fair.c 212 KB

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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>
  18. *
  19. * Adaptive scheduling granularity, math enhancements by Peter Zijlstra
  20. * Copyright (C) 2007 Red Hat, Inc., Peter Zijlstra <pzijlstr@redhat.com>
  21. */
  22. #include <linux/latencytop.h>
  23. #include <linux/sched.h>
  24. #include <linux/cpumask.h>
  25. #include <linux/cpuidle.h>
  26. #include <linux/slab.h>
  27. #include <linux/profile.h>
  28. #include <linux/interrupt.h>
  29. #include <linux/mempolicy.h>
  30. #include <linux/migrate.h>
  31. #include <linux/task_work.h>
  32. #include <trace/events/sched.h>
  33. #include "sched.h"
  34. /*
  35. * Targeted preemption latency for CPU-bound tasks:
  36. * (default: 6ms * (1 + ilog(ncpus)), units: nanoseconds)
  37. *
  38. * NOTE: this latency value is not the same as the concept of
  39. * 'timeslice length' - timeslices in CFS are of variable length
  40. * and have no persistent notion like in traditional, time-slice
  41. * based scheduling concepts.
  42. *
  43. * (to see the precise effective timeslice length of your workload,
  44. * run vmstat and monitor the context-switches (cs) field)
  45. */
  46. unsigned int sysctl_sched_latency = 6000000ULL;
  47. unsigned int normalized_sysctl_sched_latency = 6000000ULL;
  48. /*
  49. * The initial- and re-scaling of tunables is configurable
  50. * (default SCHED_TUNABLESCALING_LOG = *(1+ilog(ncpus))
  51. *
  52. * Options are:
  53. * SCHED_TUNABLESCALING_NONE - unscaled, always *1
  54. * SCHED_TUNABLESCALING_LOG - scaled logarithmical, *1+ilog(ncpus)
  55. * SCHED_TUNABLESCALING_LINEAR - scaled linear, *ncpus
  56. */
  57. enum sched_tunable_scaling sysctl_sched_tunable_scaling
  58. = SCHED_TUNABLESCALING_LOG;
  59. /*
  60. * Minimal preemption granularity for CPU-bound tasks:
  61. * (default: 0.75 msec * (1 + ilog(ncpus)), units: nanoseconds)
  62. */
  63. unsigned int sysctl_sched_min_granularity = 750000ULL;
  64. unsigned int normalized_sysctl_sched_min_granularity = 750000ULL;
  65. /*
  66. * is kept at sysctl_sched_latency / sysctl_sched_min_granularity
  67. */
  68. static unsigned int sched_nr_latency = 8;
  69. /*
  70. * After fork, child runs first. If set to 0 (default) then
  71. * parent will (try to) run first.
  72. */
  73. unsigned int sysctl_sched_child_runs_first __read_mostly;
  74. /*
  75. * SCHED_OTHER wake-up granularity.
  76. * (default: 1 msec * (1 + ilog(ncpus)), units: nanoseconds)
  77. *
  78. * This option delays the preemption effects of decoupled workloads
  79. * and reduces their over-scheduling. Synchronous workloads will still
  80. * have immediate wakeup/sleep latencies.
  81. */
  82. unsigned int sysctl_sched_wakeup_granularity = 1000000UL;
  83. unsigned int normalized_sysctl_sched_wakeup_granularity = 1000000UL;
  84. const_debug unsigned int sysctl_sched_migration_cost = 500000UL;
  85. /*
  86. * The exponential sliding window over which load is averaged for shares
  87. * distribution.
  88. * (default: 10msec)
  89. */
  90. unsigned int __read_mostly sysctl_sched_shares_window = 10000000UL;
  91. #ifdef CONFIG_CFS_BANDWIDTH
  92. /*
  93. * Amount of runtime to allocate from global (tg) to local (per-cfs_rq) pool
  94. * each time a cfs_rq requests quota.
  95. *
  96. * Note: in the case that the slice exceeds the runtime remaining (either due
  97. * to consumption or the quota being specified to be smaller than the slice)
  98. * we will always only issue the remaining available time.
  99. *
  100. * default: 5 msec, units: microseconds
  101. */
  102. unsigned int sysctl_sched_cfs_bandwidth_slice = 5000UL;
  103. #endif
  104. static inline void update_load_add(struct load_weight *lw, unsigned long inc)
  105. {
  106. lw->weight += inc;
  107. lw->inv_weight = 0;
  108. }
  109. static inline void update_load_sub(struct load_weight *lw, unsigned long dec)
  110. {
  111. lw->weight -= dec;
  112. lw->inv_weight = 0;
  113. }
  114. static inline void update_load_set(struct load_weight *lw, unsigned long w)
  115. {
  116. lw->weight = w;
  117. lw->inv_weight = 0;
  118. }
  119. /*
  120. * Increase the granularity value when there are more CPUs,
  121. * because with more CPUs the 'effective latency' as visible
  122. * to users decreases. But the relationship is not linear,
  123. * so pick a second-best guess by going with the log2 of the
  124. * number of CPUs.
  125. *
  126. * This idea comes from the SD scheduler of Con Kolivas:
  127. */
  128. static int get_update_sysctl_factor(void)
  129. {
  130. unsigned int cpus = min_t(int, num_online_cpus(), 8);
  131. unsigned int factor;
  132. switch (sysctl_sched_tunable_scaling) {
  133. case SCHED_TUNABLESCALING_NONE:
  134. factor = 1;
  135. break;
  136. case SCHED_TUNABLESCALING_LINEAR:
  137. factor = cpus;
  138. break;
  139. case SCHED_TUNABLESCALING_LOG:
  140. default:
  141. factor = 1 + ilog2(cpus);
  142. break;
  143. }
  144. return factor;
  145. }
  146. static void update_sysctl(void)
  147. {
  148. unsigned int factor = get_update_sysctl_factor();
  149. #define SET_SYSCTL(name) \
  150. (sysctl_##name = (factor) * normalized_sysctl_##name)
  151. SET_SYSCTL(sched_min_granularity);
  152. SET_SYSCTL(sched_latency);
  153. SET_SYSCTL(sched_wakeup_granularity);
  154. #undef SET_SYSCTL
  155. }
  156. void sched_init_granularity(void)
  157. {
  158. update_sysctl();
  159. }
  160. #define WMULT_CONST (~0U)
  161. #define WMULT_SHIFT 32
  162. static void __update_inv_weight(struct load_weight *lw)
  163. {
  164. unsigned long w;
  165. if (likely(lw->inv_weight))
  166. return;
  167. w = scale_load_down(lw->weight);
  168. if (BITS_PER_LONG > 32 && unlikely(w >= WMULT_CONST))
  169. lw->inv_weight = 1;
  170. else if (unlikely(!w))
  171. lw->inv_weight = WMULT_CONST;
  172. else
  173. lw->inv_weight = WMULT_CONST / w;
  174. }
  175. /*
  176. * delta_exec * weight / lw.weight
  177. * OR
  178. * (delta_exec * (weight * lw->inv_weight)) >> WMULT_SHIFT
  179. *
  180. * Either weight := NICE_0_LOAD and lw \e prio_to_wmult[], in which case
  181. * we're guaranteed shift stays positive because inv_weight is guaranteed to
  182. * fit 32 bits, and NICE_0_LOAD gives another 10 bits; therefore shift >= 22.
  183. *
  184. * Or, weight =< lw.weight (because lw.weight is the runqueue weight), thus
  185. * weight/lw.weight <= 1, and therefore our shift will also be positive.
  186. */
  187. static u64 __calc_delta(u64 delta_exec, unsigned long weight, struct load_weight *lw)
  188. {
  189. u64 fact = scale_load_down(weight);
  190. int shift = WMULT_SHIFT;
  191. __update_inv_weight(lw);
  192. if (unlikely(fact >> 32)) {
  193. while (fact >> 32) {
  194. fact >>= 1;
  195. shift--;
  196. }
  197. }
  198. /* hint to use a 32x32->64 mul */
  199. fact = (u64)(u32)fact * lw->inv_weight;
  200. while (fact >> 32) {
  201. fact >>= 1;
  202. shift--;
  203. }
  204. return mul_u64_u32_shr(delta_exec, fact, shift);
  205. }
  206. const struct sched_class fair_sched_class;
  207. /**************************************************************
  208. * CFS operations on generic schedulable entities:
  209. */
  210. #ifdef CONFIG_FAIR_GROUP_SCHED
  211. /* cpu runqueue to which this cfs_rq is attached */
  212. static inline struct rq *rq_of(struct cfs_rq *cfs_rq)
  213. {
  214. return cfs_rq->rq;
  215. }
  216. /* An entity is a task if it doesn't "own" a runqueue */
  217. #define entity_is_task(se) (!se->my_q)
  218. static inline struct task_struct *task_of(struct sched_entity *se)
  219. {
  220. #ifdef CONFIG_SCHED_DEBUG
  221. WARN_ON_ONCE(!entity_is_task(se));
  222. #endif
  223. return container_of(se, struct task_struct, se);
  224. }
  225. /* Walk up scheduling entities hierarchy */
  226. #define for_each_sched_entity(se) \
  227. for (; se; se = se->parent)
  228. static inline struct cfs_rq *task_cfs_rq(struct task_struct *p)
  229. {
  230. return p->se.cfs_rq;
  231. }
  232. /* runqueue on which this entity is (to be) queued */
  233. static inline struct cfs_rq *cfs_rq_of(struct sched_entity *se)
  234. {
  235. return se->cfs_rq;
  236. }
  237. /* runqueue "owned" by this group */
  238. static inline struct cfs_rq *group_cfs_rq(struct sched_entity *grp)
  239. {
  240. return grp->my_q;
  241. }
  242. static void update_cfs_rq_blocked_load(struct cfs_rq *cfs_rq,
  243. int force_update);
  244. static inline void list_add_leaf_cfs_rq(struct cfs_rq *cfs_rq)
  245. {
  246. if (!cfs_rq->on_list) {
  247. /*
  248. * Ensure we either appear before our parent (if already
  249. * enqueued) or force our parent to appear after us when it is
  250. * enqueued. The fact that we always enqueue bottom-up
  251. * reduces this to two cases.
  252. */
  253. if (cfs_rq->tg->parent &&
  254. cfs_rq->tg->parent->cfs_rq[cpu_of(rq_of(cfs_rq))]->on_list) {
  255. list_add_rcu(&cfs_rq->leaf_cfs_rq_list,
  256. &rq_of(cfs_rq)->leaf_cfs_rq_list);
  257. } else {
  258. list_add_tail_rcu(&cfs_rq->leaf_cfs_rq_list,
  259. &rq_of(cfs_rq)->leaf_cfs_rq_list);
  260. }
  261. cfs_rq->on_list = 1;
  262. /* We should have no load, but we need to update last_decay. */
  263. update_cfs_rq_blocked_load(cfs_rq, 0);
  264. }
  265. }
  266. static inline void list_del_leaf_cfs_rq(struct cfs_rq *cfs_rq)
  267. {
  268. if (cfs_rq->on_list) {
  269. list_del_rcu(&cfs_rq->leaf_cfs_rq_list);
  270. cfs_rq->on_list = 0;
  271. }
  272. }
  273. /* Iterate thr' all leaf cfs_rq's on a runqueue */
  274. #define for_each_leaf_cfs_rq(rq, cfs_rq) \
  275. list_for_each_entry_rcu(cfs_rq, &rq->leaf_cfs_rq_list, leaf_cfs_rq_list)
  276. /* Do the two (enqueued) entities belong to the same group ? */
  277. static inline struct cfs_rq *
  278. is_same_group(struct sched_entity *se, struct sched_entity *pse)
  279. {
  280. if (se->cfs_rq == pse->cfs_rq)
  281. return se->cfs_rq;
  282. return NULL;
  283. }
  284. static inline struct sched_entity *parent_entity(struct sched_entity *se)
  285. {
  286. return se->parent;
  287. }
  288. static void
  289. find_matching_se(struct sched_entity **se, struct sched_entity **pse)
  290. {
  291. int se_depth, pse_depth;
  292. /*
  293. * preemption test can be made between sibling entities who are in the
  294. * same cfs_rq i.e who have a common parent. Walk up the hierarchy of
  295. * both tasks until we find their ancestors who are siblings of common
  296. * parent.
  297. */
  298. /* First walk up until both entities are at same depth */
  299. se_depth = (*se)->depth;
  300. pse_depth = (*pse)->depth;
  301. while (se_depth > pse_depth) {
  302. se_depth--;
  303. *se = parent_entity(*se);
  304. }
  305. while (pse_depth > se_depth) {
  306. pse_depth--;
  307. *pse = parent_entity(*pse);
  308. }
  309. while (!is_same_group(*se, *pse)) {
  310. *se = parent_entity(*se);
  311. *pse = parent_entity(*pse);
  312. }
  313. }
  314. #else /* !CONFIG_FAIR_GROUP_SCHED */
  315. static inline struct task_struct *task_of(struct sched_entity *se)
  316. {
  317. return container_of(se, struct task_struct, se);
  318. }
  319. static inline struct rq *rq_of(struct cfs_rq *cfs_rq)
  320. {
  321. return container_of(cfs_rq, struct rq, cfs);
  322. }
  323. #define entity_is_task(se) 1
  324. #define for_each_sched_entity(se) \
  325. for (; se; se = NULL)
  326. static inline struct cfs_rq *task_cfs_rq(struct task_struct *p)
  327. {
  328. return &task_rq(p)->cfs;
  329. }
  330. static inline struct cfs_rq *cfs_rq_of(struct sched_entity *se)
  331. {
  332. struct task_struct *p = task_of(se);
  333. struct rq *rq = task_rq(p);
  334. return &rq->cfs;
  335. }
  336. /* runqueue "owned" by this group */
  337. static inline struct cfs_rq *group_cfs_rq(struct sched_entity *grp)
  338. {
  339. return NULL;
  340. }
  341. static inline void list_add_leaf_cfs_rq(struct cfs_rq *cfs_rq)
  342. {
  343. }
  344. static inline void list_del_leaf_cfs_rq(struct cfs_rq *cfs_rq)
  345. {
  346. }
  347. #define for_each_leaf_cfs_rq(rq, cfs_rq) \
  348. for (cfs_rq = &rq->cfs; cfs_rq; cfs_rq = NULL)
  349. static inline struct sched_entity *parent_entity(struct sched_entity *se)
  350. {
  351. return NULL;
  352. }
  353. static inline void
  354. find_matching_se(struct sched_entity **se, struct sched_entity **pse)
  355. {
  356. }
  357. #endif /* CONFIG_FAIR_GROUP_SCHED */
  358. static __always_inline
  359. void account_cfs_rq_runtime(struct cfs_rq *cfs_rq, u64 delta_exec);
  360. /**************************************************************
  361. * Scheduling class tree data structure manipulation methods:
  362. */
  363. static inline u64 max_vruntime(u64 max_vruntime, u64 vruntime)
  364. {
  365. s64 delta = (s64)(vruntime - max_vruntime);
  366. if (delta > 0)
  367. max_vruntime = vruntime;
  368. return max_vruntime;
  369. }
  370. static inline u64 min_vruntime(u64 min_vruntime, u64 vruntime)
  371. {
  372. s64 delta = (s64)(vruntime - min_vruntime);
  373. if (delta < 0)
  374. min_vruntime = vruntime;
  375. return min_vruntime;
  376. }
  377. static inline int entity_before(struct sched_entity *a,
  378. struct sched_entity *b)
  379. {
  380. return (s64)(a->vruntime - b->vruntime) < 0;
  381. }
  382. static void update_min_vruntime(struct cfs_rq *cfs_rq)
  383. {
  384. u64 vruntime = cfs_rq->min_vruntime;
  385. if (cfs_rq->curr)
  386. vruntime = cfs_rq->curr->vruntime;
  387. if (cfs_rq->rb_leftmost) {
  388. struct sched_entity *se = rb_entry(cfs_rq->rb_leftmost,
  389. struct sched_entity,
  390. run_node);
  391. if (!cfs_rq->curr)
  392. vruntime = se->vruntime;
  393. else
  394. vruntime = min_vruntime(vruntime, se->vruntime);
  395. }
  396. /* ensure we never gain time by being placed backwards. */
  397. cfs_rq->min_vruntime = max_vruntime(cfs_rq->min_vruntime, vruntime);
  398. #ifndef CONFIG_64BIT
  399. smp_wmb();
  400. cfs_rq->min_vruntime_copy = cfs_rq->min_vruntime;
  401. #endif
  402. }
  403. /*
  404. * Enqueue an entity into the rb-tree:
  405. */
  406. static void __enqueue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se)
  407. {
  408. struct rb_node **link = &cfs_rq->tasks_timeline.rb_node;
  409. struct rb_node *parent = NULL;
  410. struct sched_entity *entry;
  411. int leftmost = 1;
  412. /*
  413. * Find the right place in the rbtree:
  414. */
  415. while (*link) {
  416. parent = *link;
  417. entry = rb_entry(parent, struct sched_entity, run_node);
  418. /*
  419. * We dont care about collisions. Nodes with
  420. * the same key stay together.
  421. */
  422. if (entity_before(se, entry)) {
  423. link = &parent->rb_left;
  424. } else {
  425. link = &parent->rb_right;
  426. leftmost = 0;
  427. }
  428. }
  429. /*
  430. * Maintain a cache of leftmost tree entries (it is frequently
  431. * used):
  432. */
  433. if (leftmost)
  434. cfs_rq->rb_leftmost = &se->run_node;
  435. rb_link_node(&se->run_node, parent, link);
  436. rb_insert_color(&se->run_node, &cfs_rq->tasks_timeline);
  437. }
  438. static void __dequeue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se)
  439. {
  440. if (cfs_rq->rb_leftmost == &se->run_node) {
  441. struct rb_node *next_node;
  442. next_node = rb_next(&se->run_node);
  443. cfs_rq->rb_leftmost = next_node;
  444. }
  445. rb_erase(&se->run_node, &cfs_rq->tasks_timeline);
  446. }
  447. struct sched_entity *__pick_first_entity(struct cfs_rq *cfs_rq)
  448. {
  449. struct rb_node *left = cfs_rq->rb_leftmost;
  450. if (!left)
  451. return NULL;
  452. return rb_entry(left, struct sched_entity, run_node);
  453. }
  454. static struct sched_entity *__pick_next_entity(struct sched_entity *se)
  455. {
  456. struct rb_node *next = rb_next(&se->run_node);
  457. if (!next)
  458. return NULL;
  459. return rb_entry(next, struct sched_entity, run_node);
  460. }
  461. #ifdef CONFIG_SCHED_DEBUG
  462. struct sched_entity *__pick_last_entity(struct cfs_rq *cfs_rq)
  463. {
  464. struct rb_node *last = rb_last(&cfs_rq->tasks_timeline);
  465. if (!last)
  466. return NULL;
  467. return rb_entry(last, struct sched_entity, run_node);
  468. }
  469. /**************************************************************
  470. * Scheduling class statistics methods:
  471. */
  472. int sched_proc_update_handler(struct ctl_table *table, int write,
  473. void __user *buffer, size_t *lenp,
  474. loff_t *ppos)
  475. {
  476. int ret = proc_dointvec_minmax(table, write, buffer, lenp, ppos);
  477. int factor = get_update_sysctl_factor();
  478. if (ret || !write)
  479. return ret;
  480. sched_nr_latency = DIV_ROUND_UP(sysctl_sched_latency,
  481. sysctl_sched_min_granularity);
  482. #define WRT_SYSCTL(name) \
  483. (normalized_sysctl_##name = sysctl_##name / (factor))
  484. WRT_SYSCTL(sched_min_granularity);
  485. WRT_SYSCTL(sched_latency);
  486. WRT_SYSCTL(sched_wakeup_granularity);
  487. #undef WRT_SYSCTL
  488. return 0;
  489. }
  490. #endif
  491. /*
  492. * delta /= w
  493. */
  494. static inline u64 calc_delta_fair(u64 delta, struct sched_entity *se)
  495. {
  496. if (unlikely(se->load.weight != NICE_0_LOAD))
  497. delta = __calc_delta(delta, NICE_0_LOAD, &se->load);
  498. return delta;
  499. }
  500. /*
  501. * The idea is to set a period in which each task runs once.
  502. *
  503. * When there are too many tasks (sched_nr_latency) we have to stretch
  504. * this period because otherwise the slices get too small.
  505. *
  506. * p = (nr <= nl) ? l : l*nr/nl
  507. */
  508. static u64 __sched_period(unsigned long nr_running)
  509. {
  510. u64 period = sysctl_sched_latency;
  511. unsigned long nr_latency = sched_nr_latency;
  512. if (unlikely(nr_running > nr_latency)) {
  513. period = sysctl_sched_min_granularity;
  514. period *= nr_running;
  515. }
  516. return period;
  517. }
  518. /*
  519. * We calculate the wall-time slice from the period by taking a part
  520. * proportional to the weight.
  521. *
  522. * s = p*P[w/rw]
  523. */
  524. static u64 sched_slice(struct cfs_rq *cfs_rq, struct sched_entity *se)
  525. {
  526. u64 slice = __sched_period(cfs_rq->nr_running + !se->on_rq);
  527. for_each_sched_entity(se) {
  528. struct load_weight *load;
  529. struct load_weight lw;
  530. cfs_rq = cfs_rq_of(se);
  531. load = &cfs_rq->load;
  532. if (unlikely(!se->on_rq)) {
  533. lw = cfs_rq->load;
  534. update_load_add(&lw, se->load.weight);
  535. load = &lw;
  536. }
  537. slice = __calc_delta(slice, se->load.weight, load);
  538. }
  539. return slice;
  540. }
  541. /*
  542. * We calculate the vruntime slice of a to-be-inserted task.
  543. *
  544. * vs = s/w
  545. */
  546. static u64 sched_vslice(struct cfs_rq *cfs_rq, struct sched_entity *se)
  547. {
  548. return calc_delta_fair(sched_slice(cfs_rq, se), se);
  549. }
  550. #ifdef CONFIG_SMP
  551. static int select_idle_sibling(struct task_struct *p, int cpu);
  552. static unsigned long task_h_load(struct task_struct *p);
  553. static inline void __update_task_entity_contrib(struct sched_entity *se);
  554. /* Give new task start runnable values to heavy its load in infant time */
  555. void init_task_runnable_average(struct task_struct *p)
  556. {
  557. u32 slice;
  558. slice = sched_slice(task_cfs_rq(p), &p->se) >> 10;
  559. p->se.avg.runnable_avg_sum = slice;
  560. p->se.avg.runnable_avg_period = slice;
  561. __update_task_entity_contrib(&p->se);
  562. }
  563. #else
  564. void init_task_runnable_average(struct task_struct *p)
  565. {
  566. }
  567. #endif
  568. /*
  569. * Update the current task's runtime statistics.
  570. */
  571. static void update_curr(struct cfs_rq *cfs_rq)
  572. {
  573. struct sched_entity *curr = cfs_rq->curr;
  574. u64 now = rq_clock_task(rq_of(cfs_rq));
  575. u64 delta_exec;
  576. if (unlikely(!curr))
  577. return;
  578. delta_exec = now - curr->exec_start;
  579. if (unlikely((s64)delta_exec <= 0))
  580. return;
  581. curr->exec_start = now;
  582. schedstat_set(curr->statistics.exec_max,
  583. max(delta_exec, curr->statistics.exec_max));
  584. curr->sum_exec_runtime += delta_exec;
  585. schedstat_add(cfs_rq, exec_clock, delta_exec);
  586. curr->vruntime += calc_delta_fair(delta_exec, curr);
  587. update_min_vruntime(cfs_rq);
  588. if (entity_is_task(curr)) {
  589. struct task_struct *curtask = task_of(curr);
  590. trace_sched_stat_runtime(curtask, delta_exec, curr->vruntime);
  591. cpuacct_charge(curtask, delta_exec);
  592. account_group_exec_runtime(curtask, delta_exec);
  593. }
  594. account_cfs_rq_runtime(cfs_rq, delta_exec);
  595. }
  596. static void update_curr_fair(struct rq *rq)
  597. {
  598. update_curr(cfs_rq_of(&rq->curr->se));
  599. }
  600. static inline void
  601. update_stats_wait_start(struct cfs_rq *cfs_rq, struct sched_entity *se)
  602. {
  603. schedstat_set(se->statistics.wait_start, rq_clock(rq_of(cfs_rq)));
  604. }
  605. /*
  606. * Task is being enqueued - update stats:
  607. */
  608. static void update_stats_enqueue(struct cfs_rq *cfs_rq, struct sched_entity *se)
  609. {
  610. /*
  611. * Are we enqueueing a waiting task? (for current tasks
  612. * a dequeue/enqueue event is a NOP)
  613. */
  614. if (se != cfs_rq->curr)
  615. update_stats_wait_start(cfs_rq, se);
  616. }
  617. static void
  618. update_stats_wait_end(struct cfs_rq *cfs_rq, struct sched_entity *se)
  619. {
  620. schedstat_set(se->statistics.wait_max, max(se->statistics.wait_max,
  621. rq_clock(rq_of(cfs_rq)) - se->statistics.wait_start));
  622. schedstat_set(se->statistics.wait_count, se->statistics.wait_count + 1);
  623. schedstat_set(se->statistics.wait_sum, se->statistics.wait_sum +
  624. rq_clock(rq_of(cfs_rq)) - se->statistics.wait_start);
  625. #ifdef CONFIG_SCHEDSTATS
  626. if (entity_is_task(se)) {
  627. trace_sched_stat_wait(task_of(se),
  628. rq_clock(rq_of(cfs_rq)) - se->statistics.wait_start);
  629. }
  630. #endif
  631. schedstat_set(se->statistics.wait_start, 0);
  632. }
  633. static inline void
  634. update_stats_dequeue(struct cfs_rq *cfs_rq, struct sched_entity *se)
  635. {
  636. /*
  637. * Mark the end of the wait period if dequeueing a
  638. * waiting task:
  639. */
  640. if (se != cfs_rq->curr)
  641. update_stats_wait_end(cfs_rq, se);
  642. }
  643. /*
  644. * We are picking a new current task - update its stats:
  645. */
  646. static inline void
  647. update_stats_curr_start(struct cfs_rq *cfs_rq, struct sched_entity *se)
  648. {
  649. /*
  650. * We are starting a new run period:
  651. */
  652. se->exec_start = rq_clock_task(rq_of(cfs_rq));
  653. }
  654. /**************************************************
  655. * Scheduling class queueing methods:
  656. */
  657. #ifdef CONFIG_NUMA_BALANCING
  658. /*
  659. * Approximate time to scan a full NUMA task in ms. The task scan period is
  660. * calculated based on the tasks virtual memory size and
  661. * numa_balancing_scan_size.
  662. */
  663. unsigned int sysctl_numa_balancing_scan_period_min = 1000;
  664. unsigned int sysctl_numa_balancing_scan_period_max = 60000;
  665. /* Portion of address space to scan in MB */
  666. unsigned int sysctl_numa_balancing_scan_size = 256;
  667. /* Scan @scan_size MB every @scan_period after an initial @scan_delay in ms */
  668. unsigned int sysctl_numa_balancing_scan_delay = 1000;
  669. static unsigned int task_nr_scan_windows(struct task_struct *p)
  670. {
  671. unsigned long rss = 0;
  672. unsigned long nr_scan_pages;
  673. /*
  674. * Calculations based on RSS as non-present and empty pages are skipped
  675. * by the PTE scanner and NUMA hinting faults should be trapped based
  676. * on resident pages
  677. */
  678. nr_scan_pages = sysctl_numa_balancing_scan_size << (20 - PAGE_SHIFT);
  679. rss = get_mm_rss(p->mm);
  680. if (!rss)
  681. rss = nr_scan_pages;
  682. rss = round_up(rss, nr_scan_pages);
  683. return rss / nr_scan_pages;
  684. }
  685. /* For sanitys sake, never scan more PTEs than MAX_SCAN_WINDOW MB/sec. */
  686. #define MAX_SCAN_WINDOW 2560
  687. static unsigned int task_scan_min(struct task_struct *p)
  688. {
  689. unsigned int scan_size = ACCESS_ONCE(sysctl_numa_balancing_scan_size);
  690. unsigned int scan, floor;
  691. unsigned int windows = 1;
  692. if (scan_size < MAX_SCAN_WINDOW)
  693. windows = MAX_SCAN_WINDOW / scan_size;
  694. floor = 1000 / windows;
  695. scan = sysctl_numa_balancing_scan_period_min / task_nr_scan_windows(p);
  696. return max_t(unsigned int, floor, scan);
  697. }
  698. static unsigned int task_scan_max(struct task_struct *p)
  699. {
  700. unsigned int smin = task_scan_min(p);
  701. unsigned int smax;
  702. /* Watch for min being lower than max due to floor calculations */
  703. smax = sysctl_numa_balancing_scan_period_max / task_nr_scan_windows(p);
  704. return max(smin, smax);
  705. }
  706. static void account_numa_enqueue(struct rq *rq, struct task_struct *p)
  707. {
  708. rq->nr_numa_running += (p->numa_preferred_nid != -1);
  709. rq->nr_preferred_running += (p->numa_preferred_nid == task_node(p));
  710. }
  711. static void account_numa_dequeue(struct rq *rq, struct task_struct *p)
  712. {
  713. rq->nr_numa_running -= (p->numa_preferred_nid != -1);
  714. rq->nr_preferred_running -= (p->numa_preferred_nid == task_node(p));
  715. }
  716. struct numa_group {
  717. atomic_t refcount;
  718. spinlock_t lock; /* nr_tasks, tasks */
  719. int nr_tasks;
  720. pid_t gid;
  721. struct rcu_head rcu;
  722. nodemask_t active_nodes;
  723. unsigned long total_faults;
  724. /*
  725. * Faults_cpu is used to decide whether memory should move
  726. * towards the CPU. As a consequence, these stats are weighted
  727. * more by CPU use than by memory faults.
  728. */
  729. unsigned long *faults_cpu;
  730. unsigned long faults[0];
  731. };
  732. /* Shared or private faults. */
  733. #define NR_NUMA_HINT_FAULT_TYPES 2
  734. /* Memory and CPU locality */
  735. #define NR_NUMA_HINT_FAULT_STATS (NR_NUMA_HINT_FAULT_TYPES * 2)
  736. /* Averaged statistics, and temporary buffers. */
  737. #define NR_NUMA_HINT_FAULT_BUCKETS (NR_NUMA_HINT_FAULT_STATS * 2)
  738. pid_t task_numa_group_id(struct task_struct *p)
  739. {
  740. return p->numa_group ? p->numa_group->gid : 0;
  741. }
  742. /*
  743. * The averaged statistics, shared & private, memory & cpu,
  744. * occupy the first half of the array. The second half of the
  745. * array is for current counters, which are averaged into the
  746. * first set by task_numa_placement.
  747. */
  748. static inline int task_faults_idx(enum numa_faults_stats s, int nid, int priv)
  749. {
  750. return NR_NUMA_HINT_FAULT_TYPES * (s * nr_node_ids + nid) + priv;
  751. }
  752. static inline unsigned long task_faults(struct task_struct *p, int nid)
  753. {
  754. if (!p->numa_faults)
  755. return 0;
  756. return p->numa_faults[task_faults_idx(NUMA_MEM, nid, 0)] +
  757. p->numa_faults[task_faults_idx(NUMA_MEM, nid, 1)];
  758. }
  759. static inline unsigned long group_faults(struct task_struct *p, int nid)
  760. {
  761. if (!p->numa_group)
  762. return 0;
  763. return p->numa_group->faults[task_faults_idx(NUMA_MEM, nid, 0)] +
  764. p->numa_group->faults[task_faults_idx(NUMA_MEM, nid, 1)];
  765. }
  766. static inline unsigned long group_faults_cpu(struct numa_group *group, int nid)
  767. {
  768. return group->faults_cpu[task_faults_idx(NUMA_MEM, nid, 0)] +
  769. group->faults_cpu[task_faults_idx(NUMA_MEM, nid, 1)];
  770. }
  771. /* Handle placement on systems where not all nodes are directly connected. */
  772. static unsigned long score_nearby_nodes(struct task_struct *p, int nid,
  773. int maxdist, bool task)
  774. {
  775. unsigned long score = 0;
  776. int node;
  777. /*
  778. * All nodes are directly connected, and the same distance
  779. * from each other. No need for fancy placement algorithms.
  780. */
  781. if (sched_numa_topology_type == NUMA_DIRECT)
  782. return 0;
  783. /*
  784. * This code is called for each node, introducing N^2 complexity,
  785. * which should be ok given the number of nodes rarely exceeds 8.
  786. */
  787. for_each_online_node(node) {
  788. unsigned long faults;
  789. int dist = node_distance(nid, node);
  790. /*
  791. * The furthest away nodes in the system are not interesting
  792. * for placement; nid was already counted.
  793. */
  794. if (dist == sched_max_numa_distance || node == nid)
  795. continue;
  796. /*
  797. * On systems with a backplane NUMA topology, compare groups
  798. * of nodes, and move tasks towards the group with the most
  799. * memory accesses. When comparing two nodes at distance
  800. * "hoplimit", only nodes closer by than "hoplimit" are part
  801. * of each group. Skip other nodes.
  802. */
  803. if (sched_numa_topology_type == NUMA_BACKPLANE &&
  804. dist > maxdist)
  805. continue;
  806. /* Add up the faults from nearby nodes. */
  807. if (task)
  808. faults = task_faults(p, node);
  809. else
  810. faults = group_faults(p, node);
  811. /*
  812. * On systems with a glueless mesh NUMA topology, there are
  813. * no fixed "groups of nodes". Instead, nodes that are not
  814. * directly connected bounce traffic through intermediate
  815. * nodes; a numa_group can occupy any set of nodes.
  816. * The further away a node is, the less the faults count.
  817. * This seems to result in good task placement.
  818. */
  819. if (sched_numa_topology_type == NUMA_GLUELESS_MESH) {
  820. faults *= (sched_max_numa_distance - dist);
  821. faults /= (sched_max_numa_distance - LOCAL_DISTANCE);
  822. }
  823. score += faults;
  824. }
  825. return score;
  826. }
  827. /*
  828. * These return the fraction of accesses done by a particular task, or
  829. * task group, on a particular numa node. The group weight is given a
  830. * larger multiplier, in order to group tasks together that are almost
  831. * evenly spread out between numa nodes.
  832. */
  833. static inline unsigned long task_weight(struct task_struct *p, int nid,
  834. int dist)
  835. {
  836. unsigned long faults, total_faults;
  837. if (!p->numa_faults)
  838. return 0;
  839. total_faults = p->total_numa_faults;
  840. if (!total_faults)
  841. return 0;
  842. faults = task_faults(p, nid);
  843. faults += score_nearby_nodes(p, nid, dist, true);
  844. return 1000 * faults / total_faults;
  845. }
  846. static inline unsigned long group_weight(struct task_struct *p, int nid,
  847. int dist)
  848. {
  849. unsigned long faults, total_faults;
  850. if (!p->numa_group)
  851. return 0;
  852. total_faults = p->numa_group->total_faults;
  853. if (!total_faults)
  854. return 0;
  855. faults = group_faults(p, nid);
  856. faults += score_nearby_nodes(p, nid, dist, false);
  857. return 1000 * faults / total_faults;
  858. }
  859. bool should_numa_migrate_memory(struct task_struct *p, struct page * page,
  860. int src_nid, int dst_cpu)
  861. {
  862. struct numa_group *ng = p->numa_group;
  863. int dst_nid = cpu_to_node(dst_cpu);
  864. int last_cpupid, this_cpupid;
  865. this_cpupid = cpu_pid_to_cpupid(dst_cpu, current->pid);
  866. /*
  867. * Multi-stage node selection is used in conjunction with a periodic
  868. * migration fault to build a temporal task<->page relation. By using
  869. * a two-stage filter we remove short/unlikely relations.
  870. *
  871. * Using P(p) ~ n_p / n_t as per frequentist probability, we can equate
  872. * a task's usage of a particular page (n_p) per total usage of this
  873. * page (n_t) (in a given time-span) to a probability.
  874. *
  875. * Our periodic faults will sample this probability and getting the
  876. * same result twice in a row, given these samples are fully
  877. * independent, is then given by P(n)^2, provided our sample period
  878. * is sufficiently short compared to the usage pattern.
  879. *
  880. * This quadric squishes small probabilities, making it less likely we
  881. * act on an unlikely task<->page relation.
  882. */
  883. last_cpupid = page_cpupid_xchg_last(page, this_cpupid);
  884. if (!cpupid_pid_unset(last_cpupid) &&
  885. cpupid_to_nid(last_cpupid) != dst_nid)
  886. return false;
  887. /* Always allow migrate on private faults */
  888. if (cpupid_match_pid(p, last_cpupid))
  889. return true;
  890. /* A shared fault, but p->numa_group has not been set up yet. */
  891. if (!ng)
  892. return true;
  893. /*
  894. * Do not migrate if the destination is not a node that
  895. * is actively used by this numa group.
  896. */
  897. if (!node_isset(dst_nid, ng->active_nodes))
  898. return false;
  899. /*
  900. * Source is a node that is not actively used by this
  901. * numa group, while the destination is. Migrate.
  902. */
  903. if (!node_isset(src_nid, ng->active_nodes))
  904. return true;
  905. /*
  906. * Both source and destination are nodes in active
  907. * use by this numa group. Maximize memory bandwidth
  908. * by migrating from more heavily used groups, to less
  909. * heavily used ones, spreading the load around.
  910. * Use a 1/4 hysteresis to avoid spurious page movement.
