1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * kernel/sched/core.c 4 * 5 * Core kernel CPU scheduler code 6 * 7 * Copyright (C) 1991-2002 Linus Torvalds 8 * Copyright (C) 1998-2024 Ingo Molnar, Red Hat 9 */ 10 #define INSTANTIATE_EXPORTED_MIGRATE_DISABLE 11 #include <linux/sched.h> 12 #include <linux/highmem.h> 13 #include <linux/hrtimer_api.h> 14 #include <linux/ktime_api.h> 15 #include <linux/sched/signal.h> 16 #include <linux/syscalls_api.h> 17 #include <linux/debug_locks.h> 18 #include <linux/prefetch.h> 19 #include <linux/capability.h> 20 #include <linux/pgtable_api.h> 21 #include <linux/wait_bit.h> 22 #include <linux/jiffies.h> 23 #include <linux/spinlock_api.h> 24 #include <linux/cpumask_api.h> 25 #include <linux/lockdep_api.h> 26 #include <linux/hardirq.h> 27 #include <linux/softirq.h> 28 #include <linux/refcount_api.h> 29 #include <linux/topology.h> 30 #include <linux/sched/clock.h> 31 #include <linux/sched/cond_resched.h> 32 #include <linux/sched/cputime.h> 33 #include <linux/sched/debug.h> 34 #include <linux/sched/hotplug.h> 35 #include <linux/sched/init.h> 36 #include <linux/sched/isolation.h> 37 #include <linux/sched/loadavg.h> 38 #include <linux/sched/mm.h> 39 #include <linux/sched/nohz.h> 40 #include <linux/sched/rseq_api.h> 41 #include <linux/sched/rt.h> 42 43 #include <linux/context_tracking.h> 44 #include <linux/cpuset.h> 45 #include <linux/delayacct.h> 46 #include <linux/init_task.h> 47 #include <linux/interrupt.h> 48 #include <linux/ioprio.h> 49 #include <linux/kallsyms.h> 50 #include <linux/kcov.h> 51 #include <linux/kprobes.h> 52 #include <linux/llist_api.h> 53 #include <linux/mmu_context.h> 54 #include <linux/mmzone.h> 55 #include <linux/mutex_api.h> 56 #include <linux/nmi.h> 57 #include <linux/nospec.h> 58 #include <linux/perf_event_api.h> 59 #include <linux/profile.h> 60 #include <linux/psi.h> 61 #include <linux/rcuwait_api.h> 62 #include <linux/rseq.h> 63 #include <linux/sched/wake_q.h> 64 #include <linux/scs.h> 65 #include <linux/slab.h> 66 #include <linux/syscalls.h> 67 #include <linux/vtime.h> 68 #include <linux/wait_api.h> 69 #include <linux/workqueue_api.h> 70 #include <linux/livepatch_sched.h> 71 72 #ifdef CONFIG_PREEMPT_DYNAMIC 73 # ifdef CONFIG_GENERIC_IRQ_ENTRY 74 # include <linux/irq-entry-common.h> 75 # endif 76 #endif 77 78 #include <uapi/linux/sched/types.h> 79 80 #include <asm/irq_regs.h> 81 #include <asm/switch_to.h> 82 #include <asm/tlb.h> 83 84 #define CREATE_TRACE_POINTS 85 #include <linux/sched/rseq_api.h> 86 #include <trace/events/sched.h> 87 #include <trace/events/ipi.h> 88 #undef CREATE_TRACE_POINTS 89 90 #include "sched.h" 91 #include "stats.h" 92 93 #include "autogroup.h" 94 #include "pelt.h" 95 #include "smp.h" 96 97 #include "../workqueue_internal.h" 98 #include "../../io_uring/io-wq.h" 99 #include "../smpboot.h" 100 #include "../locking/mutex.h" 101 102 EXPORT_TRACEPOINT_SYMBOL_GPL(ipi_send_cpu); 103 EXPORT_TRACEPOINT_SYMBOL_GPL(ipi_send_cpumask); 104 105 /* 106 * Export tracepoints that act as a bare tracehook (ie: have no trace event 107 * associated with them) to allow external modules to probe them. 108 */ 109 EXPORT_TRACEPOINT_SYMBOL_GPL(pelt_cfs_tp); 110 EXPORT_TRACEPOINT_SYMBOL_GPL(pelt_rt_tp); 111 EXPORT_TRACEPOINT_SYMBOL_GPL(pelt_dl_tp); 112 EXPORT_TRACEPOINT_SYMBOL_GPL(pelt_irq_tp); 113 EXPORT_TRACEPOINT_SYMBOL_GPL(pelt_se_tp); 114 EXPORT_TRACEPOINT_SYMBOL_GPL(pelt_hw_tp); 115 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_cpu_capacity_tp); 116 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_overutilized_tp); 117 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_util_est_cfs_tp); 118 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_util_est_se_tp); 119 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_update_nr_running_tp); 120 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_compute_energy_tp); 121 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_entry_tp); 122 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_exit_tp); 123 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_set_need_resched_tp); 124 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_dl_throttle_tp); 125 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_dl_replenish_tp); 126 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_dl_update_tp); 127 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_dl_server_start_tp); 128 EXPORT_TRACEPOINT_SYMBOL_GPL(sched_dl_server_stop_tp); 129 130 DEFINE_PER_CPU_SHARED_ALIGNED(struct rq, runqueues); 131 DEFINE_PER_CPU(struct rnd_state, sched_rnd_state); 132 133 #ifdef CONFIG_SCHED_PROXY_EXEC 134 DEFINE_STATIC_KEY_TRUE(__sched_proxy_exec); 135 static int __init setup_proxy_exec(char *str) 136 { 137 bool proxy_enable = true; 138 139 if (*str && kstrtobool(str + 1, &proxy_enable)) { 140 pr_warn("Unable to parse sched_proxy_exec=\n"); 141 return 0; 142 } 143 144 if (proxy_enable) { 145 pr_info("sched_proxy_exec enabled via boot arg\n"); 146 static_branch_enable(&__sched_proxy_exec); 147 } else { 148 pr_info("sched_proxy_exec disabled via boot arg\n"); 149 static_branch_disable(&__sched_proxy_exec); 150 } 151 return 1; 152 } 153 #else 154 static int __init setup_proxy_exec(char *str) 155 { 156 pr_warn("CONFIG_SCHED_PROXY_EXEC=n, so it cannot be enabled or disabled at boot time\n"); 157 return 0; 158 } 159 #endif 160 __setup("sched_proxy_exec", setup_proxy_exec); 161 162 /* 163 * Debugging: various feature bits 164 * 165 * If SCHED_DEBUG is disabled, each compilation unit has its own copy of 166 * sysctl_sched_features, defined in sched.h, to allow constants propagation 167 * at compile time and compiler optimization based on features default. 168 */ 169 #define SCHED_FEAT(name, enabled) \ 170 (1UL << __SCHED_FEAT_##name) * enabled | 171 __read_mostly unsigned int sysctl_sched_features = 172 #include "features.h" 173 0; 174 #undef SCHED_FEAT 175 176 /* 177 * Print a warning if need_resched is set for the given duration (if 178 * LATENCY_WARN is enabled). 179 * 180 * If sysctl_resched_latency_warn_once is set, only one warning will be shown 181 * per boot. 182 */ 183 __read_mostly int sysctl_resched_latency_warn_ms = 100; 184 __read_mostly int sysctl_resched_latency_warn_once = 1; 185 186 /* 187 * Number of tasks to iterate in a single balance run. 188 * Limited because this is done with IRQs disabled. 189 */ 190 __read_mostly unsigned int sysctl_sched_nr_migrate = SCHED_NR_MIGRATE_BREAK; 191 192 __read_mostly int scheduler_running; 193 194 #ifdef CONFIG_SCHED_CORE 195 196 DEFINE_STATIC_KEY_FALSE(__sched_core_enabled); 197 198 /* kernel prio, less is more */ 199 static inline int __task_prio(const struct task_struct *p) 200 { 201 if (p->sched_class == &stop_sched_class) /* trumps deadline */ 202 return -2; 203 204 if (p->dl_server) 205 return -1; /* deadline */ 206 207 if (rt_or_dl_prio(p->prio)) 208 return p->prio; /* [-1, 99] */ 209 210 if (p->sched_class == &idle_sched_class) 211 return MAX_RT_PRIO + NICE_WIDTH; /* 140 */ 212 213 if (task_on_scx(p)) 214 return MAX_RT_PRIO + MAX_NICE + 1; /* 120, squash ext */ 215 216 return MAX_RT_PRIO + MAX_NICE; /* 119, squash fair */ 217 } 218 219 /* 220 * l(a,b) 221 * le(a,b) := !l(b,a) 222 * g(a,b) := l(b,a) 223 * ge(a,b) := !l(a,b) 224 */ 225 226 /* real prio, less is less */ 227 static inline bool prio_less(const struct task_struct *a, 228 const struct task_struct *b, bool in_fi) 229 { 230 231 int pa = __task_prio(a), pb = __task_prio(b); 232 233 if (-pa < -pb) 234 return true; 235 236 if (-pb < -pa) 237 return false; 238 239 if (pa == -1) { /* dl_prio() doesn't work because of stop_class above */ 240 const struct sched_dl_entity *a_dl, *b_dl; 241 242 a_dl = &a->dl; 243 /* 244 * Since,'a' and 'b' can be CFS tasks served by DL server, 245 * __task_prio() can return -1 (for DL) even for those. In that 246 * case, get to the dl_server's DL entity. 247 */ 248 if (a->dl_server) 249 a_dl = a->dl_server; 250 251 b_dl = &b->dl; 252 if (b->dl_server) 253 b_dl = b->dl_server; 254 255 return !dl_time_before(a_dl->deadline, b_dl->deadline); 256 } 257 258 if (pa == MAX_RT_PRIO + MAX_NICE) /* fair */ 259 return cfs_prio_less(a, b, in_fi); 260 261 #ifdef CONFIG_SCHED_CLASS_EXT 262 if (pa == MAX_RT_PRIO + MAX_NICE + 1) /* ext */ 263 return scx_prio_less(a, b, in_fi); 264 #endif 265 266 return false; 267 } 268 269 static inline bool __sched_core_less(const struct task_struct *a, 270 const struct task_struct *b) 271 { 272 if (a->core_cookie < b->core_cookie) 273 return true; 274 275 if (a->core_cookie > b->core_cookie) 276 return false; 277 278 /* flip prio, so high prio is leftmost */ 279 if (prio_less(b, a, !!task_rq(a)->core->core_forceidle_count)) 280 return true; 281 282 return false; 283 } 284 285 #define __node_2_sc(node) rb_entry((node), struct task_struct, core_node) 286 287 static inline bool rb_sched_core_less(struct rb_node *a, const struct rb_node *b) 288 { 289 return __sched_core_less(__node_2_sc(a), __node_2_sc(b)); 290 } 291 292 static inline int rb_sched_core_cmp(const void *key, const struct rb_node *node) 293 { 294 const struct task_struct *p = __node_2_sc(node); 295 unsigned long cookie = (unsigned long)key; 296 297 if (cookie < p->core_cookie) 298 return -1; 299 300 if (cookie > p->core_cookie) 301 return 1; 302 303 return 0; 304 } 305 306 void sched_core_enqueue(struct rq *rq, struct task_struct *p) 307 { 308 if (p->se.sched_delayed) 309 return; 310 311 rq->core->core_task_seq++; 312 313 if (!p->core_cookie) 314 return; 315 316 rb_add(&p->core_node, &rq->core_tree, rb_sched_core_less); 317 } 318 319 void sched_core_dequeue(struct rq *rq, struct task_struct *p, int flags) 320 { 321 if (p->se.sched_delayed) 322 return; 323 324 rq->core->core_task_seq++; 325 326 if (sched_core_enqueued(p)) { 327 rb_erase(&p->core_node, &rq->core_tree); 328 RB_CLEAR_NODE(&p->core_node); 329 } 330 331 /* 332 * Migrating the last task off the cpu, with the cpu in forced idle 333 * state. Reschedule to create an accounting edge for forced idle, 334 * and re-examine whether the core is still in forced idle state. 335 */ 336 if (!(flags & DEQUEUE_SAVE) && rq->nr_running == 1 && 337 rq->core->core_forceidle_count && rq->curr == rq->idle) 338 resched_curr(rq); 339 } 340 341 static int sched_task_is_throttled(struct task_struct *p, int cpu) 342 { 343 if (p->sched_class->task_is_throttled) 344 return p->sched_class->task_is_throttled(p, cpu); 345 346 return 0; 347 } 348 349 static struct task_struct *sched_core_next(struct task_struct *p, unsigned long cookie) 350 { 351 struct rb_node *node = &p->core_node; 352 int cpu = task_cpu(p); 353 354 do { 355 node = rb_next(node); 356 if (!node) 357 return NULL; 358 359 p = __node_2_sc(node); 360 if (p->core_cookie != cookie) 361 return NULL; 362 363 } while (sched_task_is_throttled(p, cpu)); 364 365 return p; 366 } 367 368 /* 369 * Find left-most (aka, highest priority) and unthrottled task matching @cookie. 370 * If no suitable task is found, NULL will be returned. 371 */ 372 static struct task_struct *sched_core_find(struct rq *rq, unsigned long cookie) 373 { 374 struct task_struct *p; 375 struct rb_node *node; 376 377 node = rb_find_first((void *)cookie, &rq->core_tree, rb_sched_core_cmp); 378 if (!node) 379 return NULL; 380 381 p = __node_2_sc(node); 382 if (!sched_task_is_throttled(p, rq->cpu)) 383 return p; 384 385 return sched_core_next(p, cookie); 386 } 387 388 /* 389 * Magic required such that: 390 * 391 * raw_spin_rq_lock(rq); 392 * ... 393 * raw_spin_rq_unlock(rq); 394 * 395 * ends up locking and unlocking the _same_ lock, and all CPUs 396 * always agree on what rq has what lock. 397 * 398 * XXX entirely possible to selectively enable cores, don't bother for now. 399 */ 400 401 static DEFINE_MUTEX(sched_core_mutex); 402 static atomic_t sched_core_count; 403 static struct cpumask sched_core_mask; 404 405 static void sched_core_lock(int cpu, unsigned long *flags) 406 __context_unsafe(/* acquires multiple */) 407 __acquires(&runqueues.__lock) /* overapproximation */ 408 { 409 const struct cpumask *smt_mask = cpu_smt_mask(cpu); 410 int t, i = 0; 411 412 local_irq_save(*flags); 413 for_each_cpu(t, smt_mask) 414 raw_spin_lock_nested(&cpu_rq(t)->__lock, i++); 415 } 416 417 static void sched_core_unlock(int cpu, unsigned long *flags) 418 __context_unsafe(/* releases multiple */) 419 __releases(&runqueues.__lock) /* overapproximation */ 420 { 421 const struct cpumask *smt_mask = cpu_smt_mask(cpu); 422 int t; 423 424 for_each_cpu(t, smt_mask) 425 raw_spin_unlock(&cpu_rq(t)->__lock); 426 local_irq_restore(*flags); 427 } 428 429 static void __sched_core_flip(bool enabled) 430 { 431 unsigned long flags; 432 int cpu, t; 433 434 cpus_read_lock(); 435 436 /* 437 * Toggle the online cores, one by one. 438 */ 439 cpumask_copy(&sched_core_mask, cpu_online_mask); 440 for_each_cpu(cpu, &sched_core_mask) { 441 const struct cpumask *smt_mask = cpu_smt_mask(cpu); 442 443 sched_core_lock(cpu, &flags); 444 445 /* 446 * A core-wide selection may have the shared rq lock temporarily 447 * released by a lock-dropping ->pick_task(). Flipping would 448 * rebind rq_lockp() under it. Wait it out. 449 */ 450 while (cpu_rq(cpu)->core->core_pick_in_flight) { 451 sched_core_unlock(cpu, &flags); 452 cpu_relax(); 453 sched_core_lock(cpu, &flags); 454 } 455 456 for_each_cpu(t, smt_mask) 457 cpu_rq(t)->core_enabled = enabled; 458 459 cpu_rq(cpu)->core->core_forceidle_start = 0; 460 461 sched_core_unlock(cpu, &flags); 462 463 cpumask_andnot(&sched_core_mask, &sched_core_mask, smt_mask); 464 } 465 466 /* 467 * Toggle the offline CPUs. 468 */ 469 for_each_cpu_andnot(cpu, cpu_possible_mask, cpu_online_mask) 470 cpu_rq(cpu)->core_enabled = enabled; 471 472 cpus_read_unlock(); 473 } 474 475 static void sched_core_assert_empty(void) 476 { 477 int cpu; 478 479 for_each_possible_cpu(cpu) 480 WARN_ON_ONCE(!RB_EMPTY_ROOT(&cpu_rq(cpu)->core_tree)); 481 } 482 483 static void __sched_core_enable(void) 484 { 485 static_branch_enable(&__sched_core_enabled); 486 /* 487 * Ensure all previous instances of raw_spin_rq_*lock() have finished 488 * and future ones will observe !sched_core_disabled(). 489 */ 490 synchronize_rcu(); 491 __sched_core_flip(true); 492 sched_core_assert_empty(); 493 } 494 495 static void __sched_core_disable(void) 496 { 497 sched_core_assert_empty(); 498 __sched_core_flip(false); 499 static_branch_disable(&__sched_core_enabled); 500 } 501 502 void sched_core_get(void) 503 { 504 if (atomic_inc_not_zero(&sched_core_count)) 505 return; 506 507 mutex_lock(&sched_core_mutex); 508 if (!atomic_read(&sched_core_count)) 509 __sched_core_enable(); 510 511 smp_mb__before_atomic(); 512 atomic_inc(&sched_core_count); 513 mutex_unlock(&sched_core_mutex); 514 } 515 516 static void __sched_core_put(struct work_struct *work) 517 { 518 if (atomic_dec_and_mutex_lock(&sched_core_count, &sched_core_mutex)) { 519 __sched_core_disable(); 520 mutex_unlock(&sched_core_mutex); 521 } 522 } 523 524 void sched_core_put(void) 525 { 526 static DECLARE_WORK(_work, __sched_core_put); 527 528 /* 529 * "There can be only one" 530 * 531 * Either this is the last one, or we don't actually need to do any 532 * 'work'. If it is the last *again*, we rely on 533 * WORK_STRUCT_PENDING_BIT. 534 */ 535 if (!atomic_add_unless(&sched_core_count, -1, 1)) 536 schedule_work(&_work); 537 } 538 539 #else /* !CONFIG_SCHED_CORE: */ 540 541 static inline void sched_core_enqueue(struct rq *rq, struct task_struct *p) { } 542 static inline void 543 sched_core_dequeue(struct rq *rq, struct task_struct *p, int flags) { } 544 545 #endif /* !CONFIG_SCHED_CORE */ 546 547 /* need a wrapper since we may need to trace from modules */ 548 EXPORT_TRACEPOINT_SYMBOL(sched_set_state_tp); 549 550 /* 551 * Call via the helper macro trace_set_current_state. 552 * Calls to this function MUST be guarded by a 553 * tracepoint_enabled(sched_set_state_tp) 554 */ 555 void __trace_set_current_state(int state_value) 556 { 557 trace_call__sched_set_state_tp(current, state_value); 558 } 559 EXPORT_SYMBOL(__trace_set_current_state); 560 561 int task_llc(const struct task_struct *p) 562 { 563 return per_cpu(sd_llc_id, task_cpu(p)); 564 } 565 566 /* 567 * Serialization rules: 568 * 569 * Lock order: 570 * 571 * p->pi_lock 572 * rq->lock 573 * hrtimer_cpu_base->lock (hrtimer_start() for bandwidth controls) 574 * 575 * rq1->lock 576 * rq2->lock where: rq1 < rq2 577 * 578 * Regular state: 579 * 580 * Normal scheduling state is serialized by rq->lock. __schedule() takes the 581 * local CPU's rq->lock, it optionally removes the task from the runqueue and 582 * always looks at the local rq data structures to find the most eligible task 583 * to run next. 584 * 585 * Task enqueue is also under rq->lock, possibly taken from another CPU. 586 * Wakeups from another LLC domain might use an IPI to transfer the enqueue to 587 * the local CPU to avoid bouncing the runqueue state around [ see 588 * ttwu_queue_wakelist() ] 589 * 590 * Task wakeup, specifically wakeups that involve migration, are horribly 591 * complicated to avoid having to take two rq->locks. 592 * 593 * Special state: 594 * 595 * System-calls and anything external will use task_rq_lock() which acquires 596 * both p->pi_lock and rq->lock. As a consequence the state they change is 597 * stable while holding either lock: 598 * 599 * - sched_setaffinity()/ 600 * set_cpus_allowed_ptr(): p->cpus_ptr, p->nr_cpus_allowed 601 * - set_user_nice(): p->se.load, p->*prio 602 * - __sched_setscheduler(): p->sched_class, p->policy, p->*prio, 603 * p->se.load, p->rt_priority, 604 * p->dl.dl_{runtime, deadline, period, flags, bw, density} 605 * - sched_setnuma(): p->numa_preferred_nid 606 * - sched_move_task(): p->sched_task_group 607 * - uclamp_update_active() p->uclamp* 608 * 609 * p->state <- TASK_*: 610 * 611 * is changed locklessly using set_current_state(), __set_current_state() or 612 * set_special_state(), see their respective comments, or by 613 * try_to_wake_up(). This latter uses p->pi_lock to serialize against 614 * concurrent self. 615 * 616 * p->on_rq <- { 0, 1 = TASK_ON_RQ_QUEUED, 2 = TASK_ON_RQ_MIGRATING }: 617 * 618 * is set by activate_task() and cleared by deactivate_task()/block_task(), 619 * under rq->lock. Non-zero indicates the task is runnable, the special 620 * ON_RQ_MIGRATING state is used for migration without holding both 621 * rq->locks. It indicates task_cpu() is not stable, see task_rq_lock(). 622 * 623 * Additionally it is possible to be ->on_rq but still be considered not 624 * runnable when p->se.sched_delayed is true. These tasks are on the runqueue 625 * but will be dequeued as soon as they get picked again. See the 626 * task_is_runnable() helper. 627 * 628 * p->on_cpu <- { 0, 1 }: 629 * 630 * is set by prepare_task() and cleared by finish_task() such that it will be 631 * set before p is scheduled-in and cleared after p is scheduled-out, both 632 * under rq->lock. Non-zero indicates the task is running on its CPU. 633 * 634 * [ The astute reader will observe that it is possible for two tasks on one 635 * CPU to have ->on_cpu = 1 at the same time. ] 636 * 637 * p->is_blocked <- { 0, 1 }: 638 * 639 * is set by try_to_block_task() and cleared by ttwu_do_wakeup() and tracks 640 * if the task is blocked. Traditionally this would mirror p->on_rq, however 641 * due things like DELAY_DEQUEUE and PROXY_EXEC, this can diverge. 642 * 643 * task_cpu(p): is changed by set_task_cpu(), the rules are: 644 * 645 * - Don't call set_task_cpu() on a blocked task: 646 * 647 * We don't care what CPU we're not running on, this simplifies hotplug, 648 * the CPU assignment of blocked tasks isn't required to be valid. 649 * 650 * - for try_to_wake_up(), called under p->pi_lock: 651 * 652 * This allows try_to_wake_up() to only take one rq->lock, see its comment. 653 * 654 * - for migration called under rq->lock: 655 * [ see task_on_rq_migrating() in task_rq_lock() ] 656 * 657 * o move_queued_task() 658 * o detach_task() 659 * 660 * - for migration called under double_rq_lock(): 661 * 662 * o __migrate_swap_task() 663 * o push_rt_task() / pull_rt_task() 664 * o push_dl_task() / pull_dl_task() 665 * o dl_task_offline_migration() 666 * 667 */ 668 669 void raw_spin_rq_lock_nested(struct rq *rq, int subclass) 670 __context_unsafe() 671 { 672 raw_spinlock_t *lock; 673 674 /* Matches synchronize_rcu() in __sched_core_enable() */ 675 preempt_disable(); 676 if (sched_core_disabled()) { 677 raw_spin_lock_nested(&rq->__lock, subclass); 678 /* preempt_count *MUST* be > 1 */ 679 preempt_enable_no_resched(); 680 return; 681 } 682 683 for (;;) { 684 lock = __rq_lockp(rq); 685 raw_spin_lock_nested(lock, subclass); 686 if (likely(lock == __rq_lockp(rq))) { 687 /* preempt_count *MUST* be > 1 */ 688 preempt_enable_no_resched(); 689 return; 690 } 691 raw_spin_unlock(lock); 692 } 693 } 694 695 bool raw_spin_rq_trylock(struct rq *rq) 696 __context_unsafe() 697 { 698 raw_spinlock_t *lock; 699 bool ret; 700 701 /* Matches synchronize_rcu() in __sched_core_enable() */ 702 preempt_disable(); 703 if (sched_core_disabled()) { 704 ret = raw_spin_trylock(&rq->__lock); 705 preempt_enable(); 706 return ret; 707 } 708 709 for (;;) { 710 lock = __rq_lockp(rq); 711 ret = raw_spin_trylock(lock); 712 if (!ret || (likely(lock == __rq_lockp(rq)))) { 713 preempt_enable(); 714 return ret; 715 } 716 raw_spin_unlock(lock); 717 } 718 } 719 720 /* 721 * double_rq_lock - safely lock two runqueues 722 */ 723 void double_rq_lock(struct rq *rq1, struct rq *rq2) 724 { 725 lockdep_assert_irqs_disabled(); 726 727 if (rq_order_less(rq2, rq1)) 728 swap(rq1, rq2); 729 730 raw_spin_rq_lock(rq1); 731 if (__rq_lockp(rq1) != __rq_lockp(rq2)) 732 raw_spin_rq_lock_nested(rq2, SINGLE_DEPTH_NESTING); 733 else 734 __acquire_ctx_lock(__rq_lockp(rq2)); /* fake acquire */ 735 736 double_rq_clock_clear_update(rq1, rq2); 737 } 738 739 /* 740 * ___task_rq_lock - lock the rq @p resides on. 741 */ 742 struct rq *___task_rq_lock(struct task_struct *p, struct rq_flags *rf) 743 { 744 struct rq *rq; 745 746 lockdep_assert_held(&p->pi_lock); 747 748 for (;;) { 749 rq = task_rq(p); 750 raw_spin_rq_lock(rq); 751 if (likely(rq == task_rq(p) && !task_on_rq_migrating(p))) { 752 rq_pin_lock(rq, rf); 753 return rq; 754 } 755 raw_spin_rq_unlock(rq); 756 757 while (unlikely(task_on_rq_migrating(p))) 758 cpu_relax(); 759 } 760 } 761 762 /* 763 * task_rq_lock - lock p->pi_lock and lock the rq @p resides on. 764 */ 765 struct rq *_task_rq_lock(struct task_struct *p, struct rq_flags *rf) 766 { 767 struct rq *rq; 768 769 for (;;) { 770 raw_spin_lock_irqsave(&p->pi_lock, rf->flags); 771 rq = task_rq(p); 772 raw_spin_rq_lock(rq); 773 /* 774 * move_queued_task() task_rq_lock() 775 * 776 * ACQUIRE (rq->lock) 777 * [S] ->on_rq = MIGRATING [L] rq = task_rq() 778 * WMB (__set_task_cpu()) ACQUIRE (rq->lock); 779 * [S] ->cpu = new_cpu [L] task_rq() 780 * [L] ->on_rq 781 * RELEASE (rq->lock) 782 * 783 * If we observe the old CPU in task_rq_lock(), the acquire of 784 * the old rq->lock will fully serialize against the stores. 785 * 786 * If we observe the new CPU in task_rq_lock(), the address 787 * dependency headed by '[L] rq = task_rq()' and the acquire 788 * will pair with the WMB to ensure we then also see migrating. 789 */ 790 if (likely(rq == task_rq(p) && !task_on_rq_migrating(p))) { 791 rq_pin_lock(rq, rf); 792 return rq; 793 } 794 raw_spin_rq_unlock(rq); 795 raw_spin_unlock_irqrestore(&p->pi_lock, rf->flags); 796 797 while (unlikely(task_on_rq_migrating(p))) 798 cpu_relax(); 799 } 800 } 801 802 /* 803 * RQ-clock updating methods: 804 */ 805 806 /* Use CONFIG_PARAVIRT as this will avoid more #ifdef in arch code. */ 807 #ifdef CONFIG_PARAVIRT 808 struct static_key paravirt_steal_rq_enabled; 809 #endif 810 811 static void update_rq_clock_task(struct rq *rq, s64 delta) 812 { 813 /* 814 * In theory, the compile should just see 0 here, and optimize out the call 815 * to sched_rt_avg_update. But I don't trust it... 816 */ 817 s64 __maybe_unused steal = 0, irq_delta = 0; 818 819 #ifdef CONFIG_IRQ_TIME_ACCOUNTING 820 if (irqtime_enabled()) { 821 irq_delta = irq_time_read(cpu_of(rq)) - rq->prev_irq_time; 822 823 /* 824 * Since irq_time is only updated on {soft,}irq_exit, we might run into 825 * this case when a previous update_rq_clock() happened inside a 826 * {soft,}IRQ region. 827 * 828 * When this happens, we stop ->clock_task and only update the 829 * prev_irq_time stamp to account for the part that fit, so that a next 830 * update will consume the rest. This ensures ->clock_task is 831 * monotonic. 832 * 833 * It does however cause some slight miss-attribution of {soft,}IRQ 834 * time, a more accurate solution would be to update the irq_time using 835 * the current rq->clock timestamp, except that would require using 836 * atomic ops. 837 */ 838 if (irq_delta > delta) 839 irq_delta = delta; 840 841 rq->prev_irq_time += irq_delta; 842 delta -= irq_delta; 843 delayacct_irq(rq->curr, irq_delta); 844 } 845 #endif 846 #ifdef CONFIG_PARAVIRT_TIME_ACCOUNTING 847 if (static_key_false((¶virt_steal_rq_enabled))) { 848 u64 prev_steal; 849 850 steal = prev_steal = paravirt_steal_clock(cpu_of(rq)); 851 steal -= rq->prev_steal_time_rq; 852 853 if (unlikely(steal > delta)) 854 steal = delta; 855 856 rq->prev_steal_time_rq = prev_steal; 857 delta -= steal; 858 } 859 #endif 860 861 rq->clock_task += delta; 862 863 #ifdef CONFIG_HAVE_SCHED_AVG_IRQ 864 if ((irq_delta + steal) && sched_feat(NONTASK_CAPACITY)) 865 update_irq_load_avg(rq, irq_delta + steal); 866 #endif 867 update_rq_clock_pelt(rq, delta); 868 } 869 870 void update_rq_clock(struct rq *rq) 871 { 872 s64 delta; 873 u64 clock; 874 875 lockdep_assert_rq_held(rq); 876 877 if (rq->clock_update_flags & RQCF_ACT_SKIP) 878 return; 879 880 if (sched_feat(WARN_DOUBLE_CLOCK)) 881 WARN_ON_ONCE(rq->clock_update_flags & RQCF_UPDATED); 882 rq->clock_update_flags |= RQCF_UPDATED; 883 884 clock = sched_clock_cpu(cpu_of(rq)); 885 scx_rq_clock_update(rq, clock); 886 887 delta = clock - rq->clock; 888 if (delta < 0) 889 return; 890 rq->clock += delta; 891 892 update_rq_clock_task(rq, delta); 893 } 894 895 #ifdef CONFIG_SCHED_HRTICK 896 /* 897 * Use HR-timers to deliver accurate preemption points. 898 */ 899 900 enum { 901 HRTICK_SCHED_NONE = 0, 902 HRTICK_SCHED_DEFER = BIT(1), 903 HRTICK_SCHED_START = BIT(2), 904 HRTICK_SCHED_REARM_HRTIMER = BIT(3) 905 }; 906 907 static void __used hrtick_clear(struct rq *rq) 908 { 909 if (hrtimer_active(&rq->hrtick_timer)) 910 hrtimer_cancel(&rq->hrtick_timer); 911 } 912 913 /* 914 * High-resolution timer tick. 915 * Runs from hardirq context with interrupts disabled. 916 */ 917 static enum hrtimer_restart hrtick(struct hrtimer *timer) 918 { 919 struct rq *rq = container_of(timer, struct rq, hrtick_timer); 920 struct rq_flags rf; 921 922 WARN_ON_ONCE(cpu_of(rq) != smp_processor_id()); 923 924 rq_lock(rq, &rf); 925 update_rq_clock(rq); 926 rq->donor->sched_class->task_tick(rq, rq->donor, 1); 927 rq_unlock(rq, &rf); 928 929 return HRTIMER_NORESTART; 930 } 931 932 static inline bool hrtick_needs_rearm(struct hrtimer *timer, ktime_t expires) 933 { 934 /* 935 * Queued is false when the timer is not started or currently 936 * running the callback. In both cases, restart. If queued check 937 * whether the expiry time actually changes substantially. 938 */ 939 return !hrtimer_is_queued(timer) || 940 abs(expires - hrtimer_get_expires(timer)) > 5000; 941 } 942 943 static void hrtick_cond_restart(struct rq *rq) 944 { 945 struct hrtimer *timer = &rq->hrtick_timer; 946 ktime_t time = rq->hrtick_time; 947 948 if (hrtick_needs_rearm(timer, time)) 949 hrtimer_start(timer, time, HRTIMER_MODE_ABS_PINNED_HARD); 950 } 951 952 /* 953 * called from hardirq (IPI) context 954 */ 955 static void __hrtick_start(void *arg) 956 { 957 struct rq *rq = arg; 958 struct rq_flags rf; 959 960 rq_lock(rq, &rf); 961 hrtick_cond_restart(rq); 962 rq_unlock(rq, &rf); 963 } 964 965 /* 966 * Called to set the hrtick timer state. 967 * 968 * called with rq->lock held and IRQs disabled 969 */ 970 void hrtick_start(struct rq *rq, u64 delay) 971 { 972 s64 delta; 973 974 /* 975 * Don't schedule slices shorter than 10000ns, that just 976 * doesn't make sense and can cause timer DoS. 977 */ 978 delta = max_t(s64, delay, 10000LL); 979 980 /* 981 * If this is in the middle of schedule() only note the delay 982 * and let hrtick_schedule_exit() deal with it. 983 */ 984 if (rq->hrtick_sched) { 985 rq->hrtick_sched |= HRTICK_SCHED_START; 986 rq->hrtick_delay = delta; 987 return; 988 } 989 990 rq->hrtick_time = ktime_add_ns(ktime_get(), delta); 991 if (!hrtick_needs_rearm(&rq->hrtick_timer, rq->hrtick_time)) 992 return; 993 994 if (rq == this_rq()) 995 hrtimer_start(&rq->hrtick_timer, rq->hrtick_time, HRTIMER_MODE_ABS_PINNED_HARD); 996 else 997 smp_call_function_single_async(cpu_of(rq), &rq->hrtick_csd); 998 } 999 1000 static inline void hrtick_schedule_enter(struct rq *rq) 1001 { 1002 rq->hrtick_sched = HRTICK_SCHED_DEFER; 1003 if (hrtimer_test_and_clear_rearm_deferred()) 1004 rq->hrtick_sched |= HRTICK_SCHED_REARM_HRTIMER; 1005 } 1006 1007 static inline void hrtick_schedule_exit(struct rq *rq) 1008 { 1009 if (rq->hrtick_sched & HRTICK_SCHED_START) { 1010 rq->hrtick_time = ktime_add_ns(ktime_get(), rq->hrtick_delay); 1011 hrtick_cond_restart(rq); 1012 } else if (idle_rq(rq)) { 1013 /* 1014 * No need for using hrtimer_is_active(). The timer is CPU local 1015 * and interrupts are disabled, so the callback cannot be 1016 * running and the queued state is valid. 1017 */ 1018 if (hrtimer_is_queued(&rq->hrtick_timer)) 1019 hrtimer_cancel(&rq->hrtick_timer); 1020 } 1021 1022 if (rq->hrtick_sched & HRTICK_SCHED_REARM_HRTIMER) 1023 __hrtimer_rearm_deferred(); 1024 1025 rq->hrtick_sched = HRTICK_SCHED_NONE; 1026 } 1027 1028 static void hrtick_rq_init(struct rq *rq) 1029 { 1030 INIT_CSD(&rq->hrtick_csd, __hrtick_start, rq); 1031 rq->hrtick_sched = HRTICK_SCHED_NONE; 1032 hrtimer_setup(&rq->hrtick_timer, hrtick, CLOCK_MONOTONIC, 1033 HRTIMER_MODE_REL_HARD | HRTIMER_MODE_LAZY_REARM); 1034 } 1035 #else /* !CONFIG_SCHED_HRTICK: */ 1036 static inline void hrtick_clear(struct rq *rq) { } 1037 static inline void hrtick_rq_init(struct rq *rq) { } 1038 static inline void hrtick_schedule_enter(struct rq *rq) { } 1039 static inline void hrtick_schedule_exit(struct rq *rq) { } 1040 #endif /* !CONFIG_SCHED_HRTICK */ 1041 1042 /* 1043 * try_cmpxchg based fetch_or() macro so it works for different integer types: 1044 */ 1045 #define fetch_or(ptr, mask) \ 1046 ({ \ 1047 typeof(ptr) _ptr = (ptr); \ 1048 typeof(mask) _mask = (mask); \ 1049 typeof(*_ptr) _val = *_ptr; \ 1050 \ 1051 do { \ 1052 } while (!try_cmpxchg(_ptr, &_val, _val | _mask)); \ 1053 _val; \ 1054 }) 1055 1056 #ifdef TIF_POLLING_NRFLAG 1057 /* 1058 * Atomically set TIF_NEED_RESCHED and test for TIF_POLLING_NRFLAG, 1059 * this avoids any races wrt polling state changes and thereby avoids 1060 * spurious IPIs. 1061 */ 1062 static inline bool set_nr_and_not_polling(struct thread_info *ti, int tif) 1063 { 1064 return !(fetch_or(&ti->flags, 1 << tif) & _TIF_POLLING_NRFLAG); 1065 } 1066 1067 /* 1068 * Atomically set TIF_NEED_RESCHED if TIF_POLLING_NRFLAG is set. 1069 * 1070 * If this returns true, then the idle task promises to call 1071 * sched_ttwu_pending() and reschedule soon. 1072 */ 1073 static bool set_nr_if_polling(struct task_struct *p) 1074 { 1075 struct thread_info *ti = task_thread_info(p); 1076 typeof(ti->flags) val = READ_ONCE(ti->flags); 1077 1078 do { 1079 if (!(val & _TIF_POLLING_NRFLAG)) 1080 return false; 1081 if (val & _TIF_NEED_RESCHED) 1082 return true; 1083 } while (!try_cmpxchg(&ti->flags, &val, val | _TIF_NEED_RESCHED)); 1084 1085 return true; 1086 } 1087 1088 #else 1089 static inline bool set_nr_and_not_polling(struct thread_info *ti, int tif) 1090 { 1091 set_ti_thread_flag(ti, tif); 1092 return true; 1093 } 1094 1095 static inline bool set_nr_if_polling(struct task_struct *p) 1096 { 1097 return false; 1098 } 1099 #endif 1100 1101 static bool __wake_q_add(struct wake_q_head *head, struct task_struct *task) 1102 { 1103 struct wake_q_node *node = &task->wake_q; 1104 1105 /* 1106 * Atomically grab the task, if ->wake_q is !nil already it means 1107 * it's already queued (either by us or someone else) and will get the 1108 * wakeup due to that. 1109 * 1110 * In order to ensure that a pending wakeup will observe our pending 1111 * state, even in the failed case, an explicit smp_mb() must be used. 1112 */ 1113 smp_mb__before_atomic(); 1114 if (unlikely(cmpxchg_relaxed(&node->next, NULL, WAKE_Q_TAIL))) 1115 return false; 1116 1117 /* 1118 * The head is context local, there can be no concurrency. 1119 */ 1120 *head->lastp = node; 1121 head->lastp = &node->next; 1122 return true; 1123 } 1124 1125 /** 1126 * wake_q_add() - queue a wakeup for 'later' waking. 1127 * @head: the wake_q_head to add @task to 1128 * @task: the task to queue for 'later' wakeup 1129 * 1130 * Queue a task for later wakeup, most likely by the wake_up_q() call in the 1131 * same context, _HOWEVER_ this is not guaranteed, the wakeup can come 1132 * instantly. 1133 * 1134 * This function must be used as-if it were wake_up_process(); IOW the task 1135 * must be ready to be woken at this location. 1136 */ 1137 void wake_q_add(struct wake_q_head *head, struct task_struct *task) 1138 { 1139 if (__wake_q_add(head, task)) 1140 get_task_struct(task); 1141 } 1142 1143 /** 1144 * wake_q_add_safe() - safely queue a wakeup for 'later' waking. 1145 * @head: the wake_q_head to add @task to 1146 * @task: the task to queue for 'later' wakeup 1147 * 1148 * Queue a task for later wakeup, most likely by the wake_up_q() call in the 1149 * same context, _HOWEVER_ this is not guaranteed, the wakeup can come 1150 * instantly. 1151 * 1152 * This function must be used as-if it were wake_up_process(); IOW the task 1153 * must be ready to be woken at this location. 1154 * 1155 * This function is essentially a task-safe equivalent to wake_q_add(). Callers 1156 * that already hold reference to @task can call the 'safe' version and trust 1157 * wake_q to do the right thing depending whether or not the @task is already 1158 * queued for wakeup. 1159 */ 1160 void wake_q_add_safe(struct wake_q_head *head, struct task_struct *task) 1161 { 1162 if (!__wake_q_add(head, task)) 1163 put_task_struct(task); 1164 } 1165 1166 void wake_up_q(struct wake_q_head *head) 1167 { 1168 struct wake_q_node *node = head->first; 1169 1170 while (node != WAKE_Q_TAIL) { 1171 struct task_struct *task; 1172 1173 task = container_of(node, struct task_struct, wake_q); 1174 node = node->next; 1175 /* pairs with cmpxchg_relaxed() in __wake_q_add() */ 1176 WRITE_ONCE(task->wake_q.next, NULL); 1177 /* Task can safely be re-inserted now. */ 1178 1179 /* 1180 * wake_up_process() executes a full barrier, which pairs with 1181 * the queueing in wake_q_add() so as not to miss wakeups. 1182 */ 1183 wake_up_process(task); 1184 put_task_struct(task); 1185 } 1186 } 1187 1188 /* 1189 * resched_curr - mark rq's current task 'to be rescheduled now'. 1190 * 1191 * On UP this means the setting of the need_resched flag, on SMP it 1192 * might also involve a cross-CPU call to trigger the scheduler on 1193 * the target CPU. 1194 */ 1195 static void __resched_curr(struct rq *rq, int tif) 1196 { 1197 struct task_struct *curr = rq->curr; 1198 struct thread_info *cti = task_thread_info(curr); 1199 int cpu; 1200 1201 lockdep_assert_rq_held(rq); 1202 1203 /* 1204 * Always immediately preempt the idle task; no point in delaying doing 1205 * actual work. 1206 */ 1207 if (is_idle_task(curr) && tif == TIF_NEED_RESCHED_LAZY) 1208 tif = TIF_NEED_RESCHED; 1209 1210 if (cti->flags & ((1 << tif) | _TIF_NEED_RESCHED)) 1211 return; 1212 1213 cpu = cpu_of(rq); 1214 1215 trace_sched_set_need_resched_tp(curr, cpu, tif); 1216 if (cpu == smp_processor_id()) { 1217 set_ti_thread_flag(cti, tif); 1218 if (tif == TIF_NEED_RESCHED) 1219 set_preempt_need_resched(); 1220 return; 1221 } 1222 1223 if (set_nr_and_not_polling(cti, tif)) { 1224 if (tif == TIF_NEED_RESCHED) 1225 smp_send_reschedule(cpu); 1226 } else { 1227 trace_sched_wake_idle_without_ipi(cpu); 1228 } 1229 } 1230 1231 /* 1232 * Calls to this function MUST be guarded by a 1233 * tracepoint_enabled(sched_set_need_resched_tp) 1234 */ 1235 void __trace_set_need_resched(struct task_struct *curr, int tif) 1236 { 1237 trace_call__sched_set_need_resched_tp(curr, smp_processor_id(), tif); 1238 } 1239 EXPORT_SYMBOL_GPL(__trace_set_need_resched); 1240 1241 void resched_curr(struct rq *rq) 1242 { 1243 __resched_curr(rq, TIF_NEED_RESCHED); 1244 } 1245 1246 #ifdef CONFIG_PREEMPT_DYNAMIC 1247 static DEFINE_STATIC_KEY_FALSE(sk_dynamic_preempt_lazy); 1248 static __always_inline bool dynamic_preempt_lazy(void) 1249 { 1250 return static_branch_unlikely(&sk_dynamic_preempt_lazy); 1251 } 1252 #else 1253 static __always_inline bool dynamic_preempt_lazy(void) 1254 { 1255 return IS_ENABLED(CONFIG_PREEMPT_LAZY); 1256 } 1257 #endif 1258 1259 static __always_inline int get_lazy_tif_bit(void) 1260 { 1261 if (dynamic_preempt_lazy()) 1262 return TIF_NEED_RESCHED_LAZY; 1263 1264 return TIF_NEED_RESCHED; 1265 } 1266 1267 void resched_curr_lazy(struct rq *rq) 1268 { 1269 __resched_curr(rq, get_lazy_tif_bit()); 1270 } 1271 1272 void resched_cpu(int cpu) 1273 { 1274 struct rq *rq = cpu_rq(cpu); 1275 unsigned long flags; 1276 1277 raw_spin_rq_lock_irqsave(rq, flags); 1278 if (cpu_online(cpu) || cpu == smp_processor_id()) 1279 resched_curr(rq); 1280 raw_spin_rq_unlock_irqrestore(rq, flags); 1281 } 1282 1283 #ifdef CONFIG_NO_HZ_COMMON 1284 /* 1285 * In the semi idle case, use the nearest busy CPU for migrating timers 1286 * from an idle CPU. This is good for power-savings. 1287 * 1288 * We don't do similar optimization for completely idle system, as 1289 * selecting an idle CPU will add more delays to the timers than intended 1290 * (as that CPU's timer base may not be up to date wrt jiffies etc). 1291 */ 1292 int get_nohz_timer_target(void) 1293 { 1294 int i, cpu = smp_processor_id(), default_cpu = -1; 1295 struct sched_domain *sd; 1296 const struct cpumask *hk_mask; 1297 1298 if (housekeeping_cpu(cpu, HK_TYPE_KERNEL_NOISE)) { 1299 if (!idle_cpu(cpu)) 1300 return cpu; 1301 default_cpu = cpu; 1302 } 1303 1304 hk_mask = housekeeping_cpumask(HK_TYPE_KERNEL_NOISE); 1305 1306 guard(rcu)(); 1307 1308 for_each_domain(cpu, sd) { 1309 for_each_cpu_and(i, sched_domain_span(sd), hk_mask) { 1310 if (cpu == i) 1311 continue; 1312 1313 if (!idle_cpu(i)) 1314 return i; 1315 } 1316 } 1317 1318 if (default_cpu == -1) 1319 default_cpu = housekeeping_any_cpu(HK_TYPE_KERNEL_NOISE); 1320 1321 return default_cpu; 1322 } 1323 1324 /* 1325 * When add_timer_on() enqueues a timer into the timer wheel of an 1326 * idle CPU then this timer might expire before the next timer event 1327 * which is scheduled to wake up that CPU. In case of a completely 1328 * idle system the next event might even be infinite time into the 1329 * future. wake_up_idle_cpu() ensures that the CPU is woken up and 1330 * leaves the inner idle loop so the newly added timer is taken into 1331 * account when the CPU goes back to idle and evaluates the timer 1332 * wheel for the next timer event. 1333 */ 1334 static void wake_up_idle_cpu(int cpu) 1335 { 1336 struct rq *rq = cpu_rq(cpu); 1337 1338 if (cpu == smp_processor_id()) 1339 return; 1340 1341 /* 1342 * Set TIF_NEED_RESCHED and send an IPI if in the non-polling 1343 * part of the idle loop. This forces an exit from the idle loop 1344 * and a round trip to schedule(). Now this could be optimized 1345 * because a simple new idle loop iteration is enough to 1346 * re-evaluate the next tick. Provided some re-ordering of tick 1347 * nohz functions that would need to follow TIF_NR_POLLING 1348 * clearing: 1349 * 1350 * - On most architectures, a simple fetch_or on ti::flags with a 1351 * "0" value would be enough to know if an IPI needs to be sent. 1352 * 1353 * - x86 needs to perform a last need_resched() check between 1354 * monitor and mwait which doesn't take timers into account. 1355 * There a dedicated TIF_TIMER flag would be required to 1356 * fetch_or here and be checked along with TIF_NEED_RESCHED 1357 * before mwait(). 1358 * 1359 * However, remote timer enqueue is not such a frequent event 1360 * and testing of the above solutions didn't appear to report 1361 * much benefits. 1362 */ 1363 if (set_nr_and_not_polling(task_thread_info(rq->idle), TIF_NEED_RESCHED)) 1364 smp_send_reschedule(cpu); 1365 else 1366 trace_sched_wake_idle_without_ipi(cpu); 1367 } 1368 1369 static bool wake_up_full_nohz_cpu(int cpu) 1370 { 1371 /* 1372 * We just need the target to call irq_exit() and re-evaluate 1373 * the next tick. The nohz full kick at least implies that. 1374 * If needed we can still optimize that later with an 1375 * empty IRQ. 1376 */ 1377 if (cpu_is_offline(cpu)) 1378 return true; /* Don't try to wake offline CPUs. */ 1379 if (tick_nohz_full_cpu(cpu)) { 1380 if (cpu != smp_processor_id() || 1381 tick_nohz_tick_stopped()) 1382 tick_nohz_full_kick_cpu(cpu); 1383 return true; 1384 } 1385 1386 return false; 1387 } 1388 1389 /* 1390 * Wake up the specified CPU. If the CPU is going offline, it is the 1391 * caller's responsibility to deal with the lost wakeup, for example, 1392 * by hooking into the CPU_DEAD notifier like timers and hrtimers do. 1393 */ 1394 void wake_up_nohz_cpu(int cpu) 1395 { 1396 if (!wake_up_full_nohz_cpu(cpu)) 1397 wake_up_idle_cpu(cpu); 1398 } 1399 1400 static void nohz_csd_func(void *info) 1401 { 1402 struct rq *rq = info; 1403 int cpu = cpu_of(rq); 1404 unsigned int flags; 1405 1406 /* 1407 * Release the rq::nohz_csd. 1408 */ 1409 flags = atomic_fetch_andnot(NOHZ_KICK_MASK | NOHZ_NEWILB_KICK, nohz_flags(cpu)); 1410 WARN_ON(!(flags & NOHZ_KICK_MASK)); 1411 1412 rq->idle_balance = idle_cpu(cpu); 1413 if (rq->idle_balance) { 1414 rq->nohz_idle_balance = flags; 1415 __raise_softirq_irqoff(SCHED_SOFTIRQ); 1416 } 1417 } 1418 1419 #endif /* CONFIG_NO_HZ_COMMON */ 1420 1421 #ifdef CONFIG_NO_HZ_FULL 1422 static inline bool __need_bw_check(struct rq *rq, struct task_struct *p) 1423 { 1424 if (rq->nr_running != 1) 1425 return false; 1426 1427 if (p->sched_class != &fair_sched_class) 1428 return false; 1429 1430 if (!task_on_rq_queued(p)) 1431 return false; 1432 1433 return true; 1434 } 1435 1436 bool sched_can_stop_tick(struct rq *rq) 1437 { 1438 int fifo_nr_running; 1439 1440 /* Deadline tasks, even if single, need the tick */ 1441 if (rq->dl.dl_nr_running) 1442 return false; 1443 1444 /* 1445 * If there are more than one RR tasks, we need the tick to affect the 1446 * actual RR behaviour. 1447 */ 1448 if (rq->rt.rr_nr_running) { 1449 if (rq->rt.rr_nr_running == 1) 1450 return true; 1451 else 1452 return false; 1453 } 1454 1455 /* 1456 * If there's no RR tasks, but FIFO tasks, we can skip the tick, no 1457 * forced preemption between FIFO tasks. 