check_preempt_tick(cfs_rq, curr);
bf0f6f24
IM
2055}
2056
ab84d31e
PT
2057
2058/**************************************************
2059 * CFS bandwidth control machinery
2060 */
2061
2062#ifdef CONFIG_CFS_BANDWIDTH
029632fb
PZ
2063
2064#ifdef HAVE_JUMP_LABEL
c5905afb 2065static struct static_key __cfs_bandwidth_used;
029632fb
PZ
2066
2067static inline bool cfs_bandwidth_used(void)
2068{
c5905afb 2069 return static_key_false(&__cfs_bandwidth_used);
029632fb
PZ
2070}
2071
2072void account_cfs_bandwidth_used(int enabled, int was_enabled)
2073{
2074 /* only need to count groups transitioning between enabled/!enabled */
2075 if (enabled && !was_enabled)
c5905afb 2076 static_key_slow_inc(&__cfs_bandwidth_used);
029632fb 2077 else if (!enabled && was_enabled)
c5905afb 2078 static_key_slow_dec(&__cfs_bandwidth_used);
029632fb
PZ
2079}
2080#else /* HAVE_JUMP_LABEL */
2081static bool cfs_bandwidth_used(void)
2082{
2083 return true;
2084}
2085
2086void account_cfs_bandwidth_used(int enabled, int was_enabled) {}
2087#endif /* HAVE_JUMP_LABEL */
2088
ab84d31e
PT
2089/*
2090 * default period for cfs group bandwidth.
2091 * default: 0.1s, units: nanoseconds
2092 */
2093static inline u64 default_cfs_period(void)
2094{
2095 return 100000000ULL;
2096}
ec12cb7f
PT
2097
2098static inline u64 sched_cfs_bandwidth_slice(void)
2099{
2100 return (u64)sysctl_sched_cfs_bandwidth_slice * NSEC_PER_USEC;
2101}
2102
a9cf55b2
PT
2103/*
2104 * Replenish runtime according to assigned quota and update expiration time.
2105 * We use sched_clock_cpu directly instead of rq->clock to avoid adding
2106 * additional synchronization around rq->lock.
2107 *
2108 * requires cfs_b->lock
2109 */
029632fb 2110void __refill_cfs_bandwidth_runtime(struct cfs_bandwidth *cfs_b)
a9cf55b2
PT
2111{
2112 u64 now;
2113
2114 if (cfs_b->quota == RUNTIME_INF)
2115 return;
2116
2117 now = sched_clock_cpu(smp_processor_id());
2118 cfs_b->runtime = cfs_b->quota;
2119 cfs_b->runtime_expires = now + ktime_to_ns(cfs_b->period);
2120}
2121
029632fb
PZ
2122static inline struct cfs_bandwidth *tg_cfs_bandwidth(struct task_group *tg)
2123{
2124 return &tg->cfs_bandwidth;
2125}
2126
f1b17280
PT
2127/* rq->task_clock normalized against any time this cfs_rq has spent throttled */
2128static inline u64 cfs_rq_clock_task(struct cfs_rq *cfs_rq)
2129{
2130 if (unlikely(cfs_rq->throttle_count))
2131 return cfs_rq->throttled_clock_task;
2132
78becc27 2133 return rq_clock_task(rq_of(cfs_rq)) - cfs_rq->throttled_clock_task_time;
f1b17280
PT
2134}
2135
85dac906
PT
2136/* returns 0 on failure to allocate runtime */
2137static int assign_cfs_rq_runtime(struct cfs_rq *cfs_rq)
ec12cb7f
PT
2138{
2139 struct task_group *tg = cfs_rq->tg;
2140 struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(tg);
a9cf55b2 2141 u64 amount = 0, min_amount, expires;
ec12cb7f
PT
2142
2143 /* note: this is a positive sum as runtime_remaining <= 0 */
2144 min_amount = sched_cfs_bandwidth_slice() - cfs_rq->runtime_remaining;
2145
2146 raw_spin_lock(&cfs_b->lock);
2147 if (cfs_b->quota == RUNTIME_INF)
2148 amount = min_amount;
58088ad0 2149 else {
a9cf55b2
PT
2150 /*
2151 * If the bandwidth pool has become inactive, then at least one
2152 * period must have elapsed since the last consumption.
2153 * Refresh the global state and ensure bandwidth timer becomes
2154 * active.
2155 */
2156 if (!cfs_b->timer_active) {
2157 __refill_cfs_bandwidth_runtime(cfs_b);
58088ad0 2158 __start_cfs_bandwidth(cfs_b);
a9cf55b2 2159 }
58088ad0
PT
2160
2161 if (cfs_b->runtime > 0) {
2162 amount = min(cfs_b->runtime, min_amount);
2163 cfs_b->runtime -= amount;
2164 cfs_b->idle = 0;
2165 }
ec12cb7f 2166 }
a9cf55b2 2167 expires = cfs_b->runtime_expires;
ec12cb7f
PT
2168 raw_spin_unlock(&cfs_b->lock);
2169
2170 cfs_rq->runtime_remaining += amount;
a9cf55b2
PT
2171 /*
2172 * we may have advanced our local expiration to account for allowed
2173 * spread between our sched_clock and the one on which runtime was
2174 * issued.
2175 */
2176 if ((s64)(expires - cfs_rq->runtime_expires) > 0)
2177 cfs_rq->runtime_expires = expires;
85dac906
PT
2178
2179 return cfs_rq->runtime_remaining > 0;
ec12cb7f
PT
2180}
2181
a9cf55b2
PT
2182/*
2183 * Note: This depends on the synchronization provided by sched_clock and the
2184 * fact that rq->clock snapshots this value.
2185 */
2186static void expire_cfs_rq_runtime(struct cfs_rq *cfs_rq)
ec12cb7f 2187{
a9cf55b2 2188 struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
a9cf55b2
PT
2189
2190 /* if the deadline is ahead of our clock, nothing to do */
78becc27 2191 if (likely((s64)(rq_clock(rq_of(cfs_rq)) - cfs_rq->runtime_expires) < 0))
ec12cb7f
PT
2192 return;
2193
a9cf55b2
PT
2194 if (cfs_rq->runtime_remaining < 0)
2195 return;
2196
2197 /*
2198 * If the local deadline has passed we have to consider the
2199 * possibility that our sched_clock is 'fast' and the global deadline
2200 * has not truly expired.
2201 *
2202 * Fortunately we can check determine whether this the case by checking
2203 * whether the global deadline has advanced.
2204 */
2205
2206 if ((s64)(cfs_rq->runtime_expires - cfs_b->runtime_expires) >= 0) {
2207 /* extend local deadline, drift is bounded above by 2 ticks */
2208 cfs_rq->runtime_expires += TICK_NSEC;
2209 } else {
2210 /* global deadline is ahead, expiration has passed */
2211 cfs_rq->runtime_remaining = 0;
2212 }
2213}
2214
2215static void __account_cfs_rq_runtime(struct cfs_rq *cfs_rq,
2216 unsigned long delta_exec)
2217{
2218 /* dock delta_exec before expiring quota (as it could span periods) */
ec12cb7f 2219 cfs_rq->runtime_remaining -= delta_exec;
a9cf55b2
PT
2220 expire_cfs_rq_runtime(cfs_rq);
2221
2222 if (likely(cfs_rq->runtime_remaining > 0))
ec12cb7f
PT
2223 return;
2224
85dac906
PT
2225 /*
2226 * if we're unable to extend our runtime we resched so that the active
2227 * hierarchy can be throttled
2228 */
2229 if (!assign_cfs_rq_runtime(cfs_rq) && likely(cfs_rq->curr))
2230 resched_task(rq_of(cfs_rq)->curr);
ec12cb7f
PT
2231}
2232
6c16a6dc
PZ
2233static __always_inline
2234void account_cfs_rq_runtime(struct cfs_rq *cfs_rq, unsigned long delta_exec)
ec12cb7f 2235{
56f570e5 2236 if (!cfs_bandwidth_used() || !cfs_rq->runtime_enabled)
ec12cb7f
PT
2237 return;
2238
2239 __account_cfs_rq_runtime(cfs_rq, delta_exec);
2240}
2241
85dac906
PT
2242static inline int cfs_rq_throttled(struct cfs_rq *cfs_rq)
2243{
56f570e5 2244 return cfs_bandwidth_used() && cfs_rq->throttled;
85dac906
PT
2245}
2246
64660c86
PT
2247/* check whether cfs_rq, or any parent, is throttled */
2248static inline int throttled_hierarchy(struct cfs_rq *cfs_rq)
2249{
56f570e5 2250 return cfs_bandwidth_used() && cfs_rq->throttle_count;
64660c86
PT
2251}
2252
2253/*
2254 * Ensure that neither of the group entities corresponding to src_cpu or
2255 * dest_cpu are members of a throttled hierarchy when performing group
2256 * load-balance operations.
2257 */
2258static inline int throttled_lb_pair(struct task_group *tg,
2259 int src_cpu, int dest_cpu)
2260{
2261 struct cfs_rq *src_cfs_rq, *dest_cfs_rq;
2262
2263 src_cfs_rq = tg->cfs_rq[src_cpu];
2264 dest_cfs_rq = tg->cfs_rq[dest_cpu];
2265
2266 return throttled_hierarchy(src_cfs_rq) ||
2267 throttled_hierarchy(dest_cfs_rq);
2268}
2269
2270/* updated child weight may affect parent so we have to do this bottom up */
2271static int tg_unthrottle_up(struct task_group *tg, void *data)
2272{
2273 struct rq *rq = data;
2274 struct cfs_rq *cfs_rq = tg->cfs_rq[cpu_of(rq)];
2275
2276 cfs_rq->throttle_count--;
2277#ifdef CONFIG_SMP
2278 if (!cfs_rq->throttle_count) {
f1b17280 2279 /* adjust cfs_rq_clock_task() */
78becc27 2280 cfs_rq->throttled_clock_task_time += rq_clock_task(rq) -
f1b17280 2281 cfs_rq->throttled_clock_task;
64660c86
PT
2282 }
2283#endif
2284
2285 return 0;
2286}
2287
2288static int tg_throttle_down(struct task_group *tg, void *data)
2289{
2290 struct rq *rq = data;
2291 struct cfs_rq *cfs_rq = tg->cfs_rq[cpu_of(rq)];
2292
82958366
PT
2293 /* group is entering throttled state, stop time */
2294 if (!cfs_rq->throttle_count)
78becc27 2295 cfs_rq->throttled_clock_task = rq_clock_task(rq);
64660c86
PT
2296 cfs_rq->throttle_count++;
2297
2298 return 0;
2299}
2300
d3d9dc33 2301static void throttle_cfs_rq(struct cfs_rq *cfs_rq)
85dac906
PT
2302{
2303 struct rq *rq = rq_of(cfs_rq);
2304 struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
2305 struct sched_entity *se;
2306 long task_delta, dequeue = 1;
2307
2308 se = cfs_rq->tg->se[cpu_of(rq_of(cfs_rq))];
2309
f1b17280 2310 /* freeze hierarchy runnable averages while throttled */
64660c86
PT
2311 rcu_read_lock();
2312 walk_tg_tree_from(cfs_rq->tg, tg_throttle_down, tg_nop, (void *)rq);
2313 rcu_read_unlock();
85dac906
PT
2314
2315 task_delta = cfs_rq->h_nr_running;
2316 for_each_sched_entity(se) {
2317 struct cfs_rq *qcfs_rq = cfs_rq_of(se);
2318 /* throttled entity or throttle-on-deactivate */
2319 if (!se->on_rq)
2320 break;
2321
2322 if (dequeue)
2323 dequeue_entity(qcfs_rq, se, DEQUEUE_SLEEP);
2324 qcfs_rq->h_nr_running -= task_delta;
2325
2326 if (qcfs_rq->load.weight)
2327 dequeue = 0;
2328 }
2329
2330 if (!se)
2331 rq->nr_running -= task_delta;
2332
2333 cfs_rq->throttled = 1;
78becc27 2334 cfs_rq->throttled_clock = rq_clock(rq);
85dac906
PT
2335 raw_spin_lock(&cfs_b->lock);
2336 list_add_tail_rcu(&cfs_rq->throttled_list, &cfs_b->throttled_cfs_rq);
2337 raw_spin_unlock(&cfs_b->lock);
2338}
2339
029632fb 2340void unthrottle_cfs_rq(struct cfs_rq *cfs_rq)
671fd9da
PT
2341{
2342 struct rq *rq = rq_of(cfs_rq);
2343 struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
2344 struct sched_entity *se;
2345 int enqueue = 1;
2346 long task_delta;
2347
22b958d8 2348 se = cfs_rq->tg->se[cpu_of(rq)];
671fd9da
PT
2349
2350 cfs_rq->throttled = 0;
1a55af2e
FW
2351
2352 update_rq_clock(rq);
2353
671fd9da 2354 raw_spin_lock(&cfs_b->lock);
78becc27 2355 cfs_b->throttled_time += rq_clock(rq) - cfs_rq->throttled_clock;
671fd9da
PT
2356 list_del_rcu(&cfs_rq->throttled_list);
2357 raw_spin_unlock(&cfs_b->lock);
2358
64660c86
PT
2359 /* update hierarchical throttle state */
2360 walk_tg_tree_from(cfs_rq->tg, tg_nop, tg_unthrottle_up, (void *)rq);
2361
671fd9da
PT
2362 if (!cfs_rq->load.weight)
2363 return;
2364
2365 task_delta = cfs_rq->h_nr_running;
2366 for_each_sched_entity(se) {
2367 if (se->on_rq)
2368 enqueue = 0;
2369
2370 cfs_rq = cfs_rq_of(se);
2371 if (enqueue)
2372 enqueue_entity(cfs_rq, se, ENQUEUE_WAKEUP);
2373 cfs_rq->h_nr_running += task_delta;
2374
2375 if (cfs_rq_throttled(cfs_rq))
2376 break;
2377 }
2378
2379 if (!se)
2380 rq->nr_running += task_delta;
2381
2382 /* determine whether we need to wake up potentially idle cpu */
2383 if (rq->curr == rq->idle && rq->cfs.nr_running)
2384 resched_task(rq->curr);
2385}
2386
2387static u64 distribute_cfs_runtime(struct cfs_bandwidth *cfs_b,
2388 u64 remaining, u64 expires)
2389{
2390 struct cfs_rq *cfs_rq;
2391 u64 runtime = remaining;
2392
2393 rcu_read_lock();
2394 list_for_each_entry_rcu(cfs_rq, &cfs_b->throttled_cfs_rq,
2395 throttled_list) {
2396 struct rq *rq = rq_of(cfs_rq);
2397
2398 raw_spin_lock(&rq->lock);
2399 if (!cfs_rq_throttled(cfs_rq))
2400 goto next;
2401
2402 runtime = -cfs_rq->runtime_remaining + 1;
2403 if (runtime > remaining)
2404 runtime = remaining;
2405 remaining -= runtime;
2406
2407 cfs_rq->runtime_remaining += runtime;
2408 cfs_rq->runtime_expires = expires;
2409
2410 /* we check whether we're throttled above */
2411 if (cfs_rq->runtime_remaining > 0)
2412 unthrottle_cfs_rq(cfs_rq);
2413
2414next:
2415 raw_spin_unlock(&rq->lock);
2416
2417 if (!remaining)
2418 break;
2419 }
2420 rcu_read_unlock();
2421
2422 return remaining;
2423}
2424
58088ad0
PT
2425/*
2426 * Responsible for refilling a task_group's bandwidth and unthrottling its
2427 * cfs_rqs as appropriate. If there has been no activity within the last
2428 * period the timer is deactivated until scheduling resumes; cfs_b->idle is
2429 * used to track this state.
2430 */
2431static int do_sched_cfs_period_timer(struct cfs_bandwidth *cfs_b, int overrun)
2432{
671fd9da
PT
2433 u64 runtime, runtime_expires;
2434 int idle = 1, throttled;
58088ad0
PT
2435
2436 raw_spin_lock(&cfs_b->lock);
2437 /* no need to continue the timer with no bandwidth constraint */
2438 if (cfs_b->quota == RUNTIME_INF)
2439 goto out_unlock;
2440
671fd9da
PT
2441 throttled = !list_empty(&cfs_b->throttled_cfs_rq);
2442 /* idle depends on !throttled (for the case of a large deficit) */
2443 idle = cfs_b->idle && !throttled;
e8da1b18 2444 cfs_b->nr_periods += overrun;
671fd9da 2445
a9cf55b2
PT
2446 /* if we're going inactive then everything else can be deferred */
2447 if (idle)
2448 goto out_unlock;
2449
2450 __refill_cfs_bandwidth_runtime(cfs_b);
2451
671fd9da
PT
2452 if (!throttled) {
2453 /* mark as potentially idle for the upcoming period */
2454 cfs_b->idle = 1;
2455 goto out_unlock;
2456 }
2457
e8da1b18
NR
2458 /* account preceding periods in which throttling occurred */
2459 cfs_b->nr_throttled += overrun;
2460
671fd9da
PT
2461 /*
2462 * There are throttled entities so we must first use the new bandwidth
2463 * to unthrottle them before making it generally available. This
2464 * ensures that all existing debts will be paid before a new cfs_rq is
2465 * allowed to run.
2466 */
2467 runtime = cfs_b->runtime;
2468 runtime_expires = cfs_b->runtime_expires;
2469 cfs_b->runtime = 0;
2470
2471 /*
2472 * This check is repeated as we are holding onto the new bandwidth
2473 * while we unthrottle. This can potentially race with an unthrottled
2474 * group trying to acquire new bandwidth from the global pool.
2475 */
2476 while (throttled && runtime > 0) {
2477 raw_spin_unlock(&cfs_b->lock);
2478 /* we can't nest cfs_b->lock while distributing bandwidth */
2479 runtime = distribute_cfs_runtime(cfs_b, runtime,
2480 runtime_expires);
2481 raw_spin_lock(&cfs_b->lock);
2482
2483 throttled = !list_empty(&cfs_b->throttled_cfs_rq);
2484 }
58088ad0 2485
671fd9da
PT
2486 /* return (any) remaining runtime */
2487 cfs_b->runtime = runtime;
2488 /*
2489 * While we are ensured activity in the period following an
2490 * unthrottle, this also covers the case in which the new bandwidth is
2491 * insufficient to cover the existing bandwidth deficit. (Forcing the
2492 * timer to remain active while there are any throttled entities.)
2493 */
2494 cfs_b->idle = 0;
58088ad0
PT
2495out_unlock:
2496 if (idle)
2497 cfs_b->timer_active = 0;
2498 raw_spin_unlock(&cfs_b->lock);
2499
2500 return idle;
2501}
d3d9dc33 2502
d8b4986d
PT
2503/* a cfs_rq won't donate quota below this amount */
2504static const u64 min_cfs_rq_runtime = 1 * NSEC_PER_MSEC;
2505/* minimum remaining period time to redistribute slack quota */
2506static const u64 min_bandwidth_expiration = 2 * NSEC_PER_MSEC;
2507/* how long we wait to gather additional slack before distributing */
2508static const u64 cfs_bandwidth_slack_period = 5 * NSEC_PER_MSEC;
2509
2510/* are we near the end of the current quota period? */
2511static int runtime_refresh_within(struct cfs_bandwidth *cfs_b, u64 min_expire)
2512{
2513 struct hrtimer *refresh_timer = &cfs_b->period_timer;
2514 u64 remaining;
2515
2516 /* if the call-back is running a quota refresh is already occurring */
2517 if (hrtimer_callback_running(refresh_timer))
2518 return 1;
2519
2520 /* is a quota refresh about to occur? */
2521 remaining = ktime_to_ns(hrtimer_expires_remaining(refresh_timer));
2522 if (remaining < min_expire)
2523 return 1;
2524
2525 return 0;
2526}
2527
2528static void start_cfs_slack_bandwidth(struct cfs_bandwidth *cfs_b)
2529{
2530 u64 min_left = cfs_bandwidth_slack_period + min_bandwidth_expiration;
2531
2532 /* if there's a quota refresh soon don't bother with slack */
2533 if (runtime_refresh_within(cfs_b, min_left))
2534 return;
2535
2536 start_bandwidth_timer(&cfs_b->slack_timer,
2537 ns_to_ktime(cfs_bandwidth_slack_period));
2538}
2539
2540/* we know any runtime found here is valid as update_curr() precedes return */
2541static void __return_cfs_rq_runtime(struct cfs_rq *cfs_rq)
2542{
2543 struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
2544 s64 slack_runtime = cfs_rq->runtime_remaining - min_cfs_rq_runtime;
2545
2546 if (slack_runtime <= 0)
2547 return;
2548
2549 raw_spin_lock(&cfs_b->lock);
2550 if (cfs_b->quota != RUNTIME_INF &&
2551 cfs_rq->runtime_expires == cfs_b->runtime_expires) {
2552 cfs_b->runtime += slack_runtime;
2553
2554 /* we are under rq->lock, defer unthrottling using a timer */
2555 if (cfs_b->runtime > sched_cfs_bandwidth_slice() &&
2556 !list_empty(&cfs_b->throttled_cfs_rq))
2557 start_cfs_slack_bandwidth(cfs_b);
2558 }
2559 raw_spin_unlock(&cfs_b->lock);
2560
2561 /* even if it's not valid for return we don't want to try again */
2562 cfs_rq->runtime_remaining -= slack_runtime;
2563}
2564
2565static __always_inline void return_cfs_rq_runtime(struct cfs_rq *cfs_rq)
2566{
56f570e5
PT
2567 if (!cfs_bandwidth_used())
2568 return;
2569
fccfdc6f 2570 if (!cfs_rq->runtime_enabled || cfs_rq->nr_running)
d8b4986d
PT
2571 return;
2572
2573 __return_cfs_rq_runtime(cfs_rq);
2574}
2575
2576/*
2577 * This is done with a timer (instead of inline with bandwidth return) since
2578 * it's necessary to juggle rq->locks to unthrottle their respective cfs_rqs.