  911. */
  912. return group_faults(p, dst_nid) < (group_faults(p, src_nid) * 3 / 4);
  913. }
  914. static unsigned long weighted_cpuload(const int cpu);
  915. static unsigned long source_load(int cpu, int type);
  916. static unsigned long target_load(int cpu, int type);
  917. static unsigned long capacity_of(int cpu);
  918. static long effective_load(struct task_group *tg, int cpu, long wl, long wg);
  919. /* Cached statistics for all CPUs within a node */
  920. struct numa_stats {
  921. unsigned long nr_running;
  922. unsigned long load;
  923. /* Total compute capacity of CPUs on a node */
  924. unsigned long compute_capacity;
  925. /* Approximate capacity in terms of runnable tasks on a node */
  926. unsigned long task_capacity;
  927. int has_free_capacity;
  928. };
  929. /*
  930. * XXX borrowed from update_sg_lb_stats
  931. */
  932. static void update_numa_stats(struct numa_stats *ns, int nid)
  933. {
  934. int smt, cpu, cpus = 0;
  935. unsigned long capacity;
  936. memset(ns, 0, sizeof(*ns));
  937. for_each_cpu(cpu, cpumask_of_node(nid)) {
  938. struct rq *rq = cpu_rq(cpu);
  939. ns->nr_running += rq->nr_running;
  940. ns->load += weighted_cpuload(cpu);
  941. ns->compute_capacity += capacity_of(cpu);
  942. cpus++;
  943. }
  944. /*
  945. * If we raced with hotplug and there are no CPUs left in our mask
  946. * the @ns structure is NULL'ed and task_numa_compare() will
  947. * not find this node attractive.
  948. *
  949. * We'll either bail at !has_free_capacity, or we'll detect a huge
  950. * imbalance and bail there.
  951. */
  952. if (!cpus)
  953. return;
  954. /* smt := ceil(cpus / capacity), assumes: 1 < smt_power < 2 */
  955. smt = DIV_ROUND_UP(SCHED_CAPACITY_SCALE * cpus, ns->compute_capacity);
  956. capacity = cpus / smt; /* cores */
  957. ns->task_capacity = min_t(unsigned, capacity,
  958. DIV_ROUND_CLOSEST(ns->compute_capacity, SCHED_CAPACITY_SCALE));
  959. ns->has_free_capacity = (ns->nr_running < ns->task_capacity);
  960. }
  961. struct task_numa_env {
  962. struct task_struct *p;
  963. int src_cpu, src_nid;
  964. int dst_cpu, dst_nid;
  965. struct numa_stats src_stats, dst_stats;
  966. int imbalance_pct;
  967. int dist;
  968. struct task_struct *best_task;
  969. long best_imp;
  970. int best_cpu;
  971. };
  972. static void task_numa_assign(struct task_numa_env *env,
  973. struct task_struct *p, long imp)
  974. {
  975. if (env->best_task)
  976. put_task_struct(env->best_task);
  977. if (p)
  978. get_task_struct(p);
  979. env->best_task = p;
  980. env->best_imp = imp;
  981. env->best_cpu = env->dst_cpu;
  982. }
  983. static bool load_too_imbalanced(long src_load, long dst_load,
  984. struct task_numa_env *env)
  985. {
  986. long imb, old_imb;
  987. long orig_src_load, orig_dst_load;
  988. long src_capacity, dst_capacity;
  989. /*
  990. * The load is corrected for the CPU capacity available on each node.
  991. *
  992. * src_load dst_load
  993. * ------------ vs ---------
  994. * src_capacity dst_capacity
  995. */
  996. src_capacity = env->src_stats.compute_capacity;
  997. dst_capacity = env->dst_stats.compute_capacity;
  998. /* We care about the slope of the imbalance, not the direction. */
  999. if (dst_load < src_load)
  1000. swap(dst_load, src_load);
  1001. /* Is the difference below the threshold? */
  1002. imb = dst_load * src_capacity * 100 -
  1003. src_load * dst_capacity * env->imbalance_pct;
  1004. if (imb <= 0)
  1005. return false;
  1006. /*
  1007. * The imbalance is above the allowed threshold.
  1008. * Compare it with the old imbalance.
  1009. */
  1010. orig_src_load = env->src_stats.load;
  1011. orig_dst_load = env->dst_stats.load;
  1012. if (orig_dst_load < orig_src_load)
  1013. swap(orig_dst_load, orig_src_load);
  1014. old_imb = orig_dst_load * src_capacity * 100 -
  1015. orig_src_load * dst_capacity * env->imbalance_pct;
  1016. /* Would this change make things worse? */
  1017. return (imb > old_imb);
  1018. }
  1019. /*
  1020. * This checks if the overall compute and NUMA accesses of the system would
  1021. * be improved if the source tasks was migrated to the target dst_cpu taking
  1022. * into account that it might be best if task running on the dst_cpu should
  1023. * be exchanged with the source task
  1024. */
  1025. static void task_numa_compare(struct task_numa_env *env,
  1026. long taskimp, long groupimp)
  1027. {
  1028. struct rq *src_rq = cpu_rq(env->src_cpu);
  1029. struct rq *dst_rq = cpu_rq(env->dst_cpu);
  1030. struct task_struct *cur;
  1031. long src_load, dst_load;
  1032. long load;
  1033. long imp = env->p->numa_group ? groupimp : taskimp;
  1034. long moveimp = imp;
  1035. int dist = env->dist;
  1036. rcu_read_lock();
  1037. raw_spin_lock_irq(&dst_rq->lock);
  1038. cur = dst_rq->curr;
  1039. /*
  1040. * No need to move the exiting task, and this ensures that ->curr
  1041. * wasn't reaped and thus get_task_struct() in task_numa_assign()
  1042. * is safe under RCU read lock.
  1043. * Note that rcu_read_lock() itself can't protect from the final
  1044. * put_task_struct() after the last schedule().
  1045. */
  1046. if ((cur->flags & PF_EXITING) || is_idle_task(cur))
  1047. cur = NULL;
  1048. raw_spin_unlock_irq(&dst_rq->lock);
  1049. /*
  1050. * Because we have preemption enabled we can get migrated around and
  1051. * end try selecting ourselves (current == env->p) as a swap candidate.
  1052. */
  1053. if (cur == env->p)
  1054. goto unlock;
  1055. /*
  1056. * "imp" is the fault differential for the source task between the
  1057. * source and destination node. Calculate the total differential for
  1058. * the source task and potential destination task. The more negative
  1059. * the value is, the more rmeote accesses that would be expected to
  1060. * be incurred if the tasks were swapped.
  1061. */
  1062. if (cur) {
  1063. /* Skip this swap candidate if cannot move to the source cpu */
  1064. if (!cpumask_test_cpu(env->src_cpu, tsk_cpus_allowed(cur)))
  1065. goto unlock;
  1066. /*
  1067. * If dst and source tasks are in the same NUMA group, or not
  1068. * in any group then look only at task weights.
  1069. */
  1070. if (cur->numa_group == env->p->numa_group) {
  1071. imp = taskimp + task_weight(cur, env->src_nid, dist) -
  1072. task_weight(cur, env->dst_nid, dist);
  1073. /*
  1074. * Add some hysteresis to prevent swapping the
  1075. * tasks within a group over tiny differences.
  1076. */
  1077. if (cur->numa_group)
  1078. imp -= imp/16;
  1079. } else {
  1080. /*
  1081. * Compare the group weights. If a task is all by
  1082. * itself (not part of a group), use the task weight
  1083. * instead.
  1084. */
  1085. if (cur->numa_group)
  1086. imp += group_weight(cur, env->src_nid, dist) -
  1087. group_weight(cur, env->dst_nid, dist);
  1088. else
  1089. imp += task_weight(cur, env->src_nid, dist) -
  1090. task_weight(cur, env->dst_nid, dist);
  1091. }
  1092. }
  1093. if (imp <= env->best_imp && moveimp <= env->best_imp)
  1094. goto unlock;
  1095. if (!cur) {
  1096. /* Is there capacity at our destination? */
  1097. if (env->src_stats.nr_running <= env->src_stats.task_capacity &&
  1098. !env->dst_stats.has_free_capacity)
  1099. goto unlock;
  1100. goto balance;
  1101. }
  1102. /* Balance doesn't matter much if we're running a task per cpu */
  1103. if (imp > env->best_imp && src_rq->nr_running == 1 &&
  1104. dst_rq->nr_running == 1)
  1105. goto assign;
  1106. /*
  1107. * In the overloaded case, try and keep the load balanced.
  1108. */
  1109. balance:
  1110. load = task_h_load(env->p);
  1111. dst_load = env->dst_stats.load + load;
  1112. src_load = env->src_stats.load - load;
  1113. if (moveimp > imp && moveimp > env->best_imp) {
  1114. /*
  1115. * If the improvement from just moving env->p direction is
  1116. * better than swapping tasks around, check if a move is
  1117. * possible. Store a slightly smaller score than moveimp,
  1118. * so an actually idle CPU will win.
  1119. */
  1120. if (!load_too_imbalanced(src_load, dst_load, env)) {
  1121. imp = moveimp - 1;
  1122. cur = NULL;
  1123. goto assign;
  1124. }
  1125. }
  1126. if (imp <= env->best_imp)
  1127. goto unlock;
  1128. if (cur) {
  1129. load = task_h_load(cur);
  1130. dst_load -= load;
  1131. src_load += load;
  1132. }
  1133. if (load_too_imbalanced(src_load, dst_load, env))
  1134. goto unlock;
  1135. /*
  1136. * One idle CPU per node is evaluated for a task numa move.
  1137. * Call select_idle_sibling to maybe find a better one.
  1138. */
  1139. if (!cur)
  1140. env->dst_cpu = select_idle_sibling(env->p, env->dst_cpu);
  1141. assign:
  1142. task_numa_assign(env, cur, imp);
  1143. unlock:
  1144. rcu_read_unlock();
  1145. }
  1146. static void task_numa_find_cpu(struct task_numa_env *env,
  1147. long taskimp, long groupimp)
  1148. {
  1149. int cpu;
  1150. for_each_cpu(cpu, cpumask_of_node(env->dst_nid)) {
  1151. /* Skip this CPU if the source task cannot migrate */
  1152. if (!cpumask_test_cpu(cpu, tsk_cpus_allowed(env->p)))
  1153. continue;
  1154. env->dst_cpu = cpu;
  1155. task_numa_compare(env, taskimp, groupimp);
  1156. }
  1157. }
  1158. static int task_numa_migrate(struct task_struct *p)
  1159. {
  1160. struct task_numa_env env = {
  1161. .p = p,
  1162. .src_cpu = task_cpu(p),
  1163. .src_nid = task_node(p),
  1164. .imbalance_pct = 112,
  1165. .best_task = NULL,
  1166. .best_imp = 0,
  1167. .best_cpu = -1
  1168. };
  1169. struct sched_domain *sd;
  1170. unsigned long taskweight, groupweight;
  1171. int nid, ret, dist;
  1172. long taskimp, groupimp;
  1173. /*
  1174. * Pick the lowest SD_NUMA domain, as that would have the smallest
  1175. * imbalance and would be the first to start moving tasks about.
  1176. *
  1177. * And we want to avoid any moving of tasks about, as that would create
  1178. * random movement of tasks -- counter the numa conditions we're trying
  1179. * to satisfy here.
  1180. */
  1181. rcu_read_lock();
  1182. sd = rcu_dereference(per_cpu(sd_numa, env.src_cpu));
  1183. if (sd)
  1184. env.imbalance_pct = 100 + (sd->imbalance_pct - 100) / 2;
  1185. rcu_read_unlock();
  1186. /*
  1187. * Cpusets can break the scheduler domain tree into smaller
  1188. * balance domains, some of which do not cross NUMA boundaries.
  1189. * Tasks that are "trapped" in such domains cannot be migrated
  1190. * elsewhere, so there is no point in (re)trying.
  1191. */
  1192. if (unlikely(!sd)) {
  1193. p->numa_preferred_nid = task_node(p);
  1194. return -EINVAL;
  1195. }
  1196. env.dst_nid = p->numa_preferred_nid;
  1197. dist = env.dist = node_distance(env.src_nid, env.dst_nid);
  1198. taskweight = task_weight(p, env.src_nid, dist);
  1199. groupweight = group_weight(p, env.src_nid, dist);
  1200. update_numa_stats(&env.src_stats, env.src_nid);
  1201. taskimp = task_weight(p, env.dst_nid, dist) - taskweight;
  1202. groupimp = group_weight(p, env.dst_nid, dist) - groupweight;
  1203. update_numa_stats(&env.dst_stats, env.dst_nid);
  1204. /* Try to find a spot on the preferred nid. */
  1205. task_numa_find_cpu(&env, taskimp, groupimp);
  1206. /*
  1207. * Look at other nodes in these cases:
  1208. * - there is no space available on the preferred_nid
  1209. * - the task is part of a numa_group that is interleaved across
  1210. * multiple NUMA nodes; in order to better consolidate the group,
  1211. * we need to check other locations.
  1212. */
  1213. if (env.best_cpu == -1 || (p->numa_group &&
  1214. nodes_weight(p->numa_group->active_nodes) > 1)) {
  1215. for_each_online_node(nid) {
  1216. if (nid == env.src_nid || nid == p->numa_preferred_nid)
  1217. continue;
  1218. dist = node_distance(env.src_nid, env.dst_nid);
  1219. if (sched_numa_topology_type == NUMA_BACKPLANE &&
  1220. dist != env.dist) {
  1221. taskweight = task_weight(p, env.src_nid, dist);
  1222. groupweight = group_weight(p, env.src_nid, dist);
  1223. }
  1224. /* Only consider nodes where both task and groups benefit */
  1225. taskimp = task_weight(p, nid, dist) - taskweight;
  1226. groupimp = group_weight(p, nid, dist) - groupweight;
  1227. if (taskimp < 0 && groupimp < 0)
  1228. continue;
  1229. env.dist = dist;
  1230. env.dst_nid = nid;
  1231. update_numa_stats(&env.dst_stats, env.dst_nid);
  1232. task_numa_find_cpu(&env, taskimp, groupimp);
  1233. }
  1234. }
  1235. /*
  1236. * If the task is part of a workload that spans multiple NUMA nodes,
  1237. * and is migrating into one of the workload's active nodes, remember
  1238. * this node as the task's preferred numa node, so the workload can
  1239. * settle down.
  1240. * A task that migrated to a second choice node will be better off
  1241. * trying for a better one later. Do not set the preferred node here.
  1242. */
  1243. if (p->numa_group) {
  1244. if (env.best_cpu == -1)
  1245. nid = env.src_nid;
  1246. else
  1247. nid = env.dst_nid;
  1248. if (node_isset(nid, p->numa_group->active_nodes))
  1249. sched_setnuma(p, env.dst_nid);
  1250. }
  1251. /* No better CPU than the current one was found. */
  1252. if (env.best_cpu == -1)
  1253. return -EAGAIN;
  1254. /*
  1255. * Reset the scan period if the task is being rescheduled on an
  1256. * alternative node to recheck if the tasks is now properly placed.
  1257. */
  1258. p->numa_scan_period = task_scan_min(p);
  1259. if (env.best_task == NULL) {
  1260. ret = migrate_task_to(p, env.best_cpu);
  1261. if (ret != 0)
  1262. trace_sched_stick_numa(p, env.src_cpu, env.best_cpu);
  1263. return ret;
  1264. }
  1265. ret = migrate_swap(p, env.best_task);
  1266. if (ret != 0)
  1267. trace_sched_stick_numa(p, env.src_cpu, task_cpu(env.best_task));
  1268. put_task_struct(env.best_task);
  1269. return ret;
  1270. }
  1271. /* Attempt to migrate a task to a CPU on the preferred node. */
  1272. static void numa_migrate_preferred(struct task_struct *p)
  1273. {
  1274. unsigned long interval = HZ;
  1275. /* This task has no NUMA fault statistics yet */
  1276. if (unlikely(p->numa_preferred_nid == -1 || !p->numa_faults))
  1277. return;
  1278. /* Periodically retry migrating the task to the preferred node */
  1279. interval = min(interval, msecs_to_jiffies(p->numa_scan_period) / 16);
  1280. p->numa_migrate_retry = jiffies + interval;
  1281. /* Success if task is already running on preferred CPU */
  1282. if (task_node(p) == p->numa_preferred_nid)
  1283. return;
  1284. /* Otherwise, try migrate to a CPU on the preferred node */
  1285. task_numa_migrate(p);
  1286. }
  1287. /*
  1288. * Find the nodes on which the workload is actively running. We do this by
  1289. * tracking the nodes from which NUMA hinting faults are triggered. This can
  1290. * be different from the set of nodes where the workload's memory is currently
  1291. * located.
  1292. *
  1293. * The bitmask is used to make smarter decisions on when to do NUMA page
  1294. * migrations, To prevent flip-flopping, and excessive page migrations, nodes
  1295. * are added when they cause over 6/16 of the maximum number of faults, but
  1296. * only removed when they drop below 3/16.
  1297. */
  1298. static void update_numa_active_node_mask(struct numa_group *numa_group)
  1299. {
  1300. unsigned long faults, max_faults = 0;
  1301. int nid;
  1302. for_each_online_node(nid) {
  1303. faults = group_faults_cpu(numa_group, nid);
  1304. if (faults > max_faults)
  1305. max_faults = faults;
  1306. }
  1307. for_each_online_node(nid) {
  1308. faults = group_faults_cpu(numa_group, nid);
  1309. if (!node_isset(nid, numa_group->active_nodes)) {
  1310. if (faults > max_faults * 6 / 16)
  1311. node_set(nid, numa_group->active_nodes);
  1312. } else if (faults < max_faults * 3 / 16)
  1313. node_clear(nid, numa_group->active_nodes);
  1314. }
  1315. }
  1316. /*
  1317. * When adapting the scan rate, the period is divided into NUMA_PERIOD_SLOTS
  1318. * increments. The more local the fault statistics are, the higher the scan
  1319. * period will be for the next scan window. If local/(local+remote) ratio is
  1320. * below NUMA_PERIOD_THRESHOLD (where range of ratio is 1..NUMA_PERIOD_SLOTS)
  1321. * the scan period will decrease. Aim for 70% local accesses.
  1322. */
  1323. #define NUMA_PERIOD_SLOTS 10
  1324. #define NUMA_PERIOD_THRESHOLD 7
  1325. /*
  1326. * Increase the scan period (slow down scanning) if the majority of
  1327. * our memory is already on our local node, or if the majority of
  1328. * the page accesses are shared with other processes.
  1329. * Otherwise, decrease the scan period.
  1330. */
  1331. static void update_task_scan_period(struct task_struct *p,
  1332. unsigned long shared, unsigned long private)
  1333. {
  1334. unsigned int period_slot;
  1335. int ratio;
  1336. int diff;
  1337. unsigned long remote = p->numa_faults_locality[0];
  1338. unsigned long local = p->numa_faults_locality[1];
  1339. /*
  1340. * If there were no record hinting faults then either the task is
  1341. * completely idle or all activity is areas that are not of interest
  1342. * to automatic numa balancing. Related to that, if there were failed
  1343. * migration then it implies we are migrating too quickly or the local
  1344. * node is overloaded. In either case, scan slower
  1345. */
  1346. if (local + shared == 0 || p->numa_faults_locality[2]) {
  1347. p->numa_scan_period = min(p->numa_scan_period_max,
  1348. p->numa_scan_period << 1);
  1349. p->mm->numa_next_scan = jiffies +
  1350. msecs_to_jiffies(p->numa_scan_period);
  1351. return;
  1352. }
  1353. /*
  1354. * Prepare to scale scan period relative to the current period.
  1355. * == NUMA_PERIOD_THRESHOLD scan period stays the same
  1356. * < NUMA_PERIOD_THRESHOLD scan period decreases (scan faster)
  1357. * >= NUMA_PERIOD_THRESHOLD scan period increases (scan slower)
  1358. */
  1359. period_slot = DIV_ROUND_UP(p->numa_scan_period, NUMA_PERIOD_SLOTS);
  1360. ratio = (local * NUMA_PERIOD_SLOTS) / (local + remote);
  1361. if (ratio >= NUMA_PERIOD_THRESHOLD) {
  1362. int slot = ratio - NUMA_PERIOD_THRESHOLD;
  1363. if (!slot)
  1364. slot = 1;
  1365. diff = slot * period_slot;
  1366. } else {
  1367. diff = -(NUMA_PERIOD_THRESHOLD - ratio) * period_slot;
  1368. /*
  1369. * Scale scan rate increases based on sharing. There is an
  1370. * inverse relationship between the degree of sharing and
  1371. * the adjustment made to the scanning period. Broadly
  1372. * speaking the intent is that there is little point
  1373. * scanning faster if shared accesses dominate as it may
  1374. * simply bounce migrations uselessly
  1375. */
  1376. ratio = DIV_ROUND_UP(private * NUMA_PERIOD_SLOTS, (private + shared + 1));
  1377. diff = (diff * ratio) / NUMA_PERIOD_SLOTS;
  1378. }
  1379. p->numa_scan_period = clamp(p->numa_scan_period + diff,
  1380. task_scan_min(p), task_scan_max(p));
  1381. memset(p->numa_faults_locality, 0, sizeof(p->numa_faults_locality));
  1382. }
  1383. /*
  1384. * Get the fraction of time the task has been running since the last
  1385. * NUMA placement cycle. The scheduler keeps similar statistics, but
  1386. * decays those on a 32ms period, which is orders of magnitude off
  1387. * from the dozens-of-seconds NUMA balancing period. Use the scheduler
  1388. * stats only if the task is so new there are no NUMA statistics yet.
  1389. */
  1390. static u64 numa_get_avg_runtime(struct task_struct *p, u64 *period)
  1391. {
  1392. u64 runtime, delta, now;
  1393. /* Use the start of this time slice to avoid calculations. */
  1394. now = p->se.exec_start;
  1395. runtime = p->se.sum_exec_runtime;
  1396. if (p->last_task_numa_placement) {
  1397. delta = runtime - p->last_sum_exec_runtime;
  1398. *period = now - p->last_task_numa_placement;
  1399. } else {
  1400. delta = p->se.avg.runnable_avg_sum;
  1401. *period = p->se.avg.runnable_avg_period;
  1402. }
  1403. p->last_sum_exec_runtime = runtime;
  1404. p->last_task_numa_placement = now;
  1405. return delta;
  1406. }
  1407. /*
  1408. * Determine the preferred nid for a task in a numa_group. This needs to
  1409. * be done in a way that produces consistent results with group_weight,
  1410. * otherwise workloads might not converge.
  1411. */
  1412. static int preferred_group_nid(struct task_struct *p, int nid)
  1413. {
  1414. nodemask_t nodes;
  1415. int dist;
  1416. /* Direct connections between all NUMA nodes. */
  1417. if (sched_numa_topology_type == NUMA_DIRECT)
  1418. return nid;
  1419. /*
  1420. * On a system with glueless mesh NUMA topology, group_weight
  1421. * scores nodes according to the number of NUMA hinting faults on
  1422. * both the node itself, and on nearby nodes.
  1423. */
  1424. if (sched_numa_topology_type == NUMA_GLUELESS_MESH) {
  1425. unsigned long score, max_score = 0;
  1426. int node, max_node = nid;
  1427. dist = sched_max_numa_distance;
  1428. for_each_online_node(node) {
  1429. score = group_weight(p, node, dist);
  1430. if (score > max_score) {
  1431. max_score = score;
  1432. max_node = node;
  1433. }
  1434. }
  1435. return max_node;
  1436. }
  1437. /*
  1438. * Finding the preferred nid in a system with NUMA backplane
  1439. * interconnect topology is more involved. The goal is to locate
  1440. * tasks from numa_groups near each other in the system, and
  1441. * untangle workloads from different sides of the system. This requires
  1442. * searching down the hierarchy of node groups, recursively searching
  1443. * inside the highest scoring group of nodes. The nodemask tricks
  1444. * keep the complexity of the search down.
  1445. */
  1446. nodes = node_online_map;
  1447. for (dist = sched_max_numa_distance; dist > LOCAL_DISTANCE; dist--) {
  1448. unsigned long max_faults = 0;
  1449. nodemask_t max_group = NODE_MASK_NONE;
  1450. int a, b;
  1451. /* Are there nodes at this distance from each other? */
  1452. if (!find_numa_distance(dist))
  1453. continue;
  1454. for_each_node_mask(a, nodes) {
  1455. unsigned long faults = 0;
  1456. nodemask_t this_group;
  1457. nodes_clear(this_group);
  1458. /* Sum group's NUMA faults; includes a==b case. */
  1459. for_each_node_mask(b, nodes) {
  1460. if (node_distance(a, b) < dist) {
  1461. faults += group_faults(p, b);
  1462. node_set(b, this_group);
  1463. node_clear(b, nodes);
  1464. }
  1465. }
  1466. /* Remember the top group. */
  1467. if (faults > max_faults) {
  1468. max_faults = faults;
  1469. max_group = this_group;
  1470. /*
  1471. * subtle: at the smallest distance there is
  1472. * just one node left in each "group", the
  1473. * winner is the preferred nid.
  1474. */
  1475. nid = a;
  1476. }
  1477. }
  1478. /* Next round, evaluate the nodes within max_group. */
  1479. nodes = max_group;
  1480. }
  1481. return nid;
  1482. }
  1483. static void task_numa_placement(struct task_struct *p)
  1484. {
  1485. int seq, nid, max_nid = -1, max_group_nid = -1;
  1486. unsigned long max_faults = 0, max_group_faults = 0;
  1487. unsigned long fault_types[2] = { 0, 0 };
  1488. unsigned long total_faults;
  1489. u64 runtime, period;
  1490. spinlock_t *group_lock = NULL;
  1491. seq = ACCESS_ONCE(p->mm->numa_scan_seq);
  1492. if (p->numa_scan_seq == seq)
  1493. return;
  1494. p->numa_scan_seq = seq;
  1495. p->numa_scan_period_max = task_scan_max(p);
  1496. total_faults = p->numa_faults_locality[0] +
  1497. p->numa_faults_locality[1];
  1498. runtime = numa_get_avg_runtime(p, &period);
  1499. /* If the task is part of a group prevent parallel updates to group stats */
  1500. if (p->numa_group) {
  1501. group_lock = &p->numa_group->lock;
  1502. spin_lock_irq(group_lock);
  1503. }
  1504. /* Find the node with the highest number of faults */
  1505. for_each_online_node(nid) {
  1506. /* Keep track of the offsets in numa_faults array */
  1507. int mem_idx, membuf_idx, cpu_idx, cpubuf_idx;
  1508. unsigned long faults = 0, group_faults = 0;
  1509. int priv;
  1510. for (priv = 0; priv < NR_NUMA_HINT_FAULT_TYPES; priv++) {
  1511. long diff, f_diff, f_weight;
  1512. mem_idx = task_faults_idx(NUMA_MEM, nid, priv);
  1513. membuf_idx = task_faults_idx(NUMA_MEMBUF, nid, priv);
  1514. cpu_idx = task_faults_idx(NUMA_CPU, nid, priv);
  1515. cpubuf_idx = task_faults_idx(NUMA_CPUBUF, nid, priv);
  1516. /* Decay existing window, copy faults since last scan */
  1517. diff = p->numa_faults[membuf_idx] - p->numa_faults[mem_idx] / 2;
  1518. fault_types[priv] += p->numa_faults[membuf_idx];
  1519. p->numa_faults[membuf_idx] = 0;
  1520. /*
  1521. * Normalize the faults_from, so all tasks in a group
  1522. * count according to CPU use, instead of by the raw
  1523. * number of faults. Tasks with little runtime have
  1524. * little over-all impact on throughput, and thus their
  1525. * faults are less important.
  1526. */
  1527. f_weight = div64_u64(runtime << 16, period + 1);
  1528. f_weight = (f_weight * p->numa_faults[cpubuf_idx]) /
  1529. (total_faults + 1);
  1530. f_diff = f_weight - p->numa_faults[cpu_idx] / 2;
  1531. p->numa_faults[cpubuf_idx] = 0;
  1532. p->numa_faults[mem_idx] += diff;
  1533. p->numa_faults[cpu_idx] += f_diff;
  1534. faults += p->numa_faults[mem_idx];
  1535. p->total_numa_faults += diff;
  1536. if (p->numa_group) {
  1537. /*
  1538. * safe because we can only change our own group
  1539. *
  1540. * mem_idx represents the offset for a given
  1541. * nid and priv in a specific region because it
  1542. * is at the beginning of the numa_faults array.
  1543. */
  1544. p->numa_group->faults[mem_idx] += diff;
  1545. p->numa_group->faults_cpu[mem_idx] += f_diff;
  1546. p->numa_group->total_faults += diff;
  1547. group_faults += p->numa_group->faults[mem_idx];
  1548. }
  1549. }
  1550. if (faults > max_faults) {
  1551. max_faults = faults;
  1552. max_nid = nid;
  1553. }
  1554. if (group_faults > max_group_faults) {
  1555. max_group_faults = group_faults;
  1556. max_group_nid = nid;
  1557. }
  1558. }
  1559. update_task_scan_period(p, fault_types[0], fault_types[1]);
  1560. if (p->numa_group) {
  1561. update_numa_active_node_mask(p->numa_group);
  1562. spin_unlock_irq(group_lock);
  1563. max_nid = preferred_group_nid(p, max_group_nid);
  1564. }
  1565. if (max_faults) {
  1566. /* Set the new preferred node */
  1567. if (max_nid != p->numa_preferred_nid)
  1568. sched_setnuma(p, max_nid);
  1569. if (task_node(p) != p->numa_preferred_nid)
  1570. numa_migrate_preferred(p);
  1571. }
  1572. }
  1573. static inline int get_numa_group(struct numa_group *grp)
  1574. {
  1575. return atomic_inc_not_zero(&grp->refcount);
  1576. }
  1577. static inline void put_numa_group(struct numa_group *grp)
  1578. {
  1579. if (atomic_dec_and_test(&grp->refcount))
  1580. kfree_rcu(grp, rcu);
  1581. }
  1582. static void task_numa_group(struct task_struct *p, int cpupid, int flags,
  1583. int *priv)
  1584. {
  1585. struct numa_group *grp, *my_grp;
  1586. struct task_struct *tsk;
  1587. bool join = false;
  1588. int cpu = cpupid_to_cpu(cpupid);
  1589. int i;
  1590. if (unlikely(!p->numa_group)) {
  1591. unsigned int size = sizeof(struct numa_group) +
  1592. 4*nr_node_ids*sizeof(unsigned long);
  1593. grp = kzalloc(size, GFP_KERNEL | __GFP_NOWARN);
  1594. if (!grp)
  1595. return;
  1596. atomic_set(&grp->refcount, 1);
  1597. spin_lock_init(&grp->lock);
  1598. grp->gid = p->pid;
  1599. /* Second half of the array tracks nids where faults happen */
  1600. grp->faults_cpu = grp->faults + NR_NUMA_HINT_FAULT_TYPES *
  1601. nr_node_ids;
  1602. node_set(task_node(current), grp->active_nodes);
  1603. for (i = 0; i < NR_NUMA_HINT_FAULT_STATS * nr_node_ids; i++)
  1604. grp->faults[i] = p->numa_faults[i];
  1605. grp->total_faults = p->total_numa_faults;
  1606. grp->nr_tasks++;
  1607. rcu_assign_pointer(p->numa_group, grp);
  1608. }
  1609. rcu_read_lock();
  1610. tsk = ACCESS_ONCE(cpu_rq(cpu)->curr);
  1611. if (!cpupid_match_pid(tsk, cpupid))
  1612. goto no_join;
  1613. grp = rcu_dereference(tsk->numa_group);
  1614. if (!grp)
  1615. goto no_join;
  1616. my_grp = p->numa_group;
  1617. if (grp == my_grp)
  1618. goto no_join;
  1619. /*
  1620. * Only join the other group if its bigger; if we're the bigger group,
  1621. * the other task will join us.
  1622. */
  1623. if (my_grp->nr_tasks > grp->nr_tasks)
  1624. goto no_join;
  1625. /*
  1626. * Tie-break on the grp address.
  1627. */
  1628. if (my_grp->nr_tasks == grp->nr_tasks && my_grp > grp)
  1629. goto no_join;
  1630. /* Always join threads in the same process. */
  1631. if (tsk->mm == current->mm)
  1632. join = true;
  1633. /* Simple filter to avoid false positives due to PID collisions */
  1634. if (flags & TNF_SHARED)
  1635. join = true;
  1636. /* Update priv based on whether false sharing was detected */
  1637. *priv = !join;
  1638. if (join && !get_numa_group(grp))
  1639. goto no_join;
  1640. rcu_read_unlock();
  1641. if (!join)
  1642. return;
  1643. BUG_ON(irqs_disabled());
  1644. double_lock_irq(&my_grp->lock, &grp->lock);
  1645. for (i = 0; i < NR_NUMA_HINT_FAULT_STATS * nr_node_ids; i++) {
  1646. my_grp->faults[i] -= p->numa_faults[i];
  1647. grp->faults[i] += p->numa_faults[i];
  1648. }
  1649. my_grp->total_faults -= p->total_numa_faults;
  1650. grp->total_faults += p->total_numa_faults;
  1651. my_grp->nr_tasks--;
  1652. grp->nr_tasks++;
  1653. spin_unlock(&my_grp->lock);
  1654. spin_unlock_irq(&grp->lock);
  1655. rcu_assign_pointer(p->numa_group, grp);
  1656. put_numa_group(my_grp);
  1657. return;
  1658. no_join:
  1659. rcu_read_unlock();
  1660. return;
  1661. }
  1662. void task_numa_free(struct task_struct *p)
  1663. {
  1664. struct numa_group *grp = p->numa_group;
  1665. void *numa_faults = p->numa_faults;
  1666. unsigned long flags;
  1667. int i;
  1668. if (grp) {
  1669. spin_lock_irqsave(&grp->lock, flags);
  1670. for (i = 0; i < NR_NUMA_HINT_FAULT_STATS * nr_node_ids; i++)
  1671. grp->faults[i] -= p->numa_faults[i];
  1672. grp->total_faults -= p->total_numa_faults;
  1673. grp->nr_tasks--;
  1674. spin_unlock_irqrestore(&grp->lock, flags);
  1675. RCU_INIT_POINTER(p->numa_group, NULL);
  1676. put_numa_group(grp);
  1677. }
  1678. p->numa_faults = NULL;
  1679. kfree(numa_faults);
  1680. }
  1681. /*
  1682. * Got a PROT_NONE fault for a page on @node.
  1683. */
  1684. void task_numa_fault(int last_cpupid, int mem_node, int pages, int flags)
  1685. {
  1686. struct task_struct *p = current;
  1687. bool migrated = flags & TNF_MIGRATED;
  1688. int cpu_node = task_node(current);
  1689. int local = !!(flags & TNF_FAULT_LOCAL);
  1690. int priv;
  1691. if (!numabalancing_enabled)
  1692. return;
  1693. /* for example, ksmd faulting in a user's mm */
  1694. if (!p->mm)
  1695. return;
  1696. /* Allocate buffer to track faults on a per-node basis */
  1697. if (unlikely(!p->numa_faults)) {
  1698. int size = sizeof(*p->numa_faults) *
  1699. NR_NUMA_HINT_FAULT_BUCKETS * nr_node_ids;
  1700. p->numa_faults = kzalloc(size, GFP_KERNEL|__GFP_NOWARN);
  1701. if (!p->numa_faults)
  1702. return;
  1703. p->total_numa_faults = 0;
  1704. memset(p->numa_faults_locality, 0, sizeof(p->numa_faults_locality));
  1705. }
  1706. /*
  1707. * First accesses are treated as private, otherwise consider accesses
  1708. * to be private if the accessing pid has not changed
  1709. */
  1710. if (unlikely(last_cpupid == (-1 & LAST_CPUPID_MASK))) {
  1711. priv = 1;
  1712. } else {
  1713. priv = cpupid_match_pid(p, last_cpupid);
  1714. if (!priv && !(flags & TNF_NO_GROUP))
  1715. task_numa_group(p, last_cpupid, flags, &priv);
  1716. }
  1717. /*
  1718. * If a workload spans multiple NUMA nodes, a shared fault that
  1719. * occurs wholly within the set of nodes that the workload is
  1720. * actively using should be counted as local. This allows the
  1721. * scan rate to slow down when a workload has settled down.
  1722. */
  1723. if (!priv && !local && p->numa_group &&
  1724. node_isset(cpu_node, p->numa_group->active_nodes) &&
  1725. node_isset(mem_node, p->numa_group->active_nodes))
  1726. local = 1;
  1727. task_numa_placement(p);
  1728. /*
  1729. * Retry task to preferred node migration periodically, in case it
  1730. * case it previously failed, or the scheduler moved us.
  1731. */
  1732. if (time_after(jiffies, p->numa_migrate_retry))
  1733. numa_migrate_preferred(p);
  1734. if (migrated)
  1735. p->numa_pages_migrated += pages;
  1736. if (flags & TNF_MIGRATE_FAIL)
  1737. p->numa_faults_locality[2] += pages;
  1738. p->numa_faults[task_faults_idx(NUMA_MEMBUF, mem_node, priv)] += pages;
  1739. p->numa_faults[task_faults_idx(NUMA_CPUBUF, cpu_node, priv)] += pages;
  1740. p->numa_faults_locality[local] += pages;
  1741. }
  1742. static void reset_ptenuma_scan(struct task_struct *p)
  1743. {
  1744. ACCESS_ONCE(p->mm->numa_scan_seq)++;
  1745. p->mm->numa_scan_offset = 0;
  1746. }
  1747. /*
  1748. * The expensive part of numa migration is done from task_work context.
  1749. * Triggered from task_tick_numa().