1458 */ 1459 fifo_nr_running = rq->rt.rt_nr_running - rq->rt.rr_nr_running; 1460 if (fifo_nr_running) 1461 return true; 1462 1463 /* 1464 * If there are no DL,RR/FIFO tasks, there must only be CFS or SCX tasks 1465 * left. For CFS, if there's more than one we need the tick for 1466 * involuntary preemption. For SCX, ask. 1467 */ 1468 if (scx_enabled() && !scx_can_stop_tick(rq)) 1469 return false; 1470 1471 if (rq->cfs.h_nr_queued > 1) 1472 return false; 1473 1474 /* 1475 * If there is one task and it has CFS runtime bandwidth constraints 1476 * and it's on the cpu now we don't want to stop the tick. 1477 * This check prevents clearing the bit if a newly enqueued task here is 1478 * dequeued by migrating while the constrained task continues to run. 1479 * E.g. going from 2->1 without going through pick_next_task(). 1480 */ 1481 if (__need_bw_check(rq, rq->curr)) { 1482 if (cfs_task_bw_constrained(rq->curr)) 1483 return false; 1484 } 1485 1486 return true; 1487 } 1488 #endif /* CONFIG_NO_HZ_FULL */ 1489 1490 #if defined(CONFIG_RT_GROUP_SCHED) || defined(CONFIG_FAIR_GROUP_SCHED) 1491 /* 1492 * Iterate task_group tree rooted at *from, calling @down when first entering a 1493 * node and @up when leaving it for the final time. 1494 * 1495 * Caller must hold rcu_lock or sufficient equivalent. 1496 */ 1497 int walk_tg_tree_from(struct task_group *from, 1498 tg_visitor down, tg_visitor up, void *data) 1499 { 1500 struct task_group *parent, *child; 1501 int ret; 1502 1503 parent = from; 1504 1505 down: 1506 ret = (*down)(parent, data); 1507 if (ret) 1508 goto out; 1509 list_for_each_entry_rcu(child, &parent->children, siblings) { 1510 parent = child; 1511 goto down; 1512 1513 up: 1514 continue; 1515 } 1516 ret = (*up)(parent, data); 1517 if (ret || parent == from) 1518 goto out; 1519 1520 child = parent; 1521 parent = parent->parent; 1522 if (parent) 1523 goto up; 1524 out: 1525 return ret; 1526 } 1527 1528 int tg_nop(struct task_group *tg, void *data) 1529 { 1530 return 0; 1531 } 1532 #endif 1533 1534 void set_load_weight(struct task_struct *p, bool update_load) 1535 { 1536 int prio = p->static_prio - MAX_RT_PRIO; 1537 struct load_weight lw; 1538 1539 if (task_has_idle_policy(p)) { 1540 lw.weight = scale_load(WEIGHT_IDLEPRIO); 1541 lw.inv_weight = WMULT_IDLEPRIO; 1542 } else { 1543 lw.weight = scale_load(sched_prio_to_weight[prio]); 1544 lw.inv_weight = sched_prio_to_wmult[prio]; 1545 } 1546 1547 /* 1548 * SCHED_OTHER tasks have to update their load when changing their 1549 * weight 1550 */ 1551 if (update_load && p->sched_class->reweight_task) 1552 p->sched_class->reweight_task(task_rq(p), p, &lw); 1553 else 1554 p->se.load = lw; 1555 } 1556 1557 #ifdef CONFIG_UCLAMP_TASK 1558 /* 1559 * Serializes updates of utilization clamp values 1560 * 1561 * The (slow-path) user-space triggers utilization clamp value updates which 1562 * can require updates on (fast-path) scheduler's data structures used to 1563 * support enqueue/dequeue operations. 1564 * While the per-CPU rq lock protects fast-path update operations, user-space 1565 * requests are serialized using a mutex to reduce the risk of conflicting 1566 * updates or API abuses. 1567 */ 1568 static __maybe_unused DEFINE_MUTEX(uclamp_mutex); 1569 1570 /* Max allowed minimum utilization */ 1571 static unsigned int __maybe_unused sysctl_sched_uclamp_util_min = SCHED_CAPACITY_SCALE; 1572 1573 /* Max allowed maximum utilization */ 1574 static unsigned int __maybe_unused sysctl_sched_uclamp_util_max = SCHED_CAPACITY_SCALE; 1575 1576 /* 1577 * By default RT tasks run at the maximum performance point/capacity of the 1578 * system. Uclamp enforces this by always setting UCLAMP_MIN of RT tasks to 1579 * SCHED_CAPACITY_SCALE. 1580 * 1581 * This knob allows admins to change the default behavior when uclamp is being 1582 * used. In battery powered devices, particularly, running at the maximum 1583 * capacity and frequency will increase energy consumption and shorten the 1584 * battery life. 1585 * 1586 * This knob only affects RT tasks that their uclamp_se->user_defined == false. 1587 * 1588 * This knob will not override the system default sched_util_clamp_min defined 1589 * above. 1590 */ 1591 unsigned int sysctl_sched_uclamp_util_min_rt_default = SCHED_CAPACITY_SCALE; 1592 1593 /* All clamps are required to be less or equal than these values */ 1594 static struct uclamp_se uclamp_default[UCLAMP_CNT]; 1595 1596 /* 1597 * This static key is used to reduce the uclamp overhead in the fast path. It 1598 * primarily disables the call to uclamp_rq_{inc, dec}() in 1599 * enqueue/dequeue_task(). 1600 * 1601 * This allows users to continue to enable uclamp in their kernel config with 1602 * minimum uclamp overhead in the fast path. 1603 * 1604 * As soon as userspace modifies any of the uclamp knobs, the static key is 1605 * enabled, since we have an actual users that make use of uclamp 1606 * functionality. 1607 * 1608 * The knobs that would enable this static key are: 1609 * 1610 * * A task modifying its uclamp value with sched_setattr(). 1611 * * An admin modifying the sysctl_sched_uclamp_{min, max} via procfs. 1612 * * An admin modifying the cgroup cpu.uclamp.{min, max} 1613 */ 1614 DEFINE_STATIC_KEY_FALSE(sched_uclamp_used); 1615 1616 static inline unsigned int 1617 uclamp_idle_value(struct rq *rq, enum uclamp_id clamp_id, 1618 unsigned int clamp_value) 1619 { 1620 /* 1621 * Avoid blocked utilization pushing up the frequency when we go 1622 * idle (which drops the max-clamp) by retaining the last known 1623 * max-clamp. 1624 */ 1625 if (clamp_id == UCLAMP_MAX) { 1626 rq->uclamp_flags |= UCLAMP_FLAG_IDLE; 1627 return clamp_value; 1628 } 1629 1630 return uclamp_none(UCLAMP_MIN); 1631 } 1632 1633 static inline void uclamp_idle_reset(struct rq *rq, enum uclamp_id clamp_id, 1634 unsigned int clamp_value) 1635 { 1636 /* Reset max-clamp retention only on idle exit */ 1637 if (!(rq->uclamp_flags & UCLAMP_FLAG_IDLE)) 1638 return; 1639 1640 uclamp_rq_set(rq, clamp_id, clamp_value); 1641 } 1642 1643 static inline 1644 unsigned int uclamp_rq_max_value(struct rq *rq, enum uclamp_id clamp_id, 1645 unsigned int clamp_value) 1646 { 1647 struct uclamp_bucket *bucket = rq->uclamp[clamp_id].bucket; 1648 int bucket_id = UCLAMP_BUCKETS - 1; 1649 1650 /* 1651 * Since both min and max clamps are max aggregated, find the 1652 * top most bucket with tasks in. 1653 */ 1654 for ( ; bucket_id >= 0; bucket_id--) { 1655 if (!bucket[bucket_id].tasks) 1656 continue; 1657 return bucket[bucket_id].value; 1658 } 1659 1660 /* No tasks -- default clamp values */ 1661 return uclamp_idle_value(rq, clamp_id, clamp_value); 1662 } 1663 1664 static void __uclamp_update_util_min_rt_default(struct task_struct *p) 1665 { 1666 unsigned int default_util_min; 1667 struct uclamp_se *uc_se; 1668 1669 lockdep_assert_held(&p->pi_lock); 1670 1671 uc_se = &p->uclamp_req[UCLAMP_MIN]; 1672 1673 /* Only sync if user didn't override the default */ 1674 if (uc_se->user_defined) 1675 return; 1676 1677 default_util_min = sysctl_sched_uclamp_util_min_rt_default; 1678 uclamp_se_set(uc_se, default_util_min, false); 1679 } 1680 1681 static void uclamp_update_util_min_rt_default(struct task_struct *p) 1682 { 1683 if (!rt_task(p)) 1684 return; 1685 1686 /* Protect updates to p->uclamp_* */ 1687 guard(task_rq_lock)(p); 1688 __uclamp_update_util_min_rt_default(p); 1689 } 1690 1691 static inline struct uclamp_se 1692 uclamp_tg_restrict(struct task_struct *p, enum uclamp_id clamp_id) 1693 { 1694 /* Copy by value as we could modify it */ 1695 struct uclamp_se uc_req = p->uclamp_req[clamp_id]; 1696 #ifdef CONFIG_UCLAMP_TASK_GROUP 1697 unsigned int tg_min, tg_max, value; 1698 1699 /* 1700 * Tasks in autogroups or root task group will be 1701 * restricted by system defaults. 1702 */ 1703 if (task_group_is_autogroup(task_group(p))) 1704 return uc_req; 1705 if (task_group(p) == &root_task_group) 1706 return uc_req; 1707 1708 tg_min = task_group(p)->uclamp[UCLAMP_MIN].value; 1709 tg_max = task_group(p)->uclamp[UCLAMP_MAX].value; 1710 value = uc_req.value; 1711 value = clamp(value, tg_min, tg_max); 1712 uclamp_se_set(&uc_req, value, false); 1713 #endif 1714 1715 return uc_req; 1716 } 1717 1718 /* 1719 * The effective clamp bucket index of a task depends on, by increasing 1720 * priority: 1721 * - the task specific clamp value, when explicitly requested from userspace 1722 * - the task group effective clamp value, for tasks not either in the root 1723 * group or in an autogroup 1724 * - the system default clamp value, defined by the sysadmin 1725 */ 1726 static inline struct uclamp_se 1727 uclamp_eff_get(struct task_struct *p, enum uclamp_id clamp_id) 1728 { 1729 struct uclamp_se uc_req = uclamp_tg_restrict(p, clamp_id); 1730 struct uclamp_se uc_max = uclamp_default[clamp_id]; 1731 1732 /* System default restrictions always apply */ 1733 if (unlikely(uc_req.value > uc_max.value)) 1734 return uc_max; 1735 1736 return uc_req; 1737 } 1738 1739 unsigned long uclamp_eff_value(struct task_struct *p, enum uclamp_id clamp_id) 1740 { 1741 struct uclamp_se uc_eff; 1742 1743 /* Task currently refcounted: use back-annotated (effective) value */ 1744 if (p->uclamp[clamp_id].active) 1745 return (unsigned long)p->uclamp[clamp_id].value; 1746 1747 uc_eff = uclamp_eff_get(p, clamp_id); 1748 1749 return (unsigned long)uc_eff.value; 1750 } 1751 1752 /* 1753 * When a task is enqueued on a rq, the clamp bucket currently defined by the 1754 * task's uclamp::bucket_id is refcounted on that rq. This also immediately 1755 * updates the rq's clamp value if required. 1756 * 1757 * Tasks can have a task-specific value requested from user-space, track 1758 * within each bucket the maximum value for tasks refcounted in it. 1759 * This "local max aggregation" allows to track the exact "requested" value 1760 * for each bucket when all its RUNNABLE tasks require the same clamp. 1761 */ 1762 static inline void uclamp_rq_inc_id(struct rq *rq, struct task_struct *p, 1763 enum uclamp_id clamp_id) 1764 { 1765 struct uclamp_rq *uc_rq = &rq->uclamp[clamp_id]; 1766 struct uclamp_se *uc_se = &p->uclamp[clamp_id]; 1767 struct uclamp_bucket *bucket; 1768 1769 lockdep_assert_rq_held(rq); 1770 1771 /* Update task effective clamp */ 1772 p->uclamp[clamp_id] = uclamp_eff_get(p, clamp_id); 1773 1774 bucket = &uc_rq->bucket[uc_se->bucket_id]; 1775 bucket->tasks++; 1776 uc_se->active = true; 1777 1778 uclamp_idle_reset(rq, clamp_id, uc_se->value); 1779 1780 /* 1781 * Local max aggregation: rq buckets always track the max 1782 * "requested" clamp value of its RUNNABLE tasks. 1783 */ 1784 if (bucket->tasks == 1 || uc_se->value > bucket->value) 1785 bucket->value = uc_se->value; 1786 1787 if (uc_se->value > uclamp_rq_get(rq, clamp_id)) 1788 uclamp_rq_set(rq, clamp_id, uc_se->value); 1789 } 1790 1791 /* 1792 * When a task is dequeued from a rq, the clamp bucket refcounted by the task 1793 * is released. If this is the last task reference counting the rq's max 1794 * active clamp value, then the rq's clamp value is updated. 1795 * 1796 * Both refcounted tasks and rq's cached clamp values are expected to be 1797 * always valid. If it's detected they are not, as defensive programming, 1798 * enforce the expected state and warn. 1799 */ 1800 static inline void uclamp_rq_dec_id(struct rq *rq, struct task_struct *p, 1801 enum uclamp_id clamp_id) 1802 { 1803 struct uclamp_rq *uc_rq = &rq->uclamp[clamp_id]; 1804 struct uclamp_se *uc_se = &p->uclamp[clamp_id]; 1805 struct uclamp_bucket *bucket; 1806 unsigned int bkt_clamp; 1807 unsigned int rq_clamp; 1808 1809 lockdep_assert_rq_held(rq); 1810 1811 /* 1812 * If sched_uclamp_used was enabled after task @p was enqueued, 1813 * we could end up with unbalanced call to uclamp_rq_dec_id(). 1814 * 1815 * In this case the uc_se->active flag should be false since no uclamp 1816 * accounting was performed at enqueue time and we can just return 1817 * here. 1818 * 1819 * Need to be careful of the following enqueue/dequeue ordering 1820 * problem too 1821 * 1822 * enqueue(taskA) 1823 * // sched_uclamp_used gets enabled 1824 * enqueue(taskB) 1825 * dequeue(taskA) 1826 * // Must not decrement bucket->tasks here 1827 * dequeue(taskB) 1828 * 1829 * where we could end up with stale data in uc_se and 1830 * bucket[uc_se->bucket_id]. 1831 * 1832 * The following check here eliminates the possibility of such race. 1833 */ 1834 if (unlikely(!uc_se->active)) 1835 return; 1836 1837 bucket = &uc_rq->bucket[uc_se->bucket_id]; 1838 1839 WARN_ON_ONCE(!bucket->tasks); 1840 if (likely(bucket->tasks)) 1841 bucket->tasks--; 1842 1843 uc_se->active = false; 1844 1845 /* 1846 * Keep "local max aggregation" simple and accept to (possibly) 1847 * overboost some RUNNABLE tasks in the same bucket. 1848 * The rq clamp bucket value is reset to its base value whenever 1849 * there are no more RUNNABLE tasks refcounting it. 1850 */ 1851 if (likely(bucket->tasks)) 1852 return; 1853 1854 rq_clamp = uclamp_rq_get(rq, clamp_id); 1855 /* 1856 * Defensive programming: this should never happen. If it happens, 1857 * e.g. due to future modification, warn and fix up the expected value. 1858 */ 1859 WARN_ON_ONCE(bucket->value > rq_clamp); 1860 if (bucket->value >= rq_clamp) { 1861 bkt_clamp = uclamp_rq_max_value(rq, clamp_id, uc_se->value); 1862 uclamp_rq_set(rq, clamp_id, bkt_clamp); 1863 } 1864 } 1865 1866 static inline void uclamp_rq_inc(struct rq *rq, struct task_struct *p, int flags) 1867 { 1868 enum uclamp_id clamp_id; 1869 1870 /* 1871 * Avoid any overhead until uclamp is actually used by the userspace. 1872 * 1873 * The condition is constructed such that a NOP is generated when 1874 * sched_uclamp_used is disabled. 1875 */ 1876 if (!uclamp_is_used()) 1877 return; 1878 1879 if (unlikely(!p->sched_class->uclamp_enabled)) 1880 return; 1881 1882 /* Only inc the delayed task which being woken up. */ 1883 if (p->se.sched_delayed && !(flags & ENQUEUE_DELAYED)) 1884 return; 1885 1886 for_each_clamp_id(clamp_id) 1887 uclamp_rq_inc_id(rq, p, clamp_id); 1888 1889 /* Reset clamp idle holding when there is one RUNNABLE task */ 1890 if (rq->uclamp_flags & UCLAMP_FLAG_IDLE) 1891 rq->uclamp_flags &= ~UCLAMP_FLAG_IDLE; 1892 } 1893 1894 static inline void uclamp_rq_dec(struct rq *rq, struct task_struct *p) 1895 { 1896 enum uclamp_id clamp_id; 1897 1898 /* 1899 * Avoid any overhead until uclamp is actually used by the userspace. 1900 * 1901 * The condition is constructed such that a NOP is generated when 1902 * sched_uclamp_used is disabled. 1903 */ 1904 if (!uclamp_is_used()) 1905 return; 1906 1907 if (unlikely(!p->sched_class->uclamp_enabled)) 1908 return; 1909 1910 if (p->se.sched_delayed) 1911 return; 1912 1913 for_each_clamp_id(clamp_id) 1914 uclamp_rq_dec_id(rq, p, clamp_id); 1915 } 1916 1917 static inline void uclamp_rq_reinc_id(struct rq *rq, struct task_struct *p, 1918 enum uclamp_id clamp_id) 1919 { 1920 if (!p->uclamp[clamp_id].active) 1921 return; 1922 1923 uclamp_rq_dec_id(rq, p, clamp_id); 1924 uclamp_rq_inc_id(rq, p, clamp_id); 1925 1926 /* 1927 * Make sure to clear the idle flag if we've transiently reached 0 1928 * active tasks on rq. 1929 */ 1930 if (clamp_id == UCLAMP_MAX && (rq->uclamp_flags & UCLAMP_FLAG_IDLE)) 1931 rq->uclamp_flags &= ~UCLAMP_FLAG_IDLE; 1932 } 1933 1934 static inline void 1935 uclamp_update_active(struct task_struct *p) 1936 { 1937 enum uclamp_id clamp_id; 1938 struct rq_flags rf; 1939 struct rq *rq; 1940 1941 /* 1942 * Lock the task and the rq where the task is (or was) queued. 1943 * 1944 * We might lock the (previous) rq of a !RUNNABLE task, but that's the 1945 * price to pay to safely serialize util_{min,max} updates with 1946 * enqueues, dequeues and migration operations. 1947 * This is the same locking schema used by __set_cpus_allowed_ptr(). 1948 */ 1949 rq = task_rq_lock(p, &rf); 1950 1951 /* 1952 * Setting the clamp bucket is serialized by task_rq_lock(). 1953 * If the task is not yet RUNNABLE and its task_struct is not 1954 * affecting a valid clamp bucket, the next time it's enqueued, 1955 * it will already see the updated clamp bucket value. 1956 */ 1957 for_each_clamp_id(clamp_id) 1958 uclamp_rq_reinc_id(rq, p, clamp_id); 1959 1960 task_rq_unlock(rq, p, &rf); 1961 } 1962 1963 #ifdef CONFIG_UCLAMP_TASK_GROUP 1964 static inline void 1965 uclamp_update_active_tasks(struct cgroup_subsys_state *css) 1966 { 1967 struct css_task_iter it; 1968 struct task_struct *p; 1969 1970 css_task_iter_start(css, 0, &it); 1971 while ((p = css_task_iter_next(&it))) 1972 uclamp_update_active(p); 1973 css_task_iter_end(&it); 1974 } 1975 1976 static void cpu_util_update_eff(struct cgroup_subsys_state *css); 1977 #endif 1978 1979 #ifdef CONFIG_SYSCTL 1980 #ifdef CONFIG_UCLAMP_TASK_GROUP 1981 static void uclamp_update_root_tg(void) 1982 { 1983 struct task_group *tg = &root_task_group; 1984 1985 uclamp_se_set(&tg->uclamp_req[UCLAMP_MIN], 1986 sysctl_sched_uclamp_util_min, false); 1987 uclamp_se_set(&tg->uclamp_req[UCLAMP_MAX], 1988 sysctl_sched_uclamp_util_max, false); 1989 1990 guard(rcu)(); 1991 cpu_util_update_eff(&root_task_group.css); 1992 } 1993 #else 1994 static void uclamp_update_root_tg(void) { } 1995 #endif 1996 1997 static void uclamp_sync_util_min_rt_default(void) 1998 { 1999 struct task_struct *g, *p; 2000 2001 /* 2002 * copy_process() sysctl_uclamp 2003 * uclamp_min_rt = X; 2004 * write_lock(&tasklist_lock) read_lock(&tasklist_lock) 2005 * // link thread smp_mb__after_spinlock() 2006 * write_unlock(&tasklist_lock) read_unlock(&tasklist_lock); 2007 * sched_post_fork() for_each_process_thread() 2008 * __uclamp_sync_rt() __uclamp_sync_rt() 2009 * 2010 * Ensures that either sched_post_fork() will observe the new 2011 * uclamp_min_rt or for_each_process_thread() will observe the new 2012 * task. 2013 */ 2014 read_lock(&tasklist_lock); 2015 smp_mb__after_spinlock(); 2016 read_unlock(&tasklist_lock); 2017 2018 guard(rcu)(); 2019 for_each_process_thread(g, p) 2020 uclamp_update_util_min_rt_default(p); 2021 } 2022 2023 static int sysctl_sched_uclamp_handler(const struct ctl_table *table, int write, 2024 void *buffer, size_t *lenp, loff_t *ppos) 2025 { 2026 bool update_root_tg = false; 2027 int old_min, old_max, old_min_rt; 2028 int result; 2029 2030 guard(mutex)(&uclamp_mutex); 2031 2032 old_min = sysctl_sched_uclamp_util_min; 2033 old_max = sysctl_sched_uclamp_util_max; 2034 old_min_rt = sysctl_sched_uclamp_util_min_rt_default; 2035 2036 result = proc_dointvec(table, write, buffer, lenp, ppos); 2037 if (result) 2038 goto undo; 2039 if (!write) 2040 return 0; 2041 2042 if (sysctl_sched_uclamp_util_min > sysctl_sched_uclamp_util_max || 2043 sysctl_sched_uclamp_util_max > SCHED_CAPACITY_SCALE || 2044 sysctl_sched_uclamp_util_min_rt_default > SCHED_CAPACITY_SCALE) { 2045 2046 result = -EINVAL; 2047 goto undo; 2048 } 2049 2050 if (old_min != sysctl_sched_uclamp_util_min) { 2051 uclamp_se_set(&uclamp_default[UCLAMP_MIN], 2052 sysctl_sched_uclamp_util_min, false); 2053 update_root_tg = true; 2054 } 2055 if (old_max != sysctl_sched_uclamp_util_max) { 2056 uclamp_se_set(&uclamp_default[UCLAMP_MAX], 2057 sysctl_sched_uclamp_util_max, false); 2058 update_root_tg = true; 2059 } 2060 2061 if (update_root_tg) { 2062 sched_uclamp_enable(); 2063 uclamp_update_root_tg(); 2064 } 2065 2066 if (old_min_rt != sysctl_sched_uclamp_util_min_rt_default) { 2067 sched_uclamp_enable(); 2068 uclamp_sync_util_min_rt_default(); 2069 } 2070 2071 /* 2072 * We update all RUNNABLE tasks only when task groups are in use. 2073 * Otherwise, keep it simple and do just a lazy update at each next 2074 * task enqueue time. 2075 */ 2076 return 0; 2077 2078 undo: 2079 sysctl_sched_uclamp_util_min = old_min; 2080 sysctl_sched_uclamp_util_max = old_max; 2081 sysctl_sched_uclamp_util_min_rt_default = old_min_rt; 2082 return result; 2083 } 2084 #endif /* CONFIG_SYSCTL */ 2085 2086 static void uclamp_fork(struct task_struct *p) 2087 { 2088 enum uclamp_id clamp_id; 2089 2090 /* 2091 * We don't need to hold task_rq_lock() when updating p->uclamp_* here 2092 * as the task is still at its early fork stages. 2093 */ 2094 for_each_clamp_id(clamp_id) 2095 p->uclamp[clamp_id].active = false; 2096 2097 if (likely(!p->sched_reset_on_fork)) 2098 return; 2099 2100 for_each_clamp_id(clamp_id) { 2101 uclamp_se_set(&p->uclamp_req[clamp_id], 2102 uclamp_none(clamp_id), false); 2103 } 2104 } 2105 2106 static void uclamp_post_fork(struct task_struct *p) 2107 { 2108 uclamp_update_util_min_rt_default(p); 2109 } 2110 2111 static void __init init_uclamp_rq(struct rq *rq) 2112 { 2113 enum uclamp_id clamp_id; 2114 struct uclamp_rq *uc_rq = rq->uclamp; 2115 2116 for_each_clamp_id(clamp_id) { 2117 uc_rq[clamp_id] = (struct uclamp_rq) { 2118 .value = uclamp_none(clamp_id) 2119 }; 2120 } 2121 2122 rq->uclamp_flags = UCLAMP_FLAG_IDLE; 2123 } 2124 2125 static void __init init_uclamp(void) 2126 { 2127 struct uclamp_se uc_max = {}; 2128 enum uclamp_id clamp_id; 2129 int cpu; 2130 2131 for_each_possible_cpu(cpu) 2132 init_uclamp_rq(cpu_rq(cpu)); 2133 2134 for_each_clamp_id(clamp_id) { 2135 uclamp_se_set(&init_task.uclamp_req[clamp_id], 2136 uclamp_none(clamp_id), false); 2137 } 2138 2139 /* System defaults allow max clamp values for both indexes */ 2140 uclamp_se_set(&uc_max, uclamp_none(UCLAMP_MAX), false); 2141 for_each_clamp_id(clamp_id) { 2142 uclamp_default[clamp_id] = uc_max; 2143 #ifdef CONFIG_UCLAMP_TASK_GROUP 2144 root_task_group.uclamp_req[clamp_id] = uc_max; 2145 root_task_group.uclamp[clamp_id] = uc_max; 2146 #endif 2147 } 2148 } 2149 2150 #else /* !CONFIG_UCLAMP_TASK: */ 2151 static inline void uclamp_rq_inc(struct rq *rq, struct task_struct *p, int flags) { } 2152 static inline void uclamp_rq_dec(struct rq *rq, struct task_struct *p) { } 2153 static inline void uclamp_fork(struct task_struct *p) { } 2154 static inline void uclamp_post_fork(struct task_struct *p) { } 2155 static inline void init_uclamp(void) { } 2156 #endif /* !CONFIG_UCLAMP_TASK */ 2157 2158 bool sched_task_on_rq(struct task_struct *p) 2159 { 2160 return task_on_rq_queued(p); 2161 } 2162 2163 unsigned long get_wchan(struct task_struct *p) 2164 { 2165 unsigned long ip = 0; 2166 unsigned int state; 2167 2168 if (!p || p == current) 2169 return 0; 2170 2171 /* Only get wchan if task is blocked and we can keep it that way. */ 2172 raw_spin_lock_irq(&p->pi_lock); 2173 state = READ_ONCE(p->__state); 2174 smp_rmb(); /* see try_to_wake_up() */ 2175 if (state != TASK_RUNNING && state != TASK_WAKING && !p->on_rq) 2176 ip = __get_wchan(p); 2177 raw_spin_unlock_irq(&p->pi_lock); 2178 2179 return ip; 2180 } 2181 2182 void enqueue_task(struct rq *rq, struct task_struct *p, int flags) 2183 { 2184 if (!(flags & ENQUEUE_NOCLOCK)) 2185 update_rq_clock(rq); 2186 2187 /* 2188 * Can be before ->enqueue_task() because uclamp considers the 2189 * ENQUEUE_DELAYED task before its ->sched_delayed gets cleared 2190 * in ->enqueue_task(). 2191 */ 2192 uclamp_rq_inc(rq, p, flags); 2193 2194 p->sched_class->enqueue_task(rq, p, flags); 2195 2196 psi_enqueue(p, flags); 2197 2198 if (!(flags & ENQUEUE_RESTORE)) 2199 sched_info_enqueue(rq, p); 2200 2201 if (sched_core_enabled(rq)) 2202 sched_core_enqueue(rq, p); 2203 } 2204 2205 /* 2206 * Must only return false when DEQUEUE_SLEEP. 2207 */ 2208 inline bool dequeue_task(struct rq *rq, struct task_struct *p, int flags) 2209 { 2210 if (sched_core_enabled(rq)) 2211 sched_core_dequeue(rq, p, flags); 2212 2213 if (!(flags & DEQUEUE_NOCLOCK)) 2214 update_rq_clock(rq); 2215 2216 if (!(flags & DEQUEUE_SAVE)) 2217 sched_info_dequeue(rq, p); 2218 2219 psi_dequeue(p, flags); 2220 2221 /* 2222 * Must be before ->dequeue_task() because ->dequeue_task() can 'fail' 2223 * and mark the task ->sched_delayed. 2224 */ 2225 uclamp_rq_dec(rq, p); 2226 return p->sched_class->dequeue_task(rq, p, flags); 2227 } 2228 2229 void activate_task(struct rq *rq, struct task_struct *p, int flags) 2230 { 2231 if (task_on_rq_migrating(p)) 2232 flags |= ENQUEUE_MIGRATED; 2233 2234 enqueue_task(rq, p, flags); 2235 2236 WRITE_ONCE(p->on_rq, TASK_ON_RQ_QUEUED); 2237 ASSERT_EXCLUSIVE_WRITER(p->on_rq); 2238 } 2239 2240 void deactivate_task(struct rq *rq, struct task_struct *p, int flags) 2241 { 2242 WARN_ON_ONCE(flags & DEQUEUE_SLEEP); 2243 2244 WRITE_ONCE(p->on_rq, TASK_ON_RQ_MIGRATING); 2245 ASSERT_EXCLUSIVE_WRITER(p->on_rq); 2246 2247 /* 2248 * Code explicitly relies on TASK_ON_RQ_MIGRATING begin set *before* 2249 * dequeue_task() and cleared *after* enqueue_task(). 2250 */ 2251 2252 dequeue_task(rq, p, flags); 2253 } 2254 2255 static void block_task(struct rq *rq, struct task_struct *p, unsigned long task_state) 2256 { 2257 int flags = DEQUEUE_NOCLOCK; 2258 2259 p->sched_contributes_to_load = 2260 (task_state & TASK_UNINTERRUPTIBLE) && 2261 !(task_state & TASK_NOLOAD) && 2262 !(task_state & TASK_FROZEN); 2263 2264 if (unlikely(is_special_task_state(task_state))) 2265 flags |= DEQUEUE_SPECIAL; 2266 2267 /* 2268 * __schedule() ttwu() 2269 * prev_state = prev->state; if (p->on_rq && ...) 2270 * if (prev_state) goto out; 2271 * p->on_rq = 0; smp_acquire__after_ctrl_dep(); 2272 * p->state = TASK_WAKING 2273 * 2274 * Where __schedule() and ttwu() have matching control dependencies. 2275 * 2276 * After this, schedule() must not care about p->state any more. 2277 */ 2278 if (dequeue_task(rq, p, DEQUEUE_SLEEP | flags)) 2279 __block_task(rq, p); 2280 } 2281 2282 /** 2283 * task_curr - is this task currently executing on a CPU? 2284 * @p: the task in question. 2285 * 2286 * Return: 1 if the task is currently executing. 0 otherwise. 2287 */ 2288 inline int task_curr(const struct task_struct *p) 2289 { 2290 return cpu_curr(task_cpu(p)) == p; 2291 } 2292 2293 void wakeup_preempt(struct rq *rq, struct task_struct *p, int flags) 2294 { 2295 struct task_struct *donor = rq->donor; 2296 2297 if (p->sched_class == rq->next_class) { 2298 rq->next_class->wakeup_preempt(rq, p, flags); 2299 2300 } else if (sched_class_above(p->sched_class, rq->next_class)) { 2301 rq->next_class->wakeup_preempt(rq, p, flags); 2302 resched_curr(rq); 2303 rq->next_class = p->sched_class; 2304 } 2305 2306 /* 2307 * A queue event has occurred, and we're going to schedule. In 2308 * this case, we can save a useless back to back clock update. 2309 */ 2310 if (task_on_rq_queued(donor) && test_tsk_need_resched(rq->curr)) 2311 rq_clock_skip_update(rq); 2312 } 2313 2314 static __always_inline 2315 int __task_state_match(struct task_struct *p, unsigned int state) 2316 { 2317 if (READ_ONCE(p->__state) & state) 2318 return 1; 2319 2320 if (READ_ONCE(p->saved_state) & state) 2321 return -1; 2322 2323 return 0; 2324 } 2325 2326 static __always_inline 2327 int task_state_match(struct task_struct *p, unsigned int state) 2328 { 2329 /* 2330 * Serialize against current_save_and_set_rtlock_wait_state(), 2331 * current_restore_rtlock_saved_state(), and __refrigerator(). 2332 */ 2333 guard(raw_spinlock_irq)(&p->pi_lock); 2334 return __task_state_match(p, state); 2335 } 2336 2337 /* 2338 * wait_task_inactive - wait for a thread to unschedule. 2339 * 2340 * Wait for the thread to block in any of the states set in @match_state. 2341 * If it changes, i.e. @p might have woken up, then return zero. When we 2342 * succeed in waiting for @p to be off its CPU, we return a positive number 2343 * (its total switch count). If a second call a short while later returns the 2344 * same number, the caller can be sure that @p has remained unscheduled the 2345 * whole time. 2346 * 2347 * The caller must ensure that the task *will* unschedule sometime soon, 2348 * else this function might spin for a *long* time. This function can't 2349 * be called with interrupts off, or it may introduce deadlock with 2350 * smp_call_function() if an IPI is sent by the same process we are 2351 * waiting to become inactive. 2352 */ 2353 unsigned long wait_task_inactive(struct task_struct *p, unsigned int match_state) 2354 { 2355 int running, queued, match; 2356 struct rq_flags rf; 2357 unsigned long ncsw; 2358 struct rq *rq; 2359 2360 for (;;) { 2361 /* 2362 * We do the initial early heuristics without holding 2363 * any task-queue locks at all. We'll only try to get 2364 * the runqueue lock when things look like they will 2365 * work out! 2366 */ 2367 rq = task_rq(p); 2368 2369 /* 2370 * If the task is actively running on another CPU 2371 * still, just relax and busy-wait without holding 2372 * any locks. 2373 * 2374 * NOTE! Since we don't hold any locks, it's not 2375 * even sure that "rq" stays as the right runqueue! 2376 * But we don't care, since "task_on_cpu()" will 2377 * return false if the runqueue has changed and p 2378 * is actually now running somewhere else! 2379 */ 2380 while (task_on_cpu(rq, p)) { 2381 if (!task_state_match(p, match_state)) 2382 return 0; 2383 cpu_relax(); 2384 } 2385 2386 /* 2387 * Ok, time to look more closely! We need the rq 2388 * lock now, to be *sure*. If we're wrong, we'll 2389 * just go back and repeat. 2390 */ 2391 rq = task_rq_lock(p, &rf); 2392 /* 2393 * If task is sched_delayed, force dequeue it, to avoid always 2394 * hitting the tick timeout in the queued case 2395 */ 2396 if (p->se.sched_delayed) 2397 dequeue_task(rq, p, DEQUEUE_SLEEP | DEQUEUE_DELAYED); 2398 trace_sched_wait_task(p); 2399 running = task_on_cpu(rq, p); 2400 queued = task_on_rq_queued(p); 2401 ncsw = 0; 2402 if ((match = __task_state_match(p, match_state))) { 2403 /* 2404 * When matching on p->saved_state, consider this task 2405 * still queued so it will wait. 2406 */ 2407 if (match < 0) 2408 queued = 1; 2409 ncsw = p->nvcsw | LONG_MIN; /* sets MSB */ 2410 } 2411 task_rq_unlock(rq, p, &rf); 2412 2413 /* 2414 * If it changed from the expected state, bail out now. 2415 */ 2416 if (unlikely(!ncsw)) 2417 break; 2418 2419 /* 2420 * Was it really running after all now that we 2421 * checked with the proper locks actually held? 2422 * 2423 * Oops. Go back and try again.. 2424 */ 2425 if (unlikely(running)) { 2426 cpu_relax(); 2427 continue; 2428 } 2429 2430 /* 2431 * It's not enough that it's not actively running, 2432 * it must be off the runqueue _entirely_, and not 2433 * preempted! 2434 * 2435 * So if it was still runnable (but just not actively 2436 * running right now), it's preempted, and we should 2437 * yield - it could be a while. 2438 */ 2439 if (unlikely(queued)) { 2440 ktime_t to = NSEC_PER_SEC / HZ; 2441 2442 set_current_state(TASK_UNINTERRUPTIBLE); 2443 schedule_hrtimeout(&to, HRTIMER_MODE_REL_HARD); 2444 continue; 2445 } 2446 2447 /* 2448 * Ahh, all good. It wasn't running, and it wasn't 2449 * runnable, which means that it will never become 2450 * running in the future either. We're all done! 2451 */ 2452 break; 2453 } 2454 2455 return ncsw; 2456 } 2457 2458 static void 2459 do_set_cpus_allowed(struct task_struct *p, struct affinity_context *ctx); 2460 2461 static void migrate_disable_switch(struct rq *rq, struct task_struct *p) 2462 { 2463 struct affinity_context ac = { 2464 .new_mask = cpumask_of(rq->cpu), 2465 .flags = SCA_MIGRATE_DISABLE, 2466 }; 2467 2468 if (likely(!p->migration_disabled)) 2469 return; 2470 2471 if (p->cpus_ptr != &p->cpus_mask) 2472 return; 2473 2474 scoped_guard (task_rq_lock, p) 2475 do_set_cpus_allowed(p, &ac); 2476 } 2477 2478 void ___migrate_enable(void) 2479 { 2480 struct task_struct *p = current; 2481 struct affinity_context ac = { 2482 .new_mask = &p->cpus_mask, 2483 .flags = SCA_MIGRATE_ENABLE, 2484 }; 2485 2486 __set_cpus_allowed_ptr(p, &ac); 2487 } 2488 EXPORT_SYMBOL_GPL(___migrate_enable); 2489 2490 void migrate_disable(void) 2491 { 2492 __migrate_disable(); 2493 } 2494 EXPORT_SYMBOL_GPL(migrate_disable); 2495 2496 void migrate_enable(void) 2497 { 2498 __migrate_enable(); 2499 } 2500 EXPORT_SYMBOL_GPL(migrate_enable); 2501 2502 static inline bool rq_has_pinned_tasks(struct rq *rq) 2503 { 2504 return rq->nr_pinned; 2505 } 2506 2507 /* 2508 * Per-CPU kthreads are allowed to run on !active && online CPUs, see 2509 * __set_cpus_allowed_ptr() and select_fallback_rq(). 2510 */ 2511 static inline bool is_cpu_allowed(struct task_struct *p, int cpu) 2512 { 2513 /* When not in the task's cpumask, no point in looking further. */ 2514 if (!task_allowed_on_cpu(p, cpu)) 2515 return false; 2516 2517 /* migrate_disabled() must be allowed to finish. */ 2518 if (is_migration_disabled(p)) 2519 return cpu_online(cpu); 2520 2521 /* Non kernel threads are not allowed during either online or offline. */ 2522 if (!(p->flags & PF_KTHREAD)) 2523 return cpu_active(cpu); 2524 2525 /* KTHREAD_IS_PER_CPU is always allowed. */ 2526 if (kthread_is_per_cpu(p)) 2527 return cpu_online(cpu); 2528 2529 /* Regular kernel threads don't get to stay during offline. */ 2530 if (cpu_dying(cpu)) 2531 return false; 2532 2533 /* But are allowed during online. */ 2534 return cpu_online(cpu); 2535 } 2536 2537 /* 2538 * This is how migration works: 2539 * 2540 * 1) we invoke migration_cpu_stop() on the target CPU using 2541 * stop_one_cpu(). 2542 * 2) stopper starts to run (implicitly forcing the migrated thread 2543 * off the CPU) 2544 * 3) it checks whether the migrated task is still in the wrong runqueue. 2545 * 4) if it's in the wrong runqueue then the migration thread removes 2546 * it and puts it into the right queue. 2547 * 5) stopper completes and stop_one_cpu() returns and the migration 2548 * is done. 2549 */ 2550 2551 /* 2552 * move_queued_task - move a queued task to new rq. 2553 * 2554 * Returns (locked) new rq. Old rq's lock is released. 2555 */ 2556 static struct rq *move_queued_task(struct rq *rq, struct rq_flags *rf, 2557 struct task_struct *p, int new_cpu) 2558 __must_hold(__rq_lockp(rq)) 2559 { 2560 lockdep_assert_rq_held(rq); 2561 2562 deactivate_task(rq, p, DEQUEUE_NOCLOCK); 2563 set_task_cpu(p, new_cpu); 2564 rq_unlock(rq, rf); 2565 2566 rq = cpu_rq(new_cpu); 2567 2568 rq_lock(rq, rf); 2569 WARN_ON_ONCE(task_cpu(p) != new_cpu); 2570 activate_task(rq, p, 0); 2571 wakeup_preempt(rq, p, 0); 2572 2573 return rq; 2574 } 2575 2576 struct migration_arg { 2577 struct task_struct *task; 2578 int dest_cpu; 2579 struct set_affinity_pending *pending; 2580 }; 2581 2582 /* 2583 * @refs: number of wait_for_completion() 2584 * @stop_pending: is @stop_work in use 2585 */ 2586 struct set_affinity_pending { 2587 refcount_t refs; 2588 unsigned int stop_pending; 2589 struct completion done; 2590 struct cpu_stop_work stop_work; 2591 struct migration_arg arg; 2592 }; 2593 2594 /* 2595 * Move (not current) task off this CPU, onto the destination CPU. We're doing 2596 * this because either it can't run here any more (set_cpus_allowed() 2597 * away from this CPU, or CPU going down), or because we're 2598 * attempting to rebalance this task on exec (sched_exec). 2599 * 2600 * So we race with normal scheduler movements, but that's OK, as long 2601 * as the task is no longer on this CPU. 2602 */ 2603 static struct rq *__migrate_task(struct rq *rq, struct rq_flags *rf, 2604 struct task_struct *p, int dest_cpu) 2605 __must_hold(__rq_lockp(rq)) 2606 { 2607 /* Affinity changed (again). */ 2608 if (!is_cpu_allowed(p, dest_cpu)) 2609 return rq; 2610 2611 rq = move_queued_task(rq, rf, p, dest_cpu); 2612 2613 return rq; 2614 } 2615 2616 /* 2617 * migration_cpu_stop - this will be executed by a high-prio stopper thread 2618 * and performs thread migration by bumping thread off CPU then 2619 * 'pushing' onto another runqueue. 2620 */ 2621 static int migration_cpu_stop(void *data) 2622 { 2623 struct migration_arg *arg = data; 2624 struct set_affinity_pending *pending = arg->pending; 2625 struct task_struct *p = arg->task; 2626 struct rq *rq = this_rq(); 2627 bool complete = false; 2628 struct rq_flags rf; 2629 2630 /* 2631 * The original target CPU might have gone down and we might 2632 * be on another CPU but it doesn't matter. 2633 */ 2634 local_irq_save(rf.flags); 2635 /* 2636 * We need to explicitly wake pending tasks before running 2637 * __migrate_task() such that we will not miss enforcing cpus_ptr 2638 * during wakeups, see set_cpus_allowed_ptr()'s TASK_WAKING test. 2639 */ 2640 flush_smp_call_function_queue(); 2641 2642 /* 2643 * We may change the underlying rq, but the locks held will 2644 * appropriately be "transferred" when switching. 2645 */ 2646 context_unsafe_alias(rq); 2647 2648 raw_spin_lock(&p->pi_lock); 2649 rq_lock(rq, &rf); 2650 2651 /* 2652 * If we were passed a pending, then ->stop_pending was set, thus 2653 * p->migration_pending must have remained stable. 2654 */ 2655 WARN_ON_ONCE(pending && pending != p->migration_pending); 2656 2657 /* 2658 * If task_rq(p) != rq, it cannot be migrated here, because we're 2659 * holding rq->lock, if p->on_rq == 0 it cannot get enqueued because 2660 * we're holding p->pi_lock. 2661 */ 2662 if (task_rq(p) == rq) { 2663 if (is_migration_disabled(p)) 2664 goto out; 2665 2666 if (pending) { 2667 p->migration_pending = NULL; 2668 complete = true; 2669 2670 if (cpumask_test_cpu(task_cpu(p), &p->cpus_mask)) 2671 goto out; 2672 } 2673 2674 if (task_on_rq_queued(p)) { 2675 update_rq_clock(rq); 2676 rq = __migrate_task(rq, &rf, p, arg->dest_cpu); 2677 } else { 2678 p->wake_cpu = arg->dest_cpu; 2679 } 2680 2681 /* 2682 * XXX __migrate_task() can fail, at which point we might end 2683 * up running on a dodgy CPU, AFAICT this can only happen 2684 * during CPU hotplug, at which point we'll get pushed out 2685 * anyway, so it's probably not a big deal. 2686 */ 2687 2688 } else if (pending) { 2689 /* 2690 * This happens when we get migrated between migrate_enable()'s 2691 * preempt_enable() and scheduling the stopper task. At that 2692 * point we're a regular task again and not current anymore. 2693 * 2694 * A !PREEMPT kernel has a giant hole here, which makes it far 2695 * more likely. 2696 */ 2697 2698 /* 2699 * The task moved before the stopper got to run. We're holding 2700 * ->pi_lock, so the allowed mask is stable - if it got 2701 * somewhere allowed, we're done. 2702 */ 2703 if (cpumask_test_cpu(task_cpu(p), p->cpus_ptr)) { 2704 p->migration_pending = NULL; 2705 complete = true; 2706 goto out; 2707 } 2708 2709 /* 2710 * When migrate_enable() hits a rq mis-match we can't reliably 2711 * determine is_migration_disabled() and so have to chase after 2712 * it. 2713 */ 2714 WARN_ON_ONCE(!pending->stop_pending); 2715 preempt_disable(); 2716 rq_unlock(rq, &rf); 2717 raw_spin_unlock_irqrestore(&p->pi_lock, rf.flags); 2718 stop_one_cpu_nowait(task_cpu(p), migration_cpu_stop, 2719 &pending->arg, &pending->stop_work); 2720 preempt_enable(); 2721 return 0; 2722 } 2723 out: 2724 if (pending) 2725 pending->stop_pending = false; 2726 rq_unlock(rq, &rf); 2727 raw_spin_unlock_irqrestore(&p->pi_lock, rf.flags); 2728 2729 if (complete) 2730 complete_all(&pending->done); 2731 2732 return 0; 2733 } 2734 2735 int push_cpu_stop(void *arg) 2736 { 2737 struct rq *lowest_rq = NULL, *rq = this_rq(); 2738 struct task_struct *p = arg; 2739 2740 raw_spin_lock_irq(&p->pi_lock); 2741 raw_spin_rq_lock(rq); 2742 2743 if (task_rq(p) != rq) 2744 goto out_unlock; 2745 2746 if (is_migration_disabled(p)) { 2747 p->migration_flags |= MDF_PUSH; 2748 goto out_unlock; 2749 } 2750 2751 p->migration_flags &= ~MDF_PUSH; 2752 2753 if (p->sched_class->find_lock_rq) 2754 lowest_rq = p->sched_class->find_lock_rq(p, rq); 2755 2756 if (!lowest_rq) 2757 goto out_unlock; 2758 2759 lockdep_assert_rq_held(lowest_rq); 2760 2761 // XXX validate p is still the highest prio task 2762 if (task_rq(p) == rq) { 2763 move_queued_task_locked(rq, lowest_rq, p); 2764 resched_curr(lowest_rq); 2765 } 2766 2767 double_unlock_balance(rq, lowest_rq); 2768 2769 out_unlock: 2770 rq->push_busy = false; 2771 raw_spin_rq_unlock(rq); 2772 raw_spin_unlock_irq(&p->pi_lock); 2773 2774 put_task_struct(p); 2775 return 0; 2776 } 2777 2778 static inline void mm_update_cpus_allowed(struct mm_struct *mm, const cpumask_t *affmask); 2779 2780 /* 2781 * sched_class::set_cpus_allowed must do the below, but is not required to 2782 * actually call this function. 2783 */ 2784 void set_cpus_allowed_common(struct task_struct *p, struct affinity_context *ctx) 2785 { 2786 if (ctx->flags & (SCA_MIGRATE_ENABLE | SCA_MIGRATE_DISABLE)) { 2787 p->cpus_ptr = ctx->new_mask; 2788 return; 2789 } 2790 2791 cpumask_copy(&p->cpus_mask, ctx->new_mask); 2792 p->nr_cpus_allowed = cpumask_weight(ctx->new_mask); 2793 mm_update_cpus_allowed(p->mm, ctx->new_mask); 2794 2795 /* 2796 * Swap in a new user_cpus_ptr if SCA_USER flag set 2797 */ 2798 if (ctx->flags & SCA_USER) 2799 swap(p->user_cpus_ptr, ctx->user_mask); 2800 } 2801 2802 static void 2803 do_set_cpus_allowed(struct task_struct *p, struct affinity_context *ctx) 2804 { 2805 scoped_guard (sched_change, p, DEQUEUE_SAVE) 2806 p->sched_class->set_cpus_allowed(p, ctx); 2807 } 2808 2809 /* 2810 * Used for kthread_bind() and select_fallback_rq(), in both cases the user 2811 * affinity (if any) should be destroyed too. 2812 */ 2813 void set_cpus_allowed_force(struct task_struct *p, const struct cpumask *new_mask) 2814 { 2815 struct affinity_context ac = { 2816 .new_mask = new_mask, 2817 .user_mask = NULL, 2818 .flags = SCA_USER, /* clear the user requested mask */ 2819 }; 2820 union cpumask_rcuhead { 2821 cpumask_t cpumask; 2822 struct rcu_head rcu; 2823 }; 2824 2825 scoped_guard (__task_rq_lock, p) 2826 do_set_cpus_allowed(p, &ac); 2827 2828 /* 2829 * Because this is called with p->pi_lock held, it is not possible 2830 * to use kfree() here (when PREEMPT_RT=y), therefore punt to using 2831 * kfree_rcu(). 2832 */ 2833 kfree_rcu((union cpumask_rcuhead *)ac.user_mask, rcu); 2834 } 2835 2836 int dup_user_cpus_ptr(struct task_struct *dst, struct task_struct *src, 2837 int node) 2838 { 2839 cpumask_t *user_mask; 2840 unsigned long flags; 2841 2842 /* 2843 * Always clear dst->user_cpus_ptr first as their user_cpus_ptr's 2844 * may differ by now due to racing. 2845 */ 2846 dst->user_cpus_ptr = NULL; 2847 2848 /* 2849 * This check is racy and losing the race is a valid situation. 2850 * It is not worth the extra overhead of taking the pi_lock on 2851 * every fork/clone. 2852 */ 2853 if (data_race(!src->user_cpus_ptr)) 2854 return 0; 2855 2856 user_mask = alloc_user_cpus_ptr(node); 2857 if (!user_mask) 2858 return -ENOMEM; 2859 2860 /* 2861 * Use pi_lock to protect content of user_cpus_ptr 2862 * 2863 * Though unlikely, user_cpus_ptr can be reset to NULL by a concurrent 2864 * set_cpus_allowed_force(). 2865 */ 2866 raw_spin_lock_irqsave(&src->pi_lock, flags); 2867 if (src->user_cpus_ptr) { 2868 swap(dst->user_cpus_ptr, user_mask); 2869 cpumask_copy(dst->user_cpus_ptr, src->user_cpus_ptr); 2870 } 2871 raw_spin_unlock_irqrestore(&src->pi_lock, flags); 2872 2873 if (unlikely(user_mask)) 2874 kfree(user_mask); 2875 2876 return 0; 2877 } 2878 2879 static inline struct cpumask *clear_user_cpus_ptr(struct task_struct *p) 2880 { 2881 struct cpumask *user_mask = NULL; 2882 2883 swap(p->user_cpus_ptr, user_mask); 2884 2885 return user_mask; 2886 } 2887 2888 void release_user_cpus_ptr(struct task_struct *p) 2889 { 2890 kfree(clear_user_cpus_ptr(p)); 2891 } 2892 2893 /* 2894 * This function is wildly self concurrent; here be dragons. 