1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Scheduler topology setup/handling methods
4 */
5
6 #include <linux/sched/isolation.h>
7 #include <linux/bsearch.h>
8 #include "sched.h"
9
10 DEFINE_MUTEX(sched_domains_mutex);
sched_domains_mutex_lock(void)11 void sched_domains_mutex_lock(void)
12 {
13 mutex_lock(&sched_domains_mutex);
14 }
sched_domains_mutex_unlock(void)15 void sched_domains_mutex_unlock(void)
16 {
17 mutex_unlock(&sched_domains_mutex);
18 }
19
20 /* Protected by sched_domains_mutex: */
21 static cpumask_var_t sched_domains_tmpmask;
22 static cpumask_var_t sched_domains_tmpmask2;
23
sched_debug_setup(char * str)24 static int __init sched_debug_setup(char *str)
25 {
26 sched_debug_verbose = true;
27
28 return 0;
29 }
30 early_param("sched_verbose", sched_debug_setup);
31
sched_debug(void)32 static inline bool sched_debug(void)
33 {
34 return sched_debug_verbose;
35 }
36
37 #define SD_FLAG(_name, mflags) [__##_name] = { .meta_flags = mflags, .name = #_name },
38 const struct sd_flag_debug sd_flag_debug[] = {
39 #include <linux/sched/sd_flags.h>
40 };
41 #undef SD_FLAG
42
sched_domain_debug_one(struct sched_domain * sd,int cpu,int level,struct cpumask * groupmask)43 static int sched_domain_debug_one(struct sched_domain *sd, int cpu, int level,
44 struct cpumask *groupmask)
45 {
46 struct sched_group *group = sd->groups;
47 unsigned long flags = sd->flags;
48 unsigned int idx;
49
50 cpumask_clear(groupmask);
51
52 printk(KERN_DEBUG "%*s domain-%d: ", level, "", level);
53 printk(KERN_CONT "span=%*pbl level=%s\n",
54 cpumask_pr_args(sched_domain_span(sd)), sd->name);
55
56 if (!cpumask_test_cpu(cpu, sched_domain_span(sd))) {
57 printk(KERN_ERR "ERROR: domain->span does not contain CPU%d\n", cpu);
58 }
59 if (group && !cpumask_test_cpu(cpu, sched_group_span(group))) {
60 printk(KERN_ERR "ERROR: domain->groups does not contain CPU%d\n", cpu);
61 }
62
63 for_each_set_bit(idx, &flags, __SD_FLAG_CNT) {
64 unsigned int flag = BIT(idx);
65 unsigned int meta_flags = sd_flag_debug[idx].meta_flags;
66
67 if ((meta_flags & SDF_SHARED_CHILD) && sd->child &&
68 !(sd->child->flags & flag))
69 printk(KERN_ERR "ERROR: flag %s set here but not in child\n",
70 sd_flag_debug[idx].name);
71
72 if ((meta_flags & SDF_SHARED_PARENT) && sd->parent &&
73 !(sd->parent->flags & flag))
74 printk(KERN_ERR "ERROR: flag %s set here but not in parent\n",
75 sd_flag_debug[idx].name);
76 }
77
78 printk(KERN_DEBUG "%*s groups:", level + 1, "");
79 do {
80 if (!group) {
81 printk("\n");
82 printk(KERN_ERR "ERROR: group is NULL\n");
83 break;
84 }
85
86 if (cpumask_empty(sched_group_span(group))) {
87 printk(KERN_CONT "\n");
88 printk(KERN_ERR "ERROR: empty group\n");
89 break;
90 }
91
92 if (!(sd->flags & SD_NUMA) &&
93 cpumask_intersects(groupmask, sched_group_span(group))) {
94 printk(KERN_CONT "\n");
95 printk(KERN_ERR "ERROR: repeated CPUs\n");
96 break;
97 }
98
99 cpumask_or(groupmask, groupmask, sched_group_span(group));
100
101 printk(KERN_CONT " %d:{ span=%*pbl",
102 group->sgc->id,
103 cpumask_pr_args(sched_group_span(group)));
104
105 if ((sd->flags & SD_NUMA) &&
106 !cpumask_equal(group_balance_mask(group), sched_group_span(group))) {
107 printk(KERN_CONT " mask=%*pbl",
108 cpumask_pr_args(group_balance_mask(group)));
109 }
110
111 if (group->sgc->capacity != SCHED_CAPACITY_SCALE)
112 printk(KERN_CONT " cap=%lu", group->sgc->capacity);
113
114 if (group == sd->groups && sd->child &&
115 !cpumask_equal(sched_domain_span(sd->child),
116 sched_group_span(group))) {
117 printk(KERN_ERR "ERROR: domain->groups does not match domain->child\n");
118 }
119
120 printk(KERN_CONT " }");
121
122 group = group->next;
123
124 if (group != sd->groups)
125 printk(KERN_CONT ",");
126
127 } while (group != sd->groups);
128 printk(KERN_CONT "\n");
129
130 if (!cpumask_equal(sched_domain_span(sd), groupmask))
131 printk(KERN_ERR "ERROR: groups don't span domain->span\n");
132
133 if (sd->parent &&
134 !cpumask_subset(groupmask, sched_domain_span(sd->parent)))
135 printk(KERN_ERR "ERROR: parent span is not a superset of domain->span\n");
136 return 0;
137 }
138
sched_domain_debug(struct sched_domain * sd,int cpu)139 static void sched_domain_debug(struct sched_domain *sd, int cpu)
140 {
141 int level = 0;
142
143 if (!sched_debug_verbose)
144 return;
145
146 if (!sd) {
147 printk(KERN_DEBUG "CPU%d attaching NULL sched-domain.\n", cpu);
148 return;
149 }
150
151 printk(KERN_DEBUG "CPU%d attaching sched-domain(s):\n", cpu);
152
153 for (;;) {
154 if (sched_domain_debug_one(sd, cpu, level, sched_domains_tmpmask))
155 break;
156 level++;
157 sd = sd->parent;
158 if (!sd)
159 break;
160 }
161 }
162
163 /* Generate a mask of SD flags with the SDF_NEEDS_GROUPS metaflag */
164 #define SD_FLAG(name, mflags) (name * !!((mflags) & SDF_NEEDS_GROUPS)) |
165 static const unsigned int SD_DEGENERATE_GROUPS_MASK =
166 #include <linux/sched/sd_flags.h>
167 0;
168 #undef SD_FLAG
169
sd_degenerate(struct sched_domain * sd)170 static int sd_degenerate(struct sched_domain *sd)
171 {
172 if (cpumask_weight(sched_domain_span(sd)) == 1)
173 return 1;
174
175 /* Following flags need at least 2 groups */
176 if ((sd->flags & SD_DEGENERATE_GROUPS_MASK) &&
177 (sd->groups != sd->groups->next))
178 return 0;
179
180 /* Following flags don't use groups */
181 if (sd->flags & (SD_WAKE_AFFINE))
182 return 0;
183
184 return 1;
185 }
186
187 static int
sd_parent_degenerate(struct sched_domain * sd,struct sched_domain * parent)188 sd_parent_degenerate(struct sched_domain *sd, struct sched_domain *parent)
189 {
190 unsigned long cflags = sd->flags, pflags = parent->flags;
191
192 if (sd_degenerate(parent))
193 return 1;
194
195 if (!cpumask_equal(sched_domain_span(sd), sched_domain_span(parent)))
196 return 0;
197
198 /* Flags needing groups don't count if only 1 group in parent */
199 if (parent->groups == parent->groups->next)
200 pflags &= ~SD_DEGENERATE_GROUPS_MASK;
201
202 if (~cflags & pflags)
203 return 0;
204
205 return 1;
206 }
207
208 #if defined(CONFIG_ENERGY_MODEL) && defined(CONFIG_CPU_FREQ_GOV_SCHEDUTIL)
209 DEFINE_STATIC_KEY_FALSE(sched_energy_present);
210 static unsigned int sysctl_sched_energy_aware = 1;
211 static DEFINE_MUTEX(sched_energy_mutex);
212 static bool sched_energy_update;
213
sched_is_eas_possible(const struct cpumask * cpu_mask)214 static bool sched_is_eas_possible(const struct cpumask *cpu_mask)
215 {
216 bool any_asym_capacity = false;
217 int i;
218
219 /* EAS is enabled for asymmetric CPU capacity topologies. */
220 for_each_cpu(i, cpu_mask) {
221 if (rcu_access_pointer(per_cpu(sd_asym_cpucapacity, i))) {
222 any_asym_capacity = true;
223 break;
224 }
225 }
226 if (!any_asym_capacity) {
227 if (sched_debug()) {
228 pr_info("rd %*pbl: Checking EAS, CPUs do not have asymmetric capacities\n",
229 cpumask_pr_args(cpu_mask));
230 }
231 return false;
232 }
233
234 /* EAS definitely does *not* handle SMT */
235 if (sched_smt_active()) {
236 if (sched_debug()) {
237 pr_info("rd %*pbl: Checking EAS, SMT is not supported\n",
238 cpumask_pr_args(cpu_mask));
239 }
240 return false;
241 }
242
243 if (!arch_scale_freq_invariant()) {
244 if (sched_debug()) {
245 pr_info("rd %*pbl: Checking EAS: frequency-invariant load tracking not yet supported",
246 cpumask_pr_args(cpu_mask));
247 }
248 return false;
249 }
250
251 if (!cpufreq_ready_for_eas(cpu_mask)) {
252 if (sched_debug()) {
253 pr_info("rd %*pbl: Checking EAS: cpufreq is not ready\n",
254 cpumask_pr_args(cpu_mask));
255 }
256 return false;
257 }
258
259 return true;
260 }
261
rebuild_sched_domains_energy(void)262 void rebuild_sched_domains_energy(void)
263 {
264 mutex_lock(&sched_energy_mutex);
265 sched_energy_update = true;
266 rebuild_sched_domains();
267 sched_energy_update = false;
268 mutex_unlock(&sched_energy_mutex);
269 }
270
271 #ifdef CONFIG_PROC_SYSCTL
sched_energy_aware_handler(const struct ctl_table * table,int write,void * buffer,size_t * lenp,loff_t * ppos)272 static int sched_energy_aware_handler(const struct ctl_table *table, int write,
273 void *buffer, size_t *lenp, loff_t *ppos)
274 {
275 int ret, state;
276
277 if (write && !capable(CAP_SYS_ADMIN))
278 return -EPERM;
279
280 if (!sched_is_eas_possible(cpu_active_mask)) {
281 if (write) {
282 return -EOPNOTSUPP;
283 } else {
284 *lenp = 0;
285 return 0;
286 }
287 }
288
289 ret = proc_dointvec_minmax(table, write, buffer, lenp, ppos);
290 if (!ret && write) {
291 state = static_branch_unlikely(&sched_energy_present);
292 if (state != sysctl_sched_energy_aware)
293 rebuild_sched_domains_energy();
294 }
295
296 return ret;
297 }
298
299 static const struct ctl_table sched_energy_aware_sysctls[] = {
300 {
301 .procname = "sched_energy_aware",
302 .data = &sysctl_sched_energy_aware,
303 .maxlen = sizeof(unsigned int),
304 .mode = 0644,
305 .proc_handler = sched_energy_aware_handler,
306 .extra1 = SYSCTL_ZERO,
307 .extra2 = SYSCTL_ONE,
308 },
309 };
310
sched_energy_aware_sysctl_init(void)311 static int __init sched_energy_aware_sysctl_init(void)
312 {
313 register_sysctl_init("kernel", sched_energy_aware_sysctls);
314 return 0;
315 }
316
317 late_initcall(sched_energy_aware_sysctl_init);
318 #endif /* CONFIG_PROC_SYSCTL */
319
free_pd(struct perf_domain * pd)320 static void free_pd(struct perf_domain *pd)
321 {
322 struct perf_domain *tmp;
323
324 while (pd) {
325 tmp = pd->next;
326 kfree(pd);
327 pd = tmp;
328 }
329 }
330
find_pd(struct perf_domain * pd,int cpu)331 static struct perf_domain *find_pd(struct perf_domain *pd, int cpu)
332 {
333 while (pd) {
334 if (cpumask_test_cpu(cpu, perf_domain_span(pd)))
335 return pd;
336 pd = pd->next;
337 }
338
339 return NULL;
340 }
341
pd_init(int cpu)342 static struct perf_domain *pd_init(int cpu)
343 {
344 struct em_perf_domain *obj = em_cpu_get(cpu);
345 struct perf_domain *pd;
346
347 if (!obj) {
348 if (sched_debug())
349 pr_info("%s: no EM found for CPU%d\n", __func__, cpu);
350 return NULL;
351 }
352
353 pd = kzalloc_obj(*pd);
354 if (!pd)
355 return NULL;
356 pd->em_pd = obj;
357
358 return pd;
359 }
360
perf_domain_debug(const struct cpumask * cpu_map,struct perf_domain * pd)361 static void perf_domain_debug(const struct cpumask *cpu_map,
362 struct perf_domain *pd)
363 {
364 if (!sched_debug() || !pd)
365 return;
366
367 printk(KERN_DEBUG "root_domain %*pbl:", cpumask_pr_args(cpu_map));
368
369 while (pd) {
370 printk(KERN_CONT " pd%d:{ cpus=%*pbl nr_pstate=%d }",
371 cpumask_first(perf_domain_span(pd)),
372 cpumask_pr_args(perf_domain_span(pd)),
373 em_pd_nr_perf_states(pd->em_pd));
374 pd = pd->next;
375 }
376
377 printk(KERN_CONT "\n");
378 }
379
destroy_perf_domain_rcu(struct rcu_head * rp)380 static void destroy_perf_domain_rcu(struct rcu_head *rp)
381 {
382 struct perf_domain *pd;
383
384 pd = container_of(rp, struct perf_domain, rcu);
385 free_pd(pd);
386 }
387
sched_energy_set(bool has_eas)388 static void sched_energy_set(bool has_eas)
389 {
390 if (!has_eas && static_branch_unlikely(&sched_energy_present)) {
391 if (sched_debug())
392 pr_info("%s: stopping EAS\n", __func__);
393 static_branch_disable_cpuslocked(&sched_energy_present);
394 } else if (has_eas && !static_branch_unlikely(&sched_energy_present)) {
395 if (sched_debug())
396 pr_info("%s: starting EAS\n", __func__);
397 static_branch_enable_cpuslocked(&sched_energy_present);
398 }
399 }
400
401 /*
402 * EAS can be used on a root domain if it meets all the following conditions:
403 * 1. an Energy Model (EM) is available;
404 * 2. the SD_ASYM_CPUCAPACITY flag is set in the sched_domain hierarchy.