  1750. */
  1751. void task_numa_work(struct callback_head *work)
  1752. {
  1753. unsigned long migrate, next_scan, now = jiffies;
  1754. struct task_struct *p = current;
  1755. struct mm_struct *mm = p->mm;
  1756. struct vm_area_struct *vma;
  1757. unsigned long start, end;
  1758. unsigned long nr_pte_updates = 0;
  1759. long pages;
  1760. WARN_ON_ONCE(p != container_of(work, struct task_struct, numa_work));
  1761. work->next = work; /* protect against double add */
  1762. /*
  1763. * Who cares about NUMA placement when they're dying.
  1764. *
  1765. * NOTE: make sure not to dereference p->mm before this check,
  1766. * exit_task_work() happens _after_ exit_mm() so we could be called
  1767. * without p->mm even though we still had it when we enqueued this
  1768. * work.
  1769. */
  1770. if (p->flags & PF_EXITING)
  1771. return;
  1772. if (!mm->numa_next_scan) {
  1773. mm->numa_next_scan = now +
  1774. msecs_to_jiffies(sysctl_numa_balancing_scan_delay);
  1775. }
  1776. /*
  1777. * Enforce maximal scan/migration frequency..
  1778. */
  1779. migrate = mm->numa_next_scan;
  1780. if (time_before(now, migrate))
  1781. return;
  1782. if (p->numa_scan_period == 0) {
  1783. p->numa_scan_period_max = task_scan_max(p);
  1784. p->numa_scan_period = task_scan_min(p);
  1785. }
  1786. next_scan = now + msecs_to_jiffies(p->numa_scan_period);
  1787. if (cmpxchg(&mm->numa_next_scan, migrate, next_scan) != migrate)
  1788. return;
  1789. /*
  1790. * Delay this task enough that another task of this mm will likely win
  1791. * the next time around.
  1792. */
  1793. p->node_stamp += 2 * TICK_NSEC;
  1794. start = mm->numa_scan_offset;
  1795. pages = sysctl_numa_balancing_scan_size;
  1796. pages <<= 20 - PAGE_SHIFT; /* MB in pages */
  1797. if (!pages)
  1798. return;
  1799. down_read(&mm->mmap_sem);
  1800. vma = find_vma(mm, start);
  1801. if (!vma) {
  1802. reset_ptenuma_scan(p);
  1803. start = 0;
  1804. vma = mm->mmap;
  1805. }
  1806. for (; vma; vma = vma->vm_next) {
  1807. if (!vma_migratable(vma) || !vma_policy_mof(vma))
  1808. continue;
  1809. /*
  1810. * Shared library pages mapped by multiple processes are not
  1811. * migrated as it is expected they are cache replicated. Avoid
  1812. * hinting faults in read-only file-backed mappings or the vdso
  1813. * as migrating the pages will be of marginal benefit.
  1814. */
  1815. if (!vma->vm_mm ||
  1816. (vma->vm_file && (vma->vm_flags & (VM_READ|VM_WRITE)) == (VM_READ)))
  1817. continue;
  1818. /*
  1819. * Skip inaccessible VMAs to avoid any confusion between
  1820. * PROT_NONE and NUMA hinting ptes
  1821. */
  1822. if (!(vma->vm_flags & (VM_READ | VM_EXEC | VM_WRITE)))
  1823. continue;
  1824. do {
  1825. start = max(start, vma->vm_start);
  1826. end = ALIGN(start + (pages << PAGE_SHIFT), HPAGE_SIZE);
  1827. end = min(end, vma->vm_end);
  1828. nr_pte_updates += change_prot_numa(vma, start, end);
  1829. /*
  1830. * Scan sysctl_numa_balancing_scan_size but ensure that
  1831. * at least one PTE is updated so that unused virtual
  1832. * address space is quickly skipped.
  1833. */
  1834. if (nr_pte_updates)
  1835. pages -= (end - start) >> PAGE_SHIFT;
  1836. start = end;
  1837. if (pages <= 0)
  1838. goto out;
  1839. cond_resched();
  1840. } while (end != vma->vm_end);
  1841. }
  1842. out:
  1843. /*
  1844. * It is possible to reach the end of the VMA list but the last few
  1845. * VMAs are not guaranteed to the vma_migratable. If they are not, we
  1846. * would find the !migratable VMA on the next scan but not reset the
  1847. * scanner to the start so check it now.
  1848. */
  1849. if (vma)
  1850. mm->numa_scan_offset = start;
  1851. else
  1852. reset_ptenuma_scan(p);
  1853. up_read(&mm->mmap_sem);
  1854. }
  1855. /*
  1856. * Drive the periodic memory faults..
  1857. */
  1858. void task_tick_numa(struct rq *rq, struct task_struct *curr)
  1859. {
  1860. struct callback_head *work = &curr->numa_work;
  1861. u64 period, now;
  1862. /*
  1863. * We don't care about NUMA placement if we don't have memory.
  1864. */
  1865. if (!curr->mm || (curr->flags & PF_EXITING) || work->next != work)
  1866. return;
  1867. /*
  1868. * Using runtime rather than walltime has the dual advantage that
  1869. * we (mostly) drive the selection from busy threads and that the
  1870. * task needs to have done some actual work before we bother with
  1871. * NUMA placement.
  1872. */
  1873. now = curr->se.sum_exec_runtime;
  1874. period = (u64)curr->numa_scan_period * NSEC_PER_MSEC;
  1875. if (now - curr->node_stamp > period) {
  1876. if (!curr->node_stamp)
  1877. curr->numa_scan_period = task_scan_min(curr);
  1878. curr->node_stamp += period;
  1879. if (!time_before(jiffies, curr->mm->numa_next_scan)) {
  1880. init_task_work(work, task_numa_work); /* TODO: move this into sched_fork() */
  1881. task_work_add(curr, work, true);
  1882. }
  1883. }
  1884. }
  1885. #else
  1886. static void task_tick_numa(struct rq *rq, struct task_struct *curr)
  1887. {
  1888. }
  1889. static inline void account_numa_enqueue(struct rq *rq, struct task_struct *p)
  1890. {
  1891. }
  1892. static inline void account_numa_dequeue(struct rq *rq, struct task_struct *p)
  1893. {
  1894. }
  1895. #endif /* CONFIG_NUMA_BALANCING */
  1896. static void
  1897. account_entity_enqueue(struct cfs_rq *cfs_rq, struct sched_entity *se)
  1898. {
  1899. update_load_add(&cfs_rq->load, se->load.weight);
  1900. if (!parent_entity(se))
  1901. update_load_add(&rq_of(cfs_rq)->load, se->load.weight);
  1902. #ifdef CONFIG_SMP
  1903. if (entity_is_task(se)) {
  1904. struct rq *rq = rq_of(cfs_rq);
  1905. account_numa_enqueue(rq, task_of(se));
  1906. list_add(&se->group_node, &rq->cfs_tasks);
  1907. }
  1908. #endif
  1909. cfs_rq->nr_running++;
  1910. }
  1911. static void
  1912. account_entity_dequeue(struct cfs_rq *cfs_rq, struct sched_entity *se)
  1913. {
  1914. update_load_sub(&cfs_rq->load, se->load.weight);
  1915. if (!parent_entity(se))
  1916. update_load_sub(&rq_of(cfs_rq)->load, se->load.weight);
  1917. if (entity_is_task(se)) {
  1918. account_numa_dequeue(rq_of(cfs_rq), task_of(se));
  1919. list_del_init(&se->group_node);
  1920. }
  1921. cfs_rq->nr_running--;
  1922. }
  1923. #ifdef CONFIG_FAIR_GROUP_SCHED
  1924. # ifdef CONFIG_SMP
  1925. static inline long calc_tg_weight(struct task_group *tg, struct cfs_rq *cfs_rq)
  1926. {
  1927. long tg_weight;
  1928. /*
  1929. * Use this CPU's actual weight instead of the last load_contribution
  1930. * to gain a more accurate current total weight. See
  1931. * update_cfs_rq_load_contribution().
  1932. */
  1933. tg_weight = atomic_long_read(&tg->load_avg);
  1934. tg_weight -= cfs_rq->tg_load_contrib;
  1935. tg_weight += cfs_rq->load.weight;
  1936. return tg_weight;
  1937. }
  1938. static long calc_cfs_shares(struct cfs_rq *cfs_rq, struct task_group *tg)
  1939. {
  1940. long tg_weight, load, shares;
  1941. tg_weight = calc_tg_weight(tg, cfs_rq);
  1942. load = cfs_rq->load.weight;
  1943. shares = (tg->shares * load);
  1944. if (tg_weight)
  1945. shares /= tg_weight;
  1946. if (shares < MIN_SHARES)
  1947. shares = MIN_SHARES;
  1948. if (shares > tg->shares)
  1949. shares = tg->shares;
  1950. return shares;
  1951. }
  1952. # else /* CONFIG_SMP */
  1953. static inline long calc_cfs_shares(struct cfs_rq *cfs_rq, struct task_group *tg)
  1954. {
  1955. return tg->shares;
  1956. }
  1957. # endif /* CONFIG_SMP */
  1958. static void reweight_entity(struct cfs_rq *cfs_rq, struct sched_entity *se,
  1959. unsigned long weight)
  1960. {
  1961. if (se->on_rq) {
  1962. /* commit outstanding execution time */
  1963. if (cfs_rq->curr == se)
  1964. update_curr(cfs_rq);
  1965. account_entity_dequeue(cfs_rq, se);
  1966. }
  1967. update_load_set(&se->load, weight);
  1968. if (se->on_rq)
  1969. account_entity_enqueue(cfs_rq, se);
  1970. }
  1971. static inline int throttled_hierarchy(struct cfs_rq *cfs_rq);
  1972. static void update_cfs_shares(struct cfs_rq *cfs_rq)
  1973. {
  1974. struct task_group *tg;
  1975. struct sched_entity *se;
  1976. long shares;
  1977. tg = cfs_rq->tg;
  1978. se = tg->se[cpu_of(rq_of(cfs_rq))];
  1979. if (!se || throttled_hierarchy(cfs_rq))
  1980. return;
  1981. #ifndef CONFIG_SMP
  1982. if (likely(se->load.weight == tg->shares))
  1983. return;
  1984. #endif
  1985. shares = calc_cfs_shares(cfs_rq, tg);
  1986. reweight_entity(cfs_rq_of(se), se, shares);
  1987. }
  1988. #else /* CONFIG_FAIR_GROUP_SCHED */
  1989. static inline void update_cfs_shares(struct cfs_rq *cfs_rq)
  1990. {
  1991. }
  1992. #endif /* CONFIG_FAIR_GROUP_SCHED */
  1993. #ifdef CONFIG_SMP
  1994. /*
  1995. * We choose a half-life close to 1 scheduling period.
  1996. * Note: The tables below are dependent on this value.
  1997. */
  1998. #define LOAD_AVG_PERIOD 32
  1999. #define LOAD_AVG_MAX 47742 /* maximum possible load avg */
  2000. #define LOAD_AVG_MAX_N 345 /* number of full periods to produce LOAD_MAX_AVG */
  2001. /* Precomputed fixed inverse multiplies for multiplication by y^n */
  2002. static const u32 runnable_avg_yN_inv[] = {
  2003. 0xffffffff, 0xfa83b2da, 0xf5257d14, 0xefe4b99a, 0xeac0c6e6, 0xe5b906e6,
  2004. 0xe0ccdeeb, 0xdbfbb796, 0xd744fcc9, 0xd2a81d91, 0xce248c14, 0xc9b9bd85,
  2005. 0xc5672a10, 0xc12c4cc9, 0xbd08a39e, 0xb8fbaf46, 0xb504f333, 0xb123f581,
  2006. 0xad583ee9, 0xa9a15ab4, 0xa5fed6a9, 0xa2704302, 0x9ef5325f, 0x9b8d39b9,
  2007. 0x9837f050, 0x94f4efa8, 0x91c3d373, 0x8ea4398a, 0x8b95c1e3, 0x88980e80,
  2008. 0x85aac367, 0x82cd8698,
  2009. };
  2010. /*
  2011. * Precomputed \Sum y^k { 1<=k<=n }. These are floor(true_value) to prevent
  2012. * over-estimates when re-combining.
  2013. */
  2014. static const u32 runnable_avg_yN_sum[] = {
  2015. 0, 1002, 1982, 2941, 3880, 4798, 5697, 6576, 7437, 8279, 9103,
  2016. 9909,10698,11470,12226,12966,13690,14398,15091,15769,16433,17082,
  2017. 17718,18340,18949,19545,20128,20698,21256,21802,22336,22859,23371,
  2018. };
  2019. /*
  2020. * Approximate:
  2021. * val * y^n, where y^32 ~= 0.5 (~1 scheduling period)
  2022. */
  2023. static __always_inline u64 decay_load(u64 val, u64 n)
  2024. {
  2025. unsigned int local_n;
  2026. if (!n)
  2027. return val;
  2028. else if (unlikely(n > LOAD_AVG_PERIOD * 63))
  2029. return 0;
  2030. /* after bounds checking we can collapse to 32-bit */
  2031. local_n = n;
  2032. /*
  2033. * As y^PERIOD = 1/2, we can combine
  2034. * y^n = 1/2^(n/PERIOD) * y^(n%PERIOD)
  2035. * With a look-up table which covers y^n (n<PERIOD)
  2036. *
  2037. * To achieve constant time decay_load.
  2038. */
  2039. if (unlikely(local_n >= LOAD_AVG_PERIOD)) {
  2040. val >>= local_n / LOAD_AVG_PERIOD;
  2041. local_n %= LOAD_AVG_PERIOD;
  2042. }
  2043. val *= runnable_avg_yN_inv[local_n];
  2044. /* We don't use SRR here since we always want to round down. */
  2045. return val >> 32;
  2046. }
  2047. /*
  2048. * For updates fully spanning n periods, the contribution to runnable
  2049. * average will be: \Sum 1024*y^n
  2050. *
  2051. * We can compute this reasonably efficiently by combining:
  2052. * y^PERIOD = 1/2 with precomputed \Sum 1024*y^n {for n <PERIOD}
  2053. */
  2054. static u32 __compute_runnable_contrib(u64 n)
  2055. {
  2056. u32 contrib = 0;
  2057. if (likely(n <= LOAD_AVG_PERIOD))
  2058. return runnable_avg_yN_sum[n];
  2059. else if (unlikely(n >= LOAD_AVG_MAX_N))
  2060. return LOAD_AVG_MAX;
  2061. /* Compute \Sum k^n combining precomputed values for k^i, \Sum k^j */
  2062. do {
  2063. contrib /= 2; /* y^LOAD_AVG_PERIOD = 1/2 */
  2064. contrib += runnable_avg_yN_sum[LOAD_AVG_PERIOD];
  2065. n -= LOAD_AVG_PERIOD;
  2066. } while (n > LOAD_AVG_PERIOD);
  2067. contrib = decay_load(contrib, n);
  2068. return contrib + runnable_avg_yN_sum[n];
  2069. }
  2070. /*
  2071. * We can represent the historical contribution to runnable average as the
  2072. * coefficients of a geometric series. To do this we sub-divide our runnable
  2073. * history into segments of approximately 1ms (1024us); label the segment that
  2074. * occurred N-ms ago p_N, with p_0 corresponding to the current period, e.g.
  2075. *
  2076. * [<- 1024us ->|<- 1024us ->|<- 1024us ->| ...
  2077. * p0 p1 p2
  2078. * (now) (~1ms ago) (~2ms ago)
  2079. *
  2080. * Let u_i denote the fraction of p_i that the entity was runnable.
  2081. *
  2082. * We then designate the fractions u_i as our co-efficients, yielding the
  2083. * following representation of historical load:
  2084. * u_0 + u_1*y + u_2*y^2 + u_3*y^3 + ...
  2085. *
  2086. * We choose y based on the with of a reasonably scheduling period, fixing:
  2087. * y^32 = 0.5
  2088. *
  2089. * This means that the contribution to load ~32ms ago (u_32) will be weighted
  2090. * approximately half as much as the contribution to load within the last ms
  2091. * (u_0).
  2092. *
  2093. * When a period "rolls over" and we have new u_0`, multiplying the previous
  2094. * sum again by y is sufficient to update:
  2095. * load_avg = u_0` + y*(u_0 + u_1*y + u_2*y^2 + ... )
  2096. * = u_0 + u_1*y + u_2*y^2 + ... [re-labeling u_i --> u_{i+1}]
  2097. */
  2098. static __always_inline int __update_entity_runnable_avg(u64 now,
  2099. struct sched_avg *sa,
  2100. int runnable)
  2101. {
  2102. u64 delta, periods;
  2103. u32 runnable_contrib;
  2104. int delta_w, decayed = 0;
  2105. delta = now - sa->last_runnable_update;
  2106. /*
  2107. * This should only happen when time goes backwards, which it
  2108. * unfortunately does during sched clock init when we swap over to TSC.
  2109. */
  2110. if ((s64)delta < 0) {
  2111. sa->last_runnable_update = now;
  2112. return 0;
  2113. }
  2114. /*
  2115. * Use 1024ns as the unit of measurement since it's a reasonable
  2116. * approximation of 1us and fast to compute.
  2117. */
  2118. delta >>= 10;
  2119. if (!delta)
  2120. return 0;
  2121. sa->last_runnable_update = now;
  2122. /* delta_w is the amount already accumulated against our next period */
  2123. delta_w = sa->runnable_avg_period % 1024;
  2124. if (delta + delta_w >= 1024) {
  2125. /* period roll-over */
  2126. decayed = 1;
  2127. /*
  2128. * Now that we know we're crossing a period boundary, figure
  2129. * out how much from delta we need to complete the current
  2130. * period and accrue it.
  2131. */
  2132. delta_w = 1024 - delta_w;
  2133. if (runnable)
  2134. sa->runnable_avg_sum += delta_w;
  2135. sa->runnable_avg_period += delta_w;
  2136. delta -= delta_w;
  2137. /* Figure out how many additional periods this update spans */
  2138. periods = delta / 1024;
  2139. delta %= 1024;
  2140. sa->runnable_avg_sum = decay_load(sa->runnable_avg_sum,
  2141. periods + 1);
  2142. sa->runnable_avg_period = decay_load(sa->runnable_avg_period,
  2143. periods + 1);
  2144. /* Efficiently calculate \sum (1..n_period) 1024*y^i */
  2145. runnable_contrib = __compute_runnable_contrib(periods);
  2146. if (runnable)
  2147. sa->runnable_avg_sum += runnable_contrib;
  2148. sa->runnable_avg_period += runnable_contrib;
  2149. }
  2150. /* Remainder of delta accrued against u_0` */
  2151. if (runnable)
  2152. sa->runnable_avg_sum += delta;
  2153. sa->runnable_avg_period += delta;
  2154. return decayed;
  2155. }
  2156. /* Synchronize an entity's decay with its parenting cfs_rq.*/
  2157. static inline u64 __synchronize_entity_decay(struct sched_entity *se)
  2158. {
  2159. struct cfs_rq *cfs_rq = cfs_rq_of(se);
  2160. u64 decays = atomic64_read(&cfs_rq->decay_counter);
  2161. decays -= se->avg.decay_count;
  2162. se->avg.decay_count = 0;
  2163. if (!decays)
  2164. return 0;
  2165. se->avg.load_avg_contrib = decay_load(se->avg.load_avg_contrib, decays);
  2166. return decays;
  2167. }
  2168. #ifdef CONFIG_FAIR_GROUP_SCHED
  2169. static inline void __update_cfs_rq_tg_load_contrib(struct cfs_rq *cfs_rq,
  2170. int force_update)
  2171. {
  2172. struct task_group *tg = cfs_rq->tg;
  2173. long tg_contrib;
  2174. tg_contrib = cfs_rq->runnable_load_avg + cfs_rq->blocked_load_avg;
  2175. tg_contrib -= cfs_rq->tg_load_contrib;
  2176. if (!tg_contrib)
  2177. return;
  2178. if (force_update || abs(tg_contrib) > cfs_rq->tg_load_contrib / 8) {
  2179. atomic_long_add(tg_contrib, &tg->load_avg);
  2180. cfs_rq->tg_load_contrib += tg_contrib;
  2181. }
  2182. }
  2183. /*
  2184. * Aggregate cfs_rq runnable averages into an equivalent task_group
  2185. * representation for computing load contributions.
  2186. */
  2187. static inline void __update_tg_runnable_avg(struct sched_avg *sa,
  2188. struct cfs_rq *cfs_rq)
  2189. {
  2190. struct task_group *tg = cfs_rq->tg;
  2191. long contrib;
  2192. /* The fraction of a cpu used by this cfs_rq */
  2193. contrib = div_u64((u64)sa->runnable_avg_sum << NICE_0_SHIFT,
  2194. sa->runnable_avg_period + 1);
  2195. contrib -= cfs_rq->tg_runnable_contrib;
  2196. if (abs(contrib) > cfs_rq->tg_runnable_contrib / 64) {
  2197. atomic_add(contrib, &tg->runnable_avg);
  2198. cfs_rq->tg_runnable_contrib += contrib;
  2199. }
  2200. }
  2201. static inline void __update_group_entity_contrib(struct sched_entity *se)
  2202. {
  2203. struct cfs_rq *cfs_rq = group_cfs_rq(se);
  2204. struct task_group *tg = cfs_rq->tg;
  2205. int runnable_avg;
  2206. u64 contrib;
  2207. contrib = cfs_rq->tg_load_contrib * tg->shares;
  2208. se->avg.load_avg_contrib = div_u64(contrib,
  2209. atomic_long_read(&tg->load_avg) + 1);
  2210. /*
  2211. * For group entities we need to compute a correction term in the case
  2212. * that they are consuming <1 cpu so that we would contribute the same
  2213. * load as a task of equal weight.
  2214. *
  2215. * Explicitly co-ordinating this measurement would be expensive, but
  2216. * fortunately the sum of each cpus contribution forms a usable
  2217. * lower-bound on the true value.
  2218. *
  2219. * Consider the aggregate of 2 contributions. Either they are disjoint
  2220. * (and the sum represents true value) or they are disjoint and we are
  2221. * understating by the aggregate of their overlap.
  2222. *
  2223. * Extending this to N cpus, for a given overlap, the maximum amount we
  2224. * understand is then n_i(n_i+1)/2 * w_i where n_i is the number of
  2225. * cpus that overlap for this interval and w_i is the interval width.
  2226. *
  2227. * On a small machine; the first term is well-bounded which bounds the
  2228. * total error since w_i is a subset of the period. Whereas on a
  2229. * larger machine, while this first term can be larger, if w_i is the
  2230. * of consequential size guaranteed to see n_i*w_i quickly converge to
  2231. * our upper bound of 1-cpu.
  2232. */
  2233. runnable_avg = atomic_read(&tg->runnable_avg);
  2234. if (runnable_avg < NICE_0_LOAD) {
  2235. se->avg.load_avg_contrib *= runnable_avg;
  2236. se->avg.load_avg_contrib >>= NICE_0_SHIFT;
  2237. }
  2238. }
  2239. static inline void update_rq_runnable_avg(struct rq *rq, int runnable)
  2240. {
  2241. __update_entity_runnable_avg(rq_clock_task(rq), &rq->avg, runnable);
  2242. __update_tg_runnable_avg(&rq->avg, &rq->cfs);
  2243. }
  2244. #else /* CONFIG_FAIR_GROUP_SCHED */
  2245. static inline void __update_cfs_rq_tg_load_contrib(struct cfs_rq *cfs_rq,
  2246. int force_update) {}
  2247. static inline void __update_tg_runnable_avg(struct sched_avg *sa,
  2248. struct cfs_rq *cfs_rq) {}
  2249. static inline void __update_group_entity_contrib(struct sched_entity *se) {}
  2250. static inline void update_rq_runnable_avg(struct rq *rq, int runnable) {}
  2251. #endif /* CONFIG_FAIR_GROUP_SCHED */
  2252. static inline void __update_task_entity_contrib(struct sched_entity *se)
  2253. {
  2254. u32 contrib;
  2255. /* avoid overflowing a 32-bit type w/ SCHED_LOAD_SCALE */
  2256. contrib = se->avg.runnable_avg_sum * scale_load_down(se->load.weight);
  2257. contrib /= (se->avg.runnable_avg_period + 1);
  2258. se->avg.load_avg_contrib = scale_load(contrib);
  2259. }
  2260. /* Compute the current contribution to load_avg by se, return any delta */
  2261. static long __update_entity_load_avg_contrib(struct sched_entity *se)
  2262. {
  2263. long old_contrib = se->avg.load_avg_contrib;
  2264. if (entity_is_task(se)) {
  2265. __update_task_entity_contrib(se);
  2266. } else {
  2267. __update_tg_runnable_avg(&se->avg, group_cfs_rq(se));
  2268. __update_group_entity_contrib(se);
  2269. }
  2270. return se->avg.load_avg_contrib - old_contrib;
  2271. }
  2272. static inline void subtract_blocked_load_contrib(struct cfs_rq *cfs_rq,
  2273. long load_contrib)
  2274. {
  2275. if (likely(load_contrib < cfs_rq->blocked_load_avg))
  2276. cfs_rq->blocked_load_avg -= load_contrib;
  2277. else
  2278. cfs_rq->blocked_load_avg = 0;
  2279. }
  2280. static inline u64 cfs_rq_clock_task(struct cfs_rq *cfs_rq);
  2281. /* Update a sched_entity's runnable average */
  2282. static inline void update_entity_load_avg(struct sched_entity *se,
  2283. int update_cfs_rq)
  2284. {
  2285. struct cfs_rq *cfs_rq = cfs_rq_of(se);
  2286. long contrib_delta;
  2287. u64 now;
  2288. /*
  2289. * For a group entity we need to use their owned cfs_rq_clock_task() in
  2290. * case they are the parent of a throttled hierarchy.
  2291. */
  2292. if (entity_is_task(se))
  2293. now = cfs_rq_clock_task(cfs_rq);
  2294. else
  2295. now = cfs_rq_clock_task(group_cfs_rq(se));
  2296. if (!__update_entity_runnable_avg(now, &se->avg, se->on_rq))
  2297. return;
  2298. contrib_delta = __update_entity_load_avg_contrib(se);
  2299. if (!update_cfs_rq)
  2300. return;
  2301. if (se->on_rq)
  2302. cfs_rq->runnable_load_avg += contrib_delta;
  2303. else
  2304. subtract_blocked_load_contrib(cfs_rq, -contrib_delta);
  2305. }
  2306. /*
  2307. * Decay the load contributed by all blocked children and account this so that
  2308. * their contribution may appropriately discounted when they wake up.
  2309. */
  2310. static void update_cfs_rq_blocked_load(struct cfs_rq *cfs_rq, int force_update)
  2311. {
  2312. u64 now = cfs_rq_clock_task(cfs_rq) >> 20;
  2313. u64 decays;
  2314. decays = now - cfs_rq->last_decay;
  2315. if (!decays && !force_update)
  2316. return;
  2317. if (atomic_long_read(&cfs_rq->removed_load)) {
  2318. unsigned long removed_load;
  2319. removed_load = atomic_long_xchg(&cfs_rq->removed_load, 0);
  2320. subtract_blocked_load_contrib(cfs_rq, removed_load);
  2321. }
  2322. if (decays) {
  2323. cfs_rq->blocked_load_avg = decay_load(cfs_rq->blocked_load_avg,
  2324. decays);
  2325. atomic64_add(decays, &cfs_rq->decay_counter);
  2326. cfs_rq->last_decay = now;
  2327. }
  2328. __update_cfs_rq_tg_load_contrib(cfs_rq, force_update);
  2329. }
  2330. /* Add the load generated by se into cfs_rq's child load-average */
  2331. static inline void enqueue_entity_load_avg(struct cfs_rq *cfs_rq,
  2332. struct sched_entity *se,
  2333. int wakeup)
  2334. {
  2335. /*
  2336. * We track migrations using entity decay_count <= 0, on a wake-up
  2337. * migration we use a negative decay count to track the remote decays
  2338. * accumulated while sleeping.
  2339. *
  2340. * Newly forked tasks are enqueued with se->avg.decay_count == 0, they
  2341. * are seen by enqueue_entity_load_avg() as a migration with an already
  2342. * constructed load_avg_contrib.
  2343. */
  2344. if (unlikely(se->avg.decay_count <= 0)) {
  2345. se->avg.last_runnable_update = rq_clock_task(rq_of(cfs_rq));
  2346. if (se->avg.decay_count) {
  2347. /*
  2348. * In a wake-up migration we have to approximate the
  2349. * time sleeping. This is because we can't synchronize
  2350. * clock_task between the two cpus, and it is not
  2351. * guaranteed to be read-safe. Instead, we can
  2352. * approximate this using our carried decays, which are
  2353. * explicitly atomically readable.
  2354. */
  2355. se->avg.last_runnable_update -= (-se->avg.decay_count)
  2356. << 20;
  2357. update_entity_load_avg(se, 0);
  2358. /* Indicate that we're now synchronized and on-rq */
  2359. se->avg.decay_count = 0;
  2360. }
  2361. wakeup = 0;
  2362. } else {
  2363. __synchronize_entity_decay(se);
  2364. }
  2365. /* migrated tasks did not contribute to our blocked load */
  2366. if (wakeup) {
  2367. subtract_blocked_load_contrib(cfs_rq, se->avg.load_avg_contrib);
  2368. update_entity_load_avg(se, 0);
  2369. }
  2370. cfs_rq->runnable_load_avg += se->avg.load_avg_contrib;
  2371. /* we force update consideration on load-balancer moves */
  2372. update_cfs_rq_blocked_load(cfs_rq, !wakeup);
  2373. }
  2374. /*
  2375. * Remove se's load from this cfs_rq child load-average, if the entity is
  2376. * transitioning to a blocked state we track its projected decay using
  2377. * blocked_load_avg.
  2378. */
  2379. static inline void dequeue_entity_load_avg(struct cfs_rq *cfs_rq,
  2380. struct sched_entity *se,
  2381. int sleep)
  2382. {
  2383. update_entity_load_avg(se, 1);
  2384. /* we force update consideration on load-balancer moves */
  2385. update_cfs_rq_blocked_load(cfs_rq, !sleep);
  2386. cfs_rq->runnable_load_avg -= se->avg.load_avg_contrib;
  2387. if (sleep) {
  2388. cfs_rq->blocked_load_avg += se->avg.load_avg_contrib;
  2389. se->avg.decay_count = atomic64_read(&cfs_rq->decay_counter);
  2390. } /* migrations, e.g. sleep=0 leave decay_count == 0 */
  2391. }
  2392. /*
  2393. * Update the rq's load with the elapsed running time before entering
  2394. * idle. if the last scheduled task is not a CFS task, idle_enter will
  2395. * be the only way to update the runnable statistic.
  2396. */
  2397. void idle_enter_fair(struct rq *this_rq)
  2398. {
  2399. update_rq_runnable_avg(this_rq, 1);
  2400. }
  2401. /*
  2402. * Update the rq's load with the elapsed idle time before a task is
  2403. * scheduled. if the newly scheduled task is not a CFS task, idle_exit will
  2404. * be the only way to update the runnable statistic.
  2405. */
  2406. void idle_exit_fair(struct rq *this_rq)
  2407. {
  2408. update_rq_runnable_avg(this_rq, 0);
  2409. }
  2410. static int idle_balance(struct rq *this_rq);
  2411. #else /* CONFIG_SMP */
  2412. static inline void update_entity_load_avg(struct sched_entity *se,
  2413. int update_cfs_rq) {}
  2414. static inline void update_rq_runnable_avg(struct rq *rq, int runnable) {}
  2415. static inline void enqueue_entity_load_avg(struct cfs_rq *cfs_rq,
  2416. struct sched_entity *se,
  2417. int wakeup) {}
  2418. static inline void dequeue_entity_load_avg(struct cfs_rq *cfs_rq,
  2419. struct sched_entity *se,
  2420. int sleep) {}
  2421. static inline void update_cfs_rq_blocked_load(struct cfs_rq *cfs_rq,
  2422. int force_update) {}
  2423. static inline int idle_balance(struct rq *rq)
  2424. {
  2425. return 0;
  2426. }
  2427. #endif /* CONFIG_SMP */
  2428. static void enqueue_sleeper(struct cfs_rq *cfs_rq, struct sched_entity *se)
  2429. {
  2430. #ifdef CONFIG_SCHEDSTATS
  2431. struct task_struct *tsk = NULL;
  2432. if (entity_is_task(se))
  2433. tsk = task_of(se);
  2434. if (se->statistics.sleep_start) {
  2435. u64 delta = rq_clock(rq_of(cfs_rq)) - se->statistics.sleep_start;
  2436. if ((s64)delta < 0)
  2437. delta = 0;
  2438. if (unlikely(delta > se->statistics.sleep_max))
  2439. se->statistics.sleep_max = delta;
  2440. se->statistics.sleep_start = 0;
  2441. se->statistics.sum_sleep_runtime += delta;
  2442. if (tsk) {
  2443. account_scheduler_latency(tsk, delta >> 10, 1);
  2444. trace_sched_stat_sleep(tsk, delta);
  2445. }
  2446. }
  2447. if (se->statistics.block_start) {
  2448. u64 delta = rq_clock(rq_of(cfs_rq)) - se->statistics.block_start;
  2449. if ((s64)delta < 0)
  2450. delta = 0;
  2451. if (unlikely(delta > se->statistics.block_max))
  2452. se->statistics.block_max = delta;
  2453. se->statistics.block_start = 0;
  2454. se->statistics.sum_sleep_runtime += delta;
  2455. if (tsk) {
  2456. if (tsk->in_iowait) {
  2457. se->statistics.iowait_sum += delta;
  2458. se->statistics.iowait_count++;
  2459. trace_sched_stat_iowait(tsk, delta);
  2460. }
  2461. trace_sched_stat_blocked(tsk, delta);
  2462. /*
  2463. * Blocking time is in units of nanosecs, so shift by
  2464. * 20 to get a milliseconds-range estimation of the
  2465. * amount of time that the task spent sleeping:
  2466. */
  2467. if (unlikely(prof_on == SLEEP_PROFILING)) {
  2468. profile_hits(SLEEP_PROFILING,
  2469. (void *)get_wchan(tsk),
  2470. delta >> 20);
  2471. }
  2472. account_scheduler_latency(tsk, delta >> 10, 0);
  2473. }
  2474. }
  2475. #endif
  2476. }
  2477. static void check_spread(struct cfs_rq *cfs_rq, struct sched_entity *se)
  2478. {
  2479. #ifdef CONFIG_SCHED_DEBUG
  2480. s64 d = se->vruntime - cfs_rq->min_vruntime;
  2481. if (d < 0)
  2482. d = -d;
  2483. if (d > 3*sysctl_sched_latency)
  2484. schedstat_inc(cfs_rq, nr_spread_over);
  2485. #endif
  2486. }
  2487. static void
  2488. place_entity(struct cfs_rq *cfs_rq, struct sched_entity *se, int initial)
  2489. {
  2490. u64 vruntime = cfs_rq->min_vruntime;
  2491. /*
  2492. * The 'current' period is already promised to the current tasks,
  2493. * however the extra weight of the new task will slow them down a
  2494. * little, place the new task so that it fits in the slot that
  2495. * stays open at the end.
  2496. */
  2497. if (initial && sched_feat(START_DEBIT))
  2498. vruntime += sched_vslice(cfs_rq, se);
  2499. /* sleeps up to a single latency don't count. */
  2500. if (!initial) {
  2501. unsigned long thresh = sysctl_sched_latency;
  2502. /*
  2503. * Halve their sleep time's effect, to allow
  2504. * for a gentler effect of sleepers:
  2505. */
  2506. if (sched_feat(GENTLE_FAIR_SLEEPERS))
  2507. thresh >>= 1;
  2508. vruntime -= thresh;
  2509. }
  2510. /* ensure we never gain time by being placed backwards. */
  2511. se->vruntime = max_vruntime(se->vruntime, vruntime);
  2512. }
  2513. static void check_enqueue_throttle(struct cfs_rq *cfs_rq);
  2514. static void
  2515. enqueue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se, int flags)
  2516. {
  2517. /*
  2518. * Update the normalized vruntime before updating min_vruntime
  2519. * through calling update_curr().
  2520. */
  2521. if (!(flags & ENQUEUE_WAKEUP) || (flags & ENQUEUE_WAKING))
  2522. se->vruntime += cfs_rq->min_vruntime;
  2523. /*
  2524. * Update run-time statistics of the 'current'.
  2525. */
  2526. update_curr(cfs_rq);
  2527. enqueue_entity_load_avg(cfs_rq, se, flags & ENQUEUE_WAKEUP);
  2528. account_entity_enqueue(cfs_rq, se);
  2529. update_cfs_shares(cfs_rq);
  2530. if (flags & ENQUEUE_WAKEUP) {
  2531. place_entity(cfs_rq, se, 0);
  2532. enqueue_sleeper(cfs_rq, se);
  2533. }
  2534. update_stats_enqueue(cfs_rq, se);
  2535. check_spread(cfs_rq, se);
  2536. if (se != cfs_rq->curr)
  2537. __enqueue_entity(cfs_rq, se);
  2538. se->on_rq = 1;
  2539. if (cfs_rq->nr_running == 1) {
  2540. list_add_leaf_cfs_rq(cfs_rq);
  2541. check_enqueue_throttle(cfs_rq);
  2542. }
  2543. }
  2544. static void __clear_buddies_last(struct sched_entity *se)
  2545. {
  2546. for_each_sched_entity(se) {
  2547. struct cfs_rq *cfs_rq = cfs_rq_of(se);
  2548. if (cfs_rq->last != se)
  2549. break;
  2550. cfs_rq->last = NULL;
  2551. }
  2552. }
  2553. static void __clear_buddies_next(struct sched_entity *se)
  2554. {
  2555. for_each_sched_entity(se) {
  2556. struct cfs_rq *cfs_rq = cfs_rq_of(se);
  2557. if (cfs_rq->next != se)
  2558. break;
  2559. cfs_rq->next = NULL;
  2560. }
  2561. }
  2562. static void __clear_buddies_skip(struct sched_entity *se)
  2563. {
  2564. for_each_sched_entity(se) {
  2565. struct cfs_rq *cfs_rq = cfs_rq_of(se);
  2566. if (cfs_rq->skip != se)
  2567. break;
  2568. cfs_rq->skip = NULL;
  2569. }
  2570. }
  2571. static void clear_buddies(struct cfs_rq *cfs_rq, struct sched_entity *se)
  2572. {
  2573. if (cfs_rq->last == se)
  2574. __clear_buddies_last(se);
  2575. if (cfs_rq->next == se)
  2576. __clear_buddies_next(se);
  2577. if (cfs_rq->skip == se)
  2578. __clear_buddies_skip(se);
  2579. }
  2580. static __always_inline void return_cfs_rq_runtime(struct cfs_rq *cfs_rq);
  2581. static void
  2582. dequeue_entity(struct cfs_rq *cfs_rq, struct sched_entity *se, int flags)
  2583. {
  2584. /*
  2585. * Update run-time statistics of the 'current'.