2895 * 2896 * 2897 * When given a valid mask, __set_cpus_allowed_ptr() must block until the 2898 * designated task is enqueued on an allowed CPU. If that task is currently 2899 * running, we have to kick it out using the CPU stopper. 2900 * 2901 * Migrate-Disable comes along and tramples all over our nice sandcastle. 2902 * Consider: 2903 * 2904 * Initial conditions: P0->cpus_mask = [0, 1] 2905 * 2906 * P0@CPU0 P1 2907 * 2908 * migrate_disable(); 2909 * <preempted> 2910 * set_cpus_allowed_ptr(P0, [1]); 2911 * 2912 * P1 *cannot* return from this set_cpus_allowed_ptr() call until P0 executes 2913 * its outermost migrate_enable() (i.e. it exits its Migrate-Disable region). 2914 * This means we need the following scheme: 2915 * 2916 * P0@CPU0 P1 2917 * 2918 * migrate_disable(); 2919 * <preempted> 2920 * set_cpus_allowed_ptr(P0, [1]); 2921 * <blocks> 2922 * <resumes> 2923 * migrate_enable(); 2924 * __set_cpus_allowed_ptr(); 2925 * <wakes local stopper> 2926 * `--> <woken on migration completion> 2927 * 2928 * Now the fun stuff: there may be several P1-like tasks, i.e. multiple 2929 * concurrent set_cpus_allowed_ptr(P0, [*]) calls. CPU affinity changes of any 2930 * task p are serialized by p->pi_lock, which we can leverage: the one that 2931 * should come into effect at the end of the Migrate-Disable region is the last 2932 * one. This means we only need to track a single cpumask (i.e. p->cpus_mask), 2933 * but we still need to properly signal those waiting tasks at the appropriate 2934 * moment. 2935 * 2936 * This is implemented using struct set_affinity_pending. The first 2937 * __set_cpus_allowed_ptr() caller within a given Migrate-Disable region will 2938 * setup an instance of that struct and install it on the targeted task_struct. 2939 * Any and all further callers will reuse that instance. Those then wait for 2940 * a completion signaled at the tail of the CPU stopper callback (1), triggered 2941 * on the end of the Migrate-Disable region (i.e. outermost migrate_enable()). 2942 * 2943 * 2944 * (1) In the cases covered above. There is one more where the completion is 2945 * signaled within affine_move_task() itself: when a subsequent affinity request 2946 * occurs after the stopper bailed out due to the targeted task still being 2947 * Migrate-Disable. Consider: 2948 * 2949 * Initial conditions: P0->cpus_mask = [0, 1] 2950 * 2951 * CPU0 P1 P2 2952 * <P0> 2953 * migrate_disable(); 2954 * <preempted> 2955 * set_cpus_allowed_ptr(P0, [1]); 2956 * <blocks> 2957 * <migration/0> 2958 * migration_cpu_stop() 2959 * is_migration_disabled() 2960 * <bails> 2961 * set_cpus_allowed_ptr(P0, [0, 1]); 2962 * <signal completion> 2963 * <awakes> 2964 * 2965 * Note that the above is safe vs a concurrent migrate_enable(), as any 2966 * pending affinity completion is preceded by an uninstallation of 2967 * p->migration_pending done with p->pi_lock held. 2968 */ 2969 static int affine_move_task(struct rq *rq, struct task_struct *p, struct rq_flags *rf, 2970 int dest_cpu, unsigned int flags) 2971 __releases(__rq_lockp(rq), &p->pi_lock) 2972 { 2973 struct set_affinity_pending my_pending = { }, *pending = NULL; 2974 bool stop_pending, complete = false; 2975 2976 /* 2977 * Can the task run on the task's current CPU? If so, we're done 2978 * 2979 * We are also done if the task is the current donor, boosting a lock- 2980 * holding proxy, (and potentially has been migrated outside its 2981 * current or previous affinity mask) 2982 */ 2983 if (cpumask_test_cpu(task_cpu(p), &p->cpus_mask) || 2984 (task_current_donor(rq, p) && !task_current(rq, p))) { 2985 struct task_struct *push_task = NULL; 2986 2987 if ((flags & SCA_MIGRATE_ENABLE) && 2988 (p->migration_flags & MDF_PUSH) && !rq->push_busy) { 2989 rq->push_busy = true; 2990 push_task = get_task_struct(p); 2991 } 2992 2993 /* 2994 * If there are pending waiters, but no pending stop_work, 2995 * then complete now. 2996 */ 2997 pending = p->migration_pending; 2998 if (pending && !pending->stop_pending) { 2999 p->migration_pending = NULL; 3000 complete = true; 3001 } 3002 3003 preempt_disable(); 3004 task_rq_unlock(rq, p, rf); 3005 if (push_task) { 3006 stop_one_cpu_nowait(rq->cpu, push_cpu_stop, 3007 p, &rq->push_work); 3008 } 3009 preempt_enable(); 3010 3011 if (complete) 3012 complete_all(&pending->done); 3013 3014 return 0; 3015 } 3016 3017 if (!(flags & SCA_MIGRATE_ENABLE)) { 3018 /* serialized by p->pi_lock */ 3019 if (!p->migration_pending) { 3020 /* Install the request */ 3021 refcount_set(&my_pending.refs, 1); 3022 init_completion(&my_pending.done); 3023 my_pending.arg = (struct migration_arg) { 3024 .task = p, 3025 .dest_cpu = dest_cpu, 3026 .pending = &my_pending, 3027 }; 3028 3029 p->migration_pending = &my_pending; 3030 } else { 3031 pending = p->migration_pending; 3032 refcount_inc(&pending->refs); 3033 /* 3034 * Affinity has changed, but we've already installed a 3035 * pending. migration_cpu_stop() *must* see this, else 3036 * we risk a completion of the pending despite having a 3037 * task on a disallowed CPU. 3038 * 3039 * Serialized by p->pi_lock, so this is safe. 3040 */ 3041 pending->arg.dest_cpu = dest_cpu; 3042 } 3043 } 3044 pending = p->migration_pending; 3045 /* 3046 * - !MIGRATE_ENABLE: 3047 * we'll have installed a pending if there wasn't one already. 3048 * 3049 * - MIGRATE_ENABLE: 3050 * we're here because the current CPU isn't matching anymore, 3051 * the only way that can happen is because of a concurrent 3052 * set_cpus_allowed_ptr() call, which should then still be 3053 * pending completion. 3054 * 3055 * Either way, we really should have a @pending here. 3056 */ 3057 if (WARN_ON_ONCE(!pending)) { 3058 task_rq_unlock(rq, p, rf); 3059 return -EINVAL; 3060 } 3061 3062 if (task_on_cpu(rq, p) || READ_ONCE(p->__state) == TASK_WAKING) { 3063 /* 3064 * MIGRATE_ENABLE gets here because 'p == current', but for 3065 * anything else we cannot do is_migration_disabled(), punt 3066 * and have the stopper function handle it all race-free. 3067 */ 3068 stop_pending = pending->stop_pending; 3069 if (!stop_pending) 3070 pending->stop_pending = true; 3071 3072 if (flags & SCA_MIGRATE_ENABLE) 3073 p->migration_flags &= ~MDF_PUSH; 3074 3075 preempt_disable(); 3076 task_rq_unlock(rq, p, rf); 3077 if (!stop_pending) { 3078 stop_one_cpu_nowait(cpu_of(rq), migration_cpu_stop, 3079 &pending->arg, &pending->stop_work); 3080 } 3081 preempt_enable(); 3082 3083 if (flags & SCA_MIGRATE_ENABLE) 3084 return 0; 3085 } else { 3086 3087 if (!is_migration_disabled(p)) { 3088 if (task_on_rq_queued(p)) 3089 rq = move_queued_task(rq, rf, p, dest_cpu); 3090 3091 if (!pending->stop_pending) { 3092 p->migration_pending = NULL; 3093 complete = true; 3094 } 3095 } 3096 task_rq_unlock(rq, p, rf); 3097 3098 if (complete) 3099 complete_all(&pending->done); 3100 } 3101 3102 wait_for_completion(&pending->done); 3103 3104 if (refcount_dec_and_test(&pending->refs)) 3105 wake_up_var(&pending->refs); /* No UaF, just an address */ 3106 3107 /* 3108 * Block the original owner of &pending until all subsequent callers 3109 * have seen the completion and decremented the refcount 3110 */ 3111 wait_var_event(&my_pending.refs, !refcount_read(&my_pending.refs)); 3112 3113 /* ARGH */ 3114 WARN_ON_ONCE(my_pending.stop_pending); 3115 3116 return 0; 3117 } 3118 3119 /* 3120 * Called with both p->pi_lock and rq->lock held; drops both before returning. 3121 */ 3122 static int __set_cpus_allowed_ptr_locked(struct task_struct *p, 3123 struct affinity_context *ctx, 3124 struct rq *rq, 3125 struct rq_flags *rf) 3126 __releases(__rq_lockp(rq), &p->pi_lock) 3127 { 3128 const struct cpumask *cpu_allowed_mask = task_cpu_possible_mask(p); 3129 const struct cpumask *cpu_valid_mask = cpu_active_mask; 3130 bool kthread = p->flags & PF_KTHREAD; 3131 unsigned int dest_cpu; 3132 int ret = 0; 3133 3134 if (kthread || is_migration_disabled(p)) { 3135 /* 3136 * Kernel threads are allowed on online && !active CPUs, 3137 * however, during cpu-hot-unplug, even these might get pushed 3138 * away if not KTHREAD_IS_PER_CPU. 3139 * 3140 * Specifically, migration_disabled() tasks must not fail the 3141 * cpumask_any_and_distribute() pick below, esp. so on 3142 * SCA_MIGRATE_ENABLE, otherwise we'll not call 3143 * set_cpus_allowed_common() and actually reset p->cpus_ptr. 3144 */ 3145 cpu_valid_mask = cpu_online_mask; 3146 } 3147 3148 if (!kthread && !cpumask_subset(ctx->new_mask, cpu_allowed_mask)) { 3149 ret = -EINVAL; 3150 goto out; 3151 } 3152 3153 /* 3154 * Must re-check here, to close a race against __kthread_bind(), 3155 * sched_setaffinity() is not guaranteed to observe the flag. 3156 */ 3157 if ((ctx->flags & SCA_CHECK) && (p->flags & PF_NO_SETAFFINITY)) { 3158 ret = -EINVAL; 3159 goto out; 3160 } 3161 3162 if (!(ctx->flags & SCA_MIGRATE_ENABLE)) { 3163 if (cpumask_equal(&p->cpus_mask, ctx->new_mask)) { 3164 if (ctx->flags & SCA_USER) 3165 swap(p->user_cpus_ptr, ctx->user_mask); 3166 goto out; 3167 } 3168 3169 if (WARN_ON_ONCE(p == current && 3170 is_migration_disabled(p) && 3171 !cpumask_test_cpu(task_cpu(p), ctx->new_mask))) { 3172 ret = -EBUSY; 3173 goto out; 3174 } 3175 } 3176 3177 /* 3178 * Picking a ~random cpu helps in cases where we are changing affinity 3179 * for groups of tasks (ie. cpuset), so that load balancing is not 3180 * immediately required to distribute the tasks within their new mask. 3181 */ 3182 dest_cpu = cpumask_any_and_distribute(cpu_valid_mask, ctx->new_mask); 3183 if (dest_cpu >= nr_cpu_ids) { 3184 ret = -EINVAL; 3185 goto out; 3186 } 3187 3188 do_set_cpus_allowed(p, ctx); 3189 3190 return affine_move_task(rq, p, rf, dest_cpu, ctx->flags); 3191 3192 out: 3193 task_rq_unlock(rq, p, rf); 3194 3195 return ret; 3196 } 3197 3198 /* 3199 * Change a given task's CPU affinity. Migrate the thread to a 3200 * proper CPU and schedule it away if the CPU it's executing on 3201 * is removed from the allowed bitmask. 3202 * 3203 * NOTE: the caller must have a valid reference to the task, the 3204 * task must not exit() & deallocate itself prematurely. The 3205 * call is not atomic; no spinlocks may be held. 3206 */ 3207 int __set_cpus_allowed_ptr(struct task_struct *p, struct affinity_context *ctx) 3208 { 3209 struct rq_flags rf; 3210 struct rq *rq; 3211 3212 rq = task_rq_lock(p, &rf); 3213 /* 3214 * Masking should be skipped if SCA_USER or any of the SCA_MIGRATE_* 3215 * flags are set. 3216 */ 3217 if (p->user_cpus_ptr && 3218 !(ctx->flags & (SCA_USER | SCA_MIGRATE_ENABLE | SCA_MIGRATE_DISABLE)) && 3219 cpumask_and(rq->scratch_mask, ctx->new_mask, p->user_cpus_ptr)) 3220 ctx->new_mask = rq->scratch_mask; 3221 3222 return __set_cpus_allowed_ptr_locked(p, ctx, rq, &rf); 3223 } 3224 3225 int set_cpus_allowed_ptr(struct task_struct *p, const struct cpumask *new_mask) 3226 { 3227 struct affinity_context ac = { 3228 .new_mask = new_mask, 3229 .flags = 0, 3230 }; 3231 3232 return __set_cpus_allowed_ptr(p, &ac); 3233 } 3234 EXPORT_SYMBOL_GPL(set_cpus_allowed_ptr); 3235 3236 /* 3237 * Change a given task's CPU affinity to the intersection of its current 3238 * affinity mask and @subset_mask, writing the resulting mask to @new_mask. 3239 * If user_cpus_ptr is defined, use it as the basis for restricting CPU 3240 * affinity or use cpu_online_mask instead. 3241 * 3242 * If the resulting mask is empty, leave the affinity unchanged and return 3243 * -EINVAL. 3244 */ 3245 static int restrict_cpus_allowed_ptr(struct task_struct *p, 3246 struct cpumask *new_mask, 3247 const struct cpumask *subset_mask) 3248 { 3249 struct affinity_context ac = { 3250 .new_mask = new_mask, 3251 .flags = 0, 3252 }; 3253 struct rq_flags rf; 3254 struct rq *rq; 3255 int err; 3256 3257 rq = task_rq_lock(p, &rf); 3258 3259 /* 3260 * Forcefully restricting the affinity of a deadline task is 3261 * likely to cause problems, so fail and noisily override the 3262 * mask entirely. 3263 */ 3264 if (task_has_dl_policy(p) && dl_bandwidth_enabled()) { 3265 err = -EPERM; 3266 goto err_unlock; 3267 } 3268 3269 if (!cpumask_and(new_mask, task_user_cpus(p), subset_mask)) { 3270 err = -EINVAL; 3271 goto err_unlock; 3272 } 3273 3274 return __set_cpus_allowed_ptr_locked(p, &ac, rq, &rf); 3275 3276 err_unlock: 3277 task_rq_unlock(rq, p, &rf); 3278 return err; 3279 } 3280 3281 /* 3282 * Restrict the CPU affinity of task @p so that it is a subset of 3283 * task_cpu_possible_mask() and point @p->user_cpus_ptr to a copy of the 3284 * old affinity mask. If the resulting mask is empty, we warn and walk 3285 * up the cpuset hierarchy until we find a suitable mask. 3286 */ 3287 void force_compatible_cpus_allowed_ptr(struct task_struct *p) 3288 { 3289 cpumask_var_t new_mask; 3290 const struct cpumask *override_mask = task_cpu_possible_mask(p); 3291 3292 alloc_cpumask_var(&new_mask, GFP_KERNEL); 3293 3294 /* 3295 * __migrate_task() can fail silently in the face of concurrent 3296 * offlining of the chosen destination CPU, so take the hotplug 3297 * lock to ensure that the migration succeeds. 3298 */ 3299 cpus_read_lock(); 3300 if (!cpumask_available(new_mask)) 3301 goto out_set_mask; 3302 3303 if (!restrict_cpus_allowed_ptr(p, new_mask, override_mask)) 3304 goto out_free_mask; 3305 3306 /* 3307 * We failed to find a valid subset of the affinity mask for the 3308 * task, so override it based on its cpuset hierarchy. 3309 */ 3310 cpuset_cpus_allowed(p, new_mask); 3311 override_mask = new_mask; 3312 3313 out_set_mask: 3314 if (printk_ratelimit()) { 3315 printk_deferred("Overriding affinity for process %d (%s) to CPUs %*pbl\n", 3316 task_pid_nr(p), p->comm, 3317 cpumask_pr_args(override_mask)); 3318 } 3319 3320 WARN_ON(set_cpus_allowed_ptr(p, override_mask)); 3321 out_free_mask: 3322 cpus_read_unlock(); 3323 free_cpumask_var(new_mask); 3324 } 3325 3326 /* 3327 * Restore the affinity of a task @p which was previously restricted by a 3328 * call to force_compatible_cpus_allowed_ptr(). 3329 * 3330 * It is the caller's responsibility to serialise this with any calls to 3331 * force_compatible_cpus_allowed_ptr(@p). 3332 */ 3333 void relax_compatible_cpus_allowed_ptr(struct task_struct *p) 3334 { 3335 struct affinity_context ac = { 3336 .new_mask = task_user_cpus(p), 3337 .flags = 0, 3338 }; 3339 int ret; 3340 3341 /* 3342 * Try to restore the old affinity mask with __sched_setaffinity(). 3343 * Cpuset masking will be done there too. 3344 */ 3345 ret = __sched_setaffinity(p, &ac); 3346 WARN_ON_ONCE(ret); 3347 } 3348 3349 #ifdef CONFIG_SMP 3350 3351 void set_task_cpu(struct task_struct *p, unsigned int new_cpu) 3352 { 3353 unsigned int state = READ_ONCE(p->__state); 3354 bool proxy_migrated = sched_proxy_exec() && p->is_blocked && 3355 task_cpu(p) != p->wake_cpu; 3356 3357 /* 3358 * We should never call set_task_cpu() on a blocked task, 3359 * ttwu() will sort out the placement. 3360 */ 3361 WARN_ON_ONCE(state != TASK_RUNNING && state != TASK_WAKING && !p->on_rq); 3362 3363 /* 3364 * Migrating fair class task must have p->on_rq = TASK_ON_RQ_MIGRATING, 3365 * because schedstat_wait_{start,end} rebase migrating task's wait_start 3366 * time relying on p->on_rq. 3367 */ 3368 WARN_ON_ONCE(state == TASK_RUNNING && 3369 p->sched_class == &fair_sched_class && 3370 (p->on_rq && !task_on_rq_migrating(p))); 3371 3372 #ifdef CONFIG_LOCKDEP 3373 /* 3374 * The caller should hold either p->pi_lock or rq->lock, when changing 3375 * a task's CPU. ->pi_lock for waking tasks, rq->lock for runnable tasks. 3376 * 3377 * sched_move_task() holds both and thus holding either pins the cgroup, 3378 * see task_group(). 3379 * 3380 * Furthermore, all task_rq users should acquire both locks, see 3381 * task_rq_lock(). 3382 */ 3383 WARN_ON_ONCE(debug_locks && !(lockdep_is_held(&p->pi_lock) || 3384 lockdep_is_held(__rq_lockp(task_rq(p))))); 3385 #endif 3386 /* 3387 * Clearly, migrating tasks to offline CPUs is a fairly daft thing. 3388 */ 3389 WARN_ON_ONCE(!cpu_online(new_cpu)); 3390 3391 /* 3392 * Proxy execution can move a blocked task's scheduling context to any 3393 * CPU without moving its migration-disabled execution context. The 3394 * wakeup path will return the task to a CPU where it can execute. 3395 */ 3396 WARN_ON_ONCE(is_migration_disabled(p) && !proxy_migrated); 3397 3398 trace_sched_migrate_task(p, new_cpu); 3399 3400 if (task_cpu(p) != new_cpu) { 3401 if (p->sched_class->migrate_task_rq) 3402 p->sched_class->migrate_task_rq(p, new_cpu); 3403 p->se.nr_migrations++; 3404 perf_event_task_migrate(p); 3405 } 3406 3407 __set_task_cpu(p, new_cpu); 3408 } 3409 #endif /* CONFIG_SMP */ 3410 3411 #ifdef CONFIG_NUMA_BALANCING 3412 static void __migrate_swap_task(struct task_struct *p, int cpu) 3413 { 3414 if (task_on_rq_queued(p)) { 3415 struct rq *src_rq, *dst_rq; 3416 struct rq_flags srf, drf; 3417 3418 src_rq = task_rq(p); 3419 dst_rq = cpu_rq(cpu); 3420 3421 rq_pin_lock(src_rq, &srf); 3422 rq_pin_lock(dst_rq, &drf); 3423 3424 move_queued_task_locked(src_rq, dst_rq, p); 3425 wakeup_preempt(dst_rq, p, 0); 3426 3427 rq_unpin_lock(dst_rq, &drf); 3428 rq_unpin_lock(src_rq, &srf); 3429 3430 } else { 3431 /* 3432 * Task isn't running anymore; make it appear like we migrated 3433 * it before it went to sleep. This means on wakeup we make the 3434 * previous CPU our target instead of where it really is. 3435 */ 3436 p->wake_cpu = cpu; 3437 } 3438 } 3439 3440 struct migration_swap_arg { 3441 struct task_struct *src_task, *dst_task; 3442 int src_cpu, dst_cpu; 3443 }; 3444 3445 static int migrate_swap_stop(void *data) 3446 { 3447 struct migration_swap_arg *arg = data; 3448 struct rq *src_rq, *dst_rq; 3449 3450 if (!cpu_active(arg->src_cpu) || !cpu_active(arg->dst_cpu)) 3451 return -EAGAIN; 3452 3453 src_rq = cpu_rq(arg->src_cpu); 3454 dst_rq = cpu_rq(arg->dst_cpu); 3455 3456 guard(double_raw_spinlock)(&arg->src_task->pi_lock, &arg->dst_task->pi_lock); 3457 guard(double_rq_lock)(src_rq, dst_rq); 3458 3459 if (task_cpu(arg->dst_task) != arg->dst_cpu) 3460 return -EAGAIN; 3461 3462 if (task_cpu(arg->src_task) != arg->src_cpu) 3463 return -EAGAIN; 3464 3465 if (!cpumask_test_cpu(arg->dst_cpu, arg->src_task->cpus_ptr)) 3466 return -EAGAIN; 3467 3468 if (!cpumask_test_cpu(arg->src_cpu, arg->dst_task->cpus_ptr)) 3469 return -EAGAIN; 3470 3471 __migrate_swap_task(arg->src_task, arg->dst_cpu); 3472 __migrate_swap_task(arg->dst_task, arg->src_cpu); 3473 3474 return 0; 3475 } 3476 3477 /* 3478 * Cross migrate two tasks 3479 */ 3480 int migrate_swap(struct task_struct *cur, struct task_struct *p, 3481 int target_cpu, int curr_cpu) 3482 { 3483 struct migration_swap_arg arg; 3484 int ret = -EINVAL; 3485 3486 arg = (struct migration_swap_arg){ 3487 .src_task = cur, 3488 .src_cpu = curr_cpu, 3489 .dst_task = p, 3490 .dst_cpu = target_cpu, 3491 }; 3492 3493 if (arg.src_cpu == arg.dst_cpu) 3494 goto out; 3495 3496 /* 3497 * These three tests are all lockless; this is OK since all of them 3498 * will be re-checked with proper locks held further down the line. 3499 */ 3500 if (!cpu_active(arg.src_cpu) || !cpu_active(arg.dst_cpu)) 3501 goto out; 3502 3503 if (!cpumask_test_cpu(arg.dst_cpu, arg.src_task->cpus_ptr)) 3504 goto out; 3505 3506 if (!cpumask_test_cpu(arg.src_cpu, arg.dst_task->cpus_ptr)) 3507 goto out; 3508 3509 trace_sched_swap_numa(cur, arg.src_cpu, p, arg.dst_cpu); 3510 ret = stop_two_cpus(arg.dst_cpu, arg.src_cpu, migrate_swap_stop, &arg); 3511 3512 out: 3513 return ret; 3514 } 3515 #endif /* CONFIG_NUMA_BALANCING */ 3516 3517 /*** 3518 * kick_process - kick a running thread to enter/exit the kernel 3519 * @p: the to-be-kicked thread 3520 * 3521 * Cause a process which is running on another CPU to enter 3522 * kernel-mode, without any delay. (to get signals handled.) 3523 * 3524 * NOTE: this function doesn't have to take the runqueue lock, 3525 * because all it wants to ensure is that the remote task enters 3526 * the kernel. If the IPI races and the task has been migrated 3527 * to another CPU then no harm is done and the purpose has been 3528 * achieved as well. 3529 */ 3530 void kick_process(struct task_struct *p) 3531 { 3532 guard(preempt)(); 3533 int cpu = task_cpu(p); 3534 3535 if ((cpu != smp_processor_id()) && task_curr(p)) 3536 smp_send_reschedule(cpu); 3537 } 3538 EXPORT_SYMBOL_GPL(kick_process); 3539 3540 /* 3541 * ->cpus_ptr is protected by both rq->lock and p->pi_lock 3542 * 3543 * A few notes on cpu_active vs cpu_online: 3544 * 3545 * - cpu_active must be a subset of cpu_online 3546 * 3547 * - on CPU-up we allow per-CPU kthreads on the online && !active CPU, 3548 * see __set_cpus_allowed_ptr(). At this point the newly online 3549 * CPU isn't yet part of the sched domains, and balancing will not 3550 * see it. 3551 * 3552 * - on CPU-down we clear cpu_active() to mask the sched domains and 3553 * avoid the load balancer to place new tasks on the to be removed 3554 * CPU. Existing tasks will remain running there and will be taken 3555 * off. 3556 * 3557 * This means that fallback selection must not select !active CPUs. 3558 * And can assume that any active CPU must be online. Conversely 3559 * select_task_rq() below may allow selection of !active CPUs in order 3560 * to satisfy the above rules. 3561 */ 3562 static int select_fallback_rq(int cpu, struct task_struct *p) 3563 { 3564 int nid = cpu_to_node(cpu); 3565 const struct cpumask *nodemask = NULL; 3566 enum { cpuset, possible, fail } state = cpuset; 3567 int dest_cpu; 3568 3569 /* 3570 * If the node that the CPU is on has been offlined, cpu_to_node() 3571 * will return -1. There is no CPU on the node, and we should 3572 * select the CPU on the other node. 3573 */ 3574 if (nid != -1) { 3575 nodemask = cpumask_of_node(nid); 3576 3577 /* Look for allowed, online CPU in same node. */ 3578 for_each_cpu(dest_cpu, nodemask) { 3579 if (is_cpu_allowed(p, dest_cpu)) 3580 return dest_cpu; 3581 } 3582 } 3583 3584 for (;;) { 3585 /* Any allowed, online CPU? */ 3586 for_each_cpu(dest_cpu, p->cpus_ptr) { 3587 if (!is_cpu_allowed(p, dest_cpu)) 3588 continue; 3589 3590 goto out; 3591 } 3592 3593 /* No more Mr. Nice Guy. */ 3594 switch (state) { 3595 case cpuset: 3596 if (cpuset_cpus_allowed_fallback(p)) { 3597 state = possible; 3598 break; 3599 } 3600 fallthrough; 3601 case possible: 3602 set_cpus_allowed_force(p, task_cpu_fallback_mask(p)); 3603 state = fail; 3604 break; 3605 case fail: 3606 BUG(); 3607 break; 3608 } 3609 } 3610 3611 out: 3612 if (state != cpuset) { 3613 /* 3614 * Don't tell them about moving exiting tasks or 3615 * kernel threads (both mm NULL), since they never 3616 * leave kernel. 3617 */ 3618 if (p->mm && printk_ratelimit()) { 3619 printk_deferred("process %d (%s) no longer affine to cpu%d\n", 3620 task_pid_nr(p), p->comm, cpu); 3621 } 3622 } 3623 3624 return dest_cpu; 3625 } 3626 3627 /* 3628 * The caller (fork, wakeup) owns p->pi_lock, ->cpus_ptr is stable. 3629 */ 3630 static inline 3631 int select_task_rq(struct task_struct *p, int cpu, int *wake_flags) 3632 { 3633 lockdep_assert_held(&p->pi_lock); 3634 3635 if (p->nr_cpus_allowed > 1 && !is_migration_disabled(p)) { 3636 cpu = p->sched_class->select_task_rq(p, cpu, *wake_flags); 3637 *wake_flags |= WF_RQ_SELECTED; 3638 } else { 3639 cpu = cpumask_any(p->cpus_ptr); 3640 } 3641 3642 /* 3643 * In order not to call set_task_cpu() on a blocking task we need 3644 * to rely on ttwu() to place the task on a valid ->cpus_ptr 3645 * CPU. 3646 * 3647 * Since this is common to all placement strategies, this lives here. 3648 * 3649 * [ this allows ->select_task() to simply return task_cpu(p) and 3650 * not worry about this generic constraint ] 3651 */ 3652 if (unlikely(!is_cpu_allowed(p, cpu))) 3653 cpu = select_fallback_rq(task_cpu(p), p); 3654 3655 return cpu; 3656 } 3657 3658 void sched_set_stop_task(int cpu, struct task_struct *stop) 3659 { 3660 static struct lock_class_key stop_pi_lock; 3661 struct sched_param param = { .sched_priority = MAX_RT_PRIO - 1 }; 3662 struct task_struct *old_stop = cpu_rq(cpu)->stop; 3663 3664 if (stop) { 3665 /* 3666 * Make it appear like a SCHED_FIFO task, its something 3667 * userspace knows about and won't get confused about. 3668 * 3669 * Also, it will make PI more or less work without too 3670 * much confusion -- but then, stop work should not 3671 * rely on PI working anyway. 3672 */ 3673 sched_setscheduler_nocheck(stop, SCHED_FIFO, ¶m); 3674 3675 stop->sched_class = &stop_sched_class; 3676 3677 /* 3678 * The PI code calls rt_mutex_setprio() with ->pi_lock held to 3679 * adjust the effective priority of a task. As a result, 3680 * rt_mutex_setprio() can trigger (RT) balancing operations, 3681 * which can then trigger wakeups of the stop thread to push 3682 * around the current task. 3683 * 3684 * The stop task itself will never be part of the PI-chain, it 3685 * never blocks, therefore that ->pi_lock recursion is safe. 3686 * Tell lockdep about this by placing the stop->pi_lock in its 3687 * own class. 3688 */ 3689 lockdep_set_class(&stop->pi_lock, &stop_pi_lock); 3690 } 3691 3692 cpu_rq(cpu)->stop = stop; 3693 3694 if (old_stop) { 3695 /* 3696 * Reset it back to a normal scheduling class so that 3697 * it can die in pieces. 3698 */ 3699 old_stop->sched_class = &rt_sched_class; 3700 } 3701 } 3702 3703 static void 3704 ttwu_stat(struct task_struct *p, int cpu, int wake_flags) 3705 { 3706 struct rq *rq; 3707 3708 if (!schedstat_enabled()) 3709 return; 3710 3711 rq = this_rq(); 3712 3713 if (cpu == rq->cpu) { 3714 __schedstat_inc(rq->ttwu_local); 3715 __schedstat_inc(p->stats.nr_wakeups_local); 3716 } else { 3717 struct sched_domain *sd; 3718 3719 __schedstat_inc(p->stats.nr_wakeups_remote); 3720 3721 guard(rcu)(); 3722 for_each_domain(rq->cpu, sd) { 3723 if (cpumask_test_cpu(cpu, sched_domain_span(sd))) { 3724 __schedstat_inc(sd->ttwu_wake_remote); 3725 break; 3726 } 3727 } 3728 } 3729 3730 if (wake_flags & WF_MIGRATED) 3731 __schedstat_inc(p->stats.nr_wakeups_migrate); 3732 3733 __schedstat_inc(rq->ttwu_count); 3734 __schedstat_inc(p->stats.nr_wakeups); 3735 3736 if (wake_flags & WF_SYNC) 3737 __schedstat_inc(p->stats.nr_wakeups_sync); 3738 } 3739 3740 /* 3741 * Mark the task runnable. 3742 */ 3743 static inline void ttwu_do_wakeup(struct task_struct *p) 3744 { 3745 p->is_blocked = 0; 3746 WRITE_ONCE(p->__state, TASK_RUNNING); 3747 trace_sched_wakeup(p); 3748 } 3749 3750 void update_rq_avg_idle(struct rq *rq) 3751 { 3752 u64 idle_stamp = rq->idle_stamp; 3753 u64 delta, max; 3754 3755 if (!idle_stamp) 3756 return; 3757 3758 delta = rq_clock(rq) - idle_stamp; 3759 3760 update_avg(&rq->avg_idle, delta); 3761 3762 max = 2 * rq->max_idle_balance_cost; 3763 if (rq->avg_idle > max) 3764 rq->avg_idle = max; 3765 rq->idle_stamp = 0; 3766 } 3767 3768 #ifdef CONFIG_SCHED_PROXY_EXEC 3769 static void zap_balance_callbacks(struct rq *rq); 3770 3771 static inline void proxy_reset_donor(struct rq *rq) 3772 { 3773 WARN_ON_ONCE(rq->donor == rq->curr); 3774 3775 put_prev_set_next_task(rq, rq->donor, rq->curr); 3776 rq_set_donor(rq, rq->curr); 3777 zap_balance_callbacks(rq); 3778 resched_curr(rq); 3779 } 3780 3781 /* 3782 * Checks to see if task p has been proxy-migrated to another rq 3783 * and needs to be returned. If so, we deactivate the task here 3784 * so that it can be properly woken up on the p->wake_cpu 3785 * (or whichever cpu select_task_rq() picks at the bottom of 3786 * try_to_wake_up() 3787 */ 3788 static inline bool proxy_needs_return(struct rq *rq, struct task_struct *p) 3789 { 3790 /* 3791 * Typically per __set_task_cpu(), task_cpu(p) == p->wake_cpu. 3792 * 3793 * However, proxy_set_task_cpu() is such that it preserves the 3794 * original cpu in p->wake_cpu while migrating p for proxy reasons 3795 * (possibly outside of the allowed p->cpus_ptr). 3796 * 3797 * Furthermore, migration_cpu_stop() / __migrate_swap_task(), will 3798 * only set p->wake_cpu when !p->on_rq, and since here p->on_rq, this 3799 * will not apply. But if it did, this check is the safe way around 3800 * and would migrate. 3801 */ 3802 if (task_cpu(p) == p->wake_cpu) 3803 return false; 3804 3805 scoped_guard(raw_spinlock, &p->blocked_lock) { 3806 /* Task is waking up; clear any blocked_on relationship */ 3807 __clear_task_blocked_on(p, NULL); 3808 3809 /* If already current, don't need to return migrate */ 3810 if (task_current(rq, p)) 3811 return false; 3812 3813 /* If we're return migrating the rq->donor, switch it out for idle */ 3814 if (task_current_donor(rq, p)) 3815 proxy_reset_donor(rq); 3816 } 3817 block_task(rq, p, TASK_WAKING); 3818 return true; 3819 } 3820 #else /* !CONFIG_SCHED_PROXY_EXEC */ 3821 static inline bool proxy_needs_return(struct rq *rq, struct task_struct *p) 3822 { 3823 return false; 3824 } 3825 #endif /* CONFIG_SCHED_PROXY_EXEC */ 3826 3827 static void 3828 ttwu_do_activate(struct rq *rq, struct task_struct *p, int wake_flags, 3829 struct rq_flags *rf) 3830 { 3831 int en_flags = ENQUEUE_WAKEUP | ENQUEUE_NOCLOCK; 3832 3833 lockdep_assert_rq_held(rq); 3834 3835 if (p->sched_contributes_to_load) 3836 rq->nr_uninterruptible--; 3837 3838 if (wake_flags & WF_RQ_SELECTED) 3839 en_flags |= ENQUEUE_RQ_SELECTED; 3840 if (wake_flags & WF_MIGRATED) 3841 en_flags |= ENQUEUE_MIGRATED; 3842 else if (p->in_iowait) { 3843 delayacct_blkio_end(p); 3844 atomic_dec(&task_rq(p)->nr_iowait); 3845 } 3846 3847 activate_task(rq, p, en_flags); 3848 wakeup_preempt(rq, p, wake_flags); 3849 3850 ttwu_do_wakeup(p); 3851 3852 if (p->sched_class->task_woken) { 3853 /* 3854 * Our task @p is fully woken up and running; so it's safe to 3855 * drop the rq->lock, hereafter rq is only used for statistics. 3856 */ 3857 rq_unpin_lock(rq, rf); 3858 p->sched_class->task_woken(rq, p); 3859 rq_repin_lock(rq, rf); 3860 } 3861 } 3862 3863 /* 3864 * Consider @p being inside a wait loop: 3865 * 3866 * for (;;) { 3867 * set_current_state(TASK_UNINTERRUPTIBLE); 3868 * 3869 * if (CONDITION) 3870 * break; 3871 * 3872 * schedule(); 3873 * } 3874 * __set_current_state(TASK_RUNNING); 3875 * 3876 * between set_current_state() and schedule(). In this case @p is still 3877 * runnable, so all that needs doing is change p->state back to TASK_RUNNING in 3878 * an atomic manner. 3879 * 3880 * By taking task_rq(p)->lock we serialize against schedule(), if @p->on_rq 3881 * then schedule() must still happen and p->state can be changed to 3882 * TASK_RUNNING. Otherwise we lost the race, schedule() has happened, and we 3883 * need to do a full wakeup with enqueue. 3884 * 3885 * Returns: %true when the wakeup is done, 3886 * %false otherwise. 3887 */ 3888 static int ttwu_runnable(struct task_struct *p, int wake_flags) 3889 { 3890 ACQUIRE(__task_rq_lock, guard)(p); 3891 struct rq *rq = guard.rq; 3892 3893 if (!task_on_rq_queued(p)) 3894 return 0; 3895 3896 update_rq_clock(rq); 3897 if (p->is_blocked) { 3898 if (p->se.sched_delayed) 3899 enqueue_task(rq, p, ENQUEUE_NOCLOCK | ENQUEUE_DELAYED); 3900 if (proxy_needs_return(rq, p)) 3901 return 0; 3902 } 3903 if (!task_on_cpu(rq, p)) { 3904 /* 3905 * When on_rq && !on_cpu the task is preempted, see if 3906 * it should preempt the task that is current now. 3907 */ 3908 wakeup_preempt(rq, p, wake_flags); 3909 } 3910 ttwu_do_wakeup(p); 3911 return 1; 3912 } 3913 3914 void sched_ttwu_pending(void *arg) 3915 { 3916 struct llist_node *llist = arg; 3917 struct rq *rq = this_rq(); 3918 struct task_struct *p, *t; 3919 struct rq_flags rf; 3920 3921 if (!llist) 3922 return; 3923 3924 rq_lock_irqsave(rq, &rf); 3925 update_rq_clock(rq); 3926 3927 llist_for_each_entry_safe(p, t, llist, wake_entry.llist) { 3928 if (WARN_ON_ONCE(p->on_cpu)) 3929 smp_cond_load_acquire(&p->on_cpu, !VAL); 3930 3931 if (WARN_ON_ONCE(task_cpu(p) != cpu_of(rq))) 3932 set_task_cpu(p, cpu_of(rq)); 3933 3934 ttwu_do_activate(rq, p, p->sched_remote_wakeup ? WF_MIGRATED : 0, &rf); 3935 } 3936 3937 /* 3938 * Must be after enqueueing at least once task such that 3939 * idle_cpu() does not observe a false-negative -- if it does, 3940 * it is possible for select_idle_siblings() to stack a number 3941 * of tasks on this CPU during that window. 3942 * 3943 * It is OK to clear ttwu_pending when another task pending. 3944 * We will receive IPI after local IRQ enabled and then enqueue it. 3945 * Since now nr_running > 0, idle_cpu() will always get correct result. 3946 */ 3947 WRITE_ONCE(rq->ttwu_pending, 0); 3948 rq_unlock_irqrestore(rq, &rf); 3949 } 3950 3951 /* 3952 * Prepare the scene for sending an IPI for a remote smp_call 3953 * 3954 * Returns true if the caller can proceed with sending the IPI. 3955 * Returns false otherwise. 3956 */ 3957 bool call_function_single_prep_ipi(int cpu) 3958 { 3959 if (set_nr_if_polling(cpu_rq(cpu)->idle)) { 3960 trace_sched_wake_idle_without_ipi(cpu); 3961 return false; 3962 } 3963 3964 return true; 3965 } 3966 3967 /* 3968 * Queue a task on the target CPUs wake_list and wake the CPU via IPI if 3969 * necessary. The wakee CPU on receipt of the IPI will queue the task 3970 * via sched_ttwu_wakeup() for activation so the wakee incurs the cost 3971 * of the wakeup instead of the waker. 3972 */ 3973 static void __ttwu_queue_wakelist(struct task_struct *p, int cpu, int wake_flags) 3974 { 3975 struct rq *rq = cpu_rq(cpu); 3976 3977 p->sched_remote_wakeup = !!(wake_flags & WF_MIGRATED); 3978 3979 WRITE_ONCE(rq->ttwu_pending, 1); 3980 #ifdef CONFIG_SMP 3981 __smp_call_single_queue(cpu, &p->wake_entry.llist); 3982 #endif 3983 } 3984 3985 void wake_up_if_idle(int cpu) 3986 { 3987 struct rq *rq = cpu_rq(cpu); 3988 3989 guard(rcu)(); 3990 if (is_idle_task(rcu_dereference(rq->curr))) { 3991 guard(rq_lock_irqsave)(rq); 3992 if (is_idle_task(rq->curr)) 3993 resched_curr(rq); 3994 } 3995 } 3996 3997 bool cpus_equal_capacity(int this_cpu, int that_cpu) 3998 { 3999 if (!sched_asym_cpucap_active()) 4000 return true; 4001 4002 if (this_cpu == that_cpu) 4003 return true; 4004 4005 return arch_scale_cpu_capacity(this_cpu) == arch_scale_cpu_capacity(that_cpu); 4006 } 4007 4008 bool cpus_share_cache(int this_cpu, int that_cpu) 4009 { 4010 if (this_cpu == that_cpu) 4011 return true; 4012 4013 return per_cpu(sd_llc_id, this_cpu) == per_cpu(sd_llc_id, that_cpu); 4014 } 4015 4016 /* 4017 * Whether CPUs are share cache resources, which means LLC on non-cluster 4018 * machines and LLC tag or L2 on machines with clusters. 4019 */ 4020 bool cpus_share_resources(int this_cpu, int that_cpu) 4021 { 4022 if (this_cpu == that_cpu) 4023 return true; 4024 4025 return per_cpu(sd_share_id, this_cpu) == per_cpu(sd_share_id, that_cpu); 4026 } 4027 4028 static inline bool ttwu_queue_cond(struct task_struct *p, int cpu) 4029 { 4030 int this_cpu = smp_processor_id(); 4031 4032 /* See SCX_OPS_ALLOW_QUEUED_WAKEUP. */ 4033 if (!scx_allow_ttwu_queue(p)) 4034 return false; 4035 4036 #ifdef CONFIG_SMP 4037 if (p->sched_class == &stop_sched_class) 4038 return false; 4039 #endif 4040 4041 /* 4042 * Do not complicate things with the async wake_list while the CPU is 4043 * in hotplug state. 4044 */ 4045 if (!cpu_active(cpu)) 4046 return false; 4047 4048 /* Ensure the task will still be allowed to run on the CPU. */ 4049 if (!cpumask_test_cpu(cpu, p->cpus_ptr)) 4050 return false; 4051 4052 /* 4053 * If the CPU does not share cache, then queue the task on the 4054 * remote rqs wakelist to avoid accessing remote data. 4055 */ 4056 if (!cpus_share_cache(this_cpu, cpu)) 4057 return true; 4058 4059 if (cpu == this_cpu) 4060 return false; 4061 4062 /* 4063 * If the wakee cpu is idle, or the task is descheduling and the 4064 * only running task on the CPU, then use the wakelist to offload 4065 * the task activation to the idle (or soon-to-be-idle) CPU as 4066 * the current CPU is likely busy. nr_running is checked to 4067 * avoid unnecessary task stacking. 4068 * 4069 * Note that we can only get here with (wakee) p->on_rq=0, 4070 * p->on_cpu can be whatever, we've done the dequeue, so 4071 * the wakee has been accounted out of ->nr_running. 4072 */ 4073 if (!cpu_rq(cpu)->nr_running) 4074 return true; 4075 4076 return false; 4077 } 4078 4079 static bool ttwu_queue_wakelist(struct task_struct *p, int cpu, int wake_flags) 4080 { 4081 if (sched_feat(TTWU_QUEUE) && ttwu_queue_cond(p, cpu)) { 4082 sched_clock_cpu(cpu); /* Sync clocks across CPUs */ 4083 __ttwu_queue_wakelist(p, cpu, wake_flags); 4084 return true; 4085 } 4086 4087 return false; 4088 } 4089 4090 static void ttwu_queue(struct task_struct *p, int cpu, int wake_flags) 4091 { 4092 struct rq *rq = cpu_rq(cpu); 4093 struct rq_flags rf; 4094 4095 if (ttwu_queue_wakelist(p, cpu, wake_flags)) 4096 return; 4097 4098 rq_lock(rq, &rf); 4099 update_rq_clock(rq); 4100 ttwu_do_activate(rq, p, wake_flags, &rf); 4101 rq_unlock(rq, &rf); 4102 } 4103 4104 /* 4105 * Invoked from try_to_wake_up() to check whether the task can be woken up. 4106 * 4107 * The caller holds p::pi_lock if p != current or has preemption 4108 * disabled when p == current. 4109 * 4110 * The rules of saved_state: 4111 * 4112 * The related locking code always holds p::pi_lock when updating 4113 * p::saved_state, which means the code is fully serialized in both cases. 4114 * 4115 * For PREEMPT_RT, the lock wait and lock wakeups happen via TASK_RTLOCK_WAIT. 4116 * No other bits set. This allows to distinguish all wakeup scenarios. 4117 * 4118 * For FREEZER, the wakeup happens via TASK_FROZEN. No other bits set. This 4119 * allows us to prevent early wakeup of tasks before they can be run on 4120 * asymmetric ISA architectures (eg ARMv9). 4121 */ 4122 static __always_inline 4123 bool ttwu_state_match(struct task_struct *p, unsigned int state, int *success) 4124 { 4125 int match; 4126 4127 if (IS_ENABLED(CONFIG_DEBUG_PREEMPT)) { 4128 WARN_ON_ONCE((state & TASK_RTLOCK_WAIT) && 4129 state != TASK_RTLOCK_WAIT); 4130 } 4131 4132 *success = !!(match = __task_state_match(p, state)); 4133 4134 /* 4135 * Saved state preserves the task state across blocking on 4136 * an RT lock or TASK_FREEZABLE tasks. If the state matches, 4137 * set p::saved_state to TASK_RUNNING, but do not wake the task 4138 * because it waits for a lock wakeup or __thaw_task(). Also 4139 * indicate success because from the regular waker's point of 4140 * view this has succeeded. 4141 * 4142 * After acquiring the lock the task will restore p::__state 4143 * from p::saved_state which ensures that the regular 4144 * wakeup is not lost. The restore will also set 4145 * p::saved_state to TASK_RUNNING so any further tests will 4146 * not result in false positives vs. @success 4147 */ 4148 if (match < 0) 4149 p->saved_state = TASK_RUNNING; 4150 4151 return match > 0; 4152 } 4153 4154 /* 4155 * Notes on Program-Order guarantees on SMP systems. 4156 * 4157 * MIGRATION 4158 * 4159 * The basic program-order guarantee on SMP systems is that when a task [t] 4160 * migrates, all its activity on its old CPU [c0] happens-before any subsequent 4161 * execution on its new CPU [c1]. 4162 * 4163 * For migration (of runnable tasks) this is provided by the following means: 4164 * 4165 * A) UNLOCK of the rq(c0)->lock scheduling out task t 4166 * B) migration for t is required to synchronize *both* rq(c0)->lock and 4167 * rq(c1)->lock (if not at the same time, then in that order). 4168 * C) LOCK of the rq(c1)->lock scheduling in task 4169 * 4170 * Release/acquire chaining guarantees that B happens after A and C after B. 4171 * Note: the CPU doing B need not be c0 or c1 4172 * 4173 * Example: 4174 * 4175 * CPU0 CPU1 CPU2 4176 * 4177 * LOCK rq(0)->lock 4178 * sched-out X 4179 * sched-in Y 4180 * UNLOCK rq(0)->lock 4181 * 4182 * LOCK rq(0)->lock // orders against CPU0 4183 * dequeue X 4184 * UNLOCK rq(0)->lock 4185 * 4186 * LOCK rq(1)->lock 4187 * enqueue X 4188 * UNLOCK rq(1)->lock 4189 * 4190 * LOCK rq(1)->lock // orders against CPU2 4191 * sched-out Z 4192 * sched-in X 4193 * UNLOCK rq(1)->lock 4194 * 4195 * 4196 * BLOCKING -- aka. SLEEP + WAKEUP 4197 * 4198 * For blocking we (obviously) need to provide the same guarantee as for 4199 * migration. However the means are completely different as there is no lock 4200 * chain to provide order. Instead we do: 4201 * 4202 * 1) smp_store_release(X->on_cpu, 0) -- finish_task() 4203 * 2) smp_cond_load_acquire(!X->on_cpu) -- try_to_wake_up() 4204 * 4205 * Example: 4206 * 4207 * CPU0 (schedule) CPU1 (try_to_wake_up) CPU2 (schedule) 4208 * 4209 * LOCK rq(0)->lock LOCK X->pi_lock 4210 * dequeue X 4211 * sched-out X 4212 * smp_store_release(X->on_cpu, 0); 4213 * 4214 * smp_cond_load_acquire(&X->on_cpu, !VAL); 4215 * X->state = WAKING 4216 * set_task_cpu(X,2) 4217 * 4218 * LOCK rq(2)->lock 4219 * enqueue X 4220 * X->state = RUNNING 4221 * UNLOCK rq(2)->lock 4222 * 4223 * LOCK rq(2)->lock // orders against CPU1 4224 * sched-out Z 4225 * sched-in X 4226 * UNLOCK rq(2)->lock 4227 * 4228 * UNLOCK X->pi_lock 4229 * UNLOCK rq(0)->lock 4230 * 4231 * 4232 * However, for wakeups there is a second guarantee we must provide, namely we 4233 * must ensure that CONDITION=1 done by the caller can not be reordered with 4234 * accesses to the task state; see try_to_wake_up() and set_current_state(). 4235 */ 4236 4237 /** 4238 * try_to_wake_up - wake up a thread 4239 * @p: the thread to be awakened 4240 * @state: the mask of task states that can be woken 4241 * @wake_flags: wake modifier flags (WF_*) 4242 * 4243 * Conceptually does: 4244 * 4245 * If (@state & @p->state) @p->state = TASK_RUNNING. 4246 * 4247 * If the task was not queued/runnable, also place it back on a runqueue. 4248 * 4249 * This function is atomic against schedule() which would dequeue the task. 4250 * 4251 * It issues a full memory barrier before accessing @p->state, see the comment 4252 * with set_current_state(). 4253 * 4254 * Uses p->pi_lock to serialize against concurrent wake-ups. 4255 * 4256 * Relies on p->pi_lock stabilizing: 4257 * - p->sched_class 4258 * - p->cpus_ptr 4259 * - p->sched_task_group 4260 * in order to do migration, see its use of select_task_rq()/set_task_cpu(). 4261 * 4262 * Tries really hard to only take one task_rq(p)->lock for performance. 4263 * Takes rq->lock in: 4264 * - ttwu_runnable() -- old rq, unavoidable, see comment there; 4265 * - ttwu_queue() -- new rq, for enqueue of the task; 4266 * - psi_ttwu_dequeue() -- much sadness :-( accounting will kill us. 4267 * 4268 * As a consequence we race really badly with just about everything. See the 4269 * many memory barriers and their comments for details. 4270 * 4271 * Return: %true if @p->state changes (an actual wakeup was done), 4272 * %false otherwise. 4273 */ 4274 int try_to_wake_up(struct task_struct *p, unsigned int state, int wake_flags) 4275 { 4276 guard(preempt)(); 4277 int cpu, success = 0; 4278 4279 wake_flags |= WF_TTWU; 4280 4281 if (p == current) { 4282 /* 4283 * We're waking current, this means 'p->on_rq' and 'task_cpu(p) 4284 * == smp_processor_id()'. Together this means we can special 4285 * case the whole 'p->on_rq && ttwu_runnable()' case below 4286 * without taking any locks. 