2579 */
2580static void do_sched_cfs_slack_timer(struct cfs_bandwidth *cfs_b)
2581{
2582 u64 runtime = 0, slice = sched_cfs_bandwidth_slice();
2583 u64 expires;
2584
2585 /* confirm we're still not at a refresh boundary */
2586 if (runtime_refresh_within(cfs_b, min_bandwidth_expiration))
2587 return;
2588
2589 raw_spin_lock(&cfs_b->lock);
2590 if (cfs_b->quota != RUNTIME_INF && cfs_b->runtime > slice) {
2591 runtime = cfs_b->runtime;
2592 cfs_b->runtime = 0;
2593 }
2594 expires = cfs_b->runtime_expires;
2595 raw_spin_unlock(&cfs_b->lock);
2596
2597 if (!runtime)
2598 return;
2599
2600 runtime = distribute_cfs_runtime(cfs_b, runtime, expires);
2601
2602 raw_spin_lock(&cfs_b->lock);
2603 if (expires == cfs_b->runtime_expires)
2604 cfs_b->runtime = runtime;
2605 raw_spin_unlock(&cfs_b->lock);
2606}
2607
d3d9dc33
PT
2608/*
2609 * When a group wakes up we want to make sure that its quota is not already
2610 * expired/exceeded, otherwise it may be allowed to steal additional ticks of
2611 * runtime as update_curr() throttling can not not trigger until it's on-rq.
2612 */
2613static void check_enqueue_throttle(struct cfs_rq *cfs_rq)
2614{
56f570e5
PT
2615 if (!cfs_bandwidth_used())
2616 return;
2617
d3d9dc33
PT
2618 /* an active group must be handled by the update_curr()->put() path */
2619 if (!cfs_rq->runtime_enabled || cfs_rq->curr)
2620 return;
2621
2622 /* ensure the group is not already throttled */
2623 if (cfs_rq_throttled(cfs_rq))
2624 return;
2625
2626 /* update runtime allocation */
2627 account_cfs_rq_runtime(cfs_rq, 0);
2628 if (cfs_rq->runtime_remaining <= 0)
2629 throttle_cfs_rq(cfs_rq);
2630}
2631
2632/* conditionally throttle active cfs_rq's from put_prev_entity() */
2633static void check_cfs_rq_runtime(struct cfs_rq *cfs_rq)
2634{
56f570e5
PT
2635 if (!cfs_bandwidth_used())
2636 return;
2637
d3d9dc33
PT
2638 if (likely(!cfs_rq->runtime_enabled || cfs_rq->runtime_remaining > 0))
2639 return;
2640
2641 /*
2642 * it's possible for a throttled entity to be forced into a running
2643 * state (e.g. set_curr_task), in this case we're finished.
2644 */
2645 if (cfs_rq_throttled(cfs_rq))
2646 return;
2647
2648 throttle_cfs_rq(cfs_rq);
2649}
029632fb 2650
029632fb
PZ
2651static enum hrtimer_restart sched_cfs_slack_timer(struct hrtimer *timer)
2652{
2653 struct cfs_bandwidth *cfs_b =
2654 container_of(timer, struct cfs_bandwidth, slack_timer);
2655 do_sched_cfs_slack_timer(cfs_b);
2656
2657 return HRTIMER_NORESTART;
2658}
2659
2660static enum hrtimer_restart sched_cfs_period_timer(struct hrtimer *timer)
2661{
2662 struct cfs_bandwidth *cfs_b =
2663 container_of(timer, struct cfs_bandwidth, period_timer);
2664 ktime_t now;
2665 int overrun;
2666 int idle = 0;
2667
2668 for (;;) {
2669 now = hrtimer_cb_get_time(timer);
2670 overrun = hrtimer_forward(timer, now, cfs_b->period);
2671
2672 if (!overrun)
2673 break;
2674
2675 idle = do_sched_cfs_period_timer(cfs_b, overrun);
2676 }
2677
2678 return idle ? HRTIMER_NORESTART : HRTIMER_RESTART;
2679}
2680
2681void init_cfs_bandwidth(struct cfs_bandwidth *cfs_b)
2682{
2683 raw_spin_lock_init(&cfs_b->lock);
2684 cfs_b->runtime = 0;
2685 cfs_b->quota = RUNTIME_INF;
2686 cfs_b->period = ns_to_ktime(default_cfs_period());
2687
2688 INIT_LIST_HEAD(&cfs_b->throttled_cfs_rq);
2689 hrtimer_init(&cfs_b->period_timer, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
2690 cfs_b->period_timer.function = sched_cfs_period_timer;
2691 hrtimer_init(&cfs_b->slack_timer, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
2692 cfs_b->slack_timer.function = sched_cfs_slack_timer;
2693}
2694
2695static void init_cfs_rq_runtime(struct cfs_rq *cfs_rq)
2696{
2697 cfs_rq->runtime_enabled = 0;
2698 INIT_LIST_HEAD(&cfs_rq->throttled_list);
2699}
2700
2701/* requires cfs_b->lock, may release to reprogram timer */
2702void __start_cfs_bandwidth(struct cfs_bandwidth *cfs_b)
2703{
2704 /*
2705 * The timer may be active because we're trying to set a new bandwidth
2706 * period or because we're racing with the tear-down path
2707 * (timer_active==0 becomes visible before the hrtimer call-back
2708 * terminates). In either case we ensure that it's re-programmed
2709 */
2710 while (unlikely(hrtimer_active(&cfs_b->period_timer))) {
2711 raw_spin_unlock(&cfs_b->lock);
2712 /* ensure cfs_b->lock is available while we wait */
2713 hrtimer_cancel(&cfs_b->period_timer);
2714
2715 raw_spin_lock(&cfs_b->lock);
2716 /* if someone else restarted the timer then we're done */
2717 if (cfs_b->timer_active)
2718 return;
2719 }
2720
2721 cfs_b->timer_active = 1;
2722 start_bandwidth_timer(&cfs_b->period_timer, cfs_b->period);
2723}
2724
2725static void destroy_cfs_bandwidth(struct cfs_bandwidth *cfs_b)
2726{
2727 hrtimer_cancel(&cfs_b->period_timer);
2728 hrtimer_cancel(&cfs_b->slack_timer);
2729}
2730
38dc3348 2731static void __maybe_unused unthrottle_offline_cfs_rqs(struct rq *rq)
029632fb
PZ
2732{
2733 struct cfs_rq *cfs_rq;
2734
2735 for_each_leaf_cfs_rq(rq, cfs_rq) {
2736 struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
2737
2738 if (!cfs_rq->runtime_enabled)
2739 continue;
2740
2741 /*
2742 * clock_task is not advancing so we just need to make sure
2743 * there's some valid quota amount
2744 */
2745 cfs_rq->runtime_remaining = cfs_b->quota;
2746 if (cfs_rq_throttled(cfs_rq))
2747 unthrottle_cfs_rq(cfs_rq);
2748 }
2749}
2750
2751#else /* CONFIG_CFS_BANDWIDTH */
f1b17280
PT
2752static inline u64 cfs_rq_clock_task(struct cfs_rq *cfs_rq)
2753{
78becc27 2754 return rq_clock_task(rq_of(cfs_rq));
f1b17280
PT
2755}
2756
2757static void account_cfs_rq_runtime(struct cfs_rq *cfs_rq,
2758 unsigned long delta_exec) {}
d3d9dc33
PT
2759static void check_cfs_rq_runtime(struct cfs_rq *cfs_rq) {}
2760static void check_enqueue_throttle(struct cfs_rq *cfs_rq) {}
6c16a6dc 2761static __always_inline void return_cfs_rq_runtime(struct cfs_rq *cfs_rq) {}
85dac906
PT
2762
2763static inline int cfs_rq_throttled(struct cfs_rq *cfs_rq)
2764{
2765 return 0;
2766}
64660c86
PT
2767
2768static inline int throttled_hierarchy(struct cfs_rq *cfs_rq)
2769{
2770 return 0;
2771}
2772
2773static inline int throttled_lb_pair(struct task_group *tg,
2774 int src_cpu, int dest_cpu)
2775{
2776 return 0;
2777}
029632fb
PZ
2778
2779void init_cfs_bandwidth(struct cfs_bandwidth *cfs_b) {}
2780
2781#ifdef CONFIG_FAIR_GROUP_SCHED
2782static void init_cfs_rq_runtime(struct cfs_rq *cfs_rq) {}
ab84d31e
PT
2783#endif
2784
029632fb
PZ
2785static inline struct cfs_bandwidth *tg_cfs_bandwidth(struct task_group *tg)
2786{
2787 return NULL;
2788}
2789static inline void destroy_cfs_bandwidth(struct cfs_bandwidth *cfs_b) {}
a4c96ae3 2790static inline void unthrottle_offline_cfs_rqs(struct rq *rq) {}
029632fb
PZ
2791
2792#endif /* CONFIG_CFS_BANDWIDTH */
2793
bf0f6f24
IM
2794/**************************************************
2795 * CFS operations on tasks:
2796 */
2797
8f4d37ec
PZ
2798#ifdef CONFIG_SCHED_HRTICK
2799static void hrtick_start_fair(struct rq *rq, struct task_struct *p)
2800{
8f4d37ec
PZ
2801 struct sched_entity *se = &p->se;
2802 struct cfs_rq *cfs_rq = cfs_rq_of(se);
2803
2804 WARN_ON(task_rq(p) != rq);
2805
b39e66ea 2806 if (cfs_rq->nr_running > 1) {
8f4d37ec
PZ
2807 u64 slice = sched_slice(cfs_rq, se);
2808 u64 ran = se->sum_exec_runtime - se->prev_sum_exec_runtime;
2809 s64 delta = slice - ran;
2810
2811 if (delta < 0) {
2812 if (rq->curr == p)
2813 resched_task(p);
2814 return;
2815 }
2816
2817 /*
2818 * Don't schedule slices shorter than 10000ns, that just
2819 * doesn't make sense. Rely on vruntime for fairness.
2820 */
31656519 2821 if (rq->curr != p)
157124c1 2822 delta = max_t(s64, 10000LL, delta);
8f4d37ec 2823
31656519 2824 hrtick_start(rq, delta);
8f4d37ec
PZ
2825 }
2826}
a4c2f00f
PZ
2827
2828/*
2829 * called from enqueue/dequeue and updates the hrtick when the
2830 * current task is from our class and nr_running is low enough
2831 * to matter.
2832 */
2833static void hrtick_update(struct rq *rq)
2834{
2835 struct task_struct *curr = rq->curr;
2836
b39e66ea 2837 if (!hrtick_enabled(rq) || curr->sched_class != &fair_sched_class)
a4c2f00f
PZ
2838 return;
2839
2840 if (cfs_rq_of(&curr->se)->nr_running < sched_nr_latency)
2841 hrtick_start_fair(rq, curr);
2842}
55e12e5e 2843#else /* !CONFIG_SCHED_HRTICK */
8f4d37ec
PZ
2844static inline void
2845hrtick_start_fair(struct rq *rq, struct task_struct *p)
2846{
2847}
a4c2f00f
PZ
2848
2849static inline void hrtick_update(struct rq *rq)
2850{
2851}
8f4d37ec
PZ
2852#endif
2853
bf0f6f24
IM
2854/*
2855 * The enqueue_task method is called before nr_running is
2856 * increased. Here we update the fair scheduling stats and
2857 * then put the task into the rbtree:
2858 */
ea87bb78 2859static void
371fd7e7 2860enqueue_task_fair(struct rq *rq, struct task_struct *p, int flags)
bf0f6f24
IM
2861{
2862 struct cfs_rq *cfs_rq;
62fb1851 2863 struct sched_entity *se = &p->se;
bf0f6f24
IM
2864
2865 for_each_sched_entity(se) {
62fb1851 2866 if (se->on_rq)
bf0f6f24
IM
2867 break;
2868 cfs_rq = cfs_rq_of(se);
88ec22d3 2869 enqueue_entity(cfs_rq, se, flags);
85dac906
PT
2870
2871 /*
2872 * end evaluation on encountering a throttled cfs_rq
2873 *
2874 * note: in the case of encountering a throttled cfs_rq we will
2875 * post the final h_nr_running increment below.
2876 */
2877 if (cfs_rq_throttled(cfs_rq))
2878 break;
953bfcd1 2879 cfs_rq->h_nr_running++;
85dac906 2880
88ec22d3 2881 flags = ENQUEUE_WAKEUP;
bf0f6f24 2882 }
8f4d37ec 2883
2069dd75 2884 for_each_sched_entity(se) {
0f317143 2885 cfs_rq = cfs_rq_of(se);
953bfcd1 2886 cfs_rq->h_nr_running++;
2069dd75 2887
85dac906
PT
2888 if (cfs_rq_throttled(cfs_rq))
2889 break;
2890
17bc14b7 2891 update_cfs_shares(cfs_rq);
9ee474f5 2892 update_entity_load_avg(se, 1);
2069dd75
PZ
2893 }
2894
18bf2805
BS
2895 if (!se) {
2896 update_rq_runnable_avg(rq, rq->nr_running);
85dac906 2897 inc_nr_running(rq);
18bf2805 2898 }
a4c2f00f 2899 hrtick_update(rq);
bf0f6f24
IM
2900}
2901
2f36825b
VP
2902static void set_next_buddy(struct sched_entity *se);
2903
bf0f6f24
IM
2904/*
2905 * The dequeue_task method is called before nr_running is
2906 * decreased. We remove the task from the rbtree and
2907 * update the fair scheduling stats:
2908 */
371fd7e7 2909static void dequeue_task_fair(struct rq *rq, struct task_struct *p, int flags)
bf0f6f24
IM
2910{
2911 struct cfs_rq *cfs_rq;
62fb1851 2912 struct sched_entity *se = &p->se;
2f36825b 2913 int task_sleep = flags & DEQUEUE_SLEEP;
bf0f6f24
IM
2914
2915 for_each_sched_entity(se) {
2916 cfs_rq = cfs_rq_of(se);
371fd7e7 2917 dequeue_entity(cfs_rq, se, flags);
85dac906
PT
2918
2919 /*
2920 * end evaluation on encountering a throttled cfs_rq
2921 *
2922 * note: in the case of encountering a throttled cfs_rq we will
2923 * post the final h_nr_running decrement below.
2924 */
2925 if (cfs_rq_throttled(cfs_rq))
2926 break;
953bfcd1 2927 cfs_rq->h_nr_running--;
2069dd75 2928
bf0f6f24 2929 /* Don't dequeue parent if it has other entities besides us */
2f36825b
VP
2930 if (cfs_rq->load.weight) {
2931 /*
2932 * Bias pick_next to pick a task from this cfs_rq, as
2933 * p is sleeping when it is within its sched_slice.
2934 */
2935 if (task_sleep && parent_entity(se))
2936 set_next_buddy(parent_entity(se));
9598c82d
PT
2937
2938 /* avoid re-evaluating load for this entity */
2939 se = parent_entity(se);
bf0f6f24 2940 break;
2f36825b 2941 }
371fd7e7 2942 flags |= DEQUEUE_SLEEP;
bf0f6f24 2943 }
8f4d37ec 2944
2069dd75 2945 for_each_sched_entity(se) {
0f317143 2946 cfs_rq = cfs_rq_of(se);
953bfcd1 2947 cfs_rq->h_nr_running--;
2069dd75 2948
85dac906
PT
2949 if (cfs_rq_throttled(cfs_rq))
2950 break;
2951
17bc14b7 2952 update_cfs_shares(cfs_rq);
9ee474f5 2953 update_entity_load_avg(se, 1);
2069dd75
PZ
2954 }
2955
18bf2805 2956 if (!se) {
85dac906 2957 dec_nr_running(rq);
18bf2805
BS
2958 update_rq_runnable_avg(rq, 1);
2959 }
a4c2f00f 2960 hrtick_update(rq);
bf0f6f24
IM
2961}
2962
e7693a36 2963#ifdef CONFIG_SMP
029632fb
PZ
2964/* Used instead of source_load when we know the type == 0 */
2965static unsigned long weighted_cpuload(const int cpu)
2966{
b92486cb 2967 return cpu_rq(cpu)->cfs.runnable_load_avg;
029632fb
PZ
2968}
2969
2970/*
2971 * Return a low guess at the load of a migration-source cpu weighted
2972 * according to the scheduling class and "nice" value.
2973 *
2974 * We want to under-estimate the load of migration sources, to
2975 * balance conservatively.
2976 */
2977static unsigned long source_load(int cpu, int type)
2978{
2979 struct rq *rq = cpu_rq(cpu);
2980 unsigned long total = weighted_cpuload(cpu);
2981
2982 if (type == 0 || !sched_feat(LB_BIAS))
2983 return total;
2984
2985 return min(rq->cpu_load[type-1], total);
2986}
2987
2988/*
2989 * Return a high guess at the load of a migration-target cpu weighted
2990 * according to the scheduling class and "nice" value.
2991 */
2992static unsigned long target_load(int cpu, int type)
2993{
2994 struct rq *rq = cpu_rq(cpu);
2995 unsigned long total = weighted_cpuload(cpu);
2996
2997 if (type == 0 || !sched_feat(LB_BIAS))
2998 return total;
2999
3000 return max(rq->cpu_load[type-1], total);
3001}
3002
3003static unsigned long power_of(int cpu)
3004{
3005 return cpu_rq(cpu)->cpu_power;
3006}
3007
3008static unsigned long cpu_avg_load_per_task(int cpu)
3009{
3010 struct rq *rq = cpu_rq(cpu);
3011 unsigned long nr_running = ACCESS_ONCE(rq->nr_running);
b92486cb 3012 unsigned long load_avg = rq->cfs.runnable_load_avg;
029632fb
PZ
3013
3014 if (nr_running)
b92486cb 3015 return load_avg / nr_running;
029632fb
PZ
3016
3017 return 0;
3018}
3019
098fb9db 3020
74f8e4b2 3021static void task_waking_fair(struct task_struct *p)
88ec22d3
PZ
3022{
3023 struct sched_entity *se = &p->se;
3024 struct cfs_rq *cfs_rq = cfs_rq_of(se);
3fe1698b
PZ
3025 u64 min_vruntime;
3026
3027#ifndef CONFIG_64BIT
3028 u64 min_vruntime_copy;
88ec22d3 3029
3fe1698b
PZ
3030 do {
3031 min_vruntime_copy = cfs_rq->min_vruntime_copy;
3032 smp_rmb();
3033 min_vruntime = cfs_rq->min_vruntime;
3034 } while (min_vruntime != min_vruntime_copy);
3035#else
3036 min_vruntime = cfs_rq->min_vruntime;
3037#endif
88ec22d3 3038
3fe1698b 3039 se->vruntime -= min_vruntime;
88ec22d3
PZ
3040}
3041
bb3469ac 3042#ifdef CONFIG_FAIR_GROUP_SCHED
f5bfb7d9
PZ
3043/*
3044 * effective_load() calculates the load change as seen from the root_task_group
3045 *
3046 * Adding load to a group doesn't make a group heavier, but can cause movement
3047 * of group shares between cpus. Assuming the shares were perfectly aligned one
3048 * can calculate the shift in shares.
cf5f0acf
PZ
3049 *
3050 * Calculate the effective load difference if @wl is added (subtracted) to @tg
3051 * on this @cpu and results in a total addition (subtraction) of @wg to the
3052 * total group weight.
3053 *
3054 * Given a runqueue weight distribution (rw_i) we can compute a shares
3055 * distribution (s_i) using:
3056 *
3057 * s_i = rw_i / \Sum rw_j (1)
3058 *
3059 * Suppose we have 4 CPUs and our @tg is a direct child of the root group and
3060 * has 7 equal weight tasks, distributed as below (rw_i), with the resulting
3061 * shares distribution (s_i):
3062 *
3063 * rw_i = { 2, 4, 1, 0 }
3064 * s_i = { 2/7, 4/7, 1/7, 0 }
3065 *
3066 * As per wake_affine() we're interested in the load of two CPUs (the CPU the
3067 * task used to run on and the CPU the waker is running on), we need to
3068 * compute the effect of waking a task on either CPU and, in case of a sync
3069 * wakeup, compute the effect of the current task going to sleep.
3070 *
3071 * So for a change of @wl to the local @cpu with an overall group weight change
3072 * of @wl we can compute the new shares distribution (s'_i) using:
3073 *
3074 * s'_i = (rw_i + @wl) / (@wg + \Sum rw_j) (2)
3075 *
3076 * Suppose we're interested in CPUs 0 and 1, and want to compute the load
3077 * differences in waking a task to CPU 0. The additional task changes the
3078 * weight and shares distributions like:
3079 *
3080 * rw'_i = { 3, 4, 1, 0 }
3081 * s'_i = { 3/8, 4/8, 1/8, 0 }
3082 *
3083 * We can then compute the difference in effective weight by using:
3084 *
3085 * dw_i = S * (s'_i - s_i) (3)
3086 *
3087 * Where 'S' is the group weight as seen by its parent.
3088 *
3089 * Therefore the effective change in loads on CPU 0 would be 5/56 (3/8 - 2/7)
3090 * times the weight of the group. The effect on CPU 1 would be -4/56 (4/8 -
3091 * 4/7) times the weight of the group.
f5bfb7d9 3092 */
2069dd75 3093static long effective_load(struct task_group *tg, int cpu, long wl, long wg)
bb3469ac 3094{
4be9daaa 3095 struct sched_entity *se = tg->se[cpu];
f1d239f7 3096
cf5f0acf 3097 if (!tg->parent) /* the trivial, non-cgroup case */
f1d239f7
PZ
3098 return wl;
3099
4be9daaa 3100 for_each_sched_entity(se) {
cf5f0acf 3101 long w, W;
4be9daaa 3102
977dda7c 3103 tg = se->my_q->tg;
bb3469ac 3104
cf5f0acf
PZ
3105 /*
3106 * W = @wg + \Sum rw_j
3107 */
3108 W = wg + calc_tg_weight(tg, se->my_q);
4be9daaa 3109
cf5f0acf
PZ
3110 /*
3111 * w = rw_i + @wl
3112 */
3113 w = se->my_q->load.weight + wl;
940959e9 3114
cf5f0acf
PZ
3115 /*
3116 * wl = S * s'_i; see (2)
3117 */
3118 if (W > 0 && w < W)
3119 wl = (w * tg->shares) / W;
977dda7c
PT
3120 else
3121 wl = tg->shares;
940959e9 3122
cf5f0acf
PZ
3123 /*
3124 * Per the above, wl is the new se->load.weight value; since
3125 * those are clipped to [MIN_SHARES, ...) do so now. See
3126 * calc_cfs_shares().