  2586. */
  2587. update_curr(cfs_rq);
  2588. dequeue_entity_load_avg(cfs_rq, se, flags & DEQUEUE_SLEEP);
  2589. update_stats_dequeue(cfs_rq, se);
  2590. if (flags & DEQUEUE_SLEEP) {
  2591. #ifdef CONFIG_SCHEDSTATS
  2592. if (entity_is_task(se)) {
  2593. struct task_struct *tsk = task_of(se);
  2594. if (tsk->state & TASK_INTERRUPTIBLE)
  2595. se->statistics.sleep_start = rq_clock(rq_of(cfs_rq));
  2596. if (tsk->state & TASK_UNINTERRUPTIBLE)
  2597. se->statistics.block_start = rq_clock(rq_of(cfs_rq));
  2598. }
  2599. #endif
  2600. }
  2601. clear_buddies(cfs_rq, se);
  2602. if (se != cfs_rq->curr)
  2603. __dequeue_entity(cfs_rq, se);
  2604. se->on_rq = 0;
  2605. account_entity_dequeue(cfs_rq, se);
  2606. /*
  2607. * Normalize the entity after updating the min_vruntime because the
  2608. * update can refer to the ->curr item and we need to reflect this
  2609. * movement in our normalized position.
  2610. */
  2611. if (!(flags & DEQUEUE_SLEEP))
  2612. se->vruntime -= cfs_rq->min_vruntime;
  2613. /* return excess runtime on last dequeue */
  2614. return_cfs_rq_runtime(cfs_rq);
  2615. update_min_vruntime(cfs_rq);
  2616. update_cfs_shares(cfs_rq);
  2617. }
  2618. /*
  2619. * Preempt the current task with a newly woken task if needed:
  2620. */
  2621. static void
  2622. check_preempt_tick(struct cfs_rq *cfs_rq, struct sched_entity *curr)
  2623. {
  2624. unsigned long ideal_runtime, delta_exec;
  2625. struct sched_entity *se;
  2626. s64 delta;
  2627. ideal_runtime = sched_slice(cfs_rq, curr);
  2628. delta_exec = curr->sum_exec_runtime - curr->prev_sum_exec_runtime;
  2629. if (delta_exec > ideal_runtime) {
  2630. resched_curr(rq_of(cfs_rq));
  2631. /*
  2632. * The current task ran long enough, ensure it doesn't get
  2633. * re-elected due to buddy favours.
  2634. */
  2635. clear_buddies(cfs_rq, curr);
  2636. return;
  2637. }
  2638. /*
  2639. * Ensure that a task that missed wakeup preemption by a
  2640. * narrow margin doesn't have to wait for a full slice.
  2641. * This also mitigates buddy induced latencies under load.
  2642. */
  2643. if (delta_exec < sysctl_sched_min_granularity)
  2644. return;
  2645. se = __pick_first_entity(cfs_rq);
  2646. delta = curr->vruntime - se->vruntime;
  2647. if (delta < 0)
  2648. return;
  2649. if (delta > ideal_runtime)
  2650. resched_curr(rq_of(cfs_rq));
  2651. }
  2652. static void
  2653. set_next_entity(struct cfs_rq *cfs_rq, struct sched_entity *se)
  2654. {
  2655. /* 'current' is not kept within the tree. */
  2656. if (se->on_rq) {
  2657. /*
  2658. * Any task has to be enqueued before it get to execute on
  2659. * a CPU. So account for the time it spent waiting on the
  2660. * runqueue.
  2661. */
  2662. update_stats_wait_end(cfs_rq, se);
  2663. __dequeue_entity(cfs_rq, se);
  2664. }
  2665. update_stats_curr_start(cfs_rq, se);
  2666. cfs_rq->curr = se;
  2667. #ifdef CONFIG_SCHEDSTATS
  2668. /*
  2669. * Track our maximum slice length, if the CPU's load is at
  2670. * least twice that of our own weight (i.e. dont track it
  2671. * when there are only lesser-weight tasks around):
  2672. */
  2673. if (rq_of(cfs_rq)->load.weight >= 2*se->load.weight) {
  2674. se->statistics.slice_max = max(se->statistics.slice_max,
  2675. se->sum_exec_runtime - se->prev_sum_exec_runtime);
  2676. }
  2677. #endif
  2678. se->prev_sum_exec_runtime = se->sum_exec_runtime;
  2679. }
  2680. static int
  2681. wakeup_preempt_entity(struct sched_entity *curr, struct sched_entity *se);
  2682. /*
  2683. * Pick the next process, keeping these things in mind, in this order:
  2684. * 1) keep things fair between processes/task groups
  2685. * 2) pick the "next" process, since someone really wants that to run
  2686. * 3) pick the "last" process, for cache locality
  2687. * 4) do not run the "skip" process, if something else is available
  2688. */
  2689. static struct sched_entity *
  2690. pick_next_entity(struct cfs_rq *cfs_rq, struct sched_entity *curr)
  2691. {
  2692. struct sched_entity *left = __pick_first_entity(cfs_rq);
  2693. struct sched_entity *se;
  2694. /*
  2695. * If curr is set we have to see if its left of the leftmost entity
  2696. * still in the tree, provided there was anything in the tree at all.
  2697. */
  2698. if (!left || (curr && entity_before(curr, left)))
  2699. left = curr;
  2700. se = left; /* ideally we run the leftmost entity */
  2701. /*
  2702. * Avoid running the skip buddy, if running something else can
  2703. * be done without getting too unfair.
  2704. */
  2705. if (cfs_rq->skip == se) {
  2706. struct sched_entity *second;
  2707. if (se == curr) {
  2708. second = __pick_first_entity(cfs_rq);
  2709. } else {
  2710. second = __pick_next_entity(se);
  2711. if (!second || (curr && entity_before(curr, second)))
  2712. second = curr;
  2713. }
  2714. if (second && wakeup_preempt_entity(second, left) < 1)
  2715. se = second;
  2716. }
  2717. /*
  2718. * Prefer last buddy, try to return the CPU to a preempted task.
  2719. */
  2720. if (cfs_rq->last && wakeup_preempt_entity(cfs_rq->last, left) < 1)
  2721. se = cfs_rq->last;
  2722. /*
  2723. * Someone really wants this to run. If it's not unfair, run it.
  2724. */
  2725. if (cfs_rq->next && wakeup_preempt_entity(cfs_rq->next, left) < 1)
  2726. se = cfs_rq->next;
  2727. clear_buddies(cfs_rq, se);
  2728. return se;
  2729. }
  2730. static bool check_cfs_rq_runtime(struct cfs_rq *cfs_rq);
  2731. static void put_prev_entity(struct cfs_rq *cfs_rq, struct sched_entity *prev)
  2732. {
  2733. /*
  2734. * If still on the runqueue then deactivate_task()
  2735. * was not called and update_curr() has to be done:
  2736. */
  2737. if (prev->on_rq)
  2738. update_curr(cfs_rq);
  2739. /* throttle cfs_rqs exceeding runtime */
  2740. check_cfs_rq_runtime(cfs_rq);
  2741. check_spread(cfs_rq, prev);
  2742. if (prev->on_rq) {
  2743. update_stats_wait_start(cfs_rq, prev);
  2744. /* Put 'current' back into the tree. */
  2745. __enqueue_entity(cfs_rq, prev);
  2746. /* in !on_rq case, update occurred at dequeue */
  2747. update_entity_load_avg(prev, 1);
  2748. }
  2749. cfs_rq->curr = NULL;
  2750. }
  2751. static void
  2752. entity_tick(struct cfs_rq *cfs_rq, struct sched_entity *curr, int queued)
  2753. {
  2754. /*
  2755. * Update run-time statistics of the 'current'.
  2756. */
  2757. update_curr(cfs_rq);
  2758. /*
  2759. * Ensure that runnable average is periodically updated.
  2760. */
  2761. update_entity_load_avg(curr, 1);
  2762. update_cfs_rq_blocked_load(cfs_rq, 1);
  2763. update_cfs_shares(cfs_rq);
  2764. #ifdef CONFIG_SCHED_HRTICK
  2765. /*
  2766. * queued ticks are scheduled to match the slice, so don't bother
  2767. * validating it and just reschedule.
  2768. */
  2769. if (queued) {
  2770. resched_curr(rq_of(cfs_rq));
  2771. return;
  2772. }
  2773. /*
  2774. * don't let the period tick interfere with the hrtick preemption
  2775. */
  2776. if (!sched_feat(DOUBLE_TICK) &&
  2777. hrtimer_active(&rq_of(cfs_rq)->hrtick_timer))
  2778. return;
  2779. #endif
  2780. if (cfs_rq->nr_running > 1)
  2781. check_preempt_tick(cfs_rq, curr);
  2782. }
  2783. /**************************************************
  2784. * CFS bandwidth control machinery
  2785. */
  2786. #ifdef CONFIG_CFS_BANDWIDTH
  2787. #ifdef HAVE_JUMP_LABEL
  2788. static struct static_key __cfs_bandwidth_used;
  2789. static inline bool cfs_bandwidth_used(void)
  2790. {
  2791. return static_key_false(&__cfs_bandwidth_used);
  2792. }
  2793. void cfs_bandwidth_usage_inc(void)
  2794. {
  2795. static_key_slow_inc(&__cfs_bandwidth_used);
  2796. }
  2797. void cfs_bandwidth_usage_dec(void)
  2798. {
  2799. static_key_slow_dec(&__cfs_bandwidth_used);
  2800. }
  2801. #else /* HAVE_JUMP_LABEL */
  2802. static bool cfs_bandwidth_used(void)
  2803. {
  2804. return true;
  2805. }
  2806. void cfs_bandwidth_usage_inc(void) {}
  2807. void cfs_bandwidth_usage_dec(void) {}
  2808. #endif /* HAVE_JUMP_LABEL */
  2809. /*
  2810. * default period for cfs group bandwidth.
  2811. * default: 0.1s, units: nanoseconds
  2812. */
  2813. static inline u64 default_cfs_period(void)
  2814. {
  2815. return 100000000ULL;
  2816. }
  2817. static inline u64 sched_cfs_bandwidth_slice(void)
  2818. {
  2819. return (u64)sysctl_sched_cfs_bandwidth_slice * NSEC_PER_USEC;
  2820. }
  2821. /*
  2822. * Replenish runtime according to assigned quota and update expiration time.
  2823. * We use sched_clock_cpu directly instead of rq->clock to avoid adding
  2824. * additional synchronization around rq->lock.
  2825. *
  2826. * requires cfs_b->lock
  2827. */
  2828. void __refill_cfs_bandwidth_runtime(struct cfs_bandwidth *cfs_b)
  2829. {
  2830. u64 now;
  2831. if (cfs_b->quota == RUNTIME_INF)
  2832. return;
  2833. now = sched_clock_cpu(smp_processor_id());
  2834. cfs_b->runtime = cfs_b->quota;
  2835. cfs_b->runtime_expires = now + ktime_to_ns(cfs_b->period);
  2836. }
  2837. static inline struct cfs_bandwidth *tg_cfs_bandwidth(struct task_group *tg)
  2838. {
  2839. return &tg->cfs_bandwidth;
  2840. }
  2841. /* rq->task_clock normalized against any time this cfs_rq has spent throttled */
  2842. static inline u64 cfs_rq_clock_task(struct cfs_rq *cfs_rq)
  2843. {
  2844. if (unlikely(cfs_rq->throttle_count))
  2845. return cfs_rq->throttled_clock_task;
  2846. return rq_clock_task(rq_of(cfs_rq)) - cfs_rq->throttled_clock_task_time;
  2847. }
  2848. /* returns 0 on failure to allocate runtime */
  2849. static int assign_cfs_rq_runtime(struct cfs_rq *cfs_rq)
  2850. {
  2851. struct task_group *tg = cfs_rq->tg;
  2852. struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(tg);
  2853. u64 amount = 0, min_amount, expires;
  2854. /* note: this is a positive sum as runtime_remaining <= 0 */
  2855. min_amount = sched_cfs_bandwidth_slice() - cfs_rq->runtime_remaining;
  2856. raw_spin_lock(&cfs_b->lock);
  2857. if (cfs_b->quota == RUNTIME_INF)
  2858. amount = min_amount;
  2859. else {
  2860. /*
  2861. * If the bandwidth pool has become inactive, then at least one
  2862. * period must have elapsed since the last consumption.
  2863. * Refresh the global state and ensure bandwidth timer becomes
  2864. * active.
  2865. */
  2866. if (!cfs_b->timer_active) {
  2867. __refill_cfs_bandwidth_runtime(cfs_b);
  2868. __start_cfs_bandwidth(cfs_b, false);
  2869. }
  2870. if (cfs_b->runtime > 0) {
  2871. amount = min(cfs_b->runtime, min_amount);
  2872. cfs_b->runtime -= amount;
  2873. cfs_b->idle = 0;
  2874. }
  2875. }
  2876. expires = cfs_b->runtime_expires;
  2877. raw_spin_unlock(&cfs_b->lock);
  2878. cfs_rq->runtime_remaining += amount;
  2879. /*
  2880. * we may have advanced our local expiration to account for allowed
  2881. * spread between our sched_clock and the one on which runtime was
  2882. * issued.
  2883. */
  2884. if ((s64)(expires - cfs_rq->runtime_expires) > 0)
  2885. cfs_rq->runtime_expires = expires;
  2886. return cfs_rq->runtime_remaining > 0;
  2887. }
  2888. /*
  2889. * Note: This depends on the synchronization provided by sched_clock and the
  2890. * fact that rq->clock snapshots this value.
  2891. */
  2892. static void expire_cfs_rq_runtime(struct cfs_rq *cfs_rq)
  2893. {
  2894. struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
  2895. /* if the deadline is ahead of our clock, nothing to do */
  2896. if (likely((s64)(rq_clock(rq_of(cfs_rq)) - cfs_rq->runtime_expires) < 0))
  2897. return;
  2898. if (cfs_rq->runtime_remaining < 0)
  2899. return;
  2900. /*
  2901. * If the local deadline has passed we have to consider the
  2902. * possibility that our sched_clock is 'fast' and the global deadline
  2903. * has not truly expired.
  2904. *
  2905. * Fortunately we can check determine whether this the case by checking
  2906. * whether the global deadline has advanced. It is valid to compare
  2907. * cfs_b->runtime_expires without any locks since we only care about
  2908. * exact equality, so a partial write will still work.
  2909. */
  2910. if (cfs_rq->runtime_expires != cfs_b->runtime_expires) {
  2911. /* extend local deadline, drift is bounded above by 2 ticks */
  2912. cfs_rq->runtime_expires += TICK_NSEC;
  2913. } else {
  2914. /* global deadline is ahead, expiration has passed */
  2915. cfs_rq->runtime_remaining = 0;
  2916. }
  2917. }
  2918. static void __account_cfs_rq_runtime(struct cfs_rq *cfs_rq, u64 delta_exec)
  2919. {
  2920. /* dock delta_exec before expiring quota (as it could span periods) */
  2921. cfs_rq->runtime_remaining -= delta_exec;
  2922. expire_cfs_rq_runtime(cfs_rq);
  2923. if (likely(cfs_rq->runtime_remaining > 0))
  2924. return;
  2925. /*
  2926. * if we're unable to extend our runtime we resched so that the active
  2927. * hierarchy can be throttled
  2928. */
  2929. if (!assign_cfs_rq_runtime(cfs_rq) && likely(cfs_rq->curr))
  2930. resched_curr(rq_of(cfs_rq));
  2931. }
  2932. static __always_inline
  2933. void account_cfs_rq_runtime(struct cfs_rq *cfs_rq, u64 delta_exec)
  2934. {
  2935. if (!cfs_bandwidth_used() || !cfs_rq->runtime_enabled)
  2936. return;
  2937. __account_cfs_rq_runtime(cfs_rq, delta_exec);
  2938. }
  2939. static inline int cfs_rq_throttled(struct cfs_rq *cfs_rq)
  2940. {
  2941. return cfs_bandwidth_used() && cfs_rq->throttled;
  2942. }
  2943. /* check whether cfs_rq, or any parent, is throttled */
  2944. static inline int throttled_hierarchy(struct cfs_rq *cfs_rq)
  2945. {
  2946. return cfs_bandwidth_used() && cfs_rq->throttle_count;
  2947. }
  2948. /*
  2949. * Ensure that neither of the group entities corresponding to src_cpu or
  2950. * dest_cpu are members of a throttled hierarchy when performing group
  2951. * load-balance operations.
  2952. */
  2953. static inline int throttled_lb_pair(struct task_group *tg,
  2954. int src_cpu, int dest_cpu)
  2955. {
  2956. struct cfs_rq *src_cfs_rq, *dest_cfs_rq;
  2957. src_cfs_rq = tg->cfs_rq[src_cpu];
  2958. dest_cfs_rq = tg->cfs_rq[dest_cpu];
  2959. return throttled_hierarchy(src_cfs_rq) ||
  2960. throttled_hierarchy(dest_cfs_rq);
  2961. }
  2962. /* updated child weight may affect parent so we have to do this bottom up */
  2963. static int tg_unthrottle_up(struct task_group *tg, void *data)
  2964. {
  2965. struct rq *rq = data;
  2966. struct cfs_rq *cfs_rq = tg->cfs_rq[cpu_of(rq)];
  2967. cfs_rq->throttle_count--;
  2968. #ifdef CONFIG_SMP
  2969. if (!cfs_rq->throttle_count) {
  2970. /* adjust cfs_rq_clock_task() */
  2971. cfs_rq->throttled_clock_task_time += rq_clock_task(rq) -
  2972. cfs_rq->throttled_clock_task;
  2973. }
  2974. #endif
  2975. return 0;
  2976. }
  2977. static int tg_throttle_down(struct task_group *tg, void *data)
  2978. {
  2979. struct rq *rq = data;
  2980. struct cfs_rq *cfs_rq = tg->cfs_rq[cpu_of(rq)];
  2981. /* group is entering throttled state, stop time */
  2982. if (!cfs_rq->throttle_count)
  2983. cfs_rq->throttled_clock_task = rq_clock_task(rq);
  2984. cfs_rq->throttle_count++;
  2985. return 0;
  2986. }
  2987. static void throttle_cfs_rq(struct cfs_rq *cfs_rq)
  2988. {
  2989. struct rq *rq = rq_of(cfs_rq);
  2990. struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
  2991. struct sched_entity *se;
  2992. long task_delta, dequeue = 1;
  2993. se = cfs_rq->tg->se[cpu_of(rq_of(cfs_rq))];
  2994. /* freeze hierarchy runnable averages while throttled */
  2995. rcu_read_lock();
  2996. walk_tg_tree_from(cfs_rq->tg, tg_throttle_down, tg_nop, (void *)rq);
  2997. rcu_read_unlock();
  2998. task_delta = cfs_rq->h_nr_running;
  2999. for_each_sched_entity(se) {
  3000. struct cfs_rq *qcfs_rq = cfs_rq_of(se);
  3001. /* throttled entity or throttle-on-deactivate */
  3002. if (!se->on_rq)
  3003. break;
  3004. if (dequeue)
  3005. dequeue_entity(qcfs_rq, se, DEQUEUE_SLEEP);
  3006. qcfs_rq->h_nr_running -= task_delta;
  3007. if (qcfs_rq->load.weight)
  3008. dequeue = 0;
  3009. }
  3010. if (!se)
  3011. sub_nr_running(rq, task_delta);
  3012. cfs_rq->throttled = 1;
  3013. cfs_rq->throttled_clock = rq_clock(rq);
  3014. raw_spin_lock(&cfs_b->lock);
  3015. /*
  3016. * Add to the _head_ of the list, so that an already-started
  3017. * distribute_cfs_runtime will not see us
  3018. */
  3019. list_add_rcu(&cfs_rq->throttled_list, &cfs_b->throttled_cfs_rq);
  3020. if (!cfs_b->timer_active)
  3021. __start_cfs_bandwidth(cfs_b, false);
  3022. raw_spin_unlock(&cfs_b->lock);
  3023. }
  3024. void unthrottle_cfs_rq(struct cfs_rq *cfs_rq)
  3025. {
  3026. struct rq *rq = rq_of(cfs_rq);
  3027. struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
  3028. struct sched_entity *se;
  3029. int enqueue = 1;
  3030. long task_delta;
  3031. se = cfs_rq->tg->se[cpu_of(rq)];
  3032. cfs_rq->throttled = 0;
  3033. update_rq_clock(rq);
  3034. raw_spin_lock(&cfs_b->lock);
  3035. cfs_b->throttled_time += rq_clock(rq) - cfs_rq->throttled_clock;
  3036. list_del_rcu(&cfs_rq->throttled_list);
  3037. raw_spin_unlock(&cfs_b->lock);
  3038. /* update hierarchical throttle state */
  3039. walk_tg_tree_from(cfs_rq->tg, tg_nop, tg_unthrottle_up, (void *)rq);
  3040. if (!cfs_rq->load.weight)
  3041. return;
  3042. task_delta = cfs_rq->h_nr_running;
  3043. for_each_sched_entity(se) {
  3044. if (se->on_rq)
  3045. enqueue = 0;
  3046. cfs_rq = cfs_rq_of(se);
  3047. if (enqueue)
  3048. enqueue_entity(cfs_rq, se, ENQUEUE_WAKEUP);
  3049. cfs_rq->h_nr_running += task_delta;
  3050. if (cfs_rq_throttled(cfs_rq))
  3051. break;
  3052. }
  3053. if (!se)
  3054. add_nr_running(rq, task_delta);
  3055. /* determine whether we need to wake up potentially idle cpu */
  3056. if (rq->curr == rq->idle && rq->cfs.nr_running)
  3057. resched_curr(rq);
  3058. }
  3059. static u64 distribute_cfs_runtime(struct cfs_bandwidth *cfs_b,
  3060. u64 remaining, u64 expires)
  3061. {
  3062. struct cfs_rq *cfs_rq;
  3063. u64 runtime;
  3064. u64 starting_runtime = remaining;
  3065. rcu_read_lock();
  3066. list_for_each_entry_rcu(cfs_rq, &cfs_b->throttled_cfs_rq,
  3067. throttled_list) {
  3068. struct rq *rq = rq_of(cfs_rq);
  3069. raw_spin_lock(&rq->lock);
  3070. if (!cfs_rq_throttled(cfs_rq))
  3071. goto next;
  3072. runtime = -cfs_rq->runtime_remaining + 1;
  3073. if (runtime > remaining)
  3074. runtime = remaining;
  3075. remaining -= runtime;
  3076. cfs_rq->runtime_remaining += runtime;
  3077. cfs_rq->runtime_expires = expires;
  3078. /* we check whether we're throttled above */
  3079. if (cfs_rq->runtime_remaining > 0)
  3080. unthrottle_cfs_rq(cfs_rq);
  3081. next:
  3082. raw_spin_unlock(&rq->lock);
  3083. if (!remaining)
  3084. break;
  3085. }
  3086. rcu_read_unlock();
  3087. return starting_runtime - remaining;
  3088. }
  3089. /*
  3090. * Responsible for refilling a task_group's bandwidth and unthrottling its
  3091. * cfs_rqs as appropriate. If there has been no activity within the last
  3092. * period the timer is deactivated until scheduling resumes; cfs_b->idle is
  3093. * used to track this state.
  3094. */
  3095. static int do_sched_cfs_period_timer(struct cfs_bandwidth *cfs_b, int overrun)
  3096. {
  3097. u64 runtime, runtime_expires;
  3098. int throttled;
  3099. /* no need to continue the timer with no bandwidth constraint */
  3100. if (cfs_b->quota == RUNTIME_INF)
  3101. goto out_deactivate;
  3102. throttled = !list_empty(&cfs_b->throttled_cfs_rq);
  3103. cfs_b->nr_periods += overrun;
  3104. /*
  3105. * idle depends on !throttled (for the case of a large deficit), and if
  3106. * we're going inactive then everything else can be deferred
  3107. */
  3108. if (cfs_b->idle && !throttled)
  3109. goto out_deactivate;
  3110. /*
  3111. * if we have relooped after returning idle once, we need to update our
  3112. * status as actually running, so that other cpus doing
  3113. * __start_cfs_bandwidth will stop trying to cancel us.
  3114. */
  3115. cfs_b->timer_active = 1;
  3116. __refill_cfs_bandwidth_runtime(cfs_b);
  3117. if (!throttled) {
  3118. /* mark as potentially idle for the upcoming period */
  3119. cfs_b->idle = 1;
  3120. return 0;
  3121. }
  3122. /* account preceding periods in which throttling occurred */
  3123. cfs_b->nr_throttled += overrun;
  3124. runtime_expires = cfs_b->runtime_expires;
  3125. /*
  3126. * This check is repeated as we are holding onto the new bandwidth while
  3127. * we unthrottle. This can potentially race with an unthrottled group
  3128. * trying to acquire new bandwidth from the global pool. This can result
  3129. * in us over-using our runtime if it is all used during this loop, but
  3130. * only by limited amounts in that extreme case.
  3131. */
  3132. while (throttled && cfs_b->runtime > 0) {
  3133. runtime = cfs_b->runtime;
  3134. raw_spin_unlock(&cfs_b->lock);
  3135. /* we can't nest cfs_b->lock while distributing bandwidth */
  3136. runtime = distribute_cfs_runtime(cfs_b, runtime,
  3137. runtime_expires);
  3138. raw_spin_lock(&cfs_b->lock);
  3139. throttled = !list_empty(&cfs_b->throttled_cfs_rq);
  3140. cfs_b->runtime -= min(runtime, cfs_b->runtime);
  3141. }
  3142. /*
  3143. * While we are ensured activity in the period following an
  3144. * unthrottle, this also covers the case in which the new bandwidth is
  3145. * insufficient to cover the existing bandwidth deficit. (Forcing the
  3146. * timer to remain active while there are any throttled entities.)
  3147. */
  3148. cfs_b->idle = 0;
  3149. return 0;
  3150. out_deactivate:
  3151. cfs_b->timer_active = 0;
  3152. return 1;
  3153. }
  3154. /* a cfs_rq won't donate quota below this amount */
  3155. static const u64 min_cfs_rq_runtime = 1 * NSEC_PER_MSEC;
  3156. /* minimum remaining period time to redistribute slack quota */
  3157. static const u64 min_bandwidth_expiration = 2 * NSEC_PER_MSEC;
  3158. /* how long we wait to gather additional slack before distributing */
  3159. static const u64 cfs_bandwidth_slack_period = 5 * NSEC_PER_MSEC;
  3160. /*
  3161. * Are we near the end of the current quota period?
  3162. *
  3163. * Requires cfs_b->lock for hrtimer_expires_remaining to be safe against the
  3164. * hrtimer base being cleared by __hrtimer_start_range_ns. In the case of
  3165. * migrate_hrtimers, base is never cleared, so we are fine.
  3166. */
  3167. static int runtime_refresh_within(struct cfs_bandwidth *cfs_b, u64 min_expire)
  3168. {
  3169. struct hrtimer *refresh_timer = &cfs_b->period_timer;
  3170. u64 remaining;
  3171. /* if the call-back is running a quota refresh is already occurring */
  3172. if (hrtimer_callback_running(refresh_timer))
  3173. return 1;
  3174. /* is a quota refresh about to occur? */
  3175. remaining = ktime_to_ns(hrtimer_expires_remaining(refresh_timer));
  3176. if (remaining < min_expire)
  3177. return 1;
  3178. return 0;
  3179. }
  3180. static void start_cfs_slack_bandwidth(struct cfs_bandwidth *cfs_b)
  3181. {
  3182. u64 min_left = cfs_bandwidth_slack_period + min_bandwidth_expiration;
  3183. /* if there's a quota refresh soon don't bother with slack */
  3184. if (runtime_refresh_within(cfs_b, min_left))
  3185. return;
  3186. start_bandwidth_timer(&cfs_b->slack_timer,
  3187. ns_to_ktime(cfs_bandwidth_slack_period));
  3188. }
  3189. /* we know any runtime found here is valid as update_curr() precedes return */
  3190. static void __return_cfs_rq_runtime(struct cfs_rq *cfs_rq)
  3191. {
  3192. struct cfs_bandwidth *cfs_b = tg_cfs_bandwidth(cfs_rq->tg);
  3193. s64 slack_runtime = cfs_rq->runtime_remaining - min_cfs_rq_runtime;
  3194. if (slack_runtime <= 0)
  3195. return;
  3196. raw_spin_lock(&cfs_b->lock);
  3197. if (cfs_b->quota != RUNTIME_INF &&
  3198. cfs_rq->runtime_expires == cfs_b->runtime_expires) {
  3199. cfs_b->runtime += slack_runtime;
  3200. /* we are under rq->lock, defer unthrottling using a timer */
  3201. if (cfs_b->runtime > sched_cfs_bandwidth_slice() &&
  3202. !list_empty(&cfs_b->throttled_cfs_rq))
  3203. start_cfs_slack_bandwidth(cfs_b);
  3204. }
  3205. raw_spin_unlock(&cfs_b->lock);
  3206. /* even if it's not valid for return we don't want to try again */
  3207. cfs_rq->runtime_remaining -= slack_runtime;
  3208. }
  3209. static __always_inline void return_cfs_rq_runtime(struct cfs_rq *cfs_rq)
  3210. {
  3211. if (!cfs_bandwidth_used())
  3212. return;
  3213. if (!cfs_rq->runtime_enabled || cfs_rq->nr_running)
  3214. return;
  3215. __return_cfs_rq_runtime(cfs_rq);
  3216. }
  3217. /*
  3218. * This is done with a timer (instead of inline with bandwidth return) since
  3219. * it's necessary to juggle rq->locks to unthrottle their respective cfs_rqs.
  3220. */
  3221. static void do_sched_cfs_slack_timer(struct cfs_bandwidth *cfs_b)
  3222. {
  3223. u64 runtime = 0, slice = sched_cfs_bandwidth_slice();
  3224. u64 expires;
  3225. /* confirm we're still not at a refresh boundary */
  3226. raw_spin_lock(&cfs_b->lock);
  3227. if (runtime_refresh_within(cfs_b, min_bandwidth_expiration)) {
  3228. raw_spin_unlock(&cfs_b->lock);
  3229. return;
  3230. }
  3231. if (cfs_b->quota != RUNTIME_INF && cfs_b->runtime > slice)
  3232. runtime = cfs_b->runtime;
  3233. expires = cfs_b->runtime_expires;
  3234. raw_spin_unlock(&cfs_b->lock);
  3235. if (!runtime)
  3236. return;
  3237. runtime = distribute_cfs_runtime(cfs_b, runtime, expires);
  3238. raw_spin_lock(&cfs_b->lock);
  3239. if (expires == cfs_b->runtime_expires)
  3240. cfs_b->runtime -= min(runtime, cfs_b->runtime);
  3241. raw_spin_unlock(&cfs_b->lock);
  3242. }
  3243. /*
  3244. * When a group wakes up we want to make sure that its quota is not already
  3245. * expired/exceeded, otherwise it may be allowed to steal additional ticks of
  3246. * runtime as update_curr() throttling can not not trigger until it's on-rq.
  3247. */
  3248. static void check_enqueue_throttle(struct cfs_rq *cfs_rq)
  3249. {
  3250. if (!cfs_bandwidth_used())
  3251. return;
  3252. /* an active group must be handled by the update_curr()->put() path */
  3253. if (!cfs_rq->runtime_enabled || cfs_rq->curr)
  3254. return;
  3255. /* ensure the group is not already throttled */
  3256. if (cfs_rq_throttled(cfs_rq))
  3257. return;
  3258. /* update runtime allocation */
  3259. account_cfs_rq_runtime(cfs_rq, 0);
  3260. if (cfs_rq->runtime_remaining <= 0)
  3261. throttle_cfs_rq(cfs_rq);
  3262. }
  3263. /* conditionally throttle active cfs_rq's from put_prev_entity() */
  3264. static bool check_cfs_rq_runtime(struct cfs_rq *cfs_rq)
  3265. {
  3266. if (!cfs_bandwidth_used())
  3267. return false;
  3268. if (likely(!cfs_rq->runtime_enabled || cfs_rq->runtime_remaining > 0))
  3269. return false;
  3270. /*
  3271. * it's possible for a throttled entity to be forced into a running
  3272. * state (e.g. set_curr_task), in this case we're finished.
  3273. */
  3274. if (cfs_rq_throttled(cfs_rq))
  3275. return true;
  3276. throttle_cfs_rq(cfs_rq);
  3277. return true;
  3278. }
  3279. static enum hrtimer_restart sched_cfs_slack_timer(struct hrtimer *timer)
  3280. {
  3281. struct cfs_bandwidth *cfs_b =
  3282. container_of(timer, struct cfs_bandwidth, slack_timer);
  3283. do_sched_cfs_slack_timer(cfs_b);
  3284. return HRTIMER_NORESTART;
  3285. }
  3286. static enum hrtimer_restart sched_cfs_period_timer(struct hrtimer *timer)
  3287. {
  3288. struct cfs_bandwidth *cfs_b =
  3289. container_of(timer, struct cfs_bandwidth, period_timer);
  3290. ktime_t now;
  3291. int overrun;
  3292. int idle = 0;
  3293. raw_spin_lock(&cfs_b->lock);
  3294. for (;;) {
  3295. now = hrtimer_cb_get_time(timer);
  3296. overrun = hrtimer_forward(timer, now, cfs_b->period);
  3297. if (!overrun)
  3298. break;
  3299. idle = do_sched_cfs_period_timer(cfs_b, overrun);
  3300. }
  3301. raw_spin_unlock(&cfs_b->lock);
  3302. return idle ? HRTIMER_NORESTART : HRTIMER_RESTART;
  3303. }
  3304. void init_cfs_bandwidth(struct cfs_bandwidth *cfs_b)
  3305. {
  3306. raw_spin_lock_init(&cfs_b->lock);
  3307. cfs_b->runtime = 0;
  3308. cfs_b->quota = RUNTIME_INF;
  3309. cfs_b->period = ns_to_ktime(default_cfs_period());
  3310. INIT_LIST_HEAD(&cfs_b->throttled_cfs_rq);
  3311. hrtimer_init(&cfs_b->period_timer, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
  3312. cfs_b->period_timer.function = sched_cfs_period_timer;
  3313. hrtimer_init(&cfs_b->slack_timer, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
  3314. cfs_b->slack_timer.function = sched_cfs_slack_timer;
  3315. }
  3316. static void init_cfs_rq_runtime(struct cfs_rq *cfs_rq)
  3317. {
  3318. cfs_rq->runtime_enabled = 0;
  3319. INIT_LIST_HEAD(&cfs_rq->throttled_list);
  3320. }
  3321. /* requires cfs_b->lock, may release to reprogram timer */
  3322. void __start_cfs_bandwidth(struct cfs_bandwidth *cfs_b, bool force)
  3323. {
  3324. /*
  3325. * The timer may be active because we're trying to set a new bandwidth
  3326. * period or because we're racing with the tear-down path
  3327. * (timer_active==0 becomes visible before the hrtimer call-back
  3328. * terminates). In either case we ensure that it's re-programmed
  3329. */
  3330. while (unlikely(hrtimer_active(&cfs_b->period_timer)) &&
  3331. hrtimer_try_to_cancel(&cfs_b->period_timer) < 0) {
  3332. /* bounce the lock to allow do_sched_cfs_period_timer to run */
  3333. raw_spin_unlock(&cfs_b->lock);
  3334. cpu_relax();
  3335. raw_spin_lock(&cfs_b->lock);
  3336. /* if someone else restarted the timer then we're done */
  3337. if (!force && cfs_b->timer_active)
  3338. return;
  3339. }
  3340. cfs_b->timer_active = 1;
  3341. start_bandwidth_timer(&cfs_b->period_timer, cfs_b->period);
  3342. }
  3343. static void destroy_cfs_bandwidth(struct cfs_bandwidth *cfs_b)
  3344. {
  3345. /* init_cfs_bandwidth() was not called */
  3346. if (!cfs_b->throttled_cfs_rq.next)
  3347. return;
  3348. hrtimer_cancel(&cfs_b->period_timer);
  3349. hrtimer_cancel(&cfs_b->slack_timer);
  3350. }
  3351. static void __maybe_unused update_runtime_enabled(struct rq *rq)
  3352. {
  3353. struct cfs_rq *cfs_rq;
  3354. for_each_leaf_cfs_rq(rq, cfs_rq) {
  3355. struct cfs_bandwidth *cfs_b = &cfs_rq->tg->cfs_bandwidth;
  3356. raw_spin_lock(&cfs_b->lock);
  3357. cfs_rq->runtime_enabled = cfs_b->quota != RUNTIME_INF;
  3358. raw_spin_unlock(&cfs_b->lock);
  3359. }
  3360. }
  3361. static void __maybe_unused unthrottle_offline_cfs_rqs(struct rq *rq)
  3362. {
  3363. struct cfs_rq *cfs_rq;
  3364. for_each_leaf_cfs_rq(rq, cfs_rq) {
  3365. if (!cfs_rq->runtime_enabled)
  3366. continue;
  3367. /*
  3368. * clock_task is not advancing so we just need to make sure
  3369. * there's some valid quota amount
  3370. */
  3371. cfs_rq->runtime_remaining = 1;
  3372. /*
  3373. * Offline rq is schedulable till cpu is completely disabled
  3374. * in take_cpu_down(), so we prevent new cfs throttling here.