4287 * 4288 * Specifically, given current runs ttwu() we must be before 4289 * schedule()'s block_task(), as such this must not observe 4290 * sched_delayed. 4291 * 4292 * In particular: 4293 * - we rely on Program-Order guarantees for all the ordering, 4294 * - we're serialized against set_special_state() by virtue of 4295 * it disabling IRQs (this allows not taking ->pi_lock). 4296 */ 4297 WARN_ON_ONCE(p->se.sched_delayed); 4298 WARN_ON_ONCE(p->is_blocked); 4299 /* If p is current, we know we can run here, so clear blocked_on */ 4300 clear_task_blocked_on(p, NULL); 4301 if (!ttwu_state_match(p, state, &success)) 4302 goto out; 4303 4304 trace_sched_waking(p); 4305 ttwu_do_wakeup(p); 4306 goto out; 4307 } 4308 4309 /* 4310 * If we are going to wake up a thread waiting for CONDITION we 4311 * need to ensure that CONDITION=1 done by the caller can not be 4312 * reordered with p->state check below. This pairs with smp_store_mb() 4313 * in set_current_state() that the waiting thread does. 4314 */ 4315 scoped_guard (raw_spinlock_irqsave, &p->pi_lock) { 4316 smp_mb__after_spinlock(); 4317 4318 if (!ttwu_state_match(p, state, &success)) 4319 break; 4320 4321 trace_sched_waking(p); 4322 4323 /* 4324 * Ensure we load p->on_rq _after_ p->state, otherwise it would 4325 * be possible to, falsely, observe p->on_rq == 0 and get stuck 4326 * in smp_cond_load_acquire() below. 4327 * 4328 * sched_ttwu_pending() try_to_wake_up() 4329 * STORE p->on_rq = 1 LOAD p->state 4330 * UNLOCK rq->lock 4331 * 4332 * __schedule() (switch to task 'p') 4333 * LOCK rq->lock smp_rmb(); 4334 * smp_mb__after_spinlock(); 4335 * UNLOCK rq->lock 4336 * 4337 * [task p] 4338 * STORE p->state = UNINTERRUPTIBLE LOAD p->on_rq 4339 * 4340 * Pairs with the LOCK+smp_mb__after_spinlock() on rq->lock in 4341 * __schedule(). See the comment for smp_mb__after_spinlock(). 4342 * 4343 * A similar smp_rmb() lives in __task_needs_rq_lock(). 4344 */ 4345 smp_rmb(); 4346 if (READ_ONCE(p->on_rq) && ttwu_runnable(p, wake_flags)) 4347 break; 4348 4349 /* 4350 * Ensure we load p->on_cpu _after_ p->on_rq, otherwise it would be 4351 * possible to, falsely, observe p->on_cpu == 0. 4352 * 4353 * One must be running (->on_cpu == 1) in order to remove oneself 4354 * from the runqueue. 4355 * 4356 * __schedule() (switch to task 'p') try_to_wake_up() 4357 * STORE p->on_cpu = 1 LOAD p->on_rq 4358 * UNLOCK rq->lock 4359 * 4360 * __schedule() (put 'p' to sleep) 4361 * LOCK rq->lock smp_rmb(); 4362 * smp_mb__after_spinlock(); 4363 * STORE p->on_rq = 0 LOAD p->on_cpu 4364 * 4365 * Pairs with the LOCK+smp_mb__after_spinlock() on rq->lock in 4366 * __schedule(). See the comment for smp_mb__after_spinlock(). 4367 * 4368 * Form a control-dep-acquire with p->on_rq == 0 above, to ensure 4369 * schedule()'s block_task() has 'happened' and p will no longer 4370 * care about it's own p->state. See the comment in __schedule(). 4371 */ 4372 smp_acquire__after_ctrl_dep(); 4373 4374 /* 4375 * We're doing the wakeup (@success == 1), they did a dequeue (p->on_rq 4376 * == 0), which means we need to do an enqueue, change p->state to 4377 * TASK_WAKING such that we can unlock p->pi_lock before doing the 4378 * enqueue, such as ttwu_queue_wakelist(). 4379 */ 4380 WRITE_ONCE(p->__state, TASK_WAKING); 4381 4382 /* 4383 * If the owning (remote) CPU is still in the middle of schedule() with 4384 * this task as prev, considering queueing p on the remote CPUs wake_list 4385 * which potentially sends an IPI instead of spinning on p->on_cpu to 4386 * let the waker make forward progress. This is safe because IRQs are 4387 * disabled and the IPI will deliver after on_cpu is cleared. 4388 * 4389 * Ensure we load task_cpu(p) after p->on_cpu: 4390 * 4391 * set_task_cpu(p, cpu); 4392 * STORE p->cpu = @cpu 4393 * __schedule() (switch to task 'p') 4394 * LOCK rq->lock 4395 * smp_mb__after_spin_lock() smp_cond_load_acquire(&p->on_cpu) 4396 * STORE p->on_cpu = 1 LOAD p->cpu 4397 * 4398 * to ensure we observe the correct CPU on which the task is currently 4399 * scheduling. 4400 */ 4401 if (smp_load_acquire(&p->on_cpu) && 4402 ttwu_queue_wakelist(p, task_cpu(p), wake_flags)) 4403 break; 4404 4405 /* 4406 * If the owning (remote) CPU is still in the middle of schedule() with 4407 * this task as prev, wait until it's done referencing the task. 4408 * 4409 * Pairs with the smp_store_release() in finish_task(). 4410 * 4411 * This ensures that tasks getting woken will be fully ordered against 4412 * their previous state and preserve Program Order. 4413 */ 4414 smp_cond_load_acquire(&p->on_cpu, !VAL); 4415 4416 cpu = select_task_rq(p, p->wake_cpu, &wake_flags); 4417 if (task_cpu(p) != cpu) { 4418 if (p->in_iowait) { 4419 delayacct_blkio_end(p); 4420 atomic_dec(&task_rq(p)->nr_iowait); 4421 } 4422 4423 wake_flags |= WF_MIGRATED; 4424 psi_ttwu_dequeue(p); 4425 set_task_cpu(p, cpu); 4426 } else if (cpu != p->wake_cpu) { 4427 /* 4428 * If we were proxy-migrated to cpu, then 4429 * select_task_rq() picks cpu instead of wake_cpu 4430 * to return to, we won't call set_task_cpu(), 4431 * leaving a stale wake_cpu pointing to where we 4432 * proxy-migrated from. So just fixup wake_cpu here 4433 * if its not correct 4434 */ 4435 p->wake_cpu = cpu; 4436 } 4437 4438 ttwu_queue(p, cpu, wake_flags); 4439 } 4440 out: 4441 if (success) 4442 ttwu_stat(p, task_cpu(p), wake_flags); 4443 4444 return success; 4445 } 4446 4447 static bool __task_needs_rq_lock(struct task_struct *p) 4448 { 4449 unsigned int state = READ_ONCE(p->__state); 4450 4451 /* 4452 * Since pi->lock blocks try_to_wake_up(), we don't need rq->lock when 4453 * the task is blocked. Make sure to check @state since ttwu() can drop 4454 * locks at the end, see ttwu_queue_wakelist(). 4455 */ 4456 if (state == TASK_RUNNING || state == TASK_WAKING) 4457 return true; 4458 4459 /* 4460 * Ensure we load p->on_rq after p->__state, otherwise it would be 4461 * possible to, falsely, observe p->on_rq == 0. 4462 * 4463 * See try_to_wake_up() for a longer comment. 4464 */ 4465 smp_rmb(); 4466 if (p->on_rq) 4467 return true; 4468 4469 /* 4470 * Ensure the task has finished __schedule() and will not be referenced 4471 * anymore. Again, see try_to_wake_up() for a longer comment. 4472 */ 4473 smp_rmb(); 4474 smp_cond_load_acquire(&p->on_cpu, !VAL); 4475 4476 return false; 4477 } 4478 4479 /** 4480 * task_call_func - Invoke a function on task in fixed state 4481 * @p: Process for which the function is to be invoked, can be @current. 4482 * @func: Function to invoke. 4483 * @arg: Argument to function. 4484 * 4485 * Fix the task in it's current state by avoiding wakeups and or rq operations 4486 * and call @func(@arg) on it. This function can use task_is_runnable() and 4487 * task_curr() to work out what the state is, if required. Given that @func 4488 * can be invoked with a runqueue lock held, it had better be quite 4489 * lightweight. 4490 * 4491 * Returns: 4492 * Whatever @func returns 4493 */ 4494 int task_call_func(struct task_struct *p, task_call_f func, void *arg) 4495 { 4496 struct rq_flags rf; 4497 int ret; 4498 4499 raw_spin_lock_irqsave(&p->pi_lock, rf.flags); 4500 4501 if (__task_needs_rq_lock(p)) { 4502 struct rq *rq = __task_rq_lock(p, &rf); 4503 4504 /* 4505 * At this point the task is pinned; either: 4506 * - blocked and we're holding off wakeups (pi->lock) 4507 * - woken, and we're holding off enqueue (rq->lock) 4508 * - queued, and we're holding off schedule (rq->lock) 4509 * - running, and we're holding off de-schedule (rq->lock) 4510 * 4511 * The called function (@func) can use: task_curr(), p->on_rq and 4512 * p->__state to differentiate between these states. 4513 */ 4514 ret = func(p, arg); 4515 4516 __task_rq_unlock(rq, p, &rf); 4517 } else { 4518 ret = func(p, arg); 4519 } 4520 4521 raw_spin_unlock_irqrestore(&p->pi_lock, rf.flags); 4522 return ret; 4523 } 4524 4525 /** 4526 * cpu_curr_snapshot - Return a snapshot of the currently running task 4527 * @cpu: The CPU on which to snapshot the task. 4528 * 4529 * Returns the task_struct pointer of the task "currently" running on 4530 * the specified CPU. 4531 * 4532 * If the specified CPU was offline, the return value is whatever it 4533 * is, perhaps a pointer to the task_struct structure of that CPU's idle 4534 * task, but there is no guarantee. Callers wishing a useful return 4535 * value must take some action to ensure that the specified CPU remains 4536 * online throughout. 4537 * 4538 * This function executes full memory barriers before and after fetching 4539 * the pointer, which permits the caller to confine this function's fetch 4540 * with respect to the caller's accesses to other shared variables. 4541 */ 4542 struct task_struct *cpu_curr_snapshot(int cpu) 4543 { 4544 struct rq *rq = cpu_rq(cpu); 4545 struct task_struct *t; 4546 struct rq_flags rf; 4547 4548 rq_lock_irqsave(rq, &rf); 4549 smp_mb__after_spinlock(); /* Pairing determined by caller's synchronization design. */ 4550 t = rcu_dereference(cpu_curr(cpu)); 4551 rq_unlock_irqrestore(rq, &rf); 4552 smp_mb(); /* Pairing determined by caller's synchronization design. */ 4553 4554 return t; 4555 } 4556 4557 /** 4558 * wake_up_process - Wake up a specific process 4559 * @p: The process to be woken up. 4560 * 4561 * Attempt to wake up the nominated process and move it to the set of runnable 4562 * processes. 4563 * 4564 * Return: 1 if the process was woken up, 0 if it was already running. 4565 * 4566 * This function executes a full memory barrier before accessing the task state. 4567 */ 4568 int wake_up_process(struct task_struct *p) 4569 { 4570 return try_to_wake_up(p, TASK_NORMAL, 0); 4571 } 4572 EXPORT_SYMBOL(wake_up_process); 4573 4574 int wake_up_state(struct task_struct *p, unsigned int state) 4575 { 4576 return try_to_wake_up(p, state, 0); 4577 } 4578 4579 /* 4580 * Perform scheduler related setup for a newly forked process p. 4581 * p is forked by current. 4582 * 4583 * __sched_fork() is basic setup which is also used by sched_init() to 4584 * initialize the boot CPU's idle task. 4585 */ 4586 static void __sched_fork(u64 clone_flags, struct task_struct *p) 4587 { 4588 p->on_rq = 0; 4589 4590 p->se.on_rq = 0; 4591 p->se.exec_start = 0; 4592 p->se.sum_exec_runtime = 0; 4593 p->se.prev_sum_exec_runtime = 0; 4594 p->se.nr_migrations = 0; 4595 p->se.vruntime = 0; 4596 p->se.vlag = 0; 4597 p->se.rel_deadline = 0; 4598 INIT_LIST_HEAD(&p->se.group_node); 4599 4600 /* A delayed task cannot be in clone(). */ 4601 WARN_ON_ONCE(p->se.sched_delayed); 4602 WARN_ON_ONCE(p->is_blocked); 4603 4604 #ifdef CONFIG_FAIR_GROUP_SCHED 4605 p->se.cfs_rq = NULL; 4606 #ifdef CONFIG_CFS_BANDWIDTH 4607 init_cfs_throttle_work(p); 4608 #endif 4609 #endif 4610 4611 #ifdef CONFIG_SCHEDSTATS 4612 /* Even if schedstat is disabled, there should not be garbage */ 4613 memset(&p->stats, 0, sizeof(p->stats)); 4614 #endif 4615 4616 init_dl_entity(&p->dl); 4617 4618 INIT_LIST_HEAD(&p->rt.run_list); 4619 p->rt.timeout = 0; 4620 p->rt.time_slice = sched_rr_timeslice; 4621 p->rt.on_rq = 0; 4622 p->rt.on_list = 0; 4623 4624 #ifdef CONFIG_SCHED_CLASS_EXT 4625 init_scx_entity(&p->scx); 4626 #endif 4627 4628 #ifdef CONFIG_PREEMPT_NOTIFIERS 4629 INIT_HLIST_HEAD(&p->preempt_notifiers); 4630 #endif 4631 4632 #ifdef CONFIG_COMPACTION 4633 p->capture_control = NULL; 4634 #endif 4635 init_numa_balancing(clone_flags, p); 4636 p->wake_entry.u_flags = CSD_TYPE_TTWU; 4637 p->migration_pending = NULL; 4638 init_sched_mm(p); 4639 } 4640 4641 DEFINE_STATIC_KEY_FALSE(sched_numa_balancing); 4642 4643 #ifdef CONFIG_NUMA_BALANCING 4644 4645 int sysctl_numa_balancing_mode; 4646 4647 static void __set_numabalancing_state(bool enabled) 4648 { 4649 if (enabled) 4650 static_branch_enable(&sched_numa_balancing); 4651 else 4652 static_branch_disable(&sched_numa_balancing); 4653 } 4654 4655 void set_numabalancing_state(bool enabled) 4656 { 4657 if (enabled) 4658 sysctl_numa_balancing_mode = NUMA_BALANCING_NORMAL; 4659 else 4660 sysctl_numa_balancing_mode = NUMA_BALANCING_DISABLED; 4661 __set_numabalancing_state(enabled); 4662 } 4663 4664 #ifdef CONFIG_SYSCTL 4665 static void reset_memory_tiering(void) 4666 { 4667 struct pglist_data *pgdat; 4668 4669 for_each_online_pgdat(pgdat) { 4670 pgdat->nbp_threshold = 0; 4671 pgdat->nbp_th_nr_cand = node_page_state(pgdat, PGPROMOTE_CANDIDATE); 4672 pgdat->nbp_th_start = jiffies_to_msecs(jiffies); 4673 } 4674 } 4675 4676 static int sysctl_numa_balancing(const struct ctl_table *table, int write, 4677 void *buffer, size_t *lenp, loff_t *ppos) 4678 { 4679 struct ctl_table t; 4680 int err; 4681 int state = sysctl_numa_balancing_mode; 4682 4683 if (write && !capable(CAP_SYS_ADMIN)) 4684 return -EPERM; 4685 4686 t = *table; 4687 t.data = &state; 4688 err = proc_dointvec_minmax(&t, write, buffer, lenp, ppos); 4689 if (err < 0) 4690 return err; 4691 if (write) { 4692 if (!(sysctl_numa_balancing_mode & NUMA_BALANCING_MEMORY_TIERING) && 4693 (state & NUMA_BALANCING_MEMORY_TIERING)) 4694 reset_memory_tiering(); 4695 sysctl_numa_balancing_mode = state; 4696 __set_numabalancing_state(state); 4697 } 4698 return err; 4699 } 4700 #endif /* CONFIG_SYSCTL */ 4701 #endif /* CONFIG_NUMA_BALANCING */ 4702 4703 #ifdef CONFIG_SCHEDSTATS 4704 4705 DEFINE_STATIC_KEY_FALSE(sched_schedstats); 4706 4707 static void set_schedstats(bool enabled) 4708 { 4709 if (enabled) 4710 static_branch_enable(&sched_schedstats); 4711 else 4712 static_branch_disable(&sched_schedstats); 4713 } 4714 4715 void force_schedstat_enabled(void) 4716 { 4717 if (!schedstat_enabled()) { 4718 pr_info("kernel profiling enabled schedstats, disable via kernel.sched_schedstats.\n"); 4719 static_branch_enable(&sched_schedstats); 4720 } 4721 } 4722 4723 static int __init setup_schedstats(char *str) 4724 { 4725 int ret = 0; 4726 if (!str) 4727 goto out; 4728 4729 if (!strcmp(str, "enable")) { 4730 set_schedstats(true); 4731 ret = 1; 4732 } else if (!strcmp(str, "disable")) { 4733 set_schedstats(false); 4734 ret = 1; 4735 } 4736 out: 4737 if (!ret) 4738 pr_warn("Unable to parse schedstats=\n"); 4739 4740 return ret; 4741 } 4742 __setup("schedstats=", setup_schedstats); 4743 4744 #ifdef CONFIG_SYSCTL 4745 static int sysctl_schedstats(const struct ctl_table *table, int write, void *buffer, 4746 size_t *lenp, loff_t *ppos) 4747 { 4748 struct ctl_table t; 4749 int err; 4750 int state = static_branch_likely(&sched_schedstats); 4751 4752 if (write && !capable(CAP_SYS_ADMIN)) 4753 return -EPERM; 4754 4755 t = *table; 4756 t.data = &state; 4757 err = proc_dointvec_minmax(&t, write, buffer, lenp, ppos); 4758 if (err < 0) 4759 return err; 4760 if (write) 4761 set_schedstats(state); 4762 return err; 4763 } 4764 #endif /* CONFIG_SYSCTL */ 4765 #endif /* CONFIG_SCHEDSTATS */ 4766 4767 #ifdef CONFIG_SYSCTL 4768 static const struct ctl_table sched_core_sysctls[] = { 4769 #ifdef CONFIG_SCHEDSTATS 4770 { 4771 .procname = "sched_schedstats", 4772 .data = NULL, 4773 .maxlen = sizeof(unsigned int), 4774 .mode = 0644, 4775 .proc_handler = sysctl_schedstats, 4776 .extra1 = SYSCTL_ZERO, 4777 .extra2 = SYSCTL_ONE, 4778 }, 4779 #endif /* CONFIG_SCHEDSTATS */ 4780 #ifdef CONFIG_UCLAMP_TASK 4781 { 4782 .procname = "sched_util_clamp_min", 4783 .data = &sysctl_sched_uclamp_util_min, 4784 .maxlen = sizeof(unsigned int), 4785 .mode = 0644, 4786 .proc_handler = sysctl_sched_uclamp_handler, 4787 }, 4788 { 4789 .procname = "sched_util_clamp_max", 4790 .data = &sysctl_sched_uclamp_util_max, 4791 .maxlen = sizeof(unsigned int), 4792 .mode = 0644, 4793 .proc_handler = sysctl_sched_uclamp_handler, 4794 }, 4795 { 4796 .procname = "sched_util_clamp_min_rt_default", 4797 .data = &sysctl_sched_uclamp_util_min_rt_default, 4798 .maxlen = sizeof(unsigned int), 4799 .mode = 0644, 4800 .proc_handler = sysctl_sched_uclamp_handler, 4801 }, 4802 #endif /* CONFIG_UCLAMP_TASK */ 4803 #ifdef CONFIG_NUMA_BALANCING 4804 { 4805 .procname = "numa_balancing", 4806 .data = NULL, /* filled in by handler */ 4807 .maxlen = sizeof(unsigned int), 4808 .mode = 0644, 4809 .proc_handler = sysctl_numa_balancing, 4810 .extra1 = SYSCTL_ZERO, 4811 .extra2 = SYSCTL_FOUR, 4812 }, 4813 #endif /* CONFIG_NUMA_BALANCING */ 4814 }; 4815 static int __init sched_core_sysctl_init(void) 4816 { 4817 register_sysctl_init("kernel", sched_core_sysctls); 4818 return 0; 4819 } 4820 late_initcall(sched_core_sysctl_init); 4821 #endif /* CONFIG_SYSCTL */ 4822 4823 /* 4824 * fork()/clone()-time setup: 4825 */ 4826 int sched_fork(u64 clone_flags, struct task_struct *p) 4827 { 4828 __sched_fork(clone_flags, p); 4829 /* 4830 * We mark the process as NEW here. This guarantees that 4831 * nobody will actually run it, and a signal or other external 4832 * event cannot wake it up and insert it on the runqueue either. 4833 */ 4834 p->__state = TASK_NEW; 4835 4836 /* 4837 * Make sure we do not leak PI boosting priority to the child. 4838 */ 4839 p->prio = current->normal_prio; 4840 4841 uclamp_fork(p); 4842 4843 /* 4844 * Revert to default priority/policy on fork if requested. 4845 */ 4846 if (unlikely(p->sched_reset_on_fork)) { 4847 if (task_has_dl_policy(p) || task_has_rt_policy(p)) { 4848 p->policy = SCHED_NORMAL; 4849 p->static_prio = NICE_TO_PRIO(0); 4850 p->rt_priority = 0; 4851 p->timer_slack_ns = p->default_timer_slack_ns; 4852 } else if (PRIO_TO_NICE(p->static_prio) < 0) 4853 p->static_prio = NICE_TO_PRIO(0); 4854 4855 p->prio = p->normal_prio = p->static_prio; 4856 set_load_weight(p, false); 4857 p->se.custom_slice = 0; 4858 p->se.slice = sysctl_sched_base_slice; 4859 4860 /* 4861 * We don't need the reset flag anymore after the fork. It has 4862 * fulfilled its duty: 4863 */ 4864 p->sched_reset_on_fork = 0; 4865 } 4866 4867 if (dl_prio(p->prio)) 4868 return -EAGAIN; 4869 4870 scx_pre_fork(p); 4871 4872 if (rt_prio(p->prio)) { 4873 p->sched_class = &rt_sched_class; 4874 #ifdef CONFIG_SCHED_CLASS_EXT 4875 } else if (task_should_scx(p->policy)) { 4876 p->sched_class = &ext_sched_class; 4877 #endif 4878 } else { 4879 p->sched_class = &fair_sched_class; 4880 } 4881 4882 init_entity_runnable_average(&p->se); 4883 4884 4885 #ifdef CONFIG_SCHED_INFO 4886 if (likely(sched_info_on())) 4887 memset(&p->sched_info, 0, sizeof(p->sched_info)); 4888 #endif 4889 p->on_cpu = 0; 4890 init_task_preempt_count(p); 4891 plist_node_init(&p->pushable_tasks, MAX_PRIO); 4892 RB_CLEAR_NODE(&p->pushable_dl_tasks); 4893 4894 return 0; 4895 } 4896 4897 int sched_cgroup_fork(struct task_struct *p, struct kernel_clone_args *kargs) 4898 { 4899 unsigned long flags; 4900 4901 /* 4902 * Because we're not yet on the pid-hash, p->pi_lock isn't strictly 4903 * required yet, but lockdep gets upset if rules are violated. 4904 */ 4905 raw_spin_lock_irqsave(&p->pi_lock, flags); 4906 #ifdef CONFIG_CGROUP_SCHED 4907 if (1) { 4908 struct task_group *tg; 4909 tg = container_of(kargs->cset->subsys[cpu_cgrp_id], 4910 struct task_group, css); 4911 tg = autogroup_task_group(p, tg); 4912 p->sched_task_group = tg; 4913 } 4914 #endif 4915 /* 4916 * We're setting the CPU for the first time, we don't migrate, 4917 * so use __set_task_cpu(). 4918 */ 4919 __set_task_cpu(p, smp_processor_id()); 4920 if (p->sched_class->task_fork) 4921 p->sched_class->task_fork(p); 4922 raw_spin_unlock_irqrestore(&p->pi_lock, flags); 4923 4924 return scx_fork(p, kargs); 4925 } 4926 4927 void sched_cancel_fork(struct task_struct *p) 4928 { 4929 scx_cancel_fork(p); 4930 } 4931 4932 static void sched_mm_cid_fork(struct task_struct *t); 4933 4934 void sched_post_fork(struct task_struct *p) 4935 { 4936 sched_mm_cid_fork(p); 4937 uclamp_post_fork(p); 4938 scx_post_fork(p); 4939 } 4940 4941 u64 to_ratio(u64 period, u64 runtime) 4942 { 4943 if (runtime == RUNTIME_INF) 4944 return BW_UNIT; 4945 4946 /* 4947 * Doing this here saves a lot of checks in all 4948 * the calling paths, and returning zero seems 4949 * safe for them anyway. 4950 */ 4951 if (period == 0) 4952 return 0; 4953 4954 return div64_u64(runtime << BW_SHIFT, period); 4955 } 4956 4957 /* 4958 * wake_up_new_task - wake up a newly created task for the first time. 4959 * 4960 * This function will do some initial scheduler statistics housekeeping 4961 * that must be done for every newly created context, then puts the task 4962 * on the runqueue and wakes it. 4963 */ 4964 void wake_up_new_task(struct task_struct *p) 4965 { 4966 struct rq_flags rf; 4967 struct rq *rq; 4968 int wake_flags = WF_FORK; 4969 4970 raw_spin_lock_irqsave(&p->pi_lock, rf.flags); 4971 WRITE_ONCE(p->__state, TASK_RUNNING); 4972 /* 4973 * Fork balancing, do it here and not earlier because: 4974 * - cpus_ptr can change in the fork path 4975 * - any previously selected CPU might disappear through hotplug 4976 * 4977 * Use __set_task_cpu() to avoid calling sched_class::migrate_task_rq, 4978 * as we're not fully set-up yet. 4979 */ 4980 p->recent_used_cpu = task_cpu(p); 4981 __set_task_cpu(p, select_task_rq(p, task_cpu(p), &wake_flags)); 4982 rq = __task_rq_lock(p, &rf); 4983 update_rq_clock(rq); 4984 post_init_entity_util_avg(p); 4985 4986 activate_task(rq, p, ENQUEUE_NOCLOCK | ENQUEUE_INITIAL); 4987 trace_sched_wakeup_new(p); 4988 wakeup_preempt(rq, p, wake_flags); 4989 if (p->sched_class->task_woken) { 4990 /* 4991 * Nothing relies on rq->lock after this, so it's fine to 4992 * drop it. 4993 */ 4994 rq_unpin_lock(rq, &rf); 4995 p->sched_class->task_woken(rq, p); 4996 rq_repin_lock(rq, &rf); 4997 } 4998 task_rq_unlock(rq, p, &rf); 4999 } 5000 5001 #ifdef CONFIG_PREEMPT_NOTIFIERS 5002 5003 static DEFINE_STATIC_KEY_FALSE(preempt_notifier_key); 5004 5005 void preempt_notifier_inc(void) 5006 { 5007 static_branch_inc(&preempt_notifier_key); 5008 } 5009 EXPORT_SYMBOL_GPL(preempt_notifier_inc); 5010 5011 void preempt_notifier_dec(void) 5012 { 5013 static_branch_dec(&preempt_notifier_key); 5014 } 5015 EXPORT_SYMBOL_GPL(preempt_notifier_dec); 5016 5017 /** 5018 * preempt_notifier_register - tell me when current is being preempted & rescheduled 5019 * @notifier: notifier struct to register 5020 */ 5021 void preempt_notifier_register(struct preempt_notifier *notifier) 5022 { 5023 if (!static_branch_unlikely(&preempt_notifier_key)) 5024 WARN(1, "registering preempt_notifier while notifiers disabled\n"); 5025 5026 hlist_add_head(¬ifier->link, ¤t->preempt_notifiers); 5027 } 5028 EXPORT_SYMBOL_GPL(preempt_notifier_register); 5029 5030 /** 5031 * preempt_notifier_unregister - no longer interested in preemption notifications 5032 * @notifier: notifier struct to unregister 5033 * 5034 * This is *not* safe to call from within a preemption notifier. 5035 */ 5036 void preempt_notifier_unregister(struct preempt_notifier *notifier) 5037 { 5038 hlist_del(¬ifier->link); 5039 } 5040 EXPORT_SYMBOL_GPL(preempt_notifier_unregister); 5041 5042 static void __fire_sched_in_preempt_notifiers(struct task_struct *curr) 5043 { 5044 struct preempt_notifier *notifier; 5045 5046 hlist_for_each_entry(notifier, &curr->preempt_notifiers, link) 5047 notifier->ops->sched_in(notifier, raw_smp_processor_id()); 5048 } 5049 5050 static __always_inline void fire_sched_in_preempt_notifiers(struct task_struct *curr) 5051 { 5052 if (static_branch_unlikely(&preempt_notifier_key)) 5053 __fire_sched_in_preempt_notifiers(curr); 5054 } 5055 5056 static void 5057 __fire_sched_out_preempt_notifiers(struct task_struct *curr, 5058 struct task_struct *next) 5059 { 5060 struct preempt_notifier *notifier; 5061 5062 hlist_for_each_entry(notifier, &curr->preempt_notifiers, link) 5063 notifier->ops->sched_out(notifier, next); 5064 } 5065 5066 static __always_inline void 5067 fire_sched_out_preempt_notifiers(struct task_struct *curr, 5068 struct task_struct *next) 5069 { 5070 if (static_branch_unlikely(&preempt_notifier_key)) 5071 __fire_sched_out_preempt_notifiers(curr, next); 5072 } 5073 5074 #else /* !CONFIG_PREEMPT_NOTIFIERS: */ 5075 5076 static inline void fire_sched_in_preempt_notifiers(struct task_struct *curr) 5077 { 5078 } 5079 5080 static inline void 5081 fire_sched_out_preempt_notifiers(struct task_struct *curr, 5082 struct task_struct *next) 5083 { 5084 } 5085 5086 #endif /* !CONFIG_PREEMPT_NOTIFIERS */ 5087 5088 static inline void prepare_task(struct task_struct *next) 5089 { 5090 /* 5091 * Claim the task as running, we do this before switching to it 5092 * such that any running task will have this set. 5093 * 5094 * See the smp_load_acquire(&p->on_cpu) case in ttwu() and 5095 * its ordering comment. 5096 */ 5097 WRITE_ONCE(next->on_cpu, 1); 5098 } 5099 5100 static inline void finish_task(struct task_struct *prev) 5101 { 5102 /* 5103 * This must be the very last reference to @prev from this CPU. After 5104 * p->on_cpu is cleared, the task can be moved to a different CPU. We 5105 * must ensure this doesn't happen until the switch is completely 5106 * finished. 5107 * 5108 * In particular, the load of prev->state in finish_task_switch() must 5109 * happen before this. 5110 * 5111 * Pairs with the smp_cond_load_acquire() in try_to_wake_up(). 5112 */ 5113 smp_store_release(&prev->on_cpu, 0); 5114 } 5115 5116 /* 5117 * Only called from __schedule context 5118 * 5119 * There are some cases where we are going to re-do the action 5120 * that added the balance callbacks. We may not be in a state 5121 * where we can run them, so just zap them so they can be 5122 * properly re-added on the next time around. This is similar 5123 * handling to running the callbacks, except we just don't call 5124 * them. 5125 */ 5126 static void zap_balance_callbacks(struct rq *rq) 5127 { 5128 struct balance_callback *next, *head; 5129 bool found = false; 5130 5131 lockdep_assert_rq_held(rq); 5132 5133 head = rq->balance_callback; 5134 while (head) { 5135 if (head == &balance_push_callback) 5136 found = true; 5137 next = head->next; 5138 head->next = NULL; 5139 head = next; 5140 } 5141 rq->balance_callback = found ? &balance_push_callback : NULL; 5142 } 5143 5144 static void do_balance_callbacks(struct rq *rq, struct balance_callback *head) 5145 { 5146 void (*func)(struct rq *rq); 5147 struct balance_callback *next; 5148 5149 lockdep_assert_rq_held(rq); 5150 5151 while (head) { 5152 func = (void (*)(struct rq *))head->func; 5153 next = head->next; 5154 head->next = NULL; 5155 head = next; 5156 5157 func(rq); 5158 } 5159 } 5160 5161 static void balance_push(struct rq *rq); 5162 5163 /* 5164 * balance_push_callback is a right abuse of the callback interface and plays 5165 * by significantly different rules. 5166 * 5167 * Where the normal balance_callback's purpose is to be ran in the same context 5168 * that queued it (only later, when it's safe to drop rq->lock again), 5169 * balance_push_callback is specifically targeted at __schedule(). 5170 * 5171 * This abuse is tolerated because it places all the unlikely/odd cases behind 5172 * a single test, namely: rq->balance_callback == NULL. 5173 */ 5174 struct balance_callback balance_push_callback = { 5175 .next = NULL, 5176 .func = balance_push, 5177 }; 5178 5179 static inline struct balance_callback * 5180 __splice_balance_callbacks(struct rq *rq, bool split) 5181 { 5182 struct balance_callback *head = rq->balance_callback; 5183 5184 if (likely(!head)) 5185 return NULL; 5186 5187 lockdep_assert_rq_held(rq); 5188 /* 5189 * Must not take balance_push_callback off the list when 5190 * splice_balance_callbacks() and balance_callbacks() are not 5191 * in the same rq->lock section. 5192 * 5193 * In that case it would be possible for __schedule() to interleave 5194 * and observe the list empty. 5195 */ 5196 if (split && head == &balance_push_callback) 5197 head = NULL; 5198 else 5199 rq->balance_callback = NULL; 5200 5201 return head; 5202 } 5203 5204 struct balance_callback *splice_balance_callbacks(struct rq *rq) 5205 { 5206 return __splice_balance_callbacks(rq, true); 5207 } 5208 5209 void __balance_callbacks(struct rq *rq, struct rq_flags *rf) 5210 { 5211 if (rf) 5212 rq_unpin_lock(rq, rf); 5213 do_balance_callbacks(rq, __splice_balance_callbacks(rq, false)); 5214 if (rf) 5215 rq_repin_lock(rq, rf); 5216 } 5217 5218 void balance_callbacks(struct rq *rq, struct balance_callback *head) 5219 { 5220 unsigned long flags; 5221 5222 if (unlikely(head)) { 5223 raw_spin_rq_lock_irqsave(rq, flags); 5224 do_balance_callbacks(rq, head); 5225 raw_spin_rq_unlock_irqrestore(rq, flags); 5226 } 5227 } 5228 5229 static inline void 5230 prepare_lock_switch(struct rq *rq, struct task_struct *next, struct rq_flags *rf) 5231 __releases(__rq_lockp(rq)) 5232 __acquires(__rq_lockp(this_rq())) 5233 { 5234 /* 5235 * Since the runqueue lock will be released by the next 5236 * task (which is an invalid locking op but in the case 5237 * of the scheduler it's an obvious special-case), so we 5238 * do an early lockdep release here: 5239 */ 5240 rq_unpin_lock(rq, rf); 5241 spin_release(&__rq_lockp(rq)->dep_map, _THIS_IP_); 5242 #ifdef CONFIG_DEBUG_SPINLOCK 5243 /* this is a valid case when another task releases the spinlock */ 5244 rq_lockp(rq)->owner = next; 5245 #endif 5246 /* 5247 * Model the rq reference switcheroo. 5248 */ 5249 __release(__rq_lockp(rq)); 5250 __acquire(__rq_lockp(this_rq())); 5251 } 5252 5253 static inline void finish_lock_switch(struct rq *rq) 5254 __releases(__rq_lockp(rq)) 5255 { 5256 /* 5257 * If we are tracking spinlock dependencies then we have to 5258 * fix up the runqueue lock - which gets 'carried over' from 5259 * prev into current: 5260 */ 5261 spin_acquire(&__rq_lockp(rq)->dep_map, 0, 0, _THIS_IP_); 5262 __balance_callbacks(rq, NULL); 5263 hrtick_schedule_exit(rq); 5264 raw_spin_rq_unlock_irq(rq); 5265 } 5266 5267 /* 5268 * NOP if the arch has not defined these: 5269 */ 5270 5271 #ifndef prepare_arch_switch 5272 # define prepare_arch_switch(next) do { } while (0) 5273 #endif 5274 5275 #ifndef finish_arch_post_lock_switch 5276 # define finish_arch_post_lock_switch() do { } while (0) 5277 #endif 5278 5279 static inline void kmap_local_sched_out(void) 5280 { 5281 #ifdef CONFIG_KMAP_LOCAL 5282 if (unlikely(current->kmap_ctrl.idx)) 5283 __kmap_local_sched_out(); 5284 #endif 5285 } 5286 5287 static inline void kmap_local_sched_in(void) 5288 { 5289 #ifdef CONFIG_KMAP_LOCAL 5290 if (unlikely(current->kmap_ctrl.idx)) 5291 __kmap_local_sched_in(); 5292 #endif 5293 } 5294 5295 /** 5296 * prepare_task_switch - prepare to switch tasks 5297 * @rq: the runqueue preparing to switch 5298 * @prev: the current task that is being switched out 5299 * @next: the task we are going to switch to. 5300 * 5301 * This is called with the rq lock held and interrupts off. It must 5302 * be paired with a subsequent finish_task_switch after the context 5303 * switch. 5304 * 5305 * prepare_task_switch sets up locking and calls architecture specific 5306 * hooks. 5307 */ 5308 static inline void 5309 prepare_task_switch(struct rq *rq, struct task_struct *prev, 5310 struct task_struct *next) 5311 __must_hold(__rq_lockp(rq)) 5312 { 5313 kcov_prepare_switch(prev); 5314 sched_info_switch(rq, prev, next); 5315 perf_event_task_sched_out(prev, next); 5316 fire_sched_out_preempt_notifiers(prev, next); 5317 kmap_local_sched_out(); 5318 prepare_task(next); 5319 prepare_arch_switch(next); 5320 } 5321 5322 /** 5323 * finish_task_switch - clean up after a task-switch 5324 * @prev: the thread we just switched away from. 5325 * 5326 * finish_task_switch must be called after the context switch, paired 5327 * with a prepare_task_switch call before the context switch. 5328 * finish_task_switch will reconcile locking set up by prepare_task_switch, 5329 * and do any other architecture-specific cleanup actions. 5330 * 5331 * Note that we may have delayed dropping an mm in context_switch(). If 5332 * so, we finish that here outside of the runqueue lock. (Doing it 5333 * with the lock held can cause deadlocks; see schedule() for 5334 * details.) 5335 * 5336 * The context switch have flipped the stack from under us and restored the 5337 * local variables which were saved when this task called schedule() in the 5338 * past. 'prev == current' is still correct but we need to recalculate this_rq 5339 * because prev may have moved to another CPU. 5340 */ 5341 static struct rq *finish_task_switch(struct task_struct *prev) 5342 __releases(__rq_lockp(this_rq())) 5343 { 5344 struct rq *rq = this_rq(); 5345 struct mm_struct *mm = rq->prev_mm; 5346 unsigned int prev_state; 5347 5348 /* 5349 * The previous task will have left us with a preempt_count of 2 5350 * because it left us after: 5351 * 5352 * schedule() 5353 * preempt_disable(); // 1 5354 * __schedule() 5355 * raw_spin_lock_irq(&rq->lock) // 2 5356 * 5357 * Also, see FORK_PREEMPT_COUNT. 5358 */ 5359 if (WARN_ONCE(preempt_count() != 2*PREEMPT_DISABLE_OFFSET, 5360 "corrupted preempt_count: %s/%d/0x%x\n", 5361 current->comm, current->pid, preempt_count())) 5362 preempt_count_set(FORK_PREEMPT_COUNT); 5363 5364 rq->prev_mm = NULL; 5365 5366 /* 5367 * A task struct has one reference for the use as "current". 5368 * If a task dies, then it sets TASK_DEAD in tsk->state and calls 5369 * schedule one last time. The schedule call will never return, and 5370 * the scheduled task must drop that reference. 5371 * 5372 * We must observe prev->state before clearing prev->on_cpu (in 5373 * finish_task), otherwise a concurrent wakeup can get prev 5374 * running on another CPU and we could rave with its RUNNING -> DEAD 5375 * transition, resulting in a double drop. 5376 */ 5377 prev_state = READ_ONCE(prev->__state); 5378 vtime_task_switch(prev); 5379 perf_event_task_sched_in(prev, current); 5380 finish_task(prev); 5381 tick_nohz_task_switch(); 5382 finish_lock_switch(rq); 5383 finish_arch_post_lock_switch(); 5384 kcov_finish_switch(current); 5385 /* 5386 * kmap_local_sched_out() is invoked with rq::lock held and 5387 * interrupts disabled. There is no requirement for that, but the 5388 * sched out code does not have an interrupt enabled section. 5389 * Restoring the maps on sched in does not require interrupts being 5390 * disabled either. 5391 */ 5392 kmap_local_sched_in(); 5393 5394 /* 5395 * Any cached block-layer timestamp (plug->cur_ktime) is stale now, 5396 * invalidate it. 5397 */ 5398 blk_plug_invalidate_ts(); 5399 5400 fire_sched_in_preempt_notifiers(current); 5401 /* 5402 * When switching through a kernel thread, the loop in 5403 * membarrier_{private,global}_expedited() may have observed that 5404 * kernel thread and not issued an IPI. It is therefore possible to 5405 * schedule between user->kernel->user threads without passing though 5406 * switch_mm(). Membarrier requires a barrier after storing to 5407 * rq->curr, before returning to userspace, so provide them here: 5408 * 5409 * - a full memory barrier for {PRIVATE,GLOBAL}_EXPEDITED, implicitly 5410 * provided by mmdrop_lazy_tlb(), 5411 * - a sync_core for SYNC_CORE. 5412 */ 5413 if (mm) { 5414 membarrier_mm_sync_core_before_usermode(mm); 5415 mmdrop_lazy_tlb_sched(mm); 5416 } 5417 5418 if (unlikely(prev_state == TASK_DEAD)) { 5419 if (prev->sched_class->task_dead) 5420 prev->sched_class->task_dead(prev); 5421 5422 /* 5423 * sched_ext_dead() must come before cgroup_task_dead() to 5424 * prevent cgroups from being removed while its member tasks are 5425 * visible to SCX schedulers. 5426 */ 5427 sched_ext_dead(prev); 5428 cgroup_task_dead(prev); 5429 5430 /* Task is done with its stack. */ 5431 put_task_stack(prev); 5432 5433 put_task_struct_rcu_user(prev); 5434 } 5435 5436 return rq; 5437 } 5438 5439 /** 5440 * schedule_tail - first thing a freshly forked thread must call. 5441 * @prev: the thread we just switched away from. 5442 */ 5443 asmlinkage __visible void schedule_tail(struct task_struct *prev) 5444 __releases(__rq_lockp(this_rq())) 5445 { 5446 /* 5447 * New tasks start with FORK_PREEMPT_COUNT, see there and 5448 * finish_task_switch() for details. 5449 * 5450 * finish_task_switch() will drop rq->lock() and lower preempt_count 5451 * and the preempt_enable() will end up enabling preemption (on 5452 * PREEMPT_COUNT kernels). 5453 */ 5454 5455 finish_task_switch(prev); 5456 /* 5457 * This is a special case: the newly created task has just 5458 * switched the context for the first time. It is returning from 5459 * schedule for the first time in this path. 5460 */ 5461 trace_sched_exit_tp(true); 5462 preempt_enable(); 5463 5464 if (current->set_child_tid) 5465 put_user(task_pid_vnr(current), current->set_child_tid); 5466 5467 calculate_sigpending(); 5468 } 5469 5470 /* 5471 * context_switch - switch to the new MM and the new thread's register state. 5472 */ 5473 static __always_inline struct rq * 5474 context_switch(struct rq *rq, struct task_struct *prev, 5475 struct task_struct *next, struct rq_flags *rf) 5476 __releases(__rq_lockp(rq)) 5477 { 5478 prepare_task_switch(rq, prev, next); 5479 5480 /* 5481 * For paravirt, this is coupled with an exit in switch_to to 5482 * combine the page table reload and the switch backend into 5483 * one hypercall. 5484 */ 5485 arch_start_context_switch(prev); 5486 5487 /* 5488 * kernel -> kernel lazy + transfer active 5489 * user -> kernel lazy + mmgrab_lazy_tlb() active 5490 * 5491 * kernel -> user switch + mmdrop_lazy_tlb() active 5492 * user -> user switch 5493 */ 5494 if (!next->mm) { // to kernel 5495 enter_lazy_tlb(prev->active_mm, next); 5496 5497 next->active_mm = prev->active_mm; 5498 if (prev->mm) // from user 5499 mmgrab_lazy_tlb(prev->active_mm); 5500 else 5501 prev->active_mm = NULL; 5502 } else { // to user 5503 membarrier_switch_mm(rq, prev->active_mm, next->mm); 5504 /* 5505 * sys_membarrier() requires an smp_mb() between setting 5506 * rq->curr / membarrier_switch_mm() and returning to userspace. 5507 * 5508 * The below provides this either through switch_mm(), or in 5509 * case 'prev->active_mm == next->mm' through 5510 * finish_task_switch()'s mmdrop(). 5511 */ 5512 switch_mm_irqs_off(prev->active_mm, next->mm, next); 5513 lru_gen_use_mm(next->mm); 5514 5515 if (!prev->mm) { // from kernel 5516 /* will mmdrop_lazy_tlb() in finish_task_switch(). */ 5517 rq->prev_mm = prev->active_mm; 5518 prev->active_mm = NULL; 5519 } 5520 } 5521 5522 mm_cid_switch_to(prev, next); 5523 5524 /* 5525 * Tell rseq that the task was scheduled in. Must be after 5526 * switch_mm_cid() to get the TIF flag set. 5527 */ 5528 rseq_sched_switch_event(next); 5529 5530 prepare_lock_switch(rq, next, rf); 5531 5532 /* Here we just switch the register state and the stack. */ 5533 switch_to(prev, next, prev); 5534 barrier(); 5535 5536 return finish_task_switch(prev); 5537 } 5538 5539 /* 5540 * nr_running and nr_context_switches: 5541 * 5542 * externally visible scheduler statistics: current number of runnable 5543 * threads, total number of context switches performed since bootup. 5544 */ 5545 unsigned int nr_running(void) 5546 { 5547 unsigned int i, sum = 0; 5548 5549 for_each_online_cpu(i) 5550 sum += cpu_rq(i)->nr_running; 5551 5552 return sum; 5553 } 5554 5555 /* 5556 * Check if only the current task is running on the CPU. 5557 * 5558 * Caution: this function does not check that the caller has disabled 5559 * preemption, thus the result might have a time-of-check-to-time-of-use 5560 * race. The caller is responsible to use it correctly, for example: 5561 * 5562 * - from a non-preemptible section (of course) 5563 * 5564 * - from a thread that is bound to a single CPU 5565 * 5566 * - in a loop with very short iterations (e.g. a polling loop) 5567 */ 5568 bool single_task_running(void) 5569 { 5570 return raw_rq()->nr_running == 1; 5571 } 5572 EXPORT_SYMBOL(single_task_running); 5573 5574 unsigned long long nr_context_switches_cpu(int cpu) 5575 { 5576 return cpu_rq(cpu)->nr_switches; 5577 } 5578 5579 unsigned long long nr_context_switches(void) 5580 { 5581 int i; 5582 unsigned long long sum = 0; 5583 5584 for_each_possible_cpu(i) 5585 sum += cpu_rq(i)->nr_switches; 5586 5587 return sum; 5588 } 5589 5590 /* 5591 * Consumers of these two interfaces, like for example the cpuidle menu 5592 * governor, are using nonsensical data. Preferring shallow idle state selection 5593 * for a CPU that has IO-wait which might not even end up running the task when 5594 * it does become runnable. 5595 */ 5596 5597 unsigned int nr_iowait_cpu(int cpu) 5598 { 5599 return atomic_read(&cpu_rq(cpu)->nr_iowait); 5600 } 5601 5602 /* 5603 * IO-wait accounting, and how it's mostly bollocks (on SMP). 5604 * 5605 * The idea behind IO-wait account is to account the idle time that we could 5606 * have spend running if it were not for IO. That is, if we were to improve the 5607 * storage performance, we'd have a proportional reduction in IO-wait time. 5608 * 5609 * This all works nicely on UP, where, when a task blocks on IO, we account 5610 * idle time as IO-wait, because if the storage were faster, it could've been 5611 * running and we'd not be idle. 5612 * 5613 * This has been extended to SMP, by doing the same for each CPU. This however 5614 * is broken. 5615 * 5616 * Imagine for instance the case where two tasks block on one CPU, only the one 5617 * CPU will have IO-wait accounted, while the other has regular idle. Even 5618 * though, if the storage were faster, both could've ran at the same time, 5619 * utilising both CPUs. 5620 * 5621 * This means, that when looking globally, the current IO-wait accounting on 5622 * SMP is a lower bound, by reason of under accounting. 5623 * 5624 * Worse, since the numbers are provided per CPU, they are sometimes 5625 * interpreted per CPU, and that is nonsensical. A blocked task isn't strictly 5626 * associated with any one particular CPU, it can wake to another CPU than it 5627 * blocked on. This means the per CPU IO-wait number is meaningless. 5628 * 5629 * Task CPU affinities can make all that even more 'interesting'. 5630 */ 5631 5632 unsigned int nr_iowait(void) 5633 { 5634 unsigned int i, sum = 0; 5635 5636 for_each_possible_cpu(i) 5637 sum += nr_iowait_cpu(i); 5638 5639 return sum; 5640 } 5641 5642 /* 5643 * sched_exec - execve() is a valuable balancing opportunity, because at 5644 * this point the task has the smallest effective memory and cache footprint. 5645 */ 5646 void sched_exec(void) 5647 { 5648 struct task_struct *p = current; 5649 struct migration_arg arg; 5650 int dest_cpu; 5651 5652 scoped_guard (raw_spinlock_irqsave, &p->pi_lock) { 5653 dest_cpu = p->sched_class->select_task_rq(p, task_cpu(p), WF_EXEC); 5654 if (dest_cpu == smp_processor_id()) 5655 return; 5656 5657 if (unlikely(!cpu_active(dest_cpu))) 5658 return; 5659 5660 arg = (struct migration_arg){ p, dest_cpu }; 5661 } 5662 stop_one_cpu(task_cpu(p), migration_cpu_stop, &arg); 5663 } 5664 5665 DEFINE_PER_CPU(struct kernel_stat, kstat); 5666 DEFINE_PER_CPU(struct kernel_cpustat, kernel_cpustat) = { 5667 #ifdef CONFIG_NO_HZ_COMMON 5668 .idle_sleeptime_seq = SEQCNT_ZERO(kernel_cpustat.idle_sleeptime_seq) 5669 #endif 5670 }; 5671 5672 EXPORT_PER_CPU_SYMBOL(kstat); 5673 EXPORT_PER_CPU_SYMBOL(kernel_cpustat); 5674 5675 /* 5676 * The function fair_sched_class.update_curr accesses the struct curr 5677 * and its field curr->exec_start; when called from task_sched_runtime(), 5678 * we observe a high rate of cache misses in practice. 