405 * 3. no SMT is detected.
406 * 4. schedutil is driving the frequency of all CPUs of the rd;
407 * 5. frequency invariance support is present;
408 */
build_perf_domains(const struct cpumask * cpu_map)409 static bool build_perf_domains(const struct cpumask *cpu_map)
410 {
411 int i;
412 struct perf_domain *pd = NULL, *tmp;
413 int cpu = cpumask_first(cpu_map);
414 struct root_domain *rd = cpu_rq(cpu)->rd;
415
416 if (!sysctl_sched_energy_aware)
417 goto free;
418
419 if (!sched_is_eas_possible(cpu_map))
420 goto free;
421
422 for_each_cpu(i, cpu_map) {
423 /* Skip already covered CPUs. */
424 if (find_pd(pd, i))
425 continue;
426
427 /* Create the new pd and add it to the local list. */
428 tmp = pd_init(i);
429 if (!tmp)
430 goto free;
431 tmp->next = pd;
432 pd = tmp;
433 }
434
435 perf_domain_debug(cpu_map, pd);
436
437 /* Attach the new list of performance domains to the root domain. */
438 tmp = rd->pd;
439 rcu_assign_pointer(rd->pd, pd);
440 if (tmp)
441 call_rcu(&tmp->rcu, destroy_perf_domain_rcu);
442
443 return !!pd;
444
445 free:
446 free_pd(pd);
447 tmp = rd->pd;
448 rcu_assign_pointer(rd->pd, NULL);
449 if (tmp)
450 call_rcu(&tmp->rcu, destroy_perf_domain_rcu);
451
452 return false;
453 }
454 #else /* !(CONFIG_ENERGY_MODEL && CONFIG_CPU_FREQ_GOV_SCHEDUTIL): */
free_pd(struct perf_domain * pd)455 static void free_pd(struct perf_domain *pd) { }
456 #endif /* !(CONFIG_ENERGY_MODEL && CONFIG_CPU_FREQ_GOV_SCHEDUTIL) */
457
free_rootdomain(struct rcu_head * rcu)458 static void free_rootdomain(struct rcu_head *rcu)
459 {
460 struct root_domain *rd = container_of(rcu, struct root_domain, rcu);
461
462 cpupri_cleanup(&rd->cpupri);
463 cpudl_cleanup(&rd->cpudl);
464 free_cpumask_var(rd->dlo_mask);
465 free_cpumask_var(rd->rto_mask);
466 free_cpumask_var(rd->online);
467 free_cpumask_var(rd->span);
468 free_pd(rd->pd);
469 kfree(rd);
470 }
471
rq_attach_root(struct rq * rq,struct root_domain * rd)472 void rq_attach_root(struct rq *rq, struct root_domain *rd)
473 {
474 struct root_domain *old_rd = NULL;
475 struct rq_flags rf;
476
477 rq_lock_irqsave(rq, &rf);
478
479 if (rq->rd) {
480 old_rd = rq->rd;
481
482 if (cpumask_test_cpu(rq->cpu, old_rd->online))
483 set_rq_offline(rq);
484
485 cpumask_clear_cpu(rq->cpu, old_rd->span);
486
487 /*
488 * If we don't want to free the old_rd yet then
489 * set old_rd to NULL to skip the freeing later
490 * in this function:
491 */
492 if (!atomic_dec_and_test(&old_rd->refcount))
493 old_rd = NULL;
494 }
495
496 atomic_inc(&rd->refcount);
497 rq->rd = rd;
498
499 cpumask_set_cpu(rq->cpu, rd->span);
500 if (cpumask_test_cpu(rq->cpu, cpu_active_mask))
501 set_rq_online(rq);
502
503 /*
504 * Because the rq is not a task, dl_add_task_root_domain() did not
505 * move the fair server bw to the rd if it already started.
506 * Add it now.
507 */
508 if (rq->fair_server.dl_server)
509 __dl_server_attach_root(&rq->fair_server, rq);
510
511 #ifdef CONFIG_SCHED_CLASS_EXT
512 if (rq->ext_server.dl_server)
513 __dl_server_attach_root(&rq->ext_server, rq);
514 #endif
515
516 rq_unlock_irqrestore(rq, &rf);
517
518 if (old_rd)
519 call_rcu(&old_rd->rcu, free_rootdomain);
520 }
521
sched_get_rd(struct root_domain * rd)522 void sched_get_rd(struct root_domain *rd)
523 {
524 atomic_inc(&rd->refcount);
525 }
526
sched_put_rd(struct root_domain * rd)527 void sched_put_rd(struct root_domain *rd)
528 {
529 if (!atomic_dec_and_test(&rd->refcount))
530 return;
531
532 call_rcu(&rd->rcu, free_rootdomain);
533 }
534
init_rootdomain(struct root_domain * rd)535 static int init_rootdomain(struct root_domain *rd)
536 {
537 if (!zalloc_cpumask_var(&rd->span, GFP_KERNEL))
538 goto out;
539 if (!zalloc_cpumask_var(&rd->online, GFP_KERNEL))
540 goto free_span;
541 if (!zalloc_cpumask_var(&rd->dlo_mask, GFP_KERNEL))
542 goto free_online;
543 if (!zalloc_cpumask_var(&rd->rto_mask, GFP_KERNEL))
544 goto free_dlo_mask;
545
546 #ifdef HAVE_RT_PUSH_IPI
547 rd->rto_cpu = -1;
548 raw_spin_lock_init(&rd->rto_lock);
549 rd->rto_push_work = IRQ_WORK_INIT_HARD(rto_push_irq_work_func);
550 #endif
551
552 rd->visit_cookie = 0;
553 init_dl_bw(&rd->dl_bw);
554 if (cpudl_init(&rd->cpudl) != 0)
555 goto free_rto_mask;
556
557 if (cpupri_init(&rd->cpupri) != 0)
558 goto free_cpudl;
559 return 0;
560
561 free_cpudl:
562 cpudl_cleanup(&rd->cpudl);
563 free_rto_mask:
564 free_cpumask_var(rd->rto_mask);
565 free_dlo_mask:
566 free_cpumask_var(rd->dlo_mask);
567 free_online:
568 free_cpumask_var(rd->online);
569 free_span:
570 free_cpumask_var(rd->span);
571 out:
572 return -ENOMEM;
573 }
574
575 /*
576 * By default the system creates a single root-domain with all CPUs as
577 * members (mimicking the global state we have today).
578 */
579 struct root_domain def_root_domain;
580
init_defrootdomain(void)581 void __init init_defrootdomain(void)
582 {
583 init_rootdomain(&def_root_domain);
584
585 atomic_set(&def_root_domain.refcount, 1);
586 }
587
alloc_rootdomain(void)588 static struct root_domain *alloc_rootdomain(void)
589 {
590 struct root_domain *rd;
591
592 rd = kzalloc_obj(*rd);
593 if (!rd)
594 return NULL;
595
596 if (init_rootdomain(rd) != 0) {
597 kfree(rd);
598 return NULL;
599 }
600
601 return rd;
602 }
603
free_sched_groups(struct sched_group * sg,int free_sgc)604 static void free_sched_groups(struct sched_group *sg, int free_sgc)
605 {
606 struct sched_group *tmp, *first;
607
608 if (!sg)
609 return;
610
611 first = sg;
612 do {
613 tmp = sg->next;
614
615 if (free_sgc && atomic_dec_and_test(&sg->sgc->ref))
616 kfree(sg->sgc);
617
618 if (atomic_dec_and_test(&sg->ref))
619 kfree(sg);
620 sg = tmp;
621 } while (sg != first);
622 }
623
destroy_sched_domain(struct sched_domain * sd)624 static void destroy_sched_domain(struct sched_domain *sd)
625 {
626 /*
627 * A normal sched domain may have multiple group references, an
628 * overlapping domain, having private groups, only one. Iterate,
629 * dropping group/capacity references, freeing where none remain.
630 */
631 free_sched_groups(sd->groups, 1);
632
633 if (sd->shared && atomic_dec_and_test(&sd->shared->ref))
634 kfree(sd->shared);
635 kfree(sd);
636 }
637
destroy_sched_domains_rcu(struct rcu_head * rcu)638 static void destroy_sched_domains_rcu(struct rcu_head *rcu)
639 {
640 struct sched_domain *sd = container_of(rcu, struct sched_domain, rcu);
641
642 while (sd) {
643 struct sched_domain *parent = sd->parent;
644 destroy_sched_domain(sd);
645 sd = parent;
646 }
647 }
648
destroy_sched_domains(struct sched_domain * sd)649 static void destroy_sched_domains(struct sched_domain *sd)
650 {
651 if (sd)
652 call_rcu(&sd->rcu, destroy_sched_domains_rcu);
653 }
654
655 /*
656 * Keep a special pointer to the highest sched_domain that has SD_SHARE_LLC set
657 * (Last Level Cache Domain) for this allows us to avoid some pointer chasing
658 * select_idle_sibling().
659 *
660 * Also keep a unique ID per domain (we use the first CPU number in the cpumask
661 * of the domain), this allows us to quickly tell if two CPUs are in the same
662 * cache domain, see cpus_share_cache().
663 */
664 DEFINE_PER_CPU(struct sched_domain __rcu *, sd_llc);
665 DEFINE_PER_CPU(int, sd_llc_size);
666 DEFINE_PER_CPU(int, sd_llc_id);
667 DEFINE_PER_CPU(int, sd_share_id);
668 DEFINE_PER_CPU(struct sched_domain_shared __rcu *, sd_llc_shared);
669 DEFINE_PER_CPU(struct sched_domain __rcu *, sd_numa);
670 DEFINE_PER_CPU(struct sched_domain __rcu *, sd_asym_packing);
671 DEFINE_PER_CPU(struct sched_domain __rcu *, sd_asym_cpucapacity);
672
673 DEFINE_STATIC_KEY_FALSE(sched_asym_cpucapacity);
674 DEFINE_STATIC_KEY_FALSE(sched_cluster_active);
675
update_top_cache_domain(int cpu)676 static void update_top_cache_domain(int cpu)
677 {
678 struct sched_domain_shared *sds = NULL;
679 struct sched_domain *sd;
680 int id = cpu;
681 int size = 1;
682
683 sd = highest_flag_domain(cpu, SD_SHARE_LLC);
684 if (sd) {
685 id = cpumask_first(sched_domain_span(sd));
686 size = cpumask_weight(sched_domain_span(sd));
687 sds = sd->shared;
688 }
689
690 rcu_assign_pointer(per_cpu(sd_llc, cpu), sd);
691 per_cpu(sd_llc_size, cpu) = size;
692 per_cpu(sd_llc_id, cpu) = id;
693 rcu_assign_pointer(per_cpu(sd_llc_shared, cpu), sds);
694
695 sd = lowest_flag_domain(cpu, SD_CLUSTER);
696 if (sd)
697 id = cpumask_first(sched_domain_span(sd));
698
699 /*
700 * This assignment should be placed after the sd_llc_id as
701 * we want this id equals to cluster id on cluster machines
702 * but equals to LLC id on non-Cluster machines.
703 */
704 per_cpu(sd_share_id, cpu) = id;
705
706 sd = lowest_flag_domain(cpu, SD_NUMA);
707 rcu_assign_pointer(per_cpu(sd_numa, cpu), sd);
708
709 sd = highest_flag_domain(cpu, SD_ASYM_PACKING);
710 rcu_assign_pointer(per_cpu(sd_asym_packing, cpu), sd);
711
712 sd = lowest_flag_domain(cpu, SD_ASYM_CPUCAPACITY_FULL);
713 rcu_assign_pointer(per_cpu(sd_asym_cpucapacity, cpu), sd);
714 }
715
716 /*
717 * Attach the domain 'sd' to 'cpu' as its base domain. Callers must
718 * hold the hotplug lock.
719 */
720 static void
cpu_attach_domain(struct sched_domain * sd,struct root_domain * rd,int cpu)721 cpu_attach_domain(struct sched_domain *sd, struct root_domain *rd, int cpu)
722 {
723 struct rq *rq = cpu_rq(cpu);
724 struct sched_domain *tmp;
725
726 /* Remove the sched domains which do not contribute to scheduling. */
727 for (tmp = sd; tmp; ) {
728 struct sched_domain *parent = tmp->parent;
729 if (!parent)
730 break;
731
732 if (sd_parent_degenerate(tmp, parent)) {
733 tmp->parent = parent->parent;
734
735 if (parent->parent) {
736 parent->parent->child = tmp;
737 parent->parent->groups->flags = tmp->flags;
738 }
739
740 /*
741 * Transfer SD_PREFER_SIBLING down in case of a
742 * degenerate parent; the spans match for this
743 * so the property transfers.
744 */
745 if (parent->flags & SD_PREFER_SIBLING)
746 tmp->flags |= SD_PREFER_SIBLING;
747 destroy_sched_domain(parent);
748 } else
749 tmp = tmp->parent;
750 }
751
752 if (sd && sd_degenerate(sd)) {
753 tmp = sd;
754 sd = sd->parent;
755 destroy_sched_domain(tmp);
756 if (sd) {
757 struct sched_group *sg = sd->groups;
758
759 /*
760 * sched groups hold the flags of the child sched
761 * domain for convenience. Clear such flags since
762 * the child is being destroyed.