  3375. */
  3376. cfs_rq->runtime_enabled = 0;
  3377. if (cfs_rq_throttled(cfs_rq))
  3378. unthrottle_cfs_rq(cfs_rq);
  3379. }
  3380. }
  3381. #else /* CONFIG_CFS_BANDWIDTH */
  3382. static inline u64 cfs_rq_clock_task(struct cfs_rq *cfs_rq)
  3383. {
  3384. return rq_clock_task(rq_of(cfs_rq));
  3385. }
  3386. static void account_cfs_rq_runtime(struct cfs_rq *cfs_rq, u64 delta_exec) {}
  3387. static bool check_cfs_rq_runtime(struct cfs_rq *cfs_rq) { return false; }
  3388. static void check_enqueue_throttle(struct cfs_rq *cfs_rq) {}
  3389. static __always_inline void return_cfs_rq_runtime(struct cfs_rq *cfs_rq) {}
  3390. static inline int cfs_rq_throttled(struct cfs_rq *cfs_rq)
  3391. {
  3392. return 0;
  3393. }
  3394. static inline int throttled_hierarchy(struct cfs_rq *cfs_rq)
  3395. {
  3396. return 0;
  3397. }
  3398. static inline int throttled_lb_pair(struct task_group *tg,
  3399. int src_cpu, int dest_cpu)
  3400. {
  3401. return 0;
  3402. }
  3403. void init_cfs_bandwidth(struct cfs_bandwidth *cfs_b) {}
  3404. #ifdef CONFIG_FAIR_GROUP_SCHED
  3405. static void init_cfs_rq_runtime(struct cfs_rq *cfs_rq) {}
  3406. #endif
  3407. static inline struct cfs_bandwidth *tg_cfs_bandwidth(struct task_group *tg)
  3408. {
  3409. return NULL;
  3410. }
  3411. static inline void destroy_cfs_bandwidth(struct cfs_bandwidth *cfs_b) {}
  3412. static inline void update_runtime_enabled(struct rq *rq) {}
  3413. static inline void unthrottle_offline_cfs_rqs(struct rq *rq) {}
  3414. #endif /* CONFIG_CFS_BANDWIDTH */
  3415. /**************************************************
  3416. * CFS operations on tasks:
  3417. */
  3418. #ifdef CONFIG_SCHED_HRTICK
  3419. static void hrtick_start_fair(struct rq *rq, struct task_struct *p)
  3420. {
  3421. struct sched_entity *se = &p->se;
  3422. struct cfs_rq *cfs_rq = cfs_rq_of(se);
  3423. WARN_ON(task_rq(p) != rq);
  3424. if (cfs_rq->nr_running > 1) {
  3425. u64 slice = sched_slice(cfs_rq, se);
  3426. u64 ran = se->sum_exec_runtime - se->prev_sum_exec_runtime;
  3427. s64 delta = slice - ran;
  3428. if (delta < 0) {
  3429. if (rq->curr == p)
  3430. resched_curr(rq);
  3431. return;
  3432. }
  3433. hrtick_start(rq, delta);
  3434. }
  3435. }
  3436. /*
  3437. * called from enqueue/dequeue and updates the hrtick when the
  3438. * current task is from our class and nr_running is low enough
  3439. * to matter.
  3440. */
  3441. static void hrtick_update(struct rq *rq)
  3442. {
  3443. struct task_struct *curr = rq->curr;
  3444. if (!hrtick_enabled(rq) || curr->sched_class != &fair_sched_class)
  3445. return;
  3446. if (cfs_rq_of(&curr->se)->nr_running < sched_nr_latency)
  3447. hrtick_start_fair(rq, curr);
  3448. }
  3449. #else /* !CONFIG_SCHED_HRTICK */
  3450. static inline void
  3451. hrtick_start_fair(struct rq *rq, struct task_struct *p)
  3452. {
  3453. }
  3454. static inline void hrtick_update(struct rq *rq)
  3455. {
  3456. }
  3457. #endif
  3458. /*
  3459. * The enqueue_task method is called before nr_running is
  3460. * increased. Here we update the fair scheduling stats and
  3461. * then put the task into the rbtree:
  3462. */
  3463. static void
  3464. enqueue_task_fair(struct rq *rq, struct task_struct *p, int flags)
  3465. {
  3466. struct cfs_rq *cfs_rq;
  3467. struct sched_entity *se = &p->se;
  3468. for_each_sched_entity(se) {
  3469. if (se->on_rq)
  3470. break;
  3471. cfs_rq = cfs_rq_of(se);
  3472. enqueue_entity(cfs_rq, se, flags);
  3473. /*
  3474. * end evaluation on encountering a throttled cfs_rq
  3475. *
  3476. * note: in the case of encountering a throttled cfs_rq we will
  3477. * post the final h_nr_running increment below.
  3478. */
  3479. if (cfs_rq_throttled(cfs_rq))
  3480. break;
  3481. cfs_rq->h_nr_running++;
  3482. flags = ENQUEUE_WAKEUP;
  3483. }
  3484. for_each_sched_entity(se) {
  3485. cfs_rq = cfs_rq_of(se);
  3486. cfs_rq->h_nr_running++;
  3487. if (cfs_rq_throttled(cfs_rq))
  3488. break;
  3489. update_cfs_shares(cfs_rq);
  3490. update_entity_load_avg(se, 1);
  3491. }
  3492. if (!se) {
  3493. update_rq_runnable_avg(rq, rq->nr_running);
  3494. add_nr_running(rq, 1);
  3495. }
  3496. hrtick_update(rq);
  3497. }
  3498. static void set_next_buddy(struct sched_entity *se);
  3499. /*
  3500. * The dequeue_task method is called before nr_running is
  3501. * decreased. We remove the task from the rbtree and
  3502. * update the fair scheduling stats:
  3503. */
  3504. static void dequeue_task_fair(struct rq *rq, struct task_struct *p, int flags)
  3505. {
  3506. struct cfs_rq *cfs_rq;
  3507. struct sched_entity *se = &p->se;
  3508. int task_sleep = flags & DEQUEUE_SLEEP;
  3509. for_each_sched_entity(se) {
  3510. cfs_rq = cfs_rq_of(se);
  3511. dequeue_entity(cfs_rq, se, flags);
  3512. /*
  3513. * end evaluation on encountering a throttled cfs_rq
  3514. *
  3515. * note: in the case of encountering a throttled cfs_rq we will
  3516. * post the final h_nr_running decrement below.
  3517. */
  3518. if (cfs_rq_throttled(cfs_rq))
  3519. break;
  3520. cfs_rq->h_nr_running--;
  3521. /* Don't dequeue parent if it has other entities besides us */
  3522. if (cfs_rq->load.weight) {
  3523. /*
  3524. * Bias pick_next to pick a task from this cfs_rq, as
  3525. * p is sleeping when it is within its sched_slice.
  3526. */
  3527. if (task_sleep && parent_entity(se))
  3528. set_next_buddy(parent_entity(se));
  3529. /* avoid re-evaluating load for this entity */
  3530. se = parent_entity(se);
  3531. break;
  3532. }
  3533. flags |= DEQUEUE_SLEEP;
  3534. }
  3535. for_each_sched_entity(se) {
  3536. cfs_rq = cfs_rq_of(se);
  3537. cfs_rq->h_nr_running--;
  3538. if (cfs_rq_throttled(cfs_rq))
  3539. break;
  3540. update_cfs_shares(cfs_rq);
  3541. update_entity_load_avg(se, 1);
  3542. }
  3543. if (!se) {
  3544. sub_nr_running(rq, 1);
  3545. update_rq_runnable_avg(rq, 1);
  3546. }
  3547. hrtick_update(rq);
  3548. }
  3549. #ifdef CONFIG_SMP
  3550. /* Used instead of source_load when we know the type == 0 */
  3551. static unsigned long weighted_cpuload(const int cpu)
  3552. {
  3553. return cpu_rq(cpu)->cfs.runnable_load_avg;
  3554. }
  3555. /*
  3556. * Return a low guess at the load of a migration-source cpu weighted
  3557. * according to the scheduling class and "nice" value.
  3558. *
  3559. * We want to under-estimate the load of migration sources, to
  3560. * balance conservatively.
  3561. */
  3562. static unsigned long source_load(int cpu, int type)
  3563. {
  3564. struct rq *rq = cpu_rq(cpu);
  3565. unsigned long total = weighted_cpuload(cpu);
  3566. if (type == 0 || !sched_feat(LB_BIAS))
  3567. return total;
  3568. return min(rq->cpu_load[type-1], total);
  3569. }
  3570. /*
  3571. * Return a high guess at the load of a migration-target cpu weighted
  3572. * according to the scheduling class and "nice" value.
  3573. */
  3574. static unsigned long target_load(int cpu, int type)
  3575. {
  3576. struct rq *rq = cpu_rq(cpu);
  3577. unsigned long total = weighted_cpuload(cpu);
  3578. if (type == 0 || !sched_feat(LB_BIAS))
  3579. return total;
  3580. return max(rq->cpu_load[type-1], total);
  3581. }
  3582. static unsigned long capacity_of(int cpu)
  3583. {
  3584. return cpu_rq(cpu)->cpu_capacity;
  3585. }
  3586. static unsigned long cpu_avg_load_per_task(int cpu)
  3587. {
  3588. struct rq *rq = cpu_rq(cpu);
  3589. unsigned long nr_running = ACCESS_ONCE(rq->cfs.h_nr_running);
  3590. unsigned long load_avg = rq->cfs.runnable_load_avg;
  3591. if (nr_running)
  3592. return load_avg / nr_running;
  3593. return 0;
  3594. }
  3595. static void record_wakee(struct task_struct *p)
  3596. {
  3597. /*
  3598. * Rough decay (wiping) for cost saving, don't worry
  3599. * about the boundary, really active task won't care
  3600. * about the loss.
  3601. */
  3602. if (time_after(jiffies, current->wakee_flip_decay_ts + HZ)) {
  3603. current->wakee_flips >>= 1;
  3604. current->wakee_flip_decay_ts = jiffies;
  3605. }
  3606. if (current->last_wakee != p) {
  3607. current->last_wakee = p;
  3608. current->wakee_flips++;
  3609. }
  3610. }
  3611. static void task_waking_fair(struct task_struct *p)
  3612. {
  3613. struct sched_entity *se = &p->se;
  3614. struct cfs_rq *cfs_rq = cfs_rq_of(se);
  3615. u64 min_vruntime;
  3616. #ifndef CONFIG_64BIT
  3617. u64 min_vruntime_copy;
  3618. do {
  3619. min_vruntime_copy = cfs_rq->min_vruntime_copy;
  3620. smp_rmb();
  3621. min_vruntime = cfs_rq->min_vruntime;
  3622. } while (min_vruntime != min_vruntime_copy);
  3623. #else
  3624. min_vruntime = cfs_rq->min_vruntime;
  3625. #endif
  3626. se->vruntime -= min_vruntime;
  3627. record_wakee(p);
  3628. }
  3629. #ifdef CONFIG_FAIR_GROUP_SCHED
  3630. /*
  3631. * effective_load() calculates the load change as seen from the root_task_group
  3632. *
  3633. * Adding load to a group doesn't make a group heavier, but can cause movement
  3634. * of group shares between cpus. Assuming the shares were perfectly aligned one
  3635. * can calculate the shift in shares.
  3636. *
  3637. * Calculate the effective load difference if @wl is added (subtracted) to @tg
  3638. * on this @cpu and results in a total addition (subtraction) of @wg to the
  3639. * total group weight.
  3640. *
  3641. * Given a runqueue weight distribution (rw_i) we can compute a shares
  3642. * distribution (s_i) using:
  3643. *
  3644. * s_i = rw_i / \Sum rw_j (1)
  3645. *
  3646. * Suppose we have 4 CPUs and our @tg is a direct child of the root group and
  3647. * has 7 equal weight tasks, distributed as below (rw_i), with the resulting
  3648. * shares distribution (s_i):
  3649. *
  3650. * rw_i = { 2, 4, 1, 0 }
  3651. * s_i = { 2/7, 4/7, 1/7, 0 }
  3652. *
  3653. * As per wake_affine() we're interested in the load of two CPUs (the CPU the
  3654. * task used to run on and the CPU the waker is running on), we need to
  3655. * compute the effect of waking a task on either CPU and, in case of a sync
  3656. * wakeup, compute the effect of the current task going to sleep.
  3657. *
  3658. * So for a change of @wl to the local @cpu with an overall group weight change
  3659. * of @wl we can compute the new shares distribution (s'_i) using:
  3660. *
  3661. * s'_i = (rw_i + @wl) / (@wg + \Sum rw_j) (2)
  3662. *
  3663. * Suppose we're interested in CPUs 0 and 1, and want to compute the load
  3664. * differences in waking a task to CPU 0. The additional task changes the
  3665. * weight and shares distributions like:
  3666. *
  3667. * rw'_i = { 3, 4, 1, 0 }
  3668. * s'_i = { 3/8, 4/8, 1/8, 0 }
  3669. *
  3670. * We can then compute the difference in effective weight by using:
  3671. *
  3672. * dw_i = S * (s'_i - s_i) (3)
  3673. *
  3674. * Where 'S' is the group weight as seen by its parent.
  3675. *
  3676. * Therefore the effective change in loads on CPU 0 would be 5/56 (3/8 - 2/7)
  3677. * times the weight of the group. The effect on CPU 1 would be -4/56 (4/8 -
  3678. * 4/7) times the weight of the group.
  3679. */
  3680. static long effective_load(struct task_group *tg, int cpu, long wl, long wg)
  3681. {
  3682. struct sched_entity *se = tg->se[cpu];
  3683. if (!tg->parent) /* the trivial, non-cgroup case */
  3684. return wl;
  3685. for_each_sched_entity(se) {
  3686. long w, W;
  3687. tg = se->my_q->tg;
  3688. /*
  3689. * W = @wg + \Sum rw_j
  3690. */
  3691. W = wg + calc_tg_weight(tg, se->my_q);
  3692. /*
  3693. * w = rw_i + @wl
  3694. */
  3695. w = se->my_q->load.weight + wl;
  3696. /*
  3697. * wl = S * s'_i; see (2)
  3698. */
  3699. if (W > 0 && w < W)
  3700. wl = (w * (long)tg->shares) / W;
  3701. else
  3702. wl = tg->shares;
  3703. /*
  3704. * Per the above, wl is the new se->load.weight value; since
  3705. * those are clipped to [MIN_SHARES, ...) do so now. See
  3706. * calc_cfs_shares().
  3707. */
  3708. if (wl < MIN_SHARES)
  3709. wl = MIN_SHARES;
  3710. /*
  3711. * wl = dw_i = S * (s'_i - s_i); see (3)
  3712. */
  3713. wl -= se->load.weight;
  3714. /*
  3715. * Recursively apply this logic to all parent groups to compute
  3716. * the final effective load change on the root group. Since
  3717. * only the @tg group gets extra weight, all parent groups can
  3718. * only redistribute existing shares. @wl is the shift in shares
  3719. * resulting from this level per the above.
  3720. */
  3721. wg = 0;
  3722. }
  3723. return wl;
  3724. }
  3725. #else
  3726. static long effective_load(struct task_group *tg, int cpu, long wl, long wg)
  3727. {
  3728. return wl;
  3729. }
  3730. #endif
  3731. static int wake_wide(struct task_struct *p)
  3732. {
  3733. int factor = this_cpu_read(sd_llc_size);
  3734. /*
  3735. * Yeah, it's the switching-frequency, could means many wakee or
  3736. * rapidly switch, use factor here will just help to automatically
  3737. * adjust the loose-degree, so bigger node will lead to more pull.
  3738. */
  3739. if (p->wakee_flips > factor) {
  3740. /*
  3741. * wakee is somewhat hot, it needs certain amount of cpu
  3742. * resource, so if waker is far more hot, prefer to leave
  3743. * it alone.
  3744. */
  3745. if (current->wakee_flips > (factor * p->wakee_flips))
  3746. return 1;
  3747. }
  3748. return 0;
  3749. }
  3750. static int wake_affine(struct sched_domain *sd, struct task_struct *p, int sync)
  3751. {
  3752. s64 this_load, load;
  3753. s64 this_eff_load, prev_eff_load;
  3754. int idx, this_cpu, prev_cpu;
  3755. struct task_group *tg;
  3756. unsigned long weight;
  3757. int balanced;
  3758. /*
  3759. * If we wake multiple tasks be careful to not bounce
  3760. * ourselves around too much.
  3761. */
  3762. if (wake_wide(p))
  3763. return 0;
  3764. idx = sd->wake_idx;
  3765. this_cpu = smp_processor_id();
  3766. prev_cpu = task_cpu(p);
  3767. load = source_load(prev_cpu, idx);
  3768. this_load = target_load(this_cpu, idx);
  3769. /*
  3770. * If sync wakeup then subtract the (maximum possible)
  3771. * effect of the currently running task from the load
  3772. * of the current CPU:
  3773. */
  3774. if (sync) {
  3775. tg = task_group(current);
  3776. weight = current->se.load.weight;
  3777. this_load += effective_load(tg, this_cpu, -weight, -weight);
  3778. load += effective_load(tg, prev_cpu, 0, -weight);
  3779. }
  3780. tg = task_group(p);
  3781. weight = p->se.load.weight;
  3782. /*
  3783. * In low-load situations, where prev_cpu is idle and this_cpu is idle
  3784. * due to the sync cause above having dropped this_load to 0, we'll
  3785. * always have an imbalance, but there's really nothing you can do
  3786. * about that, so that's good too.
  3787. *
  3788. * Otherwise check if either cpus are near enough in load to allow this
  3789. * task to be woken on this_cpu.
  3790. */
  3791. this_eff_load = 100;
  3792. this_eff_load *= capacity_of(prev_cpu);
  3793. prev_eff_load = 100 + (sd->imbalance_pct - 100) / 2;
  3794. prev_eff_load *= capacity_of(this_cpu);
  3795. if (this_load > 0) {
  3796. this_eff_load *= this_load +
  3797. effective_load(tg, this_cpu, weight, weight);
  3798. prev_eff_load *= load + effective_load(tg, prev_cpu, 0, weight);
  3799. }
  3800. balanced = this_eff_load <= prev_eff_load;
  3801. schedstat_inc(p, se.statistics.nr_wakeups_affine_attempts);
  3802. if (!balanced)
  3803. return 0;
  3804. schedstat_inc(sd, ttwu_move_affine);
  3805. schedstat_inc(p, se.statistics.nr_wakeups_affine);
  3806. return 1;
  3807. }
  3808. /*
  3809. * find_idlest_group finds and returns the least busy CPU group within the
  3810. * domain.
  3811. */
  3812. static struct sched_group *
  3813. find_idlest_group(struct sched_domain *sd, struct task_struct *p,
  3814. int this_cpu, int sd_flag)
  3815. {
  3816. struct sched_group *idlest = NULL, *group = sd->groups;
  3817. unsigned long min_load = ULONG_MAX, this_load = 0;
  3818. int load_idx = sd->forkexec_idx;
  3819. int imbalance = 100 + (sd->imbalance_pct-100)/2;
  3820. if (sd_flag & SD_BALANCE_WAKE)
  3821. load_idx = sd->wake_idx;
  3822. do {
  3823. unsigned long load, avg_load;
  3824. int local_group;
  3825. int i;
  3826. /* Skip over this group if it has no CPUs allowed */
  3827. if (!cpumask_intersects(sched_group_cpus(group),
  3828. tsk_cpus_allowed(p)))
  3829. continue;
  3830. local_group = cpumask_test_cpu(this_cpu,
  3831. sched_group_cpus(group));
  3832. /* Tally up the load of all CPUs in the group */
  3833. avg_load = 0;
  3834. for_each_cpu(i, sched_group_cpus(group)) {
  3835. /* Bias balancing toward cpus of our domain */
  3836. if (local_group)
  3837. load = source_load(i, load_idx);
  3838. else
  3839. load = target_load(i, load_idx);
  3840. avg_load += load;
  3841. }
  3842. /* Adjust by relative CPU capacity of the group */
  3843. avg_load = (avg_load * SCHED_CAPACITY_SCALE) / group->sgc->capacity;
  3844. if (local_group) {
  3845. this_load = avg_load;
  3846. } else if (avg_load < min_load) {
  3847. min_load = avg_load;
  3848. idlest = group;
  3849. }
  3850. } while (group = group->next, group != sd->groups);
  3851. if (!idlest || 100*this_load < imbalance*min_load)
  3852. return NULL;
  3853. return idlest;
  3854. }
  3855. /*
  3856. * find_idlest_cpu - find the idlest cpu among the cpus in group.
  3857. */
  3858. static int
  3859. find_idlest_cpu(struct sched_group *group, struct task_struct *p, int this_cpu)
  3860. {
  3861. unsigned long load, min_load = ULONG_MAX;
  3862. unsigned int min_exit_latency = UINT_MAX;
  3863. u64 latest_idle_timestamp = 0;
  3864. int least_loaded_cpu = this_cpu;
  3865. int shallowest_idle_cpu = -1;
  3866. int i;
  3867. /* Traverse only the allowed CPUs */
  3868. for_each_cpu_and(i, sched_group_cpus(group), tsk_cpus_allowed(p)) {
  3869. if (idle_cpu(i)) {
  3870. struct rq *rq = cpu_rq(i);
  3871. struct cpuidle_state *idle = idle_get_state(rq);
  3872. if (idle && idle->exit_latency < min_exit_latency) {
  3873. /*
  3874. * We give priority to a CPU whose idle state
  3875. * has the smallest exit latency irrespective
  3876. * of any idle timestamp.
  3877. */
  3878. min_exit_latency = idle->exit_latency;
  3879. latest_idle_timestamp = rq->idle_stamp;
  3880. shallowest_idle_cpu = i;
  3881. } else if ((!idle || idle->exit_latency == min_exit_latency) &&
  3882. rq->idle_stamp > latest_idle_timestamp) {
  3883. /*
  3884. * If equal or no active idle state, then
  3885. * the most recently idled CPU might have
  3886. * a warmer cache.
  3887. */
  3888. latest_idle_timestamp = rq->idle_stamp;
  3889. shallowest_idle_cpu = i;
  3890. }
  3891. } else if (shallowest_idle_cpu == -1) {
  3892. load = weighted_cpuload(i);
  3893. if (load < min_load || (load == min_load && i == this_cpu)) {
  3894. min_load = load;
  3895. least_loaded_cpu = i;
  3896. }
  3897. }
  3898. }
  3899. return shallowest_idle_cpu != -1 ? shallowest_idle_cpu : least_loaded_cpu;
  3900. }
  3901. /*
  3902. * Try and locate an idle CPU in the sched_domain.
  3903. */
  3904. static int select_idle_sibling(struct task_struct *p, int target)
  3905. {
  3906. struct sched_domain *sd;
  3907. struct sched_group *sg;
  3908. int i = task_cpu(p);
  3909. if (idle_cpu(target))
  3910. return target;
  3911. /*
  3912. * If the prevous cpu is cache affine and idle, don't be stupid.
  3913. */
  3914. if (i != target && cpus_share_cache(i, target) && idle_cpu(i))
  3915. return i;
  3916. /*
  3917. * Otherwise, iterate the domains and find an elegible idle cpu.
  3918. */
  3919. sd = rcu_dereference(per_cpu(sd_llc, target));
  3920. for_each_lower_domain(sd) {
  3921. sg = sd->groups;
  3922. do {
  3923. if (!cpumask_intersects(sched_group_cpus(sg),
  3924. tsk_cpus_allowed(p)))
  3925. goto next;
  3926. for_each_cpu(i, sched_group_cpus(sg)) {
  3927. if (i == target || !idle_cpu(i))
  3928. goto next;
  3929. }
  3930. target = cpumask_first_and(sched_group_cpus(sg),
  3931. tsk_cpus_allowed(p));
  3932. goto done;
  3933. next:
  3934. sg = sg->next;
  3935. } while (sg != sd->groups);
  3936. }
  3937. done:
  3938. return target;
  3939. }
  3940. /*
  3941. * select_task_rq_fair: Select target runqueue for the waking task in domains
  3942. * that have the 'sd_flag' flag set. In practice, this is SD_BALANCE_WAKE,
  3943. * SD_BALANCE_FORK, or SD_BALANCE_EXEC.
  3944. *
  3945. * Balances load by selecting the idlest cpu in the idlest group, or under
  3946. * certain conditions an idle sibling cpu if the domain has SD_WAKE_AFFINE set.
  3947. *
  3948. * Returns the target cpu number.
  3949. *
  3950. * preempt must be disabled.
  3951. */
  3952. static int
  3953. select_task_rq_fair(struct task_struct *p, int prev_cpu, int sd_flag, int wake_flags)
  3954. {
  3955. struct sched_domain *tmp, *affine_sd = NULL, *sd = NULL;
  3956. int cpu = smp_processor_id();
  3957. int new_cpu = cpu;
  3958. int want_affine = 0;
  3959. int sync = wake_flags & WF_SYNC;
  3960. if (sd_flag & SD_BALANCE_WAKE)
  3961. want_affine = cpumask_test_cpu(cpu, tsk_cpus_allowed(p));
  3962. rcu_read_lock();
  3963. for_each_domain(cpu, tmp) {
  3964. if (!(tmp->flags & SD_LOAD_BALANCE))
  3965. continue;
  3966. /*
  3967. * If both cpu and prev_cpu are part of this domain,
  3968. * cpu is a valid SD_WAKE_AFFINE target.
  3969. */
  3970. if (want_affine && (tmp->flags & SD_WAKE_AFFINE) &&
  3971. cpumask_test_cpu(prev_cpu, sched_domain_span(tmp))) {
  3972. affine_sd = tmp;
  3973. break;
  3974. }
  3975. if (tmp->flags & sd_flag)
  3976. sd = tmp;
  3977. }
  3978. if (affine_sd && cpu != prev_cpu && wake_affine(affine_sd, p, sync))
  3979. prev_cpu = cpu;
  3980. if (sd_flag & SD_BALANCE_WAKE) {
  3981. new_cpu = select_idle_sibling(p, prev_cpu);
  3982. goto unlock;
  3983. }
  3984. while (sd) {
  3985. struct sched_group *group;
  3986. int weight;
  3987. if (!(sd->flags & sd_flag)) {
  3988. sd = sd->child;
  3989. continue;
  3990. }
  3991. group = find_idlest_group(sd, p, cpu, sd_flag);
  3992. if (!group) {
  3993. sd = sd->child;
  3994. continue;
  3995. }
  3996. new_cpu = find_idlest_cpu(group, p, cpu);
  3997. if (new_cpu == -1 || new_cpu == cpu) {
  3998. /* Now try balancing at a lower domain level of cpu */
  3999. sd = sd->child;
  4000. continue;
  4001. }
  4002. /* Now try balancing at a lower domain level of new_cpu */
  4003. cpu = new_cpu;
  4004. weight = sd->span_weight;
  4005. sd = NULL;
  4006. for_each_domain(cpu, tmp) {
  4007. if (weight <= tmp->span_weight)
  4008. break;
  4009. if (tmp->flags & sd_flag)
  4010. sd = tmp;
  4011. }
  4012. /* while loop will break here if sd == NULL */
  4013. }
  4014. unlock:
  4015. rcu_read_unlock();
  4016. return new_cpu;
  4017. }
  4018. /*
  4019. * Called immediately before a task is migrated to a new cpu; task_cpu(p) and
  4020. * cfs_rq_of(p) references at time of call are still valid and identify the
  4021. * previous cpu. However, the caller only guarantees p->pi_lock is held; no
  4022. * other assumptions, including the state of rq->lock, should be made.
  4023. */
  4024. static void
  4025. migrate_task_rq_fair(struct task_struct *p, int next_cpu)
  4026. {
  4027. struct sched_entity *se = &p->se;
  4028. struct cfs_rq *cfs_rq = cfs_rq_of(se);
  4029. /*
  4030. * Load tracking: accumulate removed load so that it can be processed
  4031. * when we next update owning cfs_rq under rq->lock. Tasks contribute
  4032. * to blocked load iff they have a positive decay-count. It can never
  4033. * be negative here since on-rq tasks have decay-count == 0.
  4034. */
  4035. if (se->avg.decay_count) {
  4036. se->avg.decay_count = -__synchronize_entity_decay(se);
  4037. atomic_long_add(se->avg.load_avg_contrib,
  4038. &cfs_rq->removed_load);
  4039. }
  4040. /* We have migrated, no longer consider this task hot */
  4041. se->exec_start = 0;
  4042. }
  4043. #endif /* CONFIG_SMP */
  4044. static unsigned long
  4045. wakeup_gran(struct sched_entity *curr, struct sched_entity *se)
  4046. {
  4047. unsigned long gran = sysctl_sched_wakeup_granularity;
  4048. /*
  4049. * Since its curr running now, convert the gran from real-time
  4050. * to virtual-time in his units.
  4051. *
  4052. * By using 'se' instead of 'curr' we penalize light tasks, so
  4053. * they get preempted easier. That is, if 'se' < 'curr' then
  4054. * the resulting gran will be larger, therefore penalizing the
  4055. * lighter, if otoh 'se' > 'curr' then the resulting gran will
  4056. * be smaller, again penalizing the lighter task.
  4057. *
  4058. * This is especially important for buddies when the leftmost
  4059. * task is higher priority than the buddy.
  4060. */
  4061. return calc_delta_fair(gran, se);
  4062. }
  4063. /*
  4064. * Should 'se' preempt 'curr'.
  4065. *
  4066. * |s1
  4067. * |s2
  4068. * |s3
  4069. * g
  4070. * |<--->|c
  4071. *
  4072. * w(c, s1) = -1
  4073. * w(c, s2) = 0
  4074. * w(c, s3) = 1
  4075. *
  4076. */
  4077. static int
  4078. wakeup_preempt_entity(struct sched_entity *curr, struct sched_entity *se)
  4079. {
  4080. s64 gran, vdiff = curr->vruntime - se->vruntime;
  4081. if (vdiff <= 0)
  4082. return -1;
  4083. gran = wakeup_gran(curr, se);
  4084. if (vdiff > gran)
  4085. return 1;
  4086. return 0;
  4087. }
  4088. static void set_last_buddy(struct sched_entity *se)
  4089. {
  4090. if (entity_is_task(se) && unlikely(task_of(se)->policy == SCHED_IDLE))
  4091. return;
  4092. for_each_sched_entity(se)
  4093. cfs_rq_of(se)->last = se;
  4094. }
  4095. static void set_next_buddy(struct sched_entity *se)
  4096. {
  4097. if (entity_is_task(se) && unlikely(task_of(se)->policy == SCHED_IDLE))
  4098. return;
  4099. for_each_sched_entity(se)
  4100. cfs_rq_of(se)->next = se;
  4101. }
  4102. static void set_skip_buddy(struct sched_entity *se)
  4103. {
  4104. for_each_sched_entity(se)
  4105. cfs_rq_of(se)->skip = se;
  4106. }
  4107. /*
  4108. * Preempt the current task with a newly woken task if needed:
  4109. */
  4110. static void check_preempt_wakeup(struct rq *rq, struct task_struct *p, int wake_flags)
  4111. {
  4112. struct task_struct *curr = rq->curr;
  4113. struct sched_entity *se = &curr->se, *pse = &p->se;
  4114. struct cfs_rq *cfs_rq = task_cfs_rq(curr);
  4115. int scale = cfs_rq->nr_running >= sched_nr_latency;
  4116. int next_buddy_marked = 0;
  4117. if (unlikely(se == pse))
  4118. return;
  4119. /*
  4120. * This is possible from callers such as attach_tasks(), in which we
  4121. * unconditionally check_prempt_curr() after an enqueue (which may have
  4122. * lead to a throttle). This both saves work and prevents false
  4123. * next-buddy nomination below.
  4124. */
  4125. if (unlikely(throttled_hierarchy(cfs_rq_of(pse))))
  4126. return;
  4127. if (sched_feat(NEXT_BUDDY) && scale && !(wake_flags & WF_FORK)) {
  4128. set_next_buddy(pse);
  4129. next_buddy_marked = 1;
  4130. }
  4131. /*
  4132. * We can come here with TIF_NEED_RESCHED already set from new task
  4133. * wake up path.
  4134. *
  4135. * Note: this also catches the edge-case of curr being in a throttled
  4136. * group (e.g. via set_curr_task), since update_curr() (in the
  4137. * enqueue of curr) will have resulted in resched being set. This
  4138. * prevents us from potentially nominating it as a false LAST_BUDDY
  4139. * below.
  4140. */
  4141. if (test_tsk_need_resched(curr))
  4142. return;
  4143. /* Idle tasks are by definition preempted by non-idle tasks. */
  4144. if (unlikely(curr->policy == SCHED_IDLE) &&
  4145. likely(p->policy != SCHED_IDLE))
  4146. goto preempt;
  4147. /*
  4148. * Batch and idle tasks do not preempt non-idle tasks (their preemption
  4149. * is driven by the tick):
  4150. */
  4151. if (unlikely(p->policy != SCHED_NORMAL) || !sched_feat(WAKEUP_PREEMPTION))
  4152. return;
  4153. find_matching_se(&se, &pse);
  4154. update_curr(cfs_rq_of(se));
  4155. BUG_ON(!pse);
  4156. if (wakeup_preempt_entity(se, pse) == 1) {
  4157. /*
  4158. * Bias pick_next to pick the sched entity that is
  4159. * triggering this preemption.
  4160. */
  4161. if (!next_buddy_marked)
  4162. set_next_buddy(pse);
  4163. goto preempt;
  4164. }
  4165. return;
  4166. preempt:
  4167. resched_curr(rq);
  4168. /*
  4169. * Only set the backward buddy when the current task is still
  4170. * on the rq. This can happen when a wakeup gets interleaved
  4171. * with schedule on the ->pre_schedule() or idle_balance()
  4172. * point, either of which can * drop the rq lock.
  4173. *
  4174. * Also, during early boot the idle thread is in the fair class,
  4175. * for obvious reasons its a bad idea to schedule back to it.
  4176. */
  4177. if (unlikely(!se->on_rq || curr == rq->idle))
  4178. return;
  4179. if (sched_feat(LAST_BUDDY) && scale && entity_is_task(se))
  4180. set_last_buddy(se);
  4181. }
  4182. static struct task_struct *
  4183. pick_next_task_fair(struct rq *rq, struct task_struct *prev)
  4184. {
  4185. struct cfs_rq *cfs_rq = &rq->cfs;
  4186. struct sched_entity *se;
  4187. struct task_struct *p;
  4188. int new_tasks;
  4189. again:
  4190. #ifdef CONFIG_FAIR_GROUP_SCHED
  4191. if (!cfs_rq->nr_running)
  4192. goto idle;
  4193. if (prev->sched_class != &fair_sched_class)
  4194. goto simple;
  4195. /*
  4196. * Because of the set_next_buddy() in dequeue_task_fair() it is rather
  4197. * likely that a next task is from the same cgroup as the current.
  4198. *
  4199. * Therefore attempt to avoid putting and setting the entire cgroup
  4200. * hierarchy, only change the part that actually changes.
  4201. */
  4202. do {
  4203. struct sched_entity *curr = cfs_rq->curr;
  4204. /*
  4205. * Since we got here without doing put_prev_entity() we also
  4206. * have to consider cfs_rq->curr. If it is still a runnable
  4207. * entity, update_curr() will update its vruntime, otherwise
  4208. * forget we've ever seen it.
  4209. */
  4210. if (curr && curr->on_rq)
  4211. update_curr(cfs_rq);
  4212. else
  4213. curr = NULL;
  4214. /*
  4215. * This call to check_cfs_rq_runtime() will do the throttle and
  4216. * dequeue its entity in the parent(s). Therefore the 'simple'
  4217. * nr_running test will indeed be correct.
  4218. */
  4219. if (unlikely(check_cfs_rq_runtime(cfs_rq)))
  4220. goto simple;
  4221. se = pick_next_entity(cfs_rq, curr);
  4222. cfs_rq = group_cfs_rq(se);
  4223. } while (cfs_rq);
  4224. p = task_of(se);
  4225. /*
  4226. * Since we haven't yet done put_prev_entity and if the selected task
  4227. * is a different task than we started out with, try and touch the
  4228. * least amount of cfs_rqs.
  4229. */
  4230. if (prev != p) {
  4231. struct sched_entity *pse = &prev->se;
  4232. while (!(cfs_rq = is_same_group(se, pse))) {
  4233. int se_depth = se->depth;
  4234. int pse_depth = pse->depth;
  4235. if (se_depth <= pse_depth) {
  4236. put_prev_entity(cfs_rq_of(pse), pse);
  4237. pse = parent_entity(pse);
  4238. }
  4239. if (se_depth >= pse_depth) {
  4240. set_next_entity(cfs_rq_of(se), se);
  4241. se = parent_entity(se);
  4242. }
  4243. }
  4244. put_prev_entity(cfs_rq, pse);
  4245. set_next_entity(cfs_rq, se);
  4246. }
  4247. if (hrtick_enabled(rq))
  4248. hrtick_start_fair(rq, p);
  4249. return p;
  4250. simple:
  4251. cfs_rq = &rq->cfs;
  4252. #endif
  4253. if (!cfs_rq->nr_running)
  4254. goto idle;
  4255. put_prev_task(rq, prev);
  4256. do {
  4257. se = pick_next_entity(cfs_rq, NULL);
  4258. set_next_entity(cfs_rq, se);
  4259. cfs_rq = group_cfs_rq(se);
  4260. } while (cfs_rq);
  4261. p = task_of(se);
  4262. if (hrtick_enabled(rq))
  4263. hrtick_start_fair(rq, p);
  4264. return p;
  4265. idle:
  4266. new_tasks = idle_balance(rq);
  4267. /*
  4268. * Because idle_balance() releases (and re-acquires) rq->lock, it is
  4269. * possible for any higher priority task to appear. In that case we
  4270. * must re-start the pick_next_entity() loop.