3127 */
977dda7c
PT
3128 if (wl < MIN_SHARES)
3129 wl = MIN_SHARES;
cf5f0acf
PZ
3130
3131 /*
3132 * wl = dw_i = S * (s'_i - s_i); see (3)
3133 */
977dda7c 3134 wl -= se->load.weight;
cf5f0acf
PZ
3135
3136 /*
3137 * Recursively apply this logic to all parent groups to compute
3138 * the final effective load change on the root group. Since
3139 * only the @tg group gets extra weight, all parent groups can
3140 * only redistribute existing shares. @wl is the shift in shares
3141 * resulting from this level per the above.
3142 */
4be9daaa 3143 wg = 0;
4be9daaa 3144 }
bb3469ac 3145
4be9daaa 3146 return wl;
bb3469ac
PZ
3147}
3148#else
4be9daaa 3149
83378269
PZ
3150static inline unsigned long effective_load(struct task_group *tg, int cpu,
3151 unsigned long wl, unsigned long wg)
4be9daaa 3152{
83378269 3153 return wl;
bb3469ac 3154}
4be9daaa 3155
bb3469ac
PZ
3156#endif
3157
c88d5910 3158static int wake_affine(struct sched_domain *sd, struct task_struct *p, int sync)
098fb9db 3159{
e37b6a7b 3160 s64 this_load, load;
c88d5910 3161 int idx, this_cpu, prev_cpu;
098fb9db 3162 unsigned long tl_per_task;
c88d5910 3163 struct task_group *tg;
83378269 3164 unsigned long weight;
b3137bc8 3165 int balanced;
098fb9db 3166
c88d5910
PZ
3167 idx = sd->wake_idx;
3168 this_cpu = smp_processor_id();
3169 prev_cpu = task_cpu(p);
3170 load = source_load(prev_cpu, idx);
3171 this_load = target_load(this_cpu, idx);
098fb9db 3172
b3137bc8
MG
3173 /*
3174 * If sync wakeup then subtract the (maximum possible)
3175 * effect of the currently running task from the load
3176 * of the current CPU:
3177 */
83378269
PZ
3178 if (sync) {
3179 tg = task_group(current);
3180 weight = current->se.load.weight;
3181
c88d5910 3182 this_load += effective_load(tg, this_cpu, -weight, -weight);
83378269
PZ
3183 load += effective_load(tg, prev_cpu, 0, -weight);
3184 }
b3137bc8 3185
83378269
PZ
3186 tg = task_group(p);
3187 weight = p->se.load.weight;
b3137bc8 3188
71a29aa7
PZ
3189 /*
3190 * In low-load situations, where prev_cpu is idle and this_cpu is idle
c88d5910
PZ
3191 * due to the sync cause above having dropped this_load to 0, we'll
3192 * always have an imbalance, but there's really nothing you can do
3193 * about that, so that's good too.
71a29aa7
PZ
3194 *
3195 * Otherwise check if either cpus are near enough in load to allow this
3196 * task to be woken on this_cpu.
3197 */
e37b6a7b
PT
3198 if (this_load > 0) {
3199 s64 this_eff_load, prev_eff_load;
e51fd5e2
PZ
3200
3201 this_eff_load = 100;
3202 this_eff_load *= power_of(prev_cpu);
3203 this_eff_load *= this_load +
3204 effective_load(tg, this_cpu, weight, weight);
3205
3206 prev_eff_load = 100 + (sd->imbalance_pct - 100) / 2;
3207 prev_eff_load *= power_of(this_cpu);
3208 prev_eff_load *= load + effective_load(tg, prev_cpu, 0, weight);
3209
3210 balanced = this_eff_load <= prev_eff_load;
3211 } else
3212 balanced = true;
b3137bc8 3213
098fb9db 3214 /*
4ae7d5ce
IM
3215 * If the currently running task will sleep within
3216 * a reasonable amount of time then attract this newly
3217 * woken task:
098fb9db 3218 */
2fb7635c
PZ
3219 if (sync && balanced)
3220 return 1;
098fb9db 3221
41acab88 3222 schedstat_inc(p, se.statistics.nr_wakeups_affine_attempts);
098fb9db
IM
3223 tl_per_task = cpu_avg_load_per_task(this_cpu);
3224
c88d5910
PZ
3225 if (balanced ||
3226 (this_load <= load &&
3227 this_load + target_load(prev_cpu, idx) <= tl_per_task)) {
098fb9db
IM
3228 /*
3229 * This domain has SD_WAKE_AFFINE and
3230 * p is cache cold in this domain, and
3231 * there is no bad imbalance.
3232 */
c88d5910 3233 schedstat_inc(sd, ttwu_move_affine);
41acab88 3234 schedstat_inc(p, se.statistics.nr_wakeups_affine);
098fb9db
IM
3235
3236 return 1;
3237 }
3238 return 0;
3239}
3240
aaee1203
PZ
3241/*
3242 * find_idlest_group finds and returns the least busy CPU group within the
3243 * domain.
3244 */
3245static struct sched_group *
78e7ed53 3246find_idlest_group(struct sched_domain *sd, struct task_struct *p,
5158f4e4 3247 int this_cpu, int load_idx)
e7693a36 3248{
b3bd3de6 3249 struct sched_group *idlest = NULL, *group = sd->groups;
aaee1203 3250 unsigned long min_load = ULONG_MAX, this_load = 0;
aaee1203 3251 int imbalance = 100 + (sd->imbalance_pct-100)/2;
e7693a36 3252
aaee1203
PZ
3253 do {
3254 unsigned long load, avg_load;
3255 int local_group;
3256 int i;
e7693a36 3257
aaee1203
PZ
3258 /* Skip over this group if it has no CPUs allowed */
3259 if (!cpumask_intersects(sched_group_cpus(group),
fa17b507 3260 tsk_cpus_allowed(p)))
aaee1203
PZ
3261 continue;
3262
3263 local_group = cpumask_test_cpu(this_cpu,
3264 sched_group_cpus(group));
3265
3266 /* Tally up the load of all CPUs in the group */
3267 avg_load = 0;
3268
3269 for_each_cpu(i, sched_group_cpus(group)) {
3270 /* Bias balancing toward cpus of our domain */
3271 if (local_group)
3272 load = source_load(i, load_idx);
3273 else
3274 load = target_load(i, load_idx);
3275
3276 avg_load += load;
3277 }
3278
3279 /* Adjust by relative CPU power of the group */
9c3f75cb 3280 avg_load = (avg_load * SCHED_POWER_SCALE) / group->sgp->power;
aaee1203
PZ
3281
3282 if (local_group) {
3283 this_load = avg_load;
aaee1203
PZ
3284 } else if (avg_load < min_load) {
3285 min_load = avg_load;
3286 idlest = group;
3287 }
3288 } while (group = group->next, group != sd->groups);
3289
3290 if (!idlest || 100*this_load < imbalance*min_load)
3291 return NULL;
3292 return idlest;
3293}
3294
3295/*
3296 * find_idlest_cpu - find the idlest cpu among the cpus in group.
3297 */
3298static int
3299find_idlest_cpu(struct sched_group *group, struct task_struct *p, int this_cpu)
3300{
3301 unsigned long load, min_load = ULONG_MAX;
3302 int idlest = -1;
3303 int i;
3304
3305 /* Traverse only the allowed CPUs */
fa17b507 3306 for_each_cpu_and(i, sched_group_cpus(group), tsk_cpus_allowed(p)) {
aaee1203
PZ
3307 load = weighted_cpuload(i);
3308
3309 if (load < min_load || (load == min_load && i == this_cpu)) {
3310 min_load = load;
3311 idlest = i;
e7693a36
GH
3312 }
3313 }
3314
aaee1203
PZ
3315 return idlest;
3316}
e7693a36 3317
a50bde51
PZ
3318/*
3319 * Try and locate an idle CPU in the sched_domain.
3320 */
99bd5e2f 3321static int select_idle_sibling(struct task_struct *p, int target)
a50bde51 3322{
99bd5e2f 3323 struct sched_domain *sd;
37407ea7 3324 struct sched_group *sg;
e0a79f52 3325 int i = task_cpu(p);
a50bde51 3326
e0a79f52
MG
3327 if (idle_cpu(target))
3328 return target;
99bd5e2f
SS
3329
3330 /*
e0a79f52 3331 * If the prevous cpu is cache affine and idle, don't be stupid.
99bd5e2f 3332 */
e0a79f52
MG
3333 if (i != target && cpus_share_cache(i, target) && idle_cpu(i))
3334 return i;
a50bde51
PZ
3335
3336 /*
37407ea7 3337 * Otherwise, iterate the domains and find an elegible idle cpu.
a50bde51 3338 */
518cd623 3339 sd = rcu_dereference(per_cpu(sd_llc, target));
970e1789 3340 for_each_lower_domain(sd) {
37407ea7
LT
3341 sg = sd->groups;
3342 do {
3343 if (!cpumask_intersects(sched_group_cpus(sg),
3344 tsk_cpus_allowed(p)))
3345 goto next;
3346
3347 for_each_cpu(i, sched_group_cpus(sg)) {
e0a79f52 3348 if (i == target || !idle_cpu(i))
37407ea7
LT
3349 goto next;
3350 }
970e1789 3351
37407ea7
LT
3352 target = cpumask_first_and(sched_group_cpus(sg),
3353 tsk_cpus_allowed(p));
3354 goto done;
3355next:
3356 sg = sg->next;
3357 } while (sg != sd->groups);
3358 }
3359done:
a50bde51
PZ
3360 return target;
3361}
3362
aaee1203
PZ
3363/*
3364 * sched_balance_self: balance the current task (running on cpu) in domains
3365 * that have the 'flag' flag set. In practice, this is SD_BALANCE_FORK and
3366 * SD_BALANCE_EXEC.
3367 *
3368 * Balance, ie. select the least loaded group.
3369 *
3370 * Returns the target CPU number, or the same CPU if no balancing is needed.
3371 *
3372 * preempt must be disabled.
3373 */
0017d735 3374static int
7608dec2 3375select_task_rq_fair(struct task_struct *p, int sd_flag, int wake_flags)
aaee1203 3376{
29cd8bae 3377 struct sched_domain *tmp, *affine_sd = NULL, *sd = NULL;
c88d5910
PZ
3378 int cpu = smp_processor_id();
3379 int prev_cpu = task_cpu(p);
3380 int new_cpu = cpu;
99bd5e2f 3381 int want_affine = 0;
5158f4e4 3382 int sync = wake_flags & WF_SYNC;
c88d5910 3383
29baa747 3384 if (p->nr_cpus_allowed == 1)
76854c7e
MG
3385 return prev_cpu;
3386
0763a660 3387 if (sd_flag & SD_BALANCE_WAKE) {
fa17b507 3388 if (cpumask_test_cpu(cpu, tsk_cpus_allowed(p)))
c88d5910
PZ
3389 want_affine = 1;
3390 new_cpu = prev_cpu;
3391 }
aaee1203 3392
dce840a0 3393 rcu_read_lock();
aaee1203 3394 for_each_domain(cpu, tmp) {
e4f42888
PZ
3395 if (!(tmp->flags & SD_LOAD_BALANCE))
3396 continue;
3397
fe3bcfe1 3398 /*
99bd5e2f
SS
3399 * If both cpu and prev_cpu are part of this domain,
3400 * cpu is a valid SD_WAKE_AFFINE target.
fe3bcfe1 3401 */
99bd5e2f
SS
3402 if (want_affine && (tmp->flags & SD_WAKE_AFFINE) &&
3403 cpumask_test_cpu(prev_cpu, sched_domain_span(tmp))) {
3404 affine_sd = tmp;
29cd8bae 3405 break;
f03542a7 3406 }
29cd8bae 3407
f03542a7 3408 if (tmp->flags & sd_flag)
29cd8bae
PZ
3409 sd = tmp;
3410 }
3411
8b911acd 3412 if (affine_sd) {
f03542a7 3413 if (cpu != prev_cpu && wake_affine(affine_sd, p, sync))
dce840a0
PZ
3414 prev_cpu = cpu;
3415
3416 new_cpu = select_idle_sibling(p, prev_cpu);
3417 goto unlock;
8b911acd 3418 }
e7693a36 3419
aaee1203 3420 while (sd) {
5158f4e4 3421 int load_idx = sd->forkexec_idx;
aaee1203 3422 struct sched_group *group;
c88d5910 3423 int weight;
098fb9db 3424
0763a660 3425 if (!(sd->flags & sd_flag)) {
aaee1203
PZ
3426 sd = sd->child;
3427 continue;
3428 }
098fb9db 3429
5158f4e4
PZ
3430 if (sd_flag & SD_BALANCE_WAKE)
3431 load_idx = sd->wake_idx;
098fb9db 3432
5158f4e4 3433 group = find_idlest_group(sd, p, cpu, load_idx);
aaee1203
PZ
3434 if (!group) {
3435 sd = sd->child;
3436 continue;
3437 }
4ae7d5ce 3438
d7c33c49 3439 new_cpu = find_idlest_cpu(group, p, cpu);
aaee1203
PZ
3440 if (new_cpu == -1 || new_cpu == cpu) {
3441 /* Now try balancing at a lower domain level of cpu */
3442 sd = sd->child;
3443 continue;
e7693a36 3444 }
aaee1203
PZ
3445
3446 /* Now try balancing at a lower domain level of new_cpu */
3447 cpu = new_cpu;
669c55e9 3448 weight = sd->span_weight;
aaee1203
PZ
3449 sd = NULL;
3450 for_each_domain(cpu, tmp) {
669c55e9 3451 if (weight <= tmp->span_weight)
aaee1203 3452 break;
0763a660 3453 if (tmp->flags & sd_flag)
aaee1203
PZ
3454 sd = tmp;
3455 }
3456 /* while loop will break here if sd == NULL */
e7693a36 3457 }
dce840a0
PZ
3458unlock:
3459 rcu_read_unlock();
e7693a36 3460
c88d5910 3461 return new_cpu;
e7693a36 3462}
0a74bef8
PT
3463
3464/*
3465 * Called immediately before a task is migrated to a new cpu; task_cpu(p) and
3466 * cfs_rq_of(p) references at time of call are still valid and identify the
3467 * previous cpu. However, the caller only guarantees p->pi_lock is held; no
3468 * other assumptions, including the state of rq->lock, should be made.
3469 */
3470static void
3471migrate_task_rq_fair(struct task_struct *p, int next_cpu)
3472{
aff3e498
PT
3473 struct sched_entity *se = &p->se;
3474 struct cfs_rq *cfs_rq = cfs_rq_of(se);
3475
3476 /*
3477 * Load tracking: accumulate removed load so that it can be processed
3478 * when we next update owning cfs_rq under rq->lock. Tasks contribute
3479 * to blocked load iff they have a positive decay-count. It can never
3480 * be negative here since on-rq tasks have decay-count == 0.
3481 */
3482 if (se->avg.decay_count) {
3483 se->avg.decay_count = -__synchronize_entity_decay(se);
2509940f
AS
3484 atomic_long_add(se->avg.load_avg_contrib,
3485 &cfs_rq->removed_load);
aff3e498 3486 }
0a74bef8 3487}
e7693a36
GH
3488#endif /* CONFIG_SMP */
3489
e52fb7c0
PZ
3490static unsigned long
3491wakeup_gran(struct sched_entity *curr, struct sched_entity *se)
0bbd3336
PZ
3492{
3493 unsigned long gran = sysctl_sched_wakeup_granularity;
3494
3495 /*
e52fb7c0
PZ
3496 * Since its curr running now, convert the gran from real-time
3497 * to virtual-time in his units.
13814d42
MG
3498 *
3499 * By using 'se' instead of 'curr' we penalize light tasks, so
3500 * they get preempted easier. That is, if 'se' < 'curr' then
3501 * the resulting gran will be larger, therefore penalizing the
3502 * lighter, if otoh 'se' > 'curr' then the resulting gran will
3503 * be smaller, again penalizing the lighter task.
3504 *
3505 * This is especially important for buddies when the leftmost
3506 * task is higher priority than the buddy.
0bbd3336 3507 */
f4ad9bd2 3508 return calc_delta_fair(gran, se);
0bbd3336
PZ
3509}
3510
464b7527
PZ
3511/*
3512 * Should 'se' preempt 'curr'.
3513 *
3514 * |s1
3515 * |s2
3516 * |s3
3517 * g
3518 * |<--->|c
3519 *
3520 * w(c, s1) = -1
3521 * w(c, s2) = 0
3522 * w(c, s3) = 1
3523 *
3524 */
3525static int
3526wakeup_preempt_entity(struct sched_entity *curr, struct sched_entity *se)
3527{
3528 s64 gran, vdiff = curr->vruntime - se->vruntime;
3529
3530 if (vdiff <= 0)
3531 return -1;
3532
e52fb7c0 3533 gran = wakeup_gran(curr, se);
464b7527
PZ
3534 if (vdiff > gran)
3535 return 1;
3536
3537 return 0;
3538}
3539
02479099
PZ
3540static void set_last_buddy(struct sched_entity *se)
3541{
69c80f3e
VP
3542 if (entity_is_task(se) && unlikely(task_of(se)->policy == SCHED_IDLE))
3543 return;
3544
3545 for_each_sched_entity(se)
3546 cfs_rq_of(se)->last = se;
02479099
PZ
3547}
3548
3549static void set_next_buddy(struct sched_entity *se)
3550{
69c80f3e
VP
3551 if (entity_is_task(se) && unlikely(task_of(se)->policy == SCHED_IDLE))
3552 return;
3553
3554 for_each_sched_entity(se)
3555 cfs_rq_of(se)->next = se;
02479099
PZ
3556}
3557
ac53db59
RR
3558static void set_skip_buddy(struct sched_entity *se)
3559{
69c80f3e
VP
3560 for_each_sched_entity(se)
3561 cfs_rq_of(se)->skip = se;
ac53db59
RR
3562}
3563
bf0f6f24
IM
3564/*
3565 * Preempt the current task with a newly woken task if needed:
3566 */
5a9b86f6 3567static void check_preempt_wakeup(struct rq *rq, struct task_struct *p, int wake_flags)
bf0f6f24
IM
3568{
3569 struct task_struct *curr = rq->curr;
8651a86c 3570 struct sched_entity *se = &curr->se, *pse = &p->se;
03e89e45 3571 struct cfs_rq *cfs_rq = task_cfs_rq(curr);
f685ceac 3572 int scale = cfs_rq->nr_running >= sched_nr_latency;
2f36825b 3573 int next_buddy_marked = 0;
bf0f6f24 3574
4ae7d5ce
IM
3575 if (unlikely(se == pse))
3576 return;
3577
5238cdd3 3578 /*
ddcdf6e7 3579 * This is possible from callers such as move_task(), in which we
5238cdd3
PT
3580 * unconditionally check_prempt_curr() after an enqueue (which may have
3581 * lead to a throttle). This both saves work and prevents false
3582 * next-buddy nomination below.
3583 */
3584 if (unlikely(throttled_hierarchy(cfs_rq_of(pse))))
3585 return;
3586
2f36825b 3587 if (sched_feat(NEXT_BUDDY) && scale && !(wake_flags & WF_FORK)) {
3cb63d52 3588 set_next_buddy(pse);
2f36825b
VP
3589 next_buddy_marked = 1;
3590 }
57fdc26d 3591
aec0a514
BR
3592 /*
3593 * We can come here with TIF_NEED_RESCHED already set from new task
3594 * wake up path.
5238cdd3
PT
3595 *
3596 * Note: this also catches the edge-case of curr being in a throttled
3597 * group (e.g. via set_curr_task), since update_curr() (in the
3598 * enqueue of curr) will have resulted in resched being set. This
3599 * prevents us from potentially nominating it as a false LAST_BUDDY
3600 * below.
aec0a514
BR
3601 */
3602 if (test_tsk_need_resched(curr))
3603 return;
3604
a2f5c9ab
DH
3605 /* Idle tasks are by definition preempted by non-idle tasks. */
3606 if (unlikely(curr->policy == SCHED_IDLE) &&
3607 likely(p->policy != SCHED_IDLE))
3608 goto preempt;
3609
91c234b4 3610 /*
a2f5c9ab
DH
3611 * Batch and idle tasks do not preempt non-idle tasks (their preemption
3612 * is driven by the tick):
91c234b4 3613 */
8ed92e51 3614 if (unlikely(p->policy != SCHED_NORMAL) || !sched_feat(WAKEUP_PREEMPTION))
91c234b4 3615 return;
bf0f6f24 3616
464b7527 3617 find_matching_se(&se, &pse);
9bbd7374 3618 update_curr(cfs_rq_of(se));
002f128b 3619 BUG_ON(!pse);
2f36825b
VP
3620 if (wakeup_preempt_entity(se, pse) == 1) {
3621 /*
3622 * Bias pick_next to pick the sched entity that is
3623 * triggering this preemption.
3624 */
3625 if (!next_buddy_marked)
3626 set_next_buddy(pse);
3a7e73a2 3627 goto preempt;
2f36825b 3628 }
464b7527 3629
3a7e73a2 3630 return;
a65ac745 3631
3a7e73a2
PZ
3632preempt:
3633 resched_task(curr);
3634 /*
3635 * Only set the backward buddy when the current task is still
3636 * on the rq. This can happen when a wakeup gets interleaved
3637 * with schedule on the ->pre_schedule() or idle_balance()
3638 * point, either of which can * drop the rq lock.
3639 *
3640 * Also, during early boot the idle thread is in the fair class,
3641 * for obvious reasons its a bad idea to schedule back to it.