763 */
764 do {
765 sg->flags = 0;
766 } while (sg != sd->groups);
767
768 sd->child = NULL;
769 }
770 }
771
772 sched_domain_debug(sd, cpu);
773
774 rq_attach_root(rq, rd);
775 tmp = rq->sd;
776 rcu_assign_pointer(rq->sd, sd);
777 dirty_sched_domain_sysctl(cpu);
778 destroy_sched_domains(tmp);
779
780 update_top_cache_domain(cpu);
781 }
782
783 struct s_data {
784 struct sched_domain * __percpu *sd;
785 struct root_domain *rd;
786 };
787
788 enum s_alloc {
789 sa_rootdomain,
790 sa_sd,
791 sa_sd_storage,
792 sa_none,
793 };
794
795 /*
796 * Return the canonical balance CPU for this group, this is the first CPU
797 * of this group that's also in the balance mask.
798 *
799 * The balance mask are all those CPUs that could actually end up at this
800 * group. See build_balance_mask().
801 *
802 * Also see should_we_balance().
803 */
group_balance_cpu(struct sched_group * sg)804 int group_balance_cpu(struct sched_group *sg)
805 {
806 return cpumask_first(group_balance_mask(sg));
807 }
808
809
810 /*
811 * NUMA topology (first read the regular topology blurb below)
812 *
813 * Given a node-distance table, for example:
814 *
815 * node 0 1 2 3
816 * 0: 10 20 30 20
817 * 1: 20 10 20 30
818 * 2: 30 20 10 20
819 * 3: 20 30 20 10
820 *
821 * which represents a 4 node ring topology like:
822 *
823 * 0 ----- 1
824 * | |
825 * | |
826 * | |
827 * 3 ----- 2
828 *
829 * We want to construct domains and groups to represent this. The way we go
830 * about doing this is to build the domains on 'hops'. For each NUMA level we
831 * construct the mask of all nodes reachable in @level hops.
832 *
833 * For the above NUMA topology that gives 3 levels:
834 *
835 * NUMA-2 0-3 0-3 0-3 0-3
836 * groups: {0-1,3},{1-3} {0-2},{0,2-3} {1-3},{0-1,3} {0,2-3},{0-2}
837 *
838 * NUMA-1 0-1,3 0-2 1-3 0,2-3
839 * groups: {0},{1},{3} {0},{1},{2} {1},{2},{3} {0},{2},{3}
840 *
841 * NUMA-0 0 1 2 3
842 *
843 *
844 * As can be seen; things don't nicely line up as with the regular topology.
845 * When we iterate a domain in child domain chunks some nodes can be
846 * represented multiple times -- hence the "overlap" naming for this part of
847 * the topology.
848 *
849 * In order to minimize this overlap, we only build enough groups to cover the
850 * domain. For instance Node-0 NUMA-2 would only get groups: 0-1,3 and 1-3.
851 *
852 * Because:
853 *
854 * - the first group of each domain is its child domain; this
855 * gets us the first 0-1,3
856 * - the only uncovered node is 2, who's child domain is 1-3.
857 *
858 * However, because of the overlap, computing a unique CPU for each group is
859 * more complicated. Consider for instance the groups of NODE-1 NUMA-2, both
860 * groups include the CPUs of Node-0, while those CPUs would not in fact ever
861 * end up at those groups (they would end up in group: 0-1,3).
862 *
863 * To correct this we have to introduce the group balance mask. This mask
864 * will contain those CPUs in the group that can reach this group given the
865 * (child) domain tree.
866 *
867 * With this we can once again compute balance_cpu and sched_group_capacity
868 * relations.
869 *
870 * XXX include words on how balance_cpu is unique and therefore can be
871 * used for sched_group_capacity links.
872 *
873 *
874 * Another 'interesting' topology is:
875 *
876 * node 0 1 2 3
877 * 0: 10 20 20 30
878 * 1: 20 10 20 20
879 * 2: 20 20 10 20
880 * 3: 30 20 20 10
881 *
882 * Which looks a little like:
883 *
884 * 0 ----- 1
885 * | / |
886 * | / |
887 * | / |
888 * 2 ----- 3
889 *
890 * This topology is asymmetric, nodes 1,2 are fully connected, but nodes 0,3
891 * are not.
892 *
893 * This leads to a few particularly weird cases where the sched_domain's are
894 * not of the same number for each CPU. Consider:
895 *
896 * NUMA-2 0-3 0-3
897 * groups: {0-2},{1-3} {1-3},{0-2}
898 *
899 * NUMA-1 0-2 0-3 0-3 1-3
900 *
901 * NUMA-0 0 1 2 3
902 *
903 */
904
905
906 /*
907 * Build the balance mask; it contains only those CPUs that can arrive at this
908 * group and should be considered to continue balancing.
909 *
910 * We do this during the group creation pass, therefore the group information
911 * isn't complete yet, however since each group represents a (child) domain we
912 * can fully construct this using the sched_domain bits (which are already
913 * complete).
914 */
915 static void
build_balance_mask(struct sched_domain * sd,struct sched_group * sg,struct cpumask * mask)916 build_balance_mask(struct sched_domain *sd, struct sched_group *sg, struct cpumask *mask)
917 {
918 const struct cpumask *sg_span = sched_group_span(sg);
919 struct sd_data *sdd = sd->private;
920 struct sched_domain *sibling;
921 int i;
922
923 cpumask_clear(mask);
924
925 for_each_cpu(i, sg_span) {
926 sibling = *per_cpu_ptr(sdd->sd, i);
927
928 /*
929 * Can happen in the asymmetric case, where these siblings are
930 * unused. The mask will not be empty because those CPUs that
931 * do have the top domain _should_ span the domain.
932 */
933 if (!sibling->child)
934 continue;
935
936 /* If we would not end up here, we can't continue from here */
937 if (!cpumask_equal(sg_span, sched_domain_span(sibling->child)))
938 continue;
939
940 cpumask_set_cpu(i, mask);
941 }
942
943 /* We must not have empty masks here */
944 WARN_ON_ONCE(cpumask_empty(mask));
945 }
946
947 /*
948 * XXX: This creates per-node group entries; since the load-balancer will
949 * immediately access remote memory to construct this group's load-balance
950 * statistics having the groups node local is of dubious benefit.
951 */
952 static struct sched_group *
build_group_from_child_sched_domain(struct sched_domain * sd,int cpu)953 build_group_from_child_sched_domain(struct sched_domain *sd, int cpu)
954 {
955 struct sched_group *sg;
956 struct cpumask *sg_span;
957
958 sg = kzalloc_node(sizeof(struct sched_group) + cpumask_size(),
959 GFP_KERNEL, cpu_to_node(cpu));
960
961 if (!sg)
962 return NULL;
963
964 sg_span = sched_group_span(sg);
965 if (sd->child) {
966 cpumask_copy(sg_span, sched_domain_span(sd->child));
967 sg->flags = sd->child->flags;
968 } else {
969 cpumask_copy(sg_span, sched_domain_span(sd));
970 }
971
972 atomic_inc(&sg->ref);
973 return sg;
974 }
975
init_overlap_sched_group(struct sched_domain * sd,struct sched_group * sg)976 static void init_overlap_sched_group(struct sched_domain *sd,
977 struct sched_group *sg)
978 {
979 struct cpumask *mask = sched_domains_tmpmask2;
980 struct sd_data *sdd = sd->private;
981 struct cpumask *sg_span;
982 int cpu;
983
984 build_balance_mask(sd, sg, mask);
985 cpu = cpumask_first(mask);
986
987 sg->sgc = *per_cpu_ptr(sdd->sgc, cpu);
988 if (atomic_inc_return(&sg->sgc->ref) == 1)
989 cpumask_copy(group_balance_mask(sg), mask);
990 else
991 WARN_ON_ONCE(!cpumask_equal(group_balance_mask(sg), mask));
992
993 /*
994 * Initialize sgc->capacity such that even if we mess up the
995 * domains and no possible iteration will get us here, we won't
996 * die on a /0 trap.
997 */
998 sg_span = sched_group_span(sg);
999 sg->sgc->capacity = SCHED_CAPACITY_SCALE * cpumask_weight(sg_span);
1000 sg->sgc->min_capacity = SCHED_CAPACITY_SCALE;
1001 sg->sgc->max_capacity = SCHED_CAPACITY_SCALE;
1002 }
1003
1004 static struct sched_domain *
find_descended_sibling(struct sched_domain * sd,struct sched_domain * sibling)1005 find_descended_sibling(struct sched_domain *sd, struct sched_domain *sibling)
1006 {
1007 /*
1008 * The proper descendant would be the one whose child won't span out
1009 * of sd
1010 */
1011 while (sibling->child &&
1012 !cpumask_subset(sched_domain_span(sibling->child),
1013 sched_domain_span(sd)))
1014 sibling = sibling->child;
1015
1016 /*
1017 * As we are referencing sgc across different topology level, we need
1018 * to go down to skip those sched_domains which don't contribute to
1019 * scheduling because they will be degenerated in cpu_attach_domain
1020 */
1021 while (sibling->child &&
1022 cpumask_equal(sched_domain_span(sibling->child),
1023 sched_domain_span(sibling)))
1024 sibling = sibling->child;
1025
1026 return sibling;
1027 }
1028
1029 static int
build_overlap_sched_groups(struct sched_domain * sd,int cpu)1030 build_overlap_sched_groups(struct sched_domain *sd, int cpu)
1031 {
1032 struct sched_group *first = NULL, *last = NULL, *sg;
1033 const struct cpumask *span = sched_domain_span(sd);
1034 struct cpumask *covered = sched_domains_tmpmask;
1035 struct sd_data *sdd = sd->private;
1036 struct sched_domain *sibling;
1037 int i;
1038
1039 cpumask_clear(covered);
1040
1041 for_each_cpu_wrap(i, span, cpu) {
1042 struct cpumask *sg_span;
1043
1044 if (cpumask_test_cpu(i, covered))
1045 continue;
1046
1047 sibling = *per_cpu_ptr(sdd->sd, i);
1048
1049 /*
1050 * Asymmetric node setups can result in situations where the
1051 * domain tree is of unequal depth, make sure to skip domains
1052 * that already cover the entire range.
1053 *
1054 * In that case build_sched_domains() will have terminated the
1055 * iteration early and our sibling sd spans will be empty.
1056 * Domains should always include the CPU they're built on, so
1057 * check that.
1058 */
1059 if (!cpumask_test_cpu(i, sched_domain_span(sibling)))
1060 continue;
1061
1062 /*
1063 * Usually we build sched_group by sibling's child sched_domain
1064 * But for machines whose NUMA diameter are 3 or above, we move
1065 * to build sched_group by sibling's proper descendant's child
1066 * domain because sibling's child sched_domain will span out of
1067 * the sched_domain being built as below.
1068 *
1069 * Smallest diameter=3 topology is:
1070 *
1071 * node 0 1 2 3
1072 * 0: 10 20 30 40
1073 * 1: 20 10 20 30
1074 * 2: 30 20 10 20
1075 * 3: 40 30 20 10
1076 *
1077 * 0 --- 1 --- 2 --- 3
1078 *
1079 * NUMA-3 0-3 N/A N/A 0-3
1080 * groups: {0-2},{1-3} {1-3},{0-2}
1081 *
1082 * NUMA-2 0-2 0-3 0-3 1-3
1083 * groups: {0-1},{1-3} {0-2},{2-3} {1-3},{0-1} {2-3},{0-2}
1084 *
1085 * NUMA-1 0-1 0-2 1-3 2-3
1086 * groups: {0},{1} {1},{2},{0} {2},{3},{1} {3},{2}
1087 *
1088 * NUMA-0 0 1 2 3
1089 *
1090 * The NUMA-2 groups for nodes 0 and 3 are obviously buggered, as the
1091 * group span isn't a subset of the domain span.
1092 */
1093 if (sibling->child &&
1094 !cpumask_subset(sched_domain_span(sibling->child), span))
1095 sibling = find_descended_sibling(sd, sibling);
1096
1097 sg = build_group_from_child_sched_domain(sibling, cpu);
1098 if (!sg)
1099 goto fail;
1100
1101 sg_span = sched_group_span(sg);
1102 cpumask_or(covered, covered, sg_span);
1103
1104 init_overlap_sched_group(sibling, sg);
1105
1106 if (!first)
1107 first = sg;
1108 if (last)
1109 last->next = sg;
1110 last = sg;
1111 last->next = first;
1112 }
1113 sd->groups = first;
1114
1115 return 0;
1116
1117 fail:
1118 free_sched_groups(first, 0);
1119
1120 return -ENOMEM;
1121 }
1122
1123
1124 /*
1125 * Package topology (also see the load-balance blurb in fair.c)
1126 *
1127 * The scheduler builds a tree structure to represent a number of important
1128 * topology features. By default (default_topology[]) these include:
1129 *
1130 * - Simultaneous multithreading (SMT)
1131 * - Multi-Core Cache (MC)
1132 * - Package (PKG)
1133 *
1134 * Where the last one more or less denotes everything up to a NUMA node.
1135 *
1136 * The tree consists of 3 primary data structures:
1137 *
1138 * sched_domain -> sched_group -> sched_group_capacity
1139 * ^ ^ ^ ^
1140 * `-' `-'
1141 *
1142 * The sched_domains are per-CPU and have a two way link (parent & child) and
1143 * denote the ever growing mask of CPUs belonging to that level of topology.
1144 *
1145 * Each sched_domain has a circular (double) linked list of sched_group's, each
1146 * denoting the domains of the level below (or individual CPUs in case of the
1147 * first domain level). The sched_group linked by a sched_domain includes the
1148 * CPU of that sched_domain [*].
1149 *
1150 * Take for instance a 2 threaded, 2 core, 2 cache cluster part:
1151 *
1152 * CPU 0 1 2 3 4 5 6 7
1153 *
1154 * PKG [ ]
1155 * MC [ ] [ ]
1156 * SMT [ ] [ ] [ ] [ ]
1157 *
1158 * - or -
1159 *
1160 * PKG 0-7 0-7 0-7 0-7 0-7 0-7 0-7 0-7
1161 * MC 0-3 0-3 0-3 0-3 4-7 4-7 4-7 4-7
1162 * SMT 0-1 0-1 2-3 2-3 4-5 4-5 6-7 6-7
1163 *
1164 * CPU 0 1 2 3 4 5 6 7
1165 *
1166 * One way to think about it is: sched_domain moves you up and down among these
1167 * topology levels, while sched_group moves you sideways through it, at child
1168 * domain granularity.