  4271. */
  4272. if (new_tasks < 0)
  4273. return RETRY_TASK;
  4274. if (new_tasks > 0)
  4275. goto again;
  4276. return NULL;
  4277. }
  4278. /*
  4279. * Account for a descheduled task:
  4280. */
  4281. static void put_prev_task_fair(struct rq *rq, struct task_struct *prev)
  4282. {
  4283. struct sched_entity *se = &prev->se;
  4284. struct cfs_rq *cfs_rq;
  4285. for_each_sched_entity(se) {
  4286. cfs_rq = cfs_rq_of(se);
  4287. put_prev_entity(cfs_rq, se);
  4288. }
  4289. }
  4290. /*
  4291. * sched_yield() is very simple
  4292. *
  4293. * The magic of dealing with the ->skip buddy is in pick_next_entity.
  4294. */
  4295. static void yield_task_fair(struct rq *rq)
  4296. {
  4297. struct task_struct *curr = rq->curr;
  4298. struct cfs_rq *cfs_rq = task_cfs_rq(curr);
  4299. struct sched_entity *se = &curr->se;
  4300. /*
  4301. * Are we the only task in the tree?
  4302. */
  4303. if (unlikely(rq->nr_running == 1))
  4304. return;
  4305. clear_buddies(cfs_rq, se);
  4306. if (curr->policy != SCHED_BATCH) {
  4307. update_rq_clock(rq);
  4308. /*
  4309. * Update run-time statistics of the 'current'.
  4310. */
  4311. update_curr(cfs_rq);
  4312. /*
  4313. * Tell update_rq_clock() that we've just updated,
  4314. * so we don't do microscopic update in schedule()
  4315. * and double the fastpath cost.
  4316. */
  4317. rq_clock_skip_update(rq, true);
  4318. }
  4319. set_skip_buddy(se);
  4320. }
  4321. static bool yield_to_task_fair(struct rq *rq, struct task_struct *p, bool preempt)
  4322. {
  4323. struct sched_entity *se = &p->se;
  4324. /* throttled hierarchies are not runnable */
  4325. if (!se->on_rq || throttled_hierarchy(cfs_rq_of(se)))
  4326. return false;
  4327. /* Tell the scheduler that we'd really like pse to run next. */
  4328. set_next_buddy(se);
  4329. yield_task_fair(rq);
  4330. return true;
  4331. }
  4332. #ifdef CONFIG_SMP
  4333. /**************************************************
  4334. * Fair scheduling class load-balancing methods.
  4335. *
  4336. * BASICS
  4337. *
  4338. * The purpose of load-balancing is to achieve the same basic fairness the
  4339. * per-cpu scheduler provides, namely provide a proportional amount of compute
  4340. * time to each task. This is expressed in the following equation:
  4341. *
  4342. * W_i,n/P_i == W_j,n/P_j for all i,j (1)
  4343. *
  4344. * Where W_i,n is the n-th weight average for cpu i. The instantaneous weight
  4345. * W_i,0 is defined as:
  4346. *
  4347. * W_i,0 = \Sum_j w_i,j (2)
  4348. *
  4349. * Where w_i,j is the weight of the j-th runnable task on cpu i. This weight
  4350. * is derived from the nice value as per prio_to_weight[].
  4351. *
  4352. * The weight average is an exponential decay average of the instantaneous
  4353. * weight:
  4354. *
  4355. * W'_i,n = (2^n - 1) / 2^n * W_i,n + 1 / 2^n * W_i,0 (3)
  4356. *
  4357. * C_i is the compute capacity of cpu i, typically it is the
  4358. * fraction of 'recent' time available for SCHED_OTHER task execution. But it
  4359. * can also include other factors [XXX].
  4360. *
  4361. * To achieve this balance we define a measure of imbalance which follows
  4362. * directly from (1):
  4363. *
  4364. * imb_i,j = max{ avg(W/C), W_i/C_i } - min{ avg(W/C), W_j/C_j } (4)
  4365. *
  4366. * We them move tasks around to minimize the imbalance. In the continuous
  4367. * function space it is obvious this converges, in the discrete case we get
  4368. * a few fun cases generally called infeasible weight scenarios.
  4369. *
  4370. * [XXX expand on:
  4371. * - infeasible weights;
  4372. * - local vs global optima in the discrete case. ]
  4373. *
  4374. *
  4375. * SCHED DOMAINS
  4376. *
  4377. * In order to solve the imbalance equation (4), and avoid the obvious O(n^2)
  4378. * for all i,j solution, we create a tree of cpus that follows the hardware
  4379. * topology where each level pairs two lower groups (or better). This results
  4380. * in O(log n) layers. Furthermore we reduce the number of cpus going up the
  4381. * tree to only the first of the previous level and we decrease the frequency
  4382. * of load-balance at each level inv. proportional to the number of cpus in
  4383. * the groups.
  4384. *
  4385. * This yields:
  4386. *
  4387. * log_2 n 1 n
  4388. * \Sum { --- * --- * 2^i } = O(n) (5)
  4389. * i = 0 2^i 2^i
  4390. * `- size of each group
  4391. * | | `- number of cpus doing load-balance
  4392. * | `- freq
  4393. * `- sum over all levels
  4394. *
  4395. * Coupled with a limit on how many tasks we can migrate every balance pass,
  4396. * this makes (5) the runtime complexity of the balancer.
  4397. *
  4398. * An important property here is that each CPU is still (indirectly) connected
  4399. * to every other cpu in at most O(log n) steps:
  4400. *
  4401. * The adjacency matrix of the resulting graph is given by:
  4402. *
  4403. * log_2 n
  4404. * A_i,j = \Union (i % 2^k == 0) && i / 2^(k+1) == j / 2^(k+1) (6)
  4405. * k = 0
  4406. *
  4407. * And you'll find that:
  4408. *
  4409. * A^(log_2 n)_i,j != 0 for all i,j (7)
  4410. *
  4411. * Showing there's indeed a path between every cpu in at most O(log n) steps.
  4412. * The task movement gives a factor of O(m), giving a convergence complexity
  4413. * of:
  4414. *
  4415. * O(nm log n), n := nr_cpus, m := nr_tasks (8)
  4416. *
  4417. *
  4418. * WORK CONSERVING
  4419. *
  4420. * In order to avoid CPUs going idle while there's still work to do, new idle
  4421. * balancing is more aggressive and has the newly idle cpu iterate up the domain
  4422. * tree itself instead of relying on other CPUs to bring it work.
  4423. *
  4424. * This adds some complexity to both (5) and (8) but it reduces the total idle
  4425. * time.
  4426. *
  4427. * [XXX more?]
  4428. *
  4429. *
  4430. * CGROUPS
  4431. *
  4432. * Cgroups make a horror show out of (2), instead of a simple sum we get:
  4433. *
  4434. * s_k,i
  4435. * W_i,0 = \Sum_j \Prod_k w_k * ----- (9)
  4436. * S_k
  4437. *
  4438. * Where
  4439. *
  4440. * s_k,i = \Sum_j w_i,j,k and S_k = \Sum_i s_k,i (10)
  4441. *
  4442. * w_i,j,k is the weight of the j-th runnable task in the k-th cgroup on cpu i.
  4443. *
  4444. * The big problem is S_k, its a global sum needed to compute a local (W_i)
  4445. * property.
  4446. *
  4447. * [XXX write more on how we solve this.. _after_ merging pjt's patches that
  4448. * rewrite all of this once again.]
  4449. */
  4450. static unsigned long __read_mostly max_load_balance_interval = HZ/10;
  4451. enum fbq_type { regular, remote, all };
  4452. #define LBF_ALL_PINNED 0x01
  4453. #define LBF_NEED_BREAK 0x02
  4454. #define LBF_DST_PINNED 0x04
  4455. #define LBF_SOME_PINNED 0x08
  4456. struct lb_env {
  4457. struct sched_domain *sd;
  4458. struct rq *src_rq;
  4459. int src_cpu;
  4460. int dst_cpu;
  4461. struct rq *dst_rq;
  4462. struct cpumask *dst_grpmask;
  4463. int new_dst_cpu;
  4464. enum cpu_idle_type idle;
  4465. long imbalance;
  4466. /* The set of CPUs under consideration for load-balancing */
  4467. struct cpumask *cpus;
  4468. unsigned int flags;
  4469. unsigned int loop;
  4470. unsigned int loop_break;
  4471. unsigned int loop_max;
  4472. enum fbq_type fbq_type;
  4473. struct list_head tasks;
  4474. };
  4475. /*
  4476. * Is this task likely cache-hot:
  4477. */
  4478. static int task_hot(struct task_struct *p, struct lb_env *env)
  4479. {
  4480. s64 delta;
  4481. lockdep_assert_held(&env->src_rq->lock);
  4482. if (p->sched_class != &fair_sched_class)
  4483. return 0;
  4484. if (unlikely(p->policy == SCHED_IDLE))
  4485. return 0;
  4486. /*
  4487. * Buddy candidates are cache hot:
  4488. */
  4489. if (sched_feat(CACHE_HOT_BUDDY) && env->dst_rq->nr_running &&
  4490. (&p->se == cfs_rq_of(&p->se)->next ||
  4491. &p->se == cfs_rq_of(&p->se)->last))
  4492. return 1;
  4493. if (sysctl_sched_migration_cost == -1)
  4494. return 1;
  4495. if (sysctl_sched_migration_cost == 0)
  4496. return 0;
  4497. delta = rq_clock_task(env->src_rq) - p->se.exec_start;
  4498. return delta < (s64)sysctl_sched_migration_cost;
  4499. }
  4500. #ifdef CONFIG_NUMA_BALANCING
  4501. /* Returns true if the destination node has incurred more faults */
  4502. static bool migrate_improves_locality(struct task_struct *p, struct lb_env *env)
  4503. {
  4504. struct numa_group *numa_group = rcu_dereference(p->numa_group);
  4505. int src_nid, dst_nid;
  4506. if (!sched_feat(NUMA_FAVOUR_HIGHER) || !p->numa_faults ||
  4507. !(env->sd->flags & SD_NUMA)) {
  4508. return false;
  4509. }
  4510. src_nid = cpu_to_node(env->src_cpu);
  4511. dst_nid = cpu_to_node(env->dst_cpu);
  4512. if (src_nid == dst_nid)
  4513. return false;
  4514. if (numa_group) {
  4515. /* Task is already in the group's interleave set. */
  4516. if (node_isset(src_nid, numa_group->active_nodes))
  4517. return false;
  4518. /* Task is moving into the group's interleave set. */
  4519. if (node_isset(dst_nid, numa_group->active_nodes))
  4520. return true;
  4521. return group_faults(p, dst_nid) > group_faults(p, src_nid);
  4522. }
  4523. /* Encourage migration to the preferred node. */
  4524. if (dst_nid == p->numa_preferred_nid)
  4525. return true;
  4526. return task_faults(p, dst_nid) > task_faults(p, src_nid);
  4527. }
  4528. static bool migrate_degrades_locality(struct task_struct *p, struct lb_env *env)
  4529. {
  4530. struct numa_group *numa_group = rcu_dereference(p->numa_group);
  4531. int src_nid, dst_nid;
  4532. if (!sched_feat(NUMA) || !sched_feat(NUMA_RESIST_LOWER))
  4533. return false;
  4534. if (!p->numa_faults || !(env->sd->flags & SD_NUMA))
  4535. return false;
  4536. src_nid = cpu_to_node(env->src_cpu);
  4537. dst_nid = cpu_to_node(env->dst_cpu);
  4538. if (src_nid == dst_nid)
  4539. return false;
  4540. if (numa_group) {
  4541. /* Task is moving within/into the group's interleave set. */
  4542. if (node_isset(dst_nid, numa_group->active_nodes))
  4543. return false;
  4544. /* Task is moving out of the group's interleave set. */
  4545. if (node_isset(src_nid, numa_group->active_nodes))
  4546. return true;
  4547. return group_faults(p, dst_nid) < group_faults(p, src_nid);
  4548. }
  4549. /* Migrating away from the preferred node is always bad. */
  4550. if (src_nid == p->numa_preferred_nid)
  4551. return true;
  4552. return task_faults(p, dst_nid) < task_faults(p, src_nid);
  4553. }
  4554. #else
  4555. static inline bool migrate_improves_locality(struct task_struct *p,
  4556. struct lb_env *env)
  4557. {
  4558. return false;
  4559. }
  4560. static inline bool migrate_degrades_locality(struct task_struct *p,
  4561. struct lb_env *env)
  4562. {
  4563. return false;
  4564. }
  4565. #endif
  4566. /*
  4567. * can_migrate_task - may task p from runqueue rq be migrated to this_cpu?
  4568. */
  4569. static
  4570. int can_migrate_task(struct task_struct *p, struct lb_env *env)
  4571. {
  4572. int tsk_cache_hot = 0;
  4573. lockdep_assert_held(&env->src_rq->lock);
  4574. /*
  4575. * We do not migrate tasks that are:
  4576. * 1) throttled_lb_pair, or
  4577. * 2) cannot be migrated to this CPU due to cpus_allowed, or
  4578. * 3) running (obviously), or
  4579. * 4) are cache-hot on their current CPU.
  4580. */
  4581. if (throttled_lb_pair(task_group(p), env->src_cpu, env->dst_cpu))
  4582. return 0;
  4583. if (!cpumask_test_cpu(env->dst_cpu, tsk_cpus_allowed(p))) {
  4584. int cpu;
  4585. schedstat_inc(p, se.statistics.nr_failed_migrations_affine);
  4586. env->flags |= LBF_SOME_PINNED;
  4587. /*
  4588. * Remember if this task can be migrated to any other cpu in
  4589. * our sched_group. We may want to revisit it if we couldn't
  4590. * meet load balance goals by pulling other tasks on src_cpu.
  4591. *
  4592. * Also avoid computing new_dst_cpu if we have already computed
  4593. * one in current iteration.
  4594. */
  4595. if (!env->dst_grpmask || (env->flags & LBF_DST_PINNED))
  4596. return 0;
  4597. /* Prevent to re-select dst_cpu via env's cpus */
  4598. for_each_cpu_and(cpu, env->dst_grpmask, env->cpus) {
  4599. if (cpumask_test_cpu(cpu, tsk_cpus_allowed(p))) {
  4600. env->flags |= LBF_DST_PINNED;
  4601. env->new_dst_cpu = cpu;
  4602. break;
  4603. }
  4604. }
  4605. return 0;
  4606. }
  4607. /* Record that we found atleast one task that could run on dst_cpu */
  4608. env->flags &= ~LBF_ALL_PINNED;
  4609. if (task_running(env->src_rq, p)) {
  4610. schedstat_inc(p, se.statistics.nr_failed_migrations_running);
  4611. return 0;
  4612. }
  4613. /*
  4614. * Aggressive migration if:
  4615. * 1) destination numa is preferred
  4616. * 2) task is cache cold, or
  4617. * 3) too many balance attempts have failed.
  4618. */
  4619. tsk_cache_hot = task_hot(p, env);
  4620. if (!tsk_cache_hot)
  4621. tsk_cache_hot = migrate_degrades_locality(p, env);
  4622. if (migrate_improves_locality(p, env) || !tsk_cache_hot ||
  4623. env->sd->nr_balance_failed > env->sd->cache_nice_tries) {
  4624. if (tsk_cache_hot) {
  4625. schedstat_inc(env->sd, lb_hot_gained[env->idle]);
  4626. schedstat_inc(p, se.statistics.nr_forced_migrations);
  4627. }
  4628. return 1;
  4629. }
  4630. schedstat_inc(p, se.statistics.nr_failed_migrations_hot);
  4631. return 0;
  4632. }
  4633. /*
  4634. * detach_task() -- detach the task for the migration specified in env
  4635. */
  4636. static void detach_task(struct task_struct *p, struct lb_env *env)
  4637. {
  4638. lockdep_assert_held(&env->src_rq->lock);
  4639. deactivate_task(env->src_rq, p, 0);
  4640. p->on_rq = TASK_ON_RQ_MIGRATING;
  4641. set_task_cpu(p, env->dst_cpu);
  4642. }
  4643. /*
  4644. * detach_one_task() -- tries to dequeue exactly one task from env->src_rq, as
  4645. * part of active balancing operations within "domain".
  4646. *
  4647. * Returns a task if successful and NULL otherwise.
  4648. */
  4649. static struct task_struct *detach_one_task(struct lb_env *env)
  4650. {
  4651. struct task_struct *p, *n;
  4652. lockdep_assert_held(&env->src_rq->lock);
  4653. list_for_each_entry_safe(p, n, &env->src_rq->cfs_tasks, se.group_node) {
  4654. if (!can_migrate_task(p, env))
  4655. continue;
  4656. detach_task(p, env);
  4657. /*
  4658. * Right now, this is only the second place where
  4659. * lb_gained[env->idle] is updated (other is detach_tasks)
  4660. * so we can safely collect stats here rather than
  4661. * inside detach_tasks().
  4662. */
  4663. schedstat_inc(env->sd, lb_gained[env->idle]);
  4664. return p;
  4665. }
  4666. return NULL;
  4667. }
  4668. static const unsigned int sched_nr_migrate_break = 32;
  4669. /*
  4670. * detach_tasks() -- tries to detach up to imbalance weighted load from
  4671. * busiest_rq, as part of a balancing operation within domain "sd".
  4672. *
  4673. * Returns number of detached tasks if successful and 0 otherwise.
  4674. */
  4675. static int detach_tasks(struct lb_env *env)
  4676. {
  4677. struct list_head *tasks = &env->src_rq->cfs_tasks;
  4678. struct task_struct *p;
  4679. unsigned long load;
  4680. int detached = 0;
  4681. lockdep_assert_held(&env->src_rq->lock);
  4682. if (env->imbalance <= 0)
  4683. return 0;
  4684. while (!list_empty(tasks)) {
  4685. p = list_first_entry(tasks, struct task_struct, se.group_node);
  4686. env->loop++;
  4687. /* We've more or less seen every task there is, call it quits */
  4688. if (env->loop > env->loop_max)
  4689. break;
  4690. /* take a breather every nr_migrate tasks */
  4691. if (env->loop > env->loop_break) {
  4692. env->loop_break += sched_nr_migrate_break;
  4693. env->flags |= LBF_NEED_BREAK;
  4694. break;
  4695. }
  4696. if (!can_migrate_task(p, env))
  4697. goto next;
  4698. load = task_h_load(p);
  4699. if (sched_feat(LB_MIN) && load < 16 && !env->sd->nr_balance_failed)
  4700. goto next;
  4701. if ((load / 2) > env->imbalance)
  4702. goto next;
  4703. detach_task(p, env);
  4704. list_add(&p->se.group_node, &env->tasks);
  4705. detached++;
  4706. env->imbalance -= load;
  4707. #ifdef CONFIG_PREEMPT
  4708. /*
  4709. * NEWIDLE balancing is a source of latency, so preemptible
  4710. * kernels will stop after the first task is detached to minimize
  4711. * the critical section.
  4712. */
  4713. if (env->idle == CPU_NEWLY_IDLE)
  4714. break;
  4715. #endif
  4716. /*
  4717. * We only want to steal up to the prescribed amount of
  4718. * weighted load.
  4719. */
  4720. if (env->imbalance <= 0)
  4721. break;
  4722. continue;
  4723. next:
  4724. list_move_tail(&p->se.group_node, tasks);
  4725. }
  4726. /*
  4727. * Right now, this is one of only two places we collect this stat
  4728. * so we can safely collect detach_one_task() stats here rather
  4729. * than inside detach_one_task().
  4730. */
  4731. schedstat_add(env->sd, lb_gained[env->idle], detached);
  4732. return detached;
  4733. }
  4734. /*
  4735. * attach_task() -- attach the task detached by detach_task() to its new rq.
  4736. */
  4737. static void attach_task(struct rq *rq, struct task_struct *p)
  4738. {
  4739. lockdep_assert_held(&rq->lock);
  4740. BUG_ON(task_rq(p) != rq);
  4741. p->on_rq = TASK_ON_RQ_QUEUED;
  4742. activate_task(rq, p, 0);
  4743. check_preempt_curr(rq, p, 0);
  4744. }
  4745. /*
  4746. * attach_one_task() -- attaches the task returned from detach_one_task() to
  4747. * its new rq.
  4748. */
  4749. static void attach_one_task(struct rq *rq, struct task_struct *p)
  4750. {
  4751. raw_spin_lock(&rq->lock);
  4752. attach_task(rq, p);
  4753. raw_spin_unlock(&rq->lock);
  4754. }
  4755. /*
  4756. * attach_tasks() -- attaches all tasks detached by detach_tasks() to their
  4757. * new rq.
  4758. */
  4759. static void attach_tasks(struct lb_env *env)
  4760. {
  4761. struct list_head *tasks = &env->tasks;
  4762. struct task_struct *p;
  4763. raw_spin_lock(&env->dst_rq->lock);
  4764. while (!list_empty(tasks)) {
  4765. p = list_first_entry(tasks, struct task_struct, se.group_node);
  4766. list_del_init(&p->se.group_node);
  4767. attach_task(env->dst_rq, p);
  4768. }
  4769. raw_spin_unlock(&env->dst_rq->lock);
  4770. }
  4771. #ifdef CONFIG_FAIR_GROUP_SCHED
  4772. /*
  4773. * update tg->load_weight by folding this cpu's load_avg
  4774. */
  4775. static void __update_blocked_averages_cpu(struct task_group *tg, int cpu)
  4776. {
  4777. struct sched_entity *se = tg->se[cpu];
  4778. struct cfs_rq *cfs_rq = tg->cfs_rq[cpu];
  4779. /* throttled entities do not contribute to load */
  4780. if (throttled_hierarchy(cfs_rq))
  4781. return;
  4782. update_cfs_rq_blocked_load(cfs_rq, 1);
  4783. if (se) {
  4784. update_entity_load_avg(se, 1);
  4785. /*
  4786. * We pivot on our runnable average having decayed to zero for
  4787. * list removal. This generally implies that all our children
  4788. * have also been removed (modulo rounding error or bandwidth
  4789. * control); however, such cases are rare and we can fix these
  4790. * at enqueue.
  4791. *
  4792. * TODO: fix up out-of-order children on enqueue.
  4793. */
  4794. if (!se->avg.runnable_avg_sum && !cfs_rq->nr_running)
  4795. list_del_leaf_cfs_rq(cfs_rq);
  4796. } else {
  4797. struct rq *rq = rq_of(cfs_rq);
  4798. update_rq_runnable_avg(rq, rq->nr_running);
  4799. }
  4800. }
  4801. static void update_blocked_averages(int cpu)
  4802. {
  4803. struct rq *rq = cpu_rq(cpu);
  4804. struct cfs_rq *cfs_rq;
  4805. unsigned long flags;
  4806. raw_spin_lock_irqsave(&rq->lock, flags);
  4807. update_rq_clock(rq);
  4808. /*
  4809. * Iterates the task_group tree in a bottom up fashion, see
  4810. * list_add_leaf_cfs_rq() for details.
  4811. */
  4812. for_each_leaf_cfs_rq(rq, cfs_rq) {
  4813. /*
  4814. * Note: We may want to consider periodically releasing
  4815. * rq->lock about these updates so that creating many task
  4816. * groups does not result in continually extending hold time.
  4817. */
  4818. __update_blocked_averages_cpu(cfs_rq->tg, rq->cpu);
  4819. }
  4820. raw_spin_unlock_irqrestore(&rq->lock, flags);
  4821. }
  4822. /*
  4823. * Compute the hierarchical load factor for cfs_rq and all its ascendants.
  4824. * This needs to be done in a top-down fashion because the load of a child
  4825. * group is a fraction of its parents load.
  4826. */
  4827. static void update_cfs_rq_h_load(struct cfs_rq *cfs_rq)
  4828. {
  4829. struct rq *rq = rq_of(cfs_rq);
  4830. struct sched_entity *se = cfs_rq->tg->se[cpu_of(rq)];
  4831. unsigned long now = jiffies;
  4832. unsigned long load;
  4833. if (cfs_rq->last_h_load_update == now)
  4834. return;
  4835. cfs_rq->h_load_next = NULL;
  4836. for_each_sched_entity(se) {
  4837. cfs_rq = cfs_rq_of(se);
  4838. cfs_rq->h_load_next = se;
  4839. if (cfs_rq->last_h_load_update == now)
  4840. break;
  4841. }
  4842. if (!se) {
  4843. cfs_rq->h_load = cfs_rq->runnable_load_avg;
  4844. cfs_rq->last_h_load_update = now;
  4845. }
  4846. while ((se = cfs_rq->h_load_next) != NULL) {
  4847. load = cfs_rq->h_load;
  4848. load = div64_ul(load * se->avg.load_avg_contrib,
  4849. cfs_rq->runnable_load_avg + 1);
  4850. cfs_rq = group_cfs_rq(se);
  4851. cfs_rq->h_load = load;
  4852. cfs_rq->last_h_load_update = now;
  4853. }
  4854. }
  4855. static unsigned long task_h_load(struct task_struct *p)
  4856. {
  4857. struct cfs_rq *cfs_rq = task_cfs_rq(p);
  4858. update_cfs_rq_h_load(cfs_rq);
  4859. return div64_ul(p->se.avg.load_avg_contrib * cfs_rq->h_load,
  4860. cfs_rq->runnable_load_avg + 1);
  4861. }
  4862. #else
  4863. static inline void update_blocked_averages(int cpu)
  4864. {
  4865. }
  4866. static unsigned long task_h_load(struct task_struct *p)
  4867. {
  4868. return p->se.avg.load_avg_contrib;
  4869. }
  4870. #endif
  4871. /********** Helpers for find_busiest_group ************************/
  4872. enum group_type {
  4873. group_other = 0,
  4874. group_imbalanced,
  4875. group_overloaded,
  4876. };
  4877. /*
  4878. * sg_lb_stats - stats of a sched_group required for load_balancing
  4879. */
  4880. struct sg_lb_stats {
  4881. unsigned long avg_load; /*Avg load across the CPUs of the group */
  4882. unsigned long group_load; /* Total load over the CPUs of the group */
  4883. unsigned long sum_weighted_load; /* Weighted load of group's tasks */
  4884. unsigned long load_per_task;
  4885. unsigned long group_capacity;
  4886. unsigned int sum_nr_running; /* Nr tasks running in the group */
  4887. unsigned int group_capacity_factor;
  4888. unsigned int idle_cpus;
  4889. unsigned int group_weight;
  4890. enum group_type group_type;
  4891. int group_has_free_capacity;
  4892. #ifdef CONFIG_NUMA_BALANCING
  4893. unsigned int nr_numa_running;
  4894. unsigned int nr_preferred_running;
  4895. #endif
  4896. };
  4897. /*
  4898. * sd_lb_stats - Structure to store the statistics of a sched_domain
  4899. * during load balancing.
  4900. */
  4901. struct sd_lb_stats {
  4902. struct sched_group *busiest; /* Busiest group in this sd */
  4903. struct sched_group *local; /* Local group in this sd */
  4904. unsigned long total_load; /* Total load of all groups in sd */
  4905. unsigned long total_capacity; /* Total capacity of all groups in sd */
  4906. unsigned long avg_load; /* Average load across all groups in sd */
  4907. struct sg_lb_stats busiest_stat;/* Statistics of the busiest group */
  4908. struct sg_lb_stats local_stat; /* Statistics of the local group */
  4909. };
  4910. static inline void init_sd_lb_stats(struct sd_lb_stats *sds)
  4911. {
  4912. /*
  4913. * Skimp on the clearing to avoid duplicate work. We can avoid clearing
  4914. * local_stat because update_sg_lb_stats() does a full clear/assignment.
  4915. * We must however clear busiest_stat::avg_load because
  4916. * update_sd_pick_busiest() reads this before assignment.
  4917. */
  4918. *sds = (struct sd_lb_stats){
  4919. .busiest = NULL,
  4920. .local = NULL,
  4921. .total_load = 0UL,
  4922. .total_capacity = 0UL,
  4923. .busiest_stat = {
  4924. .avg_load = 0UL,
  4925. .sum_nr_running = 0,
  4926. .group_type = group_other,
  4927. },
  4928. };
  4929. }
  4930. /**
  4931. * get_sd_load_idx - Obtain the load index for a given sched domain.
  4932. * @sd: The sched_domain whose load_idx is to be obtained.
  4933. * @idle: The idle status of the CPU for whose sd load_idx is obtained.
  4934. *
  4935. * Return: The load index.
  4936. */
  4937. static inline int get_sd_load_idx(struct sched_domain *sd,
  4938. enum cpu_idle_type idle)
  4939. {
  4940. int load_idx;
  4941. switch (idle) {
  4942. case CPU_NOT_IDLE:
  4943. load_idx = sd->busy_idx;
  4944. break;
  4945. case CPU_NEWLY_IDLE:
  4946. load_idx = sd->newidle_idx;
  4947. break;
  4948. default:
  4949. load_idx = sd->idle_idx;
  4950. break;
  4951. }
  4952. return load_idx;
  4953. }
  4954. static unsigned long default_scale_capacity(struct sched_domain *sd, int cpu)
  4955. {
  4956. return SCHED_CAPACITY_SCALE;
  4957. }
  4958. unsigned long __weak arch_scale_freq_capacity(struct sched_domain *sd, int cpu)
  4959. {
  4960. return default_scale_capacity(sd, cpu);
  4961. }
  4962. static unsigned long default_scale_cpu_capacity(struct sched_domain *sd, int cpu)
  4963. {
  4964. if ((sd->flags & SD_SHARE_CPUCAPACITY) && (sd->span_weight > 1))
  4965. return sd->smt_gain / sd->span_weight;
  4966. return SCHED_CAPACITY_SCALE;
  4967. }
  4968. unsigned long __weak arch_scale_cpu_capacity(struct sched_domain *sd, int cpu)
  4969. {
  4970. return default_scale_cpu_capacity(sd, cpu);
  4971. }
  4972. static unsigned long scale_rt_capacity(int cpu)
  4973. {
  4974. struct rq *rq = cpu_rq(cpu);
  4975. u64 total, available, age_stamp, avg;
  4976. s64 delta;
  4977. /*
  4978. * Since we're reading these variables without serialization make sure
  4979. * we read them once before doing sanity checks on them.
  4980. */
  4981. age_stamp = ACCESS_ONCE(rq->age_stamp);
  4982. avg = ACCESS_ONCE(rq->rt_avg);
  4983. delta = __rq_clock_broken(rq) - age_stamp;
  4984. if (unlikely(delta < 0))
  4985. delta = 0;
  4986. total = sched_avg_period() + delta;
  4987. if (unlikely(total < avg)) {
  4988. /* Ensures that capacity won't end up being negative */
  4989. available = 0;
  4990. } else {
  4991. available = total - avg;
  4992. }
  4993. if (unlikely((s64)total < SCHED_CAPACITY_SCALE))
  4994. total = SCHED_CAPACITY_SCALE;
  4995. total >>= SCHED_CAPACITY_SHIFT;
  4996. return div_u64(available, total);
  4997. }
  4998. static void update_cpu_capacity(struct sched_domain *sd, int cpu)
  4999. {
  5000. unsigned long capacity = SCHED_CAPACITY_SCALE;
  5001. struct sched_group *sdg = sd->groups;
  5002. if (sched_feat(ARCH_CAPACITY))
  5003. capacity *= arch_scale_cpu_capacity(sd, cpu);
  5004. else
  5005. capacity *= default_scale_cpu_capacity(sd, cpu);
  5006. capacity >>= SCHED_CAPACITY_SHIFT;
  5007. sdg->sgc->capacity_orig = capacity;
  5008. if (sched_feat(ARCH_CAPACITY))
  5009. capacity *= arch_scale_freq_capacity(sd, cpu);
  5010. else
  5011. capacity *= default_scale_capacity(sd, cpu);
  5012. capacity >>= SCHED_CAPACITY_SHIFT;
  5013. capacity *= scale_rt_capacity(cpu);
  5014. capacity >>= SCHED_CAPACITY_SHIFT;
  5015. if (!capacity)
  5016. capacity = 1;
  5017. cpu_rq(cpu)->cpu_capacity = capacity;
  5018. sdg->sgc->capacity = capacity;
  5019. }
  5020. void update_group_capacity(struct sched_domain *sd, int cpu)
  5021. {
  5022. struct sched_domain *child = sd->child;
  5023. struct sched_group *group, *sdg = sd->groups;
  5024. unsigned long capacity, capacity_orig;
  5025. unsigned long interval;
  5026. interval = msecs_to_jiffies(sd->balance_interval);
  5027. interval = clamp(interval, 1UL, max_load_balance_interval);
  5028. sdg->sgc->next_update = jiffies + interval;
  5029. if (!child) {
  5030. update_cpu_capacity(sd, cpu);
  5031. return;
  5032. }
  5033. capacity_orig = capacity = 0;
  5034. if (child->flags & SD_OVERLAP) {
  5035. /*
  5036. * SD_OVERLAP domains cannot assume that child groups
  5037. * span the current group.
  5038. */
  5039. for_each_cpu(cpu, sched_group_cpus(sdg)) {
  5040. struct sched_group_capacity *sgc;
  5041. struct rq *rq = cpu_rq(cpu);
  5042. /*
  5043. * build_sched_domains() -> init_sched_groups_capacity()
  5044. * gets here before we've attached the domains to the
  5045. * runqueues.
  5046. *
  5047. * Use capacity_of(), which is set irrespective of domains
  5048. * in update_cpu_capacity().
  5049. *
  5050. * This avoids capacity/capacity_orig from being 0 and
  5051. * causing divide-by-zero issues on boot.
  5052. *
  5053. * Runtime updates will correct capacity_orig.
  5054. */
  5055. if (unlikely(!rq->sd)) {
  5056. capacity_orig += capacity_of(cpu);
  5057. capacity += capacity_of(cpu);
  5058. continue;
  5059. }
  5060. sgc = rq->sd->groups->sgc;
  5061. capacity_orig += sgc->capacity_orig;
  5062. capacity += sgc->capacity;
  5063. }
  5064. } else {
  5065. /*
  5066. * !SD_OVERLAP domains can assume that child groups
  5067. * span the current group.
  5068. */
  5069. group = child->groups;
  5070. do {
  5071. capacity_orig += group->sgc->capacity_orig;
  5072. capacity += group->sgc->capacity;
  5073. group = group->next;
  5074. } while (group != child->groups);
  5075. }
  5076. sdg->sgc->capacity_orig = capacity_orig;
  5077. sdg->sgc->capacity = capacity;
  5078. }
  5079. /*
  5080. * Try and fix up capacity for tiny siblings, this is needed when
  5081. * things like SD_ASYM_PACKING need f_b_g to select another sibling
  5082. * which on its own isn't powerful enough.
  5083. *
  5084. * See update_sd_pick_busiest() and check_asym_packing().
  5085. */
  5086. static inline int
  5087. fix_small_capacity(struct sched_domain *sd, struct sched_group *group)
  5088. {
  5089. /*
  5090. * Only siblings can have significantly less than SCHED_CAPACITY_SCALE
  5091. */
  5092. if (!(sd->flags & SD_SHARE_CPUCAPACITY))
  5093. return 0;
  5094. /*
  5095. * If ~90% of the cpu_capacity is still there, we're good.
  5096. */
  5097. if (group->sgc->capacity * 32 > group->sgc->capacity_orig * 29)
  5098. return 1;
  5099. return 0;
  5100. }
  5101. /*
  5102. * Group imbalance indicates (and tries to solve) the problem where balancing
  5103. * groups is inadequate due to tsk_cpus_allowed() constraints.
  5104. *
  5105. * Imagine a situation of two groups of 4 cpus each and 4 tasks each with a
  5106. * cpumask covering 1 cpu of the first group and 3 cpus of the second group.
  5107. * Something like:
  5108. *
  5109. * { 0 1 2 3 } { 4 5 6 7 }
  5110. * * * * *
  5111. *
  5112. * If we were to balance group-wise we'd place two tasks in the first group and
  5113. * two tasks in the second group. Clearly this is undesired as it will overload
  5114. * cpu 3 and leave one of the cpus in the second group unused.
  5115. *
  5116. * The current solution to this issue is detecting the skew in the first group
  5117. * by noticing the lower domain failed to reach balance and had difficulty
  5118. * moving tasks due to affinity constraints.
  5119. *
  5120. * When this is so detected; this group becomes a candidate for busiest; see
  5121. * update_sd_pick_busiest(). And calculate_imbalance() and
  5122. * find_busiest_group() avoid some of the usual balance conditions to allow it
  5123. * to create an effective group imbalance.
  5124. *
  5125. * This is a somewhat tricky proposition since the next run might not find the
  5126. * group imbalance and decide the groups need to be balanced again. A most
  5127. * subtle and fragile situation.
  5128. */
  5129. static inline int sg_imbalanced(struct sched_group *group)
  5130. {
  5131. return group->sgc->imbalance;
  5132. }
  5133. /*
  5134. * Compute the group capacity factor.
  5135. *
  5136. * Avoid the issue where N*frac(smt_capacity) >= 1 creates 'phantom' cores by
  5137. * first dividing out the smt factor and computing the actual number of cores
  5138. * and limit unit capacity with that.