3642 */
3643 if (unlikely(!se->on_rq || curr == rq->idle))
3644 return;
3645
3646 if (sched_feat(LAST_BUDDY) && scale && entity_is_task(se))
3647 set_last_buddy(se);
bf0f6f24
IM
3648}
3649
fb8d4724 3650static struct task_struct *pick_next_task_fair(struct rq *rq)
bf0f6f24 3651{
8f4d37ec 3652 struct task_struct *p;
bf0f6f24
IM
3653 struct cfs_rq *cfs_rq = &rq->cfs;
3654 struct sched_entity *se;
3655
36ace27e 3656 if (!cfs_rq->nr_running)
bf0f6f24
IM
3657 return NULL;
3658
3659 do {
9948f4b2 3660 se = pick_next_entity(cfs_rq);
f4b6755f 3661 set_next_entity(cfs_rq, se);
bf0f6f24
IM
3662 cfs_rq = group_cfs_rq(se);
3663 } while (cfs_rq);
3664
8f4d37ec 3665 p = task_of(se);
b39e66ea
MG
3666 if (hrtick_enabled(rq))
3667 hrtick_start_fair(rq, p);
8f4d37ec
PZ
3668
3669 return p;
bf0f6f24
IM
3670}
3671
3672/*
3673 * Account for a descheduled task:
3674 */
31ee529c 3675static void put_prev_task_fair(struct rq *rq, struct task_struct *prev)
bf0f6f24
IM
3676{
3677 struct sched_entity *se = &prev->se;
3678 struct cfs_rq *cfs_rq;
3679
3680 for_each_sched_entity(se) {
3681 cfs_rq = cfs_rq_of(se);
ab6cde26 3682 put_prev_entity(cfs_rq, se);
bf0f6f24
IM
3683 }
3684}
3685
ac53db59
RR
3686/*
3687 * sched_yield() is very simple
3688 *
3689 * The magic of dealing with the ->skip buddy is in pick_next_entity.
3690 */
3691static void yield_task_fair(struct rq *rq)
3692{
3693 struct task_struct *curr = rq->curr;
3694 struct cfs_rq *cfs_rq = task_cfs_rq(curr);
3695 struct sched_entity *se = &curr->se;
3696
3697 /*
3698 * Are we the only task in the tree?
3699 */
3700 if (unlikely(rq->nr_running == 1))
3701 return;
3702
3703 clear_buddies(cfs_rq, se);
3704
3705 if (curr->policy != SCHED_BATCH) {
3706 update_rq_clock(rq);
3707 /*
3708 * Update run-time statistics of the 'current'.
3709 */
3710 update_curr(cfs_rq);
916671c0
MG
3711 /*
3712 * Tell update_rq_clock() that we've just updated,
3713 * so we don't do microscopic update in schedule()
3714 * and double the fastpath cost.
3715 */
3716 rq->skip_clock_update = 1;
ac53db59
RR
3717 }
3718
3719 set_skip_buddy(se);
3720}
3721
d95f4122
MG
3722static bool yield_to_task_fair(struct rq *rq, struct task_struct *p, bool preempt)
3723{
3724 struct sched_entity *se = &p->se;
3725
5238cdd3
PT
3726 /* throttled hierarchies are not runnable */
3727 if (!se->on_rq || throttled_hierarchy(cfs_rq_of(se)))
d95f4122
MG
3728 return false;
3729
3730 /* Tell the scheduler that we'd really like pse to run next. */
3731 set_next_buddy(se);
3732
d95f4122
MG
3733 yield_task_fair(rq);
3734
3735 return true;
3736}
3737
681f3e68 3738#ifdef CONFIG_SMP
bf0f6f24 3739/**************************************************
e9c84cb8
PZ
3740 * Fair scheduling class load-balancing methods.
3741 *
3742 * BASICS
3743 *
3744 * The purpose of load-balancing is to achieve the same basic fairness the
3745 * per-cpu scheduler provides, namely provide a proportional amount of compute
3746 * time to each task. This is expressed in the following equation:
3747 *
3748 * W_i,n/P_i == W_j,n/P_j for all i,j (1)
3749 *
3750 * Where W_i,n is the n-th weight average for cpu i. The instantaneous weight
3751 * W_i,0 is defined as:
3752 *
3753 * W_i,0 = \Sum_j w_i,j (2)
3754 *
3755 * Where w_i,j is the weight of the j-th runnable task on cpu i. This weight
3756 * is derived from the nice value as per prio_to_weight[].
3757 *
3758 * The weight average is an exponential decay average of the instantaneous
3759 * weight:
3760 *
3761 * W'_i,n = (2^n - 1) / 2^n * W_i,n + 1 / 2^n * W_i,0 (3)
3762 *
3763 * P_i is the cpu power (or compute capacity) of cpu i, typically it is the
3764 * fraction of 'recent' time available for SCHED_OTHER task execution. But it
3765 * can also include other factors [XXX].
3766 *
3767 * To achieve this balance we define a measure of imbalance which follows
3768 * directly from (1):
3769 *
3770 * imb_i,j = max{ avg(W/P), W_i/P_i } - min{ avg(W/P), W_j/P_j } (4)
3771 *
3772 * We them move tasks around to minimize the imbalance. In the continuous
3773 * function space it is obvious this converges, in the discrete case we get
3774 * a few fun cases generally called infeasible weight scenarios.
3775 *
3776 * [XXX expand on:
3777 * - infeasible weights;
3778 * - local vs global optima in the discrete case. ]
3779 *
3780 *
3781 * SCHED DOMAINS
3782 *
3783 * In order to solve the imbalance equation (4), and avoid the obvious O(n^2)
3784 * for all i,j solution, we create a tree of cpus that follows the hardware
3785 * topology where each level pairs two lower groups (or better). This results
3786 * in O(log n) layers. Furthermore we reduce the number of cpus going up the
3787 * tree to only the first of the previous level and we decrease the frequency
3788 * of load-balance at each level inv. proportional to the number of cpus in
3789 * the groups.
3790 *
3791 * This yields:
3792 *
3793 * log_2 n 1 n
3794 * \Sum { --- * --- * 2^i } = O(n) (5)
3795 * i = 0 2^i 2^i
3796 * `- size of each group
3797 * | | `- number of cpus doing load-balance
3798 * | `- freq
3799 * `- sum over all levels
3800 *
3801 * Coupled with a limit on how many tasks we can migrate every balance pass,
3802 * this makes (5) the runtime complexity of the balancer.
3803 *
3804 * An important property here is that each CPU is still (indirectly) connected
3805 * to every other cpu in at most O(log n) steps:
3806 *
3807 * The adjacency matrix of the resulting graph is given by:
3808 *
3809 * log_2 n
3810 * A_i,j = \Union (i % 2^k == 0) && i / 2^(k+1) == j / 2^(k+1) (6)
3811 * k = 0
3812 *
3813 * And you'll find that:
3814 *
3815 * A^(log_2 n)_i,j != 0 for all i,j (7)
3816 *
3817 * Showing there's indeed a path between every cpu in at most O(log n) steps.
3818 * The task movement gives a factor of O(m), giving a convergence complexity
3819 * of:
3820 *
3821 * O(nm log n), n := nr_cpus, m := nr_tasks (8)
3822 *
3823 *
3824 * WORK CONSERVING
3825 *
3826 * In order to avoid CPUs going idle while there's still work to do, new idle
3827 * balancing is more aggressive and has the newly idle cpu iterate up the domain
3828 * tree itself instead of relying on other CPUs to bring it work.
3829 *
3830 * This adds some complexity to both (5) and (8) but it reduces the total idle
3831 * time.
3832 *
3833 * [XXX more?]
3834 *
3835 *
3836 * CGROUPS
3837 *
3838 * Cgroups make a horror show out of (2), instead of a simple sum we get:
3839 *
3840 * s_k,i
3841 * W_i,0 = \Sum_j \Prod_k w_k * ----- (9)
3842 * S_k
3843 *
3844 * Where
3845 *
3846 * s_k,i = \Sum_j w_i,j,k and S_k = \Sum_i s_k,i (10)
3847 *
3848 * w_i,j,k is the weight of the j-th runnable task in the k-th cgroup on cpu i.
3849 *
3850 * The big problem is S_k, its a global sum needed to compute a local (W_i)
3851 * property.
3852 *
3853 * [XXX write more on how we solve this.. _after_ merging pjt's patches that
3854 * rewrite all of this once again.]
3855 */
bf0f6f24 3856
ed387b78
HS
3857static unsigned long __read_mostly max_load_balance_interval = HZ/10;
3858
ddcdf6e7 3859#define LBF_ALL_PINNED 0x01
367456c7 3860#define LBF_NEED_BREAK 0x02
88b8dac0 3861#define LBF_SOME_PINNED 0x04
ddcdf6e7
PZ
3862
3863struct lb_env {
3864 struct sched_domain *sd;
3865
ddcdf6e7 3866 struct rq *src_rq;
85c1e7da 3867 int src_cpu;
ddcdf6e7
PZ
3868
3869 int dst_cpu;
3870 struct rq *dst_rq;
3871
88b8dac0
SV
3872 struct cpumask *dst_grpmask;
3873 int new_dst_cpu;
ddcdf6e7 3874 enum cpu_idle_type idle;
bd939f45 3875 long imbalance;
b9403130
MW
3876 /* The set of CPUs under consideration for load-balancing */
3877 struct cpumask *cpus;
3878
ddcdf6e7 3879 unsigned int flags;
367456c7
PZ
3880
3881 unsigned int loop;
3882 unsigned int loop_break;
3883 unsigned int loop_max;
ddcdf6e7
PZ
3884};
3885
1e3c88bd 3886/*
ddcdf6e7 3887 * move_task - move a task from one runqueue to another runqueue.
1e3c88bd
PZ
3888 * Both runqueues must be locked.
3889 */
ddcdf6e7 3890static void move_task(struct task_struct *p, struct lb_env *env)
1e3c88bd 3891{
ddcdf6e7
PZ
3892 deactivate_task(env->src_rq, p, 0);
3893 set_task_cpu(p, env->dst_cpu);
3894 activate_task(env->dst_rq, p, 0);
3895 check_preempt_curr(env->dst_rq, p, 0);
1e3c88bd
PZ
3896}
3897
029632fb
PZ
3898/*
3899 * Is this task likely cache-hot:
3900 */
3901static int
3902task_hot(struct task_struct *p, u64 now, struct sched_domain *sd)
3903{
3904 s64 delta;
3905
3906 if (p->sched_class != &fair_sched_class)
3907 return 0;
3908
3909 if (unlikely(p->policy == SCHED_IDLE))
3910 return 0;
3911
3912 /*
3913 * Buddy candidates are cache hot:
3914 */
3915 if (sched_feat(CACHE_HOT_BUDDY) && this_rq()->nr_running &&
3916 (&p->se == cfs_rq_of(&p->se)->next ||
3917 &p->se == cfs_rq_of(&p->se)->last))
3918 return 1;
3919
3920 if (sysctl_sched_migration_cost == -1)
3921 return 1;
3922 if (sysctl_sched_migration_cost == 0)
3923 return 0;
3924
3925 delta = now - p->se.exec_start;
3926
3927 return delta < (s64)sysctl_sched_migration_cost;
3928}
3929
1e3c88bd
PZ
3930/*
3931 * can_migrate_task - may task p from runqueue rq be migrated to this_cpu?
3932 */
3933static
8e45cb54 3934int can_migrate_task(struct task_struct *p, struct lb_env *env)
1e3c88bd
PZ
3935{
3936 int tsk_cache_hot = 0;
3937 /*
3938 * We do not migrate tasks that are:
d3198084 3939 * 1) throttled_lb_pair, or
1e3c88bd 3940 * 2) cannot be migrated to this CPU due to cpus_allowed, or
d3198084
JK
3941 * 3) running (obviously), or
3942 * 4) are cache-hot on their current CPU.
1e3c88bd 3943 */
d3198084
JK
3944 if (throttled_lb_pair(task_group(p), env->src_cpu, env->dst_cpu))
3945 return 0;
3946
ddcdf6e7 3947 if (!cpumask_test_cpu(env->dst_cpu, tsk_cpus_allowed(p))) {
e02e60c1 3948 int cpu;
88b8dac0 3949
41acab88 3950 schedstat_inc(p, se.statistics.nr_failed_migrations_affine);
88b8dac0
SV
3951
3952 /*
3953 * Remember if this task can be migrated to any other cpu in
3954 * our sched_group. We may want to revisit it if we couldn't
3955 * meet load balance goals by pulling other tasks on src_cpu.
3956 *
3957 * Also avoid computing new_dst_cpu if we have already computed
3958 * one in current iteration.
3959 */
3960 if (!env->dst_grpmask || (env->flags & LBF_SOME_PINNED))
3961 return 0;
3962
e02e60c1
JK
3963 /* Prevent to re-select dst_cpu via env's cpus */
3964 for_each_cpu_and(cpu, env->dst_grpmask, env->cpus) {
3965 if (cpumask_test_cpu(cpu, tsk_cpus_allowed(p))) {
3966 env->flags |= LBF_SOME_PINNED;
3967 env->new_dst_cpu = cpu;
3968 break;
3969 }
88b8dac0 3970 }
e02e60c1 3971
1e3c88bd
PZ
3972 return 0;
3973 }
88b8dac0
SV
3974
3975 /* Record that we found atleast one task that could run on dst_cpu */
8e45cb54 3976 env->flags &= ~LBF_ALL_PINNED;
1e3c88bd 3977
ddcdf6e7 3978 if (task_running(env->src_rq, p)) {
41acab88 3979 schedstat_inc(p, se.statistics.nr_failed_migrations_running);
1e3c88bd
PZ
3980 return 0;
3981 }
3982
3983 /*
3984 * Aggressive migration if:
3985 * 1) task is cache cold, or
3986 * 2) too many balance attempts have failed.
3987 */
3988
78becc27 3989 tsk_cache_hot = task_hot(p, rq_clock_task(env->src_rq), env->sd);
1e3c88bd 3990 if (!tsk_cache_hot ||
8e45cb54 3991 env->sd->nr_balance_failed > env->sd->cache_nice_tries) {
4e2dcb73 3992
1e3c88bd 3993 if (tsk_cache_hot) {
8e45cb54 3994 schedstat_inc(env->sd, lb_hot_gained[env->idle]);
41acab88 3995 schedstat_inc(p, se.statistics.nr_forced_migrations);
1e3c88bd 3996 }
4e2dcb73 3997
1e3c88bd
PZ
3998 return 1;
3999 }
4000
4e2dcb73
ZH
4001 schedstat_inc(p, se.statistics.nr_failed_migrations_hot);
4002 return 0;
1e3c88bd
PZ
4003}
4004
897c395f
PZ
4005/*
4006 * move_one_task tries to move exactly one task from busiest to this_rq, as
4007 * part of active balancing operations within "domain".
4008 * Returns 1 if successful and 0 otherwise.
4009 *
4010 * Called with both runqueues locked.
4011 */
8e45cb54 4012static int move_one_task(struct lb_env *env)
897c395f
PZ
4013{
4014 struct task_struct *p, *n;
897c395f 4015
367456c7 4016 list_for_each_entry_safe(p, n, &env->src_rq->cfs_tasks, se.group_node) {
367456c7
PZ
4017 if (!can_migrate_task(p, env))
4018 continue;
897c395f 4019
367456c7
PZ
4020 move_task(p, env);
4021 /*
4022 * Right now, this is only the second place move_task()
4023 * is called, so we can safely collect move_task()
4024 * stats here rather than inside move_task().
4025 */
4026 schedstat_inc(env->sd, lb_gained[env->idle]);
4027 return 1;
897c395f 4028 }
897c395f
PZ
4029 return 0;
4030}
4031
367456c7
PZ
4032static unsigned long task_h_load(struct task_struct *p);
4033
eb95308e
PZ
4034static const unsigned int sched_nr_migrate_break = 32;
4035
5d6523eb 4036/*
bd939f45 4037 * move_tasks tries to move up to imbalance weighted load from busiest to
5d6523eb
PZ
4038 * this_rq, as part of a balancing operation within domain "sd".
4039 * Returns 1 if successful and 0 otherwise.
4040 *
4041 * Called with both runqueues locked.
4042 */
4043static int move_tasks(struct lb_env *env)
1e3c88bd 4044{
5d6523eb
PZ
4045 struct list_head *tasks = &env->src_rq->cfs_tasks;
4046 struct task_struct *p;
367456c7
PZ
4047 unsigned long load;
4048 int pulled = 0;
1e3c88bd 4049
bd939f45 4050 if (env->imbalance <= 0)
5d6523eb 4051 return 0;
1e3c88bd 4052
5d6523eb
PZ
4053 while (!list_empty(tasks)) {
4054 p = list_first_entry(tasks, struct task_struct, se.group_node);
1e3c88bd 4055
367456c7
PZ
4056 env->loop++;
4057 /* We've more or less seen every task there is, call it quits */
5d6523eb 4058 if (env->loop > env->loop_max)
367456c7 4059 break;
5d6523eb
PZ
4060
4061 /* take a breather every nr_migrate tasks */
367456c7 4062 if (env->loop > env->loop_break) {
eb95308e 4063 env->loop_break += sched_nr_migrate_break;
8e45cb54 4064 env->flags |= LBF_NEED_BREAK;
ee00e66f 4065 break;
a195f004 4066 }
1e3c88bd 4067
d3198084 4068 if (!can_migrate_task(p, env))
367456c7
PZ
4069 goto next;
4070
4071 load = task_h_load(p);
5d6523eb 4072
eb95308e 4073 if (sched_feat(LB_MIN) && load < 16 && !env->sd->nr_balance_failed)
367456c7
PZ
4074 goto next;
4075
bd939f45 4076 if ((load / 2) > env->imbalance)
367456c7 4077 goto next;
1e3c88bd 4078
ddcdf6e7 4079 move_task(p, env);
ee00e66f 4080 pulled++;
bd939f45 4081 env->imbalance -= load;
1e3c88bd
PZ
4082
4083#ifdef CONFIG_PREEMPT
ee00e66f
PZ
4084 /*
4085 * NEWIDLE balancing is a source of latency, so preemptible
4086 * kernels will stop after the first task is pulled to minimize
4087 * the critical section.
4088 */
5d6523eb 4089 if (env->idle == CPU_NEWLY_IDLE)
ee00e66f 4090 break;
1e3c88bd
PZ
4091#endif
4092
ee00e66f
PZ
4093 /*
4094 * We only want to steal up to the prescribed amount of
4095 * weighted load.
4096 */
bd939f45 4097 if (env->imbalance <= 0)
ee00e66f 4098 break;
367456c7
PZ
4099
4100 continue;
4101next:
5d6523eb 4102 list_move_tail(&p->se.group_node, tasks);
1e3c88bd 4103 }
5d6523eb 4104
1e3c88bd 4105 /*
ddcdf6e7
PZ
4106 * Right now, this is one of only two places move_task() is called,
4107 * so we can safely collect move_task() stats here rather than
4108 * inside move_task().
1e3c88bd 4109 */
8e45cb54 4110 schedstat_add(env->sd, lb_gained[env->idle], pulled);
1e3c88bd 4111
5d6523eb 4112 return pulled;
1e3c88bd
PZ
4113}
4114
230059de 4115#ifdef CONFIG_FAIR_GROUP_SCHED
9e3081ca
PZ
4116/*
4117 * update tg->load_weight by folding this cpu's load_avg
4118 */
48a16753 4119static void __update_blocked_averages_cpu(struct task_group *tg, int cpu)
9e3081ca 4120{
48a16753
PT
4121 struct sched_entity *se = tg->se[cpu];
4122 struct cfs_rq *cfs_rq = tg->cfs_rq[cpu];
9e3081ca 4123
48a16753
PT
4124 /* throttled entities do not contribute to load */
4125 if (throttled_hierarchy(cfs_rq))
4126 return;
9e3081ca 4127
aff3e498 4128 update_cfs_rq_blocked_load(cfs_rq, 1);
9e3081ca 4129
82958366
PT
4130 if (se) {
4131 update_entity_load_avg(se, 1);
4132 /*
4133 * We pivot on our runnable average having decayed to zero for
4134 * list removal. This generally implies that all our children
4135 * have also been removed (modulo rounding error or bandwidth
4136 * control); however, such cases are rare and we can fix these
4137 * at enqueue.
4138 *
4139 * TODO: fix up out-of-order children on enqueue.
4140 */
4141 if (!se->avg.runnable_avg_sum && !cfs_rq->nr_running)
4142 list_del_leaf_cfs_rq(cfs_rq);
4143 } else {
48a16753 4144 struct rq *rq = rq_of(cfs_rq);
82958366
PT
4145 update_rq_runnable_avg(rq, rq->nr_running);
4146 }
9e3081ca
PZ
4147}
4148
48a16753 4149static void update_blocked_averages(int cpu)
9e3081ca 4150{
9e3081ca 4151 struct rq *rq = cpu_rq(cpu);
48a16753
PT
4152 struct cfs_rq *cfs_rq;
4153 unsigned long flags;
9e3081ca 4154
48a16753
PT
4155 raw_spin_lock_irqsave(&rq->lock, flags);
4156 update_rq_clock(rq);
9763b67f
PZ
4157 /*
4158 * Iterates the task_group tree in a bottom up fashion, see
4159 * list_add_leaf_cfs_rq() for details.
4160 */
64660c86 4161 for_each_leaf_cfs_rq(rq, cfs_rq) {
48a16753
PT
4162 /*
4163 * Note: We may want to consider periodically releasing
4164 * rq->lock about these updates so that creating many task
4165 * groups does not result in continually extending hold time.
4166 */
4167 __update_blocked_averages_cpu(cfs_rq->tg, rq->cpu);
64660c86 4168 }
48a16753
PT
4169
4170 raw_spin_unlock_irqrestore(&rq->lock, flags);
9e3081ca
PZ
4171}
4172
9763b67f
PZ
4173/*
4174 * Compute the cpu's hierarchical load factor for each task group.
4175 * This needs to be done in a top-down fashion because the load of a child
4176 * group is a fraction of its parents load.