1169 *
1170 * sched_group_capacity ensures each unique sched_group has shared storage.
1171 *
1172 * There are two related construction problems, both require a CPU that
1173 * uniquely identify each group (for a given domain):
1174 *
1175 * - The first is the balance_cpu (see should_we_balance() and the
1176 * load-balance blurb in fair.c); for each group we only want 1 CPU to
1177 * continue balancing at a higher domain.
1178 *
1179 * - The second is the sched_group_capacity; we want all identical groups
1180 * to share a single sched_group_capacity.
1181 *
1182 * Since these topologies are exclusive by construction. That is, its
1183 * impossible for an SMT thread to belong to multiple cores, and cores to
1184 * be part of multiple caches. There is a very clear and unique location
1185 * for each CPU in the hierarchy.
1186 *
1187 * Therefore computing a unique CPU for each group is trivial (the iteration
1188 * mask is redundant and set all 1s; all CPUs in a group will end up at _that_
1189 * group), we can simply pick the first CPU in each group.
1190 *
1191 *
1192 * [*] in other words, the first group of each domain is its child domain.
1193 */
1194
get_group(int cpu,struct sd_data * sdd)1195 static struct sched_group *get_group(int cpu, struct sd_data *sdd)
1196 {
1197 struct sched_domain *sd = *per_cpu_ptr(sdd->sd, cpu);
1198 struct sched_domain *child = sd->child;
1199 struct sched_group *sg;
1200 bool already_visited;
1201
1202 if (child)
1203 cpu = cpumask_first(sched_domain_span(child));
1204
1205 sg = *per_cpu_ptr(sdd->sg, cpu);
1206 sg->sgc = *per_cpu_ptr(sdd->sgc, cpu);
1207
1208 /* Increase refcounts for claim_allocations: */
1209 already_visited = atomic_inc_return(&sg->ref) > 1;
1210 /* sgc visits should follow a similar trend as sg */
1211 WARN_ON(already_visited != (atomic_inc_return(&sg->sgc->ref) > 1));
1212
1213 /* If we have already visited that group, it's already initialized. */
1214 if (already_visited)
1215 return sg;
1216
1217 if (child) {
1218 cpumask_copy(sched_group_span(sg), sched_domain_span(child));
1219 cpumask_copy(group_balance_mask(sg), sched_group_span(sg));
1220 sg->flags = child->flags;
1221 } else {
1222 cpumask_set_cpu(cpu, sched_group_span(sg));
1223 cpumask_set_cpu(cpu, group_balance_mask(sg));
1224 }
1225
1226 sg->sgc->capacity = SCHED_CAPACITY_SCALE * cpumask_weight(sched_group_span(sg));
1227 sg->sgc->min_capacity = SCHED_CAPACITY_SCALE;
1228 sg->sgc->max_capacity = SCHED_CAPACITY_SCALE;
1229
1230 return sg;
1231 }
1232
1233 /*
1234 * build_sched_groups will build a circular linked list of the groups
1235 * covered by the given span, will set each group's ->cpumask correctly,
1236 * and will initialize their ->sgc.
1237 *
1238 * Assumes the sched_domain tree is fully constructed
1239 */
1240 static int
build_sched_groups(struct sched_domain * sd,int cpu)1241 build_sched_groups(struct sched_domain *sd, int cpu)
1242 {
1243 struct sched_group *first = NULL, *last = NULL;
1244 struct sd_data *sdd = sd->private;
1245 const struct cpumask *span = sched_domain_span(sd);
1246 struct cpumask *covered;
1247 int i;
1248
1249 lockdep_assert_held(&sched_domains_mutex);
1250 covered = sched_domains_tmpmask;
1251
1252 cpumask_clear(covered);
1253
1254 for_each_cpu_wrap(i, span, cpu) {
1255 struct sched_group *sg;
1256
1257 if (cpumask_test_cpu(i, covered))
1258 continue;
1259
1260 sg = get_group(i, sdd);
1261
1262 cpumask_or(covered, covered, sched_group_span(sg));
1263
1264 if (!first)
1265 first = sg;
1266 if (last)
1267 last->next = sg;
1268 last = sg;
1269 }
1270 last->next = first;
1271 sd->groups = first;
1272
1273 return 0;
1274 }
1275
1276 /*
1277 * Initialize sched groups cpu_capacity.
1278 *
1279 * cpu_capacity indicates the capacity of sched group, which is used while
1280 * distributing the load between different sched groups in a sched domain.
1281 * Typically cpu_capacity for all the groups in a sched domain will be same
1282 * unless there are asymmetries in the topology. If there are asymmetries,
1283 * group having more cpu_capacity will pickup more load compared to the
1284 * group having less cpu_capacity.
1285 */
init_sched_groups_capacity(int cpu,struct sched_domain * sd)1286 static void init_sched_groups_capacity(int cpu, struct sched_domain *sd)
1287 {
1288 struct sched_group *sg = sd->groups;
1289 struct cpumask *mask = sched_domains_tmpmask2;
1290
1291 WARN_ON(!sg);
1292
1293 do {
1294 int cpu, cores = 0, max_cpu = -1;
1295
1296 sg->group_weight = cpumask_weight(sched_group_span(sg));
1297
1298 cpumask_copy(mask, sched_group_span(sg));
1299 for_each_cpu(cpu, mask) {
1300 cores++;
1301 #ifdef CONFIG_SCHED_SMT
1302 cpumask_andnot(mask, mask, cpu_smt_mask(cpu));
1303 #endif
1304 }
1305 sg->cores = cores;
1306
1307 if (!(sd->flags & SD_ASYM_PACKING))
1308 goto next;
1309
1310 for_each_cpu(cpu, sched_group_span(sg)) {
1311 if (max_cpu < 0)
1312 max_cpu = cpu;
1313 else if (sched_asym_prefer(cpu, max_cpu))
1314 max_cpu = cpu;
1315 }
1316 sg->asym_prefer_cpu = max_cpu;
1317
1318 next:
1319 sg = sg->next;
1320 } while (sg != sd->groups);
1321
1322 if (cpu != group_balance_cpu(sg))
1323 return;
1324
1325 update_group_capacity(sd, cpu);
1326 }
1327
1328 /* Update the "asym_prefer_cpu" when arch_asym_cpu_priority() changes. */
sched_update_asym_prefer_cpu(int cpu,int old_prio,int new_prio)1329 void sched_update_asym_prefer_cpu(int cpu, int old_prio, int new_prio)
1330 {
1331 int asym_prefer_cpu = cpu;
1332 struct sched_domain *sd;
1333
1334 guard(rcu)();
1335
1336 for_each_domain(cpu, sd) {
1337 struct sched_group *sg;
1338 int group_cpu;
1339
1340 if (!(sd->flags & SD_ASYM_PACKING))
1341 continue;
1342
1343 /*
1344 * Groups of overlapping domain are replicated per NUMA
1345 * node and will require updating "asym_prefer_cpu" on
1346 * each local copy.
1347 *
1348 * If you are hitting this warning, consider moving
1349 * "sg->asym_prefer_cpu" to "sg->sgc->asym_prefer_cpu"
1350 * which is shared by all the overlapping groups.
1351 */
1352 WARN_ON_ONCE(sd->flags & SD_NUMA);
1353
1354 sg = sd->groups;
1355 if (cpu != sg->asym_prefer_cpu) {
1356 /*
1357 * Since the parent is a superset of the current group,
1358 * if the cpu is not the "asym_prefer_cpu" at the
1359 * current level, it cannot be the preferred CPU at a
1360 * higher levels either.
1361 */
1362 if (!sched_asym_prefer(cpu, sg->asym_prefer_cpu))
1363 return;
1364
1365 WRITE_ONCE(sg->asym_prefer_cpu, cpu);
1366 continue;
1367 }
1368
1369 /* Ranking has improved; CPU is still the preferred one. */
1370 if (new_prio >= old_prio)
1371 continue;
1372
1373 for_each_cpu(group_cpu, sched_group_span(sg)) {
1374 if (sched_asym_prefer(group_cpu, asym_prefer_cpu))
1375 asym_prefer_cpu = group_cpu;
1376 }
1377
1378 WRITE_ONCE(sg->asym_prefer_cpu, asym_prefer_cpu);
1379 }
1380 }
1381
1382 /*
1383 * Set of available CPUs grouped by their corresponding capacities
1384 * Each list entry contains a CPU mask reflecting CPUs that share the same
1385 * capacity.
1386 * The lifespan of data is unlimited.
1387 */
1388 LIST_HEAD(asym_cap_list);
1389
1390 /*
1391 * Verify whether there is any CPU capacity asymmetry in a given sched domain.
1392 * Provides sd_flags reflecting the asymmetry scope.
1393 */
1394 static inline int
asym_cpu_capacity_classify(const struct cpumask * sd_span,const struct cpumask * cpu_map)1395 asym_cpu_capacity_classify(const struct cpumask *sd_span,
1396 const struct cpumask *cpu_map)
1397 {
1398 struct asym_cap_data *entry;
1399 int count = 0, miss = 0;
1400
1401 /*
1402 * Count how many unique CPU capacities this domain spans across
1403 * (compare sched_domain CPUs mask with ones representing available
1404 * CPUs capacities). Take into account CPUs that might be offline:
1405 * skip those.
1406 */
1407 list_for_each_entry(entry, &asym_cap_list, link) {
1408 if (cpumask_intersects(sd_span, cpu_capacity_span(entry)))
1409 ++count;
1410 else if (cpumask_intersects(cpu_map, cpu_capacity_span(entry)))
1411 ++miss;
1412 }
1413
1414 WARN_ON_ONCE(!count && !list_empty(&asym_cap_list));
1415
1416 /* No asymmetry detected */
1417 if (count < 2)
1418 return 0;
1419 /* Some of the available CPU capacity values have not been detected */
1420 if (miss)
1421 return SD_ASYM_CPUCAPACITY;
1422
1423 /* Full asymmetry */
1424 return SD_ASYM_CPUCAPACITY | SD_ASYM_CPUCAPACITY_FULL;
1425
1426 }
1427
free_asym_cap_entry(struct rcu_head * head)1428 static void free_asym_cap_entry(struct rcu_head *head)
1429 {
1430 struct asym_cap_data *entry = container_of(head, struct asym_cap_data, rcu);
1431 kfree(entry);
1432 }
1433
asym_cpu_capacity_update_data(int cpu)1434 static inline void asym_cpu_capacity_update_data(int cpu)
1435 {
1436 unsigned long capacity = arch_scale_cpu_capacity(cpu);
1437 struct asym_cap_data *insert_entry = NULL;
1438 struct asym_cap_data *entry;
1439
1440 /*
1441 * Search if capacity already exits. If not, track which the entry
1442 * where we should insert to keep the list ordered descending.
1443 */
1444 list_for_each_entry(entry, &asym_cap_list, link) {
1445 if (capacity == entry->capacity)
1446 goto done;
1447 else if (!insert_entry && capacity > entry->capacity)
1448 insert_entry = list_prev_entry(entry, link);
1449 }
1450
1451 entry = kzalloc(sizeof(*entry) + cpumask_size(), GFP_KERNEL);
1452 if (WARN_ONCE(!entry, "Failed to allocate memory for asymmetry data\n"))
1453 return;
1454 entry->capacity = capacity;
1455
1456 /* If NULL then the new capacity is the smallest, add last. */
1457 if (!insert_entry)
1458 list_add_tail_rcu(&entry->link, &asym_cap_list);
1459 else
1460 list_add_rcu(&entry->link, &insert_entry->link);
1461 done:
1462 __cpumask_set_cpu(cpu, cpu_capacity_span(entry));
1463 }
1464
1465 /*
1466 * Build-up/update list of CPUs grouped by their capacities
1467 * An update requires explicit request to rebuild sched domains
1468 * with state indicating CPU topology changes.
1469 */
asym_cpu_capacity_scan(void)1470 static void asym_cpu_capacity_scan(void)
1471 {
1472 struct asym_cap_data *entry, *next;
1473 int cpu;
1474
1475 list_for_each_entry(entry, &asym_cap_list, link)
1476 cpumask_clear(cpu_capacity_span(entry));
1477
1478 for_each_cpu_and(cpu, cpu_possible_mask, housekeeping_cpumask(HK_TYPE_DOMAIN))
1479 asym_cpu_capacity_update_data(cpu);
1480
1481 list_for_each_entry_safe(entry, next, &asym_cap_list, link) {
1482 if (cpumask_empty(cpu_capacity_span(entry))) {
1483 list_del_rcu(&entry->link);
1484 call_rcu(&entry->rcu, free_asym_cap_entry);
1485 }
1486 }
1487
1488 /*
1489 * Only one capacity value has been detected i.e. this system is symmetric.
1490 * No need to keep this data around.