  5139. */
  5140. static inline int sg_capacity_factor(struct lb_env *env, struct sched_group *group)
  5141. {
  5142. unsigned int capacity_factor, smt, cpus;
  5143. unsigned int capacity, capacity_orig;
  5144. capacity = group->sgc->capacity;
  5145. capacity_orig = group->sgc->capacity_orig;
  5146. cpus = group->group_weight;
  5147. /* smt := ceil(cpus / capacity), assumes: 1 < smt_capacity < 2 */
  5148. smt = DIV_ROUND_UP(SCHED_CAPACITY_SCALE * cpus, capacity_orig);
  5149. capacity_factor = cpus / smt; /* cores */
  5150. capacity_factor = min_t(unsigned,
  5151. capacity_factor, DIV_ROUND_CLOSEST(capacity, SCHED_CAPACITY_SCALE));
  5152. if (!capacity_factor)
  5153. capacity_factor = fix_small_capacity(env->sd, group);
  5154. return capacity_factor;
  5155. }
  5156. static enum group_type
  5157. group_classify(struct sched_group *group, struct sg_lb_stats *sgs)
  5158. {
  5159. if (sgs->sum_nr_running > sgs->group_capacity_factor)
  5160. return group_overloaded;
  5161. if (sg_imbalanced(group))
  5162. return group_imbalanced;
  5163. return group_other;
  5164. }
  5165. /**
  5166. * update_sg_lb_stats - Update sched_group's statistics for load balancing.
  5167. * @env: The load balancing environment.
  5168. * @group: sched_group whose statistics are to be updated.
  5169. * @load_idx: Load index of sched_domain of this_cpu for load calc.
  5170. * @local_group: Does group contain this_cpu.
  5171. * @sgs: variable to hold the statistics for this group.
  5172. * @overload: Indicate more than one runnable task for any CPU.
  5173. */
  5174. static inline void update_sg_lb_stats(struct lb_env *env,
  5175. struct sched_group *group, int load_idx,
  5176. int local_group, struct sg_lb_stats *sgs,
  5177. bool *overload)
  5178. {
  5179. unsigned long load;
  5180. int i;
  5181. memset(sgs, 0, sizeof(*sgs));
  5182. for_each_cpu_and(i, sched_group_cpus(group), env->cpus) {
  5183. struct rq *rq = cpu_rq(i);
  5184. /* Bias balancing toward cpus of our domain */
  5185. if (local_group)
  5186. load = target_load(i, load_idx);
  5187. else
  5188. load = source_load(i, load_idx);
  5189. sgs->group_load += load;
  5190. sgs->sum_nr_running += rq->cfs.h_nr_running;
  5191. if (rq->nr_running > 1)
  5192. *overload = true;
  5193. #ifdef CONFIG_NUMA_BALANCING
  5194. sgs->nr_numa_running += rq->nr_numa_running;
  5195. sgs->nr_preferred_running += rq->nr_preferred_running;
  5196. #endif
  5197. sgs->sum_weighted_load += weighted_cpuload(i);
  5198. if (idle_cpu(i))
  5199. sgs->idle_cpus++;
  5200. }
  5201. /* Adjust by relative CPU capacity of the group */
  5202. sgs->group_capacity = group->sgc->capacity;
  5203. sgs->avg_load = (sgs->group_load*SCHED_CAPACITY_SCALE) / sgs->group_capacity;
  5204. if (sgs->sum_nr_running)
  5205. sgs->load_per_task = sgs->sum_weighted_load / sgs->sum_nr_running;
  5206. sgs->group_weight = group->group_weight;
  5207. sgs->group_capacity_factor = sg_capacity_factor(env, group);
  5208. sgs->group_type = group_classify(group, sgs);
  5209. if (sgs->group_capacity_factor > sgs->sum_nr_running)
  5210. sgs->group_has_free_capacity = 1;
  5211. }
  5212. /**
  5213. * update_sd_pick_busiest - return 1 on busiest group
  5214. * @env: The load balancing environment.
  5215. * @sds: sched_domain statistics
  5216. * @sg: sched_group candidate to be checked for being the busiest
  5217. * @sgs: sched_group statistics
  5218. *
  5219. * Determine if @sg is a busier group than the previously selected
  5220. * busiest group.
  5221. *
  5222. * Return: %true if @sg is a busier group than the previously selected
  5223. * busiest group. %false otherwise.
  5224. */
  5225. static bool update_sd_pick_busiest(struct lb_env *env,
  5226. struct sd_lb_stats *sds,
  5227. struct sched_group *sg,
  5228. struct sg_lb_stats *sgs)
  5229. {
  5230. struct sg_lb_stats *busiest = &sds->busiest_stat;
  5231. if (sgs->group_type > busiest->group_type)
  5232. return true;
  5233. if (sgs->group_type < busiest->group_type)
  5234. return false;
  5235. if (sgs->avg_load <= busiest->avg_load)
  5236. return false;
  5237. /* This is the busiest node in its class. */
  5238. if (!(env->sd->flags & SD_ASYM_PACKING))
  5239. return true;
  5240. /*
  5241. * ASYM_PACKING needs to move all the work to the lowest
  5242. * numbered CPUs in the group, therefore mark all groups
  5243. * higher than ourself as busy.
  5244. */
  5245. if (sgs->sum_nr_running && env->dst_cpu < group_first_cpu(sg)) {
  5246. if (!sds->busiest)
  5247. return true;
  5248. if (group_first_cpu(sds->busiest) > group_first_cpu(sg))
  5249. return true;
  5250. }
  5251. return false;
  5252. }
  5253. #ifdef CONFIG_NUMA_BALANCING
  5254. static inline enum fbq_type fbq_classify_group(struct sg_lb_stats *sgs)
  5255. {
  5256. if (sgs->sum_nr_running > sgs->nr_numa_running)
  5257. return regular;
  5258. if (sgs->sum_nr_running > sgs->nr_preferred_running)
  5259. return remote;
  5260. return all;
  5261. }
  5262. static inline enum fbq_type fbq_classify_rq(struct rq *rq)
  5263. {
  5264. if (rq->nr_running > rq->nr_numa_running)
  5265. return regular;
  5266. if (rq->nr_running > rq->nr_preferred_running)
  5267. return remote;
  5268. return all;
  5269. }
  5270. #else
  5271. static inline enum fbq_type fbq_classify_group(struct sg_lb_stats *sgs)
  5272. {
  5273. return all;
  5274. }
  5275. static inline enum fbq_type fbq_classify_rq(struct rq *rq)
  5276. {
  5277. return regular;
  5278. }
  5279. #endif /* CONFIG_NUMA_BALANCING */
  5280. /**
  5281. * update_sd_lb_stats - Update sched_domain's statistics for load balancing.
  5282. * @env: The load balancing environment.
  5283. * @sds: variable to hold the statistics for this sched_domain.
  5284. */
  5285. static inline void update_sd_lb_stats(struct lb_env *env, struct sd_lb_stats *sds)
  5286. {
  5287. struct sched_domain *child = env->sd->child;
  5288. struct sched_group *sg = env->sd->groups;
  5289. struct sg_lb_stats tmp_sgs;
  5290. int load_idx, prefer_sibling = 0;
  5291. bool overload = false;
  5292. if (child && child->flags & SD_PREFER_SIBLING)
  5293. prefer_sibling = 1;
  5294. load_idx = get_sd_load_idx(env->sd, env->idle);
  5295. do {
  5296. struct sg_lb_stats *sgs = &tmp_sgs;
  5297. int local_group;
  5298. local_group = cpumask_test_cpu(env->dst_cpu, sched_group_cpus(sg));
  5299. if (local_group) {
  5300. sds->local = sg;
  5301. sgs = &sds->local_stat;
  5302. if (env->idle != CPU_NEWLY_IDLE ||
  5303. time_after_eq(jiffies, sg->sgc->next_update))
  5304. update_group_capacity(env->sd, env->dst_cpu);
  5305. }
  5306. update_sg_lb_stats(env, sg, load_idx, local_group, sgs,
  5307. &overload);
  5308. if (local_group)
  5309. goto next_group;
  5310. /*
  5311. * In case the child domain prefers tasks go to siblings
  5312. * first, lower the sg capacity factor to one so that we'll try
  5313. * and move all the excess tasks away. We lower the capacity
  5314. * of a group only if the local group has the capacity to fit
  5315. * these excess tasks, i.e. nr_running < group_capacity_factor. The
  5316. * extra check prevents the case where you always pull from the
  5317. * heaviest group when it is already under-utilized (possible
  5318. * with a large weight task outweighs the tasks on the system).
  5319. */
  5320. if (prefer_sibling && sds->local &&
  5321. sds->local_stat.group_has_free_capacity) {
  5322. sgs->group_capacity_factor = min(sgs->group_capacity_factor, 1U);
  5323. sgs->group_type = group_classify(sg, sgs);
  5324. }
  5325. if (update_sd_pick_busiest(env, sds, sg, sgs)) {
  5326. sds->busiest = sg;
  5327. sds->busiest_stat = *sgs;
  5328. }
  5329. next_group:
  5330. /* Now, start updating sd_lb_stats */
  5331. sds->total_load += sgs->group_load;
  5332. sds->total_capacity += sgs->group_capacity;
  5333. sg = sg->next;
  5334. } while (sg != env->sd->groups);
  5335. if (env->sd->flags & SD_NUMA)
  5336. env->fbq_type = fbq_classify_group(&sds->busiest_stat);
  5337. if (!env->sd->parent) {
  5338. /* update overload indicator if we are at root domain */
  5339. if (env->dst_rq->rd->overload != overload)
  5340. env->dst_rq->rd->overload = overload;
  5341. }
  5342. }
  5343. /**
  5344. * check_asym_packing - Check to see if the group is packed into the
  5345. * sched doman.
  5346. *
  5347. * This is primarily intended to used at the sibling level. Some
  5348. * cores like POWER7 prefer to use lower numbered SMT threads. In the
  5349. * case of POWER7, it can move to lower SMT modes only when higher
  5350. * threads are idle. When in lower SMT modes, the threads will
  5351. * perform better since they share less core resources. Hence when we
  5352. * have idle threads, we want them to be the higher ones.
  5353. *
  5354. * This packing function is run on idle threads. It checks to see if
  5355. * the busiest CPU in this domain (core in the P7 case) has a higher
  5356. * CPU number than the packing function is being run on. Here we are
  5357. * assuming lower CPU number will be equivalent to lower a SMT thread
  5358. * number.
  5359. *
  5360. * Return: 1 when packing is required and a task should be moved to
  5361. * this CPU. The amount of the imbalance is returned in *imbalance.
  5362. *
  5363. * @env: The load balancing environment.
  5364. * @sds: Statistics of the sched_domain which is to be packed
  5365. */
  5366. static int check_asym_packing(struct lb_env *env, struct sd_lb_stats *sds)
  5367. {
  5368. int busiest_cpu;
  5369. if (!(env->sd->flags & SD_ASYM_PACKING))
  5370. return 0;
  5371. if (!sds->busiest)
  5372. return 0;
  5373. busiest_cpu = group_first_cpu(sds->busiest);
  5374. if (env->dst_cpu > busiest_cpu)
  5375. return 0;
  5376. env->imbalance = DIV_ROUND_CLOSEST(
  5377. sds->busiest_stat.avg_load * sds->busiest_stat.group_capacity,
  5378. SCHED_CAPACITY_SCALE);
  5379. return 1;
  5380. }
  5381. /**
  5382. * fix_small_imbalance - Calculate the minor imbalance that exists
  5383. * amongst the groups of a sched_domain, during
  5384. * load balancing.
  5385. * @env: The load balancing environment.
  5386. * @sds: Statistics of the sched_domain whose imbalance is to be calculated.
  5387. */
  5388. static inline
  5389. void fix_small_imbalance(struct lb_env *env, struct sd_lb_stats *sds)
  5390. {
  5391. unsigned long tmp, capa_now = 0, capa_move = 0;
  5392. unsigned int imbn = 2;
  5393. unsigned long scaled_busy_load_per_task;
  5394. struct sg_lb_stats *local, *busiest;
  5395. local = &sds->local_stat;
  5396. busiest = &sds->busiest_stat;
  5397. if (!local->sum_nr_running)
  5398. local->load_per_task = cpu_avg_load_per_task(env->dst_cpu);
  5399. else if (busiest->load_per_task > local->load_per_task)
  5400. imbn = 1;
  5401. scaled_busy_load_per_task =
  5402. (busiest->load_per_task * SCHED_CAPACITY_SCALE) /
  5403. busiest->group_capacity;
  5404. if (busiest->avg_load + scaled_busy_load_per_task >=
  5405. local->avg_load + (scaled_busy_load_per_task * imbn)) {
  5406. env->imbalance = busiest->load_per_task;
  5407. return;
  5408. }
  5409. /*
  5410. * OK, we don't have enough imbalance to justify moving tasks,
  5411. * however we may be able to increase total CPU capacity used by
  5412. * moving them.
  5413. */
  5414. capa_now += busiest->group_capacity *
  5415. min(busiest->load_per_task, busiest->avg_load);
  5416. capa_now += local->group_capacity *
  5417. min(local->load_per_task, local->avg_load);
  5418. capa_now /= SCHED_CAPACITY_SCALE;
  5419. /* Amount of load we'd subtract */
  5420. if (busiest->avg_load > scaled_busy_load_per_task) {
  5421. capa_move += busiest->group_capacity *
  5422. min(busiest->load_per_task,
  5423. busiest->avg_load - scaled_busy_load_per_task);
  5424. }
  5425. /* Amount of load we'd add */
  5426. if (busiest->avg_load * busiest->group_capacity <
  5427. busiest->load_per_task * SCHED_CAPACITY_SCALE) {
  5428. tmp = (busiest->avg_load * busiest->group_capacity) /
  5429. local->group_capacity;
  5430. } else {
  5431. tmp = (busiest->load_per_task * SCHED_CAPACITY_SCALE) /
  5432. local->group_capacity;
  5433. }
  5434. capa_move += local->group_capacity *
  5435. min(local->load_per_task, local->avg_load + tmp);
  5436. capa_move /= SCHED_CAPACITY_SCALE;
  5437. /* Move if we gain throughput */
  5438. if (capa_move > capa_now)
  5439. env->imbalance = busiest->load_per_task;
  5440. }
  5441. /**
  5442. * calculate_imbalance - Calculate the amount of imbalance present within the
  5443. * groups of a given sched_domain during load balance.
  5444. * @env: load balance environment
  5445. * @sds: statistics of the sched_domain whose imbalance is to be calculated.
  5446. */
  5447. static inline void calculate_imbalance(struct lb_env *env, struct sd_lb_stats *sds)
  5448. {
  5449. unsigned long max_pull, load_above_capacity = ~0UL;
  5450. struct sg_lb_stats *local, *busiest;
  5451. local = &sds->local_stat;
  5452. busiest = &sds->busiest_stat;
  5453. if (busiest->group_type == group_imbalanced) {
  5454. /*
  5455. * In the group_imb case we cannot rely on group-wide averages
  5456. * to ensure cpu-load equilibrium, look at wider averages. XXX
  5457. */
  5458. busiest->load_per_task =
  5459. min(busiest->load_per_task, sds->avg_load);
  5460. }
  5461. /*
  5462. * In the presence of smp nice balancing, certain scenarios can have
  5463. * max load less than avg load(as we skip the groups at or below
  5464. * its cpu_capacity, while calculating max_load..)
  5465. */
  5466. if (busiest->avg_load <= sds->avg_load ||
  5467. local->avg_load >= sds->avg_load) {
  5468. env->imbalance = 0;
  5469. return fix_small_imbalance(env, sds);
  5470. }
  5471. /*
  5472. * If there aren't any idle cpus, avoid creating some.
  5473. */
  5474. if (busiest->group_type == group_overloaded &&
  5475. local->group_type == group_overloaded) {
  5476. load_above_capacity =
  5477. (busiest->sum_nr_running - busiest->group_capacity_factor);
  5478. load_above_capacity *= (SCHED_LOAD_SCALE * SCHED_CAPACITY_SCALE);
  5479. load_above_capacity /= busiest->group_capacity;
  5480. }
  5481. /*
  5482. * We're trying to get all the cpus to the average_load, so we don't
  5483. * want to push ourselves above the average load, nor do we wish to
  5484. * reduce the max loaded cpu below the average load. At the same time,
  5485. * we also don't want to reduce the group load below the group capacity
  5486. * (so that we can implement power-savings policies etc). Thus we look
  5487. * for the minimum possible imbalance.
  5488. */
  5489. max_pull = min(busiest->avg_load - sds->avg_load, load_above_capacity);
  5490. /* How much load to actually move to equalise the imbalance */
  5491. env->imbalance = min(
  5492. max_pull * busiest->group_capacity,
  5493. (sds->avg_load - local->avg_load) * local->group_capacity
  5494. ) / SCHED_CAPACITY_SCALE;
  5495. /*
  5496. * if *imbalance is less than the average load per runnable task
  5497. * there is no guarantee that any tasks will be moved so we'll have
  5498. * a think about bumping its value to force at least one task to be
  5499. * moved
  5500. */
  5501. if (env->imbalance < busiest->load_per_task)
  5502. return fix_small_imbalance(env, sds);
  5503. }
  5504. /******* find_busiest_group() helpers end here *********************/
  5505. /**
  5506. * find_busiest_group - Returns the busiest group within the sched_domain
  5507. * if there is an imbalance. If there isn't an imbalance, and
  5508. * the user has opted for power-savings, it returns a group whose
  5509. * CPUs can be put to idle by rebalancing those tasks elsewhere, if
  5510. * such a group exists.
  5511. *
  5512. * Also calculates the amount of weighted load which should be moved
  5513. * to restore balance.
  5514. *
  5515. * @env: The load balancing environment.
  5516. *
  5517. * Return: - The busiest group if imbalance exists.
  5518. * - If no imbalance and user has opted for power-savings balance,
  5519. * return the least loaded group whose CPUs can be
  5520. * put to idle by rebalancing its tasks onto our group.
  5521. */
  5522. static struct sched_group *find_busiest_group(struct lb_env *env)
  5523. {
  5524. struct sg_lb_stats *local, *busiest;
  5525. struct sd_lb_stats sds;
  5526. init_sd_lb_stats(&sds);
  5527. /*
  5528. * Compute the various statistics relavent for load balancing at
  5529. * this level.
  5530. */
  5531. update_sd_lb_stats(env, &sds);
  5532. local = &sds.local_stat;
  5533. busiest = &sds.busiest_stat;
  5534. if ((env->idle == CPU_IDLE || env->idle == CPU_NEWLY_IDLE) &&
  5535. check_asym_packing(env, &sds))
  5536. return sds.busiest;
  5537. /* There is no busy sibling group to pull tasks from */
  5538. if (!sds.busiest || busiest->sum_nr_running == 0)
  5539. goto out_balanced;
  5540. sds.avg_load = (SCHED_CAPACITY_SCALE * sds.total_load)
  5541. / sds.total_capacity;
  5542. /*
  5543. * If the busiest group is imbalanced the below checks don't
  5544. * work because they assume all things are equal, which typically
  5545. * isn't true due to cpus_allowed constraints and the like.
  5546. */
  5547. if (busiest->group_type == group_imbalanced)
  5548. goto force_balance;
  5549. /* SD_BALANCE_NEWIDLE trumps SMP nice when underutilized */
  5550. if (env->idle == CPU_NEWLY_IDLE && local->group_has_free_capacity &&
  5551. !busiest->group_has_free_capacity)
  5552. goto force_balance;
  5553. /*
  5554. * If the local group is busier than the selected busiest group
  5555. * don't try and pull any tasks.
  5556. */
  5557. if (local->avg_load >= busiest->avg_load)
  5558. goto out_balanced;
  5559. /*
  5560. * Don't pull any tasks if this group is already above the domain
  5561. * average load.
  5562. */
  5563. if (local->avg_load >= sds.avg_load)
  5564. goto out_balanced;
  5565. if (env->idle == CPU_IDLE) {
  5566. /*
  5567. * This cpu is idle. If the busiest group is not overloaded
  5568. * and there is no imbalance between this and busiest group
  5569. * wrt idle cpus, it is balanced. The imbalance becomes
  5570. * significant if the diff is greater than 1 otherwise we
  5571. * might end up to just move the imbalance on another group
  5572. */
  5573. if ((busiest->group_type != group_overloaded) &&
  5574. (local->idle_cpus <= (busiest->idle_cpus + 1)))
  5575. goto out_balanced;
  5576. } else {
  5577. /*
  5578. * In the CPU_NEWLY_IDLE, CPU_NOT_IDLE cases, use
  5579. * imbalance_pct to be conservative.
  5580. */
  5581. if (100 * busiest->avg_load <=
  5582. env->sd->imbalance_pct * local->avg_load)
  5583. goto out_balanced;
  5584. }
  5585. force_balance:
  5586. /* Looks like there is an imbalance. Compute it */
  5587. calculate_imbalance(env, &sds);
  5588. return sds.busiest;
  5589. out_balanced:
  5590. env->imbalance = 0;
  5591. return NULL;
  5592. }
  5593. /*
  5594. * find_busiest_queue - find the busiest runqueue among the cpus in group.
  5595. */
  5596. static struct rq *find_busiest_queue(struct lb_env *env,
  5597. struct sched_group *group)
  5598. {
  5599. struct rq *busiest = NULL, *rq;
  5600. unsigned long busiest_load = 0, busiest_capacity = 1;
  5601. int i;
  5602. for_each_cpu_and(i, sched_group_cpus(group), env->cpus) {
  5603. unsigned long capacity, capacity_factor, wl;
  5604. enum fbq_type rt;
  5605. rq = cpu_rq(i);
  5606. rt = fbq_classify_rq(rq);
  5607. /*
  5608. * We classify groups/runqueues into three groups:
  5609. * - regular: there are !numa tasks
  5610. * - remote: there are numa tasks that run on the 'wrong' node
  5611. * - all: there is no distinction
  5612. *
  5613. * In order to avoid migrating ideally placed numa tasks,
  5614. * ignore those when there's better options.
  5615. *
  5616. * If we ignore the actual busiest queue to migrate another
  5617. * task, the next balance pass can still reduce the busiest
  5618. * queue by moving tasks around inside the node.
  5619. *
  5620. * If we cannot move enough load due to this classification
  5621. * the next pass will adjust the group classification and
  5622. * allow migration of more tasks.
  5623. *
  5624. * Both cases only affect the total convergence complexity.
  5625. */
  5626. if (rt > env->fbq_type)
  5627. continue;
  5628. capacity = capacity_of(i);
  5629. capacity_factor = DIV_ROUND_CLOSEST(capacity, SCHED_CAPACITY_SCALE);
  5630. if (!capacity_factor)
  5631. capacity_factor = fix_small_capacity(env->sd, group);
  5632. wl = weighted_cpuload(i);
  5633. /*
  5634. * When comparing with imbalance, use weighted_cpuload()
  5635. * which is not scaled with the cpu capacity.
  5636. */
  5637. if (capacity_factor && rq->nr_running == 1 && wl > env->imbalance)
  5638. continue;
  5639. /*
  5640. * For the load comparisons with the other cpu's, consider
  5641. * the weighted_cpuload() scaled with the cpu capacity, so
  5642. * that the load can be moved away from the cpu that is
  5643. * potentially running at a lower capacity.
  5644. *
  5645. * Thus we're looking for max(wl_i / capacity_i), crosswise
  5646. * multiplication to rid ourselves of the division works out
  5647. * to: wl_i * capacity_j > wl_j * capacity_i; where j is
  5648. * our previous maximum.
  5649. */
  5650. if (wl * busiest_capacity > busiest_load * capacity) {
  5651. busiest_load = wl;
  5652. busiest_capacity = capacity;
  5653. busiest = rq;
  5654. }
  5655. }
  5656. return busiest;
  5657. }
  5658. /*
  5659. * Max backoff if we encounter pinned tasks. Pretty arbitrary value, but
  5660. * so long as it is large enough.
  5661. */
  5662. #define MAX_PINNED_INTERVAL 512
  5663. /* Working cpumask for load_balance and load_balance_newidle. */
  5664. DEFINE_PER_CPU(cpumask_var_t, load_balance_mask);
  5665. static int need_active_balance(struct lb_env *env)
  5666. {
  5667. struct sched_domain *sd = env->sd;
  5668. if (env->idle == CPU_NEWLY_IDLE) {
  5669. /*
  5670. * ASYM_PACKING needs to force migrate tasks from busy but
  5671. * higher numbered CPUs in order to pack all tasks in the
  5672. * lowest numbered CPUs.
  5673. */
  5674. if ((sd->flags & SD_ASYM_PACKING) && env->src_cpu > env->dst_cpu)
  5675. return 1;
  5676. }
  5677. return unlikely(sd->nr_balance_failed > sd->cache_nice_tries+2);
  5678. }
  5679. static int active_load_balance_cpu_stop(void *data);
  5680. static int should_we_balance(struct lb_env *env)
  5681. {
  5682. struct sched_group *sg = env->sd->groups;
  5683. struct cpumask *sg_cpus, *sg_mask;
  5684. int cpu, balance_cpu = -1;
  5685. /*
  5686. * In the newly idle case, we will allow all the cpu's
  5687. * to do the newly idle load balance.
  5688. */
  5689. if (env->idle == CPU_NEWLY_IDLE)
  5690. return 1;
  5691. sg_cpus = sched_group_cpus(sg);
  5692. sg_mask = sched_group_mask(sg);
  5693. /* Try to find first idle cpu */
  5694. for_each_cpu_and(cpu, sg_cpus, env->cpus) {
  5695. if (!cpumask_test_cpu(cpu, sg_mask) || !idle_cpu(cpu))
  5696. continue;
  5697. balance_cpu = cpu;
  5698. break;
  5699. }
  5700. if (balance_cpu == -1)
  5701. balance_cpu = group_balance_cpu(sg);
  5702. /*
  5703. * First idle cpu or the first cpu(busiest) in this sched group
  5704. * is eligible for doing load balancing at this and above domains.
  5705. */
  5706. return balance_cpu == env->dst_cpu;
  5707. }
  5708. /*
  5709. * Check this_cpu to ensure it is balanced within domain. Attempt to move
  5710. * tasks if there is an imbalance.
  5711. */
  5712. static int load_balance(int this_cpu, struct rq *this_rq,
  5713. struct sched_domain *sd, enum cpu_idle_type idle,
  5714. int *continue_balancing)
  5715. {
  5716. int ld_moved, cur_ld_moved, active_balance = 0;
  5717. struct sched_domain *sd_parent = sd->parent;
  5718. struct sched_group *group;
  5719. struct rq *busiest;
  5720. unsigned long flags;
  5721. struct cpumask *cpus = this_cpu_cpumask_var_ptr(load_balance_mask);
  5722. struct lb_env env = {
  5723. .sd = sd,
  5724. .dst_cpu = this_cpu,
  5725. .dst_rq = this_rq,
  5726. .dst_grpmask = sched_group_cpus(sd->groups),
  5727. .idle = idle,
  5728. .loop_break = sched_nr_migrate_break,
  5729. .cpus = cpus,
  5730. .fbq_type = all,
  5731. .tasks = LIST_HEAD_INIT(env.tasks),
  5732. };
  5733. /*
  5734. * For NEWLY_IDLE load_balancing, we don't need to consider
  5735. * other cpus in our group
  5736. */
  5737. if (idle == CPU_NEWLY_IDLE)
  5738. env.dst_grpmask = NULL;
  5739. cpumask_copy(cpus, cpu_active_mask);
  5740. schedstat_inc(sd, lb_count[idle]);
  5741. redo:
  5742. if (!should_we_balance(&env)) {
  5743. *continue_balancing = 0;
  5744. goto out_balanced;
  5745. }
  5746. group = find_busiest_group(&env);
  5747. if (!group) {
  5748. schedstat_inc(sd, lb_nobusyg[idle]);
  5749. goto out_balanced;
  5750. }
  5751. busiest = find_busiest_queue(&env, group);
  5752. if (!busiest) {
  5753. schedstat_inc(sd, lb_nobusyq[idle]);
  5754. goto out_balanced;
  5755. }
  5756. BUG_ON(busiest == env.dst_rq);
  5757. schedstat_add(sd, lb_imbalance[idle], env.imbalance);
  5758. ld_moved = 0;
  5759. if (busiest->nr_running > 1) {
  5760. /*
  5761. * Attempt to move tasks. If find_busiest_group has found
  5762. * an imbalance but busiest->nr_running <= 1, the group is
  5763. * still unbalanced. ld_moved simply stays zero, so it is
  5764. * correctly treated as an imbalance.
  5765. */
  5766. env.flags |= LBF_ALL_PINNED;
  5767. env.src_cpu = busiest->cpu;
  5768. env.src_rq = busiest;
  5769. env.loop_max = min(sysctl_sched_nr_migrate, busiest->nr_running);
  5770. more_balance:
  5771. raw_spin_lock_irqsave(&busiest->lock, flags);
  5772. /*
  5773. * cur_ld_moved - load moved in current iteration
  5774. * ld_moved - cumulative load moved across iterations
  5775. */
  5776. cur_ld_moved = detach_tasks(&env);
  5777. /*
  5778. * We've detached some tasks from busiest_rq. Every
  5779. * task is masked "TASK_ON_RQ_MIGRATING", so we can safely
  5780. * unlock busiest->lock, and we are able to be sure
  5781. * that nobody can manipulate the tasks in parallel.
  5782. * See task_rq_lock() family for the details.
  5783. */
  5784. raw_spin_unlock(&busiest->lock);
  5785. if (cur_ld_moved) {
  5786. attach_tasks(&env);
  5787. ld_moved += cur_ld_moved;
  5788. }
  5789. local_irq_restore(flags);
  5790. if (env.flags & LBF_NEED_BREAK) {
  5791. env.flags &= ~LBF_NEED_BREAK;
  5792. goto more_balance;
  5793. }
  5794. /*
  5795. * Revisit (affine) tasks on src_cpu that couldn't be moved to
  5796. * us and move them to an alternate dst_cpu in our sched_group
  5797. * where they can run. The upper limit on how many times we
  5798. * iterate on same src_cpu is dependent on number of cpus in our
  5799. * sched_group.
  5800. *
  5801. * This changes load balance semantics a bit on who can move
  5802. * load to a given_cpu. In addition to the given_cpu itself
  5803. * (or a ilb_cpu acting on its behalf where given_cpu is
  5804. * nohz-idle), we now have balance_cpu in a position to move
  5805. * load to given_cpu. In rare situations, this may cause
  5806. * conflicts (balance_cpu and given_cpu/ilb_cpu deciding
  5807. * _independently_ and at _same_ time to move some load to
  5808. * given_cpu) causing exceess load to be moved to given_cpu.
  5809. * This however should not happen so much in practice and
  5810. * moreover subsequent load balance cycles should correct the
  5811. * excess load moved.
  5812. */
  5813. if ((env.flags & LBF_DST_PINNED) && env.imbalance > 0) {
  5814. /* Prevent to re-select dst_cpu via env's cpus */
  5815. cpumask_clear_cpu(env.dst_cpu, env.cpus);
  5816. env.dst_rq = cpu_rq(env.new_dst_cpu);
  5817. env.dst_cpu = env.new_dst_cpu;
  5818. env.flags &= ~LBF_DST_PINNED;
  5819. env.loop = 0;
  5820. env.loop_break = sched_nr_migrate_break;
  5821. /*
  5822. * Go back to "more_balance" rather than "redo" since we
  5823. * need to continue with same src_cpu.
  5824. */
  5825. goto more_balance;
  5826. }
  5827. /*
  5828. * We failed to reach balance because of affinity.
  5829. */
  5830. if (sd_parent) {
  5831. int *group_imbalance = &sd_parent->groups->sgc->imbalance;
  5832. if ((env.flags & LBF_SOME_PINNED) && env.imbalance > 0)
  5833. *group_imbalance = 1;
  5834. }
  5835. /* All tasks on this runqueue were pinned by CPU affinity */
  5836. if (unlikely(env.flags & LBF_ALL_PINNED)) {
  5837. cpumask_clear_cpu(cpu_of(busiest), cpus);
  5838. if (!cpumask_empty(cpus)) {
  5839. env.loop = 0;
  5840. env.loop_break = sched_nr_migrate_break;
  5841. goto redo;
  5842. }
  5843. goto out_all_pinned;
  5844. }
  5845. }
  5846. if (!ld_moved) {
  5847. schedstat_inc(sd, lb_failed[idle]);
  5848. /*
  5849. * Increment the failure counter only on periodic balance.
  5850. * We do not want newidle balance, which can be very
  5851. * frequent, pollute the failure counter causing
  5852. * excessive cache_hot migrations and active balances.
  5853. */
  5854. if (idle != CPU_NEWLY_IDLE)
  5855. sd->nr_balance_failed++;
  5856. if (need_active_balance(&env)) {
  5857. raw_spin_lock_irqsave(&busiest->lock, flags);
  5858. /* don't kick the active_load_balance_cpu_stop,
  5859. * if the curr task on busiest cpu can't be
  5860. * moved to this_cpu
  5861. */
  5862. if (!cpumask_test_cpu(this_cpu,
  5863. tsk_cpus_allowed(busiest->curr))) {
  5864. raw_spin_unlock_irqrestore(&busiest->lock,
  5865. flags);
  5866. env.flags |= LBF_ALL_PINNED;
  5867. goto out_one_pinned;
  5868. }
  5869. /*
  5870. * ->active_balance synchronizes accesses to
  5871. * ->active_balance_work. Once set, it's cleared
  5872. * only after active load balance is finished.
  5873. */
  5874. if (!busiest->active_balance) {
  5875. busiest->active_balance = 1;
  5876. busiest->push_cpu = this_cpu;
  5877. active_balance = 1;
  5878. }
  5879. raw_spin_unlock_irqrestore(&busiest->lock, flags);
  5880. if (active_balance) {
  5881. stop_one_cpu_nowait(cpu_of(busiest),
  5882. active_load_balance_cpu_stop, busiest,
  5883. &busiest->active_balance_work);
  5884. }
  5885. /*
  5886. * We've kicked active balancing, reset the failure
  5887. * counter.
  5888. */
  5889. sd->nr_balance_failed = sd->cache_nice_tries+1;
  5890. }
  5891. } else
  5892. sd->nr_balance_failed = 0;
  5893. if (likely(!active_balance)) {
  5894. /* We were unbalanced, so reset the balancing interval */
  5895. sd->balance_interval = sd->min_interval;
  5896. } else {
  5897. /*
  5898. * If we've begun active balancing, start to back off. This
  5899. * case may not be covered by the all_pinned logic if there
  5900. * is only 1 task on the busy runqueue (because we don't call
  5901. * detach_tasks).
  5902. */
  5903. if (sd->balance_interval < sd->max_interval)
  5904. sd->balance_interval *= 2;
  5905. }
  5906. goto out;
  5907. out_balanced:
  5908. /*
  5909. * We reach balance although we may have faced some affinity
  5910. * constraints. Clear the imbalance flag if it was set.
  5911. */
  5912. if (sd_parent) {
  5913. int *group_imbalance = &sd_parent->groups->sgc->imbalance;
  5914. if (*group_imbalance)
  5915. *group_imbalance = 0;
  5916. }
  5917. out_all_pinned:
  5918. /*
  5919. * We reach balance because all tasks are pinned at this level so
  5920. * we can't migrate them. Let the imbalance flag set so parent level
  5921. * can try to migrate them.
  5922. */
  5923. schedstat_inc(sd, lb_balanced[idle]);
  5924. sd->nr_balance_failed = 0;
  5925. out_one_pinned:
  5926. /* tune up the balancing interval */
  5927. if (((env.flags & LBF_ALL_PINNED) &&
  5928. sd->balance_interval < MAX_PINNED_INTERVAL) ||
  5929. (sd->balance_interval < sd->max_interval))
  5930. sd->balance_interval *= 2;
  5931. ld_moved = 0;
  5932. out:
  5933. return ld_moved;
  5934. }
  5935. static inline unsigned long
  5936. get_sd_balance_interval(struct sched_domain *sd, int cpu_busy)
  5937. {
  5938. unsigned long interval = sd->balance_interval;
  5939. if (cpu_busy)
  5940. interval *= sd->busy_factor;
  5941. /* scale ms to jiffies */
  5942. interval = msecs_to_jiffies(interval);
  5943. interval = clamp(interval, 1UL, max_load_balance_interval);
  5944. return interval;
  5945. }
  5946. static inline void
  5947. update_next_balance(struct sched_domain *sd, int cpu_busy, unsigned long *next_balance)
  5948. {
  5949. unsigned long interval, next;
  5950. interval = get_sd_balance_interval(sd, cpu_busy);
  5951. next = sd->last_balance + interval;
  5952. if (time_after(*next_balance, next))
  5953. *next_balance = next;
  5954. }
  5955. /*
  5956. * idle_balance is called by schedule() if this_cpu is about to become
  5957. * idle. Attempts to pull tasks from other CPUs.
  5958. */
  5959. static int idle_balance(struct rq *this_rq)
  5960. {
  5961. unsigned long next_balance = jiffies + HZ;
  5962. int this_cpu = this_rq->cpu;
  5963. struct sched_domain *sd;
  5964. int pulled_task = 0;
  5965. u64 curr_cost = 0;
  5966. idle_enter_fair(this_rq);
  5967. /*
  5968. * We must set idle_stamp _before_ calling idle_balance(), such that we
  5969. * measure the duration of idle_balance() as idle time.
  5970. */
  5971. this_rq->idle_stamp = rq_clock(this_rq);
  5972. if (this_rq->avg_idle < sysctl_sched_migration_cost ||
  5973. !this_rq->rd->overload) {
  5974. rcu_read_lock();
  5975. sd = rcu_dereference_check_sched_domain(this_rq->sd);
  5976. if (sd)
  5977. update_next_balance(sd, 0, &next_balance);
  5978. rcu_read_unlock();
  5979. goto out;
  5980. }
  5981. /*
  5982. * Drop the rq->lock, but keep IRQ/preempt disabled.