5679 * Prefetching this data results in improved performance. 5680 */ 5681 static inline void prefetch_curr_exec_start(struct task_struct *p) 5682 { 5683 struct sched_entity *curr = task_rq(p)->cfs.curr; 5684 5685 prefetch(curr); 5686 prefetch(&curr->exec_start); 5687 } 5688 5689 /* 5690 * Return accounted runtime for the task. 5691 * In case the task is currently running, return the runtime plus current's 5692 * pending runtime that have not been accounted yet. 5693 */ 5694 unsigned long long task_sched_runtime(struct task_struct *p) 5695 { 5696 struct rq_flags rf; 5697 struct rq *rq; 5698 u64 ns; 5699 5700 #ifdef CONFIG_64BIT 5701 /* 5702 * 64-bit doesn't need locks to atomically read a 64-bit value. 5703 * So we have a optimization chance when the task's delta_exec is 0. 5704 * Reading ->on_cpu is racy, but this is OK. 5705 * 5706 * If we race with it leaving CPU, we'll take a lock. So we're correct. 5707 * If we race with it entering CPU, unaccounted time is 0. This is 5708 * indistinguishable from the read occurring a few cycles earlier. 5709 * If we see ->on_cpu without ->on_rq, the task is leaving, and has 5710 * been accounted, so we're correct here as well. 5711 */ 5712 if (!p->on_cpu || !task_on_rq_queued(p)) 5713 return p->se.sum_exec_runtime; 5714 #endif 5715 5716 rq = task_rq_lock(p, &rf); 5717 /* 5718 * Must be ->curr _and_ ->on_rq. If dequeued, we would 5719 * project cycles that may never be accounted to this 5720 * thread, breaking clock_gettime(). 5721 */ 5722 if (task_current_donor(rq, p) && task_on_rq_queued(p)) { 5723 prefetch_curr_exec_start(p); 5724 update_rq_clock(rq); 5725 p->sched_class->update_curr(rq); 5726 } 5727 ns = p->se.sum_exec_runtime; 5728 task_rq_unlock(rq, p, &rf); 5729 5730 return ns; 5731 } 5732 5733 static u64 cpu_resched_latency(struct rq *rq) 5734 { 5735 int latency_warn_ms = READ_ONCE(sysctl_resched_latency_warn_ms); 5736 u64 resched_latency, now = rq_clock(rq); 5737 static bool warned_once; 5738 5739 if (sysctl_resched_latency_warn_once && warned_once) 5740 return 0; 5741 5742 if (!need_resched() || !latency_warn_ms) 5743 return 0; 5744 5745 if (system_state == SYSTEM_BOOTING) 5746 return 0; 5747 5748 if (!rq->last_seen_need_resched_ns) { 5749 rq->last_seen_need_resched_ns = now; 5750 rq->ticks_without_resched = 0; 5751 return 0; 5752 } 5753 5754 rq->ticks_without_resched++; 5755 resched_latency = now - rq->last_seen_need_resched_ns; 5756 if (resched_latency <= latency_warn_ms * NSEC_PER_MSEC) 5757 return 0; 5758 5759 warned_once = true; 5760 5761 return resched_latency; 5762 } 5763 5764 static int __init setup_resched_latency_warn_ms(char *str) 5765 { 5766 long val; 5767 5768 if ((kstrtol(str, 0, &val))) { 5769 pr_warn("Unable to set resched_latency_warn_ms\n"); 5770 return 1; 5771 } 5772 5773 sysctl_resched_latency_warn_ms = val; 5774 return 1; 5775 } 5776 __setup("resched_latency_warn_ms=", setup_resched_latency_warn_ms); 5777 5778 /* 5779 * This function gets called by the timer code, with HZ frequency. 5780 * We call it with interrupts disabled. 5781 */ 5782 void sched_tick(void) 5783 { 5784 int cpu = smp_processor_id(); 5785 struct rq *rq = cpu_rq(cpu); 5786 /* scheduler accounting goes to the donor task */ 5787 struct task_struct *curr, *donor; 5788 struct rq_flags rf; 5789 unsigned long hw_pressure; 5790 u64 resched_latency; 5791 5792 if (housekeeping_cpu(cpu, HK_TYPE_KERNEL_NOISE)) 5793 arch_scale_freq_tick(); 5794 5795 sched_clock_tick(); 5796 5797 rq_lock(rq, &rf); 5798 curr = rq->curr; 5799 donor = rq->donor; 5800 5801 psi_account_irqtime(rq, curr, NULL); 5802 5803 update_rq_clock(rq); 5804 hw_pressure = arch_scale_hw_pressure(cpu_of(rq)); 5805 update_hw_load_avg(rq_clock_task(rq), rq, hw_pressure); 5806 5807 if (dynamic_preempt_lazy() && tif_test_bit(TIF_NEED_RESCHED_LAZY)) 5808 resched_curr(rq); 5809 5810 donor->sched_class->task_tick(rq, donor, 0); 5811 if (sched_feat(LATENCY_WARN)) 5812 resched_latency = cpu_resched_latency(rq); 5813 calc_global_load_tick(rq); 5814 sched_core_tick(rq); 5815 scx_tick(rq); 5816 5817 rq_unlock(rq, &rf); 5818 5819 if (sched_feat(LATENCY_WARN) && resched_latency) 5820 resched_latency_warn(cpu, resched_latency); 5821 5822 perf_event_task_tick(); 5823 5824 if (curr->flags & PF_WQ_WORKER) 5825 wq_worker_tick(curr); 5826 5827 if (!scx_switched_all()) { 5828 rq->idle_balance = idle_cpu(cpu); 5829 sched_balance_trigger(rq); 5830 } 5831 } 5832 5833 #ifdef CONFIG_NO_HZ_FULL 5834 5835 struct tick_work { 5836 int cpu; 5837 atomic_t state; 5838 struct delayed_work work; 5839 }; 5840 /* Values for ->state, see diagram below. */ 5841 #define TICK_SCHED_REMOTE_OFFLINE 0 5842 #define TICK_SCHED_REMOTE_OFFLINING 1 5843 #define TICK_SCHED_REMOTE_RUNNING 2 5844 5845 /* 5846 * State diagram for ->state: 5847 * 5848 * 5849 * TICK_SCHED_REMOTE_OFFLINE 5850 * | ^ 5851 * | | 5852 * | | sched_tick_remote() 5853 * | | 5854 * | | 5855 * +--TICK_SCHED_REMOTE_OFFLINING 5856 * | ^ 5857 * | | 5858 * sched_tick_start() | | sched_tick_stop() 5859 * | | 5860 * V | 5861 * TICK_SCHED_REMOTE_RUNNING 5862 * 5863 * 5864 * Other transitions get WARN_ON_ONCE(), except that sched_tick_remote() 5865 * and sched_tick_start() are happy to leave the state in RUNNING. 5866 */ 5867 5868 static struct tick_work __percpu *tick_work_cpu; 5869 5870 static void sched_tick_remote(struct work_struct *work) 5871 { 5872 struct delayed_work *dwork = to_delayed_work(work); 5873 struct tick_work *twork = container_of(dwork, struct tick_work, work); 5874 int cpu = twork->cpu; 5875 struct rq *rq = cpu_rq(cpu); 5876 int os; 5877 5878 /* 5879 * Handle the tick only if it appears the remote CPU is running in full 5880 * dynticks mode. The check is racy by nature, but missing a tick or 5881 * having one too much is no big deal because the scheduler tick updates 5882 * statistics and checks timeslices in a time-independent way, regardless 5883 * of when exactly it is running. 5884 */ 5885 if (tick_nohz_tick_stopped_cpu(cpu)) { 5886 guard(rq_lock_irq)(rq); 5887 struct task_struct *curr = rq->curr; 5888 5889 if (cpu_online(cpu)) { 5890 /* 5891 * Since this is a remote tick for full dynticks mode, 5892 * we are always sure that there is no proxy (only a 5893 * single task is running). 5894 */ 5895 WARN_ON_ONCE(rq->curr != rq->donor); 5896 update_rq_clock(rq); 5897 5898 if (!is_idle_task(curr)) { 5899 /* 5900 * Make sure the next tick runs within a 5901 * reasonable amount of time. 5902 */ 5903 u64 delta = rq_clock_task(rq) - curr->se.exec_start; 5904 WARN_ON_ONCE(delta > (u64)NSEC_PER_SEC * 30); 5905 } 5906 curr->sched_class->task_tick(rq, curr, 0); 5907 5908 calc_load_nohz_remote(rq); 5909 } 5910 } 5911 5912 /* 5913 * Run the remote tick once per second (1Hz). This arbitrary 5914 * frequency is large enough to avoid overload but short enough 5915 * to keep scheduler internal stats reasonably up to date. But 5916 * first update state to reflect hotplug activity if required. 5917 */ 5918 os = atomic_fetch_add_unless(&twork->state, -1, TICK_SCHED_REMOTE_RUNNING); 5919 WARN_ON_ONCE(os == TICK_SCHED_REMOTE_OFFLINE); 5920 if (os == TICK_SCHED_REMOTE_RUNNING) 5921 queue_delayed_work(system_dfl_wq, dwork, HZ); 5922 } 5923 5924 static void sched_tick_start(int cpu) 5925 { 5926 int os; 5927 struct tick_work *twork; 5928 5929 if (housekeeping_cpu(cpu, HK_TYPE_KERNEL_NOISE)) 5930 return; 5931 5932 WARN_ON_ONCE(!tick_work_cpu); 5933 5934 twork = per_cpu_ptr(tick_work_cpu, cpu); 5935 os = atomic_xchg(&twork->state, TICK_SCHED_REMOTE_RUNNING); 5936 WARN_ON_ONCE(os == TICK_SCHED_REMOTE_RUNNING); 5937 if (os == TICK_SCHED_REMOTE_OFFLINE) { 5938 twork->cpu = cpu; 5939 INIT_DELAYED_WORK(&twork->work, sched_tick_remote); 5940 queue_delayed_work(system_dfl_wq, &twork->work, HZ); 5941 } 5942 } 5943 5944 #ifdef CONFIG_HOTPLUG_CPU 5945 static void sched_tick_stop(int cpu) 5946 { 5947 struct tick_work *twork; 5948 int os; 5949 5950 if (housekeeping_cpu(cpu, HK_TYPE_KERNEL_NOISE)) 5951 return; 5952 5953 WARN_ON_ONCE(!tick_work_cpu); 5954 5955 twork = per_cpu_ptr(tick_work_cpu, cpu); 5956 /* There cannot be competing actions, but don't rely on stop-machine. */ 5957 os = atomic_xchg(&twork->state, TICK_SCHED_REMOTE_OFFLINING); 5958 WARN_ON_ONCE(os != TICK_SCHED_REMOTE_RUNNING); 5959 /* Don't cancel, as this would mess up the state machine. */ 5960 } 5961 #endif /* CONFIG_HOTPLUG_CPU */ 5962 5963 int __init sched_tick_offload_init(void) 5964 { 5965 tick_work_cpu = alloc_percpu(struct tick_work); 5966 BUG_ON(!tick_work_cpu); 5967 return 0; 5968 } 5969 5970 #else /* !CONFIG_NO_HZ_FULL: */ 5971 static inline void sched_tick_start(int cpu) { } 5972 static inline void sched_tick_stop(int cpu) { } 5973 #endif /* !CONFIG_NO_HZ_FULL */ 5974 5975 #if defined(CONFIG_PREEMPTION) && (defined(CONFIG_DEBUG_PREEMPT) || \ 5976 defined(CONFIG_TRACE_PREEMPT_TOGGLE)) 5977 /* 5978 * If the value passed in is equal to the current preempt count 5979 * then we just disabled preemption. Start timing the latency. 5980 */ 5981 static inline void preempt_latency_start(int val) 5982 { 5983 if (preempt_count() == val) { 5984 unsigned long ip = get_lock_parent_ip(); 5985 #ifdef CONFIG_DEBUG_PREEMPT 5986 current->preempt_disable_ip = ip; 5987 #endif 5988 trace_preempt_off(CALLER_ADDR0, ip); 5989 } 5990 } 5991 5992 void preempt_count_add(int val) 5993 { 5994 #ifdef CONFIG_DEBUG_PREEMPT 5995 /* 5996 * Underflow? 5997 * 5998 * Cannot detect underflow based on the current preempt_count() value 5999 * if using HAS_SEPARATE_PREEMPT_RESCHED_BITS because preempt count takes all 32 6000 * bits. 6001 */ 6002 if (!IS_ENABLED(CONFIG_HAS_SEPARATE_PREEMPT_RESCHED_BITS) && 6003 DEBUG_LOCKS_WARN_ON((preempt_count() < 0))) 6004 return; 6005 #endif 6006 __preempt_count_add(val); 6007 #ifdef CONFIG_DEBUG_PREEMPT 6008 /* 6009 * Spinlock count overflowing soon? 6010 */ 6011 DEBUG_LOCKS_WARN_ON((preempt_count() & PREEMPT_MASK) >= 6012 PREEMPT_MASK - 10); 6013 #endif 6014 preempt_latency_start(val); 6015 } 6016 EXPORT_SYMBOL(preempt_count_add); 6017 NOKPROBE_SYMBOL(preempt_count_add); 6018 6019 /* 6020 * If the value passed in equals to the current preempt count 6021 * then we just enabled preemption. Stop timing the latency. 6022 */ 6023 static inline void preempt_latency_stop(int val) 6024 { 6025 if (preempt_count() == val) 6026 trace_preempt_on(CALLER_ADDR0, get_lock_parent_ip()); 6027 } 6028 6029 void preempt_count_sub(int val) 6030 { 6031 #ifdef CONFIG_DEBUG_PREEMPT 6032 /* 6033 * Underflow? 6034 */ 6035 unsigned int uval = val; 6036 unsigned int pc = preempt_count(); 6037 6038 if (DEBUG_LOCKS_WARN_ON(pc - uval > pc)) 6039 return; 6040 /* 6041 * Is the spinlock portion underflowing? 6042 */ 6043 if (DEBUG_LOCKS_WARN_ON((val < PREEMPT_MASK) && 6044 !(preempt_count() & PREEMPT_MASK))) 6045 return; 6046 #endif 6047 6048 preempt_latency_stop(val); 6049 __preempt_count_sub(val); 6050 } 6051 EXPORT_SYMBOL(preempt_count_sub); 6052 NOKPROBE_SYMBOL(preempt_count_sub); 6053 6054 #else 6055 static inline void preempt_latency_start(int val) { } 6056 static inline void preempt_latency_stop(int val) { } 6057 #endif 6058 6059 static inline unsigned long get_preempt_disable_ip(struct task_struct *p) 6060 { 6061 #ifdef CONFIG_DEBUG_PREEMPT 6062 return p->preempt_disable_ip; 6063 #else 6064 return 0; 6065 #endif 6066 } 6067 6068 /* 6069 * Print scheduling while atomic bug: 6070 */ 6071 static noinline void __schedule_bug(struct task_struct *prev) 6072 { 6073 /* Save this before calling printk(), since that will clobber it */ 6074 unsigned long preempt_disable_ip = get_preempt_disable_ip(current); 6075 6076 if (oops_in_progress) 6077 return; 6078 6079 printk(KERN_ERR "BUG: scheduling while atomic: %s/%d/0x%08x\n", 6080 prev->comm, prev->pid, preempt_count()); 6081 6082 debug_show_held_locks(prev); 6083 print_modules(); 6084 if (irqs_disabled()) 6085 print_irqtrace_events(prev); 6086 if (IS_ENABLED(CONFIG_DEBUG_PREEMPT)) { 6087 pr_err("Preemption disabled at:"); 6088 print_ip_sym(KERN_ERR, preempt_disable_ip); 6089 } 6090 check_panic_on_warn("scheduling while atomic"); 6091 6092 dump_stack(); 6093 add_taint(TAINT_WARN, LOCKDEP_STILL_OK); 6094 } 6095 6096 /* 6097 * Various schedule()-time debugging checks and statistics: 6098 */ 6099 static inline void schedule_debug(struct task_struct *prev, bool preempt) 6100 { 6101 #ifdef CONFIG_SCHED_STACK_END_CHECK 6102 if (task_stack_end_corrupted(prev)) 6103 panic("corrupted stack end detected inside scheduler\n"); 6104 6105 if (task_scs_end_corrupted(prev)) 6106 panic("corrupted shadow stack detected inside scheduler\n"); 6107 #endif 6108 6109 #ifdef CONFIG_DEBUG_ATOMIC_SLEEP 6110 if (!preempt && READ_ONCE(prev->__state) && prev->non_block_count) { 6111 printk(KERN_ERR "BUG: scheduling in a non-blocking section: %s/%d/%i\n", 6112 prev->comm, prev->pid, prev->non_block_count); 6113 dump_stack(); 6114 add_taint(TAINT_WARN, LOCKDEP_STILL_OK); 6115 } 6116 #endif 6117 6118 if (unlikely(in_atomic_preempt_off())) { 6119 __schedule_bug(prev); 6120 preempt_count_set(PREEMPT_DISABLED); 6121 } 6122 rcu_sleep_check(); 6123 WARN_ON_ONCE(ct_state() == CT_STATE_USER); 6124 6125 profile_hit(SCHED_PROFILING, __builtin_return_address(0)); 6126 6127 schedstat_inc(this_rq()->sched_count); 6128 } 6129 6130 static void prev_balance(struct rq *rq, struct rq_flags *rf) 6131 { 6132 const struct sched_class *start_class = rq->donor->sched_class; 6133 const struct sched_class *class; 6134 6135 /* 6136 * We must do the balancing pass before put_prev_task(), such 6137 * that when we release the rq->lock the task is in the same 6138 * state as before we took rq->lock. 6139 * 6140 * We can terminate the balance pass as soon as we know there is 6141 * a runnable task of @class priority or higher. 6142 */ 6143 for_active_class_range(class, start_class, &idle_sched_class) { 6144 if (class->balance && class->balance(rq, rf)) 6145 break; 6146 } 6147 } 6148 6149 /* 6150 * Pick up the highest-prio task: 6151 */ 6152 static inline struct task_struct * 6153 __pick_next_task(struct rq *rq, struct rq_flags *rf) 6154 __must_hold(__rq_lockp(rq)) 6155 { 6156 const struct sched_class *class; 6157 struct task_struct *p; 6158 6159 rq->dl_server = NULL; 6160 6161 if (scx_enabled()) 6162 goto restart; 6163 6164 /* 6165 * Optimization: we know that if all tasks are in the fair class we can 6166 * call that function directly, but only if the @prev task wasn't of a 6167 * higher scheduling class, because otherwise those lose the 6168 * opportunity to pull in more work from other CPUs. 6169 */ 6170 if (likely(!sched_class_above(rq->donor->sched_class, &fair_sched_class) && 6171 rq->nr_running == rq->cfs.h_nr_queued)) { 6172 6173 p = pick_task_fair(rq, rf); 6174 if (unlikely(p == RETRY_TASK)) 6175 goto restart; 6176 6177 /* Assume the next prioritized class is idle_sched_class */ 6178 if (!p) 6179 p = pick_task_idle(rq, rf); 6180 6181 put_prev_set_next_task(rq, rq->donor, p); 6182 return p; 6183 } 6184 6185 restart: 6186 prev_balance(rq, rf); 6187 6188 for_each_active_class(class) { 6189 p = class->pick_task(rq, rf); 6190 if (unlikely(p == RETRY_TASK)) 6191 goto restart; 6192 if (p) { 6193 put_prev_set_next_task(rq, rq->donor, p); 6194 return p; 6195 } 6196 } 6197 6198 BUG(); /* The idle class should always have a runnable task. */ 6199 } 6200 6201 #ifdef CONFIG_SCHED_CORE 6202 static inline bool is_task_rq_idle(struct task_struct *t) 6203 { 6204 return (task_rq(t)->idle == t); 6205 } 6206 6207 static inline bool cookie_equals(struct task_struct *a, unsigned long cookie) 6208 { 6209 return is_task_rq_idle(a) || (a->core_cookie == cookie); 6210 } 6211 6212 static inline bool cookie_match(struct task_struct *a, struct task_struct *b) 6213 { 6214 if (is_task_rq_idle(a) || is_task_rq_idle(b)) 6215 return true; 6216 6217 return a->core_cookie == b->core_cookie; 6218 } 6219 6220 /* 6221 * Careful; this can return RETRY_TASK, it does not include the retry-loop 6222 * itself due to the whole SMT pick retry thing below. 6223 */ 6224 static inline struct task_struct *pick_task(struct rq *rq, struct rq_flags *rf) 6225 { 6226 const struct sched_class *class; 6227 struct task_struct *p; 6228 6229 rq->dl_server = NULL; 6230 6231 for_each_active_class(class) { 6232 p = class->pick_task(rq, rf); 6233 if (p) 6234 return p; 6235 } 6236 6237 BUG(); /* The idle class should always have a runnable task. */ 6238 } 6239 6240 extern void task_vruntime_update(struct rq *rq, struct task_struct *p, bool in_fi); 6241 6242 static void queue_core_balance(struct rq *rq); 6243 6244 static struct task_struct * 6245 pick_next_task(struct rq *rq, struct rq_flags *rf) 6246 __must_hold(__rq_lockp(rq)) 6247 { 6248 struct task_struct *next, *p, *max; 6249 const struct cpumask *smt_mask; 6250 bool fi_before = false; 6251 bool core_clock_updated = (rq == rq->core); 6252 unsigned long cookie; 6253 int i, cpu, occ = 0; 6254 struct rq *rq_i; 6255 bool need_sync = false; 6256 6257 if (!sched_core_enabled(rq)) 6258 return __pick_next_task(rq, rf); 6259 6260 cpu = cpu_of(rq); 6261 6262 /* Stopper task is switching into idle, no need core-wide selection. */ 6263 if (cpu_is_offline(cpu)) { 6264 /* 6265 * Reset core_pick so that we don't enter the fastpath when 6266 * coming online. core_pick would already be migrated to 6267 * another cpu during offline. 6268 */ 6269 rq->core_pick = NULL; 6270 rq->core_dl_server = NULL; 6271 return __pick_next_task(rq, rf); 6272 } 6273 6274 rq->core->core_pick_in_flight++; 6275 6276 /* 6277 * If there were no {en,de}queues since we picked (IOW, the task 6278 * pointers are all still valid), and we haven't scheduled the last 6279 * pick yet, do so now. 6280 * 6281 * rq->core_pick can be NULL if no selection was made for a CPU because 6282 * it was either offline or went offline during a sibling's core-wide 6283 * selection. In this case, do a core-wide selection. 6284 */ 6285 if (rq->core->core_pick_seq == rq->core->core_task_seq && 6286 rq->core->core_pick_seq != rq->core_sched_seq && 6287 rq->core_pick) { 6288 WRITE_ONCE(rq->core_sched_seq, rq->core->core_pick_seq); 6289 6290 next = rq->core_pick; 6291 rq->dl_server = rq->core_dl_server; 6292 rq->core_pick = NULL; 6293 rq->core_dl_server = NULL; 6294 goto out_set_next; 6295 } 6296 6297 prev_balance(rq, rf); 6298 6299 smt_mask = cpu_smt_mask(cpu); 6300 6301 restart: 6302 need_sync |= !!rq->core->core_cookie; 6303 6304 /* reset state */ 6305 rq->core->core_cookie = 0UL; 6306 if (rq->core->core_forceidle_count) { 6307 if (!core_clock_updated) { 6308 update_rq_clock(rq->core); 6309 core_clock_updated = true; 6310 } 6311 sched_core_account_forceidle(rq); 6312 /* reset after accounting force idle */ 6313 rq->core->core_forceidle_start = 0; 6314 rq->core->core_forceidle_count = 0; 6315 rq->core->core_forceidle_occupation = 0; 6316 need_sync = true; 6317 fi_before = true; 6318 } 6319 6320 /* 6321 * core->core_task_seq, core->core_pick_seq, rq->core_sched_seq 6322 * 6323 * @task_seq guards the task state ({en,de}queues) 6324 * @pick_seq is the @task_seq we did a selection on 6325 * @sched_seq is the @pick_seq we scheduled 6326 * 6327 * However, preemptions can cause multiple picks on the same task set. 6328 * 'Fix' this by also increasing @task_seq for every pick. 6329 */ 6330 rq->core->core_task_seq++; 6331 6332 /* 6333 * Optimize for common case where this CPU has no cookies 6334 * and there are no cookied tasks running on siblings. 6335 */ 6336 if (!need_sync) { 6337 next = pick_task(rq, rf); 6338 if (unlikely(next == RETRY_TASK)) { 6339 /* rq lock may have been dropped, clocks invalidated */ 6340 core_clock_updated = false; 6341 if (!(rq->clock_update_flags & RQCF_UPDATED)) 6342 update_rq_clock(rq); 6343 goto restart; 6344 } 6345 6346 if (!next->core_cookie) { 6347 rq->core_pick = NULL; 6348 rq->core_dl_server = NULL; 6349 /* 6350 * For robustness, update the min_vruntime_fi for 6351 * unconstrained picks as well. 6352 */ 6353 WARN_ON_ONCE(fi_before); 6354 task_vruntime_update(rq, next, false); 6355 goto out_set_next; 6356 } 6357 } 6358 6359 /* 6360 * For each thread: do the regular task pick and find the max prio task 6361 * amongst them. 6362 * 6363 * Tie-break prio towards the current CPU 6364 */ 6365 max = NULL; 6366 for_each_cpu_wrap(i, smt_mask, cpu) { 6367 rq_i = cpu_rq(i); 6368 6369 /* 6370 * Current cpu always has its clock updated on entrance to 6371 * pick_next_task(). If the current cpu is not the core, 6372 * the core may also have been updated above. 6373 */ 6374 if (i != cpu && (rq_i != rq->core || !core_clock_updated)) 6375 update_rq_clock(rq_i); 6376 6377 p = pick_task(rq_i, rf); 6378 if (unlikely(p == RETRY_TASK)) { 6379 /* rq lock may have been dropped, clocks invalidated */ 6380 core_clock_updated = false; 6381 if (!(rq->clock_update_flags & RQCF_UPDATED)) 6382 update_rq_clock(rq); 6383 goto restart; 6384 } 6385 6386 rq_i->core_pick = p; 6387 rq_i->core_dl_server = rq_i->dl_server; 6388 6389 if (!max || prio_less(max, p, fi_before)) 6390 max = p; 6391 } 6392 6393 cookie = rq->core->core_cookie = max->core_cookie; 6394 6395 /* 6396 * For each thread: try and find a runnable task that matches @max or 6397 * force idle. 6398 */ 6399 for_each_cpu(i, smt_mask) { 6400 rq_i = cpu_rq(i); 6401 p = rq_i->core_pick; 6402 6403 if (!cookie_equals(p, cookie)) { 6404 p = NULL; 6405 if (cookie) 6406 p = sched_core_find(rq_i, cookie); 6407 if (!p) 6408 p = idle_sched_class.pick_task(rq_i, rf); 6409 } 6410 6411 rq_i->core_pick = p; 6412 rq_i->core_dl_server = NULL; 6413 6414 if (p == rq_i->idle) { 6415 if (rq_i->nr_running) { 6416 rq->core->core_forceidle_count++; 6417 if (!fi_before) 6418 rq->core->core_forceidle_seq++; 6419 } 6420 } else { 6421 occ++; 6422 } 6423 } 6424 6425 if (schedstat_enabled() && rq->core->core_forceidle_count) { 6426 rq->core->core_forceidle_start = rq_clock(rq->core); 6427 rq->core->core_forceidle_occupation = occ; 6428 } 6429 6430 rq->core->core_pick_seq = rq->core->core_task_seq; 6431 next = rq->core_pick; 6432 rq->core_sched_seq = rq->core->core_pick_seq; 6433 6434 /* Something should have been selected for current CPU */ 6435 WARN_ON_ONCE(!next); 6436 6437 /* 6438 * Reschedule siblings 6439 * 6440 * NOTE: L1TF -- at this point we're no longer running the old task and 6441 * sending an IPI (below) ensures the sibling will no longer be running 6442 * their task. This ensures there is no inter-sibling overlap between 6443 * non-matching user state. 6444 */ 6445 for_each_cpu(i, smt_mask) { 6446 rq_i = cpu_rq(i); 6447 6448 /* 6449 * An online sibling might have gone offline before a task 6450 * could be picked for it, or it might be offline but later 6451 * happen to come online, but its too late and nothing was 6452 * picked for it. That's Ok - it will pick tasks for itself, 6453 * so ignore it. 6454 */ 6455 if (!rq_i->core_pick) 6456 continue; 6457 6458 /* 6459 * Update for new !FI->FI transitions, or if continuing to be in !FI: 6460 * fi_before fi update? 6461 * 0 0 1 6462 * 0 1 1 6463 * 1 0 1 6464 * 1 1 0 6465 */ 6466 if (!(fi_before && rq->core->core_forceidle_count)) 6467 task_vruntime_update(rq_i, rq_i->core_pick, !!rq->core->core_forceidle_count); 6468 6469 rq_i->core_pick->core_occupation = occ; 6470 6471 if (i == cpu) { 6472 rq_i->core_pick = NULL; 6473 rq_i->core_dl_server = NULL; 6474 continue; 6475 } 6476 6477 /* Did we break L1TF mitigation requirements? */ 6478 WARN_ON_ONCE(!cookie_match(next, rq_i->core_pick)); 6479 6480 if (rq_i->curr == rq_i->core_pick) { 6481 rq_i->core_pick = NULL; 6482 rq_i->core_dl_server = NULL; 6483 continue; 6484 } 6485 6486 resched_curr(rq_i); 6487 } 6488 6489 out_set_next: 6490 rq->core->core_pick_in_flight--; 6491 put_prev_set_next_task(rq, rq->donor, next); 6492 if (rq->core->core_forceidle_count && next == rq->idle) 6493 queue_core_balance(rq); 6494 6495 return next; 6496 } 6497 6498 static bool try_steal_cookie(int this, int that) 6499 { 6500 struct rq *dst = cpu_rq(this), *src = cpu_rq(that); 6501 struct task_struct *p; 6502 unsigned long cookie; 6503 bool success = false; 6504 6505 guard(irq)(); 6506 guard(double_rq_lock)(dst, src); 6507 6508 cookie = dst->core->core_cookie; 6509 if (!cookie) 6510 return false; 6511 6512 if (dst->curr != dst->idle) 6513 return false; 6514 6515 p = sched_core_find(src, cookie); 6516 if (!p) 6517 return false; 6518 6519 do { 6520 if (p == src->core_pick || p == src->curr) 6521 goto next; 6522 6523 if (!is_cpu_allowed(p, this)) 6524 goto next; 6525 6526 if (p->core_occupation > dst->idle->core_occupation) 6527 goto next; 6528 /* 6529 * sched_core_find() and sched_core_next() will ensure 6530 * that task @p is not throttled now, we also need to 6531 * check whether the runqueue of the destination CPU is 6532 * being throttled. 6533 */ 6534 if (sched_task_is_throttled(p, this)) 6535 goto next; 6536 6537 move_queued_task_locked(src, dst, p); 6538 resched_curr(dst); 6539 6540 success = true; 6541 break; 6542 6543 next: 6544 p = sched_core_next(p, cookie); 6545 } while (p); 6546 6547 return success; 6548 } 6549 6550 static bool steal_cookie_task(int cpu, struct sched_domain *sd) 6551 { 6552 int i; 6553 6554 for_each_cpu_wrap(i, sched_domain_span(sd), cpu + 1) { 6555 if (i == cpu) 6556 continue; 6557 6558 if (need_resched()) 6559 break; 6560 6561 if (try_steal_cookie(cpu, i)) 6562 return true; 6563 } 6564 6565 return false; 6566 } 6567 6568 static void sched_core_balance(struct rq *rq) 6569 __must_hold(__rq_lockp(rq)) 6570 { 6571 struct sched_domain *sd; 6572 int cpu = cpu_of(rq); 6573 6574 guard(preempt)(); 6575 guard(rcu)(); 6576 6577 raw_spin_rq_unlock_irq(rq); 6578 for_each_domain(cpu, sd) { 6579 if (need_resched()) 6580 break; 6581 6582 if (steal_cookie_task(cpu, sd)) 6583 break; 6584 } 6585 raw_spin_rq_lock_irq(rq); 6586 } 6587 6588 static DEFINE_PER_CPU(struct balance_callback, core_balance_head); 6589 6590 static void queue_core_balance(struct rq *rq) 6591 { 6592 if (!sched_core_enabled(rq)) 6593 return; 6594 6595 if (!rq->core->core_cookie) 6596 return; 6597 6598 if (!rq->nr_running) /* not forced idle */ 6599 return; 6600 6601 queue_balance_callback(rq, &per_cpu(core_balance_head, rq->cpu), sched_core_balance); 6602 } 6603 6604 DEFINE_LOCK_GUARD_1(core_lock, int, 6605 sched_core_lock(*_T->lock, &_T->flags), 6606 sched_core_unlock(*_T->lock, &_T->flags), 6607 unsigned long flags) 6608 6609 static void sched_core_cpu_starting(unsigned int cpu) 6610 { 6611 const struct cpumask *smt_mask = cpu_smt_mask(cpu); 6612 struct rq *rq = cpu_rq(cpu), *core_rq = NULL; 6613 int t; 6614 6615 guard(core_lock)(&cpu); 6616 6617 WARN_ON_ONCE(rq->core != rq); 6618 6619 /* if we're the first, we'll be our own leader */ 6620 if (cpumask_weight(smt_mask) == 1) 6621 return; 6622 6623 /* find the leader */ 6624 for_each_cpu(t, smt_mask) { 6625 if (t == cpu) 6626 continue; 6627 rq = cpu_rq(t); 6628 if (rq->core == rq) { 6629 core_rq = rq; 6630 break; 6631 } 6632 } 6633 6634 if (WARN_ON_ONCE(!core_rq)) /* whoopsie */ 6635 return; 6636 6637 /* install and validate core_rq */ 6638 for_each_cpu(t, smt_mask) { 6639 rq = cpu_rq(t); 6640 6641 if (t == cpu) 6642 rq->core = core_rq; 6643 6644 WARN_ON_ONCE(rq->core != core_rq); 6645 } 6646 } 6647 6648 static void sched_core_cpu_deactivate(unsigned int cpu) 6649 { 6650 const struct cpumask *smt_mask = cpu_smt_mask(cpu); 6651 struct rq *rq = cpu_rq(cpu), *core_rq = NULL; 6652 int t; 6653 6654 guard(core_lock)(&cpu); 6655 6656 /* if we're the last man standing, nothing to do */ 6657 if (cpumask_weight(smt_mask) == 1) { 6658 WARN_ON_ONCE(rq->core != rq); 6659 return; 6660 } 6661 6662 /* if we're not the leader, nothing to do */ 6663 if (rq->core != rq) 6664 return; 6665 6666 /* find a new leader */ 6667 for_each_cpu(t, smt_mask) { 6668 if (t == cpu) 6669 continue; 6670 core_rq = cpu_rq(t); 6671 break; 6672 } 6673 6674 if (WARN_ON_ONCE(!core_rq)) /* impossible */ 6675 return; 6676 6677 /* copy the shared state to the new leader */ 6678 core_rq->core_task_seq = rq->core_task_seq; 6679 core_rq->core_pick_seq = rq->core_pick_seq; 6680 core_rq->core_cookie = rq->core_cookie; 6681 core_rq->core_forceidle_count = rq->core_forceidle_count; 6682 core_rq->core_forceidle_seq = rq->core_forceidle_seq; 6683 core_rq->core_forceidle_occupation = rq->core_forceidle_occupation; 6684 6685 /* 6686 * A stale leftover would bias the count forever if this CPU later 6687 * returns as its own leader. Move, don't copy. 6688 */ 6689 core_rq->core_pick_in_flight = rq->core_pick_in_flight; 6690 rq->core_pick_in_flight = 0; 6691 6692 /* 6693 * Accounting edge for forced idle is handled in pick_next_task(). 6694 * Don't need another one here, since the hotplug thread shouldn't 6695 * have a cookie. 6696 */ 6697 core_rq->core_forceidle_start = 0; 6698 6699 /* install new leader */ 6700 for_each_cpu(t, smt_mask) { 6701 rq = cpu_rq(t); 6702 rq->core = core_rq; 6703 } 6704 } 6705 6706 static inline void sched_core_cpu_dying(unsigned int cpu) 6707 { 6708 struct rq *rq = cpu_rq(cpu); 6709 6710 if (rq->core != rq) 6711 rq->core = rq; 6712 } 6713 6714 #else /* !CONFIG_SCHED_CORE: */ 6715 6716 static inline void sched_core_cpu_starting(unsigned int cpu) {} 6717 static inline void sched_core_cpu_deactivate(unsigned int cpu) {} 6718 static inline void sched_core_cpu_dying(unsigned int cpu) {} 6719 6720 static struct task_struct * 6721 pick_next_task(struct rq *rq, struct rq_flags *rf) 6722 __must_hold(__rq_lockp(rq)) 6723 { 6724 return __pick_next_task(rq, rf); 6725 } 6726 6727 #endif /* !CONFIG_SCHED_CORE */ 6728 6729 /* 6730 * Constants for the sched_mode argument of __schedule(). 6731 * 6732 * The mode argument allows RT enabled kernels to differentiate a 6733 * preemption from blocking on an 'sleeping' spin/rwlock. 6734 */ 6735 #define SM_IDLE (-1) 6736 #define SM_NONE 0 6737 #define SM_PREEMPT 1 6738 #define SM_RTLOCK_WAIT 2 6739 6740 /* 6741 * Helper function for __schedule() 6742 * 6743 * Tries to deactivate the task, unless the should_block arg 6744 * is false or if a signal is pending. In the case a signal 6745 * is pending, marks the task's __state as RUNNING (and clear 6746 * blocked_on). 6747 */ 6748 static bool try_to_block_task(struct rq *rq, struct task_struct *p, 6749 unsigned long *task_state_p, bool should_block) 6750 { 6751 unsigned long task_state = *task_state_p; 6752 6753 WARN_ON_ONCE(p->is_blocked); 6754 6755 if (signal_pending_state(task_state, p)) { 6756 WRITE_ONCE(p->__state, TASK_RUNNING); 6757 *task_state_p = TASK_RUNNING; 6758 clear_task_blocked_on(p, NULL); 6759 6760 return false; 6761 } 6762 6763 p->is_blocked = 1; 6764 6765 /* 6766 * We check should_block after signal_pending because we 6767 * will want to wake the task in that case. But if 6768 * should_block is false, its likely due to the task being 6769 * blocked on a mutex, and we want to keep it on the runqueue 6770 * to be selectable for proxy-execution. 6771 */ 6772 if (!should_block) 6773 return false; 6774 6775 block_task(rq, p, task_state); 6776 return true; 6777 } 6778 6779 #ifdef CONFIG_SCHED_PROXY_EXEC 6780 static inline void proxy_set_task_cpu(struct task_struct *p, int cpu) 6781 { 6782 unsigned int wake_cpu; 6783 6784 /* 6785 * Since we are enqueuing a blocked task on a cpu it may 6786 * not be able to run on, preserve wake_cpu when we 6787 * __set_task_cpu so we can return the task to where it 6788 * was previously runnable. 6789 */ 6790 wake_cpu = p->wake_cpu; 6791 __set_task_cpu(p, cpu); 6792 p->wake_cpu = wake_cpu; 6793 } 6794 6795 static inline struct task_struct *proxy_resched_idle(struct rq *rq) 6796 { 6797 put_prev_set_next_task(rq, rq->donor, rq->idle); 6798 rq->next_class = &idle_sched_class; 6799 rq_set_donor(rq, rq->idle); 6800 set_tsk_need_resched(rq->idle); 6801 return rq->idle; 6802 } 6803 6804 static void proxy_deactivate(struct rq *rq, struct task_struct *donor) 6805 { 6806 unsigned long state = READ_ONCE(donor->__state); 6807 6808 WARN_ON_ONCE(state == TASK_RUNNING); 6809 WARN_ON_ONCE(donor->blocked_on); 6810 /* 6811 * Because we got donor from pick_next_task(), it is *crucial* 6812 * that we call proxy_resched_idle() before we deactivate it. 6813 * As once we deactivate donor, donor->on_rq is set to zero, 6814 * which allows ttwu() to immediately try to wake the task on 6815 * another rq. So we cannot use *any* references to donor 6816 * after that point. So things like cfs_rq->curr or rq->donor 6817 * need to be changed from next *before* we deactivate. 6818 */ 6819 proxy_resched_idle(rq); 6820 block_task(rq, donor, state); 6821 } 6822 6823 static inline void proxy_release_rq_lock(struct rq *rq, struct rq_flags *rf) 6824 __releases(__rq_lockp(rq)) 6825 { 6826 /* 6827 * The class scheduler may have queued a balance callback 6828 * from pick_next_task() called earlier. 6829 * 6830 * So here we have to zap callbacks before unlocking the rq 6831 * as another CPU may jump in and call sched_balance_rq 6832 * which can trip the warning in rq_pin_lock() if we 6833 * leave callbacks set. 6834 * 6835 * After we later reaquire the rq lock, we will force __schedule() 6836 * to pick_again, so the callbacks will get re-established. 6837 */ 6838 zap_balance_callbacks(rq); 6839 rq_unpin_lock(rq, rf); 6840 raw_spin_rq_unlock(rq); 6841 } 6842 6843 static inline void proxy_reacquire_rq_lock(struct rq *rq, struct rq_flags *rf) 6844 __acquires(__rq_lockp(rq)) 6845 { 6846 raw_spin_rq_lock(rq); 6847 rq_repin_lock(rq, rf); 6848 update_rq_clock(rq); 6849 } 6850 6851 /* 6852 * If the blocked-on relationship crosses CPUs, migrate @p to the 6853 * owner's CPU. 6854 * 6855 * This is because we must respect the CPU affinity of execution 6856 * contexts (owner) but we can ignore affinity for scheduling 6857 * contexts (@p). So we have to move scheduling contexts towards 6858 * potential execution contexts. 6859 * 6860 * Note: The owner can disappear, but simply migrate to @target_cpu 6861 * and leave that CPU to sort things out. 6862 */ 6863 static void proxy_migrate_task(struct rq *rq, struct rq_flags *rf, 6864 struct task_struct *p, int target_cpu) 6865 __must_hold(__rq_lockp(rq)) 6866 { 6867 struct rq *target_rq = cpu_rq(target_cpu); 6868 6869 lockdep_assert_rq_held(rq); 6870 WARN_ON(p == rq->curr); 6871 /* 6872 * Since we are migrating a blocked donor, it could be rq->donor, 6873 * and we want to make sure there aren't any references from this 6874 * rq to it before we drop the lock. This avoids another cpu 6875 * jumping in and grabbing the rq lock and referencing rq->donor 6876 * or cfs_rq->curr, etc after we have migrated it to another cpu, 6877 * and before we pick_again in __schedule. 6878 * 6879 * So call proxy_resched_idle() to drop the rq->donor references 6880 * before we release the lock. 6881 */ 6882 proxy_resched_idle(rq); 6883 6884 deactivate_task(rq, p, DEQUEUE_NOCLOCK); 6885 proxy_set_task_cpu(p, target_cpu); 6886 6887 proxy_release_rq_lock(rq, rf); 6888 6889 attach_one_task(target_rq, p); 6890 6891 proxy_reacquire_rq_lock(rq, rf); 6892 } 6893 6894 /* 6895 * Find runnable lock owner to proxy for mutex blocked donor 6896 * 6897 * Follow the blocked-on relation: 6898 * 6899 * ,-> task 6900 * | | blocked-on 6901 * | v 6902 * blocked_donor | mutex 6903 * | | owner 6904 * | v 6905 * `-- task 6906 * 6907 * and set the blocked_donor relation, this latter is used by the mutex 6908 * code to find which (blocked) task to hand-off to. 6909 * 6910 * Lock order: 6911 * 6912 * p->pi_lock 6913 * rq->lock 6914 * mutex->wait_lock 6915 * p->blocked_lock 6916 * 6917 * Returns the task that is going to be used as execution context (the one 6918 * that is actually going to be run on cpu_of(rq)). 6919 */ 6920 static struct task_struct * 6921 find_proxy_task(struct rq *rq, struct task_struct *donor, struct rq_flags *rf) 6922 __must_hold(__rq_lockp(rq)) 6923 { 6924 struct task_struct *owner = NULL; 6925 bool curr_in_chain = false; 6926 int this_cpu = cpu_of(rq); 6927 struct task_struct *p; 6928 int owner_cpu; 6929 6930 /* Follow blocked_on chain. */ 6931 for (p = donor; p->is_blocked; p = owner) { 6932 /* if its PROXY_WAKING, do return migration or run if current */ 6933 struct mutex *mutex = p->blocked_on; 6934 if (!mutex) { 6935 clear_task_blocked_on(p, mutex); 6936 if (task_current(rq, p)) { 6937 p->is_blocked = 0; 6938 return p; 6939 } 6940 goto deactivate; 6941 } 6942 6943 /* 6944 * By taking mutex->wait_lock we hold off concurrent mutex_unlock() 6945 * and ensure @owner sticks around. 6946 */ 6947 guard(raw_spinlock)(&mutex->wait_lock); 6948 guard(raw_spinlock)(&p->blocked_lock); 6949 6950 /* Check again that p is blocked with blocked_lock held */ 6951 if (mutex != __get_task_blocked_on(p)) { 6952 /* 6953 * Something changed in the blocked_on chain and 6954 * we don't know if only at this level. So, let's 6955 * just bail out completely and let __schedule() 6956 * figure things out (pick_again loop). 6957 */ 6958 return NULL; 6959 } 6960 6961 if (task_current(rq, p)) 6962 curr_in_chain = true; 6963 6964 owner = __mutex_owner(mutex); 6965 if (!owner) { 6966 /* 6967 * If there is no owner, either clear blocked_on 6968 * and return p (if it is current and safe to 6969 * just run on this rq), or return-migrate the task. 6970 */ 6971 __clear_task_blocked_on(p, NULL); 6972 if (task_current(rq, p)) { 6973 p->is_blocked = 0; 6974 return p; 6975 } 6976 goto deactivate; 6977 } 6978 6979 if (!READ_ONCE(owner->on_rq) || owner->se.sched_delayed) { 6980 /* XXX Don't handle blocked owners/delayed dequeue yet */ 6981 if (curr_in_chain) 6982 return proxy_resched_idle(rq); 6983 __clear_task_blocked_on(p, NULL); 6984 goto deactivate; 6985 } 6986 6987 owner_cpu = task_cpu(owner); 6988 if (owner_cpu != this_cpu) { 6989 /* 6990 * @owner can disappear, simply migrate to @owner_cpu 6991 * and leave that CPU to sort things out. 6992 */ 6993 if (curr_in_chain) 6994 return proxy_resched_idle(rq); 6995 goto migrate_task; 6996 } 6997 6998 if (task_on_rq_migrating(owner)) { 6999 /* 7000 * One of the chain of mutex owners is currently migrating to this 7001 * CPU, but has not yet been enqueued because we are holding the 7002 * rq lock. As a simple solution, just schedule rq->idle to give 7003 * the migration a chance to complete. Much like the migrate_task 7004 * case we should end up back in find_proxy_task(), this time 7005 * hopefully with all relevant tasks already enqueued. 7006 */ 7007 return proxy_resched_idle(rq); 7008 } 7009 7010 /* 7011 * Its possible to race where after we check owner->on_rq 7012 * but before we check (owner_cpu != this_cpu) that the 7013 * task on another cpu was migrated back to this cpu. In 7014 * that case it could slip by our checks. So double check 7015 * we are still on this cpu and not migrating. If we get 7016 * inconsistent results, try again. 7017 */ 7018 if (!task_on_rq_queued(owner) || task_cpu(owner) != this_cpu) 7019 return NULL; 7020 7021 if (owner == p) { 7022 /* 7023 * It's possible we interleave with mutex_unlock like: 7024 * 7025 * lock(&rq->lock); 7026 * find_proxy_task() 7027 * mutex_unlock() 7028 * lock(&wait_lock); 7029 * donor(owner) = current->blocked_donor; 7030 * unlock(&wait_lock); 7031 * 7032 * wake_up_q(); 7033 * ... 7034 * ttwu_runnable() 7035 * __task_rq_lock() 7036 * lock(&wait_lock); 7037 * owner == p 7038 * 7039 * Which leaves us to finish the ttwu_runnable() and make it go. 7040 * 7041 * So schedule rq->idle so that ttwu_runnable() can get the rq 7042 * lock and mark owner as running. 7043 */ 7044 return proxy_resched_idle(rq); 7045 } 7046 /* 7047 * OK, now we're absolutely sure @owner is on this 7048 * rq, therefore holding @rq->lock is sufficient to 7049 * guarantee its existence, as per ttwu_remote(). 7050 */ 7051 owner->blocked_donor = p; 7052 } 7053 WARN_ON_ONCE(owner && !owner->on_rq); 7054 return owner; 7055 7056 deactivate: 7057 proxy_deactivate(rq, p); 7058 return NULL; 7059 migrate_task: 7060 proxy_migrate_task(rq, rf, p, owner_cpu); 7061 return NULL; 7062 } 7063 #else /* SCHED_PROXY_EXEC */ 7064 static struct task_struct * 7065 find_proxy_task(struct rq *rq, struct task_struct *donor, struct rq_flags *rf) 7066 { 7067 WARN_ONCE(1, "This should never be called in the !SCHED_PROXY_EXEC case\n"); 7068 return donor; 7069 } 7070 #endif /* SCHED_PROXY_EXEC */ 7071 7072 /* 7073 * __schedule() is the main scheduler function. 7074 * 7075 * The main means of driving the scheduler and thus entering this function are: 7076 * 7077 * 1. Explicit blocking: mutex, semaphore, waitqueue, etc. 7078 * 7079 * 2. TIF_NEED_RESCHED flag is checked on interrupt and userspace return 7080 * paths. For example, see arch/x86/entry_64.S. 7081 * 7082 * To drive preemption between tasks, the scheduler sets the flag in timer 7083 * interrupt handler sched_tick(). 7084 * 7085 * 3. Wakeups don't really cause entry into schedule(). They add a 7086 * task to the run-queue and that's it. 7087 * 7088 * Now, if the new task added to the run-queue preempts the current 7089 * task, then the wakeup sets TIF_NEED_RESCHED and schedule() gets 7090 * called on the nearest possible occasion: 7091 * 7092 * - If the kernel is preemptible (CONFIG_PREEMPTION=y): 7093 * 7094 * - in syscall or exception context, at the next outmost 7095 * preempt_enable(). (this might be as soon as the wake_up()'s 7096 * spin_unlock()!) 7097 * 7098 * - in IRQ context, return from interrupt-handler to 7099 * preemptible context 7100 * 7101 * - If the kernel is not preemptible (CONFIG_PREEMPTION is not set) 7102 * then at the next: 7103 * 7104 * - cond_resched() call 7105 * - explicit schedule() call 7106 * - return from syscall or exception to user-space 7107 * - return from interrupt-handler to user-space 7108 * 7109 * WARNING: must be called with preemption disabled! 7110 */ 7111 static void __sched notrace __schedule(int sched_mode) 7112 { 7113 struct task_struct *prev, *next; 7114 /* 7115 * On PREEMPT_RT kernel, SM_RTLOCK_WAIT is noted 7116 * as a preemption by schedule_debug() and RCU. 7117 */ 7118 bool preempt = sched_mode > SM_NONE; 7119 bool is_switch = false; 7120 unsigned long *switch_count; 7121 unsigned long prev_state; 7122 struct rq_flags rf; 7123 struct rq *rq; 7124 int cpu; 7125 7126 /* Trace preemptions consistently with task switches */ 7127 trace_sched_entry_tp(sched_mode == SM_PREEMPT); 7128 7129 cpu = smp_processor_id(); 7130 rq = cpu_rq(cpu); 7131 prev = rq->curr; 7132 7133 schedule_debug(prev, preempt); 7134 7135 klp_sched_try_switch(prev); 7136 7137 local_irq_disable(); 7138 rcu_note_context_switch(preempt); 7139 migrate_disable_switch(rq, prev); 7140 7141 /* 7142 * Make sure that signal_pending_state()->signal_pending() below 7143 * can't be reordered with __set_current_state(TASK_INTERRUPTIBLE) 7144 * done by the caller to avoid the race with signal_wake_up(): 7145 * 7146 * __set_current_state(@state) signal_wake_up() 7147 * schedule() set_tsk_thread_flag(p, TIF_SIGPENDING) 7148 * wake_up_state(p, state) 7149 * LOCK rq->lock LOCK p->pi_state 7150 * smp_mb__after_spinlock() smp_mb__after_spinlock() 7151 * if (signal_pending_state()) if (p->state & @state) 7152 * 7153 * Also, the membarrier system call requires a full memory barrier 7154 * after coming from user-space, before storing to rq->curr; this 7155 * barrier matches a full barrier in the proximity of the membarrier 7156 * system call exit. 7157 */ 7158 rq_lock(rq, &rf); 7159 smp_mb__after_spinlock(); 7160 7161 hrtick_schedule_enter(rq); 7162 7163 /* Promote REQ to ACT */ 7164 rq->clock_update_flags <<= 1; 7165 update_rq_clock(rq); 7166 rq->clock_update_flags = RQCF_UPDATED; 7167 7168 switch_count = &prev->nivcsw; 7169 7170 /* Task state changes only considers SM_PREEMPT as preemption */ 7171 preempt = sched_mode == SM_PREEMPT; 7172 7173 /* 7174 * We must load prev->state once (task_struct::state is volatile), such 7175 * that we form a control dependency vs deactivate_task() below. 