1491 */
1492 if (list_is_singular(&asym_cap_list)) {
1493 entry = list_first_entry(&asym_cap_list, typeof(*entry), link);
1494 list_del_rcu(&entry->link);
1495 call_rcu(&entry->rcu, free_asym_cap_entry);
1496 }
1497 }
1498
1499 /*
1500 * Initializers for schedule domains
1501 * Non-inlined to reduce accumulated stack pressure in build_sched_domains()
1502 */
1503
1504 static int default_relax_domain_level = -1;
1505 int sched_domain_level_max;
1506
setup_relax_domain_level(char * str)1507 static int __init setup_relax_domain_level(char *str)
1508 {
1509 if (kstrtoint(str, 0, &default_relax_domain_level))
1510 pr_warn("Unable to set relax_domain_level\n");
1511
1512 return 1;
1513 }
1514 __setup("relax_domain_level=", setup_relax_domain_level);
1515
set_domain_attribute(struct sched_domain * sd,struct sched_domain_attr * attr)1516 static void set_domain_attribute(struct sched_domain *sd,
1517 struct sched_domain_attr *attr)
1518 {
1519 int request;
1520
1521 if (!attr || attr->relax_domain_level < 0) {
1522 if (default_relax_domain_level < 0)
1523 return;
1524 request = default_relax_domain_level;
1525 } else
1526 request = attr->relax_domain_level;
1527
1528 if (sd->level >= request) {
1529 /* Turn off idle balance on this domain: */
1530 sd->flags &= ~(SD_BALANCE_WAKE|SD_BALANCE_NEWIDLE);
1531 }
1532 }
1533
1534 static void __sdt_free(const struct cpumask *cpu_map);
1535 static int __sdt_alloc(const struct cpumask *cpu_map);
1536
__free_domain_allocs(struct s_data * d,enum s_alloc what,const struct cpumask * cpu_map)1537 static void __free_domain_allocs(struct s_data *d, enum s_alloc what,
1538 const struct cpumask *cpu_map)
1539 {
1540 switch (what) {
1541 case sa_rootdomain:
1542 if (!atomic_read(&d->rd->refcount))
1543 free_rootdomain(&d->rd->rcu);
1544 fallthrough;
1545 case sa_sd:
1546 free_percpu(d->sd);
1547 fallthrough;
1548 case sa_sd_storage:
1549 __sdt_free(cpu_map);
1550 fallthrough;
1551 case sa_none:
1552 break;
1553 }
1554 }
1555
1556 static enum s_alloc
__visit_domain_allocation_hell(struct s_data * d,const struct cpumask * cpu_map)1557 __visit_domain_allocation_hell(struct s_data *d, const struct cpumask *cpu_map)
1558 {
1559 memset(d, 0, sizeof(*d));
1560
1561 if (__sdt_alloc(cpu_map))
1562 return sa_sd_storage;
1563 d->sd = alloc_percpu(struct sched_domain *);
1564 if (!d->sd)
1565 return sa_sd_storage;
1566 d->rd = alloc_rootdomain();
1567 if (!d->rd)
1568 return sa_sd;
1569
1570 return sa_rootdomain;
1571 }
1572
1573 /*
1574 * NULL the sd_data elements we've used to build the sched_domain and
1575 * sched_group structure so that the subsequent __free_domain_allocs()
1576 * will not free the data we're using.
1577 */
claim_allocations(int cpu,struct sched_domain * sd)1578 static void claim_allocations(int cpu, struct sched_domain *sd)
1579 {
1580 struct sd_data *sdd = sd->private;
1581
1582 WARN_ON_ONCE(*per_cpu_ptr(sdd->sd, cpu) != sd);
1583 *per_cpu_ptr(sdd->sd, cpu) = NULL;
1584
1585 if (atomic_read(&(*per_cpu_ptr(sdd->sds, cpu))->ref))
1586 *per_cpu_ptr(sdd->sds, cpu) = NULL;
1587
1588 if (atomic_read(&(*per_cpu_ptr(sdd->sg, cpu))->ref))
1589 *per_cpu_ptr(sdd->sg, cpu) = NULL;
1590
1591 if (atomic_read(&(*per_cpu_ptr(sdd->sgc, cpu))->ref))
1592 *per_cpu_ptr(sdd->sgc, cpu) = NULL;
1593 }
1594
1595 #ifdef CONFIG_NUMA
1596 enum numa_topology_type sched_numa_topology_type;
1597
1598 /*
1599 * sched_domains_numa_distance is derived from sched_numa_node_distance
1600 * and provides a simplified view of NUMA distances used specifically
1601 * for building NUMA scheduling domains.
1602 */
1603 static int sched_domains_numa_levels;
1604 static int sched_numa_node_levels;
1605
1606 int sched_max_numa_distance;
1607 static int *sched_domains_numa_distance;
1608 static int *sched_numa_node_distance;
1609 static struct cpumask ***sched_domains_numa_masks;
1610 #endif /* CONFIG_NUMA */
1611
1612 /*
1613 * SD_flags allowed in topology descriptions.
1614 *
1615 * These flags are purely descriptive of the topology and do not prescribe
1616 * behaviour. Behaviour is artificial and mapped in the below sd_init()
1617 * function. For details, see include/linux/sched/sd_flags.h.
1618 *
1619 * SD_SHARE_CPUCAPACITY
1620 * SD_SHARE_LLC
1621 * SD_CLUSTER
1622 * SD_NUMA
1623 *
1624 * Odd one out, which beside describing the topology has a quirk also
1625 * prescribes the desired behaviour that goes along with it:
1626 *
1627 * SD_ASYM_PACKING - describes SMT quirks
1628 */
1629 #define TOPOLOGY_SD_FLAGS \
1630 (SD_SHARE_CPUCAPACITY | \
1631 SD_CLUSTER | \
1632 SD_SHARE_LLC | \
1633 SD_NUMA | \
1634 SD_ASYM_PACKING)
1635
1636 static struct sched_domain *
sd_init(struct sched_domain_topology_level * tl,const struct cpumask * cpu_map,struct sched_domain * child,int cpu)1637 sd_init(struct sched_domain_topology_level *tl,
1638 const struct cpumask *cpu_map,
1639 struct sched_domain *child, int cpu)
1640 {
1641 struct sd_data *sdd = &tl->data;
1642 struct sched_domain *sd = *per_cpu_ptr(sdd->sd, cpu);
1643 int sd_id, sd_weight, sd_flags = 0;
1644 struct cpumask *sd_span;
1645
1646 sd_weight = cpumask_weight(tl->mask(tl, cpu));
1647
1648 if (tl->sd_flags)
1649 sd_flags = (*tl->sd_flags)();
1650 if (WARN_ONCE(sd_flags & ~TOPOLOGY_SD_FLAGS,
1651 "wrong sd_flags in topology description\n"))
1652 sd_flags &= TOPOLOGY_SD_FLAGS;
1653
1654 *sd = (struct sched_domain){
1655 .min_interval = sd_weight,
1656 .max_interval = 2*sd_weight,
1657 .busy_factor = 16,
1658 .imbalance_pct = 117,
1659
1660 .cache_nice_tries = 0,
1661
1662 .flags = 1*SD_BALANCE_NEWIDLE
1663 | 1*SD_BALANCE_EXEC
1664 | 1*SD_BALANCE_FORK
1665 | 0*SD_BALANCE_WAKE
1666 | 1*SD_WAKE_AFFINE
1667 | 0*SD_SHARE_CPUCAPACITY
1668 | 0*SD_SHARE_LLC
1669 | 0*SD_SERIALIZE
1670 | 1*SD_PREFER_SIBLING
1671 | 0*SD_NUMA
1672 | sd_flags
1673 ,
1674
1675 .last_balance = jiffies,
1676 .balance_interval = sd_weight,
1677
1678 /* 50% success rate */
1679 .newidle_call = 512,
1680 .newidle_success = 256,
1681 .newidle_ratio = 512,
1682
1683 .max_newidle_lb_cost = 0,
1684 .last_decay_max_lb_cost = jiffies,
1685 .child = child,
1686 .name = tl->name,
1687 };
1688
1689 sd_span = sched_domain_span(sd);
1690 cpumask_and(sd_span, cpu_map, tl->mask(tl, cpu));
1691 sd_id = cpumask_first(sd_span);
1692
1693 sd->flags |= asym_cpu_capacity_classify(sd_span, cpu_map);
1694
1695 WARN_ONCE((sd->flags & (SD_SHARE_CPUCAPACITY | SD_ASYM_CPUCAPACITY)) ==
1696 (SD_SHARE_CPUCAPACITY | SD_ASYM_CPUCAPACITY),
1697 "CPU capacity asymmetry not supported on SMT\n");
1698
1699 /*
1700 * Convert topological properties into behaviour.
1701 */
1702 /* Don't attempt to spread across CPUs of different capacities. */
1703 if ((sd->flags & SD_ASYM_CPUCAPACITY) && sd->child)
1704 sd->child->flags &= ~SD_PREFER_SIBLING;
1705
1706 if (sd->flags & SD_SHARE_CPUCAPACITY) {
1707 sd->imbalance_pct = 110;
1708
1709 } else if (sd->flags & SD_SHARE_LLC) {
1710 sd->imbalance_pct = 117;
1711 sd->cache_nice_tries = 1;
1712
1713 #ifdef CONFIG_NUMA
1714 } else if (sd->flags & SD_NUMA) {
1715 sd->cache_nice_tries = 2;
1716
1717 sd->flags &= ~SD_PREFER_SIBLING;
1718 sd->flags |= SD_SERIALIZE;
1719 if (sched_domains_numa_distance[tl->numa_level] > node_reclaim_distance) {
1720 sd->flags &= ~(SD_BALANCE_EXEC |
1721 SD_BALANCE_FORK |
1722 SD_WAKE_AFFINE);
1723 }
1724
1725 #endif /* CONFIG_NUMA */
1726 } else {
1727 sd->cache_nice_tries = 1;
1728 }
1729
1730 /*
1731 * For all levels sharing cache; connect a sched_domain_shared
1732 * instance.
1733 */
1734 if (sd->flags & SD_SHARE_LLC) {
1735 sd->shared = *per_cpu_ptr(sdd->sds, sd_id);
1736 atomic_inc(&sd->shared->ref);
1737 atomic_set(&sd->shared->nr_busy_cpus, sd_weight);
1738 }
1739
1740 sd->private = sdd;
1741
1742 return sd;
1743 }
1744
1745 #ifdef CONFIG_SCHED_SMT
cpu_smt_flags(void)1746 int cpu_smt_flags(void)
1747 {
1748 return SD_SHARE_CPUCAPACITY | SD_SHARE_LLC;
1749 }
1750
tl_smt_mask(struct sched_domain_topology_level * tl,int cpu)1751 const struct cpumask *tl_smt_mask(struct sched_domain_topology_level *tl, int cpu)
1752 {
1753 return cpu_smt_mask(cpu);
1754 }
1755 #endif
1756
1757 #ifdef CONFIG_SCHED_CLUSTER
cpu_cluster_flags(void)1758 int cpu_cluster_flags(void)
1759 {
1760 return SD_CLUSTER | SD_SHARE_LLC;
1761 }
1762
tl_cls_mask(struct sched_domain_topology_level * tl,int cpu)1763 const struct cpumask *tl_cls_mask(struct sched_domain_topology_level *tl, int cpu)
1764 {
1765 return cpu_clustergroup_mask(cpu);
1766 }
1767 #endif
1768
1769 #ifdef CONFIG_SCHED_MC
cpu_core_flags(void)1770 int cpu_core_flags(void)
1771 {
1772 return SD_SHARE_LLC;
1773 }
1774
tl_mc_mask(struct sched_domain_topology_level * tl,int cpu)1775 const struct cpumask *tl_mc_mask(struct sched_domain_topology_level *tl, int cpu)
1776 {
1777 return cpu_coregroup_mask(cpu);
1778 }
1779 #endif
1780
tl_pkg_mask(struct sched_domain_topology_level * tl,int cpu)1781 const struct cpumask *tl_pkg_mask(struct sched_domain_topology_level *tl, int cpu)
1782 {
1783 return cpu_node_mask(cpu);
1784 }
1785
1786 /*
1787 * Topology list, bottom-up.
1788 */
1789 static struct sched_domain_topology_level default_topology[] = {
1790 #ifdef CONFIG_SCHED_SMT
1791 SDTL_INIT(tl_smt_mask, cpu_smt_flags, SMT),
1792 #endif
1793
1794 #ifdef CONFIG_SCHED_CLUSTER
1795 SDTL_INIT(tl_cls_mask, cpu_cluster_flags, CLS),
1796 #endif
1797
1798 #ifdef CONFIG_SCHED_MC
1799 SDTL_INIT(tl_mc_mask, cpu_core_flags, MC),
1800 #endif
1801 SDTL_INIT(tl_pkg_mask, NULL, PKG),
1802 { NULL, },
1803 };
1804
1805 static struct sched_domain_topology_level *sched_domain_topology =
1806 default_topology;
1807 static struct sched_domain_topology_level *sched_domain_topology_saved;
1808
1809 #define for_each_sd_topology(tl) \
1810 for (tl = sched_domain_topology; tl->mask; tl++)
1811
set_sched_topology(struct sched_domain_topology_level * tl)1812 void __init set_sched_topology(struct sched_domain_topology_level *tl)
1813 {
1814 if (WARN_ON_ONCE(sched_smp_initialized))
1815 return;
1816
1817 sched_domain_topology = tl;
1818 sched_domain_topology_saved = NULL;
1819 }
1820
1821 #ifdef CONFIG_NUMA
cpu_numa_flags(void)1822 static int cpu_numa_flags(void)
1823 {
1824 return SD_NUMA;
1825 }
1826
sd_numa_mask(struct sched_domain_topology_level * tl,int cpu)1827 static const struct cpumask *sd_numa_mask(struct sched_domain_topology_level *tl, int cpu)
1828 {
1829 return sched_domains_numa_masks[tl->numa_level][cpu_to_node(cpu)];
1830 }
1831
sched_numa_warn(const char * str)1832 static void sched_numa_warn(const char *str)
1833 {
1834 static int done = false;
1835 int i,j;
1836
1837 if (done)
1838 return;
1839
1840 done = true;
1841
1842 printk(KERN_WARNING "ERROR: %s\n\n", str);
1843
1844 for (i = 0; i < nr_node_ids; i++) {
1845 printk(KERN_WARNING " ");
1846 for (j = 0; j < nr_node_ids; j++) {
1847 if (!node_state(i, N_CPU) || !node_state(j, N_CPU))
1848 printk(KERN_CONT "(%02d) ", node_distance(i,j));
1849 else
1850 printk(KERN_CONT " %02d ", node_distance(i,j));
1851 }
1852 printk(KERN_CONT "\n");
1853 }
1854 printk(KERN_WARNING "\n");
1855 }
1856
find_numa_distance(int distance)1857 bool find_numa_distance(int distance)
1858 {
1859 bool found = false;
1860 int i, *distances;
1861
1862 if (distance == node_distance(0, 0))
1863 return true;
1864
1865 rcu_read_lock();
1866 distances = rcu_dereference(sched_numa_node_distance);
1867 if (!distances)
1868 goto unlock;
1869 for (i = 0; i < sched_numa_node_levels; i++) {
1870 if (distances[i] == distance) {
1871 found = true;
1872 break;
1873 }
1874 }
1875 unlock:
1876 rcu_read_unlock();
1877
1878 return found;
1879 }
1880
1881 #define for_each_cpu_node_but(n, nbut) \
1882 for_each_node_state(n, N_CPU) \
1883 if (n == nbut) \
1884 continue; \
1885 else
1886
1887 /*
1888 * A system can have three types of NUMA topology:
1889 * NUMA_DIRECT: all nodes are directly connected, or not a NUMA system
1890 * NUMA_GLUELESS_MESH: some nodes reachable through intermediary nodes
1891 * NUMA_BACKPLANE: nodes can reach other nodes through a backplane
1892 *
1893 * The difference between a glueless mesh topology and a backplane
1894 * topology lies in whether communication between not directly
1895 * connected nodes goes through intermediary nodes (where programs
1896 * could run), or through backplane controllers. This affects
1897 * placement of programs.