  5983. */
  5984. raw_spin_unlock(&this_rq->lock);
  5985. update_blocked_averages(this_cpu);
  5986. rcu_read_lock();
  5987. for_each_domain(this_cpu, sd) {
  5988. int continue_balancing = 1;
  5989. u64 t0, domain_cost;
  5990. if (!(sd->flags & SD_LOAD_BALANCE))
  5991. continue;
  5992. if (this_rq->avg_idle < curr_cost + sd->max_newidle_lb_cost) {
  5993. update_next_balance(sd, 0, &next_balance);
  5994. break;
  5995. }
  5996. if (sd->flags & SD_BALANCE_NEWIDLE) {
  5997. t0 = sched_clock_cpu(this_cpu);
  5998. pulled_task = load_balance(this_cpu, this_rq,
  5999. sd, CPU_NEWLY_IDLE,
  6000. &continue_balancing);
  6001. domain_cost = sched_clock_cpu(this_cpu) - t0;
  6002. if (domain_cost > sd->max_newidle_lb_cost)
  6003. sd->max_newidle_lb_cost = domain_cost;
  6004. curr_cost += domain_cost;
  6005. }
  6006. update_next_balance(sd, 0, &next_balance);
  6007. /*
  6008. * Stop searching for tasks to pull if there are
  6009. * now runnable tasks on this rq.
  6010. */
  6011. if (pulled_task || this_rq->nr_running > 0)
  6012. break;
  6013. }
  6014. rcu_read_unlock();
  6015. raw_spin_lock(&this_rq->lock);
  6016. if (curr_cost > this_rq->max_idle_balance_cost)
  6017. this_rq->max_idle_balance_cost = curr_cost;
  6018. /*
  6019. * While browsing the domains, we released the rq lock, a task could
  6020. * have been enqueued in the meantime. Since we're not going idle,
  6021. * pretend we pulled a task.
  6022. */
  6023. if (this_rq->cfs.h_nr_running && !pulled_task)
  6024. pulled_task = 1;
  6025. out:
  6026. /* Move the next balance forward */
  6027. if (time_after(this_rq->next_balance, next_balance))
  6028. this_rq->next_balance = next_balance;
  6029. /* Is there a task of a high priority class? */
  6030. if (this_rq->nr_running != this_rq->cfs.h_nr_running)
  6031. pulled_task = -1;
  6032. if (pulled_task) {
  6033. idle_exit_fair(this_rq);
  6034. this_rq->idle_stamp = 0;
  6035. }
  6036. return pulled_task;
  6037. }
  6038. /*
  6039. * active_load_balance_cpu_stop is run by cpu stopper. It pushes
  6040. * running tasks off the busiest CPU onto idle CPUs. It requires at
  6041. * least 1 task to be running on each physical CPU where possible, and
  6042. * avoids physical / logical imbalances.
  6043. */
  6044. static int active_load_balance_cpu_stop(void *data)
  6045. {
  6046. struct rq *busiest_rq = data;
  6047. int busiest_cpu = cpu_of(busiest_rq);
  6048. int target_cpu = busiest_rq->push_cpu;
  6049. struct rq *target_rq = cpu_rq(target_cpu);
  6050. struct sched_domain *sd;
  6051. struct task_struct *p = NULL;
  6052. raw_spin_lock_irq(&busiest_rq->lock);
  6053. /* make sure the requested cpu hasn't gone down in the meantime */
  6054. if (unlikely(busiest_cpu != smp_processor_id() ||
  6055. !busiest_rq->active_balance))
  6056. goto out_unlock;
  6057. /* Is there any task to move? */
  6058. if (busiest_rq->nr_running <= 1)
  6059. goto out_unlock;
  6060. /*
  6061. * This condition is "impossible", if it occurs
  6062. * we need to fix it. Originally reported by
  6063. * Bjorn Helgaas on a 128-cpu setup.
  6064. */
  6065. BUG_ON(busiest_rq == target_rq);
  6066. /* Search for an sd spanning us and the target CPU. */
  6067. rcu_read_lock();
  6068. for_each_domain(target_cpu, sd) {
  6069. if ((sd->flags & SD_LOAD_BALANCE) &&
  6070. cpumask_test_cpu(busiest_cpu, sched_domain_span(sd)))
  6071. break;
  6072. }
  6073. if (likely(sd)) {
  6074. struct lb_env env = {
  6075. .sd = sd,
  6076. .dst_cpu = target_cpu,
  6077. .dst_rq = target_rq,
  6078. .src_cpu = busiest_rq->cpu,
  6079. .src_rq = busiest_rq,
  6080. .idle = CPU_IDLE,
  6081. };
  6082. schedstat_inc(sd, alb_count);
  6083. p = detach_one_task(&env);
  6084. if (p)
  6085. schedstat_inc(sd, alb_pushed);
  6086. else
  6087. schedstat_inc(sd, alb_failed);
  6088. }
  6089. rcu_read_unlock();
  6090. out_unlock:
  6091. busiest_rq->active_balance = 0;
  6092. raw_spin_unlock(&busiest_rq->lock);
  6093. if (p)
  6094. attach_one_task(target_rq, p);
  6095. local_irq_enable();
  6096. return 0;
  6097. }
  6098. static inline int on_null_domain(struct rq *rq)
  6099. {
  6100. return unlikely(!rcu_dereference_sched(rq->sd));
  6101. }
  6102. #ifdef CONFIG_NO_HZ_COMMON
  6103. /*
  6104. * idle load balancing details
  6105. * - When one of the busy CPUs notice that there may be an idle rebalancing
  6106. * needed, they will kick the idle load balancer, which then does idle
  6107. * load balancing for all the idle CPUs.
  6108. */
  6109. static struct {
  6110. cpumask_var_t idle_cpus_mask;
  6111. atomic_t nr_cpus;
  6112. unsigned long next_balance; /* in jiffy units */
  6113. } nohz ____cacheline_aligned;
  6114. static inline int find_new_ilb(void)
  6115. {
  6116. int ilb = cpumask_first(nohz.idle_cpus_mask);
  6117. if (ilb < nr_cpu_ids && idle_cpu(ilb))
  6118. return ilb;
  6119. return nr_cpu_ids;
  6120. }
  6121. /*
  6122. * Kick a CPU to do the nohz balancing, if it is time for it. We pick the
  6123. * nohz_load_balancer CPU (if there is one) otherwise fallback to any idle
  6124. * CPU (if there is one).
  6125. */
  6126. static void nohz_balancer_kick(void)
  6127. {
  6128. int ilb_cpu;
  6129. nohz.next_balance++;
  6130. ilb_cpu = find_new_ilb();
  6131. if (ilb_cpu >= nr_cpu_ids)
  6132. return;
  6133. if (test_and_set_bit(NOHZ_BALANCE_KICK, nohz_flags(ilb_cpu)))
  6134. return;
  6135. /*
  6136. * Use smp_send_reschedule() instead of resched_cpu().
  6137. * This way we generate a sched IPI on the target cpu which
  6138. * is idle. And the softirq performing nohz idle load balance
  6139. * will be run before returning from the IPI.
  6140. */
  6141. smp_send_reschedule(ilb_cpu);
  6142. return;
  6143. }
  6144. static inline void nohz_balance_exit_idle(int cpu)
  6145. {
  6146. if (unlikely(test_bit(NOHZ_TICK_STOPPED, nohz_flags(cpu)))) {
  6147. /*
  6148. * Completely isolated CPUs don't ever set, so we must test.
  6149. */
  6150. if (likely(cpumask_test_cpu(cpu, nohz.idle_cpus_mask))) {
  6151. cpumask_clear_cpu(cpu, nohz.idle_cpus_mask);
  6152. atomic_dec(&nohz.nr_cpus);
  6153. }
  6154. clear_bit(NOHZ_TICK_STOPPED, nohz_flags(cpu));
  6155. }
  6156. }
  6157. static inline void set_cpu_sd_state_busy(void)
  6158. {
  6159. struct sched_domain *sd;
  6160. int cpu = smp_processor_id();
  6161. rcu_read_lock();
  6162. sd = rcu_dereference(per_cpu(sd_busy, cpu));
  6163. if (!sd || !sd->nohz_idle)
  6164. goto unlock;
  6165. sd->nohz_idle = 0;
  6166. atomic_inc(&sd->groups->sgc->nr_busy_cpus);
  6167. unlock:
  6168. rcu_read_unlock();
  6169. }
  6170. void set_cpu_sd_state_idle(void)
  6171. {
  6172. struct sched_domain *sd;
  6173. int cpu = smp_processor_id();
  6174. rcu_read_lock();
  6175. sd = rcu_dereference(per_cpu(sd_busy, cpu));
  6176. if (!sd || sd->nohz_idle)
  6177. goto unlock;
  6178. sd->nohz_idle = 1;
  6179. atomic_dec(&sd->groups->sgc->nr_busy_cpus);
  6180. unlock:
  6181. rcu_read_unlock();
  6182. }
  6183. /*
  6184. * This routine will record that the cpu is going idle with tick stopped.
  6185. * This info will be used in performing idle load balancing in the future.
  6186. */
  6187. void nohz_balance_enter_idle(int cpu)
  6188. {
  6189. /*
  6190. * If this cpu is going down, then nothing needs to be done.
  6191. */
  6192. if (!cpu_active(cpu))
  6193. return;
  6194. if (test_bit(NOHZ_TICK_STOPPED, nohz_flags(cpu)))
  6195. return;
  6196. /*
  6197. * If we're a completely isolated CPU, we don't play.
  6198. */
  6199. if (on_null_domain(cpu_rq(cpu)))
  6200. return;
  6201. cpumask_set_cpu(cpu, nohz.idle_cpus_mask);
  6202. atomic_inc(&nohz.nr_cpus);
  6203. set_bit(NOHZ_TICK_STOPPED, nohz_flags(cpu));
  6204. }
  6205. static int sched_ilb_notifier(struct notifier_block *nfb,
  6206. unsigned long action, void *hcpu)
  6207. {
  6208. switch (action & ~CPU_TASKS_FROZEN) {
  6209. case CPU_DYING:
  6210. nohz_balance_exit_idle(smp_processor_id());
  6211. return NOTIFY_OK;
  6212. default:
  6213. return NOTIFY_DONE;
  6214. }
  6215. }
  6216. #endif
  6217. static DEFINE_SPINLOCK(balancing);
  6218. /*
  6219. * Scale the max load_balance interval with the number of CPUs in the system.
  6220. * This trades load-balance latency on larger machines for less cross talk.
  6221. */
  6222. void update_max_interval(void)
  6223. {
  6224. max_load_balance_interval = HZ*num_online_cpus()/10;
  6225. }
  6226. /*
  6227. * It checks each scheduling domain to see if it is due to be balanced,
  6228. * and initiates a balancing operation if so.
  6229. *
  6230. * Balancing parameters are set up in init_sched_domains.
  6231. */
  6232. static void rebalance_domains(struct rq *rq, enum cpu_idle_type idle)
  6233. {
  6234. int continue_balancing = 1;
  6235. int cpu = rq->cpu;
  6236. unsigned long interval;
  6237. struct sched_domain *sd;
  6238. /* Earliest time when we have to do rebalance again */
  6239. unsigned long next_balance = jiffies + 60*HZ;
  6240. int update_next_balance = 0;
  6241. int need_serialize, need_decay = 0;
  6242. u64 max_cost = 0;
  6243. update_blocked_averages(cpu);
  6244. rcu_read_lock();
  6245. for_each_domain(cpu, sd) {
  6246. /*
  6247. * Decay the newidle max times here because this is a regular
  6248. * visit to all the domains. Decay ~1% per second.
  6249. */
  6250. if (time_after(jiffies, sd->next_decay_max_lb_cost)) {
  6251. sd->max_newidle_lb_cost =
  6252. (sd->max_newidle_lb_cost * 253) / 256;
  6253. sd->next_decay_max_lb_cost = jiffies + HZ;
  6254. need_decay = 1;
  6255. }
  6256. max_cost += sd->max_newidle_lb_cost;
  6257. if (!(sd->flags & SD_LOAD_BALANCE))
  6258. continue;
  6259. /*
  6260. * Stop the load balance at this level. There is another
  6261. * CPU in our sched group which is doing load balancing more
  6262. * actively.
  6263. */
  6264. if (!continue_balancing) {
  6265. if (need_decay)
  6266. continue;
  6267. break;
  6268. }
  6269. interval = get_sd_balance_interval(sd, idle != CPU_IDLE);
  6270. need_serialize = sd->flags & SD_SERIALIZE;
  6271. if (need_serialize) {
  6272. if (!spin_trylock(&balancing))
  6273. goto out;
  6274. }
  6275. if (time_after_eq(jiffies, sd->last_balance + interval)) {
  6276. if (load_balance(cpu, rq, sd, idle, &continue_balancing)) {
  6277. /*
  6278. * The LBF_DST_PINNED logic could have changed
  6279. * env->dst_cpu, so we can't know our idle
  6280. * state even if we migrated tasks. Update it.
  6281. */
  6282. idle = idle_cpu(cpu) ? CPU_IDLE : CPU_NOT_IDLE;
  6283. }
  6284. sd->last_balance = jiffies;
  6285. interval = get_sd_balance_interval(sd, idle != CPU_IDLE);
  6286. }
  6287. if (need_serialize)
  6288. spin_unlock(&balancing);
  6289. out:
  6290. if (time_after(next_balance, sd->last_balance + interval)) {
  6291. next_balance = sd->last_balance + interval;
  6292. update_next_balance = 1;
  6293. }
  6294. }
  6295. if (need_decay) {
  6296. /*
  6297. * Ensure the rq-wide value also decays but keep it at a
  6298. * reasonable floor to avoid funnies with rq->avg_idle.
  6299. */
  6300. rq->max_idle_balance_cost =
  6301. max((u64)sysctl_sched_migration_cost, max_cost);
  6302. }
  6303. rcu_read_unlock();
  6304. /*
  6305. * next_balance will be updated only when there is a need.
  6306. * When the cpu is attached to null domain for ex, it will not be
  6307. * updated.
  6308. */
  6309. if (likely(update_next_balance))
  6310. rq->next_balance = next_balance;
  6311. }
  6312. #ifdef CONFIG_NO_HZ_COMMON
  6313. /*
  6314. * In CONFIG_NO_HZ_COMMON case, the idle balance kickee will do the
  6315. * rebalancing for all the cpus for whom scheduler ticks are stopped.
  6316. */
  6317. static void nohz_idle_balance(struct rq *this_rq, enum cpu_idle_type idle)
  6318. {
  6319. int this_cpu = this_rq->cpu;
  6320. struct rq *rq;
  6321. int balance_cpu;
  6322. if (idle != CPU_IDLE ||
  6323. !test_bit(NOHZ_BALANCE_KICK, nohz_flags(this_cpu)))
  6324. goto end;
  6325. for_each_cpu(balance_cpu, nohz.idle_cpus_mask) {
  6326. if (balance_cpu == this_cpu || !idle_cpu(balance_cpu))
  6327. continue;
  6328. /*
  6329. * If this cpu gets work to do, stop the load balancing
  6330. * work being done for other cpus. Next load
  6331. * balancing owner will pick it up.
  6332. */
  6333. if (need_resched())
  6334. break;
  6335. rq = cpu_rq(balance_cpu);
  6336. /*
  6337. * If time for next balance is due,
  6338. * do the balance.
  6339. */
  6340. if (time_after_eq(jiffies, rq->next_balance)) {
  6341. raw_spin_lock_irq(&rq->lock);
  6342. update_rq_clock(rq);
  6343. update_idle_cpu_load(rq);
  6344. raw_spin_unlock_irq(&rq->lock);
  6345. rebalance_domains(rq, CPU_IDLE);
  6346. }
  6347. if (time_after(this_rq->next_balance, rq->next_balance))
  6348. this_rq->next_balance = rq->next_balance;
  6349. }
  6350. nohz.next_balance = this_rq->next_balance;
  6351. end:
  6352. clear_bit(NOHZ_BALANCE_KICK, nohz_flags(this_cpu));
  6353. }
  6354. /*
  6355. * Current heuristic for kicking the idle load balancer in the presence
  6356. * of an idle cpu is the system.
  6357. * - This rq has more than one task.
  6358. * - At any scheduler domain level, this cpu's scheduler group has multiple
  6359. * busy cpu's exceeding the group's capacity.
  6360. * - For SD_ASYM_PACKING, if the lower numbered cpu's in the scheduler
  6361. * domain span are idle.
  6362. */
  6363. static inline int nohz_kick_needed(struct rq *rq)
  6364. {
  6365. unsigned long now = jiffies;
  6366. struct sched_domain *sd;
  6367. struct sched_group_capacity *sgc;
  6368. int nr_busy, cpu = rq->cpu;
  6369. if (unlikely(rq->idle_balance))
  6370. return 0;
  6371. /*
  6372. * We may be recently in ticked or tickless idle mode. At the first
  6373. * busy tick after returning from idle, we will update the busy stats.
  6374. */
  6375. set_cpu_sd_state_busy();
  6376. nohz_balance_exit_idle(cpu);
  6377. /*
  6378. * None are in tickless mode and hence no need for NOHZ idle load
  6379. * balancing.
  6380. */
  6381. if (likely(!atomic_read(&nohz.nr_cpus)))
  6382. return 0;
  6383. if (time_before(now, nohz.next_balance))
  6384. return 0;
  6385. if (rq->nr_running >= 2)
  6386. goto need_kick;
  6387. rcu_read_lock();
  6388. sd = rcu_dereference(per_cpu(sd_busy, cpu));
  6389. if (sd) {
  6390. sgc = sd->groups->sgc;
  6391. nr_busy = atomic_read(&sgc->nr_busy_cpus);
  6392. if (nr_busy > 1)
  6393. goto need_kick_unlock;
  6394. }
  6395. sd = rcu_dereference(per_cpu(sd_asym, cpu));
  6396. if (sd && (cpumask_first_and(nohz.idle_cpus_mask,
  6397. sched_domain_span(sd)) < cpu))
  6398. goto need_kick_unlock;
  6399. rcu_read_unlock();
  6400. return 0;
  6401. need_kick_unlock:
  6402. rcu_read_unlock();
  6403. need_kick:
  6404. return 1;
  6405. }
  6406. #else
  6407. static void nohz_idle_balance(struct rq *this_rq, enum cpu_idle_type idle) { }
  6408. #endif
  6409. /*
  6410. * run_rebalance_domains is triggered when needed from the scheduler tick.
  6411. * Also triggered for nohz idle balancing (with nohz_balancing_kick set).
  6412. */
  6413. static void run_rebalance_domains(struct softirq_action *h)
  6414. {
  6415. struct rq *this_rq = this_rq();
  6416. enum cpu_idle_type idle = this_rq->idle_balance ?
  6417. CPU_IDLE : CPU_NOT_IDLE;
  6418. rebalance_domains(this_rq, idle);
  6419. /*
  6420. * If this cpu has a pending nohz_balance_kick, then do the
  6421. * balancing on behalf of the other idle cpus whose ticks are
  6422. * stopped.
  6423. */
  6424. nohz_idle_balance(this_rq, idle);
  6425. }
  6426. /*
  6427. * Trigger the SCHED_SOFTIRQ if it is time to do periodic load balancing.
  6428. */
  6429. void trigger_load_balance(struct rq *rq)
  6430. {
  6431. /* Don't need to rebalance while attached to NULL domain */
  6432. if (unlikely(on_null_domain(rq)))
  6433. return;
  6434. if (time_after_eq(jiffies, rq->next_balance))
  6435. raise_softirq(SCHED_SOFTIRQ);
  6436. #ifdef CONFIG_NO_HZ_COMMON
  6437. if (nohz_kick_needed(rq))
  6438. nohz_balancer_kick();
  6439. #endif
  6440. }
  6441. static void rq_online_fair(struct rq *rq)
  6442. {
  6443. update_sysctl();
  6444. update_runtime_enabled(rq);
  6445. }
  6446. static void rq_offline_fair(struct rq *rq)
  6447. {
  6448. update_sysctl();
  6449. /* Ensure any throttled groups are reachable by pick_next_task */
  6450. unthrottle_offline_cfs_rqs(rq);
  6451. }
  6452. #endif /* CONFIG_SMP */
  6453. /*
  6454. * scheduler tick hitting a task of our scheduling class:
  6455. */
  6456. static void task_tick_fair(struct rq *rq, struct task_struct *curr, int queued)
  6457. {
  6458. struct cfs_rq *cfs_rq;
  6459. struct sched_entity *se = &curr->se;
  6460. for_each_sched_entity(se) {
  6461. cfs_rq = cfs_rq_of(se);
  6462. entity_tick(cfs_rq, se, queued);
  6463. }
  6464. if (numabalancing_enabled)
  6465. task_tick_numa(rq, curr);
  6466. update_rq_runnable_avg(rq, 1);
  6467. }
  6468. /*
  6469. * called on fork with the child task as argument from the parent's context
  6470. * - child not yet on the tasklist
  6471. * - preemption disabled
  6472. */
  6473. static void task_fork_fair(struct task_struct *p)
  6474. {
  6475. struct cfs_rq *cfs_rq;
  6476. struct sched_entity *se = &p->se, *curr;
  6477. int this_cpu = smp_processor_id();
  6478. struct rq *rq = this_rq();
  6479. unsigned long flags;
  6480. raw_spin_lock_irqsave(&rq->lock, flags);
  6481. update_rq_clock(rq);
  6482. cfs_rq = task_cfs_rq(current);
  6483. curr = cfs_rq->curr;
  6484. /*
  6485. * Not only the cpu but also the task_group of the parent might have
  6486. * been changed after parent->se.parent,cfs_rq were copied to
  6487. * child->se.parent,cfs_rq. So call __set_task_cpu() to make those
  6488. * of child point to valid ones.
  6489. */
  6490. rcu_read_lock();
  6491. __set_task_cpu(p, this_cpu);
  6492. rcu_read_unlock();
  6493. update_curr(cfs_rq);
  6494. if (curr)
  6495. se->vruntime = curr->vruntime;
  6496. place_entity(cfs_rq, se, 1);
  6497. if (sysctl_sched_child_runs_first && curr && entity_before(curr, se)) {
  6498. /*
  6499. * Upon rescheduling, sched_class::put_prev_task() will place
  6500. * 'current' within the tree based on its new key value.
  6501. */
  6502. swap(curr->vruntime, se->vruntime);
  6503. resched_curr(rq);
  6504. }
  6505. se->vruntime -= cfs_rq->min_vruntime;
  6506. raw_spin_unlock_irqrestore(&rq->lock, flags);
  6507. }
  6508. /*
  6509. * Priority of the task has changed. Check to see if we preempt
  6510. * the current task.
  6511. */
  6512. static void
  6513. prio_changed_fair(struct rq *rq, struct task_struct *p, int oldprio)
  6514. {
  6515. if (!task_on_rq_queued(p))
  6516. return;
  6517. /*
  6518. * Reschedule if we are currently running on this runqueue and
  6519. * our priority decreased, or if we are not currently running on
  6520. * this runqueue and our priority is higher than the current's
  6521. */
  6522. if (rq->curr == p) {
  6523. if (p->prio > oldprio)
  6524. resched_curr(rq);
  6525. } else
  6526. check_preempt_curr(rq, p, 0);
  6527. }
  6528. static void switched_from_fair(struct rq *rq, struct task_struct *p)
  6529. {
  6530. struct sched_entity *se = &p->se;
  6531. struct cfs_rq *cfs_rq = cfs_rq_of(se);
  6532. /*
  6533. * Ensure the task's vruntime is normalized, so that when it's
  6534. * switched back to the fair class the enqueue_entity(.flags=0) will
  6535. * do the right thing.
  6536. *
  6537. * If it's queued, then the dequeue_entity(.flags=0) will already
  6538. * have normalized the vruntime, if it's !queued, then only when
  6539. * the task is sleeping will it still have non-normalized vruntime.
  6540. */
  6541. if (!task_on_rq_queued(p) && p->state != TASK_RUNNING) {
  6542. /*
  6543. * Fix up our vruntime so that the current sleep doesn't
  6544. * cause 'unlimited' sleep bonus.
  6545. */
  6546. place_entity(cfs_rq, se, 0);
  6547. se->vruntime -= cfs_rq->min_vruntime;
  6548. }
  6549. #ifdef CONFIG_SMP
  6550. /*
  6551. * Remove our load from contribution when we leave sched_fair
  6552. * and ensure we don't carry in an old decay_count if we
  6553. * switch back.
  6554. */
  6555. if (se->avg.decay_count) {
  6556. __synchronize_entity_decay(se);
  6557. subtract_blocked_load_contrib(cfs_rq, se->avg.load_avg_contrib);
  6558. }
  6559. #endif
  6560. }
  6561. /*
  6562. * We switched to the sched_fair class.
  6563. */
  6564. static void switched_to_fair(struct rq *rq, struct task_struct *p)
  6565. {
  6566. #ifdef CONFIG_FAIR_GROUP_SCHED
  6567. struct sched_entity *se = &p->se;
  6568. /*
  6569. * Since the real-depth could have been changed (only FAIR
  6570. * class maintain depth value), reset depth properly.
  6571. */
  6572. se->depth = se->parent ? se->parent->depth + 1 : 0;
  6573. #endif
  6574. if (!task_on_rq_queued(p))
  6575. return;
  6576. /*
  6577. * We were most likely switched from sched_rt, so
  6578. * kick off the schedule if running, otherwise just see
  6579. * if we can still preempt the current task.
  6580. */
  6581. if (rq->curr == p)
  6582. resched_curr(rq);
  6583. else
  6584. check_preempt_curr(rq, p, 0);
  6585. }
  6586. /* Account for a task changing its policy or group.
  6587. *
  6588. * This routine is mostly called to set cfs_rq->curr field when a task
  6589. * migrates between groups/classes.
  6590. */
  6591. static void set_curr_task_fair(struct rq *rq)
  6592. {
  6593. struct sched_entity *se = &rq->curr->se;
  6594. for_each_sched_entity(se) {
  6595. struct cfs_rq *cfs_rq = cfs_rq_of(se);
  6596. set_next_entity(cfs_rq, se);
  6597. /* ensure bandwidth has been allocated on our new cfs_rq */
  6598. account_cfs_rq_runtime(cfs_rq, 0);
  6599. }
  6600. }
  6601. void init_cfs_rq(struct cfs_rq *cfs_rq)
  6602. {
  6603. cfs_rq->tasks_timeline = RB_ROOT;
  6604. cfs_rq->min_vruntime = (u64)(-(1LL << 20));
  6605. #ifndef CONFIG_64BIT
  6606. cfs_rq->min_vruntime_copy = cfs_rq->min_vruntime;
  6607. #endif
  6608. #ifdef CONFIG_SMP
  6609. atomic64_set(&cfs_rq->decay_counter, 1);
  6610. atomic_long_set(&cfs_rq->removed_load, 0);
  6611. #endif
  6612. }
  6613. #ifdef CONFIG_FAIR_GROUP_SCHED
  6614. static void task_move_group_fair(struct task_struct *p, int queued)
  6615. {
  6616. struct sched_entity *se = &p->se;
  6617. struct cfs_rq *cfs_rq;
  6618. /*
  6619. * If the task was not on the rq at the time of this cgroup movement
  6620. * it must have been asleep, sleeping tasks keep their ->vruntime
  6621. * absolute on their old rq until wakeup (needed for the fair sleeper
  6622. * bonus in place_entity()).
  6623. *
  6624. * If it was on the rq, we've just 'preempted' it, which does convert
  6625. * ->vruntime to a relative base.
  6626. *
  6627. * Make sure both cases convert their relative position when migrating
  6628. * to another cgroup's rq. This does somewhat interfere with the
  6629. * fair sleeper stuff for the first placement, but who cares.
  6630. */
  6631. /*
  6632. * When !queued, vruntime of the task has usually NOT been normalized.
  6633. * But there are some cases where it has already been normalized:
  6634. *
  6635. * - Moving a forked child which is waiting for being woken up by
  6636. * wake_up_new_task().
  6637. * - Moving a task which has been woken up by try_to_wake_up() and
  6638. * waiting for actually being woken up by sched_ttwu_pending().
  6639. *
  6640. * To prevent boost or penalty in the new cfs_rq caused by delta
  6641. * min_vruntime between the two cfs_rqs, we skip vruntime adjustment.
  6642. */
  6643. if (!queued && (!se->sum_exec_runtime || p->state == TASK_WAKING))
  6644. queued = 1;
  6645. if (!queued)
  6646. se->vruntime -= cfs_rq_of(se)->min_vruntime;
  6647. set_task_rq(p, task_cpu(p));
  6648. se->depth = se->parent ? se->parent->depth + 1 : 0;
  6649. if (!queued) {
  6650. cfs_rq = cfs_rq_of(se);
  6651. se->vruntime += cfs_rq->min_vruntime;
  6652. #ifdef CONFIG_SMP
  6653. /*
  6654. * migrate_task_rq_fair() will have removed our previous
  6655. * contribution, but we must synchronize for ongoing future
  6656. * decay.
  6657. */
  6658. se->avg.decay_count = atomic64_read(&cfs_rq->decay_counter);
  6659. cfs_rq->blocked_load_avg += se->avg.load_avg_contrib;
  6660. #endif
  6661. }
  6662. }
  6663. void free_fair_sched_group(struct task_group *tg)
  6664. {
  6665. int i;
  6666. destroy_cfs_bandwidth(tg_cfs_bandwidth(tg));
  6667. for_each_possible_cpu(i) {
  6668. if (tg->cfs_rq)
  6669. kfree(tg->cfs_rq[i]);
  6670. if (tg->se)
  6671. kfree(tg->se[i]);
  6672. }
  6673. kfree(tg->cfs_rq);
  6674. kfree(tg->se);
  6675. }
  6676. int alloc_fair_sched_group(struct task_group *tg, struct task_group *parent)
  6677. {
  6678. struct cfs_rq *cfs_rq;
  6679. struct sched_entity *se;
  6680. int i;
  6681. tg->cfs_rq = kzalloc(sizeof(cfs_rq) * nr_cpu_ids, GFP_KERNEL);
  6682. if (!tg->cfs_rq)
  6683. goto err;
  6684. tg->se = kzalloc(sizeof(se) * nr_cpu_ids, GFP_KERNEL);
  6685. if (!tg->se)
  6686. goto err;
  6687. tg->shares = NICE_0_LOAD;
  6688. init_cfs_bandwidth(tg_cfs_bandwidth(tg));
  6689. for_each_possible_cpu(i) {
  6690. cfs_rq = kzalloc_node(sizeof(struct cfs_rq),
  6691. GFP_KERNEL, cpu_to_node(i));
  6692. if (!cfs_rq)
  6693. goto err;
  6694. se = kzalloc_node(sizeof(struct sched_entity),
  6695. GFP_KERNEL, cpu_to_node(i));
  6696. if (!se)
  6697. goto err_free_rq;
  6698. init_cfs_rq(cfs_rq);
  6699. init_tg_cfs_entry(tg, cfs_rq, se, i, parent->se[i]);
  6700. }
  6701. return 1;
  6702. err_free_rq:
  6703. kfree(cfs_rq);
  6704. err:
  6705. return 0;
  6706. }
  6707. void unregister_fair_sched_group(struct task_group *tg, int cpu)
  6708. {
  6709. struct rq *rq = cpu_rq(cpu);
  6710. unsigned long flags;
  6711. /*
  6712. * Only empty task groups can be destroyed; so we can speculatively
  6713. * check on_list without danger of it being re-added.
  6714. */
  6715. if (!tg->cfs_rq[cpu]->on_list)
  6716. return;
  6717. raw_spin_lock_irqsave(&rq->lock, flags);
  6718. list_del_leaf_cfs_rq(tg->cfs_rq[cpu]);
  6719. raw_spin_unlock_irqrestore(&rq->lock, flags);
  6720. }
  6721. void init_tg_cfs_entry(struct task_group *tg, struct cfs_rq *cfs_rq,
  6722. struct sched_entity *se, int cpu,
  6723. struct sched_entity *parent)
  6724. {
  6725. struct rq *rq = cpu_rq(cpu);
  6726. cfs_rq->tg = tg;
  6727. cfs_rq->rq = rq;
  6728. init_cfs_rq_runtime(cfs_rq);
  6729. tg->cfs_rq[cpu] = cfs_rq;
  6730. tg->se[cpu] = se;
  6731. /* se could be NULL for root_task_group */
  6732. if (!se)
  6733. return;
  6734. if (!parent) {
  6735. se->cfs_rq = &rq->cfs;
  6736. se->depth = 0;
  6737. } else {
  6738. se->cfs_rq = parent->my_q;
  6739. se->depth = parent->depth + 1;
  6740. }
  6741. se->my_q = cfs_rq;
  6742. /* guarantee group entities always have weight */
  6743. update_load_set(&se->load, NICE_0_LOAD);
  6744. se->parent = parent;
  6745. }
  6746. static DEFINE_MUTEX(shares_mutex);
  6747. int sched_group_set_shares(struct task_group *tg, unsigned long shares)
  6748. {
  6749. int i;
  6750. unsigned long flags;
  6751. /*
  6752. * We can't change the weight of the root cgroup.
  6753. */
  6754. if (!tg->se[0])
  6755. return -EINVAL;
  6756. shares = clamp(shares, scale_load(MIN_SHARES), scale_load(MAX_SHARES));
  6757. mutex_lock(&shares_mutex);
  6758. if (tg->shares == shares)
  6759. goto done;
  6760. tg->shares = shares;
  6761. for_each_possible_cpu(i) {
  6762. struct rq *rq = cpu_rq(i);
  6763. struct sched_entity *se;
  6764. se = tg->se[i];
  6765. /* Propagate contribution to hierarchy */
  6766. raw_spin_lock_irqsave(&rq->lock, flags);
  6767. /* Possible calls to update_curr() need rq clock */
  6768. update_rq_clock(rq);
  6769. for_each_sched_entity(se)
  6770. update_cfs_shares(group_cfs_rq(se));
  6771. raw_spin_unlock_irqrestore(&rq->lock, flags);
  6772. }
  6773. done:
  6774. mutex_unlock(&shares_mutex);
  6775. return 0;
  6776. }
  6777. #else /* CONFIG_FAIR_GROUP_SCHED */
  6778. void free_fair_sched_group(struct task_group *tg) { }
  6779. int alloc_fair_sched_group(struct task_group *tg, struct task_group *parent)
  6780. {
  6781. return 1;
  6782. }
  6783. void unregister_fair_sched_group(struct task_group *tg, int cpu) { }
  6784. #endif /* CONFIG_FAIR_GROUP_SCHED */
  6785. static unsigned int get_rr_interval_fair(struct rq *rq, struct task_struct *task)
  6786. {
  6787. struct sched_entity *se = &task->se;
  6788. unsigned int rr_interval = 0;
  6789. /*
  6790. * Time slice is 0 for SCHED_OTHER tasks that are on an otherwise
  6791. * idle runqueue:
  6792. */
  6793. if (rq->cfs.load.weight)
  6794. rr_interval = NS_TO_JIFFIES(sched_slice(cfs_rq_of(se), se));
  6795. return rr_interval;
  6796. }
  6797. /*
  6798. * All the scheduling class methods:
  6799. */
  6800. const struct sched_class fair_sched_class = {
  6801. .next = &idle_sched_class,
  6802. .enqueue_task = enqueue_task_fair,
  6803. .dequeue_task = dequeue_task_fair,
  6804. .yield_task = yield_task_fair,
  6805. .yield_to_task = yield_to_task_fair,
  6806. .check_preempt_curr = check_preempt_wakeup,
  6807. .pick_next_task = pick_next_task_fair,
  6808. .put_prev_task = put_prev_task_fair,
  6809. #ifdef CONFIG_SMP
  6810. .select_task_rq = select_task_rq_fair,
  6811. .migrate_task_rq = migrate_task_rq_fair,
  6812. .rq_online = rq_online_fair,
  6813. .rq_offline = rq_offline_fair,
  6814. .task_waking = task_waking_fair,
  6815. #endif
  6816. .set_curr_task = set_curr_task_fair,
  6817. .task_tick = task_tick_fair,
  6818. .task_fork = task_fork_fair,
  6819. .prio_changed = prio_changed_fair,
  6820. .switched_from = switched_from_fair,
  6821. .switched_to = switched_to_fair,
  6822. .get_rr_interval = get_rr_interval_fair,
  6823. .update_curr = update_curr_fair,
  6824. #ifdef CONFIG_FAIR_GROUP_SCHED
  6825. .task_move_group = task_move_group_fair,
  6826. #endif
  6827. };
  6828. #ifdef CONFIG_SCHED_DEBUG
  6829. void print_cfs_stats(struct seq_file *m, int cpu)
  6830. {
  6831. struct cfs_rq *cfs_rq;
  6832. rcu_read_lock();
  6833. for_each_leaf_cfs_rq(cpu_rq(cpu), cfs_rq)
  6834. print_cfs_rq(m, cpu, cfs_rq);
  6835. rcu_read_unlock();
  6836. }
  6837. #endif
  6838. __init void init_sched_fair_class(void)
  6839. {
  6840. #ifdef CONFIG_SMP
  6841. open_softirq(SCHED_SOFTIRQ, run_rebalance_domains);
  6842. #ifdef CONFIG_NO_HZ_COMMON
  6843. nohz.next_balance = jiffies;
  6844. zalloc_cpumask_var(&nohz.idle_cpus_mask, GFP_NOWAIT);
  6845. cpu_notifier(sched_ilb_notifier, 0);
  6846. #endif
  6847. #endif /* SMP */
  6848. }