7176 */ 7177 prev_state = READ_ONCE(prev->__state); 7178 if (sched_mode == SM_IDLE) { 7179 /* SCX must consult the BPF scheduler to tell if rq is empty */ 7180 if (!rq->nr_running && !scx_enabled()) { 7181 next = prev; 7182 rq->next_class = &idle_sched_class; 7183 goto picked; 7184 } 7185 } else if (!preempt && prev_state) { 7186 /* 7187 * We pass task_is_blocked() as the should_block arg 7188 * in order to keep mutex-blocked tasks on the runqueue 7189 * for slection with proxy-exec (without proxy-exec 7190 * task_is_blocked() will always be false). 7191 */ 7192 try_to_block_task(rq, prev, &prev_state, 7193 !task_is_blocked(prev)); 7194 switch_count = &prev->nvcsw; 7195 } 7196 7197 pick_again: 7198 assert_balance_callbacks_empty(rq); 7199 next = pick_next_task(rq, &rf); 7200 rq->next_class = next->sched_class; 7201 if (sched_proxy_exec()) { 7202 struct task_struct *prev_donor = rq->donor; 7203 7204 rq_set_donor(rq, next); 7205 next->blocked_donor = NULL; 7206 if (unlikely(next->is_blocked)) { 7207 next = find_proxy_task(rq, next, &rf); 7208 if (!next) { 7209 zap_balance_callbacks(rq); 7210 goto pick_again; 7211 } 7212 if (next == rq->idle) { 7213 zap_balance_callbacks(rq); 7214 goto keep_resched; 7215 } 7216 } 7217 if (rq->donor == prev_donor && prev != next) { 7218 struct task_struct *donor = rq->donor; 7219 /* 7220 * When transitioning like: 7221 * 7222 * prev next 7223 * donor: B B 7224 * curr: A B or C 7225 * 7226 * then put_prev_set_next_task() will not have done 7227 * anything, since B == B. However, A might have 7228 * missed a RT/DL balance opportunity due to being 7229 * on_cpu. 7230 */ 7231 donor->sched_class->put_prev_task(rq, donor, donor); 7232 donor->sched_class->set_next_task(rq, donor, true); 7233 } 7234 } else { 7235 rq_set_donor(rq, next); 7236 } 7237 7238 picked: 7239 clear_tsk_need_resched(prev); 7240 clear_preempt_need_resched(); 7241 keep_resched: 7242 rq->last_seen_need_resched_ns = 0; 7243 7244 is_switch = prev != next; 7245 if (likely(is_switch)) { 7246 rq->nr_switches++; 7247 /* 7248 * RCU users of rcu_dereference(rq->curr) may not see 7249 * changes to task_struct made by pick_next_task(). 7250 */ 7251 RCU_INIT_POINTER(rq->curr, next); 7252 7253 /* 7254 * The membarrier system call requires each architecture 7255 * to have a full memory barrier after updating 7256 * rq->curr, before returning to user-space. 7257 * 7258 * Here are the schemes providing that barrier on the 7259 * various architectures: 7260 * - mm ? switch_mm() : mmdrop() for x86, s390, sparc, PowerPC, 7261 * RISC-V. switch_mm() relies on membarrier_arch_switch_mm() 7262 * on PowerPC and on RISC-V. 7263 * - finish_lock_switch() for weakly-ordered 7264 * architectures where spin_unlock is a full barrier, 7265 * - switch_to() for arm64 (weakly-ordered, spin_unlock 7266 * is a RELEASE barrier), 7267 * 7268 * The barrier matches a full barrier in the proximity of 7269 * the membarrier system call entry. 7270 * 7271 * On RISC-V, this barrier pairing is also needed for the 7272 * SYNC_CORE command when switching between processes, cf. 7273 * the inline comments in membarrier_arch_switch_mm(). 7274 */ 7275 ++*switch_count; 7276 7277 psi_account_irqtime(rq, prev, next); 7278 psi_sched_switch(prev, next, !task_on_rq_queued(prev) || 7279 prev->se.sched_delayed); 7280 7281 trace_sched_switch(preempt, prev, next, prev_state); 7282 7283 /* Also unlocks the rq: */ 7284 rq = context_switch(rq, prev, next, &rf); 7285 } else { 7286 rq_unpin_lock(rq, &rf); 7287 __balance_callbacks(rq, NULL); 7288 hrtick_schedule_exit(rq); 7289 raw_spin_rq_unlock_irq(rq); 7290 } 7291 trace_sched_exit_tp(is_switch); 7292 } 7293 7294 void __noreturn do_task_dead(void) 7295 { 7296 /* Causes final put_task_struct in finish_task_switch(): */ 7297 set_special_state(TASK_DEAD); 7298 7299 /* Tell freezer to ignore us: */ 7300 current->flags |= PF_NOFREEZE; 7301 7302 __schedule(SM_NONE); 7303 BUG(); 7304 7305 /* Avoid "noreturn function does return" - but don't continue if BUG() is a NOP: */ 7306 for (;;) 7307 cpu_relax(); 7308 } 7309 7310 static inline void sched_submit_work(struct task_struct *tsk) 7311 { 7312 static DEFINE_WAIT_OVERRIDE_MAP(sched_map, LD_WAIT_CONFIG); 7313 unsigned int task_flags; 7314 7315 /* 7316 * Establish LD_WAIT_CONFIG context to ensure none of the code called 7317 * will use a blocking primitive -- which would lead to recursion. 7318 */ 7319 lock_map_acquire_try(&sched_map); 7320 7321 task_flags = tsk->flags; 7322 /* 7323 * If a worker goes to sleep, notify and ask workqueue whether it 7324 * wants to wake up a task to maintain concurrency. 7325 */ 7326 if (task_flags & PF_WQ_WORKER) 7327 wq_worker_sleeping(tsk); 7328 else if (task_flags & PF_IO_WORKER) 7329 io_wq_worker_sleeping(tsk); 7330 7331 /* 7332 * spinlock and rwlock must not flush block requests. This will 7333 * deadlock if the callback attempts to acquire a lock which is 7334 * already acquired. 7335 */ 7336 WARN_ON_ONCE(current->__state & TASK_RTLOCK_WAIT); 7337 7338 /* 7339 * If we are going to sleep and we have plugged IO queued, 7340 * make sure to submit it to avoid deadlocks. 7341 */ 7342 blk_flush_plug(tsk->plug, true); 7343 7344 lock_map_release(&sched_map); 7345 } 7346 7347 static void sched_update_worker(struct task_struct *tsk) 7348 { 7349 if (tsk->flags & (PF_WQ_WORKER | PF_IO_WORKER)) { 7350 if (tsk->flags & PF_WQ_WORKER) 7351 wq_worker_running(tsk); 7352 else 7353 io_wq_worker_running(tsk); 7354 } 7355 } 7356 7357 static __always_inline void __schedule_loop(int sched_mode) 7358 { 7359 do { 7360 preempt_disable(); 7361 __schedule(sched_mode); 7362 sched_preempt_enable_no_resched(); 7363 } while (need_resched()); 7364 } 7365 7366 asmlinkage __visible void __sched schedule(void) 7367 { 7368 struct task_struct *tsk = current; 7369 7370 #ifdef CONFIG_RT_MUTEXES 7371 lockdep_assert(!tsk->sched_rt_mutex); 7372 #endif 7373 7374 if (!task_is_running(tsk)) 7375 sched_submit_work(tsk); 7376 __schedule_loop(SM_NONE); 7377 sched_update_worker(tsk); 7378 } 7379 EXPORT_SYMBOL(schedule); 7380 7381 /* 7382 * synchronize_rcu_tasks() makes sure that no task is stuck in preempted 7383 * state (have scheduled out non-voluntarily) by making sure that all 7384 * tasks have either left the run queue or have gone into user space. 7385 * As idle tasks do not do either, they must not ever be preempted 7386 * (schedule out non-voluntarily). 7387 * 7388 * schedule_idle() is similar to schedule_preempt_disable() except that it 7389 * never enables preemption because it does not call sched_submit_work(). 7390 */ 7391 void __sched schedule_idle(void) 7392 { 7393 /* 7394 * As this skips calling sched_submit_work(), which the idle task does 7395 * regardless because that function is a NOP when the task is in a 7396 * TASK_RUNNING state, make sure this isn't used someplace that the 7397 * current task can be in any other state. Note, idle is always in the 7398 * TASK_RUNNING state. 7399 */ 7400 WARN_ON_ONCE(current->__state); 7401 do { 7402 __schedule(SM_IDLE); 7403 } while (need_resched()); 7404 } 7405 7406 #if defined(CONFIG_CONTEXT_TRACKING_USER) && !defined(CONFIG_HAVE_CONTEXT_TRACKING_USER_OFFSTACK) 7407 asmlinkage __visible void __sched schedule_user(void) 7408 { 7409 /* 7410 * If we come here after a random call to set_need_resched(), 7411 * or we have been woken up remotely but the IPI has not yet arrived, 7412 * we haven't yet exited the RCU idle mode. Do it here manually until 7413 * we find a better solution. 7414 * 7415 * NB: There are buggy callers of this function. Ideally we 7416 * should warn if prev_state != CT_STATE_USER, but that will trigger 7417 * too frequently to make sense yet. 7418 */ 7419 enum ctx_state prev_state = exception_enter(); 7420 schedule(); 7421 exception_exit(prev_state); 7422 } 7423 #endif 7424 7425 /** 7426 * schedule_preempt_disabled - called with preemption disabled 7427 * 7428 * Returns with preemption disabled. Note: preempt_count must be 1 7429 */ 7430 void __sched schedule_preempt_disabled(void) 7431 { 7432 sched_preempt_enable_no_resched(); 7433 schedule(); 7434 preempt_disable(); 7435 } 7436 7437 #ifdef CONFIG_PREEMPT_RT 7438 void __sched notrace schedule_rtlock(void) 7439 { 7440 __schedule_loop(SM_RTLOCK_WAIT); 7441 } 7442 NOKPROBE_SYMBOL(schedule_rtlock); 7443 #endif 7444 7445 static void __sched notrace preempt_schedule_common(void) 7446 { 7447 do { 7448 /* 7449 * Because the function tracer can trace preempt_count_sub() 7450 * and it also uses preempt_enable/disable_notrace(), if 7451 * NEED_RESCHED is set, the preempt_enable_notrace() called 7452 * by the function tracer will call this function again and 7453 * cause infinite recursion. 7454 * 7455 * Preemption must be disabled here before the function 7456 * tracer can trace. Break up preempt_disable() into two 7457 * calls. One to disable preemption without fear of being 7458 * traced. The other to still record the preemption latency, 7459 * which can also be traced by the function tracer. 7460 */ 7461 preempt_disable_notrace(); 7462 preempt_latency_start(1); 7463 __schedule(SM_PREEMPT); 7464 preempt_latency_stop(1); 7465 preempt_enable_no_resched_notrace(); 7466 7467 /* 7468 * Check again in case we missed a preemption opportunity 7469 * between schedule and now. 7470 */ 7471 } while (need_resched()); 7472 } 7473 7474 #ifdef CONFIG_PREEMPTION 7475 /* 7476 * This is the entry point to schedule() from in-kernel preemption 7477 * off of preempt_enable. 7478 */ 7479 asmlinkage __visible void __sched notrace preempt_schedule(void) 7480 { 7481 /* 7482 * If there is a non-zero preempt_count or interrupts are disabled, 7483 * we do not want to preempt the current task. Just return.. 7484 */ 7485 if (likely(!preemptible())) 7486 return; 7487 preempt_schedule_common(); 7488 } 7489 NOKPROBE_SYMBOL(preempt_schedule); 7490 EXPORT_SYMBOL(preempt_schedule); 7491 7492 #ifdef CONFIG_PREEMPT_DYNAMIC 7493 # ifdef CONFIG_HAVE_PREEMPT_DYNAMIC_CALL 7494 # ifndef preempt_schedule_dynamic_enabled 7495 # define preempt_schedule_dynamic_enabled preempt_schedule 7496 # define preempt_schedule_dynamic_disabled NULL 7497 # endif 7498 DEFINE_STATIC_CALL(preempt_schedule, preempt_schedule_dynamic_enabled); 7499 EXPORT_STATIC_CALL_TRAMP(preempt_schedule); 7500 # elif defined(CONFIG_HAVE_PREEMPT_DYNAMIC_KEY) 7501 static DEFINE_STATIC_KEY_TRUE(sk_dynamic_preempt_schedule); 7502 void __sched notrace dynamic_preempt_schedule(void) 7503 { 7504 if (!static_branch_unlikely(&sk_dynamic_preempt_schedule)) 7505 return; 7506 preempt_schedule(); 7507 } 7508 NOKPROBE_SYMBOL(dynamic_preempt_schedule); 7509 EXPORT_SYMBOL(dynamic_preempt_schedule); 7510 # endif 7511 #endif /* CONFIG_PREEMPT_DYNAMIC */ 7512 7513 /** 7514 * preempt_schedule_notrace - preempt_schedule called by tracing 7515 * 7516 * The tracing infrastructure uses preempt_enable_notrace to prevent 7517 * recursion and tracing preempt enabling caused by the tracing 7518 * infrastructure itself. But as tracing can happen in areas coming 7519 * from userspace or just about to enter userspace, a preempt enable 7520 * can occur before user_exit() is called. This will cause the scheduler 7521 * to be called when the system is still in usermode. 7522 * 7523 * To prevent this, the preempt_enable_notrace will use this function 7524 * instead of preempt_schedule() to exit user context if needed before 7525 * calling the scheduler. 7526 */ 7527 asmlinkage __visible void __sched notrace preempt_schedule_notrace(void) 7528 { 7529 enum ctx_state prev_ctx; 7530 7531 if (likely(!preemptible())) 7532 return; 7533 7534 do { 7535 /* 7536 * Because the function tracer can trace preempt_count_sub() 7537 * and it also uses preempt_enable/disable_notrace(), if 7538 * NEED_RESCHED is set, the preempt_enable_notrace() called 7539 * by the function tracer will call this function again and 7540 * cause infinite recursion. 7541 * 7542 * Preemption must be disabled here before the function 7543 * tracer can trace. Break up preempt_disable() into two 7544 * calls. One to disable preemption without fear of being 7545 * traced. The other to still record the preemption latency, 7546 * which can also be traced by the function tracer. 7547 */ 7548 preempt_disable_notrace(); 7549 preempt_latency_start(1); 7550 /* 7551 * Needs preempt disabled in case user_exit() is traced 7552 * and the tracer calls preempt_enable_notrace() causing 7553 * an infinite recursion. 7554 */ 7555 prev_ctx = exception_enter(); 7556 __schedule(SM_PREEMPT); 7557 exception_exit(prev_ctx); 7558 7559 preempt_latency_stop(1); 7560 preempt_enable_no_resched_notrace(); 7561 } while (need_resched()); 7562 } 7563 EXPORT_SYMBOL_GPL(preempt_schedule_notrace); 7564 7565 #ifdef CONFIG_PREEMPT_DYNAMIC 7566 # if defined(CONFIG_HAVE_PREEMPT_DYNAMIC_CALL) 7567 # ifndef preempt_schedule_notrace_dynamic_enabled 7568 # define preempt_schedule_notrace_dynamic_enabled preempt_schedule_notrace 7569 # define preempt_schedule_notrace_dynamic_disabled NULL 7570 # endif 7571 DEFINE_STATIC_CALL(preempt_schedule_notrace, preempt_schedule_notrace_dynamic_enabled); 7572 EXPORT_STATIC_CALL_TRAMP(preempt_schedule_notrace); 7573 # elif defined(CONFIG_HAVE_PREEMPT_DYNAMIC_KEY) 7574 static DEFINE_STATIC_KEY_TRUE(sk_dynamic_preempt_schedule_notrace); 7575 void __sched notrace dynamic_preempt_schedule_notrace(void) 7576 { 7577 if (!static_branch_unlikely(&sk_dynamic_preempt_schedule_notrace)) 7578 return; 7579 preempt_schedule_notrace(); 7580 } 7581 NOKPROBE_SYMBOL(dynamic_preempt_schedule_notrace); 7582 EXPORT_SYMBOL(dynamic_preempt_schedule_notrace); 7583 # endif 7584 #endif 7585 7586 #endif /* CONFIG_PREEMPTION */ 7587 7588 /* 7589 * This is the entry point to schedule() from kernel preemption 7590 * off of IRQ context. 7591 * Note, that this is called and return with IRQs disabled. This will 7592 * protect us against recursive calling from IRQ contexts. 7593 */ 7594 asmlinkage __visible void __sched preempt_schedule_irq(void) 7595 { 7596 enum ctx_state prev_state; 7597 7598 /* Catch callers which need to be fixed */ 7599 BUG_ON(preempt_count() || !irqs_disabled()); 7600 7601 prev_state = exception_enter(); 7602 7603 do { 7604 preempt_disable(); 7605 local_irq_enable(); 7606 __schedule(SM_PREEMPT); 7607 local_irq_disable(); 7608 sched_preempt_enable_no_resched(); 7609 } while (need_resched()); 7610 7611 exception_exit(prev_state); 7612 } 7613 7614 int default_wake_function(wait_queue_entry_t *curr, unsigned mode, int wake_flags, 7615 void *key) 7616 { 7617 WARN_ON_ONCE(wake_flags & ~(WF_SYNC|WF_CURRENT_CPU)); 7618 return try_to_wake_up(curr->private, mode, wake_flags); 7619 } 7620 EXPORT_SYMBOL(default_wake_function); 7621 7622 const struct sched_class *__setscheduler_class(int policy, int prio) 7623 { 7624 if (dl_prio(prio)) 7625 return &dl_sched_class; 7626 7627 if (rt_prio(prio)) 7628 return &rt_sched_class; 7629 7630 #ifdef CONFIG_SCHED_CLASS_EXT 7631 if (task_should_scx(policy)) 7632 return &ext_sched_class; 7633 #endif 7634 7635 return &fair_sched_class; 7636 } 7637 7638 #ifdef CONFIG_RT_MUTEXES 7639 7640 /* 7641 * Would be more useful with typeof()/auto_type but they don't mix with 7642 * bit-fields. Since it's a local thing, use int. Keep the generic sounding 7643 * name such that if someone were to implement this function we get to compare 7644 * notes. 7645 */ 7646 #define fetch_and_set(x, v) ({ int _x = (x); (x) = (v); _x; }) 7647 7648 void rt_mutex_pre_schedule(void) 7649 { 7650 lockdep_assert(!fetch_and_set(current->sched_rt_mutex, 1)); 7651 sched_submit_work(current); 7652 } 7653 7654 /* 7655 * Used within the futex syscall context, skips sched_submit_work() because none 7656 * its work will be done. Asserts ensure that it is indeed the case. 7657 */ 7658 void rt_mutex_futex_pre_schedule(void) 7659 { 7660 lockdep_assert(!(current->flags & (PF_WQ_WORKER | PF_IO_WORKER))); 7661 lockdep_assert(!current->plug); 7662 lockdep_assert(!fetch_and_set(current->sched_rt_mutex, 1)); 7663 } 7664 7665 void rt_mutex_schedule(void) 7666 { 7667 lockdep_assert(current->sched_rt_mutex); 7668 __schedule_loop(SM_NONE); 7669 } 7670 7671 void rt_mutex_post_schedule(void) 7672 { 7673 sched_update_worker(current); 7674 lockdep_assert(fetch_and_set(current->sched_rt_mutex, 0)); 7675 } 7676 7677 void rt_mutex_futex_post_schedule(void) 7678 { 7679 lockdep_assert(fetch_and_set(current->sched_rt_mutex, 0)); 7680 } 7681 7682 /* 7683 * rt_mutex_setprio - set the current priority of a task 7684 * @p: task to boost 7685 * @pi_task: donor task 7686 * 7687 * This function changes the 'effective' priority of a task. It does 7688 * not touch ->normal_prio like __setscheduler(). 7689 * 7690 * Used by the rt_mutex code to implement priority inheritance 7691 * logic. Call site only calls if the priority of the task changed. 7692 */ 7693 void rt_mutex_setprio(struct task_struct *p, struct task_struct *pi_task) 7694 { 7695 int prio, oldprio, queue_flag = 7696 DEQUEUE_SAVE | DEQUEUE_MOVE | DEQUEUE_NOCLOCK; 7697 const struct sched_class *prev_class, *next_class; 7698 struct rq_flags rf; 7699 struct rq *rq; 7700 7701 /* XXX used to be waiter->prio, not waiter->task->prio */ 7702 prio = __rt_effective_prio(pi_task, p->normal_prio); 7703 7704 /* 7705 * If nothing changed; bail early. 7706 */ 7707 if (p->pi_top_task == pi_task && prio == p->prio && !dl_prio(prio)) 7708 return; 7709 7710 rq = __task_rq_lock(p, &rf); 7711 update_rq_clock(rq); 7712 /* 7713 * Set under pi_lock && rq->lock, such that the value can be used under 7714 * either lock. 7715 * 7716 * Note that there is loads of tricky to make this pointer cache work 7717 * right. rt_mutex_slowunlock()+rt_mutex_postunlock() work together to 7718 * ensure a task is de-boosted (pi_task is set to NULL) before the 7719 * task is allowed to run again (and can exit). This ensures the pointer 7720 * points to a blocked task -- which guarantees the task is present. 7721 */ 7722 p->pi_top_task = pi_task; 7723 7724 /* 7725 * For FIFO/RR we only need to set prio, if that matches we're done. 7726 */ 7727 if (prio == p->prio && !dl_prio(prio)) 7728 goto out_unlock; 7729 7730 /* 7731 * Idle task boosting is a no-no in general. There is one 7732 * exception, when PREEMPT_RT and NOHZ is active: 7733 * 7734 * The idle task calls get_next_timer_interrupt() and holds 7735 * the timer wheel base->lock on the CPU and another CPU wants 7736 * to access the timer (probably to cancel it). We can safely 7737 * ignore the boosting request, as the idle CPU runs this code 7738 * with interrupts disabled and will complete the lock 7739 * protected section without being interrupted. So there is no 7740 * real need to boost. 7741 */ 7742 if (unlikely(p == rq->idle)) { 7743 WARN_ON(p != rq->curr); 7744 WARN_ON(p->pi_blocked_on); 7745 goto out_unlock; 7746 } 7747 7748 trace_sched_pi_setprio(p, pi_task); 7749 oldprio = p->prio; 7750 7751 if (oldprio == prio && !dl_prio(prio)) 7752 queue_flag &= ~DEQUEUE_MOVE; 7753 7754 prev_class = p->sched_class; 7755 next_class = __setscheduler_class(p->policy, prio); 7756 7757 if (prev_class != next_class) 7758 queue_flag |= DEQUEUE_CLASS; 7759 7760 scoped_guard (sched_change, p, queue_flag) { 7761 /* 7762 * Boosting condition are: 7763 * 1. -rt task is running and holds mutex A 7764 * --> -dl task blocks on mutex A 7765 * 7766 * 2. -dl task is running and holds mutex A 7767 * --> -dl task blocks on mutex A and could preempt the 7768 * running task 7769 */ 7770 if (dl_prio(prio)) { 7771 if (!dl_prio(p->normal_prio) || 7772 (pi_task && dl_prio(pi_task->prio) && 7773 dl_entity_preempt(&pi_task->dl, &p->dl))) { 7774 p->dl.pi_se = pi_task->dl.pi_se; 7775 scope->flags |= ENQUEUE_REPLENISH; 7776 } else { 7777 p->dl.pi_se = &p->dl; 7778 } 7779 } else if (rt_prio(prio)) { 7780 if (dl_prio(oldprio)) 7781 p->dl.pi_se = &p->dl; 7782 if (oldprio < prio) 7783 scope->flags |= ENQUEUE_HEAD; 7784 } else { 7785 if (dl_prio(oldprio)) 7786 p->dl.pi_se = &p->dl; 7787 if (rt_prio(oldprio)) 7788 p->rt.timeout = 0; 7789 } 7790 7791 p->sched_class = next_class; 7792 p->prio = prio; 7793 } 7794 out_unlock: 7795 /* Caller holds task_struct::pi_lock, IRQs are still disabled */ 7796 7797 __balance_callbacks(rq, &rf); 7798 __task_rq_unlock(rq, p, &rf); 7799 } 7800 #endif /* CONFIG_RT_MUTEXES */ 7801 7802 #if !defined(CONFIG_PREEMPTION) || defined(CONFIG_PREEMPT_DYNAMIC) 7803 int __sched __cond_resched(void) 7804 { 7805 if (should_resched(0) && !irqs_disabled()) { 7806 preempt_schedule_common(); 7807 return 1; 7808 } 7809 /* 7810 * In PREEMPT_RCU kernels, ->rcu_read_lock_nesting tells the tick 7811 * whether the current CPU is in an RCU read-side critical section, 7812 * so the tick can report quiescent states even for CPUs looping 7813 * in kernel context. In contrast, in non-preemptible kernels, 7814 * RCU readers leave no in-memory hints, which means that CPU-bound 7815 * processes executing in kernel context might never report an 7816 * RCU quiescent state. Therefore, the following code causes 7817 * cond_resched() to report a quiescent state, but only when RCU 7818 * is in urgent need of one. 7819 * A third case, preemptible, but non-PREEMPT_RCU provides for 7820 * urgently needed quiescent states via rcu_flavor_sched_clock_irq(). 7821 */ 7822 #ifndef CONFIG_PREEMPT_RCU 7823 rcu_all_qs(); 7824 #endif 7825 return 0; 7826 } 7827 EXPORT_SYMBOL(__cond_resched); 7828 #endif 7829 7830 #ifdef CONFIG_PREEMPT_DYNAMIC 7831 # ifdef CONFIG_HAVE_PREEMPT_DYNAMIC_CALL 7832 # define cond_resched_dynamic_enabled __cond_resched 7833 # define cond_resched_dynamic_disabled ((void *)&__static_call_return0) 7834 DEFINE_STATIC_CALL_RET0(cond_resched, __cond_resched); 7835 EXPORT_STATIC_CALL_TRAMP(cond_resched); 7836 7837 # define might_resched_dynamic_enabled __cond_resched 7838 # define might_resched_dynamic_disabled ((void *)&__static_call_return0) 7839 DEFINE_STATIC_CALL_RET0(might_resched, __cond_resched); 7840 EXPORT_STATIC_CALL_TRAMP(might_resched); 7841 # elif defined(CONFIG_HAVE_PREEMPT_DYNAMIC_KEY) 7842 static DEFINE_STATIC_KEY_FALSE(sk_dynamic_cond_resched); 7843 int __sched dynamic_cond_resched(void) 7844 { 7845 if (!static_branch_unlikely(&sk_dynamic_cond_resched)) 7846 return 0; 7847 return __cond_resched(); 7848 } 7849 EXPORT_SYMBOL(dynamic_cond_resched); 7850 7851 static DEFINE_STATIC_KEY_FALSE(sk_dynamic_might_resched); 7852 int __sched dynamic_might_resched(void) 7853 { 7854 if (!static_branch_unlikely(&sk_dynamic_might_resched)) 7855 return 0; 7856 return __cond_resched(); 7857 } 7858 EXPORT_SYMBOL(dynamic_might_resched); 7859 # endif 7860 #endif /* CONFIG_PREEMPT_DYNAMIC */ 7861 7862 /* 7863 * __cond_resched_lock() - if a reschedule is pending, drop the given lock, 7864 * call schedule, and on return reacquire the lock. 7865 * 7866 * This works OK both with and without CONFIG_PREEMPTION. We do strange low-level 7867 * operations here to prevent schedule() from being called twice (once via 7868 * spin_unlock(), once by hand). 7869 */ 7870 int __cond_resched_lock(spinlock_t *lock) 7871 { 7872 int resched = should_resched(PREEMPT_LOCK_OFFSET); 7873 int ret = 0; 7874 7875 lockdep_assert_held(lock); 7876 7877 if (spin_needbreak(lock) || resched) { 7878 spin_unlock(lock); 7879 if (!_cond_resched()) 7880 cpu_relax(); 7881 ret = 1; 7882 spin_lock(lock); 7883 } 7884 return ret; 7885 } 7886 EXPORT_SYMBOL(__cond_resched_lock); 7887 7888 int __cond_resched_rwlock_read(rwlock_t *lock) 7889 { 7890 int resched = should_resched(PREEMPT_LOCK_OFFSET); 7891 int ret = 0; 7892 7893 lockdep_assert_held_read(lock); 7894 7895 if (rwlock_needbreak(lock) || resched) { 7896 read_unlock(lock); 7897 if (!_cond_resched()) 7898 cpu_relax(); 7899 ret = 1; 7900 read_lock(lock); 7901 } 7902 return ret; 7903 } 7904 EXPORT_SYMBOL(__cond_resched_rwlock_read); 7905 7906 int __cond_resched_rwlock_write(rwlock_t *lock) 7907 { 7908 int resched = should_resched(PREEMPT_LOCK_OFFSET); 7909 int ret = 0; 7910 7911 lockdep_assert_held_write(lock); 7912 7913 if (rwlock_needbreak(lock) || resched) { 7914 write_unlock(lock); 7915 if (!_cond_resched()) 7916 cpu_relax(); 7917 ret = 1; 7918 write_lock(lock); 7919 } 7920 return ret; 7921 } 7922 EXPORT_SYMBOL(__cond_resched_rwlock_write); 7923 7924 #ifdef CONFIG_PREEMPT_DYNAMIC 7925 7926 # ifdef CONFIG_GENERIC_IRQ_ENTRY 7927 # include <linux/irq-entry-common.h> 7928 # endif 7929 7930 /* 7931 * SC:cond_resched 7932 * SC:might_resched 7933 * SC:preempt_schedule 7934 * SC:preempt_schedule_notrace 7935 * SC:irqentry_exit_cond_resched 7936 * 7937 * 7938 * NONE: 7939 * cond_resched <- __cond_resched 7940 * might_resched <- RET0 7941 * preempt_schedule <- NOP 7942 * preempt_schedule_notrace <- NOP 7943 * irqentry_exit_cond_resched <- NOP 7944 * dynamic_preempt_lazy <- false 7945 * 7946 * VOLUNTARY: 7947 * cond_resched <- __cond_resched 7948 * might_resched <- __cond_resched 7949 * preempt_schedule <- NOP 7950 * preempt_schedule_notrace <- NOP 7951 * irqentry_exit_cond_resched <- NOP 7952 * dynamic_preempt_lazy <- false 7953 * 7954 * FULL: 7955 * cond_resched <- RET0 7956 * might_resched <- RET0 7957 * preempt_schedule <- preempt_schedule 7958 * preempt_schedule_notrace <- preempt_schedule_notrace 7959 * irqentry_exit_cond_resched <- irqentry_exit_cond_resched 7960 * dynamic_preempt_lazy <- false 7961 * 7962 * LAZY: 7963 * cond_resched <- RET0 7964 * might_resched <- RET0 7965 * preempt_schedule <- preempt_schedule 7966 * preempt_schedule_notrace <- preempt_schedule_notrace 7967 * irqentry_exit_cond_resched <- irqentry_exit_cond_resched 7968 * dynamic_preempt_lazy <- true 7969 */ 7970 7971 enum { 7972 preempt_dynamic_undefined = -1, 7973 preempt_dynamic_none, 7974 preempt_dynamic_voluntary, 7975 preempt_dynamic_full, 7976 preempt_dynamic_lazy, 7977 }; 7978 7979 int preempt_dynamic_mode = preempt_dynamic_undefined; 7980 7981 int sched_dynamic_mode(const char *str) 7982 { 7983 # if !(defined(CONFIG_PREEMPT_RT) || defined(CONFIG_ARCH_HAS_PREEMPT_LAZY)) 7984 if (!strcmp(str, "none")) 7985 return preempt_dynamic_none; 7986 7987 if (!strcmp(str, "voluntary")) 7988 return preempt_dynamic_voluntary; 7989 # endif 7990 7991 if (!strcmp(str, "full")) 7992 return preempt_dynamic_full; 7993 7994 # ifdef CONFIG_ARCH_HAS_PREEMPT_LAZY 7995 if (!strcmp(str, "lazy")) 7996 return preempt_dynamic_lazy; 7997 # endif 7998 7999 return -EINVAL; 8000 } 8001 8002 # define preempt_dynamic_key_enable(f) static_key_enable(&sk_dynamic_##f.key) 8003 # define preempt_dynamic_key_disable(f) static_key_disable(&sk_dynamic_##f.key) 8004 8005 # if defined(CONFIG_HAVE_PREEMPT_DYNAMIC_CALL) 8006 # define preempt_dynamic_enable(f) static_call_update(f, f##_dynamic_enabled) 8007 # define preempt_dynamic_disable(f) static_call_update(f, f##_dynamic_disabled) 8008 # elif defined(CONFIG_HAVE_PREEMPT_DYNAMIC_KEY) 8009 # define preempt_dynamic_enable(f) preempt_dynamic_key_enable(f) 8010 # define preempt_dynamic_disable(f) preempt_dynamic_key_disable(f) 8011 # else 8012 # error "Unsupported PREEMPT_DYNAMIC mechanism" 8013 # endif 8014 8015 static DEFINE_MUTEX(sched_dynamic_mutex); 8016 8017 static void __sched_dynamic_update(int mode) 8018 { 8019 /* 8020 * Avoid {NONE,VOLUNTARY} -> FULL transitions from ever ending up in 8021 * the ZERO state, which is invalid. 8022 */ 8023 preempt_dynamic_enable(cond_resched); 8024 preempt_dynamic_enable(might_resched); 8025 preempt_dynamic_enable(preempt_schedule); 8026 preempt_dynamic_enable(preempt_schedule_notrace); 8027 preempt_dynamic_enable(irqentry_exit_cond_resched); 8028 preempt_dynamic_key_disable(preempt_lazy); 8029 8030 switch (mode) { 8031 case preempt_dynamic_none: 8032 preempt_dynamic_enable(cond_resched); 8033 preempt_dynamic_disable(might_resched); 8034 preempt_dynamic_disable(preempt_schedule); 8035 preempt_dynamic_disable(preempt_schedule_notrace); 8036 preempt_dynamic_disable(irqentry_exit_cond_resched); 8037 preempt_dynamic_key_disable(preempt_lazy); 8038 if (mode != preempt_dynamic_mode) 8039 pr_info("Dynamic Preempt: none\n"); 8040 break; 8041 8042 case preempt_dynamic_voluntary: 8043 preempt_dynamic_enable(cond_resched); 8044 preempt_dynamic_enable(might_resched); 8045 preempt_dynamic_disable(preempt_schedule); 8046 preempt_dynamic_disable(preempt_schedule_notrace); 8047 preempt_dynamic_disable(irqentry_exit_cond_resched); 8048 preempt_dynamic_key_disable(preempt_lazy); 8049 if (mode != preempt_dynamic_mode) 8050 pr_info("Dynamic Preempt: voluntary\n"); 8051 break; 8052 8053 case preempt_dynamic_full: 8054 preempt_dynamic_disable(cond_resched); 8055 preempt_dynamic_disable(might_resched); 8056 preempt_dynamic_enable(preempt_schedule); 8057 preempt_dynamic_enable(preempt_schedule_notrace); 8058 preempt_dynamic_enable(irqentry_exit_cond_resched); 8059 preempt_dynamic_key_disable(preempt_lazy); 8060 if (mode != preempt_dynamic_mode) 8061 pr_info("Dynamic Preempt: full\n"); 8062 break; 8063 8064 case preempt_dynamic_lazy: 8065 preempt_dynamic_disable(cond_resched); 8066 preempt_dynamic_disable(might_resched); 8067 preempt_dynamic_enable(preempt_schedule); 8068 preempt_dynamic_enable(preempt_schedule_notrace); 8069 preempt_dynamic_enable(irqentry_exit_cond_resched); 8070 preempt_dynamic_key_enable(preempt_lazy); 8071 if (mode != preempt_dynamic_mode) 8072 pr_info("Dynamic Preempt: lazy\n"); 8073 break; 8074 } 8075 8076 WRITE_ONCE(preempt_dynamic_mode, mode); 8077 } 8078 8079 void sched_dynamic_update(int mode) 8080 { 8081 mutex_lock(&sched_dynamic_mutex); 8082 __sched_dynamic_update(mode); 8083 mutex_unlock(&sched_dynamic_mutex); 8084 } 8085 8086 static int __init setup_preempt_mode(char *str) 8087 { 8088 int mode = sched_dynamic_mode(str); 8089 if (mode < 0) { 8090 pr_warn("Dynamic Preempt: unsupported mode: %s\n", str); 8091 return 0; 8092 } 8093 8094 sched_dynamic_update(mode); 8095 return 1; 8096 } 8097 __setup("preempt=", setup_preempt_mode); 8098 8099 static void __init preempt_dynamic_init(void) 8100 { 8101 if (preempt_dynamic_mode == preempt_dynamic_undefined) { 8102 if (IS_ENABLED(CONFIG_PREEMPT_NONE)) { 8103 sched_dynamic_update(preempt_dynamic_none); 8104 } else if (IS_ENABLED(CONFIG_PREEMPT_VOLUNTARY)) { 8105 sched_dynamic_update(preempt_dynamic_voluntary); 8106 } else if (IS_ENABLED(CONFIG_PREEMPT_LAZY)) { 8107 sched_dynamic_update(preempt_dynamic_lazy); 8108 } else { 8109 /* Default static call setting, nothing to do */ 8110 WARN_ON_ONCE(!IS_ENABLED(CONFIG_PREEMPT)); 8111 preempt_dynamic_mode = preempt_dynamic_full; 8112 pr_info("Dynamic Preempt: full\n"); 8113 } 8114 } 8115 } 8116 8117 # define PREEMPT_MODEL_ACCESSOR(mode) \ 8118 bool preempt_model_##mode(void) \ 8119 { \ 8120 int mode = READ_ONCE(preempt_dynamic_mode); \ 8121 WARN_ON_ONCE(mode == preempt_dynamic_undefined); \ 8122 return mode == preempt_dynamic_##mode; \ 8123 } \ 8124 EXPORT_SYMBOL_GPL(preempt_model_##mode) 8125 8126 PREEMPT_MODEL_ACCESSOR(none); 8127 PREEMPT_MODEL_ACCESSOR(voluntary); 8128 PREEMPT_MODEL_ACCESSOR(full); 8129 PREEMPT_MODEL_ACCESSOR(lazy); 8130 8131 #else /* !CONFIG_PREEMPT_DYNAMIC: */ 8132 8133 #define preempt_dynamic_mode -1 8134 8135 static inline void preempt_dynamic_init(void) { } 8136 8137 #endif /* CONFIG_PREEMPT_DYNAMIC */ 8138 8139 const char *preempt_modes[] = { 8140 "none", "voluntary", "full", "lazy", NULL, 8141 }; 8142 8143 const char *preempt_model_str(void) 8144 { 8145 bool brace = IS_ENABLED(CONFIG_PREEMPT_RT) && 8146 (IS_ENABLED(CONFIG_PREEMPT_DYNAMIC) || 8147 IS_ENABLED(CONFIG_PREEMPT_LAZY)); 8148 static char buf[128]; 8149 8150 if (IS_ENABLED(CONFIG_PREEMPT_BUILD)) { 8151 struct seq_buf s; 8152 8153 seq_buf_init(&s, buf, sizeof(buf)); 8154 seq_buf_puts(&s, "PREEMPT"); 8155 8156 if (IS_ENABLED(CONFIG_PREEMPT_RT)) 8157 seq_buf_printf(&s, "%sRT%s", 8158 brace ? "_{" : "_", 8159 brace ? "," : ""); 8160 8161 if (IS_ENABLED(CONFIG_PREEMPT_DYNAMIC)) { 8162 seq_buf_printf(&s, "(%s)%s", 8163 preempt_dynamic_mode >= 0 ? 8164 preempt_modes[preempt_dynamic_mode] : "undef", 8165 brace ? "}" : ""); 8166 return seq_buf_str(&s); 8167 } 8168 8169 if (IS_ENABLED(CONFIG_PREEMPT_LAZY)) { 8170 seq_buf_printf(&s, "LAZY%s", 8171 brace ? "}" : ""); 8172 return seq_buf_str(&s); 8173 } 8174 8175 return seq_buf_str(&s); 8176 } 8177 8178 if (IS_ENABLED(CONFIG_PREEMPT_VOLUNTARY_BUILD)) 8179 return "VOLUNTARY"; 8180 8181 return "NONE"; 8182 } 8183 8184 int io_schedule_prepare(void) 8185 { 8186 int old_iowait = current->in_iowait; 8187 8188 current->in_iowait = 1; 8189 blk_flush_plug(current->plug, true); 8190 return old_iowait; 8191 } 8192 8193 void io_schedule_finish(int token) 8194 { 8195 current->in_iowait = token; 8196 } 8197 8198 /* 8199 * This task is about to go to sleep on IO. Increment rq->nr_iowait so 8200 * that process accounting knows that this is a task in IO wait state. 8201 */ 8202 long __sched io_schedule_timeout(long timeout) 8203 { 8204 int token; 8205 long ret; 8206 8207 token = io_schedule_prepare(); 8208 ret = schedule_timeout(timeout); 8209 io_schedule_finish(token); 8210 8211 return ret; 8212 } 8213 EXPORT_SYMBOL(io_schedule_timeout); 8214 8215 void __sched io_schedule(void) 8216 { 8217 int token; 8218 8219 token = io_schedule_prepare(); 8220 schedule(); 8221 io_schedule_finish(token); 8222 } 8223 EXPORT_SYMBOL(io_schedule); 8224 8225 void sched_show_task(struct task_struct *p) 8226 { 8227 unsigned long free; 8228 int ppid; 8229 8230 if (!try_get_task_stack(p)) 8231 return; 8232 8233 pr_info("task:%-15.15s state:%c", p->comm, task_state_to_char(p)); 8234 8235 if (task_is_running(p)) 8236 pr_cont(" running task "); 8237 free = stack_not_used(p); 8238 ppid = 0; 8239 rcu_read_lock(); 8240 if (pid_alive(p)) 8241 ppid = task_pid_nr(rcu_dereference(p->real_parent)); 8242 rcu_read_unlock(); 8243 pr_cont(" stack:%-5lu pid:%-5d tgid:%-5d ppid:%-6d task_flags:0x%04x flags:0x%08lx\n", 8244 free, task_pid_nr(p), task_tgid_nr(p), 8245 ppid, p->flags, read_task_thread_flags(p)); 8246 8247 print_worker_info(KERN_INFO, p); 8248 print_stop_info(KERN_INFO, p); 8249 print_scx_info(KERN_INFO, p); 8250 show_stack(p, NULL, KERN_INFO); 8251 put_task_stack(p); 8252 } 8253 EXPORT_SYMBOL_GPL(sched_show_task); 8254 8255 static inline bool 8256 state_filter_match(unsigned long state_filter, struct task_struct *p) 8257 { 8258 unsigned int state = READ_ONCE(p->__state); 8259 8260 /* no filter, everything matches */ 8261 if (!state_filter) 8262 return true; 8263 8264 /* filter, but doesn't match */ 8265 if (!(state & state_filter)) 8266 return false; 8267 8268 /* 8269 * When looking for TASK_UNINTERRUPTIBLE skip TASK_IDLE (allows 8270 * TASK_KILLABLE). 8271 */ 8272 if (state_filter == TASK_UNINTERRUPTIBLE && (state & TASK_NOLOAD)) 8273 return false; 8274 8275 return true; 8276 } 8277 8278 8279 void show_state_filter(unsigned int state_filter) 8280 { 8281 struct task_struct *g, *p; 8282 8283 rcu_read_lock(); 8284 for_each_process_thread(g, p) { 8285 /* 8286 * reset the NMI-timeout, listing all files on a slow 8287 * console might take a lot of time: 8288 * Also, reset softlockup watchdogs on all CPUs, because 8289 * another CPU might be blocked waiting for us to process 8290 * an IPI. 8291 */ 8292 touch_nmi_watchdog(); 8293 touch_all_softlockup_watchdogs(); 8294 if (state_filter_match(state_filter, p)) 8295 sched_show_task(p); 8296 } 8297 8298 if (!state_filter) 8299 sysrq_sched_debug_show(); 8300 8301 rcu_read_unlock(); 8302 /* 8303 * Only show locks if all tasks are dumped: 8304 */ 8305 if (!state_filter) 8306 debug_show_all_locks(); 8307 } 8308 8309 /** 8310 * init_idle - set up an idle thread for a given CPU 8311 * @idle: task in question 8312 * @cpu: CPU the idle task belongs to 8313 * 8314 * NOTE: this function does not set the idle thread's NEED_RESCHED 8315 * flag, to make booting more robust. 8316 */ 8317 void __init init_idle(struct task_struct *idle, int cpu) 8318 { 8319 struct affinity_context ac = (struct affinity_context) { 8320 .new_mask = cpumask_of(cpu), 8321 .flags = 0, 8322 }; 8323 struct rq *rq = cpu_rq(cpu); 8324 unsigned long flags; 8325 8326 raw_spin_lock_irqsave(&idle->pi_lock, flags); 8327 raw_spin_rq_lock(rq); 8328 8329 idle->__state = TASK_RUNNING; 8330 idle->se.exec_start = sched_clock(); 8331 /* 8332 * PF_KTHREAD should already be set at this point; regardless, make it 8333 * look like a proper per-CPU kthread. 8334 */ 8335 idle->flags |= PF_KTHREAD | PF_NO_SETAFFINITY; 8336 kthread_set_per_cpu(idle, cpu); 8337 8338 /* 8339 * No validation and serialization required at boot time and for 8340 * setting up the idle tasks of not yet online CPUs. 8341 */ 8342 set_cpus_allowed_common(idle, &ac); 8343 /* 8344 * We're having a chicken and egg problem, even though we are 8345 * holding rq->lock, the CPU isn't yet set to this CPU so the 8346 * lockdep check in task_group() will fail. 8347 * 8348 * Similar case to sched_fork(). / Alternatively we could 8349 * use task_rq_lock() here and obtain the other rq->lock. 8350 * 8351 * Silence PROVE_RCU 8352 */ 8353 rcu_read_lock(); 8354 __set_task_cpu(idle, cpu); 8355 rcu_read_unlock(); 8356 8357 rq->idle = idle; 8358 rq_set_donor(rq, idle); 8359 rcu_assign_pointer(rq->curr, idle); 8360 idle->on_rq = TASK_ON_RQ_QUEUED; 8361 idle->on_cpu = 1; 8362 raw_spin_rq_unlock(rq); 8363 raw_spin_unlock_irqrestore(&idle->pi_lock, flags); 8364 8365 /* Set the preempt count _outside_ the spinlocks! */ 8366 init_idle_preempt_count(idle, cpu); 8367 8368 /* 8369 * The idle tasks have their own, simple scheduling class: 8370 */ 8371 idle->sched_class = &idle_sched_class; 8372 ftrace_graph_init_idle_task(idle, cpu); 8373 vtime_init_idle(idle, cpu); 8374 sprintf(idle->comm, "%s/%d", INIT_TASK_COMM, cpu); 8375 } 8376 8377 int cpuset_cpumask_can_shrink(const struct cpumask *cur, 8378 const struct cpumask *trial) 8379 { 8380 int ret = 1; 8381 8382 if (cpumask_empty(cur)) 8383 return ret; 8384 8385 ret = dl_cpuset_cpumask_can_shrink(cur, trial); 8386 8387 return ret; 8388 } 8389 8390 int task_can_attach(struct task_struct *p) 8391 { 8392 int ret = 0; 8393 8394 /* 8395 * Kthreads which disallow setaffinity shouldn't be moved 8396 * to a new cpuset; we don't want to change their CPU 8397 * affinity and isolating such threads by their set of 8398 * allowed nodes is unnecessary. Thus, cpusets are not 8399 * applicable for such threads. This prevents checking for 8400 * success of set_cpus_allowed_ptr() on all attached tasks 8401 * before cpus_mask may be changed. 8402 */ 8403 if (p->flags & PF_NO_SETAFFINITY) 8404 ret = -EINVAL; 8405 8406 return ret; 8407 } 8408 8409 bool sched_smp_initialized __read_mostly; 8410 8411 #ifdef CONFIG_NUMA_BALANCING 8412 /* Migrate current task p to target_cpu */ 8413 int migrate_task_to(struct task_struct *p, int target_cpu) 8414 { 8415 struct migration_arg arg = { p, target_cpu }; 8416 int curr_cpu = task_cpu(p); 8417 8418 if (curr_cpu == target_cpu) 8419 return 0; 8420 8421 if (!cpumask_test_cpu(target_cpu, p->cpus_ptr)) 8422 return -EINVAL; 8423 8424 /* TODO: This is not properly updating schedstats */ 8425 8426 trace_sched_move_numa(p, curr_cpu, target_cpu); 8427 return stop_one_cpu(curr_cpu, migration_cpu_stop, &arg); 8428 } 8429 8430 /* 8431 * Requeue a task on a given node and accurately track the number of NUMA 8432 * tasks on the runqueues 8433 */ 8434 void sched_setnuma(struct task_struct *p, int nid) 8435 { 8436 guard(task_rq_lock)(p); 8437 scoped_guard (sched_change, p, DEQUEUE_SAVE) 8438 p->numa_preferred_nid = nid; 8439 } 8440 #endif /* CONFIG_NUMA_BALANCING */ 8441 8442 #ifdef CONFIG_HOTPLUG_CPU 8443 /* 8444 * Invoked on the outgoing CPU in context of the CPU hotplug thread 8445 * after ensuring that there are no user space tasks left on the CPU. 8446 * 8447 * If there is a lazy mm in use on the hotplug thread, drop it and 8448 * switch to init_mm. 8449 * 8450 * The reference count on init_mm is dropped in finish_cpu(). 8451 */ 8452 static void sched_force_init_mm(void) 8453 { 8454 struct mm_struct *mm = current->active_mm; 8455 8456 if (mm != &init_mm) { 8457 mmgrab_lazy_tlb(&init_mm); 8458 local_irq_disable(); 8459 current->active_mm = &init_mm; 8460 switch_mm_irqs_off(mm, &init_mm, current); 8461 local_irq_enable(); 8462 finish_arch_post_lock_switch(); 8463 mmdrop_lazy_tlb(mm); 8464 } 8465 8466 /* finish_cpu(), as ran on the BP, will clean up the active_mm state */ 8467 } 8468 8469 static int __balance_push_cpu_stop(void *arg) 8470 { 8471 struct task_struct *p = arg; 8472 struct rq *rq = this_rq(); 8473 struct rq_flags rf; 8474 int cpu; 8475 8476 scoped_guard (raw_spinlock_irq, &p->pi_lock) { 8477 /* 8478 * We may change the underlying rq, but the locks held will 8479 * appropriately be "transferred" when switching. 8480 */ 8481 context_unsafe_alias(rq); 8482 8483 cpu = select_fallback_rq(rq->cpu, p); 8484 8485 rq_lock(rq, &rf); 8486 update_rq_clock(rq); 8487 if (task_rq(p) == rq && task_on_rq_queued(p)) 8488 rq = __migrate_task(rq, &rf, p, cpu); 8489 rq_unlock(rq, &rf); 8490 } 8491 8492 put_task_struct(p); 8493 8494 return 0; 8495 } 8496 8497 static DEFINE_PER_CPU(struct cpu_stop_work, push_work); 8498 8499 /* 8500 * Ensure we only run per-cpu kthreads once the CPU goes !active. 8501 * 8502 * This is enabled below SCHED_AP_ACTIVE; when !cpu_active(), but only 8503 * effective when the hotplug motion is down. 8504 */ 8505 static void balance_push(struct rq *rq) 8506 __must_hold(__rq_lockp(rq)) 8507 { 8508 struct task_struct *push_task = rq->curr; 8509 8510 lockdep_assert_rq_held(rq); 8511 8512 /* 8513 * Ensure the thing is persistent until balance_push_set(.on = false); 8514 */ 8515 rq->balance_callback = &balance_push_callback; 8516 8517 /* 8518 * Only active while going offline and when invoked on the outgoing 8519 * CPU. 8520 */ 8521 if (!cpu_dying(rq->cpu) || rq != this_rq()) 8522 return; 8523 8524 /* 8525 * Both the cpu-hotplug and stop task are in this case and are 8526 * required to complete the hotplug process. 8527 */ 8528 if (kthread_is_per_cpu(push_task) || 8529 is_migration_disabled(push_task)) { 8530 8531 /* 8532 * If this is the idle task on the outgoing CPU try to wake 8533 * up the hotplug control thread which might wait for the 8534 * last task to vanish. The rcuwait_active() check is 8535 * accurate here because the waiter is pinned on this CPU 8536 * and can't obviously be running in parallel. 