4177 */
4178static int tg_load_down(struct task_group *tg, void *data)
4179{
4180 unsigned long load;
4181 long cpu = (long)data;
4182
4183 if (!tg->parent) {
a003a25b 4184 load = cpu_rq(cpu)->avg.load_avg_contrib;
9763b67f
PZ
4185 } else {
4186 load = tg->parent->cfs_rq[cpu]->h_load;
72a4cf20
AS
4187 load = div64_ul(load * tg->se[cpu]->avg.load_avg_contrib,
4188 tg->parent->cfs_rq[cpu]->runnable_load_avg + 1);
9763b67f
PZ
4189 }
4190
4191 tg->cfs_rq[cpu]->h_load = load;
4192
4193 return 0;
4194}
4195
4196static void update_h_load(long cpu)
4197{
a35b6466
PZ
4198 struct rq *rq = cpu_rq(cpu);
4199 unsigned long now = jiffies;
4200
4201 if (rq->h_load_throttle == now)
4202 return;
4203
4204 rq->h_load_throttle = now;
4205
367456c7 4206 rcu_read_lock();
9763b67f 4207 walk_tg_tree(tg_load_down, tg_nop, (void *)cpu);
367456c7 4208 rcu_read_unlock();
9763b67f
PZ
4209}
4210
367456c7 4211static unsigned long task_h_load(struct task_struct *p)
230059de 4212{
367456c7 4213 struct cfs_rq *cfs_rq = task_cfs_rq(p);
230059de 4214
a003a25b
AS
4215 return div64_ul(p->se.avg.load_avg_contrib * cfs_rq->h_load,
4216 cfs_rq->runnable_load_avg + 1);
230059de
PZ
4217}
4218#else
48a16753 4219static inline void update_blocked_averages(int cpu)
9e3081ca
PZ
4220{
4221}
4222
367456c7 4223static inline void update_h_load(long cpu)
230059de 4224{
230059de 4225}
230059de 4226
367456c7 4227static unsigned long task_h_load(struct task_struct *p)
1e3c88bd 4228{
a003a25b 4229 return p->se.avg.load_avg_contrib;
1e3c88bd 4230}
230059de 4231#endif
1e3c88bd 4232
1e3c88bd 4233/********** Helpers for find_busiest_group ************************/
1e3c88bd
PZ
4234/*
4235 * sg_lb_stats - stats of a sched_group required for load_balancing
4236 */
4237struct sg_lb_stats {
4238 unsigned long avg_load; /*Avg load across the CPUs of the group */
4239 unsigned long group_load; /* Total load over the CPUs of the group */
1e3c88bd 4240 unsigned long sum_weighted_load; /* Weighted load of group's tasks */
56cf515b 4241 unsigned long load_per_task;
147c5fc2
PZ
4242 unsigned int sum_nr_running; /* Nr tasks running in the group */
4243 unsigned int group_capacity;
4244 unsigned int idle_cpus;
4245 unsigned int group_weight;
1e3c88bd 4246 int group_imb; /* Is there an imbalance in the group ? */
fab47622 4247 int group_has_capacity; /* Is there extra capacity in the group? */
1e3c88bd
PZ
4248};
4249
56cf515b
JK
4250/*
4251 * sd_lb_stats - Structure to store the statistics of a sched_domain
4252 * during load balancing.
4253 */
4254struct sd_lb_stats {
4255 struct sched_group *busiest; /* Busiest group in this sd */
4256 struct sched_group *local; /* Local group in this sd */
4257 unsigned long total_load; /* Total load of all groups in sd */
4258 unsigned long total_pwr; /* Total power of all groups in sd */
4259 unsigned long avg_load; /* Average load across all groups in sd */
4260
56cf515b 4261 struct sg_lb_stats busiest_stat;/* Statistics of the busiest group */
147c5fc2 4262 struct sg_lb_stats local_stat; /* Statistics of the local group */
56cf515b
JK
4263};
4264
147c5fc2
PZ
4265static inline void init_sd_lb_stats(struct sd_lb_stats *sds)
4266{
4267 /*
4268 * Skimp on the clearing to avoid duplicate work. We can avoid clearing
4269 * local_stat because update_sg_lb_stats() does a full clear/assignment.
4270 * We must however clear busiest_stat::avg_load because
4271 * update_sd_pick_busiest() reads this before assignment.
4272 */
4273 *sds = (struct sd_lb_stats){
4274 .busiest = NULL,
4275 .local = NULL,
4276 .total_load = 0UL,
4277 .total_pwr = 0UL,
4278 .busiest_stat = {
4279 .avg_load = 0UL,
4280 },
4281 };
4282}
4283
1e3c88bd
PZ
4284/**
4285 * get_sd_load_idx - Obtain the load index for a given sched domain.
4286 * @sd: The sched_domain whose load_idx is to be obtained.
4287 * @idle: The Idle status of the CPU for whose sd load_icx is obtained.
4288 */
4289static inline int get_sd_load_idx(struct sched_domain *sd,
4290 enum cpu_idle_type idle)
4291{
4292 int load_idx;
4293
4294 switch (idle) {
4295 case CPU_NOT_IDLE:
4296 load_idx = sd->busy_idx;
4297 break;
4298
4299 case CPU_NEWLY_IDLE:
4300 load_idx = sd->newidle_idx;
4301 break;
4302 default:
4303 load_idx = sd->idle_idx;
4304 break;
4305 }
4306
4307 return load_idx;
4308}
4309
15f803c9 4310static unsigned long default_scale_freq_power(struct sched_domain *sd, int cpu)
1e3c88bd 4311{
1399fa78 4312 return SCHED_POWER_SCALE;
1e3c88bd
PZ
4313}
4314
4315unsigned long __weak arch_scale_freq_power(struct sched_domain *sd, int cpu)
4316{
4317 return default_scale_freq_power(sd, cpu);
4318}
4319
15f803c9 4320static unsigned long default_scale_smt_power(struct sched_domain *sd, int cpu)
1e3c88bd 4321{
669c55e9 4322 unsigned long weight = sd->span_weight;
1e3c88bd
PZ
4323 unsigned long smt_gain = sd->smt_gain;
4324
4325 smt_gain /= weight;
4326
4327 return smt_gain;
4328}
4329
4330unsigned long __weak arch_scale_smt_power(struct sched_domain *sd, int cpu)
4331{
4332 return default_scale_smt_power(sd, cpu);
4333}
4334
15f803c9 4335static unsigned long scale_rt_power(int cpu)
1e3c88bd
PZ
4336{
4337 struct rq *rq = cpu_rq(cpu);
b654f7de 4338 u64 total, available, age_stamp, avg;
1e3c88bd 4339
b654f7de
PZ
4340 /*
4341 * Since we're reading these variables without serialization make sure
4342 * we read them once before doing sanity checks on them.
4343 */
4344 age_stamp = ACCESS_ONCE(rq->age_stamp);
4345 avg = ACCESS_ONCE(rq->rt_avg);
4346
78becc27 4347 total = sched_avg_period() + (rq_clock(rq) - age_stamp);
aa483808 4348
b654f7de 4349 if (unlikely(total < avg)) {
aa483808
VP
4350 /* Ensures that power won't end up being negative */
4351 available = 0;
4352 } else {
b654f7de 4353 available = total - avg;
aa483808 4354 }
1e3c88bd 4355
1399fa78
NR
4356 if (unlikely((s64)total < SCHED_POWER_SCALE))
4357 total = SCHED_POWER_SCALE;
1e3c88bd 4358
1399fa78 4359 total >>= SCHED_POWER_SHIFT;
1e3c88bd
PZ
4360
4361 return div_u64(available, total);
4362}
4363
4364static void update_cpu_power(struct sched_domain *sd, int cpu)
4365{
669c55e9 4366 unsigned long weight = sd->span_weight;
1399fa78 4367 unsigned long power = SCHED_POWER_SCALE;
1e3c88bd
PZ
4368 struct sched_group *sdg = sd->groups;
4369
1e3c88bd
PZ
4370 if ((sd->flags & SD_SHARE_CPUPOWER) && weight > 1) {
4371 if (sched_feat(ARCH_POWER))
4372 power *= arch_scale_smt_power(sd, cpu);
4373 else
4374 power *= default_scale_smt_power(sd, cpu);
4375
1399fa78 4376 power >>= SCHED_POWER_SHIFT;
1e3c88bd
PZ
4377 }
4378
9c3f75cb 4379 sdg->sgp->power_orig = power;
9d5efe05
SV
4380
4381 if (sched_feat(ARCH_POWER))
4382 power *= arch_scale_freq_power(sd, cpu);
4383 else
4384 power *= default_scale_freq_power(sd, cpu);
4385
1399fa78 4386 power >>= SCHED_POWER_SHIFT;
9d5efe05 4387
1e3c88bd 4388 power *= scale_rt_power(cpu);
1399fa78 4389 power >>= SCHED_POWER_SHIFT;
1e3c88bd
PZ
4390
4391 if (!power)
4392 power = 1;
4393
e51fd5e2 4394 cpu_rq(cpu)->cpu_power = power;
9c3f75cb 4395 sdg->sgp->power = power;
1e3c88bd
PZ
4396}
4397
029632fb 4398void update_group_power(struct sched_domain *sd, int cpu)
1e3c88bd
PZ
4399{
4400 struct sched_domain *child = sd->child;
4401 struct sched_group *group, *sdg = sd->groups;
4402 unsigned long power;
4ec4412e
VG
4403 unsigned long interval;
4404
4405 interval = msecs_to_jiffies(sd->balance_interval);
4406 interval = clamp(interval, 1UL, max_load_balance_interval);
4407 sdg->sgp->next_update = jiffies + interval;
1e3c88bd
PZ
4408
4409 if (!child) {
4410 update_cpu_power(sd, cpu);
4411 return;
4412 }
4413
4414 power = 0;
4415
74a5ce20
PZ
4416 if (child->flags & SD_OVERLAP) {
4417 /*
4418 * SD_OVERLAP domains cannot assume that child groups
4419 * span the current group.
4420 */
4421
4422 for_each_cpu(cpu, sched_group_cpus(sdg))
4423 power += power_of(cpu);
4424 } else {
4425 /*
4426 * !SD_OVERLAP domains can assume that child groups
4427 * span the current group.
4428 */
4429
4430 group = child->groups;
4431 do {
4432 power += group->sgp->power;
4433 group = group->next;
4434 } while (group != child->groups);
4435 }
1e3c88bd 4436
c3decf0d 4437 sdg->sgp->power_orig = sdg->sgp->power = power;
1e3c88bd
PZ
4438}
4439
9d5efe05
SV
4440/*
4441 * Try and fix up capacity for tiny siblings, this is needed when
4442 * things like SD_ASYM_PACKING need f_b_g to select another sibling
4443 * which on its own isn't powerful enough.
4444 *
4445 * See update_sd_pick_busiest() and check_asym_packing().
4446 */
4447static inline int
4448fix_small_capacity(struct sched_domain *sd, struct sched_group *group)
4449{
4450 /*
1399fa78 4451 * Only siblings can have significantly less than SCHED_POWER_SCALE
9d5efe05 4452 */
a6c75f2f 4453 if (!(sd->flags & SD_SHARE_CPUPOWER))
9d5efe05
SV
4454 return 0;
4455
4456 /*
4457 * If ~90% of the cpu_power is still there, we're good.
4458 */
9c3f75cb 4459 if (group->sgp->power * 32 > group->sgp->power_orig * 29)
9d5efe05
SV
4460 return 1;
4461
4462 return 0;
4463}
4464
1e3c88bd
PZ
4465/**
4466 * update_sg_lb_stats - Update sched_group's statistics for load balancing.
cd96891d 4467 * @env: The load balancing environment.
1e3c88bd 4468 * @group: sched_group whose statistics are to be updated.
1e3c88bd 4469 * @load_idx: Load index of sched_domain of this_cpu for load calc.
1e3c88bd 4470 * @local_group: Does group contain this_cpu.
1e3c88bd
PZ
4471 * @sgs: variable to hold the statistics for this group.
4472 */
bd939f45
PZ
4473static inline void update_sg_lb_stats(struct lb_env *env,
4474 struct sched_group *group, int load_idx,
23f0d209 4475 int local_group, struct sg_lb_stats *sgs)
1e3c88bd 4476{
e44bc5c5
PZ
4477 unsigned long nr_running, max_nr_running, min_nr_running;
4478 unsigned long load, max_cpu_load, min_cpu_load;
dd5feea1 4479 unsigned long avg_load_per_task = 0;
bd939f45 4480 int i;
1e3c88bd 4481
1e3c88bd 4482 /* Tally up the load of all CPUs in the group */
1e3c88bd
PZ
4483 max_cpu_load = 0;
4484 min_cpu_load = ~0UL;
2582f0eb 4485 max_nr_running = 0;
e44bc5c5 4486 min_nr_running = ~0UL;
1e3c88bd 4487
b9403130 4488 for_each_cpu_and(i, sched_group_cpus(group), env->cpus) {
1e3c88bd
PZ
4489 struct rq *rq = cpu_rq(i);
4490
e44bc5c5
PZ
4491 nr_running = rq->nr_running;
4492
1e3c88bd
PZ
4493 /* Bias balancing toward cpus of our domain */
4494 if (local_group) {
04f733b4 4495 load = target_load(i, load_idx);
1e3c88bd
PZ
4496 } else {
4497 load = source_load(i, load_idx);
56cf515b 4498
e44bc5c5 4499 if (load > max_cpu_load)
1e3c88bd
PZ
4500 max_cpu_load = load;
4501 if (min_cpu_load > load)
4502 min_cpu_load = load;
e44bc5c5
PZ
4503
4504 if (nr_running > max_nr_running)
4505 max_nr_running = nr_running;
4506 if (min_nr_running > nr_running)
4507 min_nr_running = nr_running;
1e3c88bd
PZ
4508 }
4509
4510 sgs->group_load += load;
e44bc5c5 4511 sgs->sum_nr_running += nr_running;
1e3c88bd 4512 sgs->sum_weighted_load += weighted_cpuload(i);
aae6d3dd
SS
4513 if (idle_cpu(i))
4514 sgs->idle_cpus++;
1e3c88bd
PZ
4515 }
4516
23f0d209
JK
4517 if (local_group && (env->idle != CPU_NEWLY_IDLE ||
4518 time_after_eq(jiffies, group->sgp->next_update)))
4519 update_group_power(env->sd, env->dst_cpu);
1e3c88bd
PZ
4520
4521 /* Adjust by relative CPU power of the group */
9c3f75cb 4522 sgs->avg_load = (sgs->group_load*SCHED_POWER_SCALE) / group->sgp->power;
1e3c88bd 4523
1e3c88bd
PZ
4524 /*
4525 * Consider the group unbalanced when the imbalance is larger
866ab43e 4526 * than the average weight of a task.
1e3c88bd
PZ
4527 *
4528 * APZ: with cgroup the avg task weight can vary wildly and
4529 * might not be a suitable number - should we keep a
4530 * normalized nr_running number somewhere that negates
4531 * the hierarchy?
4532 */
dd5feea1
SS
4533 if (sgs->sum_nr_running)
4534 avg_load_per_task = sgs->sum_weighted_load / sgs->sum_nr_running;
1e3c88bd 4535
e44bc5c5
PZ
4536 if ((max_cpu_load - min_cpu_load) >= avg_load_per_task &&
4537 (max_nr_running - min_nr_running) > 1)
1e3c88bd
PZ
4538 sgs->group_imb = 1;
4539
56cf515b
JK
4540 sgs->group_capacity =
4541 DIV_ROUND_CLOSEST(group->sgp->power, SCHED_POWER_SCALE);
4542
9d5efe05 4543 if (!sgs->group_capacity)
bd939f45 4544 sgs->group_capacity = fix_small_capacity(env->sd, group);
56cf515b 4545
aae6d3dd 4546 sgs->group_weight = group->group_weight;
fab47622
NR
4547
4548 if (sgs->group_capacity > sgs->sum_nr_running)
4549 sgs->group_has_capacity = 1;
1e3c88bd
PZ
4550}
4551
532cb4c4
MN
4552/**
4553 * update_sd_pick_busiest - return 1 on busiest group
cd96891d 4554 * @env: The load balancing environment.
532cb4c4
MN
4555 * @sds: sched_domain statistics
4556 * @sg: sched_group candidate to be checked for being the busiest
b6b12294 4557 * @sgs: sched_group statistics
532cb4c4
MN
4558 *
4559 * Determine if @sg is a busier group than the previously selected
4560 * busiest group.
4561 */
bd939f45 4562static bool update_sd_pick_busiest(struct lb_env *env,
532cb4c4
MN
4563 struct sd_lb_stats *sds,
4564 struct sched_group *sg,
bd939f45 4565 struct sg_lb_stats *sgs)
532cb4c4 4566{
56cf515b 4567 if (sgs->avg_load <= sds->busiest_stat.avg_load)
532cb4c4
MN
4568 return false;
4569
4570 if (sgs->sum_nr_running > sgs->group_capacity)
4571 return true;
4572
4573 if (sgs->group_imb)
4574 return true;
4575
4576 /*
4577 * ASYM_PACKING needs to move all the work to the lowest
4578 * numbered CPUs in the group, therefore mark all groups
4579 * higher than ourself as busy.
4580 */
bd939f45
PZ
4581 if ((env->sd->flags & SD_ASYM_PACKING) && sgs->sum_nr_running &&
4582 env->dst_cpu < group_first_cpu(sg)) {
532cb4c4
MN
4583 if (!sds->busiest)
4584 return true;
4585
4586 if (group_first_cpu(sds->busiest) > group_first_cpu(sg))
4587 return true;
4588 }
4589
4590 return false;
4591}
4592
1e3c88bd 4593/**
461819ac 4594 * update_sd_lb_stats - Update sched_domain's statistics for load balancing.
cd96891d 4595 * @env: The load balancing environment.
1e3c88bd
PZ
4596 * @balance: Should we balance.
4597 * @sds: variable to hold the statistics for this sched_domain.
4598 */
bd939f45 4599static inline void update_sd_lb_stats(struct lb_env *env,
23f0d209 4600 struct sd_lb_stats *sds)
1e3c88bd 4601{
bd939f45
PZ
4602 struct sched_domain *child = env->sd->child;
4603 struct sched_group *sg = env->sd->groups;
56cf515b 4604 struct sg_lb_stats tmp_sgs;
1e3c88bd
PZ
4605 int load_idx, prefer_sibling = 0;
4606
4607 if (child && child->flags & SD_PREFER_SIBLING)
4608 prefer_sibling = 1;
4609
bd939f45 4610 load_idx = get_sd_load_idx(env->sd, env->idle);
1e3c88bd
PZ
4611
4612 do {
56cf515b 4613 struct sg_lb_stats *sgs = &tmp_sgs;
1e3c88bd
PZ
4614 int local_group;
4615
bd939f45 4616 local_group = cpumask_test_cpu(env->dst_cpu, sched_group_cpus(sg));
56cf515b
JK
4617 if (local_group) {
4618 sds->local = sg;
4619 sgs = &sds->local_stat;
4620 }
1e3c88bd 4621
56cf515b
JK
4622 memset(sgs, 0, sizeof(*sgs));
4623 update_sg_lb_stats(env, sg, load_idx, local_group, sgs);
1e3c88bd
PZ
4624
4625 /*
4626 * In case the child domain prefers tasks go to siblings
532cb4c4 4627 * first, lower the sg capacity to one so that we'll try
75dd321d
NR
4628 * and move all the excess tasks away. We lower the capacity
4629 * of a group only if the local group has the capacity to fit
4630 * these excess tasks, i.e. nr_running < group_capacity. The
4631 * extra check prevents the case where you always pull from the
4632 * heaviest group when it is already under-utilized (possible
4633 * with a large weight task outweighs the tasks on the system).
1e3c88bd 4634 */
56cf515b
JK
4635 if (prefer_sibling && !local_group &&
4636 sds->local && sds->local_stat.group_has_capacity)
147c5fc2 4637 sgs->group_capacity = min(sgs->group_capacity, 1U);
1e3c88bd 4638
56cf515b
JK
4639 /* Now, start updating sd_lb_stats */
4640 sds->total_load += sgs->group_load;
4641 sds->total_pwr += sg->sgp->power;
4642
4643 if (!local_group && update_sd_pick_busiest(env, sds, sg, sgs)) {
532cb4c4 4644 sds->busiest = sg;
56cf515b 4645 sds->busiest_stat = *sgs;
1e3c88bd
PZ
4646 }
4647
532cb4c4 4648 sg = sg->next;
bd939f45 4649 } while (sg != env->sd->groups);
532cb4c4
MN
4650}
4651
532cb4c4
MN
4652/**
4653 * check_asym_packing - Check to see if the group is packed into the
4654 * sched doman.
4655 *
4656 * This is primarily intended to used at the sibling level. Some
4657 * cores like POWER7 prefer to use lower numbered SMT threads. In the
4658 * case of POWER7, it can move to lower SMT modes only when higher
4659 * threads are idle. When in lower SMT modes, the threads will
4660 * perform better since they share less core resources. Hence when we
4661 * have idle threads, we want them to be the higher ones.
4662 *
4663 * This packing function is run on idle threads. It checks to see if
4664 * the busiest CPU in this domain (core in the P7 case) has a higher
4665 * CPU number than the packing function is being run on. Here we are
4666 * assuming lower CPU number will be equivalent to lower a SMT thread
4667 * number.
4668 *
b6b12294
MN
4669 * Returns 1 when packing is required and a task should be moved to
4670 * this CPU. The amount of the imbalance is returned in *imbalance.
4671 *
cd96891d 4672 * @env: The load balancing environment.
532cb4c4 4673 * @sds: Statistics of the sched_domain which is to be packed
532cb4c4 4674 */
bd939f45 4675static int check_asym_packing(struct lb_env *env, struct sd_lb_stats *sds)
532cb4c4
MN
4676{
4677 int busiest_cpu;
4678
bd939f45 4679 if (!(env->sd->flags & SD_ASYM_PACKING))
532cb4c4
MN
4680 return 0;
4681
4682 if (!sds->busiest)
4683 return 0;
4684
4685 busiest_cpu = group_first_cpu(sds->busiest);
bd939f45 4686 if (env->dst_cpu > busiest_cpu)
532cb4c4
MN
4687 return 0;
4688
56cf515b
JK
4689 env->imbalance = DIV_ROUND_CLOSEST(sds->busiest_stat.avg_load *
4690 sds->busiest->sgp->power, SCHED_POWER_SCALE);
bd939f45 4691
532cb4c4 4692 return 1;
1e3c88bd
PZ
4693}
4694
4695/**
4696 * fix_small_imbalance - Calculate the minor imbalance that exists
4697 * amongst the groups of a sched_domain, during
4698 * load balancing.
cd96891d 4699 * @env: The load balancing environment.
1e3c88bd 4700 * @sds: Statistics of the sched_domain whose imbalance is to be calculated.