1898 *
1899 * The type of topology can be discerned with the following tests:
1900 * - If the maximum distance between any nodes is 1 hop, the system
1901 * is directly connected.
1902 * - If for two nodes A and B, located N > 1 hops away from each other,
1903 * there is an intermediary node C, which is < N hops away from both
1904 * nodes A and B, the system is a glueless mesh.
1905 */
init_numa_topology_type(int offline_node)1906 static void init_numa_topology_type(int offline_node)
1907 {
1908 int a, b, c, n;
1909
1910 n = sched_max_numa_distance;
1911
1912 if (sched_domains_numa_levels <= 2) {
1913 sched_numa_topology_type = NUMA_DIRECT;
1914 return;
1915 }
1916
1917 for_each_cpu_node_but(a, offline_node) {
1918 for_each_cpu_node_but(b, offline_node) {
1919 /* Find two nodes furthest removed from each other. */
1920 if (node_distance(a, b) < n)
1921 continue;
1922
1923 /* Is there an intermediary node between a and b? */
1924 for_each_cpu_node_but(c, offline_node) {
1925 if (node_distance(a, c) < n &&
1926 node_distance(b, c) < n) {
1927 sched_numa_topology_type =
1928 NUMA_GLUELESS_MESH;
1929 return;
1930 }
1931 }
1932
1933 sched_numa_topology_type = NUMA_BACKPLANE;
1934 return;
1935 }
1936 }
1937
1938 pr_err("Failed to find a NUMA topology type, defaulting to DIRECT\n");
1939 sched_numa_topology_type = NUMA_DIRECT;
1940 }
1941
1942
1943 #define NR_DISTANCE_VALUES (1 << DISTANCE_BITS)
1944
1945 /*
1946 * An architecture could modify its NUMA distance, to change
1947 * grouping of NUMA nodes and number of NUMA levels when creating
1948 * NUMA level sched domains.
1949 *
1950 * A NUMA level is created for each unique
1951 * arch_sched_node_distance.
1952 */
numa_node_dist(int i,int j)1953 static int numa_node_dist(int i, int j)
1954 {
1955 return node_distance(i, j);
1956 }
1957
1958 int arch_sched_node_distance(int from, int to)
1959 __weak __alias(numa_node_dist);
1960
modified_sched_node_distance(void)1961 static bool modified_sched_node_distance(void)
1962 {
1963 return numa_node_dist != arch_sched_node_distance;
1964 }
1965
sched_record_numa_dist(int offline_node,int (* n_dist)(int,int),int ** dist,int * levels)1966 static int sched_record_numa_dist(int offline_node, int (*n_dist)(int, int),
1967 int **dist, int *levels)
1968 {
1969 unsigned long *distance_map __free(bitmap) = NULL;
1970 int nr_levels = 0;
1971 int i, j;
1972 int *distances;
1973
1974 /*
1975 * O(nr_nodes^2) de-duplicating selection sort -- in order to find the
1976 * unique distances in the node_distance() table.
1977 */
1978 distance_map = bitmap_alloc(NR_DISTANCE_VALUES, GFP_KERNEL);
1979 if (!distance_map)
1980 return -ENOMEM;
1981
1982 bitmap_zero(distance_map, NR_DISTANCE_VALUES);
1983 for_each_cpu_node_but(i, offline_node) {
1984 for_each_cpu_node_but(j, offline_node) {
1985 int distance = n_dist(i, j);
1986
1987 if (distance < LOCAL_DISTANCE || distance >= NR_DISTANCE_VALUES) {
1988 sched_numa_warn("Invalid distance value range");
1989 return -EINVAL;
1990 }
1991
1992 bitmap_set(distance_map, distance, 1);
1993 }
1994 }
1995 /*
1996 * We can now figure out how many unique distance values there are and
1997 * allocate memory accordingly.
1998 */
1999 nr_levels = bitmap_weight(distance_map, NR_DISTANCE_VALUES);
2000
2001 distances = kzalloc_objs(int, nr_levels);
2002 if (!distances)
2003 return -ENOMEM;
2004
2005 for (i = 0, j = 0; i < nr_levels; i++, j++) {
2006 j = find_next_bit(distance_map, NR_DISTANCE_VALUES, j);
2007 distances[i] = j;
2008 }
2009 *dist = distances;
2010 *levels = nr_levels;
2011
2012 return 0;
2013 }
2014
sched_init_numa(int offline_node)2015 void sched_init_numa(int offline_node)
2016 {
2017 struct sched_domain_topology_level *tl;
2018 int nr_levels, nr_node_levels;
2019 int i, j;
2020 int *distances, *domain_distances;
2021 struct cpumask ***masks;
2022
2023 /* Record the NUMA distances from SLIT table */
2024 if (sched_record_numa_dist(offline_node, numa_node_dist, &distances,
2025 &nr_node_levels))
2026 return;
2027
2028 /* Record modified NUMA distances for building sched domains */
2029 if (modified_sched_node_distance()) {
2030 if (sched_record_numa_dist(offline_node, arch_sched_node_distance,
2031 &domain_distances, &nr_levels)) {
2032 kfree(distances);
2033 return;
2034 }
2035 } else {
2036 domain_distances = distances;
2037 nr_levels = nr_node_levels;
2038 }
2039 rcu_assign_pointer(sched_numa_node_distance, distances);
2040 WRITE_ONCE(sched_max_numa_distance, distances[nr_node_levels - 1]);
2041 WRITE_ONCE(sched_numa_node_levels, nr_node_levels);
2042
2043 /*
2044 * 'nr_levels' contains the number of unique distances
2045 *
2046 * The sched_domains_numa_distance[] array includes the actual distance
2047 * numbers.
2048 */
2049
2050 /*
2051 * Here, we should temporarily reset sched_domains_numa_levels to 0.
2052 * If it fails to allocate memory for array sched_domains_numa_masks[][],
2053 * the array will contain less then 'nr_levels' members. This could be
2054 * dangerous when we use it to iterate array sched_domains_numa_masks[][]
2055 * in other functions.
2056 *
2057 * We reset it to 'nr_levels' at the end of this function.
2058 */
2059 rcu_assign_pointer(sched_domains_numa_distance, domain_distances);
2060
2061 sched_domains_numa_levels = 0;
2062
2063 masks = kzalloc(sizeof(void *) * nr_levels, GFP_KERNEL);
2064 if (!masks)
2065 return;
2066
2067 /*
2068 * Now for each level, construct a mask per node which contains all
2069 * CPUs of nodes that are that many hops away from us.
2070 */
2071 for (i = 0; i < nr_levels; i++) {
2072 masks[i] = kzalloc(nr_node_ids * sizeof(void *), GFP_KERNEL);
2073 if (!masks[i])
2074 return;
2075
2076 for_each_cpu_node_but(j, offline_node) {
2077 struct cpumask *mask = kzalloc(cpumask_size(), GFP_KERNEL);
2078 int k;
2079
2080 if (!mask)
2081 return;
2082
2083 masks[i][j] = mask;
2084
2085 for_each_cpu_node_but(k, offline_node) {
2086 if (sched_debug() &&
2087 (arch_sched_node_distance(j, k) !=
2088 arch_sched_node_distance(k, j)))
2089 sched_numa_warn("Node-distance not symmetric");
2090
2091 if (arch_sched_node_distance(j, k) >
2092 sched_domains_numa_distance[i])
2093 continue;
2094
2095 cpumask_or(mask, mask, cpumask_of_node(k));
2096 }
2097 }
2098 }
2099 rcu_assign_pointer(sched_domains_numa_masks, masks);
2100
2101 /* Compute default topology size */
2102 for (i = 0; sched_domain_topology[i].mask; i++);
2103
2104 tl = kzalloc((i + nr_levels + 1) *
2105 sizeof(struct sched_domain_topology_level), GFP_KERNEL);
2106 if (!tl)
2107 return;
2108
2109 /*
2110 * Copy the default topology bits..
2111 */
2112 for (i = 0; sched_domain_topology[i].mask; i++)
2113 tl[i] = sched_domain_topology[i];
2114
2115 /*
2116 * Add the NUMA identity distance, aka single NODE.
2117 */
2118 tl[i++] = SDTL_INIT(sd_numa_mask, NULL, NODE);
2119
2120 /*
2121 * .. and append 'j' levels of NUMA goodness.
2122 */
2123 for (j = 1; j < nr_levels; i++, j++) {
2124 tl[i] = SDTL_INIT(sd_numa_mask, cpu_numa_flags, NUMA);
2125 tl[i].numa_level = j;
2126 }
2127
2128 sched_domain_topology_saved = sched_domain_topology;
2129 sched_domain_topology = tl;
2130
2131 sched_domains_numa_levels = nr_levels;
2132
2133 init_numa_topology_type(offline_node);
2134 }
2135
2136
sched_reset_numa(void)2137 static void sched_reset_numa(void)
2138 {
2139 int nr_levels, *distances, *dom_distances = NULL;
2140 struct cpumask ***masks;
2141
2142 nr_levels = sched_domains_numa_levels;
2143 sched_numa_node_levels = 0;
2144 sched_domains_numa_levels = 0;
2145 sched_max_numa_distance = 0;
2146 sched_numa_topology_type = NUMA_DIRECT;
2147 distances = sched_numa_node_distance;
2148 if (sched_numa_node_distance != sched_domains_numa_distance)
2149 dom_distances = sched_domains_numa_distance;
2150 rcu_assign_pointer(sched_numa_node_distance, NULL);
2151 rcu_assign_pointer(sched_domains_numa_distance, NULL);
2152 masks = sched_domains_numa_masks;
2153 rcu_assign_pointer(sched_domains_numa_masks, NULL);
2154 if (distances || masks) {
2155 int i, j;
2156
2157 synchronize_rcu();
2158 kfree(distances);
2159 kfree(dom_distances);
2160 for (i = 0; i < nr_levels && masks; i++) {
2161 if (!masks[i])
2162 continue;
2163 for_each_node(j)
2164 kfree(masks[i][j]);
2165 kfree(masks[i]);
2166 }
2167 kfree(masks);
2168 }
2169 if (sched_domain_topology_saved) {
2170 kfree(sched_domain_topology);
2171 sched_domain_topology = sched_domain_topology_saved;
2172 sched_domain_topology_saved = NULL;
2173 }
2174 }
2175
2176 /*
2177 * Call with hotplug lock held
2178 */
sched_update_numa(int cpu,bool online)2179 void sched_update_numa(int cpu, bool online)
2180 {
2181 int node;
2182
2183 node = cpu_to_node(cpu);
2184 /*
2185 * Scheduler NUMA topology is updated when the first CPU of a
2186 * node is onlined or the last CPU of a node is offlined.
2187 */
2188 if (cpumask_weight(cpumask_of_node(node)) != 1)
2189 return;
2190
2191 sched_reset_numa();
2192 sched_init_numa(online ? NUMA_NO_NODE : node);
2193 }
2194
sched_domains_numa_masks_set(unsigned int cpu)2195 void sched_domains_numa_masks_set(unsigned int cpu)
2196 {
2197 int node = cpu_to_node(cpu);
2198 int i, j;
2199
2200 for (i = 0; i < sched_domains_numa_levels; i++) {
2201 for (j = 0; j < nr_node_ids; j++) {
2202 if (!node_state(j, N_CPU))
2203 continue;
2204
2205 /* Set ourselves in the remote node's masks */
2206 if (arch_sched_node_distance(j, node) <=
2207 sched_domains_numa_distance[i])
2208 cpumask_set_cpu(cpu, sched_domains_numa_masks[i][j]);
2209 }
2210 }
2211 }
2212
sched_domains_numa_masks_clear(unsigned int cpu)2213 void sched_domains_numa_masks_clear(unsigned int cpu)
2214 {
2215 int i, j;
2216
2217 for (i = 0; i < sched_domains_numa_levels; i++) {
2218 for (j = 0; j < nr_node_ids; j++) {
2219 if (sched_domains_numa_masks[i][j])
2220 cpumask_clear_cpu(cpu, sched_domains_numa_masks[i][j]);
2221 }
2222 }
2223 }
2224
2225 /*
2226 * sched_numa_find_closest() - given the NUMA topology, find the cpu
2227 * closest to @cpu from @cpumask.
2228 * cpumask: cpumask to find a cpu from
2229 * cpu: cpu to be close to
2230 *
2231 * returns: cpu, or nr_cpu_ids when nothing found.