8537 * 8538 * On RT kernels this also has to check whether there are 8539 * pinned and scheduled out tasks on the runqueue. They 8540 * need to leave the migrate disabled section first. 8541 */ 8542 if (!rq->nr_running && !rq_has_pinned_tasks(rq) && 8543 rcuwait_active(&rq->hotplug_wait)) { 8544 raw_spin_rq_unlock(rq); 8545 rcuwait_wake_up(&rq->hotplug_wait); 8546 raw_spin_rq_lock(rq); 8547 } 8548 return; 8549 } 8550 8551 get_task_struct(push_task); 8552 /* 8553 * Temporarily drop rq->lock such that we can wake-up the stop task. 8554 * Both preemption and IRQs are still disabled. 8555 */ 8556 preempt_disable(); 8557 raw_spin_rq_unlock(rq); 8558 stop_one_cpu_nowait(rq->cpu, __balance_push_cpu_stop, push_task, 8559 this_cpu_ptr(&push_work)); 8560 preempt_enable(); 8561 /* 8562 * At this point need_resched() is true and we'll take the loop in 8563 * schedule(). The next pick is obviously going to be the stop task 8564 * which kthread_is_per_cpu() and will push this task away. 8565 */ 8566 raw_spin_rq_lock(rq); 8567 } 8568 8569 static void balance_push_set(int cpu, bool on) 8570 { 8571 struct rq *rq = cpu_rq(cpu); 8572 struct rq_flags rf; 8573 8574 rq_lock_irqsave(rq, &rf); 8575 if (on) { 8576 WARN_ON_ONCE(rq->balance_callback); 8577 rq->balance_callback = &balance_push_callback; 8578 } else if (rq->balance_callback == &balance_push_callback) { 8579 rq->balance_callback = NULL; 8580 } 8581 rq_unlock_irqrestore(rq, &rf); 8582 } 8583 8584 /* 8585 * Invoked from a CPUs hotplug control thread after the CPU has been marked 8586 * inactive. All tasks which are not per CPU kernel threads are either 8587 * pushed off this CPU now via balance_push() or placed on a different CPU 8588 * during wakeup. Wait until the CPU is quiescent. 8589 */ 8590 static void balance_hotplug_wait(void) 8591 { 8592 struct rq *rq = this_rq(); 8593 8594 rcuwait_wait_event(&rq->hotplug_wait, 8595 rq->nr_running == 1 && !rq_has_pinned_tasks(rq), 8596 TASK_UNINTERRUPTIBLE); 8597 } 8598 8599 #else /* !CONFIG_HOTPLUG_CPU: */ 8600 8601 static inline void balance_push(struct rq *rq) 8602 { 8603 } 8604 8605 static inline void balance_push_set(int cpu, bool on) 8606 { 8607 } 8608 8609 static inline void balance_hotplug_wait(void) 8610 { 8611 } 8612 8613 #endif /* !CONFIG_HOTPLUG_CPU */ 8614 8615 void set_rq_online(struct rq *rq) 8616 { 8617 if (!rq->online) { 8618 const struct sched_class *class; 8619 8620 cpumask_set_cpu(rq->cpu, rq->rd->online); 8621 rq->online = 1; 8622 8623 for_each_class(class) { 8624 if (class->rq_online) 8625 class->rq_online(rq); 8626 } 8627 } 8628 } 8629 8630 void set_rq_offline(struct rq *rq) 8631 { 8632 if (rq->online) { 8633 const struct sched_class *class; 8634 8635 update_rq_clock(rq); 8636 for_each_class(class) { 8637 if (class->rq_offline) 8638 class->rq_offline(rq); 8639 } 8640 8641 cpumask_clear_cpu(rq->cpu, rq->rd->online); 8642 rq->online = 0; 8643 } 8644 } 8645 8646 static inline void sched_set_rq_online(struct rq *rq, int cpu) 8647 { 8648 struct rq_flags rf; 8649 8650 rq_lock_irqsave(rq, &rf); 8651 if (rq->rd) { 8652 BUG_ON(!cpumask_test_cpu(cpu, rq->rd->span)); 8653 set_rq_online(rq); 8654 } 8655 rq_unlock_irqrestore(rq, &rf); 8656 } 8657 8658 static inline void sched_set_rq_offline(struct rq *rq, int cpu) 8659 { 8660 struct rq_flags rf; 8661 8662 rq_lock_irqsave(rq, &rf); 8663 if (rq->rd) { 8664 BUG_ON(!cpumask_test_cpu(cpu, rq->rd->span)); 8665 set_rq_offline(rq); 8666 } 8667 rq_unlock_irqrestore(rq, &rf); 8668 } 8669 8670 /* 8671 * used to mark begin/end of suspend/resume: 8672 */ 8673 static int num_cpus_frozen; 8674 8675 /* 8676 * Update cpusets according to cpu_active mask. If cpusets are 8677 * disabled, cpuset_update_active_cpus() becomes a simple wrapper 8678 * around partition_sched_domains(). 8679 * 8680 * If we come here as part of a suspend/resume, don't touch cpusets because we 8681 * want to restore it back to its original state upon resume anyway. 8682 */ 8683 static void cpuset_cpu_active(void) 8684 { 8685 if (cpuhp_tasks_frozen) { 8686 /* 8687 * num_cpus_frozen tracks how many CPUs are involved in suspend 8688 * resume sequence. As long as this is not the last online 8689 * operation in the resume sequence, just build a single sched 8690 * domain, ignoring cpusets. 8691 */ 8692 cpuset_reset_sched_domains(); 8693 if (--num_cpus_frozen) 8694 return; 8695 /* 8696 * This is the last CPU online operation. So fall through and 8697 * restore the original sched domains by considering the 8698 * cpuset configurations. 8699 */ 8700 cpuset_force_rebuild(); 8701 } 8702 cpuset_update_active_cpus(); 8703 } 8704 8705 static void cpuset_cpu_inactive(unsigned int cpu) 8706 { 8707 if (!cpuhp_tasks_frozen) { 8708 cpuset_update_active_cpus(); 8709 } else { 8710 num_cpus_frozen++; 8711 cpuset_reset_sched_domains(); 8712 } 8713 } 8714 8715 static inline void sched_smt_present_inc(int cpu) 8716 { 8717 if (cpumask_weight(cpu_smt_mask(cpu)) == 2) 8718 static_branch_inc_cpuslocked(&sched_smt_present); 8719 } 8720 8721 static inline void sched_smt_present_dec(int cpu) 8722 { 8723 if (cpumask_weight(cpu_smt_mask(cpu)) == 2) 8724 static_branch_dec_cpuslocked(&sched_smt_present); 8725 } 8726 8727 int sched_cpu_activate(unsigned int cpu) 8728 { 8729 struct rq *rq = cpu_rq(cpu); 8730 8731 /* 8732 * Clear the balance_push callback and prepare to schedule 8733 * regular tasks. 8734 */ 8735 balance_push_set(cpu, false); 8736 8737 /* 8738 * When going up, increment the number of cores with SMT present. 8739 */ 8740 sched_smt_present_inc(cpu); 8741 set_cpu_active(cpu, true); 8742 8743 if (sched_smp_initialized) { 8744 sched_update_numa(cpu, true); 8745 sched_domains_numa_masks_set(cpu); 8746 cpuset_cpu_active(); 8747 } 8748 8749 scx_rq_activate(rq); 8750 8751 /* 8752 * Put the rq online, if not already. This happens: 8753 * 8754 * 1) In the early boot process, because we build the real domains 8755 * after all CPUs have been brought up. 8756 * 8757 * 2) At runtime, if cpuset_cpu_active() fails to rebuild the 8758 * domains. 8759 */ 8760 sched_set_rq_online(rq, cpu); 8761 8762 return 0; 8763 } 8764 8765 int sched_cpu_deactivate(unsigned int cpu) 8766 { 8767 struct rq *rq = cpu_rq(cpu); 8768 int ret; 8769 8770 ret = dl_bw_deactivate(cpu); 8771 8772 if (ret) 8773 return ret; 8774 8775 /* 8776 * Remove CPU from nohz.idle_cpus_mask to prevent participating in 8777 * load balancing when not active 8778 */ 8779 scoped_guard (rcu) 8780 nohz_balance_exit_idle(rq); 8781 8782 set_cpu_active(cpu, false); 8783 8784 /* 8785 * From this point forward, this CPU will refuse to run any task that 8786 * is not: migrate_disable() or KTHREAD_IS_PER_CPU, and will actively 8787 * push those tasks away until this gets cleared, see 8788 * sched_cpu_dying(). 8789 */ 8790 balance_push_set(cpu, true); 8791 8792 /* 8793 * We've cleared cpu_active_mask / set balance_push, wait for all 8794 * preempt-disabled and RCU users of this state to go away such that 8795 * all new such users will observe it. 8796 * 8797 * Specifically, we rely on ttwu to no longer target this CPU, see 8798 * ttwu_queue_cond() and is_cpu_allowed(). 8799 * 8800 * Do sync before park smpboot threads to take care the RCU boost case. 8801 */ 8802 synchronize_rcu(); 8803 8804 sched_domains_free_llc_id(cpu); 8805 8806 sched_set_rq_offline(rq, cpu); 8807 8808 scx_rq_deactivate(rq); 8809 8810 /* 8811 * When going down, decrement the number of cores with SMT present. 8812 */ 8813 sched_smt_present_dec(cpu); 8814 8815 sched_core_cpu_deactivate(cpu); 8816 8817 if (!sched_smp_initialized) 8818 return 0; 8819 8820 sched_update_numa(cpu, false); 8821 cpuset_cpu_inactive(cpu); 8822 sched_domains_numa_masks_clear(cpu); 8823 return 0; 8824 } 8825 8826 static void sched_rq_cpu_starting(unsigned int cpu) 8827 { 8828 struct rq *rq = cpu_rq(cpu); 8829 8830 rq->calc_load_update = calc_load_update; 8831 update_max_interval(); 8832 } 8833 8834 int sched_cpu_starting(unsigned int cpu) 8835 { 8836 sched_core_cpu_starting(cpu); 8837 sched_rq_cpu_starting(cpu); 8838 sched_tick_start(cpu); 8839 return 0; 8840 } 8841 8842 #ifdef CONFIG_HOTPLUG_CPU 8843 8844 /* 8845 * Invoked immediately before the stopper thread is invoked to bring the 8846 * CPU down completely. At this point all per CPU kthreads except the 8847 * hotplug thread (current) and the stopper thread (inactive) have been 8848 * either parked or have been unbound from the outgoing CPU. Ensure that 8849 * any of those which might be on the way out are gone. 8850 * 8851 * If after this point a bound task is being woken on this CPU then the 8852 * responsible hotplug callback has failed to do it's job. 8853 * sched_cpu_dying() will catch it with the appropriate fireworks. 8854 */ 8855 int sched_cpu_wait_empty(unsigned int cpu) 8856 { 8857 balance_hotplug_wait(); 8858 sched_force_init_mm(); 8859 return 0; 8860 } 8861 8862 /* 8863 * Since this CPU is going 'away' for a while, fold any nr_active delta we 8864 * might have. Called from the CPU stopper task after ensuring that the 8865 * stopper is the last running task on the CPU, so nr_active count is 8866 * stable. We need to take the tear-down thread which is calling this into 8867 * account, so we hand in adjust = 1 to the load calculation. 8868 * 8869 * Also see the comment "Global load-average calculations". 8870 */ 8871 static void calc_load_migrate(struct rq *rq) 8872 { 8873 long delta = calc_load_fold_active(rq, 1); 8874 8875 if (delta) 8876 atomic_long_add(delta, &calc_load_tasks); 8877 } 8878 8879 static void dump_rq_tasks(struct rq *rq, const char *loglvl) 8880 { 8881 struct task_struct *g, *p; 8882 int cpu = cpu_of(rq); 8883 8884 lockdep_assert_rq_held(rq); 8885 8886 printk("%sCPU%d enqueued tasks (%u total):\n", loglvl, cpu, rq->nr_running); 8887 for_each_process_thread(g, p) { 8888 if (task_cpu(p) != cpu) 8889 continue; 8890 8891 if (!task_on_rq_queued(p)) 8892 continue; 8893 8894 printk("%s\tpid: %d, name: %s\n", loglvl, p->pid, p->comm); 8895 } 8896 } 8897 8898 int sched_cpu_dying(unsigned int cpu) 8899 { 8900 struct rq *rq = cpu_rq(cpu); 8901 struct rq_flags rf; 8902 8903 /* Handle pending wakeups and then migrate everything off */ 8904 sched_tick_stop(cpu); 8905 8906 rq_lock_irqsave(rq, &rf); 8907 update_rq_clock(rq); 8908 if (rq->nr_running != 1 || rq_has_pinned_tasks(rq)) { 8909 WARN(true, "Dying CPU not properly vacated!"); 8910 dump_rq_tasks(rq, KERN_WARNING); 8911 } 8912 dl_server_stop(&rq->fair_server); 8913 #ifdef CONFIG_SCHED_CLASS_EXT 8914 dl_server_stop(&rq->ext_server); 8915 #endif 8916 rq_unlock_irqrestore(rq, &rf); 8917 8918 calc_load_migrate(rq); 8919 update_max_interval(); 8920 hrtick_clear(rq); 8921 sched_core_cpu_dying(cpu); 8922 return 0; 8923 } 8924 #endif /* CONFIG_HOTPLUG_CPU */ 8925 8926 void __init sched_init_smp(void) 8927 { 8928 sched_init_numa(NUMA_NO_NODE); 8929 8930 prandom_init_once(&sched_rnd_state); 8931 8932 /* 8933 * There's no userspace yet to cause hotplug operations; hence all the 8934 * CPU masks are stable and all blatant races in the below code cannot 8935 * happen. 8936 */ 8937 sched_domains_mutex_lock(); 8938 sched_init_domains(cpu_active_mask); 8939 sched_domains_mutex_unlock(); 8940 8941 /* Move init over to a non-isolated CPU */ 8942 if (set_cpus_allowed_ptr(current, housekeeping_cpumask(HK_TYPE_DOMAIN)) < 0) 8943 BUG(); 8944 current->flags &= ~PF_NO_SETAFFINITY; 8945 sched_init_granularity(); 8946 8947 init_sched_rt_class(); 8948 init_sched_dl_class(); 8949 8950 sched_init_dl_servers(); 8951 8952 sched_smp_initialized = true; 8953 } 8954 8955 static int __init migration_init(void) 8956 { 8957 sched_cpu_starting(smp_processor_id()); 8958 return 0; 8959 } 8960 early_initcall(migration_init); 8961 8962 int in_sched_functions(unsigned long addr) 8963 { 8964 return in_lock_functions(addr) || 8965 (addr >= (unsigned long)__sched_text_start 8966 && addr < (unsigned long)__sched_text_end); 8967 } 8968 8969 #ifdef CONFIG_CGROUP_SCHED 8970 /* 8971 * Default task group. 8972 * Every task in system belongs to this group at bootup. 8973 */ 8974 struct task_group root_task_group; 8975 LIST_HEAD(task_groups); 8976 8977 /* Cacheline aligned slab cache for task_group */ 8978 static struct kmem_cache *task_group_cache __ro_after_init; 8979 #endif 8980 8981 void __init sched_init(void) 8982 { 8983 unsigned long __maybe_unused ptr = 0; 8984 int i; 8985 8986 /* Make sure the linker didn't screw up */ 8987 BUG_ON(!sched_class_above(&stop_sched_class, &dl_sched_class)); 8988 BUG_ON(!sched_class_above(&dl_sched_class, &rt_sched_class)); 8989 BUG_ON(!sched_class_above(&rt_sched_class, &fair_sched_class)); 8990 BUG_ON(!sched_class_above(&fair_sched_class, &idle_sched_class)); 8991 #ifdef CONFIG_SCHED_CLASS_EXT 8992 BUG_ON(!sched_class_above(&fair_sched_class, &ext_sched_class)); 8993 BUG_ON(!sched_class_above(&ext_sched_class, &idle_sched_class)); 8994 #endif 8995 8996 wait_bit_init(); 8997 8998 #ifdef CONFIG_FAIR_GROUP_SCHED 8999 root_task_group.cfs_rq = &runqueues.cfs; 9000 9001 root_task_group.shares = ROOT_TASK_GROUP_LOAD; 9002 init_cfs_bandwidth(&root_task_group.cfs_bandwidth, NULL); 9003 #endif /* CONFIG_FAIR_GROUP_SCHED */ 9004 #ifdef CONFIG_EXT_GROUP_SCHED 9005 scx_tg_init(&root_task_group); 9006 #endif /* CONFIG_EXT_GROUP_SCHED */ 9007 #ifdef CONFIG_RT_GROUP_SCHED 9008 ptr += 2 * nr_cpu_ids * sizeof(void **); 9009 ptr = (unsigned long)kzalloc(ptr, GFP_NOWAIT); 9010 root_task_group.rt_se = (struct sched_rt_entity **)ptr; 9011 ptr += nr_cpu_ids * sizeof(void **); 9012 9013 root_task_group.rt_rq = (struct rt_rq **)ptr; 9014 ptr += nr_cpu_ids * sizeof(void **); 9015 9016 #endif /* CONFIG_RT_GROUP_SCHED */ 9017 9018 init_defrootdomain(); 9019 9020 #ifdef CONFIG_RT_GROUP_SCHED 9021 init_rt_bandwidth(&root_task_group.rt_bandwidth, 9022 global_rt_period(), global_rt_runtime()); 9023 #endif /* CONFIG_RT_GROUP_SCHED */ 9024 9025 #ifdef CONFIG_CGROUP_SCHED 9026 task_group_cache = KMEM_CACHE(task_group, 0); 9027 9028 list_add(&root_task_group.list, &task_groups); 9029 INIT_LIST_HEAD(&root_task_group.children); 9030 INIT_LIST_HEAD(&root_task_group.siblings); 9031 autogroup_init(&init_task); 9032 #endif /* CONFIG_CGROUP_SCHED */ 9033 9034 for_each_possible_cpu(i) { 9035 struct rq *rq; 9036 9037 rq = cpu_rq(i); 9038 raw_spin_lock_init(&rq->__lock); 9039 rq->nr_running = 0; 9040 rq->calc_load_active = 0; 9041 rq->calc_load_update = jiffies + LOAD_FREQ; 9042 init_cfs_rq(&rq->cfs); 9043 init_rt_rq(&rq->rt); 9044 init_dl_rq(&rq->dl); 9045 #ifdef CONFIG_FAIR_GROUP_SCHED 9046 INIT_LIST_HEAD(&rq->leaf_cfs_rq_list); 9047 rq->tmp_alone_branch = &rq->leaf_cfs_rq_list; 9048 /* 9049 * How much CPU bandwidth does root_task_group get? 9050 * 9051 * In case of task-groups formed through the cgroup filesystem, it 9052 * gets 100% of the CPU resources in the system. This overall 9053 * system CPU resource is divided among the tasks of 9054 * root_task_group and its child task-groups in a fair manner, 9055 * based on each entity's (task or task-group's) weight 9056 * (se->load.weight). 9057 * 9058 * In other words, if root_task_group has 10 tasks of weight 9059 * 1024) and two child groups A0 and A1 (of weight 1024 each), 9060 * then A0's share of the CPU resource is: 9061 * 9062 * A0's bandwidth = 1024 / (10*1024 + 1024 + 1024) = 8.33% 9063 * 9064 * We achieve this by letting root_task_group's tasks sit 9065 * directly in rq->cfs (i.e root_task_group->se[] = NULL). 9066 */ 9067 init_tg_cfs_entry(&root_task_group, &rq->cfs, NULL, i, NULL); 9068 #endif /* CONFIG_FAIR_GROUP_SCHED */ 9069 9070 #ifdef CONFIG_RT_GROUP_SCHED 9071 /* 9072 * This is required for init cpu because rt.c:__enable_runtime() 9073 * starts working after scheduler_running, which is not the case 9074 * yet. 9075 */ 9076 rq->rt.rt_runtime = global_rt_runtime(); 9077 init_tg_rt_entry(&root_task_group, &rq->rt, NULL, i, NULL); 9078 #endif 9079 rq->next_class = &idle_sched_class; 9080 9081 rq->sd = NULL; 9082 rq->rd = NULL; 9083 rq->cpu_capacity = SCHED_CAPACITY_SCALE; 9084 rq->balance_callback = &balance_push_callback; 9085 rq->active_balance = 0; 9086 rq->next_balance = jiffies; 9087 rq->push_cpu = 0; 9088 rq->cpu = i; 9089 rq->online = 0; 9090 rq->idle_stamp = 0; 9091 rq->avg_idle = 2*sysctl_sched_migration_cost; 9092 rq->max_idle_balance_cost = sysctl_sched_migration_cost; 9093 9094 INIT_LIST_HEAD(&rq->cfs_tasks); 9095 9096 rq_attach_root(rq, &def_root_domain); 9097 #ifdef CONFIG_NO_HZ_COMMON 9098 rq->last_blocked_load_update_tick = jiffies; 9099 atomic_set(&rq->nohz_flags, 0); 9100 9101 INIT_CSD(&rq->nohz_csd, nohz_csd_func, rq); 9102 #endif 9103 #ifdef CONFIG_HOTPLUG_CPU 9104 rcuwait_init(&rq->hotplug_wait); 9105 #endif 9106 hrtick_rq_init(rq); 9107 atomic_set(&rq->nr_iowait, 0); 9108 fair_server_init(rq); 9109 #ifdef CONFIG_SCHED_CLASS_EXT 9110 ext_server_init(rq); 9111 #endif 9112 9113 #ifdef CONFIG_SCHED_CORE 9114 rq->core = rq; 9115 rq->core_pick = NULL; 9116 rq->core_dl_server = NULL; 9117 rq->core_enabled = 0; 9118 rq->core_tree = RB_ROOT; 9119 rq->core_forceidle_count = 0; 9120 rq->core_forceidle_occupation = 0; 9121 rq->core_forceidle_start = 0; 9122 rq->core_pick_in_flight = 0; 9123 9124 rq->core_cookie = 0UL; 9125 #endif 9126 #ifdef CONFIG_SCHED_CACHE 9127 raw_spin_lock_init(&rq->cpu_epoch_lock); 9128 rq->cpu_epoch_next = jiffies; 9129 #endif 9130 9131 zalloc_cpumask_var_node(&rq->scratch_mask, GFP_KERNEL, cpu_to_node(i)); 9132 } 9133 9134 set_load_weight(&init_task, false); 9135 init_task.se.slice = sysctl_sched_base_slice, 9136 9137 /* 9138 * The boot idle thread does lazy MMU switching as well: 9139 */ 9140 mmgrab_lazy_tlb(&init_mm); 9141 enter_lazy_tlb(&init_mm, current); 9142 9143 /* 9144 * The idle task doesn't need the kthread struct to function, but it 9145 * is dressed up as a per-CPU kthread and thus needs to play the part 9146 * if we want to avoid special-casing it in code that deals with per-CPU 9147 * kthreads. 9148 */ 9149 WARN_ON(!set_kthread_struct(current)); 9150 9151 /* 9152 * Make us the idle thread. Technically, schedule() should not be 9153 * called from this thread, however somewhere below it might be, 9154 * but because we are the idle thread, we just pick up running again 9155 * when this runqueue becomes "idle". 9156 */ 9157 __sched_fork(0, current); 9158 init_idle(current, smp_processor_id()); 9159 9160 calc_load_update = jiffies + LOAD_FREQ; 9161 9162 idle_thread_set_boot_cpu(); 9163 9164 balance_push_set(smp_processor_id(), false); 9165 init_sched_fair_class(); 9166 init_sched_ext_class(); 9167 9168 psi_init(); 9169 9170 init_uclamp(); 9171 9172 preempt_dynamic_init(); 9173 9174 scheduler_running = 1; 9175 } 9176 9177 #ifdef CONFIG_DEBUG_ATOMIC_SLEEP 9178 9179 void __might_sleep(const char *file, int line) 9180 { 9181 unsigned int state = get_current_state(); 9182 /* 9183 * Blocking primitives will set (and therefore destroy) current->state, 9184 * since we will exit with TASK_RUNNING make sure we enter with it, 9185 * otherwise we will destroy state. 9186 */ 9187 WARN_ONCE(state != TASK_RUNNING && current->task_state_change, 9188 "do not call blocking ops when !TASK_RUNNING; " 9189 "state=%x set at [<%p>] %pS\n", state, 9190 (void *)current->task_state_change, 9191 (void *)current->task_state_change); 9192 9193 __might_resched(file, line, 0); 9194 } 9195 EXPORT_SYMBOL(__might_sleep); 9196 9197 static void print_preempt_disable_ip(int preempt_offset, unsigned long ip) 9198 { 9199 if (!IS_ENABLED(CONFIG_DEBUG_PREEMPT)) 9200 return; 9201 9202 if (preempt_count() == preempt_offset) 9203 return; 9204 9205 pr_err("Preemption disabled at:"); 9206 print_ip_sym(KERN_ERR, ip); 9207 } 9208 9209 static inline bool resched_offsets_ok(unsigned int offsets) 9210 { 9211 unsigned int nested = preempt_count(); 9212 9213 nested += rcu_preempt_depth() << MIGHT_RESCHED_RCU_SHIFT; 9214 9215 return nested == offsets; 9216 } 9217 9218 void __might_resched(const char *file, int line, unsigned int offsets) 9219 { 9220 /* Ratelimiting timestamp: */ 9221 static unsigned long prev_jiffy; 9222 9223 unsigned long preempt_disable_ip; 9224 9225 /* WARN_ON_ONCE() by default, no rate limit required: */ 9226 rcu_sleep_check(); 9227 9228 if ((resched_offsets_ok(offsets) && !irqs_disabled() && 9229 !is_idle_task(current) && !current->non_block_count) || 9230 system_state == SYSTEM_BOOTING || system_state > SYSTEM_RUNNING || 9231 oops_in_progress) 9232 return; 9233 9234 if (time_before(jiffies, prev_jiffy + HZ) && prev_jiffy) 9235 return; 9236 prev_jiffy = jiffies; 9237 9238 /* Save this before calling printk(), since that will clobber it: */ 9239 preempt_disable_ip = get_preempt_disable_ip(current); 9240 9241 pr_err("BUG: sleeping function called from invalid context at %s:%d\n", 9242 file, line); 9243 pr_err("in_atomic(): %d, irqs_disabled(): %d, non_block: %d, pid: %d, name: %s\n", 9244 in_atomic(), irqs_disabled(), current->non_block_count, 9245 current->pid, current->comm); 9246 pr_err("preempt_count: %x, expected: %x\n", preempt_count(), 9247 offsets & MIGHT_RESCHED_PREEMPT_MASK); 9248 9249 if (IS_ENABLED(CONFIG_PREEMPT_RCU)) { 9250 pr_err("RCU nest depth: %d, expected: %u\n", 9251 rcu_preempt_depth(), offsets >> MIGHT_RESCHED_RCU_SHIFT); 9252 } 9253 9254 if (task_stack_end_corrupted(current)) 9255 pr_emerg("Thread overran stack, or stack corrupted\n"); 9256 9257 debug_show_held_locks(current); 9258 if (irqs_disabled()) 9259 print_irqtrace_events(current); 9260 9261 print_preempt_disable_ip(offsets & MIGHT_RESCHED_PREEMPT_MASK, 9262 preempt_disable_ip); 9263 9264 dump_stack(); 9265 add_taint(TAINT_WARN, LOCKDEP_STILL_OK); 9266 } 9267 EXPORT_SYMBOL(__might_resched); 9268 9269 void __cant_sleep(const char *file, int line) 9270 { 9271 static unsigned long prev_jiffy; 9272 9273 if (irqs_disabled()) 9274 return; 9275 9276 if (!IS_ENABLED(CONFIG_PREEMPT_COUNT)) 9277 return; 9278 9279 if (preempt_count()) 9280 return; 9281 9282 if (time_before(jiffies, prev_jiffy + HZ) && prev_jiffy) 9283 return; 9284 prev_jiffy = jiffies; 9285 9286 printk(KERN_ERR "BUG: assuming atomic context at %s:%d\n", file, line); 9287 printk(KERN_ERR "in_atomic(): %d, irqs_disabled(): %d, pid: %d, name: %s\n", 9288 in_atomic(), irqs_disabled(), 9289 current->pid, current->comm); 9290 9291 debug_show_held_locks(current); 9292 dump_stack(); 9293 add_taint(TAINT_WARN, LOCKDEP_STILL_OK); 9294 } 9295 EXPORT_SYMBOL_GPL(__cant_sleep); 9296 9297 # ifdef CONFIG_SMP 9298 void __cant_migrate(const char *file, int line) 9299 { 9300 static unsigned long prev_jiffy; 9301 9302 if (irqs_disabled()) 9303 return; 9304 9305 if (is_migration_disabled(current)) 9306 return; 9307 9308 if (!IS_ENABLED(CONFIG_PREEMPT_COUNT)) 9309 return; 9310 9311 if (preempt_count()) 9312 return; 9313 9314 if (time_before(jiffies, prev_jiffy + HZ) && prev_jiffy) 9315 return; 9316 prev_jiffy = jiffies; 9317 9318 pr_err("BUG: assuming non migratable context at %s:%d\n", file, line); 9319 pr_err("in_atomic(): %d, irqs_disabled(): %d, migration_disabled() %u pid: %d, name: %s\n", 9320 in_atomic(), irqs_disabled(), is_migration_disabled(current), 9321 current->pid, current->comm); 9322 9323 debug_show_held_locks(current); 9324 dump_stack(); 9325 add_taint(TAINT_WARN, LOCKDEP_STILL_OK); 9326 } 9327 EXPORT_SYMBOL_GPL(__cant_migrate); 9328 # endif /* CONFIG_SMP */ 9329 #endif /* CONFIG_DEBUG_ATOMIC_SLEEP */ 9330 9331 #ifdef CONFIG_MAGIC_SYSRQ 9332 void normalize_rt_tasks(void) 9333 { 9334 struct task_struct *g, *p; 9335 struct sched_attr attr = { 9336 .sched_policy = SCHED_NORMAL, 9337 }; 9338 9339 read_lock(&tasklist_lock); 9340 for_each_process_thread(g, p) { 9341 /* 9342 * Only normalize user tasks: 9343 */ 9344 if (p->flags & PF_KTHREAD) 9345 continue; 9346 9347 p->se.exec_start = 0; 9348 schedstat_set(p->stats.wait_start, 0); 9349 schedstat_set(p->stats.sleep_start, 0); 9350 schedstat_set(p->stats.block_start, 0); 9351 9352 if (!rt_or_dl_task(p)) { 9353 /* 9354 * Renice negative nice level userspace 9355 * tasks back to 0: 9356 */ 9357 if (task_nice(p) < 0) 9358 set_user_nice(p, 0); 9359 continue; 9360 } 9361 9362 __sched_setscheduler(p, &attr, false, false); 9363 } 9364 read_unlock(&tasklist_lock); 9365 } 9366 9367 #endif /* CONFIG_MAGIC_SYSRQ */ 9368 9369 #ifdef CONFIG_KGDB_KDB 9370 /* 9371 * These functions are only useful for KDB. 9372 * 9373 * They can only be called when the whole system has been 9374 * stopped - every CPU needs to be quiescent, and no scheduling 9375 * activity can take place. Using them for anything else would 9376 * be a serious bug, and as a result, they aren't even visible 9377 * under any other configuration. 9378 */ 9379 9380 /** 9381 * curr_task - return the current task for a given CPU. 9382 * @cpu: the processor in question. 9383 * 9384 * ONLY VALID WHEN THE WHOLE SYSTEM IS STOPPED! 9385 * 9386 * Return: The current task for @cpu. 9387 */ 9388 struct task_struct *curr_task(int cpu) 9389 { 9390 return cpu_curr(cpu); 9391 } 9392 9393 #endif /* CONFIG_KGDB_KDB */ 9394 9395 #ifdef CONFIG_CGROUP_SCHED 9396 /* task_group_lock serializes the addition/removal of task groups */ 9397 static DEFINE_SPINLOCK(task_group_lock); 9398 9399 static inline void alloc_uclamp_sched_group(struct task_group *tg, 9400 struct task_group *parent) 9401 { 9402 #ifdef CONFIG_UCLAMP_TASK_GROUP 9403 enum uclamp_id clamp_id; 9404 9405 for_each_clamp_id(clamp_id) { 9406 uclamp_se_set(&tg->uclamp_req[clamp_id], 9407 uclamp_none(clamp_id), false); 9408 tg->uclamp[clamp_id] = parent->uclamp[clamp_id]; 9409 } 9410 #endif 9411 } 9412 9413 static void sched_free_group(struct task_group *tg) 9414 { 9415 free_fair_sched_group(tg); 9416 free_rt_sched_group(tg); 9417 autogroup_free(tg); 9418 kmem_cache_free(task_group_cache, tg); 9419 } 9420 9421 static void sched_free_group_rcu(struct rcu_head *rcu) 9422 { 9423 sched_free_group(container_of(rcu, struct task_group, rcu)); 9424 } 9425 9426 static void sched_unregister_group(struct task_group *tg) 9427 { 9428 unregister_fair_sched_group(tg); 9429 unregister_rt_sched_group(tg); 9430 /* 9431 * We have to wait for yet another RCU grace period to expire, as 9432 * print_cfs_stats() might run concurrently. 9433 */ 9434 call_rcu(&tg->rcu, sched_free_group_rcu); 9435 } 9436 9437 /* allocate runqueue etc for a new task group */ 9438 struct task_group *sched_create_group(struct task_group *parent) 9439 { 9440 struct task_group *tg; 9441 9442 tg = kmem_cache_alloc(task_group_cache, GFP_KERNEL | __GFP_ZERO); 9443 if (!tg) 9444 return ERR_PTR(-ENOMEM); 9445 9446 if (!alloc_fair_sched_group(tg, parent)) 9447 goto err; 9448 9449 if (!alloc_rt_sched_group(tg, parent)) 9450 goto err; 9451 9452 scx_tg_init(tg); 9453 alloc_uclamp_sched_group(tg, parent); 9454 9455 return tg; 9456 9457 err: 9458 sched_free_group(tg); 9459 return ERR_PTR(-ENOMEM); 9460 } 9461 9462 void sched_online_group(struct task_group *tg, struct task_group *parent) 9463 { 9464 unsigned long flags; 9465 9466 spin_lock_irqsave(&task_group_lock, flags); 9467 list_add_tail_rcu(&tg->list, &task_groups); 9468 9469 /* Root should already exist: */ 9470 WARN_ON(!parent); 9471 9472 tg->parent = parent; 9473 INIT_LIST_HEAD(&tg->children); 9474 list_add_rcu(&tg->siblings, &parent->children); 9475 spin_unlock_irqrestore(&task_group_lock, flags); 9476 9477 online_fair_sched_group(tg); 9478 } 9479 9480 /* RCU callback to free various structures associated with a task group */ 9481 static void sched_unregister_group_rcu(struct rcu_head *rhp) 9482 { 9483 /* Now it should be safe to free those cfs_rqs: */ 9484 sched_unregister_group(container_of(rhp, struct task_group, rcu)); 9485 } 9486 9487 void sched_destroy_group(struct task_group *tg) 9488 { 9489 /* Wait for possible concurrent references to cfs_rqs complete: */ 9490 call_rcu(&tg->rcu, sched_unregister_group_rcu); 9491 } 9492 9493 void sched_release_group(struct task_group *tg) 9494 { 9495 unsigned long flags; 9496 9497 /* 9498 * Unlink first, to avoid walk_tg_tree_from() from finding us (via 9499 * sched_cfs_period_timer()). 9500 * 9501 * For this to be effective, we have to wait for all pending users of 9502 * this task group to leave their RCU critical section to ensure no new 9503 * user will see our dying task group any more. Specifically ensure 9504 * that tg_unthrottle_up() won't add decayed cfs_rq's to it. 9505 * 9506 * We therefore defer calling unregister_fair_sched_group() to 9507 * sched_unregister_group() which is guarantied to get called only after the 9508 * current RCU grace period has expired. 9509 */ 9510 spin_lock_irqsave(&task_group_lock, flags); 9511 list_del_rcu(&tg->list); 9512 list_del_rcu(&tg->siblings); 9513 spin_unlock_irqrestore(&task_group_lock, flags); 9514 } 9515 9516 static void sched_change_group(struct task_struct *tsk) 9517 { 9518 struct task_group *tg; 9519 9520 /* 9521 * All callers are synchronized by task_rq_lock(); we do not use RCU 9522 * which is pointless here. Thus, we pass "true" to task_css_check() 9523 * to prevent lockdep warnings. 9524 */ 9525 tg = container_of(task_css_check(tsk, cpu_cgrp_id, true), 9526 struct task_group, css); 9527 tg = autogroup_task_group(tsk, tg); 9528 tsk->sched_task_group = tg; 9529 9530 #ifdef CONFIG_FAIR_GROUP_SCHED 9531 if (tsk->sched_class->task_change_group) 9532 tsk->sched_class->task_change_group(tsk); 9533 else 9534 #endif 9535 set_task_rq(tsk, task_cpu(tsk)); 9536 } 9537 9538 /* 9539 * Change task's runqueue when it moves between groups. 9540 * 9541 * The caller of this function should have put the task in its new group by 9542 * now. This function just updates tsk->se.cfs_rq and tsk->se.parent to reflect 9543 * its new group. 9544 */ 9545 void sched_move_task(struct task_struct *tsk, bool for_autogroup) 9546 { 9547 unsigned int queue_flags = DEQUEUE_SAVE | DEQUEUE_MOVE; 9548 bool resched = false; 9549 bool queued = false; 9550 struct rq *rq; 9551 9552 CLASS(task_rq_lock, rq_guard)(tsk); 9553 rq = rq_guard.rq; 9554 9555 scoped_guard (sched_change, tsk, queue_flags) { 9556 sched_change_group(tsk); 9557 if (!for_autogroup) 9558 scx_cgroup_move_task(tsk); 9559 if (scope->running) 9560 resched = true; 9561 queued = scope->queued; 9562 } 9563 9564 if (resched) 9565 resched_curr(rq); 9566 else if (queued) 9567 wakeup_preempt(rq, tsk, 0); 9568 9569 __balance_callbacks(rq, &rq_guard.rf); 9570 } 9571 9572 static struct cgroup_subsys_state * 9573 cpu_cgroup_css_alloc(struct cgroup_subsys_state *parent_css) 9574 { 9575 struct task_group *parent = css_tg(parent_css); 9576 struct task_group *tg; 9577 9578 if (!parent) { 9579 /* This is early initialization for the top cgroup */ 9580 return &root_task_group.css; 9581 } 9582 9583 tg = sched_create_group(parent); 9584 if (IS_ERR(tg)) 9585 return ERR_PTR(-ENOMEM); 9586 9587 return &tg->css; 9588 } 9589 9590 /* Expose task group only after completing cgroup initialization */ 9591 static int cpu_cgroup_css_online(struct cgroup_subsys_state *css) 9592 { 9593 struct task_group *tg = css_tg(css); 9594 struct task_group *parent = css_tg(css->parent); 9595 int ret; 9596 9597 ret = scx_tg_online(tg); 9598 if (ret) 9599 return ret; 9600 9601 if (parent) 9602 sched_online_group(tg, parent); 9603 9604 #ifdef CONFIG_UCLAMP_TASK_GROUP 9605 /* Propagate the effective uclamp value for the new group */ 9606 guard(mutex)(&uclamp_mutex); 9607 guard(rcu)(); 9608 cpu_util_update_eff(css); 9609 #endif 9610 9611 return 0; 9612 } 9613 9614 static void cpu_cgroup_css_offline(struct cgroup_subsys_state *css) 9615 { 9616 struct task_group *tg = css_tg(css); 9617 9618 scx_tg_offline(tg); 9619 } 9620 9621 static void cpu_cgroup_css_released(struct cgroup_subsys_state *css) 9622 { 9623 struct task_group *tg = css_tg(css); 9624 9625 sched_release_group(tg); 9626 } 9627 9628 static void cpu_cgroup_css_free(struct cgroup_subsys_state *css) 9629 { 9630 struct task_group *tg = css_tg(css); 9631 9632 /* 9633 * Relies on the RCU grace period between css_released() and this. 9634 */ 9635 sched_unregister_group(tg); 9636 } 9637 9638 static int cpu_cgroup_can_attach(struct cgroup_taskset *tset) 9639 { 9640 #ifdef CONFIG_RT_GROUP_SCHED 9641 struct task_struct *task; 9642 struct cgroup_subsys_state *css; 9643 9644 if (!rt_group_sched_enabled()) 9645 goto scx_check; 9646 9647 cgroup_taskset_for_each(task, css, tset) { 9648 if (!sched_rt_can_attach(css_tg(css), task)) 9649 return -EINVAL; 9650 } 9651 scx_check: 9652 #endif /* CONFIG_RT_GROUP_SCHED */ 9653 return scx_cgroup_can_attach(tset); 9654 } 9655 9656 static void cpu_cgroup_attach(struct cgroup_taskset *tset) 9657 { 9658 struct task_struct *task; 9659 struct cgroup_subsys_state *css; 9660 9661 cgroup_taskset_for_each(task, css, tset) 9662 sched_move_task(task, false); 9663 } 9664 9665 static void cpu_cgroup_cancel_attach(struct cgroup_taskset *tset) 9666 { 9667 scx_cgroup_cancel_attach(tset); 9668 } 9669 9670 #ifdef CONFIG_UCLAMP_TASK_GROUP 9671 static void cpu_util_update_eff(struct cgroup_subsys_state *css) 9672 { 9673 struct cgroup_subsys_state *top_css = css; 9674 struct uclamp_se *uc_parent = NULL; 9675 struct uclamp_se *uc_se = NULL; 9676 unsigned int eff[UCLAMP_CNT]; 9677 enum uclamp_id clamp_id; 9678 unsigned int clamps; 9679 9680 lockdep_assert_held(&uclamp_mutex); 9681 WARN_ON_ONCE(!rcu_read_lock_held()); 9682 9683 css_for_each_descendant_pre(css, top_css) { 9684 uc_parent = css_tg(css)->parent 9685 ? css_tg(css)->parent->uclamp : NULL; 9686 9687 for_each_clamp_id(clamp_id) { 9688 /* Assume effective clamps matches requested clamps */ 9689 eff[clamp_id] = css_tg(css)->uclamp_req[clamp_id].value; 9690 /* Cap effective clamps with parent's effective clamps */ 9691 if (uc_parent && 9692 eff[clamp_id] > uc_parent[clamp_id].value) { 9693 eff[clamp_id] = uc_parent[clamp_id].value; 9694 } 9695 } 9696 /* Ensure protection is always capped by limit */ 9697 eff[UCLAMP_MIN] = min(eff[UCLAMP_MIN], eff[UCLAMP_MAX]); 9698 9699 /* Propagate most restrictive effective clamps */ 9700 clamps = 0x0; 9701 uc_se = css_tg(css)->uclamp; 9702 for_each_clamp_id(clamp_id) { 9703 if (eff[clamp_id] == uc_se[clamp_id].value) 9704 continue; 9705 uc_se[clamp_id].value = eff[clamp_id]; 9706 uc_se[clamp_id].bucket_id = uclamp_bucket_id(eff[clamp_id]); 9707 clamps |= (0x1 << clamp_id); 9708 } 9709 if (!clamps) { 9710 css = css_rightmost_descendant(css); 9711 continue; 9712 } 9713 9714 /* Immediately update descendants RUNNABLE tasks */ 9715 uclamp_update_active_tasks(css); 9716 } 9717 } 9718 9719 /* 9720 * Integer 10^N with a given N exponent by casting to integer the literal "1eN" 9721 * C expression. Since there is no way to convert a macro argument (N) into a 9722 * character constant, use two levels of macros. 9723 */ 9724 #define _POW10(exp) ((unsigned int)1e##exp) 9725 #define POW10(exp) _POW10(exp) 9726 9727 struct uclamp_request { 9728 #define UCLAMP_PERCENT_SHIFT 2 9729 #define UCLAMP_PERCENT_SCALE (100 * POW10(UCLAMP_PERCENT_SHIFT)) 9730 s64 percent; 9731 u64 util; 9732 int ret; 9733 }; 9734 9735 static inline struct uclamp_request 9736 capacity_from_percent(char *buf) 9737 { 9738 struct uclamp_request req = { 9739 .percent = UCLAMP_PERCENT_SCALE, 9740 .util = SCHED_CAPACITY_SCALE, 9741 .ret = 0, 9742 }; 9743 9744 buf = strim(buf); 9745 if (strcmp(buf, "max")) { 9746 req.ret = cgroup_parse_float(buf, UCLAMP_PERCENT_SHIFT, 9747 &req.percent); 9748 if (req.ret) 9749 return req; 9750 if ((u64)req.percent > UCLAMP_PERCENT_SCALE) { 9751 req.ret = -ERANGE; 9752 return req; 9753 } 9754 9755 req.util = req.percent << SCHED_CAPACITY_SHIFT; 9756 req.util = DIV_ROUND_CLOSEST_ULL(req.util, UCLAMP_PERCENT_SCALE); 9757 } 9758 9759 return req; 9760 } 9761 9762 static ssize_t cpu_uclamp_write(struct kernfs_open_file *of, char *buf, 9763 size_t nbytes, loff_t off, 9764 enum uclamp_id clamp_id) 9765 { 9766 struct uclamp_request req; 9767 struct task_group *tg; 9768 9769 req = capacity_from_percent(buf); 9770 if (req.ret) 9771 return req.ret; 9772 9773 sched_uclamp_enable(); 9774 9775 guard(mutex)(&uclamp_mutex); 9776 guard(rcu)(); 9777 9778 tg = css_tg(of_css(of)); 9779 if (tg->uclamp_req[clamp_id].value != req.util) 9780 uclamp_se_set(&tg->uclamp_req[clamp_id], req.util, false); 9781 9782 /* 9783 * Because of not recoverable conversion rounding we keep track of the 9784 * exact requested value 9785 */ 9786 tg->uclamp_pct[clamp_id] = req.percent; 9787 9788 /* Update effective clamps to track the most restrictive value */ 9789 cpu_util_update_eff(of_css(of)); 9790 9791 return nbytes; 9792 } 9793 9794 static ssize_t cpu_uclamp_min_write(struct kernfs_open_file *of, 9795 char *buf, size_t nbytes, 9796 loff_t off) 9797 { 9798 return cpu_uclamp_write(of, buf, nbytes, off, UCLAMP_MIN); 9799 } 9800 9801 static ssize_t cpu_uclamp_max_write(struct kernfs_open_file *of, 9802 char *buf, size_t nbytes, 9803 loff_t off) 9804 { 9805 return cpu_uclamp_write(of, buf, nbytes, off, UCLAMP_MAX); 9806 } 9807 9808 static inline void cpu_uclamp_print(struct seq_file *sf, 9809 enum uclamp_id clamp_id) 9810 { 9811 struct task_group *tg; 9812 u64 util_clamp; 9813 u64 percent; 9814 u32 rem; 9815 9816 scoped_guard (rcu) { 9817 tg = css_tg(seq_css(sf)); 9818 util_clamp = tg->uclamp_req[clamp_id].value; 9819 } 9820 9821 if (util_clamp == SCHED_CAPACITY_SCALE) { 9822 seq_puts(sf, "max\n"); 9823 return; 9824 } 9825 9826 percent = tg->uclamp_pct[clamp_id]; 9827 percent = div_u64_rem(percent, POW10(UCLAMP_PERCENT_SHIFT), &rem); 9828 seq_printf(sf, "%llu.%0*u\n", percent, UCLAMP_PERCENT_SHIFT, rem); 9829 } 9830 9831 static int cpu_uclamp_min_show(struct seq_file *sf, void *v) 9832 { 9833 cpu_uclamp_print(sf, UCLAMP_MIN); 9834 return 0; 9835 } 9836 9837 static int cpu_uclamp_max_show(struct seq_file *sf, void *v) 9838 { 9839 cpu_uclamp_print(sf, UCLAMP_MAX); 9840 return 0; 9841 } 9842 #endif /* CONFIG_UCLAMP_TASK_GROUP */ 9843 9844 #ifdef CONFIG_GROUP_SCHED_WEIGHT 9845 static unsigned long tg_weight(struct task_group *tg) 9846 { 9847 #ifdef CONFIG_FAIR_GROUP_SCHED 9848 return scale_load_down(tg->shares); 9849 #else 9850 return sched_weight_from_cgroup(tg->scx.weight); 9851 #endif 9852 } 9853 9854 static int cpu_shares_write_u64(struct cgroup_subsys_state *css, 9855 struct cftype *cftype, u64 shareval) 9856 { 9857 int ret; 9858 9859 if (shareval > scale_load_down(ULONG_MAX)) 9860 shareval = MAX_SHARES; 9861 ret = sched_group_set_shares(css_tg(css), scale_load(shareval)); 9862 if (!ret) 9863 scx_group_set_weight(css_tg(css), 9864 sched_weight_to_cgroup(shareval)); 9865 return ret; 9866 } 9867 9868 static u64 cpu_shares_read_u64(struct cgroup_subsys_state *css, 9869 struct cftype *cft) 9870 { 9871 return tg_weight(css_tg(css)); 9872 } 9873 #endif /* CONFIG_GROUP_SCHED_WEIGHT */ 9874 9875 #ifdef CONFIG_CFS_BANDWIDTH 9876 static DEFINE_MUTEX(cfs_constraints_mutex); 9877 9878 static int __cfs_schedulable(struct task_group *tg, u64 period, u64 runtime); 9879 9880 static int tg_set_cfs_bandwidth(struct task_group *tg, 9881 u64 period_us, u64 quota_us, u64 burst_us) 9882 { 9883 int i, ret = 0, runtime_enabled, runtime_was_enabled; 9884 struct cfs_bandwidth *cfs_b = &tg->cfs_bandwidth; 9885 u64 period, quota, burst; 9886 9887 period = (u64)period_us * NSEC_PER_USEC; 9888 9889 if (quota_us == RUNTIME_INF) 9890 quota = RUNTIME_INF; 9891 else 9892 quota = (u64)quota_us * NSEC_PER_USEC; 9893 9894 burst = (u64)burst_us * NSEC_PER_USEC; 9895 9896 /* 9897 * Prevent race between setting of cfs_rq->runtime_enabled and 9898 * unthrottle_offline_cfs_rqs(). 9899 */ 9900 guard(cpus_read_lock)(); 9901 guard(mutex)(&cfs_constraints_mutex); 9902 9903 ret = __cfs_schedulable(tg, period, quota); 9904 if (ret) 9905 return ret; 9906 9907 runtime_enabled = quota != RUNTIME_INF; 9908 runtime_was_enabled = cfs_b->quota != RUNTIME_INF; 9909 /* 9910 * If we need to toggle cfs_bandwidth_used, off->on must occur 9911 * before making related changes, and on->off must occur afterwards 9912 */ 9913 if (runtime_enabled && !runtime_was_enabled) 9914 cfs_bandwidth_usage_inc(); 9915 9916 scoped_guard (raw_spinlock_irq, &cfs_b->lock) { 9917 cfs_b->period = ns_to_ktime(period); 9918 cfs_b->quota = quota; 9919 cfs_b->burst = burst; 9920 9921 __refill_cfs_bandwidth_runtime(cfs_b); 9922 9923 /* 9924 * Restart the period timer (if active) to handle new 9925 * period expiry: 9926 */ 9927 if (runtime_enabled) 9928 start_cfs_bandwidth(cfs_b); 9929 } 9930 9931 for_each_online_cpu(i) { 9932 struct cfs_rq *cfs_rq = tg_cfs_rq(tg, i); 9933 struct rq *rq = cfs_rq->rq; 9934 9935 guard(rq_lock_irq)(rq); 9936 9937 cfs_rq->runtime_enabled = runtime_enabled; 9938 cfs_rq->runtime_remaining = 1; 9939 9940 if (cfs_rq->throttled) { 9941 update_rq_clock(rq); 9942 unthrottle_cfs_rq(cfs_rq); 9943 } 9944 } 9945 9946 if (runtime_was_enabled && !runtime_enabled) 9947 cfs_bandwidth_usage_dec(); 9948 9949 return 0; 9950 } 9951 9952 static u64 tg_get_cfs_period(struct task_group *tg) 9953 { 9954 u64 cfs_period_us; 9955 9956 cfs_period_us = ktime_to_ns(tg->cfs_bandwidth.period); 9957 do_div(cfs_period_us, NSEC_PER_USEC); 9958 9959 return cfs_period_us; 9960 } 9961 9962 static u64 tg_get_cfs_quota(struct task_group *tg) 9963 { 9964 u64 quota_us; 9965 9966 if (tg->cfs_bandwidth.quota == RUNTIME_INF) 9967 return RUNTIME_INF; 9968 9969 quota_us = tg->cfs_bandwidth.quota; 9970 do_div(quota_us, NSEC_PER_USEC); 9971 9972 return quota_us; 9973 } 9974 9975 static u64 tg_get_cfs_burst(struct task_group *tg) 9976 { 9977 u64 burst_us; 9978 9979 burst_us = tg->cfs_bandwidth.burst; 9980 do_div(burst_us, NSEC_PER_USEC); 9981 9982 return burst_us; 9983 } 9984 9985 struct cfs_schedulable_data { 9986 struct task_group *tg; 9987 u64 period, quota; 9988 }; 9989 9990 /* 9991 * normalize group quota/period to be quota/max_period 9992 * note: units are usecs 9993 */ 9994 static u64 normalize_cfs_quota(struct task_group *tg, 9995 struct cfs_schedulable_data *d) 9996 { 9997 u64 quota, period; 9998 9999 if (tg == d->tg) { 10000 period = d->period; 10001 quota = d->quota; 10002 } else { 10003 period = tg_get_cfs_period(tg); 10004 quota = tg_get_cfs_quota(tg); 10005 } 10006 10007 /* note: these should typically be equivalent */ 10008 if (quota == RUNTIME_INF || quota == -1) 10009 return RUNTIME_INF; 10010 10011 return to_ratio(period, quota); 10012 } 10013 10014 static int tg_cfs_schedulable_down(struct task_group *tg, void *data) 10015 { 10016 struct cfs_schedulable_data *d = data; 10017 struct cfs_bandwidth *cfs_b = &tg->cfs_bandwidth; 10018 s64 quota = 0, parent_quota = -1; 10019 10020 if (!tg->parent) { 10021 quota = RUNTIME_INF; 10022 } else { 10023 struct cfs_bandwidth *parent_b = &tg->parent->cfs_bandwidth; 10024 10025 quota = normalize_cfs_quota(tg, d); 10026 parent_quota = parent_b->hierarchical_quota; 10027 10028 /* 10029 * Ensure max(child_quota) <= parent_quota. On cgroup2, 10030 * always take the non-RUNTIME_INF min. On cgroup1, only 10031 * inherit when no limit is set. In both cases this is used 10032 * by the scheduler to determine if a given CFS task has a 10033 * bandwidth constraint at some higher level. 