1e3c88bd 4701 */
bd939f45
PZ
4702static inline
4703void fix_small_imbalance(struct lb_env *env, struct sd_lb_stats *sds)
1e3c88bd
PZ
4704{
4705 unsigned long tmp, pwr_now = 0, pwr_move = 0;
4706 unsigned int imbn = 2;
dd5feea1 4707 unsigned long scaled_busy_load_per_task;
56cf515b 4708 struct sg_lb_stats *local, *busiest;
1e3c88bd 4709
56cf515b
JK
4710 local = &sds->local_stat;
4711 busiest = &sds->busiest_stat;
1e3c88bd 4712
56cf515b
JK
4713 if (!local->sum_nr_running)
4714 local->load_per_task = cpu_avg_load_per_task(env->dst_cpu);
4715 else if (busiest->load_per_task > local->load_per_task)
4716 imbn = 1;
dd5feea1 4717
56cf515b
JK
4718 scaled_busy_load_per_task =
4719 (busiest->load_per_task * SCHED_POWER_SCALE) /
4720 sds->busiest->sgp->power;
4721
4722 if (busiest->avg_load - local->avg_load + scaled_busy_load_per_task >=
4723 (scaled_busy_load_per_task * imbn)) {
4724 env->imbalance = busiest->load_per_task;
1e3c88bd
PZ
4725 return;
4726 }
4727
4728 /*
4729 * OK, we don't have enough imbalance to justify moving tasks,
4730 * however we may be able to increase total CPU power used by
4731 * moving them.
4732 */
4733
9c3f75cb 4734 pwr_now += sds->busiest->sgp->power *
56cf515b
JK
4735 min(busiest->load_per_task, busiest->avg_load);
4736 pwr_now += sds->local->sgp->power *
4737 min(local->load_per_task, local->avg_load);
1399fa78 4738 pwr_now /= SCHED_POWER_SCALE;
1e3c88bd
PZ
4739
4740 /* Amount of load we'd subtract */
56cf515b 4741 tmp = (busiest->load_per_task * SCHED_POWER_SCALE) /
9c3f75cb 4742 sds->busiest->sgp->power;
56cf515b 4743 if (busiest->avg_load > tmp) {
9c3f75cb 4744 pwr_move += sds->busiest->sgp->power *
56cf515b
JK
4745 min(busiest->load_per_task,
4746 busiest->avg_load - tmp);
4747 }
1e3c88bd
PZ
4748
4749 /* Amount of load we'd add */
56cf515b
JK
4750 if (busiest->avg_load * sds->busiest->sgp->power <
4751 busiest->load_per_task * SCHED_POWER_SCALE) {
4752 tmp = (busiest->avg_load * sds->busiest->sgp->power) /
4753 sds->local->sgp->power;
4754 } else {
4755 tmp = (busiest->load_per_task * SCHED_POWER_SCALE) /
4756 sds->local->sgp->power;
4757 }
4758 pwr_move += sds->local->sgp->power *
4759 min(local->load_per_task, local->avg_load + tmp);
1399fa78 4760 pwr_move /= SCHED_POWER_SCALE;
1e3c88bd
PZ
4761
4762 /* Move if we gain throughput */
4763 if (pwr_move > pwr_now)
56cf515b 4764 env->imbalance = busiest->load_per_task;
1e3c88bd
PZ
4765}
4766
4767/**
4768 * calculate_imbalance - Calculate the amount of imbalance present within the
4769 * groups of a given sched_domain during load balance.
bd939f45 4770 * @env: load balance environment
1e3c88bd 4771 * @sds: statistics of the sched_domain whose imbalance is to be calculated.
1e3c88bd 4772 */
bd939f45 4773static inline void calculate_imbalance(struct lb_env *env, struct sd_lb_stats *sds)
1e3c88bd 4774{
dd5feea1 4775 unsigned long max_pull, load_above_capacity = ~0UL;
56cf515b
JK
4776 struct sg_lb_stats *local, *busiest;
4777
4778 local = &sds->local_stat;
4779 if (local->sum_nr_running) {
4780 local->load_per_task =
4781 local->sum_weighted_load / local->sum_nr_running;
4782 }
dd5feea1 4783
56cf515b
JK
4784 busiest = &sds->busiest_stat;
4785 /* busiest must have some tasks */
4786 busiest->load_per_task =
4787 busiest->sum_weighted_load / busiest->sum_nr_running;
4788
4789 if (busiest->group_imb) {
4790 busiest->load_per_task =
4791 min(busiest->load_per_task, sds->avg_load);
dd5feea1
SS
4792 }
4793
1e3c88bd
PZ
4794 /*
4795 * In the presence of smp nice balancing, certain scenarios can have
4796 * max load less than avg load(as we skip the groups at or below
4797 * its cpu_power, while calculating max_load..)
4798 */
56cf515b 4799 if (busiest->avg_load < sds->avg_load) {
bd939f45
PZ
4800 env->imbalance = 0;
4801 return fix_small_imbalance(env, sds);
1e3c88bd
PZ
4802 }
4803
56cf515b 4804 if (!busiest->group_imb) {
dd5feea1
SS
4805 /*
4806 * Don't want to pull so many tasks that a group would go idle.
4807 */
56cf515b
JK
4808 load_above_capacity =
4809 (busiest->sum_nr_running - busiest->group_capacity);
dd5feea1 4810
1399fa78 4811 load_above_capacity *= (SCHED_LOAD_SCALE * SCHED_POWER_SCALE);
9c3f75cb 4812 load_above_capacity /= sds->busiest->sgp->power;
dd5feea1
SS
4813 }
4814
4815 /*
4816 * We're trying to get all the cpus to the average_load, so we don't
4817 * want to push ourselves above the average load, nor do we wish to
4818 * reduce the max loaded cpu below the average load. At the same time,
4819 * we also don't want to reduce the group load below the group capacity
4820 * (so that we can implement power-savings policies etc). Thus we look
4821 * for the minimum possible imbalance.
4822 * Be careful of negative numbers as they'll appear as very large values
4823 * with unsigned longs.
4824 */
56cf515b
JK
4825 max_pull = min(busiest->avg_load - sds->avg_load,
4826 load_above_capacity);
1e3c88bd
PZ
4827
4828 /* How much load to actually move to equalise the imbalance */
56cf515b
JK
4829 env->imbalance = min(
4830 max_pull * sds->busiest->sgp->power,
4831 (sds->avg_load - local->avg_load) * sds->local->sgp->power
4832 ) / SCHED_POWER_SCALE;
1e3c88bd
PZ
4833
4834 /*
4835 * if *imbalance is less than the average load per runnable task
25985edc 4836 * there is no guarantee that any tasks will be moved so we'll have
1e3c88bd
PZ
4837 * a think about bumping its value to force at least one task to be
4838 * moved
4839 */
56cf515b 4840 if (env->imbalance < busiest->load_per_task)
bd939f45 4841 return fix_small_imbalance(env, sds);
1e3c88bd 4842}
fab47622 4843
1e3c88bd
PZ
4844/******* find_busiest_group() helpers end here *********************/
4845
4846/**
4847 * find_busiest_group - Returns the busiest group within the sched_domain
4848 * if there is an imbalance. If there isn't an imbalance, and
4849 * the user has opted for power-savings, it returns a group whose
4850 * CPUs can be put to idle by rebalancing those tasks elsewhere, if
4851 * such a group exists.
4852 *
4853 * Also calculates the amount of weighted load which should be moved
4854 * to restore balance.
4855 *
cd96891d 4856 * @env: The load balancing environment.
1e3c88bd
PZ
4857 *
4858 * Returns: - the busiest group if imbalance exists.
4859 * - If no imbalance and user has opted for power-savings balance,
4860 * return the least loaded group whose CPUs can be
4861 * put to idle by rebalancing its tasks onto our group.
4862 */
56cf515b 4863static struct sched_group *find_busiest_group(struct lb_env *env)
1e3c88bd 4864{
56cf515b 4865 struct sg_lb_stats *local, *busiest;
1e3c88bd
PZ
4866 struct sd_lb_stats sds;
4867
147c5fc2 4868 init_sd_lb_stats(&sds);
1e3c88bd
PZ
4869
4870 /*
4871 * Compute the various statistics relavent for load balancing at
4872 * this level.
4873 */
23f0d209 4874 update_sd_lb_stats(env, &sds);
56cf515b
JK
4875 local = &sds.local_stat;
4876 busiest = &sds.busiest_stat;
1e3c88bd 4877
bd939f45
PZ
4878 if ((env->idle == CPU_IDLE || env->idle == CPU_NEWLY_IDLE) &&
4879 check_asym_packing(env, &sds))
532cb4c4
MN
4880 return sds.busiest;
4881
cc57aa8f 4882 /* There is no busy sibling group to pull tasks from */
56cf515b 4883 if (!sds.busiest || busiest->sum_nr_running == 0)
1e3c88bd
PZ
4884 goto out_balanced;
4885
1399fa78 4886 sds.avg_load = (SCHED_POWER_SCALE * sds.total_load) / sds.total_pwr;
b0432d8f 4887
866ab43e
PZ
4888 /*
4889 * If the busiest group is imbalanced the below checks don't
4890 * work because they assumes all things are equal, which typically
4891 * isn't true due to cpus_allowed constraints and the like.
4892 */
56cf515b 4893 if (busiest->group_imb)
866ab43e
PZ
4894 goto force_balance;
4895
cc57aa8f 4896 /* SD_BALANCE_NEWIDLE trumps SMP nice when underutilized */
56cf515b
JK
4897 if (env->idle == CPU_NEWLY_IDLE && local->group_has_capacity &&
4898 !busiest->group_has_capacity)
fab47622
NR
4899 goto force_balance;
4900
cc57aa8f
PZ
4901 /*
4902 * If the local group is more busy than the selected busiest group
4903 * don't try and pull any tasks.
4904 */
56cf515b 4905 if (local->avg_load >= busiest->avg_load)
1e3c88bd
PZ
4906 goto out_balanced;
4907
cc57aa8f
PZ
4908 /*
4909 * Don't pull any tasks if this group is already above the domain
4910 * average load.
4911 */
56cf515b 4912 if (local->avg_load >= sds.avg_load)
1e3c88bd
PZ
4913 goto out_balanced;
4914
bd939f45 4915 if (env->idle == CPU_IDLE) {
aae6d3dd
SS
4916 /*
4917 * This cpu is idle. If the busiest group load doesn't
4918 * have more tasks than the number of available cpu's and
4919 * there is no imbalance between this and busiest group
4920 * wrt to idle cpu's, it is balanced.
4921 */
56cf515b
JK
4922 if ((local->idle_cpus < busiest->idle_cpus) &&
4923 busiest->sum_nr_running <= busiest->group_weight)
aae6d3dd 4924 goto out_balanced;
c186fafe
PZ
4925 } else {
4926 /*
4927 * In the CPU_NEWLY_IDLE, CPU_NOT_IDLE cases, use
4928 * imbalance_pct to be conservative.
4929 */
56cf515b
JK
4930 if (100 * busiest->avg_load <=
4931 env->sd->imbalance_pct * local->avg_load)
c186fafe 4932 goto out_balanced;
aae6d3dd 4933 }
1e3c88bd 4934
fab47622 4935force_balance:
1e3c88bd 4936 /* Looks like there is an imbalance. Compute it */
bd939f45 4937 calculate_imbalance(env, &sds);
1e3c88bd
PZ
4938 return sds.busiest;
4939
4940out_balanced:
bd939f45 4941 env->imbalance = 0;
1e3c88bd
PZ
4942 return NULL;
4943}
4944
4945/*
4946 * find_busiest_queue - find the busiest runqueue among the cpus in group.
4947 */
bd939f45 4948static struct rq *find_busiest_queue(struct lb_env *env,
b9403130 4949 struct sched_group *group)
1e3c88bd
PZ
4950{
4951 struct rq *busiest = NULL, *rq;
95a79b80 4952 unsigned long busiest_load = 0, busiest_power = 1;
1e3c88bd
PZ
4953 int i;
4954
4955 for_each_cpu(i, sched_group_cpus(group)) {
4956 unsigned long power = power_of(i);
1399fa78
NR
4957 unsigned long capacity = DIV_ROUND_CLOSEST(power,
4958 SCHED_POWER_SCALE);
1e3c88bd
PZ
4959 unsigned long wl;
4960
9d5efe05 4961 if (!capacity)
bd939f45 4962 capacity = fix_small_capacity(env->sd, group);
9d5efe05 4963
b9403130 4964 if (!cpumask_test_cpu(i, env->cpus))
1e3c88bd
PZ
4965 continue;
4966
4967 rq = cpu_rq(i);
6e40f5bb 4968 wl = weighted_cpuload(i);
1e3c88bd 4969
6e40f5bb
TG
4970 /*
4971 * When comparing with imbalance, use weighted_cpuload()
4972 * which is not scaled with the cpu power.
4973 */
bd939f45 4974 if (capacity && rq->nr_running == 1 && wl > env->imbalance)
1e3c88bd
PZ
4975 continue;
4976
6e40f5bb
TG
4977 /*
4978 * For the load comparisons with the other cpu's, consider
4979 * the weighted_cpuload() scaled with the cpu power, so that
4980 * the load can be moved away from the cpu that is potentially
4981 * running at a lower capacity.
95a79b80
JK
4982 *
4983 * Thus we're looking for max(wl_i / power_i), crosswise
4984 * multiplication to rid ourselves of the division works out
4985 * to: wl_i * power_j > wl_j * power_i; where j is our
4986 * previous maximum.
6e40f5bb 4987 */
95a79b80
JK
4988 if (wl * busiest_power > busiest_load * power) {
4989 busiest_load = wl;
4990 busiest_power = power;
1e3c88bd
PZ
4991 busiest = rq;
4992 }
4993 }
4994
4995 return busiest;
4996}
4997
4998/*
4999 * Max backoff if we encounter pinned tasks. Pretty arbitrary value, but
5000 * so long as it is large enough.
5001 */
5002#define MAX_PINNED_INTERVAL 512
5003
5004/* Working cpumask for load_balance and load_balance_newidle. */
e6252c3e 5005DEFINE_PER_CPU(cpumask_var_t, load_balance_mask);
1e3c88bd 5006
bd939f45 5007static int need_active_balance(struct lb_env *env)
1af3ed3d 5008{
bd939f45
PZ
5009 struct sched_domain *sd = env->sd;
5010
5011 if (env->idle == CPU_NEWLY_IDLE) {
532cb4c4
MN
5012
5013 /*
5014 * ASYM_PACKING needs to force migrate tasks from busy but
5015 * higher numbered CPUs in order to pack all tasks in the
5016 * lowest numbered CPUs.
5017 */
bd939f45 5018 if ((sd->flags & SD_ASYM_PACKING) && env->src_cpu > env->dst_cpu)
532cb4c4 5019 return 1;
1af3ed3d
PZ
5020 }
5021
5022 return unlikely(sd->nr_balance_failed > sd->cache_nice_tries+2);
5023}
5024
969c7921
TH
5025static int active_load_balance_cpu_stop(void *data);
5026
23f0d209
JK
5027static int should_we_balance(struct lb_env *env)
5028{
5029 struct sched_group *sg = env->sd->groups;
5030 struct cpumask *sg_cpus, *sg_mask;
5031 int cpu, balance_cpu = -1;
5032
5033 /*
5034 * In the newly idle case, we will allow all the cpu's
5035 * to do the newly idle load balance.
5036 */
5037 if (env->idle == CPU_NEWLY_IDLE)
5038 return 1;
5039
5040 sg_cpus = sched_group_cpus(sg);
5041 sg_mask = sched_group_mask(sg);
5042 /* Try to find first idle cpu */
5043 for_each_cpu_and(cpu, sg_cpus, env->cpus) {
5044 if (!cpumask_test_cpu(cpu, sg_mask) || !idle_cpu(cpu))
5045 continue;
5046
5047 balance_cpu = cpu;
5048 break;
5049 }
5050
5051 if (balance_cpu == -1)
5052 balance_cpu = group_balance_cpu(sg);
5053
5054 /*
5055 * First idle cpu or the first cpu(busiest) in this sched group
5056 * is eligible for doing load balancing at this and above domains.
5057 */
5058 return balance_cpu != env->dst_cpu;
5059}
5060
1e3c88bd
PZ
5061/*
5062 * Check this_cpu to ensure it is balanced within domain. Attempt to move
5063 * tasks if there is an imbalance.
5064 */
5065static int load_balance(int this_cpu, struct rq *this_rq,
5066 struct sched_domain *sd, enum cpu_idle_type idle,
23f0d209 5067 int *continue_balancing)
1e3c88bd 5068{
88b8dac0 5069 int ld_moved, cur_ld_moved, active_balance = 0;
1e3c88bd 5070 struct sched_group *group;
1e3c88bd
PZ
5071 struct rq *busiest;
5072 unsigned long flags;
e6252c3e 5073 struct cpumask *cpus = __get_cpu_var(load_balance_mask);
1e3c88bd 5074
8e45cb54
PZ
5075 struct lb_env env = {
5076 .sd = sd,
ddcdf6e7
PZ
5077 .dst_cpu = this_cpu,
5078 .dst_rq = this_rq,
88b8dac0 5079 .dst_grpmask = sched_group_cpus(sd->groups),
8e45cb54 5080 .idle = idle,
eb95308e 5081 .loop_break = sched_nr_migrate_break,
b9403130 5082 .cpus = cpus,
8e45cb54
PZ
5083 };
5084
cfc03118
JK
5085 /*
5086 * For NEWLY_IDLE load_balancing, we don't need to consider
5087 * other cpus in our group
5088 */
e02e60c1 5089 if (idle == CPU_NEWLY_IDLE)
cfc03118 5090 env.dst_grpmask = NULL;
cfc03118 5091
1e3c88bd
PZ
5092 cpumask_copy(cpus, cpu_active_mask);
5093
1e3c88bd
PZ
5094 schedstat_inc(sd, lb_count[idle]);
5095
5096redo:
23f0d209
JK
5097 if (!should_we_balance(&env)) {
5098 *continue_balancing = 0;
1e3c88bd 5099 goto out_balanced;
23f0d209 5100 }
1e3c88bd 5101
23f0d209 5102 group = find_busiest_group(&env);
1e3c88bd
PZ
5103 if (!group) {
5104 schedstat_inc(sd, lb_nobusyg[idle]);
5105 goto out_balanced;
5106 }
5107
b9403130 5108 busiest = find_busiest_queue(&env, group);
1e3c88bd
PZ
5109 if (!busiest) {
5110 schedstat_inc(sd, lb_nobusyq[idle]);
5111 goto out_balanced;
5112 }
5113
78feefc5 5114 BUG_ON(busiest == env.dst_rq);
1e3c88bd 5115
bd939f45 5116 schedstat_add(sd, lb_imbalance[idle], env.imbalance);
1e3c88bd
PZ
5117
5118 ld_moved = 0;
5119 if (busiest->nr_running > 1) {
5120 /*
5121 * Attempt to move tasks. If find_busiest_group has found
5122 * an imbalance but busiest->nr_running <= 1, the group is
5123 * still unbalanced. ld_moved simply stays zero, so it is
5124 * correctly treated as an imbalance.
5125 */
8e45cb54 5126 env.flags |= LBF_ALL_PINNED;
c82513e5
PZ
5127 env.src_cpu = busiest->cpu;
5128 env.src_rq = busiest;
5129 env.loop_max = min(sysctl_sched_nr_migrate, busiest->nr_running);
8e45cb54 5130
a35b6466 5131 update_h_load(env.src_cpu);
5d6523eb 5132more_balance:
1e3c88bd 5133 local_irq_save(flags);
78feefc5 5134 double_rq_lock(env.dst_rq, busiest);
88b8dac0
SV
5135
5136 /*
5137 * cur_ld_moved - load moved in current iteration
5138 * ld_moved - cumulative load moved across iterations
5139 */
5140 cur_ld_moved = move_tasks(&env);
5141 ld_moved += cur_ld_moved;
78feefc5 5142 double_rq_unlock(env.dst_rq, busiest);
1e3c88bd
PZ
5143 local_irq_restore(flags);
5144
5145 /*
5146 * some other cpu did the load balance for us.
5147 */
88b8dac0
SV
5148 if (cur_ld_moved && env.dst_cpu != smp_processor_id())
5149 resched_cpu(env.dst_cpu);
5150
f1cd0858
JK
5151 if (env.flags & LBF_NEED_BREAK) {
5152 env.flags &= ~LBF_NEED_BREAK;
5153 goto more_balance;
5154 }
5155
88b8dac0
SV
5156 /*
5157 * Revisit (affine) tasks on src_cpu that couldn't be moved to
5158 * us and move them to an alternate dst_cpu in our sched_group
5159 * where they can run. The upper limit on how many times we
5160 * iterate on same src_cpu is dependent on number of cpus in our
5161 * sched_group.
5162 *
5163 * This changes load balance semantics a bit on who can move
5164 * load to a given_cpu. In addition to the given_cpu itself
5165 * (or a ilb_cpu acting on its behalf where given_cpu is
5166 * nohz-idle), we now have balance_cpu in a position to move
5167 * load to given_cpu. In rare situations, this may cause
5168 * conflicts (balance_cpu and given_cpu/ilb_cpu deciding
5169 * _independently_ and at _same_ time to move some load to
5170 * given_cpu) causing exceess load to be moved to given_cpu.
5171 * This however should not happen so much in practice and
5172 * moreover subsequent load balance cycles should correct the
5173 * excess load moved.
5174 */
e02e60c1 5175 if ((env.flags & LBF_SOME_PINNED) && env.imbalance > 0) {
88b8dac0 5176
78feefc5 5177 env.dst_rq = cpu_rq(env.new_dst_cpu);
88b8dac0
SV
5178 env.dst_cpu = env.new_dst_cpu;
5179 env.flags &= ~LBF_SOME_PINNED;
5180 env.loop = 0;
5181 env.loop_break = sched_nr_migrate_break;
e02e60c1
JK
5182
5183 /* Prevent to re-select dst_cpu via env's cpus */
5184 cpumask_clear_cpu(env.dst_cpu, env.cpus);
5185
88b8dac0
SV
5186 /*
5187 * Go back to "more_balance" rather than "redo" since we
5188 * need to continue with same src_cpu.
5189 */
5190 goto more_balance;
5191 }
1e3c88bd
PZ
5192
5193 /* All tasks on this runqueue were pinned by CPU affinity */
8e45cb54 5194 if (unlikely(env.flags & LBF_ALL_PINNED)) {
1e3c88bd 5195 cpumask_clear_cpu(cpu_of(busiest), cpus);
bbf18b19
PN
5196 if (!cpumask_empty(cpus)) {
5197 env.loop = 0;
5198 env.loop_break = sched_nr_migrate_break;
1e3c88bd 5199 goto redo;
bbf18b19 5200 }
1e3c88bd
PZ
5201 goto out_balanced;
5202 }
5203 }
5204
5205 if (!ld_moved) {
5206 schedstat_inc(sd, lb_failed[idle]);
58b26c4c
VP
5207 /*
5208 * Increment the failure counter only on periodic balance.