2232 */
sched_numa_find_closest(const struct cpumask * cpus,int cpu)2233 int sched_numa_find_closest(const struct cpumask *cpus, int cpu)
2234 {
2235 int i, j = cpu_to_node(cpu), found = nr_cpu_ids;
2236 struct cpumask ***masks;
2237
2238 rcu_read_lock();
2239 masks = rcu_dereference(sched_domains_numa_masks);
2240 if (!masks)
2241 goto unlock;
2242 for (i = 0; i < sched_domains_numa_levels; i++) {
2243 if (!masks[i][j])
2244 break;
2245 cpu = cpumask_any_and_distribute(cpus, masks[i][j]);
2246 if (cpu < nr_cpu_ids) {
2247 found = cpu;
2248 break;
2249 }
2250 }
2251 unlock:
2252 rcu_read_unlock();
2253
2254 return found;
2255 }
2256
2257 struct __cmp_key {
2258 const struct cpumask *cpus;
2259 struct cpumask ***masks;
2260 int node;
2261 int cpu;
2262 int w;
2263 };
2264
hop_cmp(const void * a,const void * b)2265 static int hop_cmp(const void *a, const void *b)
2266 {
2267 struct cpumask **prev_hop, **cur_hop = *(struct cpumask ***)b;
2268 struct __cmp_key *k = (struct __cmp_key *)a;
2269
2270 if (cpumask_weight_and(k->cpus, cur_hop[k->node]) <= k->cpu)
2271 return 1;
2272
2273 if (b == k->masks) {
2274 k->w = 0;
2275 return 0;
2276 }
2277
2278 prev_hop = *((struct cpumask ***)b - 1);
2279 k->w = cpumask_weight_and(k->cpus, prev_hop[k->node]);
2280 if (k->w <= k->cpu)
2281 return 0;
2282
2283 return -1;
2284 }
2285
2286 /**
2287 * sched_numa_find_nth_cpu() - given the NUMA topology, find the Nth closest CPU
2288 * from @cpus to @cpu, taking into account distance
2289 * from a given @node.
2290 * @cpus: cpumask to find a cpu from
2291 * @cpu: CPU to start searching
2292 * @node: NUMA node to order CPUs by distance
2293 *
2294 * Return: cpu, or nr_cpu_ids when nothing found.
2295 */
sched_numa_find_nth_cpu(const struct cpumask * cpus,int cpu,int node)2296 int sched_numa_find_nth_cpu(const struct cpumask *cpus, int cpu, int node)
2297 {
2298 struct __cmp_key k = { .cpus = cpus, .cpu = cpu };
2299 struct cpumask ***hop_masks;
2300 int hop, ret = nr_cpu_ids;
2301
2302 if (node == NUMA_NO_NODE)
2303 return cpumask_nth_and(cpu, cpus, cpu_online_mask);
2304
2305 rcu_read_lock();
2306
2307 /* CPU-less node entries are uninitialized in sched_domains_numa_masks */
2308 node = numa_nearest_node(node, N_CPU);
2309 k.node = node;
2310
2311 k.masks = rcu_dereference(sched_domains_numa_masks);
2312 if (!k.masks)
2313 goto unlock;
2314
2315 hop_masks = bsearch(&k, k.masks, sched_domains_numa_levels, sizeof(k.masks[0]), hop_cmp);
2316 if (!hop_masks)
2317 goto unlock;
2318 hop = hop_masks - k.masks;
2319
2320 ret = hop ?
2321 cpumask_nth_and_andnot(cpu - k.w, cpus, k.masks[hop][node], k.masks[hop-1][node]) :
2322 cpumask_nth_and(cpu, cpus, k.masks[0][node]);
2323 unlock:
2324 rcu_read_unlock();
2325 return ret;
2326 }
2327 EXPORT_SYMBOL_GPL(sched_numa_find_nth_cpu);
2328
2329 /**
2330 * sched_numa_hop_mask() - Get the cpumask of CPUs at most @hops hops away from
2331 * @node
2332 * @node: The node to count hops from.
2333 * @hops: Include CPUs up to that many hops away. 0 means local node.
2334 *
2335 * Return: On success, a pointer to a cpumask of CPUs at most @hops away from
2336 * @node, an error value otherwise.
2337 *
2338 * Requires rcu_lock to be held. Returned cpumask is only valid within that
2339 * read-side section, copy it if required beyond that.
2340 *
2341 * Note that not all hops are equal in distance; see sched_init_numa() for how
2342 * distances and masks are handled.
2343 * Also note that this is a reflection of sched_domains_numa_masks, which may change
2344 * during the lifetime of the system (offline nodes are taken out of the masks).
2345 */
sched_numa_hop_mask(unsigned int node,unsigned int hops)2346 const struct cpumask *sched_numa_hop_mask(unsigned int node, unsigned int hops)
2347 {
2348 struct cpumask ***masks;
2349
2350 if (node >= nr_node_ids || hops >= sched_domains_numa_levels)
2351 return ERR_PTR(-EINVAL);
2352
2353 masks = rcu_dereference(sched_domains_numa_masks);
2354 if (!masks)
2355 return ERR_PTR(-EBUSY);
2356
2357 return masks[hops][node];
2358 }
2359 EXPORT_SYMBOL_GPL(sched_numa_hop_mask);
2360
2361 #endif /* CONFIG_NUMA */
2362
__sdt_alloc(const struct cpumask * cpu_map)2363 static int __sdt_alloc(const struct cpumask *cpu_map)
2364 {
2365 struct sched_domain_topology_level *tl;
2366 int j;
2367
2368 for_each_sd_topology(tl) {
2369 struct sd_data *sdd = &tl->data;
2370
2371 sdd->sd = alloc_percpu(struct sched_domain *);
2372 if (!sdd->sd)
2373 return -ENOMEM;
2374
2375 sdd->sds = alloc_percpu(struct sched_domain_shared *);
2376 if (!sdd->sds)
2377 return -ENOMEM;
2378
2379 sdd->sg = alloc_percpu(struct sched_group *);
2380 if (!sdd->sg)
2381 return -ENOMEM;
2382
2383 sdd->sgc = alloc_percpu(struct sched_group_capacity *);
2384 if (!sdd->sgc)
2385 return -ENOMEM;
2386
2387 for_each_cpu(j, cpu_map) {
2388 struct sched_domain *sd;
2389 struct sched_domain_shared *sds;
2390 struct sched_group *sg;
2391 struct sched_group_capacity *sgc;
2392
2393 sd = kzalloc_node(sizeof(struct sched_domain) + cpumask_size(),
2394 GFP_KERNEL, cpu_to_node(j));
2395 if (!sd)
2396 return -ENOMEM;
2397
2398 *per_cpu_ptr(sdd->sd, j) = sd;
2399
2400 sds = kzalloc_node(sizeof(struct sched_domain_shared),
2401 GFP_KERNEL, cpu_to_node(j));
2402 if (!sds)
2403 return -ENOMEM;
2404
2405 *per_cpu_ptr(sdd->sds, j) = sds;
2406
2407 sg = kzalloc_node(sizeof(struct sched_group) + cpumask_size(),
2408 GFP_KERNEL, cpu_to_node(j));
2409 if (!sg)
2410 return -ENOMEM;
2411
2412 sg->next = sg;
2413
2414 *per_cpu_ptr(sdd->sg, j) = sg;
2415
2416 sgc = kzalloc_node(sizeof(struct sched_group_capacity) + cpumask_size(),
2417 GFP_KERNEL, cpu_to_node(j));
2418 if (!sgc)
2419 return -ENOMEM;
2420
2421 sgc->id = j;
2422
2423 *per_cpu_ptr(sdd->sgc, j) = sgc;
2424 }
2425 }
2426
2427 return 0;
2428 }
2429
__sdt_free(const struct cpumask * cpu_map)2430 static void __sdt_free(const struct cpumask *cpu_map)
2431 {
2432 struct sched_domain_topology_level *tl;
2433 int j;
2434
2435 for_each_sd_topology(tl) {
2436 struct sd_data *sdd = &tl->data;
2437
2438 for_each_cpu(j, cpu_map) {
2439 struct sched_domain *sd;
2440
2441 if (sdd->sd) {
2442 sd = *per_cpu_ptr(sdd->sd, j);
2443 if (sd && (sd->flags & SD_NUMA))
2444 free_sched_groups(sd->groups, 0);
2445 kfree(*per_cpu_ptr(sdd->sd, j));
2446 }
2447
2448 if (sdd->sds)
2449 kfree(*per_cpu_ptr(sdd->sds, j));
2450 if (sdd->sg)
2451 kfree(*per_cpu_ptr(sdd->sg, j));
2452 if (sdd->sgc)
2453 kfree(*per_cpu_ptr(sdd->sgc, j));
2454 }
2455 free_percpu(sdd->sd);
2456 sdd->sd = NULL;
2457 free_percpu(sdd->sds);
2458 sdd->sds = NULL;
2459 free_percpu(sdd->sg);
2460 sdd->sg = NULL;
2461 free_percpu(sdd->sgc);
2462 sdd->sgc = NULL;
2463 }
2464 }
2465
build_sched_domain(struct sched_domain_topology_level * tl,const struct cpumask * cpu_map,struct sched_domain_attr * attr,struct sched_domain * child,int cpu)2466 static struct sched_domain *build_sched_domain(struct sched_domain_topology_level *tl,
2467 const struct cpumask *cpu_map, struct sched_domain_attr *attr,
2468 struct sched_domain *child, int cpu)
2469 {
2470 struct sched_domain *sd = sd_init(tl, cpu_map, child, cpu);
2471
2472 if (child) {
2473 sd->level = child->level + 1;
2474 sched_domain_level_max = max(sched_domain_level_max, sd->level);
2475 child->parent = sd;
2476
2477 if (!cpumask_subset(sched_domain_span(child),
2478 sched_domain_span(sd))) {
2479 pr_err("BUG: arch topology borken\n");
2480 pr_err(" the %s domain not a subset of the %s domain\n",
2481 child->name, sd->name);
2482 /* Fixup, ensure @sd has at least @child CPUs. */
2483 cpumask_or(sched_domain_span(sd),
2484 sched_domain_span(sd),
2485 sched_domain_span(child));
2486 }
2487
2488 }
2489 set_domain_attribute(sd, attr);
2490
2491 return sd;
2492 }
2493
2494 /*
2495 * Ensure topology masks are sane, i.e. there are no conflicts (overlaps) for
2496 * any two given CPUs on non-NUMA topology levels.
2497 */
topology_span_sane(const struct cpumask * cpu_map)2498 static bool topology_span_sane(const struct cpumask *cpu_map)
2499 {
2500 struct sched_domain_topology_level *tl;
2501 struct cpumask *covered, *id_seen;
2502 int cpu;
2503
2504 lockdep_assert_held(&sched_domains_mutex);
2505 covered = sched_domains_tmpmask;
2506 id_seen = sched_domains_tmpmask2;
2507
2508 for_each_sd_topology(tl) {
2509 int tl_common_flags = 0;
2510
2511 if (tl->sd_flags)
2512 tl_common_flags = (*tl->sd_flags)();
2513
2514 /* NUMA levels are allowed to overlap */
2515 if (tl_common_flags & SD_NUMA)
2516 continue;
2517
2518 cpumask_clear(covered);
2519 cpumask_clear(id_seen);
2520
2521 /*
2522 * Non-NUMA levels cannot partially overlap - they must be either
2523 * completely equal or completely disjoint. Otherwise we can end up
2524 * breaking the sched_group lists - i.e. a later get_group() pass
2525 * breaks the linking done for an earlier span.
2526 */
2527 for_each_cpu(cpu, cpu_map) {
2528 const struct cpumask *tl_cpu_mask = tl->mask(tl, cpu);
2529 int id;
2530
2531 /* lowest bit set in this mask is used as a unique id */
2532 id = cpumask_first(tl_cpu_mask);
2533
2534 if (cpumask_test_cpu(id, id_seen)) {
2535 /* First CPU has already been seen, ensure identical spans */
2536 if (!cpumask_equal(tl->mask(tl, id), tl_cpu_mask))
2537 return false;
2538 } else {
2539 /* First CPU hasn't been seen before, ensure it's a completely new span */
2540 if (cpumask_intersects(tl_cpu_mask, covered))
2541 return false;
2542
2543 cpumask_or(covered, covered, tl_cpu_mask);
2544 cpumask_set_cpu(id, id_seen);
2545 }
2546 }
2547 }
2548 return true;
2549 }
2550
2551 /*
2552 * Build sched domains for a given set of CPUs and attach the sched domains
2553 * to the individual CPUs
2554 */
2555 static int
build_sched_domains(const struct cpumask * cpu_map,struct sched_domain_attr * attr)2556 build_sched_domains(const struct cpumask *cpu_map, struct sched_domain_attr *attr)
2557 {
2558 enum s_alloc alloc_state = sa_none;
2559 struct sched_domain *sd;
2560 struct s_data d;
2561 struct rq *rq = NULL;
2562 int i, ret = -ENOMEM;
2563 bool has_asym = false;
2564 bool has_cluster = false;
2565
2566 if (WARN_ON(cpumask_empty(cpu_map)))
2567 goto error;
2568
2569 alloc_state = __visit_domain_allocation_hell(&d, cpu_map);
2570 if (alloc_state != sa_rootdomain)
2571 goto error;
2572
2573 /* Set up domains for CPUs specified by the cpu_map: */
2574 for_each_cpu(i, cpu_map) {
2575 struct sched_domain_topology_level *tl;
2576
2577 sd = NULL;
2578 for_each_sd_topology(tl) {
2579
2580 sd = build_sched_domain(tl, cpu_map, attr, sd, i);
2581
2582 has_asym |= sd->flags & SD_ASYM_CPUCAPACITY;
2583
2584 if (tl == sched_domain_topology)
2585 *per_cpu_ptr(d.sd, i) = sd;
2586 if (cpumask_equal(cpu_map, sched_domain_span(sd)))
2587 break;
2588 }
2589 }
2590
2591 if (WARN_ON(!topology_span_sane(cpu_map)))
2592 goto error;
2593
2594 /* Build the groups for the domains */
2595 for_each_cpu(i, cpu_map) {
2596 for (sd = *per_cpu_ptr(d.sd, i); sd; sd = sd->parent) {
2597 sd->span_weight = cpumask_weight(sched_domain_span(sd));
2598 if (sd->flags & SD_NUMA) {
2599 if (build_overlap_sched_groups(sd, i))
2600 goto error;
2601 } else {
2602 if (build_sched_groups(sd, i))
2603 goto error;
2604 }
2605 }
2606 }
2607
2608 /*
2609 * Calculate an allowed NUMA imbalance such that LLCs do not get
2610 * imbalanced.