10034 */ 10035 if (cgroup_subsys_on_dfl(cpu_cgrp_subsys)) { 10036 if (quota == RUNTIME_INF) 10037 quota = parent_quota; 10038 else if (parent_quota != RUNTIME_INF) 10039 quota = min(quota, parent_quota); 10040 } else { 10041 if (quota == RUNTIME_INF) 10042 quota = parent_quota; 10043 else if (parent_quota != RUNTIME_INF && quota > parent_quota) 10044 return -EINVAL; 10045 } 10046 } 10047 cfs_b->hierarchical_quota = quota; 10048 10049 return 0; 10050 } 10051 10052 static int __cfs_schedulable(struct task_group *tg, u64 period, u64 quota) 10053 { 10054 struct cfs_schedulable_data data = { 10055 .tg = tg, 10056 .period = period, 10057 .quota = quota, 10058 }; 10059 10060 if (quota != RUNTIME_INF) { 10061 do_div(data.period, NSEC_PER_USEC); 10062 do_div(data.quota, NSEC_PER_USEC); 10063 } 10064 10065 guard(rcu)(); 10066 return walk_tg_tree(tg_cfs_schedulable_down, tg_nop, &data); 10067 } 10068 10069 static int cpu_cfs_stat_show(struct seq_file *sf, void *v) 10070 { 10071 struct task_group *tg = css_tg(seq_css(sf)); 10072 struct cfs_bandwidth *cfs_b = &tg->cfs_bandwidth; 10073 10074 seq_printf(sf, "nr_periods %d\n", cfs_b->nr_periods); 10075 seq_printf(sf, "nr_throttled %d\n", cfs_b->nr_throttled); 10076 seq_printf(sf, "throttled_time %llu\n", cfs_b->throttled_time); 10077 10078 if (schedstat_enabled() && tg != &root_task_group) { 10079 struct sched_statistics *stats; 10080 u64 ws = 0; 10081 int i; 10082 10083 for_each_possible_cpu(i) { 10084 stats = __schedstats_from_se(tg_se(tg, i)); 10085 ws += schedstat_val(stats->wait_sum); 10086 } 10087 10088 seq_printf(sf, "wait_sum %llu\n", ws); 10089 } 10090 10091 seq_printf(sf, "nr_bursts %d\n", cfs_b->nr_burst); 10092 seq_printf(sf, "burst_time %llu\n", cfs_b->burst_time); 10093 10094 return 0; 10095 } 10096 10097 static u64 throttled_time_self(struct task_group *tg) 10098 { 10099 int i; 10100 u64 total = 0; 10101 10102 for_each_possible_cpu(i) { 10103 total += READ_ONCE(tg_cfs_rq(tg, i)->throttled_clock_self_time); 10104 } 10105 10106 return total; 10107 } 10108 10109 static int cpu_cfs_local_stat_show(struct seq_file *sf, void *v) 10110 { 10111 struct task_group *tg = css_tg(seq_css(sf)); 10112 10113 seq_printf(sf, "throttled_time %llu\n", throttled_time_self(tg)); 10114 10115 return 0; 10116 } 10117 #endif /* CONFIG_CFS_BANDWIDTH */ 10118 10119 #ifdef CONFIG_GROUP_SCHED_BANDWIDTH 10120 const u64 max_bw_quota_period_us = 1 * USEC_PER_SEC; /* 1s */ 10121 static const u64 min_bw_quota_period_us = 1 * USEC_PER_MSEC; /* 1ms */ 10122 /* More than 203 days if BW_SHIFT equals 20. */ 10123 static const u64 max_bw_runtime_us = MAX_BW; 10124 10125 static void tg_bandwidth(struct task_group *tg, 10126 u64 *period_us_p, u64 *quota_us_p, u64 *burst_us_p) 10127 { 10128 #ifdef CONFIG_CFS_BANDWIDTH 10129 if (period_us_p) 10130 *period_us_p = tg_get_cfs_period(tg); 10131 if (quota_us_p) 10132 *quota_us_p = tg_get_cfs_quota(tg); 10133 if (burst_us_p) 10134 *burst_us_p = tg_get_cfs_burst(tg); 10135 #else /* !CONFIG_CFS_BANDWIDTH */ 10136 if (period_us_p) 10137 *period_us_p = tg->scx.bw_period_us; 10138 if (quota_us_p) 10139 *quota_us_p = tg->scx.bw_quota_us; 10140 if (burst_us_p) 10141 *burst_us_p = tg->scx.bw_burst_us; 10142 #endif /* CONFIG_CFS_BANDWIDTH */ 10143 } 10144 10145 static u64 cpu_period_read_u64(struct cgroup_subsys_state *css, 10146 struct cftype *cft) 10147 { 10148 u64 period_us; 10149 10150 tg_bandwidth(css_tg(css), &period_us, NULL, NULL); 10151 return period_us; 10152 } 10153 10154 static int tg_set_bandwidth(struct task_group *tg, 10155 u64 period_us, u64 quota_us, u64 burst_us) 10156 { 10157 const u64 max_usec = U64_MAX / NSEC_PER_USEC; 10158 int ret = 0; 10159 10160 if (tg == &root_task_group) 10161 return -EINVAL; 10162 10163 /* Values should survive translation to nsec */ 10164 if (period_us > max_usec || 10165 (quota_us != RUNTIME_INF && quota_us > max_usec) || 10166 burst_us > max_usec) 10167 return -EINVAL; 10168 10169 /* 10170 * Ensure we have some amount of bandwidth every period. This is to 10171 * prevent reaching a state of large arrears when throttled via 10172 * entity_tick() resulting in prolonged exit starvation. 10173 */ 10174 if (quota_us < min_bw_quota_period_us || 10175 period_us < min_bw_quota_period_us) 10176 return -EINVAL; 10177 10178 /* 10179 * Likewise, bound things on the other side by preventing insane quota 10180 * periods. This also allows us to normalize in computing quota 10181 * feasibility. 10182 */ 10183 if (period_us > max_bw_quota_period_us) 10184 return -EINVAL; 10185 10186 /* 10187 * Bound quota to defend quota against overflow during bandwidth shift. 10188 */ 10189 if (quota_us != RUNTIME_INF && quota_us > max_bw_runtime_us) 10190 return -EINVAL; 10191 10192 if (quota_us != RUNTIME_INF && (burst_us > quota_us || 10193 burst_us + quota_us > max_bw_runtime_us)) 10194 return -EINVAL; 10195 10196 #ifdef CONFIG_CFS_BANDWIDTH 10197 ret = tg_set_cfs_bandwidth(tg, period_us, quota_us, burst_us); 10198 #endif /* CONFIG_CFS_BANDWIDTH */ 10199 if (!ret) 10200 scx_group_set_bandwidth(tg, period_us, quota_us, burst_us); 10201 return ret; 10202 } 10203 10204 static s64 cpu_quota_read_s64(struct cgroup_subsys_state *css, 10205 struct cftype *cft) 10206 { 10207 u64 quota_us; 10208 10209 tg_bandwidth(css_tg(css), NULL, "a_us, NULL); 10210 return quota_us; /* (s64)RUNTIME_INF becomes -1 */ 10211 } 10212 10213 static u64 cpu_burst_read_u64(struct cgroup_subsys_state *css, 10214 struct cftype *cft) 10215 { 10216 u64 burst_us; 10217 10218 tg_bandwidth(css_tg(css), NULL, NULL, &burst_us); 10219 return burst_us; 10220 } 10221 10222 static int cpu_period_write_u64(struct cgroup_subsys_state *css, 10223 struct cftype *cftype, u64 period_us) 10224 { 10225 struct task_group *tg = css_tg(css); 10226 u64 quota_us, burst_us; 10227 10228 tg_bandwidth(tg, NULL, "a_us, &burst_us); 10229 return tg_set_bandwidth(tg, period_us, quota_us, burst_us); 10230 } 10231 10232 static int cpu_quota_write_s64(struct cgroup_subsys_state *css, 10233 struct cftype *cftype, s64 quota_us) 10234 { 10235 struct task_group *tg = css_tg(css); 10236 u64 period_us, burst_us; 10237 10238 if (quota_us < 0) 10239 quota_us = RUNTIME_INF; 10240 10241 tg_bandwidth(tg, &period_us, NULL, &burst_us); 10242 return tg_set_bandwidth(tg, period_us, quota_us, burst_us); 10243 } 10244 10245 static int cpu_burst_write_u64(struct cgroup_subsys_state *css, 10246 struct cftype *cftype, u64 burst_us) 10247 { 10248 struct task_group *tg = css_tg(css); 10249 u64 period_us, quota_us; 10250 10251 tg_bandwidth(tg, &period_us, "a_us, NULL); 10252 return tg_set_bandwidth(tg, period_us, quota_us, burst_us); 10253 } 10254 #endif /* CONFIG_GROUP_SCHED_BANDWIDTH */ 10255 10256 #ifdef CONFIG_RT_GROUP_SCHED 10257 static int cpu_rt_runtime_write(struct cgroup_subsys_state *css, 10258 struct cftype *cft, s64 val) 10259 { 10260 return sched_group_set_rt_runtime(css_tg(css), val); 10261 } 10262 10263 static s64 cpu_rt_runtime_read(struct cgroup_subsys_state *css, 10264 struct cftype *cft) 10265 { 10266 return sched_group_rt_runtime(css_tg(css)); 10267 } 10268 10269 static int cpu_rt_period_write_uint(struct cgroup_subsys_state *css, 10270 struct cftype *cftype, u64 rt_period_us) 10271 { 10272 return sched_group_set_rt_period(css_tg(css), rt_period_us); 10273 } 10274 10275 static u64 cpu_rt_period_read_uint(struct cgroup_subsys_state *css, 10276 struct cftype *cft) 10277 { 10278 return sched_group_rt_period(css_tg(css)); 10279 } 10280 #endif /* CONFIG_RT_GROUP_SCHED */ 10281 10282 #ifdef CONFIG_GROUP_SCHED_WEIGHT 10283 static s64 cpu_idle_read_s64(struct cgroup_subsys_state *css, 10284 struct cftype *cft) 10285 { 10286 return css_tg(css)->idle; 10287 } 10288 10289 static int cpu_idle_write_s64(struct cgroup_subsys_state *css, 10290 struct cftype *cft, s64 idle) 10291 { 10292 int ret; 10293 10294 ret = sched_group_set_idle(css_tg(css), idle); 10295 if (!ret) 10296 scx_group_set_idle(css_tg(css), idle); 10297 return ret; 10298 } 10299 #endif /* CONFIG_GROUP_SCHED_WEIGHT */ 10300 10301 static struct cftype cpu_legacy_files[] = { 10302 #ifdef CONFIG_GROUP_SCHED_WEIGHT 10303 { 10304 .name = "shares", 10305 .read_u64 = cpu_shares_read_u64, 10306 .write_u64 = cpu_shares_write_u64, 10307 }, 10308 { 10309 .name = "idle", 10310 .read_s64 = cpu_idle_read_s64, 10311 .write_s64 = cpu_idle_write_s64, 10312 }, 10313 #endif 10314 #ifdef CONFIG_GROUP_SCHED_BANDWIDTH 10315 { 10316 .name = "cfs_period_us", 10317 .read_u64 = cpu_period_read_u64, 10318 .write_u64 = cpu_period_write_u64, 10319 }, 10320 { 10321 .name = "cfs_quota_us", 10322 .read_s64 = cpu_quota_read_s64, 10323 .write_s64 = cpu_quota_write_s64, 10324 }, 10325 { 10326 .name = "cfs_burst_us", 10327 .read_u64 = cpu_burst_read_u64, 10328 .write_u64 = cpu_burst_write_u64, 10329 }, 10330 #endif 10331 #ifdef CONFIG_CFS_BANDWIDTH 10332 { 10333 .name = "stat", 10334 .seq_show = cpu_cfs_stat_show, 10335 }, 10336 { 10337 .name = "stat.local", 10338 .seq_show = cpu_cfs_local_stat_show, 10339 }, 10340 #endif 10341 #ifdef CONFIG_UCLAMP_TASK_GROUP 10342 { 10343 .name = "uclamp.min", 10344 .flags = CFTYPE_NOT_ON_ROOT, 10345 .seq_show = cpu_uclamp_min_show, 10346 .write = cpu_uclamp_min_write, 10347 }, 10348 { 10349 .name = "uclamp.max", 10350 .flags = CFTYPE_NOT_ON_ROOT, 10351 .seq_show = cpu_uclamp_max_show, 10352 .write = cpu_uclamp_max_write, 10353 }, 10354 #endif 10355 { } /* Terminate */ 10356 }; 10357 10358 #ifdef CONFIG_RT_GROUP_SCHED 10359 static struct cftype rt_group_files[] = { 10360 { 10361 .name = "rt_runtime_us", 10362 .read_s64 = cpu_rt_runtime_read, 10363 .write_s64 = cpu_rt_runtime_write, 10364 }, 10365 { 10366 .name = "rt_period_us", 10367 .read_u64 = cpu_rt_period_read_uint, 10368 .write_u64 = cpu_rt_period_write_uint, 10369 }, 10370 { } /* Terminate */ 10371 }; 10372 10373 # ifdef CONFIG_RT_GROUP_SCHED_DEFAULT_DISABLED 10374 DEFINE_STATIC_KEY_FALSE(rt_group_sched); 10375 # else 10376 DEFINE_STATIC_KEY_TRUE(rt_group_sched); 10377 # endif 10378 10379 static int __init setup_rt_group_sched(char *str) 10380 { 10381 long val; 10382 10383 if (kstrtol(str, 0, &val) || val < 0 || val > 1) { 10384 pr_warn("Unable to set rt_group_sched\n"); 10385 return 1; 10386 } 10387 if (val) 10388 static_branch_enable(&rt_group_sched); 10389 else 10390 static_branch_disable(&rt_group_sched); 10391 10392 return 1; 10393 } 10394 __setup("rt_group_sched=", setup_rt_group_sched); 10395 10396 static int __init cpu_rt_group_init(void) 10397 { 10398 if (!rt_group_sched_enabled()) 10399 return 0; 10400 10401 WARN_ON(cgroup_add_legacy_cftypes(&cpu_cgrp_subsys, rt_group_files)); 10402 return 0; 10403 } 10404 subsys_initcall(cpu_rt_group_init); 10405 #endif /* CONFIG_RT_GROUP_SCHED */ 10406 10407 static int cpu_extra_stat_show(struct seq_file *sf, 10408 struct cgroup_subsys_state *css) 10409 { 10410 #ifdef CONFIG_CFS_BANDWIDTH 10411 { 10412 struct task_group *tg = css_tg(css); 10413 struct cfs_bandwidth *cfs_b = &tg->cfs_bandwidth; 10414 u64 throttled_usec, burst_usec; 10415 10416 throttled_usec = cfs_b->throttled_time; 10417 do_div(throttled_usec, NSEC_PER_USEC); 10418 burst_usec = cfs_b->burst_time; 10419 do_div(burst_usec, NSEC_PER_USEC); 10420 10421 seq_printf(sf, "nr_periods %d\n" 10422 "nr_throttled %d\n" 10423 "throttled_usec %llu\n" 10424 "nr_bursts %d\n" 10425 "burst_usec %llu\n", 10426 cfs_b->nr_periods, cfs_b->nr_throttled, 10427 throttled_usec, cfs_b->nr_burst, burst_usec); 10428 } 10429 #endif /* CONFIG_CFS_BANDWIDTH */ 10430 return 0; 10431 } 10432 10433 static int cpu_local_stat_show(struct seq_file *sf, 10434 struct cgroup_subsys_state *css) 10435 { 10436 #ifdef CONFIG_CFS_BANDWIDTH 10437 { 10438 struct task_group *tg = css_tg(css); 10439 u64 throttled_self_usec; 10440 10441 throttled_self_usec = throttled_time_self(tg); 10442 do_div(throttled_self_usec, NSEC_PER_USEC); 10443 10444 seq_printf(sf, "throttled_usec %llu\n", 10445 throttled_self_usec); 10446 } 10447 #endif 10448 return 0; 10449 } 10450 10451 #ifdef CONFIG_GROUP_SCHED_WEIGHT 10452 10453 static u64 cpu_weight_read_u64(struct cgroup_subsys_state *css, 10454 struct cftype *cft) 10455 { 10456 return sched_weight_to_cgroup(tg_weight(css_tg(css))); 10457 } 10458 10459 static int cpu_weight_write_u64(struct cgroup_subsys_state *css, 10460 struct cftype *cft, u64 cgrp_weight) 10461 { 10462 unsigned long weight; 10463 int ret; 10464 10465 if (cgrp_weight < CGROUP_WEIGHT_MIN || cgrp_weight > CGROUP_WEIGHT_MAX) 10466 return -ERANGE; 10467 10468 weight = sched_weight_from_cgroup(cgrp_weight); 10469 10470 ret = sched_group_set_shares(css_tg(css), scale_load(weight)); 10471 if (!ret) 10472 scx_group_set_weight(css_tg(css), cgrp_weight); 10473 return ret; 10474 } 10475 10476 static s64 cpu_weight_nice_read_s64(struct cgroup_subsys_state *css, 10477 struct cftype *cft) 10478 { 10479 unsigned long weight = tg_weight(css_tg(css)); 10480 int last_delta = INT_MAX; 10481 int prio, delta; 10482 10483 /* find the closest nice value to the current weight */ 10484 for (prio = 0; prio < ARRAY_SIZE(sched_prio_to_weight); prio++) { 10485 delta = abs(sched_prio_to_weight[prio] - weight); 10486 if (delta >= last_delta) 10487 break; 10488 last_delta = delta; 10489 } 10490 10491 return PRIO_TO_NICE(prio - 1 + MAX_RT_PRIO); 10492 } 10493 10494 static int cpu_weight_nice_write_s64(struct cgroup_subsys_state *css, 10495 struct cftype *cft, s64 nice) 10496 { 10497 unsigned long weight; 10498 int idx, ret; 10499 10500 if (nice < MIN_NICE || nice > MAX_NICE) 10501 return -ERANGE; 10502 10503 idx = NICE_TO_PRIO(nice) - MAX_RT_PRIO; 10504 idx = array_index_nospec(idx, 40); 10505 weight = sched_prio_to_weight[idx]; 10506 10507 ret = sched_group_set_shares(css_tg(css), scale_load(weight)); 10508 if (!ret) 10509 scx_group_set_weight(css_tg(css), 10510 sched_weight_to_cgroup(weight)); 10511 return ret; 10512 } 10513 #endif /* CONFIG_GROUP_SCHED_WEIGHT */ 10514 10515 static void __maybe_unused cpu_period_quota_print(struct seq_file *sf, 10516 long period, long quota) 10517 { 10518 if (quota < 0) 10519 seq_puts(sf, "max"); 10520 else 10521 seq_printf(sf, "%ld", quota); 10522 10523 seq_printf(sf, " %ld\n", period); 10524 } 10525 10526 /* caller should put the current value in *@periodp before calling */ 10527 static int __maybe_unused cpu_period_quota_parse(char *buf, u64 *period_us_p, 10528 u64 *quota_us_p) 10529 { 10530 char tok[21]; /* U64_MAX */ 10531 10532 if (sscanf(buf, "%20s %llu", tok, period_us_p) < 1) 10533 return -EINVAL; 10534 10535 if (sscanf(tok, "%llu", quota_us_p) < 1) { 10536 if (!strcmp(tok, "max")) 10537 *quota_us_p = RUNTIME_INF; 10538 else 10539 return -EINVAL; 10540 } 10541 10542 return 0; 10543 } 10544 10545 #ifdef CONFIG_GROUP_SCHED_BANDWIDTH 10546 static int cpu_max_show(struct seq_file *sf, void *v) 10547 { 10548 struct task_group *tg = css_tg(seq_css(sf)); 10549 u64 period_us, quota_us; 10550 10551 tg_bandwidth(tg, &period_us, "a_us, NULL); 10552 cpu_period_quota_print(sf, period_us, quota_us); 10553 return 0; 10554 } 10555 10556 static ssize_t cpu_max_write(struct kernfs_open_file *of, 10557 char *buf, size_t nbytes, loff_t off) 10558 { 10559 struct task_group *tg = css_tg(of_css(of)); 10560 u64 period_us, quota_us, burst_us; 10561 int ret; 10562 10563 tg_bandwidth(tg, &period_us, NULL, &burst_us); 10564 ret = cpu_period_quota_parse(buf, &period_us, "a_us); 10565 if (!ret) 10566 ret = tg_set_bandwidth(tg, period_us, quota_us, burst_us); 10567 return ret ?: nbytes; 10568 } 10569 #endif /* CONFIG_CFS_BANDWIDTH */ 10570 10571 static struct cftype cpu_files[] = { 10572 #ifdef CONFIG_GROUP_SCHED_WEIGHT 10573 { 10574 .name = "weight", 10575 .flags = CFTYPE_NOT_ON_ROOT, 10576 .read_u64 = cpu_weight_read_u64, 10577 .write_u64 = cpu_weight_write_u64, 10578 }, 10579 { 10580 .name = "weight.nice", 10581 .flags = CFTYPE_NOT_ON_ROOT, 10582 .read_s64 = cpu_weight_nice_read_s64, 10583 .write_s64 = cpu_weight_nice_write_s64, 10584 }, 10585 { 10586 .name = "idle", 10587 .flags = CFTYPE_NOT_ON_ROOT, 10588 .read_s64 = cpu_idle_read_s64, 10589 .write_s64 = cpu_idle_write_s64, 10590 }, 10591 #endif 10592 #ifdef CONFIG_GROUP_SCHED_BANDWIDTH 10593 { 10594 .name = "max", 10595 .flags = CFTYPE_NOT_ON_ROOT, 10596 .seq_show = cpu_max_show, 10597 .write = cpu_max_write, 10598 }, 10599 { 10600 .name = "max.burst", 10601 .flags = CFTYPE_NOT_ON_ROOT, 10602 .read_u64 = cpu_burst_read_u64, 10603 .write_u64 = cpu_burst_write_u64, 10604 }, 10605 #endif /* CONFIG_CFS_BANDWIDTH */ 10606 #ifdef CONFIG_UCLAMP_TASK_GROUP 10607 { 10608 .name = "uclamp.min", 10609 .flags = CFTYPE_NOT_ON_ROOT, 10610 .seq_show = cpu_uclamp_min_show, 10611 .write = cpu_uclamp_min_write, 10612 }, 10613 { 10614 .name = "uclamp.max", 10615 .flags = CFTYPE_NOT_ON_ROOT, 10616 .seq_show = cpu_uclamp_max_show, 10617 .write = cpu_uclamp_max_write, 10618 }, 10619 #endif /* CONFIG_UCLAMP_TASK_GROUP */ 10620 { } /* terminate */ 10621 }; 10622 10623 struct cgroup_subsys cpu_cgrp_subsys = { 10624 .css_alloc = cpu_cgroup_css_alloc, 10625 .css_online = cpu_cgroup_css_online, 10626 .css_offline = cpu_cgroup_css_offline, 10627 .css_released = cpu_cgroup_css_released, 10628 .css_free = cpu_cgroup_css_free, 10629 .css_extra_stat_show = cpu_extra_stat_show, 10630 .css_local_stat_show = cpu_local_stat_show, 10631 .can_attach = cpu_cgroup_can_attach, 10632 .attach = cpu_cgroup_attach, 10633 .cancel_attach = cpu_cgroup_cancel_attach, 10634 .legacy_cftypes = cpu_legacy_files, 10635 .dfl_cftypes = cpu_files, 10636 .early_init = true, 10637 .threaded = true, 10638 }; 10639 10640 #endif /* CONFIG_CGROUP_SCHED */ 10641 10642 void dump_cpu_task(int cpu) 10643 { 10644 if (in_hardirq() && cpu == smp_processor_id()) { 10645 struct pt_regs *regs; 10646 10647 regs = get_irq_regs(); 10648 if (regs) { 10649 show_regs(regs); 10650 return; 10651 } 10652 } 10653 10654 if (trigger_single_cpu_backtrace(cpu)) 10655 return; 10656 10657 pr_info("Task dump for CPU %d:\n", cpu); 10658 sched_show_task(cpu_curr(cpu)); 10659 } 10660 10661 /* 10662 * Nice levels are multiplicative, with a gentle 10% change for every 10663 * nice level changed. I.e. when a CPU-bound task goes from nice 0 to 10664 * nice 1, it will get ~10% less CPU time than another CPU-bound task 10665 * that remained on nice 0. 10666 * 10667 * The "10% effect" is relative and cumulative: from _any_ nice level, 10668 * if you go up 1 level, it's -10% CPU usage, if you go down 1 level 10669 * it's +10% CPU usage. (to achieve that we use a multiplier of 1.25. 10670 * If a task goes up by ~10% and another task goes down by ~10% then 10671 * the relative distance between them is ~25%.) 10672 */ 10673 const int sched_prio_to_weight[40] = { 10674 /* -20 */ 88761, 71755, 56483, 46273, 36291, 10675 /* -15 */ 29154, 23254, 18705, 14949, 11916, 10676 /* -10 */ 9548, 7620, 6100, 4904, 3906, 10677 /* -5 */ 3121, 2501, 1991, 1586, 1277, 10678 /* 0 */ 1024, 820, 655, 526, 423, 10679 /* 5 */ 335, 272, 215, 172, 137, 10680 /* 10 */ 110, 87, 70, 56, 45, 10681 /* 15 */ 36, 29, 23, 18, 15, 10682 }; 10683 10684 /* 10685 * Inverse (2^32/x) values of the sched_prio_to_weight[] array, pre-calculated. 10686 * 10687 * In cases where the weight does not change often, we can use the 10688 * pre-calculated inverse to speed up arithmetics by turning divisions 10689 * into multiplications: 10690 */ 10691 const u32 sched_prio_to_wmult[40] = { 10692 /* -20 */ 48388, 59856, 76040, 92818, 118348, 10693 /* -15 */ 147320, 184698, 229616, 287308, 360437, 10694 /* -10 */ 449829, 563644, 704093, 875809, 1099582, 10695 /* -5 */ 1376151, 1717300, 2157191, 2708050, 3363326, 10696 /* 0 */ 4194304, 5237765, 6557202, 8165337, 10153587, 10697 /* 5 */ 12820798, 15790321, 19976592, 24970740, 31350126, 10698 /* 10 */ 39045157, 49367440, 61356676, 76695844, 95443717, 10699 /* 15 */ 119304647, 148102320, 186737708, 238609294, 286331153, 10700 }; 10701 10702 void call_trace_sched_update_nr_running(struct rq *rq, int count) 10703 { 10704 trace_sched_update_nr_running_tp(rq, count); 10705 } 10706 10707 #ifdef CONFIG_SCHED_MM_CID 10708 /* 10709 * Concurrency IDentifier management 10710 * 10711 * Serialization rules: 10712 * 10713 * mm::mm_cid::mutex: Serializes fork() and exit() and therefore 10714 * protects mm::mm_cid::users and mode switch 10715 * transitions 10716 * 10717 * mm::mm_cid::lock: Serializes mm_update_max_cids() and 10718 * mm_update_cpus_allowed(). Nests in mm_cid::mutex 10719 * and runqueue lock. 10720 * 10721 * The mm_cidmask bitmap is not protected by any of the mm::mm_cid locks 10722 * and can only be modified with atomic operations. 10723 * 10724 * The mm::mm_cid:pcpu per CPU storage is protected by the CPUs runqueue 10725 * lock. 10726 * 10727 * CID ownership: 10728 * 10729 * A CID is either owned by a task (stored in task_struct::mm_cid.cid) or 10730 * by a CPU (stored in mm::mm_cid.pcpu::cid). CIDs owned by CPUs have the 10731 * MM_CID_ONCPU bit set. 10732 * 10733 * During the transition of ownership mode, the MM_CID_TRANSIT bit is set 10734 * on the CIDs. When this bit is set the tasks drop the CID back into the 10735 * pool when scheduling out. 10736 * 10737 * Both bits (ONCPU and TRANSIT) are filtered out by task_cid() when the 10738 * CID is actually handed over to user space in the RSEQ memory. 10739 * 10740 * Mode switching: 10741 * 10742 * The ownership mode is per process and stored in mm:mm_cid::mode with the 10743 * following possible states: 10744 * 10745 * 0: Per task ownership 10746 * 0 | MM_CID_TRANSIT: Transition from per CPU to per task 10747 * MM_CID_ONCPU: Per CPU ownership 10748 * MM_CID_ONCPU | MM_CID_TRANSIT: Transition from per task to per CPU 10749 * 10750 * All transitions of ownership mode happen in two phases: 10751 * 10752 * 1) mm:mm_cid::mode has the MM_CID_TRANSIT bit set. This is OR'ed on the 10753 * CIDs and denotes that the CID is only temporarily owned by a 10754 * task. When the task schedules out it drops the CID back into the 10755 * pool if this bit is set. 10756 * 10757 * 2) The initiating context walks the per CPU space or the tasks to fixup 10758 * or drop the CIDs and after completion it clears MM_CID_TRANSIT in 10759 * mm:mm_cid::mode. After that point the CIDs are strictly task or CPU 10760 * owned again. 10761 * 10762 * This two phase transition is required to prevent CID space exhaustion 10763 * during the transition as a direct transfer of ownership would fail: 10764 * 10765 * - On task to CPU mode switch if a task is scheduled in on one CPU and 10766 * then migrated to another CPU before the fixup freed enough per task 10767 * CIDs. 10768 * 10769 * - On CPU to task mode switch if two tasks are scheduled in on the same 10770 * CPU before the fixup freed per CPU CIDs. 10771 * 10772 * Both scenarios can result in a live lock because sched_in() is invoked 10773 * with runqueue lock held and loops in search of a CID and the fixup 10774 * thread can't make progress freeing them up because it is stuck on the 10775 * same runqueue lock. 10776 * 10777 * While MM_CID_TRANSIT is active during the transition phase the MM_CID 10778 * bitmap can be contended, but that's a temporary contention bound to the 10779 * transition period. After that everything goes back into steady state and 10780 * nothing except fork() and exit() will touch the bitmap. This is an 10781 * acceptable tradeoff as it completely avoids complex serialization, 10782 * memory barriers and atomic operations for the common case. 10783 * 10784 * Aside of that this mechanism also ensures RT compability: 10785 * 10786 * - The task which runs the fixup is fully preemptible except for the 10787 * short runqueue lock held sections. 10788 * 10789 * - The transient impact of the bitmap contention is only problematic 10790 * when there is a thundering herd scenario of tasks scheduling in and 10791 * out concurrently. There is not much which can be done about that 10792 * except for avoiding mode switching by a proper overall system 10793 * configuration. 10794 * 10795 * Switching to per CPU mode happens when the user count becomes greater 10796 * than the maximum number of CIDs, which is calculated by: 10797 * 10798 * opt_cids = min(mm_cid::nr_cpus_allowed, mm_cid::users); 10799 * max_cids = min(1.25 * opt_cids, num_possible_cpus()); 10800 * 10801 * The +25% allowance is useful for tight CPU masks in scenarios where only 10802 * a few threads are created and destroyed to avoid frequent mode 10803 * switches. Though this allowance shrinks, the closer opt_cids becomes to 10804 * num_possible_cpus(), which is the (unfortunate) hard ABI limit. 10805 * 10806 * At the point of switching to per CPU mode the new user is not yet 10807 * visible in the system, so the task which initiated the fork() runs the 10808 * fixup function. mm_cid_fixup_tasks_to_cpu() walks the thread list and 10809 * either marks each task owned CID with MM_CID_TRANSIT if the task is 10810 * running on a CPU or drops it into the CID pool if a task is not on a 10811 * CPU. Tasks which schedule in before the task walk reaches them do the 10812 * handover in mm_cid_schedin(). When mm_cid_fixup_tasks_to_cpus() 10813 * completes it is guaranteed that no task related to that MM owns a CID 10814 * anymore. 10815 * 10816 * Switching back to task mode happens when the user count goes below the 10817 * threshold which was recorded on the per CPU mode switch: 10818 * 10819 * pcpu_thrs = min(opt_cids - (opt_cids / 4), num_possible_cpus() / 2); 10820 * 10821 * This threshold is updated when a affinity change increases the number of 10822 * allowed CPUs for the MM, which might cause a switch back to per task 10823 * mode. 10824 * 10825 * If the switch back was initiated by a exiting task, then that task runs 10826 * the fixup function. If it was initiated by a affinity change, then it's 10827 * run either in the deferred update function in context of a workqueue or 10828 * by a task which forks a new one or by a task which exits. Whatever 10829 * happens first. mm_cid_fixup_cpus_to_task() walks through the possible 10830 * CPUs and either marks the CPU owned CIDs with MM_CID_TRANSIT if a 10831 * related task is running on the CPU or drops it into the pool. Tasks 10832 * which are scheduled in before the fixup covered them do the handover 10833 * themself. When mm_cid_fixup_cpus_to_tasks() completes it is guaranteed 10834 * that no CID related to that MM is owned by a CPU anymore. 10835 */ 10836 10837 /* 10838 * Update the CID range properties when the constraints change. Invoked via 10839 * fork(), exit() and affinity changes 10840 */ 10841 static void __mm_update_max_cids(struct mm_mm_cid *mc) 10842 { 10843 unsigned int opt_cids, max_cids; 10844 10845 /* Calculate the new optimal constraint */ 10846 opt_cids = min(mc->nr_cpus_allowed, mc->users); 10847 10848 /* Adjust the maximum CIDs to +25% limited by the number of possible CPUs */ 10849 max_cids = min(opt_cids + (opt_cids / 4), num_possible_cpus()); 10850 WRITE_ONCE(mc->max_cids, max_cids); 10851 } 10852 10853 static inline unsigned int mm_cid_calc_pcpu_thrs(struct mm_mm_cid *mc) 10854 { 10855 unsigned int opt_cids; 10856 10857 opt_cids = min(mc->nr_cpus_allowed, mc->users); 10858 /* Has to be at least 1 because 0 indicates PCPU mode off */ 10859 return max(min(opt_cids - opt_cids / 4, num_possible_cpus() / 2), 1); 10860 } 10861 10862 static bool mm_update_max_cids(struct mm_struct *mm) 10863 { 10864 struct mm_mm_cid *mc = &mm->mm_cid; 10865 bool percpu = cid_on_cpu(mc->mode); 10866 10867 lockdep_assert_held(&mm->mm_cid.lock); 10868 10869 /* Clear deferred mode switch flag. A change is handled by the caller */ 10870 mc->update_deferred = false; 10871 __mm_update_max_cids(mc); 10872 10873 /* Check whether owner mode must be changed */ 10874 if (!percpu) { 10875 /* Enable per CPU mode when the number of users is above max_cids */ 10876 if (mc->users > mc->max_cids) 10877 mc->pcpu_thrs = mm_cid_calc_pcpu_thrs(mc); 10878 } else { 10879 /* Switch back to per task if user count under threshold */ 10880 if (mc->users < mc->pcpu_thrs) 10881 mc->pcpu_thrs = 0; 10882 } 10883 10884 /* Mode change required? */ 10885 if (percpu == !!mc->pcpu_thrs) 10886 return false; 10887 10888 /* Flip the mode and set the transition flag to bridge the transfer */ 10889 WRITE_ONCE(mc->mode, mc->mode ^ (MM_CID_TRANSIT | MM_CID_ONCPU)); 10890 /* 10891 * Order the store against the subsequent fixups so that 10892 * acquire(rq::lock) cannot be reordered by the CPU before the 10893 * store. 10894 */ 10895 smp_mb(); 10896 return true; 10897 } 10898 10899 static inline void mm_update_cpus_allowed(struct mm_struct *mm, const struct cpumask *affmsk) 10900 { 10901 struct cpumask *mm_allowed; 10902 struct mm_mm_cid *mc; 10903 unsigned int weight; 10904 10905 if (!mm || !READ_ONCE(mm->mm_cid.users)) 10906 return; 10907 /* 10908 * mm::mm_cid::mm_cpus_allowed is the superset of each threads 10909 * allowed CPUs mask which means it can only grow. 10910 */ 10911 mc = &mm->mm_cid; 10912 guard(raw_spinlock)(&mc->lock); 10913 mm_allowed = mm_cpus_allowed(mm); 10914 weight = cpumask_weighted_or(mm_allowed, mm_allowed, affmsk); 10915 if (weight == mc->nr_cpus_allowed) 10916 return; 10917 10918 WRITE_ONCE(mc->nr_cpus_allowed, weight); 10919 __mm_update_max_cids(mc); 10920 if (!cid_on_cpu(mc->mode)) 10921 return; 10922 10923 /* Adjust the threshold to the wider set */ 10924 mc->pcpu_thrs = mm_cid_calc_pcpu_thrs(mc); 10925 /* Switch back to per task mode? */ 10926 if (mc->users >= mc->pcpu_thrs) 10927 return; 10928 10929 /* Don't queue twice */ 10930 if (mc->update_deferred) 10931 return; 10932 10933 /* Queue the irq work, which schedules the real work */ 10934 mc->update_deferred = true; 10935 irq_work_queue(&mc->irq_work); 10936 } 10937 10938 static inline void mm_cid_complete_transit(struct mm_struct *mm, unsigned int mode) 10939 { 10940 /* 10941 * Ensure that the store removing the TRANSIT bit cannot be 10942 * reordered by the CPU before the fixups have been completed. 10943 */ 10944 smp_mb(); 10945 WRITE_ONCE(mm->mm_cid.mode, mode); 10946 } 10947 10948 static inline void mm_cid_transit_to_task(struct task_struct *t, struct mm_cid_pcpu *pcp) 10949 { 10950 if (cid_on_cpu(t->mm_cid.cid)) { 10951 unsigned int cid = cpu_cid_to_cid(t->mm_cid.cid); 10952 10953 t->mm_cid.cid = cid_to_transit_cid(cid); 10954 pcp->cid = t->mm_cid.cid; 10955 } 10956 } 10957 10958 static void mm_cid_fixup_cpus_to_tasks(struct mm_struct *mm) 10959 { 10960 unsigned int cpu; 10961 10962 /* Walk the CPUs and fixup all stale CIDs */ 10963 for_each_possible_cpu(cpu) { 10964 struct mm_cid_pcpu *pcp = per_cpu_ptr(mm->mm_cid.pcpu, cpu); 10965 struct rq *rq = cpu_rq(cpu); 10966 10967 /* Remote access to mm::mm_cid::pcpu requires rq_lock */ 10968 guard(rq_lock_irq)(rq); 10969 /* Is the CID still owned by the CPU? */ 10970 if (cid_on_cpu(pcp->cid)) { 10971 /* 10972 * If rq->curr has @mm, transfer it with the 10973 * transition bit set. Otherwise drop it. 10974 */ 10975 if (rq->curr->mm == mm && rq->curr->mm_cid.active) 10976 mm_cid_transit_to_task(rq->curr, pcp); 10977 else 10978 mm_drop_cid_on_cpu(mm, pcp); 10979 10980 } else if (rq->curr->mm == mm && rq->curr->mm_cid.active) { 10981 unsigned int cid = rq->curr->mm_cid.cid; 10982 10983 /* 10984 * Set the transition bit only on a genuine task-owned 10985 * CID. A running active task can legitimately have 10986 * MM_CID_UNSET here: in per-CPU mode CIDs are assigned 10987 * lazily on schedule-in, so the fork()/execve() window 10988 * leaves the task active with no owned CID. Setting the 10989 * transition bit on MM_CID_UNSET would later feed 10990 * clear_bit() an out-of-bounds bit number via 10991 * mm_cid_schedout(), so exclude it. A CPU-owned 10992 * (MM_CID_ONCPU) CID is handled by the cid_on_cpu() 10993 * branch above and never reaches here. 10994 */ 10995 if (cid != MM_CID_UNSET && !cid_in_transit(cid)) { 10996 cid = cid_to_transit_cid(cid); 10997 rq->curr->mm_cid.cid = cid; 10998 pcp->cid = cid; 10999 } 11000 } 11001 } 11002 mm_cid_complete_transit(mm, 0); 11003 } 11004 11005 static inline void mm_cid_transit_to_cpu(struct task_struct *t, struct mm_cid_pcpu *pcp) 11006 { 11007 if (cid_on_task(t->mm_cid.cid)) { 11008 t->mm_cid.cid = cid_to_transit_cid(t->mm_cid.cid); 11009 pcp->cid = t->mm_cid.cid; 11010 } 11011 } 11012 11013 static void mm_cid_fixup_task_to_cpu(struct task_struct *t, struct mm_struct *mm) 11014 { 11015 /* Remote access to mm::mm_cid::pcpu requires rq_lock */ 11016 guard(task_rq_lock)(t); 11017 if (cid_on_task(t->mm_cid.cid)) { 11018 /* If running on the CPU, put the CID in transit mode, otherwise drop it */ 11019 if (task_rq(t)->curr == t) 11020 mm_cid_transit_to_cpu(t, per_cpu_ptr(mm->mm_cid.pcpu, task_cpu(t))); 11021 else 11022 mm_unset_cid_on_task(t); 11023 } 11024 } 11025 11026 static void mm_cid_fixup_tasks_to_cpus(void) 11027 { 11028 struct mm_struct *mm = current->mm; 11029 struct task_struct *t; 11030 11031 lockdep_assert_held(&mm->mm_cid.mutex); 11032 11033 hlist_for_each_entry(t, &mm->mm_cid.user_list, mm_cid.node) { 11034 /* Current has already transferred before invoking the fixup. */ 11035 if (t != current) 11036 mm_cid_fixup_task_to_cpu(t, mm); 11037 } 11038 11039 mm_cid_complete_transit(mm, MM_CID_ONCPU); 11040 } 11041 11042 static bool sched_mm_cid_add_user(struct task_struct *t, struct mm_struct *mm) 11043 { 11044 lockdep_assert_held(&mm->mm_cid.lock); 11045 11046 t->mm_cid.active = 1; 11047 hlist_add_head(&t->mm_cid.node, &mm->mm_cid.user_list); 11048 mm->mm_cid.users++; 11049 return mm_update_max_cids(mm); 11050 } 11051 11052 static void sched_mm_cid_fork(struct task_struct *t) 11053 { 11054 struct mm_struct *mm = t->mm; 11055 bool percpu; 11056 11057 if (!mm) 11058 return; 11059 11060 WARN_ON_ONCE(t->mm_cid.cid != MM_CID_UNSET); 11061 11062 guard(mutex)(&mm->mm_cid.mutex); 11063 scoped_guard(raw_spinlock_irq, &mm->mm_cid.lock) { 11064 struct mm_cid_pcpu *pcp = this_cpu_ptr(mm->mm_cid.pcpu); 11065 11066 /* First user ? */ 11067 if (!mm->mm_cid.users) { 11068 sched_mm_cid_add_user(t, mm); 11069 t->mm_cid.cid = mm_get_cid(mm); 11070 /* Required for execve() */ 11071 pcp->cid = t->mm_cid.cid; 11072 return; 11073 } 11074 11075 if (!sched_mm_cid_add_user(t, mm)) { 11076 if (!cid_on_cpu(mm->mm_cid.mode)) 11077 t->mm_cid.cid = mm_get_cid(mm); 11078 return; 11079 } 11080 11081 /* Handle the mode change and transfer current's CID */ 11082 percpu = cid_on_cpu(mm->mm_cid.mode); 11083 if (!percpu) 11084 mm_cid_transit_to_task(current, pcp); 11085 else 11086 mm_cid_transit_to_cpu(current, pcp); 11087 } 11088 11089 if (percpu) { 11090 mm_cid_fixup_tasks_to_cpus(); 11091 } else { 11092 mm_cid_fixup_cpus_to_tasks(mm); 11093 t->mm_cid.cid = mm_get_cid(mm); 11094 } 11095 } 11096 11097 static bool sched_mm_cid_remove_user(struct task_struct *t) 11098 { 11099 lockdep_assert_held(&t->mm->mm_cid.lock); 11100 11101 t->mm_cid.active = 0; 11102 /* Clear the transition bit */ 11103 t->mm_cid.cid = cid_from_transit_cid(t->mm_cid.cid); 11104 mm_unset_cid_on_task(t); 11105 hlist_del_init(&t->mm_cid.node); 11106 t->mm->mm_cid.users--; 11107 return mm_update_max_cids(t->mm); 11108 } 11109 11110 static bool __sched_mm_cid_exit(struct task_struct *t) 11111 { 11112 struct mm_struct *mm = t->mm; 11113 11114 if (!sched_mm_cid_remove_user(t)) 11115 return false; 11116 /* 11117 * Contrary to fork() this only deals with a switch back to per 11118 * task mode either because the above decreased users or an 11119 * affinity change increased the number of allowed CPUs and the 11120 * deferred fixup did not run yet. 11121 */ 11122 if (WARN_ON_ONCE(cid_on_cpu(mm->mm_cid.mode))) 11123 return false; 11124 /* 11125 * A failed fork(2) cleanup never gets here, so @current must have 11126 * the same MM as @t. That's true for exit() and the failed 11127 * pthread_create() cleanup case. 11128 */ 11129 if (WARN_ON_ONCE(current->mm != mm)) 11130 return false; 11131 return true; 11132 } 11133 11134 /* 11135 * When a task exits, the MM CID held by the task is not longer required as 11136 * the task cannot return to user space. 11137 */ 11138 void sched_mm_cid_exit(struct task_struct *t) 11139 { 11140 struct mm_struct *mm = t->mm; 11141 11142 if (!mm || !t->mm_cid.active) 11143 return; 11144 /* 11145 * Ensure that only one instance is doing MM CID operations within 11146 * a MM. The common case is uncontended. The rare fixup case adds 11147 * some overhead. 11148 */ 11149 scoped_guard(mutex, &mm->mm_cid.mutex) { 11150 /* mm_cid::mutex is sufficient to protect mm_cid::users */ 11151 if (likely(mm->mm_cid.users > 1)) { 11152 scoped_guard(raw_spinlock_irq, &mm->mm_cid.lock) { 11153 if (!__sched_mm_cid_exit(t)) 11154 return; 11155 /* 11156 * Mode change. The task has the CID unset 11157 * already and dealt with an eventually set 11158 * TRANSIT bit. If the CID is owned by the CPU 11159 * then drop it. 11160 */ 11161 mm_drop_cid_on_cpu(mm, this_cpu_ptr(mm->mm_cid.pcpu)); 11162 } 11163 mm_cid_fixup_cpus_to_tasks(mm); 11164 return; 11165 } 11166 /* Last user */ 11167 scoped_guard(raw_spinlock_irq, &mm->mm_cid.lock) { 11168 /* Required across execve() */ 11169 if (t == current) 11170 mm_cid_transit_to_task(t, this_cpu_ptr(mm->mm_cid.pcpu)); 11171 /* Ignore mode change. There is nothing to do. */ 11172 sched_mm_cid_remove_user(t); 11173 } 11174 } 11175 11176 /* 11177 * As this is the last user (execve(), process exit or failed 11178 * fork(2)) there is no concurrency anymore. 11179 * 11180 * Synchronize eventually pending work to ensure that there are no 11181 * dangling references left. @t->mm_cid.users is zero so nothing 11182 * can queue this work anymore. 11183 */ 11184 irq_work_sync(&mm->mm_cid.irq_work); 11185 cancel_work_sync(&mm->mm_cid.work); 11186 } 11187 11188 /* Deactivate MM CID allocation across execve() */ 11189 void sched_mm_cid_before_execve(struct task_struct *t) 11190 { 11191 sched_mm_cid_exit(t); 11192 } 11193 11194 /* Reactivate MM CID after execve() */ 11195 void sched_mm_cid_after_execve(struct task_struct *t) 11196 { 11197 if (t->mm) 11198 sched_mm_cid_fork(t); 11199 } 11200 11201 static void mm_cid_work_fn(struct work_struct *work) 11202 { 11203 struct mm_struct *mm = container_of(work, struct mm_struct, mm_cid.work); 11204 11205 guard(mutex)(&mm->mm_cid.mutex); 11206 /* Did the last user task exit already? */ 11207 if (!mm->mm_cid.users) 11208 return; 11209 11210 scoped_guard(raw_spinlock_irq, &mm->mm_cid.lock) { 11211 /* Have fork() or exit() handled it already? */ 11212 if (!mm->mm_cid.update_deferred) 11213 return; 11214 /* This clears mm_cid::update_deferred */ 11215 if (!mm_update_max_cids(mm)) 11216 return; 11217 /* Affinity changes can only switch back to task mode */ 11218 if (WARN_ON_ONCE(cid_on_cpu(mm->mm_cid.mode))) 11219 return; 11220 } 11221 mm_cid_fixup_cpus_to_tasks(mm); 11222 } 11223 11224 static void mm_cid_irq_work(struct irq_work *work) 11225 { 11226 struct mm_struct *mm = container_of(work, struct mm_struct, mm_cid.irq_work); 11227 11228 /* 11229 * Needs to be unconditional because mm_cid::lock cannot be held 11230 * when scheduling work as mm_update_cpus_allowed() nests inside 11231 * rq::lock and schedule_work() might end up in wakeup... 11232 */ 11233 schedule_work(&mm->mm_cid.work); 11234 } 11235 11236 void mm_init_cid(struct mm_struct *mm, struct task_struct *p) 11237 { 11238 mm->mm_cid.max_cids = 0; 11239 mm->mm_cid.mode = 0; 11240 mm->mm_cid.nr_cpus_allowed = p->nr_cpus_allowed; 11241 mm->mm_cid.users = 0; 11242 mm->mm_cid.pcpu_thrs = 0; 11243 mm->mm_cid.update_deferred = 0; 11244 raw_spin_lock_init(&mm->mm_cid.lock); 11245 mutex_init(&mm->mm_cid.mutex); 11246 mm->mm_cid.irq_work = IRQ_WORK_INIT_HARD(mm_cid_irq_work); 11247 INIT_WORK(&mm->mm_cid.work, mm_cid_work_fn); 11248 INIT_HLIST_HEAD(&mm->mm_cid.user_list); 11249 cpumask_copy(mm_cpus_allowed(mm), &p->cpus_mask); 11250 bitmap_zero(mm_cidmask(mm), num_possible_cpus()); 11251 } 11252 #else /* CONFIG_SCHED_MM_CID */ 11253 static inline void mm_update_cpus_allowed(struct mm_struct *mm, const struct cpumask *affmsk) { } 11254 static inline void sched_mm_cid_fork(struct task_struct *t) { } 11255 #endif /* !CONFIG_SCHED_MM_CID */ 11256 11257 static DEFINE_PER_CPU(struct sched_change_ctx, sched_change_ctx); 11258 11259 struct sched_change_ctx *sched_change_begin(struct task_struct *p, unsigned int flags) 11260 { 11261 struct sched_change_ctx *ctx = this_cpu_ptr(&sched_change_ctx); 11262 struct rq *rq = task_rq(p); 11263 11264 /* 11265 * Must exclusively use matched flags since this is both dequeue and 11266 * enqueue. 11267 */ 11268 WARN_ON_ONCE(flags & 0xFFFF0000); 11269 11270 lockdep_assert_rq_held(rq); 11271 11272 if (!(flags & DEQUEUE_NOCLOCK)) { 11273 update_rq_clock(rq); 11274 flags |= DEQUEUE_NOCLOCK; 11275 } 11276 11277 if ((flags & DEQUEUE_CLASS) && p->sched_class->switching_from) 11278 p->sched_class->switching_from(rq, p); 11279 11280 *ctx = (struct sched_change_ctx){ 11281 .p = p, 11282 .class = p->sched_class, 11283 .flags = flags, 11284 .queued = task_on_rq_queued(p), 11285 .running = task_current_donor(rq, p), 11286 }; 11287 11288 if (!(flags & DEQUEUE_CLASS)) { 11289 if (p->sched_class->get_prio) 11290 ctx->prio = p->sched_class->get_prio(rq, p); 11291 else 11292 ctx->prio = p->prio; 11293 } 11294 11295 if (ctx->queued) 11296 dequeue_task(rq, p, flags); 11297 if (ctx->running) 11298 put_prev_task(rq, p); 11299 11300 if ((flags & DEQUEUE_CLASS) && p->sched_class->switched_from) 11301 p->sched_class->switched_from(rq, p); 11302 11303 return ctx; 11304 } 11305 11306 void sched_change_end(struct sched_change_ctx *ctx) 11307 { 11308 struct task_struct *p = ctx->p; 11309 struct rq *rq = task_rq(p); 11310 11311 lockdep_assert_rq_held(rq); 11312 11313 /* 11314 * Changing class without *QUEUE_CLASS is bad. 11315 */ 11316 WARN_ON_ONCE(p->sched_class != ctx->class && !(ctx->flags & ENQUEUE_CLASS)); 11317 11318 if ((ctx->flags & ENQUEUE_CLASS) && p->sched_class->switching_to) 11319 p->sched_class->switching_to(rq, p); 11320 11321 if (ctx->queued) 11322 enqueue_task(rq, p, ctx->flags); 11323 if (ctx->running) 11324 set_next_task(rq, p); 11325 11326 if (ctx->flags & ENQUEUE_CLASS) { 11327 if (p->sched_class->switched_to) 11328 p->sched_class->switched_to(rq, p); 11329 11330 if (ctx->running) { 11331 /* 11332 * If this was a class promotion; let the old class 11333 * know it got preempted. Note that none of the 11334 * switch*_from() methods know the new class and none 11335 * of the switch*_to() methods know the old class. 11336 */ 11337 if (sched_class_above(p->sched_class, ctx->class)) { 11338 rq->next_class->wakeup_preempt(rq, p, 0); 11339 rq->next_class = p->sched_class; 11340 } 11341 /* 11342 * If this was a degradation in class; make sure to 11343 * reschedule. 11344 */ 11345 if (sched_class_above(ctx->class, p->sched_class)) 11346 resched_curr(rq); 11347 } 11348 } else { 11349 p->sched_class->prio_changed(rq, p, ctx->prio); 11350 } 11351 } 11352