5209 * We do not want newidle balance, which can be very
5210 * frequent, pollute the failure counter causing
5211 * excessive cache_hot migrations and active balances.
5212 */
5213 if (idle != CPU_NEWLY_IDLE)
5214 sd->nr_balance_failed++;
1e3c88bd 5215
bd939f45 5216 if (need_active_balance(&env)) {
1e3c88bd
PZ
5217 raw_spin_lock_irqsave(&busiest->lock, flags);
5218
969c7921
TH
5219 /* don't kick the active_load_balance_cpu_stop,
5220 * if the curr task on busiest cpu can't be
5221 * moved to this_cpu
1e3c88bd
PZ
5222 */
5223 if (!cpumask_test_cpu(this_cpu,
fa17b507 5224 tsk_cpus_allowed(busiest->curr))) {
1e3c88bd
PZ
5225 raw_spin_unlock_irqrestore(&busiest->lock,
5226 flags);
8e45cb54 5227 env.flags |= LBF_ALL_PINNED;
1e3c88bd
PZ
5228 goto out_one_pinned;
5229 }
5230
969c7921
TH
5231 /*
5232 * ->active_balance synchronizes accesses to
5233 * ->active_balance_work. Once set, it's cleared
5234 * only after active load balance is finished.
5235 */
1e3c88bd
PZ
5236 if (!busiest->active_balance) {
5237 busiest->active_balance = 1;
5238 busiest->push_cpu = this_cpu;
5239 active_balance = 1;
5240 }
5241 raw_spin_unlock_irqrestore(&busiest->lock, flags);
969c7921 5242
bd939f45 5243 if (active_balance) {
969c7921
TH
5244 stop_one_cpu_nowait(cpu_of(busiest),
5245 active_load_balance_cpu_stop, busiest,
5246 &busiest->active_balance_work);
bd939f45 5247 }
1e3c88bd
PZ
5248
5249 /*
5250 * We've kicked active balancing, reset the failure
5251 * counter.
5252 */
5253 sd->nr_balance_failed = sd->cache_nice_tries+1;
5254 }
5255 } else
5256 sd->nr_balance_failed = 0;
5257
5258 if (likely(!active_balance)) {
5259 /* We were unbalanced, so reset the balancing interval */
5260 sd->balance_interval = sd->min_interval;
5261 } else {
5262 /*
5263 * If we've begun active balancing, start to back off. This
5264 * case may not be covered by the all_pinned logic if there
5265 * is only 1 task on the busy runqueue (because we don't call
5266 * move_tasks).
5267 */
5268 if (sd->balance_interval < sd->max_interval)
5269 sd->balance_interval *= 2;
5270 }
5271
1e3c88bd
PZ
5272 goto out;
5273
5274out_balanced:
5275 schedstat_inc(sd, lb_balanced[idle]);
5276
5277 sd->nr_balance_failed = 0;
5278
5279out_one_pinned:
5280 /* tune up the balancing interval */
8e45cb54 5281 if (((env.flags & LBF_ALL_PINNED) &&
5b54b56b 5282 sd->balance_interval < MAX_PINNED_INTERVAL) ||
1e3c88bd
PZ
5283 (sd->balance_interval < sd->max_interval))
5284 sd->balance_interval *= 2;
5285
46e49b38 5286 ld_moved = 0;
1e3c88bd 5287out:
1e3c88bd
PZ
5288 return ld_moved;
5289}
5290
1e3c88bd
PZ
5291/*
5292 * idle_balance is called by schedule() if this_cpu is about to become
5293 * idle. Attempts to pull tasks from other CPUs.
5294 */
029632fb 5295void idle_balance(int this_cpu, struct rq *this_rq)
1e3c88bd
PZ
5296{
5297 struct sched_domain *sd;
5298 int pulled_task = 0;
5299 unsigned long next_balance = jiffies + HZ;
5300
78becc27 5301 this_rq->idle_stamp = rq_clock(this_rq);
1e3c88bd
PZ
5302
5303 if (this_rq->avg_idle < sysctl_sched_migration_cost)
5304 return;
5305
f492e12e
PZ
5306 /*
5307 * Drop the rq->lock, but keep IRQ/preempt disabled.
5308 */
5309 raw_spin_unlock(&this_rq->lock);
5310
48a16753 5311 update_blocked_averages(this_cpu);
dce840a0 5312 rcu_read_lock();
1e3c88bd
PZ
5313 for_each_domain(this_cpu, sd) {
5314 unsigned long interval;
23f0d209 5315 int continue_balancing = 1;
1e3c88bd
PZ
5316
5317 if (!(sd->flags & SD_LOAD_BALANCE))
5318 continue;
5319
f492e12e 5320 if (sd->flags & SD_BALANCE_NEWIDLE) {
1e3c88bd 5321 /* If we've pulled tasks over stop searching: */
f492e12e 5322 pulled_task = load_balance(this_cpu, this_rq,
23f0d209
JK
5323 sd, CPU_NEWLY_IDLE,
5324 &continue_balancing);
f492e12e 5325 }
1e3c88bd
PZ
5326
5327 interval = msecs_to_jiffies(sd->balance_interval);
5328 if (time_after(next_balance, sd->last_balance + interval))
5329 next_balance = sd->last_balance + interval;
d5ad140b
NR
5330 if (pulled_task) {
5331 this_rq->idle_stamp = 0;
1e3c88bd 5332 break;
d5ad140b 5333 }
1e3c88bd 5334 }
dce840a0 5335 rcu_read_unlock();
f492e12e
PZ
5336
5337 raw_spin_lock(&this_rq->lock);
5338
1e3c88bd
PZ
5339 if (pulled_task || time_after(jiffies, this_rq->next_balance)) {
5340 /*
5341 * We are going idle. next_balance may be set based on
5342 * a busy processor. So reset next_balance.
5343 */
5344 this_rq->next_balance = next_balance;
5345 }
5346}
5347
5348/*
969c7921
TH
5349 * active_load_balance_cpu_stop is run by cpu stopper. It pushes
5350 * running tasks off the busiest CPU onto idle CPUs. It requires at
5351 * least 1 task to be running on each physical CPU where possible, and
5352 * avoids physical / logical imbalances.
1e3c88bd 5353 */
969c7921 5354static int active_load_balance_cpu_stop(void *data)
1e3c88bd 5355{
969c7921
TH
5356 struct rq *busiest_rq = data;
5357 int busiest_cpu = cpu_of(busiest_rq);
1e3c88bd 5358 int target_cpu = busiest_rq->push_cpu;
969c7921 5359 struct rq *target_rq = cpu_rq(target_cpu);
1e3c88bd 5360 struct sched_domain *sd;
969c7921
TH
5361
5362 raw_spin_lock_irq(&busiest_rq->lock);
5363
5364 /* make sure the requested cpu hasn't gone down in the meantime */
5365 if (unlikely(busiest_cpu != smp_processor_id() ||
5366 !busiest_rq->active_balance))
5367 goto out_unlock;
1e3c88bd
PZ
5368
5369 /* Is there any task to move? */
5370 if (busiest_rq->nr_running <= 1)
969c7921 5371 goto out_unlock;
1e3c88bd
PZ
5372
5373 /*
5374 * This condition is "impossible", if it occurs
5375 * we need to fix it. Originally reported by
5376 * Bjorn Helgaas on a 128-cpu setup.
5377 */
5378 BUG_ON(busiest_rq == target_rq);
5379
5380 /* move a task from busiest_rq to target_rq */
5381 double_lock_balance(busiest_rq, target_rq);
1e3c88bd
PZ
5382
5383 /* Search for an sd spanning us and the target CPU. */
dce840a0 5384 rcu_read_lock();
1e3c88bd
PZ
5385 for_each_domain(target_cpu, sd) {
5386 if ((sd->flags & SD_LOAD_BALANCE) &&
5387 cpumask_test_cpu(busiest_cpu, sched_domain_span(sd)))
5388 break;
5389 }
5390
5391 if (likely(sd)) {
8e45cb54
PZ
5392 struct lb_env env = {
5393 .sd = sd,
ddcdf6e7
PZ
5394 .dst_cpu = target_cpu,
5395 .dst_rq = target_rq,
5396 .src_cpu = busiest_rq->cpu,
5397 .src_rq = busiest_rq,
8e45cb54
PZ
5398 .idle = CPU_IDLE,
5399 };
5400
1e3c88bd
PZ
5401 schedstat_inc(sd, alb_count);
5402
8e45cb54 5403 if (move_one_task(&env))
1e3c88bd
PZ
5404 schedstat_inc(sd, alb_pushed);
5405 else
5406 schedstat_inc(sd, alb_failed);
5407 }
dce840a0 5408 rcu_read_unlock();
1e3c88bd 5409 double_unlock_balance(busiest_rq, target_rq);
969c7921
TH
5410out_unlock:
5411 busiest_rq->active_balance = 0;
5412 raw_spin_unlock_irq(&busiest_rq->lock);
5413 return 0;
1e3c88bd
PZ
5414}
5415
3451d024 5416#ifdef CONFIG_NO_HZ_COMMON
83cd4fe2
VP
5417/*
5418 * idle load balancing details
83cd4fe2
VP
5419 * - When one of the busy CPUs notice that there may be an idle rebalancing
5420 * needed, they will kick the idle load balancer, which then does idle
5421 * load balancing for all the idle CPUs.
5422 */
1e3c88bd 5423static struct {
83cd4fe2 5424 cpumask_var_t idle_cpus_mask;
0b005cf5 5425 atomic_t nr_cpus;
83cd4fe2
VP
5426 unsigned long next_balance; /* in jiffy units */
5427} nohz ____cacheline_aligned;
1e3c88bd 5428
8e7fbcbc 5429static inline int find_new_ilb(int call_cpu)
1e3c88bd 5430{
0b005cf5 5431 int ilb = cpumask_first(nohz.idle_cpus_mask);
1e3c88bd 5432
786d6dc7
SS
5433 if (ilb < nr_cpu_ids && idle_cpu(ilb))
5434 return ilb;
5435
5436 return nr_cpu_ids;
1e3c88bd 5437}
1e3c88bd 5438
83cd4fe2
VP
5439/*
5440 * Kick a CPU to do the nohz balancing, if it is time for it. We pick the
5441 * nohz_load_balancer CPU (if there is one) otherwise fallback to any idle
5442 * CPU (if there is one).
5443 */
5444static void nohz_balancer_kick(int cpu)
5445{
5446 int ilb_cpu;
5447
5448 nohz.next_balance++;
5449
0b005cf5 5450 ilb_cpu = find_new_ilb(cpu);
83cd4fe2 5451
0b005cf5
SS
5452 if (ilb_cpu >= nr_cpu_ids)
5453 return;
83cd4fe2 5454
cd490c5b 5455 if (test_and_set_bit(NOHZ_BALANCE_KICK, nohz_flags(ilb_cpu)))
1c792db7
SS
5456 return;
5457 /*
5458 * Use smp_send_reschedule() instead of resched_cpu().
5459 * This way we generate a sched IPI on the target cpu which
5460 * is idle. And the softirq performing nohz idle load balance
5461 * will be run before returning from the IPI.
5462 */
5463 smp_send_reschedule(ilb_cpu);
83cd4fe2
VP
5464 return;
5465}
5466
c1cc017c 5467static inline void nohz_balance_exit_idle(int cpu)
71325960
SS
5468{
5469 if (unlikely(test_bit(NOHZ_TICK_STOPPED, nohz_flags(cpu)))) {
5470 cpumask_clear_cpu(cpu, nohz.idle_cpus_mask);
5471 atomic_dec(&nohz.nr_cpus);
5472 clear_bit(NOHZ_TICK_STOPPED, nohz_flags(cpu));
5473 }
5474}
5475
69e1e811
SS
5476static inline void set_cpu_sd_state_busy(void)
5477{
5478 struct sched_domain *sd;
69e1e811 5479
69e1e811 5480 rcu_read_lock();
424c93fe 5481 sd = rcu_dereference_check_sched_domain(this_rq()->sd);
25f55d9d
VG
5482
5483 if (!sd || !sd->nohz_idle)
5484 goto unlock;
5485 sd->nohz_idle = 0;
5486
5487 for (; sd; sd = sd->parent)
69e1e811 5488 atomic_inc(&sd->groups->sgp->nr_busy_cpus);
25f55d9d 5489unlock:
69e1e811
SS
5490 rcu_read_unlock();
5491}
5492
5493void set_cpu_sd_state_idle(void)
5494{
5495 struct sched_domain *sd;
69e1e811 5496
69e1e811 5497 rcu_read_lock();
424c93fe 5498 sd = rcu_dereference_check_sched_domain(this_rq()->sd);
25f55d9d
VG
5499
5500 if (!sd || sd->nohz_idle)
5501 goto unlock;
5502 sd->nohz_idle = 1;
5503
5504 for (; sd; sd = sd->parent)
69e1e811 5505 atomic_dec(&sd->groups->sgp->nr_busy_cpus);
25f55d9d 5506unlock:
69e1e811
SS
5507 rcu_read_unlock();
5508}
5509
1e3c88bd 5510/*
c1cc017c 5511 * This routine will record that the cpu is going idle with tick stopped.
0b005cf5 5512 * This info will be used in performing idle load balancing in the future.
1e3c88bd 5513 */
c1cc017c 5514void nohz_balance_enter_idle(int cpu)
1e3c88bd 5515{
71325960
SS
5516 /*
5517 * If this cpu is going down, then nothing needs to be done.
5518 */
5519 if (!cpu_active(cpu))
5520 return;
5521
c1cc017c
AS
5522 if (test_bit(NOHZ_TICK_STOPPED, nohz_flags(cpu)))
5523 return;
1e3c88bd 5524
c1cc017c
AS
5525 cpumask_set_cpu(cpu, nohz.idle_cpus_mask);
5526 atomic_inc(&nohz.nr_cpus);
5527 set_bit(NOHZ_TICK_STOPPED, nohz_flags(cpu));
1e3c88bd 5528}
71325960 5529
0db0628d 5530static int sched_ilb_notifier(struct notifier_block *nfb,
71325960
SS
5531 unsigned long action, void *hcpu)
5532{
5533 switch (action & ~CPU_TASKS_FROZEN) {
5534 case CPU_DYING:
c1cc017c 5535 nohz_balance_exit_idle(smp_processor_id());
71325960
SS
5536 return NOTIFY_OK;
5537 default:
5538 return NOTIFY_DONE;
5539 }
5540}
1e3c88bd
PZ
5541#endif
5542
5543static DEFINE_SPINLOCK(balancing);
5544
49c022e6
PZ
5545/*
5546 * Scale the max load_balance interval with the number of CPUs in the system.
5547 * This trades load-balance latency on larger machines for less cross talk.
5548 */
029632fb 5549void update_max_interval(void)
49c022e6
PZ
5550{
5551 max_load_balance_interval = HZ*num_online_cpus()/10;
5552}
5553
1e3c88bd
PZ
5554/*
5555 * It checks each scheduling domain to see if it is due to be balanced,
5556 * and initiates a balancing operation if so.
5557 *
b9b0853a 5558 * Balancing parameters are set up in init_sched_domains.
1e3c88bd
PZ
5559 */
5560static void rebalance_domains(int cpu, enum cpu_idle_type idle)
5561{
23f0d209 5562 int continue_balancing = 1;
1e3c88bd
PZ
5563 struct rq *rq = cpu_rq(cpu);
5564 unsigned long interval;
04f733b4 5565 struct sched_domain *sd;
1e3c88bd
PZ
5566 /* Earliest time when we have to do rebalance again */
5567 unsigned long next_balance = jiffies + 60*HZ;
5568 int update_next_balance = 0;
5569 int need_serialize;
5570
48a16753 5571 update_blocked_averages(cpu);
2069dd75 5572
dce840a0 5573 rcu_read_lock();
1e3c88bd
PZ
5574 for_each_domain(cpu, sd) {
5575 if (!(sd->flags & SD_LOAD_BALANCE))
5576 continue;
5577
5578 interval = sd->balance_interval;
5579 if (idle != CPU_IDLE)
5580 interval *= sd->busy_factor;
5581
5582 /* scale ms to jiffies */
5583 interval = msecs_to_jiffies(interval);
49c022e6 5584 interval = clamp(interval, 1UL, max_load_balance_interval);
1e3c88bd
PZ
5585
5586 need_serialize = sd->flags & SD_SERIALIZE;
5587
5588 if (need_serialize) {
5589 if (!spin_trylock(&balancing))
5590 goto out;
5591 }
5592
5593 if (time_after_eq(jiffies, sd->last_balance + interval)) {
23f0d209 5594 if (load_balance(cpu, rq, sd, idle, &continue_balancing)) {
1e3c88bd 5595 /*
de5eb2dd
JK
5596 * The LBF_SOME_PINNED logic could have changed
5597 * env->dst_cpu, so we can't know our idle
5598 * state even if we migrated tasks. Update it.
1e3c88bd 5599 */
de5eb2dd 5600 idle = idle_cpu(cpu) ? CPU_IDLE : CPU_NOT_IDLE;
1e3c88bd
PZ
5601 }
5602 sd->last_balance = jiffies;
5603 }
5604 if (need_serialize)
5605 spin_unlock(&balancing);
5606out:
5607 if (time_after(next_balance, sd->last_balance + interval)) {
5608 next_balance = sd->last_balance + interval;
5609 update_next_balance = 1;
5610 }
5611
5612 /*
5613 * Stop the load balance at this level. There is another
5614 * CPU in our sched group which is doing load balancing more
5615 * actively.
5616 */
23f0d209 5617 if (!continue_balancing)
1e3c88bd
PZ
5618 break;
5619 }
dce840a0 5620 rcu_read_unlock();
1e3c88bd
PZ
5621
5622 /*
5623 * next_balance will be updated only when there is a need.
5624 * When the cpu is attached to null domain for ex, it will not be
5625 * updated.
5626 */
5627 if (likely(update_next_balance))
5628 rq->next_balance = next_balance;
5629}
5630
3451d024 5631#ifdef CONFIG_NO_HZ_COMMON
1e3c88bd 5632/*
3451d024 5633 * In CONFIG_NO_HZ_COMMON case, the idle balance kickee will do the
1e3c88bd
PZ
5634 * rebalancing for all the cpus for whom scheduler ticks are stopped.
5635 */
83cd4fe2
VP
5636static void nohz_idle_balance(int this_cpu, enum cpu_idle_type idle)
5637{
5638 struct rq *this_rq = cpu_rq(this_cpu);
5639 struct rq *rq;
5640 int balance_cpu;
5641
1c792db7
SS
5642 if (idle != CPU_IDLE ||
5643 !test_bit(NOHZ_BALANCE_KICK, nohz_flags(this_cpu)))
5644 goto end;
83cd4fe2
VP
5645
5646 for_each_cpu(balance_cpu, nohz.idle_cpus_mask) {
8a6d42d1 5647 if (balance_cpu == this_cpu || !idle_cpu(balance_cpu))
83cd4fe2
VP
5648 continue;
5649
5650 /*
5651 * If this cpu gets work to do, stop the load balancing
5652 * work being done for other cpus. Next load
5653 * balancing owner will pick it up.
5654 */
1c792db7 5655 if (need_resched())
83cd4fe2 5656 break;
83cd4fe2 5657
5ed4f1d9
VG
5658 rq = cpu_rq(balance_cpu);
5659
5660 raw_spin_lock_irq(&rq->lock);
5661 update_rq_clock(rq);
5662 update_idle_cpu_load(rq);
5663 raw_spin_unlock_irq(&rq->lock);
83cd4fe2
VP
5664
5665 rebalance_domains(balance_cpu, CPU_IDLE);
5666
83cd4fe2
VP
5667 if (time_after(this_rq->next_balance, rq->next_balance))
5668 this_rq->next_balance = rq->next_balance;
5669 }
5670 nohz.next_balance = this_rq->next_balance;
1c792db7
SS
5671end:
5672 clear_bit(NOHZ_BALANCE_KICK, nohz_flags(this_cpu));
83cd4fe2
VP
5673}
5674
5675/*
0b005cf5
SS
5676 * Current heuristic for kicking the idle load balancer in the presence
5677 * of an idle cpu is the system.
5678 * - This rq has more than one task.
5679 * - At any scheduler domain level, this cpu's scheduler group has multiple
5680 * busy cpu's exceeding the group's power.
5681 * - For SD_ASYM_PACKING, if the lower numbered cpu's in the scheduler
5682 * domain span are idle.
83cd4fe2
VP
5683 */
5684static inline int nohz_kick_needed(struct rq *rq, int cpu)
5685{
5686 unsigned long now = jiffies;
0b005cf5 5687 struct sched_domain *sd;
83cd4fe2 5688
1c792db7 5689 if (unlikely(idle_cpu(cpu)))
83cd4fe2
VP
5690 return 0;
5691
1c792db7
SS
5692 /*
5693 * We may be recently in ticked or tickless idle mode. At the first
5694 * busy tick after returning from idle, we will update the busy stats.
5695 */
69e1e811 5696 set_cpu_sd_state_busy();
c1cc017c 5697 nohz_balance_exit_idle(cpu);
0b005cf5
SS
5698
5699 /*
5700 * None are in tickless mode and hence no need for NOHZ idle load
5701 * balancing.