2611 */
2612 for_each_cpu(i, cpu_map) {
2613 unsigned int imb = 0;
2614 unsigned int imb_span = 1;
2615
2616 for (sd = *per_cpu_ptr(d.sd, i); sd; sd = sd->parent) {
2617 struct sched_domain *child = sd->child;
2618
2619 if (!(sd->flags & SD_SHARE_LLC) && child &&
2620 (child->flags & SD_SHARE_LLC)) {
2621 struct sched_domain __rcu *top_p;
2622 unsigned int nr_llcs;
2623
2624 /*
2625 * For a single LLC per node, allow an
2626 * imbalance up to 12.5% of the node. This is
2627 * arbitrary cutoff based two factors -- SMT and
2628 * memory channels. For SMT-2, the intent is to
2629 * avoid premature sharing of HT resources but
2630 * SMT-4 or SMT-8 *may* benefit from a different
2631 * cutoff. For memory channels, this is a very
2632 * rough estimate of how many channels may be
2633 * active and is based on recent CPUs with
2634 * many cores.
2635 *
2636 * For multiple LLCs, allow an imbalance
2637 * until multiple tasks would share an LLC
2638 * on one node while LLCs on another node
2639 * remain idle. This assumes that there are
2640 * enough logical CPUs per LLC to avoid SMT
2641 * factors and that there is a correlation
2642 * between LLCs and memory channels.
2643 */
2644 nr_llcs = sd->span_weight / child->span_weight;
2645 if (nr_llcs == 1)
2646 imb = sd->span_weight >> 3;
2647 else
2648 imb = nr_llcs;
2649 imb = max(1U, imb);
2650 sd->imb_numa_nr = imb;
2651
2652 /* Set span based on the first NUMA domain. */
2653 top_p = sd->parent;
2654 while (top_p && !(top_p->flags & SD_NUMA)) {
2655 top_p = top_p->parent;
2656 }
2657 imb_span = top_p ? top_p->span_weight : sd->span_weight;
2658 } else {
2659 int factor = max(1U, (sd->span_weight / imb_span));
2660
2661 sd->imb_numa_nr = imb * factor;
2662 }
2663 }
2664 }
2665
2666 /* Calculate CPU capacity for physical packages and nodes */
2667 for (i = nr_cpumask_bits-1; i >= 0; i--) {
2668 if (!cpumask_test_cpu(i, cpu_map))
2669 continue;
2670
2671 for (sd = *per_cpu_ptr(d.sd, i); sd; sd = sd->parent) {
2672 claim_allocations(i, sd);
2673 init_sched_groups_capacity(i, sd);
2674 }
2675 }
2676
2677 /* Attach the domains */
2678 rcu_read_lock();
2679 for_each_cpu(i, cpu_map) {
2680 rq = cpu_rq(i);
2681 sd = *per_cpu_ptr(d.sd, i);
2682
2683 cpu_attach_domain(sd, d.rd, i);
2684
2685 if (lowest_flag_domain(i, SD_CLUSTER))
2686 has_cluster = true;
2687 }
2688 rcu_read_unlock();
2689
2690 if (has_asym)
2691 static_branch_inc_cpuslocked(&sched_asym_cpucapacity);
2692
2693 if (has_cluster)
2694 static_branch_inc_cpuslocked(&sched_cluster_active);
2695
2696 if (rq && sched_debug_verbose)
2697 pr_info("root domain span: %*pbl\n", cpumask_pr_args(cpu_map));
2698
2699 ret = 0;
2700 error:
2701 __free_domain_allocs(&d, alloc_state, cpu_map);
2702
2703 return ret;
2704 }
2705
2706 /* Current sched domains: */
2707 static cpumask_var_t *doms_cur;
2708
2709 /* Number of sched domains in 'doms_cur': */
2710 static int ndoms_cur;
2711
2712 /* Attributes of custom domains in 'doms_cur' */
2713 static struct sched_domain_attr *dattr_cur;
2714
2715 /*
2716 * Special case: If a kmalloc() of a doms_cur partition (array of
2717 * cpumask) fails, then fallback to a single sched domain,
2718 * as determined by the single cpumask fallback_doms.
2719 */
2720 static cpumask_var_t fallback_doms;
2721
2722 /*
2723 * arch_update_cpu_topology lets virtualized architectures update the
2724 * CPU core maps. It is supposed to return 1 if the topology changed
2725 * or 0 if it stayed the same.
2726 */
arch_update_cpu_topology(void)2727 int __weak arch_update_cpu_topology(void)
2728 {
2729 return 0;
2730 }
2731
alloc_sched_domains(unsigned int ndoms)2732 cpumask_var_t *alloc_sched_domains(unsigned int ndoms)
2733 {
2734 int i;
2735 cpumask_var_t *doms;
2736
2737 doms = kmalloc_objs(*doms, ndoms);
2738 if (!doms)
2739 return NULL;
2740 for (i = 0; i < ndoms; i++) {
2741 if (!alloc_cpumask_var(&doms[i], GFP_KERNEL)) {
2742 free_sched_domains(doms, i);
2743 return NULL;
2744 }
2745 }
2746 return doms;
2747 }
2748
free_sched_domains(cpumask_var_t doms[],unsigned int ndoms)2749 void free_sched_domains(cpumask_var_t doms[], unsigned int ndoms)
2750 {
2751 unsigned int i;
2752 for (i = 0; i < ndoms; i++)
2753 free_cpumask_var(doms[i]);
2754 kfree(doms);
2755 }
2756
2757 /*
2758 * Set up scheduler domains and groups. For now this just excludes isolated
2759 * CPUs, but could be used to exclude other special cases in the future.
2760 */
sched_init_domains(const struct cpumask * cpu_map)2761 int __init sched_init_domains(const struct cpumask *cpu_map)
2762 {
2763 int err;
2764
2765 zalloc_cpumask_var(&sched_domains_tmpmask, GFP_KERNEL);
2766 zalloc_cpumask_var(&sched_domains_tmpmask2, GFP_KERNEL);
2767 zalloc_cpumask_var(&fallback_doms, GFP_KERNEL);
2768
2769 arch_update_cpu_topology();
2770 asym_cpu_capacity_scan();
2771 ndoms_cur = 1;
2772 doms_cur = alloc_sched_domains(ndoms_cur);
2773 if (!doms_cur)
2774 doms_cur = &fallback_doms;
2775 cpumask_and(doms_cur[0], cpu_map, housekeeping_cpumask(HK_TYPE_DOMAIN));
2776 err = build_sched_domains(doms_cur[0], NULL);
2777
2778 return err;
2779 }
2780
2781 /*
2782 * Detach sched domains from a group of CPUs specified in cpu_map
2783 * These CPUs will now be attached to the NULL domain
2784 */
detach_destroy_domains(const struct cpumask * cpu_map)2785 static void detach_destroy_domains(const struct cpumask *cpu_map)
2786 {
2787 unsigned int cpu = cpumask_any(cpu_map);
2788 int i;
2789
2790 if (rcu_access_pointer(per_cpu(sd_asym_cpucapacity, cpu)))
2791 static_branch_dec_cpuslocked(&sched_asym_cpucapacity);
2792
2793 if (static_branch_unlikely(&sched_cluster_active))
2794 static_branch_dec_cpuslocked(&sched_cluster_active);
2795
2796 rcu_read_lock();
2797 for_each_cpu(i, cpu_map)
2798 cpu_attach_domain(NULL, &def_root_domain, i);
2799 rcu_read_unlock();
2800 }
2801
2802 /* handle null as "default" */
dattrs_equal(struct sched_domain_attr * cur,int idx_cur,struct sched_domain_attr * new,int idx_new)2803 static int dattrs_equal(struct sched_domain_attr *cur, int idx_cur,
2804 struct sched_domain_attr *new, int idx_new)
2805 {
2806 struct sched_domain_attr tmp;
2807
2808 /* Fast path: */
2809 if (!new && !cur)
2810 return 1;
2811
2812 tmp = SD_ATTR_INIT;
2813
2814 return !memcmp(cur ? (cur + idx_cur) : &tmp,
2815 new ? (new + idx_new) : &tmp,
2816 sizeof(struct sched_domain_attr));
2817 }
2818
2819 /*
2820 * Partition sched domains as specified by the 'ndoms_new'
2821 * cpumasks in the array doms_new[] of cpumasks. This compares
2822 * doms_new[] to the current sched domain partitioning, doms_cur[].
2823 * It destroys each deleted domain and builds each new domain.
2824 *
2825 * 'doms_new' is an array of cpumask_var_t's of length 'ndoms_new'.
2826 * The masks don't intersect (don't overlap.) We should setup one
2827 * sched domain for each mask. CPUs not in any of the cpumasks will
2828 * not be load balanced. If the same cpumask appears both in the
2829 * current 'doms_cur' domains and in the new 'doms_new', we can leave
2830 * it as it is.
2831 *
2832 * The passed in 'doms_new' should be allocated using
2833 * alloc_sched_domains. This routine takes ownership of it and will
2834 * free_sched_domains it when done with it. If the caller failed the
2835 * alloc call, then it can pass in doms_new == NULL && ndoms_new == 1,
2836 * and partition_sched_domains() will fallback to the single partition
2837 * 'fallback_doms', it also forces the domains to be rebuilt.
2838 *
2839 * If doms_new == NULL it will be replaced with cpu_online_mask.
2840 * ndoms_new == 0 is a special case for destroying existing domains,
2841 * and it will not create the default domain.
2842 *
2843 * Call with hotplug lock and sched_domains_mutex held
2844 */
partition_sched_domains_locked(int ndoms_new,cpumask_var_t doms_new[],struct sched_domain_attr * dattr_new)2845 static void partition_sched_domains_locked(int ndoms_new, cpumask_var_t doms_new[],
2846 struct sched_domain_attr *dattr_new)
2847 {
2848 bool __maybe_unused has_eas = false;
2849 int i, j, n;
2850 int new_topology;
2851
2852 lockdep_assert_held(&sched_domains_mutex);
2853
2854 /* Let the architecture update CPU core mappings: */
2855 new_topology = arch_update_cpu_topology();
2856 /* Trigger rebuilding CPU capacity asymmetry data */
2857 if (new_topology)
2858 asym_cpu_capacity_scan();
2859
2860 if (!doms_new) {
2861 WARN_ON_ONCE(dattr_new);
2862 n = 0;
2863 doms_new = alloc_sched_domains(1);
2864 if (doms_new) {
2865 n = 1;
2866 cpumask_and(doms_new[0], cpu_active_mask,
2867 housekeeping_cpumask(HK_TYPE_DOMAIN));
2868 }
2869 } else {
2870 n = ndoms_new;
2871 }
2872
2873 /* Destroy deleted domains: */
2874 for (i = 0; i < ndoms_cur; i++) {
2875 for (j = 0; j < n && !new_topology; j++) {
2876 if (cpumask_equal(doms_cur[i], doms_new[j]) &&
2877 dattrs_equal(dattr_cur, i, dattr_new, j))
2878 goto match1;
2879 }
2880 /* No match - a current sched domain not in new doms_new[] */
2881 detach_destroy_domains(doms_cur[i]);
2882 match1:
2883 ;
2884 }
2885
2886 n = ndoms_cur;
2887 if (!doms_new) {
2888 n = 0;
2889 doms_new = &fallback_doms;
2890 cpumask_and(doms_new[0], cpu_active_mask,
2891 housekeeping_cpumask(HK_TYPE_DOMAIN));
2892 }
2893
2894 /* Build new domains: */
2895 for (i = 0; i < ndoms_new; i++) {
2896 for (j = 0; j < n && !new_topology; j++) {
2897 if (cpumask_equal(doms_new[i], doms_cur[j]) &&
2898 dattrs_equal(dattr_new, i, dattr_cur, j))
2899 goto match2;
2900 }
2901 /* No match - add a new doms_new */
2902 build_sched_domains(doms_new[i], dattr_new ? dattr_new + i : NULL);
2903 match2:
2904 ;
2905 }
2906
2907 #if defined(CONFIG_ENERGY_MODEL) && defined(CONFIG_CPU_FREQ_GOV_SCHEDUTIL)
2908 /* Build perf domains: */
2909 for (i = 0; i < ndoms_new; i++) {
2910 for (j = 0; j < n && !sched_energy_update; j++) {
2911 if (cpumask_equal(doms_new[i], doms_cur[j]) &&
2912 cpu_rq(cpumask_first(doms_cur[j]))->rd->pd) {
2913 has_eas = true;
2914 goto match3;
2915 }
2916 }
2917 /* No match - add perf domains for a new rd */
2918 has_eas |= build_perf_domains(doms_new[i]);
2919 match3:
2920 ;
2921 }
2922 sched_energy_set(has_eas);
2923 #endif
2924
2925 /* Remember the new sched domains: */
2926 if (doms_cur != &fallback_doms)
2927 free_sched_domains(doms_cur, ndoms_cur);
2928
2929 kfree(dattr_cur);
2930 doms_cur = doms_new;
2931 dattr_cur = dattr_new;
2932 ndoms_cur = ndoms_new;
2933
2934 update_sched_domain_debugfs();
2935 dl_rebuild_rd_accounting();
2936 }
2937
2938 /*
2939 * Call with hotplug lock held
2940 */
partition_sched_domains(int ndoms_new,cpumask_var_t doms_new[],struct sched_domain_attr * dattr_new)2941 void partition_sched_domains(int ndoms_new, cpumask_var_t doms_new[],
2942 struct sched_domain_attr *dattr_new)
2943 {
2944 sched_domains_mutex_lock();
2945 partition_sched_domains_locked(ndoms_new, doms_new, dattr_new);
2946 sched_domains_mutex_unlock();
2947 }
2948