5702 */
5703 if (likely(!atomic_read(&nohz.nr_cpus)))
5704 return 0;
1c792db7
SS
5705
5706 if (time_before(now, nohz.next_balance))
83cd4fe2
VP
5707 return 0;
5708
0b005cf5
SS
5709 if (rq->nr_running >= 2)
5710 goto need_kick;
83cd4fe2 5711
067491b7 5712 rcu_read_lock();
0b005cf5
SS
5713 for_each_domain(cpu, sd) {
5714 struct sched_group *sg = sd->groups;
5715 struct sched_group_power *sgp = sg->sgp;
5716 int nr_busy = atomic_read(&sgp->nr_busy_cpus);
83cd4fe2 5717
0b005cf5 5718 if (sd->flags & SD_SHARE_PKG_RESOURCES && nr_busy > 1)
067491b7 5719 goto need_kick_unlock;
0b005cf5
SS
5720
5721 if (sd->flags & SD_ASYM_PACKING && nr_busy != sg->group_weight
5722 && (cpumask_first_and(nohz.idle_cpus_mask,
5723 sched_domain_span(sd)) < cpu))
067491b7 5724 goto need_kick_unlock;
0b005cf5
SS
5725
5726 if (!(sd->flags & (SD_SHARE_PKG_RESOURCES | SD_ASYM_PACKING)))
5727 break;
83cd4fe2 5728 }
067491b7 5729 rcu_read_unlock();
83cd4fe2 5730 return 0;
067491b7
PZ
5731
5732need_kick_unlock:
5733 rcu_read_unlock();
0b005cf5
SS
5734need_kick:
5735 return 1;
83cd4fe2
VP
5736}
5737#else
5738static void nohz_idle_balance(int this_cpu, enum cpu_idle_type idle) { }
5739#endif
5740
5741/*
5742 * run_rebalance_domains is triggered when needed from the scheduler tick.
5743 * Also triggered for nohz idle balancing (with nohz_balancing_kick set).
5744 */
1e3c88bd
PZ
5745static void run_rebalance_domains(struct softirq_action *h)
5746{
5747 int this_cpu = smp_processor_id();
5748 struct rq *this_rq = cpu_rq(this_cpu);
6eb57e0d 5749 enum cpu_idle_type idle = this_rq->idle_balance ?
1e3c88bd
PZ
5750 CPU_IDLE : CPU_NOT_IDLE;
5751
5752 rebalance_domains(this_cpu, idle);
5753
1e3c88bd 5754 /*
83cd4fe2 5755 * If this cpu has a pending nohz_balance_kick, then do the
1e3c88bd
PZ
5756 * balancing on behalf of the other idle cpus whose ticks are
5757 * stopped.
5758 */
83cd4fe2 5759 nohz_idle_balance(this_cpu, idle);
1e3c88bd
PZ
5760}
5761
5762static inline int on_null_domain(int cpu)
5763{
90a6501f 5764 return !rcu_dereference_sched(cpu_rq(cpu)->sd);
1e3c88bd
PZ
5765}
5766
5767/*
5768 * Trigger the SCHED_SOFTIRQ if it is time to do periodic load balancing.
1e3c88bd 5769 */
029632fb 5770void trigger_load_balance(struct rq *rq, int cpu)
1e3c88bd 5771{
1e3c88bd
PZ
5772 /* Don't need to rebalance while attached to NULL domain */
5773 if (time_after_eq(jiffies, rq->next_balance) &&
5774 likely(!on_null_domain(cpu)))
5775 raise_softirq(SCHED_SOFTIRQ);
3451d024 5776#ifdef CONFIG_NO_HZ_COMMON
1c792db7 5777 if (nohz_kick_needed(rq, cpu) && likely(!on_null_domain(cpu)))
83cd4fe2
VP
5778 nohz_balancer_kick(cpu);
5779#endif
1e3c88bd
PZ
5780}
5781
0bcdcf28
CE
5782static void rq_online_fair(struct rq *rq)
5783{
5784 update_sysctl();
5785}
5786
5787static void rq_offline_fair(struct rq *rq)
5788{
5789 update_sysctl();
a4c96ae3
PB
5790
5791 /* Ensure any throttled groups are reachable by pick_next_task */
5792 unthrottle_offline_cfs_rqs(rq);
0bcdcf28
CE
5793}
5794
55e12e5e 5795#endif /* CONFIG_SMP */
e1d1484f 5796
bf0f6f24
IM
5797/*
5798 * scheduler tick hitting a task of our scheduling class:
5799 */
8f4d37ec 5800static void task_tick_fair(struct rq *rq, struct task_struct *curr, int queued)
bf0f6f24
IM
5801{
5802 struct cfs_rq *cfs_rq;
5803 struct sched_entity *se = &curr->se;
5804
5805 for_each_sched_entity(se) {
5806 cfs_rq = cfs_rq_of(se);
8f4d37ec 5807 entity_tick(cfs_rq, se, queued);
bf0f6f24 5808 }
18bf2805 5809
10e84b97 5810 if (numabalancing_enabled)
cbee9f88 5811 task_tick_numa(rq, curr);
3d59eebc 5812
18bf2805 5813 update_rq_runnable_avg(rq, 1);
bf0f6f24
IM
5814}
5815
5816/*
cd29fe6f
PZ
5817 * called on fork with the child task as argument from the parent's context
5818 * - child not yet on the tasklist
5819 * - preemption disabled
bf0f6f24 5820 */
cd29fe6f 5821static void task_fork_fair(struct task_struct *p)
bf0f6f24 5822{
4fc420c9
DN
5823 struct cfs_rq *cfs_rq;
5824 struct sched_entity *se = &p->se, *curr;
00bf7bfc 5825 int this_cpu = smp_processor_id();
cd29fe6f
PZ
5826 struct rq *rq = this_rq();
5827 unsigned long flags;
5828
05fa785c 5829 raw_spin_lock_irqsave(&rq->lock, flags);
bf0f6f24 5830
861d034e
PZ
5831 update_rq_clock(rq);
5832
4fc420c9
DN
5833 cfs_rq = task_cfs_rq(current);
5834 curr = cfs_rq->curr;
5835
b0a0f667
PM
5836 if (unlikely(task_cpu(p) != this_cpu)) {
5837 rcu_read_lock();
cd29fe6f 5838 __set_task_cpu(p, this_cpu);
b0a0f667
PM
5839 rcu_read_unlock();
5840 }
bf0f6f24 5841
7109c442 5842 update_curr(cfs_rq);
cd29fe6f 5843
b5d9d734
MG
5844 if (curr)
5845 se->vruntime = curr->vruntime;
aeb73b04 5846 place_entity(cfs_rq, se, 1);
4d78e7b6 5847
cd29fe6f 5848 if (sysctl_sched_child_runs_first && curr && entity_before(curr, se)) {
87fefa38 5849 /*
edcb60a3
IM
5850 * Upon rescheduling, sched_class::put_prev_task() will place
5851 * 'current' within the tree based on its new key value.
5852 */
4d78e7b6 5853 swap(curr->vruntime, se->vruntime);
aec0a514 5854 resched_task(rq->curr);
4d78e7b6 5855 }
bf0f6f24 5856
88ec22d3
PZ
5857 se->vruntime -= cfs_rq->min_vruntime;
5858
05fa785c 5859 raw_spin_unlock_irqrestore(&rq->lock, flags);
bf0f6f24
IM
5860}
5861
cb469845
SR
5862/*
5863 * Priority of the task has changed. Check to see if we preempt
5864 * the current task.
5865 */
da7a735e
PZ
5866static void
5867prio_changed_fair(struct rq *rq, struct task_struct *p, int oldprio)
cb469845 5868{
da7a735e
PZ
5869 if (!p->se.on_rq)
5870 return;
5871
cb469845
SR
5872 /*
5873 * Reschedule if we are currently running on this runqueue and
5874 * our priority decreased, or if we are not currently running on
5875 * this runqueue and our priority is higher than the current's
5876 */
da7a735e 5877 if (rq->curr == p) {
cb469845
SR
5878 if (p->prio > oldprio)
5879 resched_task(rq->curr);
5880 } else
15afe09b 5881 check_preempt_curr(rq, p, 0);
cb469845
SR
5882}
5883
da7a735e
PZ
5884static void switched_from_fair(struct rq *rq, struct task_struct *p)
5885{
5886 struct sched_entity *se = &p->se;
5887 struct cfs_rq *cfs_rq = cfs_rq_of(se);
5888
5889 /*
5890 * Ensure the task's vruntime is normalized, so that when its
5891 * switched back to the fair class the enqueue_entity(.flags=0) will
5892 * do the right thing.
5893 *
5894 * If it was on_rq, then the dequeue_entity(.flags=0) will already
5895 * have normalized the vruntime, if it was !on_rq, then only when
5896 * the task is sleeping will it still have non-normalized vruntime.
5897 */
5898 if (!se->on_rq && p->state != TASK_RUNNING) {
5899 /*
5900 * Fix up our vruntime so that the current sleep doesn't
5901 * cause 'unlimited' sleep bonus.
5902 */
5903 place_entity(cfs_rq, se, 0);
5904 se->vruntime -= cfs_rq->min_vruntime;
5905 }
9ee474f5 5906
141965c7 5907#ifdef CONFIG_SMP
9ee474f5
PT
5908 /*
5909 * Remove our load from contribution when we leave sched_fair
5910 * and ensure we don't carry in an old decay_count if we
5911 * switch back.
5912 */
87e3c8ae
KT
5913 if (se->avg.decay_count) {
5914 __synchronize_entity_decay(se);
5915 subtract_blocked_load_contrib(cfs_rq, se->avg.load_avg_contrib);
9ee474f5
PT
5916 }
5917#endif
da7a735e
PZ
5918}
5919
cb469845
SR
5920/*
5921 * We switched to the sched_fair class.
5922 */
da7a735e 5923static void switched_to_fair(struct rq *rq, struct task_struct *p)
cb469845 5924{
da7a735e
PZ
5925 if (!p->se.on_rq)
5926 return;
5927
cb469845
SR
5928 /*
5929 * We were most likely switched from sched_rt, so
5930 * kick off the schedule if running, otherwise just see
5931 * if we can still preempt the current task.
5932 */
da7a735e 5933 if (rq->curr == p)
cb469845
SR
5934 resched_task(rq->curr);
5935 else
15afe09b 5936 check_preempt_curr(rq, p, 0);
cb469845
SR
5937}
5938
83b699ed
SV
5939/* Account for a task changing its policy or group.
5940 *
5941 * This routine is mostly called to set cfs_rq->curr field when a task
5942 * migrates between groups/classes.
5943 */
5944static void set_curr_task_fair(struct rq *rq)
5945{
5946 struct sched_entity *se = &rq->curr->se;
5947
ec12cb7f
PT
5948 for_each_sched_entity(se) {
5949 struct cfs_rq *cfs_rq = cfs_rq_of(se);
5950
5951 set_next_entity(cfs_rq, se);
5952 /* ensure bandwidth has been allocated on our new cfs_rq */
5953 account_cfs_rq_runtime(cfs_rq, 0);
5954 }
83b699ed
SV
5955}
5956
029632fb
PZ
5957void init_cfs_rq(struct cfs_rq *cfs_rq)
5958{
5959 cfs_rq->tasks_timeline = RB_ROOT;
029632fb
PZ
5960 cfs_rq->min_vruntime = (u64)(-(1LL << 20));
5961#ifndef CONFIG_64BIT
5962 cfs_rq->min_vruntime_copy = cfs_rq->min_vruntime;
5963#endif
141965c7 5964#ifdef CONFIG_SMP
9ee474f5 5965 atomic64_set(&cfs_rq->decay_counter, 1);
2509940f 5966 atomic_long_set(&cfs_rq->removed_load, 0);
9ee474f5 5967#endif
029632fb
PZ
5968}
5969
810b3817 5970#ifdef CONFIG_FAIR_GROUP_SCHED
b2b5ce02 5971static void task_move_group_fair(struct task_struct *p, int on_rq)
810b3817 5972{
aff3e498 5973 struct cfs_rq *cfs_rq;
b2b5ce02
PZ
5974 /*
5975 * If the task was not on the rq at the time of this cgroup movement
5976 * it must have been asleep, sleeping tasks keep their ->vruntime
5977 * absolute on their old rq until wakeup (needed for the fair sleeper
5978 * bonus in place_entity()).
5979 *
5980 * If it was on the rq, we've just 'preempted' it, which does convert
5981 * ->vruntime to a relative base.
5982 *
5983 * Make sure both cases convert their relative position when migrating
5984 * to another cgroup's rq. This does somewhat interfere with the
5985 * fair sleeper stuff for the first placement, but who cares.
5986 */
7ceff013
DN
5987 /*
5988 * When !on_rq, vruntime of the task has usually NOT been normalized.
5989 * But there are some cases where it has already been normalized:
5990 *
5991 * - Moving a forked child which is waiting for being woken up by
5992 * wake_up_new_task().
62af3783
DN
5993 * - Moving a task which has been woken up by try_to_wake_up() and
5994 * waiting for actually being woken up by sched_ttwu_pending().
7ceff013
DN
5995 *
5996 * To prevent boost or penalty in the new cfs_rq caused by delta
5997 * min_vruntime between the two cfs_rqs, we skip vruntime adjustment.
5998 */
62af3783 5999 if (!on_rq && (!p->se.sum_exec_runtime || p->state == TASK_WAKING))
7ceff013
DN
6000 on_rq = 1;
6001
b2b5ce02
PZ
6002 if (!on_rq)
6003 p->se.vruntime -= cfs_rq_of(&p->se)->min_vruntime;
6004 set_task_rq(p, task_cpu(p));
aff3e498
PT
6005 if (!on_rq) {
6006 cfs_rq = cfs_rq_of(&p->se);
6007 p->se.vruntime += cfs_rq->min_vruntime;
6008#ifdef CONFIG_SMP
6009 /*
6010 * migrate_task_rq_fair() will have removed our previous
6011 * contribution, but we must synchronize for ongoing future
6012 * decay.
6013 */
6014 p->se.avg.decay_count = atomic64_read(&cfs_rq->decay_counter);
6015 cfs_rq->blocked_load_avg += p->se.avg.load_avg_contrib;
6016#endif
6017 }
810b3817 6018}
029632fb
PZ
6019
6020void free_fair_sched_group(struct task_group *tg)
6021{
6022 int i;
6023
6024 destroy_cfs_bandwidth(tg_cfs_bandwidth(tg));
6025
6026 for_each_possible_cpu(i) {
6027 if (tg->cfs_rq)
6028 kfree(tg->cfs_rq[i]);
6029 if (tg->se)
6030 kfree(tg->se[i]);
6031 }
6032
6033 kfree(tg->cfs_rq);
6034 kfree(tg->se);
6035}
6036
6037int alloc_fair_sched_group(struct task_group *tg, struct task_group *parent)
6038{
6039 struct cfs_rq *cfs_rq;
6040 struct sched_entity *se;
6041 int i;
6042
6043 tg->cfs_rq = kzalloc(sizeof(cfs_rq) * nr_cpu_ids, GFP_KERNEL);
6044 if (!tg->cfs_rq)
6045 goto err;
6046 tg->se = kzalloc(sizeof(se) * nr_cpu_ids, GFP_KERNEL);
6047 if (!tg->se)
6048 goto err;
6049
6050 tg->shares = NICE_0_LOAD;
6051
6052 init_cfs_bandwidth(tg_cfs_bandwidth(tg));
6053
6054 for_each_possible_cpu(i) {
6055 cfs_rq = kzalloc_node(sizeof(struct cfs_rq),
6056 GFP_KERNEL, cpu_to_node(i));
6057 if (!cfs_rq)
6058 goto err;
6059
6060 se = kzalloc_node(sizeof(struct sched_entity),
6061 GFP_KERNEL, cpu_to_node(i));
6062 if (!se)
6063 goto err_free_rq;
6064
6065 init_cfs_rq(cfs_rq);
6066 init_tg_cfs_entry(tg, cfs_rq, se, i, parent->se[i]);
6067 }
6068
6069 return 1;
6070
6071err_free_rq:
6072 kfree(cfs_rq);
6073err:
6074 return 0;
6075}
6076
6077void unregister_fair_sched_group(struct task_group *tg, int cpu)
6078{
6079 struct rq *rq = cpu_rq(cpu);
6080 unsigned long flags;
6081
6082 /*
6083 * Only empty task groups can be destroyed; so we can speculatively
6084 * check on_list without danger of it being re-added.
6085 */
6086 if (!tg->cfs_rq[cpu]->on_list)
6087 return;
6088
6089 raw_spin_lock_irqsave(&rq->lock, flags);
6090 list_del_leaf_cfs_rq(tg->cfs_rq[cpu]);
6091 raw_spin_unlock_irqrestore(&rq->lock, flags);
6092}
6093
6094void init_tg_cfs_entry(struct task_group *tg, struct cfs_rq *cfs_rq,
6095 struct sched_entity *se, int cpu,
6096 struct sched_entity *parent)
6097{
6098 struct rq *rq = cpu_rq(cpu);
6099
6100 cfs_rq->tg = tg;
6101 cfs_rq->rq = rq;
029632fb
PZ
6102 init_cfs_rq_runtime(cfs_rq);
6103
6104 tg->cfs_rq[cpu] = cfs_rq;
6105 tg->se[cpu] = se;
6106
6107 /* se could be NULL for root_task_group */
6108 if (!se)
6109 return;
6110
6111 if (!parent)
6112 se->cfs_rq = &rq->cfs;
6113 else
6114 se->cfs_rq = parent->my_q;
6115
6116 se->my_q = cfs_rq;
6117 update_load_set(&se->load, 0);
6118 se->parent = parent;
6119}
6120
6121static DEFINE_MUTEX(shares_mutex);
6122
6123int sched_group_set_shares(struct task_group *tg, unsigned long shares)
6124{
6125 int i;
6126 unsigned long flags;
6127
6128 /*
6129 * We can't change the weight of the root cgroup.
6130 */
6131 if (!tg->se[0])
6132 return -EINVAL;
6133
6134 shares = clamp(shares, scale_load(MIN_SHARES), scale_load(MAX_SHARES));
6135
6136 mutex_lock(&shares_mutex);
6137 if (tg->shares == shares)
6138 goto done;
6139
6140 tg->shares = shares;
6141 for_each_possible_cpu(i) {
6142 struct rq *rq = cpu_rq(i);
6143 struct sched_entity *se;
6144
6145 se = tg->se[i];
6146 /* Propagate contribution to hierarchy */
6147 raw_spin_lock_irqsave(&rq->lock, flags);
71b1da46
FW
6148
6149 /* Possible calls to update_curr() need rq clock */
6150 update_rq_clock(rq);
17bc14b7 6151 for_each_sched_entity(se)
029632fb
PZ
6152 update_cfs_shares(group_cfs_rq(se));
6153 raw_spin_unlock_irqrestore(&rq->lock, flags);
6154 }
6155
6156done:
6157 mutex_unlock(&shares_mutex);
6158 return 0;
6159}
6160#else /* CONFIG_FAIR_GROUP_SCHED */
6161
6162void free_fair_sched_group(struct task_group *tg) { }
6163
6164int alloc_fair_sched_group(struct task_group *tg, struct task_group *parent)
6165{
6166 return 1;
6167}
6168
6169void unregister_fair_sched_group(struct task_group *tg, int cpu) { }
6170
6171#endif /* CONFIG_FAIR_GROUP_SCHED */
6172
810b3817 6173
6d686f45 6174static unsigned int get_rr_interval_fair(struct rq *rq, struct task_struct *task)
0d721cea
PW
6175{
6176 struct sched_entity *se = &task->se;
0d721cea
PW
6177 unsigned int rr_interval = 0;
6178
6179 /*
6180 * Time slice is 0 for SCHED_OTHER tasks that are on an otherwise
6181 * idle runqueue:
6182 */
0d721cea 6183 if (rq->cfs.load.weight)
a59f4e07 6184 rr_interval = NS_TO_JIFFIES(sched_slice(cfs_rq_of(se), se));
0d721cea
PW
6185
6186 return rr_interval;
6187}
6188
bf0f6f24
IM
6189/*
6190 * All the scheduling class methods:
6191 */
029632fb 6192const struct sched_class fair_sched_class = {
5522d5d5 6193 .next = &idle_sched_class,
bf0f6f24
IM
6194 .enqueue_task = enqueue_task_fair,
6195 .dequeue_task = dequeue_task_fair,
6196 .yield_task = yield_task_fair,
d95f4122 6197 .yield_to_task = yield_to_task_fair,
bf0f6f24 6198
2e09bf55 6199 .check_preempt_curr = check_preempt_wakeup,
bf0f6f24
IM
6200
6201 .pick_next_task = pick_next_task_fair,
6202 .put_prev_task = put_prev_task_fair,
6203
681f3e68 6204#ifdef CONFIG_SMP
4ce72a2c 6205 .select_task_rq = select_task_rq_fair,
0a74bef8 6206 .migrate_task_rq = migrate_task_rq_fair,
141965c7 6207
0bcdcf28
CE
6208 .rq_online = rq_online_fair,
6209 .rq_offline = rq_offline_fair,
88ec22d3
PZ
6210
6211 .task_waking = task_waking_fair,
681f3e68 6212#endif
bf0f6f24 6213
83b699ed 6214 .set_curr_task = set_curr_task_fair,
bf0f6f24 6215 .task_tick = task_tick_fair,
cd29fe6f 6216 .task_fork = task_fork_fair,
cb469845
SR
6217
6218 .prio_changed = prio_changed_fair,
da7a735e 6219 .switched_from = switched_from_fair,
cb469845 6220 .switched_to = switched_to_fair,
810b3817 6221
0d721cea
PW
6222 .get_rr_interval = get_rr_interval_fair,
6223
810b3817 6224#ifdef CONFIG_FAIR_GROUP_SCHED
b2b5ce02 6225 .task_move_group = task_move_group_fair,
810b3817 6226#endif
bf0f6f24
IM
6227};
6228
6229#ifdef CONFIG_SCHED_DEBUG
029632fb 6230void print_cfs_stats(struct seq_file *m, int cpu)
bf0f6f24 6231{
bf0f6f24
IM
6232 struct cfs_rq *cfs_rq;
6233
5973e5b9 6234 rcu_read_lock();
c3b64f1e 6235 for_each_leaf_cfs_rq(cpu_rq(cpu), cfs_rq)
5cef9eca 6236 print_cfs_rq(m, cpu, cfs_rq);
5973e5b9 6237 rcu_read_unlock();
bf0f6f24
IM
6238}
6239#endif
029632fb
PZ
6240
6241__init void init_sched_fair_class(void)
6242{
6243#ifdef CONFIG_SMP
6244 open_softirq(SCHED_SOFTIRQ, run_rebalance_domains);
6245
3451d024 6246#ifdef CONFIG_NO_HZ_COMMON
554cecaf 6247 nohz.next_balance = jiffies;
029632fb 6248 zalloc_cpumask_var(&nohz.idle_cpus_mask, GFP_NOWAIT);
71325960 6249 cpu_notifier(sched_ilb_notifier, 0);
029632fb
PZ
6250#endif
6251#endif /* SMP */
6252
6253}